decodeframe.c 84.8 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>
#include <stdlib.h>  // qsort()

#include "./vp10_rtcd.h"
#include "./vpx_dsp_rtcd.h"
#include "./vpx_scale_rtcd.h"

#include "vpx_dsp/bitreader_buffer.h"
#include "vpx_dsp/bitreader.h"
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#include "vpx_dsp/vpx_dsp_common.h"
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#include "vpx_mem/vpx_mem.h"
#include "vpx_ports/mem.h"
#include "vpx_ports/mem_ops.h"
#include "vpx_scale/vpx_scale.h"
#include "vpx_util/vpx_thread.h"

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#include "vp10/common/alloccommon.h"
#include "vp10/common/common.h"
#include "vp10/common/entropy.h"
#include "vp10/common/entropymode.h"
#include "vp10/common/idct.h"
#include "vp10/common/thread_common.h"
#include "vp10/common/pred_common.h"
#include "vp10/common/quant_common.h"
#include "vp10/common/reconintra.h"
#include "vp10/common/reconinter.h"
#include "vp10/common/seg_common.h"
#include "vp10/common/tile_common.h"

#include "vp10/decoder/decodeframe.h"
#include "vp10/decoder/detokenize.h"
#include "vp10/decoder/decodemv.h"
#include "vp10/decoder/decoder.h"
#include "vp10/decoder/dsubexp.h"
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#define MAX_VP9_HEADER_SIZE 80

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static int is_compound_reference_allowed(const VP10_COMMON *cm) {
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  int i;
  for (i = 1; i < REFS_PER_FRAME; ++i)
    if (cm->ref_frame_sign_bias[i + 1] != cm->ref_frame_sign_bias[1])
      return 1;

  return 0;
}

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static void setup_compound_reference_mode(VP10_COMMON *cm) {
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  if (cm->ref_frame_sign_bias[LAST_FRAME] ==
          cm->ref_frame_sign_bias[GOLDEN_FRAME]) {
    cm->comp_fixed_ref = ALTREF_FRAME;
    cm->comp_var_ref[0] = LAST_FRAME;
    cm->comp_var_ref[1] = GOLDEN_FRAME;
  } else if (cm->ref_frame_sign_bias[LAST_FRAME] ==
                 cm->ref_frame_sign_bias[ALTREF_FRAME]) {
    cm->comp_fixed_ref = GOLDEN_FRAME;
    cm->comp_var_ref[0] = LAST_FRAME;
    cm->comp_var_ref[1] = ALTREF_FRAME;
  } else {
    cm->comp_fixed_ref = LAST_FRAME;
    cm->comp_var_ref[0] = GOLDEN_FRAME;
    cm->comp_var_ref[1] = ALTREF_FRAME;
  }
}

static int read_is_valid(const uint8_t *start, size_t len, const uint8_t *end) {
  return len != 0 && len <= (size_t)(end - start);
}

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static int read_inv_signed_literal(struct vpx_read_bit_buffer *rb,
                                   int bits) {
#if CONFIG_MISC_FIXES
  const int nbits = sizeof(unsigned) * 8 - bits - 1;
  const unsigned value = vpx_rb_read_literal(rb, bits + 1) << nbits;
  return ((int) value) >> nbits;
#else
  return vpx_rb_read_signed_literal(rb, bits);
#endif
}


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static int decode_unsigned_max(struct vpx_read_bit_buffer *rb, int max) {
  const int data = vpx_rb_read_literal(rb, get_unsigned_bits(max));
  return data > max ? max : data;
}

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#if CONFIG_MISC_FIXES
static TX_MODE read_tx_mode(struct vpx_read_bit_buffer *rb) {
  return vpx_rb_read_bit(rb) ? TX_MODE_SELECT : vpx_rb_read_literal(rb, 2);
}
#else
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static TX_MODE read_tx_mode(vpx_reader *r) {
  TX_MODE tx_mode = vpx_read_literal(r, 2);
  if (tx_mode == ALLOW_32X32)
    tx_mode += vpx_read_bit(r);
  return tx_mode;
}
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#endif
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static void read_tx_mode_probs(struct tx_probs *tx_probs, vpx_reader *r) {
  int i, j;

  for (i = 0; i < TX_SIZE_CONTEXTS; ++i)
    for (j = 0; j < TX_SIZES - 3; ++j)
      vp10_diff_update_prob(r, &tx_probs->p8x8[i][j]);

  for (i = 0; i < TX_SIZE_CONTEXTS; ++i)
    for (j = 0; j < TX_SIZES - 2; ++j)
      vp10_diff_update_prob(r, &tx_probs->p16x16[i][j]);

  for (i = 0; i < TX_SIZE_CONTEXTS; ++i)
    for (j = 0; j < TX_SIZES - 1; ++j)
      vp10_diff_update_prob(r, &tx_probs->p32x32[i][j]);
}

static void read_switchable_interp_probs(FRAME_CONTEXT *fc, vpx_reader *r) {
  int i, j;
  for (j = 0; j < SWITCHABLE_FILTER_CONTEXTS; ++j)
    for (i = 0; i < SWITCHABLE_FILTERS - 1; ++i)
      vp10_diff_update_prob(r, &fc->switchable_interp_prob[j][i]);
}

static void read_inter_mode_probs(FRAME_CONTEXT *fc, vpx_reader *r) {
  int i, j;
  for (i = 0; i < INTER_MODE_CONTEXTS; ++i)
    for (j = 0; j < INTER_MODES - 1; ++j)
      vp10_diff_update_prob(r, &fc->inter_mode_probs[i][j]);
}

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#if CONFIG_MISC_FIXES
static REFERENCE_MODE read_frame_reference_mode(const VP10_COMMON *cm,
    struct vpx_read_bit_buffer *rb) {
  if (is_compound_reference_allowed(cm)) {
    return vpx_rb_read_bit(rb) ? REFERENCE_MODE_SELECT
                               : (vpx_rb_read_bit(rb) ? COMPOUND_REFERENCE
                                                      : SINGLE_REFERENCE);
  } else {
    return SINGLE_REFERENCE;
  }
}
#else
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static REFERENCE_MODE read_frame_reference_mode(const VP10_COMMON *cm,
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                                                vpx_reader *r) {
  if (is_compound_reference_allowed(cm)) {
    return vpx_read_bit(r) ? (vpx_read_bit(r) ? REFERENCE_MODE_SELECT
                                              : COMPOUND_REFERENCE)
                           : SINGLE_REFERENCE;
  } else {
    return SINGLE_REFERENCE;
  }
}
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#endif
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static void read_frame_reference_mode_probs(VP10_COMMON *cm, vpx_reader *r) {
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  FRAME_CONTEXT *const fc = cm->fc;
  int i;

  if (cm->reference_mode == REFERENCE_MODE_SELECT)
    for (i = 0; i < COMP_INTER_CONTEXTS; ++i)
      vp10_diff_update_prob(r, &fc->comp_inter_prob[i]);

  if (cm->reference_mode != COMPOUND_REFERENCE)
    for (i = 0; i < REF_CONTEXTS; ++i) {
      vp10_diff_update_prob(r, &fc->single_ref_prob[i][0]);
      vp10_diff_update_prob(r, &fc->single_ref_prob[i][1]);
    }

  if (cm->reference_mode != SINGLE_REFERENCE)
    for (i = 0; i < REF_CONTEXTS; ++i)
      vp10_diff_update_prob(r, &fc->comp_ref_prob[i]);
}

static void update_mv_probs(vpx_prob *p, int n, vpx_reader *r) {
  int i;
  for (i = 0; i < n; ++i)
    if (vpx_read(r, MV_UPDATE_PROB))
      p[i] = (vpx_read_literal(r, 7) << 1) | 1;
}

static void read_mv_probs(nmv_context *ctx, int allow_hp, vpx_reader *r) {
  int i, j;

  update_mv_probs(ctx->joints, MV_JOINTS - 1, r);

  for (i = 0; i < 2; ++i) {
    nmv_component *const comp_ctx = &ctx->comps[i];
    update_mv_probs(&comp_ctx->sign, 1, r);
    update_mv_probs(comp_ctx->classes, MV_CLASSES - 1, r);
    update_mv_probs(comp_ctx->class0, CLASS0_SIZE - 1, r);
    update_mv_probs(comp_ctx->bits, MV_OFFSET_BITS, r);
  }

  for (i = 0; i < 2; ++i) {
    nmv_component *const comp_ctx = &ctx->comps[i];
    for (j = 0; j < CLASS0_SIZE; ++j)
      update_mv_probs(comp_ctx->class0_fp[j], MV_FP_SIZE - 1, r);
    update_mv_probs(comp_ctx->fp, 3, r);
  }

  if (allow_hp) {
    for (i = 0; i < 2; ++i) {
      nmv_component *const comp_ctx = &ctx->comps[i];
      update_mv_probs(&comp_ctx->class0_hp, 1, r);
      update_mv_probs(&comp_ctx->hp, 1, r);
    }
  }
}

static void inverse_transform_block_inter(MACROBLOCKD* xd, int plane,
                                          const TX_SIZE tx_size,
                                          uint8_t *dst, int stride,
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                                          int eob, int block) {
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  struct macroblockd_plane *const pd = &xd->plane[plane];
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  TX_TYPE tx_type = get_tx_type(pd->plane_type, xd, block, tx_size);
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  if (eob > 0) {
    tran_low_t *const dqcoeff = pd->dqcoeff;
#if CONFIG_VP9_HIGHBITDEPTH
    if (xd->cur_buf->flags & YV12_FLAG_HIGHBITDEPTH) {
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      switch (tx_size) {
        case TX_4X4:
          vp10_highbd_inv_txfm_add_4x4(dqcoeff, dst, stride, eob, xd->bd,
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                                       tx_type, xd->lossless);
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          break;
        case TX_8X8:
          vp10_highbd_inv_txfm_add_8x8(dqcoeff, dst, stride, eob, xd->bd,
                                       tx_type);
          break;
        case TX_16X16:
          vp10_highbd_inv_txfm_add_16x16(dqcoeff, dst, stride, eob, xd->bd,
                                         tx_type);
          break;
        case TX_32X32:
          vp10_highbd_inv_txfm_add_32x32(dqcoeff, dst, stride, eob, xd->bd,
                                         tx_type);
          break;
        default:
          assert(0 && "Invalid transform size");
          return;
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      }
    } else {
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#endif  // CONFIG_VP9_HIGHBITDEPTH
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      switch (tx_size) {
        case TX_4X4:
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          vp10_inv_txfm_add_4x4(dqcoeff, dst, stride, eob, tx_type,
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                                xd->lossless);
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          break;
        case TX_8X8:
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          vp10_inv_txfm_add_8x8(dqcoeff, dst, stride, eob, tx_type);
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          break;
        case TX_16X16:
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          vp10_inv_txfm_add_16x16(dqcoeff, dst, stride, eob, tx_type);
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          break;
        case TX_32X32:
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          vp10_inv_txfm_add_32x32(dqcoeff, dst, stride, eob, tx_type);
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          break;
        default:
          assert(0 && "Invalid transform size");
          return;
      }
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#if CONFIG_VP9_HIGHBITDEPTH
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    }
#endif  // CONFIG_VP9_HIGHBITDEPTH

    if (eob == 1) {
      dqcoeff[0] = 0;
    } else {
      if (tx_size <= TX_16X16 && eob <= 10)
        memset(dqcoeff, 0, 4 * (4 << tx_size) * sizeof(dqcoeff[0]));
      else if (tx_size == TX_32X32 && eob <= 34)
        memset(dqcoeff, 0, 256 * sizeof(dqcoeff[0]));
      else
        memset(dqcoeff, 0, (16 << (tx_size << 1)) * sizeof(dqcoeff[0]));
    }
  }
}

static void inverse_transform_block_intra(MACROBLOCKD* xd, int plane,
                                          const TX_TYPE tx_type,
                                          const TX_SIZE tx_size,
                                          uint8_t *dst, int stride,
                                          int eob) {
  struct macroblockd_plane *const pd = &xd->plane[plane];
  if (eob > 0) {
    tran_low_t *const dqcoeff = pd->dqcoeff;
#if CONFIG_VP9_HIGHBITDEPTH
    if (xd->cur_buf->flags & YV12_FLAG_HIGHBITDEPTH) {
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      switch (tx_size) {
        case TX_4X4:
          vp10_highbd_inv_txfm_add_4x4(dqcoeff, dst, stride, eob, xd->bd,
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                                       tx_type, xd->lossless);
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          break;
        case TX_8X8:
          vp10_highbd_inv_txfm_add_8x8(dqcoeff, dst, stride, eob, xd->bd,
                                       tx_type);
          break;
        case TX_16X16:
          vp10_highbd_inv_txfm_add_16x16(dqcoeff, dst, stride, eob, xd->bd,
                                         tx_type);
          break;
        case TX_32X32:
          vp10_highbd_inv_txfm_add_32x32(dqcoeff, dst, stride, eob, xd->bd,
                                         tx_type);
          break;
        default:
          assert(0 && "Invalid transform size");
          return;
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      }
    } else {
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#endif  // CONFIG_VP9_HIGHBITDEPTH
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      switch (tx_size) {
        case TX_4X4:
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          vp10_inv_txfm_add_4x4(dqcoeff, dst, stride, eob, tx_type,
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                                xd->lossless);
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          break;
        case TX_8X8:
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          vp10_inv_txfm_add_8x8(dqcoeff, dst, stride, eob, tx_type);
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          break;
        case TX_16X16:
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          vp10_inv_txfm_add_16x16(dqcoeff, dst, stride, eob, tx_type);
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          break;
        case TX_32X32:
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          vp10_inv_txfm_add_32x32(dqcoeff, dst, stride, eob, tx_type);
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          break;
        default:
          assert(0 && "Invalid transform size");
          return;
      }
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#if CONFIG_VP9_HIGHBITDEPTH
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    }
#endif  // CONFIG_VP9_HIGHBITDEPTH

    if (eob == 1) {
      dqcoeff[0] = 0;
    } else {
      if (tx_type == DCT_DCT && tx_size <= TX_16X16 && eob <= 10)
        memset(dqcoeff, 0, 4 * (4 << tx_size) * sizeof(dqcoeff[0]));
      else if (tx_size == TX_32X32 && eob <= 34)
        memset(dqcoeff, 0, 256 * sizeof(dqcoeff[0]));
      else
        memset(dqcoeff, 0, (16 << (tx_size << 1)) * sizeof(dqcoeff[0]));
    }
  }
}

static void predict_and_reconstruct_intra_block(MACROBLOCKD *const xd,
                                                vpx_reader *r,
                                                MB_MODE_INFO *const mbmi,
                                                int plane,
                                                int row, int col,
                                                TX_SIZE tx_size) {
  struct macroblockd_plane *const pd = &xd->plane[plane];
  PREDICTION_MODE mode = (plane == 0) ? mbmi->mode : mbmi->uv_mode;
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  PLANE_TYPE plane_type = (plane == 0) ? PLANE_TYPE_Y : PLANE_TYPE_UV;
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  uint8_t *dst;
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  int block_idx = (row << 1) + col;
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  dst = &pd->dst.buf[4 * row * pd->dst.stride + 4 * col];

  if (mbmi->sb_type < BLOCK_8X8)
    if (plane == 0)
      mode = xd->mi[0]->bmi[(row << 1) + col].as_mode;

  vp10_predict_intra_block(xd, pd->n4_wl, tx_size, mode,
                          dst, pd->dst.stride, dst, pd->dst.stride,
                          col, row, plane);

  if (!mbmi->skip) {
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    TX_TYPE tx_type = get_tx_type(plane_type, xd, block_idx, tx_size);
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    const scan_order *sc = get_scan(tx_size, tx_type, 0);
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    const int eob = vp10_decode_block_tokens(xd, plane, sc, col, row, tx_size,
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                                             r, mbmi->segment_id);
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    inverse_transform_block_intra(xd, plane, tx_type, tx_size,
                                  dst, pd->dst.stride, eob);
  }
}

static int reconstruct_inter_block(MACROBLOCKD *const xd, vpx_reader *r,
                                   MB_MODE_INFO *const mbmi, int plane,
                                   int row, int col, TX_SIZE tx_size) {
  struct macroblockd_plane *const pd = &xd->plane[plane];
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  PLANE_TYPE plane_type = (plane == 0) ? PLANE_TYPE_Y : PLANE_TYPE_UV;
  int block_idx = (row << 1) + col;
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  TX_TYPE tx_type = get_tx_type(plane_type, xd, block_idx, tx_size);
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  const scan_order *sc = get_scan(tx_size, tx_type, 1);
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  const int eob = vp10_decode_block_tokens(xd, plane, sc, col, row, tx_size, r,
                                          mbmi->segment_id);

  inverse_transform_block_inter(xd, plane, tx_size,
                            &pd->dst.buf[4 * row * pd->dst.stride + 4 * col],
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                            pd->dst.stride, eob, block_idx);
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  return eob;
}

static void build_mc_border(const uint8_t *src, int src_stride,
                            uint8_t *dst, int dst_stride,
                            int x, int y, int b_w, int b_h, int w, int h) {
  // Get a pointer to the start of the real data for this row.
  const uint8_t *ref_row = src - x - y * src_stride;

  if (y >= h)
    ref_row += (h - 1) * src_stride;
  else if (y > 0)
    ref_row += y * src_stride;

  do {
    int right = 0, copy;
    int left = x < 0 ? -x : 0;

    if (left > b_w)
      left = b_w;

    if (x + b_w > w)
      right = x + b_w - w;

    if (right > b_w)
      right = b_w;

    copy = b_w - left - right;

    if (left)
      memset(dst, ref_row[0], left);

    if (copy)
      memcpy(dst + left, ref_row + x + left, copy);

    if (right)
      memset(dst + left + copy, ref_row[w - 1], right);

    dst += dst_stride;
    ++y;

    if (y > 0 && y < h)
      ref_row += src_stride;
  } while (--b_h);
}

#if CONFIG_VP9_HIGHBITDEPTH
static void high_build_mc_border(const uint8_t *src8, int src_stride,
                                 uint16_t *dst, int dst_stride,
                                 int x, int y, int b_w, int b_h,
                                 int w, int h) {
  // Get a pointer to the start of the real data for this row.
  const uint16_t *src = CONVERT_TO_SHORTPTR(src8);
  const uint16_t *ref_row = src - x - y * src_stride;

  if (y >= h)
    ref_row += (h - 1) * src_stride;
  else if (y > 0)
    ref_row += y * src_stride;

  do {
    int right = 0, copy;
    int left = x < 0 ? -x : 0;

    if (left > b_w)
      left = b_w;

    if (x + b_w > w)
      right = x + b_w - w;

    if (right > b_w)
      right = b_w;

    copy = b_w - left - right;

    if (left)
      vpx_memset16(dst, ref_row[0], left);

    if (copy)
      memcpy(dst + left, ref_row + x + left, copy * sizeof(uint16_t));

    if (right)
      vpx_memset16(dst + left + copy, ref_row[w - 1], right);

    dst += dst_stride;
    ++y;

    if (y > 0 && y < h)
      ref_row += src_stride;
  } while (--b_h);
}
#endif  // CONFIG_VP9_HIGHBITDEPTH

#if CONFIG_VP9_HIGHBITDEPTH
static void extend_and_predict(const uint8_t *buf_ptr1, int pre_buf_stride,
                               int x0, int y0, int b_w, int b_h,
                               int frame_width, int frame_height,
                               int border_offset,
                               uint8_t *const dst, int dst_buf_stride,
                               int subpel_x, int subpel_y,
                               const InterpKernel *kernel,
                               const struct scale_factors *sf,
                               MACROBLOCKD *xd,
                               int w, int h, int ref, int xs, int ys) {
  DECLARE_ALIGNED(16, uint16_t, mc_buf_high[80 * 2 * 80 * 2]);
  const uint8_t *buf_ptr;

  if (xd->cur_buf->flags & YV12_FLAG_HIGHBITDEPTH) {
    high_build_mc_border(buf_ptr1, pre_buf_stride, mc_buf_high, b_w,
                         x0, y0, b_w, b_h, frame_width, frame_height);
    buf_ptr = CONVERT_TO_BYTEPTR(mc_buf_high) + border_offset;
  } else {
    build_mc_border(buf_ptr1, pre_buf_stride, (uint8_t *)mc_buf_high, b_w,
                    x0, y0, b_w, b_h, frame_width, frame_height);
    buf_ptr = ((uint8_t *)mc_buf_high) + border_offset;
  }

  if (xd->cur_buf->flags & YV12_FLAG_HIGHBITDEPTH) {
    high_inter_predictor(buf_ptr, b_w, dst, dst_buf_stride, subpel_x,
                         subpel_y, sf, w, h, ref, kernel, xs, ys, xd->bd);
  } else {
    inter_predictor(buf_ptr, b_w, dst, dst_buf_stride, subpel_x,
                    subpel_y, sf, w, h, ref, kernel, xs, ys);
  }
}
#else
static void extend_and_predict(const uint8_t *buf_ptr1, int pre_buf_stride,
                               int x0, int y0, int b_w, int b_h,
                               int frame_width, int frame_height,
                               int border_offset,
                               uint8_t *const dst, int dst_buf_stride,
                               int subpel_x, int subpel_y,
                               const InterpKernel *kernel,
                               const struct scale_factors *sf,
                               int w, int h, int ref, int xs, int ys) {
  DECLARE_ALIGNED(16, uint8_t, mc_buf[80 * 2 * 80 * 2]);
  const uint8_t *buf_ptr;

  build_mc_border(buf_ptr1, pre_buf_stride, mc_buf, b_w,
                  x0, y0, b_w, b_h, frame_width, frame_height);
  buf_ptr = mc_buf + border_offset;

  inter_predictor(buf_ptr, b_w, dst, dst_buf_stride, subpel_x,
                  subpel_y, sf, w, h, ref, kernel, xs, ys);
}
#endif  // CONFIG_VP9_HIGHBITDEPTH

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static void dec_build_inter_predictors(VP10Decoder *const pbi, MACROBLOCKD *xd,
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                                       int plane, int bw, int bh, int x,
                                       int y, int w, int h, int mi_x, int mi_y,
                                       const InterpKernel *kernel,
                                       const struct scale_factors *sf,
                                       struct buf_2d *pre_buf,
                                       struct buf_2d *dst_buf, const MV* mv,
                                       RefCntBuffer *ref_frame_buf,
                                       int is_scaled, int ref) {
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  VP10_COMMON *const cm = &pbi->common;
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  struct macroblockd_plane *const pd = &xd->plane[plane];
  uint8_t *const dst = dst_buf->buf + dst_buf->stride * y + x;
  MV32 scaled_mv;
  int xs, ys, x0, y0, x0_16, y0_16, frame_width, frame_height,
      buf_stride, subpel_x, subpel_y;
  uint8_t *ref_frame, *buf_ptr;

  // Get reference frame pointer, width and height.
  if (plane == 0) {
    frame_width = ref_frame_buf->buf.y_crop_width;
    frame_height = ref_frame_buf->buf.y_crop_height;
    ref_frame = ref_frame_buf->buf.y_buffer;
  } else {
    frame_width = ref_frame_buf->buf.uv_crop_width;
    frame_height = ref_frame_buf->buf.uv_crop_height;
    ref_frame = plane == 1 ? ref_frame_buf->buf.u_buffer
                         : ref_frame_buf->buf.v_buffer;
  }

  if (is_scaled) {
    const MV mv_q4 = clamp_mv_to_umv_border_sb(xd, mv, bw, bh,
                                               pd->subsampling_x,
                                               pd->subsampling_y);
    // Co-ordinate of containing block to pixel precision.
    int x_start = (-xd->mb_to_left_edge >> (3 + pd->subsampling_x));
    int y_start = (-xd->mb_to_top_edge >> (3 + pd->subsampling_y));

    // Co-ordinate of the block to 1/16th pixel precision.
    x0_16 = (x_start + x) << SUBPEL_BITS;
    y0_16 = (y_start + y) << SUBPEL_BITS;

    // Co-ordinate of current block in reference frame
    // to 1/16th pixel precision.
    x0_16 = sf->scale_value_x(x0_16, sf);
    y0_16 = sf->scale_value_y(y0_16, sf);

    // Map the top left corner of the block into the reference frame.
    x0 = sf->scale_value_x(x_start + x, sf);
    y0 = sf->scale_value_y(y_start + y, sf);

    // Scale the MV and incorporate the sub-pixel offset of the block
    // in the reference frame.
    scaled_mv = vp10_scale_mv(&mv_q4, mi_x + x, mi_y + y, sf);
    xs = sf->x_step_q4;
    ys = sf->y_step_q4;
  } else {
    // Co-ordinate of containing block to pixel precision.
    x0 = (-xd->mb_to_left_edge >> (3 + pd->subsampling_x)) + x;
    y0 = (-xd->mb_to_top_edge >> (3 + pd->subsampling_y)) + y;

    // Co-ordinate of the block to 1/16th pixel precision.
    x0_16 = x0 << SUBPEL_BITS;
    y0_16 = y0 << SUBPEL_BITS;

    scaled_mv.row = mv->row * (1 << (1 - pd->subsampling_y));
    scaled_mv.col = mv->col * (1 << (1 - pd->subsampling_x));
    xs = ys = 16;
  }
  subpel_x = scaled_mv.col & SUBPEL_MASK;
  subpel_y = scaled_mv.row & SUBPEL_MASK;

  // Calculate the top left corner of the best matching block in the
  // reference frame.
  x0 += scaled_mv.col >> SUBPEL_BITS;
  y0 += scaled_mv.row >> SUBPEL_BITS;
  x0_16 += scaled_mv.col;
  y0_16 += scaled_mv.row;

  // Get reference block pointer.
  buf_ptr = ref_frame + y0 * pre_buf->stride + x0;
  buf_stride = pre_buf->stride;

  // Do border extension if there is motion or the
  // width/height is not a multiple of 8 pixels.
  if (is_scaled || scaled_mv.col || scaled_mv.row ||
      (frame_width & 0x7) || (frame_height & 0x7)) {
    int y1 = ((y0_16 + (h - 1) * ys) >> SUBPEL_BITS) + 1;

    // Get reference block bottom right horizontal coordinate.
    int x1 = ((x0_16 + (w - 1) * xs) >> SUBPEL_BITS) + 1;
    int x_pad = 0, y_pad = 0;

    if (subpel_x || (sf->x_step_q4 != SUBPEL_SHIFTS)) {
      x0 -= VP9_INTERP_EXTEND - 1;
      x1 += VP9_INTERP_EXTEND;
      x_pad = 1;
    }

    if (subpel_y || (sf->y_step_q4 != SUBPEL_SHIFTS)) {
      y0 -= VP9_INTERP_EXTEND - 1;
      y1 += VP9_INTERP_EXTEND;
      y_pad = 1;
    }

    // Wait until reference block is ready. Pad 7 more pixels as last 7
    // pixels of each superblock row can be changed by next superblock row.
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    if (cm->frame_parallel_decode)
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      vp10_frameworker_wait(pbi->frame_worker_owner, ref_frame_buf,
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                            VPXMAX(0, (y1 + 7)) << (plane == 0 ? 0 : 1));
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    // Skip border extension if block is inside the frame.
    if (x0 < 0 || x0 > frame_width - 1 || x1 < 0 || x1 > frame_width - 1 ||
        y0 < 0 || y0 > frame_height - 1 || y1 < 0 || y1 > frame_height - 1) {
      // Extend the border.
      const uint8_t *const buf_ptr1 = ref_frame + y0 * buf_stride + x0;
      const int b_w = x1 - x0 + 1;
      const int b_h = y1 - y0 + 1;
      const int border_offset = y_pad * 3 * b_w + x_pad * 3;

      extend_and_predict(buf_ptr1, buf_stride, x0, y0, b_w, b_h,
                         frame_width, frame_height, border_offset,
                         dst, dst_buf->stride,
                         subpel_x, subpel_y,
                         kernel, sf,
#if CONFIG_VP9_HIGHBITDEPTH
                         xd,
#endif
                         w, h, ref, xs, ys);
      return;
    }
  } else {
    // Wait until reference block is ready. Pad 7 more pixels as last 7
    // pixels of each superblock row can be changed by next superblock row.
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     if (cm->frame_parallel_decode) {
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       const int y1 = (y0_16 + (h - 1) * ys) >> SUBPEL_BITS;
       vp10_frameworker_wait(pbi->frame_worker_owner, ref_frame_buf,
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                             VPXMAX(0, (y1 + 7)) << (plane == 0 ? 0 : 1));
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     }
  }
#if CONFIG_VP9_HIGHBITDEPTH
  if (xd->cur_buf->flags & YV12_FLAG_HIGHBITDEPTH) {
    high_inter_predictor(buf_ptr, buf_stride, dst, dst_buf->stride, subpel_x,
                         subpel_y, sf, w, h, ref, kernel, xs, ys, xd->bd);
  } else {
    inter_predictor(buf_ptr, buf_stride, dst, dst_buf->stride, subpel_x,
                    subpel_y, sf, w, h, ref, kernel, xs, ys);
  }
#else
  inter_predictor(buf_ptr, buf_stride, dst, dst_buf->stride, subpel_x,
                  subpel_y, sf, w, h, ref, kernel, xs, ys);
#endif  // CONFIG_VP9_HIGHBITDEPTH
}

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static void dec_build_inter_predictors_sb(VP10Decoder *const pbi,
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                                          MACROBLOCKD *xd,
                                          int mi_row, int mi_col) {
  int plane;
  const int mi_x = mi_col * MI_SIZE;
  const int mi_y = mi_row * MI_SIZE;
  const MODE_INFO *mi = xd->mi[0];
  const InterpKernel *kernel = vp10_filter_kernels[mi->mbmi.interp_filter];
  const BLOCK_SIZE sb_type = mi->mbmi.sb_type;
  const int is_compound = has_second_ref(&mi->mbmi);

  for (plane = 0; plane < MAX_MB_PLANE; ++plane) {
    struct macroblockd_plane *const pd = &xd->plane[plane];
    struct buf_2d *const dst_buf = &pd->dst;
    const int num_4x4_w = pd->n4_w;
    const int num_4x4_h = pd->n4_h;

    const int n4w_x4 = 4 * num_4x4_w;
    const int n4h_x4 = 4 * num_4x4_h;
    int ref;

    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];
      const int idx = xd->block_refs[ref]->idx;
      BufferPool *const pool = pbi->common.buffer_pool;
      RefCntBuffer *const ref_frame_buf = &pool->frame_bufs[idx];
      const int is_scaled = vp10_is_scaled(sf);

      if (sb_type < BLOCK_8X8) {
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        const PARTITION_TYPE bp = BLOCK_8X8 - 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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        for (y = 0; y < num_4x4_h; ++y) {
          for (x = 0; x < num_4x4_w; ++x) {
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            const MV mv = average_split_mvs(pd, mi, ref, y * 2 + x);
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            dec_build_inter_predictors(pbi, xd, plane, n4w_x4, n4h_x4,
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                                       4 * x, 4 * y, pw, ph, mi_x, mi_y, kernel,
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                                       sf, pre_buf, dst_buf, &mv,
                                       ref_frame_buf, is_scaled, ref);
          }
        }
      } else {
        const MV mv = mi->mbmi.mv[ref].as_mv;
        dec_build_inter_predictors(pbi, xd, plane, n4w_x4, n4h_x4,
                                   0, 0, n4w_x4, n4h_x4, mi_x, mi_y, kernel,
                                   sf, pre_buf, dst_buf, &mv, ref_frame_buf,
                                   is_scaled, ref);
      }
    }
  }
}

static INLINE TX_SIZE dec_get_uv_tx_size(const MB_MODE_INFO *mbmi,
                                         int n4_wl, int n4_hl) {
  // get minimum log2 num4x4s dimension
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  const int x = VPXMIN(n4_wl, n4_hl);
  return VPXMIN(mbmi->tx_size,  x);
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}

static INLINE void dec_reset_skip_context(MACROBLOCKD *xd) {
  int i;
  for (i = 0; i < MAX_MB_PLANE; i++) {
    struct macroblockd_plane *const pd = &xd->plane[i];
    memset(pd->above_context, 0, sizeof(ENTROPY_CONTEXT) * pd->n4_w);
    memset(pd->left_context, 0, sizeof(ENTROPY_CONTEXT) * pd->n4_h);
  }
}

static void set_plane_n4(MACROBLOCKD *const xd, int bw, int bh, int bwl,
                         int bhl) {
  int i;
  for (i = 0; i < MAX_MB_PLANE; i++) {
    xd->plane[i].n4_w = (bw << 1) >> xd->plane[i].subsampling_x;
    xd->plane[i].n4_h = (bh << 1) >> xd->plane[i].subsampling_y;
    xd->plane[i].n4_wl = bwl - xd->plane[i].subsampling_x;
    xd->plane[i].n4_hl = bhl - xd->plane[i].subsampling_y;
  }
}

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static MB_MODE_INFO *set_offsets(VP10_COMMON *const cm, MACROBLOCKD *const xd,
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                                 BLOCK_SIZE bsize, int mi_row, int mi_col,
                                 int bw, int bh, int x_mis, int y_mis,
                                 int bwl, int bhl) {
  const int offset = mi_row * cm->mi_stride + mi_col;
  int x, y;
  const TileInfo *const tile = &xd->tile;

  xd->mi = cm->mi_grid_visible + offset;
  xd->mi[0] = &cm->mi[offset];
  // TODO(slavarnway): Generate sb_type based on bwl and bhl, instead of
  // passing bsize from decode_partition().
  xd->mi[0]->mbmi.sb_type = bsize;
  for (y = 0; y < y_mis; ++y)
    for (x = !y; x < x_mis; ++x) {
      xd->mi[y * cm->mi_stride + x] = xd->mi[0];
    }

  set_plane_n4(xd, bw, bh, bwl, bhl);

  set_skip_context(xd, mi_row, mi_col);

  // Distance of Mb to the various image edges. These are specified to 8th pel
  // as they are always compared to values that are in 1/8th pel units
  set_mi_row_col(xd, tile, mi_row, bh, mi_col, bw, cm->mi_rows, cm->mi_cols);

  vp10_setup_dst_planes(xd->plane, get_frame_new_buffer(cm), mi_row, mi_col);
  return &xd->mi[0]->mbmi;
}

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static void decode_block(VP10Decoder *const pbi, MACROBLOCKD *const xd,
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                         int mi_row, int mi_col,
                         vpx_reader *r, BLOCK_SIZE bsize,
                         int bwl, int bhl) {
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  VP10_COMMON *const cm = &pbi->common;
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  const int less8x8 = bsize < BLOCK_8X8;
  const int bw = 1 << (bwl - 1);
  const int bh = 1 << (bhl - 1);
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  const int x_mis = VPXMIN(bw, cm->mi_cols - mi_col);
  const int y_mis = VPXMIN(bh, cm->mi_rows - mi_row);
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  MB_MODE_INFO *mbmi = set_offsets(cm, xd, bsize, mi_row, mi_col,
                                   bw, bh, x_mis, y_mis, bwl, bhl);

  if (bsize >= BLOCK_8X8 && (cm->subsampling_x || cm->subsampling_y)) {
    const BLOCK_SIZE uv_subsize =
        ss_size_lookup[bsize][cm->subsampling_x][cm->subsampling_y];
    if (uv_subsize == BLOCK_INVALID)
      vpx_internal_error(xd->error_info,
                         VPX_CODEC_CORRUPT_FRAME, "Invalid block size.");
  }

  vp10_read_mode_info(pbi, xd, mi_row, mi_col, r, x_mis, y_mis);

  if (mbmi->skip) {
    dec_reset_skip_context(xd);
  }

  if (!is_inter_block(mbmi)) {
    int plane;
    for (plane = 0; plane < MAX_MB_PLANE; ++plane) {
      const struct macroblockd_plane *const pd = &xd->plane[plane];
      const TX_SIZE tx_size =
          plane ? dec_get_uv_tx_size(mbmi, pd->n4_wl, pd->n4_hl)
                  : mbmi->tx_size;
      const int num_4x4_w = pd->n4_w;
      const int num_4x4_h = pd->n4_h;
      const int step = (1 << tx_size);
      int row, col;
      const int max_blocks_wide = num_4x4_w + (xd->mb_to_right_edge >= 0 ?
          0 : xd->mb_to_right_edge >> (5 + pd->subsampling_x));
      const int max_blocks_high = num_4x4_h + (xd->mb_to_bottom_edge >= 0 ?
          0 : xd->mb_to_bottom_edge >> (5 + pd->subsampling_y));

      for (row = 0; row < max_blocks_high; row += step)
        for (col = 0; col < max_blocks_wide; col += step)
          predict_and_reconstruct_intra_block(xd, r, mbmi, plane,
                                              row, col, tx_size);
    }
  } else {
    // Prediction
    dec_build_inter_predictors_sb(pbi, xd, mi_row, mi_col);

    // Reconstruction
    if (!mbmi->skip) {
      int eobtotal = 0;
      int plane;

      for (plane = 0; plane < MAX_MB_PLANE; ++plane) {
        const struct macroblockd_plane *const pd = &xd->plane[plane];
        const TX_SIZE tx_size =
            plane ? dec_get_uv_tx_size(mbmi, pd->n4_wl, pd->n4_hl)
                    : mbmi->tx_size;
        const int num_4x4_w = pd->n4_w;
        const int num_4x4_h = pd->n4_h;
        const int step = (1 << tx_size);
        int row, col;
        const int max_blocks_wide = num_4x4_w + (xd->mb_to_right_edge >= 0 ?
            0 : xd->mb_to_right_edge >> (5 + pd->subsampling_x));
        const int max_blocks_high = num_4x4_h + (xd->mb_to_bottom_edge >= 0 ?
            0 : xd->mb_to_bottom_edge >> (5 + pd->subsampling_y));

        for (row = 0; row < max_blocks_high; row += step)
          for (col = 0; col < max_blocks_wide; col += step)
            eobtotal += reconstruct_inter_block(xd, r, mbmi, plane, row, col,
                                                tx_size);
      }

      if (!less8x8 && eobtotal == 0)
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#if CONFIG_MISC_FIXES
        mbmi->has_no_coeffs = 1;  // skip loopfilter
#else
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        mbmi->skip = 1;  // skip loopfilter
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#endif
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    }
  }

  xd->corrupted |= vpx_reader_has_error(r);
}

static INLINE int dec_partition_plane_context(const MACROBLOCKD *xd,
                                              int mi_row, int mi_col,
                                              int bsl) {
  const PARTITION_CONTEXT *above_ctx = xd->above_seg_context + mi_col;
  const PARTITION_CONTEXT *left_ctx = xd->left_seg_context + (mi_row & MI_MASK);
  int above = (*above_ctx >> bsl) & 1 , left = (*left_ctx >> bsl) & 1;

//  assert(bsl >= 0);

  return (left * 2 + above) + bsl * PARTITION_PLOFFSET;
}

static INLINE void dec_update_partition_context(MACROBLOCKD *xd,
                                                int mi_row, int mi_col,
                                                BLOCK_SIZE subsize,
                                                int bw) {
  PARTITION_CONTEXT *const above_ctx = xd->above_seg_context + mi_col;
  PARTITION_CONTEXT *const left_ctx = xd->left_seg_context + (mi_row & MI_MASK);

  // update the partition context at the end notes. set partition bits
  // of block sizes larger than the current one to be one, and partition
  // bits of smaller block sizes to be zero.
  memset(above_ctx, partition_context_lookup[subsize].above, bw);
  memset(left_ctx, partition_context_lookup[subsize].left, bw);
}

static PARTITION_TYPE read_partition(MACROBLOCKD *xd, int mi_row, int mi_col,
                                     vpx_reader *r,
                                     int has_rows, int has_cols, int bsl) {
  const int ctx = dec_partition_plane_context(xd, mi_row, mi_col, bsl);
  const vpx_prob *const probs = get_partition_probs(xd, ctx);
  FRAME_COUNTS *counts = xd->counts;
  PARTITION_TYPE p;

  if (has_rows && has_cols)
    p = (PARTITION_TYPE)vpx_read_tree(r, vp10_partition_tree, probs);
  else if (!has_rows && has_cols)
    p = vpx_read(r, probs[1]) ? PARTITION_SPLIT : PARTITION_HORZ;
  else if (has_rows && !has_cols)
    p = vpx_read(r, probs[2]) ? PARTITION_SPLIT : PARTITION_VERT;
  else
    p = PARTITION_SPLIT;

  if (counts)
    ++counts->partition[ctx][p];

  return p;
}

// TODO(slavarnway): eliminate bsize and subsize in future commits
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static void decode_partition(VP10Decoder *const pbi, MACROBLOCKD *const xd,
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                             int mi_row, int mi_col,
                             vpx_reader* r, BLOCK_SIZE bsize, int n4x4_l2) {
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  VP10_COMMON *const cm = &pbi->common;
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  const int n8x8_l2 = n4x4_l2 - 1;
  const int num_8x8_wh = 1 << n8x8_l2;
  const int hbs = num_8x8_wh >> 1;
  PARTITION_TYPE partition;
  BLOCK_SIZE subsize;
  const int has_rows = (mi_row + hbs) < cm->mi_rows;
  const int has_cols = (mi_col + hbs) < cm->mi_cols;

  if (mi_row >= cm->mi_rows || mi_col >= cm->mi_cols)
    return;

  partition = read_partition(xd, mi_row, mi_col, r, has_rows, has_cols,
                             n8x8_l2);
  subsize = subsize_lookup[partition][bsize];  // get_subsize(bsize, partition);
  if (!hbs) {
    // calculate bmode block dimensions (log 2)
    xd->bmode_blocks_wl = 1 >> !!(partition & PARTITION_VERT);
    xd->bmode_blocks_hl = 1 >> !!(partition & PARTITION_HORZ);
    decode_block(pbi, xd, mi_row, mi_col, r, subsize, 1, 1);
  } else {
    switch (partition) {
      case PARTITION_NONE:
        decode_block(pbi, xd, mi_row, mi_col, r, subsize, n4x4_l2, n4x4_l2);
        break;
      case PARTITION_HORZ:
        decode_block(pbi, xd, mi_row, mi_col, r, subsize, n4x4_l2, n8x8_l2);
        if (has_rows)
          decode_block(pbi, xd, mi_row + hbs, mi_col, r, subsize, n4x4_l2,
                       n8x8_l2);
        break;
      case PARTITION_VERT:
        decode_block(pbi, xd, mi_row, mi_col, r, subsize, n8x8_l2, n4x4_l2);
        if (has_cols)
          decode_block(pbi, xd, mi_row, mi_col + hbs, r, subsize, n8x8_l2,
                       n4x4_l2);
        break;
      case PARTITION_SPLIT:
        decode_partition(pbi, xd, mi_row, mi_col, r, subsize, n8x8_l2);
        decode_partition(pbi, xd, mi_row, mi_col + hbs, r, subsize, n8x8_l2);
        decode_partition(pbi, xd, mi_row + hbs, mi_col, r, subsize, n8x8_l2);
        decode_partition(pbi, xd, mi_row + hbs, mi_col + hbs, r, subsize,
                         n8x8_l2);