342 lines
13 KiB
C
342 lines
13 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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#ifndef AOM_AV1_COMMON_MVREF_COMMON_H_
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#define AOM_AV1_COMMON_MVREF_COMMON_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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#ifdef __cplusplus
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extern "C" {
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#endif
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#define MVREF_ROW_COLS 3
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// Set the upper limit of the motion vector component magnitude.
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// This would make a motion vector fit in 26 bits. Plus 3 bits for the
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// reference frame index. A tuple of motion vector can hence be stored within
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// 32 bit range for efficient load/store operations.
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#define REFMVS_LIMIT ((1 << 12) - 1)
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typedef struct position {
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int row;
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int col;
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} POSITION;
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// clamp_mv_ref
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#define MV_BORDER (16 << 3) // Allow 16 pels in 1/8th pel units
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static inline int get_relative_dist(const OrderHintInfo *oh, int a, int b) {
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if (!oh->enable_order_hint) return 0;
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const int bits = oh->order_hint_bits_minus_1 + 1;
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assert(bits >= 1);
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assert(a >= 0 && a < (1 << bits));
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assert(b >= 0 && b < (1 << bits));
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int diff = a - b;
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const int m = 1 << (bits - 1);
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diff = (diff & (m - 1)) - (diff & m);
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return diff;
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}
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static inline void clamp_mv_ref(MV *mv, int bw, int bh, const MACROBLOCKD *xd) {
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const SubpelMvLimits mv_limits = {
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xd->mb_to_left_edge - GET_MV_SUBPEL(bw) - MV_BORDER,
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xd->mb_to_right_edge + GET_MV_SUBPEL(bw) + MV_BORDER,
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xd->mb_to_top_edge - GET_MV_SUBPEL(bh) - MV_BORDER,
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xd->mb_to_bottom_edge + GET_MV_SUBPEL(bh) + MV_BORDER
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};
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clamp_mv(mv, &mv_limits);
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}
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static inline int_mv get_block_mv(const MB_MODE_INFO *candidate, int which_mv) {
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return candidate->mv[which_mv];
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}
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// Checks that the given mi_row, mi_col and search point
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// are inside the borders of the tile.
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static inline int is_inside(const TileInfo *const tile, int mi_col, int mi_row,
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const POSITION *mi_pos) {
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return !(mi_row + mi_pos->row < tile->mi_row_start ||
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mi_col + mi_pos->col < tile->mi_col_start ||
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mi_row + mi_pos->row >= tile->mi_row_end ||
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mi_col + mi_pos->col >= tile->mi_col_end);
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}
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static inline int find_valid_row_offset(const TileInfo *const tile, int mi_row,
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int row_offset) {
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return clamp(row_offset, tile->mi_row_start - mi_row,
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tile->mi_row_end - mi_row - 1);
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}
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static inline int find_valid_col_offset(const TileInfo *const tile, int mi_col,
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int col_offset) {
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return clamp(col_offset, tile->mi_col_start - mi_col,
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tile->mi_col_end - mi_col - 1);
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}
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static inline void lower_mv_precision(MV *mv, int allow_hp, int is_integer) {
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if (is_integer) {
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integer_mv_precision(mv);
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} else {
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if (!allow_hp) {
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if (mv->row & 1) mv->row += (mv->row > 0 ? -1 : 1);
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if (mv->col & 1) mv->col += (mv->col > 0 ? -1 : 1);
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}
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}
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}
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static inline int8_t get_uni_comp_ref_idx(const MV_REFERENCE_FRAME *const rf) {
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// Single ref pred
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if (rf[1] <= INTRA_FRAME) return -1;
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// Bi-directional comp ref pred
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if ((rf[0] < BWDREF_FRAME) && (rf[1] >= BWDREF_FRAME)) return -1;
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for (int8_t ref_idx = 0; ref_idx < TOTAL_UNIDIR_COMP_REFS; ++ref_idx) {
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if (rf[0] == comp_ref0(ref_idx) && rf[1] == comp_ref1(ref_idx))
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return ref_idx;
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}
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return -1;
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}
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static inline int8_t av1_ref_frame_type(const MV_REFERENCE_FRAME *const rf) {
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if (rf[1] > INTRA_FRAME) {
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const int8_t uni_comp_ref_idx = get_uni_comp_ref_idx(rf);
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if (uni_comp_ref_idx >= 0) {
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assert((REF_FRAMES + FWD_REFS * BWD_REFS + uni_comp_ref_idx) <
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MODE_CTX_REF_FRAMES);
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return REF_FRAMES + FWD_REFS * BWD_REFS + uni_comp_ref_idx;
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} else {
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return REF_FRAMES + FWD_RF_OFFSET(rf[0]) +
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BWD_RF_OFFSET(rf[1]) * FWD_REFS;
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}
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}
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return rf[0];
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}
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// clang-format off
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static MV_REFERENCE_FRAME ref_frame_map[TOTAL_COMP_REFS][2] = {
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{ LAST_FRAME, BWDREF_FRAME }, { LAST2_FRAME, BWDREF_FRAME },
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{ LAST3_FRAME, BWDREF_FRAME }, { GOLDEN_FRAME, BWDREF_FRAME },
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{ LAST_FRAME, ALTREF2_FRAME }, { LAST2_FRAME, ALTREF2_FRAME },
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{ LAST3_FRAME, ALTREF2_FRAME }, { GOLDEN_FRAME, ALTREF2_FRAME },
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{ LAST_FRAME, ALTREF_FRAME }, { LAST2_FRAME, ALTREF_FRAME },
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{ LAST3_FRAME, ALTREF_FRAME }, { GOLDEN_FRAME, ALTREF_FRAME },
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{ LAST_FRAME, LAST2_FRAME }, { LAST_FRAME, LAST3_FRAME },
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{ LAST_FRAME, GOLDEN_FRAME }, { BWDREF_FRAME, ALTREF_FRAME },
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// NOTE: Following reference frame pairs are not supported to be explicitly
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// signalled, but they are possibly chosen by the use of skip_mode,
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// which may use the most recent one-sided reference frame pair.
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{ LAST2_FRAME, LAST3_FRAME }, { LAST2_FRAME, GOLDEN_FRAME },
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{ LAST3_FRAME, GOLDEN_FRAME }, {BWDREF_FRAME, ALTREF2_FRAME},
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{ ALTREF2_FRAME, ALTREF_FRAME }
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};
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// clang-format on
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static inline void av1_set_ref_frame(MV_REFERENCE_FRAME *rf,
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MV_REFERENCE_FRAME ref_frame_type) {
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if (ref_frame_type >= REF_FRAMES) {
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rf[0] = ref_frame_map[ref_frame_type - REF_FRAMES][0];
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rf[1] = ref_frame_map[ref_frame_type - REF_FRAMES][1];
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} else {
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assert(ref_frame_type > NONE_FRAME);
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rf[0] = ref_frame_type;
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rf[1] = NONE_FRAME;
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}
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}
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static uint16_t compound_mode_ctx_map[3][COMP_NEWMV_CTXS] = {
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{ 0, 1, 1, 1, 1 },
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{ 1, 2, 3, 4, 4 },
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{ 4, 4, 5, 6, 7 },
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};
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static inline int16_t av1_mode_context_analyzer(
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const int16_t *const mode_context, const MV_REFERENCE_FRAME *const rf) {
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const int8_t ref_frame = av1_ref_frame_type(rf);
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if (rf[1] <= INTRA_FRAME) return mode_context[ref_frame];
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const int16_t newmv_ctx = mode_context[ref_frame] & NEWMV_CTX_MASK;
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const int16_t refmv_ctx =
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(mode_context[ref_frame] >> REFMV_OFFSET) & REFMV_CTX_MASK;
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const int16_t comp_ctx = compound_mode_ctx_map[refmv_ctx >> 1][AOMMIN(
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newmv_ctx, COMP_NEWMV_CTXS - 1)];
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return comp_ctx;
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}
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static inline uint8_t av1_drl_ctx(const uint16_t *ref_mv_weight, int ref_idx) {
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if (ref_mv_weight[ref_idx] >= REF_CAT_LEVEL &&
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ref_mv_weight[ref_idx + 1] >= REF_CAT_LEVEL)
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return 0;
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if (ref_mv_weight[ref_idx] >= REF_CAT_LEVEL &&
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ref_mv_weight[ref_idx + 1] < REF_CAT_LEVEL)
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return 1;
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if (ref_mv_weight[ref_idx] < REF_CAT_LEVEL &&
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ref_mv_weight[ref_idx + 1] < REF_CAT_LEVEL)
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return 2;
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return 0;
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}
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void av1_setup_frame_buf_refs(AV1_COMMON *cm);
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void av1_setup_frame_sign_bias(AV1_COMMON *cm);
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void av1_setup_skip_mode_allowed(AV1_COMMON *cm);
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void av1_calculate_ref_frame_side(AV1_COMMON *cm);
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void av1_setup_motion_field(AV1_COMMON *cm);
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void av1_set_frame_refs(AV1_COMMON *const cm, int *remapped_ref_idx,
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int lst_map_idx, int gld_map_idx);
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static inline void av1_collect_neighbors_ref_counts(MACROBLOCKD *const xd) {
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av1_zero(xd->neighbors_ref_counts);
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uint8_t *const ref_counts = xd->neighbors_ref_counts;
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const MB_MODE_INFO *const above_mbmi = xd->above_mbmi;
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const MB_MODE_INFO *const left_mbmi = xd->left_mbmi;
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const int above_in_image = xd->up_available;
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const int left_in_image = xd->left_available;
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// Above neighbor
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if (above_in_image && is_inter_block(above_mbmi)) {
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ref_counts[above_mbmi->ref_frame[0]]++;
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if (has_second_ref(above_mbmi)) {
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ref_counts[above_mbmi->ref_frame[1]]++;
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}
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}
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// Left neighbor
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if (left_in_image && is_inter_block(left_mbmi)) {
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ref_counts[left_mbmi->ref_frame[0]]++;
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if (has_second_ref(left_mbmi)) {
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ref_counts[left_mbmi->ref_frame[1]]++;
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}
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}
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}
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void av1_copy_frame_mvs(const AV1_COMMON *const cm,
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const MB_MODE_INFO *const mi, int mi_row, int mi_col,
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int x_mis, int y_mis);
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// The global_mvs output parameter points to an array of REF_FRAMES elements.
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// The caller may pass a null global_mvs if it does not need the global_mvs
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// output.
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void av1_find_mv_refs(const AV1_COMMON *cm, const MACROBLOCKD *xd,
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MB_MODE_INFO *mi, MV_REFERENCE_FRAME ref_frame,
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uint8_t ref_mv_count[MODE_CTX_REF_FRAMES],
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CANDIDATE_MV ref_mv_stack[][MAX_REF_MV_STACK_SIZE],
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uint16_t ref_mv_weight[][MAX_REF_MV_STACK_SIZE],
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int_mv mv_ref_list[][MAX_MV_REF_CANDIDATES],
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int_mv *global_mvs, int16_t *mode_context);
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// check a list of motion vectors by sad score using a number rows of pixels
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// above and a number cols of pixels in the left to select the one with best
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// score to use as ref motion vector
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void av1_find_best_ref_mvs(int allow_hp, int_mv *mvlist, int_mv *nearest_mv,
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int_mv *near_mv, int is_integer);
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uint8_t av1_selectSamples(MV *mv, int *pts, int *pts_inref, int len,
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BLOCK_SIZE bsize);
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uint8_t av1_findSamples(const AV1_COMMON *cm, MACROBLOCKD *xd, int *pts,
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int *pts_inref);
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#define INTRABC_DELAY_PIXELS 256 // Delay of 256 pixels
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#define INTRABC_DELAY_SB64 (INTRABC_DELAY_PIXELS / 64)
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static inline void av1_find_ref_dv(int_mv *ref_dv, const TileInfo *const tile,
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int mib_size, int mi_row) {
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if (mi_row - mib_size < tile->mi_row_start) {
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ref_dv->as_fullmv.row = 0;
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ref_dv->as_fullmv.col = -MI_SIZE * mib_size - INTRABC_DELAY_PIXELS;
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} else {
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ref_dv->as_fullmv.row = -MI_SIZE * mib_size;
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ref_dv->as_fullmv.col = 0;
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}
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convert_fullmv_to_mv(ref_dv);
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}
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static inline int av1_is_dv_valid(const MV dv, const AV1_COMMON *cm,
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const MACROBLOCKD *xd, int mi_row, int mi_col,
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BLOCK_SIZE bsize, int mib_size_log2) {
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const int bw = block_size_wide[bsize];
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const int bh = block_size_high[bsize];
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const int SCALE_PX_TO_MV = 8;
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// Disallow subpixel for now
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// SUBPEL_MASK is not the correct scale
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if (((dv.row & (SCALE_PX_TO_MV - 1)) || (dv.col & (SCALE_PX_TO_MV - 1))))
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return 0;
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const TileInfo *const tile = &xd->tile;
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// Is the source top-left inside the current tile?
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const int src_top_edge = mi_row * MI_SIZE * SCALE_PX_TO_MV + dv.row;
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const int tile_top_edge = tile->mi_row_start * MI_SIZE * SCALE_PX_TO_MV;
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if (src_top_edge < tile_top_edge) return 0;
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const int src_left_edge = mi_col * MI_SIZE * SCALE_PX_TO_MV + dv.col;
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const int tile_left_edge = tile->mi_col_start * MI_SIZE * SCALE_PX_TO_MV;
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if (src_left_edge < tile_left_edge) return 0;
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// Is the bottom right inside the current tile?
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const int src_bottom_edge = (mi_row * MI_SIZE + bh) * SCALE_PX_TO_MV + dv.row;
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const int tile_bottom_edge = tile->mi_row_end * MI_SIZE * SCALE_PX_TO_MV;
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if (src_bottom_edge > tile_bottom_edge) return 0;
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const int src_right_edge = (mi_col * MI_SIZE + bw) * SCALE_PX_TO_MV + dv.col;
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const int tile_right_edge = tile->mi_col_end * MI_SIZE * SCALE_PX_TO_MV;
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if (src_right_edge > tile_right_edge) return 0;
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// Special case for sub 8x8 chroma cases, to prevent referring to chroma
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// pixels outside current tile.
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if (xd->is_chroma_ref && av1_num_planes(cm) > 1) {
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const struct macroblockd_plane *const pd = &xd->plane[1];
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if (bw < 8 && pd->subsampling_x)
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if (src_left_edge < tile_left_edge + 4 * SCALE_PX_TO_MV) return 0;
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if (bh < 8 && pd->subsampling_y)
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if (src_top_edge < tile_top_edge + 4 * SCALE_PX_TO_MV) return 0;
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}
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// Is the bottom right within an already coded SB? Also consider additional
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// constraints to facilitate HW decoder.
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const int max_mib_size = 1 << mib_size_log2;
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const int active_sb_row = mi_row >> mib_size_log2;
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const int active_sb64_col = (mi_col * MI_SIZE) >> 6;
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const int sb_size = max_mib_size * MI_SIZE;
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const int src_sb_row = ((src_bottom_edge >> 3) - 1) / sb_size;
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const int src_sb64_col = ((src_right_edge >> 3) - 1) >> 6;
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const int total_sb64_per_row =
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((tile->mi_col_end - tile->mi_col_start - 1) >> 4) + 1;
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const int active_sb64 = active_sb_row * total_sb64_per_row + active_sb64_col;
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const int src_sb64 = src_sb_row * total_sb64_per_row + src_sb64_col;
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if (src_sb64 >= active_sb64 - INTRABC_DELAY_SB64) return 0;
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// Wavefront constraint: use only top left area of frame for reference.
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const int gradient = 1 + INTRABC_DELAY_SB64 + (sb_size > 64);
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const int wf_offset = gradient * (active_sb_row - src_sb_row);
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if (src_sb_row > active_sb_row ||
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src_sb64_col >= active_sb64_col - INTRABC_DELAY_SB64 + wf_offset)
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return 0;
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return 1;
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}
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#ifdef __cplusplus
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} // extern "C"
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#endif
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#endif // AOM_AV1_COMMON_MVREF_COMMON_H_
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