mirror of
https://github.com/encounter/dawn-cmake.git
synced 2025-08-23 04:02:01 +00:00
This CL moves the ast::Module to the constructor of the SPIR-V builder class. This allows access to things like the ast::Import from the builder class. Bug: tint:5 Change-Id: I0d61b164c1274d006e124dde2cc11f41a2385fc5 Reviewed-on: https://dawn-review.googlesource.com/c/tint/+/19922 Reviewed-by: David Neto <dneto@google.com>
874 lines
30 KiB
C++
874 lines
30 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 <memory>
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#include "gtest/gtest.h"
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#include "src/ast/binary_expression.h"
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#include "src/ast/float_literal.h"
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#include "src/ast/identifier_expression.h"
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#include "src/ast/int_literal.h"
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#include "src/ast/scalar_constructor_expression.h"
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#include "src/ast/type/f32_type.h"
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#include "src/ast/type/i32_type.h"
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#include "src/ast/type/matrix_type.h"
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#include "src/ast/type/u32_type.h"
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#include "src/ast/type/vector_type.h"
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#include "src/ast/type_constructor_expression.h"
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#include "src/context.h"
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#include "src/type_determiner.h"
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#include "src/writer/spirv/builder.h"
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#include "src/writer/spirv/spv_dump.h"
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namespace tint {
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namespace writer {
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namespace spirv {
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namespace {
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using BuilderTest = testing::Test;
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struct BinaryData {
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ast::BinaryOp op;
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std::string name;
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};
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inline std::ostream& operator<<(std::ostream& out, BinaryData data) {
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out << data.op;
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return out;
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}
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using BinaryArithSignedIntegerTest = testing::TestWithParam<BinaryData>;
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TEST_P(BinaryArithSignedIntegerTest, Scalar) {
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auto param = GetParam();
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ast::type::I32Type i32;
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auto lhs = std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::IntLiteral>(&i32, 3));
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auto rhs = std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::IntLiteral>(&i32, 4));
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ast::BinaryExpression expr(param.op, std::move(lhs), std::move(rhs));
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Context ctx;
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TypeDeterminer td(&ctx);
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ASSERT_TRUE(td.DetermineResultType(&expr)) << td.error();
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ast::Module mod;
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Builder b(&mod);
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b.push_function(Function{});
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EXPECT_EQ(b.GenerateBinaryExpression(&expr), 4u) << b.error();
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EXPECT_EQ(DumpInstructions(b.types()), R"(%1 = OpTypeInt 32 1
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%2 = OpConstant %1 3
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%3 = OpConstant %1 4
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)");
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EXPECT_EQ(DumpInstructions(b.functions()[0].instructions()),
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"%4 = " + param.name + " %1 %2 %3\n");
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}
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TEST_P(BinaryArithSignedIntegerTest, Vector) {
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auto param = GetParam();
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ast::type::I32Type i32;
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ast::type::VectorType vec3(&i32, 3);
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ast::ExpressionList vals;
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vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::IntLiteral>(&i32, 1)));
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vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::IntLiteral>(&i32, 1)));
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vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::IntLiteral>(&i32, 1)));
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auto lhs =
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std::make_unique<ast::TypeConstructorExpression>(&vec3, std::move(vals));
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vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::IntLiteral>(&i32, 1)));
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vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::IntLiteral>(&i32, 1)));
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vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::IntLiteral>(&i32, 1)));
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auto rhs =
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std::make_unique<ast::TypeConstructorExpression>(&vec3, std::move(vals));
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Context ctx;
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TypeDeterminer td(&ctx);
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ast::BinaryExpression expr(param.op, std::move(lhs), std::move(rhs));
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ASSERT_TRUE(td.DetermineResultType(&expr)) << td.error();
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ast::Module mod;
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Builder b(&mod);
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b.push_function(Function{});
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EXPECT_EQ(b.GenerateBinaryExpression(&expr), 5u) << b.error();
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EXPECT_EQ(DumpInstructions(b.types()), R"(%2 = OpTypeInt 32 1
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%1 = OpTypeVector %2 3
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%3 = OpConstant %2 1
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%4 = OpConstantComposite %1 %3 %3 %3
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)");
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EXPECT_EQ(DumpInstructions(b.functions()[0].instructions()),
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"%5 = " + param.name + " %1 %4 %4\n");
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}
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INSTANTIATE_TEST_SUITE_P(
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BuilderTest,
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BinaryArithSignedIntegerTest,
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testing::Values(
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BinaryData{ast::BinaryOp::kAdd, "OpIAdd"},
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BinaryData{ast::BinaryOp::kAnd, "OpBitwiseAnd"},
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BinaryData{ast::BinaryOp::kDivide, "OpSDiv"},
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BinaryData{ast::BinaryOp::kModulo, "OpSMod"},
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BinaryData{ast::BinaryOp::kMultiply, "OpIMul"},
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BinaryData{ast::BinaryOp::kOr, "OpBitwiseOr"},
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BinaryData{ast::BinaryOp::kShiftLeft, "OpShiftLeftLogical"},
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BinaryData{ast::BinaryOp::kShiftRight, "OpShiftRightLogical"},
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BinaryData{ast::BinaryOp::kShiftRightArith, "OpShiftRightArithmetic"},
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BinaryData{ast::BinaryOp::kSubtract, "OpISub"},
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BinaryData{ast::BinaryOp::kXor, "OpBitwiseXor"}));
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using BinaryArithUnsignedIntegerTest = testing::TestWithParam<BinaryData>;
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TEST_P(BinaryArithUnsignedIntegerTest, Scalar) {
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auto param = GetParam();
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ast::type::U32Type u32;
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auto lhs = std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::IntLiteral>(&u32, 3));
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auto rhs = std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::IntLiteral>(&u32, 4));
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ast::BinaryExpression expr(param.op, std::move(lhs), std::move(rhs));
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Context ctx;
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TypeDeterminer td(&ctx);
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ASSERT_TRUE(td.DetermineResultType(&expr)) << td.error();
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ast::Module mod;
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Builder b(&mod);
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b.push_function(Function{});
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EXPECT_EQ(b.GenerateBinaryExpression(&expr), 4u) << b.error();
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EXPECT_EQ(DumpInstructions(b.types()), R"(%1 = OpTypeInt 32 0
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%2 = OpConstant %1 3
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%3 = OpConstant %1 4
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)");
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EXPECT_EQ(DumpInstructions(b.functions()[0].instructions()),
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"%4 = " + param.name + " %1 %2 %3\n");
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}
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TEST_P(BinaryArithUnsignedIntegerTest, Vector) {
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auto param = GetParam();
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ast::type::U32Type u32;
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ast::type::VectorType vec3(&u32, 3);
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ast::ExpressionList vals;
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vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::IntLiteral>(&u32, 1)));
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vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::IntLiteral>(&u32, 1)));
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vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::IntLiteral>(&u32, 1)));
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auto lhs =
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std::make_unique<ast::TypeConstructorExpression>(&vec3, std::move(vals));
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vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::IntLiteral>(&u32, 1)));
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vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::IntLiteral>(&u32, 1)));
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vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::IntLiteral>(&u32, 1)));
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auto rhs =
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std::make_unique<ast::TypeConstructorExpression>(&vec3, std::move(vals));
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Context ctx;
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TypeDeterminer td(&ctx);
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ast::BinaryExpression expr(param.op, std::move(lhs), std::move(rhs));
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ASSERT_TRUE(td.DetermineResultType(&expr)) << td.error();
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ast::Module mod;
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Builder b(&mod);
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b.push_function(Function{});
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EXPECT_EQ(b.GenerateBinaryExpression(&expr), 5u) << b.error();
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EXPECT_EQ(DumpInstructions(b.types()), R"(%2 = OpTypeInt 32 0
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%1 = OpTypeVector %2 3
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%3 = OpConstant %2 1
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%4 = OpConstantComposite %1 %3 %3 %3
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)");
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EXPECT_EQ(DumpInstructions(b.functions()[0].instructions()),
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"%5 = " + param.name + " %1 %4 %4\n");
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}
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INSTANTIATE_TEST_SUITE_P(
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BuilderTest,
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BinaryArithUnsignedIntegerTest,
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testing::Values(
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BinaryData{ast::BinaryOp::kAdd, "OpIAdd"},
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BinaryData{ast::BinaryOp::kAnd, "OpBitwiseAnd"},
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BinaryData{ast::BinaryOp::kDivide, "OpUDiv"},
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BinaryData{ast::BinaryOp::kModulo, "OpUMod"},
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BinaryData{ast::BinaryOp::kMultiply, "OpIMul"},
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BinaryData{ast::BinaryOp::kOr, "OpBitwiseOr"},
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BinaryData{ast::BinaryOp::kShiftLeft, "OpShiftLeftLogical"},
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BinaryData{ast::BinaryOp::kShiftRight, "OpShiftRightLogical"},
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BinaryData{ast::BinaryOp::kShiftRightArith, "OpShiftRightArithmetic"},
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BinaryData{ast::BinaryOp::kSubtract, "OpISub"},
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BinaryData{ast::BinaryOp::kXor, "OpBitwiseXor"}));
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using BinaryArithFloatTest = testing::TestWithParam<BinaryData>;
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TEST_P(BinaryArithFloatTest, Scalar) {
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auto param = GetParam();
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ast::type::F32Type f32;
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auto lhs = std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::FloatLiteral>(&f32, 3.2f));
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auto rhs = std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::FloatLiteral>(&f32, 4.5f));
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ast::BinaryExpression expr(param.op, std::move(lhs), std::move(rhs));
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Context ctx;
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TypeDeterminer td(&ctx);
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ASSERT_TRUE(td.DetermineResultType(&expr)) << td.error();
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ast::Module mod;
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Builder b(&mod);
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b.push_function(Function{});
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EXPECT_EQ(b.GenerateBinaryExpression(&expr), 4u) << b.error();
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EXPECT_EQ(DumpInstructions(b.types()), R"(%1 = OpTypeFloat 32
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%2 = OpConstant %1 3.20000005
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%3 = OpConstant %1 4.5
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)");
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EXPECT_EQ(DumpInstructions(b.functions()[0].instructions()),
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"%4 = " + param.name + " %1 %2 %3\n");
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}
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TEST_P(BinaryArithFloatTest, Vector) {
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auto param = GetParam();
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ast::type::F32Type f32;
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ast::type::VectorType vec3(&f32, 3);
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ast::ExpressionList vals;
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vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::FloatLiteral>(&f32, 1.f)));
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vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::FloatLiteral>(&f32, 1.f)));
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vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::FloatLiteral>(&f32, 1.f)));
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auto lhs =
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std::make_unique<ast::TypeConstructorExpression>(&vec3, std::move(vals));
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vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::FloatLiteral>(&f32, 1.f)));
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vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::FloatLiteral>(&f32, 1.f)));
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vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::FloatLiteral>(&f32, 1.f)));
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auto rhs =
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std::make_unique<ast::TypeConstructorExpression>(&vec3, std::move(vals));
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Context ctx;
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TypeDeterminer td(&ctx);
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ast::BinaryExpression expr(param.op, std::move(lhs), std::move(rhs));
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ASSERT_TRUE(td.DetermineResultType(&expr)) << td.error();
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ast::Module mod;
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Builder b(&mod);
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b.push_function(Function{});
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EXPECT_EQ(b.GenerateBinaryExpression(&expr), 5u) << b.error();
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EXPECT_EQ(DumpInstructions(b.types()), R"(%2 = OpTypeFloat 32
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%1 = OpTypeVector %2 3
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%3 = OpConstant %2 1
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%4 = OpConstantComposite %1 %3 %3 %3
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)");
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EXPECT_EQ(DumpInstructions(b.functions()[0].instructions()),
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"%5 = " + param.name + " %1 %4 %4\n");
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}
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INSTANTIATE_TEST_SUITE_P(
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BuilderTest,
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BinaryArithFloatTest,
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testing::Values(BinaryData{ast::BinaryOp::kAdd, "OpFAdd"},
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BinaryData{ast::BinaryOp::kDivide, "OpFDiv"},
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BinaryData{ast::BinaryOp::kModulo, "OpFMod"},
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BinaryData{ast::BinaryOp::kMultiply, "OpFMul"},
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BinaryData{ast::BinaryOp::kSubtract, "OpFSub"}));
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using BinaryCompareUnsignedIntegerTest = testing::TestWithParam<BinaryData>;
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TEST_P(BinaryCompareUnsignedIntegerTest, Scalar) {
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auto param = GetParam();
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ast::type::U32Type u32;
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auto lhs = std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::IntLiteral>(&u32, 3));
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auto rhs = std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::IntLiteral>(&u32, 4));
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ast::BinaryExpression expr(param.op, std::move(lhs), std::move(rhs));
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Context ctx;
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TypeDeterminer td(&ctx);
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ASSERT_TRUE(td.DetermineResultType(&expr)) << td.error();
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ast::Module mod;
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Builder b(&mod);
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b.push_function(Function{});
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EXPECT_EQ(b.GenerateBinaryExpression(&expr), 4u) << b.error();
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EXPECT_EQ(DumpInstructions(b.types()), R"(%1 = OpTypeInt 32 0
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%2 = OpConstant %1 3
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%3 = OpConstant %1 4
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%5 = OpTypeBool
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)");
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EXPECT_EQ(DumpInstructions(b.functions()[0].instructions()),
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"%4 = " + param.name + " %5 %2 %3\n");
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}
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TEST_P(BinaryCompareUnsignedIntegerTest, Vector) {
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auto param = GetParam();
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ast::type::U32Type u32;
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ast::type::VectorType vec3(&u32, 3);
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ast::ExpressionList vals;
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vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::IntLiteral>(&u32, 1)));
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vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::IntLiteral>(&u32, 1)));
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vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::IntLiteral>(&u32, 1)));
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auto lhs =
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std::make_unique<ast::TypeConstructorExpression>(&vec3, std::move(vals));
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vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::IntLiteral>(&u32, 1)));
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vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::IntLiteral>(&u32, 1)));
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vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::IntLiteral>(&u32, 1)));
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auto rhs =
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std::make_unique<ast::TypeConstructorExpression>(&vec3, std::move(vals));
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Context ctx;
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TypeDeterminer td(&ctx);
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ast::BinaryExpression expr(param.op, std::move(lhs), std::move(rhs));
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ASSERT_TRUE(td.DetermineResultType(&expr)) << td.error();
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ast::Module mod;
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Builder b(&mod);
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b.push_function(Function{});
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EXPECT_EQ(b.GenerateBinaryExpression(&expr), 5u) << b.error();
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EXPECT_EQ(DumpInstructions(b.types()), R"(%2 = OpTypeInt 32 0
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%1 = OpTypeVector %2 3
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%3 = OpConstant %2 1
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%4 = OpConstantComposite %1 %3 %3 %3
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%7 = OpTypeBool
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%6 = OpTypeVector %7 3
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)");
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EXPECT_EQ(DumpInstructions(b.functions()[0].instructions()),
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"%5 = " + param.name + " %6 %4 %4\n");
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}
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INSTANTIATE_TEST_SUITE_P(
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BuilderTest,
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BinaryCompareUnsignedIntegerTest,
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testing::Values(
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BinaryData{ast::BinaryOp::kEqual, "OpIEqual"},
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BinaryData{ast::BinaryOp::kGreaterThan, "OpUGreaterThan"},
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BinaryData{ast::BinaryOp::kGreaterThanEqual, "OpUGreaterThanEqual"},
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BinaryData{ast::BinaryOp::kLessThan, "OpULessThan"},
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BinaryData{ast::BinaryOp::kLessThanEqual, "OpULessThanEqual"},
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BinaryData{ast::BinaryOp::kNotEqual, "OpINotEqual"}));
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using BinaryCompareSignedIntegerTest = testing::TestWithParam<BinaryData>;
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TEST_P(BinaryCompareSignedIntegerTest, Scalar) {
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auto param = GetParam();
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ast::type::I32Type i32;
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auto lhs = std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::IntLiteral>(&i32, 3));
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auto rhs = std::make_unique<ast::ScalarConstructorExpression>(
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std::make_unique<ast::IntLiteral>(&i32, 4));
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ast::BinaryExpression expr(param.op, std::move(lhs), std::move(rhs));
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Context ctx;
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TypeDeterminer td(&ctx);
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ASSERT_TRUE(td.DetermineResultType(&expr)) << td.error();
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ast::Module mod;
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Builder b(&mod);
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b.push_function(Function{});
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EXPECT_EQ(b.GenerateBinaryExpression(&expr), 4u) << b.error();
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EXPECT_EQ(DumpInstructions(b.types()), R"(%1 = OpTypeInt 32 1
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%2 = OpConstant %1 3
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%3 = OpConstant %1 4
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%5 = OpTypeBool
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)");
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EXPECT_EQ(DumpInstructions(b.functions()[0].instructions()),
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"%4 = " + param.name + " %5 %2 %3\n");
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}
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TEST_P(BinaryCompareSignedIntegerTest, Vector) {
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auto param = GetParam();
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ast::type::I32Type i32;
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ast::type::VectorType vec3(&i32, 3);
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|
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ast::ExpressionList vals;
|
|
vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::IntLiteral>(&i32, 1)));
|
|
vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::IntLiteral>(&i32, 1)));
|
|
vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::IntLiteral>(&i32, 1)));
|
|
auto lhs =
|
|
std::make_unique<ast::TypeConstructorExpression>(&vec3, std::move(vals));
|
|
|
|
vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::IntLiteral>(&i32, 1)));
|
|
vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::IntLiteral>(&i32, 1)));
|
|
vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::IntLiteral>(&i32, 1)));
|
|
auto rhs =
|
|
std::make_unique<ast::TypeConstructorExpression>(&vec3, std::move(vals));
|
|
|
|
Context ctx;
|
|
TypeDeterminer td(&ctx);
|
|
|
|
ast::BinaryExpression expr(param.op, std::move(lhs), std::move(rhs));
|
|
|
|
ASSERT_TRUE(td.DetermineResultType(&expr)) << td.error();
|
|
|
|
ast::Module mod;
|
|
Builder b(&mod);
|
|
b.push_function(Function{});
|
|
|
|
EXPECT_EQ(b.GenerateBinaryExpression(&expr), 5u) << b.error();
|
|
EXPECT_EQ(DumpInstructions(b.types()), R"(%2 = OpTypeInt 32 1
|
|
%1 = OpTypeVector %2 3
|
|
%3 = OpConstant %2 1
|
|
%4 = OpConstantComposite %1 %3 %3 %3
|
|
%7 = OpTypeBool
|
|
%6 = OpTypeVector %7 3
|
|
)");
|
|
EXPECT_EQ(DumpInstructions(b.functions()[0].instructions()),
|
|
"%5 = " + param.name + " %6 %4 %4\n");
|
|
}
|
|
INSTANTIATE_TEST_SUITE_P(
|
|
BuilderTest,
|
|
BinaryCompareSignedIntegerTest,
|
|
testing::Values(
|
|
BinaryData{ast::BinaryOp::kEqual, "OpIEqual"},
|
|
BinaryData{ast::BinaryOp::kGreaterThan, "OpSGreaterThan"},
|
|
BinaryData{ast::BinaryOp::kGreaterThanEqual, "OpSGreaterThanEqual"},
|
|
BinaryData{ast::BinaryOp::kLessThan, "OpSLessThan"},
|
|
BinaryData{ast::BinaryOp::kLessThanEqual, "OpSLessThanEqual"},
|
|
BinaryData{ast::BinaryOp::kNotEqual, "OpINotEqual"}));
|
|
|
|
using BinaryCompareFloatTest = testing::TestWithParam<BinaryData>;
|
|
TEST_P(BinaryCompareFloatTest, Scalar) {
|
|
auto param = GetParam();
|
|
|
|
ast::type::F32Type f32;
|
|
|
|
auto lhs = std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::FloatLiteral>(&f32, 3.2f));
|
|
auto rhs = std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::FloatLiteral>(&f32, 4.5f));
|
|
|
|
ast::BinaryExpression expr(param.op, std::move(lhs), std::move(rhs));
|
|
|
|
Context ctx;
|
|
TypeDeterminer td(&ctx);
|
|
ASSERT_TRUE(td.DetermineResultType(&expr)) << td.error();
|
|
|
|
ast::Module mod;
|
|
Builder b(&mod);
|
|
b.push_function(Function{});
|
|
|
|
EXPECT_EQ(b.GenerateBinaryExpression(&expr), 4u) << b.error();
|
|
EXPECT_EQ(DumpInstructions(b.types()), R"(%1 = OpTypeFloat 32
|
|
%2 = OpConstant %1 3.20000005
|
|
%3 = OpConstant %1 4.5
|
|
%5 = OpTypeBool
|
|
)");
|
|
EXPECT_EQ(DumpInstructions(b.functions()[0].instructions()),
|
|
"%4 = " + param.name + " %5 %2 %3\n");
|
|
}
|
|
|
|
TEST_P(BinaryCompareFloatTest, Vector) {
|
|
auto param = GetParam();
|
|
|
|
ast::type::F32Type f32;
|
|
ast::type::VectorType vec3(&f32, 3);
|
|
|
|
ast::ExpressionList vals;
|
|
vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::FloatLiteral>(&f32, 1.f)));
|
|
vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::FloatLiteral>(&f32, 1.f)));
|
|
vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::FloatLiteral>(&f32, 1.f)));
|
|
auto lhs =
|
|
std::make_unique<ast::TypeConstructorExpression>(&vec3, std::move(vals));
|
|
|
|
vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::FloatLiteral>(&f32, 1.f)));
|
|
vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::FloatLiteral>(&f32, 1.f)));
|
|
vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::FloatLiteral>(&f32, 1.f)));
|
|
auto rhs =
|
|
std::make_unique<ast::TypeConstructorExpression>(&vec3, std::move(vals));
|
|
|
|
Context ctx;
|
|
TypeDeterminer td(&ctx);
|
|
|
|
ast::BinaryExpression expr(param.op, std::move(lhs), std::move(rhs));
|
|
|
|
ASSERT_TRUE(td.DetermineResultType(&expr)) << td.error();
|
|
|
|
ast::Module mod;
|
|
Builder b(&mod);
|
|
b.push_function(Function{});
|
|
|
|
EXPECT_EQ(b.GenerateBinaryExpression(&expr), 5u) << b.error();
|
|
EXPECT_EQ(DumpInstructions(b.types()), R"(%2 = OpTypeFloat 32
|
|
%1 = OpTypeVector %2 3
|
|
%3 = OpConstant %2 1
|
|
%4 = OpConstantComposite %1 %3 %3 %3
|
|
%7 = OpTypeBool
|
|
%6 = OpTypeVector %7 3
|
|
)");
|
|
EXPECT_EQ(DumpInstructions(b.functions()[0].instructions()),
|
|
"%5 = " + param.name + " %6 %4 %4\n");
|
|
}
|
|
INSTANTIATE_TEST_SUITE_P(
|
|
BuilderTest,
|
|
BinaryCompareFloatTest,
|
|
testing::Values(
|
|
BinaryData{ast::BinaryOp::kEqual, "OpFOrdEqual"},
|
|
BinaryData{ast::BinaryOp::kGreaterThan, "OpFOrdGreaterThan"},
|
|
BinaryData{ast::BinaryOp::kGreaterThanEqual, "OpFOrdGreaterThanEqual"},
|
|
BinaryData{ast::BinaryOp::kLessThan, "OpFOrdLessThan"},
|
|
BinaryData{ast::BinaryOp::kLessThanEqual, "OpFOrdLessThanEqual"},
|
|
BinaryData{ast::BinaryOp::kNotEqual, "OpFOrdNotEqual"}));
|
|
|
|
TEST_F(BuilderTest, Binary_Multiply_VectorScalar) {
|
|
ast::type::F32Type f32;
|
|
ast::type::VectorType vec3(&f32, 3);
|
|
|
|
ast::ExpressionList vals;
|
|
vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::FloatLiteral>(&f32, 1.f)));
|
|
vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::FloatLiteral>(&f32, 1.f)));
|
|
vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::FloatLiteral>(&f32, 1.f)));
|
|
auto lhs =
|
|
std::make_unique<ast::TypeConstructorExpression>(&vec3, std::move(vals));
|
|
|
|
auto rhs = std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::FloatLiteral>(&f32, 1.f));
|
|
|
|
Context ctx;
|
|
TypeDeterminer td(&ctx);
|
|
|
|
ast::BinaryExpression expr(ast::BinaryOp::kMultiply, std::move(lhs),
|
|
std::move(rhs));
|
|
|
|
ASSERT_TRUE(td.DetermineResultType(&expr)) << td.error();
|
|
|
|
ast::Module mod;
|
|
Builder b(&mod);
|
|
b.push_function(Function{});
|
|
|
|
EXPECT_EQ(b.GenerateBinaryExpression(&expr), 5u) << b.error();
|
|
EXPECT_EQ(DumpInstructions(b.types()), R"(%2 = OpTypeFloat 32
|
|
%1 = OpTypeVector %2 3
|
|
%3 = OpConstant %2 1
|
|
%4 = OpConstantComposite %1 %3 %3 %3
|
|
)");
|
|
EXPECT_EQ(DumpInstructions(b.functions()[0].instructions()),
|
|
"%5 = OpVectorTimesScalar %1 %4 %3\n");
|
|
}
|
|
|
|
TEST_F(BuilderTest, Binary_Multiply_ScalarVector) {
|
|
ast::type::F32Type f32;
|
|
ast::type::VectorType vec3(&f32, 3);
|
|
|
|
auto lhs = std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::FloatLiteral>(&f32, 1.f));
|
|
|
|
ast::ExpressionList vals;
|
|
vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::FloatLiteral>(&f32, 1.f)));
|
|
vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::FloatLiteral>(&f32, 1.f)));
|
|
vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::FloatLiteral>(&f32, 1.f)));
|
|
auto rhs =
|
|
std::make_unique<ast::TypeConstructorExpression>(&vec3, std::move(vals));
|
|
|
|
Context ctx;
|
|
TypeDeterminer td(&ctx);
|
|
|
|
ast::BinaryExpression expr(ast::BinaryOp::kMultiply, std::move(lhs),
|
|
std::move(rhs));
|
|
|
|
ASSERT_TRUE(td.DetermineResultType(&expr)) << td.error();
|
|
|
|
ast::Module mod;
|
|
Builder b(&mod);
|
|
b.push_function(Function{});
|
|
|
|
EXPECT_EQ(b.GenerateBinaryExpression(&expr), 5u) << b.error();
|
|
EXPECT_EQ(DumpInstructions(b.types()), R"(%1 = OpTypeFloat 32
|
|
%2 = OpConstant %1 1
|
|
%3 = OpTypeVector %1 3
|
|
%4 = OpConstantComposite %3 %2 %2 %2
|
|
)");
|
|
EXPECT_EQ(DumpInstructions(b.functions()[0].instructions()),
|
|
"%5 = OpVectorTimesScalar %3 %4 %2\n");
|
|
}
|
|
|
|
TEST_F(BuilderTest, Binary_Multiply_MatrixScalar) {
|
|
ast::type::F32Type f32;
|
|
ast::type::MatrixType mat3(&f32, 3, 3);
|
|
|
|
auto var = std::make_unique<ast::Variable>(
|
|
"mat", ast::StorageClass::kFunction, &mat3);
|
|
auto lhs = std::make_unique<ast::IdentifierExpression>("mat");
|
|
auto rhs = std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::FloatLiteral>(&f32, 1.f));
|
|
|
|
Context ctx;
|
|
TypeDeterminer td(&ctx);
|
|
td.RegisterVariableForTesting(var.get());
|
|
|
|
ast::BinaryExpression expr(ast::BinaryOp::kMultiply, std::move(lhs),
|
|
std::move(rhs));
|
|
|
|
ASSERT_TRUE(td.DetermineResultType(&expr)) << td.error();
|
|
|
|
ast::Module mod;
|
|
Builder b(&mod);
|
|
b.push_function(Function{});
|
|
ASSERT_TRUE(b.GenerateGlobalVariable(var.get())) << b.error();
|
|
|
|
EXPECT_EQ(b.GenerateBinaryExpression(&expr), 8u) << b.error();
|
|
EXPECT_EQ(DumpInstructions(b.types()), R"(%5 = OpTypeFloat 32
|
|
%4 = OpTypeVector %5 3
|
|
%3 = OpTypeMatrix %4 3
|
|
%2 = OpTypePointer Function %3
|
|
%1 = OpVariable %2 Function
|
|
%7 = OpConstant %5 1
|
|
)");
|
|
EXPECT_EQ(DumpInstructions(b.functions()[0].instructions()),
|
|
R"(%6 = OpLoad %3 %1
|
|
%8 = OpMatrixTimesScalar %3 %6 %7
|
|
)");
|
|
}
|
|
|
|
TEST_F(BuilderTest, Binary_Multiply_ScalarMatrix) {
|
|
ast::type::F32Type f32;
|
|
ast::type::MatrixType mat3(&f32, 3, 3);
|
|
|
|
auto var = std::make_unique<ast::Variable>(
|
|
"mat", ast::StorageClass::kFunction, &mat3);
|
|
auto lhs = std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::FloatLiteral>(&f32, 1.f));
|
|
auto rhs = std::make_unique<ast::IdentifierExpression>("mat");
|
|
|
|
Context ctx;
|
|
TypeDeterminer td(&ctx);
|
|
td.RegisterVariableForTesting(var.get());
|
|
|
|
ast::BinaryExpression expr(ast::BinaryOp::kMultiply, std::move(lhs),
|
|
std::move(rhs));
|
|
|
|
ASSERT_TRUE(td.DetermineResultType(&expr)) << td.error();
|
|
|
|
ast::Module mod;
|
|
Builder b(&mod);
|
|
b.push_function(Function{});
|
|
ASSERT_TRUE(b.GenerateGlobalVariable(var.get())) << b.error();
|
|
|
|
EXPECT_EQ(b.GenerateBinaryExpression(&expr), 8u) << b.error();
|
|
EXPECT_EQ(DumpInstructions(b.types()), R"(%5 = OpTypeFloat 32
|
|
%4 = OpTypeVector %5 3
|
|
%3 = OpTypeMatrix %4 3
|
|
%2 = OpTypePointer Function %3
|
|
%1 = OpVariable %2 Function
|
|
%6 = OpConstant %5 1
|
|
)");
|
|
EXPECT_EQ(DumpInstructions(b.functions()[0].instructions()),
|
|
R"(%7 = OpLoad %3 %1
|
|
%8 = OpMatrixTimesScalar %3 %7 %6
|
|
)");
|
|
}
|
|
|
|
TEST_F(BuilderTest, Binary_Multiply_MatrixVector) {
|
|
ast::type::F32Type f32;
|
|
ast::type::VectorType vec3(&f32, 3);
|
|
ast::type::MatrixType mat3(&f32, 3, 3);
|
|
|
|
auto var = std::make_unique<ast::Variable>(
|
|
"mat", ast::StorageClass::kFunction, &mat3);
|
|
auto lhs = std::make_unique<ast::IdentifierExpression>("mat");
|
|
|
|
ast::ExpressionList vals;
|
|
vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::FloatLiteral>(&f32, 1.f)));
|
|
vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::FloatLiteral>(&f32, 1.f)));
|
|
vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::FloatLiteral>(&f32, 1.f)));
|
|
auto rhs =
|
|
std::make_unique<ast::TypeConstructorExpression>(&vec3, std::move(vals));
|
|
|
|
Context ctx;
|
|
TypeDeterminer td(&ctx);
|
|
td.RegisterVariableForTesting(var.get());
|
|
|
|
ast::BinaryExpression expr(ast::BinaryOp::kMultiply, std::move(lhs),
|
|
std::move(rhs));
|
|
|
|
ASSERT_TRUE(td.DetermineResultType(&expr)) << td.error();
|
|
|
|
ast::Module mod;
|
|
Builder b(&mod);
|
|
b.push_function(Function{});
|
|
ASSERT_TRUE(b.GenerateGlobalVariable(var.get())) << b.error();
|
|
|
|
EXPECT_EQ(b.GenerateBinaryExpression(&expr), 9u) << b.error();
|
|
EXPECT_EQ(DumpInstructions(b.types()), R"(%5 = OpTypeFloat 32
|
|
%4 = OpTypeVector %5 3
|
|
%3 = OpTypeMatrix %4 3
|
|
%2 = OpTypePointer Function %3
|
|
%1 = OpVariable %2 Function
|
|
%7 = OpConstant %5 1
|
|
%8 = OpConstantComposite %4 %7 %7 %7
|
|
)");
|
|
EXPECT_EQ(DumpInstructions(b.functions()[0].instructions()),
|
|
R"(%6 = OpLoad %3 %1
|
|
%9 = OpMatrixTimesVector %4 %6 %8
|
|
)");
|
|
}
|
|
|
|
TEST_F(BuilderTest, Binary_Multiply_VectorMatrix) {
|
|
ast::type::F32Type f32;
|
|
ast::type::VectorType vec3(&f32, 3);
|
|
ast::type::MatrixType mat3(&f32, 3, 3);
|
|
|
|
auto var = std::make_unique<ast::Variable>(
|
|
"mat", ast::StorageClass::kFunction, &mat3);
|
|
|
|
ast::ExpressionList vals;
|
|
vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::FloatLiteral>(&f32, 1.f)));
|
|
vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::FloatLiteral>(&f32, 1.f)));
|
|
vals.push_back(std::make_unique<ast::ScalarConstructorExpression>(
|
|
std::make_unique<ast::FloatLiteral>(&f32, 1.f)));
|
|
auto lhs =
|
|
std::make_unique<ast::TypeConstructorExpression>(&vec3, std::move(vals));
|
|
|
|
auto rhs = std::make_unique<ast::IdentifierExpression>("mat");
|
|
|
|
Context ctx;
|
|
TypeDeterminer td(&ctx);
|
|
td.RegisterVariableForTesting(var.get());
|
|
|
|
ast::BinaryExpression expr(ast::BinaryOp::kMultiply, std::move(lhs),
|
|
std::move(rhs));
|
|
|
|
ASSERT_TRUE(td.DetermineResultType(&expr)) << td.error();
|
|
|
|
ast::Module mod;
|
|
Builder b(&mod);
|
|
b.push_function(Function{});
|
|
ASSERT_TRUE(b.GenerateGlobalVariable(var.get())) << b.error();
|
|
|
|
EXPECT_EQ(b.GenerateBinaryExpression(&expr), 9u) << b.error();
|
|
EXPECT_EQ(DumpInstructions(b.types()), R"(%5 = OpTypeFloat 32
|
|
%4 = OpTypeVector %5 3
|
|
%3 = OpTypeMatrix %4 3
|
|
%2 = OpTypePointer Function %3
|
|
%1 = OpVariable %2 Function
|
|
%6 = OpConstant %5 1
|
|
%7 = OpConstantComposite %4 %6 %6 %6
|
|
)");
|
|
EXPECT_EQ(DumpInstructions(b.functions()[0].instructions()),
|
|
R"(%8 = OpLoad %3 %1
|
|
%9 = OpVectorTimesMatrix %4 %7 %8
|
|
)");
|
|
}
|
|
|
|
TEST_F(BuilderTest, Binary_Multiply_MatrixMatrix) {
|
|
ast::type::F32Type f32;
|
|
ast::type::VectorType vec3(&f32, 3);
|
|
ast::type::MatrixType mat3(&f32, 3, 3);
|
|
|
|
auto var = std::make_unique<ast::Variable>(
|
|
"mat", ast::StorageClass::kFunction, &mat3);
|
|
auto lhs = std::make_unique<ast::IdentifierExpression>("mat");
|
|
auto rhs = std::make_unique<ast::IdentifierExpression>("mat");
|
|
|
|
Context ctx;
|
|
TypeDeterminer td(&ctx);
|
|
td.RegisterVariableForTesting(var.get());
|
|
|
|
ast::BinaryExpression expr(ast::BinaryOp::kMultiply, std::move(lhs),
|
|
std::move(rhs));
|
|
|
|
ASSERT_TRUE(td.DetermineResultType(&expr)) << td.error();
|
|
|
|
ast::Module mod;
|
|
Builder b(&mod);
|
|
b.push_function(Function{});
|
|
ASSERT_TRUE(b.GenerateGlobalVariable(var.get())) << b.error();
|
|
|
|
EXPECT_EQ(b.GenerateBinaryExpression(&expr), 8u) << b.error();
|
|
EXPECT_EQ(DumpInstructions(b.types()), R"(%5 = OpTypeFloat 32
|
|
%4 = OpTypeVector %5 3
|
|
%3 = OpTypeMatrix %4 3
|
|
%2 = OpTypePointer Function %3
|
|
%1 = OpVariable %2 Function
|
|
)");
|
|
EXPECT_EQ(DumpInstructions(b.functions()[0].instructions()),
|
|
R"(%6 = OpLoad %3 %1
|
|
%7 = OpLoad %3 %1
|
|
%8 = OpMatrixTimesMatrix %3 %6 %7
|
|
)");
|
|
}
|
|
|
|
} // namespace
|
|
} // namespace spirv
|
|
} // namespace writer
|
|
} // namespace tint
|