vp9_decodframe.c 62.9 KB
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/*
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 *  Copyright (c) 2010 The WebM project authors. All Rights Reserved.
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 *
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 *  Use of this source code is governed by a BSD-style license
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 *  that can be found in the LICENSE file in the root of the source
 *  tree. An additional intellectual property rights grant can be found
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 *  in the file PATENTS.  All contributing project authors may
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 *  be found in the AUTHORS file in the root of the source tree.
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 */


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#include "vp9/decoder/vp9_onyxd_int.h"
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#include "vp9/common/vp9_common.h"
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#include "vp9/common/vp9_header.h"
#include "vp9/common/vp9_reconintra.h"
#include "vp9/common/vp9_reconinter.h"
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#include "vp9/common/vp9_entropy.h"
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#include "vp9/decoder/vp9_decodframe.h"
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#include "vp9/decoder/vp9_detokenize.h"
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#include "vp9/common/vp9_invtrans.h"
#include "vp9/common/vp9_alloccommon.h"
#include "vp9/common/vp9_entropymode.h"
#include "vp9/common/vp9_quant_common.h"
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#include "vpx_scale/vpx_scale.h"
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#include "vp9/common/vp9_setupintrarecon.h"
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#include "vp9/decoder/vp9_decodemv.h"
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#include "vp9/common/vp9_extend.h"
#include "vp9/common/vp9_modecont.h"
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#include "vpx_mem/vpx_mem.h"
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#include "vp9/decoder/vp9_dboolhuff.h"
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#include "vp9/common/vp9_seg_common.h"
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#include "vp9/common/vp9_tile_common.h"
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#include "vp9_rtcd.h"
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#include <assert.h>
#include <stdio.h>

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#define COEFCOUNT_TESTING

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//#define DEC_DEBUG
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#ifdef DEC_DEBUG
int dec_debug = 0;
#endif

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static int merge_index(int v, int n, int modulus) {
  int max1 = (n - 1 - modulus / 2) / modulus + 1;
  if (v < max1) v = v * modulus + modulus / 2;
  else {
    int w;
    v -= max1;
    w = v;
    v += (v + modulus - modulus / 2) / modulus;
    while (v % modulus == modulus / 2 ||
           w != v - (v + modulus - modulus / 2) / modulus) v++;
  }
  return v;
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}

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static int inv_remap_prob(int v, int m) {
  const int n = 256;
  const int modulus = MODULUS_PARAM;
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  int i;
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  v = merge_index(v, n - 1, modulus);
  if ((m << 1) <= n) {
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    i = vp9_inv_recenter_nonneg(v + 1, m);
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  } else {
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    i = n - 1 - vp9_inv_recenter_nonneg(v + 1, n - 1 - m);
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  }
  return i;
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}
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static vp9_prob read_prob_diff_update(vp9_reader *const bc, int oldp) {
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  int delp = vp9_decode_term_subexp(bc, SUBEXP_PARAM, 255);
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  return (vp9_prob)inv_remap_prob(delp, oldp);
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}
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void vp9_init_de_quantizer(VP9D_COMP *pbi) {
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  int i;
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  int q;
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  VP9_COMMON *const pc = &pbi->common;
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  for (q = 0; q < QINDEX_RANGE; q++) {
    pc->Y1dequant[q][0] = (int16_t)vp9_dc_quant(q, pc->y1dc_delta_q);
    pc->UVdequant[q][0] = (int16_t)vp9_dc_uv_quant(q, pc->uvdc_delta_q);
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    /* all the ac values =; */
    for (i = 1; i < 16; i++) {
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      int rc = vp9_default_zig_zag1d_4x4[i];
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      pc->Y1dequant[q][rc] = (int16_t)vp9_ac_yquant(q);
      pc->UVdequant[q][rc] = (int16_t)vp9_ac_uv_quant(q, pc->uvac_delta_q);
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    }
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  }
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}

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static void mb_init_dequantizer(VP9D_COMP *pbi, MACROBLOCKD *xd) {
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  int i;
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  int qindex;
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  VP9_COMMON *const pc = &pbi->common;
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  int segment_id = xd->mode_info_context->mbmi.segment_id;

  // Set the Q baseline allowing for any segment level adjustment
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  if (vp9_segfeature_active(xd, segment_id, SEG_LVL_ALT_Q)) {
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    if (xd->mb_segment_abs_delta == SEGMENT_ABSDATA)
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      /* Abs Value */
      qindex = vp9_get_segdata(xd, segment_id, SEG_LVL_ALT_Q);
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    else {
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      /* Delta Value */
      qindex = pc->base_qindex +
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               vp9_get_segdata(xd, segment_id, SEG_LVL_ALT_Q);
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      /* Clamp to valid range */
      qindex = (qindex >= 0) ? ((qindex <= MAXQ) ? qindex : MAXQ) : 0;
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    }
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  } else
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    qindex = pc->base_qindex;

  xd->q_index = qindex;
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  /* Set up the block level dequant pointers */
  for (i = 0; i < 16; i++) {
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    xd->block[i].dequant = pc->Y1dequant[qindex];
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  }
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  xd->inv_txm4x4_1      = vp9_short_idct4x4llm_1;
  xd->inv_txm4x4        = vp9_short_idct4x4llm;
  xd->itxm_add          = vp9_dequant_idct_add;
  xd->itxm_add_y_block  = vp9_dequant_idct_add_y_block;
  xd->itxm_add_uv_block = vp9_dequant_idct_add_uv_block;
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  if (xd->lossless) {
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    assert(qindex == 0);
    xd->inv_txm4x4_1      = vp9_short_inv_walsh4x4_1_x8;
    xd->inv_txm4x4        = vp9_short_inv_walsh4x4_x8;
    xd->itxm_add          = vp9_dequant_idct_add_lossless_c;
    xd->itxm_add_y_block  = vp9_dequant_idct_add_y_block_lossless_c;
    xd->itxm_add_uv_block = vp9_dequant_idct_add_uv_block_lossless_c;
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  }
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  for (i = 16; i < 24; i++) {
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    xd->block[i].dequant = pc->UVdequant[qindex];
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  }
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}

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/* skip_recon_mb() is Modified: Instead of writing the result to predictor buffer and then copying it
 *  to dst buffer, we can write the result directly to dst buffer. This eliminates unnecessary copy.
 */
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static void skip_recon_mb(VP9D_COMP *pbi, MACROBLOCKD *xd,
                          int mb_row, int mb_col) {
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  BLOCK_SIZE_TYPE sb_type = xd->mode_info_context->mbmi.sb_type;

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  if (xd->mode_info_context->mbmi.ref_frame == INTRA_FRAME) {
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    if (sb_type == BLOCK_SIZE_SB64X64) {
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      vp9_build_intra_predictors_sb64uv_s(xd);
      vp9_build_intra_predictors_sb64y_s(xd);
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    } else if (sb_type == BLOCK_SIZE_SB32X32) {
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      vp9_build_intra_predictors_sbuv_s(xd);
      vp9_build_intra_predictors_sby_s(xd);
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    } else {
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      vp9_build_intra_predictors_mbuv_s(xd);
      vp9_build_intra_predictors_mby_s(xd);
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    }
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  } else {
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    if (sb_type == BLOCK_SIZE_SB64X64) {
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      vp9_build_inter64x64_predictors_sb(xd,
                                         xd->dst.y_buffer,
                                         xd->dst.u_buffer,
                                         xd->dst.v_buffer,
                                         xd->dst.y_stride,
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                                         xd->dst.uv_stride,
                                         mb_row, mb_col);
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    } else if (sb_type == BLOCK_SIZE_SB32X32) {
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      vp9_build_inter32x32_predictors_sb(xd,
                                         xd->dst.y_buffer,
                                         xd->dst.u_buffer,
                                         xd->dst.v_buffer,
                                         xd->dst.y_stride,
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                                         xd->dst.uv_stride,
                                         mb_row, mb_col);
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    } else {
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      vp9_build_inter16x16_predictors_mb(xd,
                                         xd->dst.y_buffer,
                                         xd->dst.u_buffer,
                                         xd->dst.v_buffer,
                                         xd->dst.y_stride,
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                                         xd->dst.uv_stride,
                                         mb_row, mb_col);
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#if CONFIG_COMP_INTERINTRA_PRED
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      if (xd->mode_info_context->mbmi.second_ref_frame == INTRA_FRAME) {
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        vp9_build_interintra_16x16_predictors_mb(xd,
                                                 xd->dst.y_buffer,
                                                 xd->dst.u_buffer,
                                                 xd->dst.v_buffer,
                                                 xd->dst.y_stride,
                                                 xd->dst.uv_stride);
      }
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#endif
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    }
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  }
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}

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static void decode_16x16(VP9D_COMP *pbi, MACROBLOCKD *xd,
                         BOOL_DECODER* const bc) {
  BLOCKD *bd = &xd->block[0];
  TX_TYPE tx_type = get_tx_type_16x16(xd, bd);
#ifdef DEC_DEBUG
  if (dec_debug) {
    int i;
    printf("\n");
    printf("qcoeff 16x16\n");
    for (i = 0; i < 400; i++) {
      printf("%3d ", xd->qcoeff[i]);
      if (i % 16 == 15) printf("\n");
    }
    printf("\n");
    printf("predictor\n");
    for (i = 0; i < 400; i++) {
      printf("%3d ", xd->predictor[i]);
      if (i % 16 == 15) printf("\n");
    }
  }
#endif
  if (tx_type != DCT_DCT) {
    vp9_ht_dequant_idct_add_16x16_c(tx_type, xd->qcoeff,
                                    xd->block[0].dequant, xd->predictor,
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                                    xd->dst.y_buffer, 16, xd->dst.y_stride,
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                                    xd->eobs[0]);
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  } else {
    vp9_dequant_idct_add_16x16(xd->qcoeff, xd->block[0].dequant,
                               xd->predictor, xd->dst.y_buffer,
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                               16, xd->dst.y_stride, xd->eobs[0]);
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  }
  vp9_dequant_idct_add_uv_block_8x8(
      xd->qcoeff + 16 * 16, xd->block[16].dequant,
      xd->predictor + 16 * 16, xd->dst.u_buffer, xd->dst.v_buffer,
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      xd->dst.uv_stride, xd);
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}

static void decode_8x8(VP9D_COMP *pbi, MACROBLOCKD *xd,
                       BOOL_DECODER* const bc) {
  // First do Y
  // if the first one is DCT_DCT assume all the rest are as well
  TX_TYPE tx_type = get_tx_type_8x8(xd, &xd->block[0]);
#ifdef DEC_DEBUG
  if (dec_debug) {
    int i;
    printf("\n");
    printf("qcoeff 8x8\n");
    for (i = 0; i < 400; i++) {
      printf("%3d ", xd->qcoeff[i]);
      if (i % 16 == 15) printf("\n");
    }
  }
#endif
  if (tx_type != DCT_DCT || xd->mode_info_context->mbmi.mode == I8X8_PRED) {
    int i;
    for (i = 0; i < 4; i++) {
      int ib = vp9_i8x8_block[i];
      int idx = (ib & 0x02) ? (ib + 2) : ib;
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      int16_t *q  = xd->block[idx].qcoeff;
      int16_t *dq = xd->block[0].dequant;
      uint8_t *pre = xd->block[ib].predictor;
      uint8_t *dst = *(xd->block[ib].base_dst) + xd->block[ib].dst;
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      int stride = xd->dst.y_stride;
      BLOCKD *b = &xd->block[ib];
      if (xd->mode_info_context->mbmi.mode == I8X8_PRED) {
        int i8x8mode = b->bmi.as_mode.first;
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        vp9_intra8x8_predict(xd, b, i8x8mode, b->predictor);
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      }
      tx_type = get_tx_type_8x8(xd, &xd->block[ib]);
      if (tx_type != DCT_DCT) {
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        vp9_ht_dequant_idct_add_8x8_c(tx_type, q, dq, pre, dst, 16, stride,
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                                      xd->eobs[idx]);
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      } else {
        vp9_dequant_idct_add_8x8_c(q, dq, pre, dst, 16, stride,
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                                   xd->eobs[idx]);
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      }
    }
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  } else {
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    vp9_dequant_idct_add_y_block_8x8(xd->qcoeff,
                                     xd->block[0].dequant,
                                     xd->predictor,
                                     xd->dst.y_buffer,
                                     xd->dst.y_stride,
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                                     xd);
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  }

  // Now do UV
  if (xd->mode_info_context->mbmi.mode == I8X8_PRED) {
    int i;
    for (i = 0; i < 4; i++) {
      int ib = vp9_i8x8_block[i];
      BLOCKD *b = &xd->block[ib];
      int i8x8mode = b->bmi.as_mode.first;
      b = &xd->block[16 + i];
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      vp9_intra_uv4x4_predict(xd, &xd->block[16 + i], i8x8mode, b->predictor);
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      xd->itxm_add(b->qcoeff, b->dequant, b->predictor,
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                   *(b->base_dst) + b->dst, 8, b->dst_stride, xd->eobs[16 + i]);
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      b = &xd->block[20 + i];
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      vp9_intra_uv4x4_predict(xd, &xd->block[20 + i], i8x8mode, b->predictor);
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      xd->itxm_add(b->qcoeff, b->dequant, b->predictor,
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                   *(b->base_dst) + b->dst, 8, b->dst_stride, xd->eobs[20 + i]);
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    }
  } else if (xd->mode_info_context->mbmi.mode == SPLITMV) {
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    xd->itxm_add_uv_block(xd->qcoeff + 16 * 16, xd->block[16].dequant,
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         xd->predictor + 16 * 16, xd->dst.u_buffer, xd->dst.v_buffer,
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         xd->dst.uv_stride, xd);
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  } else {
    vp9_dequant_idct_add_uv_block_8x8
        (xd->qcoeff + 16 * 16, xd->block[16].dequant,
         xd->predictor + 16 * 16, xd->dst.u_buffer, xd->dst.v_buffer,
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         xd->dst.uv_stride, xd);
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  }
#ifdef DEC_DEBUG
  if (dec_debug) {
    int i;
    printf("\n");
    printf("predictor\n");
    for (i = 0; i < 384; i++) {
      printf("%3d ", xd->predictor[i]);
      if (i % 16 == 15) printf("\n");
    }
  }
#endif
}

static void decode_4x4(VP9D_COMP *pbi, MACROBLOCKD *xd,
                       BOOL_DECODER* const bc) {
  TX_TYPE tx_type;
  int i, eobtotal = 0;
  MB_PREDICTION_MODE mode = xd->mode_info_context->mbmi.mode;
  if (mode == I8X8_PRED) {
    for (i = 0; i < 4; i++) {
      int ib = vp9_i8x8_block[i];
      const int iblock[4] = {0, 1, 4, 5};
      int j;
      int i8x8mode;
      BLOCKD *b;
      b = &xd->block[ib];
      i8x8mode = b->bmi.as_mode.first;
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      vp9_intra8x8_predict(xd, b, i8x8mode, b->predictor);
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      for (j = 0; j < 4; j++) {
        b = &xd->block[ib + iblock[j]];
        tx_type = get_tx_type_4x4(xd, b);
        if (tx_type != DCT_DCT) {
          vp9_ht_dequant_idct_add_c(tx_type, b->qcoeff,
                                    b->dequant, b->predictor,
                                    *(b->base_dst) + b->dst, 16,
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                                    b->dst_stride, xd->eobs[ib + iblock[j]]);
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        } else {
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          xd->itxm_add(b->qcoeff, b->dequant, b->predictor,
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                       *(b->base_dst) + b->dst, 16, b->dst_stride,
                       xd->eobs[ib + iblock[j]]);
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        }
      }
      b = &xd->block[16 + i];
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      vp9_intra_uv4x4_predict(xd, b, i8x8mode, b->predictor);
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      xd->itxm_add(b->qcoeff, b->dequant, b->predictor,
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                   *(b->base_dst) + b->dst, 8, b->dst_stride, xd->eobs[16 + i]);
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      b = &xd->block[20 + i];
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      vp9_intra_uv4x4_predict(xd, b, i8x8mode, b->predictor);
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      xd->itxm_add(b->qcoeff, b->dequant, b->predictor,
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                   *(b->base_dst) + b->dst, 8, b->dst_stride, xd->eobs[20 + i]);
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    }
  } else if (mode == B_PRED) {
    for (i = 0; i < 16; i++) {
      int b_mode;
      BLOCKD *b = &xd->block[i];
      b_mode = xd->mode_info_context->bmi[i].as_mode.first;
#if CONFIG_NEWBINTRAMODES
      xd->mode_info_context->bmi[i].as_mode.context = b->bmi.as_mode.context =
          vp9_find_bpred_context(b);
#endif
      if (!xd->mode_info_context->mbmi.mb_skip_coeff)
        eobtotal += vp9_decode_coefs_4x4(pbi, xd, bc, PLANE_TYPE_Y_WITH_DC, i);

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      vp9_intra4x4_predict(xd, b, b_mode, b->predictor);
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      tx_type = get_tx_type_4x4(xd, b);
      if (tx_type != DCT_DCT) {
        vp9_ht_dequant_idct_add_c(tx_type, b->qcoeff,
                                  b->dequant, b->predictor,
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                                  *(b->base_dst) + b->dst, 16, b->dst_stride,
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                                  xd->eobs[i]);
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      } else {
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        xd->itxm_add(b->qcoeff, b->dequant, b->predictor,
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                      *(b->base_dst) + b->dst, 16, b->dst_stride, xd->eobs[i]);
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      }
    }
    if (!xd->mode_info_context->mbmi.mb_skip_coeff) {
      vp9_decode_mb_tokens_4x4_uv(pbi, xd, bc);
    }
    vp9_build_intra_predictors_mbuv(xd);
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    xd->itxm_add_uv_block(xd->qcoeff + 16 * 16,
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                           xd->block[16].dequant,
                           xd->predictor + 16 * 16,
                           xd->dst.u_buffer,
                           xd->dst.v_buffer,
                           xd->dst.uv_stride,
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                           xd);
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  } else if (mode == SPLITMV || get_tx_type_4x4(xd, &xd->block[0]) == DCT_DCT) {
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    xd->itxm_add_y_block(xd->qcoeff,
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                          xd->block[0].dequant,
                          xd->predictor,
                          xd->dst.y_buffer,
                          xd->dst.y_stride,
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                          xd);
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    xd->itxm_add_uv_block(xd->qcoeff + 16 * 16,
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                           xd->block[16].dequant,
                           xd->predictor + 16 * 16,
                           xd->dst.u_buffer,
                           xd->dst.v_buffer,
                           xd->dst.uv_stride,
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                           xd);
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  } else {
#ifdef DEC_DEBUG
    if (dec_debug) {
      int i;
      printf("\n");
      printf("qcoeff 4x4\n");
      for (i = 0; i < 400; i++) {
        printf("%3d ", xd->qcoeff[i]);
        if (i % 16 == 15) printf("\n");
      }
      printf("\n");
      printf("predictor\n");
      for (i = 0; i < 400; i++) {
        printf("%3d ", xd->predictor[i]);
        if (i % 16 == 15) printf("\n");
      }
    }
#endif
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    for (i = 0; i < 16; i++) {
      BLOCKD *b = &xd->block[i];
      tx_type = get_tx_type_4x4(xd, b);
      if (tx_type != DCT_DCT) {
        vp9_ht_dequant_idct_add_c(tx_type, b->qcoeff,
                                  b->dequant, b->predictor,
                                  *(b->base_dst) + b->dst, 16,
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                                  b->dst_stride, xd->eobs[i]);
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      } else {
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        xd->itxm_add(b->qcoeff, b->dequant, b->predictor,
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                      *(b->base_dst) + b->dst, 16, b->dst_stride, xd->eobs[i]);
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      }
    }
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    xd->itxm_add_uv_block(xd->qcoeff + 16 * 16,
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                           xd->block[16].dequant,
                           xd->predictor + 16 * 16,
                           xd->dst.u_buffer,
                           xd->dst.v_buffer,
                           xd->dst.uv_stride,
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                           xd);
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  }
}

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static void decode_16x16_sb(VP9D_COMP *pbi, MACROBLOCKD *xd,
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                            BOOL_DECODER* const bc, int n,
                            int maska, int shiftb) {
  int x_idx = n & maska, y_idx = n >> shiftb;
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  TX_TYPE tx_type = get_tx_type_16x16(xd, &xd->block[0]);
  if (tx_type != DCT_DCT) {
    vp9_ht_dequant_idct_add_16x16_c(
        tx_type, xd->qcoeff, xd->block[0].dequant,
        xd->dst.y_buffer + y_idx * 16 * xd->dst.y_stride + x_idx * 16,
        xd->dst.y_buffer + y_idx * 16 * xd->dst.y_stride + x_idx * 16,
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        xd->dst.y_stride, xd->dst.y_stride, xd->eobs[0]);
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  } else {
    vp9_dequant_idct_add_16x16(
        xd->qcoeff, xd->block[0].dequant,
        xd->dst.y_buffer + y_idx * 16 * xd->dst.y_stride + x_idx * 16,
        xd->dst.y_buffer + y_idx * 16 * xd->dst.y_stride + x_idx * 16,
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        xd->dst.y_stride, xd->dst.y_stride, xd->eobs[0]);
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  }
  vp9_dequant_idct_add_uv_block_8x8_inplace_c(
      xd->qcoeff + 16 * 16,
      xd->block[16].dequant,
      xd->dst.u_buffer + y_idx * 8 * xd->dst.uv_stride + x_idx * 8,
      xd->dst.v_buffer + y_idx * 8 * xd->dst.uv_stride + x_idx * 8,
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      xd->dst.uv_stride, xd);
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};

static void decode_8x8_sb(VP9D_COMP *pbi, MACROBLOCKD *xd,
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                          BOOL_DECODER* const bc, int n,
                          int maska, int shiftb) {
  int x_idx = n & maska, y_idx = n >> shiftb;
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  TX_TYPE tx_type = get_tx_type_8x8(xd, &xd->block[0]);
  if (tx_type != DCT_DCT) {
    int i;
    for (i = 0; i < 4; i++) {
      int ib = vp9_i8x8_block[i];
      int idx = (ib & 0x02) ? (ib + 2) : ib;
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      int16_t *q  = xd->block[idx].qcoeff;
      int16_t *dq = xd->block[0].dequant;
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      int stride = xd->dst.y_stride;
      tx_type = get_tx_type_8x8(xd, &xd->block[ib]);
      if (tx_type != DCT_DCT) {
        vp9_ht_dequant_idct_add_8x8_c(
            tx_type, q, dq,
            xd->dst.y_buffer + (y_idx * 16 + (i / 2) * 8) * xd->dst.y_stride
            + x_idx * 16 + (i & 1) * 8,
            xd->dst.y_buffer + (y_idx * 16 + (i / 2) * 8) * xd->dst.y_stride
            + x_idx * 16 + (i & 1) * 8,
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            stride, stride, xd->eobs[idx]);
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      } else {
        vp9_dequant_idct_add_8x8_c(
            q, dq,
            xd->dst.y_buffer + (y_idx * 16 + (i / 2) * 8) * xd->dst.y_stride
            + x_idx * 16 + (i & 1) * 8,
            xd->dst.y_buffer + (y_idx * 16 + (i / 2) * 8) * xd->dst.y_stride
            + x_idx * 16 + (i & 1) * 8,
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            stride, stride, xd->eobs[idx]);
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      }
    }
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  } else {
    vp9_dequant_idct_add_y_block_8x8_inplace_c(
        xd->qcoeff, xd->block[0].dequant,
        xd->dst.y_buffer + y_idx * 16 * xd->dst.y_stride + x_idx * 16,
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        xd->dst.y_stride, xd);
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  }
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  vp9_dequant_idct_add_uv_block_8x8_inplace_c(
      xd->qcoeff + 16 * 16, xd->block[16].dequant,
      xd->dst.u_buffer + y_idx * 8 * xd->dst.uv_stride + x_idx * 8,
      xd->dst.v_buffer + y_idx * 8 * xd->dst.uv_stride + x_idx * 8,
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      xd->dst.uv_stride, xd);
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};

static void decode_4x4_sb(VP9D_COMP *pbi, MACROBLOCKD *xd,
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                          BOOL_DECODER* const bc, int n,
                          int maska, int shiftb) {
  int x_idx = n & maska, y_idx = n >> shiftb;
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  TX_TYPE tx_type = get_tx_type_4x4(xd, &xd->block[0]);
  if (tx_type != DCT_DCT) {
    int i;
    for (i = 0; i < 16; i++) {
      BLOCKD *b = &xd->block[i];
      tx_type = get_tx_type_4x4(xd, b);
      if (tx_type != DCT_DCT) {
        vp9_ht_dequant_idct_add_c(
            tx_type, b->qcoeff, b->dequant,
            xd->dst.y_buffer + (y_idx * 16 + (i / 4) * 4) * xd->dst.y_stride
            + x_idx * 16 + (i & 3) * 4,
            xd->dst.y_buffer + (y_idx * 16 + (i / 4) * 4) * xd->dst.y_stride
            + x_idx * 16 + (i & 3) * 4,
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            xd->dst.y_stride, xd->dst.y_stride, xd->eobs[i]);
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      } else {
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        xd->itxm_add(
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            b->qcoeff, b->dequant,
            xd->dst.y_buffer + (y_idx * 16 + (i / 4) * 4) * xd->dst.y_stride
            + x_idx * 16 + (i & 3) * 4,
            xd->dst.y_buffer + (y_idx * 16 + (i / 4) * 4) * xd->dst.y_stride
            + x_idx * 16 + (i & 3) * 4,
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            xd->dst.y_stride, xd->dst.y_stride, xd->eobs[i]);
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      }
    }
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  } else {
    vp9_dequant_idct_add_y_block_4x4_inplace_c(
        xd->qcoeff, xd->block[0].dequant,
        xd->dst.y_buffer + y_idx * 16 * xd->dst.y_stride + x_idx * 16,
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        xd->dst.y_stride, xd);
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  }
  vp9_dequant_idct_add_uv_block_4x4_inplace_c(
      xd->qcoeff + 16 * 16, xd->block[16].dequant,
      xd->dst.u_buffer + y_idx * 8 * xd->dst.uv_stride + x_idx * 8,
      xd->dst.v_buffer + y_idx * 8 * xd->dst.uv_stride + x_idx * 8,
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      xd->dst.uv_stride, xd);
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};

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static void decode_superblock64(VP9D_COMP *pbi, MACROBLOCKD *xd,
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                                int mb_row, int mb_col,
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                                BOOL_DECODER* const bc) {
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  int n, eobtotal;
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  TX_SIZE tx_size = xd->mode_info_context->mbmi.txfm_size;
  VP9_COMMON *const pc = &pbi->common;
  MODE_INFO *orig_mi = xd->mode_info_context;
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  const int mis = pc->mode_info_stride;
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  assert(xd->mode_info_context->mbmi.sb_type == BLOCK_SIZE_SB64X64);

  if (pbi->common.frame_type != KEY_FRAME)
    vp9_setup_interp_filters(xd, xd->mode_info_context->mbmi.interp_filter, pc);

  // re-initialize macroblock dequantizer before detokenization
  if (xd->segmentation_enabled)
    mb_init_dequantizer(pbi, xd);

  if (xd->mode_info_context->mbmi.mb_skip_coeff) {
    int n;

    vp9_reset_mb_tokens_context(xd);
    for (n = 1; n <= 3; n++) {
      if (mb_col < pc->mb_cols - n)
        xd->above_context += n;
      if (mb_row < pc->mb_rows - n)
        xd->left_context += n;
      vp9_reset_mb_tokens_context(xd);
      if (mb_col < pc->mb_cols - n)
        xd->above_context -= n;
      if (mb_row < pc->mb_rows - n)
        xd->left_context -= n;
    }

    /* Special case:  Force the loopfilter to skip when eobtotal and
     * mb_skip_coeff are zero.
     */
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    skip_recon_mb(pbi, xd, mb_row, mb_col);
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    return;
  }

  /* do prediction */
  if (xd->mode_info_context->mbmi.ref_frame == INTRA_FRAME) {
    vp9_build_intra_predictors_sb64y_s(xd);
    vp9_build_intra_predictors_sb64uv_s(xd);
  } else {
    vp9_build_inter64x64_predictors_sb(xd, xd->dst.y_buffer,
                                       xd->dst.u_buffer, xd->dst.v_buffer,
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                                       xd->dst.y_stride, xd->dst.uv_stride,
                                       mb_row, mb_col);
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  }

  /* dequantization and idct */
  if (xd->mode_info_context->mbmi.txfm_size == TX_32X32) {
    for (n = 0; n < 4; n++) {
      const int x_idx = n & 1, y_idx = n >> 1;

      if (mb_col + x_idx * 2 >= pc->mb_cols ||
          mb_row + y_idx * 2 >= pc->mb_rows)
        continue;

      xd->left_context = pc->left_context + (y_idx << 1);
      xd->above_context = pc->above_context + mb_col + (x_idx << 1);
      xd->mode_info_context = orig_mi + x_idx * 2 + y_idx * 2 * mis;
      eobtotal = vp9_decode_sb_tokens(pbi, xd, bc);
      if (eobtotal == 0) {  // skip loopfilter
        xd->mode_info_context->mbmi.mb_skip_coeff = 1;
        if (mb_col + 1 < pc->mb_cols)
          xd->mode_info_context[1].mbmi.mb_skip_coeff = 1;
        if (mb_row + 1 < pc->mb_rows) {
          xd->mode_info_context[mis].mbmi.mb_skip_coeff = 1;
          if (mb_col + 1 < pc->mb_cols)
            xd->mode_info_context[mis + 1].mbmi.mb_skip_coeff = 1;
        }
      } else {
        vp9_dequant_idct_add_32x32(xd->sb_coeff_data.qcoeff, xd->block[0].dequant,
                                   xd->dst.y_buffer + x_idx * 32 +
                                       xd->dst.y_stride * y_idx * 32,
                                   xd->dst.y_buffer + x_idx * 32 +
                                       xd->dst.y_stride * y_idx * 32,
                                   xd->dst.y_stride, xd->dst.y_stride,
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                                   xd->eobs[0]);
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        vp9_dequant_idct_add_uv_block_16x16_c(xd->sb_coeff_data.qcoeff + 1024,
                                              xd->block[16].dequant,
                                              xd->dst.u_buffer + x_idx * 16 +
                                                xd->dst.uv_stride * y_idx * 16,
                                              xd->dst.v_buffer + x_idx * 16 +
                                                xd->dst.uv_stride * y_idx * 16,
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                                              xd->dst.uv_stride, xd);
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      }
    }
  } else {
    for (n = 0; n < 16; n++) {
      int x_idx = n & 3, y_idx = n >> 2;

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

      xd->above_context = pc->above_context + mb_col + x_idx;
      xd->left_context = pc->left_context + y_idx;
      xd->mode_info_context = orig_mi + x_idx + y_idx * mis;

      eobtotal = vp9_decode_mb_tokens(pbi, xd, bc);
      if (eobtotal == 0) {  // skip loopfilter
        xd->mode_info_context->mbmi.mb_skip_coeff = 1;
        continue;
      }

      if (tx_size == TX_16X16) {
        decode_16x16_sb(pbi, xd, bc, n, 3, 2);
      } else if (tx_size == TX_8X8) {
        decode_8x8_sb(pbi, xd, bc, n, 3, 2);
      } else {
        decode_4x4_sb(pbi, xd, bc, n, 3, 2);
      }
    }
  }

  xd->above_context = pc->above_context + mb_col;
  xd->left_context = pc->left_context;
  xd->mode_info_context = orig_mi;
}

static void decode_superblock32(VP9D_COMP *pbi, MACROBLOCKD *xd,
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                                int mb_row, int mb_col,
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                                BOOL_DECODER* const bc) {
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  int n, eobtotal;
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  TX_SIZE tx_size = xd->mode_info_context->mbmi.txfm_size;
  VP9_COMMON *const pc = &pbi->common;
  MODE_INFO *orig_mi = xd->mode_info_context;
  const int mis = pc->mode_info_stride;

  assert(xd->mode_info_context->mbmi.sb_type == BLOCK_SIZE_SB32X32);
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  if (pbi->common.frame_type != KEY_FRAME)
    vp9_setup_interp_filters(xd, xd->mode_info_context->mbmi.interp_filter, pc);

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  // re-initialize macroblock dequantizer before detokenization
  if (xd->segmentation_enabled)
    mb_init_dequantizer(pbi, xd);

  if (xd->mode_info_context->mbmi.mb_skip_coeff) {
    vp9_reset_mb_tokens_context(xd);
    if (mb_col < pc->mb_cols - 1)
      xd->above_context++;
    if (mb_row < pc->mb_rows - 1)
      xd->left_context++;
    vp9_reset_mb_tokens_context(xd);
    if (mb_col < pc->mb_cols - 1)
      xd->above_context--;
    if (mb_row < pc->mb_rows - 1)
      xd->left_context--;

    /* Special case:  Force the loopfilter to skip when eobtotal and
     * mb_skip_coeff are zero.
     */
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    skip_recon_mb(pbi, xd, mb_row, mb_col);
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    return;
  }

  /* do prediction */
  if (xd->mode_info_context->mbmi.ref_frame == INTRA_FRAME) {
    vp9_build_intra_predictors_sby_s(xd);
    vp9_build_intra_predictors_sbuv_s(xd);
  } else {
    vp9_build_inter32x32_predictors_sb(xd, xd->dst.y_buffer,
                                       xd->dst.u_buffer, xd->dst.v_buffer,
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                                       xd->dst.y_stride, xd->dst.uv_stride,
                                       mb_row, mb_col);
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  }

  /* dequantization and idct */
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  if (xd->mode_info_context->mbmi.txfm_size == TX_32X32) {
    eobtotal = vp9_decode_sb_tokens(pbi, xd, bc);
    if (eobtotal == 0) {  // skip loopfilter
      xd->mode_info_context->mbmi.mb_skip_coeff = 1;
      if (mb_col + 1 < pc->mb_cols)
        xd->mode_info_context[1].mbmi.mb_skip_coeff = 1;
      if (mb_row + 1 < pc->mb_rows) {
        xd->mode_info_context[mis].mbmi.mb_skip_coeff = 1;
        if (mb_col + 1 < pc->mb_cols)
          xd->mode_info_context[mis + 1].mbmi.mb_skip_coeff = 1;
      }
    } else {
      vp9_dequant_idct_add_32x32(xd->sb_coeff_data.qcoeff, xd->block[0].dequant,
                                 xd->dst.y_buffer, xd->dst.y_buffer,
                                 xd->dst.y_stride, xd->dst.y_stride,
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                                 xd->eobs[0]);
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      vp9_dequant_idct_add_uv_block_16x16_c(xd->sb_coeff_data.qcoeff + 1024,
                                            xd->block[16].dequant,
                                            xd->dst.u_buffer, xd->dst.v_buffer,
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                                            xd->dst.uv_stride, xd);
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    }
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  } else {
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    for (n = 0; n < 4; n++) {
      int x_idx = n & 1, y_idx = n >> 1;
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      if (mb_col + x_idx >= pc->mb_cols || mb_row + y_idx >= pc->mb_rows)
        continue;
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      xd->above_context = pc->above_context + mb_col + x_idx;
      xd->left_context = pc->left_context + y_idx + (mb_row & 2);
      xd->mode_info_context = orig_mi + x_idx + y_idx * mis;
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      eobtotal = vp9_decode_mb_tokens(pbi, xd, bc);
      if (eobtotal == 0) {  // skip loopfilter
        xd->mode_info_context->mbmi.mb_skip_coeff = 1;
        continue;
      }
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      if (tx_size == TX_16X16) {
        decode_16x16_sb(pbi, xd, bc, n, 1, 1);
      } else if (tx_size == TX_8X8) {
        decode_8x8_sb(pbi, xd, bc, n, 1, 1);
      } else {
        decode_4x4_sb(pbi, xd, bc, n, 1, 1);
      }
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    }

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    xd->above_context = pc->above_context + mb_col;
    xd->left_context = pc->left_context + (mb_row & 2);
    xd->mode_info_context = orig_mi;
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  }
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}

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static void decode_macroblock(VP9D_COMP *pbi, MACROBLOCKD *xd,
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                              int mb_row, unsigned int mb_col,
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                              BOOL_DECODER* const bc) {
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  int eobtotal = 0;
  MB_PREDICTION_MODE mode;
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  int tx_size;
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  assert(!xd->mode_info_context->mbmi.sb_type);
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  // re-initialize macroblock dequantizer before detokenization
  if (xd->segmentation_enabled)
    mb_init_dequantizer(pbi, xd);

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  tx_size = xd->mode_info_context->mbmi.txfm_size;
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  mode = xd->mode_info_context->mbmi.mode;

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  if (xd->mode_info_context->mbmi.mb_skip_coeff) {
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    vp9_reset_mb_tokens_context(xd);
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  } else if (!bool_error(bc)) {
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    if (mode != B_PRED) {
      eobtotal = vp9_decode_mb_tokens(pbi, xd, bc);
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    }
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  }
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  //mode = xd->mode_info_context->mbmi.mode;
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  if (pbi->common.frame_type != KEY_FRAME)
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    vp9_setup_interp_filters(xd, xd->mode_info_context->mbmi.interp_filter,
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                             &pbi->common);
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  if (eobtotal == 0 &&
      mode != B_PRED &&
      mode != SPLITMV &&
      mode != I8X8_PRED &&
      !bool_error(bc)) {
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    /* Special case:  Force the loopfilter to skip when eobtotal and
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       mb_skip_coeff are zero. */
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    xd->mode_info_context->mbmi.mb_skip_coeff = 1;
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    skip_recon_mb(pbi, xd, mb_row, mb_col);
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    return;
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  }
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#ifdef DEC_DEBUG
  if (dec_debug)
    printf("Decoding mb:  %d %d\n", xd->mode_info_context->mbmi.mode, tx_size);
#endif
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  // moved to be performed before detokenization
//  if (xd->segmentation_enabled)
//    mb_init_dequantizer(pbi, xd);
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  /* do prediction */
  if (xd->mode_info_context->mbmi.ref_frame == INTRA_FRAME) {
    if (mode != I8X8_PRED) {
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      vp9_build_intra_predictors_mbuv(xd);
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      if (mode != B_PRED) {
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        vp9_build_intra_predictors_mby(xd);
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      }
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    }
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  } else {
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#ifdef DEC_DEBUG
  if (dec_debug)
    printf("Decoding mb:  %d %d interp %d\n",
           xd->mode_info_context->mbmi.mode, tx_size,
           xd->mode_info_context->mbmi.interp_filter);
#endif
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    vp9_build_inter_predictors_mb(xd, mb_row, mb_col);
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  }

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  if (tx_size == TX_16X16) {
    decode_16x16(pbi, xd, bc);
  } else if (tx_size == TX_8X8) {
    decode_8x8(pbi, xd, bc);
  } else {
    decode_4x4(pbi, xd, bc);
  }
#ifdef DEC_DEBUG
  if (dec_debug) {
    int i, j;
    printf("\n");
    printf("final y\n");
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    for (i = 0; i < 16; i++) {
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      for (j = 0; j < 16; j++)
        printf("%3d ", xd->dst.y_buffer[i * xd->dst.y_stride + j]);
      printf("\n");
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    }
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    printf("\n");
    printf("final u\n");
    for (i = 0; i < 8; i++) {
      for (j = 0; j < 8; j++)
        printf("%3d ", xd->dst.u_buffer[i * xd->dst.uv_stride + j]);
      printf("\n");
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    }
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    printf("\n");
    printf("final v\n");
    for (i = 0; i < 8; i++) {
      for (j = 0; j < 8; j++)
        printf("%3d ", xd->dst.v_buffer[i * xd->dst.uv_stride + j]);
      printf("\n");
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    }
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    fflush(stdout);
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  }
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#endif
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}
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static int get_delta_q(vp9_reader *bc, int prev, int *q_update) {
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  int ret_val = 0;
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  if (vp9_read_bit(bc)) {
    ret_val = vp9_read_literal(bc, 4);
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    if (vp9_read_bit(bc))
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