reconinter.c 81.8 KB
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/*
 *  Copyright (c) 2010 The WebM project authors. All Rights Reserved.
 *
 *  Use of this source code is governed by a BSD-style license
 *  that can be found in the LICENSE file in the root of the source
 *  tree. An additional intellectual property rights grant can be found
 *  in the file PATENTS.  All contributing project authors may
 *  be found in the AUTHORS file in the root of the source tree.
 */

#include <assert.h>

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#include "./aom_scale_rtcd.h"
#include "./aom_dsp_rtcd.h"
#include "./aom_config.h"
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#include "aom/aom_integer.h"
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#include "aom_dsp/blend.h"
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#include "av1/common/blockd.h"
#include "av1/common/reconinter.h"
#include "av1/common/reconintra.h"
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#if CONFIG_OBMC
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#include "av1/common/onyxc_int.h"
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#endif  // CONFIG_OBMC
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#if CONFIG_GLOBAL_MOTION
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#include "av1/common/warped_motion.h"
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#endif  // CONFIG_GLOBAL_MOTION
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#if CONFIG_EXT_INTER
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#define NSMOOTHERS 1
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static int get_masked_weight(int m, int smoothness) {
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#define SMOOTHER_LEN 32
  static const uint8_t smoothfn[NSMOOTHERS][2 * SMOOTHER_LEN + 1] = { {
      0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
      0, 1, 2, 4, 7, 13, 21, 32, 43, 51, 57, 60, 62, 63, 64, 64, 64, 64, 64, 64,
      64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 64,
      64, 64,
  } };
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  if (m < -SMOOTHER_LEN)
    return 0;
  else if (m > SMOOTHER_LEN)
    return (1 << WEDGE_WEIGHT_BITS);
  else
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    return smoothfn[smoothness][m + SMOOTHER_LEN];
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}

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// [smoother][negative][direction]
DECLARE_ALIGNED(
    16, static uint8_t,
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    wedge_mask_obl[NSMOOTHERS][2][WEDGE_DIRECTIONS][MASK_MASTER_SIZE *
                                                    MASK_MASTER_SIZE]);
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DECLARE_ALIGNED(16, static uint8_t,
                wedge_signflip_lookup[BLOCK_SIZES][MAX_WEDGE_TYPES]);
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// 3 * MAX_WEDGE_SQUARE is an easy to compute and fairly tight upper bound
// on the sum of all mask sizes up to an including MAX_WEDGE_SQUARE.
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DECLARE_ALIGNED(16, static uint8_t,
                wedge_mask_buf[2 * MAX_WEDGE_TYPES * 3 * MAX_WEDGE_SQUARE]);
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static wedge_masks_type wedge_masks[BLOCK_SIZES][2];

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// Some unused wedge codebooks left temporarily to facilitate experiments.
// To be removed when setteld.
static wedge_code_type wedge_codebook_8_hgtw[8] = {
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  { WEDGE_OBLIQUE27, 4, 4 },  { WEDGE_OBLIQUE63, 4, 4 },
  { WEDGE_OBLIQUE117, 4, 4 }, { WEDGE_OBLIQUE153, 4, 4 },
  { WEDGE_OBLIQUE27, 4, 2 },  { WEDGE_OBLIQUE27, 4, 6 },
  { WEDGE_OBLIQUE153, 4, 2 }, { WEDGE_OBLIQUE153, 4, 6 },
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};

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static wedge_code_type wedge_codebook_8_hltw[8] = {
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  { WEDGE_OBLIQUE27, 4, 4 },  { WEDGE_OBLIQUE63, 4, 4 },
  { WEDGE_OBLIQUE117, 4, 4 }, { WEDGE_OBLIQUE153, 4, 4 },
  { WEDGE_OBLIQUE63, 2, 4 },  { WEDGE_OBLIQUE63, 6, 4 },
  { WEDGE_OBLIQUE117, 2, 4 }, { WEDGE_OBLIQUE117, 6, 4 },
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};

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static wedge_code_type wedge_codebook_8_heqw[8] = {
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  { WEDGE_OBLIQUE27, 4, 4 },  { WEDGE_OBLIQUE63, 4, 4 },
  { WEDGE_OBLIQUE117, 4, 4 }, { WEDGE_OBLIQUE153, 4, 4 },
  { WEDGE_HORIZONTAL, 4, 2 }, { WEDGE_HORIZONTAL, 4, 6 },
  { WEDGE_VERTICAL, 2, 4 },   { WEDGE_VERTICAL, 6, 4 },
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};

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#if !USE_LARGE_WEDGE_CODEBOOK
static const wedge_code_type wedge_codebook_16_hgtw[16] = {
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  { WEDGE_OBLIQUE27, 4, 4 },  { WEDGE_OBLIQUE63, 4, 4 },
  { WEDGE_OBLIQUE117, 4, 4 }, { WEDGE_OBLIQUE153, 4, 4 },
  { WEDGE_HORIZONTAL, 4, 2 }, { WEDGE_HORIZONTAL, 4, 4 },
  { WEDGE_HORIZONTAL, 4, 6 }, { WEDGE_VERTICAL, 4, 4 },
  { WEDGE_OBLIQUE27, 4, 2 },  { WEDGE_OBLIQUE27, 4, 6 },
  { WEDGE_OBLIQUE153, 4, 2 }, { WEDGE_OBLIQUE153, 4, 6 },
  { WEDGE_OBLIQUE63, 2, 4 },  { WEDGE_OBLIQUE63, 6, 4 },
  { WEDGE_OBLIQUE117, 2, 4 }, { WEDGE_OBLIQUE117, 6, 4 },
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};
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static const wedge_code_type wedge_codebook_16_hltw[16] = {
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  { WEDGE_OBLIQUE27, 4, 4 },  { WEDGE_OBLIQUE63, 4, 4 },
  { WEDGE_OBLIQUE117, 4, 4 }, { WEDGE_OBLIQUE153, 4, 4 },
  { WEDGE_VERTICAL, 2, 4 },   { WEDGE_VERTICAL, 4, 4 },
  { WEDGE_VERTICAL, 6, 4 },   { WEDGE_HORIZONTAL, 4, 4 },
  { WEDGE_OBLIQUE27, 4, 2 },  { WEDGE_OBLIQUE27, 4, 6 },
  { WEDGE_OBLIQUE153, 4, 2 }, { WEDGE_OBLIQUE153, 4, 6 },
  { WEDGE_OBLIQUE63, 2, 4 },  { WEDGE_OBLIQUE63, 6, 4 },
  { WEDGE_OBLIQUE117, 2, 4 }, { WEDGE_OBLIQUE117, 6, 4 },
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};

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static const wedge_code_type wedge_codebook_16_heqw[16] = {
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  { WEDGE_OBLIQUE27, 4, 4 },  { WEDGE_OBLIQUE63, 4, 4 },
  { WEDGE_OBLIQUE117, 4, 4 }, { WEDGE_OBLIQUE153, 4, 4 },
  { WEDGE_HORIZONTAL, 4, 2 }, { WEDGE_HORIZONTAL, 4, 6 },
  { WEDGE_VERTICAL, 2, 4 },   { WEDGE_VERTICAL, 6, 4 },
  { WEDGE_OBLIQUE27, 4, 2 },  { WEDGE_OBLIQUE27, 4, 6 },
  { WEDGE_OBLIQUE153, 4, 2 }, { WEDGE_OBLIQUE153, 4, 6 },
  { WEDGE_OBLIQUE63, 2, 4 },  { WEDGE_OBLIQUE63, 6, 4 },
  { WEDGE_OBLIQUE117, 2, 4 }, { WEDGE_OBLIQUE117, 6, 4 },
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};

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const wedge_params_type wedge_params_lookup[BLOCK_SIZES] = {
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  { 0, NULL, NULL, 0, NULL },
  { 0, NULL, NULL, 0, NULL },
  { 0, NULL, NULL, 0, NULL },
  { 4, wedge_codebook_16_heqw, wedge_signflip_lookup[3], 0, wedge_masks[3] },
  { 4, wedge_codebook_16_hgtw, wedge_signflip_lookup[4], 0, wedge_masks[4] },
  { 4, wedge_codebook_16_hltw, wedge_signflip_lookup[5], 0, wedge_masks[5] },
  { 4, wedge_codebook_16_heqw, wedge_signflip_lookup[6], 0, wedge_masks[6] },
  { 4, wedge_codebook_16_hgtw, wedge_signflip_lookup[7], 0, wedge_masks[7] },
  { 4, wedge_codebook_16_hltw, wedge_signflip_lookup[8], 0, wedge_masks[8] },
  { 4, wedge_codebook_16_heqw, wedge_signflip_lookup[9], 0, wedge_masks[9] },
  { 0, wedge_codebook_8_hgtw, wedge_signflip_lookup[10], 0, wedge_masks[10] },
  { 0, wedge_codebook_8_hltw, wedge_signflip_lookup[11], 0, wedge_masks[11] },
  { 0, wedge_codebook_8_heqw, wedge_signflip_lookup[12], 0, wedge_masks[12] },
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#if CONFIG_EXT_PARTITION
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  { 0, NULL, NULL, 0, NULL },
  { 0, NULL, NULL, 0, NULL },
  { 0, NULL, NULL, 0, NULL },
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#endif  // CONFIG_EXT_PARTITION
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};

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#else

static const wedge_code_type wedge_codebook_32_hgtw[32] = {
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  { WEDGE_OBLIQUE27, 4, 4 },  { WEDGE_OBLIQUE63, 4, 4 },
  { WEDGE_OBLIQUE117, 4, 4 }, { WEDGE_OBLIQUE153, 4, 4 },
  { WEDGE_HORIZONTAL, 4, 2 }, { WEDGE_HORIZONTAL, 4, 4 },
  { WEDGE_HORIZONTAL, 4, 6 }, { WEDGE_VERTICAL, 4, 4 },
  { WEDGE_OBLIQUE27, 4, 1 },  { WEDGE_OBLIQUE27, 4, 2 },
  { WEDGE_OBLIQUE27, 4, 3 },  { WEDGE_OBLIQUE27, 4, 5 },
  { WEDGE_OBLIQUE27, 4, 6 },  { WEDGE_OBLIQUE27, 4, 7 },
  { WEDGE_OBLIQUE153, 4, 1 }, { WEDGE_OBLIQUE153, 4, 2 },
  { WEDGE_OBLIQUE153, 4, 3 }, { WEDGE_OBLIQUE153, 4, 5 },
  { WEDGE_OBLIQUE153, 4, 6 }, { WEDGE_OBLIQUE153, 4, 7 },
  { WEDGE_OBLIQUE63, 1, 4 },  { WEDGE_OBLIQUE63, 2, 4 },
  { WEDGE_OBLIQUE63, 3, 4 },  { WEDGE_OBLIQUE63, 5, 4 },
  { WEDGE_OBLIQUE63, 6, 4 },  { WEDGE_OBLIQUE63, 7, 4 },
  { WEDGE_OBLIQUE117, 1, 4 }, { WEDGE_OBLIQUE117, 2, 4 },
  { WEDGE_OBLIQUE117, 3, 4 }, { WEDGE_OBLIQUE117, 5, 4 },
  { WEDGE_OBLIQUE117, 6, 4 }, { WEDGE_OBLIQUE117, 7, 4 },
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};

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static const wedge_code_type wedge_codebook_32_hltw[32] = {
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  { WEDGE_OBLIQUE27, 4, 4 },  { WEDGE_OBLIQUE63, 4, 4 },
  { WEDGE_OBLIQUE117, 4, 4 }, { WEDGE_OBLIQUE153, 4, 4 },
  { WEDGE_VERTICAL, 2, 4 },   { WEDGE_VERTICAL, 4, 4 },
  { WEDGE_VERTICAL, 6, 4 },   { WEDGE_HORIZONTAL, 4, 4 },
  { WEDGE_OBLIQUE27, 4, 1 },  { WEDGE_OBLIQUE27, 4, 2 },
  { WEDGE_OBLIQUE27, 4, 3 },  { WEDGE_OBLIQUE27, 4, 5 },
  { WEDGE_OBLIQUE27, 4, 6 },  { WEDGE_OBLIQUE27, 4, 7 },
  { WEDGE_OBLIQUE153, 4, 1 }, { WEDGE_OBLIQUE153, 4, 2 },
  { WEDGE_OBLIQUE153, 4, 3 }, { WEDGE_OBLIQUE153, 4, 5 },
  { WEDGE_OBLIQUE153, 4, 6 }, { WEDGE_OBLIQUE153, 4, 7 },
  { WEDGE_OBLIQUE63, 1, 4 },  { WEDGE_OBLIQUE63, 2, 4 },
  { WEDGE_OBLIQUE63, 3, 4 },  { WEDGE_OBLIQUE63, 5, 4 },
  { WEDGE_OBLIQUE63, 6, 4 },  { WEDGE_OBLIQUE63, 7, 4 },
  { WEDGE_OBLIQUE117, 1, 4 }, { WEDGE_OBLIQUE117, 2, 4 },
  { WEDGE_OBLIQUE117, 3, 4 }, { WEDGE_OBLIQUE117, 5, 4 },
  { WEDGE_OBLIQUE117, 6, 4 }, { WEDGE_OBLIQUE117, 7, 4 },
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};

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static const wedge_code_type wedge_codebook_32_heqw[32] = {
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  { WEDGE_OBLIQUE27, 4, 4 },  { WEDGE_OBLIQUE63, 4, 4 },
  { WEDGE_OBLIQUE117, 4, 4 }, { WEDGE_OBLIQUE153, 4, 4 },
  { WEDGE_HORIZONTAL, 4, 2 }, { WEDGE_HORIZONTAL, 4, 6 },
  { WEDGE_VERTICAL, 2, 4 },   { WEDGE_VERTICAL, 6, 4 },
  { WEDGE_OBLIQUE27, 4, 1 },  { WEDGE_OBLIQUE27, 4, 2 },
  { WEDGE_OBLIQUE27, 4, 3 },  { WEDGE_OBLIQUE27, 4, 5 },
  { WEDGE_OBLIQUE27, 4, 6 },  { WEDGE_OBLIQUE27, 4, 7 },
  { WEDGE_OBLIQUE153, 4, 1 }, { WEDGE_OBLIQUE153, 4, 2 },
  { WEDGE_OBLIQUE153, 4, 3 }, { WEDGE_OBLIQUE153, 4, 5 },
  { WEDGE_OBLIQUE153, 4, 6 }, { WEDGE_OBLIQUE153, 4, 7 },
  { WEDGE_OBLIQUE63, 1, 4 },  { WEDGE_OBLIQUE63, 2, 4 },
  { WEDGE_OBLIQUE63, 3, 4 },  { WEDGE_OBLIQUE63, 5, 4 },
  { WEDGE_OBLIQUE63, 6, 4 },  { WEDGE_OBLIQUE63, 7, 4 },
  { WEDGE_OBLIQUE117, 1, 4 }, { WEDGE_OBLIQUE117, 2, 4 },
  { WEDGE_OBLIQUE117, 3, 4 }, { WEDGE_OBLIQUE117, 5, 4 },
  { WEDGE_OBLIQUE117, 6, 4 }, { WEDGE_OBLIQUE117, 7, 4 },
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};

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const wedge_params_type wedge_params_lookup[BLOCK_SIZES] = {
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  { 0, NULL, NULL, 0, NULL },
  { 0, NULL, NULL, 0, NULL },
  { 0, NULL, NULL, 0, NULL },
  { 5, wedge_codebook_32_heqw, wedge_signflip_lookup[3], 0, wedge_masks[3] },
  { 5, wedge_codebook_32_hgtw, wedge_signflip_lookup[4], 0, wedge_masks[4] },
  { 5, wedge_codebook_32_hltw, wedge_signflip_lookup[5], 0, wedge_masks[5] },
  { 5, wedge_codebook_32_heqw, wedge_signflip_lookup[6], 0, wedge_masks[6] },
  { 5, wedge_codebook_32_hgtw, wedge_signflip_lookup[7], 0, wedge_masks[7] },
  { 5, wedge_codebook_32_hltw, wedge_signflip_lookup[8], 0, wedge_masks[8] },
  { 5, wedge_codebook_32_heqw, wedge_signflip_lookup[9], 0, wedge_masks[9] },
  { 0, wedge_codebook_8_hgtw, wedge_signflip_lookup[10], 0, wedge_masks[10] },
  { 0, wedge_codebook_8_hltw, wedge_signflip_lookup[11], 0, wedge_masks[11] },
  { 0, wedge_codebook_8_heqw, wedge_signflip_lookup[12], 0, wedge_masks[12] },
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#if CONFIG_EXT_PARTITION
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  { 0, NULL, NULL, 0, NULL },
  { 0, NULL, NULL, 0, NULL },
  { 0, NULL, NULL, 0, NULL },
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#endif  // CONFIG_EXT_PARTITION
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};
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#endif  // USE_LARGE_WEDGE_CODEBOOK
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static const uint8_t *get_wedge_mask_inplace(int wedge_index, int neg,
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                                             BLOCK_SIZE sb_type) {
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  const uint8_t *master;
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  const int bh = 4 << b_height_log2_lookup[sb_type];
  const int bw = 4 << b_width_log2_lookup[sb_type];
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  const wedge_code_type *a =
      wedge_params_lookup[sb_type].codebook + wedge_index;
  const int smoother = wedge_params_lookup[sb_type].smoother;
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  int woff, hoff;
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  const uint8_t wsignflip = wedge_params_lookup[sb_type].signflip[wedge_index];

  assert(wedge_index >= 0 &&
         wedge_index < (1 << get_wedge_bits_lookup(sb_type)));
  woff = (a->x_offset * bw) >> 3;
  hoff = (a->y_offset * bh) >> 3;
  master = wedge_mask_obl[smoother][neg ^ wsignflip][a->direction] +
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           MASK_MASTER_STRIDE * (MASK_MASTER_SIZE / 2 - hoff) +
           MASK_MASTER_SIZE / 2 - woff;
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  return master;
}

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const uint8_t *av1_get_soft_mask(int wedge_index, int wedge_sign,
                                 BLOCK_SIZE sb_type, int offset_x,
                                 int offset_y) {
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  const uint8_t *mask =
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      get_wedge_mask_inplace(wedge_index, wedge_sign, sb_type);
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  if (mask) mask -= (offset_x + offset_y * MASK_MASTER_STRIDE);
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  return mask;
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}

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static void init_wedge_master_masks() {
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  int i, j, s;
  const int w = MASK_MASTER_SIZE;
  const int h = MASK_MASTER_SIZE;
  const int stride = MASK_MASTER_STRIDE;
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  const int a[2] = { 2, 1 };
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  const double asqrt = sqrt(a[0] * a[0] + a[1] * a[1]);
  for (s = 0; s < NSMOOTHERS; s++) {
    for (i = 0; i < h; ++i)
      for (j = 0; j < w; ++j) {
        int x = (2 * j + 1 - w);
        int y = (2 * i + 1 - h);
        int m = (int)rint((a[0] * x + a[1] * y) / asqrt);
        wedge_mask_obl[s][1][WEDGE_OBLIQUE63][i * stride + j] =
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            wedge_mask_obl[s][1][WEDGE_OBLIQUE27][j * stride + i] =
                get_masked_weight(m, s);
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        wedge_mask_obl[s][1][WEDGE_OBLIQUE117][i * stride + w - 1 - j] =
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            wedge_mask_obl[s][1][WEDGE_OBLIQUE153][(w - 1 - j) * stride + i] =
                (1 << WEDGE_WEIGHT_BITS) - get_masked_weight(m, s);
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        wedge_mask_obl[s][0][WEDGE_OBLIQUE63][i * stride + j] =
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            wedge_mask_obl[s][0][WEDGE_OBLIQUE27][j * stride + i] =
                (1 << WEDGE_WEIGHT_BITS) - get_masked_weight(m, s);
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        wedge_mask_obl[s][0][WEDGE_OBLIQUE117][i * stride + w - 1 - j] =
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            wedge_mask_obl[s][0][WEDGE_OBLIQUE153][(w - 1 - j) * stride + i] =
                get_masked_weight(m, s);
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        wedge_mask_obl[s][1][WEDGE_VERTICAL][i * stride + j] =
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            wedge_mask_obl[s][1][WEDGE_HORIZONTAL][j * stride + i] =
                get_masked_weight(x, s);
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        wedge_mask_obl[s][0][WEDGE_VERTICAL][i * stride + j] =
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            wedge_mask_obl[s][0][WEDGE_HORIZONTAL][j * stride + i] =
                (1 << WEDGE_WEIGHT_BITS) - get_masked_weight(x, s);
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      }
  }
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}

// If the signs for the wedges for various blocksizes are
// inconsistent flip the sign flag. Do it only once for every
// wedge codebook.
static void init_wedge_signs() {
  BLOCK_SIZE sb_type;
  memset(wedge_signflip_lookup, 0, sizeof(wedge_signflip_lookup));
  for (sb_type = BLOCK_4X4; sb_type < BLOCK_SIZES; ++sb_type) {
    const int bw = 4 * num_4x4_blocks_wide_lookup[sb_type];
    const int bh = 4 * num_4x4_blocks_high_lookup[sb_type];
    const wedge_params_type wedge_params = wedge_params_lookup[sb_type];
    const int wbits = wedge_params.bits;
    const int wtypes = 1 << wbits;
    int i, w;
    if (wbits == 0) continue;
    for (w = 0; w < wtypes; ++w) {
      const uint8_t *mask = get_wedge_mask_inplace(w, 0, sb_type);
      int sum = 0;
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      for (i = 0; i < bw; ++i) sum += mask[i];
      for (i = 0; i < bh; ++i) sum += mask[i * MASK_MASTER_STRIDE];
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      sum = (sum + (bw + bh) / 2) / (bw + bh);
      wedge_params.signflip[w] = (sum < 32);
    }
  }
}

static void init_wedge_masks() {
  uint8_t *dst = wedge_mask_buf;
  BLOCK_SIZE bsize;
  memset(wedge_masks, 0, sizeof(wedge_masks));
  for (bsize = BLOCK_4X4; bsize < BLOCK_SIZES; ++bsize) {
    const uint8_t *mask;
    const int bw = 4 * num_4x4_blocks_wide_lookup[bsize];
    const int bh = 4 * num_4x4_blocks_high_lookup[bsize];
    const wedge_params_type *wedge_params = &wedge_params_lookup[bsize];
    const int wbits = wedge_params->bits;
    const int wtypes = 1 << wbits;
    int w;
    if (wbits == 0) continue;
    for (w = 0; w < wtypes; ++w) {
      mask = get_wedge_mask_inplace(w, 0, bsize);
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      aom_convolve_copy(mask, MASK_MASTER_STRIDE, dst, bw, NULL, 0, NULL, 0, bw,
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                        bh);
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      wedge_params->masks[0][w] = dst;
      dst += bw * bh;

      mask = get_wedge_mask_inplace(w, 1, bsize);
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      aom_convolve_copy(mask, MASK_MASTER_STRIDE, dst, bw, NULL, 0, NULL, 0, bw,
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                        bh);
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      wedge_params->masks[1][w] = dst;
      dst += bw * bh;
    }
    assert(sizeof(wedge_mask_buf) >= (size_t)(dst - wedge_mask_buf));
  }
}

// Equation of line: f(x, y) = a[0]*(x - a[2]*w/8) + a[1]*(y - a[3]*h/8) = 0
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void av1_init_wedge_masks() {
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  init_wedge_master_masks();
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  init_wedge_signs();
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  init_wedge_masks();
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}

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#if CONFIG_SUPERTX
static void build_masked_compound_wedge_extend(
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    uint8_t *dst, int dst_stride, const uint8_t *src0, int src0_stride,
    const uint8_t *src1, int src1_stride, int wedge_index, int wedge_sign,
    BLOCK_SIZE sb_type, int wedge_offset_x, int wedge_offset_y, int h, int w) {
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  const int subh = (2 << b_height_log2_lookup[sb_type]) == h;
  const int subw = (2 << b_width_log2_lookup[sb_type]) == w;
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  const uint8_t *mask = av1_get_soft_mask(wedge_index, wedge_sign, sb_type,
                                          wedge_offset_x, wedge_offset_y);
  aom_blend_a64_mask(dst, dst_stride, src0, src0_stride, src1, src1_stride,
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                     mask, MASK_MASTER_STRIDE, h, w, subh, subw);
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}

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#if CONFIG_AOM_HIGHBITDEPTH
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static void build_masked_compound_wedge_extend_highbd(
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    uint8_t *dst_8, int dst_stride, const uint8_t *src0_8, int src0_stride,
    const uint8_t *src1_8, int src1_stride, int wedge_index, int wedge_sign,
    BLOCK_SIZE sb_type, int wedge_offset_x, int wedge_offset_y, int h, int w,
    int bd) {
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  const int subh = (2 << b_height_log2_lookup[sb_type]) == h;
  const int subw = (2 << b_width_log2_lookup[sb_type]) == w;
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  const uint8_t *mask = av1_get_soft_mask(wedge_index, wedge_sign, sb_type,
                                          wedge_offset_x, wedge_offset_y);
  aom_highbd_blend_a64_mask(dst_8, dst_stride, src0_8, src0_stride, src1_8,
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                            src1_stride, mask, MASK_MASTER_STRIDE, h, w, subh,
                            subw, bd);
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}
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#endif  // CONFIG_AOM_HIGHBITDEPTH
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#endif  // CONFIG_SUPERTX
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static void build_masked_compound_wedge(uint8_t *dst, int dst_stride,
                                        const uint8_t *src0, int src0_stride,
                                        const uint8_t *src1, int src1_stride,
                                        int wedge_index, int wedge_sign,
                                        BLOCK_SIZE sb_type, int h, int w) {
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  // Derive subsampling from h and w passed in. May be refactored to
  // pass in subsampling factors directly.
  const int subh = (2 << b_height_log2_lookup[sb_type]) == h;
  const int subw = (2 << b_width_log2_lookup[sb_type]) == w;
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  const uint8_t *mask =
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      av1_get_contiguous_soft_mask(wedge_index, wedge_sign, sb_type);
  aom_blend_a64_mask(dst, dst_stride, src0, src0_stride, src1, src1_stride,
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                     mask, 4 * num_4x4_blocks_wide_lookup[sb_type], h, w, subh,
                     subw);
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}

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#if CONFIG_AOM_HIGHBITDEPTH
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static void build_masked_compound_wedge_highbd(
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    uint8_t *dst_8, int dst_stride, const uint8_t *src0_8, int src0_stride,
    const uint8_t *src1_8, int src1_stride, int wedge_index, int wedge_sign,
    BLOCK_SIZE sb_type, int h, int w, int bd) {
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  // Derive subsampling from h and w passed in. May be refactored to
  // pass in subsampling factors directly.
  const int subh = (2 << b_height_log2_lookup[sb_type]) == h;
  const int subw = (2 << b_width_log2_lookup[sb_type]) == w;
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  const uint8_t *mask =
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      av1_get_contiguous_soft_mask(wedge_index, wedge_sign, sb_type);
  aom_highbd_blend_a64_mask(
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      dst_8, dst_stride, src0_8, src0_stride, src1_8, src1_stride, mask,
      4 * num_4x4_blocks_wide_lookup[sb_type], h, w, subh, subw, bd);
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}
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#endif  // CONFIG_AOM_HIGHBITDEPTH
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void av1_make_masked_inter_predictor(const uint8_t *pre, int pre_stride,
                                     uint8_t *dst, int dst_stride,
                                     const int subpel_x, const int subpel_y,
                                     const struct scale_factors *sf, int w,
                                     int h,
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#if CONFIG_DUAL_FILTER
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                                     const INTERP_FILTER *interp_filter,
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#else
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                                     const INTERP_FILTER interp_filter,
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#endif
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                                     int xs, int ys,
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#if CONFIG_SUPERTX
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                                     int wedge_offset_x, int wedge_offset_y,
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#endif  // CONFIG_SUPERTX
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                                     const MACROBLOCKD *xd) {
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  const MODE_INFO *mi = xd->mi[0];
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// The prediction filter types used here should be those for
// the second reference block.
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#if CONFIG_DUAL_FILTER
  INTERP_FILTER tmp_ipf[4] = {
    interp_filter[2], interp_filter[3], interp_filter[2], interp_filter[3],
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  };
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#else
  INTERP_FILTER tmp_ipf = interp_filter;
#endif  // CONFIG_DUAL_FILTER
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#if CONFIG_AOM_HIGHBITDEPTH
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  DECLARE_ALIGNED(16, uint8_t, tmp_dst_[2 * MAX_SB_SQUARE]);
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  uint8_t *tmp_dst = (xd->cur_buf->flags & YV12_FLAG_HIGHBITDEPTH)
                         ? CONVERT_TO_BYTEPTR(tmp_dst_)
                         : tmp_dst_;
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  av1_make_inter_predictor(pre, pre_stride, tmp_dst, MAX_SB_SIZE, subpel_x,
                           subpel_y, sf, w, h, 0, tmp_ipf, xs, ys, xd);
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#if CONFIG_SUPERTX
  if (xd->cur_buf->flags & YV12_FLAG_HIGHBITDEPTH)
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    build_masked_compound_wedge_extend_highbd(
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        dst, dst_stride, dst, dst_stride, tmp_dst, MAX_SB_SIZE,
        mi->mbmi.interinter_wedge_index, mi->mbmi.interinter_wedge_sign,
        mi->mbmi.sb_type, wedge_offset_x, wedge_offset_y, h, w, xd->bd);
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  else
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    build_masked_compound_wedge_extend(
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        dst, dst_stride, dst, dst_stride, tmp_dst, MAX_SB_SIZE,
        mi->mbmi.interinter_wedge_index, mi->mbmi.interinter_wedge_sign,
        mi->mbmi.sb_type, wedge_offset_x, wedge_offset_y, h, w);
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#else
  if (xd->cur_buf->flags & YV12_FLAG_HIGHBITDEPTH)
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    build_masked_compound_wedge_highbd(
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        dst, dst_stride, dst, dst_stride, tmp_dst, MAX_SB_SIZE,
        mi->mbmi.interinter_wedge_index, mi->mbmi.interinter_wedge_sign,
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        mi->mbmi.sb_type, h, w, xd->bd);
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  else
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    build_masked_compound_wedge(dst, dst_stride, dst, dst_stride, tmp_dst,
                                MAX_SB_SIZE, mi->mbmi.interinter_wedge_index,
                                mi->mbmi.interinter_wedge_sign,
                                mi->mbmi.sb_type, h, w);
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#endif  // CONFIG_SUPERTX
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#else   // CONFIG_AOM_HIGHBITDEPTH
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  DECLARE_ALIGNED(16, uint8_t, tmp_dst[MAX_SB_SQUARE]);
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  av1_make_inter_predictor(pre, pre_stride, tmp_dst, MAX_SB_SIZE, subpel_x,
                           subpel_y, sf, w, h, 0, tmp_ipf, xs, ys, xd);
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#if CONFIG_SUPERTX
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  build_masked_compound_wedge_extend(
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      dst, dst_stride, dst, dst_stride, tmp_dst, MAX_SB_SIZE,
      mi->mbmi.interinter_wedge_index, mi->mbmi.interinter_wedge_sign,
      mi->mbmi.sb_type, wedge_offset_x, wedge_offset_y, h, w);
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#else
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  build_masked_compound_wedge(dst, dst_stride, dst, dst_stride, tmp_dst,
                              MAX_SB_SIZE, mi->mbmi.interinter_wedge_index,
                              mi->mbmi.interinter_wedge_sign, mi->mbmi.sb_type,
                              h, w);
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#endif  // CONFIG_SUPERTX
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#endif  // CONFIG_AOM_HIGHBITDEPTH
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}
#endif  // CONFIG_EXT_INTER
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#if CONFIG_AOM_HIGHBITDEPTH
void av1_highbd_build_inter_predictor(
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    const uint8_t *src, int src_stride, uint8_t *dst, int dst_stride,
    const MV *src_mv, const struct scale_factors *sf, int w, int h, int ref,
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#if CONFIG_DUAL_FILTER
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    const INTERP_FILTER *interp_filter,
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#else
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    const INTERP_FILTER interp_filter,
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#endif
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    enum mv_precision precision, int x, int y, int bd) {
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  const int is_q4 = precision == MV_PRECISION_Q4;
  const MV mv_q4 = { is_q4 ? src_mv->row : src_mv->row * 2,
                     is_q4 ? src_mv->col : src_mv->col * 2 };
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  MV32 mv = av1_scale_mv(&mv_q4, x, y, sf);
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  const int subpel_x = mv.col & SUBPEL_MASK;
  const int subpel_y = mv.row & SUBPEL_MASK;

  src += (mv.row >> SUBPEL_BITS) * src_stride + (mv.col >> SUBPEL_BITS);

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  highbd_inter_predictor(src, src_stride, dst, dst_stride, subpel_x, subpel_y,
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                         sf, w, h, ref, interp_filter, sf->x_step_q4,
                         sf->y_step_q4, bd);
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}
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#endif  // CONFIG_AOM_HIGHBITDEPTH
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void av1_build_inter_predictor(const uint8_t *src, int src_stride, uint8_t *dst,
                               int dst_stride, const MV *src_mv,
                               const struct scale_factors *sf, int w, int h,
                               int ref,
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#if CONFIG_DUAL_FILTER
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                               const INTERP_FILTER *interp_filter,
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#else
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                               const INTERP_FILTER interp_filter,
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#endif
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                               enum mv_precision precision, int x, int y) {
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  const int is_q4 = precision == MV_PRECISION_Q4;
  const MV mv_q4 = { is_q4 ? src_mv->row : src_mv->row * 2,
                     is_q4 ? src_mv->col : src_mv->col * 2 };
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  MV32 mv = av1_scale_mv(&mv_q4, x, y, sf);
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  const int subpel_x = mv.col & SUBPEL_MASK;
  const int subpel_y = mv.row & SUBPEL_MASK;

  src += (mv.row >> SUBPEL_BITS) * src_stride + (mv.col >> SUBPEL_BITS);

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  inter_predictor(src, src_stride, dst, dst_stride, subpel_x, subpel_y, sf, w,
                  h, ref, interp_filter, sf->x_step_q4, sf->y_step_q4);
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}

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void build_inter_predictors(MACROBLOCKD *xd, int plane,
#if CONFIG_OBMC
                            int mi_col_offset, int mi_row_offset,
#endif  // CONFIG_OBMC
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                            int block, int bw, int bh, int x, int y, int w,
                            int h,
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#if CONFIG_SUPERTX && CONFIG_EXT_INTER
                            int wedge_offset_x, int wedge_offset_y,
#endif  // CONFIG_SUPERTX && CONFIG_EXT_INTER
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                            int mi_x, int mi_y) {
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  struct macroblockd_plane *const pd = &xd->plane[plane];
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#if CONFIG_OBMC
  const MODE_INFO *mi = xd->mi[mi_col_offset + xd->mi_stride * mi_row_offset];
#else
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  const MODE_INFO *mi = xd->mi[0];
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#endif  // CONFIG_OBMC
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  const int is_compound = has_second_ref(&mi->mbmi);
  int ref;
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#if CONFIG_GLOBAL_MOTION
  Global_Motion_Params *gm[2];
  int is_global[2];
  for (ref = 0; ref < 1 + is_compound; ++ref) {
    gm[ref] = &xd->global_motion[mi->mbmi.ref_frame[ref]];
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    is_global[ref] =
        (get_y_mode(mi, block) == ZEROMV && get_gmtype(gm[ref]) > GLOBAL_ZERO);
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  }
  // TODO(sarahparker) remove these once gm works with all experiments
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  (void)gm;
  (void)is_global;
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#endif  // CONFIG_GLOBAL_MOTION
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// TODO(sarahparker) enable the use of DUAL_FILTER in warped motion functions
// in order to allow GLOBAL_MOTION and DUAL_FILTER to work together
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#if CONFIG_DUAL_FILTER
  if (mi->mbmi.sb_type < BLOCK_8X8 && plane > 0) {
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    // block size in log2
    const int b4_wl = b_width_log2_lookup[mi->mbmi.sb_type];
    const int b4_hl = b_height_log2_lookup[mi->mbmi.sb_type];
    const int b8_sl = b_width_log2_lookup[BLOCK_8X8];

    // block size
    const int b4_w = 1 << b4_wl;
    const int b4_h = 1 << b4_hl;
    const int b8_s = 1 << b8_sl;
    int idx, idy;

    const int x_base = x;
    const int y_base = y;

    // processing unit size
    const int x_step = w >> (b8_sl - b4_wl);
    const int y_step = h >> (b8_sl - b4_hl);

    for (idy = 0; idy < b8_s; idy += b4_h) {
      for (idx = 0; idx < b8_s; idx += b4_w) {
        const int chr_idx = (idy * 2) + idx;
        for (ref = 0; ref < 1 + is_compound; ++ref) {
          const struct scale_factors *const sf = &xd->block_refs[ref]->sf;
          struct buf_2d *const pre_buf = &pd->pre[ref];
          struct buf_2d *const dst_buf = &pd->dst;
          uint8_t *dst = dst_buf->buf;
          const MV mv = mi->bmi[chr_idx].as_mv[ref].as_mv;
          const MV mv_q4 = clamp_mv_to_umv_border_sb(
              xd, &mv, bw, bh, pd->subsampling_x, pd->subsampling_y);
          uint8_t *pre;
          MV32 scaled_mv;
          int xs, ys, subpel_x, subpel_y;
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          const int is_scaled = av1_is_scaled(sf);
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          x = x_base + idx * x_step;
          y = y_base + idy * y_step;

          dst += dst_buf->stride * y + x;

          if (is_scaled) {
            pre =
                pre_buf->buf + scaled_buffer_offset(x, y, pre_buf->stride, sf);
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            scaled_mv = av1_scale_mv(&mv_q4, mi_x + x, mi_y + y, sf);
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            xs = sf->x_step_q4;
            ys = sf->y_step_q4;
          } else {
            pre = pre_buf->buf + y * pre_buf->stride + x;
            scaled_mv.row = mv_q4.row;
            scaled_mv.col = mv_q4.col;
            xs = ys = 16;
          }

          subpel_x = scaled_mv.col & SUBPEL_MASK;
          subpel_y = scaled_mv.row & SUBPEL_MASK;
          pre += (scaled_mv.row >> SUBPEL_BITS) * pre_buf->stride +
                 (scaled_mv.col >> SUBPEL_BITS);
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#if CONFIG_EXT_INTER
          if (ref && is_interinter_wedge_used(mi->mbmi.sb_type) &&
              mi->mbmi.use_wedge_interinter)
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            av1_make_masked_inter_predictor(
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                pre, pre_buf->stride, dst, dst_buf->stride, subpel_x, subpel_y,
                sf, w, h, mi->mbmi.interp_filter, xs, ys,
#if CONFIG_SUPERTX
                wedge_offset_x, wedge_offset_y,
#endif  // CONFIG_SUPERTX
                xd);
          else
#endif  // CONFIG_EXT_INTER
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            av1_make_inter_predictor(pre, pre_buf->stride, dst, dst_buf->stride,
                                     subpel_x, subpel_y, sf, x_step, y_step,
                                     ref, mi->mbmi.interp_filter, xs, ys, xd);
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        }
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      }
    }
    return;
  }
#endif

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  for (ref = 0; ref < 1 + is_compound; ++ref) {
    const struct scale_factors *const sf = &xd->block_refs[ref]->sf;
    struct buf_2d *const pre_buf = &pd->pre[ref];
    struct buf_2d *const dst_buf = &pd->dst;
    uint8_t *const dst = dst_buf->buf + dst_buf->stride * y + x;
    const MV mv = mi->mbmi.sb_type < BLOCK_8X8
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                      ? average_split_mvs(pd, mi, ref, block)
                      : mi->mbmi.mv[ref].as_mv;
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    // TODO(jkoleszar): This clamping is done in the incorrect place for the
    // scaling case. It needs to be done on the scaled MV, not the pre-scaling
    // MV. Note however that it performs the subsampling aware scaling so
    // that the result is always q4.
    // mv_precision precision is MV_PRECISION_Q4.
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    const MV mv_q4 = clamp_mv_to_umv_border_sb(
        xd, &mv, bw, bh, pd->subsampling_x, pd->subsampling_y);
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    uint8_t *pre;
    MV32 scaled_mv;
    int xs, ys, subpel_x, subpel_y;
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    const int is_scaled = av1_is_scaled(sf);
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    if (is_scaled) {
      pre = pre_buf->buf + scaled_buffer_offset(x, y, pre_buf->stride, sf);
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      scaled_mv = av1_scale_mv(&mv_q4, mi_x + x, mi_y + y, sf);
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      xs = sf->x_step_q4;
      ys = sf->y_step_q4;
    } else {
      pre = pre_buf->buf + (y * pre_buf->stride + x);
      scaled_mv.row = mv_q4.row;
      scaled_mv.col = mv_q4.col;
      xs = ys = 16;
    }
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    subpel_x = scaled_mv.col & SUBPEL_MASK;
    subpel_y = scaled_mv.row & SUBPEL_MASK;
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    pre += (scaled_mv.row >> SUBPEL_BITS) * pre_buf->stride +
           (scaled_mv.col >> SUBPEL_BITS);
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#if CONFIG_EXT_INTER
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    if (ref && is_interinter_wedge_used(mi->mbmi.sb_type) &&
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        mi->mbmi.use_wedge_interinter)
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      av1_make_masked_inter_predictor(pre, pre_buf->stride, dst,
                                      dst_buf->stride, subpel_x, subpel_y, sf,
                                      w, h, mi->mbmi.interp_filter, xs, ys,
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#if CONFIG_SUPERTX
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                                      wedge_offset_x, wedge_offset_y,
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#endif  // CONFIG_SUPERTX
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                                      xd);
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    else
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#else  // CONFIG_EXT_INTER
#if CONFIG_GLOBAL_MOTION
    if (is_global[ref])
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      av1_warp_plane(&(gm[ref]->motion_params),
#if CONFIG_AOM_HIGHBITDEPTH
                     xd->cur_buf->flags & YV12_FLAG_HIGHBITDEPTH, xd->bd,
#endif  // CONFIG_AOM_HIGHBITDEPTH
                     pre_buf->buf0, pre_buf->width, pre_buf->height,
                     pre_buf->stride, dst, (mi_x >> pd->subsampling_x) + x,
                     (mi_y >> pd->subsampling_y) + y, w, h, dst_buf->stride,
                     pd->subsampling_x, pd->subsampling_y, xs, ys);
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    else
#endif  // CONFIG_GLOBAL_MOTION
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#endif  // CONFIG_EXT_INTER
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      av1_make_inter_predictor(pre, pre_buf->stride, dst, dst_buf->stride,
                               subpel_x, subpel_y, sf, w, h, ref,
                               mi->mbmi.interp_filter, xs, ys, xd);
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  }
}

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void av1_build_inter_predictor_sub8x8(MACROBLOCKD *xd, int plane, int i, int ir,
                                      int ic, int mi_row, int mi_col) {
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  struct macroblockd_plane *const pd = &xd->plane[plane];
  MODE_INFO *const mi = xd->mi[0];
  const BLOCK_SIZE plane_bsize = get_plane_block_size(mi->mbmi.sb_type, pd);
  const int width = 4 * num_4x4_blocks_wide_lookup[plane_bsize];
  const int height = 4 * num_4x4_blocks_high_lookup[plane_bsize];

  uint8_t *const dst = &pd->dst.buf[(ir * pd->dst.stride + ic) << 2];
  int ref;
  const int is_compound = has_second_ref(&mi->mbmi);

  for (ref = 0; ref < 1 + is_compound; ++ref) {
    const uint8_t *pre =
        &pd->pre[ref].buf[(ir * pd->pre[ref].stride + ic) << 2];
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#if CONFIG_AOM_HIGHBITDEPTH
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    if (xd->cur_buf->flags & YV12_FLAG_HIGHBITDEPTH) {
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      av1_highbd_build_inter_predictor(
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          pre, pd->pre[ref].stride, dst, pd->dst.stride,
          &mi->bmi[i].as_mv[ref].as_mv, &xd->block_refs[ref]->sf, width, height,
          ref, mi->mbmi.interp_filter, MV_PRECISION_Q3,
          mi_col * MI_SIZE + 4 * ic, mi_row * MI_SIZE + 4 * ir, xd->bd);
    } else {
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      av1_build_inter_predictor(
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          pre, pd->pre[ref].stride, dst, pd->dst.stride,
          &mi->bmi[i].as_mv[ref].as_mv, &xd->block_refs[ref]->sf, width, height,
          ref, mi->mbmi.interp_filter, MV_PRECISION_Q3,
          mi_col * MI_SIZE + 4 * ic, mi_row * MI_SIZE + 4 * ir);
    }
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#else
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    av1_build_inter_predictor(
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        pre, pd->pre[ref].stride, dst, pd->dst.stride,
        &mi->bmi[i].as_mv[ref].as_mv, &xd->block_refs[ref]->sf, width, height,
        ref, mi->mbmi.interp_filter, MV_PRECISION_Q3, mi_col * MI_SIZE + 4 * ic,
        mi_row * MI_SIZE + 4 * ir);
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#endif  // CONFIG_AOM_HIGHBITDEPTH
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  }
}

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static void build_inter_predictors_for_planes(MACROBLOCKD *xd, BLOCK_SIZE bsize,
                                              int mi_row, int mi_col,
                                              int plane_from, int plane_to) {
  int plane;
  const int mi_x = mi_col * MI_SIZE;
  const int mi_y = mi_row * MI_SIZE;
  for (plane = plane_from; plane <= plane_to; ++plane) {
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    const struct macroblockd_plane *pd = &xd->plane[plane];
    const int bw = 4 * num_4x4_blocks_wide_lookup[bsize] >> pd->subsampling_x;
    const int bh = 4 * num_4x4_blocks_high_lookup[bsize] >> pd->subsampling_y;
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    if (xd->mi[0]->mbmi.sb_type < BLOCK_8X8) {
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      const PARTITION_TYPE bp = bsize - xd->mi[0]->mbmi.sb_type;
      const int have_vsplit = bp != PARTITION_HORZ;
      const int have_hsplit = bp != PARTITION_VERT;
      const int num_4x4_w = 2 >> ((!have_vsplit) | pd->subsampling_x);
      const int num_4x4_h = 2 >> ((!have_hsplit) | pd->subsampling_y);
      const int pw = 8 >> (have_vsplit | pd->subsampling_x);
      const int ph = 8 >> (have_hsplit | pd->subsampling_y);
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      int x, y;
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      assert(bp != PARTITION_NONE && bp < PARTITION_TYPES);
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      assert(bsize == BLOCK_8X8);
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      assert(pw * num_4x4_w == bw && ph * num_4x4_h == bh);
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      for (y = 0; y < num_4x4_h; ++y)
        for (x = 0; x < num_4x4_w; ++x)
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          build_inter_predictors(xd, plane,
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#if CONFIG_OBMC
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                                 0, 0,
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#endif  // CONFIG_OBMC
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                                 y * 2 + x, bw, bh, 4 * x, 4 * y, pw, ph,
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#if CONFIG_SUPERTX && CONFIG_EXT_INTER
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                                 0, 0,
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#endif  // CONFIG_SUPERTX && CONFIG_EXT_INTER
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                                 mi_x, mi_y);
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    } else {
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      build_inter_predictors(xd, plane,
#if CONFIG_OBMC
                             0, 0,
#endif  // CONFIG_OBMC
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                             0, bw, bh, 0, 0, bw, bh,
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#if CONFIG_SUPERTX && CONFIG_EXT_INTER
                             0, 0,
#endif  // CONFIG_SUPERTX && CONFIG_EXT_INTER
                             mi_x, mi_y);
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    }
  }
}

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void av1_build_inter_predictors_sby(MACROBLOCKD *xd, int mi_row, int mi_col,
                                    BLOCK_SIZE bsize) {
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  build_inter_predictors_for_planes(xd, bsize, mi_row, mi_col, 0, 0);
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#if CONFIG_EXT_INTER
  if (is_interintra_pred(&xd->mi[0]->mbmi))
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    av1_build_interintra_predictors_sby(xd, xd->plane[0].dst.buf,
                                        xd->plane[0].dst.stride, bsize);
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#endif  // CONFIG_EXT_INTER
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}

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void av1_build_inter_predictors_sbp(MACROBLOCKD *xd, int mi_row, int mi_col,
                                    BLOCK_SIZE bsize, int plane) {
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  build_inter_predictors_for_planes(xd, bsize, mi_row, mi_col, plane, plane);
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#if CONFIG_EXT_INTER
  if (is_interintra_pred(&xd->mi[0]->mbmi)) {
    if (plane == 0) {
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      av1_build_interintra_predictors_sby(xd, xd->plane[0].dst.buf,
                                          xd->plane[0].dst.stride, bsize);
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    } else {
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      av1_build_interintra_predictors_sbc(xd, xd->plane[plane].dst.buf,
                                          xd->plane[plane].dst.stride, plane,
                                          bsize);
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    }
  }
#endif  // CONFIG_EXT_INTER
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}

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void av1_build_inter_predictors_sbuv(MACROBLOCKD *xd, int mi_row, int mi_col,
                                     BLOCK_SIZE bsize) {
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  build_inter_predictors_for_planes(xd, bsize, mi_row, mi_col, 1,
                                    MAX_MB_PLANE - 1);
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#if CONFIG_EXT_INTER
  if (is_interintra_pred(&xd->mi[0]->mbmi))
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    av1_build_interintra_predictors_sbuv(
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        xd, xd->plane[1].dst.buf, xd->plane[2].dst.buf, xd->plane[1].dst.stride,
        xd->plane[2].dst.stride, bsize);
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#endif  // CONFIG_EXT_INTER
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}

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void av1_build_inter_predictors_sb(MACROBLOCKD *xd, int mi_row, int mi_col,
                                   BLOCK_SIZE bsize) {
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  build_inter_predictors_for_planes(xd, bsize, mi_row, mi_col, 0,
                                    MAX_MB_PLANE - 1);
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#if CONFIG_EXT_INTER
  if (is_interintra_pred(&xd->mi[0]->mbmi))
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    av1_build_interintra_predictors(
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        xd, xd->plane[0].dst.buf, xd->plane[1].dst.buf, xd->plane[2].dst.buf,
        xd->plane[0].dst.stride, xd->plane[1].dst.stride,
        xd->plane[2].dst.stride, bsize);
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#endif  // CONFIG_EXT_INTER
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}

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void av1_setup_dst_planes(struct macroblockd_plane planes[MAX_MB_PLANE],
                          const YV12_BUFFER_CONFIG *src, int mi_row,
                          int mi_col) {
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  uint8_t *const buffers[MAX_MB_PLANE] = { src->y_buffer, src->u_buffer,
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                                           src->v_buffer };
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  const int widths[MAX_MB_PLANE] = { src->y_crop_width, src->uv_crop_width,
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                                     src->uv_crop_width };
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  const int heights[MAX_MB_PLANE] = { src->y_crop_height, src->uv_crop_height,
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                                      src->uv_crop_height };
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  const int strides[MAX_MB_PLANE] = { src->y_stride, src->uv_stride,
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                                      src->uv_stride };
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  int i;

  for (i = 0; i < MAX_MB_PLANE; ++i) {
    struct macroblockd_plane *const pd = &planes[i];
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    setup_pred_plane(&pd->dst, buffers[i], widths[i], heights[i], strides[i],
                     mi_row, mi_col, NULL, pd->subsampling_x,
                     pd->subsampling_y);
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  }
}

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void av1_setup_pre_planes(MACROBLOCKD *xd, int idx,
                          const YV12_BUFFER_CONFIG *src, int mi_row, int mi_col,
                          const struct scale_factors *sf) {
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  if (src != NULL) {
    int i;
    uint8_t *const buffers[MAX_MB_PLANE] = { src->y_buffer, src->u_buffer,
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                                             src->v_buffer };
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    const int widths[MAX_MB_PLANE] = { src->y_crop_width, src->uv_crop_width,
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                                       src->uv_crop_width };
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    const int heights[MAX_MB_PLANE] = { src->y_crop_height, src->uv_crop_height,
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                                        src->uv_crop_height };
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    const int strides[MAX_MB_PLANE] = { src->y_stride, src->uv_stride,
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                                        src->uv_stride };
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    for (i = 0; i < MAX_MB_PLANE; ++i) {
      struct macroblockd_plane *const pd = &xd->plane[i];
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      setup_pred_plane(&pd->pre[idx], buffers[i], widths[i], heights[i],
                       strides[i], mi_row, mi_col, sf, pd->subsampling_x,
                       pd->subsampling_y);
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    }
  }
}
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#if CONFIG_SUPERTX
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static const uint8_t mask_8[8] = { 64, 64, 62, 52, 12, 2, 0, 0 };
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static const uint8_t mask_16[16] = { 63, 62, 60, 58, 55, 50, 43, 36,
                                     28, 21, 14, 9,  6,  4,  2,  1 };
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static const uint8_t mask_32[32] = { 64, 64, 64, 64, 64, 64, 64, 64, 64, 64, 63,
                                     61, 57, 52, 45, 36, 28, 19, 12, 7,  3,  1,
                                     0,  0,  0,  0,  0,  0,  0,  0,  0,  0 };
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static const uint8_t mask_8_uv[8] = { 64, 64, 62, 52, 12, 2, 0, 0 };
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static const uint8_t mask_16_uv[16] = { 64, 64, 64, 64, 61, 53, 45, 36,
                                        28, 19, 11, 3,  0,  0,  0,  0 };
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static const uint8_t mask_32_uv[32] = { 64, 64, 64, 64, 64, 64, 64, 64,
                                        64, 64, 64, 64, 60, 54, 46, 36,
                                        28, 18, 10, 4,  0,  0,  0,  0,
                                        0,  0,  0,  0,  0,  0,  0,  0 };
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static const uint8_t *get_supertx_mask(int length, int plane) {
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  switch (length) {
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    case 8: return plane ? mask_8_uv : mask_8;
    case 16: return plane ? mask_16_uv : mask_16;
    case 32: return plane ? mask_32_uv : mask_32;
    default: assert(0);
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  }
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  return NULL;
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}

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void av1_build_masked_inter_predictor_complex(
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