pcm_lib.c 66.8 KB
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/*
 *  Digital Audio (PCM) abstract layer
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 *  Copyright (c) by Jaroslav Kysela <perex@perex.cz>
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 *                   Abramo Bagnara <abramo@alsa-project.org>
 *
 *
 *   This program 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 program 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/slab.h>
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#include <linux/sched/signal.h>
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#include <linux/time.h>
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#include <linux/math64.h>
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#include <linux/export.h>
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#include <sound/core.h>
#include <sound/control.h>
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#include <sound/tlv.h>
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#include <sound/info.h>
#include <sound/pcm.h>
#include <sound/pcm_params.h>
#include <sound/timer.h>

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#include "pcm_local.h"

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#ifdef CONFIG_SND_PCM_XRUN_DEBUG
#define CREATE_TRACE_POINTS
#include "pcm_trace.h"
#else
#define trace_hwptr(substream, pos, in_interrupt)
#define trace_xrun(substream)
#define trace_hw_ptr_error(substream, reason)
#endif

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static int fill_silence_frames(struct snd_pcm_substream *substream,
			       snd_pcm_uframes_t off, snd_pcm_uframes_t frames);

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/*
 * fill ring buffer with silence
 * runtime->silence_start: starting pointer to silence area
 * runtime->silence_filled: size filled with silence
 * runtime->silence_threshold: threshold from application
 * runtime->silence_size: maximal size from application
 *
 * when runtime->silence_size >= runtime->boundary - fill processed area with silence immediately
 */
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void snd_pcm_playback_silence(struct snd_pcm_substream *substream, snd_pcm_uframes_t new_hw_ptr)
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{
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	struct snd_pcm_runtime *runtime = substream->runtime;
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	snd_pcm_uframes_t frames, ofs, transfer;
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	int err;
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	if (runtime->silence_size < runtime->boundary) {
		snd_pcm_sframes_t noise_dist, n;
		if (runtime->silence_start != runtime->control->appl_ptr) {
			n = runtime->control->appl_ptr - runtime->silence_start;
			if (n < 0)
				n += runtime->boundary;
			if ((snd_pcm_uframes_t)n < runtime->silence_filled)
				runtime->silence_filled -= n;
			else
				runtime->silence_filled = 0;
			runtime->silence_start = runtime->control->appl_ptr;
		}
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		if (runtime->silence_filled >= runtime->buffer_size)
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			return;
		noise_dist = snd_pcm_playback_hw_avail(runtime) + runtime->silence_filled;
		if (noise_dist >= (snd_pcm_sframes_t) runtime->silence_threshold)
			return;
		frames = runtime->silence_threshold - noise_dist;
		if (frames > runtime->silence_size)
			frames = runtime->silence_size;
	} else {
		if (new_hw_ptr == ULONG_MAX) {	/* initialization */
			snd_pcm_sframes_t avail = snd_pcm_playback_hw_avail(runtime);
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			if (avail > runtime->buffer_size)
				avail = runtime->buffer_size;
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			runtime->silence_filled = avail > 0 ? avail : 0;
			runtime->silence_start = (runtime->status->hw_ptr +
						  runtime->silence_filled) %
						 runtime->boundary;
		} else {
			ofs = runtime->status->hw_ptr;
			frames = new_hw_ptr - ofs;
			if ((snd_pcm_sframes_t)frames < 0)
				frames += runtime->boundary;
			runtime->silence_filled -= frames;
			if ((snd_pcm_sframes_t)runtime->silence_filled < 0) {
				runtime->silence_filled = 0;
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				runtime->silence_start = new_hw_ptr;
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			} else {
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				runtime->silence_start = ofs;
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			}
		}
		frames = runtime->buffer_size - runtime->silence_filled;
	}
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	if (snd_BUG_ON(frames > runtime->buffer_size))
		return;
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	if (frames == 0)
		return;
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	ofs = runtime->silence_start % runtime->buffer_size;
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	while (frames > 0) {
		transfer = ofs + frames > runtime->buffer_size ? runtime->buffer_size - ofs : frames;
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		err = fill_silence_frames(substream, ofs, transfer);
		snd_BUG_ON(err < 0);
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		runtime->silence_filled += transfer;
		frames -= transfer;
		ofs = 0;
	}
}

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#ifdef CONFIG_SND_DEBUG
void snd_pcm_debug_name(struct snd_pcm_substream *substream,
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			   char *name, size_t len)
{
	snprintf(name, len, "pcmC%dD%d%c:%d",
		 substream->pcm->card->number,
		 substream->pcm->device,
		 substream->stream ? 'c' : 'p',
		 substream->number);
}
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EXPORT_SYMBOL(snd_pcm_debug_name);
#endif
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#define XRUN_DEBUG_BASIC	(1<<0)
#define XRUN_DEBUG_STACK	(1<<1)	/* dump also stack */
#define XRUN_DEBUG_JIFFIESCHECK	(1<<2)	/* do jiffies check */

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#ifdef CONFIG_SND_PCM_XRUN_DEBUG
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#define xrun_debug(substream, mask) \
			((substream)->pstr->xrun_debug & (mask))
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#else
#define xrun_debug(substream, mask)	0
#endif
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#define dump_stack_on_xrun(substream) do {			\
		if (xrun_debug(substream, XRUN_DEBUG_STACK))	\
			dump_stack();				\
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	} while (0)

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static void xrun(struct snd_pcm_substream *substream)
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{
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	struct snd_pcm_runtime *runtime = substream->runtime;

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	trace_xrun(substream);
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	if (runtime->tstamp_mode == SNDRV_PCM_TSTAMP_ENABLE)
		snd_pcm_gettime(runtime, (struct timespec *)&runtime->status->tstamp);
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	snd_pcm_stop(substream, SNDRV_PCM_STATE_XRUN);
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	if (xrun_debug(substream, XRUN_DEBUG_BASIC)) {
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		char name[16];
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		snd_pcm_debug_name(substream, name, sizeof(name));
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		pcm_warn(substream->pcm, "XRUN: %s\n", name);
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		dump_stack_on_xrun(substream);
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	}
}

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#ifdef CONFIG_SND_PCM_XRUN_DEBUG
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#define hw_ptr_error(substream, in_interrupt, reason, fmt, args...)	\
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	do {								\
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		trace_hw_ptr_error(substream, reason);	\
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		if (xrun_debug(substream, XRUN_DEBUG_BASIC)) {		\
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			pr_err_ratelimited("ALSA: PCM: [%c] " reason ": " fmt, \
					   (in_interrupt) ? 'Q' : 'P', ##args);	\
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			dump_stack_on_xrun(substream);			\
		}							\
	} while (0)

#else /* ! CONFIG_SND_PCM_XRUN_DEBUG */

#define hw_ptr_error(substream, fmt, args...) do { } while (0)

#endif

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int snd_pcm_update_state(struct snd_pcm_substream *substream,
			 struct snd_pcm_runtime *runtime)
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{
	snd_pcm_uframes_t avail;

	if (substream->stream == SNDRV_PCM_STREAM_PLAYBACK)
		avail = snd_pcm_playback_avail(runtime);
	else
		avail = snd_pcm_capture_avail(runtime);
	if (avail > runtime->avail_max)
		runtime->avail_max = avail;
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	if (runtime->status->state == SNDRV_PCM_STATE_DRAINING) {
		if (avail >= runtime->buffer_size) {
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			snd_pcm_drain_done(substream);
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			return -EPIPE;
		}
	} else {
		if (avail >= runtime->stop_threshold) {
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			xrun(substream);
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			return -EPIPE;
		}
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	}
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	if (runtime->twake) {
		if (avail >= runtime->twake)
			wake_up(&runtime->tsleep);
	} else if (avail >= runtime->control->avail_min)
		wake_up(&runtime->sleep);
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	return 0;
}

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static void update_audio_tstamp(struct snd_pcm_substream *substream,
				struct timespec *curr_tstamp,
				struct timespec *audio_tstamp)
{
	struct snd_pcm_runtime *runtime = substream->runtime;
	u64 audio_frames, audio_nsecs;
	struct timespec driver_tstamp;

	if (runtime->tstamp_mode != SNDRV_PCM_TSTAMP_ENABLE)
		return;

	if (!(substream->ops->get_time_info) ||
		(runtime->audio_tstamp_report.actual_type ==
			SNDRV_PCM_AUDIO_TSTAMP_TYPE_DEFAULT)) {

		/*
		 * provide audio timestamp derived from pointer position
		 * add delay only if requested
		 */

		audio_frames = runtime->hw_ptr_wrap + runtime->status->hw_ptr;

		if (runtime->audio_tstamp_config.report_delay) {
			if (substream->stream == SNDRV_PCM_STREAM_PLAYBACK)
				audio_frames -=  runtime->delay;
			else
				audio_frames +=  runtime->delay;
		}
		audio_nsecs = div_u64(audio_frames * 1000000000LL,
				runtime->rate);
		*audio_tstamp = ns_to_timespec(audio_nsecs);
	}
	runtime->status->audio_tstamp = *audio_tstamp;
	runtime->status->tstamp = *curr_tstamp;

	/*
	 * re-take a driver timestamp to let apps detect if the reference tstamp
	 * read by low-level hardware was provided with a delay
	 */
	snd_pcm_gettime(substream->runtime, (struct timespec *)&driver_tstamp);
	runtime->driver_tstamp = driver_tstamp;
}

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static int snd_pcm_update_hw_ptr0(struct snd_pcm_substream *substream,
				  unsigned int in_interrupt)
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{
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	struct snd_pcm_runtime *runtime = substream->runtime;
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	snd_pcm_uframes_t pos;
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	snd_pcm_uframes_t old_hw_ptr, new_hw_ptr, hw_base;
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	snd_pcm_sframes_t hdelta, delta;
	unsigned long jdelta;
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	unsigned long curr_jiffies;
	struct timespec curr_tstamp;
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	struct timespec audio_tstamp;
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	int crossed_boundary = 0;
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	old_hw_ptr = runtime->status->hw_ptr;
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	/*
	 * group pointer, time and jiffies reads to allow for more
	 * accurate correlations/corrections.
	 * The values are stored at the end of this routine after
	 * corrections for hw_ptr position
	 */
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	pos = substream->ops->pointer(substream);
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	curr_jiffies = jiffies;
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	if (runtime->tstamp_mode == SNDRV_PCM_TSTAMP_ENABLE) {
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		if ((substream->ops->get_time_info) &&
			(runtime->audio_tstamp_config.type_requested != SNDRV_PCM_AUDIO_TSTAMP_TYPE_DEFAULT)) {
			substream->ops->get_time_info(substream, &curr_tstamp,
						&audio_tstamp,
						&runtime->audio_tstamp_config,
						&runtime->audio_tstamp_report);

			/* re-test in case tstamp type is not supported in hardware and was demoted to DEFAULT */
			if (runtime->audio_tstamp_report.actual_type == SNDRV_PCM_AUDIO_TSTAMP_TYPE_DEFAULT)
				snd_pcm_gettime(runtime, (struct timespec *)&curr_tstamp);
		} else
			snd_pcm_gettime(runtime, (struct timespec *)&curr_tstamp);
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	}

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	if (pos == SNDRV_PCM_POS_XRUN) {
		xrun(substream);
		return -EPIPE;
	}
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	if (pos >= runtime->buffer_size) {
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		if (printk_ratelimit()) {
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			char name[16];
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			snd_pcm_debug_name(substream, name, sizeof(name));
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			pcm_err(substream->pcm,
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				"invalid position: %s, pos = %ld, buffer size = %ld, period size = %ld\n",
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				name, pos, runtime->buffer_size,
				runtime->period_size);
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		}
		pos = 0;
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	}
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	pos -= pos % runtime->min_align;
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	trace_hwptr(substream, pos, in_interrupt);
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	hw_base = runtime->hw_ptr_base;
	new_hw_ptr = hw_base + pos;
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	if (in_interrupt) {
		/* we know that one period was processed */
		/* delta = "expected next hw_ptr" for in_interrupt != 0 */
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		delta = runtime->hw_ptr_interrupt + runtime->period_size;
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		if (delta > new_hw_ptr) {
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			/* check for double acknowledged interrupts */
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			hdelta = curr_jiffies - runtime->hw_ptr_jiffies;
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			if (hdelta > runtime->hw_ptr_buffer_jiffies/2 + 1) {
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				hw_base += runtime->buffer_size;
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				if (hw_base >= runtime->boundary) {
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					hw_base = 0;
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					crossed_boundary++;
				}
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				new_hw_ptr = hw_base + pos;
				goto __delta;
			}
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		}
	}
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	/* new_hw_ptr might be lower than old_hw_ptr in case when */
	/* pointer crosses the end of the ring buffer */
	if (new_hw_ptr < old_hw_ptr) {
		hw_base += runtime->buffer_size;
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		if (hw_base >= runtime->boundary) {
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			hw_base = 0;
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			crossed_boundary++;
		}
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		new_hw_ptr = hw_base + pos;
	}
      __delta:
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	delta = new_hw_ptr - old_hw_ptr;
	if (delta < 0)
		delta += runtime->boundary;
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	if (runtime->no_period_wakeup) {
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		snd_pcm_sframes_t xrun_threshold;
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		/*
		 * Without regular period interrupts, we have to check
		 * the elapsed time to detect xruns.
		 */
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		jdelta = curr_jiffies - runtime->hw_ptr_jiffies;
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		if (jdelta < runtime->hw_ptr_buffer_jiffies / 2)
			goto no_delta_check;
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		hdelta = jdelta - delta * HZ / runtime->rate;
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		xrun_threshold = runtime->hw_ptr_buffer_jiffies / 2 + 1;
		while (hdelta > xrun_threshold) {
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			delta += runtime->buffer_size;
			hw_base += runtime->buffer_size;
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			if (hw_base >= runtime->boundary) {
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				hw_base = 0;
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				crossed_boundary++;
			}
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			new_hw_ptr = hw_base + pos;
			hdelta -= runtime->hw_ptr_buffer_jiffies;
		}
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		goto no_delta_check;
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	}
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	/* something must be really wrong */
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	if (delta >= runtime->buffer_size + runtime->period_size) {
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		hw_ptr_error(substream, in_interrupt, "Unexpected hw_ptr",
			     "(stream=%i, pos=%ld, new_hw_ptr=%ld, old_hw_ptr=%ld)\n",
			     substream->stream, (long)pos,
			     (long)new_hw_ptr, (long)old_hw_ptr);
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		return 0;
	}
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	/* Do jiffies check only in xrun_debug mode */
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	if (!xrun_debug(substream, XRUN_DEBUG_JIFFIESCHECK))
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		goto no_jiffies_check;

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	/* Skip the jiffies check for hardwares with BATCH flag.
	 * Such hardware usually just increases the position at each IRQ,
	 * thus it can't give any strange position.
	 */
	if (runtime->hw.info & SNDRV_PCM_INFO_BATCH)
		goto no_jiffies_check;
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	hdelta = delta;
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	if (hdelta < runtime->delay)
		goto no_jiffies_check;
	hdelta -= runtime->delay;
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	jdelta = curr_jiffies - runtime->hw_ptr_jiffies;
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	if (((hdelta * HZ) / runtime->rate) > jdelta + HZ/100) {
		delta = jdelta /
			(((runtime->period_size * HZ) / runtime->rate)
								+ HZ/100);
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		/* move new_hw_ptr according jiffies not pos variable */
		new_hw_ptr = old_hw_ptr;
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		hw_base = delta;
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		/* use loop to avoid checks for delta overflows */
		/* the delta value is small or zero in most cases */
		while (delta > 0) {
			new_hw_ptr += runtime->period_size;
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			if (new_hw_ptr >= runtime->boundary) {
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				new_hw_ptr -= runtime->boundary;
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				crossed_boundary--;
			}
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			delta--;
		}
		/* align hw_base to buffer_size */
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		hw_ptr_error(substream, in_interrupt, "hw_ptr skipping",
			     "(pos=%ld, delta=%ld, period=%ld, jdelta=%lu/%lu/%lu, hw_ptr=%ld/%ld)\n",
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			     (long)pos, (long)hdelta,
			     (long)runtime->period_size, jdelta,
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			     ((hdelta * HZ) / runtime->rate), hw_base,
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			     (unsigned long)old_hw_ptr,
			     (unsigned long)new_hw_ptr);
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		/* reset values to proper state */
		delta = 0;
		hw_base = new_hw_ptr - (new_hw_ptr % runtime->buffer_size);
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	}
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 no_jiffies_check:
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	if (delta > runtime->period_size + runtime->period_size / 2) {
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		hw_ptr_error(substream, in_interrupt,
			     "Lost interrupts?",
			     "(stream=%i, delta=%ld, new_hw_ptr=%ld, old_hw_ptr=%ld)\n",
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			     substream->stream, (long)delta,
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			     (long)new_hw_ptr,
			     (long)old_hw_ptr);
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	}
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 no_delta_check:
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	if (runtime->status->hw_ptr == new_hw_ptr) {
		update_audio_tstamp(substream, &curr_tstamp, &audio_tstamp);
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		return 0;
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	}
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	if (substream->stream == SNDRV_PCM_STREAM_PLAYBACK &&
	    runtime->silence_size > 0)
		snd_pcm_playback_silence(substream, new_hw_ptr);

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	if (in_interrupt) {
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		delta = new_hw_ptr - runtime->hw_ptr_interrupt;
		if (delta < 0)
			delta += runtime->boundary;
		delta -= (snd_pcm_uframes_t)delta % runtime->period_size;
		runtime->hw_ptr_interrupt += delta;
		if (runtime->hw_ptr_interrupt >= runtime->boundary)
			runtime->hw_ptr_interrupt -= runtime->boundary;
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	}
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	runtime->hw_ptr_base = hw_base;
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	runtime->status->hw_ptr = new_hw_ptr;
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	runtime->hw_ptr_jiffies = curr_jiffies;
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	if (crossed_boundary) {
		snd_BUG_ON(crossed_boundary != 1);
		runtime->hw_ptr_wrap += runtime->boundary;
	}
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	update_audio_tstamp(substream, &curr_tstamp, &audio_tstamp);
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	return snd_pcm_update_state(substream, runtime);
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}

/* CAUTION: call it with irq disabled */
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int snd_pcm_update_hw_ptr(struct snd_pcm_substream *substream)
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{
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	return snd_pcm_update_hw_ptr0(substream, 0);
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}

/**
 * snd_pcm_set_ops - set the PCM operators
 * @pcm: the pcm instance
 * @direction: stream direction, SNDRV_PCM_STREAM_XXX
 * @ops: the operator table
 *
 * Sets the given PCM operators to the pcm instance.
 */
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void snd_pcm_set_ops(struct snd_pcm *pcm, int direction,
		     const struct snd_pcm_ops *ops)
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{
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	struct snd_pcm_str *stream = &pcm->streams[direction];
	struct snd_pcm_substream *substream;
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	for (substream = stream->substream; substream != NULL; substream = substream->next)
		substream->ops = ops;
}

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EXPORT_SYMBOL(snd_pcm_set_ops);
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/**
 * snd_pcm_sync - set the PCM sync id
 * @substream: the pcm substream
 *
 * Sets the PCM sync identifier for the card.
 */
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void snd_pcm_set_sync(struct snd_pcm_substream *substream)
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{
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	struct snd_pcm_runtime *runtime = substream->runtime;
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	runtime->sync.id32[0] = substream->pcm->card->number;
	runtime->sync.id32[1] = -1;
	runtime->sync.id32[2] = -1;
	runtime->sync.id32[3] = -1;
}

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EXPORT_SYMBOL(snd_pcm_set_sync);

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/*
 *  Standard ioctl routine
 */

static inline unsigned int div32(unsigned int a, unsigned int b, 
				 unsigned int *r)
{
	if (b == 0) {
		*r = 0;
		return UINT_MAX;
	}
	*r = a % b;
	return a / b;
}

static inline unsigned int div_down(unsigned int a, unsigned int b)
{
	if (b == 0)
		return UINT_MAX;
	return a / b;
}

static inline unsigned int div_up(unsigned int a, unsigned int b)
{
	unsigned int r;
	unsigned int q;
	if (b == 0)
		return UINT_MAX;
	q = div32(a, b, &r);
	if (r)
		++q;
	return q;
}

static inline unsigned int mul(unsigned int a, unsigned int b)
{
	if (a == 0)
		return 0;
	if (div_down(UINT_MAX, a) < b)
		return UINT_MAX;
	return a * b;
}

static inline unsigned int muldiv32(unsigned int a, unsigned int b,
				    unsigned int c, unsigned int *r)
{
	u_int64_t n = (u_int64_t) a * b;
	if (c == 0) {
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		snd_BUG_ON(!n);
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		*r = 0;
		return UINT_MAX;
	}
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	n = div_u64_rem(n, c, r);
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	if (n >= UINT_MAX) {
		*r = 0;
		return UINT_MAX;
	}
	return n;
}

/**
 * snd_interval_refine - refine the interval value of configurator
 * @i: the interval value to refine
 * @v: the interval value to refer to
 *
 * Refines the interval value with the reference value.
 * The interval is changed to the range satisfying both intervals.
 * The interval status (min, max, integer, etc.) are evaluated.
 *
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 * Return: Positive if the value is changed, zero if it's not changed, or a
 * negative error code.
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 */
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int snd_interval_refine(struct snd_interval *i, const struct snd_interval *v)
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{
	int changed = 0;
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	if (snd_BUG_ON(snd_interval_empty(i)))
		return -EINVAL;
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	if (i->min < v->min) {
		i->min = v->min;
		i->openmin = v->openmin;
		changed = 1;
	} else if (i->min == v->min && !i->openmin && v->openmin) {
		i->openmin = 1;
		changed = 1;
	}
	if (i->max > v->max) {
		i->max = v->max;
		i->openmax = v->openmax;
		changed = 1;
	} else if (i->max == v->max && !i->openmax && v->openmax) {
		i->openmax = 1;
		changed = 1;
	}
	if (!i->integer && v->integer) {
		i->integer = 1;
		changed = 1;
	}
	if (i->integer) {
		if (i->openmin) {
			i->min++;
			i->openmin = 0;
		}
		if (i->openmax) {
			i->max--;
			i->openmax = 0;
		}
	} else if (!i->openmin && !i->openmax && i->min == i->max)
		i->integer = 1;
	if (snd_interval_checkempty(i)) {
		snd_interval_none(i);
		return -EINVAL;
	}
	return changed;
}

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EXPORT_SYMBOL(snd_interval_refine);

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static int snd_interval_refine_first(struct snd_interval *i)
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{
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	if (snd_BUG_ON(snd_interval_empty(i)))
		return -EINVAL;
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	if (snd_interval_single(i))
		return 0;
	i->max = i->min;
	i->openmax = i->openmin;
	if (i->openmax)
		i->max++;
	return 1;
}

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static int snd_interval_refine_last(struct snd_interval *i)
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{
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	if (snd_BUG_ON(snd_interval_empty(i)))
		return -EINVAL;
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	if (snd_interval_single(i))
		return 0;
	i->min = i->max;
	i->openmin = i->openmax;
	if (i->openmin)
		i->min--;
	return 1;
}

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void snd_interval_mul(const struct snd_interval *a, const struct snd_interval *b, struct snd_interval *c)
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{
	if (a->empty || b->empty) {
		snd_interval_none(c);
		return;
	}
	c->empty = 0;
	c->min = mul(a->min, b->min);
	c->openmin = (a->openmin || b->openmin);
	c->max = mul(a->max,  b->max);
	c->openmax = (a->openmax || b->openmax);
	c->integer = (a->integer && b->integer);
}

/**
 * snd_interval_div - refine the interval value with division
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 * @a: dividend
 * @b: divisor
 * @c: quotient
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 *
 * c = a / b
 *
 * Returns non-zero if the value is changed, zero if not changed.
 */
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void snd_interval_div(const struct snd_interval *a, const struct snd_interval *b, struct snd_interval *c)
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{
	unsigned int r;
	if (a->empty || b->empty) {
		snd_interval_none(c);
		return;
	}
	c->empty = 0;
	c->min = div32(a->min, b->max, &r);
	c->openmin = (r || a->openmin || b->openmax);
	if (b->min > 0) {
		c->max = div32(a->max, b->min, &r);
		if (r) {
			c->max++;
			c->openmax = 1;
		} else
			c->openmax = (a->openmax || b->openmin);
	} else {
		c->max = UINT_MAX;
		c->openmax = 0;
	}
	c->integer = 0;
}

/**
 * snd_interval_muldivk - refine the interval value
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 * @a: dividend 1
 * @b: dividend 2
 * @k: divisor (as integer)
 * @c: result
  *
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 * c = a * b / k
 *
 * Returns non-zero if the value is changed, zero if not changed.
 */
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void snd_interval_muldivk(const struct snd_interval *a, const struct snd_interval *b,
		      unsigned int k, struct snd_interval *c)
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{
	unsigned int r;
	if (a->empty || b->empty) {
		snd_interval_none(c);
		return;
	}
	c->empty = 0;
	c->min = muldiv32(a->min, b->min, k, &r);
	c->openmin = (r || a->openmin || b->openmin);
	c->max = muldiv32(a->max, b->max, k, &r);
	if (r) {
		c->max++;
		c->openmax = 1;
	} else
		c->openmax = (a->openmax || b->openmax);
	c->integer = 0;
}

/**
 * snd_interval_mulkdiv - refine the interval value
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 * @a: dividend 1
 * @k: dividend 2 (as integer)
 * @b: divisor
 * @c: result
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 *
 * c = a * k / b
 *
 * Returns non-zero if the value is changed, zero if not changed.
 */
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void snd_interval_mulkdiv(const struct snd_interval *a, unsigned int k,
		      const struct snd_interval *b, struct snd_interval *c)
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{
	unsigned int r;
	if (a->empty || b->empty) {
		snd_interval_none(c);
		return;
	}
	c->empty = 0;
	c->min = muldiv32(a->min, k, b->max, &r);
	c->openmin = (r || a->openmin || b->openmax);
	if (b->min > 0) {
		c->max = muldiv32(a->max, k, b->min, &r);
		if (r) {
			c->max++;
			c->openmax = 1;
		} else
			c->openmax = (a->openmax || b->openmin);
	} else {
		c->max = UINT_MAX;
		c->openmax = 0;
	}
	c->integer = 0;
}

/* ---- */


/**
 * snd_interval_ratnum - refine the interval value
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 * @i: interval to refine
 * @rats_count: number of ratnum_t 
 * @rats: ratnum_t array
 * @nump: pointer to store the resultant numerator
 * @denp: pointer to store the resultant denominator
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 *
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 * Return: Positive if the value is changed, zero if it's not changed, or a
 * negative error code.
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 */
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int snd_interval_ratnum(struct snd_interval *i,
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			unsigned int rats_count, const struct snd_ratnum *rats,
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			unsigned int *nump, unsigned int *denp)
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{
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	unsigned int best_num, best_den;
	int best_diff;
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	unsigned int k;
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	struct snd_interval t;
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	int err;
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	unsigned int result_num, result_den;
	int result_diff;
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	best_num = best_den = best_diff = 0;
	for (k = 0; k < rats_count; ++k) {
		unsigned int num = rats[k].num;
		unsigned int den;
		unsigned int q = i->min;
		int diff;
		if (q == 0)
			q = 1;
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		den = div_up(num, q);
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		if (den < rats[k].den_min)
			continue;
		if (den > rats[k].den_max)
			den = rats[k].den_max;
		else {
			unsigned int r;
			r = (den - rats[k].den_min) % rats[k].den_step;
			if (r != 0)
				den -= r;
		}
		diff = num - q * den;
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		if (diff < 0)
			diff = -diff;
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		if (best_num == 0 ||
		    diff * best_den < best_diff * den) {
			best_diff = diff;
			best_den = den;
			best_num = num;
		}
	}
	if (best_den == 0) {
		i->empty = 1;
		return -EINVAL;
	}
	t.min = div_down(best_num, best_den);
	t.openmin = !!(best_num % best_den);
	
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	result_num = best_num;
	result_diff = best_diff;
	result_den = best_den;
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	best_num = best_den = best_diff = 0;
	for (k = 0; k < rats_count; ++k) {
		unsigned int num = rats[k].num;
		unsigned int den;
		unsigned int q = i->max;
		int diff;
		if (q == 0) {
			i->empty = 1;
			return -EINVAL;
		}
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		den = div_down(num, q);
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		if (den > rats[k].den_max)
			continue;
		if (den < rats[k].den_min)
			den = rats[k].den_min;
		else {
			unsigned int r;
			r = (den - rats[k].den_min) % rats[k].den_step;
			if (r != 0)
				den += rats[k].den_step - r;
		}
		diff = q * den - num;
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		if (diff < 0)
			diff = -diff;
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		if (best_num == 0 ||
		    diff * best_den < best_diff * den) {
			best_diff = diff;
			best_den = den;
			best_num = num;
		}
	}
	if (best_den == 0) {
		i->empty = 1;
		return -EINVAL;
	}
	t.max = div_up(best_num, best_den);
	t.openmax = !!(best_num % best_den);
	t.integer = 0;
	err = snd_interval_refine(i, &t);
	if (err < 0)
		return err;

	if (snd_interval_single(i)) {
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		if (best_diff * result_den < result_diff * best_den) {
			result_num = best_num;
			result_den = best_den;
		}
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		if (nump)
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			*nump = result_num;
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		if (denp)
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			*denp = result_den;
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	}
	return err;
}

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EXPORT_SYMBOL(snd_interval_ratnum);

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/**
 * snd_interval_ratden - refine the interval value
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 * @i: interval to refine
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 * @rats_count: number of struct ratden
 * @rats: struct ratden array
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 * @nump: pointer to store the resultant numerator
 * @denp: pointer to store the resultant denominator
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 *
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 * Return: Positive if the value is changed, zero if it's not changed, or a
 * negative error code.
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 */
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static int snd_interval_ratden(struct snd_interval *i,
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			       unsigned int rats_count,
			       const struct snd_ratden *rats,
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			       unsigned int *nump, unsigned int *denp)
{
	unsigned int best_num, best_diff, best_den;
	unsigned int k;
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	struct snd_interval t;
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	int err;

	best_num = best_den = best_diff = 0;
	for (k = 0; k < rats_count; ++k) {
		unsigned int num;
		unsigned int den = rats[k].den;
		unsigned int q = i->min;
		int diff;
		num = mul(q, den);
		if (num > rats[k].num_max)
			continue;
		if (num < rats[k].num_min)
			num = rats[k].num_max;
		else {
			unsigned int r;
			r = (num - rats[k].num_min) % rats[k].num_step;
			if (r != 0)
				num += rats[k].num_step - r;
		}
		diff = num - q * den;
		if (best_num == 0 ||
		    diff * best_den < best_diff * den) {
			best_diff = diff;
			best_den = den;
			best_num = num;
		}
	}
	if (best_den == 0) {
		i->empty = 1;
		return -EINVAL;
	}
	t.min = div_down(best_num, best_den);
	t.openmin = !!(best_num % best_den);
	
	best_num = best_den = best_diff = 0;
	for (k = 0; k < rats_count; ++k) {
		unsigned int num;
		unsigned int den = rats[k].den;
		unsigned int q = i->max;
		int diff;
		num = mul(q, den);
		if (num < rats[k].num_min)
			continue;
		if (num > rats[k].num_max)
			num = rats[k].num_max;
		else {
			unsigned int r;
			r = (num - rats[k].num_min) % rats[k].num_step;
			if (r != 0)
				num -= r;
		}
		diff = q * den - num;
		if (best_num == 0 ||
		    diff * best_den < best_diff * den) {
			best_diff = diff;
			best_den = den;
			best_num = num;
		}
	}
	if (best_den == 0) {
		i->empty = 1;
		return -EINVAL;
	}
	t.max = div_up(best_num, best_den);
	t.openmax = !!(best_num % best_den);
	t.integer = 0;
	err = snd_interval_refine(i, &t);
	if (err < 0)
		return err;

	if (snd_interval_single(i)) {
		if (nump)
			*nump = best_num;
		if (denp)
			*denp = best_den;
	}
	return err;
}

/**
 * snd_interval_list - refine the interval value from the list
 * @i: the interval value to refine
 * @count: the number of elements in the list
 * @list: the value list
 * @mask: the bit-mask to evaluate
 *
 * Refines the interval value from the list.
 * When mask is non-zero, only the elements corresponding to bit 1 are
 * evaluated.
 *
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 * Return: Positive if the value is changed, zero if it's not changed, or a
 * negative error code.
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int snd_interval_list(struct snd_interval *i, unsigned int count,
		      const unsigned int *list, unsigned int mask)
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{
        unsigned int k;
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	struct snd_interval list_range;
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	if (!count) {
		i->empty = 1;
		return -EINVAL;
	}
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	snd_interval_any(&list_range);
	list_range.min = UINT_MAX;
	list_range.max = 0;
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        for (k = 0; k < count; k++) {
		if (mask && !(mask & (1 << k)))
			continue;
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		if (!snd_interval_test(i, list[k]))
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			continue;
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		list_range.min = min(list_range.min, list[k]);
		list_range.max = max(list_range.max, list[k]);
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        }
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	return snd_interval_refine(i, &list_range);
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}

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EXPORT_SYMBOL(snd_interval_list);

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/**
 * snd_interval_ranges - refine the interval value from the list of ranges
 * @i: the interval value to refine
 * @count: the number of elements in the list of ranges
 * @ranges: the ranges list
 * @mask: the bit-mask to evaluate
 *
 * Refines the interval value from the list of ranges.
 * When mask is non-zero, only the elements corresponding to bit 1 are
 * evaluated.
 *
 * Return: Positive if the value is changed, zero if it's not changed, or a
 * negative error code.
 */
int snd_interval_ranges(struct snd_interval *i, unsigned int count,
			const struct snd_interval *ranges, unsigned int mask)
{
	unsigned int k;
	struct snd_interval range_union;
	struct snd_interval range;

	if (!count) {
		snd_interval_none(i);
		return -EINVAL;
	}
	snd_interval_any(&range_union);
	range_union.min = UINT_MAX;
	range_union.max = 0;
	for (k = 0; k < count; k++) {
		if (mask && !(mask & (1 << k)))
			continue;
		snd_interval_copy(&range, &ranges[k]);
		if (snd_interval_refine(&range, i) < 0)
			continue;
		if (snd_interval_empty(&range))
			continue;

		if (range.min < range_union.min) {
			range_union.min = range.min;
			range_union.openmin = 1;
		}
		if (range.min == range_union.min && !range.openmin)
			range_union.openmin = 0;
		if (range.max > range_union.max) {
			range_union.max = range.max;
			range_union.openmax = 1;
		}
		if (range.max == range_union.max && !range.openmax)
			range_union.openmax = 0;
	}
	return snd_interval_refine(i, &range_union);
}
EXPORT_SYMBOL(snd_interval_ranges);

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static int snd_interval_step(struct snd_interval *i, unsigned int step)
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{
	unsigned int n;
	int changed = 0;
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	n = i->min % step;
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	if (n != 0 || i->openmin) {
		i->min += step - n;
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		i->openmin = 0;
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		changed = 1;
	}
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	n = i->max % step;
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	if (n != 0 || i->openmax) {
		i->max -= n;
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		i->openmax = 0;
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		changed = 1;
	}
	if (snd_interval_checkempty(i)) {
		i->empty = 1;
		return -EINVAL;
	}
	return changed;
}

/* Info constraints helpers */

/**
 * snd_pcm_hw_rule_add - add the hw-constraint rule
 * @runtime: the pcm runtime instance
 * @cond: condition bits
 * @var: the variable to evaluate
 * @func: the evaluation function
 * @private: the private data pointer passed to function
 * @dep: the dependent variables
 *
1119
 * Return: Zero if successful, or a negative error code on failure.
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 */
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int snd_pcm_hw_rule_add(struct snd_pcm_runtime *runtime, unsigned int cond,
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			int var,
			snd_pcm_hw_rule_func_t func, void *private,
			int dep, ...)
{
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	struct snd_pcm_hw_constraints *constrs = &runtime->hw_constraints;
	struct snd_pcm_hw_rule *c;
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	unsigned int k;
	va_list args;
	va_start(args, dep);
	if (constrs->rules_num >= constrs->rules_all) {
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		struct snd_pcm_hw_rule *new;
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		unsigned int new_rules = constrs->rules_all + 16;
		new = kcalloc(new_rules, sizeof(*c), GFP_KERNEL);
1135 1136
		if (!new) {
			va_end(args);
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			return -ENOMEM;
1138
		}
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		if (constrs->rules) {
			memcpy(new, constrs->rules,
			       constrs->rules_num * sizeof(*c));
			kfree(constrs->rules);
		}
		constrs->rules = new;
		constrs->rules_all = new_rules;
	}
	c = &constrs->rules[constrs->rules_num];
	c->cond = cond;
	c->func = func;
	c->var = var;
	c->private = private;
	k = 0;
	while (1) {
1154 1155
		if (snd_BUG_ON(k >= ARRAY_SIZE(c->deps))) {
			va_end(args);
1156
			return -EINVAL;
1157
		}
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		c->deps[k++] = dep;
		if (dep < 0)
			break;
		dep = va_arg(args, int);
	}
	constrs->rules_num++;
	va_end(args);
	return 0;
1166
}
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1168 1169
EXPORT_SYMBOL(snd_pcm_hw_rule_add);

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/**
1171
 * snd_pcm_hw_constraint_mask - apply the given bitmap mask constraint
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 * @runtime: PCM runtime instance
 * @var: hw_params variable to apply the mask
 * @mask: the bitmap mask
 *
1176
 * Apply the constraint of the given bitmap mask to a 32-bit mask parameter.
1177 1178
 *
 * Return: Zero if successful, or a negative error code on failure.
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 */
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int snd_pcm_hw_constraint_mask(struct snd_pcm_runtime *runtime, snd_pcm_hw_param_t var,
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			       u_int32_t mask)
{
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	struct snd_pcm_hw_constraints *constrs = &runtime->hw_constraints;
	struct snd_mask *maskp = constrs_mask(constrs, var);
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	*maskp->bits &= mask;
	memset(maskp->bits + 1, 0, (SNDRV_MASK_MAX-32) / 8); /* clear rest */
	if (*maskp->bits == 0)
		return -EINVAL;
	return 0;
}

/**
1193
 * snd_pcm_hw_constraint_mask64 - apply the given bitmap mask constraint
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 * @runtime: PCM runtime instance
 * @var: hw_params variable to apply the mask
 * @mask: the 64bit bitmap mask
 *
1198
 * Apply the constraint of the given bitmap mask to a 64-bit mask parameter.
1199 1200
 *
 * Return: Zero if successful, or a negative error code on failure.
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 */
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int snd_pcm_hw_constraint_mask64(struct snd_pcm_runtime *runtime, snd_pcm_hw_param_t var,
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				 u_int64_t mask)
{
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	struct snd_pcm_hw_constraints *constrs = &runtime->hw_constraints;
	struct snd_mask *maskp = constrs_mask(constrs, var);
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	maskp->bits[0] &= (u_int32_t)mask;
	maskp->bits[1] &= (u_int32_t)(mask >> 32);
	memset(maskp->bits + 2, 0, (SNDRV_MASK_MAX-64) / 8); /* clear rest */
	if (! maskp->bits[0] && ! maskp->bits[1])
		return -EINVAL;
	return 0;
}
1214
EXPORT_SYMBOL(snd_pcm_hw_constraint_mask64);
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/**
1217
 * snd_pcm_hw_constraint_integer - apply an integer constraint to an interval
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 * @runtime: PCM runtime instance
 * @var: hw_params variable to apply the integer constraint
 *
 * Apply the constraint of integer to an interval parameter.
1222 1223 1224
 *
 * Return: Positive if the value is changed, zero if it's not changed, or a
 * negative error code.
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 */
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int snd_pcm_hw_constraint_integer(struct snd_pcm_runtime *runtime, snd_pcm_hw_param_t var)
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{
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	struct snd_pcm_hw_constraints *constrs = &runtime->hw_constraints;
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	return snd_interval_setinteger(constrs_interval(constrs, var));
}

1232 1233
EXPORT_SYMBOL(snd_pcm_hw_constraint_integer);

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/**
1235
 * snd_pcm_hw_constraint_minmax - apply a min/max range constraint to an interval
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 * @runtime: PCM runtime instance
 * @var: hw_params variable to apply the range
 * @min: the minimal value
 * @max: the maximal value
 * 
 * Apply the min/max range constraint to an interval parameter.
1242 1243 1244
 *
 * Return: Positive if the value is changed, zero if it's not changed, or a
 * negative error code.
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 */
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int snd_pcm_hw_constraint_minmax(struct snd_pcm_runtime *runtime, snd_pcm_hw_param_t var,
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				 unsigned int min, unsigned int max)
{
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	struct snd_pcm_hw_constraints *constrs = &runtime->hw_constraints;
	struct snd_interval t;
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	t.min = min;
	t.max = max;
	t.openmin = t.openmax = 0;
	t.integer = 0;
	return snd_interval_refine(constrs_interval(constrs, var), &t);
}

1258 1259
EXPORT_SYMBOL(snd_pcm_hw_constraint_minmax);

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static int snd_pcm_hw_rule_list(struct snd_pcm_hw_params *params,
				struct snd_pcm_hw_rule *rule)
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{
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	struct snd_pcm_hw_constraint_list *list = rule->private;
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	return snd_interval_list(hw_param_interval(params, rule->var), list->count, list->list, list->mask);
}		


/**
1269
 * snd_pcm_hw_constraint_list - apply a list of constraints to a parameter
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 * @runtime: PCM runtime instance
 * @cond: condition bits
 * @var: hw_params variable to apply the list constraint
 * @l: list
 * 
 * Apply the list of constraints to an interval parameter.
1276 1277
 *
 * Return: Zero if successful, or a negative error code on failure.
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 */
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int snd_pcm_hw_constraint_list(struct snd_pcm_runtime *runtime,
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			       unsigned int cond,
			       snd_pcm_hw_param_t var,
1282
			       const struct snd_pcm_hw_constraint_list *l)
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{
	return snd_pcm_hw_rule_add(runtime, cond, var,
1285
				   snd_pcm_hw_rule_list, (void *)l,
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				   var, -1);
}

1289 1290
EXPORT_SYMBOL(snd_pcm_hw_constraint_list);

1291 1292 1293 1294 1295 1296 1297 1298 1299 1300 1301 1302 1303 1304 1305 1306 1307 1308 1309 1310 1311 1312 1313 1314 1315 1316 1317 1318 1319 1320 1321
static int snd_pcm_hw_rule_ranges(struct snd_pcm_hw_params *params,
				  struct snd_pcm_hw_rule *rule)
{
	struct snd_pcm_hw_constraint_ranges *r = rule->private;
	return snd_interval_ranges(hw_param_interval(params, rule->var),
				   r->count, r->ranges, r->mask);
}


/**
 * snd_pcm_hw_constraint_ranges - apply list of range constraints to a parameter
 * @runtime: PCM runtime instance
 * @cond: condition bits
 * @var: hw_params variable to apply the list of range constraints
 * @r: ranges
 *
 * Apply the list of range constraints to an interval parameter.
 *
 * Return: Zero if successful, or a negative error code on failure.
 */
int snd_pcm_hw_constraint_ranges(struct snd_pcm_runtime *runtime,
				 unsigned int cond,
				 snd_pcm_hw_param_t var,
				 const struct snd_pcm_hw_constraint_ranges *r)
{
	return snd_pcm_hw_rule_add(runtime, cond, var,
				   snd_pcm_hw_rule_ranges, (void *)r,
				   var, -1);
}
EXPORT_SYMBOL(snd_pcm_hw_constraint_ranges);

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static int snd_pcm_hw_rule_ratnums(struct snd_pcm_hw_params *params,
				   struct snd_pcm_hw_rule *rule)
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{
1325
	const struct snd_pcm_hw_constraint_ratnums *r = rule->private;
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	unsigned int num = 0, den = 0;
	int err;
	err = snd_interval_ratnum(hw_param_interval(params, rule->var),
				  r->nrats, r->rats, &num, &den);
	if (err >= 0 && den && rule->var == SNDRV_PCM_HW_PARAM_RATE) {
		params->rate_num = num;
		params->rate_den = den;
	}
	return err;
}

/**
1338
 * snd_pcm_hw_constraint_ratnums - apply ratnums constraint to a parameter
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 * @runtime: PCM runtime instance
 * @cond: condition bits
 * @var: hw_params variable to apply the ratnums constraint
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 * @r: struct snd_ratnums constriants
1343 1344
 *
 * Return: Zero if successful, or a negative error code on failure.
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 */
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int snd_pcm_hw_constraint_ratnums(struct snd_pcm_runtime *runtime, 
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				  unsigned int cond,
				  snd_pcm_hw_param_t var,
1349
				  const struct snd_pcm_hw_constraint_ratnums *r)
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{
	return snd_pcm_hw_rule_add(runtime, cond, var,
1352
				   snd_pcm_hw_rule_ratnums, (void *)r,
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				   var, -1);
}

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EXPORT_SYMBOL(snd_pcm_hw_constraint_ratnums);

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static int snd_pcm_hw_rule_ratdens(struct snd_pcm_hw_params *params,
				   struct snd_pcm_hw_rule *rule)
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{
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	const struct snd_pcm_hw_constraint_ratdens *r = rule->private;
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	unsigned int num = 0, den = 0;
	int err = snd_interval_ratden(hw_param_interval(params, rule->var),
				  r->nrats, r->rats, &num, &den);
	if (err >= 0 && den && rule->var == SNDRV_PCM_HW_PARAM_RATE) {
		params->rate_num = num;
		params->rate_den = den;
	}
	return err;
}

/**
1373
 * snd_pcm_hw_constraint_ratdens - apply ratdens constraint to a parameter
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 * @runtime: PCM runtime instance
 * @cond: condition bits
 * @var: hw_params variable to apply the ratdens constraint
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 * @r: struct snd_ratdens constriants
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 *
 * Return: Zero if successful, or a negative error code on failure.
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 */
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int snd_pcm_hw_constraint_ratdens(struct snd_pcm_runtime *runtime, 
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				  unsigned int cond,
				  snd_pcm_hw_param_t var,
1384
				  const struct snd_pcm_hw_constraint_ratdens *r)
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{
	return snd_pcm_hw_rule_add(runtime, cond, var,
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				   snd_pcm_hw_rule_ratdens, (void *)r,
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				   var, -1);
}

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EXPORT_SYMBOL(snd_pcm_hw_constraint_ratdens);

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static int snd_pcm_hw_rule_msbits(struct snd_pcm_hw_params *params,
				  struct snd_pcm_hw_rule *rule)
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{
	unsigned int l = (unsigned long) rule->private;
	int width = l & 0xffff;
	unsigned int msbits = l >> 16;
1399 1400
	const struct snd_interval *i =
		hw_param_interval_c(params, SNDRV_PCM_HW_PARAM_SAMPLE_BITS);
1401 1402 1403 1404 1405 1406

	if (!snd_interval_single(i))
		return 0;

	if ((snd_interval_value(i) == width) ||
	    (width == 0 && snd_interval_value(i) > msbits))
1407
		params->msbits = min_not_zero(params->msbits, msbits);
1408

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	return 0;
}

/**
1413
 * snd_pcm_hw_constraint_msbits - add a hw constraint msbits rule
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 * @runtime: PCM runtime instance
 * @cond: condition bits
 * @width: sample bits width
 * @msbits: msbits width
1418
 *
1419 1420 1421 1422 1423
 * This constraint will set the number of most significant bits (msbits) if a
 * sample format with the specified width has been select. If width is set to 0
 * the msbits will be set for any sample format with a width larger than the
 * specified msbits.
 *
1424
 * Return: Zero if successful, or a negative error code on failure.
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 */
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int snd_pcm_hw_constraint_msbits(struct snd_pcm_runtime *runtime, 
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				 unsigned int cond,
				 unsigned int width,
				 unsigned int msbits)
{
	unsigned long l = (msbits << 16) | width;
	return snd_pcm_hw_rule_add(runtime, cond, -1,
				    snd_pcm_hw_rule_msbits,
				    (void*) l,
				    SNDRV_PCM_HW_PARAM_SAMPLE_BITS, -1);
}

1438 1439
EXPORT_SYMBOL(snd_pcm_hw_constraint_msbits);

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static int snd_pcm_hw_rule_step(struct snd_pcm_hw_params *params,
				struct snd_pcm_hw_rule *rule)
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{
	unsigned long step = (unsigned long) rule->private;
1444
	return snd_interval_step(hw_param_interval(params, rule->var), step);
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}

/**
1448
 * snd_pcm_hw_constraint_step - add a hw constraint step rule
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 * @runtime: PCM runtime instance
 * @cond: condition bits
 * @var: hw_params variable to apply the step constraint
 * @step: step size
1453 1454
 *
 * Return: Zero if successful, or a negative error code on failure.
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 */
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int snd_pcm_hw_constraint_step(struct snd_pcm_runtime *runtime,
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			       unsigned int cond,
			       snd_pcm_hw_param_t var,
			       unsigned long step)
{
	return snd_pcm_hw_rule_add(runtime, cond, var, 
				   snd_pcm_hw_rule_step, (void *) step,
				   var, -1);
}

1466 1467
EXPORT_SYMBOL(snd_pcm_hw_constraint_step);

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static int snd_pcm_hw_rule_pow2(struct snd_pcm_hw_params *params, struct snd_pcm_hw_rule *rule)
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{
1470
	static unsigned int pow2_sizes[] = {
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		1<<0, 1<<1, 1<<2, 1<<3, 1<<4, 1<<5, 1<<6, 1<<7,
		1<<8, 1<<9, 1<<10, 1<<11, 1<<12, 1<<13, 1<<14, 1<<15,
		1<<16, 1<<17, 1<<18, 1<<19, 1<<20, 1<<21, 1<<22, 1<<23,
		1<<24, 1<<25, 1<<26, 1<<27, 1<<28, 1<<29, 1<<30
	};
	return snd_interval_list(hw_param_interval(params, rule->var),
				 ARRAY_SIZE(pow2_sizes), pow2_sizes, 0);
}		

/**
1481
 * snd_pcm_hw_constraint_pow2 - add a hw constraint power-of-2 rule
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 * @runtime: PCM runtime instance
 * @cond: condition bits
 * @var: hw_params variable to apply the power-of-2 constraint
1485 1486
 *
 * Return: Zero if successful, or a negative error code on failure.
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 */
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int snd_pcm_hw_constraint_pow2(struct snd_pcm_runtime *runtime,
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			       unsigned int cond,
			       snd_pcm_hw_param_t var)
{
	return snd_pcm_hw_rule_add(runtime, cond, var, 
				   snd_pcm_hw_rule_pow2, NULL,
				   var, -1);
}

1497 1498
EXPORT_SYMBOL(snd_pcm_hw_constraint_pow2);

1499 1500 1501 1502 1503 1504 1505 1506 1507 1508 1509 1510 1511 1512
static int snd_pcm_hw_rule_noresample_func(struct snd_pcm_hw_params *params,
					   struct snd_pcm_hw_rule *rule)
{
	unsigned int base_rate = (unsigned int)(uintptr_t)rule->private;
	struct snd_interval *rate;

	rate = hw_param_interval(params, SNDRV_PCM_HW_PARAM_RATE);
	return snd_interval_list(rate, 1, &base_rate, 0);
}

/**
 * snd_pcm_hw_rule_noresample - add a rule to allow disabling hw resampling
 * @runtime: PCM runtime instance
 * @base_rate: the rate at which the hardware does not resample
1513 1514
 *
 * Return: Zero if successful, or a negative error code on failure.
1515 1516 1517 1518 1519 1520 1521 1522 1523 1524 1525 1526
 */
int snd_pcm_hw_rule_noresample(struct snd_pcm_runtime *runtime,
			       unsigned int base_rate)
{
	return snd_pcm_hw_rule_add(runtime, SNDRV_PCM_HW_PARAMS_NORESAMPLE,
				   SNDRV_PCM_HW_PARAM_RATE,
				   snd_pcm_hw_rule_noresample_func,
				   (void *)(uintptr_t)base_rate,
				   SNDRV_PCM_HW_PARAM_RATE, -1);
}
EXPORT_SYMBOL(snd_pcm_hw_rule_noresample);

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static void _snd_pcm_hw_param_any(struct snd_pcm_hw_params *params,
1528
				  snd_pcm_hw_param_t var)
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{
	if (hw_is_mask(var)) {
		snd_mask_any(hw_param_mask(params, var));
		params->cmask |= 1 << var;
		params->rmask |= 1 << var;
		return;
	}
	if (hw_is_interval(var)) {
		snd_interval_any(hw_param_interval(params, var));
		params->cmask |= 1 << var;
		params->rmask |= 1 << var;
		return;
	}
	snd_BUG();
}

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void _snd_pcm_hw_params_any(struct snd_pcm_hw_params *params)
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{
	unsigned int k;
	memset(params, 0, sizeof(*params));
	for (k = SNDRV_PCM_HW_PARAM_FIRST_MASK; k <= SNDRV_PCM_HW_PARAM_LAST_MASK; k++)
		_snd_pcm_hw_param_any(params, k);
	for (k = SNDRV_PCM_HW_PARAM_FIRST_INTERVAL; k <= SNDRV_PCM_HW_PARAM_LAST_INTERVAL; k++)
		_snd_pcm_hw_param_any(params, k);
	params->info = ~0U;
}

1556
EXPORT_SYMBOL(_snd_pcm_hw_params_any);
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/**
1559
 * snd_pcm_hw_param_value - return @params field @var value
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 * @params: the hw_params instance
 * @var: parameter to retrieve
1562
 * @dir: pointer to the direction (-1,0,1) or %NULL
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 *
1564 1565
 * Return: The value for field @var if it's fixed in configuration space
 * defined by @params. -%EINVAL otherwise.
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 */
1567 1568
int snd_pcm_hw_param_value(const struct snd_pcm_hw_params *params,
			   snd_pcm_hw_param_t var, int *dir)
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{
	if (hw_is_mask(var)) {
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		const struct snd_mask *mask = hw_param_mask_c(params, var);
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		if (!snd_mask_single(mask))
			return -EINVAL;
		if (dir)
			*dir = 0;
		return snd_mask_value(mask);
	}
	if (hw_is_interval(var)) {
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		const struct snd_interval *i = hw_param_interval_c(params, var);
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		if (!snd_interval_single(i))
			return -EINVAL;
		if (dir)
			*dir = i->openmin;
		return snd_interval_value(i);
	}
	return -EINVAL;
}

1589
EXPORT_SYMBOL(snd_pcm_hw_param_value);
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void _snd_pcm_hw_param_setempty(struct snd_pcm_hw_params *params,
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				snd_pcm_hw_param_t var)
{
	if (hw_is_mask(var)) {
		snd_mask_none(hw_param_mask(params, var));
		params->cmask |= 1 << var;
		params->rmask |= 1 << var;
	} else if (hw_is_interval(var)) {
		snd_interval_none(hw_param_interval(params, var));
		params->cmask |= 1 << var;
		params->rmask |= 1 << var;
	} else {
		snd_BUG();
	}
}

1607
EXPORT_SYMBOL(_snd_pcm_hw_param_setempty);
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static int _snd_pcm_hw_param_first(struct snd_pcm_hw_params *params,
1610
				   snd_pcm_hw_param_t var)
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{
	int changed;
	if (hw_is_mask(var))
		changed = snd_mask_refine_first(hw_param_mask(params, var));
	else if (hw_is_interval(var))
		changed = snd_interval_refine_first(hw_param_interval(params, var));
1617
	else
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		return -EINVAL;
	if (changed) {
		params->cmask |= 1 << var;
		params->rmask |= 1 << var;
	}
	return changed;
}


/**
1628
 * snd_pcm_hw_param_first - refine config space and return minimum value
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 * @pcm: PCM instance
 * @params: the hw_params instance
 * @var: parameter to retrieve
1632
 * @dir: pointer to the direction (-1,0,1) or %NULL
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 *
1634
 * Inside configuration space defined by @params remove from @var all
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 * values > minimum. Reduce configuration space accordingly.
1636 1637
 *
 * Return: The minimum, or a negative error code on failure.
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 */
1639 1640 1641
int snd_pcm_hw_param_first(struct snd_pcm_substream *pcm, 
			   struct snd_pcm_hw_params *params, 
			   snd_pcm_hw_param_t var, int *dir)
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{
	int changed = _snd_pcm_hw_param_first(params, var);
	if (changed < 0)
		return changed;
	if (params->rmask) {
		int err = snd_pcm_hw_refine(pcm, params);
1648 1649
		if (snd_BUG_ON(err < 0))
			return err;
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	}
	return snd_pcm_hw_param_value(params, var, dir);
}

1654 1655
EXPORT_SYMBOL(snd_pcm_hw_param_first);

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static int _snd_pcm_hw_param_last(struct snd_pcm_hw_params *params,
1657
				  snd_pcm_hw_param_t var)
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{
	int changed;
	if (hw_is_mask(var))
		changed = snd_mask_refine_last(hw_param_mask(params, var));
	else if (hw_is_interval(var))
		changed = snd_interval_refine_last(hw_param_interval(params, var));
1664
	else
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		return -EINVAL;
	if (changed) {
		params->cmask |= 1 << var;
		params->rmask |= 1 << var;
	}
	return changed;
}


/**
1675
 * snd_pcm_hw_param_last - refine config space and return maximum value
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 * @pcm: PCM instance
 * @params: the hw_params instance
 * @var: parameter to retrieve
1679
 * @dir: pointer to the direction (-1,0,1) or %NULL
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 *
1681
 * Inside configuration space defined by @params remove from @var all
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 * values < maximum. Reduce configuration space accordingly.
1683 1684
 *
 * Return: The maximum, or a negative error code on failure.
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 */
1686 1687 1688
int snd_pcm_hw_param_last(struct snd_pcm_substream *pcm, 
			  struct snd_pcm_hw_params *params,
			  snd_pcm_hw_param_t var, int *dir)
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{
	int changed = _snd_pcm_hw_param_last(params, var);
	if (changed < 0)
		return changed;
	if (params->rmask) {
		int err = snd_pcm_hw_refine(pcm, params);
1695 1696
		if (snd_BUG_ON(err < 0))
			return err;
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	}
	return snd_pcm_hw_param_value(params, var, dir);
}

1701
EXPORT_SYMBOL(snd_pcm_hw_param_last);
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static int snd_pcm_lib_ioctl_reset(struct snd_pcm_substream *substream,
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				   void *arg)
{
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	struct snd_pcm_runtime *runtime = substream->runtime;
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	unsigned long flags;
	snd_pcm_stream_lock_irqsave(substream, flags);
	if (snd_pcm_running(substream) &&
	    snd_pcm_update_hw_ptr(substream) >= 0)
		runtime->status->hw_ptr %= runtime->buffer_size;
1712
	else {
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		runtime->status->hw_ptr = 0;
1714 1715
		runtime->hw_ptr_wrap = 0;
	}
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	snd_pcm_stream_unlock_irqrestore(substream, flags);
	return 0;
}

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static int snd_pcm_lib_ioctl_channel_info(struct snd_pcm_substream *substream,
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					  void *arg)
{
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	struct snd_pcm_channel_info *info = arg;
	struct snd_pcm_runtime *runtime = substream->runtime;
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	int width;
	if (!(runtime->info & SNDRV_PCM_INFO_MMAP)) {
		info->offset = -1;
		return 0;
	}
	width = snd_pcm_format_physical_width(runtime->format);
	if (width < 0)
		return width;
	info->offset = 0;
	switch (runtime->access) {
	case SNDRV_PCM_ACCESS_MMAP_INTERLEAVED:
	case SNDRV_PCM_ACCESS_RW_INTERLEAVED:
		info->first = info->channel * width;
		info->step = runtime->channels * width;
		break;
	case SNDRV_PCM_ACCESS_MMAP_NONINTERLEAVED:
	case SNDRV_PCM_ACCESS_RW_NONINTERLEAVED:
	{
		size_t size = runtime->dma_bytes / runtime->channels;
		info->first = info->channel * size * 8;
		info->step = width;
		break;
	}
	default:
		snd_BUG();
		break;
	}
	return 0;
}

1755 1756 1757 1758 1759
static int snd_pcm_lib_ioctl_fifo_size(struct snd_pcm_substream *substream,
				       void *arg)
{
	struct snd_pcm_hw_params *params = arg;
	snd_pcm_format_t format;
1760 1761
	int channels;
	ssize_t frame_size;
1762 1763 1764 1765 1766

	params->fifo_size = substream->runtime->hw.fifo_size;
	if (!(substream->runtime->hw.info & SNDRV_PCM_INFO_FIFO_IN_FRAMES)) {
		format = params_format(params);
		channels = params_channels(params);
1767 1768 1769
		frame_size = snd_pcm_format_size(format, channels);
		if (frame_size > 0)
			params->fifo_size /= (unsigned)frame_size;
1770 1771 1772 1773
	}
	return 0;
}

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/**
 * snd_pcm_lib_ioctl - a generic PCM ioctl callback
 * @substream: the pcm substream instance
 * @cmd: ioctl command
 * @arg: ioctl argument
 *
 * Processes the generic ioctl commands for PCM.
 * Can be passed as the ioctl callback for PCM ops.
 *
1783
 * Return: Zero if successful, or a negative error code on failure.
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 */
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int snd_pcm_lib_ioctl(struct snd_pcm_substream *substream,
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		      unsigned int cmd, void *arg)
{
	switch (cmd) {
	case SNDRV_PCM_IOCTL1_INFO:
		return 0;
	case SNDRV_PCM_IOCTL1_RESET:
		return snd_pcm_lib_ioctl_reset(substream, arg);
	case SNDRV_PCM_IOCTL1_CHANNEL_INFO:
		return snd_pcm_lib_ioctl_channel_info(substream, arg);
1795 1796
	case SNDRV_PCM_IOCTL1_FIFO_SIZE:
		return snd_pcm_lib_ioctl_fifo_size(substream, arg);
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	}
	return -ENXIO;
}

1801 1802
EXPORT_SYMBOL(snd_pcm_lib_ioctl);

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/**
 * snd_pcm_period_elapsed - update the pcm status for the next period
 * @substream: the pcm substream instance
 *
 * This function is called from the interrupt handler when the
 * PCM has processed the period size.  It will update the current
1809
 * pointer, wake up sleepers, etc.
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 *
 * Even if more than one periods have elapsed since the last call, you
 * have to call this only once.
 */
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void snd_pcm_period_elapsed(struct snd_pcm_substream *substream)
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{
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	struct snd_pcm_runtime *runtime;
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	unsigned long flags;

1819 1820
	if (PCM_RUNTIME_CHECK(substream))
		return;
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	runtime = substream->runtime;

	snd_pcm_stream_lock_irqsave(substream, flags);
	if (!snd_pcm_running(substream) ||
1825
	    snd_pcm_update_hw_ptr0(substream, 1) < 0)
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		goto _end;

1828
#ifdef CONFIG_SND_PCM_TIMER
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	if (substream->timer_running)
		snd_timer_interrupt(substream->timer, 1);
1831
#endif
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 _end:
	kill_fasync(&runtime->fasync, SIGIO, POLL_IN);
1834
	snd_pcm_stream_unlock_irqrestore(substream, flags);
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}

1837 1838
EXPORT_SYMBOL(snd_pcm_period_elapsed);

1839 1840 1841 1842 1843 1844
/*
 * Wait until avail_min data becomes available
 * Returns a negative error code if any error occurs during operation.
 * The available space is stored on availp.  When err = 0 and avail = 0
 * on the capture stream, it indicates the stream is in DRAINING state.
 */
1845
static int wait_for_avail(struct snd_pcm_substream *substream,
1846 1847 1848 1849 1850 1851 1852
			      snd_pcm_uframes_t *availp)
{
	struct snd_pcm_runtime *runtime = substream->runtime;
	int is_playback = substream->stream == SNDRV_PCM_STREAM_PLAYBACK;
	wait_queue_t wait;
	int err = 0;
	snd_pcm_uframes_t avail = 0;
1853 1854
	long wait_time, tout;

1855 1856 1857 1858
	init_waitqueue_entry(&wait, current);
	set_current_state(TASK_INTERRUPTIBLE);
	add_wait_queue(&runtime->tsleep, &wait);

1859 1860 1861 1862 1863 1864 1865 1866 1867 1868
	if (runtime->no_period_wakeup)
		wait_time = MAX_SCHEDULE_TIMEOUT;
	else {
		wait_time = 10;
		if (runtime->rate) {
			long t = runtime->period_size * 2 / runtime->rate;
			wait_time = max(t, wait_time);
		}
		wait_time = msecs_to_jiffies(wait_time * 1000);
	}
1869

1870 1871 1872 1873 1874
	for (;;) {
		if (signal_pending(current)) {
			err = -ERESTARTSYS;
			break;
		}
1875 1876 1877 1878 1879 1880 1881 1882 1883 1884 1885 1886 1887 1888

		/*
		 * We need to check if space became available already
		 * (and thus the wakeup happened already) first to close
		 * the race of space already having become available.
		 * This check must happen after been added to the waitqueue
		 * and having current state be INTERRUPTIBLE.
		 */
		if (is_playback)
			avail = snd_pcm_playback_avail(runtime);
		else
			avail = snd_pcm_capture_avail(runtime);
		if (avail >= runtime->twake)
			break;
1889
		snd_pcm_stream_unlock_irq(substream);
1890 1891 1892

		tout = schedule_timeout(wait_time);

1893
		snd_pcm_stream_lock_irq(substream);
1894
		set_current_state(TASK_INTERRUPTIBLE);
1895 1896 1897 1898 1899 1900 1901 1902 1903 1904 1905 1906 1907 1908 1909 1910 1911 1912
		switch (runtime->status->state) {
		case SNDRV_PCM_STATE_SUSPENDED:
			err = -ESTRPIPE;
			goto _endloop;
		case SNDRV_PCM_STATE_XRUN:
			err = -EPIPE;
			goto _endloop;
		case SNDRV_PCM_STATE_DRAINING:
			if (is_playback)
				err = -EPIPE;
			else 
				avail = 0; /* indicate draining */
			goto _endloop;
		case SNDRV_PCM_STATE_OPEN:
		case SNDRV_PCM_STATE_SETUP:
		case SNDRV_PCM_STATE_DISCONNECTED:
			err = -EBADFD;
			goto _endloop;
1913 1914
		case SNDRV_PCM_STATE_PAUSED:
			continue;
1915 1916
		}
		if (!tout) {
1917 1918 1919
			pcm_dbg(substream->pcm,
				"%s write error (DMA or IRQ trouble?)\n",
				is_playback ? "playback" : "capture");
1920 1921 1922 1923 1924
			err = -EIO;
			break;
		}
	}
 _endloop:
1925
	set_current_state(TASK_RUNNING);
1926
	remove_wait_queue(&runtime->tsleep, &wait);
1927 1928 1929 1930
	*availp = avail;
	return err;
}
	
1931 1932 1933
typedef int (*pcm_transfer_f)(struct snd_pcm_substream *substream,
			      int channel, unsigned long hwoff,
			      void *buf, unsigned long bytes);
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1935 1936 1937 1938 1939 1940 1941 1942 1943 1944 1945
typedef int (*pcm_copy_f)(struct snd_pcm_substream *, snd_pcm_uframes_t, void *,
			  snd_pcm_uframes_t, snd_pcm_uframes_t, pcm_transfer_f);

/* calculate the target DMA-buffer position to be written/read */
static void *get_dma_ptr(struct snd_pcm_runtime *runtime,
			   int channel, unsigned long hwoff)
{
	return runtime->dma_area + hwoff +
		channel * (runtime->dma_bytes / runtime->channels);
}

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/* default copy_user ops for write; used for both interleaved and non- modes */
static int default_write_copy(struct snd_pcm_substream *substream,
			      int channel, unsigned long hwoff,
			      void *buf, unsigned long bytes)
1950 1951
{
	if (copy_from_user(get_dma_ptr(substream->runtime, channel, hwoff),
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			   (void __user *)buf, bytes))
1953 1954 1955 1956
		return -EFAULT;
	return 0;
}

1957 1958 1959 1960 1961 1962 1963 1964 1965
/* default copy_kernel ops for write */
static int default_write_copy_kernel(struct snd_pcm_substream *substream,
				     int channel, unsigned long hwoff,
				     void *buf, unsigned long bytes)
{
	memcpy(get_dma_ptr(substream->runtime, channel, hwoff), buf, bytes);
	return 0;
}

1966 1967 1968 1969 1970 1971
/* fill silence instead of copy data; called as a transfer helper
 * from __snd_pcm_lib_write() or directly from noninterleaved_copy() when
 * a NULL buffer is passed
 */
static int fill_silence(struct snd_pcm_substream *substream, int channel,
			unsigned long hwoff, void *buf, unsigned long bytes)
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{
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	struct snd_pcm_runtime *runtime = substream->runtime;
1974 1975 1976 1977 1978 1979 1980 1981 1982 1983

	if (substream->stream != SNDRV_PCM_STREAM_PLAYBACK)
		return 0;
	if (substream->ops->fill_silence)
		return substream->ops->fill_silence(substream, channel,
						    hwoff, bytes);

	snd_pcm_format_set_silence(runtime->format,
				   get_dma_ptr(runtime, channel, hwoff),
				   bytes_to_samples(runtime, bytes));
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	return 0;
}
1986

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/* default copy_user ops for read; used for both interleaved and non- modes */
static int default_read_copy(struct snd_pcm_substream *substream,
			     int channel, unsigned long hwoff,
			     void *buf, unsigned long bytes)
{
	if (copy_to_user((void __user *)buf,
			 get_dma_ptr(substream->runtime, channel, hwoff),
			 bytes))
		return -EFAULT;
	return 0;
}

1999 2000 2001 2002 2003 2004 2005 2006 2007
/* default copy_kernel ops for read */
static int default_read_copy_kernel(struct snd_pcm_substream *substream,
				    int channel, unsigned long hwoff,
				    void *buf, unsigned long bytes)
{
	memcpy(buf, get_dma_ptr(substream->runtime, channel, hwoff), bytes);
	return 0;
}

2008 2009 2010 2011 2012 2013 2014 2015 2016 2017 2018 2019 2020 2021 2022 2023 2024 2025 2026 2027 2028 2029 2030 2031 2032 2033
/* call transfer function with the converted pointers and sizes;
 * for interleaved mode, it's one shot for all samples
 */
static int interleaved_copy(struct snd_pcm_substream *substream,
			    snd_pcm_uframes_t hwoff, void *data,
			    snd_pcm_uframes_t off,
			    snd_pcm_uframes_t frames,
			    pcm_transfer_f transfer)
{
	struct snd_pcm_runtime *runtime = substream->runtime;

	/* convert to bytes */
	hwoff = frames_to_bytes(runtime, hwoff);
	off = frames_to_bytes(runtime, off);
	frames = frames_to_bytes(runtime, frames);
	return transfer(substream, 0, hwoff, data + off, frames);
}

/* call transfer function with the converted pointers and sizes for each
 * non-interleaved channel; when buffer is NULL, silencing instead of copying
 */
static int noninterleaved_copy(struct snd_pcm_substream *substream,
			       snd_pcm_uframes_t hwoff, void *data,
			       snd_pcm_uframes_t off,
			       snd_pcm_uframes_t frames,
			       pcm_transfer_f transfer)
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{
	struct snd_pcm_runtime *runtime = substream->runtime;
	int channels = runtime->channels;
2037 2038 2039 2040 2041 2042 2043 2044 2045 2046 2047 2048 2049 2050 2051 2052 2053 2054
	void **bufs = data;
	int c, err;

	/* convert to bytes; note that it's not frames_to_bytes() here.
	 * in non-interleaved mode, we copy for each channel, thus
	 * each copy is n_samples bytes x channels = whole frames.
	 */
	off = samples_to_bytes(runtime, off);
	frames = samples_to_bytes(runtime, frames);
	hwoff = samples_to_bytes(runtime, hwoff);
	for (c = 0; c < channels; ++c, ++bufs) {
		if (!data || !*bufs)
			err = fill_silence(substream, c, hwoff, NULL, frames);
		else
			err = transfer(substream, c, hwoff, *bufs + off,
				       frames);
		if (err < 0)
			return err;
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2055 2056 2057 2058
	}
	return 0;
}

2059 2060 2061 2062 2063 2064 2065 2066 2067 2068 2069 2070 2071 2072 2073
/* fill silence on the given buffer position;
 * called from snd_pcm_playback_silence()
 */
static int fill_silence_frames(struct snd_pcm_substream *substream,
			       snd_pcm_uframes_t off, snd_pcm_uframes_t frames)
{
	if (substream->runtime->access == SNDRV_PCM_ACCESS_RW_INTERLEAVED ||
	    substream->runtime->access == SNDRV_PCM_ACCESS_MMAP_INTERLEAVED)
		return interleaved_copy(substream, off, NULL, 0, frames,
					fill_silence);
	else
		return noninterleaved_copy(substream, off, NULL, 0, frames,
					   fill_silence);
}

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/* sanity-check for read/write methods */
static int pcm_sanity_check(struct snd_pcm_substream *substream)
{
	struct snd_pcm_runtime *runtime;
	if (PCM_RUNTIME_CHECK(substream))
		return -ENXIO;
	runtime = substream->runtime;
	if (snd_BUG_ON(!substream->ops->copy_user && !runtime->dma_area))
		return -EINVAL;
	if (runtime->status->state == SNDRV_PCM_STATE_OPEN)
		return -EBADFD;
	return 0;
}
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2088 2089 2090 2091 2092 2093 2094 2095 2096 2097 2098 2099 2100 2101 2102 2103
static int pcm_accessible_state(struct snd_pcm_runtime *runtime)
{
	switch (runtime->status->state) {
	case SNDRV_PCM_STATE_PREPARED:
	case SNDRV_PCM_STATE_RUNNING:
	case SNDRV_PCM_STATE_PAUSED:
		return 0;
	case SNDRV_PCM_STATE_XRUN:
		return -EPIPE;
	case SNDRV_PCM_STATE_SUSPENDED:
		return -ESTRPIPE;
	default:
		return -EBADFD;
	}
}

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/* the common loop for read/write data */
snd_pcm_sframes_t __snd_pcm_lib_xfer(struct snd_pcm_substream *substream,
				     void *data, bool interleaved,
2107
				     snd_pcm_uframes_t size, bool in_kernel)
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{
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	struct snd_pcm_runtime *runtime = substream->runtime;
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	snd_pcm_uframes_t xfer = 0;
	snd_pcm_uframes_t offset = 0;
2112
	snd_pcm_uframes_t avail;
2113 2114
	pcm_copy_f writer;
	pcm_transfer_f transfer;
2115
	bool nonblock;
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	bool is_playback;
2117 2118 2119 2120 2121 2122
	int err;

	err = pcm_sanity_check(substream);
	if (err < 0)
		return err;

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	is_playback = substream->stream == SNDRV_PCM_STREAM_PLAYBACK;
2124 2125 2126 2127
	if (interleaved) {
		if (runtime->access != SNDRV_PCM_ACCESS_RW_INTERLEAVED &&
		    runtime->channels > 1)
			return -EINVAL;
2128
		writer = interleaved_copy;
2129 2130 2131
	} else {
		if (runtime->access != SNDRV_PCM_ACCESS_RW_NONINTERLEAVED)
			return -EINVAL;
2132 2133 2134 2135
		writer = noninterleaved_copy;
	}

	if (!data) {
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		if (is_playback)
			transfer = fill_silence;
		else
			return -EINVAL;
2140 2141 2142 2143 2144 2145
	} else if (in_kernel) {
		if (substream->ops->copy_kernel)
			transfer = substream->ops->copy_kernel;
		else
			transfer = is_playback ?
				default_write_copy_kernel : default_read_copy_kernel;
2146 2147 2148 2149
	} else {
		if (substream->ops->copy_user)
			transfer = (pcm_transfer_f)substream->ops->copy_user;
		else
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			transfer = is_playback ?
				default_write_copy : default_read_copy;
2152
	}
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	if (size == 0)
		return 0;

2157 2158
	nonblock = !!(substream->f_flags & O_NONBLOCK);

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	snd_pcm_stream_lock_irq(substream);
2160 2161
	err = pcm_accessible_state(runtime);
	if (err < 0)
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		goto _end_unlock;

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	if (!is_playback &&
	    runtime->status->state == SNDRV_PCM_STATE_PREPARED &&
2166 2167 2168 2169
	    size >= runtime->start_threshold) {
		err = snd_pcm_start(substream);
		if (err < 0)
			goto _end_unlock;
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	}

2172
	runtime->twake = runtime->control->avail_min ? : 1;
2173 2174
	if (runtime->status->state == SNDRV_PCM_STATE_RUNNING)
		snd_pcm_update_hw_ptr(substream);
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	if (is_playback)
		avail = snd_pcm_playback_avail(runtime);
	else
		avail = snd_pcm_capture_avail(runtime);
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	while (size > 0) {
		snd_pcm_uframes_t frames, appl_ptr, appl_ofs;
		snd_pcm_uframes_t cont;
2182
		if (!avail) {
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			if (!is_playback &&
			    runtime->status->state == SNDRV_PCM_STATE_DRAINING) {
2185
				snd_pcm_stop(substream, SNDRV_PCM_STATE_SETUP);
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				goto _end_unlock;
			}
			if (nonblock) {
				err = -EAGAIN;
				goto _end_unlock;
			}
2192 2193 2194
			runtime->twake = min_t(snd_pcm_uframes_t, size,
					runtime->control->avail_min ? : 1);
			err = wait_for_avail(substream, &avail);
2195
			if (err < 0)
2196
				goto _end_unlock;
2197 2198
			if (!avail)
				continue; /* draining */
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		}
		frames = size > avail ? avail : size;
		cont = runtime->buffer_size - runtime->control->appl_ptr % runtime->buffer_size;
		if (frames > cont)
			frames = cont;
2204
		if (snd_BUG_ON(!frames)) {
2205
			runtime->twake = 0;
2206 2207 2208
			snd_pcm_stream_unlock_irq(substream);
			return -EINVAL;
		}
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		appl_ptr = runtime->control->appl_ptr;
		appl_ofs = appl_ptr % runtime->buffer_size;
		snd_pcm_stream_unlock_irq(substream);
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		err = writer(substream, appl_ofs, data, offset, frames,
2213
			     transfer);
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		snd_pcm_stream_lock_irq(substream);
2215 2216
		if (err < 0)
			goto _end_unlock;
2217 2218
		err = pcm_accessible_state(runtime);
		if (err < 0)
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			goto _end_unlock;
		appl_ptr += frames;
		if (appl_ptr >= runtime->boundary)
			appl_ptr -= runtime->boundary;
		runtime->control->appl_ptr = appl_ptr;
		if (substream->ops->ack)
			substream->ops->ack(substream);

		offset += frames;
		size -= frames;
		xfer += frames;
2230
		avail -= frames;
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		if (is_playback &&
		    runtime->status->state == SNDRV_PCM_STATE_PREPARED &&
		    snd_pcm_playback_hw_avail(runtime) >= (snd_pcm_sframes_t)runtime->start_threshold) {
			err = snd_pcm_start(substream);
			if (err < 0)
				goto _end_unlock;
		}
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	}
 _end_unlock:
2240
	runtime->twake = 0;
2241 2242
	if (xfer > 0 && err >= 0)
		snd_pcm_update_state(substream, runtime);
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	snd_pcm_stream_unlock_irq(substream);
	return xfer > 0 ? (snd_pcm_sframes_t)xfer : err;
}
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EXPORT_SYMBOL(__snd_pcm_lib_xfer);
2247 2248 2249 2250 2251 2252 2253 2254

/*
 * standard channel mapping helpers
 */

/* default channel maps for multi-channel playbacks, up to 8 channels */
const struct snd_pcm_chmap_elem snd_pcm_std_chmaps[] = {
	{ .channels = 1,
2255
	  .map = { SNDRV_CHMAP_MONO } },
2256 2257 2258 2259 2260 2261 2262 2263 2264 2265 2266 2267 2268 2269 2270 2271 2272 2273 2274 2275 2276
	{ .channels = 2,
	  .map = { SNDRV_CHMAP_FL, SNDRV_CHMAP_FR } },
	{ .channels = 4,
	  .map = { SNDRV_CHMAP_FL, SNDRV_CHMAP_FR,
		   SNDRV_CHMAP_RL, SNDRV_CHMAP_RR } },
	{ .channels = 6,
	  .map = { SNDRV_CHMAP_FL, SNDRV_CHMAP_FR,
		   SNDRV_CHMAP_RL, SNDRV_CHMAP_RR,
		   SNDRV_CHMAP_FC, SNDRV_CHMAP_LFE } },
	{ .channels = 8,
	  .map = { SNDRV_CHMAP_FL, SNDRV_CHMAP_FR,
		   SNDRV_CHMAP_RL, SNDRV_CHMAP_RR,
		   SNDRV_CHMAP_FC, SNDRV_CHMAP_LFE,
		   SNDRV_CHMAP_SL, SNDRV_CHMAP_SR } },
	{ }
};
EXPORT_SYMBOL_GPL(snd_pcm_std_chmaps);

/* alternative channel maps with CLFE <-> surround swapped for 6/8 channels */
const struct snd_pcm_chmap_elem snd_pcm_alt_chmaps[] = {
	{ .channels = 1,
2277
	  .map = { SNDRV_CHMAP_MONO } },
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	{ .channels = 2,
	  .map = { SNDRV_CHMAP_FL, SNDRV_CHMAP_FR } },
	{ .channels = 4,
	  .map = { SNDRV_CHMAP_FL, SNDRV_CHMAP_FR,
		   SNDRV_CHMAP_RL, SNDRV_CHMAP_RR } },
	{ .channels = 6,
	  .map = { SNDRV_CHMAP_FL, SNDRV_CHMAP_FR,
		   SNDRV_CHMAP_FC, SNDRV_CHMAP_LFE,
		   SNDRV_CHMAP_RL, SNDRV_CHMAP_RR } },
	{ .channels = 8,
	  .map = { SNDRV_CHMAP_FL, SNDRV_CHMAP_FR,
		   SNDRV_CHMAP_FC, SNDRV_CHMAP_LFE,
		   SNDRV_CHMAP_RL, SNDRV_CHMAP_RR,
		   SNDRV_CHMAP_SL, SNDRV_CHMAP_SR } },
	{ }
};
EXPORT_SYMBOL_GPL(snd_pcm_alt_chmaps);

static bool valid_chmap_channels(const struct snd_pcm_chmap *info, int ch)
{
	if (ch > info->max_channels)
		return false;
	return !info->channel_mask || (info->channel_mask & (1U << ch));
}

static int pcm_chmap_ctl_info(struct snd_kcontrol *kcontrol,
			      struct snd_ctl_elem_info *uinfo)
{
	struct snd_pcm_chmap *info = snd_kcontrol_chip(kcontrol);

	uinfo->type = SNDRV_CTL_ELEM_TYPE_INTEGER;
	uinfo->count = 0;
	uinfo->count = info->max_channels;
	uinfo->value.integer.min = 0;
	uinfo->value.integer.max = SNDRV_CHMAP_LAST;
	return 0;
}

/* get callback for channel map ctl element
 * stores the channel position firstly matching with the current channels
 */
static int pcm_chmap_ctl_get(struct snd_kcontrol *kcontrol,
			     struct snd_ctl_elem_value *ucontrol)
{
	struct snd_pcm_chmap *info = snd_kcontrol_chip(kcontrol);
	unsigned int idx = snd_ctl_get_ioffidx(kcontrol, &ucontrol->id);
	struct snd_pcm_substream *substream;
	const struct snd_pcm_chmap_elem *map;

	if (snd_BUG_ON(!info->chmap))
		return -EINVAL;
	substream = snd_pcm_chmap_substream(info, idx);
	if (!substream)
		return -ENODEV;
	memset(ucontrol->value.integer.value, 0,
	       sizeof(ucontrol->value.integer.value));
	if (!substream->runtime)
		return 0; /* no channels set */
	for (map = info->chmap; map->channels; map++) {
		int i;
		if (map->channels == substream->runtime->channels &&
		    valid_chmap_channels(info, map->channels)) {
			for (i = 0; i < map->channels; i++)
				ucontrol->value.integer.value[i] = map->map[i];
			return 0;
		}
	}
	return -EINVAL;
}

/* tlv callback for channel map ctl element
 * expands the pre-defined channel maps in a form of TLV
 */
static int pcm_chmap_ctl_tlv(struct snd_kcontrol *kcontrol, int op_flag,
			     unsigned int size, unsigned int __user *tlv)
{
	struct snd_pcm_chmap *info = snd_kcontrol_chip(kcontrol);
	const struct snd_pcm_chmap_elem *map;
	unsigned int __user *dst;
	int c, count = 0;

	if (snd_BUG_ON(!info->chmap))
		return -EINVAL;
	if (size < 8)
		return -ENOMEM;
	if (put_user(SNDRV_CTL_TLVT_CONTAINER, tlv))
		return -EFAULT;
	size -= 8;
	dst = tlv + 2;
	for (map = info->chmap; map->channels; map++) {
		int chs_bytes = map->channels * 4;
		if (!valid_chmap_channels(info, map->channels))
			continue;
		if (size < 8)
			return -ENOMEM;
		if (put_user(SNDRV_CTL_TLVT_CHMAP_FIXED, dst) ||
		    put_user(chs_bytes, dst + 1))
			return -EFAULT;
		dst += 2;
		size -= 8;
		count += 8;
		if (size < chs_bytes)
			return -ENOMEM;
		size -= chs_bytes;
		count += chs_bytes;
		for (c = 0; c < map->channels; c++) {
			if (put_user(map->map[c], dst))
				return -EFAULT;
			dst++;
		}
	}
	if (put_user(count, tlv + 1))
		return -EFAULT;
	return 0;
}

static void pcm_chmap_ctl_private_free(struct snd_kcontrol *kcontrol)
{
	struct snd_pcm_chmap *info = snd_kcontrol_chip(kcontrol);
	info->pcm->streams[info->stream].chmap_kctl = NULL;
	kfree(info);
}

/**
 * snd_pcm_add_chmap_ctls - create channel-mapping control elements
 * @pcm: the assigned PCM instance
 * @stream: stream direction
 * @chmap: channel map elements (for query)
 * @max_channels: the max number of channels for the stream
 * @private_value: the value passed to each kcontrol's private_value field
 * @info_ret: store struct snd_pcm_chmap instance if non-NULL
 *
 * Create channel-mapping control elements assigned to the given PCM stream(s).
2411
 * Return: Zero if successful, or a negative error value.
2412 2413 2414 2415 2416 2417 2418 2419 2420 2421 2422 2423 2424 2425 2426 2427 2428 2429 2430
 */
int snd_pcm_add_chmap_ctls(struct snd_pcm *pcm, int stream,
			   const struct snd_pcm_chmap_elem *chmap,
			   int max_channels,
			   unsigned long private_value,
			   struct snd_pcm_chmap **info_ret)
{
	struct snd_pcm_chmap *info;
	struct snd_kcontrol_new knew = {
		.iface = SNDRV_CTL_ELEM_IFACE_PCM,
		.access = SNDRV_CTL_ELEM_ACCESS_READ |
			SNDRV_CTL_ELEM_ACCESS_TLV_READ |
			SNDRV_CTL_ELEM_ACCESS_TLV_CALLBACK,
		.info = pcm_chmap_ctl_info,
		.get = pcm_chmap_ctl_get,
		.tlv.c = pcm_chmap_ctl_tlv,
	};
	int err;

2431 2432
	if (WARN_ON(pcm->streams[stream].chmap_kctl))
		return -EBUSY;
2433 2434 2435 2436 2437 2438 2439 2440 2441 2442 2443 2444 2445 2446 2447 2448 2449 2450 2451 2452 2453 2454 2455 2456 2457 2458 2459 2460 2461
	info = kzalloc(sizeof(*info), GFP_KERNEL);
	if (!info)
		return -ENOMEM;
	info->pcm = pcm;
	info->stream = stream;
	info->chmap = chmap;
	info->max_channels = max_channels;
	if (stream == SNDRV_PCM_STREAM_PLAYBACK)
		knew.name = "Playback Channel Map";
	else
		knew.name = "Capture Channel Map";
	knew.device = pcm->device;
	knew.count = pcm->streams[stream].substream_count;
	knew.private_value = private_value;
	info->kctl = snd_ctl_new1(&knew, info);
	if (!info->kctl) {
		kfree(info);
		return -ENOMEM;
	}
	info->kctl->private_free = pcm_chmap_ctl_private_free;
	err = snd_ctl_add(pcm->card, info->kctl);
	if (err < 0)
		return err;
	pcm->streams[stream].chmap_kctl = info->kctl;
	if (info_ret)
		*info_ret = info;
	return 0;
}
EXPORT_SYMBOL_GPL(snd_pcm_add_chmap_ctls);