400 lines
10 KiB
C
400 lines
10 KiB
C
/* $NetBSD: linear.c,v 1.3 2020/01/11 04:06:13 isaki Exp $ */
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/*
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* Copyright (C) 2017 Tetsuya Isaki. All rights reserved.
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* Copyright (C) 2017 Y.Sugahara (moveccr). All rights reserved.
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*
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* Redistribution and use in source and binary forms, with or without
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* modification, are permitted provided that the following conditions
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* are met:
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* 1. Redistributions of source code must retain the above copyright
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* notice, this list of conditions and the following disclaimer.
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* 2. Redistributions in binary form must reproduce the above copyright
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* notice, this list of conditions and the following disclaimer in the
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* documentation and/or other materials provided with the distribution.
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*
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* THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
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* IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
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* OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
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* IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
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* INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING,
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* BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
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* LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED
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* AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY,
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* OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
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* OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
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* SUCH DAMAGE.
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*/
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#include <sys/cdefs.h>
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__KERNEL_RCSID(0, "$NetBSD: linear.c,v 1.3 2020/01/11 04:06:13 isaki Exp $");
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#include <sys/types.h>
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#include <sys/systm.h>
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#include <sys/device.h>
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#include <dev/audio/audiovar.h>
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#include <dev/audio/linear.h>
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/*
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* audio_linear8_to_internal:
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* This filter performs conversion from [US]LINEAR8 to internal format.
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*/
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void
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audio_linear8_to_internal(audio_filter_arg_t *arg)
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{
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const uint8_t *s;
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aint_t *d;
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uint8_t xor;
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u_int sample_count;
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u_int i;
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DIAGNOSTIC_filter_arg(arg);
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KASSERT(audio_format2_is_linear(arg->srcfmt));
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KASSERT(arg->srcfmt->precision == 8);
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KASSERT(arg->srcfmt->stride == 8);
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KASSERT(audio_format2_is_internal(arg->dstfmt));
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KASSERT(arg->srcfmt->channels == arg->dstfmt->channels);
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s = arg->src;
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d = arg->dst;
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sample_count = arg->count * arg->srcfmt->channels;
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xor = audio_format2_is_signed(arg->srcfmt) ? 0 : 0x80;
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for (i = 0; i < sample_count; i++) {
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uint8_t val;
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val = *s++;
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val ^= xor;
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*d++ = (auint_t)val << (AUDIO_INTERNAL_BITS - 8);
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}
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}
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/*
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* audio_internal_to_linear8:
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* This filter performs conversion from internal format to [US]LINEAR8.
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*/
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void
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audio_internal_to_linear8(audio_filter_arg_t *arg)
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{
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const aint_t *s;
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uint8_t *d;
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uint8_t xor;
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u_int sample_count;
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u_int i;
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DIAGNOSTIC_filter_arg(arg);
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KASSERT(audio_format2_is_linear(arg->dstfmt));
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KASSERT(arg->dstfmt->precision == 8);
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KASSERT(arg->dstfmt->stride == 8);
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KASSERT(audio_format2_is_internal(arg->srcfmt));
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KASSERT(arg->srcfmt->channels == arg->dstfmt->channels);
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s = arg->src;
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d = arg->dst;
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sample_count = arg->count * arg->srcfmt->channels;
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xor = audio_format2_is_signed(arg->dstfmt) ? 0 : 0x80;
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for (i = 0; i < sample_count; i++) {
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uint8_t val;
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val = (*s++) >> (AUDIO_INTERNAL_BITS - 8);
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val ^= xor;
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*d++ = val;
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}
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}
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/*
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* audio_linear16_to_internal:
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* This filter performs conversion from [US]LINEAR16{LE,BE} to internal
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* format.
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*/
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void
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audio_linear16_to_internal(audio_filter_arg_t *arg)
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{
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const uint16_t *s;
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aint_t *d;
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uint16_t xor;
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u_int sample_count;
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u_int shift;
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u_int i;
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bool is_src_NE;
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DIAGNOSTIC_filter_arg(arg);
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KASSERT(audio_format2_is_linear(arg->srcfmt));
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KASSERT(arg->srcfmt->precision == 16);
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KASSERT(arg->srcfmt->stride == 16);
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KASSERT(audio_format2_is_internal(arg->dstfmt));
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KASSERT(arg->srcfmt->channels == arg->dstfmt->channels);
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s = arg->src;
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d = arg->dst;
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sample_count = arg->count * arg->srcfmt->channels;
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shift = AUDIO_INTERNAL_BITS - 16;
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xor = audio_format2_is_signed(arg->srcfmt) ? 0 : 0x8000;
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is_src_NE = (audio_format2_endian(arg->srcfmt) == BYTE_ORDER);
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/*
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* Since slinear16_OppositeEndian to slinear_NativeEndian is used
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* so much especially on big endian machines, so it's expanded.
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* Other conversions are rarely used, so they are compressed.
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*/
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if (__predict_true(xor == 0) && is_src_NE == false) {
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/* slinear16_OE to slinear<AI>_NE */
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for (i = 0; i < sample_count; i++) {
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uint16_t val;
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val = *s++;
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val = bswap16(val);
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*d++ = (auint_t)val << shift;
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}
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} else {
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/* slinear16_NE to slinear<AI>_NE */
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/* ulinear16_{NE,OE} to slinear<AI>_NE */
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for (i = 0; i < sample_count; i++) {
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uint16_t val;
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val = *s++;
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if (!is_src_NE)
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val = bswap16(val);
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val ^= xor;
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*d++ = (auint_t)val << shift;
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}
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}
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}
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/*
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* audio_internal_to_linear16:
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* This filter performs conversion from internal format to
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* [US]LINEAR16{LE,BE}.
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*/
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void
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audio_internal_to_linear16(audio_filter_arg_t *arg)
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{
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const aint_t *s;
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uint16_t *d;
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uint16_t xor;
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u_int sample_count;
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u_int shift;
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u_int i;
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bool is_dst_NE;
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DIAGNOSTIC_filter_arg(arg);
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KASSERT(audio_format2_is_linear(arg->dstfmt));
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KASSERT(arg->dstfmt->precision == 16);
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KASSERT(arg->dstfmt->stride == 16);
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KASSERT(audio_format2_is_internal(arg->srcfmt));
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KASSERT(arg->srcfmt->channels == arg->dstfmt->channels);
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s = arg->src;
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d = arg->dst;
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sample_count = arg->count * arg->srcfmt->channels;
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shift = AUDIO_INTERNAL_BITS - 16;
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xor = audio_format2_is_signed(arg->dstfmt) ? 0 : 0x8000;
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is_dst_NE = (audio_format2_endian(arg->dstfmt) == BYTE_ORDER);
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/*
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* Since slinear_NativeEndian to slinear16_OppositeEndian is used
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* so much especially on big endian machines, so it's expanded.
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* Other conversions are rarely used, so they are compressed.
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*/
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if (__predict_true(xor == 0) && is_dst_NE == false) {
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/* slinear<AI>_NE -> slinear16_OE */
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for (i = 0; i < sample_count; i++) {
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uint16_t val;
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val = (*s++) >> shift;
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val = bswap16(val);
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*d++ = val;
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}
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} else {
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/* slinear<AI>_NE -> slinear16_NE */
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/* slinear<AI>_NE -> ulinear16_{NE,OE} */
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for (i = 0; i < sample_count; i++) {
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uint16_t val;
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val = (*s++) >> shift;
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val ^= xor;
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if (!is_dst_NE)
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val = bswap16(val);
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*d++ = val;
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}
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}
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}
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#if defined(AUDIO_SUPPORT_LINEAR24)
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/*
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* audio_linear24_to_internal:
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* This filter performs conversion from [US]LINEAR24/24{LE,BE} to
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* internal format. Since it's rerely used, it's size optimized.
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*/
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void
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audio_linear24_to_internal(audio_filter_arg_t *arg)
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{
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const uint8_t *s;
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aint_t *d;
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auint_t xor;
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u_int sample_count;
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u_int i;
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bool is_src_LE;
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DIAGNOSTIC_filter_arg(arg);
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KASSERT(audio_format2_is_linear(arg->srcfmt));
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KASSERT(arg->srcfmt->precision == 24);
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KASSERT(arg->srcfmt->stride == 24);
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KASSERT(audio_format2_is_internal(arg->dstfmt));
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KASSERT(arg->srcfmt->channels == arg->dstfmt->channels);
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s = arg->src;
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d = arg->dst;
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sample_count = arg->count * arg->srcfmt->channels;
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xor = audio_format2_is_signed(arg->srcfmt)
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? 0 : (1 << (AUDIO_INTERNAL_BITS - 1));
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is_src_LE = (audio_format2_endian(arg->srcfmt) == LITTLE_ENDIAN);
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for (i = 0; i < sample_count; i++) {
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uint32_t val;
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if (is_src_LE) {
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val = s[0] | (s[1] << 8) | (s[2] << 16);
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} else {
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val = (s[0] << 16) | (s[1] << 8) | s[2];
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}
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s += 3;
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#if AUDIO_INTERNAL_BITS < 24
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val >>= 24 - AUDIO_INTERNAL_BITS;
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#else
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val <<= AUDIO_INTERNAL_BITS - 24;
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#endif
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val ^= xor;
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*d++ = val;
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}
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}
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/*
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* audio_internal_to_linear24:
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* This filter performs conversion from internal format to
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* [US]LINEAR24/24{LE,BE}. Since it's rarely used, it's size optimized.
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*/
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void
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audio_internal_to_linear24(audio_filter_arg_t *arg)
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{
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const aint_t *s;
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uint8_t *d;
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auint_t xor;
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u_int sample_count;
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u_int i;
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bool is_dst_LE;
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DIAGNOSTIC_filter_arg(arg);
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KASSERT(audio_format2_is_linear(arg->dstfmt));
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KASSERT(arg->dstfmt->precision == 24);
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KASSERT(arg->dstfmt->stride == 24);
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KASSERT(audio_format2_is_internal(arg->srcfmt));
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KASSERT(arg->srcfmt->channels == arg->dstfmt->channels);
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s = arg->src;
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d = arg->dst;
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sample_count = arg->count * arg->srcfmt->channels;
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xor = audio_format2_is_signed(arg->dstfmt)
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? 0 : (1 << (AUDIO_INTERNAL_BITS - 1));
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is_dst_LE = (audio_format2_endian(arg->dstfmt) == LITTLE_ENDIAN);
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for (i = 0; i < sample_count; i++) {
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uint32_t val;
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val = *s++;
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val ^= xor;
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#if AUDIO_INTERNAL_BITS < 24
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val <<= 24 - AUDIO_INTERNAL_BITS;
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#else
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val >>= AUDIO_INTERNAL_BITS - 24;
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#endif
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if (is_dst_LE) {
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d[0] = val & 0xff;
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d[1] = (val >> 8) & 0xff;
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d[2] = (val >> 16) & 0xff;
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} else {
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d[0] = (val >> 16) & 0xff;
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d[1] = (val >> 8) & 0xff;
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d[2] = val & 0xff;
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}
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d += 3;
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}
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}
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#endif /* AUDIO_SUPPORT_LINEAR24 */
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/*
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* audio_linear32_to_internal:
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* This filter performs conversion from [US]LINEAR32{LE,BE} to internal
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* format. Since it's rarely used, it's size optimized.
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*/
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void
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audio_linear32_to_internal(audio_filter_arg_t *arg)
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{
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const uint32_t *s;
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aint_t *d;
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auint_t xor;
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u_int sample_count;
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u_int i;
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bool is_src_NE;
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DIAGNOSTIC_filter_arg(arg);
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KASSERT(audio_format2_is_linear(arg->srcfmt));
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KASSERT(arg->srcfmt->precision == 32);
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KASSERT(arg->srcfmt->stride == 32);
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KASSERT(audio_format2_is_internal(arg->dstfmt));
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KASSERT(arg->srcfmt->channels == arg->dstfmt->channels);
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s = arg->src;
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d = arg->dst;
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sample_count = arg->count * arg->srcfmt->channels;
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xor = audio_format2_is_signed(arg->srcfmt)
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? 0 : (1 << (AUDIO_INTERNAL_BITS - 1));
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is_src_NE = (audio_format2_endian(arg->srcfmt) == BYTE_ORDER);
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for (i = 0; i < sample_count; i++) {
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uint32_t val;
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val = *s++;
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if (!is_src_NE)
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val = bswap32(val);
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val >>= 32 - AUDIO_INTERNAL_BITS;
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val ^= xor;
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*d++ = val;
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}
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}
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/*
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* audio_internal_to_linear32:
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* This filter performs conversion from internal format to
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* [US]LINEAR32{LE,BE}. Since it's rarely used, it's size optimized.
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*/
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void
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audio_internal_to_linear32(audio_filter_arg_t *arg)
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{
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const aint_t *s;
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uint32_t *d;
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auint_t xor;
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u_int sample_count;
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u_int i;
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bool is_dst_NE;
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DIAGNOSTIC_filter_arg(arg);
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KASSERT(audio_format2_is_linear(arg->dstfmt));
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KASSERT(arg->dstfmt->precision == 32);
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KASSERT(arg->dstfmt->stride == 32);
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KASSERT(audio_format2_is_internal(arg->srcfmt));
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KASSERT(arg->srcfmt->channels == arg->dstfmt->channels);
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s = arg->src;
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d = arg->dst;
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sample_count = arg->count * arg->srcfmt->channels;
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xor = audio_format2_is_signed(arg->dstfmt)
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? 0 : (1 << (AUDIO_INTERNAL_BITS - 1));
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is_dst_NE = (audio_format2_endian(arg->dstfmt) == BYTE_ORDER);
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for (i = 0; i < sample_count; i++) {
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uint32_t val;
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val = *s++;
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val ^= xor;
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val <<= 32 - AUDIO_INTERNAL_BITS;
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if (!is_dst_NE)
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val = bswap32(val);
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*d++ = val;
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}
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}
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