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	The minimum is the number of requested samples, not duration, which can be different when resampling.
		
			
				
	
	
		
			441 lines
		
	
	
	
		
			12 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
			
		
		
	
	
			441 lines
		
	
	
	
		
			12 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
/* Spa Bluez5 decode buffer */
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/* SPDX-FileCopyrightText: Copyright © 2022 Pauli Virtanen */
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/* SPDX-License-Identifier: MIT */
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/**
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 * \file decode-buffer.h   Buffering for Bluetooth sources
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 *
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 * A linear buffer, which is compacted when it gets half full.
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 *
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 * Also contains buffering logic, which calculates a rate correction
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 * factor to maintain the buffer level at the target value.
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 *
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 * Consider typical packet intervals with nominal frame duration
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 * of 10ms:
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 *
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 *     ... 5ms | 5ms | 20ms | 5ms | 5ms | 20ms ...
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 *
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 *     ... 3ms | 3ms | 4ms | 30ms | 3ms | 3ms | 4ms | 30ms ...
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 *
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 * plus random jitter; 10ms nominal may occasionally have 20+ms interval.
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 * The regular timer cycle cannot be aligned with this, so process()
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 * may occur at any time.
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 *
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 * The buffer level is the position of last received sample, relative to the current
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 * playback position. If it is larger than duration, there is no underrun.
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 *
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 * The rate correction aims to maintain the average level at a safety margin.
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 */
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#ifndef SPA_BLUEZ5_DECODE_BUFFER_H
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#define SPA_BLUEZ5_DECODE_BUFFER_H
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#include <stdlib.h>
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#include <time.h>
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#include <sys/socket.h>
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#include <linux/net_tstamp.h>
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#include <linux/errqueue.h>
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#include <spa/utils/defs.h>
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#include <spa/support/log.h>
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#include "rate-control.h"
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#define BUFFERING_LONG_MSEC		(2*60000)
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#define BUFFERING_SHORT_MSEC		1000
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#define BUFFERING_RATE_DIFF_MAX		0.005
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struct spa_bt_decode_buffer
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{
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	struct spa_log *log;
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	uint32_t frame_size;
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	uint32_t rate;
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	uint8_t *buffer_decoded;
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	uint32_t buffer_size;
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	uint32_t buffer_reserve;
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	uint32_t write_index;
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	uint32_t read_index;
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	struct spa_bt_ptp spike;	/**< spikes (long window) */
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	struct spa_bt_ptp packet_size;	/**< packet size (short window) */
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	struct spa_bt_rate_control ctl;
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	double corr;
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	uint32_t duration;
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	uint32_t pos;
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	int32_t target;		/**< target buffer (0: automatic) */
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	int32_t max_extra;
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	int32_t level;
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	uint64_t next_nsec;
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	double rate_diff;
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	uint8_t buffering:1;
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};
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static inline int spa_bt_decode_buffer_init(struct spa_bt_decode_buffer *this, struct spa_log *log,
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		uint32_t frame_size, uint32_t rate, uint32_t quantum_limit, uint32_t reserve)
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{
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	spa_zero(*this);
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	this->frame_size = frame_size;
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	this->rate = rate;
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	this->log = log;
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	this->buffer_reserve = this->frame_size * reserve;
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	this->buffer_size = this->frame_size * quantum_limit * 2;
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	this->buffer_size += this->buffer_reserve;
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	this->corr = 1.0;
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	this->target = 0;
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	this->buffering = true;
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	this->max_extra = INT32_MAX;
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	spa_bt_rate_control_init(&this->ctl, 0);
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	spa_bt_ptp_init(&this->spike, (uint64_t)this->rate * BUFFERING_LONG_MSEC / 1000, 0);
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	spa_bt_ptp_init(&this->packet_size, (uint64_t)this->rate * BUFFERING_SHORT_MSEC / 1000, 0);
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	if ((this->buffer_decoded = malloc(this->buffer_size)) == NULL) {
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		this->buffer_size = 0;
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		return -ENOMEM;
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	}
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	return 0;
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}
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static inline void spa_bt_decode_buffer_clear(struct spa_bt_decode_buffer *this)
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{
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	free(this->buffer_decoded);
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	spa_zero(*this);
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}
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static inline void spa_bt_decode_buffer_compact(struct spa_bt_decode_buffer *this)
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{
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	uint32_t avail;
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	spa_assert(this->read_index <= this->write_index);
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	if (this->read_index == this->write_index) {
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		this->read_index = 0;
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		this->write_index = 0;
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		goto done;
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	}
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	if (this->write_index > this->read_index + this->buffer_size - this->buffer_reserve) {
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		/* Drop data to keep buffer reserve free */
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		spa_log_info(this->log, "%p buffer overrun: dropping data", this);
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		this->read_index = this->write_index + this->buffer_reserve - this->buffer_size;
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	}
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	if (this->write_index < (this->buffer_size - this->buffer_reserve) / 2
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			|| this->read_index == 0)
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		goto done;
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	avail = this->write_index - this->read_index;
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	spa_memmove(this->buffer_decoded,
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			SPA_PTROFF(this->buffer_decoded, this->read_index, void),
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			avail);
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	this->read_index = 0;
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	this->write_index = avail;
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done:
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	spa_assert(this->buffer_size - this->write_index >= this->buffer_reserve);
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}
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static inline void *spa_bt_decode_buffer_get_read(struct spa_bt_decode_buffer *this, uint32_t *avail)
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{
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	spa_assert(this->write_index >= this->read_index);
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	if (!this->buffering)
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		*avail = this->write_index - this->read_index;
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	else
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		*avail = 0;
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	return SPA_PTROFF(this->buffer_decoded, this->read_index, void);
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}
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static inline void spa_bt_decode_buffer_read(struct spa_bt_decode_buffer *this, uint32_t size)
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{
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	spa_assert(size % this->frame_size == 0);
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	this->read_index += size;
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}
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static inline void *spa_bt_decode_buffer_get_write(struct spa_bt_decode_buffer *this, uint32_t *avail)
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{
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	spa_bt_decode_buffer_compact(this);
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	spa_assert(this->buffer_size >= this->write_index);
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	*avail = this->buffer_size - this->write_index;
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	return SPA_PTROFF(this->buffer_decoded, this->write_index, void);
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}
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static inline size_t spa_bt_decode_buffer_get_size(struct spa_bt_decode_buffer *this)
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{
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	return this->write_index - this->read_index;
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}
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static inline void spa_bt_decode_buffer_write_packet(struct spa_bt_decode_buffer *this, uint32_t size, uint64_t nsec)
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{
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	int32_t remain;
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	uint32_t avail;
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	spa_assert(size % this->frame_size == 0);
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	this->write_index += size;
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	spa_bt_ptp_update(&this->packet_size, size / this->frame_size, size / this->frame_size);
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	if (nsec && this->next_nsec && this->rate_diff != 0.0) {
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		int64_t dt = (this->next_nsec >= nsec) ?
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			(int64_t)(this->next_nsec - nsec) : -(int64_t)(nsec - this->next_nsec);
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		remain = (int32_t)SPA_CLAMP(dt * this->rate_diff * this->rate / SPA_NSEC_PER_SEC,
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				-(int32_t)this->duration, this->duration);
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	} else {
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		remain = 0;
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	}
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	spa_bt_decode_buffer_get_read(this, &avail);
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	this->level = avail / this->frame_size + remain;
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}
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static inline void spa_bt_decode_buffer_recover(struct spa_bt_decode_buffer *this)
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{
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	int32_t size = (this->write_index - this->read_index) / this->frame_size;
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	this->level = size;
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	this->corr = 1.0;
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	spa_bt_rate_control_init(&this->ctl, size);
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}
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static inline void spa_bt_decode_buffer_set_target_latency(struct spa_bt_decode_buffer *this, int32_t samples)
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{
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	this->target = samples;
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}
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static inline void spa_bt_decode_buffer_set_max_extra_latency(struct spa_bt_decode_buffer *this, int32_t samples)
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{
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	this->max_extra = samples;
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}
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static inline int32_t spa_bt_decode_buffer_get_target_latency(struct spa_bt_decode_buffer *this)
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{
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	const int32_t duration = this->duration;
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	const int32_t packet_size = SPA_CLAMP(this->packet_size.max, 0, INT32_MAX/8);
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	const int32_t max_buf = (this->buffer_size - this->buffer_reserve) / this->frame_size;
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	const int32_t spike = SPA_CLAMP(this->spike.max, 0, max_buf);
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	int32_t target;
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	if (this->target)
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		target = this->target;
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	else
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		target = SPA_CLAMP(SPA_ROUND_UP(SPA_MAX(spike * 3/2, duration), 
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						SPA_CLAMP((int)this->rate / 50, 1, INT32_MAX)),
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				duration, max_buf - 2*packet_size);
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	return SPA_MIN(target, duration + SPA_CLAMP(this->max_extra, 0, INT32_MAX - duration));
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}
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static inline void spa_bt_decode_buffer_process(struct spa_bt_decode_buffer *this, uint32_t samples, uint32_t duration,
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		double rate_diff, uint64_t next_nsec)
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{
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	const uint32_t data_size = samples * this->frame_size;
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	const int32_t packet_size = SPA_CLAMP(this->packet_size.max, 0, INT32_MAX/8);
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	const int32_t max_level = SPA_MAX(8 * packet_size, (int32_t)duration);
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	const uint32_t avg_period = (uint64_t)this->rate * BUFFERING_SHORT_MSEC / 1000;
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	int32_t target;
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	uint32_t avail;
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	this->rate_diff = rate_diff;
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	this->next_nsec = next_nsec;
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	if (SPA_UNLIKELY(duration != this->duration)) {
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		this->duration = duration;
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		spa_bt_decode_buffer_recover(this);
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	}
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	target = spa_bt_decode_buffer_get_target_latency(this);
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	if (SPA_UNLIKELY(this->buffering)) {
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		int32_t size = (this->write_index - this->read_index) / this->frame_size;
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		this->corr = 1.0;
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		spa_log_trace(this->log, "%p buffering size:%d", this, (int)size);
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		if (size >= SPA_MAX((int)samples, target))
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			this->buffering = false;
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		else
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			return;
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		spa_bt_ptp_update(&this->spike, packet_size, duration);
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		spa_bt_decode_buffer_recover(this);
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	}
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	spa_bt_decode_buffer_get_read(this, &avail);
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	/* Track buffer level */
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	this->level = SPA_MAX(this->level, -max_level);
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	spa_bt_ptp_update(&this->spike, (int32_t)this->ctl.avg - this->level, duration);
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	if (this->level > SPA_MAX(4 * target, 3*(int32_t)samples) &&
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			avail > data_size) {
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		/* Lagging too much: drop data */
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		uint32_t size = SPA_MIN(avail - data_size,
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				(this->level - target) * this->frame_size);
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		spa_bt_decode_buffer_read(this, size);
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		spa_log_trace(this->log, "%p overrun samples:%d level:%d target:%d",
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				this, (int)size/this->frame_size,
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				(int)this->level, (int)target);
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		spa_bt_decode_buffer_recover(this);
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	}
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	this->pos += duration;
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	if (this->pos > this->rate) {
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		spa_log_debug(this->log,
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				"%p avg:%d target:%d level:%d buffer:%d spike:%d corr:%f",
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				this,
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				(int)this->ctl.avg,
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				(int)target,
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				(int)this->level,
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				(int)(avail / this->frame_size),
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				(int)this->spike.max,
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				(double)this->corr);
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		this->pos = 0;
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	}
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	this->corr = spa_bt_rate_control_update(&this->ctl,
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			this->level, target, duration, avg_period,
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			BUFFERING_RATE_DIFF_MAX);
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	this->level -= samples;
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	spa_bt_decode_buffer_get_read(this, &avail);
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	if (avail < data_size) {
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		spa_log_trace(this->log, "%p underrun samples:%d", this,
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				(data_size - avail) / this->frame_size);
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		this->buffering = true;
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		spa_bt_ptp_update(&this->spike, (int32_t)this->ctl.avg - this->level, duration);
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	}
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}
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struct spa_bt_recvmsg_data {
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	struct spa_log *log;
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	struct spa_system *data_system;
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	int fd;
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	int64_t offset;
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	int64_t err;
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};
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static inline void spa_bt_recvmsg_update_clock(struct spa_bt_recvmsg_data *data, uint64_t *now)
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{
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	const int64_t max_resync = (50 * SPA_NSEC_PER_USEC);
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	const int64_t n_avg = 10;
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	struct timespec ts1, ts2, ts3;
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	int64_t t1, t2, t3, offset, err;
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	spa_system_clock_gettime(data->data_system, CLOCK_MONOTONIC, &ts1);
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	spa_system_clock_gettime(data->data_system, CLOCK_REALTIME, &ts2);
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	spa_system_clock_gettime(data->data_system, CLOCK_MONOTONIC, &ts3);
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	t1 = SPA_TIMESPEC_TO_NSEC(&ts1);
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	t2 = SPA_TIMESPEC_TO_NSEC(&ts2);
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	t3 = SPA_TIMESPEC_TO_NSEC(&ts3);
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	if (now)
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		*now = t1;
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	offset = t1 + (t3 - t1) / 2 - t2;
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	/* Moving average smoothing, discarding outliers */
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	err = offset - data->offset;
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	if (SPA_ABS(err) > max_resync) {
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		/* Clock jump */
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		spa_log_debug(data->log, "%p: nsec err %"PRIi64" > max_resync %"PRIi64", resetting",
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				data, err, max_resync);
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		data->offset = offset;
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		data->err = 0;
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		err = 0;
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	} else if (SPA_ABS(err) / 2 <= data->err) {
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		data->offset += err / n_avg;
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	}
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	data->err += (SPA_ABS(err) - data->err) / n_avg;
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}
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static inline ssize_t spa_bt_recvmsg(struct spa_bt_recvmsg_data *r, void *buf, size_t max_size, uint64_t *rx_time)
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{
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	union {
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		char buf[CMSG_SPACE(sizeof(struct scm_timestamping))];
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		struct cmsghdr align;
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	} control;
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	struct iovec data = {
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		.iov_base = buf,
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		.iov_len = max_size
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	};
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	struct msghdr msg = {
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		.msg_iov = &data,
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		.msg_iovlen = 1,
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		.msg_control = control.buf,
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		.msg_controllen = sizeof(control.buf),
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	};
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	struct cmsghdr *cmsg;
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	uint64_t t = 0, now;
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	ssize_t res;
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	res = recvmsg(r->fd, &msg, MSG_DONTWAIT);
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	if (res < 0 || !rx_time)
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		return res;
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	spa_bt_recvmsg_update_clock(r, &now);
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	for (cmsg = CMSG_FIRSTHDR(&msg); cmsg; cmsg = CMSG_NXTHDR(&msg, cmsg)) {
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		struct scm_timestamping *tss;
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		if (cmsg->cmsg_level != SOL_SOCKET || cmsg->cmsg_type != SCM_TIMESTAMPING)
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			continue;
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		tss = (struct scm_timestamping *)CMSG_DATA(cmsg);
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						|
		t = SPA_TIMESPEC_TO_NSEC(&tss->ts[0]);
 | 
						|
		break;
 | 
						|
	}
 | 
						|
 | 
						|
	if (!t) {
 | 
						|
		*rx_time = now;
 | 
						|
		return res;
 | 
						|
	}
 | 
						|
 | 
						|
	*rx_time = t + r->offset;
 | 
						|
 | 
						|
	/* CLOCK_REALTIME may jump, so sanity check */
 | 
						|
	if (*rx_time > now || *rx_time + 20 * SPA_NSEC_PER_MSEC < now)
 | 
						|
		*rx_time = now;
 | 
						|
 | 
						|
	spa_log_trace(r->log, "%p: rx:%" PRIu64 " now:%" PRIu64 " d:%"PRIu64" off:%"PRIi64,
 | 
						|
			r, *rx_time, now, now - *rx_time, r->offset);
 | 
						|
 | 
						|
	return res;
 | 
						|
}
 | 
						|
 | 
						|
 | 
						|
static inline void spa_bt_recvmsg_init(struct spa_bt_recvmsg_data *data, int fd,
 | 
						|
		struct spa_system *data_system, struct spa_log *log)
 | 
						|
{
 | 
						|
	int flags = 0;
 | 
						|
	socklen_t len = sizeof(flags);
 | 
						|
 | 
						|
	data->log = log;
 | 
						|
	data->data_system = data_system;
 | 
						|
	data->fd = fd;
 | 
						|
	data->offset = 0;
 | 
						|
	data->err = 0;
 | 
						|
 | 
						|
	if (getsockopt(fd, SOL_SOCKET, SO_TIMESTAMPING, &flags, &len) < 0)
 | 
						|
		spa_log_info(log, "failed to get SO_TIMESTAMPING");
 | 
						|
 | 
						|
	flags |= SOF_TIMESTAMPING_SOFTWARE | SOF_TIMESTAMPING_RX_SOFTWARE;
 | 
						|
	if (setsockopt(fd, SOL_SOCKET, SO_TIMESTAMPING, &flags, sizeof(flags)) < 0)
 | 
						|
		spa_log_info(log, "failed to set SO_TIMESTAMPING");
 | 
						|
}
 | 
						|
 | 
						|
#endif
 |