interpreter-assembler-unittest.cc 21.2 KB
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// Copyright 2015 the V8 project authors. All rights reserved.
// Use of this source code is governed by a BSD-style license that can be
// found in the LICENSE file.

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#include "test/unittests/interpreter/interpreter-assembler-unittest.h"
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#include "src/code-factory.h"
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#include "src/compiler/node.h"
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#include "src/interface-descriptors.h"
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#include "src/isolate.h"
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#include "src/objects-inl.h"
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#include "test/unittests/compiler/compiler-test-utils.h"
#include "test/unittests/compiler/node-test-utils.h"

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using ::testing::_;
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using v8::internal::compiler::Node;

namespace c = v8::internal::compiler;
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namespace v8 {
namespace internal {
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namespace interpreter {
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namespace interpreter_assembler_unittest {
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InterpreterAssemblerTestState::InterpreterAssemblerTestState(
    InterpreterAssemblerTest* test, Bytecode bytecode)
    : compiler::CodeAssemblerState(
          test->isolate(), test->zone(),
          InterpreterDispatchDescriptor(test->isolate()),
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          Code::BYTECODE_HANDLER, Bytecodes::ToString(bytecode),
          Bytecodes::ReturnCount(bytecode)) {}
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const interpreter::Bytecode kBytecodes[] = {
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#define DEFINE_BYTECODE(Name, ...) interpreter::Bytecode::k##Name,
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    BYTECODE_LIST(DEFINE_BYTECODE)
#undef DEFINE_BYTECODE
};

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InterpreterAssemblerTest::InterpreterAssemblerForTest::
    ~InterpreterAssemblerForTest() {
  // Tests don't necessarily read and write accumulator but
  // InterpreterAssembler checks accumulator uses.
  if (Bytecodes::ReadsAccumulator(bytecode())) {
    GetAccumulator();
  }
  if (Bytecodes::WritesAccumulator(bytecode())) {
    SetAccumulator(nullptr);
  }
}

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Matcher<Node*> InterpreterAssemblerTest::InterpreterAssemblerForTest::IsLoad(
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    const Matcher<c::LoadRepresentation>& rep_matcher,
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    const Matcher<Node*>& base_matcher, const Matcher<Node*>& index_matcher) {
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  return ::i::compiler::IsLoad(rep_matcher, base_matcher, index_matcher, _, _);
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}

Matcher<Node*> InterpreterAssemblerTest::InterpreterAssemblerForTest::IsStore(
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    const Matcher<c::StoreRepresentation>& rep_matcher,
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    const Matcher<Node*>& base_matcher, const Matcher<Node*>& index_matcher,
    const Matcher<Node*>& value_matcher) {
  return ::i::compiler::IsStore(rep_matcher, base_matcher, index_matcher,
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                                value_matcher, _, _);
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}

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Matcher<Node*>
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InterpreterAssemblerTest::InterpreterAssemblerForTest::IsUnsignedByteOperand(
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    int offset) {
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  return IsLoad(
      MachineType::Uint8(),
      c::IsParameter(InterpreterDispatchDescriptor::kBytecodeArray),
      c::IsIntPtrAdd(
          c::IsParameter(InterpreterDispatchDescriptor::kBytecodeOffset),
          c::IsIntPtrConstant(offset)));
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}

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Matcher<Node*>
InterpreterAssemblerTest::InterpreterAssemblerForTest::IsSignedByteOperand(
    int offset) {
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  return IsLoad(
      MachineType::Int8(),
      c::IsParameter(InterpreterDispatchDescriptor::kBytecodeArray),
      c::IsIntPtrAdd(
          c::IsParameter(InterpreterDispatchDescriptor::kBytecodeOffset),
          c::IsIntPtrConstant(offset)));
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}

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Matcher<Node*>
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InterpreterAssemblerTest::InterpreterAssemblerForTest::IsUnsignedShortOperand(
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    int offset) {
  if (TargetSupportsUnalignedAccess()) {
    return IsLoad(
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        MachineType::Uint16(),
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        c::IsParameter(InterpreterDispatchDescriptor::kBytecodeArray),
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        c::IsIntPtrAdd(
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            c::IsParameter(InterpreterDispatchDescriptor::kBytecodeOffset),
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            c::IsIntPtrConstant(offset)));
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  } else {
#if V8_TARGET_LITTLE_ENDIAN
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    const int kStep = -1;
    const int kMsbOffset = 1;
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#elif V8_TARGET_BIG_ENDIAN
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    const int kStep = 1;
    const int kMsbOffset = 0;
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#else
#error "Unknown Architecture"
#endif
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    Matcher<Node*> bytes[2];
    for (int i = 0; i < static_cast<int>(arraysize(bytes)); i++) {
      bytes[i] = IsLoad(
          MachineType::Uint8(),
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          c::IsParameter(InterpreterDispatchDescriptor::kBytecodeArray),
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          c::IsIntPtrAdd(
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              c::IsParameter(InterpreterDispatchDescriptor::kBytecodeOffset),
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              c::IsIntPtrConstant(offset + kMsbOffset + kStep * i)));
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    }
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    return c::IsWord32Or(
        c::IsWord32Shl(bytes[0], c::IsInt32Constant(kBitsPerByte)), bytes[1]);
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  }
}

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Matcher<Node*>
InterpreterAssemblerTest::InterpreterAssemblerForTest::IsSignedShortOperand(
    int offset) {
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  if (TargetSupportsUnalignedAccess()) {
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    return IsLoad(
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        MachineType::Int16(),
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        c::IsParameter(InterpreterDispatchDescriptor::kBytecodeArray),
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        c::IsIntPtrAdd(
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            c::IsParameter(InterpreterDispatchDescriptor::kBytecodeOffset),
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            c::IsIntPtrConstant(offset)));
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  } else {
#if V8_TARGET_LITTLE_ENDIAN
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    const int kStep = -1;
    const int kMsbOffset = 1;
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#elif V8_TARGET_BIG_ENDIAN
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    const int kStep = 1;
    const int kMsbOffset = 0;
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#else
#error "Unknown Architecture"
#endif
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    Matcher<Node*> bytes[2];
    for (int i = 0; i < static_cast<int>(arraysize(bytes)); i++) {
      bytes[i] = IsLoad(
          (i == 0) ? MachineType::Int8() : MachineType::Uint8(),
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          c::IsParameter(InterpreterDispatchDescriptor::kBytecodeArray),
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          c::IsIntPtrAdd(
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              c::IsParameter(InterpreterDispatchDescriptor::kBytecodeOffset),
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              c::IsIntPtrConstant(offset + kMsbOffset + kStep * i)));
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    }
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    return c::IsWord32Or(
        c::IsWord32Shl(bytes[0], c::IsInt32Constant(kBitsPerByte)), bytes[1]);
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  }
}

Matcher<Node*>
InterpreterAssemblerTest::InterpreterAssemblerForTest::IsUnsignedQuadOperand(
    int offset) {
  if (TargetSupportsUnalignedAccess()) {
    return IsLoad(
        MachineType::Uint32(),
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        c::IsParameter(InterpreterDispatchDescriptor::kBytecodeArray),
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        c::IsIntPtrAdd(
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            c::IsParameter(InterpreterDispatchDescriptor::kBytecodeOffset),
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            c::IsIntPtrConstant(offset)));
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  } else {
#if V8_TARGET_LITTLE_ENDIAN
    const int kStep = -1;
    const int kMsbOffset = 3;
#elif V8_TARGET_BIG_ENDIAN
    const int kStep = 1;
    const int kMsbOffset = 0;
#else
#error "Unknown Architecture"
#endif
    Matcher<Node*> bytes[4];
    for (int i = 0; i < static_cast<int>(arraysize(bytes)); i++) {
      bytes[i] = IsLoad(
          MachineType::Uint8(),
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          c::IsParameter(InterpreterDispatchDescriptor::kBytecodeArray),
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          c::IsIntPtrAdd(
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              c::IsParameter(InterpreterDispatchDescriptor::kBytecodeOffset),
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              c::IsIntPtrConstant(offset + kMsbOffset + kStep * i)));
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    }
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    return c::IsWord32Or(
        c::IsWord32Shl(bytes[0], c::IsInt32Constant(3 * kBitsPerByte)),
        c::IsWord32Or(
            c::IsWord32Shl(bytes[1], c::IsInt32Constant(2 * kBitsPerByte)),
            c::IsWord32Or(
                c::IsWord32Shl(bytes[2], c::IsInt32Constant(1 * kBitsPerByte)),
                bytes[3])));
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  }
}

Matcher<Node*>
InterpreterAssemblerTest::InterpreterAssemblerForTest::IsSignedQuadOperand(
    int offset) {
  if (TargetSupportsUnalignedAccess()) {
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    return IsLoad(
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        MachineType::Int32(),
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        c::IsParameter(InterpreterDispatchDescriptor::kBytecodeArray),
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        c::IsIntPtrAdd(
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            c::IsParameter(InterpreterDispatchDescriptor::kBytecodeOffset),
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            c::IsIntPtrConstant(offset)));
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  } else {
#if V8_TARGET_LITTLE_ENDIAN
    const int kStep = -1;
    int kMsbOffset = 3;
#elif V8_TARGET_BIG_ENDIAN
    const int kStep = 1;
    int kMsbOffset = 0;
#else
#error "Unknown Architecture"
#endif
    Matcher<Node*> bytes[4];
    for (int i = 0; i < static_cast<int>(arraysize(bytes)); i++) {
      bytes[i] = IsLoad(
          (i == 0) ? MachineType::Int8() : MachineType::Uint8(),
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          c::IsParameter(InterpreterDispatchDescriptor::kBytecodeArray),
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          c::IsIntPtrAdd(
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              c::IsParameter(InterpreterDispatchDescriptor::kBytecodeOffset),
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              c::IsIntPtrConstant(offset + kMsbOffset + kStep * i)));
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    }
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    return c::IsWord32Or(
        c::IsWord32Shl(bytes[0], c::IsInt32Constant(3 * kBitsPerByte)),
        c::IsWord32Or(
            c::IsWord32Shl(bytes[1], c::IsInt32Constant(2 * kBitsPerByte)),
            c::IsWord32Or(
                c::IsWord32Shl(bytes[2], c::IsInt32Constant(1 * kBitsPerByte)),
                bytes[3])));
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  }
}

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Matcher<Node*>
InterpreterAssemblerTest::InterpreterAssemblerForTest::IsSignedOperand(
    int offset, OperandSize operand_size) {
  switch (operand_size) {
    case OperandSize::kByte:
      return IsSignedByteOperand(offset);
    case OperandSize::kShort:
      return IsSignedShortOperand(offset);
    case OperandSize::kQuad:
      return IsSignedQuadOperand(offset);
    case OperandSize::kNone:
      UNREACHABLE();
  }
  return nullptr;
}

Matcher<Node*>
InterpreterAssemblerTest::InterpreterAssemblerForTest::IsUnsignedOperand(
    int offset, OperandSize operand_size) {
  switch (operand_size) {
    case OperandSize::kByte:
      return IsUnsignedByteOperand(offset);
    case OperandSize::kShort:
      return IsUnsignedShortOperand(offset);
    case OperandSize::kQuad:
      return IsUnsignedQuadOperand(offset);
    case OperandSize::kNone:
      UNREACHABLE();
  }
  return nullptr;
}

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TARGET_TEST_F(InterpreterAssemblerTest, Jump) {
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  // If debug code is enabled we emit extra code in Jump.
  if (FLAG_debug_code) return;

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  int jump_offsets[] = {-9710, -77, 0, +3, +97109};
  TRACED_FOREACH(int, jump_offset, jump_offsets) {
    TRACED_FOREACH(interpreter::Bytecode, bytecode, kBytecodes) {
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      if (!interpreter::Bytecodes::IsJump(bytecode)) return;

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      InterpreterAssemblerTestState state(this, bytecode);
      InterpreterAssemblerForTest m(&state, bytecode);
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      Node* tail_call_node = m.Jump(m.IntPtrConstant(jump_offset));
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      Matcher<Node*> next_bytecode_offset_matcher = c::IsIntPtrAdd(
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          c::IsParameter(InterpreterDispatchDescriptor::kBytecodeOffset),
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          c::IsIntPtrConstant(jump_offset));
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      Matcher<Node*> target_bytecode_matcher =
          m.IsLoad(MachineType::Uint8(), _, next_bytecode_offset_matcher);
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      target_bytecode_matcher =
          c::IsChangeUint32ToWord(target_bytecode_matcher);
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      Matcher<Node*> code_target_matcher = m.IsLoad(
          MachineType::Pointer(),
          c::IsParameter(InterpreterDispatchDescriptor::kDispatchTable),
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          c::IsWordShl(target_bytecode_matcher,
                       c::IsIntPtrConstant(kPointerSizeLog2)));
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      EXPECT_THAT(
          tail_call_node,
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          c::IsTailCall(
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              _, code_target_matcher,
              c::IsParameter(InterpreterDispatchDescriptor::kAccumulator),
              next_bytecode_offset_matcher, _,
              c::IsParameter(InterpreterDispatchDescriptor::kDispatchTable), _,
              _));
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    }
  }
}

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TARGET_TEST_F(InterpreterAssemblerTest, BytecodeOperand) {
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  static const OperandScale kOperandScales[] = {
      OperandScale::kSingle, OperandScale::kDouble, OperandScale::kQuadruple};
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  TRACED_FOREACH(interpreter::Bytecode, bytecode, kBytecodes) {
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    TRACED_FOREACH(interpreter::OperandScale, operand_scale, kOperandScales) {
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      InterpreterAssemblerTestState state(this, bytecode);
      InterpreterAssemblerForTest m(&state, bytecode, operand_scale);
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      int number_of_operands =
          interpreter::Bytecodes::NumberOfOperands(bytecode);
      for (int i = 0; i < number_of_operands; i++) {
        int offset = interpreter::Bytecodes::GetOperandOffset(bytecode, i,
                                                              operand_scale);
        OperandType operand_type =
            interpreter::Bytecodes::GetOperandType(bytecode, i);
        OperandSize operand_size =
            Bytecodes::SizeOfOperand(operand_type, operand_scale);
        switch (interpreter::Bytecodes::GetOperandType(bytecode, i)) {
          case interpreter::OperandType::kRegCount:
            EXPECT_THAT(m.BytecodeOperandCount(i),
                        m.IsUnsignedOperand(offset, operand_size));
            break;
          case interpreter::OperandType::kFlag8:
            EXPECT_THAT(m.BytecodeOperandFlag(i),
                        m.IsUnsignedOperand(offset, operand_size));
            break;
          case interpreter::OperandType::kIdx:
            EXPECT_THAT(m.BytecodeOperandIdx(i),
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                        c::IsChangeUint32ToWord(
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                            m.IsUnsignedOperand(offset, operand_size)));
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            break;
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          case interpreter::OperandType::kNativeContextIndex:
            EXPECT_THAT(m.BytecodeOperandNativeContextIndex(i),
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                        c::IsChangeUint32ToWord(
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                            m.IsUnsignedOperand(offset, operand_size)));
            break;
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          case interpreter::OperandType::kUImm:
            EXPECT_THAT(m.BytecodeOperandUImm(i),
                        m.IsUnsignedOperand(offset, operand_size));
            break;
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          case interpreter::OperandType::kImm: {
            EXPECT_THAT(m.BytecodeOperandImm(i),
                        m.IsSignedOperand(offset, operand_size));
            break;
          }
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          case interpreter::OperandType::kRegList:
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          case interpreter::OperandType::kReg:
          case interpreter::OperandType::kRegOut:
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          case interpreter::OperandType::kRegOutList:
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          case interpreter::OperandType::kRegOutPair:
          case interpreter::OperandType::kRegOutTriple:
          case interpreter::OperandType::kRegPair:
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            EXPECT_THAT(m.BytecodeOperandReg(i),
                        c::IsChangeInt32ToIntPtr(
                            m.IsSignedOperand(offset, operand_size)));
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            break;
          case interpreter::OperandType::kRuntimeId:
            EXPECT_THAT(m.BytecodeOperandRuntimeId(i),
                        m.IsUnsignedOperand(offset, operand_size));
            break;
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          case interpreter::OperandType::kIntrinsicId:
            EXPECT_THAT(m.BytecodeOperandIntrinsicId(i),
                        m.IsUnsignedOperand(offset, operand_size));
            break;
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          case interpreter::OperandType::kNone:
            UNREACHABLE();
            break;
        }
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      }
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    }
  }
}

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TARGET_TEST_F(InterpreterAssemblerTest, GetContext) {
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  TRACED_FOREACH(interpreter::Bytecode, bytecode, kBytecodes) {
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    InterpreterAssemblerTestState state(this, bytecode);
    InterpreterAssemblerForTest m(&state, bytecode);
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    EXPECT_THAT(
        m.GetContext(),
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        m.IsLoad(MachineType::AnyTagged(), c::IsLoadParentFramePointer(),
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                 c::IsIntPtrConstant(Register::current_context().ToOperand()
                                     << kPointerSizeLog2)));
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  }
}

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TARGET_TEST_F(InterpreterAssemblerTest, RegisterLocation) {
  TRACED_FOREACH(interpreter::Bytecode, bytecode, kBytecodes) {
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    InterpreterAssemblerTestState state(this, bytecode);
    InterpreterAssemblerForTest m(&state, bytecode);
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    Node* reg_index_node = m.Parameter(0);
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    Node* reg_location_node = m.RegisterLocation(reg_index_node);
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    EXPECT_THAT(
        reg_location_node,
        c::IsIntPtrAdd(c::IsLoadParentFramePointer(),
                       c::IsWordShl(reg_index_node,
                                    c::IsIntPtrConstant(kPointerSizeLog2))));
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  }
}

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TARGET_TEST_F(InterpreterAssemblerTest, LoadRegister) {
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  TRACED_FOREACH(interpreter::Bytecode, bytecode, kBytecodes) {
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    InterpreterAssemblerTestState state(this, bytecode);
    InterpreterAssemblerForTest m(&state, bytecode);
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    Node* reg_index_node = m.Parameter(0);
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    Node* load_reg_node = m.LoadRegister(reg_index_node);
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    EXPECT_THAT(
        load_reg_node,
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        m.IsLoad(MachineType::AnyTagged(), c::IsLoadParentFramePointer(),
                 c::IsWordShl(reg_index_node,
                              c::IsIntPtrConstant(kPointerSizeLog2))));
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  }
}

TARGET_TEST_F(InterpreterAssemblerTest, StoreRegister) {
  TRACED_FOREACH(interpreter::Bytecode, bytecode, kBytecodes) {
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    InterpreterAssemblerTestState state(this, bytecode);
    InterpreterAssemblerForTest m(&state, bytecode);
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    Node* store_value = m.Int32Constant(0xDEADBEEF);
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    Node* reg_index_node = m.Parameter(0);
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    Node* store_reg_node = m.StoreRegister(store_value, reg_index_node);
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    EXPECT_THAT(store_reg_node,
                m.IsStore(c::StoreRepresentation(MachineRepresentation::kTagged,
                                                 kNoWriteBarrier),
                          c::IsLoadParentFramePointer(),
                          c::IsWordShl(reg_index_node,
                                       c::IsIntPtrConstant(kPointerSizeLog2)),
                          store_value));
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  }
}

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TARGET_TEST_F(InterpreterAssemblerTest, LoadConstantPoolEntry) {
  TRACED_FOREACH(interpreter::Bytecode, bytecode, kBytecodes) {
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    InterpreterAssemblerTestState state(this, bytecode);
    InterpreterAssemblerForTest m(&state, bytecode);
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    {
      Node* index = m.IntPtrConstant(2);
      Node* load_constant = m.LoadConstantPoolEntry(index);
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      Matcher<Node*> constant_pool_matcher = m.IsLoad(
          MachineType::AnyTagged(),
          c::IsParameter(InterpreterDispatchDescriptor::kBytecodeArray),
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          c::IsIntPtrConstant(BytecodeArray::kConstantPoolOffset -
                              kHeapObjectTag));
      EXPECT_THAT(
          load_constant,
          m.IsLoad(MachineType::AnyTagged(), constant_pool_matcher,
                   c::IsIntPtrConstant(FixedArray::OffsetOfElementAt(2) -
                                       kHeapObjectTag)));
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    }
    {
      Node* index = m.Parameter(2);
      Node* load_constant = m.LoadConstantPoolEntry(index);
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      Matcher<Node*> constant_pool_matcher = m.IsLoad(
          MachineType::AnyTagged(),
          c::IsParameter(InterpreterDispatchDescriptor::kBytecodeArray),
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          c::IsIntPtrConstant(BytecodeArray::kConstantPoolOffset -
                              kHeapObjectTag));
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      EXPECT_THAT(
          load_constant,
          m.IsLoad(
              MachineType::AnyTagged(), constant_pool_matcher,
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              c::IsIntPtrAdd(
                  c::IsIntPtrConstant(FixedArray::kHeaderSize - kHeapObjectTag),
                  c::IsWordShl(index, c::IsIntPtrConstant(kPointerSizeLog2)))));
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    }
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  }
}

TARGET_TEST_F(InterpreterAssemblerTest, LoadObjectField) {
  TRACED_FOREACH(interpreter::Bytecode, bytecode, kBytecodes) {
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    InterpreterAssemblerTestState state(this, bytecode);
    InterpreterAssemblerForTest m(&state, bytecode);
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    Node* object = m.IntPtrConstant(0xDEADBEEF);
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    int offset = 16;
    Node* load_field = m.LoadObjectField(object, offset);
    EXPECT_THAT(load_field,
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                m.IsLoad(MachineType::AnyTagged(), object,
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                         c::IsIntPtrConstant(offset - kHeapObjectTag)));
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  }
}

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TARGET_TEST_F(InterpreterAssemblerTest, CallRuntime2) {
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  TRACED_FOREACH(interpreter::Bytecode, bytecode, kBytecodes) {
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    InterpreterAssemblerTestState state(this, bytecode);
    InterpreterAssemblerForTest m(&state, bytecode);
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    Node* arg1 = m.Int32Constant(2);
    Node* arg2 = m.Int32Constant(3);
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    Node* context = m.Int32Constant(4);
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    Node* call_runtime = m.CallRuntime(Runtime::kAdd, context, arg1, arg2);
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    EXPECT_THAT(call_runtime, c::IsCall(_, _, arg1, arg2, _,
                                        c::IsInt32Constant(2), context, _, _));
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  }
}

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TARGET_TEST_F(InterpreterAssemblerTest, CallRuntime) {
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  const int kResultSizes[] = {1, 2};
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  TRACED_FOREACH(interpreter::Bytecode, bytecode, kBytecodes) {
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    TRACED_FOREACH(int, result_size, kResultSizes) {
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      if (Bytecodes::IsCallRuntime(bytecode)) {
        InterpreterAssemblerTestState state(this, bytecode);
        InterpreterAssemblerForTest m(&state, bytecode);
        Callable builtin =
            CodeFactory::InterpreterCEntry(isolate(), result_size);

        Node* function_id = m.Int32Constant(0);
        Node* first_arg = m.IntPtrConstant(1);
        Node* arg_count = m.Int32Constant(2);
        Node* context = m.IntPtrConstant(4);

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        Matcher<Node*> function_table = c::IsExternalConstant(
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            ExternalReference::runtime_function_table_address(isolate()));
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        Matcher<Node*> function = c::IsIntPtrAdd(
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            function_table,
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            c::IsChangeUint32ToWord(c::IsInt32Mul(
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                function_id, c::IsInt32Constant(sizeof(Runtime::Function)))));
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        Matcher<Node*> function_entry =
            m.IsLoad(MachineType::Pointer(), function,
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                     c::IsIntPtrConstant(offsetof(Runtime::Function, entry)));
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        Node* call_runtime = m.CallRuntimeN(function_id, context, first_arg,
                                            arg_count, result_size);
        EXPECT_THAT(call_runtime,
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                    c::IsCall(_, c::IsHeapConstant(builtin.code()), arg_count,
                              first_arg, function_entry, context, _, _));
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      }
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    }
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  }
}

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TARGET_TEST_F(InterpreterAssemblerTest, LoadFeedbackVector) {
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  TRACED_FOREACH(interpreter::Bytecode, bytecode, kBytecodes) {
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    InterpreterAssemblerTestState state(this, bytecode);
    InterpreterAssemblerForTest m(&state, bytecode);
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    Node* feedback_vector = m.LoadFeedbackVector();
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    Matcher<Node*> load_function_matcher =
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        m.IsLoad(MachineType::AnyTagged(), c::IsLoadParentFramePointer(),
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                 c::IsIntPtrConstant(Register::function_closure().ToOperand()
                                     << kPointerSizeLog2));
    Matcher<Node*> load_vector_cell_matcher =
        m.IsLoad(MachineType::AnyTagged(), load_function_matcher,
                 c::IsIntPtrConstant(JSFunction::kFeedbackVectorOffset -
                                     kHeapObjectTag));
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    EXPECT_THAT(
        feedback_vector,
        m.IsLoad(MachineType::AnyTagged(), load_vector_cell_matcher,
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                 c::IsIntPtrConstant(Cell::kValueOffset - kHeapObjectTag)));
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  }
}

552
}  // namespace interpreter_assembler_unittest
553
}  // namespace interpreter
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}  // namespace internal
}  // namespace v8