CodedOutputStreamTest.cs 18 KB

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  1. #region Copyright notice and license
  2. // Protocol Buffers - Google's data interchange format
  3. // Copyright 2008 Google Inc. All rights reserved.
  4. // http://github.com/jskeet/dotnet-protobufs/
  5. // Original C++/Java/Python code:
  6. // http://code.google.com/p/protobuf/
  7. //
  8. // Redistribution and use in source and binary forms, with or without
  9. // modification, are permitted provided that the following conditions are
  10. // met:
  11. //
  12. // * Redistributions of source code must retain the above copyright
  13. // notice, this list of conditions and the following disclaimer.
  14. // * Redistributions in binary form must reproduce the above
  15. // copyright notice, this list of conditions and the following disclaimer
  16. // in the documentation and/or other materials provided with the
  17. // distribution.
  18. // * Neither the name of Google Inc. nor the names of its
  19. // contributors may be used to endorse or promote products derived from
  20. // this software without specific prior written permission.
  21. //
  22. // THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
  23. // "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
  24. // LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
  25. // A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
  26. // OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
  27. // SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
  28. // LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
  29. // DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
  30. // THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
  31. // (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
  32. // OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
  33. #endregion
  34. using System;
  35. using System.IO;
  36. using Google.Protobuf.TestProtos;
  37. using NUnit.Framework;
  38. namespace Google.Protobuf
  39. {
  40. public class CodedOutputStreamTest
  41. {
  42. /// <summary>
  43. /// Writes the given value using WriteRawVarint32() and WriteRawVarint64() and
  44. /// checks that the result matches the given bytes
  45. /// </summary>
  46. private static void AssertWriteVarint(byte[] data, ulong value)
  47. {
  48. // Only do 32-bit write if the value fits in 32 bits.
  49. if ((value >> 32) == 0)
  50. {
  51. MemoryStream rawOutput = new MemoryStream();
  52. CodedOutputStream output = CodedOutputStream.CreateInstance(rawOutput);
  53. output.WriteRawVarint32((uint) value);
  54. 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. MemoryStream rawOutput = new MemoryStream();
  61. CodedOutputStream output = CodedOutputStream.CreateInstance(rawOutput);
  62. output.WriteRawVarint64(value);
  63. output.Flush();
  64. Assert.AreEqual(data, rawOutput.ToArray());
  65. // Also try computing size.
  66. Assert.AreEqual(data.Length, CodedOutputStream.ComputeRawVarint64Size(value));
  67. }
  68. // Try different buffer sizes.
  69. for (int bufferSize = 1; bufferSize <= 16; bufferSize *= 2)
  70. {
  71. // Only do 32-bit write if the value fits in 32 bits.
  72. if ((value >> 32) == 0)
  73. {
  74. MemoryStream rawOutput = new MemoryStream();
  75. CodedOutputStream output =
  76. CodedOutputStream.CreateInstance(rawOutput, bufferSize);
  77. output.WriteRawVarint32((uint) value);
  78. output.Flush();
  79. Assert.AreEqual(data, rawOutput.ToArray());
  80. }
  81. {
  82. MemoryStream rawOutput = new MemoryStream();
  83. CodedOutputStream output = CodedOutputStream.CreateInstance(rawOutput, bufferSize);
  84. output.WriteRawVarint64(value);
  85. output.Flush();
  86. Assert.AreEqual(data, rawOutput.ToArray());
  87. }
  88. }
  89. }
  90. /// <summary>
  91. /// Tests WriteRawVarint32() and WriteRawVarint64()
  92. /// </summary>
  93. [Test]
  94. public void WriteVarint()
  95. {
  96. AssertWriteVarint(new byte[] {0x00}, 0);
  97. AssertWriteVarint(new byte[] {0x01}, 1);
  98. AssertWriteVarint(new byte[] {0x7f}, 127);
  99. // 14882
  100. AssertWriteVarint(new byte[] {0xa2, 0x74}, (0x22 << 0) | (0x74 << 7));
  101. // 2961488830
  102. AssertWriteVarint(new byte[] {0xbe, 0xf7, 0x92, 0x84, 0x0b},
  103. (0x3e << 0) | (0x77 << 7) | (0x12 << 14) | (0x04 << 21) |
  104. (0x0bL << 28));
  105. // 64-bit
  106. // 7256456126
  107. AssertWriteVarint(new byte[] {0xbe, 0xf7, 0x92, 0x84, 0x1b},
  108. (0x3e << 0) | (0x77 << 7) | (0x12 << 14) | (0x04 << 21) |
  109. (0x1bL << 28));
  110. // 41256202580718336
  111. AssertWriteVarint(
  112. new byte[] {0x80, 0xe6, 0xeb, 0x9c, 0xc3, 0xc9, 0xa4, 0x49},
  113. (0x00 << 0) | (0x66 << 7) | (0x6b << 14) | (0x1c << 21) |
  114. (0x43UL << 28) | (0x49L << 35) | (0x24UL << 42) | (0x49UL << 49));
  115. // 11964378330978735131
  116. AssertWriteVarint(
  117. new byte[] {0x9b, 0xa8, 0xf9, 0xc2, 0xbb, 0xd6, 0x80, 0x85, 0xa6, 0x01},
  118. unchecked((ulong)
  119. ((0x1b << 0) | (0x28 << 7) | (0x79 << 14) | (0x42 << 21) |
  120. (0x3bL << 28) | (0x56L << 35) | (0x00L << 42) |
  121. (0x05L << 49) | (0x26L << 56) | (0x01L << 63))));
  122. }
  123. /// <summary>
  124. /// Parses the given bytes using WriteRawLittleEndian32() and checks
  125. /// that the result matches the given value.
  126. /// </summary>
  127. private static void AssertWriteLittleEndian32(byte[] data, uint value)
  128. {
  129. MemoryStream rawOutput = new MemoryStream();
  130. CodedOutputStream output = CodedOutputStream.CreateInstance(rawOutput);
  131. output.WriteRawLittleEndian32(value);
  132. output.Flush();
  133. Assert.AreEqual(data, rawOutput.ToArray());
  134. // Try different buffer sizes.
  135. for (int bufferSize = 1; bufferSize <= 16; bufferSize *= 2)
  136. {
  137. rawOutput = new MemoryStream();
  138. output = CodedOutputStream.CreateInstance(rawOutput, bufferSize);
  139. output.WriteRawLittleEndian32(value);
  140. output.Flush();
  141. Assert.AreEqual(data, rawOutput.ToArray());
  142. }
  143. }
  144. /// <summary>
  145. /// Parses the given bytes using WriteRawLittleEndian64() and checks
  146. /// that the result matches the given value.
  147. /// </summary>
  148. private static void AssertWriteLittleEndian64(byte[] data, ulong value)
  149. {
  150. MemoryStream rawOutput = new MemoryStream();
  151. CodedOutputStream output = CodedOutputStream.CreateInstance(rawOutput);
  152. output.WriteRawLittleEndian64(value);
  153. output.Flush();
  154. Assert.AreEqual(data, rawOutput.ToArray());
  155. // Try different block sizes.
  156. for (int blockSize = 1; blockSize <= 16; blockSize *= 2)
  157. {
  158. rawOutput = new MemoryStream();
  159. output = CodedOutputStream.CreateInstance(rawOutput, blockSize);
  160. output.WriteRawLittleEndian64(value);
  161. output.Flush();
  162. Assert.AreEqual(data, rawOutput.ToArray());
  163. }
  164. }
  165. /// <summary>
  166. /// Tests writeRawLittleEndian32() and writeRawLittleEndian64().
  167. /// </summary>
  168. [Test]
  169. public void WriteLittleEndian()
  170. {
  171. AssertWriteLittleEndian32(new byte[] {0x78, 0x56, 0x34, 0x12}, 0x12345678);
  172. AssertWriteLittleEndian32(new byte[] {0xf0, 0xde, 0xbc, 0x9a}, 0x9abcdef0);
  173. AssertWriteLittleEndian64(
  174. new byte[] {0xf0, 0xde, 0xbc, 0x9a, 0x78, 0x56, 0x34, 0x12},
  175. 0x123456789abcdef0L);
  176. AssertWriteLittleEndian64(
  177. new byte[] {0x78, 0x56, 0x34, 0x12, 0xf0, 0xde, 0xbc, 0x9a},
  178. 0x9abcdef012345678UL);
  179. }
  180. [Test]
  181. public void WriteWholeMessage_VaryingBlockSizes()
  182. {
  183. TestAllTypes message = GeneratedMessageTest.GetSampleMessage();
  184. byte[] rawBytes = message.ToByteArray();
  185. // Try different block sizes.
  186. for (int blockSize = 1; blockSize < 256; blockSize *= 2)
  187. {
  188. MemoryStream rawOutput = new MemoryStream();
  189. CodedOutputStream output = CodedOutputStream.CreateInstance(rawOutput, blockSize);
  190. message.WriteTo(output);
  191. output.Flush();
  192. Assert.AreEqual(rawBytes, rawOutput.ToArray());
  193. }
  194. }
  195. [Test]
  196. public void EncodeZigZag32()
  197. {
  198. Assert.AreEqual(0u, CodedOutputStream.EncodeZigZag32(0));
  199. Assert.AreEqual(1u, CodedOutputStream.EncodeZigZag32(-1));
  200. Assert.AreEqual(2u, CodedOutputStream.EncodeZigZag32(1));
  201. Assert.AreEqual(3u, CodedOutputStream.EncodeZigZag32(-2));
  202. Assert.AreEqual(0x7FFFFFFEu, CodedOutputStream.EncodeZigZag32(0x3FFFFFFF));
  203. Assert.AreEqual(0x7FFFFFFFu, CodedOutputStream.EncodeZigZag32(unchecked((int) 0xC0000000)));
  204. Assert.AreEqual(0xFFFFFFFEu, CodedOutputStream.EncodeZigZag32(0x7FFFFFFF));
  205. Assert.AreEqual(0xFFFFFFFFu, CodedOutputStream.EncodeZigZag32(unchecked((int) 0x80000000)));
  206. }
  207. [Test]
  208. public void EncodeZigZag64()
  209. {
  210. Assert.AreEqual(0u, CodedOutputStream.EncodeZigZag64(0));
  211. Assert.AreEqual(1u, CodedOutputStream.EncodeZigZag64(-1));
  212. Assert.AreEqual(2u, CodedOutputStream.EncodeZigZag64(1));
  213. Assert.AreEqual(3u, CodedOutputStream.EncodeZigZag64(-2));
  214. Assert.AreEqual(0x000000007FFFFFFEuL,
  215. CodedOutputStream.EncodeZigZag64(unchecked((long) 0x000000003FFFFFFFUL)));
  216. Assert.AreEqual(0x000000007FFFFFFFuL,
  217. CodedOutputStream.EncodeZigZag64(unchecked((long) 0xFFFFFFFFC0000000UL)));
  218. Assert.AreEqual(0x00000000FFFFFFFEuL,
  219. CodedOutputStream.EncodeZigZag64(unchecked((long) 0x000000007FFFFFFFUL)));
  220. Assert.AreEqual(0x00000000FFFFFFFFuL,
  221. CodedOutputStream.EncodeZigZag64(unchecked((long) 0xFFFFFFFF80000000UL)));
  222. Assert.AreEqual(0xFFFFFFFFFFFFFFFEL,
  223. CodedOutputStream.EncodeZigZag64(unchecked((long) 0x7FFFFFFFFFFFFFFFUL)));
  224. Assert.AreEqual(0xFFFFFFFFFFFFFFFFL,
  225. CodedOutputStream.EncodeZigZag64(unchecked((long) 0x8000000000000000UL)));
  226. }
  227. [Test]
  228. public void RoundTripZigZag32()
  229. {
  230. // Some easier-to-verify round-trip tests. The inputs (other than 0, 1, -1)
  231. // were chosen semi-randomly via keyboard bashing.
  232. Assert.AreEqual(0, CodedInputStream.DecodeZigZag32(CodedOutputStream.EncodeZigZag32(0)));
  233. Assert.AreEqual(1, CodedInputStream.DecodeZigZag32(CodedOutputStream.EncodeZigZag32(1)));
  234. Assert.AreEqual(-1, CodedInputStream.DecodeZigZag32(CodedOutputStream.EncodeZigZag32(-1)));
  235. Assert.AreEqual(14927, CodedInputStream.DecodeZigZag32(CodedOutputStream.EncodeZigZag32(14927)));
  236. Assert.AreEqual(-3612, CodedInputStream.DecodeZigZag32(CodedOutputStream.EncodeZigZag32(-3612)));
  237. }
  238. [Test]
  239. public void RoundTripZigZag64()
  240. {
  241. Assert.AreEqual(0, CodedInputStream.DecodeZigZag64(CodedOutputStream.EncodeZigZag64(0)));
  242. Assert.AreEqual(1, CodedInputStream.DecodeZigZag64(CodedOutputStream.EncodeZigZag64(1)));
  243. Assert.AreEqual(-1, CodedInputStream.DecodeZigZag64(CodedOutputStream.EncodeZigZag64(-1)));
  244. Assert.AreEqual(14927, CodedInputStream.DecodeZigZag64(CodedOutputStream.EncodeZigZag64(14927)));
  245. Assert.AreEqual(-3612, CodedInputStream.DecodeZigZag64(CodedOutputStream.EncodeZigZag64(-3612)));
  246. Assert.AreEqual(856912304801416L,
  247. CodedInputStream.DecodeZigZag64(CodedOutputStream.EncodeZigZag64(856912304801416L)));
  248. Assert.AreEqual(-75123905439571256L,
  249. CodedInputStream.DecodeZigZag64(CodedOutputStream.EncodeZigZag64(-75123905439571256L)));
  250. }
  251. [Test]
  252. public void TestNegativeEnumNoTag()
  253. {
  254. Assert.AreEqual(10, CodedOutputStream.ComputeInt32Size(-2));
  255. Assert.AreEqual(10, CodedOutputStream.ComputeEnumSize((int) SampleEnum.NegativeValue));
  256. byte[] bytes = new byte[10];
  257. CodedOutputStream output = CodedOutputStream.CreateInstance(bytes);
  258. output.WriteEnum((int) SampleEnum.NegativeValue);
  259. Assert.AreEqual(0, output.SpaceLeft);
  260. Assert.AreEqual("FE-FF-FF-FF-FF-FF-FF-FF-FF-01", BitConverter.ToString(bytes));
  261. }
  262. [Test]
  263. public void TestCodedInputOutputPosition()
  264. {
  265. byte[] content = new byte[110];
  266. for (int i = 0; i < content.Length; i++)
  267. content[i] = (byte)i;
  268. byte[] child = new byte[120];
  269. {
  270. MemoryStream ms = new MemoryStream(child);
  271. CodedOutputStream cout = CodedOutputStream.CreateInstance(ms, 20);
  272. // Field 11: numeric value: 500
  273. cout.WriteTag(11, WireFormat.WireType.Varint);
  274. Assert.AreEqual(1, cout.Position);
  275. cout.WriteInt32(500);
  276. Assert.AreEqual(3, cout.Position);
  277. //Field 12: length delimited 120 bytes
  278. cout.WriteTag(12, WireFormat.WireType.LengthDelimited);
  279. Assert.AreEqual(4, cout.Position);
  280. cout.WriteBytes(ByteString.CopyFrom(content));
  281. Assert.AreEqual(115, cout.Position);
  282. // Field 13: fixed numeric value: 501
  283. cout.WriteTag(13, WireFormat.WireType.Fixed32);
  284. Assert.AreEqual(116, cout.Position);
  285. cout.WriteSFixed32(501);
  286. Assert.AreEqual(120, cout.Position);
  287. cout.Flush();
  288. }
  289. byte[] bytes = new byte[130];
  290. {
  291. CodedOutputStream cout = CodedOutputStream.CreateInstance(bytes);
  292. // Field 1: numeric value: 500
  293. cout.WriteTag(1, WireFormat.WireType.Varint);
  294. Assert.AreEqual(1, cout.Position);
  295. cout.WriteInt32(500);
  296. Assert.AreEqual(3, cout.Position);
  297. //Field 2: length delimited 120 bytes
  298. cout.WriteTag(2, WireFormat.WireType.LengthDelimited);
  299. Assert.AreEqual(4, cout.Position);
  300. cout.WriteBytes(ByteString.CopyFrom(child));
  301. Assert.AreEqual(125, cout.Position);
  302. // Field 3: fixed numeric value: 500
  303. cout.WriteTag(3, WireFormat.WireType.Fixed32);
  304. Assert.AreEqual(126, cout.Position);
  305. cout.WriteSFixed32(501);
  306. Assert.AreEqual(130, cout.Position);
  307. cout.Flush();
  308. }
  309. // Now test Input stream:
  310. {
  311. CodedInputStream cin = CodedInputStream.CreateInstance(new MemoryStream(bytes), new byte[50]);
  312. uint tag;
  313. Assert.AreEqual(0, cin.Position);
  314. // Field 1:
  315. Assert.IsTrue(cin.ReadTag(out tag) && tag >> 3 == 1);
  316. Assert.AreEqual(1, cin.Position);
  317. Assert.AreEqual(500, cin.ReadInt32());
  318. Assert.AreEqual(3, cin.Position);
  319. //Field 2:
  320. Assert.IsTrue(cin.ReadTag(out tag) && tag >> 3 == 2);
  321. Assert.AreEqual(4, cin.Position);
  322. int childlen = cin.ReadLength();
  323. Assert.AreEqual(120, childlen);
  324. Assert.AreEqual(5, cin.Position);
  325. int oldlimit = cin.PushLimit((int)childlen);
  326. Assert.AreEqual(5, cin.Position);
  327. // Now we are reading child message
  328. {
  329. // Field 11: numeric value: 500
  330. Assert.IsTrue(cin.ReadTag(out tag) && tag >> 3 == 11);
  331. Assert.AreEqual(6, cin.Position);
  332. Assert.AreEqual(500, cin.ReadInt32());
  333. Assert.AreEqual(8, cin.Position);
  334. //Field 12: length delimited 120 bytes
  335. Assert.IsTrue(cin.ReadTag(out tag) && tag >> 3 == 12);
  336. Assert.AreEqual(9, cin.Position);
  337. ByteString bstr = cin.ReadBytes();
  338. Assert.AreEqual(110, bstr.Length);
  339. Assert.AreEqual((byte) 109, bstr[109]);
  340. Assert.AreEqual(120, cin.Position);
  341. // Field 13: fixed numeric value: 501
  342. Assert.IsTrue(cin.ReadTag(out tag) && tag >> 3 == 13);
  343. // ROK - Previously broken here, this returned 126 failing to account for bufferSizeAfterLimit
  344. Assert.AreEqual(121, cin.Position);
  345. Assert.AreEqual(501, cin.ReadSFixed32());
  346. Assert.AreEqual(125, cin.Position);
  347. Assert.IsTrue(cin.IsAtEnd);
  348. }
  349. cin.PopLimit(oldlimit);
  350. Assert.AreEqual(125, cin.Position);
  351. // Field 3: fixed numeric value: 501
  352. Assert.IsTrue(cin.ReadTag(out tag) && tag >> 3 == 3);
  353. Assert.AreEqual(126, cin.Position);
  354. Assert.AreEqual(501, cin.ReadSFixed32());
  355. Assert.AreEqual(130, cin.Position);
  356. Assert.IsTrue(cin.IsAtEnd);
  357. }
  358. }
  359. }
  360. }