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/*
 * MPEG-4 ALS decoder
 * Copyright (c) 2009 Thilo Borgmann <thilo.borgmann _at_ googlemail.com>
 *
 * This file is part of FFmpeg.
 *
 * FFmpeg is free software; you can redistribute it and/or
 * modify it under the terms of the GNU Lesser General Public
 * License as published by the Free Software Foundation; either
 * version 2.1 of the License, or (at your option) any later version.
 *
 * FFmpeg is distributed in the hope that it will be useful,
 * but WITHOUT ANY WARRANTY; without even the implied warranty of
 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
 * Lesser General Public License for more details.
 *
 * You should have received a copy of the GNU Lesser General Public
 * License along with FFmpeg; if not, write to the Free Software
 * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
 */

/**
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 * @file
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 * MPEG-4 ALS decoder
 * @author Thilo Borgmann <thilo.borgmann _at_ googlemail.com>
 */


//#define DEBUG


#include "avcodec.h"
#include "get_bits.h"
#include "unary.h"
#include "mpeg4audio.h"
#include "bytestream.h"
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#include "bgmc.h"
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#include "dsputil.h"
#include "libavutil/crc.h"
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#include <stdint.h>

/** Rice parameters and corresponding index offsets for decoding the
 *  indices of scaled PARCOR values. The table choosen is set globally
 *  by the encoder and stored in ALSSpecificConfig.
 */
static const int8_t parcor_rice_table[3][20][2] = {
    { {-52, 4}, {-29, 5}, {-31, 4}, { 19, 4}, {-16, 4},
      { 12, 3}, { -7, 3}, {  9, 3}, { -5, 3}, {  6, 3},
      { -4, 3}, {  3, 3}, { -3, 2}, {  3, 2}, { -2, 2},
      {  3, 2}, { -1, 2}, {  2, 2}, { -1, 2}, {  2, 2} },
    { {-58, 3}, {-42, 4}, {-46, 4}, { 37, 5}, {-36, 4},
      { 29, 4}, {-29, 4}, { 25, 4}, {-23, 4}, { 20, 4},
      {-17, 4}, { 16, 4}, {-12, 4}, { 12, 3}, {-10, 4},
      {  7, 3}, { -4, 4}, {  3, 3}, { -1, 3}, {  1, 3} },
    { {-59, 3}, {-45, 5}, {-50, 4}, { 38, 4}, {-39, 4},
      { 32, 4}, {-30, 4}, { 25, 3}, {-23, 3}, { 20, 3},
      {-20, 3}, { 16, 3}, {-13, 3}, { 10, 3}, { -7, 3},
      {  3, 3}, {  0, 3}, { -1, 3}, {  2, 3}, { -1, 2} }
};


/** Scaled PARCOR values used for the first two PARCOR coefficients.
 *  To be indexed by the Rice coded indices.
 *  Generated by: parcor_scaled_values[i] = 32 + ((i * (i+1)) << 7) - (1 << 20)
 *  Actual values are divided by 32 in order to be stored in 16 bits.
 */
static const int16_t parcor_scaled_values[] = {
    -1048544 / 32, -1048288 / 32, -1047776 / 32, -1047008 / 32,
    -1045984 / 32, -1044704 / 32, -1043168 / 32, -1041376 / 32,
    -1039328 / 32, -1037024 / 32, -1034464 / 32, -1031648 / 32,
    -1028576 / 32, -1025248 / 32, -1021664 / 32, -1017824 / 32,
    -1013728 / 32, -1009376 / 32, -1004768 / 32,  -999904 / 32,
     -994784 / 32,  -989408 / 32,  -983776 / 32,  -977888 / 32,
     -971744 / 32,  -965344 / 32,  -958688 / 32,  -951776 / 32,
     -944608 / 32,  -937184 / 32,  -929504 / 32,  -921568 / 32,
     -913376 / 32,  -904928 / 32,  -896224 / 32,  -887264 / 32,
     -878048 / 32,  -868576 / 32,  -858848 / 32,  -848864 / 32,
     -838624 / 32,  -828128 / 32,  -817376 / 32,  -806368 / 32,
     -795104 / 32,  -783584 / 32,  -771808 / 32,  -759776 / 32,
     -747488 / 32,  -734944 / 32,  -722144 / 32,  -709088 / 32,
     -695776 / 32,  -682208 / 32,  -668384 / 32,  -654304 / 32,
     -639968 / 32,  -625376 / 32,  -610528 / 32,  -595424 / 32,
     -580064 / 32,  -564448 / 32,  -548576 / 32,  -532448 / 32,
     -516064 / 32,  -499424 / 32,  -482528 / 32,  -465376 / 32,
     -447968 / 32,  -430304 / 32,  -412384 / 32,  -394208 / 32,
     -375776 / 32,  -357088 / 32,  -338144 / 32,  -318944 / 32,
     -299488 / 32,  -279776 / 32,  -259808 / 32,  -239584 / 32,
     -219104 / 32,  -198368 / 32,  -177376 / 32,  -156128 / 32,
     -134624 / 32,  -112864 / 32,   -90848 / 32,   -68576 / 32,
      -46048 / 32,   -23264 / 32,     -224 / 32,    23072 / 32,
       46624 / 32,    70432 / 32,    94496 / 32,   118816 / 32,
      143392 / 32,   168224 / 32,   193312 / 32,   218656 / 32,
      244256 / 32,   270112 / 32,   296224 / 32,   322592 / 32,
      349216 / 32,   376096 / 32,   403232 / 32,   430624 / 32,
      458272 / 32,   486176 / 32,   514336 / 32,   542752 / 32,
      571424 / 32,   600352 / 32,   629536 / 32,   658976 / 32,
      688672 / 32,   718624 / 32,   748832 / 32,   779296 / 32,
      810016 / 32,   840992 / 32,   872224 / 32,   903712 / 32,
      935456 / 32,   967456 / 32,   999712 / 32,  1032224 / 32
};


/** Gain values of p(0) for long-term prediction.
 *  To be indexed by the Rice coded indices.
 */
static const uint8_t ltp_gain_values [4][4] = {
    { 0,  8, 16,  24},
    {32, 40, 48,  56},
    {64, 70, 76,  82},
    {88, 92, 96, 100}
};

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/** Inter-channel weighting factors for multi-channel correlation.
 *  To be indexed by the Rice coded indices.
 */
static const int16_t mcc_weightings[] = {
    204,  192,  179,  166,  153,  140,  128,  115,
    102,   89,   76,   64,   51,   38,   25,   12,
      0,  -12,  -25,  -38,  -51,  -64,  -76,  -89,
   -102, -115, -128, -140, -153, -166, -179, -192
};


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/** Tail codes used in arithmetic coding using block Gilbert-Moore codes.
 */
static const uint8_t tail_code[16][6] = {
    { 74, 44, 25, 13,  7, 3},
    { 68, 42, 24, 13,  7, 3},
    { 58, 39, 23, 13,  7, 3},
    {126, 70, 37, 19, 10, 5},
    {132, 70, 37, 20, 10, 5},
    {124, 70, 38, 20, 10, 5},
    {120, 69, 37, 20, 11, 5},
    {116, 67, 37, 20, 11, 5},
    {108, 66, 36, 20, 10, 5},
    {102, 62, 36, 20, 10, 5},
    { 88, 58, 34, 19, 10, 5},
    {162, 89, 49, 25, 13, 7},
    {156, 87, 49, 26, 14, 7},
    {150, 86, 47, 26, 14, 7},
    {142, 84, 47, 26, 14, 7},
    {131, 79, 46, 26, 14, 7}
};


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enum RA_Flag {
    RA_FLAG_NONE,
    RA_FLAG_FRAMES,
    RA_FLAG_HEADER
};


typedef struct {
    uint32_t samples;         ///< number of samples, 0xFFFFFFFF if unknown
    int resolution;           ///< 000 = 8-bit; 001 = 16-bit; 010 = 24-bit; 011 = 32-bit
    int floating;             ///< 1 = IEEE 32-bit floating-point, 0 = integer
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    int msb_first;            ///< 1 = original CRC calculated on big-endian system, 0 = little-endian
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    int frame_length;         ///< frame length for each frame (last frame may differ)
    int ra_distance;          ///< distance between RA frames (in frames, 0...255)
    enum RA_Flag ra_flag;     ///< indicates where the size of ra units is stored
    int adapt_order;          ///< adaptive order: 1 = on, 0 = off
    int coef_table;           ///< table index of Rice code parameters
    int long_term_prediction; ///< long term prediction (LTP): 1 = on, 0 = off
    int max_order;            ///< maximum prediction order (0..1023)
    int block_switching;      ///< number of block switching levels
    int bgmc;                 ///< "Block Gilbert-Moore Code": 1 = on, 0 = off (Rice coding only)
    int sb_part;              ///< sub-block partition
    int joint_stereo;         ///< joint stereo: 1 = on, 0 = off
    int mc_coding;            ///< extended inter-channel coding (multi channel coding): 1 = on, 0 = off
    int chan_config;          ///< indicates that a chan_config_info field is present
    int chan_sort;            ///< channel rearrangement: 1 = on, 0 = off
    int rlslms;               ///< use "Recursive Least Square-Least Mean Square" predictor: 1 = on, 0 = off
    int chan_config_info;     ///< mapping of channels to loudspeaker locations. Unused until setting channel configuration is implemented.
    int *chan_pos;            ///< original channel positions
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    int crc_enabled;          ///< enable Cyclic Redundancy Checksum
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} ALSSpecificConfig;


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typedef struct {
    int stop_flag;
    int master_channel;
    int time_diff_flag;
    int time_diff_sign;
    int time_diff_index;
    int weighting[6];
} ALSChannelData;


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typedef struct {
    AVCodecContext *avctx;
    ALSSpecificConfig sconf;
    GetBitContext gb;
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    DSPContext dsp;
    const AVCRC *crc_table;
    uint32_t crc_org;               ///< CRC value of the original input data
    uint32_t crc;                   ///< CRC value calculated from decoded data
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    unsigned int cur_frame_length;  ///< length of the current frame to decode
    unsigned int frame_id;          ///< the frame ID / number of the current frame
    unsigned int js_switch;         ///< if true, joint-stereo decoding is enforced
    unsigned int num_blocks;        ///< number of blocks used in the current frame
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    unsigned int s_max;             ///< maximum Rice parameter allowed in entropy coding
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    uint8_t *bgmc_lut;              ///< pointer at lookup tables used for BGMC
    unsigned int *bgmc_lut_status;  ///< pointer at lookup table status flags used for BGMC
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    int ltp_lag_length;             ///< number of bits used for ltp lag value
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    int *use_ltp;                   ///< contains use_ltp flags for all channels
    int *ltp_lag;                   ///< contains ltp lag values for all channels
    int **ltp_gain;                 ///< gain values for ltp 5-tap filter for a channel
    int *ltp_gain_buffer;           ///< contains all gain values for ltp 5-tap filter
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    int32_t **quant_cof;            ///< quantized parcor coefficients for a channel
    int32_t *quant_cof_buffer;      ///< contains all quantized parcor coefficients
    int32_t **lpc_cof;              ///< coefficients of the direct form prediction filter for a channel
    int32_t *lpc_cof_buffer;        ///< contains all coefficients of the direct form prediction filter
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    int32_t *lpc_cof_reversed_buffer; ///< temporary buffer to set up a reversed versio of lpc_cof_buffer
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    ALSChannelData **chan_data;     ///< channel data for multi-channel correlation
    ALSChannelData *chan_data_buffer; ///< contains channel data for all channels
    int *reverted_channels;         ///< stores a flag for each reverted channel
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    int32_t *prev_raw_samples;      ///< contains unshifted raw samples from the previous block
    int32_t **raw_samples;          ///< decoded raw samples for each channel
    int32_t *raw_buffer;            ///< contains all decoded raw samples including carryover samples
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    uint8_t *crc_buffer;            ///< buffer of byte order corrected samples used for CRC check
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} ALSDecContext;


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typedef struct {
    unsigned int block_length;      ///< number of samples within the block
    unsigned int ra_block;          ///< if true, this is a random access block
    int          const_block;       ///< if true, this is a constant value block
    int32_t      const_val;         ///< the sample value of a constant block
    int          js_blocks;         ///< true if this block contains a difference signal
    unsigned int shift_lsbs;        ///< shift of values for this block
    unsigned int opt_order;         ///< prediction order of this block
    int          store_prev_samples;///< if true, carryover samples have to be stored
    int          *use_ltp;          ///< if true, long-term prediction is used
    int          *ltp_lag;          ///< lag value for long-term prediction
    int          *ltp_gain;         ///< gain values for ltp 5-tap filter
    int32_t      *quant_cof;        ///< quantized parcor coefficients
    int32_t      *lpc_cof;          ///< coefficients of the direct form prediction
    int32_t      *raw_samples;      ///< decoded raw samples / residuals for this block
    int32_t      *prev_raw_samples; ///< contains unshifted raw samples from the previous block
    int32_t      *raw_other;        ///< decoded raw samples of the other channel of a channel pair
} ALSBlockData;


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static av_cold void dprint_specific_config(ALSDecContext *ctx)
{
#ifdef DEBUG
    AVCodecContext *avctx    = ctx->avctx;
    ALSSpecificConfig *sconf = &ctx->sconf;

    dprintf(avctx, "resolution = %i\n",           sconf->resolution);
    dprintf(avctx, "floating = %i\n",             sconf->floating);
    dprintf(avctx, "frame_length = %i\n",         sconf->frame_length);
    dprintf(avctx, "ra_distance = %i\n",          sconf->ra_distance);
    dprintf(avctx, "ra_flag = %i\n",              sconf->ra_flag);
    dprintf(avctx, "adapt_order = %i\n",          sconf->adapt_order);
    dprintf(avctx, "coef_table = %i\n",           sconf->coef_table);
    dprintf(avctx, "long_term_prediction = %i\n", sconf->long_term_prediction);
    dprintf(avctx, "max_order = %i\n",            sconf->max_order);
    dprintf(avctx, "block_switching = %i\n",      sconf->block_switching);
    dprintf(avctx, "bgmc = %i\n",                 sconf->bgmc);
    dprintf(avctx, "sb_part = %i\n",              sconf->sb_part);
    dprintf(avctx, "joint_stereo = %i\n",         sconf->joint_stereo);
    dprintf(avctx, "mc_coding = %i\n",            sconf->mc_coding);
    dprintf(avctx, "chan_config = %i\n",          sconf->chan_config);
    dprintf(avctx, "chan_sort = %i\n",            sconf->chan_sort);
    dprintf(avctx, "RLSLMS = %i\n",               sconf->rlslms);
    dprintf(avctx, "chan_config_info = %i\n",     sconf->chan_config_info);
#endif
}


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/** Read an ALSSpecificConfig from a buffer into the output struct.
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 */
static av_cold int read_specific_config(ALSDecContext *ctx)
{
    GetBitContext gb;
    uint64_t ht_size;
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    int i, config_offset;
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    MPEG4AudioConfig m4ac;
    ALSSpecificConfig *sconf = &ctx->sconf;
    AVCodecContext *avctx    = ctx->avctx;
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    uint32_t als_id, header_size, trailer_size;
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    init_get_bits(&gb, avctx->extradata, avctx->extradata_size * 8);

    config_offset = ff_mpeg4audio_get_config(&m4ac, avctx->extradata,
                                             avctx->extradata_size);

    if (config_offset < 0)
        return -1;

    skip_bits_long(&gb, config_offset);

    if (get_bits_left(&gb) < (30 << 3))
        return -1;

    // read the fixed items
    als_id                      = get_bits_long(&gb, 32);
    avctx->sample_rate          = m4ac.sample_rate;
    skip_bits_long(&gb, 32); // sample rate already known
    sconf->samples              = get_bits_long(&gb, 32);
    avctx->channels             = m4ac.channels;
    skip_bits(&gb, 16);      // number of channels already knwon
    skip_bits(&gb, 3);       // skip file_type
    sconf->resolution           = get_bits(&gb, 3);
    sconf->floating             = get_bits1(&gb);
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    sconf->msb_first            = get_bits1(&gb);
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    sconf->frame_length         = get_bits(&gb, 16) + 1;
    sconf->ra_distance          = get_bits(&gb, 8);
    sconf->ra_flag              = get_bits(&gb, 2);
    sconf->adapt_order          = get_bits1(&gb);
    sconf->coef_table           = get_bits(&gb, 2);
    sconf->long_term_prediction = get_bits1(&gb);
    sconf->max_order            = get_bits(&gb, 10);
    sconf->block_switching      = get_bits(&gb, 2);
    sconf->bgmc                 = get_bits1(&gb);
    sconf->sb_part              = get_bits1(&gb);
    sconf->joint_stereo         = get_bits1(&gb);
    sconf->mc_coding            = get_bits1(&gb);
    sconf->chan_config          = get_bits1(&gb);
    sconf->chan_sort            = get_bits1(&gb);
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    sconf->crc_enabled          = get_bits1(&gb);
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    sconf->rlslms               = get_bits1(&gb);
    skip_bits(&gb, 5);       // skip 5 reserved bits
    skip_bits1(&gb);         // skip aux_data_enabled


    // check for ALSSpecificConfig struct
    if (als_id != MKBETAG('A','L','S','\0'))
        return -1;

    ctx->cur_frame_length = sconf->frame_length;

    // read channel config
    if (sconf->chan_config)
        sconf->chan_config_info = get_bits(&gb, 16);
    // TODO: use this to set avctx->channel_layout


    // read channel sorting
    if (sconf->chan_sort && avctx->channels > 1) {
        int chan_pos_bits = av_ceil_log2(avctx->channels);
        int bits_needed  = avctx->channels * chan_pos_bits + 7;
        if (get_bits_left(&gb) < bits_needed)
            return -1;

        if (!(sconf->chan_pos = av_malloc(avctx->channels * sizeof(*sconf->chan_pos))))
            return AVERROR(ENOMEM);

        for (i = 0; i < avctx->channels; i++)
            sconf->chan_pos[i] = get_bits(&gb, chan_pos_bits);

        align_get_bits(&gb);
        // TODO: use this to actually do channel sorting
    } else {
        sconf->chan_sort = 0;
    }


    // read fixed header and trailer sizes,
    // if size = 0xFFFFFFFF then there is no data field!
    if (get_bits_left(&gb) < 64)
        return -1;

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    header_size  = get_bits_long(&gb, 32);
    trailer_size = get_bits_long(&gb, 32);
    if (header_size  == 0xFFFFFFFF)
        header_size  = 0;
    if (trailer_size == 0xFFFFFFFF)
        trailer_size = 0;
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    ht_size = ((int64_t)(header_size) + (int64_t)(trailer_size)) << 3;
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    // skip the header and trailer data
    if (get_bits_left(&gb) < ht_size)
        return -1;

    if (ht_size > INT32_MAX)
        return -1;

    skip_bits_long(&gb, ht_size);


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    // initialize CRC calculation
    if (sconf->crc_enabled) {
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        if (get_bits_left(&gb) < 32)
            return -1;

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        if (avctx->error_recognition >= FF_ER_CAREFUL) {
            ctx->crc_table = av_crc_get_table(AV_CRC_32_IEEE_LE);
            ctx->crc       = 0xFFFFFFFF;
            ctx->crc_org   = ~get_bits_long(&gb, 32);
        } else
            skip_bits_long(&gb, 32);
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    }


    // no need to read the rest of ALSSpecificConfig (ra_unit_size & aux data)

    dprint_specific_config(ctx);

    return 0;
}


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/** Check the ALSSpecificConfig for unsupported features.
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 */
static int check_specific_config(ALSDecContext *ctx)
{
    ALSSpecificConfig *sconf = &ctx->sconf;
    int error = 0;

    // report unsupported feature and set error value
    #define MISSING_ERR(cond, str, errval)              \
    {                                                   \
        if (cond) {                                     \
            av_log_missing_feature(ctx->avctx, str, 0); \
            error = errval;                             \
        }                                               \
    }

    MISSING_ERR(sconf->floating,             "Floating point decoding",     -1);
    MISSING_ERR(sconf->rlslms,               "Adaptive RLS-LMS prediction", -1);
    MISSING_ERR(sconf->chan_sort,            "Channel sorting",              0);

    return error;
}


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/** Parse the bs_info field to extract the block partitioning used in
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 *  block switching mode, refer to ISO/IEC 14496-3, section 11.6.2.
 */
static void parse_bs_info(const uint32_t bs_info, unsigned int n,
                          unsigned int div, unsigned int **div_blocks,
                          unsigned int *num_blocks)
{
    if (n < 31 && ((bs_info << n) & 0x40000000)) {
        // if the level is valid and the investigated bit n is set
        // then recursively check both children at bits (2n+1) and (2n+2)
        n   *= 2;
        div += 1;
        parse_bs_info(bs_info, n + 1, div, div_blocks, num_blocks);
        parse_bs_info(bs_info, n + 2, div, div_blocks, num_blocks);
    } else {
        // else the bit is not set or the last level has been reached
        // (bit implicitly not set)
        **div_blocks = div;
        (*div_blocks)++;
        (*num_blocks)++;
    }
}


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/** Read and decode a Rice codeword.
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 */
static int32_t decode_rice(GetBitContext *gb, unsigned int k)
{
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    int max = get_bits_left(gb) - k;
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    int q   = get_unary(gb, 0, max);
    int r   = k ? get_bits1(gb) : !(q & 1);

    if (k > 1) {
        q <<= (k - 1);
        q  += get_bits_long(gb, k - 1);
    } else if (!k) {
        q >>= 1;
    }
    return r ? q : ~q;
}


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/** Convert PARCOR coefficient k to direct filter coefficient.
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 */
static void parcor_to_lpc(unsigned int k, const int32_t *par, int32_t *cof)
{
    int i, j;

    for (i = 0, j = k - 1; i < j; i++, j--) {
        int tmp1 = ((MUL64(par[k], cof[j]) + (1 << 19)) >> 20);
        cof[j]  += ((MUL64(par[k], cof[i]) + (1 << 19)) >> 20);
        cof[i]  += tmp1;
    }
    if (i == j)
        cof[i] += ((MUL64(par[k], cof[j]) + (1 << 19)) >> 20);

    cof[k] = par[k];
}


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/** Read block switching field if necessary and set actual block sizes.
 *  Also assure that the block sizes of the last frame correspond to the
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 *  actual number of samples.
 */
static void get_block_sizes(ALSDecContext *ctx, unsigned int *div_blocks,
                            uint32_t *bs_info)
{
    ALSSpecificConfig *sconf     = &ctx->sconf;
    GetBitContext *gb            = &ctx->gb;
    unsigned int *ptr_div_blocks = div_blocks;
    unsigned int b;

    if (sconf->block_switching) {
        unsigned int bs_info_len = 1 << (sconf->block_switching + 2);
        *bs_info = get_bits_long(gb, bs_info_len);
        *bs_info <<= (32 - bs_info_len);
    }

    ctx->num_blocks = 0;
    parse_bs_info(*bs_info, 0, 0, &ptr_div_blocks, &ctx->num_blocks);

    // The last frame may have an overdetermined block structure given in
    // the bitstream. In that case the defined block structure would need
    // more samples than available to be consistent.
    // The block structure is actually used but the block sizes are adapted
    // to fit the actual number of available samples.
    // Example: 5 samples, 2nd level block sizes: 2 2 2 2.
    // This results in the actual block sizes:    2 2 1 0.
    // This is not specified in 14496-3 but actually done by the reference
    // codec RM22 revision 2.
    // This appears to happen in case of an odd number of samples in the last
    // frame which is actually not allowed by the block length switching part
    // of 14496-3.
    // The ALS conformance files feature an odd number of samples in the last
    // frame.

    for (b = 0; b < ctx->num_blocks; b++)
        div_blocks[b] = ctx->sconf.frame_length >> div_blocks[b];

    if (ctx->cur_frame_length != ctx->sconf.frame_length) {
        unsigned int remaining = ctx->cur_frame_length;

        for (b = 0; b < ctx->num_blocks; b++) {
536
            if (remaining <= div_blocks[b]) {
537 538 539 540 541 542 543 544 545 546 547
                div_blocks[b] = remaining;
                ctx->num_blocks = b + 1;
                break;
            }

            remaining -= div_blocks[b];
        }
    }
}


548
/** Read the block data for a constant block
549
 */
550
static void read_const_block_data(ALSDecContext *ctx, ALSBlockData *bd)
551 552 553 554 555
{
    ALSSpecificConfig *sconf = &ctx->sconf;
    AVCodecContext *avctx    = ctx->avctx;
    GetBitContext *gb        = &ctx->gb;

556 557 558
    bd->const_val    = 0;
    bd->const_block  = get_bits1(gb);    // 1 = constant value, 0 = zero block (silence)
    bd->js_blocks    = get_bits1(gb);
559 560 561 562

    // skip 5 reserved bits
    skip_bits(gb, 5);

563
    if (bd->const_block) {
564
        unsigned int const_val_bits = sconf->floating ? 24 : avctx->bits_per_raw_sample;
565
        bd->const_val = get_sbits_long(gb, const_val_bits);
566 567
    }

568 569 570 571 572
    // ensure constant block decoding by reusing this field
    bd->const_block = 1;
}


573
/** Decode the block data for a constant block
574 575 576 577 578 579 580
 */
static void decode_const_block_data(ALSDecContext *ctx, ALSBlockData *bd)
{
    int      smp = bd->block_length;
    int32_t  val = bd->const_val;
    int32_t *dst = bd->raw_samples;

581
    // write raw samples into buffer
582 583
    for (; smp; smp--)
        *dst++ = val;
584 585 586
}


587
/** Read the block data for a non-constant block
588
 */
589
static int read_var_block_data(ALSDecContext *ctx, ALSBlockData *bd)
590 591 592 593 594 595
{
    ALSSpecificConfig *sconf = &ctx->sconf;
    AVCodecContext *avctx    = ctx->avctx;
    GetBitContext *gb        = &ctx->gb;
    unsigned int k;
    unsigned int s[8];
596
    unsigned int sx[8];
597 598
    unsigned int sub_blocks, log2_sub_blocks, sb_length;
    unsigned int start      = 0;
599 600 601
    unsigned int opt_order;
    int          sb;
    int32_t      *quant_cof = bd->quant_cof;
602
    int32_t      *current_res;
603

604 605 606 607 608 609 610 611

    // ensure variable block decoding by reusing this field
    bd->const_block = 0;

    bd->opt_order   = 1;
    bd->js_blocks   = get_bits1(gb);

    opt_order       = bd->opt_order;
612 613 614 615 616 617 618 619 620 621 622 623 624 625 626

    // determine the number of subblocks for entropy decoding
    if (!sconf->bgmc && !sconf->sb_part) {
        log2_sub_blocks = 0;
    } else {
        if (sconf->bgmc && sconf->sb_part)
            log2_sub_blocks = get_bits(gb, 2);
        else
            log2_sub_blocks = 2 * get_bits1(gb);
    }

    sub_blocks = 1 << log2_sub_blocks;

    // do not continue in case of a damaged stream since
    // block_length must be evenly divisible by sub_blocks
627
    if (bd->block_length & (sub_blocks - 1)) {
628 629 630 631 632
        av_log(avctx, AV_LOG_WARNING,
               "Block length is not evenly divisible by the number of subblocks.\n");
        return -1;
    }

633
    sb_length = bd->block_length >> log2_sub_blocks;
634 635

    if (sconf->bgmc) {
636 637 638 639 640 641 642 643
        s[0] = get_bits(gb, 8 + (sconf->resolution > 1));
        for (k = 1; k < sub_blocks; k++)
            s[k] = s[k - 1] + decode_rice(gb, 2);

        for (k = 0; k < sub_blocks; k++) {
            sx[k]   = s[k] & 0x0F;
            s [k] >>= 4;
        }
644 645 646 647 648 649 650
    } else {
        s[0] = get_bits(gb, 4 + (sconf->resolution > 1));
        for (k = 1; k < sub_blocks; k++)
            s[k] = s[k - 1] + decode_rice(gb, 0);
    }

    if (get_bits1(gb))
651
        bd->shift_lsbs = get_bits(gb, 4) + 1;
652

653
    bd->store_prev_samples = (bd->js_blocks && bd->raw_other) || bd->shift_lsbs;
654 655 656 657


    if (!sconf->rlslms) {
        if (sconf->adapt_order) {
658
            int opt_order_length = av_ceil_log2(av_clip((bd->block_length >> 3) - 1,
659
                                                2, sconf->max_order + 1));
660
            bd->opt_order        = get_bits(gb, opt_order_length);
661
        } else {
662
            bd->opt_order = sconf->max_order;
663 664
        }

665 666
        opt_order = bd->opt_order;

667 668 669 670 671 672 673 674 675 676 677 678 679 680 681 682 683 684 685 686 687 688 689 690 691 692 693 694 695 696 697 698 699 700 701 702 703 704 705 706 707 708 709 710 711 712 713 714
        if (opt_order) {
            int add_base;

            if (sconf->coef_table == 3) {
                add_base = 0x7F;

                // read coefficient 0
                quant_cof[0] = 32 * parcor_scaled_values[get_bits(gb, 7)];

                // read coefficient 1
                if (opt_order > 1)
                    quant_cof[1] = -32 * parcor_scaled_values[get_bits(gb, 7)];

                // read coefficients 2 to opt_order
                for (k = 2; k < opt_order; k++)
                    quant_cof[k] = get_bits(gb, 7);
            } else {
                int k_max;
                add_base = 1;

                // read coefficient 0 to 19
                k_max = FFMIN(opt_order, 20);
                for (k = 0; k < k_max; k++) {
                    int rice_param = parcor_rice_table[sconf->coef_table][k][1];
                    int offset     = parcor_rice_table[sconf->coef_table][k][0];
                    quant_cof[k] = decode_rice(gb, rice_param) + offset;
                }

                // read coefficients 20 to 126
                k_max = FFMIN(opt_order, 127);
                for (; k < k_max; k++)
                    quant_cof[k] = decode_rice(gb, 2) + (k & 1);

                // read coefficients 127 to opt_order
                for (; k < opt_order; k++)
                    quant_cof[k] = decode_rice(gb, 1);

                quant_cof[0] = 32 * parcor_scaled_values[quant_cof[0] + 64];

                if (opt_order > 1)
                    quant_cof[1] = -32 * parcor_scaled_values[quant_cof[1] + 64];
            }

            for (k = 2; k < opt_order; k++)
                quant_cof[k] = (quant_cof[k] << 14) + (add_base << 13);
        }
    }

715 716
    // read LTP gain and lag values
    if (sconf->long_term_prediction) {
717
        *bd->use_ltp = get_bits1(gb);
718

719
        if (*bd->use_ltp) {
720 721
            int r, c;

722 723
            bd->ltp_gain[0]   = decode_rice(gb, 1) << 3;
            bd->ltp_gain[1]   = decode_rice(gb, 2) << 3;
724

725 726 727
            r                 = get_unary(gb, 0, 4);
            c                 = get_bits(gb, 2);
            bd->ltp_gain[2]   = ltp_gain_values[r][c];
728

729 730
            bd->ltp_gain[3]   = decode_rice(gb, 2) << 3;
            bd->ltp_gain[4]   = decode_rice(gb, 1) << 3;
731

732 733
            *bd->ltp_lag      = get_bits(gb, ctx->ltp_lag_length);
            *bd->ltp_lag     += FFMAX(4, opt_order + 1);
734 735
        }
    }
736 737

    // read first value and residuals in case of a random access block
738
    if (bd->ra_block) {
739
        if (opt_order)
740
            bd->raw_samples[0] = decode_rice(gb, avctx->bits_per_raw_sample - 4);
741
        if (opt_order > 1)
742
            bd->raw_samples[1] = decode_rice(gb, FFMIN(s[0] + 3, ctx->s_max));
743
        if (opt_order > 2)
744
            bd->raw_samples[2] = decode_rice(gb, FFMIN(s[0] + 1, ctx->s_max));
745 746 747 748 749 750

        start = FFMIN(opt_order, 3);
    }

    // read all residuals
    if (sconf->bgmc) {
751 752
        unsigned int delta[8];
        unsigned int k    [8];
753 754 755 756 757 758 759 760 761 762 763 764 765 766 767 768 769 770 771 772 773 774 775 776 777 778 779 780 781 782 783 784 785 786 787 788 789 790 791 792 793 794 795 796 797 798 799 800 801 802 803 804 805 806 807 808 809 810 811 812 813 814 815
        unsigned int b = av_clip((av_ceil_log2(bd->block_length) - 3) >> 1, 0, 5);
        unsigned int i = start;

        // read most significant bits
        unsigned int high;
        unsigned int low;
        unsigned int value;

        ff_bgmc_decode_init(gb, &high, &low, &value);

        current_res = bd->raw_samples + start;

        for (sb = 0; sb < sub_blocks; sb++, i = 0) {
            k    [sb] = s[sb] > b ? s[sb] - b : 0;
            delta[sb] = 5 - s[sb] + k[sb];

            ff_bgmc_decode(gb, sb_length, current_res,
                        delta[sb], sx[sb], &high, &low, &value, ctx->bgmc_lut, ctx->bgmc_lut_status);

            current_res += sb_length;
        }

        ff_bgmc_decode_end(gb);


        // read least significant bits and tails
        i = start;
        current_res = bd->raw_samples + start;

        for (sb = 0; sb < sub_blocks; sb++, i = 0) {
            unsigned int cur_tail_code = tail_code[sx[sb]][delta[sb]];
            unsigned int cur_k         = k[sb];
            unsigned int cur_s         = s[sb];

            for (; i < sb_length; i++) {
                int32_t res = *current_res;

                if (res == cur_tail_code) {
                    unsigned int max_msb =   (2 + (sx[sb] > 2) + (sx[sb] > 10))
                                          << (5 - delta[sb]);

                    res = decode_rice(gb, cur_s);

                    if (res >= 0) {
                        res += (max_msb    ) << cur_k;
                    } else {
                        res -= (max_msb - 1) << cur_k;
                    }
                } else {
                    if (res > cur_tail_code)
                        res--;

                    if (res & 1)
                        res = -res;

                    res >>= 1;

                    if (cur_k) {
                        res <<= cur_k;
                        res  |= get_bits_long(gb, cur_k);
                    }
                }

T
Thilo Borgmann 已提交
816
                *current_res++ = res;
817 818
            }
        }
819
    } else {
820
        current_res = bd->raw_samples + start;
821 822 823 824 825 826

        for (sb = 0; sb < sub_blocks; sb++, start = 0)
            for (; start < sb_length; start++)
                *current_res++ = decode_rice(gb, s[sb]);
     }

827 828 829 830 831 832 833
    if (!sconf->mc_coding || ctx->js_switch)
        align_get_bits(gb);

    return 0;
}


834
/** Decode the block data for a non-constant block
835 836 837 838 839 840 841
 */
static int decode_var_block_data(ALSDecContext *ctx, ALSBlockData *bd)
{
    ALSSpecificConfig *sconf = &ctx->sconf;
    unsigned int block_length = bd->block_length;
    unsigned int smp = 0;
    unsigned int k;
842
    int opt_order             = bd->opt_order;
843 844 845 846 847
    int sb;
    int64_t y;
    int32_t *quant_cof        = bd->quant_cof;
    int32_t *lpc_cof          = bd->lpc_cof;
    int32_t *raw_samples      = bd->raw_samples;
848
    int32_t *raw_samples_end  = bd->raw_samples + bd->block_length;
849
    int32_t *lpc_cof_reversed = ctx->lpc_cof_reversed_buffer;
850

851
    // reverse long-term prediction
852
    if (*bd->use_ltp) {
853 854
        int ltp_smp;

855 856
        for (ltp_smp = FFMAX(*bd->ltp_lag - 2, 0); ltp_smp < block_length; ltp_smp++) {
            int center = ltp_smp - *bd->ltp_lag;
857 858 859 860 861 862 863 864
            int begin  = FFMAX(0, center - 2);
            int end    = center + 3;
            int tab    = 5 - (end - begin);
            int base;

            y = 1 << 6;

            for (base = begin; base < end; base++, tab++)
865
                y += MUL64(bd->ltp_gain[tab], raw_samples[base]);
866 867 868 869 870

            raw_samples[ltp_smp] += y >> 7;
        }
    }

871
    // reconstruct all samples from residuals
872
    if (bd->ra_block) {
873 874 875 876
        for (smp = 0; smp < opt_order; smp++) {
            y = 1 << 19;

            for (sb = 0; sb < smp; sb++)
877
                y += MUL64(lpc_cof[sb], raw_samples[-(sb + 1)]);
878

879
            *raw_samples++ -= y >> 20;
880 881 882 883 884 885 886
            parcor_to_lpc(smp, quant_cof, lpc_cof);
        }
    } else {
        for (k = 0; k < opt_order; k++)
            parcor_to_lpc(k, quant_cof, lpc_cof);

        // store previous samples in case that they have to be altered
887 888 889
        if (bd->store_prev_samples)
            memcpy(bd->prev_raw_samples, raw_samples - sconf->max_order,
                   sizeof(*bd->prev_raw_samples) * sconf->max_order);
890 891

        // reconstruct difference signal for prediction (joint-stereo)
892
        if (bd->js_blocks && bd->raw_other) {
893 894
            int32_t *left, *right;

895
            if (bd->raw_other > raw_samples) {  // D = R - L
896
                left  = raw_samples;
897
                right = bd->raw_other;
898
            } else {                                // D = R - L
899
                left  = bd->raw_other;
900 901 902 903 904 905 906 907
                right = raw_samples;
            }

            for (sb = -1; sb >= -sconf->max_order; sb--)
                raw_samples[sb] = right[sb] - left[sb];
        }

        // reconstruct shifted signal
908
        if (bd->shift_lsbs)
909
            for (sb = -1; sb >= -sconf->max_order; sb--)
910
                raw_samples[sb] >>= bd->shift_lsbs;
911 912
    }

913 914 915 916 917 918
    // reverse linear prediction coefficients for efficiency
    lpc_cof = lpc_cof + opt_order;

    for (sb = 0; sb < opt_order; sb++)
        lpc_cof_reversed[sb] = lpc_cof[-(sb + 1)];

919
    // reconstruct raw samples
920 921 922 923
    raw_samples = bd->raw_samples + smp;
    lpc_cof     = lpc_cof_reversed + opt_order;

    for (; raw_samples < raw_samples_end; raw_samples++) {
924 925
        y = 1 << 19;

926 927
        for (sb = -opt_order; sb < 0; sb++)
            y += MUL64(lpc_cof[sb], raw_samples[sb]);
928

929
        *raw_samples -= y >> 20;
930 931
    }

932 933
    raw_samples = bd->raw_samples;

934
    // restore previous samples in case that they have been altered
935 936
    if (bd->store_prev_samples)
        memcpy(raw_samples - sconf->max_order, bd->prev_raw_samples,
937 938 939 940 941 942
               sizeof(*raw_samples) * sconf->max_order);

    return 0;
}


943
/** Read the block data.
944
 */
945
static int read_block(ALSDecContext *ctx, ALSBlockData *bd)
946 947 948 949 950
{
    GetBitContext *gb        = &ctx->gb;

    // read block type flag and read the samples accordingly
    if (get_bits1(gb)) {
951
        if (read_var_block_data(ctx, bd))
952 953
            return -1;
    } else {
954
        read_const_block_data(ctx, bd);
955 956
    }

957 958
    return 0;
}
959 960


961
/** Decode the block data.
962 963 964 965 966 967 968 969 970 971 972 973 974 975 976 977
 */
static int decode_block(ALSDecContext *ctx, ALSBlockData *bd)
{
    unsigned int smp;

    // read block type flag and read the samples accordingly
    if (bd->const_block)
        decode_const_block_data(ctx, bd);
    else if (decode_var_block_data(ctx, bd))
        return -1;

    // TODO: read RLSLMS extension data

    if (bd->shift_lsbs)
        for (smp = 0; smp < bd->block_length; smp++)
            bd->raw_samples[smp] <<= bd->shift_lsbs;
978 979 980 981 982

    return 0;
}


M
Måns Rullgård 已提交
983
/** Read and decode block data successively.
984 985 986 987 988 989 990 991 992 993 994 995 996 997 998 999
 */
static int read_decode_block(ALSDecContext *ctx, ALSBlockData *bd)
{
    int ret;

    ret = read_block(ctx, bd);

    if (ret)
        return ret;

    ret = decode_block(ctx, bd);

    return ret;
}


1000
/** Compute the number of samples left to decode for the current frame and
1001 1002 1003 1004 1005 1006 1007 1008 1009 1010
 *  sets these samples to zero.
 */
static void zero_remaining(unsigned int b, unsigned int b_max,
                           const unsigned int *div_blocks, int32_t *buf)
{
    unsigned int count = 0;

    while (b < b_max)
        count += div_blocks[b];

1011
    if (count)
A
Alex Converse 已提交
1012
        memset(buf, 0, sizeof(*buf) * count);
1013 1014 1015
}


1016
/** Decode blocks independently.
1017 1018 1019 1020 1021 1022
 */
static int decode_blocks_ind(ALSDecContext *ctx, unsigned int ra_frame,
                             unsigned int c, const unsigned int *div_blocks,
                             unsigned int *js_blocks)
{
    unsigned int b;
1023 1024 1025 1026 1027 1028 1029 1030
    ALSBlockData bd;

    memset(&bd, 0, sizeof(ALSBlockData));

    bd.ra_block         = ra_frame;
    bd.use_ltp          = ctx->use_ltp;
    bd.ltp_lag          = ctx->ltp_lag;
    bd.ltp_gain         = ctx->ltp_gain[0];
1031 1032
    bd.quant_cof        = ctx->quant_cof[0];
    bd.lpc_cof          = ctx->lpc_cof[0];
1033 1034 1035
    bd.prev_raw_samples = ctx->prev_raw_samples;
    bd.raw_samples      = ctx->raw_samples[c];

1036 1037

    for (b = 0; b < ctx->num_blocks; b++) {
1038 1039 1040 1041
        bd.shift_lsbs       = 0;
        bd.block_length     = div_blocks[b];

        if (read_decode_block(ctx, &bd)) {
1042
            // damaged block, write zero for the rest of the frame
1043
            zero_remaining(b, ctx->num_blocks, div_blocks, bd.raw_samples);
1044 1045
            return -1;
        }
1046 1047
        bd.raw_samples += div_blocks[b];
        bd.ra_block     = 0;
1048 1049 1050 1051 1052 1053
    }

    return 0;
}


1054
/** Decode blocks dependently.
1055 1056 1057 1058 1059 1060 1061 1062
 */
static int decode_blocks(ALSDecContext *ctx, unsigned int ra_frame,
                         unsigned int c, const unsigned int *div_blocks,
                         unsigned int *js_blocks)
{
    ALSSpecificConfig *sconf = &ctx->sconf;
    unsigned int offset = 0;
    unsigned int b;
1063 1064 1065 1066 1067 1068 1069 1070
    ALSBlockData bd[2];

    memset(bd, 0, 2 * sizeof(ALSBlockData));

    bd[0].ra_block         = ra_frame;
    bd[0].use_ltp          = ctx->use_ltp;
    bd[0].ltp_lag          = ctx->ltp_lag;
    bd[0].ltp_gain         = ctx->ltp_gain[0];
1071 1072
    bd[0].quant_cof        = ctx->quant_cof[0];
    bd[0].lpc_cof          = ctx->lpc_cof[0];
1073 1074 1075 1076 1077 1078 1079
    bd[0].prev_raw_samples = ctx->prev_raw_samples;
    bd[0].js_blocks        = *js_blocks;

    bd[1].ra_block         = ra_frame;
    bd[1].use_ltp          = ctx->use_ltp;
    bd[1].ltp_lag          = ctx->ltp_lag;
    bd[1].ltp_gain         = ctx->ltp_gain[0];
1080 1081
    bd[1].quant_cof        = ctx->quant_cof[0];
    bd[1].lpc_cof          = ctx->lpc_cof[0];
1082 1083
    bd[1].prev_raw_samples = ctx->prev_raw_samples;
    bd[1].js_blocks        = *(js_blocks + 1);
1084 1085 1086 1087

    // decode all blocks
    for (b = 0; b < ctx->num_blocks; b++) {
        unsigned int s;
1088 1089 1090 1091 1092 1093 1094 1095 1096 1097 1098 1099 1100 1101

        bd[0].shift_lsbs   = 0;
        bd[1].shift_lsbs   = 0;

        bd[0].block_length = div_blocks[b];
        bd[1].block_length = div_blocks[b];

        bd[0].raw_samples  = ctx->raw_samples[c    ] + offset;
        bd[1].raw_samples  = ctx->raw_samples[c + 1] + offset;

        bd[0].raw_other    = bd[1].raw_samples;
        bd[1].raw_other    = bd[0].raw_samples;

        if(read_decode_block(ctx, &bd[0]) || read_decode_block(ctx, &bd[1])) {
1102
            // damaged block, write zero for the rest of the frame
1103 1104
            zero_remaining(b, ctx->num_blocks, div_blocks, bd[0].raw_samples);
            zero_remaining(b, ctx->num_blocks, div_blocks, bd[1].raw_samples);
1105 1106 1107 1108
            return -1;
        }

        // reconstruct joint-stereo blocks
1109 1110
        if (bd[0].js_blocks) {
            if (bd[1].js_blocks)
1111 1112 1113
                av_log(ctx->avctx, AV_LOG_WARNING, "Invalid channel pair!\n");

            for (s = 0; s < div_blocks[b]; s++)
1114 1115
                bd[0].raw_samples[s] = bd[1].raw_samples[s] - bd[0].raw_samples[s];
        } else if (bd[1].js_blocks) {
1116
            for (s = 0; s < div_blocks[b]; s++)
1117
                bd[1].raw_samples[s] = bd[1].raw_samples[s] + bd[0].raw_samples[s];
1118 1119 1120
        }

        offset  += div_blocks[b];
1121 1122
        bd[0].ra_block = 0;
        bd[1].ra_block = 0;
1123 1124 1125 1126 1127 1128 1129 1130 1131 1132 1133 1134
    }

    // store carryover raw samples,
    // the others channel raw samples are stored by the calling function.
    memmove(ctx->raw_samples[c] - sconf->max_order,
            ctx->raw_samples[c] - sconf->max_order + sconf->frame_length,
            sizeof(*ctx->raw_samples[c]) * sconf->max_order);

    return 0;
}


1135
/** Read the channel data.
1136 1137 1138 1139 1140 1141 1142 1143 1144 1145 1146 1147 1148 1149 1150 1151 1152 1153 1154 1155 1156 1157 1158 1159 1160 1161 1162 1163 1164 1165 1166 1167 1168 1169 1170 1171 1172 1173 1174 1175 1176 1177 1178 1179 1180 1181 1182 1183 1184 1185 1186 1187 1188 1189 1190 1191 1192 1193 1194 1195 1196 1197 1198 1199 1200 1201 1202 1203 1204 1205 1206 1207 1208 1209 1210 1211 1212 1213 1214 1215 1216 1217 1218 1219 1220 1221 1222 1223 1224 1225 1226 1227 1228 1229 1230 1231 1232 1233 1234 1235 1236 1237 1238 1239 1240 1241 1242 1243 1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255 1256 1257 1258 1259 1260 1261 1262
  */
static int read_channel_data(ALSDecContext *ctx, ALSChannelData *cd, int c)
{
    GetBitContext *gb       = &ctx->gb;
    ALSChannelData *current = cd;
    unsigned int channels   = ctx->avctx->channels;
    int entries             = 0;

    while (entries < channels && !(current->stop_flag = get_bits1(gb))) {
        current->master_channel = get_bits_long(gb, av_ceil_log2(channels));

        if (current->master_channel >= channels) {
            av_log(ctx->avctx, AV_LOG_ERROR, "Invalid master channel!\n");
            return -1;
        }

        if (current->master_channel != c) {
            current->time_diff_flag = get_bits1(gb);
            current->weighting[0]   = mcc_weightings[av_clip(decode_rice(gb, 1) + 16, 0, 32)];
            current->weighting[1]   = mcc_weightings[av_clip(decode_rice(gb, 2) + 14, 0, 32)];
            current->weighting[2]   = mcc_weightings[av_clip(decode_rice(gb, 1) + 16, 0, 32)];

            if (current->time_diff_flag) {
                current->weighting[3] = mcc_weightings[av_clip(decode_rice(gb, 1) + 16, 0, 32)];
                current->weighting[4] = mcc_weightings[av_clip(decode_rice(gb, 1) + 16, 0, 32)];
                current->weighting[5] = mcc_weightings[av_clip(decode_rice(gb, 1) + 16, 0, 32)];

                current->time_diff_sign  = get_bits1(gb);
                current->time_diff_index = get_bits(gb, ctx->ltp_lag_length - 3) + 3;
            }
        }

        current++;
        entries++;
    }

    if (entries == channels) {
        av_log(ctx->avctx, AV_LOG_ERROR, "Damaged channel data!\n");
        return -1;
    }

    align_get_bits(gb);
    return 0;
}


/** Recursively reverts the inter-channel correlation for a block.
 */
static int revert_channel_correlation(ALSDecContext *ctx, ALSBlockData *bd,
                                       ALSChannelData **cd, int *reverted,
                                       unsigned int offset, int c)
{
    ALSChannelData *ch = cd[c];
    unsigned int   dep = 0;
    unsigned int channels = ctx->avctx->channels;

    if (reverted[c])
        return 0;

    reverted[c] = 1;

    while (dep < channels && !ch[dep].stop_flag) {
        revert_channel_correlation(ctx, bd, cd, reverted, offset,
                                   ch[dep].master_channel);

        dep++;
    }

    if (dep == channels) {
        av_log(ctx->avctx, AV_LOG_WARNING, "Invalid channel correlation!\n");
        return -1;
    }

    bd->use_ltp     = ctx->use_ltp + c;
    bd->ltp_lag     = ctx->ltp_lag + c;
    bd->ltp_gain    = ctx->ltp_gain[c];
    bd->lpc_cof     = ctx->lpc_cof[c];
    bd->quant_cof   = ctx->quant_cof[c];
    bd->raw_samples = ctx->raw_samples[c] + offset;

    dep = 0;
    while (!ch[dep].stop_flag) {
        unsigned int smp;
        unsigned int begin = 1;
        unsigned int end   = bd->block_length - 1;
        int64_t y;
        int32_t *master = ctx->raw_samples[ch[dep].master_channel] + offset;

        if (ch[dep].time_diff_flag) {
            int t = ch[dep].time_diff_index;

            if (ch[dep].time_diff_sign) {
                t      = -t;
                begin -= t;
            } else {
                end   -= t;
            }

            for (smp = begin; smp < end; smp++) {
                y  = (1 << 6) +
                     MUL64(ch[dep].weighting[0], master[smp - 1    ]) +
                     MUL64(ch[dep].weighting[1], master[smp        ]) +
                     MUL64(ch[dep].weighting[2], master[smp + 1    ]) +
                     MUL64(ch[dep].weighting[3], master[smp - 1 + t]) +
                     MUL64(ch[dep].weighting[4], master[smp     + t]) +
                     MUL64(ch[dep].weighting[5], master[smp + 1 + t]);

                bd->raw_samples[smp] += y >> 7;
            }
        } else {
            for (smp = begin; smp < end; smp++) {
                y  = (1 << 6) +
                     MUL64(ch[dep].weighting[0], master[smp - 1]) +
                     MUL64(ch[dep].weighting[1], master[smp    ]) +
                     MUL64(ch[dep].weighting[2], master[smp + 1]);

                bd->raw_samples[smp] += y >> 7;
            }
        }

        dep++;
    }

    return 0;
}


1263
/** Read the frame data.
1264 1265 1266 1267 1268 1269 1270 1271 1272 1273 1274 1275 1276 1277 1278 1279 1280 1281 1282 1283 1284 1285 1286 1287 1288 1289 1290 1291 1292 1293 1294 1295 1296 1297 1298 1299 1300 1301 1302 1303 1304 1305 1306 1307 1308 1309 1310 1311 1312 1313 1314 1315 1316 1317 1318 1319 1320 1321
 */
static int read_frame_data(ALSDecContext *ctx, unsigned int ra_frame)
{
    ALSSpecificConfig *sconf = &ctx->sconf;
    AVCodecContext *avctx    = ctx->avctx;
    GetBitContext *gb = &ctx->gb;
    unsigned int div_blocks[32];                ///< block sizes.
    unsigned int c;
    unsigned int js_blocks[2];

    uint32_t bs_info = 0;

    // skip the size of the ra unit if present in the frame
    if (sconf->ra_flag == RA_FLAG_FRAMES && ra_frame)
        skip_bits_long(gb, 32);

    if (sconf->mc_coding && sconf->joint_stereo) {
        ctx->js_switch = get_bits1(gb);
        align_get_bits(gb);
    }

    if (!sconf->mc_coding || ctx->js_switch) {
        int independent_bs = !sconf->joint_stereo;

        for (c = 0; c < avctx->channels; c++) {
            js_blocks[0] = 0;
            js_blocks[1] = 0;

            get_block_sizes(ctx, div_blocks, &bs_info);

            // if joint_stereo and block_switching is set, independent decoding
            // is signaled via the first bit of bs_info
            if (sconf->joint_stereo && sconf->block_switching)
                if (bs_info >> 31)
                    independent_bs = 2;

            // if this is the last channel, it has to be decoded independently
            if (c == avctx->channels - 1)
                independent_bs = 1;

            if (independent_bs) {
                if (decode_blocks_ind(ctx, ra_frame, c, div_blocks, js_blocks))
                    return -1;

                independent_bs--;
            } else {
                if (decode_blocks(ctx, ra_frame, c, div_blocks, js_blocks))
                    return -1;

                c++;
            }

            // store carryover raw samples
            memmove(ctx->raw_samples[c] - sconf->max_order,
                    ctx->raw_samples[c] - sconf->max_order + sconf->frame_length,
                    sizeof(*ctx->raw_samples[c]) * sconf->max_order);
        }
    } else { // multi-channel coding
1322 1323 1324 1325 1326 1327 1328 1329 1330 1331 1332 1333 1334 1335 1336 1337 1338
        ALSBlockData   bd;
        int            b;
        int            *reverted_channels = ctx->reverted_channels;
        unsigned int   offset             = 0;

        for (c = 0; c < avctx->channels; c++)
            if (ctx->chan_data[c] < ctx->chan_data_buffer) {
                av_log(ctx->avctx, AV_LOG_ERROR, "Invalid channel data!\n");
                return -1;
            }

        memset(&bd,               0, sizeof(ALSBlockData));
        memset(reverted_channels, 0, sizeof(*reverted_channels) * avctx->channels);

        bd.ra_block         = ra_frame;
        bd.prev_raw_samples = ctx->prev_raw_samples;

1339 1340
        get_block_sizes(ctx, div_blocks, &bs_info);

1341 1342 1343 1344 1345 1346 1347 1348 1349 1350 1351 1352 1353 1354 1355 1356 1357 1358 1359 1360 1361 1362 1363 1364 1365 1366 1367 1368 1369 1370 1371 1372 1373 1374 1375 1376 1377 1378 1379 1380 1381 1382 1383
        for (b = 0; b < ctx->num_blocks; b++) {
            bd.shift_lsbs   = 0;
            bd.block_length = div_blocks[b];

            for (c = 0; c < avctx->channels; c++) {
                bd.use_ltp     = ctx->use_ltp + c;
                bd.ltp_lag     = ctx->ltp_lag + c;
                bd.ltp_gain    = ctx->ltp_gain[c];
                bd.lpc_cof     = ctx->lpc_cof[c];
                bd.quant_cof   = ctx->quant_cof[c];
                bd.raw_samples = ctx->raw_samples[c] + offset;
                bd.raw_other   = NULL;

                read_block(ctx, &bd);
                if (read_channel_data(ctx, ctx->chan_data[c], c))
                    return -1;
            }

            for (c = 0; c < avctx->channels; c++)
                if (revert_channel_correlation(ctx, &bd, ctx->chan_data,
                                               reverted_channels, offset, c))
                    return -1;

            for (c = 0; c < avctx->channels; c++) {
                bd.use_ltp     = ctx->use_ltp + c;
                bd.ltp_lag     = ctx->ltp_lag + c;
                bd.ltp_gain    = ctx->ltp_gain[c];
                bd.lpc_cof     = ctx->lpc_cof[c];
                bd.quant_cof   = ctx->quant_cof[c];
                bd.raw_samples = ctx->raw_samples[c] + offset;
                decode_block(ctx, &bd);
            }

            memset(reverted_channels, 0, avctx->channels * sizeof(*reverted_channels));
            offset      += div_blocks[b];
            bd.ra_block  = 0;
        }

        // store carryover raw samples
        for (c = 0; c < avctx->channels; c++)
            memmove(ctx->raw_samples[c] - sconf->max_order,
                    ctx->raw_samples[c] - sconf->max_order + sconf->frame_length,
                    sizeof(*ctx->raw_samples[c]) * sconf->max_order);
1384 1385 1386 1387 1388 1389 1390 1391
    }

    // TODO: read_diff_float_data

    return 0;
}


1392
/** Decode an ALS frame.
1393 1394 1395 1396 1397 1398 1399 1400 1401 1402 1403 1404 1405 1406 1407 1408 1409 1410 1411 1412 1413 1414 1415 1416 1417 1418 1419 1420 1421 1422 1423 1424 1425 1426 1427 1428 1429 1430 1431 1432 1433 1434 1435 1436 1437 1438 1439 1440 1441 1442 1443 1444 1445 1446 1447 1448 1449 1450 1451 1452 1453
 */
static int decode_frame(AVCodecContext *avctx,
                        void *data, int *data_size,
                        AVPacket *avpkt)
{
    ALSDecContext *ctx       = avctx->priv_data;
    ALSSpecificConfig *sconf = &ctx->sconf;
    const uint8_t *buffer    = avpkt->data;
    int buffer_size          = avpkt->size;
    int invalid_frame, size;
    unsigned int c, sample, ra_frame, bytes_read, shift;

    init_get_bits(&ctx->gb, buffer, buffer_size * 8);

    // In the case that the distance between random access frames is set to zero
    // (sconf->ra_distance == 0) no frame is treated as a random access frame.
    // For the first frame, if prediction is used, all samples used from the
    // previous frame are assumed to be zero.
    ra_frame = sconf->ra_distance && !(ctx->frame_id % sconf->ra_distance);

    // the last frame to decode might have a different length
    if (sconf->samples != 0xFFFFFFFF)
        ctx->cur_frame_length = FFMIN(sconf->samples - ctx->frame_id * (uint64_t) sconf->frame_length,
                                      sconf->frame_length);
    else
        ctx->cur_frame_length = sconf->frame_length;

    // decode the frame data
    if ((invalid_frame = read_frame_data(ctx, ra_frame) < 0))
        av_log(ctx->avctx, AV_LOG_WARNING,
               "Reading frame data failed. Skipping RA unit.\n");

    ctx->frame_id++;

    // check for size of decoded data
    size = ctx->cur_frame_length * avctx->channels *
           (av_get_bits_per_sample_format(avctx->sample_fmt) >> 3);

    if (size > *data_size) {
        av_log(avctx, AV_LOG_ERROR, "Decoded data exceeds buffer size.\n");
        return -1;
    }

    *data_size = size;

    // transform decoded frame into output format
    #define INTERLEAVE_OUTPUT(bps)                                 \
    {                                                              \
        int##bps##_t *dest = (int##bps##_t*) data;                 \
        shift = bps - ctx->avctx->bits_per_raw_sample;             \
        for (sample = 0; sample < ctx->cur_frame_length; sample++) \
            for (c = 0; c < avctx->channels; c++)                  \
                *dest++ = ctx->raw_samples[c][sample] << shift;    \
    }

    if (ctx->avctx->bits_per_raw_sample <= 16) {
        INTERLEAVE_OUTPUT(16)
    } else {
        INTERLEAVE_OUTPUT(32)
    }

1454 1455 1456 1457 1458 1459 1460 1461 1462 1463 1464 1465 1466
    // update CRC
    if (sconf->crc_enabled && avctx->error_recognition >= FF_ER_CAREFUL) {
        int swap = HAVE_BIGENDIAN != sconf->msb_first;

        if (ctx->avctx->bits_per_raw_sample == 24) {
            int32_t *src = data;

            for (sample = 0;
                 sample < ctx->cur_frame_length * avctx->channels;
                 sample++) {
                int32_t v;

                if (swap)
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                    v = av_bswap32(src[sample]);
1468 1469 1470 1471 1472 1473 1474 1475 1476 1477 1478 1479 1480 1481 1482 1483 1484
                else
                    v = src[sample];
                if (!HAVE_BIGENDIAN)
                    v >>= 8;

                ctx->crc = av_crc(ctx->crc_table, ctx->crc, (uint8_t*)(&v), 3);
            }
        } else {
            uint8_t *crc_source;

            if (swap) {
                if (ctx->avctx->bits_per_raw_sample <= 16) {
                    int16_t *src  = (int16_t*) data;
                    int16_t *dest = (int16_t*) ctx->crc_buffer;
                    for (sample = 0;
                         sample < ctx->cur_frame_length * avctx->channels;
                         sample++)
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                        *dest++ = av_bswap16(src[sample]);
1486 1487 1488 1489 1490 1491 1492 1493 1494 1495 1496 1497 1498 1499 1500 1501 1502 1503 1504 1505 1506
                } else {
                    ctx->dsp.bswap_buf((uint32_t*)ctx->crc_buffer, data,
                                       ctx->cur_frame_length * avctx->channels);
                }
                crc_source = ctx->crc_buffer;
            } else {
                crc_source = data;
            }

            ctx->crc = av_crc(ctx->crc_table, ctx->crc, crc_source, size);
        }


        // check CRC sums if this is the last frame
        if (ctx->cur_frame_length != sconf->frame_length &&
            ctx->crc_org != ctx->crc) {
            av_log(avctx, AV_LOG_ERROR, "CRC error.\n");
        }
    }


1507 1508 1509 1510 1511 1512 1513
    bytes_read = invalid_frame ? buffer_size :
                                 (get_bits_count(&ctx->gb) + 7) >> 3;

    return bytes_read;
}


1514
/** Uninitialize the ALS decoder.
1515 1516 1517 1518 1519 1520 1521
 */
static av_cold int decode_end(AVCodecContext *avctx)
{
    ALSDecContext *ctx = avctx->priv_data;

    av_freep(&ctx->sconf.chan_pos);

1522 1523
    ff_bgmc_end(&ctx->bgmc_lut, &ctx->bgmc_lut_status);

1524 1525 1526 1527
    av_freep(&ctx->use_ltp);
    av_freep(&ctx->ltp_lag);
    av_freep(&ctx->ltp_gain);
    av_freep(&ctx->ltp_gain_buffer);
1528 1529
    av_freep(&ctx->quant_cof);
    av_freep(&ctx->lpc_cof);
1530 1531
    av_freep(&ctx->quant_cof_buffer);
    av_freep(&ctx->lpc_cof_buffer);
1532
    av_freep(&ctx->lpc_cof_reversed_buffer);
1533 1534 1535
    av_freep(&ctx->prev_raw_samples);
    av_freep(&ctx->raw_samples);
    av_freep(&ctx->raw_buffer);
1536 1537 1538
    av_freep(&ctx->chan_data);
    av_freep(&ctx->chan_data_buffer);
    av_freep(&ctx->reverted_channels);
1539 1540 1541 1542 1543

    return 0;
}


1544
/** Initialize the ALS decoder.
1545 1546 1547 1548 1549
 */
static av_cold int decode_init(AVCodecContext *avctx)
{
    unsigned int c;
    unsigned int channel_size;
1550
    int num_buffers;
1551 1552 1553 1554 1555 1556 1557 1558 1559 1560 1561 1562 1563 1564 1565 1566 1567 1568 1569 1570
    ALSDecContext *ctx = avctx->priv_data;
    ALSSpecificConfig *sconf = &ctx->sconf;
    ctx->avctx = avctx;

    if (!avctx->extradata) {
        av_log(avctx, AV_LOG_ERROR, "Missing required ALS extradata.\n");
        return -1;
    }

    if (read_specific_config(ctx)) {
        av_log(avctx, AV_LOG_ERROR, "Reading ALSSpecificConfig failed.\n");
        decode_end(avctx);
        return -1;
    }

    if (check_specific_config(ctx)) {
        decode_end(avctx);
        return -1;
    }

1571 1572 1573
    if (sconf->bgmc)
        ff_bgmc_init(avctx, &ctx->bgmc_lut, &ctx->bgmc_lut_status);

1574 1575 1576 1577 1578 1579 1580 1581 1582
    if (sconf->floating) {
        avctx->sample_fmt          = SAMPLE_FMT_FLT;
        avctx->bits_per_raw_sample = 32;
    } else {
        avctx->sample_fmt          = sconf->resolution > 1
                                     ? SAMPLE_FMT_S32 : SAMPLE_FMT_S16;
        avctx->bits_per_raw_sample = (sconf->resolution + 1) * 8;
    }

1583 1584 1585 1586 1587
    // set maximum Rice parameter for progressive decoding based on resolution
    // This is not specified in 14496-3 but actually done by the reference
    // codec RM22 revision 2.
    ctx->s_max = sconf->resolution > 1 ? 31 : 15;

1588 1589 1590 1591
    // set lag value for long-term prediction
    ctx->ltp_lag_length = 8 + (avctx->sample_rate >=  96000) +
                              (avctx->sample_rate >= 192000);

1592 1593 1594
    // allocate quantized parcor coefficient buffer
    num_buffers = sconf->mc_coding ? avctx->channels : 1;

1595 1596 1597 1598 1599 1600
    ctx->quant_cof        = av_malloc(sizeof(*ctx->quant_cof) * num_buffers);
    ctx->lpc_cof          = av_malloc(sizeof(*ctx->lpc_cof)   * num_buffers);
    ctx->quant_cof_buffer = av_malloc(sizeof(*ctx->quant_cof_buffer) *
                                      num_buffers * sconf->max_order);
    ctx->lpc_cof_buffer   = av_malloc(sizeof(*ctx->lpc_cof_buffer) *
                                      num_buffers * sconf->max_order);
1601 1602
    ctx->lpc_cof_reversed_buffer = av_malloc(sizeof(*ctx->lpc_cof_buffer) *
                                             sconf->max_order);
1603

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    if (!ctx->quant_cof              || !ctx->lpc_cof        ||
        !ctx->quant_cof_buffer       || !ctx->lpc_cof_buffer ||
1606
        !ctx->lpc_cof_reversed_buffer) {
1607 1608 1609 1610 1611 1612 1613 1614 1615 1616
        av_log(avctx, AV_LOG_ERROR, "Allocating buffer memory failed.\n");
        return AVERROR(ENOMEM);
    }

    // assign quantized parcor coefficient buffers
    for (c = 0; c < num_buffers; c++) {
        ctx->quant_cof[c] = ctx->quant_cof_buffer + c * sconf->max_order;
        ctx->lpc_cof[c]   = ctx->lpc_cof_buffer   + c * sconf->max_order;
    }

1617 1618 1619 1620 1621 1622 1623 1624 1625 1626 1627 1628 1629 1630 1631 1632 1633
    // allocate and assign lag and gain data buffer for ltp mode
    ctx->use_ltp         = av_mallocz(sizeof(*ctx->use_ltp)  * num_buffers);
    ctx->ltp_lag         = av_malloc (sizeof(*ctx->ltp_lag)  * num_buffers);
    ctx->ltp_gain        = av_malloc (sizeof(*ctx->ltp_gain) * num_buffers);
    ctx->ltp_gain_buffer = av_malloc (sizeof(*ctx->ltp_gain_buffer) *
                                      num_buffers * 5);

    if (!ctx->use_ltp  || !ctx->ltp_lag ||
        !ctx->ltp_gain || !ctx->ltp_gain_buffer) {
        av_log(avctx, AV_LOG_ERROR, "Allocating buffer memory failed.\n");
        decode_end(avctx);
        return AVERROR(ENOMEM);
    }

    for (c = 0; c < num_buffers; c++)
        ctx->ltp_gain[c] = ctx->ltp_gain_buffer + c * 5;

1634 1635 1636
    // allocate and assign channel data buffer for mcc mode
    if (sconf->mc_coding) {
        ctx->chan_data_buffer  = av_malloc(sizeof(*ctx->chan_data_buffer) *
1637
                                           num_buffers * num_buffers);
1638
        ctx->chan_data         = av_malloc(sizeof(*ctx->chan_data) *
1639 1640 1641 1642 1643 1644 1645 1646 1647 1648 1649
                                           num_buffers);
        ctx->reverted_channels = av_malloc(sizeof(*ctx->reverted_channels) *
                                           num_buffers);

        if (!ctx->chan_data_buffer || !ctx->chan_data || !ctx->reverted_channels) {
            av_log(avctx, AV_LOG_ERROR, "Allocating buffer memory failed.\n");
            decode_end(avctx);
            return AVERROR(ENOMEM);
        }

        for (c = 0; c < num_buffers; c++)
1650
            ctx->chan_data[c] = ctx->chan_data_buffer + c * num_buffers;
1651 1652 1653 1654 1655 1656
    } else {
        ctx->chan_data         = NULL;
        ctx->chan_data_buffer  = NULL;
        ctx->reverted_channels = NULL;
    }

1657 1658 1659 1660 1661 1662 1663 1664 1665 1666 1667 1668 1669 1670 1671 1672 1673 1674 1675
    avctx->frame_size = sconf->frame_length;
    channel_size      = sconf->frame_length + sconf->max_order;

    ctx->prev_raw_samples = av_malloc (sizeof(*ctx->prev_raw_samples) * sconf->max_order);
    ctx->raw_buffer       = av_mallocz(sizeof(*ctx->     raw_buffer)  * avctx->channels * channel_size);
    ctx->raw_samples      = av_malloc (sizeof(*ctx->     raw_samples) * avctx->channels);

    // allocate previous raw sample buffer
    if (!ctx->prev_raw_samples || !ctx->raw_buffer|| !ctx->raw_samples) {
        av_log(avctx, AV_LOG_ERROR, "Allocating buffer memory failed.\n");
        decode_end(avctx);
        return AVERROR(ENOMEM);
    }

    // assign raw samples buffers
    ctx->raw_samples[0] = ctx->raw_buffer + sconf->max_order;
    for (c = 1; c < avctx->channels; c++)
        ctx->raw_samples[c] = ctx->raw_samples[c - 1] + channel_size;

1676 1677 1678 1679 1680 1681 1682 1683 1684 1685 1686 1687 1688 1689 1690 1691
    // allocate crc buffer
    if (HAVE_BIGENDIAN != sconf->msb_first && sconf->crc_enabled &&
        avctx->error_recognition >= FF_ER_CAREFUL) {
        ctx->crc_buffer = av_malloc(sizeof(*ctx->crc_buffer) *
                                    ctx->cur_frame_length *
                                    avctx->channels *
                                    (av_get_bits_per_sample_format(avctx->sample_fmt) >> 3));
        if (!ctx->crc_buffer) {
            av_log(avctx, AV_LOG_ERROR, "Allocating buffer memory failed.\n");
            decode_end(avctx);
            return AVERROR(ENOMEM);
        }
    }

    dsputil_init(&ctx->dsp, avctx);

1692 1693 1694 1695
    return 0;
}


1696
/** Flush (reset) the frame ID after seeking.
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 */
static av_cold void flush(AVCodecContext *avctx)
{
    ALSDecContext *ctx = avctx->priv_data;

    ctx->frame_id = 0;
}


AVCodec als_decoder = {
    "als",
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    AVMEDIA_TYPE_AUDIO,
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    CODEC_ID_MP4ALS,
    sizeof(ALSDecContext),
    decode_init,
    NULL,
    decode_end,
    decode_frame,
    .flush = flush,
    .capabilities = CODEC_CAP_SUBFRAMES,
    .long_name = NULL_IF_CONFIG_SMALL("MPEG-4 Audio Lossless Coding (ALS)"),
};