vp9_detokenize.c 18.6 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/common/vp9_blockd.h"
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#include "vp9/decoder/vp9_onyxd_int.h"
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#include "vpx_mem/vpx_mem.h"
#include "vpx_ports/mem.h"
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#include "vp9/decoder/vp9_detokenize.h"
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#include "vp9/common/vp9_seg_common.h"
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#define EOB_CONTEXT_NODE            0
#define ZERO_CONTEXT_NODE           1
#define ONE_CONTEXT_NODE            2
#define LOW_VAL_CONTEXT_NODE        3
#define TWO_CONTEXT_NODE            4
#define THREE_CONTEXT_NODE          5
#define HIGH_LOW_CONTEXT_NODE       6
#define CAT_ONE_CONTEXT_NODE        7
#define CAT_THREEFOUR_CONTEXT_NODE  8
#define CAT_THREE_CONTEXT_NODE      9
#define CAT_FIVE_CONTEXT_NODE       10

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#define CAT1_MIN_VAL    5
#define CAT2_MIN_VAL    7
#define CAT3_MIN_VAL   11
#define CAT4_MIN_VAL   19
#define CAT5_MIN_VAL   35
#define CAT6_MIN_VAL   67
#define CAT1_PROB0    159
#define CAT2_PROB0    145
#define CAT2_PROB1    165

#define CAT3_PROB0 140
#define CAT3_PROB1 148
#define CAT3_PROB2 173

#define CAT4_PROB0 135
#define CAT4_PROB1 140
#define CAT4_PROB2 155
#define CAT4_PROB3 176

#define CAT5_PROB0 130
#define CAT5_PROB1 134
#define CAT5_PROB2 141
#define CAT5_PROB3 157
#define CAT5_PROB4 180

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static const vp9_prob cat6_prob[15] = {
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  254, 254, 254, 252, 249, 243, 230, 196, 177, 153, 140, 133, 130, 129, 0
};
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DECLARE_ALIGNED(16, extern const uint8_t, vp9_norm[256]);
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static int get_signed(BOOL_DECODER *br, int value_to_sign) {
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  return decode_bool(br, 128) ? -value_to_sign : value_to_sign;
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}
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#define INCREMENT_COUNT(token)               \
  do {                                       \
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    coef_counts[type][get_coef_band(c)][pt][token]++;     \
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    pt = vp9_get_coef_context(&recent_energy, token);         \
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  } while (0)

#define WRITE_COEF_CONTINUE(val, token)                       \
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  {                                                           \
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    qcoeff_ptr[scan[c]] = (int16_t) get_signed(br, val);        \
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    INCREMENT_COUNT(token);                                   \
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    c++;                                                      \
    continue;                                                 \
  }
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#define ADJUST_COEF(prob, bits_count)  \
  do {                                 \
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    if (vp9_read(br, prob))            \
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      val += (uint16_t)(1 << bits_count);\
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  } while (0);
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static int decode_coefs(VP9D_COMP *dx, const MACROBLOCKD *xd,
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                        BOOL_DECODER* const br, int block_idx,
                        PLANE_TYPE type, TX_TYPE tx_type,
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                        int seg_eob, int16_t *qcoeff_ptr,
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                        const int *const scan, TX_SIZE txfm_size) {
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  ENTROPY_CONTEXT* const A0 = (ENTROPY_CONTEXT *) xd->above_context;
  ENTROPY_CONTEXT* const L0 = (ENTROPY_CONTEXT *) xd->left_context;
  const int aidx = vp9_block2above[txfm_size][block_idx];
  const int lidx = vp9_block2left[txfm_size][block_idx];
  ENTROPY_CONTEXT above_ec = A0[aidx] != 0, left_ec = L0[lidx] != 0;
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  FRAME_CONTEXT *const fc = &dx->common.fc;
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  int recent_energy = 0;
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  int nodc = (type == PLANE_TYPE_Y_NO_DC);
  int pt, c = nodc;
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  vp9_coeff_probs *coef_probs;
  vp9_prob *prob;
  vp9_coeff_count *coef_counts;
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  switch (txfm_size) {
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    default:
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    case TX_4X4:
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      if (tx_type == DCT_DCT) {
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        coef_probs  = fc->coef_probs_4x4;
        coef_counts = fc->coef_counts_4x4;
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      } else {
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        coef_probs  = fc->hybrid_coef_probs_4x4;
        coef_counts = fc->hybrid_coef_counts_4x4;
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      }
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      break;
    case TX_8X8:
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      if (tx_type == DCT_DCT) {
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        coef_probs  = fc->coef_probs_8x8;
        coef_counts = fc->coef_counts_8x8;
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      } else {
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        coef_probs  = fc->hybrid_coef_probs_8x8;
        coef_counts = fc->hybrid_coef_counts_8x8;
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      }
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#if CONFIG_CNVCONTEXT
      if (type != PLANE_TYPE_Y2) {
        above_ec = (A0[aidx] + A0[aidx + 1]) != 0;
        left_ec  = (L0[lidx] + L0[lidx + 1]) != 0;
      }
#endif
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      break;
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    case TX_16X16:
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      if (tx_type == DCT_DCT) {
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        coef_probs  = fc->coef_probs_16x16;
        coef_counts = fc->coef_counts_16x16;
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      } else {
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        coef_probs  = fc->hybrid_coef_probs_16x16;
        coef_counts = fc->hybrid_coef_counts_16x16;
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      }
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#if CONFIG_CNVCONTEXT
      if (type == PLANE_TYPE_UV) {
        ENTROPY_CONTEXT *A1 = (ENTROPY_CONTEXT *) (xd->above_context + 1);
        ENTROPY_CONTEXT *L1 = (ENTROPY_CONTEXT *) (xd->left_context + 1);
        above_ec = (A0[aidx] + A0[aidx + 1] + A1[aidx] + A1[aidx + 1]) != 0;
        left_ec  = (L0[lidx] + L0[lidx + 1] + L1[lidx] + L1[lidx + 1]) != 0;
      } else if (type != PLANE_TYPE_Y2) {
        above_ec = (A0[aidx] + A0[aidx + 1] + A0[aidx + 2] + A0[aidx + 3]) != 0;
        left_ec  = (L0[lidx] + L0[lidx + 1] + L0[lidx + 2] + L0[lidx + 3]) != 0;
      }
#endif
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      break;
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    case TX_32X32:
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      coef_probs = fc->coef_probs_32x32;
      coef_counts = fc->coef_counts_32x32;
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#if CONFIG_CNVCONTEXT
      if (type == PLANE_TYPE_UV) {
        ENTROPY_CONTEXT *A1 = (ENTROPY_CONTEXT *) (xd->above_context + 1);
        ENTROPY_CONTEXT *L1 = (ENTROPY_CONTEXT *) (xd->left_context + 1);
        ENTROPY_CONTEXT *A2 = (ENTROPY_CONTEXT *) (xd->above_context + 2);
        ENTROPY_CONTEXT *L2 = (ENTROPY_CONTEXT *) (xd->left_context + 2);
        ENTROPY_CONTEXT *A3 = (ENTROPY_CONTEXT *) (xd->above_context + 3);
        ENTROPY_CONTEXT *L3 = (ENTROPY_CONTEXT *) (xd->left_context + 3);
        above_ec = (A0[aidx] + A0[aidx + 1] + A1[aidx] + A1[aidx + 1] +
                    A2[aidx] + A2[aidx + 1] + A3[aidx] + A3[aidx + 1]) != 0;
        left_ec  = (L0[lidx] + L0[lidx + 1] + L1[lidx] + L1[lidx + 1] +
                    L2[lidx] + L2[lidx + 1] + L3[lidx] + L3[lidx + 1]) != 0;
      } else if (type != PLANE_TYPE_Y2) {
        ENTROPY_CONTEXT *A1 = (ENTROPY_CONTEXT *) (xd->above_context + 1);
        ENTROPY_CONTEXT *L1 = (ENTROPY_CONTEXT *) (xd->left_context + 1);
        above_ec = (A0[aidx] + A0[aidx + 1] + A0[aidx + 2] + A0[aidx + 3] +
                    A1[aidx] + A1[aidx + 1] + A1[aidx + 2] + A1[aidx + 3]) != 0;
        left_ec  = (L0[lidx] + L0[lidx + 1] + L0[lidx + 2] + L0[lidx + 3] +
                    L1[lidx] + L1[lidx + 1] + L1[lidx + 2] + L1[lidx + 3]) != 0;
      }
#endif
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      break;
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  }
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  VP9_COMBINEENTROPYCONTEXTS(pt, above_ec, left_ec);
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  while (1) {
    int val;
    const uint8_t *cat6 = cat6_prob;
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    if (c >= seg_eob) break;
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    prob = coef_probs[type][get_coef_band(c)][pt];
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    if (!vp9_read(br, prob[EOB_CONTEXT_NODE]))
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      break;
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SKIP_START:
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    if (c >= seg_eob) break;
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    if (!vp9_read(br, prob[ZERO_CONTEXT_NODE])) {
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      INCREMENT_COUNT(ZERO_TOKEN);
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      ++c;
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      prob = coef_probs[type][get_coef_band(c)][pt];
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      goto SKIP_START;
    }
    // ONE_CONTEXT_NODE_0_
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    if (!vp9_read(br, prob[ONE_CONTEXT_NODE])) {
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      WRITE_COEF_CONTINUE(1, ONE_TOKEN);
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    }
    // LOW_VAL_CONTEXT_NODE_0_
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    if (!vp9_read(br, prob[LOW_VAL_CONTEXT_NODE])) {
      if (!vp9_read(br, prob[TWO_CONTEXT_NODE])) {
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        WRITE_COEF_CONTINUE(2, TWO_TOKEN);
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      }
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      if (!vp9_read(br, prob[THREE_CONTEXT_NODE])) {
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        WRITE_COEF_CONTINUE(3, THREE_TOKEN);
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      }
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      WRITE_COEF_CONTINUE(4, FOUR_TOKEN);
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    }
    // HIGH_LOW_CONTEXT_NODE_0_
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    if (!vp9_read(br, prob[HIGH_LOW_CONTEXT_NODE])) {
      if (!vp9_read(br, prob[CAT_ONE_CONTEXT_NODE])) {
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        val = CAT1_MIN_VAL;
        ADJUST_COEF(CAT1_PROB0, 0);
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        WRITE_COEF_CONTINUE(val, DCT_VAL_CATEGORY1);
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      }
      val = CAT2_MIN_VAL;
      ADJUST_COEF(CAT2_PROB1, 1);
      ADJUST_COEF(CAT2_PROB0, 0);
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      WRITE_COEF_CONTINUE(val, DCT_VAL_CATEGORY2);
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    }
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    // CAT_THREEFOUR_CONTEXT_NODE_0_
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    if (!vp9_read(br, prob[CAT_THREEFOUR_CONTEXT_NODE])) {
      if (!vp9_read(br, prob[CAT_THREE_CONTEXT_NODE])) {
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        val = CAT3_MIN_VAL;
        ADJUST_COEF(CAT3_PROB2, 2);
        ADJUST_COEF(CAT3_PROB1, 1);
        ADJUST_COEF(CAT3_PROB0, 0);
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        WRITE_COEF_CONTINUE(val, DCT_VAL_CATEGORY3);
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      }
      val = CAT4_MIN_VAL;
      ADJUST_COEF(CAT4_PROB3, 3);
      ADJUST_COEF(CAT4_PROB2, 2);
      ADJUST_COEF(CAT4_PROB1, 1);
      ADJUST_COEF(CAT4_PROB0, 0);
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      WRITE_COEF_CONTINUE(val, DCT_VAL_CATEGORY4);
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    }
    // CAT_FIVE_CONTEXT_NODE_0_:
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    if (!vp9_read(br, prob[CAT_FIVE_CONTEXT_NODE])) {
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      val = CAT5_MIN_VAL;
      ADJUST_COEF(CAT5_PROB4, 4);
      ADJUST_COEF(CAT5_PROB3, 3);
      ADJUST_COEF(CAT5_PROB2, 2);
      ADJUST_COEF(CAT5_PROB1, 1);
      ADJUST_COEF(CAT5_PROB0, 0);
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      WRITE_COEF_CONTINUE(val, DCT_VAL_CATEGORY5);
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    }
    val = 0;
    while (*cat6) {
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      val = (val << 1) | vp9_read(br, *cat6++);
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    }
    val += CAT6_MIN_VAL;
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    WRITE_COEF_CONTINUE(val, DCT_VAL_CATEGORY6);
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  }
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  if (c < seg_eob)
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    coef_counts[type][get_coef_band(c)][pt][DCT_EOB_TOKEN]++;
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  A0[aidx] = L0[lidx] = (c > !type);
  if (txfm_size >= TX_8X8 && type != PLANE_TYPE_Y2) {
    A0[aidx + 1] = L0[lidx + 1] = A0[aidx];
    if (txfm_size >= TX_16X16) {
      if (type == PLANE_TYPE_UV) {
        ENTROPY_CONTEXT *A1 = (ENTROPY_CONTEXT *) (xd->above_context + 1);
        ENTROPY_CONTEXT *L1 = (ENTROPY_CONTEXT *) (xd->left_context + 1);
        A1[aidx] = A1[aidx + 1] = L1[aidx] = L1[lidx + 1] = A0[aidx];
        if (txfm_size >= TX_32X32) {
          ENTROPY_CONTEXT *A2 = (ENTROPY_CONTEXT *) (xd->above_context + 2);
          ENTROPY_CONTEXT *L2 = (ENTROPY_CONTEXT *) (xd->left_context + 2);
          ENTROPY_CONTEXT *A3 = (ENTROPY_CONTEXT *) (xd->above_context + 3);
          ENTROPY_CONTEXT *L3 = (ENTROPY_CONTEXT *) (xd->left_context + 3);
          A2[aidx] = A2[aidx + 1] = A3[aidx] = A3[aidx + 1] = A0[aidx];
          L2[lidx] = L2[lidx + 1] = L3[lidx] = L3[lidx + 1] = A0[aidx];
        }
      } else {
        A0[aidx + 2] = A0[aidx + 3] = L0[lidx + 2] = L0[lidx + 3] = A0[aidx];
        if (txfm_size >= TX_32X32) {
          ENTROPY_CONTEXT *A1 = (ENTROPY_CONTEXT *) (xd->above_context + 1);
          ENTROPY_CONTEXT *L1 = (ENTROPY_CONTEXT *) (xd->left_context + 1);
          A1[aidx] = A1[aidx + 1] = A1[aidx + 2] = A1[aidx + 3] = A0[aidx];
          L1[lidx] = L1[lidx + 1] = L1[lidx + 2] = L1[lidx + 3] = A0[aidx];
        }
      }
    }
  }
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  return c;
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}
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static int get_eob(MACROBLOCKD* const xd, int segment_id, int eob_max) {
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  int eob;
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  if (vp9_get_segdata(xd, segment_id, SEG_LVL_SKIP)) {
    eob = 0;
  } else {
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    eob = eob_max;
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  }
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  return eob;
}

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int vp9_decode_sb_tokens(VP9D_COMP* const pbi,
                         MACROBLOCKD* const xd,
                         BOOL_DECODER* const bc) {
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  ENTROPY_CONTEXT* const A0 = (ENTROPY_CONTEXT *) xd->above_context;
  ENTROPY_CONTEXT* const L0 = (ENTROPY_CONTEXT *) xd->left_context;
  ENTROPY_CONTEXT* const A1 = (ENTROPY_CONTEXT *) (xd->above_context + 1);
  ENTROPY_CONTEXT* const L1 = (ENTROPY_CONTEXT *) (xd->left_context + 1);
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  uint16_t *const eobs = xd->eobs;
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  const int segment_id = xd->mode_info_context->mbmi.segment_id;
  int c, i, eobtotal = 0, seg_eob;

  // Luma block
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  eobs[0] = c = decode_coefs(pbi, xd, bc, 0, PLANE_TYPE_Y_WITH_DC,
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                             DCT_DCT, get_eob(xd, segment_id, 1024),
                             xd->sb_coeff_data.qcoeff,
                             vp9_default_zig_zag1d_32x32,
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                             TX_32X32);
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  eobtotal += c;

  // 16x16 chroma blocks
  seg_eob = get_eob(xd, segment_id, 256);
  for (i = 16; i < 24; i += 4) {
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    eobs[i] = c = decode_coefs(pbi, xd, bc, i, PLANE_TYPE_UV, DCT_DCT, seg_eob,
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                               xd->sb_coeff_data.qcoeff + 1024 + (i - 16) * 64,
                               vp9_default_zig_zag1d_16x16,
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                               TX_16X16);
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    eobtotal += c;
  }
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  // no Y2 block
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  A0[8] = L0[8] = A1[8] = L1[8] = 0;

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  return eobtotal;
}
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static int vp9_decode_mb_tokens_16x16(VP9D_COMP* const pbi,
                                      MACROBLOCKD* const xd,
                                      BOOL_DECODER* const bc) {
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  ENTROPY_CONTEXT* const A = (ENTROPY_CONTEXT *)xd->above_context;
  ENTROPY_CONTEXT* const L = (ENTROPY_CONTEXT *)xd->left_context;
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  uint16_t *const eobs = xd->eobs;
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  const int segment_id = xd->mode_info_context->mbmi.segment_id;
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  int c, i, eobtotal = 0, seg_eob;
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  // Luma block
  eobs[0] = c = decode_coefs(pbi, xd, bc, 0, PLANE_TYPE_Y_WITH_DC,
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                             get_tx_type(xd, &xd->block[0]),
                             get_eob(xd, segment_id, 256),
                             xd->qcoeff, vp9_default_zig_zag1d_16x16,
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                             TX_16X16);
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  eobtotal += c;
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  // 8x8 chroma blocks
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  seg_eob = get_eob(xd, segment_id, 64);
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  for (i = 16; i < 24; i += 4) {
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    eobs[i] = c = decode_coefs(pbi, xd, bc, i, PLANE_TYPE_UV,
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                               DCT_DCT, seg_eob, xd->block[i].qcoeff,
                               vp9_default_zig_zag1d_8x8,
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                               TX_8X8);
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    eobtotal += c;
  }
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  A[8] = 0;
  L[8] = 0;
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  return eobtotal;
}

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static int vp9_decode_mb_tokens_8x8(VP9D_COMP* const pbi,
                                    MACROBLOCKD* const xd,
                                    BOOL_DECODER* const bc) {
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  uint16_t *const eobs = xd->eobs;
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  PLANE_TYPE type;
  int c, i, eobtotal = 0, seg_eob;
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  const int segment_id = xd->mode_info_context->mbmi.segment_id;
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  int has_2nd_order = get_2nd_order_usage(xd);
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  // 2nd order DC block
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  if (has_2nd_order) {
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    eobs[24] = c = decode_coefs(pbi, xd, bc, 24, PLANE_TYPE_Y2,
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                                DCT_DCT, get_eob(xd, segment_id, 4),
                                xd->block[24].qcoeff,
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                                vp9_default_zig_zag1d_4x4, TX_8X8);
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    eobtotal += c - 4;
    type = PLANE_TYPE_Y_NO_DC;
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  } else {
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    xd->above_context->y2 = 0;
    xd->left_context->y2 = 0;
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    eobs[24] = 0;
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    type = PLANE_TYPE_Y_WITH_DC;
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  }
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  // luma blocks
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  seg_eob = get_eob(xd, segment_id, 64);
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  for (i = 0; i < 16; i += 4) {
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    eobs[i] = c = decode_coefs(pbi, xd, bc, i, type,
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                               type == PLANE_TYPE_Y_WITH_DC ?
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                               get_tx_type(xd, xd->block + i) : DCT_DCT,
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                               seg_eob, xd->block[i].qcoeff,
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                               vp9_default_zig_zag1d_8x8, TX_8X8);
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    eobtotal += c;
  }

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  // chroma blocks
  if (xd->mode_info_context->mbmi.mode == I8X8_PRED ||
      xd->mode_info_context->mbmi.mode == SPLITMV) {
    // use 4x4 transform for U, V components in I8X8/splitmv prediction mode
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    seg_eob = get_eob(xd, segment_id, 16);
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    for (i = 16; i < 24; i++) {
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      eobs[i] = c = decode_coefs(pbi, xd, bc, i, PLANE_TYPE_UV,
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                                 DCT_DCT, seg_eob, xd->block[i].qcoeff,
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                                 vp9_default_zig_zag1d_4x4, TX_4X4);
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      eobtotal += c;
    }
  } else {
    for (i = 16; i < 24; i += 4) {
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      eobs[i] = c = decode_coefs(pbi, xd, bc, i, PLANE_TYPE_UV,
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                                 DCT_DCT, seg_eob, xd->block[i].qcoeff,
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                                 vp9_default_zig_zag1d_8x8, TX_8X8);
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      eobtotal += c;
    }
  }

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  return eobtotal;
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}

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static int decode_coefs_4x4(VP9D_COMP *dx, MACROBLOCKD *xd,
                            BOOL_DECODER* const bc,
                            PLANE_TYPE type, int i, int seg_eob,
                            TX_TYPE tx_type, const int *scan) {
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  uint16_t *const eobs = xd->eobs;
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  int c;

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  c = decode_coefs(dx, xd, bc, i, type, tx_type, seg_eob,
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                   xd->block[i].qcoeff, scan, TX_4X4);
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  eobs[i] = c;

  return c;
}

static int decode_coefs_4x4_y(VP9D_COMP *dx, MACROBLOCKD *xd,
                              BOOL_DECODER* const bc,
                              PLANE_TYPE type, int i, int seg_eob) {
  const TX_TYPE tx_type = (type == PLANE_TYPE_Y_WITH_DC) ?
                          get_tx_type(xd, &xd->block[i]) : DCT_DCT;
  const int *scan;
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  switch (tx_type) {
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    case ADST_DCT:
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      scan = vp9_row_scan_4x4;
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      break;
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    case DCT_ADST:
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      scan = vp9_col_scan_4x4;
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      break;
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    default:
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      scan = vp9_default_zig_zag1d_4x4;
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      break;
  }
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  return decode_coefs_4x4(dx, xd, bc, type, i, seg_eob, tx_type, scan);
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}

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int vp9_decode_coefs_4x4(VP9D_COMP *dx, MACROBLOCKD *xd,
                         BOOL_DECODER* const bc,
                         PLANE_TYPE type, int i) {
  const int segment_id = xd->mode_info_context->mbmi.segment_id;
  const int seg_eob = get_eob(xd, segment_id, 16);

  return decode_coefs_4x4_y(dx, xd, bc, type, i, seg_eob);
}

static int decode_mb_tokens_4x4_uv(VP9D_COMP* const dx,
                                   MACROBLOCKD* const xd,
                                   BOOL_DECODER* const bc,
                                   int seg_eob) {
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  int eobtotal = 0, i;

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  // chroma blocks
  for (i = 16; i < 24; i++) {
    eobtotal += decode_coefs_4x4(dx, xd, bc, PLANE_TYPE_UV, i, seg_eob,
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                                 DCT_DCT, vp9_default_zig_zag1d_4x4);
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  }
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  return eobtotal;
}

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int vp9_decode_mb_tokens_4x4_uv(VP9D_COMP* const dx,
                                MACROBLOCKD* const xd,
                                BOOL_DECODER* const bc) {
  const int segment_id = xd->mode_info_context->mbmi.segment_id;
  const int seg_eob = get_eob(xd, segment_id, 16);

  return decode_mb_tokens_4x4_uv(dx, xd, bc, seg_eob);
}

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static int vp9_decode_mb_tokens_4x4(VP9D_COMP* const dx,
                                    MACROBLOCKD* const xd,
                                    BOOL_DECODER* const bc) {
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  int i, eobtotal = 0;
  PLANE_TYPE type;
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  const int segment_id = xd->mode_info_context->mbmi.segment_id;
  const int seg_eob = get_eob(xd, segment_id, 16);
  const int has_2nd_order = get_2nd_order_usage(xd);
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  // 2nd order DC block
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  if (has_2nd_order) {
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    eobtotal += decode_coefs_4x4(dx, xd, bc, PLANE_TYPE_Y2, 24, seg_eob,
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                                 DCT_DCT, vp9_default_zig_zag1d_4x4) - 16;
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    type = PLANE_TYPE_Y_NO_DC;
  } else {
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    xd->above_context->y2 = 0;
    xd->left_context->y2 = 0;
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    xd->eobs[24] = 0;
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    type = PLANE_TYPE_Y_WITH_DC;
  }
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  // luma blocks
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  for (i = 0; i < 16; ++i) {
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    eobtotal += decode_coefs_4x4_y(dx, xd, bc, type, i, seg_eob);
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  }
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  // chroma blocks
  eobtotal += decode_mb_tokens_4x4_uv(dx, xd, bc, seg_eob);

  return eobtotal;
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}
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int vp9_decode_mb_tokens(VP9D_COMP* const dx,
                         MACROBLOCKD* const xd,
                         BOOL_DECODER* const bc) {
  const TX_SIZE tx_size = xd->mode_info_context->mbmi.txfm_size;
  int eobtotal;

  if (tx_size == TX_16X16) {
    eobtotal = vp9_decode_mb_tokens_16x16(dx, xd, bc);
  } else if (tx_size == TX_8X8) {
    eobtotal = vp9_decode_mb_tokens_8x8(dx, xd, bc);
  } else {
    assert(tx_size == TX_4X4);
    eobtotal = vp9_decode_mb_tokens_4x4(dx, xd, bc);
  }

  return eobtotal;
}