Coverage Report

Created: 2026-04-29 06:53

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/fuzz_crypto_ext.cpp
Line
Count
Source
1
// Copyright 2025 Google LLC
2
//
3
// Licensed under the Apache License, Version 2.0 (the "License");
4
// you may not use this file except in compliance with the License.
5
// You may obtain a copy of the License at
6
//
7
//      http://www.apache.org/licenses/LICENSE-2.0
8
//
9
// Unless required by applicable law or agreed to in writing, software
10
// distributed under the License is distributed on an "AS IS" BASIS,
11
// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
12
// See the License for the specific language governing permissions and
13
// limitations under the License.
14
//
15
////////////////////////////////////////////////////////////////////////////////
16
#include <stddef.h>
17
#include <stdint.h>
18
#include <string.h>
19
#include <vector>
20
#include <algorithm>
21
22
#include <fuzzer/FuzzedDataProvider.h>
23
24
#include "md5_ext.h"
25
#include "sha256_ext.h"
26
27
28
// Fuzzing target function pointer types for the enternal hash APIs
29
template <typename HashType> using InitOnceFn = void (*)(HashType*);
30
template <typename HashType> using UpdateFn   = void (*)(HashType*, size_t, const uint8_t*);
31
template <typename HashType> using FinishFn   = void (*)(HashType*, uint8_t*);
32
template <typename HashType> using DeinitFn   = void (*)(HashType*);
33
34
// Generic hashing flow that fuzz same hashing procedure for different algorithm
35
template <typename HashType>
36
static void fuzz_hash_ext_multi(FuzzedDataProvider &fdp,
37
                                size_t block_size,
38
                                InitOnceFn<HashType> init_once,
39
                                UpdateFn<HashType> update_fn,
40
                                FinishFn<HashType> finish_fn,
41
                                DeinitFn<HashType> deinit_fn,
42
2.45k
                                size_t digest_size) {
43
2.45k
  if (!fdp.remaining_bytes()) {
44
22
    return;
45
22
  }
46
47
  // Pull a random slice of data for fuzzing
48
2.43k
  size_t take_len = fdp.ConsumeIntegralInRange<size_t>(0, fdp.remaining_bytes());
49
2.43k
  std::vector<uint8_t> input_bytes = fdp.ConsumeBytes<uint8_t>(take_len);
50
51
  // Create 1 to 4 independent hashing contexts with it own digest buffer
52
2.43k
  const unsigned num_contexts = fdp.ConsumeIntegralInRange<unsigned>(1, 4);
53
2.43k
  std::vector<HashType> contexts(num_contexts);
54
2.43k
  std::vector<std::vector<uint8_t>> digests(num_contexts, std::vector<uint8_t>(digest_size));
55
7.42k
  for (unsigned i = 0; i < num_contexts; i++) {
56
4.99k
    init_once(&contexts[i]);
57
4.99k
  }
58
59
  // Intentionally misalign the data pointer to stress alignment sensitive paths
60
2.43k
  const size_t misalign_pad = fdp.ConsumeIntegralInRange<size_t>(0, 64);
61
2.43k
  std::vector<uint8_t> scratch_buf(misalign_pad + input_bytes.size());
62
2.43k
  if (!input_bytes.empty()) {
63
1.76k
    memcpy(scratch_buf.data() + misalign_pad, input_bytes.data(), input_bytes.size());
64
1.76k
  }
65
66
  // Define cursor and remaining bytes counter to keep track of the multiple hash update iterations
67
2.43k
  const uint8_t *cursor = scratch_buf.data() + misalign_pad;
68
2.43k
  size_t remaining = input_bytes.size();
69
70
  // Perform multiple hash update iterations on the raw data
71
2.43k
  unsigned num_iterations = fdp.ConsumeIntegralInRange<unsigned>(1, 4);
72
6.30k
  while (num_iterations-- && remaining > 0) {
73
    // Pick which context to feed this iteration
74
3.87k
    const unsigned ctx_index = (num_contexts == 1) ? 0 : fdp.ConsumeIntegralInRange<unsigned>(0, num_contexts - 1);
75
76
    // Choose a chunking pattern relative to block size.
77
3.87k
    enum Pattern { LESS1, EQ, PLUS1, SMALL, RANDOM, TAIL, HALT };
78
3.87k
    Pattern pattern = fdp.PickValueInArray<Pattern>({LESS1, EQ, PLUS1, SMALL, RANDOM, TAIL, HALT});
79
80
3.87k
    size_t chunk_len = 0;
81
3.87k
    switch (pattern) {
82
898
      case LESS1: {
83
        // Consume 1 byte less from block size from the raw data for this iteration
84
898
        if (block_size > 1) {
85
898
          chunk_len = std::min(remaining, block_size - 1);
86
898
        }
87
898
        break;
88
0
      }
89
254
      case EQ: {
90
        // Consume block size bytes from the raw data for this iteration
91
254
        chunk_len = std::min(remaining, block_size);
92
254
        break;
93
0
      }
94
245
      case PLUS1: {
95
        // Consume 1 byte more from block size from the raw data for this iteration
96
245
        chunk_len = std::min(remaining, block_size + 1);
97
245
        break;
98
0
      }
99
791
      case SMALL: {
100
        // Consume 1~32 bytes from the raw data for this iteration
101
791
        size_t small_len = (size_t)fdp.ConsumeIntegralInRange<int>(1, 32);
102
791
        chunk_len = std::min(remaining, small_len);
103
791
        break;
104
0
      }
105
644
      case RANDOM: {
106
        // Consume random bytes from the raw data for this iteration
107
644
        chunk_len = (remaining >= 1) ? (size_t)fdp.ConsumeIntegralInRange<size_t>(1, remaining) : 0;
108
644
        break;
109
0
      }
110
98
      case TAIL: {
111
        // Consume all remaining bytes from the raw data for this iteration
112
98
        chunk_len = remaining;
113
98
        break;
114
0
      }
115
942
      case HALT: {
116
        // Consume small chunk and consider reinitialisation or early halt of the hash iteration
117
942
        size_t step  = std::max<size_t>(1, fdp.ConsumeIntegralInRange<size_t>(1, block_size));
118
942
        size_t loops = fdp.ConsumeIntegralInRange<size_t>(1, 4);
119
2.51k
        for (size_t j = 0; j < loops && remaining > 0; j++) {
120
1.57k
          size_t w = std::min(remaining, step);
121
1.57k
          update_fn(&contexts[ctx_index], w, cursor);
122
1.57k
          cursor += w;
123
1.57k
          remaining -= w;
124
1.57k
        }
125
126
        // Randomly reinitialise the hash stream
127
942
        if (fdp.ConsumeBool()) {
128
376
          finish_fn(&contexts[ctx_index], digests[ctx_index].data());
129
376
        }
130
942
        continue;
131
0
      }
132
3.87k
    }
133
134
2.93k
    if (chunk_len == 0 || chunk_len > remaining) {
135
0
      continue;
136
0
    }
137
138
    // Fuzz the update function
139
2.93k
    update_fn(&contexts[ctx_index], chunk_len, cursor);
140
2.93k
    cursor += chunk_len;
141
2.93k
    remaining -= chunk_len;
142
2.93k
  }
143
144
  // Finalize all active contexts (finish_reset).
145
7.42k
  for (unsigned i = 0; i < num_contexts; i++) {
146
4.99k
    finish_fn(&contexts[i], digests[i].data());
147
4.99k
  }
148
149
  // Additional fuzzing on special context chaining approach.
150
2.43k
  if (num_contexts >= 2 && digest_size && fdp.ConsumeBool()) {
151
686
    unsigned src_idx = fdp.ConsumeIntegralInRange<unsigned>(0, num_contexts - 1);
152
686
    unsigned dst_idx = fdp.ConsumeIntegralInRange<unsigned>(0, num_contexts - 1);
153
686
    if (src_idx != dst_idx) {
154
398
      size_t offset = fdp.ConsumeIntegralInRange<size_t>(0, digest_size - 1);
155
398
      size_t max_avail = digest_size - offset; // >= 1
156
398
      size_t feed_len = fdp.ConsumeIntegralInRange<size_t>(1, max_avail);
157
398
      update_fn(&contexts[dst_idx], feed_len, digests[src_idx].data() + offset);
158
398
      finish_fn(&contexts[dst_idx], digests[dst_idx].data());
159
398
    }
160
686
  }
161
162
  // Deinitialise all contexts after this iteration
163
7.42k
  for (unsigned i = 0; i < num_contexts; i++) {
164
4.99k
    deinit_fn(&contexts[i]);
165
4.99k
  }
166
2.43k
}
fuzz_crypto_ext.cpp:void fuzz_hash_ext_multi<mhd_Md5CtxExt>(FuzzedDataProvider&, unsigned long, void (*)(mhd_Md5CtxExt*), void (*)(mhd_Md5CtxExt*, unsigned long, unsigned char const*), void (*)(mhd_Md5CtxExt*, unsigned char*), void (*)(mhd_Md5CtxExt*), unsigned long)
Line
Count
Source
42
1.25k
                                size_t digest_size) {
43
1.25k
  if (!fdp.remaining_bytes()) {
44
7
    return;
45
7
  }
46
47
  // Pull a random slice of data for fuzzing
48
1.24k
  size_t take_len = fdp.ConsumeIntegralInRange<size_t>(0, fdp.remaining_bytes());
49
1.24k
  std::vector<uint8_t> input_bytes = fdp.ConsumeBytes<uint8_t>(take_len);
50
51
  // Create 1 to 4 independent hashing contexts with it own digest buffer
52
1.24k
  const unsigned num_contexts = fdp.ConsumeIntegralInRange<unsigned>(1, 4);
53
1.24k
  std::vector<HashType> contexts(num_contexts);
54
1.24k
  std::vector<std::vector<uint8_t>> digests(num_contexts, std::vector<uint8_t>(digest_size));
55
3.96k
  for (unsigned i = 0; i < num_contexts; i++) {
56
2.71k
    init_once(&contexts[i]);
57
2.71k
  }
58
59
  // Intentionally misalign the data pointer to stress alignment sensitive paths
60
1.24k
  const size_t misalign_pad = fdp.ConsumeIntegralInRange<size_t>(0, 64);
61
1.24k
  std::vector<uint8_t> scratch_buf(misalign_pad + input_bytes.size());
62
1.24k
  if (!input_bytes.empty()) {
63
939
    memcpy(scratch_buf.data() + misalign_pad, input_bytes.data(), input_bytes.size());
64
939
  }
65
66
  // Define cursor and remaining bytes counter to keep track of the multiple hash update iterations
67
1.24k
  const uint8_t *cursor = scratch_buf.data() + misalign_pad;
68
1.24k
  size_t remaining = input_bytes.size();
69
70
  // Perform multiple hash update iterations on the raw data
71
1.24k
  unsigned num_iterations = fdp.ConsumeIntegralInRange<unsigned>(1, 4);
72
3.35k
  while (num_iterations-- && remaining > 0) {
73
    // Pick which context to feed this iteration
74
2.10k
    const unsigned ctx_index = (num_contexts == 1) ? 0 : fdp.ConsumeIntegralInRange<unsigned>(0, num_contexts - 1);
75
76
    // Choose a chunking pattern relative to block size.
77
2.10k
    enum Pattern { LESS1, EQ, PLUS1, SMALL, RANDOM, TAIL, HALT };
78
2.10k
    Pattern pattern = fdp.PickValueInArray<Pattern>({LESS1, EQ, PLUS1, SMALL, RANDOM, TAIL, HALT});
79
80
2.10k
    size_t chunk_len = 0;
81
2.10k
    switch (pattern) {
82
494
      case LESS1: {
83
        // Consume 1 byte less from block size from the raw data for this iteration
84
494
        if (block_size > 1) {
85
494
          chunk_len = std::min(remaining, block_size - 1);
86
494
        }
87
494
        break;
88
0
      }
89
150
      case EQ: {
90
        // Consume block size bytes from the raw data for this iteration
91
150
        chunk_len = std::min(remaining, block_size);
92
150
        break;
93
0
      }
94
158
      case PLUS1: {
95
        // Consume 1 byte more from block size from the raw data for this iteration
96
158
        chunk_len = std::min(remaining, block_size + 1);
97
158
        break;
98
0
      }
99
464
      case SMALL: {
100
        // Consume 1~32 bytes from the raw data for this iteration
101
464
        size_t small_len = (size_t)fdp.ConsumeIntegralInRange<int>(1, 32);
102
464
        chunk_len = std::min(remaining, small_len);
103
464
        break;
104
0
      }
105
351
      case RANDOM: {
106
        // Consume random bytes from the raw data for this iteration
107
351
        chunk_len = (remaining >= 1) ? (size_t)fdp.ConsumeIntegralInRange<size_t>(1, remaining) : 0;
108
351
        break;
109
0
      }
110
54
      case TAIL: {
111
        // Consume all remaining bytes from the raw data for this iteration
112
54
        chunk_len = remaining;
113
54
        break;
114
0
      }
115
438
      case HALT: {
116
        // Consume small chunk and consider reinitialisation or early halt of the hash iteration
117
438
        size_t step  = std::max<size_t>(1, fdp.ConsumeIntegralInRange<size_t>(1, block_size));
118
438
        size_t loops = fdp.ConsumeIntegralInRange<size_t>(1, 4);
119
1.17k
        for (size_t j = 0; j < loops && remaining > 0; j++) {
120
740
          size_t w = std::min(remaining, step);
121
740
          update_fn(&contexts[ctx_index], w, cursor);
122
740
          cursor += w;
123
740
          remaining -= w;
124
740
        }
125
126
        // Randomly reinitialise the hash stream
127
438
        if (fdp.ConsumeBool()) {
128
179
          finish_fn(&contexts[ctx_index], digests[ctx_index].data());
129
179
        }
130
438
        continue;
131
0
      }
132
2.10k
    }
133
134
1.67k
    if (chunk_len == 0 || chunk_len > remaining) {
135
0
      continue;
136
0
    }
137
138
    // Fuzz the update function
139
1.67k
    update_fn(&contexts[ctx_index], chunk_len, cursor);
140
1.67k
    cursor += chunk_len;
141
1.67k
    remaining -= chunk_len;
142
1.67k
  }
143
144
  // Finalize all active contexts (finish_reset).
145
3.96k
  for (unsigned i = 0; i < num_contexts; i++) {
146
2.71k
    finish_fn(&contexts[i], digests[i].data());
147
2.71k
  }
148
149
  // Additional fuzzing on special context chaining approach.
150
1.24k
  if (num_contexts >= 2 && digest_size && fdp.ConsumeBool()) {
151
389
    unsigned src_idx = fdp.ConsumeIntegralInRange<unsigned>(0, num_contexts - 1);
152
389
    unsigned dst_idx = fdp.ConsumeIntegralInRange<unsigned>(0, num_contexts - 1);
153
389
    if (src_idx != dst_idx) {
154
210
      size_t offset = fdp.ConsumeIntegralInRange<size_t>(0, digest_size - 1);
155
210
      size_t max_avail = digest_size - offset; // >= 1
156
210
      size_t feed_len = fdp.ConsumeIntegralInRange<size_t>(1, max_avail);
157
210
      update_fn(&contexts[dst_idx], feed_len, digests[src_idx].data() + offset);
158
210
      finish_fn(&contexts[dst_idx], digests[dst_idx].data());
159
210
    }
160
389
  }
161
162
  // Deinitialise all contexts after this iteration
163
3.96k
  for (unsigned i = 0; i < num_contexts; i++) {
164
2.71k
    deinit_fn(&contexts[i]);
165
2.71k
  }
166
1.24k
}
fuzz_crypto_ext.cpp:void fuzz_hash_ext_multi<mhd_Sha256CtxExt>(FuzzedDataProvider&, unsigned long, void (*)(mhd_Sha256CtxExt*), void (*)(mhd_Sha256CtxExt*, unsigned long, unsigned char const*), void (*)(mhd_Sha256CtxExt*, unsigned char*), void (*)(mhd_Sha256CtxExt*), unsigned long)
Line
Count
Source
42
1.20k
                                size_t digest_size) {
43
1.20k
  if (!fdp.remaining_bytes()) {
44
15
    return;
45
15
  }
46
47
  // Pull a random slice of data for fuzzing
48
1.18k
  size_t take_len = fdp.ConsumeIntegralInRange<size_t>(0, fdp.remaining_bytes());
49
1.18k
  std::vector<uint8_t> input_bytes = fdp.ConsumeBytes<uint8_t>(take_len);
50
51
  // Create 1 to 4 independent hashing contexts with it own digest buffer
52
1.18k
  const unsigned num_contexts = fdp.ConsumeIntegralInRange<unsigned>(1, 4);
53
1.18k
  std::vector<HashType> contexts(num_contexts);
54
1.18k
  std::vector<std::vector<uint8_t>> digests(num_contexts, std::vector<uint8_t>(digest_size));
55
3.46k
  for (unsigned i = 0; i < num_contexts; i++) {
56
2.28k
    init_once(&contexts[i]);
57
2.28k
  }
58
59
  // Intentionally misalign the data pointer to stress alignment sensitive paths
60
1.18k
  const size_t misalign_pad = fdp.ConsumeIntegralInRange<size_t>(0, 64);
61
1.18k
  std::vector<uint8_t> scratch_buf(misalign_pad + input_bytes.size());
62
1.18k
  if (!input_bytes.empty()) {
63
827
    memcpy(scratch_buf.data() + misalign_pad, input_bytes.data(), input_bytes.size());
64
827
  }
65
66
  // Define cursor and remaining bytes counter to keep track of the multiple hash update iterations
67
1.18k
  const uint8_t *cursor = scratch_buf.data() + misalign_pad;
68
1.18k
  size_t remaining = input_bytes.size();
69
70
  // Perform multiple hash update iterations on the raw data
71
1.18k
  unsigned num_iterations = fdp.ConsumeIntegralInRange<unsigned>(1, 4);
72
2.94k
  while (num_iterations-- && remaining > 0) {
73
    // Pick which context to feed this iteration
74
1.76k
    const unsigned ctx_index = (num_contexts == 1) ? 0 : fdp.ConsumeIntegralInRange<unsigned>(0, num_contexts - 1);
75
76
    // Choose a chunking pattern relative to block size.
77
1.76k
    enum Pattern { LESS1, EQ, PLUS1, SMALL, RANDOM, TAIL, HALT };
78
1.76k
    Pattern pattern = fdp.PickValueInArray<Pattern>({LESS1, EQ, PLUS1, SMALL, RANDOM, TAIL, HALT});
79
80
1.76k
    size_t chunk_len = 0;
81
1.76k
    switch (pattern) {
82
404
      case LESS1: {
83
        // Consume 1 byte less from block size from the raw data for this iteration
84
404
        if (block_size > 1) {
85
404
          chunk_len = std::min(remaining, block_size - 1);
86
404
        }
87
404
        break;
88
0
      }
89
104
      case EQ: {
90
        // Consume block size bytes from the raw data for this iteration
91
104
        chunk_len = std::min(remaining, block_size);
92
104
        break;
93
0
      }
94
87
      case PLUS1: {
95
        // Consume 1 byte more from block size from the raw data for this iteration
96
87
        chunk_len = std::min(remaining, block_size + 1);
97
87
        break;
98
0
      }
99
327
      case SMALL: {
100
        // Consume 1~32 bytes from the raw data for this iteration
101
327
        size_t small_len = (size_t)fdp.ConsumeIntegralInRange<int>(1, 32);
102
327
        chunk_len = std::min(remaining, small_len);
103
327
        break;
104
0
      }
105
293
      case RANDOM: {
106
        // Consume random bytes from the raw data for this iteration
107
293
        chunk_len = (remaining >= 1) ? (size_t)fdp.ConsumeIntegralInRange<size_t>(1, remaining) : 0;
108
293
        break;
109
0
      }
110
44
      case TAIL: {
111
        // Consume all remaining bytes from the raw data for this iteration
112
44
        chunk_len = remaining;
113
44
        break;
114
0
      }
115
504
      case HALT: {
116
        // Consume small chunk and consider reinitialisation or early halt of the hash iteration
117
504
        size_t step  = std::max<size_t>(1, fdp.ConsumeIntegralInRange<size_t>(1, block_size));
118
504
        size_t loops = fdp.ConsumeIntegralInRange<size_t>(1, 4);
119
1.33k
        for (size_t j = 0; j < loops && remaining > 0; j++) {
120
834
          size_t w = std::min(remaining, step);
121
834
          update_fn(&contexts[ctx_index], w, cursor);
122
834
          cursor += w;
123
834
          remaining -= w;
124
834
        }
125
126
        // Randomly reinitialise the hash stream
127
504
        if (fdp.ConsumeBool()) {
128
197
          finish_fn(&contexts[ctx_index], digests[ctx_index].data());
129
197
        }
130
504
        continue;
131
0
      }
132
1.76k
    }
133
134
1.25k
    if (chunk_len == 0 || chunk_len > remaining) {
135
0
      continue;
136
0
    }
137
138
    // Fuzz the update function
139
1.25k
    update_fn(&contexts[ctx_index], chunk_len, cursor);
140
1.25k
    cursor += chunk_len;
141
1.25k
    remaining -= chunk_len;
142
1.25k
  }
143
144
  // Finalize all active contexts (finish_reset).
145
3.46k
  for (unsigned i = 0; i < num_contexts; i++) {
146
2.28k
    finish_fn(&contexts[i], digests[i].data());
147
2.28k
  }
148
149
  // Additional fuzzing on special context chaining approach.
150
1.18k
  if (num_contexts >= 2 && digest_size && fdp.ConsumeBool()) {
151
297
    unsigned src_idx = fdp.ConsumeIntegralInRange<unsigned>(0, num_contexts - 1);
152
297
    unsigned dst_idx = fdp.ConsumeIntegralInRange<unsigned>(0, num_contexts - 1);
153
297
    if (src_idx != dst_idx) {
154
188
      size_t offset = fdp.ConsumeIntegralInRange<size_t>(0, digest_size - 1);
155
188
      size_t max_avail = digest_size - offset; // >= 1
156
188
      size_t feed_len = fdp.ConsumeIntegralInRange<size_t>(1, max_avail);
157
188
      update_fn(&contexts[dst_idx], feed_len, digests[src_idx].data() + offset);
158
188
      finish_fn(&contexts[dst_idx], digests[dst_idx].data());
159
188
    }
160
297
  }
161
162
  // Deinitialise all contexts after this iteration
163
3.46k
  for (unsigned i = 0; i < num_contexts; i++) {
164
2.28k
    deinit_fn(&contexts[i]);
165
2.28k
  }
166
1.18k
}
167
168
1.33k
extern "C" int LLVMFuzzerTestOneInput(const uint8_t *data, size_t size) {
169
1.33k
  FuzzedDataProvider fdp(data, size);
170
171
3.78k
  for (unsigned i = 0; i < fdp.ConsumeIntegralInRange<unsigned>(1, 4); i++) {
172
2.45k
    if (fdp.ConsumeBool()) {
173
1.25k
      fuzz_hash_ext_multi<struct mhd_Md5CtxExt>(
174
1.25k
        fdp, 64,
175
1.25k
        mhd_MD5_init_one_time, mhd_MD5_update, mhd_MD5_finish_reset, mhd_MD5_deinit,
176
1.25k
        mhd_MD5_DIGEST_SIZE);
177
1.25k
    } else {
178
1.20k
      fuzz_hash_ext_multi<struct mhd_Sha256CtxExt>(
179
1.20k
        fdp, 64,
180
1.20k
        mhd_SHA256_init_one_time, mhd_SHA256_update, mhd_SHA256_finish_reset, mhd_SHA256_deinit,
181
1.20k
        mhd_SHA256_DIGEST_SIZE);
182
1.20k
    }
183
2.45k
  }
184
1.33k
  return 0;
185
1.33k
}