blockd.h 50.5 KB
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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
 * the Alliance for Open Media Patent License 1.0. If the BSD 2 Clause License
 * was not distributed with this source code in the LICENSE file, you can
 * obtain it at www.aomedia.org/license/software. If the Alliance for Open
 * Media Patent License 1.0 was not distributed with this source code in the
 * PATENTS file, you can obtain it at www.aomedia.org/license/patent.
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 */

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#ifndef AV1_COMMON_BLOCKD_H_
#define AV1_COMMON_BLOCKD_H_
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#include "./aom_config.h"
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#include "aom_dsp/aom_dsp_common.h"
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#include "aom_ports/mem.h"
#include "aom_scale/yv12config.h"

#include "av1/common/common_data.h"
#include "av1/common/quant_common.h"
#include "av1/common/entropy.h"
#include "av1/common/entropymode.h"
#include "av1/common/mv.h"
#include "av1/common/scale.h"
#include "av1/common/seg_common.h"
#include "av1/common/tile_common.h"
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#if CONFIG_PVQ
#include "av1/common/pvq.h"
#include "av1/common/pvq_state.h"
#include "av1/decoder/decint.h"
#endif
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#ifdef __cplusplus
extern "C" {
#endif

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#if (CONFIG_CHROMA_SUB8X8 || CONFIG_CHROMA_2X2)
#define SUB8X8_COMP_REF 0
#else
#define SUB8X8_COMP_REF 1
#endif
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#define MAX_MB_PLANE 3

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#if CONFIG_COMPOUND_SEGMENT
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// Set COMPOUND_SEGMENT_TYPE to one of the three
// 0: Uniform
// 1: Difference weighted
#define COMPOUND_SEGMENT_TYPE 1
#define MAX_SEG_MASK_BITS 1
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// SEG_MASK_TYPES should not surpass 1 << MAX_SEG_MASK_BITS
typedef enum {
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#if COMPOUND_SEGMENT_TYPE == 0
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  UNIFORM_45 = 0,
  UNIFORM_45_INV,
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#elif COMPOUND_SEGMENT_TYPE == 1
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  DIFFWTD_38 = 0,
  DIFFWTD_38_INV,
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#endif  // COMPOUND_SEGMENT_TYPE
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  SEG_MASK_TYPES,
} SEG_MASK_TYPE;

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#endif  // CONFIG_COMPOUND_SEGMENT
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typedef enum {
  KEY_FRAME = 0,
  INTER_FRAME = 1,
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#if CONFIG_OBU
  INTRA_ONLY_FRAME = 2,  // replaces intra-only
  S_FRAME = 3,
#endif
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  FRAME_TYPES,
} FRAME_TYPE;

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static INLINE int is_comp_ref_allowed(BLOCK_SIZE bsize) {
  (void)bsize;
#if SUB8X8_COMP_REF
  return 1;
#else
  return AOMMIN(block_size_wide[bsize], block_size_high[bsize]) >= 8;
#endif  // SUB8X8_COMP_REF
}

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static INLINE int is_inter_mode(PREDICTION_MODE mode) {
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  return mode >= NEARESTMV && mode <= NEW_NEWMV;
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}

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#if CONFIG_PVQ
typedef struct PVQ_INFO {
  int theta[PVQ_MAX_PARTITIONS];
  int qg[PVQ_MAX_PARTITIONS];
  int k[PVQ_MAX_PARTITIONS];
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  od_coeff y[OD_TXSIZE_MAX * OD_TXSIZE_MAX];
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  int nb_bands;
  int off[PVQ_MAX_PARTITIONS];
  int size[PVQ_MAX_PARTITIONS];
  int skip_rest;
  int skip_dir;
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  int bs;  // log of the block size minus two,
           // i.e. equivalent to aom's TX_SIZE
  // Block skip info, indicating whether DC/AC, is coded.
  PVQ_SKIP_TYPE ac_dc_coded;  // bit0: DC coded, bit1 : AC coded (1 means coded)
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  tran_low_t dq_dc_residue;
} PVQ_INFO;

typedef struct PVQ_QUEUE {
  PVQ_INFO *buf;  // buffer for pvq info, stored in encoding order
  int curr_pos;   // curr position to write PVQ_INFO
  int buf_len;    // allocated buffer length
  int last_pos;   // last written position of PVQ_INFO in a tile
} PVQ_QUEUE;
#endif

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#if CONFIG_NCOBMC_ADAPT_WEIGHT
typedef struct superblock_mi_boundaries {
  int mi_row_begin;
  int mi_col_begin;
  int mi_row_end;
  int mi_col_end;
} SB_MI_BD;

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typedef struct { int16_t KERNEL[4][MAX_SB_SIZE][MAX_SB_SIZE]; } NCOBMC_KERNELS;
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#endif

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typedef struct {
  uint8_t *plane[MAX_MB_PLANE];
  int stride[MAX_MB_PLANE];
} BUFFER_SET;

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static INLINE int is_inter_singleref_mode(PREDICTION_MODE mode) {
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  return mode >= NEARESTMV && mode <= NEWMV;
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}
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static INLINE int is_inter_compound_mode(PREDICTION_MODE mode) {
  return mode >= NEAREST_NEARESTMV && mode <= NEW_NEWMV;
}
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#if CONFIG_COMPOUND_SINGLEREF
static INLINE int is_inter_singleref_comp_mode(PREDICTION_MODE mode) {
  return mode >= SR_NEAREST_NEARMV && mode <= SR_NEW_NEWMV;
}
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static INLINE int is_inter_anyref_comp_mode(PREDICTION_MODE mode) {
  return is_inter_compound_mode(mode) || is_inter_singleref_comp_mode(mode);
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}
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#endif  // CONFIG_COMPOUND_SINGLEREF
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static INLINE PREDICTION_MODE compound_ref0_mode(PREDICTION_MODE mode) {
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  static PREDICTION_MODE lut[] = {
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    MB_MODE_COUNT,  // DC_PRED
    MB_MODE_COUNT,  // V_PRED
    MB_MODE_COUNT,  // H_PRED
    MB_MODE_COUNT,  // D45_PRED
    MB_MODE_COUNT,  // D135_PRED
    MB_MODE_COUNT,  // D117_PRED
    MB_MODE_COUNT,  // D153_PRED
    MB_MODE_COUNT,  // D207_PRED
    MB_MODE_COUNT,  // D63_PRED
    MB_MODE_COUNT,  // SMOOTH_PRED
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#if CONFIG_SMOOTH_HV
    MB_MODE_COUNT,  // SMOOTH_V_PRED
    MB_MODE_COUNT,  // SMOOTH_H_PRED
#endif              // CONFIG_SMOOTH_HV
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    MB_MODE_COUNT,  // TM_PRED
    MB_MODE_COUNT,  // NEARESTMV
    MB_MODE_COUNT,  // NEARMV
    MB_MODE_COUNT,  // ZEROMV
    MB_MODE_COUNT,  // NEWMV
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#if CONFIG_COMPOUND_SINGLEREF
    NEARESTMV,  // SR_NEAREST_NEARMV
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    // NEARESTMV,  // SR_NEAREST_NEWMV
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    NEARMV,     // SR_NEAR_NEWMV
    ZEROMV,     // SR_ZERO_NEWMV
    NEWMV,      // SR_NEW_NEWMV
#endif          // CONFIG_COMPOUND_SINGLEREF
    NEARESTMV,  // NEAREST_NEARESTMV
    NEARMV,     // NEAR_NEARMV
    NEARESTMV,  // NEAREST_NEWMV
    NEWMV,      // NEW_NEARESTMV
    NEARMV,     // NEAR_NEWMV
    NEWMV,      // NEW_NEARMV
    ZEROMV,     // ZERO_ZEROMV
    NEWMV,      // NEW_NEWMV
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  };
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  assert(NELEMENTS(lut) == MB_MODE_COUNT);
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#if CONFIG_COMPOUND_SINGLEREF
  assert(is_inter_anyref_comp_mode(mode));
#else   // !CONFIG_COMPOUND_SINGLEREF
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  assert(is_inter_compound_mode(mode));
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#endif  // CONFIG_COMPOUND_SINGLEREF
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  return lut[mode];
}

static INLINE PREDICTION_MODE compound_ref1_mode(PREDICTION_MODE mode) {
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  static PREDICTION_MODE lut[] = {
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    MB_MODE_COUNT,  // DC_PRED
    MB_MODE_COUNT,  // V_PRED
    MB_MODE_COUNT,  // H_PRED
    MB_MODE_COUNT,  // D45_PRED
    MB_MODE_COUNT,  // D135_PRED
    MB_MODE_COUNT,  // D117_PRED
    MB_MODE_COUNT,  // D153_PRED
    MB_MODE_COUNT,  // D207_PRED
    MB_MODE_COUNT,  // D63_PRED
    MB_MODE_COUNT,  // SMOOTH_PRED
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#if CONFIG_SMOOTH_HV
    MB_MODE_COUNT,  // SMOOTH_V_PRED
    MB_MODE_COUNT,  // SMOOTH_H_PRED
#endif              // CONFIG_SMOOTH_HV
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    MB_MODE_COUNT,  // TM_PRED
    MB_MODE_COUNT,  // NEARESTMV
    MB_MODE_COUNT,  // NEARMV
    MB_MODE_COUNT,  // ZEROMV
    MB_MODE_COUNT,  // NEWMV
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#if CONFIG_COMPOUND_SINGLEREF
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    NEARMV,  // SR_NEAREST_NEARMV
    // NEWMV,      // SR_NEAREST_NEWMV
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    NEWMV,      // SR_NEAR_NEWMV
    NEWMV,      // SR_ZERO_NEWMV
    NEWMV,      // SR_NEW_NEWMV
#endif          // CONFIG_COMPOUND_SINGLEREF
    NEARESTMV,  // NEAREST_NEARESTMV
    NEARMV,     // NEAR_NEARMV
    NEWMV,      // NEAREST_NEWMV
    NEARESTMV,  // NEW_NEARESTMV
    NEWMV,      // NEAR_NEWMV
    NEARMV,     // NEW_NEARMV
    ZEROMV,     // ZERO_ZEROMV
    NEWMV,      // NEW_NEWMV
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  };
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  assert(NELEMENTS(lut) == MB_MODE_COUNT);
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#if CONFIG_COMPOUND_SINGLEREF
  assert(is_inter_anyref_comp_mode(mode));
#else   // !CONFIG_COMPOUND_SINGLEREF
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  assert(is_inter_compound_mode(mode));
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#endif  // CONFIG_COMPOUND_SINGLEREF
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  return lut[mode];
}

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static INLINE int have_nearmv_in_inter_mode(PREDICTION_MODE mode) {
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  return (mode == NEARMV || mode == NEAR_NEARMV || mode == NEAR_NEWMV ||
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#if CONFIG_COMPOUND_SINGLEREF
          mode == SR_NEAREST_NEARMV || mode == SR_NEAR_NEWMV ||
#endif  // CONFIG_COMPOUND_SINGLEREF
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          mode == NEW_NEARMV);
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}

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static INLINE int have_newmv_in_inter_mode(PREDICTION_MODE mode) {
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  return (mode == NEWMV || mode == NEW_NEWMV || mode == NEAREST_NEWMV ||
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#if CONFIG_COMPOUND_SINGLEREF
          /* mode == SR_NEAREST_NEWMV || */ mode == SR_NEAR_NEWMV ||
          mode == SR_ZERO_NEWMV || mode == SR_NEW_NEWMV ||
#endif  // CONFIG_COMPOUND_SINGLEREF
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          mode == NEW_NEARESTMV || mode == NEAR_NEWMV || mode == NEW_NEARMV);
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}
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static INLINE int use_masked_motion_search(COMPOUND_TYPE type) {
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#if CONFIG_WEDGE
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  return (type == COMPOUND_WEDGE);
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#else
  (void)type;
  return 0;
#endif
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}

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static INLINE int is_masked_compound_type(COMPOUND_TYPE type) {
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#if CONFIG_COMPOUND_SEGMENT && CONFIG_WEDGE
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  return (type == COMPOUND_WEDGE || type == COMPOUND_SEG);
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#elif !CONFIG_COMPOUND_SEGMENT && CONFIG_WEDGE
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  return (type == COMPOUND_WEDGE);
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#elif CONFIG_COMPOUND_SEGMENT && !CONFIG_WEDGE
  return (type == COMPOUND_SEG);
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#endif  // CONFIG_COMPOUND_SEGMENT
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  (void)type;
  return 0;
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}
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/* For keyframes, intra block modes are predicted by the (already decoded)
   modes for the Y blocks to the left and above us; for interframes, there
   is a single probability table. */

typedef struct {
  PREDICTION_MODE as_mode;
  int_mv as_mv[2];  // first, second inter predictor motion vectors
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  int_mv pred_mv[2];
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  int_mv ref_mv[2];
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} b_mode_info;

typedef int8_t MV_REFERENCE_FRAME;

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typedef struct {
  // Number of base colors for Y (0) and UV (1)
  uint8_t palette_size[2];
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  // Value of base colors for Y, U, and V
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  uint16_t palette_colors[3 * PALETTE_MAX_SIZE];
} PALETTE_MODE_INFO;
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#if CONFIG_FILTER_INTRA
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#define USE_3TAP_INTRA_FILTER 1  // 0: 4-tap; 1: 3-tap
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typedef struct {
  // 1: an ext intra mode is used; 0: otherwise.
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  uint8_t use_filter_intra_mode[PLANE_TYPES];
  FILTER_INTRA_MODE filter_intra_mode[PLANE_TYPES];
} FILTER_INTRA_MODE_INFO;
#endif  // CONFIG_FILTER_INTRA
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#if CONFIG_VAR_TX
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#if CONFIG_RD_DEBUG
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#define TXB_COEFF_COST_MAP_SIZE (2 * MAX_MIB_SIZE)
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#endif
#endif
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typedef struct RD_STATS {
  int rate;
  int64_t dist;
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  // Please be careful of using rdcost, it's not guaranteed to be set all the
  // time.
  // TODO(angiebird): Create a set of functions to manipulate the RD_STATS. In
  // these functions, make sure rdcost is always up-to-date according to
  // rate/dist.
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  int64_t rdcost;
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  int64_t sse;
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  int skip;  // sse should equal to dist when skip == 1
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  int64_t ref_rdcost;
  int zero_rate;
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  uint8_t invalid_rate;
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#if CONFIG_RD_DEBUG
  int txb_coeff_cost[MAX_MB_PLANE];
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#if CONFIG_VAR_TX
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  int txb_coeff_cost_map[MAX_MB_PLANE][TXB_COEFF_COST_MAP_SIZE]
                        [TXB_COEFF_COST_MAP_SIZE];
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#endif  // CONFIG_VAR_TX
#endif  // CONFIG_RD_DEBUG
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} RD_STATS;

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// This struct is used to group function args that are commonly
// sent together in functions related to interinter compound modes
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typedef struct {
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#if CONFIG_WEDGE
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  int wedge_index;
  int wedge_sign;
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#endif  // CONFIG_WEDGE
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#if CONFIG_COMPOUND_SEGMENT
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  SEG_MASK_TYPE mask_type;
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  uint8_t *seg_mask;
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#endif  // CONFIG_COMPOUND_SEGMENT
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  COMPOUND_TYPE interinter_compound_type;
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} INTERINTER_COMPOUND_DATA;

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// This structure now relates to 8x8 block regions.
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typedef struct MB_MODE_INFO {
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  // Common for both INTER and INTRA blocks
  BLOCK_SIZE sb_type;
  PREDICTION_MODE mode;
  TX_SIZE tx_size;
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#if CONFIG_VAR_TX
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  // TODO(jingning): This effectively assigned a separate entry for each
  // 8x8 block. Apparently it takes much more space than needed.
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  TX_SIZE inter_tx_size[MAX_MIB_SIZE][MAX_MIB_SIZE];
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  TX_SIZE min_tx_size;
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#endif
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  int8_t skip;
  int8_t segment_id;
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#if CONFIG_SUPERTX
  // Minimum of all segment IDs under the current supertx block.
  int8_t segment_id_supertx;
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#endif                      // CONFIG_SUPERTX
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  int8_t seg_id_predicted;  // valid only when temporal_update is enabled

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#if CONFIG_MRC_TX
  int valid_mrc_mask;
#endif  // CONFIG_MRC_TX

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  // Only for INTRA blocks
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  UV_PREDICTION_MODE uv_mode;
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  PALETTE_MODE_INFO palette_mode_info;
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#if CONFIG_INTRABC
  uint8_t use_intrabc;
#endif  // CONFIG_INTRABC
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// Only for INTER blocks
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#if CONFIG_DUAL_FILTER
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  InterpFilter interp_filter[4];
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#else
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  InterpFilter interp_filter;
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#endif
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  MV_REFERENCE_FRAME ref_frame[2];
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  TX_TYPE tx_type;
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#if CONFIG_TXK_SEL
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  TX_TYPE txk_type[MAX_SB_SQUARE / (TX_SIZE_W_MIN * TX_SIZE_H_MIN)];
#endif
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#if CONFIG_FILTER_INTRA
  FILTER_INTRA_MODE_INFO filter_intra_mode_info;
#endif  // CONFIG_FILTER_INTRA
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#if CONFIG_EXT_INTRA
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  // The actual prediction angle is the base angle + (angle_delta * step).
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  int8_t angle_delta[2];
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#if CONFIG_INTRA_INTERP
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  // To-Do (huisu): this may be replaced by interp_filter
  INTRA_FILTER intra_filter;
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#endif  // CONFIG_INTRA_INTERP
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#endif  // CONFIG_EXT_INTRA

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#if CONFIG_INTERINTRA
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  // interintra members
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  INTERINTRA_MODE interintra_mode;
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#endif
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  // TODO(debargha): Consolidate these flags
  int use_wedge_interintra;
  int interintra_wedge_index;
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  int interintra_wedge_sign;
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  // interinter members
  COMPOUND_TYPE interinter_compound_type;
#if CONFIG_WEDGE
  int wedge_index;
  int wedge_sign;
#endif  // CONFIG_WEDGE
#if CONFIG_COMPOUND_SEGMENT
  SEG_MASK_TYPE mask_type;
#endif  // CONFIG_COMPOUND_SEGMENT
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  MOTION_MODE motion_mode;
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#if CONFIG_MOTION_VAR
  int overlappable_neighbors[2];
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#if CONFIG_NCOBMC_ADAPT_WEIGHT
  // Applying different weighting kernels in ncobmc
  // In current implementation, interpolation modes only defined for squared
  // blocks. A rectangular block is divided into two squared blocks and each
  // squared block has an interpolation mode.
  NCOBMC_MODE ncobmc_mode[2];
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#endif  // CONFIG_NCOBMC_ADAPT_WEIGHT
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#endif  // CONFIG_MOTION_VAR
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  int_mv mv[2];
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  int_mv pred_mv[2];
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  uint8_t ref_mv_idx;
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#if CONFIG_EXT_PARTITION_TYPES
  PARTITION_TYPE partition;
#endif
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#if CONFIG_NEW_QUANT
  int dq_off_index;
  int send_dq_bit;
#endif  // CONFIG_NEW_QUANT
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  /* deringing gain *per-superblock* */
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  int8_t cdef_strength;
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  int current_q_index;
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#if CONFIG_EXT_DELTA_Q
  int current_delta_lf_from_base;
#endif
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#if CONFIG_RD_DEBUG
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  RD_STATS rd_stats;
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  int mi_row;
  int mi_col;
#endif
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#if CONFIG_WARPED_MOTION
  int num_proj_ref[2];
  WarpedMotionParams wm_params[2];
#endif  // CONFIG_WARPED_MOTION
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#if CONFIG_CFL
  // Index of the alpha Cb and alpha Cr combination
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  int cfl_alpha_idx;
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  // Joint sign of alpha Cb and alpha Cr
  int cfl_alpha_signs;
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#endif

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  BOUNDARY_TYPE boundary_info;
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#if CONFIG_LPF_SB
  uint8_t filt_lvl;
#endif
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} MB_MODE_INFO;

typedef struct MODE_INFO {
  MB_MODE_INFO mbmi;
  b_mode_info bmi[4];
} MODE_INFO;

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#if CONFIG_INTRABC
static INLINE int is_intrabc_block(const MB_MODE_INFO *mbmi) {
  return mbmi->use_intrabc;
}
#endif

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static INLINE PREDICTION_MODE get_y_mode(const MODE_INFO *mi, int block) {
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#if CONFIG_CB4X4
  (void)block;
  return mi->mbmi.mode;
#else
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  return mi->mbmi.sb_type < BLOCK_8X8 ? mi->bmi[block].as_mode : mi->mbmi.mode;
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#endif
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}

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#if CONFIG_CFL
static INLINE PREDICTION_MODE get_uv_mode(UV_PREDICTION_MODE mode) {
  static const PREDICTION_MODE uv2y[UV_INTRA_MODES] = {
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    DC_PRED,      // UV_DC_PRED
    V_PRED,       // UV_V_PRED
    H_PRED,       // UV_H_PRED
    D45_PRED,     // UV_D45_PRED
    D135_PRED,    // UV_D135_PRED
    D117_PRED,    // UV_D117_PRED
    D153_PRED,    // UV_D153_PRED
    D207_PRED,    // UV_D207_PRED
    D63_PRED,     // UV_D63_PRED
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    SMOOTH_PRED,  // UV_SMOOTH_PRED
#if CONFIG_SMOOTH_HV
    SMOOTH_V_PRED,  // UV_SMOOTH_V_PRED
    SMOOTH_H_PRED,  // UV_SMOOTH_H_PRED
#endif              // CONFIG_SMOOTH_HV
    TM_PRED,        // UV_TM_PRED
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    DC_PRED,        // CFL_PRED
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  };
  return uv2y[mode];
}
#else
static INLINE PREDICTION_MODE get_uv_mode(PREDICTION_MODE mode) { return mode; }
#endif  // CONFIG_CFL

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static INLINE int is_inter_block(const MB_MODE_INFO *mbmi) {
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#if CONFIG_INTRABC
  if (is_intrabc_block(mbmi)) return 1;
#endif
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  return mbmi->ref_frame[0] > INTRA_FRAME;
}

static INLINE int has_second_ref(const MB_MODE_INFO *mbmi) {
  return mbmi->ref_frame[1] > INTRA_FRAME;
}

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#if CONFIG_EXT_COMP_REFS
static INLINE int has_uni_comp_refs(const MB_MODE_INFO *mbmi) {
  return has_second_ref(mbmi) && (!((mbmi->ref_frame[0] >= BWDREF_FRAME) ^
                                    (mbmi->ref_frame[1] >= BWDREF_FRAME)));
}

static INLINE MV_REFERENCE_FRAME comp_ref0(int ref_idx) {
  static const MV_REFERENCE_FRAME lut[] = {
    LAST_FRAME,    // LAST_LAST2_FRAMES,
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    LAST_FRAME,    // LAST_LAST3_FRAMES,
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    LAST_FRAME,    // LAST_GOLDEN_FRAMES,
    BWDREF_FRAME,  // BWDREF_ALTREF_FRAMES,
  };
  assert(NELEMENTS(lut) == UNIDIR_COMP_REFS);
  return lut[ref_idx];
}

static INLINE MV_REFERENCE_FRAME comp_ref1(int ref_idx) {
  static const MV_REFERENCE_FRAME lut[] = {
    LAST2_FRAME,   // LAST_LAST2_FRAMES,
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    LAST3_FRAME,   // LAST_LAST3_FRAMES,
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    GOLDEN_FRAME,  // LAST_GOLDEN_FRAMES,
    ALTREF_FRAME,  // BWDREF_ALTREF_FRAMES,
  };
  assert(NELEMENTS(lut) == UNIDIR_COMP_REFS);
  return lut[ref_idx];
}
#endif  // CONFIG_EXT_COMP_REFS

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PREDICTION_MODE av1_left_block_mode(const MODE_INFO *cur_mi,
                                    const MODE_INFO *left_mi, int b);
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PREDICTION_MODE av1_above_block_mode(const MODE_INFO *cur_mi,
                                     const MODE_INFO *above_mi, int b);
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#if CONFIG_GLOBAL_MOTION
static INLINE int is_global_mv_block(const MODE_INFO *mi, int block,
                                     TransformationType type) {
  PREDICTION_MODE mode = get_y_mode(mi, block);
#if GLOBAL_SUB8X8_USED
  const int block_size_allowed = 1;
#else
  const BLOCK_SIZE bsize = mi->mbmi.sb_type;
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  const int block_size_allowed =
      AOMMIN(block_size_wide[bsize], block_size_high[bsize]) >= 8;
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#endif  // GLOBAL_SUB8X8_USED
  return (mode == ZEROMV || mode == ZERO_ZEROMV) && type > TRANSLATION &&
         block_size_allowed;
}
#endif  // CONFIG_GLOBAL_MOTION

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enum mv_precision { MV_PRECISION_Q3, MV_PRECISION_Q4 };
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struct buf_2d {
  uint8_t *buf;
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  uint8_t *buf0;
  int width;
  int height;
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  int stride;
};

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typedef struct macroblockd_plane {
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  tran_low_t *dqcoeff;
  PLANE_TYPE plane_type;
  int subsampling_x;
  int subsampling_y;
  struct buf_2d dst;
  struct buf_2d pre[2];
  ENTROPY_CONTEXT *above_context;
  ENTROPY_CONTEXT *left_context;
  int16_t seg_dequant[MAX_SEGMENTS][2];
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#if CONFIG_NEW_QUANT
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  dequant_val_type_nuq seg_dequant_nuq[MAX_SEGMENTS][QUANT_PROFILES]
                                      [COEF_BANDS];
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#endif
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  uint8_t *color_index_map;
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  // number of 4x4s in current block
  uint16_t n4_w, n4_h;
  // log2 of n4_w, n4_h
  uint8_t n4_wl, n4_hl;
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  // block size in pixels
  uint8_t width, height;
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#if CONFIG_AOM_QM
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  qm_val_t *seg_iqmatrix[MAX_SEGMENTS][2][TX_SIZES_ALL];
  qm_val_t *seg_qmatrix[MAX_SEGMENTS][2][TX_SIZES_ALL];
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#endif
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  // encoder
  const int16_t *dequant;
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#if CONFIG_NEW_QUANT
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  const dequant_val_type_nuq *dequant_val_nuq[QUANT_PROFILES];
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#endif  // CONFIG_NEW_QUANT
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#if CONFIG_PVQ || CONFIG_DIST_8X8
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  DECLARE_ALIGNED(16, int16_t, pred[MAX_SB_SQUARE]);
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#endif
#if CONFIG_PVQ
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  // PVQ: forward transformed predicted image, a reference for PVQ.
  tran_low_t *pvq_ref_coeff;
#endif
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} MACROBLOCKD_PLANE;
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#define BLOCK_OFFSET(x, i) \
  ((x) + (i) * (1 << (tx_size_wide_log2[0] + tx_size_high_log2[0])))
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typedef struct RefBuffer {
  int idx;
  YV12_BUFFER_CONFIG *buf;
  struct scale_factors sf;
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#if CONFIG_VAR_REFS
  int is_valid;
#endif  // CONFIG_VAR_REFS
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} RefBuffer;

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#if CONFIG_ADAPT_SCAN
typedef int16_t EobThresholdMD[TX_TYPES][EOB_THRESHOLD_NUM];
#endif
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#if CONFIG_LOOP_RESTORATION
typedef struct {
  DECLARE_ALIGNED(16, InterpKernel, vfilter);
  DECLARE_ALIGNED(16, InterpKernel, hfilter);
} WienerInfo;

typedef struct {
  int ep;
  int xqd[2];
} SgrprojInfo;
#endif  // CONFIG_LOOP_RESTORATION

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#if CONFIG_CFL
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#if CONFIG_CHROMA_SUB8X8 && CONFIG_DEBUG
#define CFL_SUB8X8_VAL_MI_SIZE (4)
#define CFL_SUB8X8_VAL_MI_SQUARE \
  (CFL_SUB8X8_VAL_MI_SIZE * CFL_SUB8X8_VAL_MI_SIZE)
#endif  // CONFIG_CHROMA_SUB8X8 && CONFIG_DEBUG
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typedef struct cfl_ctx {
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  // The CfL prediction buffer is used in two steps:
  //   1. Stores Q3 reconstructed luma pixels
  //      (only Q2 is required, but Q3 is used to avoid shifts)
  //   2. Stores Q3 AC contributions (step1 - tx block avg)
  int16_t pred_buf_q3[MAX_SB_SQUARE];

  // Height and width currently used in the CfL prediction buffer.
  int buf_height, buf_width;
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  // Height and width of the chroma prediction block currently associated with
  // this context
  int uv_height, uv_width;

  int are_parameters_computed;

  // Chroma subsampling
  int subsampling_x, subsampling_y;

  // Block level DC_PRED for each chromatic plane
  int dc_pred[CFL_PRED_PLANES];

  int mi_row, mi_col;

  // Whether the reconstructed luma pixels need to be stored
  int store_y;

#if CONFIG_CB4X4
  int is_chroma_reference;
#if CONFIG_CHROMA_SUB8X8 && CONFIG_DEBUG
  // The prediction used for sub8x8 blocks originates from multiple luma blocks,
  // this array is used to validate that cfl_store() is called only once for
  // each luma block
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  uint8_t sub8x8_val[CFL_SUB8X8_VAL_MI_SQUARE];
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#endif  // CONFIG_CHROMA_SUB8X8 && CONFIG_DEBUG
#endif  // CONFIG_CB4X4
} CFL_CTX;
#endif  // CONFIG_CFL

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typedef struct macroblockd {
  struct macroblockd_plane plane[MAX_MB_PLANE];
  uint8_t bmode_blocks_wl;
  uint8_t bmode_blocks_hl;

  FRAME_COUNTS *counts;
  TileInfo tile;

  int mi_stride;

  MODE_INFO **mi;
  MODE_INFO *left_mi;
  MODE_INFO *above_mi;
  MB_MODE_INFO *left_mbmi;
  MB_MODE_INFO *above_mbmi;

  int up_available;
  int left_available;
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#if CONFIG_CHROMA_SUB8X8
  int chroma_up_available;
  int chroma_left_available;
#endif
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  const aom_prob (*partition_probs)[PARTITION_TYPES - 1];
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  /* Distance of MB away from frame edges in subpixels (1/8th pixel)  */
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  int mb_to_left_edge;
  int mb_to_right_edge;
  int mb_to_top_edge;
  int mb_to_bottom_edge;

  FRAME_CONTEXT *fc;

  /* pointers to reference frames */
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  const RefBuffer *block_refs[2];
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  /* pointer to current frame */
  const YV12_BUFFER_CONFIG *cur_buf;

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#if CONFIG_INTRABC
  /* Scale of the current frame with respect to itself */
  struct scale_factors sf_identity;
#endif

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  ENTROPY_CONTEXT *above_context[MAX_MB_PLANE];
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  ENTROPY_CONTEXT left_context[MAX_MB_PLANE][2 * MAX_MIB_SIZE];
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  PARTITION_CONTEXT *above_seg_context;
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  PARTITION_CONTEXT left_seg_context[MAX_MIB_SIZE];
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#if CONFIG_VAR_TX
  TXFM_CONTEXT *above_txfm_context;
  TXFM_CONTEXT *left_txfm_context;
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  TXFM_CONTEXT left_txfm_context_buffer[2 * MAX_MIB_SIZE];
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  TX_SIZE max_tx_size;
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#if CONFIG_SUPERTX
  TX_SIZE supertx_size;
#endif
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#endif

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#if CONFIG_LOOP_RESTORATION
  WienerInfo wiener_info[MAX_MB_PLANE];
  SgrprojInfo sgrproj_info[MAX_MB_PLANE];
#endif  // CONFIG_LOOP_RESTORATION

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  // block dimension in the unit of mode_info.
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  uint8_t n8_w, n8_h;

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  uint8_t ref_mv_count[MODE_CTX_REF_FRAMES];
  CANDIDATE_MV ref_mv_stack[MODE_CTX_REF_FRAMES][MAX_REF_MV_STACK_SIZE];
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  uint8_t is_sec_rect;
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#if CONFIG_PVQ
  daala_dec_ctx daala_dec;
#endif
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  FRAME_CONTEXT *tile_ctx;
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  /* Bit depth: 8, 10, 12 */
  int bd;

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  int qindex[MAX_SEGMENTS];
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  int lossless[MAX_SEGMENTS];
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  int corrupted;
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#if CONFIG_AMVR
  int cur_frame_mv_precision_level;
// same with that in AV1_COMMON
#endif
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  struct aom_internal_error_info *error_info;
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#if CONFIG_GLOBAL_MOTION
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  WarpedMotionParams *global_motion;
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#endif  // CONFIG_GLOBAL_MOTION
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  int prev_qindex;
  int delta_qindex;
  int current_qindex;
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#if CONFIG_EXT_DELTA_Q
  // Since actual frame level loop filtering level value is not available
  // at the beginning of the tile (only available during actual filtering)
  // at encoder side.we record the delta_lf (against the frame level loop
  // filtering level) and code the delta between previous superblock's delta
  // lf and current delta lf. It is equivalent to the delta between previous
  // superblock's actual lf and current lf.
  int prev_delta_lf_from_base;
  int current_delta_lf_from_base;
#endif
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#if CONFIG_ADAPT_SCAN
  const EobThresholdMD *eob_threshold_md;
#endif
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#if CONFIG_COMPOUND_SEGMENT
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  DECLARE_ALIGNED(16, uint8_t, seg_mask[2 * MAX_SB_SQUARE]);
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#endif  // CONFIG_COMPOUND_SEGMENT
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#if CONFIG_MRC_TX
  uint8_t *mrc_mask;
#endif  // CONFIG_MRC_TX

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#if CONFIG_CFL
  CFL_CTX *cfl;
#endif
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#if CONFIG_NCOBMC_ADAPT_WEIGHT
  uint8_t *ncobmc_pred_buf[MAX_MB_PLANE];
  int ncobmc_pred_buf_stride[MAX_MB_PLANE];
  SB_MI_BD sb_mi_bd;
#endif
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} MACROBLOCKD;

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static INLINE int get_bitdepth_data_path_index(const MACROBLOCKD *xd) {
  return xd->cur_buf->flags & YV12_FLAG_HIGHBITDEPTH ? 1 : 0;
}

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static INLINE BLOCK_SIZE get_subsize(BLOCK_SIZE bsize,
                                     PARTITION_TYPE partition) {
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  if (partition == PARTITION_INVALID)
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    return BLOCK_INVALID;
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  else
    return subsize_lookup[partition][bsize];
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}

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static const TX_TYPE intra_mode_to_tx_type_context[INTRA_MODES] = {
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  DCT_DCT,    // DC
  ADST_DCT,   // V
  DCT_ADST,   // H
  DCT_DCT,    // D45
  ADST_ADST,  // D135
  ADST_DCT,   // D117
  DCT_ADST,   // D153
  DCT_ADST,   // D207
  ADST_DCT,   // D63
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  ADST_ADST,  // SMOOTH
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#if CONFIG_SMOOTH_HV
  ADST_DCT,   // SMOOTH_V
  DCT_ADST,   // SMOOTH_H
#endif        // CONFIG_SMOOTH_HV
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  ADST_ADST,  // TM
};

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#if CONFIG_SUPERTX
static INLINE int supertx_enabled(const MB_MODE_INFO *mbmi) {
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  TX_SIZE max_tx_size = txsize_sqr_map[mbmi->tx_size];
  return tx_size_wide[max_tx_size] >
         AOMMIN(block_size_wide[mbmi->sb_type], block_size_high[mbmi->sb_type]);
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}
#endif  // CONFIG_SUPERTX

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#define USE_TXTYPE_SEARCH_FOR_SUB8X8_IN_CB4X4 1
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#if CONFIG_RECT_TX
static INLINE int is_rect_tx(TX_SIZE tx_size) { return tx_size >= TX_SIZES; }
#endif  // CONFIG_RECT_TX

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#if CONFIG_MRC_TX
#define USE_MRC_INTRA 0
#define USE_MRC_INTER 1
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#define SIGNAL_MRC_MASK_INTRA (USE_MRC_INTRA && 0)
#define SIGNAL_MRC_MASK_INTER (USE_MRC_INTER && 1)
#define SIGNAL_ANY_MRC_MASK (SIGNAL_MRC_MASK_INTRA || SIGNAL_MRC_MASK_INTER)
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#endif  // CONFIG_MRC_TX

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#if CONFIG_EXT_TX
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#define ALLOW_INTRA_EXT_TX 1
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// Number of transform types in each set type
static const int av1_num_ext_tx_set[EXT_TX_SET_TYPES] = {
  1, 2,
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#if CONFIG_MRC_TX
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  2, 3,
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#endif  // CONFIG_MRC_TX
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  5, 7, 12, 16,
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};

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static const int av1_ext_tx_set_idx_to_type[2][AOMMAX(EXT_TX_SETS_INTRA,
                                                      EXT_TX_SETS_INTER)] = {
  {
      // Intra
      EXT_TX_SET_DCTONLY, EXT_TX_SET_DTT4_IDTX_1DDCT, EXT_TX_SET_DTT4_IDTX,
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#if CONFIG_MRC_TX
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      EXT_TX_SET_MRC_DCT,
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#endif  // CONFIG_MRC_TX
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  },
  {
      // Inter
      EXT_TX_SET_DCTONLY, EXT_TX_SET_ALL16, EXT_TX_SET_DTT9_IDTX_1DDCT,
      EXT_TX_SET_DCT_IDTX,
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#if CONFIG_MRC_TX
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      EXT_TX_SET_MRC_DCT_IDTX,
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#endif  // CONFIG_MRC_TX
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  }
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};
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#if CONFIG_MRC_TX
static const int av1_ext_tx_used[EXT_TX_SET_TYPES][TX_TYPES] = {
  {
      1, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
  },
  {
      1, 0, 0, 0, 0, 0, 0, 0, 0, 1, 0, 0, 0, 0, 0, 0, 0,
  },
  {
      1, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 1,
  },
  {
      1, 0, 0, 0, 0, 0, 0, 0, 0, 1, 0, 0, 0, 0, 0, 0, 1,
  },
  {
      1, 1, 1, 1, 0, 0, 0, 0, 0, 1, 0, 0, 0, 0, 0, 0, 0,
  },
  {
      1, 1, 1, 1, 0, 0, 0, 0, 0, 1, 1, 1, 0, 0, 0, 0, 0,
  },
  {
      1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 0, 0, 0, 0, 0,
  },
  {
      1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 0,
  },
};
#else   // CONFIG_MRC_TX
static const int av1_ext_tx_used[EXT_TX_SET_TYPES][TX_TYPES] = {
  {
      1, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
  },
  {
      1, 0, 0, 0, 0, 0, 0, 0, 0, 1, 0, 0, 0, 0, 0, 0,
  },
  {
      1, 1, 1, 1, 0, 0, 0, 0, 0, 1, 0, 0, 0, 0, 0, 0,
  },
  {
      1, 1, 1, 1, 0, 0, 0, 0, 0, 1, 1, 1, 0, 0, 0, 0,
  },
  {
      1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 0, 0, 0, 0,
  },
  {
      1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1,
  },
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};
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#endif  // CONFIG_MRC_TX
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static INLINE TxSetType get_ext_tx_set_type(TX_SIZE tx_size, BLOCK_SIZE bs,
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                                            int is_inter, int use_reduced_set) {
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  const TX_SIZE tx_size_sqr_up = txsize_sqr_up_map[tx_size];
  const TX_SIZE tx_size_sqr = txsize_sqr_map[tx_size];
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#if CONFIG_CB4X4 && USE_TXTYPE_SEARCH_FOR_SUB8X8_IN_CB4X4
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  (void)bs;
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  if (tx_size_sqr > TX_32X32) return EXT_TX_SET_DCTONLY;
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#else
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  if (tx_size_sqr > TX_32X32 || bs < BLOCK_8X8) return EXT_TX_SET_DCTONLY;
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#endif
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  if (use_reduced_set)
    return is_inter ? EXT_TX_SET_DCT_IDTX : EXT_TX_SET_DTT4_IDTX;
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#if CONFIG_MRC_TX
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  if (tx_size == TX_32X32) {
    if (is_inter && USE_MRC_INTER)
      return EXT_TX_SET_MRC_DCT_IDTX;
    else if (!is_inter && USE_MRC_INTRA)
      return EXT_TX_SET_MRC_DCT;
  }
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#endif  // CONFIG_MRC_TX
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  if (tx_size_sqr_up == TX_32X32)
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    return is_inter ? EXT_TX_SET_DCT_IDTX : EXT_TX_SET_DCTONLY;
  if (is_inter)
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    return (tx_size_sqr == TX_16X16 ? EXT_TX_SET_DTT9_IDTX_1DDCT
                                    : EXT_TX_SET_ALL16);
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  else
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    return (tx_size_sqr == TX_16X16 ? EXT_TX_SET_DTT4_IDTX
                                    : EXT_TX_SET_DTT4_IDTX_1DDCT);
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}

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// Maps tx set types to the indices.
static const int ext_tx_set_index[2][EXT_TX_SET_TYPES] = {
  {
      // Intra
      0, -1,
#if CONFIG_MRC_TX
      3, -1,
#endif  // CONFIG_MRC_TX
      2, 1, -1, -1,
  },
  {
      // Inter
      0, 3,
#if CONFIG_MRC_TX
      -1, 4,
#endif  // CONFIG_MRC_TX
      -1, -1, 2, 1,
  },
};

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static INLINE int get_ext_tx_set(TX_SIZE tx_size, BLOCK_SIZE bs, int is_inter,
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                                 int use_reduced_set) {
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  const TxSetType set_type =
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      get_ext_tx_set_type(tx_size, bs, is_inter, use_reduced_set);
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  return ext_tx_set_index[is_inter][set_type];
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}

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static INLINE int get_ext_tx_types(TX_SIZE tx_size, BLOCK_SIZE bs, int is_inter,
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                                   int use_reduced_set) {
  const int set_type =
      get_ext_tx_set_type(tx_size, bs, is_inter, use_reduced_set);
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  return av1_num_ext_tx_set[set_type];
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}
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#if CONFIG_RECT_TX
static INLINE int is_rect_tx_allowed_bsize(BLOCK_SIZE bsize) {
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  static const char LUT[BLOCK_SIZES_ALL] = {
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#if CONFIG_CHROMA_2X2 || CONFIG_CHROMA_SUB8X8
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    0,  // BLOCK_2X2
    0,  // BLOCK_2X4
    0,  // BLOCK_4X2
#endif
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    0,  // BLOCK_4X4
    1,  // BLOCK_4X8
    1,  // BLOCK_8X4
    0,  // BLOCK_8X8
    1,  // BLOCK_8X16
    1,  // BLOCK_16X8
    0,  // BLOCK_16X16
    1,  // BLOCK_16X32
    1,  // BLOCK_32X16
    0,  // BLOCK_32X32
    0,  // BLOCK_32X64
    0,  // BLOCK_64X32
    0,  // BLOCK_64X64
#if CONFIG_EXT_PARTITION
    0,  // BLOCK_64X128
    0,  // BLOCK_128X64
    0,  // BLOCK_128X128
#endif  // CONFIG_EXT_PARTITION
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    0,  // BLOCK_4X16
    0,  // BLOCK_16X4
    0,  // BLOCK_8X32
    0,  // BLOCK_32X8
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    0,  // BLOCK_16X64
    0,  // BLOCK_64X16
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#if CONFIG_EXT_PARTITION
    0,  // BLOCK_32X128
    0,  // BLOCK_128X32
#endif  // CONFIG_EXT_PARTITION
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  };

  return LUT[bsize];
}

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static INLINE int is_rect_tx_allowed(const MACROBLOCKD *xd,
                                     const MB_MODE_INFO *mbmi) {
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  return is_rect_tx_allowed_bsize(mbmi->sb_type) &&
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         !xd->lossless[mbmi->segment_id];
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}
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#endif  // CONFIG_RECT_TX
#endif  // CONFIG_EXT_TX
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#if CONFIG_RECT_TX_EXT && (CONFIG_EXT_TX || CONFIG_VAR_TX)
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static INLINE int is_quarter_tx_allowed_bsize(BLOCK_SIZE bsize) {
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  static const char LUT_QTTX[BLOCK_SIZES_ALL] = {
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#if CONFIG_CHROMA_2X2 || CONFIG_CHROMA_SUB8X8
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    0,  // BLOCK_2X2
    0,  // BLOCK_2X4
    0,  // BLOCK_4X2
#endif
    0,  // BLOCK_4X4
    0,  // BLOCK_4X8
    0,  // BLOCK_8X4
    0,  // BLOCK_8X8
    1,  // BLOCK_8X16
    1,  // BLOCK_16X8
    0,  // BLOCK_16X16
    0,  // BLOCK_16X32
    0,  // BLOCK_32X16
    0,  // BLOCK_32X32
    0,  // BLOCK_32X64
    0,  // BLOCK_64X32
    0,  // BLOCK_64X64
#if CONFIG_EXT_PARTITION
    0,  // BLOCK_64X128
    0,  // BLOCK_128X64
    0,  // BLOCK_128X128
#endif  // CONFIG_EXT_PARTITION
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    0,  // BLOCK_4X16
    0,  // BLOCK_16X4
    0,  // BLOCK_8X32
    0,  // BLOCK_32X8
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    0,  // BLOCK_16X64
    0,  // BLOCK_64X16
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#if CONFIG_EXT_PARTITION
    0,  // BLOCK_32X128
    0,  // BLOCK_128X32
#endif  // CONFIG_EXT_PARTITION
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  };

  return LUT_QTTX[bsize];
}

static INLINE int is_quarter_tx_allowed(const MACROBLOCKD *xd,
                                        const MB_MODE_INFO *mbmi,
                                        int is_inter) {
  return is_quarter_tx_allowed_bsize(mbmi->sb_type) && is_inter &&
         !xd->lossless[mbmi->segment_id];
}
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#endif
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static INLINE TX_SIZE tx_size_from_tx_mode(BLOCK_SIZE bsize, TX_MODE tx_mode,
                                           int is_inter) {
  const TX_SIZE largest_tx_size = tx_mode_to_biggest_tx_size[tx_mode];
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#if (CONFIG_VAR_TX || CONFIG_EXT_TX) && CONFIG_RECT_TX
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  const TX_SIZE max_rect_tx_size = max_txsize_rect_lookup[bsize];
#else
  const TX_SIZE max_tx_size = max_txsize_lookup[bsize];
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#endif  // (CONFIG_VAR_TX || CONFIG_EXT_TX) && CONFIG_RECT_TX
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  (void)is_inter;
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#if CONFIG_VAR_TX && CONFIG_RECT_TX
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#if CONFIG_CB4X4
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  if (bsize == BLOCK_4X4)
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    return AOMMIN(max_txsize_lookup[bsize], largest_tx_size);
#else
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  if (bsize < BLOCK_8X8)