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  •  * H.26L/H.264/AVC/JVT/14496-10/... decoder
    
     * Copyright (c) 2003 Michael Niedermayer <michaelni@gmx.at>
     *
    
     * 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
    
     * H.264 / AVC / MPEG4 part10 codec.
     * @author Michael Niedermayer <michaelni@gmx.at>
     */
    
    
    #define UNCHECKED_BITSTREAM_READER 1
    
    
    #include "libavutil/avassert.h"
    
    #include "libavutil/display.h"
    
    #include "libavutil/imgutils.h"
    
    #include "libavutil/timer.h"
    
    #include "cabac.h"
    #include "cabac_functions.h"
    
    #include "error_resilience.h"
    
    #include "avcodec.h"
    
    #include "h264.h"
    
    #include "h264data.h"
    
    #include "h264chroma.h"
    
    #include "h264_mvpred.h"
    
    #include "golomb.h"
    
    #include "rectangle.h"
    
    const uint16_t ff_h264_mb_sizes[4] = { 256, 384, 512, 768 };
    
    
    int avpriv_h264_has_num_reorder_frames(AVCodecContext *avctx)
    {
        H264Context *h = avctx->priv_data;
        return h ? h->sps.num_reorder_frames : 0;
    }
    
    
    static void h264_er_decode_mb(void *opaque, int ref, int mv_dir, int mv_type,
                                  int (*mv)[2][4][2],
                                  int mb_x, int mb_y, int mb_intra, int mb_skipped)
    {
    
        H264Context *h = opaque;
    
        H264SliceContext *sl = &h->slice_ctx[0];
    
        sl->mb_x = mb_x;
        sl->mb_y = mb_y;
    
        sl->mb_xy = mb_x + mb_y * h->mb_stride;
    
        memset(sl->non_zero_count_cache, 0, sizeof(sl->non_zero_count_cache));
    
        /* FIXME: It is possible albeit uncommon that slice references
         * differ between slices. We take the easy approach and ignore
         * it for now. If this turns out to have any relevance in
         * practice then correct remapping should be added. */
    
        if (ref >= sl->ref_count[0])
    
        if (!sl->ref_list[0][ref].data[0]) {
    
            av_log(h->avctx, AV_LOG_DEBUG, "Reference not available for error concealing\n");
    
        if ((sl->ref_list[0][ref].reference&3) != 3) {
    
            av_log(h->avctx, AV_LOG_DEBUG, "Reference invalid\n");
    
        fill_rectangle(&h->cur_pic.ref_index[0][4 * sl->mb_xy],
    
        fill_rectangle(&sl->ref_cache[0][scan8[0]], 4, 4, 8, ref, 1);
        fill_rectangle(sl->mv_cache[0][scan8[0]], 4, 4, 8,
    
                       pack16to32((*mv)[0][0][0], (*mv)[0][0][1]), 4);
    
        sl->mb_field_decoding_flag = 0;
    
        ff_h264_hl_decode_mb(h, &h->slice_ctx[0]);
    
    void ff_h264_draw_horiz_band(const H264Context *h, H264SliceContext *sl,
    
        AVCodecContext *avctx = h->avctx;
    
        const AVFrame   *src  = h->cur_pic.f;
    
        const AVPixFmtDescriptor *desc = av_pix_fmt_desc_get(avctx->pix_fmt);
        int vshift = desc->log2_chroma_h;
    
        const int field_pic = h->picture_structure != PICT_FRAME;
        if (field_pic) {
            height <<= 1;
    
            y      <<= 1;
    
        height = FFMIN(height, avctx->height - y);
    
        if (field_pic && h->first_field && !(avctx->slice_flags & SLICE_FLAG_ALLOW_FIELD))
            return;
    
    
        if (avctx->draw_horiz_band) {
            int offset[AV_NUM_DATA_POINTERS];
            int i;
    
    
            offset[0] = y * src->linesize[0];
            offset[1] =
            offset[2] = (y >> vshift) * src->linesize[1];
    
            for (i = 3; i < AV_NUM_DATA_POINTERS; i++)
                offset[i] = 0;
    
            emms_c();
    
            avctx->draw_horiz_band(avctx, src, offset,
    
                                   y, h->picture_structure, height);
    
     * Check if the top & left blocks are available if needed and
     * change the dc mode so it only uses the available blocks.
    
    int ff_h264_check_intra4x4_pred_mode(const H264Context *h, H264SliceContext *sl)
    
    {
        static const int8_t top[12] = {
            -1, 0, LEFT_DC_PRED, -1, -1, -1, -1, -1, 0
        };
        static const int8_t left[12] = {
            0, -1, TOP_DC_PRED, 0, -1, -1, -1, 0, -1, DC_128_PRED
        };
    
        if (!(sl->top_samples_available & 0x8000)) {
    
            for (i = 0; i < 4; i++) {
    
                int status = top[sl->intra4x4_pred_mode_cache[scan8[0] + i]];
    
                if (status < 0) {
    
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                    av_log(h->avctx, AV_LOG_ERROR,
    
                           "top block unavailable for requested intra4x4 mode %d at %d %d\n",
    
                           status, sl->mb_x, sl->mb_y);
    
                    return AVERROR_INVALIDDATA;
    
                } else if (status) {
    
                    sl->intra4x4_pred_mode_cache[scan8[0] + i] = status;
    
        if ((sl->left_samples_available & 0x8888) != 0x8888) {
    
            static const int mask[4] = { 0x8000, 0x2000, 0x80, 0x20 };
            for (i = 0; i < 4; i++)
    
                if (!(sl->left_samples_available & mask[i])) {
    
                    int status = left[sl->intra4x4_pred_mode_cache[scan8[0] + 8 * i]];
    
                    if (status < 0) {
    
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                        av_log(h->avctx, AV_LOG_ERROR,
    
                               "left block unavailable for requested intra4x4 mode %d at %d %d\n",
    
                               status, sl->mb_x, sl->mb_y);
    
                        return AVERROR_INVALIDDATA;
    
                    } else if (status) {
    
                        sl->intra4x4_pred_mode_cache[scan8[0] + 8 * i] = status;
    
    } // FIXME cleanup like ff_h264_check_intra_pred_mode
    
     * Check if the top & left blocks are available if needed and
     * change the dc mode so it only uses the available blocks.
    
    int ff_h264_check_intra_pred_mode(const H264Context *h, H264SliceContext *sl,
    
        static const int8_t top[4]  = { LEFT_DC_PRED8x8, 1, -1, -1 };
    
        static const int8_t left[5] = { TOP_DC_PRED8x8, -1,  2, -1, DC_128_PRED8x8 };
    
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            av_log(h->avctx, AV_LOG_ERROR,
    
                   "out of range intra chroma pred mode at %d %d\n",
    
                   sl->mb_x, sl->mb_y);
    
            return AVERROR_INVALIDDATA;
    
        if (!(sl->top_samples_available & 0x8000)) {
    
            mode = top[mode];
            if (mode < 0) {
    
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                av_log(h->avctx, AV_LOG_ERROR,
    
                       "top block unavailable for requested intra mode at %d %d\n",
    
                       sl->mb_x, sl->mb_y);
    
                return AVERROR_INVALIDDATA;
    
        if ((sl->left_samples_available & 0x8080) != 0x8080) {
    
            mode = left[mode];
            if (mode < 0) {
    
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                av_log(h->avctx, AV_LOG_ERROR,
    
                       "left block unavailable for requested intra mode at %d %d\n",
    
                       sl->mb_x, sl->mb_y);
    
                return AVERROR_INVALIDDATA;
    
            if (is_chroma && (sl->left_samples_available & 0x8080)) {
    
                // mad cow disease mode, aka MBAFF + constrained_intra_pred
                mode = ALZHEIMER_DC_L0T_PRED8x8 +
    
                       (!(sl->left_samples_available & 0x8000)) +
    
    const uint8_t *ff_h264_decode_nal(H264Context *h, H264SliceContext *sl,
                                      const uint8_t *src,
    
                                      int *dst_length, int *consumed, int length)
    {
    
        int i, si, di;
        uint8_t *dst;
    
    
        // src[0]&0x80; // forbidden bit
        h->nal_ref_idc   = src[0] >> 5;
        h->nal_unit_type = src[0] & 0x1F;
    
        src++;
        length--;
    
    #define STARTCODE_TEST                                                  \
    
        if (i + 2 < length && src[i + 1] == 0 && src[i + 2] <= 3) {         \
    
            if (src[i + 2] != 3 && src[i + 2] != 0) {                       \
    
                /* startcode, so we must be past the end */                 \
                length = i;                                                 \
            }                                                               \
            break;                                                          \
        }
    
    
    #if HAVE_FAST_UNALIGNED
    
    #define FIND_FIRST_ZERO                                                 \
    
        if (i > 0 && !src[i])                                               \
            i--;                                                            \
        while (src[i])                                                      \
            i++
    
    
    #if HAVE_FAST_64BIT
        for (i = 0; i + 1 < length; i += 9) {
            if (!((~AV_RN64A(src + i) &
                   (AV_RN64A(src + i) - 0x0100010001000101ULL)) &
                  0x8000800080008080ULL))
    
                continue;
            FIND_FIRST_ZERO;
            STARTCODE_TEST;
            i -= 7;
        }
    
    #else
        for (i = 0; i + 1 < length; i += 5) {
            if (!((~AV_RN32A(src + i) &
                   (AV_RN32A(src + i) - 0x01000101U)) &
                  0x80008080U))
    
            FIND_FIRST_ZERO;
            STARTCODE_TEST;
            i -= 3;
        }
    #endif
    
        for (i = 0; i + 1 < length; i += 2) {
            if (src[i])
                continue;
            if (i > 0 && src[i - 1] == 0)
                i--;
    
            STARTCODE_TEST;
    
        av_fast_padded_malloc(&sl->rbsp_buffer, &sl->rbsp_buffer_size, length+MAX_MBPAIR_SIZE);
    
        dst = sl->rbsp_buffer;
    
        if(i>=length-1){ //no escaped 0
            *dst_length= length;
            *consumed= length+1; //+1 for the header
    
            if(h->avctx->flags2 & AV_CODEC_FLAG2_FAST){
    
                return src;
            }else{
                memcpy(dst, src, length);
                return dst;
            }
    
        memcpy(dst, src, i);
    
        si = di = i;
        while (si + 2 < length) {
            // remove escapes (very rare 1:2^22)
            if (src[si + 2] > 3) {
                dst[di++] = src[si++];
                dst[di++] = src[si++];
    
            } else if (src[si] == 0 && src[si + 1] == 0 && src[si + 2] != 0) {
    
                if (src[si + 2] == 3) { // escape
                    dst[di++]  = 0;
                    dst[di++]  = 0;
                    si        += 3;
    
                } else // next start code
    
                    goto nsc;
    
            dst[di++] = src[si++];
    
        while (si < length)
            dst[di++] = src[si++];
    
        memset(dst + di, 0, AV_INPUT_BUFFER_PADDING_SIZE);
    
        *dst_length = di;
        *consumed   = si + 1; // +1 for the header
        /* FIXME store exact number of bits in the getbitcontext
         * (it is needed for decoding) */
    
    /**
     * Identify the exact end of the bitstream
     * @return the length of the trailing, or 0 if damaged
     */
    
    static int decode_rbsp_trailing(H264Context *h, const uint8_t *src)
    
    {
        int v = *src;
    
        ff_tlog(h->avctx, "rbsp trailing %X\n", v);
    
        for (r = 1; r < 9; r++) {
            if (v & 1)
                return r;
            v >>= 1;
    
    void ff_h264_free_tables(H264Context *h)
    
        av_freep(&h->intra4x4_pred_mode);
    
        av_freep(&h->chroma_pred_mode_table);
        av_freep(&h->cbp_table);
    
        av_freep(&h->mvd_table[0]);
        av_freep(&h->mvd_table[1]);
    
        av_freep(&h->direct_table);
    
        av_freep(&h->non_zero_count);
        av_freep(&h->slice_table_base);
    
        h->slice_table = NULL;
    
        av_freep(&h->list_counts);
    
        av_freep(&h->mb2b_xy);
    
        av_freep(&h->mb2br_xy);
    
        av_buffer_pool_uninit(&h->qscale_table_pool);
        av_buffer_pool_uninit(&h->mb_type_pool);
        av_buffer_pool_uninit(&h->motion_val_pool);
        av_buffer_pool_uninit(&h->ref_index_pool);
    
    
        for (i = 0; i < h->nb_slice_ctx; i++) {
            H264SliceContext *sl = &h->slice_ctx[i];
    
    
            av_freep(&sl->dc_val_base);
            av_freep(&sl->er.mb_index2xy);
            av_freep(&sl->er.error_status_table);
            av_freep(&sl->er.er_temp_buffer);
    
    
            av_freep(&sl->bipred_scratchpad);
            av_freep(&sl->edge_emu_buffer);
    
            av_freep(&sl->top_borders[0]);
            av_freep(&sl->top_borders[1]);
    
    
            sl->bipred_scratchpad_allocated = 0;
            sl->edge_emu_buffer_allocated   = 0;
    
            sl->top_borders_allocated[0]    = 0;
            sl->top_borders_allocated[1]    = 0;
    
    int ff_h264_alloc_tables(H264Context *h)
    {
    
        const int big_mb_num = h->mb_stride * (h->mb_height + 1);
    
        const int row_mb_num = 2*h->mb_stride*FFMAX(h->avctx->thread_count, 1);
    
        FF_ALLOCZ_ARRAY_OR_GOTO(h->avctx, h->intra4x4_pred_mode,
                          row_mb_num, 8 * sizeof(uint8_t), fail)
    
        h->slice_ctx[0].intra4x4_pred_mode = h->intra4x4_pred_mode;
    
    
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        FF_ALLOCZ_OR_GOTO(h->avctx, h->non_zero_count,
    
                          big_mb_num * 48 * sizeof(uint8_t), fail)
    
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        FF_ALLOCZ_OR_GOTO(h->avctx, h->slice_table_base,
                          (big_mb_num + h->mb_stride) * sizeof(*h->slice_table_base), fail)
        FF_ALLOCZ_OR_GOTO(h->avctx, h->cbp_table,
    
                          big_mb_num * sizeof(uint16_t), fail)
    
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        FF_ALLOCZ_OR_GOTO(h->avctx, h->chroma_pred_mode_table,
    
                          big_mb_num * sizeof(uint8_t), fail)
    
        FF_ALLOCZ_ARRAY_OR_GOTO(h->avctx, h->mvd_table[0],
                          row_mb_num, 16 * sizeof(uint8_t), fail);
        FF_ALLOCZ_ARRAY_OR_GOTO(h->avctx, h->mvd_table[1],
                          row_mb_num, 16 * sizeof(uint8_t), fail);
    
        h->slice_ctx[0].mvd_table[0] = h->mvd_table[0];
        h->slice_ctx[0].mvd_table[1] = h->mvd_table[1];
    
    
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        FF_ALLOCZ_OR_GOTO(h->avctx, h->direct_table,
    
                          4 * big_mb_num * sizeof(uint8_t), fail);
    
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        FF_ALLOCZ_OR_GOTO(h->avctx, h->list_counts,
    
                          big_mb_num * sizeof(uint8_t), fail)
    
        memset(h->slice_table_base, -1,
    
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               (big_mb_num + h->mb_stride) * sizeof(*h->slice_table_base));
        h->slice_table = h->slice_table_base + h->mb_stride * 2 + 1;
    
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        FF_ALLOCZ_OR_GOTO(h->avctx, h->mb2b_xy,
    
                          big_mb_num * sizeof(uint32_t), fail);
    
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        FF_ALLOCZ_OR_GOTO(h->avctx, h->mb2br_xy,
    
                          big_mb_num * sizeof(uint32_t), fail);
    
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        for (y = 0; y < h->mb_height; y++)
            for (x = 0; x < h->mb_width; x++) {
                const int mb_xy = x + y * h->mb_stride;
    
                const int b_xy  = 4 * x + 4 * y * h->b_stride;
    
                h->mb2b_xy[mb_xy]  = b_xy;
    
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                h->mb2br_xy[mb_xy] = 8 * (FMO ? mb_xy : (mb_xy % (2 * h->mb_stride)));
    
        if (!h->dequant4_coeff[0])
    
        return 0;
    
    fail:
    
        return AVERROR(ENOMEM);
    
    /**
     * Init context
     * Allocate buffers which are not shared amongst multiple threads.
     */
    
    int ff_h264_slice_context_init(H264Context *h, H264SliceContext *sl)
    
        ERContext *er = &sl->er;
    
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        int mb_array_size = h->mb_height * h->mb_stride;
        int y_size  = (2 * h->mb_width + 1) * (2 * h->mb_height + 1);
        int c_size  = h->mb_stride * (h->mb_height + 1);
        int yc_size = y_size + 2   * c_size;
        int x, y, i;
    
    
        sl->ref_cache[0][scan8[5]  + 1] =
        sl->ref_cache[0][scan8[7]  + 1] =
        sl->ref_cache[0][scan8[13] + 1] =
        sl->ref_cache[1][scan8[5]  + 1] =
        sl->ref_cache[1][scan8[7]  + 1] =
        sl->ref_cache[1][scan8[13] + 1] = PART_NOT_AVAILABLE;
    
        if (sl != h->slice_ctx) {
            memset(er, 0, sizeof(*er));
        } else
    
        if (CONFIG_ERROR_RESILIENCE) {
    
            /* init ER */
            er->avctx          = h->avctx;
            er->decode_mb      = h264_er_decode_mb;
            er->opaque         = h;
            er->quarter_sample = 1;
    
            er->mb_num      = h->mb_num;
            er->mb_width    = h->mb_width;
            er->mb_height   = h->mb_height;
            er->mb_stride   = h->mb_stride;
            er->b8_stride   = h->mb_width * 2 + 1;
    
            // error resilience code looks cleaner with this
            FF_ALLOCZ_OR_GOTO(h->avctx, er->mb_index2xy,
                              (h->mb_num + 1) * sizeof(int), fail);
    
    
            for (y = 0; y < h->mb_height; y++)
                for (x = 0; x < h->mb_width; x++)
                    er->mb_index2xy[x + y * h->mb_width] = x + y * h->mb_stride;
    
            er->mb_index2xy[h->mb_height * h->mb_width] = (h->mb_height - 1) *
    
                                                          h->mb_stride + h->mb_width;
    
            FF_ALLOCZ_OR_GOTO(h->avctx, er->error_status_table,
                              mb_array_size * sizeof(uint8_t), fail);
    
            FF_ALLOC_OR_GOTO(h->avctx, er->er_temp_buffer,
                             h->mb_height * h->mb_stride, fail);
    
            FF_ALLOCZ_OR_GOTO(h->avctx, sl->dc_val_base,
    
                              yc_size * sizeof(int16_t), fail);
    
            er->dc_val[0] = sl->dc_val_base + h->mb_width * 2 + 2;
            er->dc_val[1] = sl->dc_val_base + y_size + h->mb_stride + 1;
    
            er->dc_val[2] = er->dc_val[1] + c_size;
            for (i = 0; i < yc_size; i++)
    
                sl->dc_val_base[i] = 1024;
    
        return AVERROR(ENOMEM); // ff_h264_free_tables will clean up for us
    
    static int decode_nal_units(H264Context *h, const uint8_t *buf, int buf_size,
                                int parse_extradata);
    
    int ff_h264_decode_extradata(H264Context *h, const uint8_t *buf, int size)
    
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        AVCodecContext *avctx = h->avctx;
    
        if (!buf || size <= 0)
    
            const unsigned char *p = buf;
    
                av_log(avctx, AV_LOG_ERROR,
    
                       "avcC %d too short\n", size);
    
                return AVERROR_INVALIDDATA;
    
            }
            /* sps and pps in the avcC always have length coded with 2 bytes,
    
             * so put a fake nal_length_size = 2 while parsing them */
    
            h->nal_length_size = 2;
            // Decode sps from avcC
    
            cnt = *(p + 5) & 0x1f; // Number of sps
            p  += 6;
    
            for (i = 0; i < cnt; i++) {
                nalsize = AV_RB16(p) + 2;
    
                    return AVERROR_INVALIDDATA;
                ret = decode_nal_units(h, p, nalsize, 1);
                if (ret < 0) {
    
                    av_log(avctx, AV_LOG_ERROR,
                           "Decoding sps %d from avcC failed\n", i);
    
                    return ret;
    
                }
                p += nalsize;
            }
            // Decode pps from avcC
            cnt = *(p++); // Number of pps
            for (i = 0; i < cnt; i++) {
                nalsize = AV_RB16(p) + 2;
    
                    return AVERROR_INVALIDDATA;
                ret = decode_nal_units(h, p, nalsize, 1);
                if (ret < 0) {
    
                    av_log(avctx, AV_LOG_ERROR,
                           "Decoding pps %d from avcC failed\n", i);
    
                    return ret;
    
            // Store right nal length size that will be used to parse all other nals
    
            h->nal_length_size = (buf[4] & 0x03) + 1;
    
            ret = decode_nal_units(h, buf, size, 1);
    
            if (ret < 0)
                return ret;
    
    static int h264_init_context(AVCodecContext *avctx, H264Context *h)
    
        h->backup_width          = -1;
        h->backup_height         = -1;
        h->backup_pix_fmt        = AV_PIX_FMT_NONE;
    
        h->cur_chroma_format_idc = -1;
    
        h->picture_structure     = PICT_FRAME;
        h->slice_context_count   = 1;
        h->workaround_bugs       = avctx->workaround_bugs;
        h->flags                 = avctx->flags;
        h->prev_poc_msb          = 1 << 16;
        h->x264_build            = -1;
        h->recovery_frame        = -1;
        h->frame_recovered       = 0;
    
        h->prev_frame_num        = -1;
        h->sei_fpa.frame_packing_arrangement_cancel_flag = -1;
    
        h->next_outputed_poc = INT_MIN;
    
        for (i = 0; i < MAX_DELAYED_PIC_COUNT; i++)
            h->last_pocs[i] = INT_MIN;
    
    
        avctx->chroma_sample_location = AVCHROMA_LOC_LEFT;
    
    
        h->nb_slice_ctx = (avctx->active_thread_type & FF_THREAD_SLICE) ?  H264_MAX_THREADS : 1;
        h->slice_ctx = av_mallocz_array(h->nb_slice_ctx, sizeof(*h->slice_ctx));
        if (!h->slice_ctx) {
            h->nb_slice_ctx = 0;
            return AVERROR(ENOMEM);
        }
    
    
        for (i = 0; i < H264_MAX_PICTURE_COUNT; i++) {
            h->DPB[i].f = av_frame_alloc();
            if (!h->DPB[i].f)
                return AVERROR(ENOMEM);
        }
    
        h->cur_pic.f = av_frame_alloc();
        if (!h->cur_pic.f)
            return AVERROR(ENOMEM);
    
        h->last_pic_for_ec.f = av_frame_alloc();
        if (!h->last_pic_for_ec.f)
            return AVERROR(ENOMEM);
    
        for (i = 0; i < h->nb_slice_ctx; i++)
    
    static AVOnce h264_vlc_init = AV_ONCE_INIT;
    
    
    av_cold int ff_h264_decode_init(AVCodecContext *avctx)
    {
        H264Context *h = avctx->priv_data;
        int ret;
    
        ret = h264_init_context(avctx, h);
        if (ret < 0)
            return ret;
    
        /* set defaults */
        if (!avctx->has_b_frames)
            h->low_delay = 1;
    
    
        ret = ff_thread_once(&h264_vlc_init, ff_h264_decode_init_vlc);
        if (ret != 0) {
            av_log(avctx, AV_LOG_ERROR, "pthread_once has failed.");
            return AVERROR_UNKNOWN;
        }
    
        if (avctx->codec_id == AV_CODEC_ID_H264) {
    
            if (avctx->ticks_per_frame == 1) {
    
                if(h->avctx->time_base.den < INT_MAX/2) {
                    h->avctx->time_base.den *= 2;
    
                    h->avctx->time_base.num /= 2;
    
            avctx->ticks_per_frame = 2;
        }
    
    
        if (avctx->extradata_size > 0 && avctx->extradata) {
    
            ret = ff_h264_decode_extradata(h, avctx->extradata, avctx->extradata_size);
            if (ret < 0) {
                ff_h264_free_context(h);
                return ret;
            }
    
        if (h->sps.bitstream_restriction_flag &&
    
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            h->avctx->has_b_frames < h->sps.num_reorder_frames) {
            h->avctx->has_b_frames = h->sps.num_reorder_frames;
            h->low_delay           = 0;
    
        avctx->internal->allocate_progress = 1;
    
        ff_h264_flush_change(h);
    
        if (h->enable_er < 0 && (avctx->active_thread_type & FF_THREAD_SLICE))
            h->enable_er = 0;
    
    
        if (h->enable_er && (avctx->active_thread_type & FF_THREAD_SLICE)) {
    
            av_log(avctx, AV_LOG_WARNING,
    
                   "Error resilience with slice threads is enabled. It is unsafe and unsupported and may crash. "
    
                   "Use it at your own risk\n");
        }
    
    
        return 0;
    
    static int decode_init_thread_copy(AVCodecContext *avctx)
    {
        H264Context *h = avctx->priv_data;
    
        if (!avctx->internal->is_copy)
            return 0;
    
    
        memset(h, 0, sizeof(*h));
    
        ret = h264_init_context(avctx, h);
        if (ret < 0)
            return ret;
    
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        h->context_initialized = 0;
    
     * Run setup operations that must be run after slice header decoding.
     * This includes finding the next displayed frame.
     *
     * @param h h264 master context
     * @param setup_finished enough NALs have been read that we can call
     * ff_thread_finish_setup()
     */
    static void decode_postinit(H264Context *h, int setup_finished)
    {
    
        H264Picture *out = h->cur_pic_ptr;
        H264Picture *cur = h->cur_pic_ptr;
    
        int i, pics, out_of_order, out_idx;
    
    
        h->cur_pic_ptr->f->pict_type = h->pict_type;
    
        if (h->next_output_pic)
            return;
    
        if (cur->field_poc[0] == INT_MAX || cur->field_poc[1] == INT_MAX) {
            /* FIXME: if we have two PAFF fields in one packet, we can't start
             * the next thread here. If we have one field per packet, we can.
             * The check in decode_nal_units() is not good enough to find this
             * yet, so we assume the worst for now. */
            // if (setup_finished)
    
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            //    ff_thread_finish_setup(h->avctx);
    
            if (cur->field_poc[0] == INT_MAX && cur->field_poc[1] == INT_MAX)
                return;
            if (h->avctx->hwaccel || h->missing_fields <=1)
                return;
    
        cur->f->interlaced_frame = 0;
        cur->f->repeat_pict      = 0;
    
    
        /* Signal interlacing information externally. */
    
        /* Prioritize picture timing SEI information over used
         * decoding process if it exists. */
    
        if (h->sps.pic_struct_present_flag) {
            switch (h->sei_pic_struct) {
    
            case SEI_PIC_STRUCT_FRAME:
                break;
            case SEI_PIC_STRUCT_TOP_FIELD:
            case SEI_PIC_STRUCT_BOTTOM_FIELD:
    
                cur->f->interlaced_frame = 1;
    
                break;
            case SEI_PIC_STRUCT_TOP_BOTTOM:
            case SEI_PIC_STRUCT_BOTTOM_TOP:
    
                if (FIELD_OR_MBAFF_PICTURE(h))
    
                    cur->f->interlaced_frame = 1;
    
                else
                    // try to flag soft telecine progressive
    
                    cur->f->interlaced_frame = h->prev_interlaced_frame;
    
                break;
            case SEI_PIC_STRUCT_TOP_BOTTOM_TOP:
            case SEI_PIC_STRUCT_BOTTOM_TOP_BOTTOM:
    
                /* Signal the possibility of telecined film externally
                 * (pic_struct 5,6). From these hints, let the applications
                 * decide if they apply deinterlacing. */
    
                cur->f->repeat_pict = 1;
    
                break;
            case SEI_PIC_STRUCT_FRAME_DOUBLING:
    
                cur->f->repeat_pict = 2;
    
                break;
            case SEI_PIC_STRUCT_FRAME_TRIPLING:
    
                cur->f->repeat_pict = 4;
    
            if ((h->sei_ct_type & 3) &&
                h->sei_pic_struct <= SEI_PIC_STRUCT_BOTTOM_TOP)
    
                cur->f->interlaced_frame = (h->sei_ct_type & (1 << 1)) != 0;
    
        } else {
    
            /* Derive interlacing flag from used decoding process. */
    
            cur->f->interlaced_frame = FIELD_OR_MBAFF_PICTURE(h);
    
        h->prev_interlaced_frame = cur->f->interlaced_frame;
    
        if (cur->field_poc[0] != cur->field_poc[1]) {
    
            /* Derive top_field_first from field pocs. */
    
            cur->f->top_field_first = cur->field_poc[0] < cur->field_poc[1];
    
        } else {
    
            if (h->sps.pic_struct_present_flag) {
    
                /* Use picture timing SEI information. Even if it is a
                 * information of a past frame, better than nothing. */
                if (h->sei_pic_struct == SEI_PIC_STRUCT_TOP_BOTTOM ||
                    h->sei_pic_struct == SEI_PIC_STRUCT_TOP_BOTTOM_TOP)
    
                    cur->f->top_field_first = 1;
    
                    cur->f->top_field_first = 0;
    
            } else if (cur->f->interlaced_frame) {
                /* Default to top field first when pic_struct_present_flag
                 * is not set but interlaced frame detected */
                cur->f->top_field_first = 1;
    
            } else {
    
                /* Most likely progressive */
    
                cur->f->top_field_first = 0;
    
        if (h->sei_frame_packing_present &&
            h->frame_packing_arrangement_type >= 0 &&
            h->frame_packing_arrangement_type <= 6 &&
            h->content_interpretation_type > 0 &&
            h->content_interpretation_type < 3) {
    
            AVStereo3D *stereo = av_stereo3d_create_side_data(cur->f);
    
            switch (h->frame_packing_arrangement_type) {
            case 0:
                stereo->type = AV_STEREO3D_CHECKERBOARD;
                break;
            case 1:
    
                stereo->type = AV_STEREO3D_COLUMNS;
    
                stereo->type = AV_STEREO3D_LINES;
    
                break;
            case 3:
                if (h->quincunx_subsampling)
                    stereo->type = AV_STEREO3D_SIDEBYSIDE_QUINCUNX;
                else
                    stereo->type = AV_STEREO3D_SIDEBYSIDE;
                break;
            case 4:
                stereo->type = AV_STEREO3D_TOPBOTTOM;
                break;
            case 5:
                stereo->type = AV_STEREO3D_FRAMESEQUENCE;
                break;
            case 6:
                stereo->type = AV_STEREO3D_2D;
                break;
            }
    
            if (h->content_interpretation_type == 2)
                stereo->flags = AV_STEREO3D_FLAG_INVERT;
    
        if (h->sei_display_orientation_present &&
            (h->sei_anticlockwise_rotation || h->sei_hflip || h->sei_vflip)) {
            double angle = h->sei_anticlockwise_rotation * 360 / (double) (1 << 16);
    
            AVFrameSideData *rotation = av_frame_new_side_data(cur->f,
    
                                                               AV_FRAME_DATA_DISPLAYMATRIX,
                                                               sizeof(int32_t) * 9);
    
            if (rotation) {
                av_display_rotation_set((int32_t *)rotation->data, angle);
                av_display_matrix_flip((int32_t *)rotation->data,
    
                                       h->sei_hflip, h->sei_vflip);
    
        if (h->sei_reguserdata_afd_present) {
            AVFrameSideData *sd = av_frame_new_side_data(cur->f, AV_FRAME_DATA_AFD,
                                                         sizeof(uint8_t));
    
    
                *sd->data = h->active_format_description;
                h->sei_reguserdata_afd_present = 0;
    
            AVFrameSideData *sd = av_frame_new_side_data(cur->f,
                                                         AV_FRAME_DATA_A53_CC,
                                                         h->a53_caption_size);
    
            if (sd)
                memcpy(sd->data, h->a53_caption, h->a53_caption_size);
            av_freep(&h->a53_caption);
            h->a53_caption_size = 0;
    
            h->avctx->properties |= FF_CODEC_PROPERTY_CLOSED_CAPTIONS;
    
        cur->mmco_reset = h->mmco_reset;
        h->mmco_reset = 0;
    
        // FIXME do something with unavailable reference frames
    
    
        /* Sort B-frames into display order */
    
    
        if (h->sps.bitstream_restriction_flag &&
    
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            h->avctx->has_b_frames < h->sps.num_reorder_frames) {
            h->avctx->has_b_frames = h->sps.num_reorder_frames;
            h->low_delay           = 0;
    
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        if (h->avctx->strict_std_compliance >= FF_COMPLIANCE_STRICT &&
    
            !h->sps.bitstream_restriction_flag) {
    
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            h->avctx->has_b_frames = MAX_DELAYED_PIC_COUNT - 1;
            h->low_delay           = 0;
    
        for (i = 0; 1; i++) {
            if(i == MAX_DELAYED_PIC_COUNT || cur->poc < h->last_pocs[i]){
                if(i)
                    h->last_pocs[i-1] = cur->poc;
                break;
            } else if(i) {
                h->last_pocs[i-1]= h->last_pocs[i];
            }
        }
        out_of_order = MAX_DELAYED_PIC_COUNT - i;
    
        if(   cur->f->pict_type == AV_PICTURE_TYPE_B
    
           || (h->last_pocs[MAX_DELAYED_PIC_COUNT-2] > INT_MIN && h->last_pocs[MAX_DELAYED_PIC_COUNT-1] - h->last_pocs[MAX_DELAYED_PIC_COUNT-2] > 2))
            out_of_order = FFMAX(out_of_order, 1);
    
        if (out_of_order == MAX_DELAYED_PIC_COUNT) {
    
            av_log(h->avctx, AV_LOG_VERBOSE, "Invalid POC %d<%d\n", cur->poc, h->last_pocs[0]);
    
            for (i = 1; i < MAX_DELAYED_PIC_COUNT; i++)
                h->last_pocs[i] = INT_MIN;
            h->last_pocs[0] = cur->poc;
            cur->mmco_reset = 1;
    
        } else if(h->avctx->has_b_frames < out_of_order && !h->sps.bitstream_restriction_flag){
            av_log(h->avctx, AV_LOG_VERBOSE, "Increasing reorder buffer to %d\n", out_of_order);
            h->avctx->has_b_frames = out_of_order;
            h->low_delay = 0;
    
        while (h->delayed_pic[pics])
            pics++;
    
        av_assert0(pics <= MAX_DELAYED_PIC_COUNT);
    
        if (cur->reference == 0)
            cur->reference = DELAYED_PIC_REF;
    
        out     = h->delayed_pic[0];
    
        for (i = 1; h->delayed_pic[i] &&
    
                    !h->delayed_pic[i]->f->key_frame &&
    
                    !h->delayed_pic[i]->mmco_reset;
    
             i++)
            if (h->delayed_pic[i]->poc < out->poc) {
                out     = h->delayed_pic[i];
    
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        if (h->avctx->has_b_frames == 0 &&
    
            (h->delayed_pic[0]->f->key_frame || h->delayed_pic[0]->mmco_reset))
    
            h->next_outputed_poc = INT_MIN;
    
        out_of_order = out->poc < h->next_outputed_poc;
    
        if (out_of_order || pics > h->avctx->has_b_frames) {
    
            out->reference &= ~DELAYED_PIC_REF;
    
            // for frame threading, the owner must be the second field's thread or
            // else the first thread can release the picture and reuse it unsafely
            for (i = out_idx; h->delayed_pic[i]; i++)
                h->delayed_pic[i] = h->delayed_pic[i + 1];
    
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        if (!out_of_order && pics > h->avctx->has_b_frames) {
    
            h->next_output_pic = out;
    
            if (out_idx == 0 && h->delayed_pic[0] && (h->delayed_pic[0]->f->key_frame || h->delayed_pic[0]->mmco_reset)) {
    
                h->next_outputed_poc = INT_MIN;
            } else
    
                h->next_outputed_poc = out->poc;
    
        } else {
    
            av_log(h->avctx, AV_LOG_DEBUG, "no picture %s\n", out_of_order ? "ooo" : "");
    
        if (h->next_output_pic) {
            if (h->next_output_pic->recovered) {
                // We have reached an recovery point and all frames after it in
                // display order are "recovered".
                h->frame_recovered |= FRAME_RECOVERED_SEI;
            }
            h->next_output_pic->recovered |= !!(h->frame_recovered & FRAME_RECOVERED_SEI);
    
        if (setup_finished && !h->avctx->hwaccel) {
    
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            ff_thread_finish_setup(h->avctx);