Coverage Report

Created: 2026-03-31 06:56

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/libjxl/lib/jxl/enc_huffman.cc
Line
Count
Source
1
// Copyright (c) the JPEG XL Project Authors. All rights reserved.
2
//
3
// Use of this source code is governed by a BSD-style
4
// license that can be found in the LICENSE file.
5
6
#include "lib/jxl/enc_huffman.h"
7
8
#include <algorithm>
9
#include <cstddef>
10
#include <cstdint>
11
#include <memory>
12
13
#include "lib/jxl/base/common.h"
14
#include "lib/jxl/base/status.h"
15
#include "lib/jxl/enc_bit_writer.h"
16
#include "lib/jxl/enc_huffman_tree.h"
17
18
namespace jxl {
19
20
namespace {
21
22
constexpr int kCodeLengthCodes = 18;
23
24
void StoreHuffmanTreeOfHuffmanTreeToBitMask(const int num_codes,
25
                                            const uint8_t* code_length_bitdepth,
26
12.5k
                                            BitWriter* writer) {
27
12.5k
  static const uint8_t kStorageOrder[kCodeLengthCodes] = {
28
12.5k
      1, 2, 3, 4, 0, 5, 17, 6, 16, 7, 8, 9, 10, 11, 12, 13, 14, 15};
29
  // The bit lengths of the Huffman code over the code length alphabet
30
  // are compressed with the following static Huffman code:
31
  //   Symbol   Code
32
  //   ------   ----
33
  //   0          00
34
  //   1        1110
35
  //   2         110
36
  //   3          01
37
  //   4          10
38
  //   5        1111
39
12.5k
  static const uint8_t kHuffmanBitLengthHuffmanCodeSymbols[6] = {0, 7, 3,
40
12.5k
                                                                 2, 1, 15};
41
12.5k
  static const uint8_t kHuffmanBitLengthHuffmanCodeBitLengths[6] = {2, 4, 3,
42
12.5k
                                                                    2, 2, 4};
43
44
  // Throw away trailing zeros:
45
12.5k
  size_t codes_to_store = kCodeLengthCodes;
46
12.5k
  if (num_codes > 1) {
47
168k
    for (; codes_to_store > 0; --codes_to_store) {
48
168k
      if (code_length_bitdepth[kStorageOrder[codes_to_store - 1]] != 0) {
49
12.3k
        break;
50
12.3k
      }
51
168k
    }
52
12.3k
  }
53
12.5k
  size_t skip_some = 0;  // skips none.
54
12.5k
  if (code_length_bitdepth[kStorageOrder[0]] == 0 &&
55
5.22k
      code_length_bitdepth[kStorageOrder[1]] == 0) {
56
542
    skip_some = 2;  // skips two.
57
542
    if (code_length_bitdepth[kStorageOrder[2]] == 0) {
58
89
      skip_some = 3;  // skips three.
59
89
    }
60
542
  }
61
12.5k
  writer->Write(2, skip_some);
62
79.9k
  for (size_t i = skip_some; i < codes_to_store; ++i) {
63
67.4k
    size_t l = code_length_bitdepth[kStorageOrder[i]];
64
67.4k
    writer->Write(kHuffmanBitLengthHuffmanCodeBitLengths[l],
65
67.4k
                  kHuffmanBitLengthHuffmanCodeSymbols[l]);
66
67.4k
  }
67
12.5k
}
68
69
Status StoreHuffmanTreeToBitMask(const size_t huffman_tree_size,
70
                                 const uint8_t* huffman_tree,
71
                                 const uint8_t* huffman_tree_extra_bits,
72
                                 const uint8_t* code_length_bitdepth,
73
                                 const uint16_t* code_length_bitdepth_symbols,
74
12.5k
                                 BitWriter* writer) {
75
122k
  for (size_t i = 0; i < huffman_tree_size; ++i) {
76
109k
    size_t ix = huffman_tree[i];
77
109k
    writer->Write(code_length_bitdepth[ix], code_length_bitdepth_symbols[ix]);
78
109k
    JXL_ENSURE(ix <= 17);
79
    // Extra bits
80
109k
    switch (ix) {
81
239
      case 16:
82
239
        writer->Write(2, huffman_tree_extra_bits[i]);
83
239
        break;
84
1.60k
      case 17:
85
1.60k
        writer->Write(3, huffman_tree_extra_bits[i]);
86
1.60k
        break;
87
107k
      default:
88
        // no-op
89
107k
        break;
90
109k
    }
91
109k
  }
92
12.5k
  return true;
93
12.5k
}
94
95
void StoreSimpleHuffmanTree(const uint8_t* depths, size_t symbols[4],
96
                            size_t num_symbols, size_t max_bits,
97
12.0k
                            BitWriter* writer) {
98
  // value of 1 indicates a simple Huffman code
99
12.0k
  writer->Write(2, 1);
100
12.0k
  writer->Write(2, num_symbols - 1);  // NSYM - 1
101
102
  // Sort
103
46.7k
  for (size_t i = 0; i < num_symbols; i++) {
104
70.6k
    for (size_t j = i + 1; j < num_symbols; j++) {
105
35.9k
      if (depths[symbols[j]] < depths[symbols[i]]) {
106
3.99k
        std::swap(symbols[j], symbols[i]);
107
3.99k
      }
108
35.9k
    }
109
34.6k
  }
110
111
12.0k
  if (num_symbols == 2) {
112
4.28k
    writer->Write(max_bits, symbols[0]);
113
4.28k
    writer->Write(max_bits, symbols[1]);
114
7.76k
  } else if (num_symbols == 3) {
115
4.96k
    writer->Write(max_bits, symbols[0]);
116
4.96k
    writer->Write(max_bits, symbols[1]);
117
4.96k
    writer->Write(max_bits, symbols[2]);
118
4.96k
  } else {
119
2.79k
    writer->Write(max_bits, symbols[0]);
120
2.79k
    writer->Write(max_bits, symbols[1]);
121
2.79k
    writer->Write(max_bits, symbols[2]);
122
2.79k
    writer->Write(max_bits, symbols[3]);
123
    // tree-select
124
2.79k
    writer->Write(1, depths[symbols[0]] == 1 ? 1 : 0);
125
2.79k
  }
126
12.0k
}
127
128
// num = alphabet size
129
// depths = symbol depths
130
12.5k
Status StoreHuffmanTree(const uint8_t* depths, size_t num, BitWriter* writer) {
131
  // Write the Huffman tree into the compact representation.
132
12.5k
  auto arena = jxl::make_uninitialized_vector<uint8_t>(2 * num);
133
12.5k
  uint8_t* huffman_tree = arena.data();
134
12.5k
  uint8_t* huffman_tree_extra_bits = arena.data() + num;
135
12.5k
  size_t huffman_tree_size = 0;
136
12.5k
  WriteHuffmanTree(depths, num, &huffman_tree_size, huffman_tree,
137
12.5k
                   huffman_tree_extra_bits);
138
139
  // Calculate the statistics of the Huffman tree in the compact representation.
140
12.5k
  uint32_t huffman_tree_histogram[kCodeLengthCodes] = {0};
141
122k
  for (size_t i = 0; i < huffman_tree_size; ++i) {
142
109k
    ++huffman_tree_histogram[huffman_tree[i]];
143
109k
  }
144
145
12.5k
  int num_codes = 0;
146
12.5k
  int code = 0;
147
46.0k
  for (int i = 0; i < kCodeLengthCodes; ++i) {
148
45.9k
    if (huffman_tree_histogram[i]) {
149
24.9k
      if (num_codes == 0) {
150
12.5k
        code = i;
151
12.5k
        num_codes = 1;
152
12.5k
      } else if (num_codes == 1) {
153
12.3k
        num_codes = 2;
154
12.3k
        break;
155
12.3k
      }
156
24.9k
    }
157
45.9k
  }
158
159
  // Calculate another Huffman tree to use for compressing both the
160
  // earlier Huffman tree with.
161
12.5k
  uint8_t code_length_bitdepth[kCodeLengthCodes] = {0};
162
12.5k
  uint16_t code_length_bitdepth_symbols[kCodeLengthCodes] = {0};
163
12.5k
  CreateHuffmanTree(&huffman_tree_histogram[0], kCodeLengthCodes, 5,
164
12.5k
                    &code_length_bitdepth[0]);
165
12.5k
  ConvertBitDepthsToSymbols(code_length_bitdepth, kCodeLengthCodes,
166
12.5k
                            &code_length_bitdepth_symbols[0]);
167
168
  // Now, we have all the data, let's start storing it
169
12.5k
  StoreHuffmanTreeOfHuffmanTreeToBitMask(num_codes, code_length_bitdepth,
170
12.5k
                                         writer);
171
172
12.5k
  if (num_codes == 1) {
173
104
    code_length_bitdepth[code] = 0;
174
104
  }
175
176
  // Store the real huffman tree now.
177
12.5k
  JXL_RETURN_IF_ERROR(StoreHuffmanTreeToBitMask(
178
12.5k
      huffman_tree_size, huffman_tree, huffman_tree_extra_bits,
179
12.5k
      &code_length_bitdepth[0], code_length_bitdepth_symbols, writer));
180
12.5k
  return true;
181
12.5k
}
182
183
}  // namespace
184
185
Status BuildAndStoreHuffmanTree(const uint32_t* histogram, const size_t length,
186
                                uint8_t* depth, uint16_t* bits,
187
24.5k
                                BitWriter* writer) {
188
24.5k
  size_t count = 0;
189
24.5k
  size_t s4[4] = {0};
190
129k
  for (size_t i = 0; i < length; i++) {
191
116k
    if (histogram[i]) {
192
108k
      if (count < 4) {
193
84.6k
        s4[count] = i;
194
84.6k
      } else if (count > 4) {
195
11.6k
        break;
196
11.6k
      }
197
97.1k
      count++;
198
97.1k
    }
199
116k
  }
200
201
24.5k
  size_t max_bits_counter = length - 1;
202
24.5k
  size_t max_bits = 0;
203
87.0k
  while (max_bits_counter) {
204
62.5k
    max_bits_counter >>= 1;
205
62.5k
    ++max_bits;
206
62.5k
  }
207
208
24.5k
  if (count <= 1) {
209
    // Output symbol bits and depths are initialized with 0, nothing to do.
210
4
    writer->Write(4, 1);
211
4
    writer->Write(max_bits, s4[0]);
212
4
    return true;
213
4
  }
214
215
24.5k
  CreateHuffmanTree(histogram, length, 15, depth);
216
24.5k
  ConvertBitDepthsToSymbols(depth, length, bits);
217
218
24.5k
  if (count <= 4) {
219
12.0k
    StoreSimpleHuffmanTree(depth, s4, count, max_bits, writer);
220
12.5k
  } else {
221
12.5k
    JXL_RETURN_IF_ERROR(StoreHuffmanTree(depth, length, writer));
222
12.5k
  }
223
24.5k
  return true;
224
24.5k
}
225
226
}  // namespace jxl