539 lines
17 KiB
C
539 lines
17 KiB
C
/*
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* Copyright (c) 2016, Alliance for Open Media. All rights reserved
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*
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* This source code is subject to the terms of the BSD 2 Clause License and
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* the Alliance for Open Media Patent License 1.0. If the BSD 2 Clause License
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* was not distributed with this source code in the LICENSE file, you can
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* obtain it at www.aomedia.org/license/software. If the Alliance for Open
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* Media Patent License 1.0 was not distributed with this source code in the
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* PATENTS file, you can obtain it at www.aomedia.org/license/patent.
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*/
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#include <assert.h>
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#include <limits.h>
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#include <stdio.h>
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#include "config/av1_rtcd.h"
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#include "config/aom_dsp_rtcd.h"
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#include "config/aom_scale_rtcd.h"
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#include "aom_dsp/aom_dsp_common.h"
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#include "aom_mem/aom_mem.h"
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#include "aom_ports/aom_timer.h"
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#include "aom_scale/aom_scale.h"
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#include "aom_util/aom_pthread.h"
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#include "aom_util/aom_thread.h"
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#include "av1/common/alloccommon.h"
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#include "av1/common/av1_common_int.h"
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#include "av1/common/av1_loopfilter.h"
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#include "av1/common/quant_common.h"
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#include "av1/common/reconinter.h"
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#include "av1/common/reconintra.h"
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#include "av1/decoder/decodeframe.h"
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#include "av1/decoder/decoder.h"
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#include "av1/decoder/detokenize.h"
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#include "av1/decoder/obu.h"
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static void initialize_dec(void) {
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av1_rtcd();
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aom_dsp_rtcd();
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aom_scale_rtcd();
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av1_init_intra_predictors();
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av1_init_wedge_masks();
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}
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static void dec_set_mb_mi(CommonModeInfoParams *mi_params, int width,
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int height, BLOCK_SIZE min_partition_size) {
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(void)min_partition_size;
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// Ensure that the decoded width and height are both multiples of
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// 8 luma pixels (note: this may only be a multiple of 4 chroma pixels if
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// subsampling is used).
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// This simplifies the implementation of various experiments,
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// eg. cdef, which operates on units of 8x8 luma pixels.
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const int aligned_width = ALIGN_POWER_OF_TWO(width, 3);
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const int aligned_height = ALIGN_POWER_OF_TWO(height, 3);
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mi_params->mi_cols = aligned_width >> MI_SIZE_LOG2;
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mi_params->mi_rows = aligned_height >> MI_SIZE_LOG2;
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mi_params->mi_stride = calc_mi_size(mi_params->mi_cols);
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mi_params->mb_cols = ROUND_POWER_OF_TWO(mi_params->mi_cols, 2);
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mi_params->mb_rows = ROUND_POWER_OF_TWO(mi_params->mi_rows, 2);
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mi_params->MBs = mi_params->mb_rows * mi_params->mb_cols;
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mi_params->mi_alloc_bsize = BLOCK_4X4;
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mi_params->mi_alloc_stride = mi_params->mi_stride;
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assert(mi_size_wide[mi_params->mi_alloc_bsize] ==
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mi_size_high[mi_params->mi_alloc_bsize]);
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}
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static void dec_setup_mi(CommonModeInfoParams *mi_params) {
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const int mi_grid_size =
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mi_params->mi_stride * calc_mi_size(mi_params->mi_rows);
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memset(mi_params->mi_grid_base, 0,
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mi_grid_size * sizeof(*mi_params->mi_grid_base));
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}
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static void dec_free_mi(CommonModeInfoParams *mi_params) {
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aom_free(mi_params->mi_alloc);
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mi_params->mi_alloc = NULL;
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mi_params->mi_alloc_size = 0;
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aom_free(mi_params->mi_grid_base);
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mi_params->mi_grid_base = NULL;
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mi_params->mi_grid_size = 0;
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aom_free(mi_params->tx_type_map);
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mi_params->tx_type_map = NULL;
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}
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AV1Decoder *av1_decoder_create(BufferPool *const pool) {
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AV1Decoder *volatile const pbi = aom_memalign(32, sizeof(*pbi));
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if (!pbi) return NULL;
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av1_zero(*pbi);
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AV1_COMMON *volatile const cm = &pbi->common;
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cm->seq_params = &pbi->seq_params;
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cm->error = &pbi->error;
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// The jmp_buf is valid only for the duration of the function that calls
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// setjmp(). Therefore, this function must reset the 'setjmp' field to 0
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// before it returns.
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if (setjmp(pbi->error.jmp)) {
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pbi->error.setjmp = 0;
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av1_decoder_remove(pbi);
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return NULL;
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}
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pbi->error.setjmp = 1;
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CHECK_MEM_ERROR(cm, cm->fc,
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(FRAME_CONTEXT *)aom_memalign(32, sizeof(*cm->fc)));
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CHECK_MEM_ERROR(
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cm, cm->default_frame_context,
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(FRAME_CONTEXT *)aom_memalign(32, sizeof(*cm->default_frame_context)));
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memset(cm->fc, 0, sizeof(*cm->fc));
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memset(cm->default_frame_context, 0, sizeof(*cm->default_frame_context));
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pbi->need_resync = 1;
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initialize_dec();
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// Initialize the references to not point to any frame buffers.
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for (int i = 0; i < REF_FRAMES; i++) {
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cm->ref_frame_map[i] = NULL;
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}
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cm->current_frame.frame_number = 0;
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pbi->decoding_first_frame = 1;
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pbi->common.buffer_pool = pool;
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cm->seq_params->bit_depth = AOM_BITS_8;
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cm->mi_params.free_mi = dec_free_mi;
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cm->mi_params.setup_mi = dec_setup_mi;
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cm->mi_params.set_mb_mi = dec_set_mb_mi;
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av1_loop_filter_init(cm);
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av1_qm_init(&cm->quant_params, av1_num_planes(cm));
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av1_loop_restoration_precal();
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#if CONFIG_ACCOUNTING
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pbi->acct_enabled = 1;
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aom_accounting_init(&pbi->accounting);
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#endif
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pbi->error.setjmp = 0;
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aom_get_worker_interface()->init(&pbi->lf_worker);
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pbi->lf_worker.thread_name = "aom lf worker";
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return pbi;
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}
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void av1_dealloc_dec_jobs(struct AV1DecTileMTData *tile_mt_info) {
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if (tile_mt_info != NULL) {
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#if CONFIG_MULTITHREAD
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if (tile_mt_info->job_mutex != NULL) {
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pthread_mutex_destroy(tile_mt_info->job_mutex);
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aom_free(tile_mt_info->job_mutex);
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}
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#endif
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aom_free(tile_mt_info->job_queue);
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// clear the structure as the source of this call may be a resize in which
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// case this call will be followed by an _alloc() which may fail.
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av1_zero(*tile_mt_info);
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}
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}
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void av1_dec_free_cb_buf(AV1Decoder *pbi) {
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aom_free(pbi->cb_buffer_base);
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pbi->cb_buffer_base = NULL;
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pbi->cb_buffer_alloc_size = 0;
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}
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void av1_decoder_remove(AV1Decoder *pbi) {
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int i;
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if (!pbi) return;
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// Free the tile list output buffer.
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aom_free_frame_buffer(&pbi->tile_list_outbuf);
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aom_get_worker_interface()->end(&pbi->lf_worker);
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aom_free(pbi->lf_worker.data1);
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if (pbi->thread_data) {
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for (int worker_idx = 1; worker_idx < pbi->num_workers; worker_idx++) {
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DecWorkerData *const thread_data = pbi->thread_data + worker_idx;
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if (thread_data->td != NULL) {
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av1_free_mc_tmp_buf(thread_data->td);
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aom_free(thread_data->td);
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}
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}
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aom_free(pbi->thread_data);
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}
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aom_free(pbi->dcb.xd.seg_mask);
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for (i = 0; i < pbi->num_workers; ++i) {
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AVxWorker *const worker = &pbi->tile_workers[i];
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aom_get_worker_interface()->end(worker);
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}
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#if CONFIG_MULTITHREAD
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if (pbi->row_mt_mutex_ != NULL) {
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pthread_mutex_destroy(pbi->row_mt_mutex_);
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aom_free(pbi->row_mt_mutex_);
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}
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if (pbi->row_mt_cond_ != NULL) {
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pthread_cond_destroy(pbi->row_mt_cond_);
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aom_free(pbi->row_mt_cond_);
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}
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#endif
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for (i = 0; i < pbi->allocated_tiles; i++) {
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TileDataDec *const tile_data = pbi->tile_data + i;
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av1_dec_row_mt_dealloc(&tile_data->dec_row_mt_sync);
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}
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aom_free(pbi->tile_data);
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aom_free(pbi->tile_workers);
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if (pbi->num_workers > 0) {
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av1_loop_filter_dealloc(&pbi->lf_row_sync);
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av1_loop_restoration_dealloc(&pbi->lr_row_sync);
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av1_dealloc_dec_jobs(&pbi->tile_mt_info);
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}
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av1_dec_free_cb_buf(pbi);
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#if CONFIG_ACCOUNTING
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aom_accounting_clear(&pbi->accounting);
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#endif
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av1_free_mc_tmp_buf(&pbi->td);
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aom_img_metadata_array_free(pbi->metadata);
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av1_remove_common(&pbi->common);
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aom_free(pbi);
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}
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void av1_visit_palette(AV1Decoder *const pbi, MACROBLOCKD *const xd,
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aom_reader *r, palette_visitor_fn_t visit) {
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if (!is_inter_block(xd->mi[0])) {
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for (int plane = 0; plane < AOMMIN(2, av1_num_planes(&pbi->common));
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++plane) {
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if (plane == 0 || xd->is_chroma_ref) {
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if (xd->mi[0]->palette_mode_info.palette_size[plane])
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visit(xd, plane, r);
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} else {
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assert(xd->mi[0]->palette_mode_info.palette_size[plane] == 0);
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}
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}
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}
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}
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static int equal_dimensions(const YV12_BUFFER_CONFIG *a,
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const YV12_BUFFER_CONFIG *b) {
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return a->y_height == b->y_height && a->y_width == b->y_width &&
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a->uv_height == b->uv_height && a->uv_width == b->uv_width;
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}
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aom_codec_err_t av1_copy_reference_dec(AV1Decoder *pbi, int idx,
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YV12_BUFFER_CONFIG *sd) {
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AV1_COMMON *cm = &pbi->common;
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const int num_planes = av1_num_planes(cm);
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const YV12_BUFFER_CONFIG *const cfg = get_ref_frame(cm, idx);
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if (cfg == NULL) {
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aom_internal_error(&pbi->error, AOM_CODEC_ERROR, "No reference frame");
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return AOM_CODEC_ERROR;
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}
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if (!equal_dimensions(cfg, sd))
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aom_internal_error(&pbi->error, AOM_CODEC_ERROR,
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"Incorrect buffer dimensions");
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else
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aom_yv12_copy_frame(cfg, sd, num_planes);
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return pbi->error.error_code;
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}
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static int equal_dimensions_and_border(const YV12_BUFFER_CONFIG *a,
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const YV12_BUFFER_CONFIG *b) {
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return a->y_height == b->y_height && a->y_width == b->y_width &&
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a->uv_height == b->uv_height && a->uv_width == b->uv_width &&
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a->y_stride == b->y_stride && a->uv_stride == b->uv_stride &&
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a->border == b->border &&
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(a->flags & YV12_FLAG_HIGHBITDEPTH) ==
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(b->flags & YV12_FLAG_HIGHBITDEPTH);
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}
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aom_codec_err_t av1_set_reference_dec(AV1_COMMON *cm, int idx,
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int use_external_ref,
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YV12_BUFFER_CONFIG *sd) {
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const int num_planes = av1_num_planes(cm);
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YV12_BUFFER_CONFIG *ref_buf = NULL;
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// Get the destination reference buffer.
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ref_buf = get_ref_frame(cm, idx);
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if (ref_buf == NULL) {
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aom_internal_error(cm->error, AOM_CODEC_ERROR, "No reference frame");
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return AOM_CODEC_ERROR;
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}
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if (!use_external_ref) {
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if (!equal_dimensions(ref_buf, sd)) {
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aom_internal_error(cm->error, AOM_CODEC_ERROR,
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"Incorrect buffer dimensions");
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} else {
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// Overwrite the reference frame buffer.
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aom_yv12_copy_frame(sd, ref_buf, num_planes);
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}
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} else {
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if (!equal_dimensions_and_border(ref_buf, sd)) {
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aom_internal_error(cm->error, AOM_CODEC_ERROR,
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"Incorrect buffer dimensions");
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} else {
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// Overwrite the reference frame buffer pointers.
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// Once we no longer need the external reference buffer, these pointers
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// are restored.
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ref_buf->store_buf_adr[0] = ref_buf->y_buffer;
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ref_buf->store_buf_adr[1] = ref_buf->u_buffer;
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ref_buf->store_buf_adr[2] = ref_buf->v_buffer;
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ref_buf->y_buffer = sd->y_buffer;
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ref_buf->u_buffer = sd->u_buffer;
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ref_buf->v_buffer = sd->v_buffer;
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ref_buf->use_external_reference_buffers = 1;
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}
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}
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return cm->error->error_code;
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}
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aom_codec_err_t av1_copy_new_frame_dec(AV1_COMMON *cm,
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YV12_BUFFER_CONFIG *new_frame,
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YV12_BUFFER_CONFIG *sd) {
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const int num_planes = av1_num_planes(cm);
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if (!equal_dimensions_and_border(new_frame, sd))
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aom_internal_error(cm->error, AOM_CODEC_ERROR,
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"Incorrect buffer dimensions");
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else
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aom_yv12_copy_frame(new_frame, sd, num_planes);
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return cm->error->error_code;
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}
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static void release_current_frame(AV1Decoder *pbi) {
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AV1_COMMON *const cm = &pbi->common;
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BufferPool *const pool = cm->buffer_pool;
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cm->cur_frame->buf.corrupted = 1;
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lock_buffer_pool(pool);
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decrease_ref_count(cm->cur_frame, pool);
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unlock_buffer_pool(pool);
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cm->cur_frame = NULL;
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}
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// If any buffer updating is signaled it should be done here.
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// Consumes a reference to cm->cur_frame.
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//
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// This functions returns void. It reports failure by setting
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// pbi->error.error_code.
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static void update_frame_buffers(AV1Decoder *pbi, int frame_decoded) {
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int ref_index = 0, mask;
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AV1_COMMON *const cm = &pbi->common;
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BufferPool *const pool = cm->buffer_pool;
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if (frame_decoded) {
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lock_buffer_pool(pool);
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// In ext-tile decoding, the camera frame header is only decoded once. So,
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// we don't update the references here.
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if (!pbi->camera_frame_header_ready) {
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// The following for loop needs to release the reference stored in
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// cm->ref_frame_map[ref_index] before storing a reference to
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// cm->cur_frame in cm->ref_frame_map[ref_index].
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for (mask = cm->current_frame.refresh_frame_flags; mask; mask >>= 1) {
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if (mask & 1) {
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decrease_ref_count(cm->ref_frame_map[ref_index], pool);
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cm->ref_frame_map[ref_index] = cm->cur_frame;
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++cm->cur_frame->ref_count;
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}
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++ref_index;
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}
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}
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if (cm->show_existing_frame || cm->show_frame) {
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if (pbi->output_all_layers) {
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// Append this frame to the output queue
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if (pbi->num_output_frames >= MAX_NUM_SPATIAL_LAYERS) {
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// We can't store the new frame anywhere, so drop it and return an
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// error
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cm->cur_frame->buf.corrupted = 1;
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decrease_ref_count(cm->cur_frame, pool);
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pbi->error.error_code = AOM_CODEC_UNSUP_BITSTREAM;
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} else {
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pbi->output_frames[pbi->num_output_frames] = cm->cur_frame;
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pbi->num_output_frames++;
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}
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} else {
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// Replace any existing output frame
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assert(pbi->num_output_frames == 0 || pbi->num_output_frames == 1);
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if (pbi->num_output_frames > 0) {
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decrease_ref_count(pbi->output_frames[0], pool);
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}
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pbi->output_frames[0] = cm->cur_frame;
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pbi->num_output_frames = 1;
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}
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} else {
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decrease_ref_count(cm->cur_frame, pool);
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}
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unlock_buffer_pool(pool);
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} else {
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// Nothing was decoded, so just drop this frame buffer
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lock_buffer_pool(pool);
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decrease_ref_count(cm->cur_frame, pool);
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unlock_buffer_pool(pool);
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}
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cm->cur_frame = NULL;
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if (!pbi->camera_frame_header_ready) {
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// Invalidate these references until the next frame starts.
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for (ref_index = 0; ref_index < INTER_REFS_PER_FRAME; ref_index++) {
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cm->remapped_ref_idx[ref_index] = INVALID_IDX;
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}
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}
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}
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int av1_receive_compressed_data(AV1Decoder *pbi, size_t size,
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const uint8_t **psource) {
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AV1_COMMON *volatile const cm = &pbi->common;
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const uint8_t *source = *psource;
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pbi->error.error_code = AOM_CODEC_OK;
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pbi->error.has_detail = 0;
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if (size == 0) {
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// This is used to signal that we are missing frames.
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// We do not know if the missing frame(s) was supposed to update
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// any of the reference buffers, but we act conservative and
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// mark only the last buffer as corrupted.
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//
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// TODO(jkoleszar): Error concealment is undefined and non-normative
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// at this point, but if it becomes so, [0] may not always be the correct
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// thing to do here.
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RefCntBuffer *ref_buf = get_ref_frame_buf(cm, LAST_FRAME);
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if (ref_buf != NULL) ref_buf->buf.corrupted = 1;
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}
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if (assign_cur_frame_new_fb(cm) == NULL) {
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pbi->error.error_code = AOM_CODEC_MEM_ERROR;
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|
return 1;
|
|
}
|
|
|
|
// The jmp_buf is valid only for the duration of the function that calls
|
|
// setjmp(). Therefore, this function must reset the 'setjmp' field to 0
|
|
// before it returns.
|
|
if (setjmp(pbi->error.jmp)) {
|
|
const AVxWorkerInterface *const winterface = aom_get_worker_interface();
|
|
int i;
|
|
|
|
pbi->error.setjmp = 0;
|
|
|
|
// Synchronize all threads immediately as a subsequent decode call may
|
|
// cause a resize invalidating some allocations.
|
|
winterface->sync(&pbi->lf_worker);
|
|
for (i = 0; i < pbi->num_workers; ++i) {
|
|
winterface->sync(&pbi->tile_workers[i]);
|
|
}
|
|
|
|
release_current_frame(pbi);
|
|
return -1;
|
|
}
|
|
|
|
pbi->error.setjmp = 1;
|
|
|
|
int frame_decoded =
|
|
aom_decode_frame_from_obus(pbi, source, source + size, psource);
|
|
|
|
if (frame_decoded < 0) {
|
|
assert(pbi->error.error_code != AOM_CODEC_OK);
|
|
release_current_frame(pbi);
|
|
pbi->error.setjmp = 0;
|
|
return 1;
|
|
}
|
|
|
|
#if TXCOEFF_TIMER
|
|
cm->cum_txcoeff_timer += cm->txcoeff_timer;
|
|
fprintf(stderr,
|
|
"txb coeff block number: %d, frame time: %ld, cum time %ld in us\n",
|
|
cm->txb_count, cm->txcoeff_timer, cm->cum_txcoeff_timer);
|
|
cm->txcoeff_timer = 0;
|
|
cm->txb_count = 0;
|
|
#endif
|
|
|
|
// Note: At this point, this function holds a reference to cm->cur_frame
|
|
// in the buffer pool. This reference is consumed by update_frame_buffers().
|
|
update_frame_buffers(pbi, frame_decoded);
|
|
|
|
if (frame_decoded) {
|
|
pbi->decoding_first_frame = 0;
|
|
}
|
|
|
|
if (pbi->error.error_code != AOM_CODEC_OK) {
|
|
pbi->error.setjmp = 0;
|
|
return 1;
|
|
}
|
|
|
|
if (!cm->show_existing_frame) {
|
|
if (cm->seg.enabled) {
|
|
if (cm->prev_frame &&
|
|
(cm->mi_params.mi_rows == cm->prev_frame->mi_rows) &&
|
|
(cm->mi_params.mi_cols == cm->prev_frame->mi_cols)) {
|
|
cm->last_frame_seg_map = cm->prev_frame->seg_map;
|
|
} else {
|
|
cm->last_frame_seg_map = NULL;
|
|
}
|
|
}
|
|
}
|
|
|
|
// Update progress in frame parallel decode.
|
|
pbi->error.setjmp = 0;
|
|
|
|
return 0;
|
|
}
|
|
|
|
// Get the frame at a particular index in the output queue
|
|
int av1_get_raw_frame(AV1Decoder *pbi, size_t index, YV12_BUFFER_CONFIG **sd,
|
|
aom_film_grain_t **grain_params) {
|
|
if (index >= pbi->num_output_frames) return -1;
|
|
*sd = &pbi->output_frames[index]->buf;
|
|
*grain_params = &pbi->output_frames[index]->film_grain_params;
|
|
return 0;
|
|
}
|
|
|
|
// Get the highest-spatial-layer output
|
|
// TODO(rachelbarker): What should this do?
|
|
int av1_get_frame_to_show(AV1Decoder *pbi, YV12_BUFFER_CONFIG *frame) {
|
|
if (pbi->num_output_frames == 0) return -1;
|
|
|
|
*frame = pbi->output_frames[pbi->num_output_frames - 1]->buf;
|
|
return 0;
|
|
}
|