
- defines the `RootFlags` in-memory enum - defines `parseRootFlags` to parse the various flag enums into a single `uint32_t` - adds corresponding unit tests - improves the diagnostic message for when we provide a non-zero integer value to the flags Resolves https://github.com/llvm/llvm-project/issues/126575
245 lines
6.9 KiB
C++
245 lines
6.9 KiB
C++
//=== LexHLSLRootSignatureTest.cpp - Lex Root Signature tests -------------===//
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//
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// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
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// See https://llvm.org/LICENSE.txt for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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//
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//===----------------------------------------------------------------------===//
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#include "clang/Lex/LexHLSLRootSignature.h"
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#include "gtest/gtest.h"
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using namespace clang;
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using TokenKind = hlsl::RootSignatureToken::Kind;
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namespace {
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// The test fixture.
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class LexHLSLRootSignatureTest : public ::testing::Test {
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protected:
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LexHLSLRootSignatureTest() {}
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void checkTokens(hlsl::RootSignatureLexer &Lexer,
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SmallVector<hlsl::RootSignatureToken> &Computed,
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SmallVector<TokenKind> &Expected) {
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for (unsigned I = 0, E = Expected.size(); I != E; ++I) {
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// Skip these to help with the macro generated test
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if (Expected[I] == TokenKind::invalid ||
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Expected[I] == TokenKind::end_of_stream)
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continue;
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hlsl::RootSignatureToken Result = Lexer.consumeToken();
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ASSERT_EQ(Result.TokKind, Expected[I]);
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Computed.push_back(Result);
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}
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hlsl::RootSignatureToken EndOfStream = Lexer.consumeToken();
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ASSERT_EQ(EndOfStream.TokKind, TokenKind::end_of_stream);
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ASSERT_TRUE(Lexer.isEndOfBuffer());
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}
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};
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// Lexing Tests
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TEST_F(LexHLSLRootSignatureTest, ValidLexNumbersTest) {
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// This test will check that we can lex different number tokens
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const llvm::StringLiteral Source = R"cc(
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-42 42 +42 +2147483648
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42. 4.2 .42
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42f 4.2F
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.42e+3 4.2E-12
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42.e+10f
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)cc";
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auto TokLoc = SourceLocation();
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hlsl::RootSignatureLexer Lexer(Source, TokLoc);
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SmallVector<hlsl::RootSignatureToken> Tokens;
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SmallVector<TokenKind> Expected = {
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TokenKind::pu_minus, TokenKind::int_literal,
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TokenKind::int_literal, TokenKind::pu_plus,
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TokenKind::int_literal, TokenKind::pu_plus,
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TokenKind::int_literal, TokenKind::float_literal,
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TokenKind::float_literal, TokenKind::float_literal,
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TokenKind::float_literal, TokenKind::float_literal,
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TokenKind::float_literal, TokenKind::float_literal,
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TokenKind::float_literal,
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};
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checkTokens(Lexer, Tokens, Expected);
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// Sample negative: int component
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hlsl::RootSignatureToken IntToken = Tokens[1];
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ASSERT_EQ(IntToken.NumSpelling, "42");
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// Sample unsigned int
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IntToken = Tokens[2];
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ASSERT_EQ(IntToken.NumSpelling, "42");
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// Sample positive: int component
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IntToken = Tokens[4];
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ASSERT_EQ(IntToken.NumSpelling, "42");
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// Sample positive int that would overflow the signed representation but
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// is treated as an unsigned integer instead
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IntToken = Tokens[6];
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ASSERT_EQ(IntToken.NumSpelling, "2147483648");
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// Sample decimal end
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hlsl::RootSignatureToken FloatToken = Tokens[7];
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ASSERT_EQ(FloatToken.NumSpelling, "42.");
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// Sample decimal middle
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FloatToken = Tokens[8];
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ASSERT_EQ(FloatToken.NumSpelling, "4.2");
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// Sample decimal start
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FloatToken = Tokens[9];
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ASSERT_EQ(FloatToken.NumSpelling, ".42");
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// Sample float lower
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FloatToken = Tokens[10];
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ASSERT_EQ(FloatToken.NumSpelling, "42f");
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// Sample float upper
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FloatToken = Tokens[11];
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ASSERT_EQ(FloatToken.NumSpelling, "4.2F");
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// Sample exp +
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FloatToken = Tokens[12];
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ASSERT_EQ(FloatToken.NumSpelling, ".42e+3");
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// Sample exp -
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FloatToken = Tokens[13];
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ASSERT_EQ(FloatToken.NumSpelling, "4.2E-12");
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// Sample all combined
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FloatToken = Tokens[14];
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ASSERT_EQ(FloatToken.NumSpelling, "42.e+10f");
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}
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TEST_F(LexHLSLRootSignatureTest, ValidLexAllTokensTest) {
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// This test will check that we can lex all defined tokens as defined in
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// HLSLRootSignatureTokenKinds.def, plus some additional integer variations
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const llvm::StringLiteral Source = R"cc(
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42 42.0f
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b0 t43 u987 s234
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(),|=+-
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RootSignature
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RootFlags DescriptorTable RootConstants
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num32BitConstants
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CBV SRV UAV Sampler
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space visibility flags
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numDescriptors offset
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unbounded
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DESCRIPTOR_RANGE_OFFSET_APPEND
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allow_input_assembler_input_layout
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deny_vertex_shader_root_access
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deny_hull_shader_root_access
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deny_domain_shader_root_access
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deny_geometry_shader_root_access
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deny_pixel_shader_root_access
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deny_amplification_shader_root_access
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deny_mesh_shader_root_access
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allow_stream_output
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local_root_signature
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cbv_srv_uav_heap_directly_indexed
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sampler_heap_directly_indexed
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DATA_VOLATILE
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DATA_STATIC_WHILE_SET_AT_EXECUTE
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DATA_STATIC
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DESCRIPTORS_VOLATILE
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DESCRIPTORS_STATIC_KEEPING_BUFFER_BOUNDS_CHECKS
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shader_visibility_all
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shader_visibility_vertex
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shader_visibility_hull
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shader_visibility_domain
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shader_visibility_geometry
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shader_visibility_pixel
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shader_visibility_amplification
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shader_visibility_mesh
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)cc";
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auto TokLoc = SourceLocation();
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hlsl::RootSignatureLexer Lexer(Source, TokLoc);
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SmallVector<hlsl::RootSignatureToken> Tokens;
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SmallVector<TokenKind> Expected = {
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#define TOK(NAME, SPELLING) TokenKind::NAME,
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#include "clang/Lex/HLSLRootSignatureTokenKinds.def"
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};
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checkTokens(Lexer, Tokens, Expected);
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}
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TEST_F(LexHLSLRootSignatureTest, ValidCaseInsensitiveKeywordsTest) {
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// This test will check that we can lex keywords in an case-insensitive
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// manner
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const llvm::StringLiteral Source = R"cc(
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DeScRiPtOrTaBlE
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CBV srv UAV sampler
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SPACE visibility FLAGS
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numDescriptors OFFSET
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)cc";
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auto TokLoc = SourceLocation();
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hlsl::RootSignatureLexer Lexer(Source, TokLoc);
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SmallVector<hlsl::RootSignatureToken> Tokens;
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SmallVector<TokenKind> Expected = {
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TokenKind::kw_DescriptorTable,
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TokenKind::kw_CBV,
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TokenKind::kw_SRV,
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TokenKind::kw_UAV,
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TokenKind::kw_Sampler,
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TokenKind::kw_space,
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TokenKind::kw_visibility,
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TokenKind::kw_flags,
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TokenKind::kw_numDescriptors,
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TokenKind::kw_offset,
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};
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checkTokens(Lexer, Tokens, Expected);
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}
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TEST_F(LexHLSLRootSignatureTest, ValidLexPeekTest) {
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// This test will check that we the peek api is correctly used
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const llvm::StringLiteral Source = R"cc(
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)1
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)cc";
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auto TokLoc = SourceLocation();
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hlsl::RootSignatureLexer Lexer(Source, TokLoc);
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// Test basic peek
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hlsl::RootSignatureToken Res = Lexer.peekNextToken();
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ASSERT_EQ(Res.TokKind, TokenKind::pu_r_paren);
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// Ensure it doesn't peek past one element
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Res = Lexer.peekNextToken();
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ASSERT_EQ(Res.TokKind, TokenKind::pu_r_paren);
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Res = Lexer.consumeToken();
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ASSERT_EQ(Res.TokKind, TokenKind::pu_r_paren);
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// Invoke after reseting the NextToken
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Res = Lexer.peekNextToken();
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ASSERT_EQ(Res.TokKind, TokenKind::int_literal);
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// Ensure we can still consume the second token
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Res = Lexer.consumeToken();
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ASSERT_EQ(Res.TokKind, TokenKind::int_literal);
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// Ensure end of stream token
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Res = Lexer.peekNextToken();
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ASSERT_EQ(Res.TokKind, TokenKind::end_of_stream);
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}
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} // anonymous namespace
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