71bb00e261
FINAL implies OVERRIDE, which in turn implies virtual, so there's no need to use more than one of these. The Google C++ style guide even requires this, see http://google-styleguide.googlecode.com/svn/trunk/cppguide.html#Inheritance. While we're here, port r24662 to x87. The net result is that v8 compiles again with a current clang. BUG=v8:3753 LOG=y Review URL: https://codereview.chromium.org/797943002 Cr-Commit-Position: refs/heads/master@{#25792}
380 lines
13 KiB
C++
380 lines
13 KiB
C++
// Copyright 2011 the V8 project authors. All rights reserved.
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// Use of this source code is governed by a BSD-style license that can be
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// found in the LICENSE file.
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#ifndef V8_X87_CODE_STUBS_X87_H_
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#define V8_X87_CODE_STUBS_X87_H_
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namespace v8 {
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namespace internal {
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void ArrayNativeCode(MacroAssembler* masm,
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bool construct_call,
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Label* call_generic_code);
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class StringHelper : public AllStatic {
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public:
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// Generate code for copying characters using the rep movs instruction.
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// Copies ecx characters from esi to edi. Copying of overlapping regions is
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// not supported.
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static void GenerateCopyCharacters(MacroAssembler* masm,
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Register dest,
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Register src,
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Register count,
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Register scratch,
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String::Encoding encoding);
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// Compares two flat one byte strings and returns result in eax.
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static void GenerateCompareFlatOneByteStrings(MacroAssembler* masm,
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Register left, Register right,
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Register scratch1,
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Register scratch2,
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Register scratch3);
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// Compares two flat one byte strings for equality and returns result in eax.
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static void GenerateFlatOneByteStringEquals(MacroAssembler* masm,
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Register left, Register right,
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Register scratch1,
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Register scratch2);
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private:
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static void GenerateOneByteCharsCompareLoop(
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MacroAssembler* masm, Register left, Register right, Register length,
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Register scratch, Label* chars_not_equal,
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Label::Distance chars_not_equal_near = Label::kFar);
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DISALLOW_IMPLICIT_CONSTRUCTORS(StringHelper);
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};
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class NameDictionaryLookupStub: public PlatformCodeStub {
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public:
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enum LookupMode { POSITIVE_LOOKUP, NEGATIVE_LOOKUP };
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NameDictionaryLookupStub(Isolate* isolate, Register dictionary,
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Register result, Register index, LookupMode mode)
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: PlatformCodeStub(isolate) {
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minor_key_ = DictionaryBits::encode(dictionary.code()) |
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ResultBits::encode(result.code()) |
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IndexBits::encode(index.code()) | LookupModeBits::encode(mode);
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}
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static void GenerateNegativeLookup(MacroAssembler* masm,
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Label* miss,
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Label* done,
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Register properties,
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Handle<Name> name,
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Register r0);
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static void GeneratePositiveLookup(MacroAssembler* masm,
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Label* miss,
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Label* done,
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Register elements,
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Register name,
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Register r0,
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Register r1);
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bool SometimesSetsUpAFrame() OVERRIDE { return false; }
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private:
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static const int kInlinedProbes = 4;
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static const int kTotalProbes = 20;
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static const int kCapacityOffset =
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NameDictionary::kHeaderSize +
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NameDictionary::kCapacityIndex * kPointerSize;
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static const int kElementsStartOffset =
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NameDictionary::kHeaderSize +
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NameDictionary::kElementsStartIndex * kPointerSize;
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Register dictionary() const {
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return Register::from_code(DictionaryBits::decode(minor_key_));
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}
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Register result() const {
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return Register::from_code(ResultBits::decode(minor_key_));
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}
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Register index() const {
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return Register::from_code(IndexBits::decode(minor_key_));
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}
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LookupMode mode() const { return LookupModeBits::decode(minor_key_); }
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class DictionaryBits: public BitField<int, 0, 3> {};
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class ResultBits: public BitField<int, 3, 3> {};
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class IndexBits: public BitField<int, 6, 3> {};
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class LookupModeBits: public BitField<LookupMode, 9, 1> {};
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DEFINE_NULL_CALL_INTERFACE_DESCRIPTOR();
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DEFINE_PLATFORM_CODE_STUB(NameDictionaryLookup, PlatformCodeStub);
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};
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class RecordWriteStub: public PlatformCodeStub {
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public:
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RecordWriteStub(Isolate* isolate, Register object, Register value,
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Register address, RememberedSetAction remembered_set_action,
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SaveFPRegsMode fp_mode)
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: PlatformCodeStub(isolate),
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regs_(object, // An input reg.
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address, // An input reg.
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value) { // One scratch reg.
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minor_key_ = ObjectBits::encode(object.code()) |
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ValueBits::encode(value.code()) |
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AddressBits::encode(address.code()) |
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RememberedSetActionBits::encode(remembered_set_action) |
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SaveFPRegsModeBits::encode(fp_mode);
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}
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RecordWriteStub(uint32_t key, Isolate* isolate)
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: PlatformCodeStub(key, isolate), regs_(object(), address(), value()) {}
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enum Mode {
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STORE_BUFFER_ONLY,
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INCREMENTAL,
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INCREMENTAL_COMPACTION
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};
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bool SometimesSetsUpAFrame() OVERRIDE { return false; }
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static const byte kTwoByteNopInstruction = 0x3c; // Cmpb al, #imm8.
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static const byte kTwoByteJumpInstruction = 0xeb; // Jmp #imm8.
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static const byte kFiveByteNopInstruction = 0x3d; // Cmpl eax, #imm32.
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static const byte kFiveByteJumpInstruction = 0xe9; // Jmp #imm32.
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static Mode GetMode(Code* stub) {
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byte first_instruction = stub->instruction_start()[0];
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byte second_instruction = stub->instruction_start()[2];
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if (first_instruction == kTwoByteJumpInstruction) {
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return INCREMENTAL;
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}
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DCHECK(first_instruction == kTwoByteNopInstruction);
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if (second_instruction == kFiveByteJumpInstruction) {
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return INCREMENTAL_COMPACTION;
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}
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DCHECK(second_instruction == kFiveByteNopInstruction);
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return STORE_BUFFER_ONLY;
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}
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static void Patch(Code* stub, Mode mode) {
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switch (mode) {
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case STORE_BUFFER_ONLY:
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DCHECK(GetMode(stub) == INCREMENTAL ||
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GetMode(stub) == INCREMENTAL_COMPACTION);
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stub->instruction_start()[0] = kTwoByteNopInstruction;
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stub->instruction_start()[2] = kFiveByteNopInstruction;
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break;
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case INCREMENTAL:
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DCHECK(GetMode(stub) == STORE_BUFFER_ONLY);
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stub->instruction_start()[0] = kTwoByteJumpInstruction;
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break;
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case INCREMENTAL_COMPACTION:
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DCHECK(GetMode(stub) == STORE_BUFFER_ONLY);
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stub->instruction_start()[0] = kTwoByteNopInstruction;
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stub->instruction_start()[2] = kFiveByteJumpInstruction;
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break;
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}
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DCHECK(GetMode(stub) == mode);
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CpuFeatures::FlushICache(stub->instruction_start(), 7);
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}
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DEFINE_NULL_CALL_INTERFACE_DESCRIPTOR();
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private:
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// This is a helper class for freeing up 3 scratch registers, where the third
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// is always ecx (needed for shift operations). The input is two registers
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// that must be preserved and one scratch register provided by the caller.
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class RegisterAllocation {
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public:
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RegisterAllocation(Register object,
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Register address,
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Register scratch0)
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: object_orig_(object),
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address_orig_(address),
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scratch0_orig_(scratch0),
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object_(object),
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address_(address),
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scratch0_(scratch0) {
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DCHECK(!AreAliased(scratch0, object, address, no_reg));
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scratch1_ = GetRegThatIsNotEcxOr(object_, address_, scratch0_);
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if (scratch0.is(ecx)) {
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scratch0_ = GetRegThatIsNotEcxOr(object_, address_, scratch1_);
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}
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if (object.is(ecx)) {
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object_ = GetRegThatIsNotEcxOr(address_, scratch0_, scratch1_);
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}
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if (address.is(ecx)) {
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address_ = GetRegThatIsNotEcxOr(object_, scratch0_, scratch1_);
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}
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DCHECK(!AreAliased(scratch0_, object_, address_, ecx));
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}
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void Save(MacroAssembler* masm) {
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DCHECK(!address_orig_.is(object_));
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DCHECK(object_.is(object_orig_) || address_.is(address_orig_));
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DCHECK(!AreAliased(object_, address_, scratch1_, scratch0_));
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DCHECK(!AreAliased(object_orig_, address_, scratch1_, scratch0_));
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DCHECK(!AreAliased(object_, address_orig_, scratch1_, scratch0_));
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// We don't have to save scratch0_orig_ because it was given to us as
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// a scratch register. But if we had to switch to a different reg then
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// we should save the new scratch0_.
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if (!scratch0_.is(scratch0_orig_)) masm->push(scratch0_);
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if (!ecx.is(scratch0_orig_) &&
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!ecx.is(object_orig_) &&
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!ecx.is(address_orig_)) {
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masm->push(ecx);
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}
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masm->push(scratch1_);
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if (!address_.is(address_orig_)) {
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masm->push(address_);
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masm->mov(address_, address_orig_);
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}
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if (!object_.is(object_orig_)) {
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masm->push(object_);
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masm->mov(object_, object_orig_);
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}
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}
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void Restore(MacroAssembler* masm) {
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// These will have been preserved the entire time, so we just need to move
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// them back. Only in one case is the orig_ reg different from the plain
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// one, since only one of them can alias with ecx.
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if (!object_.is(object_orig_)) {
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masm->mov(object_orig_, object_);
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masm->pop(object_);
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}
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if (!address_.is(address_orig_)) {
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masm->mov(address_orig_, address_);
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masm->pop(address_);
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}
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masm->pop(scratch1_);
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if (!ecx.is(scratch0_orig_) &&
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!ecx.is(object_orig_) &&
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!ecx.is(address_orig_)) {
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masm->pop(ecx);
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}
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if (!scratch0_.is(scratch0_orig_)) masm->pop(scratch0_);
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}
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// If we have to call into C then we need to save and restore all caller-
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// saved registers that were not already preserved. The caller saved
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// registers are eax, ecx and edx. The three scratch registers (incl. ecx)
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// will be restored by other means so we don't bother pushing them here.
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void SaveCallerSaveRegisters(MacroAssembler* masm, SaveFPRegsMode mode) {
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if (!scratch0_.is(eax) && !scratch1_.is(eax)) masm->push(eax);
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if (!scratch0_.is(edx) && !scratch1_.is(edx)) masm->push(edx);
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if (mode == kSaveFPRegs) {
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// Save FPU state in m108byte.
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masm->sub(esp, Immediate(108));
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masm->fnsave(Operand(esp, 0));
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}
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}
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inline void RestoreCallerSaveRegisters(MacroAssembler* masm,
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SaveFPRegsMode mode) {
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if (mode == kSaveFPRegs) {
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// Restore FPU state in m108byte.
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masm->frstor(Operand(esp, 0));
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masm->add(esp, Immediate(108));
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}
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if (!scratch0_.is(edx) && !scratch1_.is(edx)) masm->pop(edx);
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if (!scratch0_.is(eax) && !scratch1_.is(eax)) masm->pop(eax);
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}
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inline Register object() { return object_; }
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inline Register address() { return address_; }
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inline Register scratch0() { return scratch0_; }
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inline Register scratch1() { return scratch1_; }
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private:
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Register object_orig_;
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Register address_orig_;
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Register scratch0_orig_;
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Register object_;
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Register address_;
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Register scratch0_;
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Register scratch1_;
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// Third scratch register is always ecx.
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Register GetRegThatIsNotEcxOr(Register r1,
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Register r2,
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Register r3) {
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for (int i = 0; i < Register::NumAllocatableRegisters(); i++) {
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Register candidate = Register::FromAllocationIndex(i);
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if (candidate.is(ecx)) continue;
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if (candidate.is(r1)) continue;
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if (candidate.is(r2)) continue;
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if (candidate.is(r3)) continue;
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return candidate;
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}
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UNREACHABLE();
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return no_reg;
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}
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friend class RecordWriteStub;
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};
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enum OnNoNeedToInformIncrementalMarker {
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kReturnOnNoNeedToInformIncrementalMarker,
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kUpdateRememberedSetOnNoNeedToInformIncrementalMarker
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};
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inline Major MajorKey() const FINAL { return RecordWrite; }
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void Generate(MacroAssembler* masm) OVERRIDE;
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void GenerateIncremental(MacroAssembler* masm, Mode mode);
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void CheckNeedsToInformIncrementalMarker(
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MacroAssembler* masm,
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OnNoNeedToInformIncrementalMarker on_no_need,
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Mode mode);
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void InformIncrementalMarker(MacroAssembler* masm);
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void Activate(Code* code) OVERRIDE {
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code->GetHeap()->incremental_marking()->ActivateGeneratedStub(code);
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}
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Register object() const {
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return Register::from_code(ObjectBits::decode(minor_key_));
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}
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Register value() const {
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return Register::from_code(ValueBits::decode(minor_key_));
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}
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Register address() const {
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return Register::from_code(AddressBits::decode(minor_key_));
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}
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RememberedSetAction remembered_set_action() const {
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return RememberedSetActionBits::decode(minor_key_);
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}
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SaveFPRegsMode save_fp_regs_mode() const {
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return SaveFPRegsModeBits::decode(minor_key_);
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}
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class ObjectBits: public BitField<int, 0, 3> {};
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class ValueBits: public BitField<int, 3, 3> {};
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class AddressBits: public BitField<int, 6, 3> {};
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class RememberedSetActionBits: public BitField<RememberedSetAction, 9, 1> {};
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class SaveFPRegsModeBits : public BitField<SaveFPRegsMode, 10, 1> {};
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RegisterAllocation regs_;
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DISALLOW_COPY_AND_ASSIGN(RecordWriteStub);
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};
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} } // namespace v8::internal
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#endif // V8_X87_CODE_STUBS_X87_H_
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