vp9_encodeframe.c 76.2 KB
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                      &x->sb32x16_context[xd->sb_index][xd->mb_index]);
        if (mb_row + y_idx + 1 < cm->mb_rows) {
          int r2, d2;

          update_state(cpi, &x->sb32x16_context[xd->sb_index][xd->mb_index],
                       BLOCK_SIZE_SB32X16, 0);
          encode_superblock(cpi, tp,
                            0, mb_row + y_idx, mb_col + x_idx,
                            BLOCK_SIZE_SB32X16);
          xd->mb_index = 1;
          pick_sb_modes(cpi, mb_row + y_idx + 1, mb_col + x_idx,
                        tp, &r2, &d2, BLOCK_SIZE_SB32X16,
                        &x->sb32x16_context[xd->sb_index][xd->mb_index]);
          r += r2;
          d += d2;
        }

        r += x->partition_cost[partition_plane(BLOCK_SIZE_SB32X32)]
                              [PARTITION_HORZ];

        /* is this better than MB coding? */
        if (RDCOST(x->rdmult, x->rddiv, r, d) <
                RDCOST(x->rdmult, x->rddiv, sb32_rate, sb32_dist)) {
          sb32_rate = r;
          sb32_dist = d;
          sb_partitioning[i] = BLOCK_SIZE_SB32X16;
        }

        vpx_memcpy(cm->left_context + y_idx, l2, sizeof(l2));
        vpx_memcpy(cm->above_context + mb_col + x_idx, a2, sizeof(a2));
      }

      // check 16x32
      if (mb_row + y_idx + 1 < cm->mb_rows) {
        int r, d;

        xd->mb_index = 0;
        pick_sb_modes(cpi, mb_row + y_idx, mb_col + x_idx,
                      tp, &r, &d, BLOCK_SIZE_SB16X32,
                      &x->sb16x32_context[xd->sb_index][xd->mb_index]);
        if (mb_col + x_idx + 1 < cm->mb_cols) {
          int r2, d2;

          update_state(cpi, &x->sb16x32_context[xd->sb_index][xd->mb_index],
                       BLOCK_SIZE_SB16X32, 0);
          encode_superblock(cpi, tp,
                            0, mb_row + y_idx, mb_col + x_idx,
                            BLOCK_SIZE_SB16X32);
          xd->mb_index = 1;
          pick_sb_modes(cpi, mb_row + y_idx, mb_col + x_idx + 1,
                        tp, &r2, &d2, BLOCK_SIZE_SB16X32,
                        &x->sb16x32_context[xd->sb_index][xd->mb_index]);
          r += r2;
          d += d2;
        }

        r += x->partition_cost[partition_plane(BLOCK_SIZE_SB32X32)]
                              [PARTITION_VERT];

        /* is this better than MB coding? */
        if (RDCOST(x->rdmult, x->rddiv, r, d) <
                RDCOST(x->rdmult, x->rddiv, sb32_rate, sb32_dist)) {
          sb32_rate = r;
          sb32_dist = d;
          sb_partitioning[i] = BLOCK_SIZE_SB16X32;
        }

        vpx_memcpy(cm->left_context + y_idx, l2, sizeof(l2));
        vpx_memcpy(cm->above_context + mb_col + x_idx, a2, sizeof(a2));
      }
#endif

      if (!sb32_skip && !(mb_col + x_idx + 1 >= cm->mb_cols ||
                          mb_row + y_idx + 1 >= cm->mb_rows)) {
        /* Pick a mode assuming that it applies to all 4 of the MBs in the SB */
        pick_sb_modes(cpi, mb_row + y_idx, mb_col + x_idx,
                      &x->sb32_context[xd->sb_index]);
        r += x->partition_cost[partition_plane(BLOCK_SIZE_SB32X32)]
                              [PARTITION_NONE];

        if (RDCOST(x->rdmult, x->rddiv, r, d) <
                RDCOST(x->rdmult, x->rddiv, sb32_rate, sb32_dist)) {
          sb32_rate = r;
          sb32_dist = d;
          sb_partitioning[i] = BLOCK_SIZE_SB32X32;
        }
      // If we used 16x16 instead of 32x32 then skip 64x64 (if enabled).
      if (cpi->sf.mb16_breakout && sb_partitioning[i] != BLOCK_SIZE_SB32X32) {
        ++sb64_skip;
      sb64_rate += sb32_rate;
      sb64_dist += sb32_dist;

      /* Encode SB using best computed mode(s) */
      // FIXME(rbultje): there really shouldn't be any need to encode_mb/sb
      // for each level that we go up, we can just keep tokens and recon
      // pixels of the lower level; also, inverting SB/MB order (big->small
      // instead of small->big) means we can use as threshold for small, which
      // may enable breakouts if RD is not good enough (i.e. faster)
      encode_sb(cpi, mb_row + y_idx, mb_col + x_idx, 0, tp,
                sb_partitioning[i]);
    memcpy(cm->above_context + mb_col, &a, sizeof(a));
    memcpy(cm->left_context, &l, sizeof(l));

    sb64_rate += x->partition_cost[partition_plane(BLOCK_SIZE_SB64X64)]
                                  [PARTITION_SPLIT];

#if CONFIG_SBSEGMENT
    // check 64x32
    if (mb_col + 3 < cm->mb_cols && !(cm->mb_rows & 1)) {
      int r, d;

      xd->sb_index = 0;
      pick_sb_modes(cpi, mb_row, mb_col,
                    tp, &r, &d, BLOCK_SIZE_SB64X32,
                    &x->sb64x32_context[xd->sb_index]);
      if (mb_row + 2 != cm->mb_rows) {
        int r2, d2;

        update_state(cpi, &x->sb64x32_context[xd->sb_index],
                     BLOCK_SIZE_SB64X32, 0);
        encode_superblock(cpi, tp,
                          0, mb_row, mb_col, BLOCK_SIZE_SB64X32);
        xd->sb_index = 1;
        pick_sb_modes(cpi, mb_row + 2, mb_col,
                      tp, &r2, &d2, BLOCK_SIZE_SB64X32,
                      &x->sb64x32_context[xd->sb_index]);
        r += r2;
        d += d2;
      }

      r += x->partition_cost[partition_plane(BLOCK_SIZE_SB64X64)]
                            [PARTITION_HORZ];

      /* is this better than MB coding? */
      if (RDCOST(x->rdmult, x->rddiv, r, d) <
              RDCOST(x->rdmult, x->rddiv, sb64_rate, sb64_dist)) {
        sb64_rate = r;
        sb64_dist = d;
        sb_partitioning[0] = BLOCK_SIZE_SB64X32;
      }

      vpx_memcpy(cm->left_context, l, sizeof(l));
      vpx_memcpy(cm->above_context + mb_col, a, sizeof(a));
    }

    // check 32x64
    if (mb_row + 3 < cm->mb_rows && !(cm->mb_cols & 1)) {
      int r, d;

      xd->sb_index = 0;
      pick_sb_modes(cpi, mb_row, mb_col,
                    tp, &r, &d, BLOCK_SIZE_SB32X64,
                    &x->sb32x64_context[xd->sb_index]);
      if (mb_col + 2 != cm->mb_cols) {
        int r2, d2;

        update_state(cpi, &x->sb32x64_context[xd->sb_index],
                     BLOCK_SIZE_SB32X64, 0);
        encode_superblock(cpi, tp,
                          0, mb_row, mb_col, BLOCK_SIZE_SB32X64);
        xd->sb_index = 1;
        pick_sb_modes(cpi, mb_row, mb_col + 2,
                      tp, &r2, &d2, BLOCK_SIZE_SB32X64,
                      &x->sb32x64_context[xd->sb_index]);
        r += r2;
        d += d2;
      }

      r += x->partition_cost[partition_plane(BLOCK_SIZE_SB64X64)]
                            [PARTITION_VERT];

      /* is this better than MB coding? */
      if (RDCOST(x->rdmult, x->rddiv, r, d) <
              RDCOST(x->rdmult, x->rddiv, sb64_rate, sb64_dist)) {
        sb64_rate = r;
        sb64_dist = d;
        sb_partitioning[0] = BLOCK_SIZE_SB32X64;
      }

      vpx_memcpy(cm->left_context, l, sizeof(l));
      vpx_memcpy(cm->above_context + mb_col, a, sizeof(a));
    }
#endif
    if (!sb64_skip && !(mb_col + 3 >= cm->mb_cols ||
                        mb_row + 3 >= cm->mb_rows)) {
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      pick_sb_modes(cpi, mb_row, mb_col, tp, &r, &d,
                    BLOCK_SIZE_SB64X64, &x->sb64_context);
      r += x->partition_cost[partition_plane(BLOCK_SIZE_SB64X64)]
                            [PARTITION_NONE];

      if (RDCOST(x->rdmult, x->rddiv, r, d) <
              RDCOST(x->rdmult, x->rddiv, sb64_rate, sb64_dist)) {
        sb64_rate = r;
        sb64_dist = d;
        sb_partitioning[0] = BLOCK_SIZE_SB64X64;
      }
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    }
    assert(tp_orig == *tp);
    encode_sb64(cpi, mb_row, mb_col, tp, sb_partitioning);
    assert(tp_orig < *tp);
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  }
static void init_encode_frame_mb_context(VP9_COMP *cpi) {
  MACROBLOCK *const x = &cpi->mb;
  VP9_COMMON *const cm = &cpi->common;
  MACROBLOCKD *const xd = &x->e_mbd;
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  x->act_zbin_adj = 0;
  cpi->seg0_idx = 0;
  vpx_memset(cpi->ref_pred_count, 0, sizeof(cpi->ref_pred_count));
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  xd->mode_info_stride = cm->mode_info_stride;
  xd->frame_type = cm->frame_type;
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  xd->frames_since_golden = cm->frames_since_golden;
  xd->frames_till_alt_ref_frame = cm->frames_till_alt_ref_frame;
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  // reset intra mode contexts
  if (cm->frame_type == KEY_FRAME)
    vp9_init_mbmode_probs(cm);
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  // Copy data over into macro block data structures.
  x->src = *cpi->Source;

  // TODO(jkoleszar): are these initializations required?
  setup_pre_planes(xd, &cm->yv12_fb[cm->ref_frame_map[cpi->lst_fb_idx]], NULL,
                   0, 0, NULL, NULL);
  setup_dst_planes(xd, &cm->yv12_fb[cm->new_fb_idx], 0, 0);
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  // set up frame for intra coded blocks
  vp9_setup_intra_recon(&cm->yv12_fb[cm->new_fb_idx]);
  vp9_setup_block_dptrs(&x->e_mbd);
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  xd->mode_info_context->mbmi.mode = DC_PRED;
  xd->mode_info_context->mbmi.uv_mode = DC_PRED;
  vp9_zero(cpi->count_mb_ref_frame_usage)
  vp9_zero(cpi->bmode_count)
  vp9_zero(cpi->ymode_count)
  vp9_zero(cpi->i8x8_mode_count)
  vp9_zero(cpi->y_uv_mode_count)
  vp9_zero(cpi->sub_mv_ref_count)
  vp9_zero(cpi->mbsplit_count)
  vp9_zero(cpi->common.fc.mv_ref_ct)
  vp9_zero(cpi->sb_ymode_count)
  vp9_zero(cpi->partition_count);

#if CONFIG_COMP_INTERINTRA_PRED
  vp9_zero(cpi->interintra_count);
  vp9_zero(cpi->interintra_select_count);
#endif
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  vpx_memset(cm->above_context, 0,
             sizeof(ENTROPY_CONTEXT_PLANES) * cm->mb_cols);
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static void switch_lossless_mode(VP9_COMP *cpi, int lossless) {
  if (lossless) {
    cpi->mb.fwd_txm8x4            = vp9_short_walsh8x4;
    cpi->mb.fwd_txm4x4            = vp9_short_walsh4x4;
    cpi->mb.e_mbd.inv_txm4x4_1    = vp9_short_iwalsh4x4_1;
    cpi->mb.e_mbd.inv_txm4x4      = vp9_short_iwalsh4x4;
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    cpi->mb.optimize              = 0;
    cpi->common.filter_level      = 0;
    cpi->zbin_mode_boost_enabled  = 0;
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    cpi->common.txfm_mode         = ONLY_4X4;
  } else {
    cpi->mb.fwd_txm8x4            = vp9_short_fdct8x4;
    cpi->mb.fwd_txm4x4            = vp9_short_fdct4x4;
    cpi->mb.e_mbd.inv_txm4x4_1    = vp9_short_idct4x4_1;
    cpi->mb.e_mbd.inv_txm4x4      = vp9_short_idct4x4;
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  }
}
static void encode_frame_internal(VP9_COMP *cpi) {
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  int mb_row;
  MACROBLOCK *const x = &cpi->mb;
  VP9_COMMON *const cm = &cpi->common;
  MACROBLOCKD *const xd = &x->e_mbd;
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  int totalrate;
//  fprintf(stderr, "encode_frame_internal frame %d (%d) type %d\n",
//           cpi->common.current_video_frame, cpi->common.show_frame,
//           cm->frame_type);
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  // Compute a modified set of reference frame probabilities to use when
  // prediction fails. These are based on the current general estimates for
  // this frame which may be updated with each iteration of the recode loop.
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  vp9_compute_mod_refprobs(cm);
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#if DBG_PRNT_SEGMAP
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  {
    FILE *statsfile;
    statsfile = fopen("segmap2.stt", "a");
    fprintf(statsfile, "\n");
    fclose(statsfile);
  }
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  totalrate = 0;

  // Reset frame count of inter 0,0 motion vector usage.
  cpi->inter_zz_count = 0;
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  cpi->skip_true_count[0] = cpi->skip_true_count[1] = cpi->skip_true_count[2] = 0;
  cpi->skip_false_count[0] = cpi->skip_false_count[1] = cpi->skip_false_count[2] = 0;
  vp9_zero(cpi->switchable_interp_count);
  vp9_zero(cpi->best_switchable_interp_count);
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  xd->mode_info_context = cm->mi;
  xd->prev_mode_info_context = cm->prev_mi;
  vp9_zero(cpi->NMVcount);
  vp9_zero(cpi->coef_counts_4x4);
  vp9_zero(cpi->coef_counts_8x8);
  vp9_zero(cpi->coef_counts_16x16);
  vp9_zero(cpi->coef_counts_32x32);
  vp9_zero(cm->fc.eob_branch_counts);
#if CONFIG_CODE_ZEROGROUP
  vp9_zero(cm->fc.zpc_counts_4x4);
  vp9_zero(cm->fc.zpc_counts_8x8);
  vp9_zero(cm->fc.zpc_counts_16x16);
  vp9_zero(cm->fc.zpc_counts_32x32);
#endif
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  cpi->mb.e_mbd.lossless = (cm->base_qindex == 0 &&
                            cm->y_dc_delta_q == 0 &&
                            cm->uv_dc_delta_q == 0 &&
                            cm->uv_ac_delta_q == 0);
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  switch_lossless_mode(cpi, cpi->mb.e_mbd.lossless);
  vp9_initialize_rd_consts(cpi, cm->base_qindex + cm->y_dc_delta_q);
  vp9_initialize_me_consts(cpi, cm->base_qindex);
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  if (cpi->oxcf.tuning == VP8_TUNE_SSIM) {
    // Initialize encode frame context.
    init_encode_frame_mb_context(cpi);
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    // Build a frame level activity map
    build_activity_map(cpi);
  }
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  // re-initencode frame context.
  init_encode_frame_mb_context(cpi);
  vpx_memset(cpi->rd_comp_pred_diff, 0, sizeof(cpi->rd_comp_pred_diff));
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  vpx_memset(cpi->single_pred_count, 0, sizeof(cpi->single_pred_count));
  vpx_memset(cpi->comp_pred_count, 0, sizeof(cpi->comp_pred_count));
  vpx_memset(cpi->txfm_count_32x32p, 0, sizeof(cpi->txfm_count_32x32p));
  vpx_memset(cpi->txfm_count_16x16p, 0, sizeof(cpi->txfm_count_16x16p));
  vpx_memset(cpi->txfm_count_8x8p, 0, sizeof(cpi->txfm_count_8x8p));
  vpx_memset(cpi->rd_tx_select_diff, 0, sizeof(cpi->rd_tx_select_diff));
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  {
    struct vpx_usec_timer  emr_timer;
    vpx_usec_timer_start(&emr_timer);
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    {
      // Take tiles into account and give start/end MB
      int tile_col, tile_row;
      TOKENEXTRA *tp = cpi->tok;
      for (tile_row = 0; tile_row < cm->tile_rows; tile_row++) {
        vp9_get_tile_row_offsets(cm, tile_row);

        for (tile_col = 0; tile_col < cm->tile_columns; tile_col++) {
          TOKENEXTRA *tp_old = tp;

          // For each row of SBs in the frame
          vp9_get_tile_col_offsets(cm, tile_col);
          for (mb_row = cm->cur_tile_mb_row_start;
               mb_row < cm->cur_tile_mb_row_end; mb_row += 4) {
            encode_sb_row(cpi, mb_row, &tp, &totalrate);
          }
          cpi->tok_count[tile_col] = (unsigned int)(tp - tp_old);
          assert(tp - cpi->tok <=
                 get_token_alloc(cm->mb_rows, cm->mb_cols));
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      }
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    vpx_usec_timer_mark(&emr_timer);
    cpi->time_encode_mb_row += vpx_usec_timer_elapsed(&emr_timer);
  }

  // 256 rate units to the bit,
  // projected_frame_size in units of BYTES
  cpi->projected_frame_size = totalrate >> 8;
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#if 0
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  // Keep record of the total distortion this time around for future use
  cpi->last_frame_distortion = cpi->frame_distortion;
static int check_dual_ref_flags(VP9_COMP *cpi) {
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  MACROBLOCKD *xd = &cpi->mb.e_mbd;
  int ref_flags = cpi->ref_frame_flags;

  if (vp9_segfeature_active(xd, 1, SEG_LVL_REF_FRAME)) {
    if ((ref_flags & (VP9_LAST_FLAG | VP9_GOLD_FLAG)) == (VP9_LAST_FLAG | VP9_GOLD_FLAG) &&
        vp9_check_segref(xd, 1, LAST_FRAME))
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      return 1;
    if ((ref_flags & (VP9_GOLD_FLAG | VP9_ALT_FLAG)) == (VP9_GOLD_FLAG | VP9_ALT_FLAG) &&
        vp9_check_segref(xd, 1, GOLDEN_FRAME))
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      return 1;
    if ((ref_flags & (VP9_ALT_FLAG  | VP9_LAST_FLAG)) == (VP9_ALT_FLAG  | VP9_LAST_FLAG) &&
        vp9_check_segref(xd, 1, ALTREF_FRAME))
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      return 1;
    return 0;
  } else {
    return (!!(ref_flags & VP9_GOLD_FLAG) +
            !!(ref_flags & VP9_LAST_FLAG) +
            !!(ref_flags & VP9_ALT_FLAG)) >= 2;
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  }
static int get_skip_flag(MODE_INFO *mi, int mis, int ymbs, int xmbs) {
  int x, y;

  for (y = 0; y < ymbs; y++) {
    for (x = 0; x < xmbs; x++) {
      if (!mi[y * mis + x].mbmi.mb_skip_coeff)
        return 0;
    }
  }

  return 1;
}

static void set_txfm_flag(MODE_INFO *mi, int mis, int ymbs, int xmbs,
                          TX_SIZE txfm_size) {
  int x, y;

  for (y = 0; y < ymbs; y++) {
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    for (x = 0; x < xmbs; x++)
      mi[y * mis + x].mbmi.txfm_size = txfm_size;
  }
}

static void reset_skip_txfm_size_sb(VP9_COMP *cpi, MODE_INFO *mi,
                                    int mis, TX_SIZE txfm_max,
                                    int mb_rows_left, int mb_cols_left,
                                    BLOCK_SIZE_TYPE bsize) {
  MB_MODE_INFO *const mbmi = &mi->mbmi;

  if (mbmi->txfm_size > txfm_max) {
    MACROBLOCK *const x = &cpi->mb;
    MACROBLOCKD *const xd = &x->e_mbd;
    const int segment_id = mbmi->segment_id;
    const int bh = 1 << mb_height_log2(bsize), bw = 1 << mb_width_log2(bsize);
    const int ymbs = MIN(bh, mb_rows_left);
    const int xmbs = MIN(bw, mb_cols_left);

    xd->mode_info_context = mi;
    assert(vp9_segfeature_active(xd, segment_id, SEG_LVL_SKIP) ||
           get_skip_flag(mi, mis, ymbs, xmbs));
    set_txfm_flag(mi, mis, ymbs, xmbs, txfm_max);
  }
}

static void reset_skip_txfm_size(VP9_COMP *cpi, TX_SIZE txfm_max) {
  VP9_COMMON *const cm = &cpi->common;
  int mb_row, mb_col;
  const int mis = cm->mode_info_stride;
  MODE_INFO *mi, *mi_ptr = cm->mi;
  for (mb_row = 0; mb_row < cm->mb_rows; mb_row += 4, mi_ptr += 4 * mis) {
    for (mb_col = 0; mb_col < cm->mb_cols; mb_col += 4, mi += 4) {
      if (mi->mbmi.sb_type == BLOCK_SIZE_SB64X64) {
        reset_skip_txfm_size_sb(cpi, mi, mis, txfm_max,
                                cm->mb_rows - mb_row, cm->mb_cols - mb_col,
                                BLOCK_SIZE_SB64X64);
#if CONFIG_SBSEGMENT
      } else if (mi->mbmi.sb_type == BLOCK_SIZE_SB64X32) {
        reset_skip_txfm_size_sb(cpi, mi, mis, txfm_max,
                                cm->mb_rows - mb_row, cm->mb_cols - mb_col,
                                BLOCK_SIZE_SB64X32);
        if (mb_row + 2 != cm->mb_rows)
          reset_skip_txfm_size_sb(cpi, mi + 2 * mis, mis, txfm_max,
                                  cm->mb_rows - mb_row - 2,
                                  cm->mb_cols - mb_col,
                                  BLOCK_SIZE_SB64X32);
      } else if (mi->mbmi.sb_type == BLOCK_SIZE_SB32X64) {
        reset_skip_txfm_size_sb(cpi, mi, mis, txfm_max,
                                cm->mb_rows - mb_row, cm->mb_cols - mb_col,
                                BLOCK_SIZE_SB32X64);
        if (mb_col + 2 != cm->mb_cols)
          reset_skip_txfm_size_sb(cpi, mi + 2, mis, txfm_max,
                                  cm->mb_rows - mb_row,
                                  cm->mb_cols - mb_col - 2,
                                  BLOCK_SIZE_SB32X64);
#endif
        int i;

        for (i = 0; i < 4; i++) {
          const int x_idx_sb = (i & 1) << 1, y_idx_sb = i & 2;
          MODE_INFO *sb_mi = mi + y_idx_sb * mis + x_idx_sb;

          if (mb_row + y_idx_sb >= cm->mb_rows ||
              mb_col + x_idx_sb >= cm->mb_cols)
            continue;

          if (sb_mi->mbmi.sb_type == BLOCK_SIZE_SB32X32) {
            reset_skip_txfm_size_sb(cpi, sb_mi, mis, txfm_max,
                                    cm->mb_rows - mb_row - y_idx_sb,
                                    cm->mb_cols - mb_col - x_idx_sb,
                                    BLOCK_SIZE_SB32X32);
#if CONFIG_SBSEGMENT
          } else if (sb_mi->mbmi.sb_type == BLOCK_SIZE_SB32X16) {
            reset_skip_txfm_size_sb(cpi, sb_mi, mis, txfm_max,
                                    cm->mb_rows - mb_row - y_idx_sb,
                                    cm->mb_cols - mb_col - x_idx_sb,
                                    BLOCK_SIZE_SB32X16);
            if (mb_row + y_idx_sb + 1 != cm->mb_rows)
              reset_skip_txfm_size_sb(cpi, sb_mi + mis, mis, txfm_max,
                                      cm->mb_rows - mb_row - y_idx_sb - 1,
                                      cm->mb_cols - mb_col - x_idx_sb,
                                      BLOCK_SIZE_SB32X16);
          } else if (sb_mi->mbmi.sb_type == BLOCK_SIZE_SB16X32) {
            reset_skip_txfm_size_sb(cpi, sb_mi, mis, txfm_max,
                                    cm->mb_rows - mb_row - y_idx_sb,
                                    cm->mb_cols - mb_col - x_idx_sb,
                                    BLOCK_SIZE_SB16X32);
            if (mb_col + x_idx_sb + 1 != cm->mb_cols)
              reset_skip_txfm_size_sb(cpi, sb_mi + 1, mis, txfm_max,
                                      cm->mb_rows - mb_row - y_idx_sb,
                                      cm->mb_cols - mb_col - x_idx_sb - 1,
                                      BLOCK_SIZE_SB16X32);
#endif
            int m;

            for (m = 0; m < 4; m++) {
              const int x_idx = x_idx_sb + (m & 1), y_idx = y_idx_sb + (m >> 1);
              MODE_INFO *mb_mi;

              if (mb_col + x_idx >= cm->mb_cols ||
                  mb_row + y_idx >= cm->mb_rows)
                continue;

              mb_mi = mi + y_idx * mis + x_idx;
              assert(mb_mi->mbmi.sb_type == BLOCK_SIZE_MB16X16);
              reset_skip_txfm_size_sb(cpi, mb_mi, mis, txfm_max,
                                      cm->mb_rows - mb_row - y_idx,
                                      cm->mb_cols - mb_col - x_idx,
                                      BLOCK_SIZE_MB16X16);
void vp9_encode_frame(VP9_COMP *cpi) {
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  if (cpi->sf.RD) {
    int i, frame_type, pred_type;
    TXFM_MODE txfm_type;
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    /*
     * This code does a single RD pass over the whole frame assuming
     * either compound, single or hybrid prediction as per whatever has
     * worked best for that type of frame in the past.
     * It also predicts whether another coding mode would have worked
     * better that this coding mode. If that is the case, it remembers
     * that for subsequent frames.
     * It does the same analysis for transform size selection also.
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     */
    if (cpi->common.frame_type == KEY_FRAME)
      frame_type = 0;
    else if (cpi->is_src_frame_alt_ref && cpi->refresh_golden_frame)
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      frame_type = 3;
    else if (cpi->refresh_golden_frame || cpi->refresh_alt_ref_frame)
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      frame_type = 1;
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      frame_type = 2;

    /* prediction (compound, single or hybrid) mode selection */
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    if (frame_type == 3)
      pred_type = SINGLE_PREDICTION_ONLY;
    else if (cpi->rd_prediction_type_threshes[frame_type][1] >
                 cpi->rd_prediction_type_threshes[frame_type][0] &&
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             cpi->rd_prediction_type_threshes[frame_type][1] >
                 cpi->rd_prediction_type_threshes[frame_type][2] &&
             check_dual_ref_flags(cpi) && cpi->static_mb_pct == 100)
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      pred_type = COMP_PREDICTION_ONLY;
    else if (cpi->rd_prediction_type_threshes[frame_type][0] >
                 cpi->rd_prediction_type_threshes[frame_type][2])
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      pred_type = SINGLE_PREDICTION_ONLY;
    else
      pred_type = HYBRID_PREDICTION;

    /* transform size (4x4, 8x8, 16x16 or select-per-mb) selection */
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    cpi->mb.e_mbd.lossless = 0;
    if (cpi->oxcf.lossless) {
      txfm_type = ONLY_4X4;
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      cpi->mb.e_mbd.lossless = 1;
    /* FIXME (rbultje): this code is disabled until we support cost updates
     * while a frame is being encoded; the problem is that each time we
     * "revert" to 4x4 only (or even 8x8 only), the coefficient probabilities
     * for 16x16 (and 8x8) start lagging behind, thus leading to them lagging
     * further behind and not being chosen for subsequent frames either. This
     * is essentially a local minimum problem that we can probably fix by
     * estimating real costs more closely within a frame, perhaps by re-
     * calculating costs on-the-fly as frame encoding progresses. */
    if (cpi->rd_tx_select_threshes[frame_type][TX_MODE_SELECT] >
            cpi->rd_tx_select_threshes[frame_type][ONLY_4X4] &&
        cpi->rd_tx_select_threshes[frame_type][TX_MODE_SELECT] >
            cpi->rd_tx_select_threshes[frame_type][ALLOW_16X16] &&
        cpi->rd_tx_select_threshes[frame_type][TX_MODE_SELECT] >
            cpi->rd_tx_select_threshes[frame_type][ALLOW_8X8]) {
      txfm_type = TX_MODE_SELECT;
    } else if (cpi->rd_tx_select_threshes[frame_type][ONLY_4X4] >
                  cpi->rd_tx_select_threshes[frame_type][ALLOW_8X8]
            && cpi->rd_tx_select_threshes[frame_type][ONLY_4X4] >
                  cpi->rd_tx_select_threshes[frame_type][ALLOW_16X16]
               ) {
      txfm_type = ONLY_4X4;
    } else if (cpi->rd_tx_select_threshes[frame_type][ALLOW_16X16] >=
                  cpi->rd_tx_select_threshes[frame_type][ALLOW_8X8]) {
      txfm_type = ALLOW_16X16;
    } else
      txfm_type = ALLOW_8X8;
#else
    txfm_type = cpi->rd_tx_select_threshes[frame_type][ALLOW_32X32] >=
                  cpi->rd_tx_select_threshes[frame_type][TX_MODE_SELECT] ?
                    ALLOW_32X32 : TX_MODE_SELECT;
#endif
    cpi->common.txfm_mode = txfm_type;
    if (txfm_type != TX_MODE_SELECT) {
      cpi->common.prob_tx[0] = 128;
      cpi->common.prob_tx[1] = 128;
    }
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    cpi->common.comp_pred_mode = pred_type;
    encode_frame_internal(cpi);

    for (i = 0; i < NB_PREDICTION_TYPES; ++i) {
      const int diff = (int)(cpi->rd_comp_pred_diff[i] / cpi->common.MBs);
      cpi->rd_prediction_type_threshes[frame_type][i] += diff;
      cpi->rd_prediction_type_threshes[frame_type][i] >>= 1;
    }
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    for (i = 0; i < NB_TXFM_MODES; ++i) {
      int64_t pd = cpi->rd_tx_select_diff[i];
      int diff;
      if (i == TX_MODE_SELECT)
        pd -= RDCOST(cpi->mb.rdmult, cpi->mb.rddiv,
                     2048 * (TX_SIZE_MAX_SB - 1), 0);
      diff = (int)(pd / cpi->common.MBs);
      cpi->rd_tx_select_threshes[frame_type][i] += diff;
      cpi->rd_tx_select_threshes[frame_type][i] /= 2;
    }

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    if (cpi->common.comp_pred_mode == HYBRID_PREDICTION) {
      int single_count_zero = 0;
      int comp_count_zero = 0;

      for (i = 0; i < COMP_PRED_CONTEXTS; i++) {
        single_count_zero += cpi->single_pred_count[i];
        comp_count_zero += cpi->comp_pred_count[i];
      }

      if (comp_count_zero == 0) {
        cpi->common.comp_pred_mode = SINGLE_PREDICTION_ONLY;
      } else if (single_count_zero == 0) {
        cpi->common.comp_pred_mode = COMP_PREDICTION_ONLY;
      }

    if (cpi->common.txfm_mode == TX_MODE_SELECT) {
      const int count4x4 = cpi->txfm_count_16x16p[TX_4X4] +
                           cpi->txfm_count_32x32p[TX_4X4] +
                           cpi->txfm_count_8x8p[TX_4X4];
      const int count8x8_lp = cpi->txfm_count_32x32p[TX_8X8] +
                              cpi->txfm_count_16x16p[TX_8X8];
      const int count8x8_8x8p = cpi->txfm_count_8x8p[TX_8X8];
      const int count16x16_16x16p = cpi->txfm_count_16x16p[TX_16X16];
      const int count16x16_lp = cpi->txfm_count_32x32p[TX_16X16];
      const int count32x32 = cpi->txfm_count_32x32p[TX_32X32];
      if (count4x4 == 0 && count16x16_lp == 0 && count16x16_16x16p == 0 &&
          count32x32 == 0) {
        cpi->common.txfm_mode = ALLOW_8X8;
        reset_skip_txfm_size(cpi, TX_8X8);
      } else if (count8x8_8x8p == 0 && count16x16_16x16p == 0 &&
                 count8x8_lp == 0 && count16x16_lp == 0 && count32x32 == 0) {
        cpi->common.txfm_mode = ONLY_4X4;
        reset_skip_txfm_size(cpi, TX_4X4);
      } else if (count8x8_lp == 0 && count16x16_lp == 0 && count4x4 == 0) {
        cpi->common.txfm_mode = ALLOW_32X32;
      } else if (count32x32 == 0 && count8x8_lp == 0 && count4x4 == 0) {
        cpi->common.txfm_mode = ALLOW_16X16;
        reset_skip_txfm_size(cpi, TX_16X16);

    // Update interpolation filter strategy for next frame.
    if ((cpi->common.frame_type != KEY_FRAME) && (cpi->sf.search_best_filter))
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      vp9_select_interp_filter_type(cpi);
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  } else {
    encode_frame_internal(cpi);
  }
void vp9_build_block_offsets(MACROBLOCK *x) {
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  int block = 0;
  int br, bc;

  vp9_build_block_doffsets(&x->e_mbd);
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  for (br = 0; br < 4; br++) {
    for (bc = 0; bc < 4; bc++) {
      BLOCK *this_block = &x->block[block];
      // this_block->base_src = &x->src.y_buffer;
      // this_block->src_stride = x->src.y_stride;
      // this_block->src = 4 * br * this_block->src_stride + 4 * bc;
      this_block->base_src = &x->src.y_buffer;
      this_block->src_stride = x->src.y_stride;
      this_block->src = 4 * br * this_block->src_stride + 4 * bc;
      ++block;
    }
  }
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  // u blocks
  for (br = 0; br < 2; br++) {
    for (bc = 0; bc < 2; bc++) {
      BLOCK *this_block = &x->block[block];
      this_block->base_src = &x->src.u_buffer;
      this_block->src_stride = x->src.uv_stride;
      this_block->src = 4 * br * this_block->src_stride + 4 * bc;
      ++block;
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    }
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  }

  // v blocks
  for (br = 0; br < 2; br++) {
    for (bc = 0; bc < 2; bc++) {
      BLOCK *this_block = &x->block[block];
      this_block->base_src = &x->src.v_buffer;
      this_block->src_stride = x->src.uv_stride;
      this_block->src = 4 * br * this_block->src_stride + 4 * bc;
      ++block;
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    }
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  }
static void sum_intra_stats(VP9_COMP *cpi, MACROBLOCK *x) {
  const MACROBLOCKD *xd = &x->e_mbd;
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  const MB_PREDICTION_MODE m = xd->mode_info_context->mbmi.mode;
  const MB_PREDICTION_MODE uvm = xd->mode_info_context->mbmi.uv_mode;
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#ifdef MODE_STATS
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  const int is_key = cpi->common.frame_type == KEY_FRAME;
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  ++ (is_key ? uv_modes : inter_uv_modes)[uvm];
  ++ uv_modes_y[m][uvm];
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  if (m == I4X4_PRED) {
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    unsigned int *const bct = is_key ? b_modes : inter_b_modes;
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    int b = 0;
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    do {
      ++ bct[xd->block[b].bmi.as_mode.first];
    } while (++b < 16);
  }
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  if (m == I8X8_PRED) {
    i8x8_modes[xd->block[0].bmi.as_mode.first]++;
    i8x8_modes[xd->block[2].bmi.as_mode.first]++;
    i8x8_modes[xd->block[8].bmi.as_mode.first]++;
    i8x8_modes[xd->block[10].bmi.as_mode.first]++;
  }
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#endif

  if (xd->mode_info_context->mbmi.sb_type > BLOCK_SIZE_MB16X16) {
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    ++cpi->sb_ymode_count[m];
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    ++cpi->ymode_count[m];
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  if (m != I8X8_PRED)
    ++cpi->y_uv_mode_count[m][uvm];
  else {
    cpi->i8x8_mode_count[xd->block[0].bmi.as_mode.first]++;
    cpi->i8x8_mode_count[xd->block[2].bmi.as_mode.first]++;
    cpi->i8x8_mode_count[xd->block[8].bmi.as_mode.first]++;
    cpi->i8x8_mode_count[xd->block[10].bmi.as_mode.first]++;
  }
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  if (m == I4X4_PRED) {
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    int b = 0;
    do {
      int m = xd->block[b].bmi.as_mode.first;
#if CONFIG_NEWBINTRAMODES
      if (m == B_CONTEXT_PRED) m -= CONTEXT_PRED_REPLACEMENTS;
#endif
      ++cpi->bmode_count[m];
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    } while (++b < 16);
  }
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}

// Experimental stub function to create a per MB zbin adjustment based on
// some previously calculated measure of MB activity.
static void adjust_act_zbin(VP9_COMP *cpi, MACROBLOCK *x) {
#if USE_ACT_INDEX
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  x->act_zbin_adj = *(x->mb_activity_ptr);
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  int64_t a;
  int64_t b;
  int64_t act = *(x->mb_activity_ptr);

  // Apply the masking to the RD multiplier.
  a = act + 4 * cpi->activity_avg;
  b = 4 * act + cpi->activity_avg;

  if (act > cpi->activity_avg)
    x->act_zbin_adj = (int)(((int64_t)b + (a >> 1)) / a) - 1;
  else
    x->act_zbin_adj = 1 - (int)(((int64_t)a + (b >> 1)) / b);
static void encode_macroblock(VP9_COMP *cpi, TOKENEXTRA **t,
                              int output_enabled,
                              int mb_row, int mb_col) {
  VP9_COMMON *const cm = &cpi->common;
  MACROBLOCK *const x = &cpi->mb;
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  MACROBLOCKD *const xd = &x->e_mbd;
  MODE_INFO *mi = xd->mode_info_context;
  MB_MODE_INFO *const mbmi = &mi->mbmi;
  const int mis = cm->mode_info_stride;
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  assert(xd->mode_info_context->mbmi.sb_type == BLOCK_SIZE_MB16X16);
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  enc_debug = (cpi->common.current_video_frame == 11 && cm->show_frame &&
               mb_row == 8 && mb_col == 0 && output_enabled);
  if (enc_debug)
    printf("Encode MB %d %d output %d\n", mb_row, mb_col, output_enabled);
#endif
  if (cm->frame_type == KEY_FRAME) {
    if (cpi->oxcf.tuning == VP8_TUNE_SSIM && output_enabled) {
      // Adjust the zbin based on this MB rate.
      adjust_act_zbin(cpi, x);
      vp9_update_zbin_extra(cpi, x);
    }
  } else {
    vp9_setup_interp_filters(xd, mbmi->interp_filter, cm);

    if (cpi->oxcf.tuning == VP8_TUNE_SSIM) {
      // Adjust the zbin based on this MB rate.
      adjust_act_zbin(cpi, x);
    }
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    // Experimental code. Special case for gf and arf zeromv modes.
    // Increase zbin size to suppress noise
    cpi->zbin_mode_boost = 0;
    if (cpi->zbin_mode_boost_enabled) {
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      if (mbmi->ref_frame != INTRA_FRAME) {
        if (mbmi->mode == ZEROMV) {
          if (mbmi->ref_frame != LAST_FRAME)
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            cpi->zbin_mode_boost = GF_ZEROMV_ZBIN_BOOST;
          else
            cpi->zbin_mode_boost = LF_ZEROMV_ZBIN_BOOST;
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        } else if (mbmi->mode == SPLITMV)
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          cpi->zbin_mode_boost = SPLIT_MV_ZBIN_BOOST;
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        else
          cpi->zbin_mode_boost = MV_ZBIN_BOOST;
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      } else {
        cpi->zbin_mode_boost = INTRA_ZBIN_BOOST;
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      }
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  if (mbmi->ref_frame == INTRA_FRAME) {
#if 0  // def ENC_DEBUG
    if (enc_debug) {
      printf("Mode %d skip %d tx_size %d\n", mbmi->mode, x->skip,
             mbmi->txfm_size);
    }
#endif
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    if (mbmi->mode == I4X4_PRED) {
      vp9_encode_intra16x16mbuv(cm, x);
      vp9_encode_intra4x4mby(x);
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    } else if (mbmi->mode == I8X8_PRED) {
      vp9_encode_intra8x8mby(x);
      vp9_encode_intra8x8mbuv(x);
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    } else {
      vp9_encode_intra16x16mbuv(cm, x);
      vp9_encode_intra16x16mby(cm, x);
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    if (output_enabled)
      sum_intra_stats(cpi, x);
  } else {
    int ref_fb_idx, second_ref_fb_idx;
#ifdef ENC_DEBUG
    if (enc_debug)
      printf("Mode %d skip %d tx_size %d ref %d ref2 %d mv %d %d interp %d\n",
             mbmi->mode, x->skip, mbmi->txfm_size,
             mbmi->ref_frame, mbmi->second_ref_frame,
             mbmi->mv[0].as_mv.row, mbmi->mv[0].as_mv.col,
             mbmi->interp_filter);
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    assert(cm->frame_type != KEY_FRAME);

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    if (mbmi->ref_frame == LAST_FRAME)
      ref_fb_idx = cpi->common.ref_frame_map[cpi->lst_fb_idx];
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    else if (mbmi->ref_frame == GOLDEN_FRAME)
      ref_fb_idx = cpi->common.ref_frame_map[cpi->gld_fb_idx];
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    else
      ref_fb_idx = cpi->common.ref_frame_map[cpi->alt_fb_idx];
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    if (mbmi->second_ref_frame > 0) {
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      if (mbmi->second_ref_frame == LAST_FRAME)
        second_ref_fb_idx = cpi->common.ref_frame_map[cpi->lst_fb_idx];
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      else if (mbmi->second_ref_frame == GOLDEN_FRAME)
        second_ref_fb_idx = cpi->common.ref_frame_map[cpi->gld_fb_idx];
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      else
        second_ref_fb_idx = cpi->common.ref_frame_map[cpi->alt_fb_idx];
    setup_pre_planes(xd,
        &cpi->common.yv12_fb[ref_fb_idx],
        mbmi->second_ref_frame > 0 ? &cpi->common.yv12_fb[second_ref_fb_idx]
                                   : NULL,
        mb_row, mb_col, xd->scale_factor, xd->scale_factor_uv);

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    if (!x->skip) {
      vp9_encode_inter16x16(cm, x, mb_row, mb_col);
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    } else {
      vp9_build_inter_predictors_sb(xd, mb_row, mb_col, BLOCK_SIZE_MB16X16);
#if CONFIG_COMP_INTERINTRA_PRED
      if (xd->mode_info_context->mbmi.second_ref_frame == INTRA_FRAME) {
        vp9_build_interintra_predictors(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,
                                        BLOCK_SIZE_MB16X16);
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    }
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  }
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  if (!x->skip) {
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    if (enc_debug) {
      int i, j;
      printf("\n");
      printf("qcoeff\n");
      for (i = 0; i < 384; i++) {
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        printf("%3d ", xd->qcoeff[i]);
        if (i % 16 == 15) printf("\n");
      }
      printf("\n");
      printf("predictor\n");
      for (i = 0; i < 384; i++) {
        printf("%3d ", xd->predictor[i]);
        if (i % 16 == 15) printf("\n");
      }
      printf("\n");
      printf("src_diff\n");
      for (i = 0; i < 384; i++) {
        printf("%3d ", x->src_diff[i]);
        if (i % 16 == 15) printf("\n");
      }
      printf("\n");