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Test: atest DecoderTestXheAac ; atest DecoderTestAacDrc Change-Id: I19b87d33b1d0ed8b43b4ea57992f1c6df500d9f4
595 lines
21 KiB
C++
595 lines
21 KiB
C++
/* -----------------------------------------------------------------------------
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Software License for The Fraunhofer FDK AAC Codec Library for Android
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© Copyright 1995 - 2018 Fraunhofer-Gesellschaft zur Förderung der angewandten
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Forschung e.V. All rights reserved.
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1. INTRODUCTION
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The Fraunhofer FDK AAC Codec Library for Android ("FDK AAC Codec") is software
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that implements the MPEG Advanced Audio Coding ("AAC") encoding and decoding
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scheme for digital audio. This FDK AAC Codec software is intended to be used on
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a wide variety of Android devices.
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AAC's HE-AAC and HE-AAC v2 versions are regarded as today's most efficient
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general perceptual audio codecs. AAC-ELD is considered the best-performing
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full-bandwidth communications codec by independent studies and is widely
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deployed. AAC has been standardized by ISO and IEC as part of the MPEG
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specifications.
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Patent licenses for necessary patent claims for the FDK AAC Codec (including
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those of Fraunhofer) may be obtained through Via Licensing
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(www.vialicensing.com) or through the respective patent owners individually for
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the purpose of encoding or decoding bit streams in products that are compliant
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with the ISO/IEC MPEG audio standards. Please note that most manufacturers of
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Android devices already license these patent claims through Via Licensing or
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directly from the patent owners, and therefore FDK AAC Codec software may
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already be covered under those patent licenses when it is used for those
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licensed purposes only.
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Commercially-licensed AAC software libraries, including floating-point versions
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with enhanced sound quality, are also available from Fraunhofer. Users are
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encouraged to check the Fraunhofer website for additional applications
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information and documentation.
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2. COPYRIGHT LICENSE
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Redistribution and use in source and binary forms, with or without modification,
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are permitted without payment of copyright license fees provided that you
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satisfy the following conditions:
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You must retain the complete text of this software license in redistributions of
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the FDK AAC Codec or your modifications thereto in source code form.
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You must retain the complete text of this software license in the documentation
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and/or other materials provided with redistributions of the FDK AAC Codec or
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your modifications thereto in binary form. You must make available free of
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charge copies of the complete source code of the FDK AAC Codec and your
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modifications thereto to recipients of copies in binary form.
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The name of Fraunhofer may not be used to endorse or promote products derived
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from this library without prior written permission.
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You may not charge copyright license fees for anyone to use, copy or distribute
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the FDK AAC Codec software or your modifications thereto.
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Your modified versions of the FDK AAC Codec must carry prominent notices stating
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that you changed the software and the date of any change. For modified versions
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of the FDK AAC Codec, the term "Fraunhofer FDK AAC Codec Library for Android"
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must be replaced by the term "Third-Party Modified Version of the Fraunhofer FDK
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AAC Codec Library for Android."
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3. NO PATENT LICENSE
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NO EXPRESS OR IMPLIED LICENSES TO ANY PATENT CLAIMS, including without
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limitation the patents of Fraunhofer, ARE GRANTED BY THIS SOFTWARE LICENSE.
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Fraunhofer provides no warranty of patent non-infringement with respect to this
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software.
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You may use this FDK AAC Codec software or modifications thereto only for
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purposes that are authorized by appropriate patent licenses.
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4. DISCLAIMER
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This FDK AAC Codec software is provided by Fraunhofer on behalf of the copyright
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holders and contributors "AS IS" and WITHOUT ANY EXPRESS OR IMPLIED WARRANTIES,
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including but not limited to the implied warranties of merchantability and
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fitness for a particular purpose. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR
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CONTRIBUTORS BE LIABLE for any direct, indirect, incidental, special, exemplary,
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or consequential damages, including but not limited to procurement of substitute
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goods or services; loss of use, data, or profits, or business interruption,
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however caused and on any theory of liability, whether in contract, strict
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liability, or tort (including negligence), arising in any way out of the use of
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this software, even if advised of the possibility of such damage.
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5. CONTACT INFORMATION
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Fraunhofer Institute for Integrated Circuits IIS
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Attention: Audio and Multimedia Departments - FDK AAC LL
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Am Wolfsmantel 33
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91058 Erlangen, Germany
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www.iis.fraunhofer.de/amm
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amm-info@iis.fraunhofer.de
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----------------------------------------------------------------------------- */
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/**************************** SBR decoder library ******************************
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Author(s):
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Description:
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*******************************************************************************/
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#include "psbitdec.h"
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#include "sbr_rom.h"
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#include "huff_dec.h"
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/* PS dec privat functions */
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SBR_ERROR ResetPsDec(HANDLE_PS_DEC h_ps_d);
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/***************************************************************************/
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/*!
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\brief huffman decoding by codebook table
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\return index of huffman codebook table
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****************************************************************************/
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static SCHAR decode_huff_cw(
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Huffman h, /*!< pointer to huffman codebook table */
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HANDLE_FDK_BITSTREAM hBitBuf, /*!< Handle to Bitbuffer */
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int *length) /*!< length of huffman codeword (or NULL) */
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{
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UCHAR bit = 0;
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SCHAR index = 0;
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UCHAR bitCount = 0;
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while (index >= 0) {
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bit = FDKreadBits(hBitBuf, 1);
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bitCount++;
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index = h[index][bit];
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}
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if (length) {
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*length = bitCount;
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}
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return (index + 64); /* Add offset */
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}
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/***************************************************************************/
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/*!
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\brief helper function - limiting of value to min/max values
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\return limited value
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****************************************************************************/
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static SCHAR limitMinMax(SCHAR i, SCHAR min, SCHAR max) {
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if (i < min)
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return min;
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else if (i > max)
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return max;
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else
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return i;
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}
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/***************************************************************************/
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/*!
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\brief Decodes delta values in-place and updates
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data buffers according to quantization classes.
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When delta coded in frequency the first element is deltacode from zero.
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aIndex buffer is decoded from delta values to actual values.
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\return none
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****************************************************************************/
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static void deltaDecodeArray(
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SCHAR enable, SCHAR *aIndex, /*!< ICC/IID parameters */
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SCHAR *aPrevFrameIndex, /*!< ICC/IID parameters of previous frame */
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SCHAR DtDf, UCHAR nrElements, /*!< as conveyed in bitstream */
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/*!< output array size: nrElements*stride */
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UCHAR stride, /*!< 1=dflt, 2=half freq. resolution */
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SCHAR minIdx, SCHAR maxIdx) {
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int i;
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/* Delta decode */
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if (enable == 1) {
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if (DtDf == 0) { /* Delta coded in freq */
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aIndex[0] = 0 + aIndex[0];
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aIndex[0] = limitMinMax(aIndex[0], minIdx, maxIdx);
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for (i = 1; i < nrElements; i++) {
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aIndex[i] = aIndex[i - 1] + aIndex[i];
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aIndex[i] = limitMinMax(aIndex[i], minIdx, maxIdx);
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}
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} else { /* Delta time */
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for (i = 0; i < nrElements; i++) {
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aIndex[i] = aPrevFrameIndex[i * stride] + aIndex[i];
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aIndex[i] = limitMinMax(aIndex[i], minIdx, maxIdx);
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}
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}
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} else { /* No data is sent, set index to zero */
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for (i = 0; i < nrElements; i++) {
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aIndex[i] = 0;
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}
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}
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if (stride == 2) {
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for (i = nrElements * stride - 1; i > 0; i--) {
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aIndex[i] = aIndex[i >> 1];
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}
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}
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}
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/***************************************************************************/
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/*!
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\brief Mapping of ICC/IID parameters to 20 stereo bands
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\return none
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****************************************************************************/
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static void map34IndexTo20(SCHAR *aIndex, /*!< decoded ICC/IID parameters */
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UCHAR noBins) /*!< number of stereo bands */
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{
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aIndex[0] = (2 * aIndex[0] + aIndex[1]) / 3;
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aIndex[1] = (aIndex[1] + 2 * aIndex[2]) / 3;
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aIndex[2] = (2 * aIndex[3] + aIndex[4]) / 3;
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aIndex[3] = (aIndex[4] + 2 * aIndex[5]) / 3;
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aIndex[4] = (aIndex[6] + aIndex[7]) / 2;
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aIndex[5] = (aIndex[8] + aIndex[9]) / 2;
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aIndex[6] = aIndex[10];
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aIndex[7] = aIndex[11];
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aIndex[8] = (aIndex[12] + aIndex[13]) / 2;
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aIndex[9] = (aIndex[14] + aIndex[15]) / 2;
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aIndex[10] = aIndex[16];
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/* For IPD/OPD it stops here */
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if (noBins == NO_HI_RES_BINS) {
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aIndex[11] = aIndex[17];
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aIndex[12] = aIndex[18];
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aIndex[13] = aIndex[19];
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aIndex[14] = (aIndex[20] + aIndex[21]) / 2;
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aIndex[15] = (aIndex[22] + aIndex[23]) / 2;
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aIndex[16] = (aIndex[24] + aIndex[25]) / 2;
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aIndex[17] = (aIndex[26] + aIndex[27]) / 2;
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aIndex[18] = (aIndex[28] + aIndex[29] + aIndex[30] + aIndex[31]) / 4;
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aIndex[19] = (aIndex[32] + aIndex[33]) / 2;
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}
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}
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/***************************************************************************/
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/*!
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\brief Decodes delta coded IID, ICC, IPD and OPD indices
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\return PS processing flag. If set to 1
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****************************************************************************/
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int DecodePs(struct PS_DEC *h_ps_d, /*!< PS handle */
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const UCHAR frameError, /*!< Flag telling that frame had errors */
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PS_DEC_COEFFICIENTS *pScratch) {
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MPEG_PS_BS_DATA *pBsData;
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UCHAR gr, env;
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int bPsHeaderValid, bPsDataAvail;
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/* Assign Scratch */
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h_ps_d->specificTo.mpeg.pCoef = pScratch;
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/* Shortcuts to avoid deferencing and keep the code readable */
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pBsData = &h_ps_d->bsData[h_ps_d->processSlot].mpeg;
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bPsHeaderValid = pBsData->bPsHeaderValid;
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bPsDataAvail =
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(h_ps_d->bPsDataAvail[h_ps_d->processSlot] == ppt_mpeg) ? 1 : 0;
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/***************************************************************************************
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* Decide whether to process or to conceal PS data or not. */
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if ((h_ps_d->psDecodedPrv && !frameError && !bPsDataAvail) ||
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(!h_ps_d->psDecodedPrv &&
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(frameError || !bPsDataAvail || !bPsHeaderValid))) {
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/* Don't apply PS processing.
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* Declare current PS header and bitstream data invalid. */
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pBsData->bPsHeaderValid = 0;
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h_ps_d->bPsDataAvail[h_ps_d->processSlot] = ppt_none;
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return (0);
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}
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if (frameError ||
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!bPsHeaderValid) { /* no new PS data available (e.g. frame loss) */
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/* => keep latest data constant (i.e. FIX with noEnv=0) */
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pBsData->noEnv = 0;
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}
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/***************************************************************************************
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* Decode bitstream payload or prepare parameter for concealment:
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*/
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for (env = 0; env < pBsData->noEnv; env++) {
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SCHAR *aPrevIidIndex;
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SCHAR *aPrevIccIndex;
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UCHAR noIidSteps = pBsData->bFineIidQ ? NO_IID_STEPS_FINE : NO_IID_STEPS;
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if (env == 0) {
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aPrevIidIndex = h_ps_d->specificTo.mpeg.aIidPrevFrameIndex;
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aPrevIccIndex = h_ps_d->specificTo.mpeg.aIccPrevFrameIndex;
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} else {
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aPrevIidIndex = pBsData->aaIidIndex[env - 1];
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aPrevIccIndex = pBsData->aaIccIndex[env - 1];
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}
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deltaDecodeArray(pBsData->bEnableIid, pBsData->aaIidIndex[env],
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aPrevIidIndex, pBsData->abIidDtFlag[env],
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FDK_sbrDecoder_aNoIidBins[pBsData->freqResIid],
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(pBsData->freqResIid) ? 1 : 2, -noIidSteps, noIidSteps);
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deltaDecodeArray(pBsData->bEnableIcc, pBsData->aaIccIndex[env],
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aPrevIccIndex, pBsData->abIccDtFlag[env],
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FDK_sbrDecoder_aNoIccBins[pBsData->freqResIcc],
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(pBsData->freqResIcc) ? 1 : 2, 0, NO_ICC_STEPS - 1);
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} /* for (env=0; env<pBsData->noEnv; env++) */
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/* handling of FIX noEnv=0 */
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if (pBsData->noEnv == 0) {
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/* set noEnv=1, keep last parameters or force 0 if not enabled */
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pBsData->noEnv = 1;
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if (pBsData->bEnableIid) {
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pBsData->bFineIidQ = h_ps_d->specificTo.mpeg.bPrevFrameFineIidQ;
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pBsData->freqResIid = h_ps_d->specificTo.mpeg.prevFreqResIid;
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for (gr = 0; gr < NO_HI_RES_IID_BINS; gr++) {
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pBsData->aaIidIndex[pBsData->noEnv - 1][gr] =
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h_ps_d->specificTo.mpeg.aIidPrevFrameIndex[gr];
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}
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} else {
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for (gr = 0; gr < NO_HI_RES_IID_BINS; gr++) {
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pBsData->aaIidIndex[pBsData->noEnv - 1][gr] = 0;
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}
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}
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if (pBsData->bEnableIcc) {
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pBsData->freqResIcc = h_ps_d->specificTo.mpeg.prevFreqResIcc;
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for (gr = 0; gr < NO_HI_RES_ICC_BINS; gr++) {
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pBsData->aaIccIndex[pBsData->noEnv - 1][gr] =
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h_ps_d->specificTo.mpeg.aIccPrevFrameIndex[gr];
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}
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} else {
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for (gr = 0; gr < NO_HI_RES_ICC_BINS; gr++) {
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pBsData->aaIccIndex[pBsData->noEnv - 1][gr] = 0;
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}
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}
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}
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/* Update previous frame Iid quantization */
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h_ps_d->specificTo.mpeg.bPrevFrameFineIidQ = pBsData->bFineIidQ;
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/* Update previous frequency resolution for IID */
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h_ps_d->specificTo.mpeg.prevFreqResIid = pBsData->freqResIid;
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/* Update previous frequency resolution for ICC */
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h_ps_d->specificTo.mpeg.prevFreqResIcc = pBsData->freqResIcc;
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/* Update previous frame index buffers */
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for (gr = 0; gr < NO_HI_RES_IID_BINS; gr++) {
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h_ps_d->specificTo.mpeg.aIidPrevFrameIndex[gr] =
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pBsData->aaIidIndex[pBsData->noEnv - 1][gr];
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}
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for (gr = 0; gr < NO_HI_RES_ICC_BINS; gr++) {
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h_ps_d->specificTo.mpeg.aIccPrevFrameIndex[gr] =
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pBsData->aaIccIndex[pBsData->noEnv - 1][gr];
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}
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/* PS data from bitstream (if avail) was decoded now */
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h_ps_d->bPsDataAvail[h_ps_d->processSlot] = ppt_none;
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/* handling of env borders for FIX & VAR */
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if (pBsData->bFrameClass == 0) {
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/* FIX_BORDERS NoEnv=0,1,2,4 */
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pBsData->aEnvStartStop[0] = 0;
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for (env = 1; env < pBsData->noEnv; env++) {
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pBsData->aEnvStartStop[env] =
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(env * h_ps_d->noSubSamples) / pBsData->noEnv;
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}
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pBsData->aEnvStartStop[pBsData->noEnv] = h_ps_d->noSubSamples;
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/* 1024 (32 slots) env borders: 0, 8, 16, 24, 32 */
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/* 960 (30 slots) env borders: 0, 7, 15, 22, 30 */
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} else { /* if (h_ps_d->bFrameClass == 0) */
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/* VAR_BORDERS NoEnv=1,2,3,4 */
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pBsData->aEnvStartStop[0] = 0;
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/* handle case aEnvStartStop[noEnv]<noSubSample for VAR_BORDERS by
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duplicating last PS parameters and incrementing noEnv */
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if (pBsData->aEnvStartStop[pBsData->noEnv] < h_ps_d->noSubSamples) {
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for (gr = 0; gr < NO_HI_RES_IID_BINS; gr++) {
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pBsData->aaIidIndex[pBsData->noEnv][gr] =
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pBsData->aaIidIndex[pBsData->noEnv - 1][gr];
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}
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for (gr = 0; gr < NO_HI_RES_ICC_BINS; gr++) {
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pBsData->aaIccIndex[pBsData->noEnv][gr] =
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pBsData->aaIccIndex[pBsData->noEnv - 1][gr];
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}
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pBsData->noEnv++;
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pBsData->aEnvStartStop[pBsData->noEnv] = h_ps_d->noSubSamples;
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}
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/* enforce strictly monotonic increasing borders */
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for (env = 1; env < pBsData->noEnv; env++) {
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UCHAR thr;
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thr = (UCHAR)h_ps_d->noSubSamples - (pBsData->noEnv - env);
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if (pBsData->aEnvStartStop[env] > thr) {
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pBsData->aEnvStartStop[env] = thr;
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} else {
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thr = pBsData->aEnvStartStop[env - 1] + 1;
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if (pBsData->aEnvStartStop[env] < thr) {
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pBsData->aEnvStartStop[env] = thr;
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}
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}
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}
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} /* if (h_ps_d->bFrameClass == 0) ... else */
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/* copy data prior to possible 20<->34 in-place mapping */
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for (env = 0; env < pBsData->noEnv; env++) {
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UCHAR i;
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for (i = 0; i < NO_HI_RES_IID_BINS; i++) {
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h_ps_d->specificTo.mpeg.pCoef->aaIidIndexMapped[env][i] =
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pBsData->aaIidIndex[env][i];
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}
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for (i = 0; i < NO_HI_RES_ICC_BINS; i++) {
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h_ps_d->specificTo.mpeg.pCoef->aaIccIndexMapped[env][i] =
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pBsData->aaIccIndex[env][i];
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}
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}
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/* MPEG baseline PS */
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/* Baseline version of PS always uses the hybrid filter structure with 20
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* stereo bands. */
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/* If ICC/IID parameters for 34 stereo bands are decoded they have to be
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* mapped to 20 */
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/* stereo bands. */
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/* Additionaly the IPD/OPD parameters won't be used. */
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for (env = 0; env < pBsData->noEnv; env++) {
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if (pBsData->freqResIid == 2)
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map34IndexTo20(h_ps_d->specificTo.mpeg.pCoef->aaIidIndexMapped[env],
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NO_HI_RES_IID_BINS);
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if (pBsData->freqResIcc == 2)
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map34IndexTo20(h_ps_d->specificTo.mpeg.pCoef->aaIccIndexMapped[env],
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NO_HI_RES_ICC_BINS);
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/* IPD/OPD is disabled in baseline version and thus was removed here */
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}
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return (1);
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}
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/***************************************************************************/
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/*!
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\brief Reads parametric stereo data from bitstream
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\return
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****************************************************************************/
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unsigned int ReadPsData(
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HANDLE_PS_DEC h_ps_d, /*!< handle to struct PS_DEC */
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HANDLE_FDK_BITSTREAM hBitBuf, /*!< handle to struct BIT_BUF */
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int nBitsLeft /*!< max number of bits available */
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) {
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MPEG_PS_BS_DATA *pBsData;
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UCHAR gr, env;
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SCHAR dtFlag;
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INT startbits;
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Huffman CurrentTable;
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SCHAR bEnableHeader;
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if (!h_ps_d) return 0;
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pBsData = &h_ps_d->bsData[h_ps_d->bsReadSlot].mpeg;
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if (h_ps_d->bsReadSlot != h_ps_d->bsLastSlot) {
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/* Copy last header data */
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FDKmemcpy(pBsData, &h_ps_d->bsData[h_ps_d->bsLastSlot].mpeg,
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sizeof(MPEG_PS_BS_DATA));
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}
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startbits = (INT)FDKgetValidBits(hBitBuf);
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bEnableHeader = (SCHAR)FDKreadBits(hBitBuf, 1);
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/* Read header */
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if (bEnableHeader) {
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pBsData->bPsHeaderValid = 1;
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pBsData->bEnableIid = (UCHAR)FDKreadBits(hBitBuf, 1);
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if (pBsData->bEnableIid) {
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pBsData->modeIid = (UCHAR)FDKreadBits(hBitBuf, 3);
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}
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pBsData->bEnableIcc = (UCHAR)FDKreadBits(hBitBuf, 1);
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if (pBsData->bEnableIcc) {
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pBsData->modeIcc = (UCHAR)FDKreadBits(hBitBuf, 3);
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}
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pBsData->bEnableExt = (UCHAR)FDKreadBits(hBitBuf, 1);
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}
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pBsData->bFrameClass = (UCHAR)FDKreadBits(hBitBuf, 1);
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if (pBsData->bFrameClass == 0) {
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/* FIX_BORDERS NoEnv=0,1,2,4 */
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pBsData->noEnv =
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FDK_sbrDecoder_aFixNoEnvDecode[(UCHAR)FDKreadBits(hBitBuf, 2)];
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/* all additional handling of env borders is now in DecodePs() */
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} else {
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/* VAR_BORDERS NoEnv=1,2,3,4 */
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pBsData->noEnv = 1 + (UCHAR)FDKreadBits(hBitBuf, 2);
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for (env = 1; env < pBsData->noEnv + 1; env++)
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pBsData->aEnvStartStop[env] = ((UCHAR)FDKreadBits(hBitBuf, 5)) + 1;
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/* all additional handling of env borders is now in DecodePs() */
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}
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/* verify that IID & ICC modes (quant grid, freq res) are supported */
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if ((pBsData->modeIid > 5) || (pBsData->modeIcc > 5)) {
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/* no useful PS data could be read from bitstream */
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h_ps_d->bPsDataAvail[h_ps_d->bsReadSlot] = ppt_none;
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/* discard all remaining bits */
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nBitsLeft -= startbits - (INT)FDKgetValidBits(hBitBuf);
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while (nBitsLeft > 0) {
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int i = nBitsLeft;
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if (i > 8) {
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i = 8;
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}
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FDKreadBits(hBitBuf, i);
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nBitsLeft -= i;
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}
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return (UINT)(startbits - (INT)FDKgetValidBits(hBitBuf));
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}
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if (pBsData->modeIid > 2) {
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pBsData->freqResIid = pBsData->modeIid - 3;
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pBsData->bFineIidQ = 1;
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} else {
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pBsData->freqResIid = pBsData->modeIid;
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pBsData->bFineIidQ = 0;
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}
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if (pBsData->modeIcc > 2) {
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pBsData->freqResIcc = pBsData->modeIcc - 3;
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} else {
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pBsData->freqResIcc = pBsData->modeIcc;
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}
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/* Extract IID data */
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if (pBsData->bEnableIid) {
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for (env = 0; env < pBsData->noEnv; env++) {
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dtFlag = (SCHAR)FDKreadBits(hBitBuf, 1);
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if (!dtFlag) {
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if (pBsData->bFineIidQ)
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CurrentTable = (Huffman)&aBookPsIidFineFreqDecode;
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else
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CurrentTable = (Huffman)&aBookPsIidFreqDecode;
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} else {
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if (pBsData->bFineIidQ)
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CurrentTable = (Huffman)&aBookPsIidFineTimeDecode;
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else
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CurrentTable = (Huffman)&aBookPsIidTimeDecode;
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}
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for (gr = 0; gr < FDK_sbrDecoder_aNoIidBins[pBsData->freqResIid]; gr++)
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pBsData->aaIidIndex[env][gr] =
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decode_huff_cw(CurrentTable, hBitBuf, NULL);
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pBsData->abIidDtFlag[env] = dtFlag;
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}
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}
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/* Extract ICC data */
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if (pBsData->bEnableIcc) {
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for (env = 0; env < pBsData->noEnv; env++) {
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dtFlag = (SCHAR)FDKreadBits(hBitBuf, 1);
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if (!dtFlag)
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CurrentTable = (Huffman)&aBookPsIccFreqDecode;
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else
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CurrentTable = (Huffman)&aBookPsIccTimeDecode;
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for (gr = 0; gr < FDK_sbrDecoder_aNoIccBins[pBsData->freqResIcc]; gr++)
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pBsData->aaIccIndex[env][gr] =
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decode_huff_cw(CurrentTable, hBitBuf, NULL);
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pBsData->abIccDtFlag[env] = dtFlag;
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}
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}
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if (pBsData->bEnableExt) {
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/*!
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Decoders that support only the baseline version of the PS tool are allowed
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to ignore the IPD/OPD data, but according header data has to be parsed.
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ISO/IEC 14496-3 Subpart 8 Annex 4
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*/
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int cnt = FDKreadBits(hBitBuf, PS_EXTENSION_SIZE_BITS);
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if (cnt == (1 << PS_EXTENSION_SIZE_BITS) - 1) {
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cnt += FDKreadBits(hBitBuf, PS_EXTENSION_ESC_COUNT_BITS);
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}
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while (cnt--) FDKreadBits(hBitBuf, 8);
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}
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/* new PS data was read from bitstream */
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h_ps_d->bPsDataAvail[h_ps_d->bsReadSlot] = ppt_mpeg;
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return (startbits - (INT)FDKgetValidBits(hBitBuf));
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}
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