Coverage Report

Created: 2024-04-15 06:29

/proc/self/cwd/pw_protobuf/decoder_fuzzer.cc
Line
Count
Source (jump to first uncovered line)
1
// Copyright 2022 The Pigweed Authors
2
//
3
// Licensed under the Apache License, Version 2.0 (the "License"); you may not
4
// use this file except in compliance with the License. You may obtain a copy of
5
// the License at
6
//
7
//     https://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, WITHOUT
11
// WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. See the
12
// License for the specific language governing permissions and limitations under
13
// the License.
14
15
#include <algorithm>
16
#include <cstddef>
17
#include <cstdint>
18
#include <cstring>
19
#include <vector>
20
21
#include "fuzz.h"
22
#include "pw_fuzzer/fuzzed_data_provider.h"
23
#include "pw_protobuf/stream_decoder.h"
24
#include "pw_span/span.h"
25
#include "pw_status/status.h"
26
#include "pw_status/status_with_size.h"
27
#include "pw_stream/memory_stream.h"
28
#include "pw_stream/stream.h"
29
30
namespace pw::protobuf::fuzz {
31
namespace {
32
33
void RecursiveFuzzedDecode(FuzzedDataProvider& provider,
34
                           StreamDecoder& decoder,
35
5.15k
                           uint32_t depth = 0) {
36
5.15k
  constexpr size_t kMaxRepeatedRead = 256;
37
5.15k
  constexpr size_t kMaxDepth = 3;
38
39
5.15k
  if (depth > kMaxDepth) {
40
724
    return;
41
724
  }
42
14.8k
  while (provider.remaining_bytes() != 0 && decoder.Next().ok()) {
43
12.0k
    FieldType field_type = provider.ConsumeEnum<FieldType>();
44
12.0k
    switch (field_type) {
45
434
      case kUint32:
46
434
        if (!decoder.ReadUint32().status().ok()) {
47
141
          return;
48
141
        }
49
293
        break;
50
423
      case kPackedUint32: {
51
423
        uint32_t packed[kMaxRepeatedRead] = {0};
52
423
        if (!decoder.ReadPackedUint32(packed).status().ok()) {
53
122
          return;
54
122
        }
55
423
      } break;
56
301
      case kUint64:
57
224
        if (!decoder.ReadUint64().status().ok()) {
58
25
          return;
59
25
        }
60
199
        break;
61
446
      case kPackedUint64: {
62
446
        uint64_t packed[kMaxRepeatedRead] = {0};
63
446
        if (!decoder.ReadPackedUint64(packed).status().ok()) {
64
80
          return;
65
80
        }
66
446
      } break;
67
493
      case kInt32:
68
493
        if (!decoder.ReadInt32().status().ok()) {
69
192
          return;
70
192
        }
71
301
        break;
72
314
      case kPackedInt32: {
73
314
        int32_t packed[kMaxRepeatedRead] = {0};
74
314
        if (!decoder.ReadPackedInt32(packed).status().ok()) {
75
45
          return;
76
45
        }
77
314
      } break;
78
269
      case kInt64:
79
234
        if (!decoder.ReadInt64().status().ok()) {
80
33
          return;
81
33
        }
82
201
        break;
83
289
      case kPackedInt64: {
84
289
        int64_t packed[kMaxRepeatedRead] = {0};
85
289
        if (!decoder.ReadPackedInt64(packed).status().ok()) {
86
43
          return;
87
43
        }
88
289
      } break;
89
406
      case kSint32:
90
406
        if (!decoder.ReadSint32().status().ok()) {
91
109
          return;
92
109
        }
93
297
        break;
94
434
      case kPackedSint32: {
95
434
        int32_t packed[kMaxRepeatedRead] = {0};
96
434
        if (!decoder.ReadPackedSint32(packed).status().ok()) {
97
141
          return;
98
141
        }
99
434
      } break;
100
293
      case kSint64:
101
249
        if (!decoder.ReadSint64().status().ok()) {
102
45
          return;
103
45
        }
104
204
        break;
105
300
      case kPackedSint64: {
106
300
        int64_t packed[kMaxRepeatedRead] = {0};
107
300
        if (!decoder.ReadPackedSint64(packed).status().ok()) {
108
43
          return;
109
43
        }
110
300
      } break;
111
265
      case kBool:
112
265
        if (!decoder.ReadBool().status().ok()) {
113
189
          return;
114
189
        }
115
76
        break;
116
351
      case kFixed32:
117
351
        if (!decoder.ReadFixed32().status().ok()) {
118
8
          return;
119
8
        }
120
343
        break;
121
440
      case kPackedFixed32: {
122
440
        uint32_t packed[kMaxRepeatedRead] = {0};
123
440
        if (!decoder.ReadPackedFixed32(packed).status().ok()) {
124
45
          return;
125
45
        }
126
440
      } break;
127
395
      case kFixed64:
128
212
        if (!decoder.ReadFixed64().status().ok()) {
129
15
          return;
130
15
        }
131
197
        break;
132
321
      case kPackedFixed64: {
133
321
        uint64_t packed[kMaxRepeatedRead] = {0};
134
321
        if (!decoder.ReadPackedFixed64(packed).status().ok()) {
135
43
          return;
136
43
        }
137
321
      } break;
138
416
      case kSfixed32:
139
416
        if (!decoder.ReadSfixed32().status().ok()) {
140
8
          return;
141
8
        }
142
408
        break;
143
408
      case kPackedSfixed32: {
144
341
        int32_t packed[kMaxRepeatedRead] = {0};
145
341
        if (!decoder.ReadPackedSfixed32(packed).status().ok()) {
146
42
          return;
147
42
        }
148
341
      } break;
149
299
      case kSfixed64:
150
207
        if (!decoder.ReadSfixed64().status().ok()) {
151
7
          return;
152
7
        }
153
200
        break;
154
412
      case kPackedSfixed64: {
155
412
        int64_t packed[kMaxRepeatedRead] = {0};
156
412
        if (!decoder.ReadPackedSfixed64(packed).status().ok()) {
157
26
          return;
158
26
        }
159
412
      } break;
160
386
      case kFloat:
161
253
        if (!decoder.ReadFloat().status().ok()) {
162
10
          return;
163
10
        }
164
243
        break;
165
320
      case kPackedFloat: {
166
320
        float packed[kMaxRepeatedRead] = {0};
167
320
        if (!decoder.ReadPackedFloat(packed).status().ok()) {
168
30
          return;
169
30
        }
170
320
      } break;
171
290
      case kDouble:
172
207
        if (!decoder.ReadDouble().status().ok()) {
173
5
          return;
174
5
        }
175
202
        break;
176
255
      case kPackedDouble: {
177
255
        double packed[kMaxRepeatedRead] = {0};
178
255
        if (!decoder.ReadPackedDouble(packed).status().ok()) {
179
20
          return;
180
20
        }
181
255
      } break;
182
512
      case kBytes: {
183
512
        std::byte bytes[kMaxRepeatedRead] = {std::byte{0}};
184
512
        if (!decoder.ReadBytes(bytes).status().ok()) {
185
45
          return;
186
45
        }
187
512
      } break;
188
492
      case kString: {
189
492
        char str[kMaxRepeatedRead] = {0};
190
492
        if (!decoder.ReadString(str).status().ok()) {
191
58
          return;
192
58
        }
193
492
      } break;
194
2.77k
      case kPush: {
195
2.77k
        StreamDecoder nested_decoder = decoder.GetNestedDecoder();
196
2.77k
        RecursiveFuzzedDecode(provider, nested_decoder, depth + 1);
197
2.77k
      } break;
198
0
      case kPop:
199
0
        if (depth > 0) {
200
          // Special "field". The marks the end of a nested message.
201
0
          return;
202
0
        }
203
12.0k
    }
204
12.0k
  }
205
4.43k
}
206
207
2.37k
void TestOneInput(FuzzedDataProvider& provider) {
208
2.37k
  constexpr size_t kMaxFuzzedProtoSize = 4096;
209
2.37k
  std::vector<std::byte> proto_message_data = provider.ConsumeBytes<std::byte>(
210
2.37k
      provider.ConsumeIntegralInRange<size_t>(0, kMaxFuzzedProtoSize));
211
2.37k
  stream::MemoryReader memory_reader(proto_message_data);
212
2.37k
  StreamDecoder decoder(memory_reader);
213
2.37k
  RecursiveFuzzedDecode(provider, decoder);
214
2.37k
}
215
216
}  // namespace
217
}  // namespace pw::protobuf::fuzz
218
219
6.62k
extern "C" int LLVMFuzzerTestOneInput(const uint8_t* data, size_t size) {
220
6.62k
  FuzzedDataProvider provider(data, size);
221
6.62k
  pw::protobuf::fuzz::TestOneInput(provider);
222
6.62k
  return 0;
223
6.62k
}