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sprang@webrtc.org499631c2013-12-03 13:22:48 +00001/*
2 * Copyright (c) 2012 The WebRTC project authors. All Rights Reserved.
3 *
4 * Use of this source code is governed by a BSD-style license
5 * that can be found in the LICENSE file in the root of the source
6 * tree. An additional intellectual property rights grant can be found
7 * in the file PATENTS. All contributing project authors may
8 * be found in the AUTHORS file in the root of the source tree.
9 */
10
11#include <limits>
12
sprang@webrtc.org499631c2013-12-03 13:22:48 +000013#include "webrtc/modules/rtp_rtcp/source/byte_io.h"
kwibergac9f8762016-09-30 22:29:43 -070014#include "webrtc/test/gtest.h"
sprang@webrtc.org499631c2013-12-03 13:22:48 +000015
16namespace webrtc {
17namespace {
18
19class ByteIoTest : public ::testing::Test {
20 protected:
21 ByteIoTest() {}
22 virtual ~ByteIoTest() {}
23
24 enum { kAlignments = sizeof(uint64_t) - 1 };
25
26 // Method to create a test value that is not the same when byte reversed.
27 template <typename T>
28 T CreateTestValue(bool negative, uint8_t num_bytes) {
sprangc63f79a2016-02-26 05:13:47 -080029 // Examples of output:
30 // T = int32_t, negative = false, num_bytes = 4: 0x00010203
31 // T = int32_t, negative = true, num_bytes = 4: 0xFFFEFDFC
32 // T = int32_t, negative = false, num_bytes = 3: 0x000102
33 // * T = int32_t, negative = true, num_bytes = 3: 0xFFFEFD
34
sprang@webrtc.org499631c2013-12-03 13:22:48 +000035 T val = 0;
36 for (uint8_t i = 0; i != num_bytes; ++i) {
37 val = (val << 8) + (negative ? (0xFF - i) : (i + 1));
38 }
sprangc63f79a2016-02-26 05:13:47 -080039
40 // This loop will create a sign extend mask if num_bytes if necessary.
41 // For the last example (marked * above), the number needs to be sign
42 // extended to be a valid int32_t. The sign extend mask is 0xFF000000.
43 // Comments for each step with this example below.
44 if (std::numeric_limits<T>::is_signed && negative &&
45 num_bytes < sizeof(T)) {
46 // Start with mask = 0xFFFFFFFF.
47 T mask = static_cast<T>(-1);
48 // Create a temporary for the lowest byte (0x000000FF).
49 const T neg_byte = static_cast<T>(0xFF);
50 for (int i = 0; i < num_bytes; ++i) {
51 // And the inverse of the temporary and the mask:
52 // 0xFFFFFFFF & 0xFFFFFF00 = 0xFFFFFF00.
53 // 0xFFFFFF00 & 0xFFFF00FF = 0xFFFF0000.
54 // 0xFFFF0000 & 0xFF00FFFF = 0xFF000000.
55 mask &= ~(neg_byte << (i * 8));
56 }
57 // Add the sign extension mask to the actual value.
58 val |= mask;
sprang@webrtc.org499631c2013-12-03 13:22:48 +000059 }
60 return val;
61 }
62
63 // Populate byte buffer with value, in big endian format.
64 template <typename T>
65 void PopulateTestData(uint8_t* data, T value, int num_bytes, bool bigendian) {
66 if (bigendian) {
67 for (int i = 0; i < num_bytes; ++i) {
68 data[i] = (value >> ((num_bytes - i - 1) * 8)) & 0xFF;
69 }
70 } else {
71 for (int i = 0; i < num_bytes; ++i) {
72 data[i] = (value >> (i * 8)) & 0xFF;
73 }
74 }
75 }
76
77 // Test reading big endian numbers.
78 // Template arguments: Type T, read method RM(buffer), B bytes of data.
sprang@webrtc.org2a6558c2015-01-28 12:37:36 +000079 template <typename T, T (*RM)(const uint8_t*), int B>
sprang@webrtc.org499631c2013-12-03 13:22:48 +000080 void TestRead(bool big_endian) {
81 // Test both for values that are positive and negative (if signed)
82 for (int neg = 0; neg < 2; ++neg) {
83 bool negative = neg > 0;
84
85 // Write test value to byte buffer, in big endian format.
86 T test_value = CreateTestValue<T>(negative, B);
87 uint8_t bytes[B + kAlignments];
88
89 // Make one test for each alignment.
90 for (int i = 0; i < kAlignments; ++i) {
91 PopulateTestData(bytes + i, test_value, B, big_endian);
92
93 // Check that test value is retrieved from buffer when used read method.
94 EXPECT_EQ(test_value, RM(bytes + i));
95 }
96 }
97 }
98
99 // Test writing big endian numbers.
100 // Template arguments: Type T, write method WM(buffer, value), B bytes of data
101 template <typename T, void (*WM)(uint8_t*, T), int B>
102 void TestWrite(bool big_endian) {
103 // Test both for values that are positive and negative (if signed).
104 for (int neg = 0; neg < 2; ++neg) {
105 bool negative = neg > 0;
106
107 // Write test value to byte buffer, in big endian format.
108 T test_value = CreateTestValue<T>(negative, B);
109 uint8_t expected_bytes[B + kAlignments];
110 uint8_t bytes[B + kAlignments];
111
112 // Make one test for each alignment.
113 for (int i = 0; i < kAlignments; ++i) {
114 PopulateTestData(expected_bytes + i, test_value, B, big_endian);
115
116 // Zero initialize buffer and let WM populate it.
117 memset(bytes, 0, B + kAlignments);
118 WM(bytes + i, test_value);
119
120 // Check that data produced by WM is big endian as expected.
121 for (int j = 0; j < B; ++j) {
122 EXPECT_EQ(expected_bytes[i + j], bytes[i + j]);
123 }
124 }
125 }
126 }
127};
128
129TEST_F(ByteIoTest, Test16UBitBigEndian) {
130 TestRead<uint16_t, ByteReader<uint16_t>::ReadBigEndian,
131 sizeof(uint16_t)>(true);
132 TestWrite<uint16_t, ByteWriter<uint16_t>::WriteBigEndian,
133 sizeof(uint16_t)>(true);
134}
135
136TEST_F(ByteIoTest, Test24UBitBigEndian) {
137 TestRead<uint32_t, ByteReader<uint32_t, 3>::ReadBigEndian, 3>(true);
138 TestWrite<uint32_t, ByteWriter<uint32_t, 3>::WriteBigEndian, 3>(true);
139}
140
141TEST_F(ByteIoTest, Test32UBitBigEndian) {
142 TestRead<uint32_t, ByteReader<uint32_t>::ReadBigEndian,
143 sizeof(uint32_t)>(true);
144 TestWrite<uint32_t, ByteWriter<uint32_t>::WriteBigEndian,
145 sizeof(uint32_t)>(true);
146}
147
148TEST_F(ByteIoTest, Test64UBitBigEndian) {
149 TestRead<uint64_t, ByteReader<uint64_t>::ReadBigEndian,
150 sizeof(uint64_t)>(true);
151 TestWrite<uint64_t, ByteWriter<uint64_t>::WriteBigEndian,
152 sizeof(uint64_t)>(true);
153}
154
155TEST_F(ByteIoTest, Test16SBitBigEndian) {
156 TestRead<int16_t, ByteReader<int16_t>::ReadBigEndian,
157 sizeof(int16_t)>(true);
158 TestWrite<int16_t, ByteWriter<int16_t>::WriteBigEndian,
159 sizeof(int16_t)>(true);
160}
161
162TEST_F(ByteIoTest, Test24SBitBigEndian) {
163 TestRead<int32_t, ByteReader<int32_t, 3>::ReadBigEndian, 3>(true);
164 TestWrite<int32_t, ByteWriter<int32_t, 3>::WriteBigEndian, 3>(true);
165}
166
sprangc63f79a2016-02-26 05:13:47 -0800167TEST_F(ByteIoTest, Test32SBitBigEndian) {
sprang@webrtc.org499631c2013-12-03 13:22:48 +0000168 TestRead<int32_t, ByteReader<int32_t>::ReadBigEndian,
169 sizeof(int32_t)>(true);
170 TestWrite<int32_t, ByteWriter<int32_t>::WriteBigEndian,
171 sizeof(int32_t)>(true);
172}
173
sprangc63f79a2016-02-26 05:13:47 -0800174TEST_F(ByteIoTest, Test64SBitBigEndian) {
sprang@webrtc.org499631c2013-12-03 13:22:48 +0000175 TestRead<int64_t, ByteReader<int64_t>::ReadBigEndian,
176 sizeof(int64_t)>(true);
177 TestWrite<int64_t, ByteWriter<int64_t>::WriteBigEndian,
178 sizeof(int64_t)>(true);
179}
180
181TEST_F(ByteIoTest, Test16UBitLittleEndian) {
182 TestRead<uint16_t, ByteReader<uint16_t>::ReadLittleEndian,
183 sizeof(uint16_t)>(false);
184 TestWrite<uint16_t, ByteWriter<uint16_t>::WriteLittleEndian,
185 sizeof(uint16_t)>(false);
186}
187
188TEST_F(ByteIoTest, Test24UBitLittleEndian) {
189 TestRead<uint32_t, ByteReader<uint32_t, 3>::ReadLittleEndian, 3>(false);
190 TestWrite<uint32_t, ByteWriter<uint32_t, 3>::WriteLittleEndian, 3>(false);
191}
192
193TEST_F(ByteIoTest, Test32UBitLittleEndian) {
194 TestRead<uint32_t, ByteReader<uint32_t>::ReadLittleEndian,
195 sizeof(uint32_t)>(false);
196 TestWrite<uint32_t, ByteWriter<uint32_t>::WriteLittleEndian,
197 sizeof(uint32_t)>(false);
198}
199
200TEST_F(ByteIoTest, Test64UBitLittleEndian) {
201 TestRead<uint64_t, ByteReader<uint64_t>::ReadLittleEndian,
202 sizeof(uint64_t)>(false);
203 TestWrite<uint64_t, ByteWriter<uint64_t>::WriteLittleEndian,
204 sizeof(uint64_t)>(false);
205}
206
207TEST_F(ByteIoTest, Test16SBitLittleEndian) {
208 TestRead<int16_t, ByteReader<int16_t>::ReadLittleEndian,
209 sizeof(int16_t)>(false);
210 TestWrite<int16_t, ByteWriter<int16_t>::WriteLittleEndian,
211 sizeof(int16_t)>(false);
212}
213
214TEST_F(ByteIoTest, Test24SBitLittleEndian) {
215 TestRead<int32_t, ByteReader<int32_t, 3>::ReadLittleEndian, 3>(false);
216 TestWrite<int32_t, ByteWriter<int32_t, 3>::WriteLittleEndian, 3>(false);
217}
218
sprangc63f79a2016-02-26 05:13:47 -0800219TEST_F(ByteIoTest, Test32SBitLittleEndian) {
sprang@webrtc.org499631c2013-12-03 13:22:48 +0000220 TestRead<int32_t, ByteReader<int32_t>::ReadLittleEndian,
221 sizeof(int32_t)>(false);
222 TestWrite<int32_t, ByteWriter<int32_t>::WriteLittleEndian,
223 sizeof(int32_t)>(false);
224}
225
sprangc63f79a2016-02-26 05:13:47 -0800226TEST_F(ByteIoTest, Test64SBitLittleEndian) {
sprang@webrtc.org499631c2013-12-03 13:22:48 +0000227 TestRead<int64_t, ByteReader<int64_t>::ReadLittleEndian,
228 sizeof(int64_t)>(false);
229 TestWrite<int64_t, ByteWriter<int64_t>::WriteLittleEndian,
230 sizeof(int64_t)>(false);
231}
232
henrik.lundin7a839512016-01-24 23:47:51 -0800233// Sets up a fixed byte array and converts N bytes from the array into a
234// uint64_t. Verifies the value with hard-coded reference.
235TEST(ByteIo, SanityCheckFixedByteArrayUnsignedReadBigEndian) {
236 uint8_t data[8] = {0xFF, 0xEE, 0xDD, 0xCC, 0xBB, 0xAA, 0x99, 0x88};
237 uint64_t value = ByteReader<uint64_t, 2>::ReadBigEndian(data);
238 EXPECT_EQ(static_cast<uint64_t>(0xFFEE), value);
239 value = ByteReader<uint64_t, 3>::ReadBigEndian(data);
240 EXPECT_EQ(static_cast<uint64_t>(0xFFEEDD), value);
241 value = ByteReader<uint64_t, 4>::ReadBigEndian(data);
242 EXPECT_EQ(static_cast<uint64_t>(0xFFEEDDCC), value);
243 value = ByteReader<uint64_t, 5>::ReadBigEndian(data);
244 EXPECT_EQ(static_cast<uint64_t>(0xFFEEDDCCBB), value);
245 value = ByteReader<uint64_t, 6>::ReadBigEndian(data);
246 EXPECT_EQ(static_cast<uint64_t>(0xFFEEDDCCBBAA), value);
247 value = ByteReader<uint64_t, 7>::ReadBigEndian(data);
248 EXPECT_EQ(static_cast<uint64_t>(0xFFEEDDCCBBAA99), value);
249 value = ByteReader<uint64_t, 8>::ReadBigEndian(data);
250 EXPECT_EQ(static_cast<uint64_t>(0xFFEEDDCCBBAA9988), value);
251}
252
253// Same as above, but for little-endian reading.
254TEST(ByteIo, SanityCheckFixedByteArrayUnsignedReadLittleEndian) {
255 uint8_t data[8] = {0xFF, 0xEE, 0xDD, 0xCC, 0xBB, 0xAA, 0x99, 0x88};
256 uint64_t value = ByteReader<uint64_t, 2>::ReadLittleEndian(data);
257 EXPECT_EQ(static_cast<uint64_t>(0xEEFF), value);
258 value = ByteReader<uint64_t, 3>::ReadLittleEndian(data);
259 EXPECT_EQ(static_cast<uint64_t>(0xDDEEFF), value);
260 value = ByteReader<uint64_t, 4>::ReadLittleEndian(data);
261 EXPECT_EQ(static_cast<uint64_t>(0xCCDDEEFF), value);
262 value = ByteReader<uint64_t, 5>::ReadLittleEndian(data);
263 EXPECT_EQ(static_cast<uint64_t>(0xBBCCDDEEFF), value);
264 value = ByteReader<uint64_t, 6>::ReadLittleEndian(data);
265 EXPECT_EQ(static_cast<uint64_t>(0xAABBCCDDEEFF), value);
266 value = ByteReader<uint64_t, 7>::ReadLittleEndian(data);
267 EXPECT_EQ(static_cast<uint64_t>(0x99AABBCCDDEEFF), value);
268 value = ByteReader<uint64_t, 8>::ReadLittleEndian(data);
269 EXPECT_EQ(static_cast<uint64_t>(0x8899AABBCCDDEEFF), value);
270}
sprang@webrtc.org499631c2013-12-03 13:22:48 +0000271} // namespace
272} // namespace webrtc