
This commit is a manual cherry-pick from aom/master: 45592a39d3b00aee4d6bd70da669400017b7a5d8 Only part of the changes apply in nextgenv2 Change-Id: I1e22514c6fe5af556710254278f2f8a5805db999
281 lines
10 KiB
C
281 lines
10 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 "av1/encoder/context_tree.h"
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#include "av1/encoder/encoder.h"
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static const BLOCK_SIZE square[MAX_SB_SIZE_LOG2 - 2] = {
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BLOCK_8X8, BLOCK_16X16, BLOCK_32X32, BLOCK_64X64,
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#if CONFIG_EXT_PARTITION
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BLOCK_128X128,
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#endif // CONFIG_EXT_PARTITION
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};
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static void alloc_mode_context(AV1_COMMON *cm, int num_4x4_blk,
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#if CONFIG_EXT_PARTITION_TYPES
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PARTITION_TYPE partition,
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#endif
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PICK_MODE_CONTEXT *ctx) {
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const int num_blk = (num_4x4_blk < 4 ? 4 : num_4x4_blk);
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const int num_pix = num_blk << 4;
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int i;
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ctx->num_4x4_blk = num_blk;
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#if CONFIG_EXT_PARTITION_TYPES
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ctx->partition = partition;
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#endif
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for (i = 0; i < MAX_MB_PLANE; ++i) {
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#if CONFIG_VAR_TX
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CHECK_MEM_ERROR(cm, ctx->blk_skip[i], aom_calloc(num_blk, sizeof(uint8_t)));
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#endif
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CHECK_MEM_ERROR(cm, ctx->coeff[i],
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aom_memalign(32, num_pix * sizeof(*ctx->coeff[i])));
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CHECK_MEM_ERROR(cm, ctx->qcoeff[i],
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aom_memalign(32, num_pix * sizeof(*ctx->qcoeff[i])));
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CHECK_MEM_ERROR(cm, ctx->dqcoeff[i],
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aom_memalign(32, num_pix * sizeof(*ctx->dqcoeff[i])));
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CHECK_MEM_ERROR(cm, ctx->eobs[i],
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aom_memalign(32, num_blk * sizeof(*ctx->eobs[i])));
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#if CONFIG_PVQ
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CHECK_MEM_ERROR(cm, ctx->pvq_ref_coeff[i],
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aom_memalign(32, num_pix * sizeof(*ctx->pvq_ref_coeff[i])));
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#endif
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}
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#if CONFIG_PALETTE
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if (cm->allow_screen_content_tools) {
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for (i = 0; i < 2; ++i) {
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CHECK_MEM_ERROR(
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cm, ctx->color_index_map[i],
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aom_memalign(32, num_pix * sizeof(*ctx->color_index_map[i])));
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}
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}
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#endif // CONFIG_PALETTE
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}
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static void free_mode_context(PICK_MODE_CONTEXT *ctx) {
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int i;
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for (i = 0; i < MAX_MB_PLANE; ++i) {
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#if CONFIG_VAR_TX
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aom_free(ctx->blk_skip[i]);
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ctx->blk_skip[i] = 0;
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#endif
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aom_free(ctx->coeff[i]);
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ctx->coeff[i] = 0;
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aom_free(ctx->qcoeff[i]);
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ctx->qcoeff[i] = 0;
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aom_free(ctx->dqcoeff[i]);
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ctx->dqcoeff[i] = 0;
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#if CONFIG_PVQ
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aom_free(ctx->pvq_ref_coeff[i]);
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ctx->pvq_ref_coeff[i] = 0;
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#endif
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aom_free(ctx->eobs[i]);
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ctx->eobs[i] = 0;
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}
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#if CONFIG_PALETTE
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for (i = 0; i < 2; ++i) {
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aom_free(ctx->color_index_map[i]);
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ctx->color_index_map[i] = 0;
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}
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#endif // CONFIG_PALETTE
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}
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static void alloc_tree_contexts(AV1_COMMON *cm, PC_TREE *tree,
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int num_4x4_blk) {
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#if CONFIG_EXT_PARTITION_TYPES
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alloc_mode_context(cm, num_4x4_blk, PARTITION_NONE, &tree->none);
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alloc_mode_context(cm, num_4x4_blk / 2, PARTITION_HORZ, &tree->horizontal[0]);
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alloc_mode_context(cm, num_4x4_blk / 2, PARTITION_VERT, &tree->vertical[0]);
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alloc_mode_context(cm, num_4x4_blk / 2, PARTITION_VERT, &tree->horizontal[1]);
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alloc_mode_context(cm, num_4x4_blk / 2, PARTITION_VERT, &tree->vertical[1]);
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alloc_mode_context(cm, num_4x4_blk / 4, PARTITION_HORZ_A,
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&tree->horizontala[0]);
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alloc_mode_context(cm, num_4x4_blk / 4, PARTITION_HORZ_A,
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&tree->horizontala[1]);
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alloc_mode_context(cm, num_4x4_blk / 2, PARTITION_HORZ_A,
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&tree->horizontala[2]);
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alloc_mode_context(cm, num_4x4_blk / 2, PARTITION_HORZ_B,
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&tree->horizontalb[0]);
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alloc_mode_context(cm, num_4x4_blk / 4, PARTITION_HORZ_B,
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&tree->horizontalb[1]);
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alloc_mode_context(cm, num_4x4_blk / 4, PARTITION_HORZ_B,
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&tree->horizontalb[2]);
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alloc_mode_context(cm, num_4x4_blk / 4, PARTITION_VERT_A,
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&tree->verticala[0]);
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alloc_mode_context(cm, num_4x4_blk / 4, PARTITION_VERT_A,
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&tree->verticala[1]);
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alloc_mode_context(cm, num_4x4_blk / 2, PARTITION_VERT_A,
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&tree->verticala[2]);
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alloc_mode_context(cm, num_4x4_blk / 2, PARTITION_VERT_B,
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&tree->verticalb[0]);
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alloc_mode_context(cm, num_4x4_blk / 4, PARTITION_VERT_B,
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&tree->verticalb[1]);
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alloc_mode_context(cm, num_4x4_blk / 4, PARTITION_VERT_B,
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&tree->verticalb[2]);
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#ifdef CONFIG_SUPERTX
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alloc_mode_context(cm, num_4x4_blk, PARTITION_HORZ,
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&tree->horizontal_supertx);
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alloc_mode_context(cm, num_4x4_blk, PARTITION_VERT, &tree->vertical_supertx);
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alloc_mode_context(cm, num_4x4_blk, PARTITION_SPLIT, &tree->split_supertx);
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alloc_mode_context(cm, num_4x4_blk, PARTITION_HORZ_A,
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&tree->horizontala_supertx);
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alloc_mode_context(cm, num_4x4_blk, PARTITION_HORZ_B,
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&tree->horizontalb_supertx);
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alloc_mode_context(cm, num_4x4_blk, PARTITION_VERT_A,
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&tree->verticala_supertx);
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alloc_mode_context(cm, num_4x4_blk, PARTITION_VERT_B,
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&tree->verticalb_supertx);
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#endif // CONFIG_SUPERTX
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#else
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alloc_mode_context(cm, num_4x4_blk, &tree->none);
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alloc_mode_context(cm, num_4x4_blk / 2, &tree->horizontal[0]);
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alloc_mode_context(cm, num_4x4_blk / 2, &tree->vertical[0]);
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#ifdef CONFIG_SUPERTX
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alloc_mode_context(cm, num_4x4_blk, &tree->horizontal_supertx);
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alloc_mode_context(cm, num_4x4_blk, &tree->vertical_supertx);
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alloc_mode_context(cm, num_4x4_blk, &tree->split_supertx);
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#endif
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if (num_4x4_blk > 4) {
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alloc_mode_context(cm, num_4x4_blk / 2, &tree->horizontal[1]);
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alloc_mode_context(cm, num_4x4_blk / 2, &tree->vertical[1]);
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} else {
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memset(&tree->horizontal[1], 0, sizeof(tree->horizontal[1]));
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memset(&tree->vertical[1], 0, sizeof(tree->vertical[1]));
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}
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#endif // CONFIG_EXT_PARTITION_TYPES
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}
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static void free_tree_contexts(PC_TREE *tree) {
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#if CONFIG_EXT_PARTITION_TYPES
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int i;
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for (i = 0; i < 3; i++) {
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free_mode_context(&tree->horizontala[i]);
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free_mode_context(&tree->horizontalb[i]);
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free_mode_context(&tree->verticala[i]);
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free_mode_context(&tree->verticalb[i]);
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}
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#endif // CONFIG_EXT_PARTITION_TYPES
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free_mode_context(&tree->none);
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free_mode_context(&tree->horizontal[0]);
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free_mode_context(&tree->horizontal[1]);
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free_mode_context(&tree->vertical[0]);
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free_mode_context(&tree->vertical[1]);
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#ifdef CONFIG_SUPERTX
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free_mode_context(&tree->horizontal_supertx);
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free_mode_context(&tree->vertical_supertx);
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free_mode_context(&tree->split_supertx);
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#if CONFIG_EXT_PARTITION_TYPES
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free_mode_context(&tree->horizontala_supertx);
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free_mode_context(&tree->horizontalb_supertx);
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free_mode_context(&tree->verticala_supertx);
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free_mode_context(&tree->verticalb_supertx);
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#endif // CONFIG_EXT_PARTITION_TYPES
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#endif // CONFIG_SUPERTX
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}
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// This function sets up a tree of contexts such that at each square
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// partition level. There are contexts for none, horizontal, vertical, and
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// split. Along with a block_size value and a selected block_size which
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// represents the state of our search.
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void av1_setup_pc_tree(AV1_COMMON *cm, ThreadData *td) {
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int i, j;
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#if CONFIG_EXT_PARTITION
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const int leaf_nodes = 256;
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const int tree_nodes = 256 + 64 + 16 + 4 + 1;
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#else
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const int leaf_nodes = 64;
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const int tree_nodes = 64 + 16 + 4 + 1;
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#endif // CONFIG_EXT_PARTITION
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int pc_tree_index = 0;
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PC_TREE *this_pc;
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PICK_MODE_CONTEXT *this_leaf;
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int square_index = 1;
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int nodes;
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aom_free(td->leaf_tree);
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CHECK_MEM_ERROR(cm, td->leaf_tree,
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aom_calloc(leaf_nodes, sizeof(*td->leaf_tree)));
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aom_free(td->pc_tree);
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CHECK_MEM_ERROR(cm, td->pc_tree,
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aom_calloc(tree_nodes, sizeof(*td->pc_tree)));
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this_pc = &td->pc_tree[0];
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this_leaf = &td->leaf_tree[0];
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// 4x4 blocks smaller than 8x8 but in the same 8x8 block share the same
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// context so we only need to allocate 1 for each 8x8 block.
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for (i = 0; i < leaf_nodes; ++i) {
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#if CONFIG_EXT_PARTITION_TYPES
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alloc_mode_context(cm, 1, PARTITION_NONE, &td->leaf_tree[i]);
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#else
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alloc_mode_context(cm, 1, &td->leaf_tree[i]);
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#endif
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}
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// Sets up all the leaf nodes in the tree.
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for (pc_tree_index = 0; pc_tree_index < leaf_nodes; ++pc_tree_index) {
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PC_TREE *const tree = &td->pc_tree[pc_tree_index];
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tree->block_size = square[0];
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alloc_tree_contexts(cm, tree, 4);
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tree->leaf_split[0] = this_leaf++;
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for (j = 1; j < 4; j++) tree->leaf_split[j] = tree->leaf_split[0];
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}
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// Each node has 4 leaf nodes, fill each block_size level of the tree
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// from leafs to the root.
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for (nodes = leaf_nodes >> 2; nodes > 0; nodes >>= 2) {
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for (i = 0; i < nodes; ++i) {
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PC_TREE *const tree = &td->pc_tree[pc_tree_index];
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alloc_tree_contexts(cm, tree, 4 << (2 * square_index));
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tree->block_size = square[square_index];
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for (j = 0; j < 4; j++) tree->split[j] = this_pc++;
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++pc_tree_index;
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}
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++square_index;
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}
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// Set up the root node for the largest superblock size
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i = MAX_MIB_SIZE_LOG2 - MIN_MIB_SIZE_LOG2;
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td->pc_root[i] = &td->pc_tree[tree_nodes - 1];
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td->pc_root[i]->none.best_mode_index = 2;
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// Set up the root nodes for the rest of the possible superblock sizes
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while (--i >= 0) {
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td->pc_root[i] = td->pc_root[i + 1]->split[0];
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td->pc_root[i]->none.best_mode_index = 2;
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}
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}
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void av1_free_pc_tree(ThreadData *td) {
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#if CONFIG_EXT_PARTITION
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const int leaf_nodes = 256;
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const int tree_nodes = 256 + 64 + 16 + 4 + 1;
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#else
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const int leaf_nodes = 64;
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const int tree_nodes = 64 + 16 + 4 + 1;
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#endif // CONFIG_EXT_PARTITION
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int i;
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// Set up all 4x4 mode contexts
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for (i = 0; i < leaf_nodes; ++i) free_mode_context(&td->leaf_tree[i]);
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// Sets up all the leaf nodes in the tree.
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for (i = 0; i < tree_nodes; ++i) free_tree_contexts(&td->pc_tree[i]);
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aom_free(td->pc_tree);
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td->pc_tree = NULL;
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aom_free(td->leaf_tree);
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td->leaf_tree = NULL;
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}
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