mirror of https://github.com/mstorsjo/fdk-aac.git
665 lines
27 KiB
C++
665 lines
27 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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/**************************** AAC encoder library ******************************
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Author(s): A. Groeschel
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Description: channel mapping functionality
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*******************************************************************************/
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#include "channel_map.h"
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#include "bitenc.h"
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#include "psy_const.h"
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#include "qc_data.h"
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#include "aacEnc_ram.h"
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#include "FDK_tools_rom.h"
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/* channel_assignment treats the relationship of Input file channels
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to the encoder channels.
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This is necessary because the usual order in RIFF files (.wav)
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is different from the elements order in the coder given
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by Table 8.1 (implicit speaker mapping) of the AAC standard.
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In mono and stereo case, this is trivial.
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In mc case, it looks like this:
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Channel Input file coder chan
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5ch:
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front center 2 0 (SCE channel)
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left center 0 1 (1st of 1st CPE)
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right center 1 2 (2nd of 1st CPE)
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left surround 3 3 (1st of 2nd CPE)
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right surround 4 4 (2nd of 2nd CPE)
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5.1ch:
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front center 2 0 (SCE channel)
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left center 0 1 (1st of 1st CPE)
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right center 1 2 (2nd of 1st CPE)
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left surround 4 3 (1st of 2nd CPE)
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right surround 5 4 (2nd of 2nd CPE)
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LFE 3 5 (LFE)
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*/
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/* Channel mode configuration tab provides,
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corresponding number of channels and elements
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*/
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static const CHANNEL_MODE_CONFIG_TAB channelModeConfig[] = {
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{MODE_1, 1, 1, 1}, /* chCfg 1, SCE */
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{MODE_2, 2, 2, 1}, /* chCfg 2, CPE */
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{MODE_1_2, 3, 3, 2}, /* chCfg 3, SCE,CPE */
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{MODE_1_2_1, 4, 4, 3}, /* chCfg 4, SCE,CPE,SCE */
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{MODE_1_2_2, 5, 5, 3}, /* chCfg 5, SCE,CPE,CPE */
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{MODE_1_2_2_1, 6, 5, 4}, /* chCfg 6, SCE,CPE,CPE,LFE */
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{MODE_1_2_2_2_1, 8, 7, 5}, /* chCfg 7, SCE,CPE,CPE,CPE,LFE */
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{MODE_6_1, 7, 6, 5}, /* chCfg 11, SCE,CPE,CPE,SCE,LFE */
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{MODE_7_1_BACK, 8, 7, 5}, /* chCfg 12, SCE,CPE,CPE,CPE,LFE */
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{MODE_7_1_TOP_FRONT, 8, 7, 5}, /* chCfg 14, SCE,CPE,CPE,LFE,CPE */
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{MODE_7_1_REAR_SURROUND, 8, 7,
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5}, /* same as MODE_7_1_BACK, SCE,CPE,CPE,CPE,LFE */
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{MODE_7_1_FRONT_CENTER, 8, 7,
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5}, /* same as MODE_1_2_2_2_1, SCE,CPE,CPE,CPE,LFE */
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};
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AAC_ENCODER_ERROR FDKaacEnc_DetermineEncoderMode(CHANNEL_MODE* mode,
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INT nChannels) {
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INT i;
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CHANNEL_MODE encMode = MODE_INVALID;
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if (*mode == MODE_UNKNOWN) {
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for (i = 0; i < (INT)sizeof(channelModeConfig) /
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(INT)sizeof(CHANNEL_MODE_CONFIG_TAB);
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i++) {
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if (channelModeConfig[i].nChannels == nChannels) {
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encMode = channelModeConfig[i].encMode;
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break;
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}
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}
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*mode = encMode;
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} else {
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/* check if valid channel configuration */
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if (FDKaacEnc_GetChannelModeConfiguration(*mode)->nChannels == nChannels) {
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encMode = *mode;
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}
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}
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if (encMode == MODE_INVALID) {
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return AAC_ENC_UNSUPPORTED_CHANNELCONFIG;
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}
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return AAC_ENC_OK;
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}
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static INT FDKaacEnc_initElement(ELEMENT_INFO* elInfo, MP4_ELEMENT_ID elType,
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INT* cnt, FDK_channelMapDescr* mapDescr,
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UINT mapIdx, INT* it_cnt,
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const FIXP_DBL relBits) {
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INT error = 0;
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INT counter = *cnt;
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elInfo->elType = elType;
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elInfo->relativeBits = relBits;
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switch (elInfo->elType) {
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case ID_SCE:
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case ID_LFE:
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case ID_CCE:
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elInfo->nChannelsInEl = 1;
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elInfo->ChannelIndex[0] =
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FDK_chMapDescr_getMapValue(mapDescr, counter++, mapIdx);
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elInfo->instanceTag = it_cnt[elType]++;
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break;
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case ID_CPE:
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elInfo->nChannelsInEl = 2;
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elInfo->ChannelIndex[0] =
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FDK_chMapDescr_getMapValue(mapDescr, counter++, mapIdx);
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elInfo->ChannelIndex[1] =
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FDK_chMapDescr_getMapValue(mapDescr, counter++, mapIdx);
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elInfo->instanceTag = it_cnt[elType]++;
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break;
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case ID_DSE:
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elInfo->nChannelsInEl = 0;
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elInfo->ChannelIndex[0] = 0;
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elInfo->ChannelIndex[1] = 0;
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elInfo->instanceTag = it_cnt[elType]++;
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break;
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default:
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error = 1;
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};
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*cnt = counter;
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return error;
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}
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AAC_ENCODER_ERROR FDKaacEnc_InitChannelMapping(CHANNEL_MODE mode,
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CHANNEL_ORDER co,
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CHANNEL_MAPPING* cm) {
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INT count = 0; /* count through coder channels */
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INT it_cnt[ID_END + 1];
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INT i;
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UINT mapIdx;
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FDK_channelMapDescr mapDescr;
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for (i = 0; i < ID_END; i++) it_cnt[i] = 0;
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FDKmemclear(cm, sizeof(CHANNEL_MAPPING));
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/* init channel mapping*/
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for (i = 0; i < (INT)sizeof(channelModeConfig) /
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(INT)sizeof(CHANNEL_MODE_CONFIG_TAB);
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i++) {
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if (channelModeConfig[i].encMode == mode) {
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cm->encMode = channelModeConfig[i].encMode;
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cm->nChannels = channelModeConfig[i].nChannels;
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cm->nChannelsEff = channelModeConfig[i].nChannelsEff;
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cm->nElements = channelModeConfig[i].nElements;
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break;
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}
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}
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/* init map descriptor */
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FDK_chMapDescr_init(&mapDescr, NULL, 0, (co == CH_ORDER_MPEG) ? 1 : 0);
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switch (mode) {
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case MODE_7_1_REAR_SURROUND: /* MODE_7_1_REAR_SURROUND is equivalent to
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MODE_7_1_BACK */
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mapIdx = (INT)MODE_7_1_BACK;
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break;
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case MODE_7_1_FRONT_CENTER: /* MODE_7_1_FRONT_CENTER is equivalent to
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MODE_1_2_2_2_1 */
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mapIdx = (INT)MODE_1_2_2_2_1;
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break;
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default:
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mapIdx =
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(INT)mode > 14
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? 0
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: (INT)
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mode; /* if channel config > 14 MPEG mapping will be used */
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}
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/* init element info struct */
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switch (mode) {
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case MODE_1:
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/* (mono) sce */
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FDKaacEnc_initElement(&cm->elInfo[0], ID_SCE, &count, &mapDescr, mapIdx,
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it_cnt, (FIXP_DBL)MAXVAL_DBL);
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break;
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case MODE_2:
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/* (stereo) cpe */
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FDKaacEnc_initElement(&cm->elInfo[0], ID_CPE, &count, &mapDescr, mapIdx,
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it_cnt, (FIXP_DBL)MAXVAL_DBL);
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break;
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case MODE_1_2:
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/* sce + cpe */
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FDKaacEnc_initElement(&cm->elInfo[0], ID_SCE, &count, &mapDescr, mapIdx,
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it_cnt, FL2FXCONST_DBL(0.4f));
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FDKaacEnc_initElement(&cm->elInfo[1], ID_CPE, &count, &mapDescr, mapIdx,
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it_cnt, FL2FXCONST_DBL(0.6f));
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break;
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case MODE_1_2_1:
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/* sce + cpe + sce */
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FDKaacEnc_initElement(&cm->elInfo[0], ID_SCE, &count, &mapDescr, mapIdx,
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it_cnt, FL2FXCONST_DBL(0.3f));
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FDKaacEnc_initElement(&cm->elInfo[1], ID_CPE, &count, &mapDescr, mapIdx,
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it_cnt, FL2FXCONST_DBL(0.4f));
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FDKaacEnc_initElement(&cm->elInfo[2], ID_SCE, &count, &mapDescr, mapIdx,
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it_cnt, FL2FXCONST_DBL(0.3f));
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break;
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case MODE_1_2_2:
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/* sce + cpe + cpe */
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FDKaacEnc_initElement(&cm->elInfo[0], ID_SCE, &count, &mapDescr, mapIdx,
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it_cnt, FL2FXCONST_DBL(0.26f));
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FDKaacEnc_initElement(&cm->elInfo[1], ID_CPE, &count, &mapDescr, mapIdx,
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it_cnt, FL2FXCONST_DBL(0.37f));
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FDKaacEnc_initElement(&cm->elInfo[2], ID_CPE, &count, &mapDescr, mapIdx,
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it_cnt, FL2FXCONST_DBL(0.37f));
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break;
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case MODE_1_2_2_1:
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/* (5.1) sce + cpe + cpe + lfe */
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FDKaacEnc_initElement(&cm->elInfo[0], ID_SCE, &count, &mapDescr, mapIdx,
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it_cnt, FL2FXCONST_DBL(0.24f));
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FDKaacEnc_initElement(&cm->elInfo[1], ID_CPE, &count, &mapDescr, mapIdx,
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it_cnt, FL2FXCONST_DBL(0.35f));
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FDKaacEnc_initElement(&cm->elInfo[2], ID_CPE, &count, &mapDescr, mapIdx,
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it_cnt, FL2FXCONST_DBL(0.35f));
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FDKaacEnc_initElement(&cm->elInfo[3], ID_LFE, &count, &mapDescr, mapIdx,
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it_cnt, FL2FXCONST_DBL(0.06f));
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break;
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case MODE_6_1:
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/* (6.1) sce + cpe + cpe + sce + lfe */
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FDKaacEnc_initElement(&cm->elInfo[0], ID_SCE, &count, &mapDescr, mapIdx,
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it_cnt, FL2FXCONST_DBL(0.2f));
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FDKaacEnc_initElement(&cm->elInfo[1], ID_CPE, &count, &mapDescr, mapIdx,
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it_cnt, FL2FXCONST_DBL(0.275f));
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FDKaacEnc_initElement(&cm->elInfo[2], ID_CPE, &count, &mapDescr, mapIdx,
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it_cnt, FL2FXCONST_DBL(0.275f));
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FDKaacEnc_initElement(&cm->elInfo[3], ID_SCE, &count, &mapDescr, mapIdx,
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it_cnt, FL2FXCONST_DBL(0.2f));
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FDKaacEnc_initElement(&cm->elInfo[4], ID_LFE, &count, &mapDescr, mapIdx,
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it_cnt, FL2FXCONST_DBL(0.05f));
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break;
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case MODE_1_2_2_2_1:
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case MODE_7_1_BACK:
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case MODE_7_1_TOP_FRONT:
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case MODE_7_1_REAR_SURROUND:
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case MODE_7_1_FRONT_CENTER: {
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/* (7.1) sce + cpe + cpe + cpe + lfe */
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/* (7.1 top) sce + cpe + cpe + lfe + cpe */
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FDKaacEnc_initElement(&cm->elInfo[0], ID_SCE, &count, &mapDescr, mapIdx,
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it_cnt, FL2FXCONST_DBL(0.18f));
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FDKaacEnc_initElement(&cm->elInfo[1], ID_CPE, &count, &mapDescr, mapIdx,
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it_cnt, FL2FXCONST_DBL(0.26f));
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FDKaacEnc_initElement(&cm->elInfo[2], ID_CPE, &count, &mapDescr, mapIdx,
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it_cnt, FL2FXCONST_DBL(0.26f));
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if (mode != MODE_7_1_TOP_FRONT) {
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FDKaacEnc_initElement(&cm->elInfo[3], ID_CPE, &count, &mapDescr, mapIdx,
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it_cnt, FL2FXCONST_DBL(0.26f));
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FDKaacEnc_initElement(&cm->elInfo[4], ID_LFE, &count, &mapDescr, mapIdx,
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it_cnt, FL2FXCONST_DBL(0.04f));
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} else {
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FDKaacEnc_initElement(&cm->elInfo[3], ID_LFE, &count, &mapDescr, mapIdx,
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it_cnt, FL2FXCONST_DBL(0.04f));
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FDKaacEnc_initElement(&cm->elInfo[4], ID_CPE, &count, &mapDescr, mapIdx,
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it_cnt, FL2FXCONST_DBL(0.26f));
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}
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break;
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}
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default:
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//*chMap=0;
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return AAC_ENC_UNSUPPORTED_CHANNELCONFIG;
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};
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FDK_ASSERT(cm->nElements <= ((8)));
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return AAC_ENC_OK;
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}
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AAC_ENCODER_ERROR FDKaacEnc_InitElementBits(QC_STATE* hQC, CHANNEL_MAPPING* cm,
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INT bitrateTot, INT averageBitsTot,
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INT maxChannelBits) {
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int sc_brTot = CountLeadingBits(bitrateTot);
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switch (cm->encMode) {
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case MODE_1:
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hQC->elementBits[0]->chBitrateEl = bitrateTot;
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hQC->elementBits[0]->maxBitsEl = maxChannelBits;
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hQC->elementBits[0]->relativeBitsEl = cm->elInfo[0].relativeBits;
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break;
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case MODE_2:
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hQC->elementBits[0]->chBitrateEl = bitrateTot >> 1;
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hQC->elementBits[0]->maxBitsEl = 2 * maxChannelBits;
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hQC->elementBits[0]->relativeBitsEl = cm->elInfo[0].relativeBits;
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break;
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case MODE_1_2: {
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hQC->elementBits[0]->relativeBitsEl = cm->elInfo[0].relativeBits;
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hQC->elementBits[1]->relativeBitsEl = cm->elInfo[1].relativeBits;
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FIXP_DBL sceRate = cm->elInfo[0].relativeBits;
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FIXP_DBL cpeRate = cm->elInfo[1].relativeBits;
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hQC->elementBits[0]->chBitrateEl =
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fMult(sceRate, (FIXP_DBL)(bitrateTot << sc_brTot)) >> sc_brTot;
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hQC->elementBits[1]->chBitrateEl =
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fMult(cpeRate, (FIXP_DBL)(bitrateTot << sc_brTot)) >> (sc_brTot + 1);
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hQC->elementBits[0]->maxBitsEl = maxChannelBits;
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hQC->elementBits[1]->maxBitsEl = 2 * maxChannelBits;
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break;
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}
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case MODE_1_2_1: {
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/* sce + cpe + sce */
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hQC->elementBits[0]->relativeBitsEl = cm->elInfo[0].relativeBits;
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hQC->elementBits[1]->relativeBitsEl = cm->elInfo[1].relativeBits;
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hQC->elementBits[2]->relativeBitsEl = cm->elInfo[2].relativeBits;
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FIXP_DBL sce1Rate = cm->elInfo[0].relativeBits;
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FIXP_DBL cpeRate = cm->elInfo[1].relativeBits;
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FIXP_DBL sce2Rate = cm->elInfo[2].relativeBits;
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hQC->elementBits[0]->chBitrateEl =
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fMult(sce1Rate, (FIXP_DBL)(bitrateTot << sc_brTot)) >> sc_brTot;
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|
hQC->elementBits[1]->chBitrateEl =
|
|
fMult(cpeRate, (FIXP_DBL)(bitrateTot << sc_brTot)) >> (sc_brTot + 1);
|
|
hQC->elementBits[2]->chBitrateEl =
|
|
fMult(sce2Rate, (FIXP_DBL)(bitrateTot << sc_brTot)) >> sc_brTot;
|
|
|
|
hQC->elementBits[0]->maxBitsEl = maxChannelBits;
|
|
hQC->elementBits[1]->maxBitsEl = 2 * maxChannelBits;
|
|
hQC->elementBits[2]->maxBitsEl = maxChannelBits;
|
|
break;
|
|
}
|
|
case MODE_1_2_2: {
|
|
/* sce + cpe + cpe */
|
|
hQC->elementBits[0]->relativeBitsEl = cm->elInfo[0].relativeBits;
|
|
hQC->elementBits[1]->relativeBitsEl = cm->elInfo[1].relativeBits;
|
|
hQC->elementBits[2]->relativeBitsEl = cm->elInfo[2].relativeBits;
|
|
FIXP_DBL sceRate = cm->elInfo[0].relativeBits;
|
|
FIXP_DBL cpe1Rate = cm->elInfo[1].relativeBits;
|
|
FIXP_DBL cpe2Rate = cm->elInfo[2].relativeBits;
|
|
|
|
hQC->elementBits[0]->chBitrateEl =
|
|
fMult(sceRate, (FIXP_DBL)(bitrateTot << sc_brTot)) >> sc_brTot;
|
|
hQC->elementBits[1]->chBitrateEl =
|
|
fMult(cpe1Rate, (FIXP_DBL)(bitrateTot << sc_brTot)) >> (sc_brTot + 1);
|
|
hQC->elementBits[2]->chBitrateEl =
|
|
fMult(cpe2Rate, (FIXP_DBL)(bitrateTot << sc_brTot)) >> (sc_brTot + 1);
|
|
|
|
hQC->elementBits[0]->maxBitsEl = maxChannelBits;
|
|
hQC->elementBits[1]->maxBitsEl = 2 * maxChannelBits;
|
|
hQC->elementBits[2]->maxBitsEl = 2 * maxChannelBits;
|
|
break;
|
|
}
|
|
case MODE_1_2_2_1: {
|
|
/* (5.1) sce + cpe + cpe + lfe */
|
|
hQC->elementBits[0]->relativeBitsEl = cm->elInfo[0].relativeBits;
|
|
hQC->elementBits[1]->relativeBitsEl = cm->elInfo[1].relativeBits;
|
|
hQC->elementBits[2]->relativeBitsEl = cm->elInfo[2].relativeBits;
|
|
hQC->elementBits[3]->relativeBitsEl = cm->elInfo[3].relativeBits;
|
|
FIXP_DBL sceRate = cm->elInfo[0].relativeBits;
|
|
FIXP_DBL cpe1Rate = cm->elInfo[1].relativeBits;
|
|
FIXP_DBL cpe2Rate = cm->elInfo[2].relativeBits;
|
|
FIXP_DBL lfeRate = cm->elInfo[3].relativeBits;
|
|
|
|
int maxBitsTot =
|
|
maxChannelBits * 5; /* LFE does not add to bit reservoir */
|
|
int sc = CountLeadingBits(fixMax(maxChannelBits, averageBitsTot));
|
|
int maxLfeBits = (int)fMax(
|
|
(INT)((fMult(lfeRate, (FIXP_DBL)(maxChannelBits << sc)) >> sc) << 1),
|
|
(INT)((fMult(FL2FXCONST_DBL(1.1f / 2.f),
|
|
fMult(lfeRate, (FIXP_DBL)(averageBitsTot << sc)))
|
|
<< 1) >>
|
|
sc));
|
|
|
|
maxChannelBits = (maxBitsTot - maxLfeBits);
|
|
sc = CountLeadingBits(maxChannelBits);
|
|
|
|
maxChannelBits =
|
|
fMult((FIXP_DBL)maxChannelBits << sc, GetInvInt(5)) >> sc;
|
|
|
|
hQC->elementBits[0]->chBitrateEl =
|
|
fMult(sceRate, (FIXP_DBL)(bitrateTot << sc_brTot)) >> sc_brTot;
|
|
hQC->elementBits[1]->chBitrateEl =
|
|
fMult(cpe1Rate, (FIXP_DBL)(bitrateTot << sc_brTot)) >> (sc_brTot + 1);
|
|
hQC->elementBits[2]->chBitrateEl =
|
|
fMult(cpe2Rate, (FIXP_DBL)(bitrateTot << sc_brTot)) >> (sc_brTot + 1);
|
|
hQC->elementBits[3]->chBitrateEl =
|
|
fMult(lfeRate, (FIXP_DBL)(bitrateTot << sc_brTot)) >> sc_brTot;
|
|
|
|
hQC->elementBits[0]->maxBitsEl = maxChannelBits;
|
|
hQC->elementBits[1]->maxBitsEl = 2 * maxChannelBits;
|
|
hQC->elementBits[2]->maxBitsEl = 2 * maxChannelBits;
|
|
hQC->elementBits[3]->maxBitsEl = maxLfeBits;
|
|
|
|
break;
|
|
}
|
|
case MODE_6_1: {
|
|
/* (6.1) sce + cpe + cpe + sce + lfe */
|
|
FIXP_DBL sceRate = hQC->elementBits[0]->relativeBitsEl =
|
|
cm->elInfo[0].relativeBits;
|
|
FIXP_DBL cpe1Rate = hQC->elementBits[1]->relativeBitsEl =
|
|
cm->elInfo[1].relativeBits;
|
|
FIXP_DBL cpe2Rate = hQC->elementBits[2]->relativeBitsEl =
|
|
cm->elInfo[2].relativeBits;
|
|
FIXP_DBL sce2Rate = hQC->elementBits[3]->relativeBitsEl =
|
|
cm->elInfo[3].relativeBits;
|
|
FIXP_DBL lfeRate = hQC->elementBits[4]->relativeBitsEl =
|
|
cm->elInfo[4].relativeBits;
|
|
|
|
int maxBitsTot =
|
|
maxChannelBits * 6; /* LFE does not add to bit reservoir */
|
|
int sc = CountLeadingBits(fixMax(maxChannelBits, averageBitsTot));
|
|
int maxLfeBits = (int)fMax(
|
|
(INT)((fMult(lfeRate, (FIXP_DBL)(maxChannelBits << sc)) >> sc) << 1),
|
|
(INT)((fMult(FL2FXCONST_DBL(1.1f / 2.f),
|
|
fMult(lfeRate, (FIXP_DBL)(averageBitsTot << sc)))
|
|
<< 1) >>
|
|
sc));
|
|
|
|
maxChannelBits = (maxBitsTot - maxLfeBits) / 6;
|
|
|
|
hQC->elementBits[0]->chBitrateEl =
|
|
fMult(sceRate, (FIXP_DBL)(bitrateTot << sc_brTot)) >> sc_brTot;
|
|
hQC->elementBits[1]->chBitrateEl =
|
|
fMult(cpe1Rate, (FIXP_DBL)(bitrateTot << sc_brTot)) >> (sc_brTot + 1);
|
|
hQC->elementBits[2]->chBitrateEl =
|
|
fMult(cpe2Rate, (FIXP_DBL)(bitrateTot << sc_brTot)) >> (sc_brTot + 1);
|
|
hQC->elementBits[3]->chBitrateEl =
|
|
fMult(sce2Rate, (FIXP_DBL)(bitrateTot << sc_brTot)) >> (sc_brTot + 1);
|
|
hQC->elementBits[4]->chBitrateEl =
|
|
fMult(lfeRate, (FIXP_DBL)(bitrateTot << sc_brTot)) >> sc_brTot;
|
|
|
|
hQC->elementBits[0]->maxBitsEl = maxChannelBits;
|
|
hQC->elementBits[1]->maxBitsEl = 2 * maxChannelBits;
|
|
hQC->elementBits[2]->maxBitsEl = 2 * maxChannelBits;
|
|
hQC->elementBits[3]->maxBitsEl = maxChannelBits;
|
|
hQC->elementBits[4]->maxBitsEl = maxLfeBits;
|
|
break;
|
|
}
|
|
case MODE_7_1_TOP_FRONT:
|
|
case MODE_7_1_BACK:
|
|
case MODE_7_1_REAR_SURROUND:
|
|
case MODE_7_1_FRONT_CENTER:
|
|
case MODE_1_2_2_2_1: {
|
|
int cpe3Idx = (cm->encMode != MODE_7_1_TOP_FRONT) ? 3 : 4;
|
|
int lfeIdx = (cm->encMode != MODE_7_1_TOP_FRONT) ? 4 : 3;
|
|
|
|
/* (7.1) sce + cpe + cpe + cpe + lfe */
|
|
FIXP_DBL sceRate = hQC->elementBits[0]->relativeBitsEl =
|
|
cm->elInfo[0].relativeBits;
|
|
FIXP_DBL cpe1Rate = hQC->elementBits[1]->relativeBitsEl =
|
|
cm->elInfo[1].relativeBits;
|
|
FIXP_DBL cpe2Rate = hQC->elementBits[2]->relativeBitsEl =
|
|
cm->elInfo[2].relativeBits;
|
|
FIXP_DBL cpe3Rate = hQC->elementBits[cpe3Idx]->relativeBitsEl =
|
|
cm->elInfo[cpe3Idx].relativeBits;
|
|
FIXP_DBL lfeRate = hQC->elementBits[lfeIdx]->relativeBitsEl =
|
|
cm->elInfo[lfeIdx].relativeBits;
|
|
|
|
int maxBitsTot =
|
|
maxChannelBits * 7; /* LFE does not add to bit reservoir */
|
|
int sc = CountLeadingBits(fixMax(maxChannelBits, averageBitsTot));
|
|
int maxLfeBits = (int)fMax(
|
|
(INT)((fMult(lfeRate, (FIXP_DBL)(maxChannelBits << sc)) >> sc) << 1),
|
|
(INT)((fMult(FL2FXCONST_DBL(1.1f / 2.f),
|
|
fMult(lfeRate, (FIXP_DBL)(averageBitsTot << sc)))
|
|
<< 1) >>
|
|
sc));
|
|
|
|
maxChannelBits = (maxBitsTot - maxLfeBits) / 7;
|
|
|
|
hQC->elementBits[0]->chBitrateEl =
|
|
fMult(sceRate, (FIXP_DBL)(bitrateTot << sc_brTot)) >> sc_brTot;
|
|
hQC->elementBits[1]->chBitrateEl =
|
|
fMult(cpe1Rate, (FIXP_DBL)(bitrateTot << sc_brTot)) >> (sc_brTot + 1);
|
|
hQC->elementBits[2]->chBitrateEl =
|
|
fMult(cpe2Rate, (FIXP_DBL)(bitrateTot << sc_brTot)) >> (sc_brTot + 1);
|
|
hQC->elementBits[cpe3Idx]->chBitrateEl =
|
|
fMult(cpe3Rate, (FIXP_DBL)(bitrateTot << sc_brTot)) >> (sc_brTot + 1);
|
|
hQC->elementBits[lfeIdx]->chBitrateEl =
|
|
fMult(lfeRate, (FIXP_DBL)(bitrateTot << sc_brTot)) >> sc_brTot;
|
|
|
|
hQC->elementBits[0]->maxBitsEl = maxChannelBits;
|
|
hQC->elementBits[1]->maxBitsEl = 2 * maxChannelBits;
|
|
hQC->elementBits[2]->maxBitsEl = 2 * maxChannelBits;
|
|
hQC->elementBits[cpe3Idx]->maxBitsEl = 2 * maxChannelBits;
|
|
hQC->elementBits[lfeIdx]->maxBitsEl = maxLfeBits;
|
|
break;
|
|
}
|
|
|
|
default:
|
|
return AAC_ENC_UNSUPPORTED_CHANNELCONFIG;
|
|
}
|
|
|
|
return AAC_ENC_OK;
|
|
}
|
|
|
|
/********************************************************************************/
|
|
/* */
|
|
/* function: GetMonoStereoMODE(const CHANNEL_MODE mode) */
|
|
/* */
|
|
/* description: Determines encoder setting from channel mode. */
|
|
/* Multichannel modes are mapped to mono or stereo modes */
|
|
/* returns MODE_MONO in case of mono, */
|
|
/* MODE_STEREO in case of stereo */
|
|
/* MODE_INVALID in case of error */
|
|
/* */
|
|
/* input: CHANNEL_MODE mode: Encoder mode (see qc_data.h). */
|
|
/* output: return: CM_STEREO_MODE monoStereoSetting */
|
|
/* (MODE_INVALID: error, */
|
|
/* MODE_MONO: mono */
|
|
/* MODE_STEREO: stereo). */
|
|
/* */
|
|
/* misc: No memory is allocated. */
|
|
/* */
|
|
/********************************************************************************/
|
|
|
|
ELEMENT_MODE FDKaacEnc_GetMonoStereoMode(const CHANNEL_MODE mode) {
|
|
ELEMENT_MODE monoStereoSetting = EL_MODE_INVALID;
|
|
|
|
switch (mode) {
|
|
case MODE_1: /* mono setups */
|
|
monoStereoSetting = EL_MODE_MONO;
|
|
break;
|
|
|
|
case MODE_2: /* stereo setups */
|
|
case MODE_1_2:
|
|
case MODE_1_2_1:
|
|
case MODE_1_2_2:
|
|
case MODE_1_2_2_1:
|
|
case MODE_6_1:
|
|
case MODE_1_2_2_2_1:
|
|
case MODE_7_1_REAR_SURROUND:
|
|
case MODE_7_1_FRONT_CENTER:
|
|
case MODE_7_1_BACK:
|
|
case MODE_7_1_TOP_FRONT:
|
|
monoStereoSetting = EL_MODE_STEREO;
|
|
break;
|
|
|
|
default: /* error */
|
|
monoStereoSetting = EL_MODE_INVALID;
|
|
break;
|
|
}
|
|
|
|
return monoStereoSetting;
|
|
}
|
|
|
|
const CHANNEL_MODE_CONFIG_TAB* FDKaacEnc_GetChannelModeConfiguration(
|
|
const CHANNEL_MODE mode) {
|
|
INT i;
|
|
const CHANNEL_MODE_CONFIG_TAB* cm_config = NULL;
|
|
|
|
/* get channel mode config */
|
|
for (i = 0; i < (INT)sizeof(channelModeConfig) /
|
|
(INT)sizeof(CHANNEL_MODE_CONFIG_TAB);
|
|
i++) {
|
|
if (channelModeConfig[i].encMode == mode) {
|
|
cm_config = &channelModeConfig[i];
|
|
break;
|
|
}
|
|
}
|
|
return cm_config;
|
|
}
|