pcm_lib.c 67.4 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>
#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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#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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/*
 * 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;

	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;
		if (runtime->access == SNDRV_PCM_ACCESS_RW_INTERLEAVED ||
		    runtime->access == SNDRV_PCM_ACCESS_MMAP_INTERLEAVED) {
			if (substream->ops->silence) {
				int err;
				err = substream->ops->silence(substream, -1, ofs, transfer);
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				snd_BUG_ON(err < 0);
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			} else {
				char *hwbuf = runtime->dma_area + frames_to_bytes(runtime, ofs);
				snd_pcm_format_set_silence(runtime->format, hwbuf, transfer * runtime->channels);
			}
		} else {
			unsigned int c;
			unsigned int channels = runtime->channels;
			if (substream->ops->silence) {
				for (c = 0; c < channels; ++c) {
					int err;
					err = substream->ops->silence(substream, c, ofs, transfer);
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					snd_BUG_ON(err < 0);
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				}
			} else {
				size_t dma_csize = runtime->dma_bytes / channels;
				for (c = 0; c < channels; ++c) {
					char *hwbuf = runtime->dma_area + (c * dma_csize) + samples_to_bytes(runtime, ofs);
					snd_pcm_format_set_silence(runtime->format, hwbuf, transfer);
				}
			}
		}
		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 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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		snd_pcm_gettime(runtime, (struct timespec *)&curr_tstamp);

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		if ((runtime->hw.info & SNDRV_PCM_INFO_HAS_WALL_CLOCK) &&
			(substream->ops->wall_clock))
			substream->ops->wall_clock(substream, &audio_tstamp);
	}

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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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				"BUG: %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) {
				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)
		return 0;
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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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	if (runtime->tstamp_mode == SNDRV_PCM_TSTAMP_ENABLE) {
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		runtime->status->tstamp = curr_tstamp;
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		if (!(runtime->hw.info & SNDRV_PCM_INFO_HAS_WALL_CLOCK)) {
			/*
			 * no wall clock available, provide audio timestamp
			 * derived from pointer position+delay
			 */
			u64 audio_frames, audio_nsecs;

			if (substream->stream == SNDRV_PCM_STREAM_PLAYBACK)
				audio_frames = runtime->hw_ptr_wrap
					+ runtime->status->hw_ptr
					- runtime->delay;
			else
				audio_frames = runtime->hw_ptr_wrap
					+ runtime->status->hw_ptr
					+ runtime->delay;
			audio_nsecs = div_u64(audio_frames * 1000000000LL,
					runtime->rate);
			audio_tstamp = ns_to_timespec(audio_nsecs);
		}
		runtime->status->audio_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,
			unsigned int rats_count, struct snd_ratnum *rats,
			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,
			       unsigned int rats_count, 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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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
 *
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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_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);
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		if (!new) {
			va_end(args);
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			return -ENOMEM;
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		}
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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) {
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		if (snd_BUG_ON(k >= ARRAY_SIZE(c->deps))) {
			va_end(args);
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			return -EINVAL;
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		}
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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;
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}
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EXPORT_SYMBOL(snd_pcm_hw_rule_add);

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/**
1104
 * 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
 *
1109
 * Apply the constraint of the given bitmap mask to a 32-bit mask parameter.
1110 1111
 *
 * 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;
}

/**
1126
 * 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
 *
1131
 * Apply the constraint of the given bitmap mask to a 64-bit mask parameter.
1132 1133
 *
 * 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;
}
1147
EXPORT_SYMBOL(snd_pcm_hw_constraint_mask64);
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/**
1150
 * 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.
1155 1156 1157
 *
 * 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));
}

1165 1166
EXPORT_SYMBOL(snd_pcm_hw_constraint_integer);

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/**
1168
 * 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.
1175 1176 1177
 *
 * 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);
}

1191 1192
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);
}		


/**
1202
 * 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.
1209 1210
 *
 * 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,
1215
			       const struct snd_pcm_hw_constraint_list *l)
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{
	return snd_pcm_hw_rule_add(runtime, cond, var,
1218
				   snd_pcm_hw_rule_list, (void *)l,
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				   var, -1);
}

1222 1223
EXPORT_SYMBOL(snd_pcm_hw_constraint_list);

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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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{
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	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;
}

/**
1240
 * 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
1245 1246
 *
 * 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,
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				  struct snd_pcm_hw_constraint_ratnums *r)
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{
	return snd_pcm_hw_rule_add(runtime, cond, var,
				   snd_pcm_hw_rule_ratnums, r,
				   var, -1);
}

1258 1259
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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	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;
}

/**
1275
 * 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
1280 1281
 *
 * 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,
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				  struct snd_pcm_hw_constraint_ratdens *r)
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{
	return snd_pcm_hw_rule_add(runtime, cond, var,
				   snd_pcm_hw_rule_ratdens, r,
				   var, -1);
}

1293 1294
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;
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	struct snd_interval *i = hw_param_interval(params, SNDRV_PCM_HW_PARAM_SAMPLE_BITS);
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	if (snd_interval_single(i) && snd_interval_value(i) == width)
1303
		params->msbits = min_not_zero(params->msbits, msbits);
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	return 0;
}

/**
1308
 * 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
1313 1314
 *
 * 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);
}

1328 1329
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;
1334
	return snd_interval_step(hw_param_interval(params, rule->var), step);
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}

/**
1338
 * 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
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_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);
}

1356 1357
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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{
1360
	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);
}		

/**
1371
 * 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
1375 1376
 *
 * 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);
}

1387 1388
EXPORT_SYMBOL(snd_pcm_hw_constraint_pow2);

1389 1390 1391 1392 1393 1394 1395 1396 1397 1398 1399 1400 1401 1402
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
1403 1404
 *
 * Return: Zero if successful, or a negative error code on failure.
1405 1406 1407 1408 1409 1410 1411 1412 1413 1414 1415 1416
 */
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,
1418
				  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;
}

1446
EXPORT_SYMBOL(_snd_pcm_hw_params_any);
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/**
1449
 * snd_pcm_hw_param_value - return @params field @var value
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 * @params: the hw_params instance
 * @var: parameter to retrieve
1452
 * @dir: pointer to the direction (-1,0,1) or %NULL
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 *
1454 1455
 * Return: The value for field @var if it's fixed in configuration space
 * defined by @params. -%EINVAL otherwise.
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 */
1457 1458
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;
}

1479
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();
	}
}

1497
EXPORT_SYMBOL(_snd_pcm_hw_param_setempty);
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static int _snd_pcm_hw_param_first(struct snd_pcm_hw_params *params,
1500
				   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));
1507
	else
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		return -EINVAL;
	if (changed) {
		params->cmask |= 1 << var;
		params->rmask |= 1 << var;
	}
	return changed;
}


/**
1518
 * 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
1522
 * @dir: pointer to the direction (-1,0,1) or %NULL
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 *
1524
 * Inside configuration space defined by @params remove from @var all
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 * values > minimum. Reduce configuration space accordingly.
1526 1527
 *
 * Return: The minimum, or a negative error code on failure.
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 */
1529 1530 1531
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);
1538 1539
		if (snd_BUG_ON(err < 0))
			return err;
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	}
	return snd_pcm_hw_param_value(params, var, dir);
}

1544 1545
EXPORT_SYMBOL(snd_pcm_hw_param_first);

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static int _snd_pcm_hw_param_last(struct snd_pcm_hw_params *params,
1547
				  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));
1554
	else
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		return -EINVAL;
	if (changed) {
		params->cmask |= 1 << var;
		params->rmask |= 1 << var;
	}
	return changed;
}


/**
1565
 * 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
1569
 * @dir: pointer to the direction (-1,0,1) or %NULL
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 *
1571
 * Inside configuration space defined by @params remove from @var all
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 * values < maximum. Reduce configuration space accordingly.
1573 1574
 *
 * Return: The maximum, or a negative error code on failure.
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 */
1576 1577 1578
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);
1585 1586
		if (snd_BUG_ON(err < 0))
			return err;
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	}
	return snd_pcm_hw_param_value(params, var, dir);
}

1591
EXPORT_SYMBOL(snd_pcm_hw_param_last);
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1592 1593

/**
1594
 * snd_pcm_hw_param_choose - choose a configuration defined by @params
T
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 * @pcm: PCM instance
 * @params: the hw_params instance
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 *
1598
 * Choose one configuration from configuration space defined by @params.
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 * The configuration chosen is that obtained fixing in this order:
 * first access, first format, first subformat, min channels,
 * min rate, min period time, max buffer size, min tick time
1602 1603
 *
 * Return: Zero if successful, or a negative error code on failure.
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 */
1605 1606
int snd_pcm_hw_params_choose(struct snd_pcm_substream *pcm,
			     struct snd_pcm_hw_params *params)
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{
1608 1609 1610 1611 1612 1613 1614 1615 1616 1617 1618 1619
	static int vars[] = {
		SNDRV_PCM_HW_PARAM_ACCESS,
		SNDRV_PCM_HW_PARAM_FORMAT,
		SNDRV_PCM_HW_PARAM_SUBFORMAT,
		SNDRV_PCM_HW_PARAM_CHANNELS,
		SNDRV_PCM_HW_PARAM_RATE,
		SNDRV_PCM_HW_PARAM_PERIOD_TIME,
		SNDRV_PCM_HW_PARAM_BUFFER_SIZE,
		SNDRV_PCM_HW_PARAM_TICK_TIME,
		-1
	};
	int err, *v;
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1621 1622 1623 1624 1625
	for (v = vars; *v != -1; v++) {
		if (*v != SNDRV_PCM_HW_PARAM_BUFFER_SIZE)
			err = snd_pcm_hw_param_first(pcm, params, *v, NULL);
		else
			err = snd_pcm_hw_param_last(pcm, params, *v, NULL);
1626 1627
		if (snd_BUG_ON(err < 0))
			return err;
1628
	}
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	return 0;
}

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1632
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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1636 1637 1638 1639 1640
	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;
1641
	else {
L
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		runtime->status->hw_ptr = 0;
1643 1644
		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,
L
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1650 1651
					  void *arg)
{
T
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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;
}

1684 1685 1686 1687 1688
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;
1689 1690
	int channels;
	ssize_t frame_size;
1691 1692 1693 1694 1695

	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);
1696 1697 1698
		frame_size = snd_pcm_format_size(format, channels);
		if (frame_size > 0)
			params->fifo_size /= (unsigned)frame_size;
1699 1700 1701 1702
	}
	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.
 *
1712
 * Return: Zero if successful, or a negative error code on failure.
L
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 */
T
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int snd_pcm_lib_ioctl(struct snd_pcm_substream *substream,
L
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1715 1716 1717 1718 1719 1720 1721 1722 1723
		      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);
1724 1725
	case SNDRV_PCM_IOCTL1_FIFO_SIZE:
		return snd_pcm_lib_ioctl_fifo_size(substream, arg);
L
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	}
	return -ENXIO;
}

1730 1731
EXPORT_SYMBOL(snd_pcm_lib_ioctl);

L
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1732 1733 1734 1735 1736 1737
/**
 * 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
1738
 * pointer, wake up sleepers, etc.
L
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 *
 * Even if more than one periods have elapsed since the last call, you
 * have to call this only once.
 */
T
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1743
void snd_pcm_period_elapsed(struct snd_pcm_substream *substream)
L
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1744
{
T
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1745
	struct snd_pcm_runtime *runtime;
L
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1746 1747
	unsigned long flags;

1748 1749
	if (PCM_RUNTIME_CHECK(substream))
		return;
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	runtime = substream->runtime;

	if (runtime->transfer_ack_begin)
		runtime->transfer_ack_begin(substream);

	snd_pcm_stream_lock_irqsave(substream, flags);
	if (!snd_pcm_running(substream) ||
1757
	    snd_pcm_update_hw_ptr0(substream, 1) < 0)
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		goto _end;

	if (substream->timer_running)
		snd_timer_interrupt(substream->timer, 1);
 _end:
	snd_pcm_stream_unlock_irqrestore(substream, flags);
	if (runtime->transfer_ack_end)
		runtime->transfer_ack_end(substream);
	kill_fasync(&runtime->fasync, SIGIO, POLL_IN);
}

1769 1770
EXPORT_SYMBOL(snd_pcm_period_elapsed);

1771 1772 1773 1774 1775 1776
/*
 * 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.
 */
1777
static int wait_for_avail(struct snd_pcm_substream *substream,
1778 1779 1780 1781 1782 1783 1784
			      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;
1785 1786
	long wait_time, tout;

1787 1788 1789 1790
	init_waitqueue_entry(&wait, current);
	set_current_state(TASK_INTERRUPTIBLE);
	add_wait_queue(&runtime->tsleep, &wait);

1791 1792 1793 1794 1795 1796 1797 1798 1799 1800
	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);
	}
1801

1802 1803 1804 1805 1806
	for (;;) {
		if (signal_pending(current)) {
			err = -ERESTARTSYS;
			break;
		}
1807 1808 1809 1810 1811 1812 1813 1814 1815 1816 1817 1818 1819 1820

		/*
		 * 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;
1821
		snd_pcm_stream_unlock_irq(substream);
1822 1823 1824

		tout = schedule_timeout(wait_time);

1825
		snd_pcm_stream_lock_irq(substream);
1826
		set_current_state(TASK_INTERRUPTIBLE);
1827 1828 1829 1830 1831 1832 1833 1834 1835 1836 1837 1838 1839 1840 1841 1842 1843 1844
		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;
1845 1846
		case SNDRV_PCM_STATE_PAUSED:
			continue;
1847 1848
		}
		if (!tout) {
1849 1850 1851
			pcm_dbg(substream->pcm,
				"%s write error (DMA or IRQ trouble?)\n",
				is_playback ? "playback" : "capture");
1852 1853 1854 1855 1856
			err = -EIO;
			break;
		}
	}
 _endloop:
1857
	set_current_state(TASK_RUNNING);
1858
	remove_wait_queue(&runtime->tsleep, &wait);
1859 1860 1861 1862
	*availp = avail;
	return err;
}
	
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1863
static int snd_pcm_lib_write_transfer(struct snd_pcm_substream *substream,
L
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1864 1865 1866 1867
				      unsigned int hwoff,
				      unsigned long data, unsigned int off,
				      snd_pcm_uframes_t frames)
{
T
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	struct snd_pcm_runtime *runtime = substream->runtime;
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1869 1870 1871 1872 1873 1874 1875 1876 1877 1878 1879 1880 1881
	int err;
	char __user *buf = (char __user *) data + frames_to_bytes(runtime, off);
	if (substream->ops->copy) {
		if ((err = substream->ops->copy(substream, -1, hwoff, buf, frames)) < 0)
			return err;
	} else {
		char *hwbuf = runtime->dma_area + frames_to_bytes(runtime, hwoff);
		if (copy_from_user(hwbuf, buf, frames_to_bytes(runtime, frames)))
			return -EFAULT;
	}
	return 0;
}
 
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typedef int (*transfer_f)(struct snd_pcm_substream *substream, unsigned int hwoff,
L
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1883 1884 1885
			  unsigned long data, unsigned int off,
			  snd_pcm_uframes_t size);

T
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static snd_pcm_sframes_t snd_pcm_lib_write1(struct snd_pcm_substream *substream, 
L
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1887 1888 1889 1890 1891
					    unsigned long data,
					    snd_pcm_uframes_t size,
					    int nonblock,
					    transfer_f transfer)
{
T
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	struct snd_pcm_runtime *runtime = substream->runtime;
L
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	snd_pcm_uframes_t xfer = 0;
	snd_pcm_uframes_t offset = 0;
1895
	snd_pcm_uframes_t avail;
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	int err = 0;

	if (size == 0)
		return 0;

	snd_pcm_stream_lock_irq(substream);
	switch (runtime->status->state) {
	case SNDRV_PCM_STATE_PREPARED:
	case SNDRV_PCM_STATE_RUNNING:
	case SNDRV_PCM_STATE_PAUSED:
		break;
	case SNDRV_PCM_STATE_XRUN:
		err = -EPIPE;
		goto _end_unlock;
	case SNDRV_PCM_STATE_SUSPENDED:
		err = -ESTRPIPE;
		goto _end_unlock;
	default:
		err = -EBADFD;
		goto _end_unlock;
	}

1918
	runtime->twake = runtime->control->avail_min ? : 1;
1919 1920 1921
	if (runtime->status->state == SNDRV_PCM_STATE_RUNNING)
		snd_pcm_update_hw_ptr(substream);
	avail = snd_pcm_playback_avail(runtime);
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	while (size > 0) {
		snd_pcm_uframes_t frames, appl_ptr, appl_ofs;
		snd_pcm_uframes_t cont;
1925
		if (!avail) {
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			if (nonblock) {
				err = -EAGAIN;
				goto _end_unlock;
			}
1930 1931 1932
			runtime->twake = min_t(snd_pcm_uframes_t, size,
					runtime->control->avail_min ? : 1);
			err = wait_for_avail(substream, &avail);
1933
			if (err < 0)
1934
				goto _end_unlock;
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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;
1940
		if (snd_BUG_ON(!frames)) {
1941
			runtime->twake = 0;
1942 1943 1944
			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);
1948
		err = transfer(substream, appl_ofs, data, offset, frames);
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		snd_pcm_stream_lock_irq(substream);
1950 1951
		if (err < 0)
			goto _end_unlock;
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1952 1953 1954 1955 1956 1957 1958 1959 1960 1961 1962 1963 1964 1965 1966 1967 1968 1969 1970 1971
		switch (runtime->status->state) {
		case SNDRV_PCM_STATE_XRUN:
			err = -EPIPE;
			goto _end_unlock;
		case SNDRV_PCM_STATE_SUSPENDED:
			err = -ESTRPIPE;
			goto _end_unlock;
		default:
			break;
		}
		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;
1972
		avail -= frames;
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		if (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;
		}
	}
 _end_unlock:
1981
	runtime->twake = 0;
1982 1983
	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;
}

1988 1989
/* sanity-check for read/write methods */
static int pcm_sanity_check(struct snd_pcm_substream *substream)
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{
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	struct snd_pcm_runtime *runtime;
1992 1993
	if (PCM_RUNTIME_CHECK(substream))
		return -ENXIO;
L
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	runtime = substream->runtime;
1995 1996
	if (snd_BUG_ON(!substream->ops->copy && !runtime->dma_area))
		return -EINVAL;
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	if (runtime->status->state == SNDRV_PCM_STATE_OPEN)
		return -EBADFD;
1999 2000 2001 2002 2003 2004 2005 2006
	return 0;
}

snd_pcm_sframes_t snd_pcm_lib_write(struct snd_pcm_substream *substream, const void __user *buf, snd_pcm_uframes_t size)
{
	struct snd_pcm_runtime *runtime;
	int nonblock;
	int err;
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2008 2009 2010 2011
	err = pcm_sanity_check(substream);
	if (err < 0)
		return err;
	runtime = substream->runtime;
2012
	nonblock = !!(substream->f_flags & O_NONBLOCK);
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	if (runtime->access != SNDRV_PCM_ACCESS_RW_INTERLEAVED &&
	    runtime->channels > 1)
		return -EINVAL;
	return snd_pcm_lib_write1(substream, (unsigned long)buf, size, nonblock,
				  snd_pcm_lib_write_transfer);
}

2021 2022
EXPORT_SYMBOL(snd_pcm_lib_write);

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static int snd_pcm_lib_writev_transfer(struct snd_pcm_substream *substream,
L
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2024 2025 2026 2027
				       unsigned int hwoff,
				       unsigned long data, unsigned int off,
				       snd_pcm_uframes_t frames)
{
T
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	struct snd_pcm_runtime *runtime = substream->runtime;
L
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2029 2030 2031 2032 2033
	int err;
	void __user **bufs = (void __user **)data;
	int channels = runtime->channels;
	int c;
	if (substream->ops->copy) {
2034 2035
		if (snd_BUG_ON(!substream->ops->silence))
			return -EINVAL;
L
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2036 2037 2038 2039 2040 2041 2042 2043 2044 2045 2046 2047 2048 2049 2050 2051 2052 2053 2054 2055 2056 2057 2058 2059 2060 2061 2062
		for (c = 0; c < channels; ++c, ++bufs) {
			if (*bufs == NULL) {
				if ((err = substream->ops->silence(substream, c, hwoff, frames)) < 0)
					return err;
			} else {
				char __user *buf = *bufs + samples_to_bytes(runtime, off);
				if ((err = substream->ops->copy(substream, c, hwoff, buf, frames)) < 0)
					return err;
			}
		}
	} else {
		/* default transfer behaviour */
		size_t dma_csize = runtime->dma_bytes / channels;
		for (c = 0; c < channels; ++c, ++bufs) {
			char *hwbuf = runtime->dma_area + (c * dma_csize) + samples_to_bytes(runtime, hwoff);
			if (*bufs == NULL) {
				snd_pcm_format_set_silence(runtime->format, hwbuf, frames);
			} else {
				char __user *buf = *bufs + samples_to_bytes(runtime, off);
				if (copy_from_user(hwbuf, buf, samples_to_bytes(runtime, frames)))
					return -EFAULT;
			}
		}
	}
	return 0;
}
 
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snd_pcm_sframes_t snd_pcm_lib_writev(struct snd_pcm_substream *substream,
L
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2064 2065 2066
				     void __user **bufs,
				     snd_pcm_uframes_t frames)
{
T
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2067
	struct snd_pcm_runtime *runtime;
L
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2068
	int nonblock;
2069
	int err;
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2071 2072 2073
	err = pcm_sanity_check(substream);
	if (err < 0)
		return err;
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	runtime = substream->runtime;
2075
	nonblock = !!(substream->f_flags & O_NONBLOCK);
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2076 2077 2078 2079 2080 2081 2082

	if (runtime->access != SNDRV_PCM_ACCESS_RW_NONINTERLEAVED)
		return -EINVAL;
	return snd_pcm_lib_write1(substream, (unsigned long)bufs, frames,
				  nonblock, snd_pcm_lib_writev_transfer);
}

2083 2084
EXPORT_SYMBOL(snd_pcm_lib_writev);

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static int snd_pcm_lib_read_transfer(struct snd_pcm_substream *substream, 
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				     unsigned int hwoff,
				     unsigned long data, unsigned int off,
				     snd_pcm_uframes_t frames)
{
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	struct snd_pcm_runtime *runtime = substream->runtime;
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	int err;
	char __user *buf = (char __user *) data + frames_to_bytes(runtime, off);
	if (substream->ops->copy) {
		if ((err = substream->ops->copy(substream, -1, hwoff, buf, frames)) < 0)
			return err;
	} else {
		char *hwbuf = runtime->dma_area + frames_to_bytes(runtime, hwoff);
		if (copy_to_user(buf, hwbuf, frames_to_bytes(runtime, frames)))
			return -EFAULT;
	}
	return 0;
}

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static snd_pcm_sframes_t snd_pcm_lib_read1(struct snd_pcm_substream *substream,
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					   unsigned long data,
					   snd_pcm_uframes_t size,
					   int nonblock,
					   transfer_f transfer)
{
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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;
2113
	snd_pcm_uframes_t avail;
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	int err = 0;

	if (size == 0)
		return 0;

	snd_pcm_stream_lock_irq(substream);
	switch (runtime->status->state) {
	case SNDRV_PCM_STATE_PREPARED:
		if (size >= runtime->start_threshold) {
			err = snd_pcm_start(substream);
			if (err < 0)
				goto _end_unlock;
		}
		break;
	case SNDRV_PCM_STATE_DRAINING:
	case SNDRV_PCM_STATE_RUNNING:
	case SNDRV_PCM_STATE_PAUSED:
		break;
	case SNDRV_PCM_STATE_XRUN:
		err = -EPIPE;
		goto _end_unlock;
	case SNDRV_PCM_STATE_SUSPENDED:
		err = -ESTRPIPE;
		goto _end_unlock;
	default:
		err = -EBADFD;
		goto _end_unlock;
	}

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	runtime->twake = runtime->control->avail_min ? : 1;
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	if (runtime->status->state == SNDRV_PCM_STATE_RUNNING)
		snd_pcm_update_hw_ptr(substream);
	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;
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		if (!avail) {
			if (runtime->status->state ==
			    SNDRV_PCM_STATE_DRAINING) {
				snd_pcm_stop(substream, SNDRV_PCM_STATE_SETUP);
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				goto _end_unlock;
			}
			if (nonblock) {
				err = -EAGAIN;
				goto _end_unlock;
			}
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			runtime->twake = min_t(snd_pcm_uframes_t, size,
					runtime->control->avail_min ? : 1);
			err = wait_for_avail(substream, &avail);
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			if (err < 0)
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				goto _end_unlock;
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			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;
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		if (snd_BUG_ON(!frames)) {
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			runtime->twake = 0;
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			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 = transfer(substream, appl_ofs, data, offset, frames);
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		snd_pcm_stream_lock_irq(substream);
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		if (err < 0)
			goto _end_unlock;
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		switch (runtime->status->state) {
		case SNDRV_PCM_STATE_XRUN:
			err = -EPIPE;
			goto _end_unlock;
		case SNDRV_PCM_STATE_SUSPENDED:
			err = -ESTRPIPE;
			goto _end_unlock;
		default:
			break;
		}
		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;
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		avail -= frames;
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	}
 _end_unlock:
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	runtime->twake = 0;
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	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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snd_pcm_sframes_t snd_pcm_lib_read(struct snd_pcm_substream *substream, void __user *buf, snd_pcm_uframes_t size)
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{
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	struct snd_pcm_runtime *runtime;
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	int nonblock;
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	int err;
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	err = pcm_sanity_check(substream);
	if (err < 0)
		return err;
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	runtime = substream->runtime;
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	nonblock = !!(substream->f_flags & O_NONBLOCK);
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	if (runtime->access != SNDRV_PCM_ACCESS_RW_INTERLEAVED)
		return -EINVAL;
	return snd_pcm_lib_read1(substream, (unsigned long)buf, size, nonblock, snd_pcm_lib_read_transfer);
}

2230 2231
EXPORT_SYMBOL(snd_pcm_lib_read);

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static int snd_pcm_lib_readv_transfer(struct snd_pcm_substream *substream,
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				      unsigned int hwoff,
				      unsigned long data, unsigned int off,
				      snd_pcm_uframes_t frames)
{
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	struct snd_pcm_runtime *runtime = substream->runtime;
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	int err;
	void __user **bufs = (void __user **)data;
	int channels = runtime->channels;
	int c;
	if (substream->ops->copy) {
		for (c = 0; c < channels; ++c, ++bufs) {
			char __user *buf;
			if (*bufs == NULL)
				continue;
			buf = *bufs + samples_to_bytes(runtime, off);
			if ((err = substream->ops->copy(substream, c, hwoff, buf, frames)) < 0)
				return err;
		}
	} else {
		snd_pcm_uframes_t dma_csize = runtime->dma_bytes / channels;
		for (c = 0; c < channels; ++c, ++bufs) {
			char *hwbuf;
			char __user *buf;
			if (*bufs == NULL)
				continue;

			hwbuf = runtime->dma_area + (c * dma_csize) + samples_to_bytes(runtime, hwoff);
			buf = *bufs + samples_to_bytes(runtime, off);
			if (copy_to_user(buf, hwbuf, samples_to_bytes(runtime, frames)))
				return -EFAULT;
		}
	}
	return 0;
}
 
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snd_pcm_sframes_t snd_pcm_lib_readv(struct snd_pcm_substream *substream,
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				    void __user **bufs,
				    snd_pcm_uframes_t frames)
{
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	struct snd_pcm_runtime *runtime;
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	int nonblock;
2274
	int err;
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	err = pcm_sanity_check(substream);
	if (err < 0)
		return err;
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	runtime = substream->runtime;
	if (runtime->status->state == SNDRV_PCM_STATE_OPEN)
		return -EBADFD;

2283
	nonblock = !!(substream->f_flags & O_NONBLOCK);
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	if (runtime->access != SNDRV_PCM_ACCESS_RW_NONINTERLEAVED)
		return -EINVAL;
	return snd_pcm_lib_read1(substream, (unsigned long)bufs, frames, nonblock, snd_pcm_lib_readv_transfer);
}

EXPORT_SYMBOL(snd_pcm_lib_readv);
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/*
 * 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,
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	  .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_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,
2320
	  .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).
2454
 * Return: Zero if successful, or a negative error value.
2455 2456 2457 2458 2459 2460 2461 2462 2463 2464 2465 2466 2467 2468 2469 2470 2471 2472 2473 2474 2475 2476 2477 2478 2479 2480 2481 2482 2483 2484 2485 2486 2487 2488 2489 2490 2491 2492 2493 2494 2495 2496 2497 2498 2499 2500 2501 2502
 */
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;

	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);