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Emit unit tests for parsing and printing. Emit benchmarks for parsing. Uses intrinsics.def as a single-source-of-truth. The generators provide a way to optimize the enum parsers. Change-Id: I7f13128f510b2156c2ef724c89df7bb85dae17ed Reviewed-on: https://dawn-review.googlesource.com/c/dawn/+/97151 Commit-Queue: Ben Clayton <bclayton@chromium.org> Reviewed-by: Dan Sinclair <dsinclair@chromium.org>
815 lines
25 KiB
C++
815 lines
25 KiB
C++
// Copyright 2020 The Tint Authors.
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//
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// http://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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#include "gmock/gmock.h"
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#include "src/tint/ast/call_statement.h"
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#include "src/tint/ast/stage_attribute.h"
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#include "src/tint/sem/call.h"
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#include "src/tint/writer/hlsl/test_helper.h"
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using ::testing::HasSubstr;
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using namespace tint::number_suffixes; // NOLINT
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namespace tint::writer::hlsl {
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namespace {
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using BuiltinType = sem::BuiltinType;
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using HlslGeneratorImplTest_Builtin = TestHelper;
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enum class ParamType {
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kF32,
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kU32,
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kBool,
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};
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struct BuiltinData {
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BuiltinType builtin;
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ParamType type;
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const char* hlsl_name;
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};
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inline std::ostream& operator<<(std::ostream& out, BuiltinData data) {
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out << data.hlsl_name;
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switch (data.type) {
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case ParamType::kF32:
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out << "f32";
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break;
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case ParamType::kU32:
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out << "u32";
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break;
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case ParamType::kBool:
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out << "bool";
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break;
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}
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out << ">";
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return out;
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}
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const ast::CallExpression* GenerateCall(BuiltinType builtin,
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ParamType type,
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ProgramBuilder* builder) {
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std::string name;
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std::ostringstream str(name);
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str << builtin;
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switch (builtin) {
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case BuiltinType::kAcos:
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case BuiltinType::kAsin:
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case BuiltinType::kAtan:
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case BuiltinType::kCeil:
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case BuiltinType::kCos:
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case BuiltinType::kCosh:
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case BuiltinType::kDpdx:
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case BuiltinType::kDpdxCoarse:
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case BuiltinType::kDpdxFine:
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case BuiltinType::kDpdy:
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case BuiltinType::kDpdyCoarse:
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case BuiltinType::kDpdyFine:
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case BuiltinType::kExp:
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case BuiltinType::kExp2:
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case BuiltinType::kFloor:
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case BuiltinType::kFract:
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case BuiltinType::kFwidth:
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case BuiltinType::kFwidthCoarse:
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case BuiltinType::kFwidthFine:
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case BuiltinType::kInverseSqrt:
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case BuiltinType::kLength:
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case BuiltinType::kLog:
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case BuiltinType::kLog2:
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case BuiltinType::kNormalize:
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case BuiltinType::kRound:
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case BuiltinType::kSin:
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case BuiltinType::kSinh:
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case BuiltinType::kSqrt:
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case BuiltinType::kTan:
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case BuiltinType::kTanh:
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case BuiltinType::kTrunc:
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case BuiltinType::kSign:
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return builder->Call(str.str(), "f2");
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case BuiltinType::kLdexp:
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return builder->Call(str.str(), "f2", "i2");
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case BuiltinType::kAtan2:
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case BuiltinType::kDot:
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case BuiltinType::kDistance:
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case BuiltinType::kPow:
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case BuiltinType::kReflect:
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case BuiltinType::kStep:
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return builder->Call(str.str(), "f2", "f2");
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case BuiltinType::kCross:
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return builder->Call(str.str(), "f3", "f3");
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case BuiltinType::kFma:
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case BuiltinType::kMix:
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case BuiltinType::kFaceForward:
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case BuiltinType::kSmoothstep:
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return builder->Call(str.str(), "f2", "f2", "f2");
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case BuiltinType::kAll:
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case BuiltinType::kAny:
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return builder->Call(str.str(), "b2");
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case BuiltinType::kAbs:
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if (type == ParamType::kF32) {
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return builder->Call(str.str(), "f2");
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} else {
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return builder->Call(str.str(), "u2");
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}
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case BuiltinType::kCountOneBits:
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case BuiltinType::kReverseBits:
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return builder->Call(str.str(), "u2");
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case BuiltinType::kMax:
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case BuiltinType::kMin:
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if (type == ParamType::kF32) {
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return builder->Call(str.str(), "f2", "f2");
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} else {
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return builder->Call(str.str(), "u2", "u2");
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}
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case BuiltinType::kClamp:
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if (type == ParamType::kF32) {
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return builder->Call(str.str(), "f2", "f2", "f2");
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} else {
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return builder->Call(str.str(), "u2", "u2", "u2");
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}
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case BuiltinType::kSelect:
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return builder->Call(str.str(), "f2", "f2", "b2");
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case BuiltinType::kDeterminant:
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return builder->Call(str.str(), "m2x2");
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case BuiltinType::kTranspose:
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return builder->Call(str.str(), "m3x2");
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default:
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break;
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}
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return nullptr;
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}
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using HlslBuiltinTest = TestParamHelper<BuiltinData>;
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TEST_P(HlslBuiltinTest, Emit) {
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auto param = GetParam();
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GlobalVar("f2", ty.vec2<f32>(), ast::StorageClass::kPrivate);
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GlobalVar("f3", ty.vec3<f32>(), ast::StorageClass::kPrivate);
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GlobalVar("u2", ty.vec2<u32>(), ast::StorageClass::kPrivate);
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GlobalVar("i2", ty.vec2<i32>(), ast::StorageClass::kPrivate);
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GlobalVar("b2", ty.vec2<bool>(), ast::StorageClass::kPrivate);
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GlobalVar("m2x2", ty.mat2x2<f32>(), ast::StorageClass::kPrivate);
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GlobalVar("m3x2", ty.mat3x2<f32>(), ast::StorageClass::kPrivate);
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auto* call = GenerateCall(param.builtin, param.type, this);
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ASSERT_NE(nullptr, call) << "Unhandled builtin";
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Func("func", {}, ty.void_(), {CallStmt(call)},
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{create<ast::StageAttribute>(ast::PipelineStage::kFragment)});
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GeneratorImpl& gen = Build();
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auto* sem = program->Sem().Get<sem::Call>(call);
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ASSERT_NE(sem, nullptr);
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auto* target = sem->Target();
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ASSERT_NE(target, nullptr);
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auto* builtin = target->As<sem::Builtin>();
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ASSERT_NE(builtin, nullptr);
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EXPECT_EQ(gen.generate_builtin_name(builtin), param.hlsl_name);
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}
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INSTANTIATE_TEST_SUITE_P(
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HlslGeneratorImplTest_Builtin,
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HlslBuiltinTest,
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testing::Values(BuiltinData{BuiltinType::kAbs, ParamType::kF32, "abs"},
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BuiltinData{BuiltinType::kAbs, ParamType::kU32, "abs"},
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BuiltinData{BuiltinType::kAcos, ParamType::kF32, "acos"},
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BuiltinData{BuiltinType::kAll, ParamType::kBool, "all"},
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BuiltinData{BuiltinType::kAny, ParamType::kBool, "any"},
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BuiltinData{BuiltinType::kAsin, ParamType::kF32, "asin"},
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BuiltinData{BuiltinType::kAtan, ParamType::kF32, "atan"},
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BuiltinData{BuiltinType::kAtan2, ParamType::kF32, "atan2"},
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BuiltinData{BuiltinType::kCeil, ParamType::kF32, "ceil"},
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BuiltinData{BuiltinType::kClamp, ParamType::kF32, "clamp"},
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BuiltinData{BuiltinType::kClamp, ParamType::kU32, "clamp"},
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BuiltinData{BuiltinType::kCos, ParamType::kF32, "cos"},
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BuiltinData{BuiltinType::kCosh, ParamType::kF32, "cosh"},
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BuiltinData{BuiltinType::kCountOneBits, ParamType::kU32, "countbits"},
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BuiltinData{BuiltinType::kCross, ParamType::kF32, "cross"},
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BuiltinData{BuiltinType::kDeterminant, ParamType::kF32, "determinant"},
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BuiltinData{BuiltinType::kDistance, ParamType::kF32, "distance"},
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BuiltinData{BuiltinType::kDot, ParamType::kF32, "dot"},
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BuiltinData{BuiltinType::kDpdx, ParamType::kF32, "ddx"},
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BuiltinData{BuiltinType::kDpdxCoarse, ParamType::kF32, "ddx_coarse"},
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BuiltinData{BuiltinType::kDpdxFine, ParamType::kF32, "ddx_fine"},
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BuiltinData{BuiltinType::kDpdy, ParamType::kF32, "ddy"},
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BuiltinData{BuiltinType::kDpdyCoarse, ParamType::kF32, "ddy_coarse"},
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BuiltinData{BuiltinType::kDpdyFine, ParamType::kF32, "ddy_fine"},
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BuiltinData{BuiltinType::kExp, ParamType::kF32, "exp"},
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BuiltinData{BuiltinType::kExp2, ParamType::kF32, "exp2"},
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BuiltinData{BuiltinType::kFaceForward, ParamType::kF32, "faceforward"},
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BuiltinData{BuiltinType::kFloor, ParamType::kF32, "floor"},
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BuiltinData{BuiltinType::kFma, ParamType::kF32, "mad"},
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BuiltinData{BuiltinType::kFract, ParamType::kF32, "frac"},
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BuiltinData{BuiltinType::kFwidth, ParamType::kF32, "fwidth"},
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BuiltinData{BuiltinType::kFwidthCoarse, ParamType::kF32, "fwidth"},
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BuiltinData{BuiltinType::kFwidthFine, ParamType::kF32, "fwidth"},
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BuiltinData{BuiltinType::kInverseSqrt, ParamType::kF32, "rsqrt"},
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BuiltinData{BuiltinType::kLdexp, ParamType::kF32, "ldexp"},
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BuiltinData{BuiltinType::kLength, ParamType::kF32, "length"},
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BuiltinData{BuiltinType::kLog, ParamType::kF32, "log"},
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BuiltinData{BuiltinType::kLog2, ParamType::kF32, "log2"},
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BuiltinData{BuiltinType::kMax, ParamType::kF32, "max"},
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BuiltinData{BuiltinType::kMax, ParamType::kU32, "max"},
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BuiltinData{BuiltinType::kMin, ParamType::kF32, "min"},
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BuiltinData{BuiltinType::kMin, ParamType::kU32, "min"},
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BuiltinData{BuiltinType::kMix, ParamType::kF32, "lerp"},
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BuiltinData{BuiltinType::kNormalize, ParamType::kF32, "normalize"},
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BuiltinData{BuiltinType::kPow, ParamType::kF32, "pow"},
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BuiltinData{BuiltinType::kReflect, ParamType::kF32, "reflect"},
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BuiltinData{BuiltinType::kReverseBits, ParamType::kU32, "reversebits"},
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BuiltinData{BuiltinType::kRound, ParamType::kU32, "round"},
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BuiltinData{BuiltinType::kSign, ParamType::kF32, "sign"},
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BuiltinData{BuiltinType::kSin, ParamType::kF32, "sin"},
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BuiltinData{BuiltinType::kSinh, ParamType::kF32, "sinh"},
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BuiltinData{BuiltinType::kSmoothstep, ParamType::kF32, "smoothstep"},
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BuiltinData{BuiltinType::kSqrt, ParamType::kF32, "sqrt"},
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BuiltinData{BuiltinType::kStep, ParamType::kF32, "step"},
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BuiltinData{BuiltinType::kTan, ParamType::kF32, "tan"},
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BuiltinData{BuiltinType::kTanh, ParamType::kF32, "tanh"},
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BuiltinData{BuiltinType::kTranspose, ParamType::kF32, "transpose"},
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BuiltinData{BuiltinType::kTrunc, ParamType::kF32, "trunc"}));
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TEST_F(HlslGeneratorImplTest_Builtin, Builtin_Call) {
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auto* call = Call("dot", "param1", "param2");
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GlobalVar("param1", ty.vec3<f32>(), ast::StorageClass::kPrivate);
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GlobalVar("param2", ty.vec3<f32>(), ast::StorageClass::kPrivate);
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WrapInFunction(CallStmt(call));
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GeneratorImpl& gen = Build();
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gen.increment_indent();
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std::stringstream out;
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ASSERT_TRUE(gen.EmitExpression(out, call)) << gen.error();
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EXPECT_EQ(out.str(), "dot(param1, param2)");
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}
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TEST_F(HlslGeneratorImplTest_Builtin, Select_Scalar) {
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auto* call = Call("select", 1_f, 2_f, true);
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WrapInFunction(CallStmt(call));
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GeneratorImpl& gen = Build();
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gen.increment_indent();
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std::stringstream out;
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ASSERT_TRUE(gen.EmitExpression(out, call)) << gen.error();
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EXPECT_EQ(out.str(), "(true ? 2.0f : 1.0f)");
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}
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TEST_F(HlslGeneratorImplTest_Builtin, Select_Vector) {
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auto* call = Call("select", vec2<i32>(1_i, 2_i), vec2<i32>(3_i, 4_i), vec2<bool>(true, false));
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WrapInFunction(CallStmt(call));
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GeneratorImpl& gen = Build();
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gen.increment_indent();
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std::stringstream out;
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ASSERT_TRUE(gen.EmitExpression(out, call)) << gen.error();
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EXPECT_EQ(out.str(), "(bool2(true, false) ? int2(3, 4) : int2(1, 2))");
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}
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TEST_F(HlslGeneratorImplTest_Builtin, Modf_Scalar) {
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auto* call = Call("modf", 1_f);
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WrapInFunction(CallStmt(call));
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GeneratorImpl& gen = SanitizeAndBuild();
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ASSERT_TRUE(gen.Generate()) << gen.error();
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EXPECT_EQ(gen.result(), R"(struct modf_result {
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float fract;
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float whole;
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};
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modf_result tint_modf(float param_0) {
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float whole;
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float fract = modf(param_0, whole);
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modf_result result = {fract, whole};
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return result;
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}
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[numthreads(1, 1, 1)]
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void test_function() {
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tint_modf(1.0f);
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return;
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}
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)");
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}
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TEST_F(HlslGeneratorImplTest_Builtin, Modf_Vector) {
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auto* call = Call("modf", vec3<f32>());
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WrapInFunction(CallStmt(call));
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GeneratorImpl& gen = SanitizeAndBuild();
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ASSERT_TRUE(gen.Generate()) << gen.error();
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EXPECT_EQ(gen.result(), R"(struct modf_result_vec3 {
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float3 fract;
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float3 whole;
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};
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modf_result_vec3 tint_modf(float3 param_0) {
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float3 whole;
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float3 fract = modf(param_0, whole);
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modf_result_vec3 result = {fract, whole};
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return result;
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}
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[numthreads(1, 1, 1)]
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void test_function() {
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tint_modf((0.0f).xxx);
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return;
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}
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)");
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}
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TEST_F(HlslGeneratorImplTest_Builtin, Frexp_Scalar_i32) {
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auto* call = Call("frexp", 1_f);
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WrapInFunction(CallStmt(call));
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GeneratorImpl& gen = SanitizeAndBuild();
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ASSERT_TRUE(gen.Generate()) << gen.error();
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EXPECT_EQ(gen.result(), R"(struct frexp_result {
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float sig;
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int exp;
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};
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frexp_result tint_frexp(float param_0) {
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float exp;
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float sig = frexp(param_0, exp);
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frexp_result result = {sig, int(exp)};
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return result;
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}
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[numthreads(1, 1, 1)]
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void test_function() {
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tint_frexp(1.0f);
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return;
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}
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)");
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}
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TEST_F(HlslGeneratorImplTest_Builtin, Frexp_Vector_i32) {
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auto* call = Call("frexp", vec3<f32>());
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WrapInFunction(CallStmt(call));
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GeneratorImpl& gen = SanitizeAndBuild();
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ASSERT_TRUE(gen.Generate()) << gen.error();
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EXPECT_EQ(gen.result(), R"(struct frexp_result_vec3 {
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float3 sig;
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int3 exp;
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};
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frexp_result_vec3 tint_frexp(float3 param_0) {
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float3 exp;
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float3 sig = frexp(param_0, exp);
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frexp_result_vec3 result = {sig, int3(exp)};
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return result;
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}
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[numthreads(1, 1, 1)]
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void test_function() {
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tint_frexp((0.0f).xxx);
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return;
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}
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)");
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}
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TEST_F(HlslGeneratorImplTest_Builtin, Degrees_Scalar) {
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auto* val = Var("val", ty.f32());
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auto* call = Call("degrees", val);
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WrapInFunction(val, call);
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GeneratorImpl& gen = SanitizeAndBuild();
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ASSERT_TRUE(gen.Generate()) << gen.error();
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EXPECT_EQ(gen.result(), R"(float tint_degrees(float param_0) {
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return param_0 * 57.295779513082322865;
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}
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[numthreads(1, 1, 1)]
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void test_function() {
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float val = 0.0f;
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const float tint_symbol = tint_degrees(val);
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return;
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}
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)");
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}
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TEST_F(HlslGeneratorImplTest_Builtin, Degrees_Vector) {
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auto* val = Var("val", ty.vec3<f32>());
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auto* call = Call("degrees", val);
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WrapInFunction(val, call);
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GeneratorImpl& gen = SanitizeAndBuild();
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ASSERT_TRUE(gen.Generate()) << gen.error();
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EXPECT_EQ(gen.result(), R"(float3 tint_degrees(float3 param_0) {
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return param_0 * 57.295779513082322865;
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}
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[numthreads(1, 1, 1)]
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void test_function() {
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float3 val = float3(0.0f, 0.0f, 0.0f);
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const float3 tint_symbol = tint_degrees(val);
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return;
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}
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)");
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}
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TEST_F(HlslGeneratorImplTest_Builtin, Radians_Scalar) {
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auto* val = Var("val", ty.f32());
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auto* call = Call("radians", val);
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WrapInFunction(val, call);
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GeneratorImpl& gen = SanitizeAndBuild();
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ASSERT_TRUE(gen.Generate()) << gen.error();
|
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EXPECT_EQ(gen.result(), R"(float tint_radians(float param_0) {
|
|
return param_0 * 0.017453292519943295474;
|
|
}
|
|
|
|
[numthreads(1, 1, 1)]
|
|
void test_function() {
|
|
float val = 0.0f;
|
|
const float tint_symbol = tint_radians(val);
|
|
return;
|
|
}
|
|
)");
|
|
}
|
|
|
|
TEST_F(HlslGeneratorImplTest_Builtin, Radians_Vector) {
|
|
auto* val = Var("val", ty.vec3<f32>());
|
|
auto* call = Call("radians", val);
|
|
WrapInFunction(val, call);
|
|
|
|
GeneratorImpl& gen = SanitizeAndBuild();
|
|
|
|
ASSERT_TRUE(gen.Generate()) << gen.error();
|
|
EXPECT_EQ(gen.result(), R"(float3 tint_radians(float3 param_0) {
|
|
return param_0 * 0.017453292519943295474;
|
|
}
|
|
|
|
[numthreads(1, 1, 1)]
|
|
void test_function() {
|
|
float3 val = float3(0.0f, 0.0f, 0.0f);
|
|
const float3 tint_symbol = tint_radians(val);
|
|
return;
|
|
}
|
|
)");
|
|
}
|
|
|
|
TEST_F(HlslGeneratorImplTest_Builtin, Pack4x8Snorm) {
|
|
auto* call = Call("pack4x8snorm", "p1");
|
|
GlobalVar("p1", ty.vec4<f32>(), ast::StorageClass::kPrivate);
|
|
WrapInFunction(CallStmt(call));
|
|
GeneratorImpl& gen = Build();
|
|
|
|
ASSERT_TRUE(gen.Generate()) << gen.error();
|
|
EXPECT_EQ(gen.result(), R"(uint tint_pack4x8snorm(float4 param_0) {
|
|
int4 i = int4(round(clamp(param_0, -1.0, 1.0) * 127.0)) & 0xff;
|
|
return asuint(i.x | i.y << 8 | i.z << 16 | i.w << 24);
|
|
}
|
|
|
|
static float4 p1 = float4(0.0f, 0.0f, 0.0f, 0.0f);
|
|
|
|
[numthreads(1, 1, 1)]
|
|
void test_function() {
|
|
tint_pack4x8snorm(p1);
|
|
return;
|
|
}
|
|
)");
|
|
}
|
|
|
|
TEST_F(HlslGeneratorImplTest_Builtin, Pack4x8Unorm) {
|
|
auto* call = Call("pack4x8unorm", "p1");
|
|
GlobalVar("p1", ty.vec4<f32>(), ast::StorageClass::kPrivate);
|
|
WrapInFunction(CallStmt(call));
|
|
GeneratorImpl& gen = Build();
|
|
|
|
ASSERT_TRUE(gen.Generate()) << gen.error();
|
|
EXPECT_EQ(gen.result(), R"(uint tint_pack4x8unorm(float4 param_0) {
|
|
uint4 i = uint4(round(clamp(param_0, 0.0, 1.0) * 255.0));
|
|
return (i.x | i.y << 8 | i.z << 16 | i.w << 24);
|
|
}
|
|
|
|
static float4 p1 = float4(0.0f, 0.0f, 0.0f, 0.0f);
|
|
|
|
[numthreads(1, 1, 1)]
|
|
void test_function() {
|
|
tint_pack4x8unorm(p1);
|
|
return;
|
|
}
|
|
)");
|
|
}
|
|
|
|
TEST_F(HlslGeneratorImplTest_Builtin, Pack2x16Snorm) {
|
|
auto* call = Call("pack2x16snorm", "p1");
|
|
GlobalVar("p1", ty.vec2<f32>(), ast::StorageClass::kPrivate);
|
|
WrapInFunction(CallStmt(call));
|
|
GeneratorImpl& gen = Build();
|
|
|
|
ASSERT_TRUE(gen.Generate()) << gen.error();
|
|
EXPECT_EQ(gen.result(), R"(uint tint_pack2x16snorm(float2 param_0) {
|
|
int2 i = int2(round(clamp(param_0, -1.0, 1.0) * 32767.0)) & 0xffff;
|
|
return asuint(i.x | i.y << 16);
|
|
}
|
|
|
|
static float2 p1 = float2(0.0f, 0.0f);
|
|
|
|
[numthreads(1, 1, 1)]
|
|
void test_function() {
|
|
tint_pack2x16snorm(p1);
|
|
return;
|
|
}
|
|
)");
|
|
}
|
|
|
|
TEST_F(HlslGeneratorImplTest_Builtin, Pack2x16Unorm) {
|
|
auto* call = Call("pack2x16unorm", "p1");
|
|
GlobalVar("p1", ty.vec2<f32>(), ast::StorageClass::kPrivate);
|
|
WrapInFunction(CallStmt(call));
|
|
GeneratorImpl& gen = Build();
|
|
|
|
ASSERT_TRUE(gen.Generate()) << gen.error();
|
|
EXPECT_EQ(gen.result(), R"(uint tint_pack2x16unorm(float2 param_0) {
|
|
uint2 i = uint2(round(clamp(param_0, 0.0, 1.0) * 65535.0));
|
|
return (i.x | i.y << 16);
|
|
}
|
|
|
|
static float2 p1 = float2(0.0f, 0.0f);
|
|
|
|
[numthreads(1, 1, 1)]
|
|
void test_function() {
|
|
tint_pack2x16unorm(p1);
|
|
return;
|
|
}
|
|
)");
|
|
}
|
|
|
|
TEST_F(HlslGeneratorImplTest_Builtin, Pack2x16Float) {
|
|
auto* call = Call("pack2x16float", "p1");
|
|
GlobalVar("p1", ty.vec2<f32>(), ast::StorageClass::kPrivate);
|
|
WrapInFunction(CallStmt(call));
|
|
GeneratorImpl& gen = Build();
|
|
|
|
ASSERT_TRUE(gen.Generate()) << gen.error();
|
|
EXPECT_EQ(gen.result(), R"(uint tint_pack2x16float(float2 param_0) {
|
|
uint2 i = f32tof16(param_0);
|
|
return i.x | (i.y << 16);
|
|
}
|
|
|
|
static float2 p1 = float2(0.0f, 0.0f);
|
|
|
|
[numthreads(1, 1, 1)]
|
|
void test_function() {
|
|
tint_pack2x16float(p1);
|
|
return;
|
|
}
|
|
)");
|
|
}
|
|
|
|
TEST_F(HlslGeneratorImplTest_Builtin, Unpack4x8Snorm) {
|
|
auto* call = Call("unpack4x8snorm", "p1");
|
|
GlobalVar("p1", ty.u32(), ast::StorageClass::kPrivate);
|
|
WrapInFunction(CallStmt(call));
|
|
GeneratorImpl& gen = Build();
|
|
|
|
ASSERT_TRUE(gen.Generate()) << gen.error();
|
|
EXPECT_EQ(gen.result(), R"(float4 tint_unpack4x8snorm(uint param_0) {
|
|
int j = int(param_0);
|
|
int4 i = int4(j << 24, j << 16, j << 8, j) >> 24;
|
|
return clamp(float4(i) / 127.0, -1.0, 1.0);
|
|
}
|
|
|
|
static uint p1 = 0u;
|
|
|
|
[numthreads(1, 1, 1)]
|
|
void test_function() {
|
|
tint_unpack4x8snorm(p1);
|
|
return;
|
|
}
|
|
)");
|
|
}
|
|
|
|
TEST_F(HlslGeneratorImplTest_Builtin, Unpack4x8Unorm) {
|
|
auto* call = Call("unpack4x8unorm", "p1");
|
|
GlobalVar("p1", ty.u32(), ast::StorageClass::kPrivate);
|
|
WrapInFunction(CallStmt(call));
|
|
GeneratorImpl& gen = Build();
|
|
|
|
ASSERT_TRUE(gen.Generate()) << gen.error();
|
|
EXPECT_EQ(gen.result(), R"(float4 tint_unpack4x8unorm(uint param_0) {
|
|
uint j = param_0;
|
|
uint4 i = uint4(j & 0xff, (j >> 8) & 0xff, (j >> 16) & 0xff, j >> 24);
|
|
return float4(i) / 255.0;
|
|
}
|
|
|
|
static uint p1 = 0u;
|
|
|
|
[numthreads(1, 1, 1)]
|
|
void test_function() {
|
|
tint_unpack4x8unorm(p1);
|
|
return;
|
|
}
|
|
)");
|
|
}
|
|
|
|
TEST_F(HlslGeneratorImplTest_Builtin, Unpack2x16Snorm) {
|
|
auto* call = Call("unpack2x16snorm", "p1");
|
|
GlobalVar("p1", ty.u32(), ast::StorageClass::kPrivate);
|
|
WrapInFunction(CallStmt(call));
|
|
GeneratorImpl& gen = Build();
|
|
|
|
ASSERT_TRUE(gen.Generate()) << gen.error();
|
|
EXPECT_EQ(gen.result(), R"(float2 tint_unpack2x16snorm(uint param_0) {
|
|
int j = int(param_0);
|
|
int2 i = int2(j << 16, j) >> 16;
|
|
return clamp(float2(i) / 32767.0, -1.0, 1.0);
|
|
}
|
|
|
|
static uint p1 = 0u;
|
|
|
|
[numthreads(1, 1, 1)]
|
|
void test_function() {
|
|
tint_unpack2x16snorm(p1);
|
|
return;
|
|
}
|
|
)");
|
|
}
|
|
|
|
TEST_F(HlslGeneratorImplTest_Builtin, Unpack2x16Unorm) {
|
|
auto* call = Call("unpack2x16unorm", "p1");
|
|
GlobalVar("p1", ty.u32(), ast::StorageClass::kPrivate);
|
|
WrapInFunction(CallStmt(call));
|
|
GeneratorImpl& gen = Build();
|
|
|
|
ASSERT_TRUE(gen.Generate()) << gen.error();
|
|
EXPECT_EQ(gen.result(), R"(float2 tint_unpack2x16unorm(uint param_0) {
|
|
uint j = param_0;
|
|
uint2 i = uint2(j & 0xffff, j >> 16);
|
|
return float2(i) / 65535.0;
|
|
}
|
|
|
|
static uint p1 = 0u;
|
|
|
|
[numthreads(1, 1, 1)]
|
|
void test_function() {
|
|
tint_unpack2x16unorm(p1);
|
|
return;
|
|
}
|
|
)");
|
|
}
|
|
|
|
TEST_F(HlslGeneratorImplTest_Builtin, Unpack2x16Float) {
|
|
auto* call = Call("unpack2x16float", "p1");
|
|
GlobalVar("p1", ty.u32(), ast::StorageClass::kPrivate);
|
|
WrapInFunction(CallStmt(call));
|
|
GeneratorImpl& gen = Build();
|
|
|
|
ASSERT_TRUE(gen.Generate()) << gen.error();
|
|
EXPECT_EQ(gen.result(), R"(float2 tint_unpack2x16float(uint param_0) {
|
|
uint i = param_0;
|
|
return f16tof32(uint2(i & 0xffff, i >> 16));
|
|
}
|
|
|
|
static uint p1 = 0u;
|
|
|
|
[numthreads(1, 1, 1)]
|
|
void test_function() {
|
|
tint_unpack2x16float(p1);
|
|
return;
|
|
}
|
|
)");
|
|
}
|
|
|
|
TEST_F(HlslGeneratorImplTest_Builtin, StorageBarrier) {
|
|
Func("main", {}, ty.void_(), {CallStmt(Call("storageBarrier"))},
|
|
{
|
|
Stage(ast::PipelineStage::kCompute),
|
|
WorkgroupSize(1_i),
|
|
});
|
|
|
|
GeneratorImpl& gen = Build();
|
|
|
|
ASSERT_TRUE(gen.Generate()) << gen.error();
|
|
EXPECT_EQ(gen.result(), R"([numthreads(1, 1, 1)]
|
|
void main() {
|
|
DeviceMemoryBarrierWithGroupSync();
|
|
return;
|
|
}
|
|
)");
|
|
}
|
|
|
|
TEST_F(HlslGeneratorImplTest_Builtin, WorkgroupBarrier) {
|
|
Func("main", {}, ty.void_(), {CallStmt(Call("workgroupBarrier"))},
|
|
{
|
|
Stage(ast::PipelineStage::kCompute),
|
|
WorkgroupSize(1_i),
|
|
});
|
|
|
|
GeneratorImpl& gen = Build();
|
|
|
|
ASSERT_TRUE(gen.Generate()) << gen.error();
|
|
EXPECT_EQ(gen.result(), R"([numthreads(1, 1, 1)]
|
|
void main() {
|
|
GroupMemoryBarrierWithGroupSync();
|
|
return;
|
|
}
|
|
)");
|
|
}
|
|
|
|
TEST_F(HlslGeneratorImplTest_Builtin, Dot4I8Packed) {
|
|
Enable(ast::Extension::kChromiumExperimentalDp4A);
|
|
|
|
auto* val1 = Var("val1", ty.u32());
|
|
auto* val2 = Var("val2", ty.u32());
|
|
auto* call = Call("dot4I8Packed", val1, val2);
|
|
WrapInFunction(val1, val2, call);
|
|
|
|
GeneratorImpl& gen = SanitizeAndBuild();
|
|
|
|
ASSERT_TRUE(gen.Generate()) << gen.error();
|
|
EXPECT_EQ(gen.result(), R"(int tint_dot4I8Packed(uint param_0, uint param_1) {
|
|
int accumulator = 0;
|
|
return dot4add_i8packed(param_0, param_1, accumulator);
|
|
}
|
|
|
|
[numthreads(1, 1, 1)]
|
|
void test_function() {
|
|
uint val1 = 0u;
|
|
uint val2 = 0u;
|
|
const int tint_symbol = tint_dot4I8Packed(val1, val2);
|
|
return;
|
|
}
|
|
)");
|
|
}
|
|
|
|
TEST_F(HlslGeneratorImplTest_Builtin, Dot4U8Packed) {
|
|
Enable(ast::Extension::kChromiumExperimentalDp4A);
|
|
|
|
auto* val1 = Var("val1", ty.u32());
|
|
auto* val2 = Var("val2", ty.u32());
|
|
auto* call = Call("dot4U8Packed", val1, val2);
|
|
WrapInFunction(val1, val2, call);
|
|
|
|
GeneratorImpl& gen = SanitizeAndBuild();
|
|
|
|
ASSERT_TRUE(gen.Generate()) << gen.error();
|
|
EXPECT_EQ(gen.result(), R"(uint tint_dot4U8Packed(uint param_0, uint param_1) {
|
|
uint accumulator = 0u;
|
|
return dot4add_u8packed(param_0, param_1, accumulator);
|
|
}
|
|
|
|
[numthreads(1, 1, 1)]
|
|
void test_function() {
|
|
uint val1 = 0u;
|
|
uint val2 = 0u;
|
|
const uint tint_symbol = tint_dot4U8Packed(val1, val2);
|
|
return;
|
|
}
|
|
)");
|
|
}
|
|
|
|
TEST_F(HlslGeneratorImplTest_Builtin, CountOneBits) {
|
|
auto* val = Var("val1", ty.i32());
|
|
auto* call = Call("countOneBits", val);
|
|
WrapInFunction(val, call);
|
|
|
|
GeneratorImpl& gen = SanitizeAndBuild();
|
|
|
|
ASSERT_TRUE(gen.Generate()) << gen.error();
|
|
EXPECT_EQ(gen.result(), R"([numthreads(1, 1, 1)]
|
|
void test_function() {
|
|
int val1 = 0;
|
|
const int tint_symbol = asint(countbits(asuint(val1)));
|
|
return;
|
|
}
|
|
)");
|
|
}
|
|
|
|
TEST_F(HlslGeneratorImplTest_Builtin, ReverseBits) {
|
|
auto* val = Var("val1", ty.i32());
|
|
auto* call = Call("reverseBits", val);
|
|
WrapInFunction(val, call);
|
|
|
|
GeneratorImpl& gen = SanitizeAndBuild();
|
|
|
|
ASSERT_TRUE(gen.Generate()) << gen.error();
|
|
EXPECT_EQ(gen.result(), R"([numthreads(1, 1, 1)]
|
|
void test_function() {
|
|
int val1 = 0;
|
|
const int tint_symbol = asint(reversebits(asuint(val1)));
|
|
return;
|
|
}
|
|
)");
|
|
}
|
|
|
|
} // namespace
|
|
} // namespace tint::writer::hlsl
|