1 | package brotli
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2 |
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3 | import "encoding/binary"
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4 |
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5 | /* Copyright 2010 Google Inc. All Rights Reserved.
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6 |
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7 | Distributed under MIT license.
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8 | See file LICENSE for detail or copy at https://opensource.org/licenses/MIT
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9 | */
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10 |
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11 | /* A (forgetful) hash table to the data seen by the compressor, to
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12 | help create backward references to previous data.
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13 |
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14 | This is a hash map of fixed size (bucket_size_) to a ring buffer of
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15 | fixed size (block_size_). The ring buffer contains the last block_size_
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16 | index positions of the given hash key in the compressed data. */
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17 | func (*h5) HashTypeLength() uint {
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18 | return 4
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19 | }
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20 |
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21 | func (*h5) StoreLookahead() uint {
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22 | return 4
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23 | }
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24 |
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25 | /* HashBytes is the function that chooses the bucket to place the address in. */
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26 | func hashBytesH5(data []byte, shift int) uint32 {
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27 | var h uint32 = binary.LittleEndian.Uint32(data) * kHashMul32
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28 |
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29 | /* The higher bits contain more mixture from the multiplication,
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30 | so we take our results from there. */
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31 | return uint32(h >> uint(shift))
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32 | }
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33 |
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34 | type h5 struct {
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35 | hasherCommon
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36 | bucket_size_ uint
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37 | block_size_ uint
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38 | hash_shift_ int
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39 | block_mask_ uint32
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40 | num []uint16
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41 | buckets []uint32
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42 | }
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43 |
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44 | func (h *h5) Initialize(params *encoderParams) {
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45 | h.hash_shift_ = 32 - h.params.bucket_bits
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46 | h.bucket_size_ = uint(1) << uint(h.params.bucket_bits)
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47 | h.block_size_ = uint(1) << uint(h.params.block_bits)
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48 | h.block_mask_ = uint32(h.block_size_ - 1)
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49 | h.num = make([]uint16, h.bucket_size_)
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50 | h.buckets = make([]uint32, h.block_size_*h.bucket_size_)
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51 | }
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52 |
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53 | func (h *h5) Prepare(one_shot bool, input_size uint, data []byte) {
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54 | var num []uint16 = h.num
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55 | var partial_prepare_threshold uint = h.bucket_size_ >> 6
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56 | /* Partial preparation is 100 times slower (per socket). */
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57 | if one_shot && input_size <= partial_prepare_threshold {
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58 | var i uint
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59 | for i = 0; i < input_size; i++ {
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60 | var key uint32 = hashBytesH5(data[i:], h.hash_shift_)
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61 | num[key] = 0
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62 | }
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63 | } else {
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64 | for i := 0; i < int(h.bucket_size_); i++ {
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65 | num[i] = 0
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66 | }
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67 | }
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68 | }
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69 |
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70 | /* Look at 4 bytes at &data[ix & mask].
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71 | Compute a hash from these, and store the value of ix at that position. */
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72 | func (h *h5) Store(data []byte, mask uint, ix uint) {
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73 | var num []uint16 = h.num
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74 | var key uint32 = hashBytesH5(data[ix&mask:], h.hash_shift_)
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75 | var minor_ix uint = uint(num[key]) & uint(h.block_mask_)
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76 | var offset uint = minor_ix + uint(key<<uint(h.params.block_bits))
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77 | h.buckets[offset] = uint32(ix)
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78 | num[key]++
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79 | }
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80 |
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81 | func (h *h5) StoreRange(data []byte, mask uint, ix_start uint, ix_end uint) {
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82 | var i uint
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83 | for i = ix_start; i < ix_end; i++ {
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84 | h.Store(data, mask, i)
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85 | }
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86 | }
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87 |
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88 | func (h *h5) StitchToPreviousBlock(num_bytes uint, position uint, ringbuffer []byte, ringbuffer_mask uint) {
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89 | if num_bytes >= h.HashTypeLength()-1 && position >= 3 {
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90 | /* Prepare the hashes for three last bytes of the last write.
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91 | These could not be calculated before, since they require knowledge
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92 | of both the previous and the current block. */
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93 | h.Store(ringbuffer, ringbuffer_mask, position-3)
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94 | h.Store(ringbuffer, ringbuffer_mask, position-2)
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95 | h.Store(ringbuffer, ringbuffer_mask, position-1)
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96 | }
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97 | }
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98 |
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99 | func (h *h5) PrepareDistanceCache(distance_cache []int) {
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100 | prepareDistanceCache(distance_cache, h.params.num_last_distances_to_check)
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101 | }
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102 |
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103 | /* Find a longest backward match of &data[cur_ix] up to the length of
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104 | max_length and stores the position cur_ix in the hash table.
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105 |
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106 | REQUIRES: PrepareDistanceCacheH5 must be invoked for current distance cache
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107 | values; if this method is invoked repeatedly with the same distance
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108 | cache values, it is enough to invoke PrepareDistanceCacheH5 once.
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109 |
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110 | Does not look for matches longer than max_length.
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111 | Does not look for matches further away than max_backward.
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112 | Writes the best match into |out|.
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113 | |out|->score is updated only if a better match is found. */
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114 | func (h *h5) FindLongestMatch(dictionary *encoderDictionary, data []byte, ring_buffer_mask uint, distance_cache []int, cur_ix uint, max_length uint, max_backward uint, gap uint, max_distance uint, out *hasherSearchResult) {
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115 | var num []uint16 = h.num
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116 | var buckets []uint32 = h.buckets
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117 | var cur_ix_masked uint = cur_ix & ring_buffer_mask
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118 | var min_score uint = out.score
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119 | var best_score uint = out.score
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120 | var best_len uint = out.len
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121 | var i uint
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122 | var bucket []uint32
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123 | /* Don't accept a short copy from far away. */
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124 | out.len = 0
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125 |
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126 | out.len_code_delta = 0
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127 |
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128 | /* Try last distance first. */
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129 | for i = 0; i < uint(h.params.num_last_distances_to_check); i++ {
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130 | var backward uint = uint(distance_cache[i])
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131 | var prev_ix uint = uint(cur_ix - backward)
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132 | if prev_ix >= cur_ix {
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133 | continue
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134 | }
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135 |
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136 | if backward > max_backward {
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137 | continue
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138 | }
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139 |
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140 | prev_ix &= ring_buffer_mask
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141 |
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142 | if cur_ix_masked+best_len > ring_buffer_mask || prev_ix+best_len > ring_buffer_mask || data[cur_ix_masked+best_len] != data[prev_ix+best_len] {
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143 | continue
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144 | }
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145 | {
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146 | var len uint = findMatchLengthWithLimit(data[prev_ix:], data[cur_ix_masked:], max_length)
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147 | if len >= 3 || (len == 2 && i < 2) {
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148 | /* Comparing for >= 2 does not change the semantics, but just saves for
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149 | a few unnecessary binary logarithms in backward reference score,
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150 | since we are not interested in such short matches. */
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151 | var score uint = backwardReferenceScoreUsingLastDistance(uint(len))
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152 | if best_score < score {
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153 | if i != 0 {
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154 | score -= backwardReferencePenaltyUsingLastDistance(i)
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155 | }
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156 | if best_score < score {
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157 | best_score = score
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158 | best_len = uint(len)
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159 | out.len = best_len
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160 | out.distance = backward
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161 | out.score = best_score
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162 | }
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163 | }
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164 | }
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165 | }
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166 | }
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167 | {
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168 | var key uint32 = hashBytesH5(data[cur_ix_masked:], h.hash_shift_)
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169 | bucket = buckets[key<<uint(h.params.block_bits):]
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170 | var down uint
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171 | if uint(num[key]) > h.block_size_ {
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172 | down = uint(num[key]) - h.block_size_
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173 | } else {
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174 | down = 0
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175 | }
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176 | for i = uint(num[key]); i > down; {
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177 | var prev_ix uint
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178 | i--
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179 | prev_ix = uint(bucket[uint32(i)&h.block_mask_])
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180 | var backward uint = cur_ix - prev_ix
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181 | if backward > max_backward {
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182 | break
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183 | }
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184 |
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185 | prev_ix &= ring_buffer_mask
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186 | if cur_ix_masked+best_len > ring_buffer_mask || prev_ix+best_len > ring_buffer_mask || data[cur_ix_masked+best_len] != data[prev_ix+best_len] {
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187 | continue
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188 | }
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189 | {
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190 | var len uint = findMatchLengthWithLimit(data[prev_ix:], data[cur_ix_masked:], max_length)
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191 | if len >= 4 {
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192 | /* Comparing for >= 3 does not change the semantics, but just saves
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193 | for a few unnecessary binary logarithms in backward reference
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194 | score, since we are not interested in such short matches. */
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195 | var score uint = backwardReferenceScore(uint(len), backward)
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196 | if best_score < score {
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197 | best_score = score
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198 | best_len = uint(len)
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199 | out.len = best_len
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200 | out.distance = backward
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201 | out.score = best_score
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202 | }
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203 | }
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204 | }
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205 | }
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206 |
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207 | bucket[uint32(num[key])&h.block_mask_] = uint32(cur_ix)
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208 | num[key]++
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209 | }
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210 |
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211 | if min_score == out.score {
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212 | searchInStaticDictionary(dictionary, h, data[cur_ix_masked:], max_length, max_backward+gap, max_distance, out, false)
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213 | }
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214 | }
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