[LOADED_DOCS: NONE]
Fix Utf8Transcoder AVX2 bug, add SIMD boundary tests - Added Hungarian language preference rule to copilot-instructions.md. - Fixed AVX2 SIMD bug in Utf8Transcoder: corrected upper-half store offset from Vector128<ushort>.Count to Vector256<ushort>.Count, preventing memory overlap on 32+ byte ASCII runs. - Added Utf8TranscoderTests covering all SIMD/scalar paths, with boundary and round-trip tests for ASCII, Hungarian, CJK, emoji, and mixed content, ensuring correctness and BCL compatibility.
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@ -166,3 +166,5 @@ Full doctrine: `../docs/ARCHITECTURE.md#framework-vs-consumer-boundary`
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19. **Documentation layering** — write `.md` documentation at the **defining layer** (where the code lives). Higher-layer `.md` files reference the base docs (e.g. `see AyCode.Services/docs/SIGNALR/README.md`) and document only project-specific overrides or extensions. Never duplicate base-layer descriptions in consumer-level docs.
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20. **Do not re-read .md files** already in your context window. They only change if you modify them yourself (new content is already in context) or if the developer tells you they changed — in that case re-read them once.
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21. **Folder navigation** — start from the root `README.md` for solution-level navigation. When you need to understand a folder's contents or find a type/class, read the `README.md` in that folder first — it indexes the local files and sub-folders. Follow this before grepping or reading source files.
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22. **Language Preference**: Communicate in Hungarian as requested by the user.
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@ -0,0 +1,310 @@
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using System.Text;
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using AyCode.Core.Serializers.Binaries;
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namespace AyCode.Core.Tests.Serialization;
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/// <summary>
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/// Round-trip and correctness tests for <see cref="Utf8Transcoder"/>'s SIMD path tiers.
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///
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/// <para><b>Critical coverage</b>: each path tier (Vector512 / Vector256 / Vector128 / scalar) has
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/// minimum-size and boundary-crossing inputs to ensure the path is actually exercised. The
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/// Hungarian benchmark in <c>BenchmarkTestDataProvider</c> bails out of the AVX2 ASCII-prefix
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/// path early (first non-ASCII byte at position 4-5), so it cannot validate the long-ASCII path
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/// on its own. These tests fill that gap.</para>
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/// </summary>
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[TestClass]
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public class Utf8TranscoderTests
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{
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private static readonly Encoding Utf8 = new UTF8Encoding(encoderShouldEmitUTF8Identifier: false, throwOnInvalidBytes: true);
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// ──────────────────────────────────────────────────────────────────────
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// CountUtf8Chars — content classes
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// ──────────────────────────────────────────────────────────────────────
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[TestMethod]
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public void CountUtf8Chars_AsciiOnly_MatchesStringLength()
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{
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var s = "Hello, World! This is plain ASCII.";
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var bytes = Utf8.GetBytes(s);
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Assert.AreEqual(s.Length, Utf8Transcoder.CountUtf8Chars(bytes));
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}
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[TestMethod]
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public void CountUtf8Chars_HungarianMixed_MatchesStringLength()
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{
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var s = "árvíztűrő tükörfúrógép";
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var bytes = Utf8.GetBytes(s);
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Assert.AreEqual(s.Length, Utf8Transcoder.CountUtf8Chars(bytes));
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}
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[TestMethod]
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public void CountUtf8Chars_CjkBmp_MatchesStringLength()
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{
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var s = "你好世界 こんにちは 안녕하세요";
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var bytes = Utf8.GetBytes(s);
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Assert.AreEqual(s.Length, Utf8Transcoder.CountUtf8Chars(bytes));
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}
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[TestMethod]
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public void CountUtf8Chars_SupplementaryPlane_CountsSurrogatePairs()
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{
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// Each emoji is U+1F600-range (4-byte UTF-8 → 2-char surrogate pair in UTF-16)
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var s = "😀😁😂🎉"; // 4 codepoints, but 8 chars in UTF-16
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var bytes = Utf8.GetBytes(s);
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Assert.AreEqual(s.Length, Utf8Transcoder.CountUtf8Chars(bytes));
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Assert.AreEqual(8, s.Length, "Sanity check: each emoji is a surrogate pair");
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}
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[TestMethod]
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public void CountUtf8Chars_MixedAllClasses_MatchesStringLength()
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{
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var s = "ASCII Magyar:árvíz CJK:你好 Emoji:😀";
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var bytes = Utf8.GetBytes(s);
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Assert.AreEqual(s.Length, Utf8Transcoder.CountUtf8Chars(bytes));
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}
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[TestMethod]
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public void CountUtf8Chars_Empty_ReturnsZero()
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{
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Assert.AreEqual(0, Utf8Transcoder.CountUtf8Chars(ReadOnlySpan<byte>.Empty));
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}
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// ──────────────────────────────────────────────────────────────────────
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// EncodeUtf8SinglePass + DecodeUtf8SinglePass — round-trip per content class
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// ──────────────────────────────────────────────────────────────────────
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[TestMethod]
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public void EncodeDecode_AsciiShort_RoundTrip()
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{
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AssertRoundTrip("Hello");
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}
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[TestMethod]
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public void EncodeDecode_AsciiExactly31Bytes_RoundTrip()
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{
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// Boundary: just below FixStr 31-byte limit, just below Vector256 threshold (32)
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AssertRoundTrip(new string('a', 31));
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}
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[TestMethod]
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public void EncodeDecode_AsciiExactly32Bytes_RoundTrip()
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{
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// Boundary: exactly Vector256<byte>.Count — Phase 1 AVX2 widen path triggers
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// CRITICAL: this validates the Vector256.Widen upper-half store offset bug-fix.
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AssertRoundTrip(new string('a', 32));
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}
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[TestMethod]
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public void EncodeDecode_AsciiLong_64Bytes_RoundTrip()
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{
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// Boundary: Vector512 threshold for the encoder; 2× Vector256 iter for the decoder
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AssertRoundTrip(new string('x', 64));
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}
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[TestMethod]
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public void EncodeDecode_AsciiVeryLong_500Bytes_RoundTrip()
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{
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// Multi-iter SIMD widen on the decoder; AVX-512 path on capable hosts
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AssertRoundTrip(new string('z', 500));
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}
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[TestMethod]
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public void EncodeDecode_HungarianShort_RoundTrip()
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{
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AssertRoundTrip("Termék");
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}
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[TestMethod]
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public void EncodeDecode_HungarianMedium_RoundTrip()
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{
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AssertRoundTrip("árvíztűrő tükörfúrógép");
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}
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[TestMethod]
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public void EncodeDecode_HungarianLong_RoundTrip()
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{
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// Long enough to span multiple Vector128/256 iterations
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AssertRoundTrip(string.Concat(Enumerable.Repeat("árvíztűrő tükörfúrógép ", 20)));
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}
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[TestMethod]
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public void EncodeDecode_CjkBmp_RoundTrip()
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{
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AssertRoundTrip("你好世界 こんにちは 안녕하세요");
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}
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[TestMethod]
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public void EncodeDecode_CjkBmpLong_RoundTrip()
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{
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AssertRoundTrip(string.Concat(Enumerable.Repeat("你好世界 ", 30)));
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}
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[TestMethod]
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public void EncodeDecode_SupplementaryPlane_RoundTrip()
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{
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AssertRoundTrip("😀😁😂🎉🌟");
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}
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[TestMethod]
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public void EncodeDecode_MixedAllClasses_RoundTrip()
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{
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AssertRoundTrip("Plain ASCII + Magyar (árvíztűrő) + CJK (你好世界) + Emoji (😀🎉)");
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}
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[TestMethod]
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public void EncodeDecode_LongMixed_RoundTrip()
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{
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// Long mixed content forcing all SIMD tiers + scalar tail to engage
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var sb = new StringBuilder();
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for (var i = 0; i < 50; i++)
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{
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sb.Append("ASCII run-").Append(i).Append(" Magyar:árvíz CJK:你好 ");
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}
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AssertRoundTrip(sb.ToString());
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}
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[TestMethod]
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public void EncodeDecode_BoundaryAsciiToHungarian_RoundTrip()
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{
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// ASCII prefix exactly at common boundaries, then non-ASCII switch
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for (var asciiLen = 0; asciiLen <= 64; asciiLen++)
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{
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var s = new string('a', asciiLen) + "árvíz";
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AssertRoundTrip(s, $"asciiLen={asciiLen}");
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}
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}
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[TestMethod]
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public void EncodeDecode_BoundaryAsciiToCjk_RoundTrip()
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{
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// 3-byte sequence boundary stress
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for (var asciiLen = 0; asciiLen <= 64; asciiLen++)
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{
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var s = new string('a', asciiLen) + "你好世界";
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AssertRoundTrip(s, $"asciiLen={asciiLen}");
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}
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}
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[TestMethod]
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public void EncodeDecode_BoundaryAsciiToEmoji_RoundTrip()
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{
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// 4-byte sequence boundary (surrogate pair in UTF-16)
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for (var asciiLen = 0; asciiLen <= 64; asciiLen++)
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{
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var s = new string('a', asciiLen) + "😀";
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AssertRoundTrip(s, $"asciiLen={asciiLen}");
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}
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}
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[TestMethod]
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public void EncodeDecode_Empty_RoundTrip()
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{
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AssertRoundTrip(string.Empty);
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}
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[TestMethod]
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public void EncodeDecode_SingleAsciiChar_RoundTrip()
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{
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AssertRoundTrip("X");
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}
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[TestMethod]
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public void EncodeDecode_SingleHungarianChar_RoundTrip()
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{
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AssertRoundTrip("é");
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}
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[TestMethod]
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public void EncodeDecode_SingleCjkChar_RoundTrip()
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{
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AssertRoundTrip("好");
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}
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[TestMethod]
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public void EncodeDecode_SingleEmoji_RoundTrip()
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{
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AssertRoundTrip("😀");
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}
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// ──────────────────────────────────────────────────────────────────────
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// Decoder-side cross-check: BCL Encoding.UTF8.GetString reference
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// ──────────────────────────────────────────────────────────────────────
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[TestMethod]
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public void DecodeUtf8SinglePass_MatchesBclGetString_Ascii()
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{
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AssertDecodeMatchesBcl("ASCII test string with spaces and digits 0123456789.");
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}
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[TestMethod]
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public void DecodeUtf8SinglePass_MatchesBclGetString_LongAscii32Plus()
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{
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// CRITICAL — exercises the Vector256 ASCII prefix widen path that had the offset bug
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AssertDecodeMatchesBcl(new string('A', 32));
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AssertDecodeMatchesBcl(new string('A', 33));
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AssertDecodeMatchesBcl(new string('A', 64));
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AssertDecodeMatchesBcl(new string('A', 65));
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AssertDecodeMatchesBcl(new string('B', 100));
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AssertDecodeMatchesBcl(new string('C', 256));
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}
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[TestMethod]
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public void DecodeUtf8SinglePass_MatchesBclGetString_Hungarian()
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{
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AssertDecodeMatchesBcl("árvíztűrő tükörfúrógép");
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}
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[TestMethod]
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public void DecodeUtf8SinglePass_MatchesBclGetString_Mixed()
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{
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AssertDecodeMatchesBcl("Plain ASCII + Magyar (árvíz) + CJK (你好) + Emoji (😀)");
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}
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// ──────────────────────────────────────────────────────────────────────
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// Helpers
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// ──────────────────────────────────────────────────────────────────────
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/// <summary>
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/// Verifies that EncodeUtf8SinglePass produces bytes identical to <see cref="Encoding.UTF8.GetBytes"/>,
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/// and that DecodeUtf8SinglePass on those bytes reconstructs the original string exactly.
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/// </summary>
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private static void AssertRoundTrip(string original, string? context = null)
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{
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var ctx = context is null ? string.Empty : $" [{context}]";
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// 1. Encoder produces bytes identical to BCL Encoding.UTF8
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var dst = new byte[original.Length * 4]; // worst-case UTF-8
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var bytesWritten = Utf8Transcoder.EncodeUtf8SinglePass(original.AsSpan(), dst.AsSpan());
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var encoded = dst.AsSpan(0, bytesWritten).ToArray();
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var bclEncoded = Utf8.GetBytes(original);
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CollectionAssert.AreEqual(bclEncoded, encoded, $"Encoder output mismatch{ctx}");
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// 2. CountUtf8Chars matches the original char count
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var charCount = Utf8Transcoder.CountUtf8Chars(encoded);
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Assert.AreEqual(original.Length, charCount, $"Char count mismatch{ctx}");
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// 3. DecodeUtf8SinglePass reconstructs the original string exactly
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var decoded = string.Create(charCount, encoded, static (chars, bytes) =>
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{
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Utf8Transcoder.DecodeUtf8SinglePass(bytes, chars);
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});
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Assert.AreEqual(original, decoded, $"Decoder output mismatch{ctx}");
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}
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/// <summary>
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/// Verifies that DecodeUtf8SinglePass produces output identical to <see cref="Encoding.UTF8.GetString"/>
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/// for the same byte input. Catches silent decoder bugs that pass the round-trip test
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/// (e.g. write-overlap that happens to land back on the right value by accident).
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/// </summary>
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private static void AssertDecodeMatchesBcl(string original)
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{
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var bytes = Utf8.GetBytes(original);
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var bclDecoded = Utf8.GetString(bytes);
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var charCount = Utf8Transcoder.CountUtf8Chars(bytes);
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var ourDecoded = string.Create(charCount, bytes, static (chars, b) =>
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{
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Utf8Transcoder.DecodeUtf8SinglePass(b, chars);
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});
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Assert.AreEqual(bclDecoded, ourDecoded, $"Decoder mismatch for input length {bytes.Length}");
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}
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}
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@ -337,10 +337,15 @@ internal static class Utf8Transcoder
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// ASCII detect: any high bit set among the 32 bytes?
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if (v.ExtractMostSignificantBits() != 0) break;
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// Widen 32 bytes → 2 × Vector256<ushort> (32 chars total)
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// Widen 32 bytes → 2 × Vector256<ushort> (32 chars total). Each Vector256<ushort>
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// holds 16 ushort, so the upper half stores at dstIdx + 16 (= Vector256<ushort>.Count).
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// Earlier latent bug used Vector128<ushort>.Count (= 8) here, causing overlap on
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// indices 8-15 and uninitialized 24-31 — hidden by the Hungarian benchmark's early
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// ASCII bail-out (no 32+ byte ASCII run). Validated by Utf8TranscoderTests
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// LongAscii32Plus + AsciiExactly32Bytes round-trips.
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var (lower, upper) = Vector256.Widen(v);
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lower.StoreUnsafe(ref dstRef, (uint)dstIdx);
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upper.StoreUnsafe(ref dstRef, (uint)(dstIdx + Vector128<ushort>.Count));
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upper.StoreUnsafe(ref dstRef, (uint)(dstIdx + Vector256<ushort>.Count));
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srcIdx += Vector256<byte>.Count;
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dstIdx += Vector256<byte>.Count; // 32 bytes → 32 chars
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}
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