512 lines
19 KiB
C
512 lines
19 KiB
C
/*
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*
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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 "config/aom_config.h"
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#include "aom_mem/aom_mem.h"
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#include "aom_scale/yv12config.h"
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#include "aom_util/aom_pthread.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/blockd.h"
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#include "av1/common/cdef_block.h"
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#include "av1/common/entropymode.h"
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#include "av1/common/entropymv.h"
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#include "av1/common/enums.h"
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#include "av1/common/restoration.h"
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#include "av1/common/thread_common.h"
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int av1_get_MBs(int width, int height) {
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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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const int mi_cols = aligned_width >> MI_SIZE_LOG2;
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const int mi_rows = aligned_height >> MI_SIZE_LOG2;
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const int mb_cols = ROUND_POWER_OF_TWO(mi_cols, 2);
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const int mb_rows = ROUND_POWER_OF_TWO(mi_rows, 2);
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return mb_rows * mb_cols;
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}
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void av1_free_ref_frame_buffers(BufferPool *pool) {
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int i;
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for (i = 0; i < pool->num_frame_bufs; ++i) {
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if (pool->frame_bufs[i].ref_count > 0 &&
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pool->frame_bufs[i].raw_frame_buffer.data != NULL) {
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pool->release_fb_cb(pool->cb_priv, &pool->frame_bufs[i].raw_frame_buffer);
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pool->frame_bufs[i].raw_frame_buffer.data = NULL;
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pool->frame_bufs[i].raw_frame_buffer.size = 0;
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pool->frame_bufs[i].raw_frame_buffer.priv = NULL;
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pool->frame_bufs[i].ref_count = 0;
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}
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aom_free(pool->frame_bufs[i].mvs);
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pool->frame_bufs[i].mvs = NULL;
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aom_free(pool->frame_bufs[i].seg_map);
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pool->frame_bufs[i].seg_map = NULL;
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aom_free_frame_buffer(&pool->frame_bufs[i].buf);
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}
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aom_free(pool->frame_bufs);
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pool->frame_bufs = NULL;
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pool->num_frame_bufs = 0;
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}
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static inline void free_cdef_linebuf_conditional(
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AV1_COMMON *const cm, const size_t *new_linebuf_size) {
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CdefInfo *cdef_info = &cm->cdef_info;
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for (int plane = 0; plane < MAX_MB_PLANE; plane++) {
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if (new_linebuf_size[plane] != cdef_info->allocated_linebuf_size[plane]) {
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aom_free(cdef_info->linebuf[plane]);
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cdef_info->linebuf[plane] = NULL;
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}
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}
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}
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static inline void free_cdef_bufs_conditional(AV1_COMMON *const cm,
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uint16_t **colbuf,
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uint16_t **srcbuf,
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const size_t *new_colbuf_size,
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const size_t new_srcbuf_size) {
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CdefInfo *cdef_info = &cm->cdef_info;
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if (new_srcbuf_size != cdef_info->allocated_srcbuf_size) {
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aom_free(*srcbuf);
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*srcbuf = NULL;
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}
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for (int plane = 0; plane < MAX_MB_PLANE; plane++) {
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if (new_colbuf_size[plane] != cdef_info->allocated_colbuf_size[plane]) {
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aom_free(colbuf[plane]);
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colbuf[plane] = NULL;
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}
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}
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}
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static inline void free_cdef_bufs(uint16_t **colbuf, uint16_t **srcbuf) {
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aom_free(*srcbuf);
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*srcbuf = NULL;
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for (int plane = 0; plane < MAX_MB_PLANE; plane++) {
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aom_free(colbuf[plane]);
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colbuf[plane] = NULL;
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}
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}
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static inline void free_cdef_row_sync(AV1CdefRowSync **cdef_row_mt,
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const int num_mi_rows) {
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if (*cdef_row_mt == NULL) return;
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#if CONFIG_MULTITHREAD
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for (int row_idx = 0; row_idx < num_mi_rows; row_idx++) {
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if ((*cdef_row_mt)[row_idx].row_mutex_ != NULL) {
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pthread_mutex_destroy((*cdef_row_mt)[row_idx].row_mutex_);
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aom_free((*cdef_row_mt)[row_idx].row_mutex_);
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}
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if ((*cdef_row_mt)[row_idx].row_cond_ != NULL) {
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pthread_cond_destroy((*cdef_row_mt)[row_idx].row_cond_);
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aom_free((*cdef_row_mt)[row_idx].row_cond_);
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}
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}
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#else
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(void)num_mi_rows;
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#endif // CONFIG_MULTITHREAD
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aom_free(*cdef_row_mt);
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*cdef_row_mt = NULL;
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}
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void av1_free_cdef_buffers(AV1_COMMON *const cm,
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AV1CdefWorkerData **cdef_worker,
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AV1CdefSync *cdef_sync) {
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CdefInfo *cdef_info = &cm->cdef_info;
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const int num_mi_rows = cdef_info->allocated_mi_rows;
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for (int plane = 0; plane < MAX_MB_PLANE; plane++) {
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aom_free(cdef_info->linebuf[plane]);
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cdef_info->linebuf[plane] = NULL;
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}
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// De-allocation of column buffer & source buffer (worker_0).
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free_cdef_bufs(cdef_info->colbuf, &cdef_info->srcbuf);
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free_cdef_row_sync(&cdef_sync->cdef_row_mt, num_mi_rows);
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if (cdef_info->allocated_num_workers < 2) return;
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if (*cdef_worker != NULL) {
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for (int idx = cdef_info->allocated_num_workers - 1; idx >= 1; idx--) {
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// De-allocation of column buffer & source buffer for remaining workers.
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free_cdef_bufs((*cdef_worker)[idx].colbuf, &(*cdef_worker)[idx].srcbuf);
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}
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aom_free(*cdef_worker);
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*cdef_worker = NULL;
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}
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}
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static inline void alloc_cdef_linebuf(AV1_COMMON *const cm, uint16_t **linebuf,
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const int num_planes) {
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CdefInfo *cdef_info = &cm->cdef_info;
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for (int plane = 0; plane < num_planes; plane++) {
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if (linebuf[plane] == NULL)
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CHECK_MEM_ERROR(cm, linebuf[plane],
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aom_malloc(cdef_info->allocated_linebuf_size[plane]));
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}
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}
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static inline void alloc_cdef_bufs(AV1_COMMON *const cm, uint16_t **colbuf,
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uint16_t **srcbuf, const int num_planes) {
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CdefInfo *cdef_info = &cm->cdef_info;
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if (*srcbuf == NULL)
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CHECK_MEM_ERROR(cm, *srcbuf,
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aom_memalign(16, cdef_info->allocated_srcbuf_size));
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for (int plane = 0; plane < num_planes; plane++) {
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if (colbuf[plane] == NULL)
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CHECK_MEM_ERROR(cm, colbuf[plane],
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aom_malloc(cdef_info->allocated_colbuf_size[plane]));
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}
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}
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static inline void alloc_cdef_row_sync(AV1_COMMON *const cm,
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AV1CdefRowSync **cdef_row_mt,
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const int num_mi_rows) {
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if (*cdef_row_mt != NULL) return;
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CHECK_MEM_ERROR(cm, *cdef_row_mt,
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aom_calloc(num_mi_rows, sizeof(**cdef_row_mt)));
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#if CONFIG_MULTITHREAD
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for (int row_idx = 0; row_idx < num_mi_rows; row_idx++) {
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CHECK_MEM_ERROR(cm, (*cdef_row_mt)[row_idx].row_mutex_,
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aom_malloc(sizeof(*(*cdef_row_mt)[row_idx].row_mutex_)));
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pthread_mutex_init((*cdef_row_mt)[row_idx].row_mutex_, NULL);
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CHECK_MEM_ERROR(cm, (*cdef_row_mt)[row_idx].row_cond_,
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aom_malloc(sizeof(*(*cdef_row_mt)[row_idx].row_cond_)));
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pthread_cond_init((*cdef_row_mt)[row_idx].row_cond_, NULL);
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}
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#endif // CONFIG_MULTITHREAD
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}
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void av1_alloc_cdef_buffers(AV1_COMMON *const cm,
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AV1CdefWorkerData **cdef_worker,
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AV1CdefSync *cdef_sync, int num_workers,
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int init_worker) {
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const int num_planes = av1_num_planes(cm);
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size_t new_linebuf_size[MAX_MB_PLANE] = { 0 };
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size_t new_colbuf_size[MAX_MB_PLANE] = { 0 };
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size_t new_srcbuf_size = 0;
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CdefInfo *const cdef_info = &cm->cdef_info;
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// Check for configuration change
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const int num_mi_rows =
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(cm->mi_params.mi_rows + MI_SIZE_64X64 - 1) / MI_SIZE_64X64;
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const int is_num_workers_changed =
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cdef_info->allocated_num_workers != num_workers;
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const int is_cdef_enabled =
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cm->seq_params->enable_cdef && !cm->tiles.single_tile_decoding;
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// num-bufs=3 represents ping-pong buffers for top linebuf,
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// followed by bottom linebuf.
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// ping-pong is to avoid top linebuf over-write by consecutive row.
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int num_bufs = 3;
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if (num_workers > 1)
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num_bufs = (cm->mi_params.mi_rows + MI_SIZE_64X64 - 1) / MI_SIZE_64X64;
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if (is_cdef_enabled) {
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// Calculate src buffer size
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new_srcbuf_size = sizeof(*cdef_info->srcbuf) * CDEF_INBUF_SIZE;
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for (int plane = 0; plane < num_planes; plane++) {
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const int shift =
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plane == AOM_PLANE_Y ? 0 : cm->seq_params->subsampling_x;
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// Calculate top and bottom line buffer size
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const int luma_stride =
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ALIGN_POWER_OF_TWO(cm->mi_params.mi_cols << MI_SIZE_LOG2, 4);
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new_linebuf_size[plane] = sizeof(*cdef_info->linebuf) * num_bufs *
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(CDEF_VBORDER << 1) * (luma_stride >> shift);
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// Calculate column buffer size
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const int block_height =
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(CDEF_BLOCKSIZE << (MI_SIZE_LOG2 - shift)) * 2 * CDEF_VBORDER;
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new_colbuf_size[plane] =
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sizeof(*cdef_info->colbuf[plane]) * block_height * CDEF_HBORDER;
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}
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}
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// Free src, line and column buffers for worker 0 in case of reallocation
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free_cdef_linebuf_conditional(cm, new_linebuf_size);
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free_cdef_bufs_conditional(cm, cdef_info->colbuf, &cdef_info->srcbuf,
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new_colbuf_size, new_srcbuf_size);
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// The flag init_worker indicates if cdef_worker has to be allocated for the
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// frame. This is passed as 1 always from decoder. At encoder side, it is 0
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// when called for parallel frames during FPMT (where cdef_worker is shared
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// across parallel frames) and 1 otherwise.
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if (*cdef_worker != NULL && init_worker) {
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if (is_num_workers_changed) {
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// Free src and column buffers for remaining workers in case of change in
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// num_workers
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for (int idx = cdef_info->allocated_num_workers - 1; idx >= 1; idx--)
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free_cdef_bufs((*cdef_worker)[idx].colbuf, &(*cdef_worker)[idx].srcbuf);
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aom_free(*cdef_worker);
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*cdef_worker = NULL;
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} else if (num_workers > 1) {
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// Free src and column buffers for remaining workers in case of
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// reallocation
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for (int idx = num_workers - 1; idx >= 1; idx--)
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free_cdef_bufs_conditional(cm, (*cdef_worker)[idx].colbuf,
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&(*cdef_worker)[idx].srcbuf, new_colbuf_size,
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new_srcbuf_size);
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}
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}
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if (cdef_info->allocated_mi_rows != num_mi_rows)
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free_cdef_row_sync(&cdef_sync->cdef_row_mt, cdef_info->allocated_mi_rows);
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// Store allocated sizes for reallocation
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cdef_info->allocated_srcbuf_size = new_srcbuf_size;
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av1_copy(cdef_info->allocated_colbuf_size, new_colbuf_size);
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av1_copy(cdef_info->allocated_linebuf_size, new_linebuf_size);
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// Store configuration to check change in configuration
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cdef_info->allocated_mi_rows = num_mi_rows;
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cdef_info->allocated_num_workers = num_workers;
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if (!is_cdef_enabled) return;
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// Memory allocation of column buffer & source buffer (worker_0).
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alloc_cdef_bufs(cm, cdef_info->colbuf, &cdef_info->srcbuf, num_planes);
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alloc_cdef_linebuf(cm, cdef_info->linebuf, num_planes);
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if (num_workers < 2) return;
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if (init_worker) {
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if (*cdef_worker == NULL)
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CHECK_MEM_ERROR(cm, *cdef_worker,
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aom_calloc(num_workers, sizeof(**cdef_worker)));
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// Memory allocation of column buffer & source buffer for remaining workers.
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for (int idx = num_workers - 1; idx >= 1; idx--)
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alloc_cdef_bufs(cm, (*cdef_worker)[idx].colbuf,
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&(*cdef_worker)[idx].srcbuf, num_planes);
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}
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alloc_cdef_row_sync(cm, &cdef_sync->cdef_row_mt,
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cdef_info->allocated_mi_rows);
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}
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#if !CONFIG_REALTIME_ONLY || CONFIG_AV1_DECODER
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// Allocate buffers which are independent of restoration_unit_size
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void av1_alloc_restoration_buffers(AV1_COMMON *cm, bool is_sgr_enabled) {
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const int num_planes = av1_num_planes(cm);
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if (cm->rst_tmpbuf == NULL && is_sgr_enabled) {
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CHECK_MEM_ERROR(cm, cm->rst_tmpbuf,
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(int32_t *)aom_memalign(16, RESTORATION_TMPBUF_SIZE));
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}
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if (cm->rlbs == NULL) {
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CHECK_MEM_ERROR(cm, cm->rlbs, aom_malloc(sizeof(RestorationLineBuffers)));
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}
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// For striped loop restoration, we divide each plane into "stripes",
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// of height 64 luma pixels but with an offset by RESTORATION_UNIT_OFFSET
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// luma pixels to match the output from CDEF. We will need to store 2 *
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// RESTORATION_CTX_VERT lines of data for each stripe.
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int mi_h = cm->mi_params.mi_rows;
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const int ext_h = RESTORATION_UNIT_OFFSET + (mi_h << MI_SIZE_LOG2);
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const int num_stripes = (ext_h + 63) / 64;
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// Now we need to allocate enough space to store the line buffers for the
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// stripes
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const int frame_w = cm->superres_upscaled_width;
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const int use_highbd = cm->seq_params->use_highbitdepth;
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for (int p = 0; p < num_planes; ++p) {
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const int is_uv = p > 0;
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const int ss_x = is_uv && cm->seq_params->subsampling_x;
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const int plane_w = ((frame_w + ss_x) >> ss_x) + 2 * RESTORATION_EXTRA_HORZ;
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const int stride = ALIGN_POWER_OF_TWO(plane_w, 5);
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const int buf_size = num_stripes * stride * RESTORATION_CTX_VERT
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<< use_highbd;
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RestorationStripeBoundaries *boundaries = &cm->rst_info[p].boundaries;
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if (buf_size != boundaries->stripe_boundary_size ||
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boundaries->stripe_boundary_above == NULL ||
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boundaries->stripe_boundary_below == NULL) {
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aom_free(boundaries->stripe_boundary_above);
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aom_free(boundaries->stripe_boundary_below);
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CHECK_MEM_ERROR(cm, boundaries->stripe_boundary_above,
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(uint8_t *)aom_memalign(32, buf_size));
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CHECK_MEM_ERROR(cm, boundaries->stripe_boundary_below,
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(uint8_t *)aom_memalign(32, buf_size));
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boundaries->stripe_boundary_size = buf_size;
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}
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boundaries->stripe_boundary_stride = stride;
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}
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}
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void av1_free_restoration_buffers(AV1_COMMON *cm) {
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int p;
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for (p = 0; p < MAX_MB_PLANE; ++p)
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av1_free_restoration_struct(&cm->rst_info[p]);
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aom_free(cm->rst_tmpbuf);
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cm->rst_tmpbuf = NULL;
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aom_free(cm->rlbs);
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cm->rlbs = NULL;
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for (p = 0; p < MAX_MB_PLANE; ++p) {
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RestorationStripeBoundaries *boundaries = &cm->rst_info[p].boundaries;
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aom_free(boundaries->stripe_boundary_above);
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aom_free(boundaries->stripe_boundary_below);
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boundaries->stripe_boundary_above = NULL;
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boundaries->stripe_boundary_below = NULL;
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}
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aom_free_frame_buffer(&cm->rst_frame);
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}
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#endif // !CONFIG_REALTIME_ONLY || CONFIG_AV1_DECODER
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void av1_free_above_context_buffers(CommonContexts *above_contexts) {
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int i;
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const int num_planes = above_contexts->num_planes;
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for (int tile_row = 0; tile_row < above_contexts->num_tile_rows; tile_row++) {
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for (i = 0; i < num_planes; i++) {
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if (above_contexts->entropy[i] == NULL) break;
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aom_free(above_contexts->entropy[i][tile_row]);
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above_contexts->entropy[i][tile_row] = NULL;
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}
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if (above_contexts->partition != NULL) {
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aom_free(above_contexts->partition[tile_row]);
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above_contexts->partition[tile_row] = NULL;
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}
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if (above_contexts->txfm != NULL) {
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aom_free(above_contexts->txfm[tile_row]);
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above_contexts->txfm[tile_row] = NULL;
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}
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}
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for (i = 0; i < num_planes; i++) {
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aom_free(above_contexts->entropy[i]);
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above_contexts->entropy[i] = NULL;
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}
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aom_free(above_contexts->partition);
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above_contexts->partition = NULL;
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aom_free(above_contexts->txfm);
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above_contexts->txfm = NULL;
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above_contexts->num_tile_rows = 0;
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above_contexts->num_mi_cols = 0;
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above_contexts->num_planes = 0;
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}
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void av1_free_context_buffers(AV1_COMMON *cm) {
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if (cm->mi_params.free_mi != NULL) cm->mi_params.free_mi(&cm->mi_params);
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av1_free_above_context_buffers(&cm->above_contexts);
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}
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int av1_alloc_above_context_buffers(CommonContexts *above_contexts,
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int num_tile_rows, int num_mi_cols,
|
|
int num_planes) {
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|
const int aligned_mi_cols =
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|
ALIGN_POWER_OF_TWO(num_mi_cols, MAX_MIB_SIZE_LOG2);
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|
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// Allocate above context buffers
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above_contexts->num_tile_rows = num_tile_rows;
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above_contexts->num_mi_cols = aligned_mi_cols;
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|
above_contexts->num_planes = num_planes;
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|
for (int plane_idx = 0; plane_idx < num_planes; plane_idx++) {
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|
above_contexts->entropy[plane_idx] = (ENTROPY_CONTEXT **)aom_calloc(
|
|
num_tile_rows, sizeof(above_contexts->entropy[0]));
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if (!above_contexts->entropy[plane_idx]) return 1;
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|
}
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|
|
|
above_contexts->partition = (PARTITION_CONTEXT **)aom_calloc(
|
|
num_tile_rows, sizeof(above_contexts->partition));
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|
if (!above_contexts->partition) return 1;
|
|
|
|
above_contexts->txfm =
|
|
(TXFM_CONTEXT **)aom_calloc(num_tile_rows, sizeof(above_contexts->txfm));
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|
if (!above_contexts->txfm) return 1;
|
|
|
|
for (int tile_row = 0; tile_row < num_tile_rows; tile_row++) {
|
|
for (int plane_idx = 0; plane_idx < num_planes; plane_idx++) {
|
|
above_contexts->entropy[plane_idx][tile_row] =
|
|
(ENTROPY_CONTEXT *)aom_calloc(
|
|
aligned_mi_cols, sizeof(*above_contexts->entropy[0][tile_row]));
|
|
if (!above_contexts->entropy[plane_idx][tile_row]) return 1;
|
|
}
|
|
|
|
above_contexts->partition[tile_row] = (PARTITION_CONTEXT *)aom_calloc(
|
|
aligned_mi_cols, sizeof(*above_contexts->partition[tile_row]));
|
|
if (!above_contexts->partition[tile_row]) return 1;
|
|
|
|
above_contexts->txfm[tile_row] = (TXFM_CONTEXT *)aom_calloc(
|
|
aligned_mi_cols, sizeof(*above_contexts->txfm[tile_row]));
|
|
if (!above_contexts->txfm[tile_row]) return 1;
|
|
}
|
|
|
|
return 0;
|
|
}
|
|
|
|
// Allocate the dynamically allocated arrays in 'mi_params' assuming
|
|
// 'mi_params->set_mb_mi()' was already called earlier to initialize the rest of
|
|
// the struct members.
|
|
static int alloc_mi(CommonModeInfoParams *mi_params) {
|
|
const int aligned_mi_rows = calc_mi_size(mi_params->mi_rows);
|
|
const int mi_grid_size = mi_params->mi_stride * aligned_mi_rows;
|
|
const int alloc_size_1d = mi_size_wide[mi_params->mi_alloc_bsize];
|
|
const int alloc_mi_size =
|
|
mi_params->mi_alloc_stride * (aligned_mi_rows / alloc_size_1d);
|
|
|
|
if (mi_params->mi_alloc_size < alloc_mi_size ||
|
|
mi_params->mi_grid_size < mi_grid_size) {
|
|
mi_params->free_mi(mi_params);
|
|
|
|
mi_params->mi_alloc =
|
|
aom_calloc(alloc_mi_size, sizeof(*mi_params->mi_alloc));
|
|
if (!mi_params->mi_alloc) return 1;
|
|
mi_params->mi_alloc_size = alloc_mi_size;
|
|
|
|
mi_params->mi_grid_base = (MB_MODE_INFO **)aom_calloc(
|
|
mi_grid_size, sizeof(*mi_params->mi_grid_base));
|
|
if (!mi_params->mi_grid_base) return 1;
|
|
|
|
mi_params->tx_type_map =
|
|
aom_calloc(mi_grid_size, sizeof(*mi_params->tx_type_map));
|
|
if (!mi_params->tx_type_map) return 1;
|
|
mi_params->mi_grid_size = mi_grid_size;
|
|
}
|
|
|
|
return 0;
|
|
}
|
|
|
|
int av1_alloc_context_buffers(AV1_COMMON *cm, int width, int height,
|
|
BLOCK_SIZE min_partition_size) {
|
|
CommonModeInfoParams *const mi_params = &cm->mi_params;
|
|
mi_params->set_mb_mi(mi_params, width, height, min_partition_size);
|
|
if (alloc_mi(mi_params)) goto fail;
|
|
return 0;
|
|
|
|
fail:
|
|
// clear the mi_* values to force a realloc on resync
|
|
mi_params->set_mb_mi(mi_params, 0, 0, BLOCK_4X4);
|
|
av1_free_context_buffers(cm);
|
|
return 1;
|
|
}
|
|
|
|
void av1_remove_common(AV1_COMMON *cm) {
|
|
av1_free_context_buffers(cm);
|
|
|
|
aom_free(cm->fc);
|
|
cm->fc = NULL;
|
|
aom_free(cm->default_frame_context);
|
|
cm->default_frame_context = NULL;
|
|
}
|
|
|
|
void av1_init_mi_buffers(CommonModeInfoParams *mi_params) {
|
|
mi_params->setup_mi(mi_params);
|
|
}
|