180 lines
7.8 KiB
C
180 lines
7.8 KiB
C
/* libFLAC - Free Lossless Audio Codec library
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* Copyright (C) 2000-2009 Josh Coalson
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* Copyright (C) 2011-2023 Xiph.Org Foundation
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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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*
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* - 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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*
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* - 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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* - Neither the name of the Xiph.org Foundation nor the names of its
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* contributors may be used to endorse or promote products derived from
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* this software without specific prior written permission.
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*
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* THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
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* ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
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* LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
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* A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR
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* CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL,
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* EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO,
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* PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR
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* PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF
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* LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING
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* NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS
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* SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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*/
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#ifdef HAVE_CONFIG_H
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# include <config.h>
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#endif
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#include "private/cpu.h"
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#ifndef FLAC__INTEGER_ONLY_LIBRARY
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#ifndef FLAC__NO_ASM
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#if (defined FLAC__CPU_IA32 || defined FLAC__CPU_X86_64) && FLAC__HAS_X86INTRIN
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#include "private/fixed.h"
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#ifdef FLAC__SSSE3_SUPPORTED
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#include <tmmintrin.h> /* SSSE3 */
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#include <math.h>
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#include "private/macros.h"
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#include "share/compat.h"
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#include "FLAC/assert.h"
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#ifdef FLAC__CPU_IA32
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#define m128i_to_i64(dest, src) _mm_storel_epi64((__m128i*)&dest, src)
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#else
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#define m128i_to_i64(dest, src) dest = _mm_cvtsi128_si64(src)
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#endif
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#ifdef local_abs
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#undef local_abs
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#endif
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#define local_abs(x) ((uint32_t)((x)<0? -(x) : (x)))
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FLAC__SSE_TARGET("ssse3")
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uint32_t FLAC__fixed_compute_best_predictor_intrin_ssse3(const FLAC__int32 data[], uint32_t data_len, float residual_bits_per_sample[FLAC__MAX_FIXED_ORDER + 1])
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{
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FLAC__uint32 total_error_0, total_error_1, total_error_2, total_error_3, total_error_4;
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FLAC__int32 i, data_len_int;
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uint32_t order;
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__m128i total_err0, total_err1, total_err2, total_err3, total_err4;
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__m128i prev_err0, prev_err1, prev_err2, prev_err3;
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__m128i tempA, tempB;
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FLAC__int32 data_scalar[4];
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FLAC__int32 prev_err0_scalar[4];
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FLAC__int32 prev_err1_scalar[4];
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FLAC__int32 prev_err2_scalar[4];
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FLAC__int32 prev_err3_scalar[4];
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total_err0 = _mm_setzero_si128();
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total_err1 = _mm_setzero_si128();
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total_err2 = _mm_setzero_si128();
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total_err3 = _mm_setzero_si128();
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total_err4 = _mm_setzero_si128();
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data_len_int = data_len;
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for(i = 0; i < 4; i++){
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prev_err0_scalar[i] = data[-1+i*(data_len_int/4)];
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prev_err1_scalar[i] = data[-1+i*(data_len_int/4)] - data[-2+i*(data_len_int/4)];
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prev_err2_scalar[i] = prev_err1_scalar[i] - (data[-2+i*(data_len_int/4)] - data[-3+i*(data_len_int/4)]);
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prev_err3_scalar[i] = prev_err2_scalar[i] - (data[-2+i*(data_len_int/4)] - 2*data[-3+i*(data_len_int/4)] + data[-4+i*(data_len_int/4)]);
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}
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prev_err0 = _mm_loadu_si128((const __m128i*)prev_err0_scalar);
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prev_err1 = _mm_loadu_si128((const __m128i*)prev_err1_scalar);
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prev_err2 = _mm_loadu_si128((const __m128i*)prev_err2_scalar);
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prev_err3 = _mm_loadu_si128((const __m128i*)prev_err3_scalar);
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for(i = 0; i < data_len_int / 4; i++){
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data_scalar[0] = data[i];
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data_scalar[1] = data[i+data_len/4];
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data_scalar[2] = data[i+2*(data_len/4)];
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data_scalar[3] = data[i+3*(data_len/4)];
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tempA = _mm_loadu_si128((const __m128i*)data_scalar);
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tempB = _mm_abs_epi32(tempA);
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total_err0 = _mm_add_epi32(total_err0,tempB);
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tempB = _mm_sub_epi32(tempA,prev_err0);
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prev_err0 = tempA;
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tempA = _mm_abs_epi32(tempB);
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total_err1 = _mm_add_epi32(total_err1,tempA);
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tempA = _mm_sub_epi32(tempB,prev_err1);
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prev_err1 = tempB;
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tempB = _mm_abs_epi32(tempA);
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total_err2 = _mm_add_epi32(total_err2,tempB);
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tempB = _mm_sub_epi32(tempA,prev_err2);
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prev_err2 = tempA;
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tempA = _mm_abs_epi32(tempB);
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total_err3 = _mm_add_epi32(total_err3,tempA);
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tempA = _mm_sub_epi32(tempB,prev_err3);
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prev_err3 = tempB;
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tempB = _mm_abs_epi32(tempA);
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total_err4 = _mm_add_epi32(total_err4,tempB);
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}
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_mm_storeu_si128((__m128i*)data_scalar,total_err0);
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total_error_0 = data_scalar[0] + data_scalar[1] + data_scalar[2] + data_scalar[3];
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_mm_storeu_si128((__m128i*)data_scalar,total_err1);
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total_error_1 = data_scalar[0] + data_scalar[1] + data_scalar[2] + data_scalar[3];
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_mm_storeu_si128((__m128i*)data_scalar,total_err2);
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total_error_2 = data_scalar[0] + data_scalar[1] + data_scalar[2] + data_scalar[3];
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_mm_storeu_si128((__m128i*)data_scalar,total_err3);
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total_error_3 = data_scalar[0] + data_scalar[1] + data_scalar[2] + data_scalar[3];
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_mm_storeu_si128((__m128i*)data_scalar,total_err4);
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total_error_4 = data_scalar[0] + data_scalar[1] + data_scalar[2] + data_scalar[3];
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/* Now the remainder of samples needs to be processed */
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i *= 4;
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if(data_len % 4 > 0){
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FLAC__int32 last_error_0 = data[i-1];
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FLAC__int32 last_error_1 = data[i-1] - data[i-2];
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FLAC__int32 last_error_2 = last_error_1 - (data[i-2] - data[i-3]);
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FLAC__int32 last_error_3 = last_error_2 - (data[i-2] - 2*data[i-3] + data[i-4]);
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FLAC__int32 error, save;
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for(; i < data_len_int; i++) {
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error = data[i] ; total_error_0 += local_abs(error); save = error;
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error -= last_error_0; total_error_1 += local_abs(error); last_error_0 = save; save = error;
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error -= last_error_1; total_error_2 += local_abs(error); last_error_1 = save; save = error;
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error -= last_error_2; total_error_3 += local_abs(error); last_error_2 = save; save = error;
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error -= last_error_3; total_error_4 += local_abs(error); last_error_3 = save;
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}
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}
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/* prefer lower order */
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if(total_error_0 <= flac_min(flac_min(flac_min(total_error_1, total_error_2), total_error_3), total_error_4))
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order = 0;
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else if(total_error_1 <= flac_min(flac_min(total_error_2, total_error_3), total_error_4))
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order = 1;
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else if(total_error_2 <= flac_min(total_error_3, total_error_4))
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order = 2;
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else if(total_error_3 <= total_error_4)
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order = 3;
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else
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order = 4;
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/* Estimate the expected number of bits per residual signal sample. */
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/* 'total_error*' is linearly related to the variance of the residual */
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/* signal, so we use it directly to compute E(|x|) */
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FLAC__ASSERT(data_len > 0 || total_error_0 == 0);
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FLAC__ASSERT(data_len > 0 || total_error_1 == 0);
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FLAC__ASSERT(data_len > 0 || total_error_2 == 0);
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FLAC__ASSERT(data_len > 0 || total_error_3 == 0);
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FLAC__ASSERT(data_len > 0 || total_error_4 == 0);
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residual_bits_per_sample[0] = (float)((total_error_0 > 0) ? log(M_LN2 * (double)total_error_0 / (double)data_len) / M_LN2 : 0.0);
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residual_bits_per_sample[1] = (float)((total_error_1 > 0) ? log(M_LN2 * (double)total_error_1 / (double)data_len) / M_LN2 : 0.0);
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residual_bits_per_sample[2] = (float)((total_error_2 > 0) ? log(M_LN2 * (double)total_error_2 / (double)data_len) / M_LN2 : 0.0);
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residual_bits_per_sample[3] = (float)((total_error_3 > 0) ? log(M_LN2 * (double)total_error_3 / (double)data_len) / M_LN2 : 0.0);
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residual_bits_per_sample[4] = (float)((total_error_4 > 0) ? log(M_LN2 * (double)total_error_4 / (double)data_len) / M_LN2 : 0.0);
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return order;
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}
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#endif /* FLAC__SSSE3_SUPPORTED */
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#endif /* (FLAC__CPU_IA32 || FLAC__CPU_X86_64) && FLAC__HAS_X86INTRIN */
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#endif /* FLAC__NO_ASM */
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#endif /* FLAC__INTEGER_ONLY_LIBRARY */
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