CodedOutputStreamTest.cs 19.5 KB
Newer Older
1 2 3
#region Copyright notice and license
// Protocol Buffers - Google's data interchange format
// Copyright 2008 Google Inc.  All rights reserved.
4
// https://developers.google.com/protocol-buffers/
5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32
//
// Redistribution and use in source and binary forms, with or without
// modification, are permitted provided that the following conditions are
// met:
//
//     * Redistributions of source code must retain the above copyright
// notice, this list of conditions and the following disclaimer.
//     * Redistributions in binary form must reproduce the above
// copyright notice, this list of conditions and the following disclaimer
// in the documentation and/or other materials provided with the
// distribution.
//     * Neither the name of Google Inc. nor the names of its
// contributors may be used to endorse or promote products derived from
// this software without specific prior written permission.
//
// THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
// "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
// LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
// A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
// OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
// SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
// LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
// DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
// THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
// (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
// OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
#endregion

33
using System;
34
using System.IO;
35
using Google.Protobuf.TestProtos;
36
using NUnit.Framework;
37

38
namespace Google.Protobuf
39 40 41 42 43 44 45 46 47 48 49 50 51
{
    public class CodedOutputStreamTest
    {
        /// <summary>
        /// Writes the given value using WriteRawVarint32() and WriteRawVarint64() and
        /// checks that the result matches the given bytes
        /// </summary>
        private static void AssertWriteVarint(byte[] data, ulong value)
        {
            // Only do 32-bit write if the value fits in 32 bits.
            if ((value >> 32) == 0)
            {
                MemoryStream rawOutput = new MemoryStream();
52
                CodedOutputStream output = new CodedOutputStream(rawOutput);
53 54
                output.WriteRawVarint32((uint) value);
                output.Flush();
55
                Assert.AreEqual(data, rawOutput.ToArray());
56
                // Also try computing size.
57
                Assert.AreEqual(data.Length, CodedOutputStream.ComputeRawVarint32Size((uint) value));
58 59 60 61
            }

            {
                MemoryStream rawOutput = new MemoryStream();
62
                CodedOutputStream output = new CodedOutputStream(rawOutput);
63 64
                output.WriteRawVarint64(value);
                output.Flush();
65
                Assert.AreEqual(data, rawOutput.ToArray());
66 67

                // Also try computing size.
68
                Assert.AreEqual(data.Length, CodedOutputStream.ComputeRawVarint64Size(value));
69 70 71 72 73 74 75 76 77 78
            }

            // Try different buffer sizes.
            for (int bufferSize = 1; bufferSize <= 16; bufferSize *= 2)
            {
                // Only do 32-bit write if the value fits in 32 bits.
                if ((value >> 32) == 0)
                {
                    MemoryStream rawOutput = new MemoryStream();
                    CodedOutputStream output =
79
                        new CodedOutputStream(rawOutput, bufferSize);
80 81
                    output.WriteRawVarint32((uint) value);
                    output.Flush();
82
                    Assert.AreEqual(data, rawOutput.ToArray());
83 84 85 86
                }

                {
                    MemoryStream rawOutput = new MemoryStream();
87
                    CodedOutputStream output = new CodedOutputStream(rawOutput, bufferSize);
88 89
                    output.WriteRawVarint64(value);
                    output.Flush();
90
                    Assert.AreEqual(data, rawOutput.ToArray());
91 92 93 94 95 96 97
                }
            }
        }

        /// <summary>
        /// Tests WriteRawVarint32() and WriteRawVarint64()
        /// </summary>
98
        [Test]
99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136
        public void WriteVarint()
        {
            AssertWriteVarint(new byte[] {0x00}, 0);
            AssertWriteVarint(new byte[] {0x01}, 1);
            AssertWriteVarint(new byte[] {0x7f}, 127);
            // 14882
            AssertWriteVarint(new byte[] {0xa2, 0x74}, (0x22 << 0) | (0x74 << 7));
            // 2961488830
            AssertWriteVarint(new byte[] {0xbe, 0xf7, 0x92, 0x84, 0x0b},
                              (0x3e << 0) | (0x77 << 7) | (0x12 << 14) | (0x04 << 21) |
                              (0x0bL << 28));

            // 64-bit
            // 7256456126
            AssertWriteVarint(new byte[] {0xbe, 0xf7, 0x92, 0x84, 0x1b},
                              (0x3e << 0) | (0x77 << 7) | (0x12 << 14) | (0x04 << 21) |
                              (0x1bL << 28));
            // 41256202580718336
            AssertWriteVarint(
                new byte[] {0x80, 0xe6, 0xeb, 0x9c, 0xc3, 0xc9, 0xa4, 0x49},
                (0x00 << 0) | (0x66 << 7) | (0x6b << 14) | (0x1c << 21) |
                (0x43UL << 28) | (0x49L << 35) | (0x24UL << 42) | (0x49UL << 49));
            // 11964378330978735131
            AssertWriteVarint(
                new byte[] {0x9b, 0xa8, 0xf9, 0xc2, 0xbb, 0xd6, 0x80, 0x85, 0xa6, 0x01},
                unchecked((ulong)
                          ((0x1b << 0) | (0x28 << 7) | (0x79 << 14) | (0x42 << 21) |
                           (0x3bL << 28) | (0x56L << 35) | (0x00L << 42) |
                           (0x05L << 49) | (0x26L << 56) | (0x01L << 63))));
        }

        /// <summary>
        /// Parses the given bytes using WriteRawLittleEndian32() and checks
        /// that the result matches the given value.
        /// </summary>
        private static void AssertWriteLittleEndian32(byte[] data, uint value)
        {
            MemoryStream rawOutput = new MemoryStream();
137
            CodedOutputStream output = new CodedOutputStream(rawOutput);
138 139
            output.WriteRawLittleEndian32(value);
            output.Flush();
140
            Assert.AreEqual(data, rawOutput.ToArray());
141 142 143 144 145

            // Try different buffer sizes.
            for (int bufferSize = 1; bufferSize <= 16; bufferSize *= 2)
            {
                rawOutput = new MemoryStream();
146
                output = new CodedOutputStream(rawOutput, bufferSize);
147 148
                output.WriteRawLittleEndian32(value);
                output.Flush();
149
                Assert.AreEqual(data, rawOutput.ToArray());
150 151 152 153 154 155 156 157 158 159
            }
        }

        /// <summary>
        /// Parses the given bytes using WriteRawLittleEndian64() and checks
        /// that the result matches the given value.
        /// </summary>
        private static void AssertWriteLittleEndian64(byte[] data, ulong value)
        {
            MemoryStream rawOutput = new MemoryStream();
160
            CodedOutputStream output = new CodedOutputStream(rawOutput);
161 162
            output.WriteRawLittleEndian64(value);
            output.Flush();
163
            Assert.AreEqual(data, rawOutput.ToArray());
164 165 166 167 168

            // Try different block sizes.
            for (int blockSize = 1; blockSize <= 16; blockSize *= 2)
            {
                rawOutput = new MemoryStream();
169
                output = new CodedOutputStream(rawOutput, blockSize);
170 171
                output.WriteRawLittleEndian64(value);
                output.Flush();
172
                Assert.AreEqual(data, rawOutput.ToArray());
173 174 175 176 177 178
            }
        }

        /// <summary>
        /// Tests writeRawLittleEndian32() and writeRawLittleEndian64().
        /// </summary>
179
        [Test]
180 181 182 183 184 185 186 187 188 189 190 191 192
        public void WriteLittleEndian()
        {
            AssertWriteLittleEndian32(new byte[] {0x78, 0x56, 0x34, 0x12}, 0x12345678);
            AssertWriteLittleEndian32(new byte[] {0xf0, 0xde, 0xbc, 0x9a}, 0x9abcdef0);

            AssertWriteLittleEndian64(
                new byte[] {0xf0, 0xde, 0xbc, 0x9a, 0x78, 0x56, 0x34, 0x12},
                0x123456789abcdef0L);
            AssertWriteLittleEndian64(
                new byte[] {0x78, 0x56, 0x34, 0x12, 0xf0, 0xde, 0xbc, 0x9a},
                0x9abcdef012345678UL);
        }

193
        [Test]
194
        public void WriteWholeMessage_VaryingBlockSizes()
195
        {
196
            TestAllTypes message = SampleMessages.CreateFullTestAllTypes();
197 198 199 200 201 202 203

            byte[] rawBytes = message.ToByteArray();

            // Try different block sizes.
            for (int blockSize = 1; blockSize < 256; blockSize *= 2)
            {
                MemoryStream rawOutput = new MemoryStream();
204
                CodedOutputStream output = new CodedOutputStream(rawOutput, blockSize);
205 206
                message.WriteTo(output);
                output.Flush();
207
                Assert.AreEqual(rawBytes, rawOutput.ToArray());
208 209
            }
        }
210
        
211
        [Test]
212 213
        public void EncodeZigZag32()
        {
214 215 216 217 218 219 220 221
            Assert.AreEqual(0u, CodedOutputStream.EncodeZigZag32(0));
            Assert.AreEqual(1u, CodedOutputStream.EncodeZigZag32(-1));
            Assert.AreEqual(2u, CodedOutputStream.EncodeZigZag32(1));
            Assert.AreEqual(3u, CodedOutputStream.EncodeZigZag32(-2));
            Assert.AreEqual(0x7FFFFFFEu, CodedOutputStream.EncodeZigZag32(0x3FFFFFFF));
            Assert.AreEqual(0x7FFFFFFFu, CodedOutputStream.EncodeZigZag32(unchecked((int) 0xC0000000)));
            Assert.AreEqual(0xFFFFFFFEu, CodedOutputStream.EncodeZigZag32(0x7FFFFFFF));
            Assert.AreEqual(0xFFFFFFFFu, CodedOutputStream.EncodeZigZag32(unchecked((int) 0x80000000)));
222 223
        }

224
        [Test]
225 226
        public void EncodeZigZag64()
        {
227 228 229 230 231
            Assert.AreEqual(0u, CodedOutputStream.EncodeZigZag64(0));
            Assert.AreEqual(1u, CodedOutputStream.EncodeZigZag64(-1));
            Assert.AreEqual(2u, CodedOutputStream.EncodeZigZag64(1));
            Assert.AreEqual(3u, CodedOutputStream.EncodeZigZag64(-2));
            Assert.AreEqual(0x000000007FFFFFFEuL,
232
                            CodedOutputStream.EncodeZigZag64(unchecked((long) 0x000000003FFFFFFFUL)));
233
            Assert.AreEqual(0x000000007FFFFFFFuL,
234
                            CodedOutputStream.EncodeZigZag64(unchecked((long) 0xFFFFFFFFC0000000UL)));
235
            Assert.AreEqual(0x00000000FFFFFFFEuL,
236
                            CodedOutputStream.EncodeZigZag64(unchecked((long) 0x000000007FFFFFFFUL)));
237
            Assert.AreEqual(0x00000000FFFFFFFFuL,
238
                            CodedOutputStream.EncodeZigZag64(unchecked((long) 0xFFFFFFFF80000000UL)));
239
            Assert.AreEqual(0xFFFFFFFFFFFFFFFEL,
240
                            CodedOutputStream.EncodeZigZag64(unchecked((long) 0x7FFFFFFFFFFFFFFFUL)));
241
            Assert.AreEqual(0xFFFFFFFFFFFFFFFFL,
242 243 244
                            CodedOutputStream.EncodeZigZag64(unchecked((long) 0x8000000000000000UL)));
        }

245
        [Test]
246 247 248 249
        public void RoundTripZigZag32()
        {
            // Some easier-to-verify round-trip tests.  The inputs (other than 0, 1, -1)
            // were chosen semi-randomly via keyboard bashing.
250 251 252 253 254
            Assert.AreEqual(0, CodedInputStream.DecodeZigZag32(CodedOutputStream.EncodeZigZag32(0)));
            Assert.AreEqual(1, CodedInputStream.DecodeZigZag32(CodedOutputStream.EncodeZigZag32(1)));
            Assert.AreEqual(-1, CodedInputStream.DecodeZigZag32(CodedOutputStream.EncodeZigZag32(-1)));
            Assert.AreEqual(14927, CodedInputStream.DecodeZigZag32(CodedOutputStream.EncodeZigZag32(14927)));
            Assert.AreEqual(-3612, CodedInputStream.DecodeZigZag32(CodedOutputStream.EncodeZigZag32(-3612)));
255 256
        }

257
        [Test]
258 259
        public void RoundTripZigZag64()
        {
260 261 262 263 264
            Assert.AreEqual(0, CodedInputStream.DecodeZigZag64(CodedOutputStream.EncodeZigZag64(0)));
            Assert.AreEqual(1, CodedInputStream.DecodeZigZag64(CodedOutputStream.EncodeZigZag64(1)));
            Assert.AreEqual(-1, CodedInputStream.DecodeZigZag64(CodedOutputStream.EncodeZigZag64(-1)));
            Assert.AreEqual(14927, CodedInputStream.DecodeZigZag64(CodedOutputStream.EncodeZigZag64(14927)));
            Assert.AreEqual(-3612, CodedInputStream.DecodeZigZag64(CodedOutputStream.EncodeZigZag64(-3612)));
265

266
            Assert.AreEqual(856912304801416L,
267
                            CodedInputStream.DecodeZigZag64(CodedOutputStream.EncodeZigZag64(856912304801416L)));
268
            Assert.AreEqual(-75123905439571256L,
269 270
                            CodedInputStream.DecodeZigZag64(CodedOutputStream.EncodeZigZag64(-75123905439571256L)));
        }
271

272
        [Test]
273 274
        public void TestNegativeEnumNoTag()
        {
275
            Assert.AreEqual(10, CodedOutputStream.ComputeInt32Size(-2));
276
            Assert.AreEqual(10, CodedOutputStream.ComputeEnumSize((int) SampleEnum.NegativeValue));
277 278

            byte[] bytes = new byte[10];
279
            CodedOutputStream output = new CodedOutputStream(bytes);
280
            output.WriteEnum((int) SampleEnum.NegativeValue);
281

282 283
            Assert.AreEqual(0, output.SpaceLeft);
            Assert.AreEqual("FE-FF-FF-FF-FF-FF-FF-FF-FF-01", BitConverter.ToString(bytes));
284 285
        }

286
        [Test]
287 288 289 290 291 292 293 294 295
        public void TestCodedInputOutputPosition()
        {
            byte[] content = new byte[110];
            for (int i = 0; i < content.Length; i++)
                content[i] = (byte)i;

            byte[] child = new byte[120];
            {
                MemoryStream ms = new MemoryStream(child);
296
                CodedOutputStream cout = new CodedOutputStream(ms, 20);
297 298
                // Field 11: numeric value: 500
                cout.WriteTag(11, WireFormat.WireType.Varint);
299
                Assert.AreEqual(1, cout.Position);
300
                cout.WriteInt32(500);
301
                Assert.AreEqual(3, cout.Position);
302 303
                //Field 12: length delimited 120 bytes
                cout.WriteTag(12, WireFormat.WireType.LengthDelimited);
304
                Assert.AreEqual(4, cout.Position);
305
                cout.WriteBytes(ByteString.CopyFrom(content));
306
                Assert.AreEqual(115, cout.Position);
307 308
                // Field 13: fixed numeric value: 501
                cout.WriteTag(13, WireFormat.WireType.Fixed32);
309
                Assert.AreEqual(116, cout.Position);
310
                cout.WriteSFixed32(501);
311
                Assert.AreEqual(120, cout.Position);
312 313 314 315 316
                cout.Flush();
            }

            byte[] bytes = new byte[130];
            {
317
                CodedOutputStream cout = new CodedOutputStream(bytes);
318 319
                // Field 1: numeric value: 500
                cout.WriteTag(1, WireFormat.WireType.Varint);
320
                Assert.AreEqual(1, cout.Position);
321
                cout.WriteInt32(500);
322
                Assert.AreEqual(3, cout.Position);
323 324
                //Field 2: length delimited 120 bytes
                cout.WriteTag(2, WireFormat.WireType.LengthDelimited);
325
                Assert.AreEqual(4, cout.Position);
326
                cout.WriteBytes(ByteString.CopyFrom(child));
327
                Assert.AreEqual(125, cout.Position);
328 329
                // Field 3: fixed numeric value: 500
                cout.WriteTag(3, WireFormat.WireType.Fixed32);
330
                Assert.AreEqual(126, cout.Position);
331
                cout.WriteSFixed32(501);
332
                Assert.AreEqual(130, cout.Position);
333 334
                cout.Flush();
            }
335
            // Now test Input stream:
336
            {
337
                CodedInputStream cin = new CodedInputStream(new MemoryStream(bytes), new byte[50], 0, 0, false);
338
                Assert.AreEqual(0, cin.Position);
339
                // Field 1:
340 341
                uint tag = cin.ReadTag();
                Assert.AreEqual(1, tag >> 3);
342
                Assert.AreEqual(1, cin.Position);
Jon Skeet's avatar
Jon Skeet committed
343
                Assert.AreEqual(500, cin.ReadInt32());
344
                Assert.AreEqual(3, cin.Position);
345
                //Field 2:
346 347
                tag = cin.ReadTag();
                Assert.AreEqual(2, tag >> 3);
348
                Assert.AreEqual(4, cin.Position);
349 350
                int childlen = cin.ReadLength();
                Assert.AreEqual(120, childlen);
351
                Assert.AreEqual(5, cin.Position);
352
                int oldlimit = cin.PushLimit((int)childlen);
353
                Assert.AreEqual(5, cin.Position);
354 355 356
                // Now we are reading child message
                {
                    // Field 11: numeric value: 500
357 358
                    tag = cin.ReadTag();
                    Assert.AreEqual(11, tag >> 3);
359
                    Assert.AreEqual(6, cin.Position);
Jon Skeet's avatar
Jon Skeet committed
360
                    Assert.AreEqual(500, cin.ReadInt32());
361
                    Assert.AreEqual(8, cin.Position);
362
                    //Field 12: length delimited 120 bytes
363 364
                    tag = cin.ReadTag();
                    Assert.AreEqual(12, tag >> 3);
365
                    Assert.AreEqual(9, cin.Position);
Jon Skeet's avatar
Jon Skeet committed
366 367 368
                    ByteString bstr = cin.ReadBytes();
                    Assert.AreEqual(110, bstr.Length);
                    Assert.AreEqual((byte) 109, bstr[109]);
369
                    Assert.AreEqual(120, cin.Position);
370
                    // Field 13: fixed numeric value: 501
371 372
                    tag = cin.ReadTag();
                    Assert.AreEqual(13, tag >> 3);
373
                    // ROK - Previously broken here, this returned 126 failing to account for bufferSizeAfterLimit
374
                    Assert.AreEqual(121, cin.Position);
Jon Skeet's avatar
Jon Skeet committed
375
                    Assert.AreEqual(501, cin.ReadSFixed32());
376 377
                    Assert.AreEqual(125, cin.Position);
                    Assert.IsTrue(cin.IsAtEnd);
378 379
                }
                cin.PopLimit(oldlimit);
380
                Assert.AreEqual(125, cin.Position);
381
                // Field 3: fixed numeric value: 501
382 383
                tag = cin.ReadTag();
                Assert.AreEqual(3, tag >> 3);
384
                Assert.AreEqual(126, cin.Position);
Jon Skeet's avatar
Jon Skeet committed
385
                Assert.AreEqual(501, cin.ReadSFixed32());
386 387
                Assert.AreEqual(130, cin.Position);
                Assert.IsTrue(cin.IsAtEnd);
388 389
            }
        }
390 391 392 393 394 395 396 397 398 399 400 401 402 403 404 405 406 407 408 409 410 411 412 413 414 415 416 417

        [Test]
        public void Dispose_DisposesUnderlyingStream()
        {
            var memoryStream = new MemoryStream();
            Assert.IsTrue(memoryStream.CanWrite);
            using (var cos = new CodedOutputStream(memoryStream))
            {
                cos.WriteRawByte(0);
                Assert.AreEqual(0, memoryStream.Position); // Not flushed yet
            }
            Assert.AreEqual(1, memoryStream.ToArray().Length); // Flushed data from CodedOutputStream to MemoryStream
            Assert.IsFalse(memoryStream.CanWrite); // Disposed
        }

        [Test]
        public void Dispose_WithLeaveOpen()
        {
            var memoryStream = new MemoryStream();
            Assert.IsTrue(memoryStream.CanWrite);
            using (var cos = new CodedOutputStream(memoryStream, true))
            {
                cos.WriteRawByte(0);
                Assert.AreEqual(0, memoryStream.Position); // Not flushed yet
            }
            Assert.AreEqual(1, memoryStream.Position); // Flushed data from CodedOutputStream to MemoryStream
            Assert.IsTrue(memoryStream.CanWrite); // We left the stream open
        }
418 419 420 421 422 423 424

        [Test]
        public void Dispose_FromByteArray()
        {
            var stream = new CodedOutputStream(new byte[10]);
            stream.Dispose();
        }
425 426
    }
}