#include <limits.h>
#if V8_TARGET_ARCH_MIPS64
#include "src/base/bits.h"
#include "src/base/division-by-constant.h"
#include "src/builtins/builtins-inl.h"
#include "src/codegen/assembler-inl.h"
#include "src/codegen/callable.h"
#include "src/codegen/code-factory.h"
#include "src/codegen/external-reference-table.h"
#include "src/codegen/interface-descriptors-inl.h"
#include "src/codegen/macro-assembler.h"
#include "src/codegen/register-configuration.h"
#include "src/debug/debug.h"
#include "src/deoptimizer/deoptimizer.h"
#include "src/execution/frames-inl.h"
#include "src/heap/mutable-page-metadata.h"
#include "src/init/bootstrapper.h"
#include "src/logging/counters.h"
#include "src/objects/heap-number.h"
#include "src/runtime/runtime.h"
#include "src/snapshot/snapshot.h"
#if 0
#include "src/codegen/mips64/macro-assembler-mips64.h"
#endif
#define __ ACCESS_MASM(masm)
namespace v8 {
namespace internal {
static inline bool IsZero(const Operand& rt) {
if (rt.is_reg()) {
return rt.rm() == zero_reg;
} else {
return rt.immediate() == 0;
}
}
int MacroAssembler::RequiredStackSizeForCallerSaved(SaveFPRegsMode fp_mode,
Register exclusion1,
Register exclusion2,
Register exclusion3) const {
int bytes = 0;
RegList exclusions = {exclusion1, exclusion2, exclusion3};
RegList list = kJSCallerSaved - exclusions;
bytes += list.Count() * kPointerSize;
if (fp_mode == SaveFPRegsMode::kSave) {
bytes += kCallerSavedFPU.Count() * kDoubleSize;
}
return bytes;
}
int MacroAssembler::PushCallerSaved(SaveFPRegsMode fp_mode, Register exclusion1,
Register exclusion2, Register exclusion3) {
ASM_CODE_COMMENT(this);
int bytes = 0;
RegList exclusions = {exclusion1, exclusion2, exclusion3};
RegList list = kJSCallerSaved - exclusions;
MultiPush(list);
bytes += list.Count() * kPointerSize;
if (fp_mode == SaveFPRegsMode::kSave) {
MultiPushFPU(kCallerSavedFPU);
bytes += kCallerSavedFPU.Count() * kDoubleSize;
}
return bytes;
}
int MacroAssembler::PopCallerSaved(SaveFPRegsMode fp_mode, Register exclusion1,
Register exclusion2, Register exclusion3) {
ASM_CODE_COMMENT(this);
int bytes = 0;
if (fp_mode == SaveFPRegsMode::kSave) {
MultiPopFPU(kCallerSavedFPU);
bytes += kCallerSavedFPU.Count() * kDoubleSize;
}
RegList exclusions = {exclusion1, exclusion2, exclusion3};
RegList list = kJSCallerSaved - exclusions;
MultiPop(list);
bytes += list.Count() * kPointerSize;
return bytes;
}
void MacroAssembler::LoadRoot(Register destination, RootIndex index) {
Ld(destination, MemOperand(s6, RootRegisterOffsetForRootIndex(index)));
}
void MacroAssembler::LoadInterpreterDataBytecodeArray(
Register destination, Register interpreter_data) {
Ld(destination, FieldMemOperand(interpreter_data,
offsetof(InterpreterData, bytecode_array_)));
}
void MacroAssembler::LoadInterpreterDataInterpreterTrampoline(
Register destination, Register interpreter_data) {
Ld(destination,
FieldMemOperand(interpreter_data,
offsetof(InterpreterData, interpreter_trampoline_)));
}
void MacroAssembler::LoadRoot(Register destination, RootIndex index,
Condition cond, Register src1,
const Operand& src2) {
Branch(2, NegateCondition(cond), src1, src2);
Ld(destination, MemOperand(s6, RootRegisterOffsetForRootIndex(index)));
}
void MacroAssembler::PushCommonFrame(Register marker_reg) {
if (marker_reg.is_valid()) {
Push(ra, fp, marker_reg);
Daddu(fp, sp, Operand(kPointerSize));
} else {
Push(ra, fp);
mov(fp, sp);
}
}
void MacroAssembler::PushStandardFrame(Register function_reg) {
int offset = -StandardFrameConstants::kContextOffset;
if (function_reg.is_valid()) {
Push(ra, fp, cp, function_reg, kJavaScriptCallArgCountRegister);
offset += 2 * kPointerSize;
} else {
Push(ra, fp, cp, kJavaScriptCallArgCountRegister);
offset += kPointerSize;
}
Daddu(fp, sp, Operand(offset));
}
void MacroAssembler::RecordWriteField(Register object, int offset,
Register value, Register dst,
RAStatus ra_status,
SaveFPRegsMode save_fp,
SmiCheck smi_check) {
ASM_CODE_COMMENT(this);
DCHECK(!AreAliased(value, dst, t8, object));
Label done;
if (smi_check == SmiCheck::kInline) {
JumpIfSmi(value, &done);
}
DCHECK(IsAligned(offset, kPointerSize));
Daddu(dst, object, Operand(offset - kHeapObjectTag));
if (v8_flags.slow_debug_code) {
BlockTrampolinePoolScope block_trampoline_pool(this);
Label ok;
And(t8, dst, Operand(kPointerSize - 1));
Branch(&ok, eq, t8, Operand(zero_reg));
stop();
bind(&ok);
}
RecordWrite(object, dst, value, ra_status, save_fp, SmiCheck::kOmit);
bind(&done);
if (v8_flags.slow_debug_code) {
li(value, Operand(base::bit_cast<int64_t>(kZapValue + 4)));
li(dst, Operand(base::bit_cast<int64_t>(kZapValue + 8)));
}
}
void MacroAssembler::MaybeSaveRegisters(RegList registers) {
if (registers.is_empty()) return;
MultiPush(registers);
}
void MacroAssembler::MaybeRestoreRegisters(RegList registers) {
if (registers.is_empty()) return;
MultiPop(registers);
}
void MacroAssembler::CallEphemeronKeyBarrier(Register object,
Register slot_address,
SaveFPRegsMode fp_mode) {
ASM_CODE_COMMENT(this);
DCHECK(!AreAliased(object, slot_address));
RegList registers =
WriteBarrierDescriptor::ComputeSavedRegisters(object, slot_address);
MaybeSaveRegisters(registers);
Register object_parameter = WriteBarrierDescriptor::ObjectRegister();
Register slot_address_parameter =
WriteBarrierDescriptor::SlotAddressRegister();
Push(object);
Push(slot_address);
Pop(slot_address_parameter);
Pop(object_parameter);
CallBuiltin(Builtins::EphemeronKeyBarrier(fp_mode));
MaybeRestoreRegisters(registers);
}
void MacroAssembler::CallRecordWriteStubSaveRegisters(Register object,
Register slot_address,
SaveFPRegsMode fp_mode,
StubCallMode mode) {
DCHECK(!AreAliased(object, slot_address));
RegList registers =
WriteBarrierDescriptor::ComputeSavedRegisters(object, slot_address);
MaybeSaveRegisters(registers);
Register object_parameter = WriteBarrierDescriptor::ObjectRegister();
Register slot_address_parameter =
WriteBarrierDescriptor::SlotAddressRegister();
Push(object);
Push(slot_address);
Pop(slot_address_parameter);
Pop(object_parameter);
CallRecordWriteStub(object_parameter, slot_address_parameter, fp_mode, mode);
MaybeRestoreRegisters(registers);
}
void MacroAssembler::CallRecordWriteStub(Register object, Register slot_address,
SaveFPRegsMode fp_mode,
StubCallMode mode) {
DCHECK_EQ(WriteBarrierDescriptor::ObjectRegister(), object);
DCHECK_EQ(WriteBarrierDescriptor::SlotAddressRegister(), slot_address);
#if V8_ENABLE_WEBASSEMBLY
if (mode == StubCallMode::kCallWasmRuntimeStub) {
auto wasm_target =
static_cast<Address>(wasm::WasmCode::GetRecordWriteBuiltin(fp_mode));
Call(wasm_target, RelocInfo::WASM_STUB_CALL);
#else
if (false) {
#endif
} else {
CallBuiltin(Builtins::RecordWrite(fp_mode));
}
}
void MacroAssembler::CallVerifySkippedWriteBarrierStubSaveRegisters(
Register object, Register value, SaveFPRegsMode fp_mode) {
ASM_CODE_COMMENT(this);
PushCallerSaved(fp_mode);
CallVerifySkippedWriteBarrierStub(object, value);
PopCallerSaved(fp_mode);
}
void MacroAssembler::CallVerifySkippedWriteBarrierStub(Register object,
Register value) {
ASM_CODE_COMMENT(this);
MovePair(kCArgRegs[0], object, kCArgRegs[1], value);
CallCFunction(ExternalReference::verify_skipped_write_barrier(), 2,
SetIsolateDataSlots::kNo);
}
void MacroAssembler::RecordWrite(Register object, Register address,
Register value, RAStatus ra_status,
SaveFPRegsMode fp_mode, SmiCheck smi_check) {
DCHECK(!AreAliased(object, address, value, t8));
DCHECK(!AreAliased(object, address, value, t9));
if (v8_flags.slow_debug_code) {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(!AreAliased(object, value, scratch));
Ld(scratch, MemOperand(address));
Assert(eq, AbortReason::kWrongAddressOrValuePassedToRecordWrite, scratch,
Operand(value));
}
if (v8_flags.disable_write_barriers) {
return;
}
Label done;
if (smi_check == SmiCheck::kInline) {
DCHECK_EQ(0, kSmiTag);
JumpIfSmi(value, &done);
}
CheckPageFlag(value,
value,
MemoryChunk::kPointersToHereAreInterestingMask, eq, &done);
CheckPageFlag(object,
value,
MemoryChunk::kPointersFromHereAreInterestingMask, eq, &done);
if (ra_status == kRAHasNotBeenSaved) {
push(ra);
}
Register slot_address = WriteBarrierDescriptor::SlotAddressRegister();
DCHECK(!AreAliased(object, slot_address, value));
mov(slot_address, address);
CallRecordWriteStub(object, slot_address, fp_mode);
if (ra_status == kRAHasNotBeenSaved) {
pop(ra);
}
bind(&done);
if (v8_flags.slow_debug_code) {
li(address, Operand(base::bit_cast<int64_t>(kZapValue + 12)));
li(value, Operand(base::bit_cast<int64_t>(kZapValue + 16)));
li(slot_address, Operand(base::bit_cast<int64_t>(kZapValue + 20)));
}
}
void MacroAssembler::Addu(Register rd, Register rs, const Operand& rt) {
if (rt.is_reg()) {
addu(rd, rs, rt.rm());
} else {
if (is_int16(rt.immediate()) && !MustUseReg(rt.rmode())) {
addiu(rd, rs, static_cast<int32_t>(rt.immediate()));
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
addu(rd, rs, scratch);
}
}
}
void MacroAssembler::Daddu(Register rd, Register rs, const Operand& rt) {
if (rt.is_reg()) {
daddu(rd, rs, rt.rm());
} else {
if (is_int16(rt.immediate()) && !MustUseReg(rt.rmode())) {
daddiu(rd, rs, static_cast<int32_t>(rt.immediate()));
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
daddu(rd, rs, scratch);
}
}
}
void MacroAssembler::Subu(Register rd, Register rs, const Operand& rt) {
if (rt.is_reg()) {
subu(rd, rs, rt.rm());
} else {
DCHECK(is_int32(rt.immediate()));
if (is_int16(-rt.immediate()) && !MustUseReg(rt.rmode())) {
addiu(rd, rs,
static_cast<int32_t>(
-rt.immediate()));
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
if (-rt.immediate() >> 16 == 0 && !MustUseReg(rt.rmode())) {
li(scratch, -rt.immediate());
addu(rd, rs, scratch);
} else {
li(scratch, rt);
subu(rd, rs, scratch);
}
}
}
}
void MacroAssembler::Dsubu(Register rd, Register rs, const Operand& rt) {
if (rt.is_reg()) {
dsubu(rd, rs, rt.rm());
} else if (is_int16(-rt.immediate()) && !MustUseReg(rt.rmode())) {
daddiu(rd, rs,
static_cast<int32_t>(
-rt.immediate()));
} else {
DCHECK(rs != at);
int li_count = InstrCountForLi64Bit(rt.immediate());
int li_neg_count = InstrCountForLi64Bit(-rt.immediate());
if (li_neg_count < li_count && !MustUseReg(rt.rmode())) {
DCHECK(rt.immediate() != std::numeric_limits<int32_t>::min());
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
li(scratch, Operand(-rt.immediate()));
Daddu(rd, rs, scratch);
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
li(scratch, rt);
dsubu(rd, rs, scratch);
}
}
}
void MacroAssembler::Mul(Register rd, Register rs, const Operand& rt) {
if (rt.is_reg()) {
mul(rd, rs, rt.rm());
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
mul(rd, rs, scratch);
}
}
void MacroAssembler::Mulh(Register rd, Register rs, const Operand& rt) {
if (rt.is_reg()) {
if (kArchVariant != kMips64r6) {
mult(rs, rt.rm());
mfhi(rd);
} else {
muh(rd, rs, rt.rm());
}
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
if (kArchVariant != kMips64r6) {
mult(rs, scratch);
mfhi(rd);
} else {
muh(rd, rs, scratch);
}
}
}
void MacroAssembler::Mulhu(Register rd, Register rs, const Operand& rt) {
if (rt.is_reg()) {
if (kArchVariant != kMips64r6) {
multu(rs, rt.rm());
mfhi(rd);
} else {
muhu(rd, rs, rt.rm());
}
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
if (kArchVariant != kMips64r6) {
multu(rs, scratch);
mfhi(rd);
} else {
muhu(rd, rs, scratch);
}
}
}
void MacroAssembler::Dmul(Register rd, Register rs, const Operand& rt) {
if (rt.is_reg()) {
if (kArchVariant == kMips64r6) {
dmul(rd, rs, rt.rm());
} else {
dmult(rs, rt.rm());
mflo(rd);
}
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
if (kArchVariant == kMips64r6) {
dmul(rd, rs, scratch);
} else {
dmult(rs, scratch);
mflo(rd);
}
}
}
void MacroAssembler::Dmulh(Register rd, Register rs, const Operand& rt) {
if (rt.is_reg()) {
if (kArchVariant == kMips64r6) {
dmuh(rd, rs, rt.rm());
} else {
dmult(rs, rt.rm());
mfhi(rd);
}
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
if (kArchVariant == kMips64r6) {
dmuh(rd, rs, scratch);
} else {
dmult(rs, scratch);
mfhi(rd);
}
}
}
void MacroAssembler::Dmulhu(Register rd, Register rs, const Operand& rt) {
if (rt.is_reg()) {
if (kArchVariant == kMips64r6) {
dmuhu(rd, rs, rt.rm());
} else {
dmultu(rs, rt.rm());
mfhi(rd);
}
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
if (kArchVariant == kMips64r6) {
dmuhu(rd, rs, scratch);
} else {
dmultu(rs, scratch);
mfhi(rd);
}
}
}
void MacroAssembler::Mult(Register rs, const Operand& rt) {
if (rt.is_reg()) {
mult(rs, rt.rm());
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
mult(rs, scratch);
}
}
void MacroAssembler::Dmult(Register rs, const Operand& rt) {
if (rt.is_reg()) {
dmult(rs, rt.rm());
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
dmult(rs, scratch);
}
}
void MacroAssembler::Multu(Register rs, const Operand& rt) {
if (rt.is_reg()) {
multu(rs, rt.rm());
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
multu(rs, scratch);
}
}
void MacroAssembler::Dmultu(Register rs, const Operand& rt) {
if (rt.is_reg()) {
dmultu(rs, rt.rm());
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
dmultu(rs, scratch);
}
}
void MacroAssembler::Div(Register rs, const Operand& rt) {
if (rt.is_reg()) {
div(rs, rt.rm());
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
div(rs, scratch);
}
}
void MacroAssembler::Div(Register res, Register rs, const Operand& rt) {
if (rt.is_reg()) {
if (kArchVariant != kMips64r6) {
div(rs, rt.rm());
mflo(res);
} else {
div(res, rs, rt.rm());
}
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
if (kArchVariant != kMips64r6) {
div(rs, scratch);
mflo(res);
} else {
div(res, rs, scratch);
}
}
}
void MacroAssembler::Mod(Register rd, Register rs, const Operand& rt) {
if (rt.is_reg()) {
if (kArchVariant != kMips64r6) {
div(rs, rt.rm());
mfhi(rd);
} else {
mod(rd, rs, rt.rm());
}
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
if (kArchVariant != kMips64r6) {
div(rs, scratch);
mfhi(rd);
} else {
mod(rd, rs, scratch);
}
}
}
void MacroAssembler::Modu(Register rd, Register rs, const Operand& rt) {
if (rt.is_reg()) {
if (kArchVariant != kMips64r6) {
divu(rs, rt.rm());
mfhi(rd);
} else {
modu(rd, rs, rt.rm());
}
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
if (kArchVariant != kMips64r6) {
divu(rs, scratch);
mfhi(rd);
} else {
modu(rd, rs, scratch);
}
}
}
void MacroAssembler::Ddiv(Register rs, const Operand& rt) {
if (rt.is_reg()) {
ddiv(rs, rt.rm());
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
ddiv(rs, scratch);
}
}
void MacroAssembler::Ddiv(Register rd, Register rs, const Operand& rt) {
if (kArchVariant != kMips64r6) {
if (rt.is_reg()) {
ddiv(rs, rt.rm());
mflo(rd);
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
ddiv(rs, scratch);
mflo(rd);
}
} else {
if (rt.is_reg()) {
ddiv(rd, rs, rt.rm());
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
ddiv(rd, rs, scratch);
}
}
}
void MacroAssembler::Divu(Register rs, const Operand& rt) {
if (rt.is_reg()) {
divu(rs, rt.rm());
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
divu(rs, scratch);
}
}
void MacroAssembler::Divu(Register res, Register rs, const Operand& rt) {
if (rt.is_reg()) {
if (kArchVariant != kMips64r6) {
divu(rs, rt.rm());
mflo(res);
} else {
divu(res, rs, rt.rm());
}
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
if (kArchVariant != kMips64r6) {
divu(rs, scratch);
mflo(res);
} else {
divu(res, rs, scratch);
}
}
}
void MacroAssembler::Ddivu(Register rs, const Operand& rt) {
if (rt.is_reg()) {
ddivu(rs, rt.rm());
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
ddivu(rs, scratch);
}
}
void MacroAssembler::Ddivu(Register res, Register rs, const Operand& rt) {
if (rt.is_reg()) {
if (kArchVariant != kMips64r6) {
ddivu(rs, rt.rm());
mflo(res);
} else {
ddivu(res, rs, rt.rm());
}
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
if (kArchVariant != kMips64r6) {
ddivu(rs, scratch);
mflo(res);
} else {
ddivu(res, rs, scratch);
}
}
}
void MacroAssembler::Dmod(Register rd, Register rs, const Operand& rt) {
if (kArchVariant != kMips64r6) {
if (rt.is_reg()) {
ddiv(rs, rt.rm());
mfhi(rd);
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
ddiv(rs, scratch);
mfhi(rd);
}
} else {
if (rt.is_reg()) {
dmod(rd, rs, rt.rm());
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
dmod(rd, rs, scratch);
}
}
}
void MacroAssembler::Dmodu(Register rd, Register rs, const Operand& rt) {
if (kArchVariant != kMips64r6) {
if (rt.is_reg()) {
ddivu(rs, rt.rm());
mfhi(rd);
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
ddivu(rs, scratch);
mfhi(rd);
}
} else {
if (rt.is_reg()) {
dmodu(rd, rs, rt.rm());
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
dmodu(rd, rs, scratch);
}
}
}
void MacroAssembler::And(Register rd, Register rs, const Operand& rt) {
if (rt.is_reg()) {
and_(rd, rs, rt.rm());
} else {
if (is_uint16(rt.immediate()) && !MustUseReg(rt.rmode())) {
andi(rd, rs, static_cast<int32_t>(rt.immediate()));
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
and_(rd, rs, scratch);
}
}
}
void MacroAssembler::Or(Register rd, Register rs, const Operand& rt) {
if (rt.is_reg()) {
or_(rd, rs, rt.rm());
} else {
if (is_uint16(rt.immediate()) && !MustUseReg(rt.rmode())) {
ori(rd, rs, static_cast<int32_t>(rt.immediate()));
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
or_(rd, rs, scratch);
}
}
}
void MacroAssembler::Xor(Register rd, Register rs, const Operand& rt) {
if (rt.is_reg()) {
xor_(rd, rs, rt.rm());
} else {
if (is_uint16(rt.immediate()) && !MustUseReg(rt.rmode())) {
xori(rd, rs, static_cast<int32_t>(rt.immediate()));
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
xor_(rd, rs, scratch);
}
}
}
void MacroAssembler::Nor(Register rd, Register rs, const Operand& rt) {
if (rt.is_reg()) {
nor(rd, rs, rt.rm());
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(rs != scratch);
li(scratch, rt);
nor(rd, rs, scratch);
}
}
void MacroAssembler::Neg(Register rs, const Operand& rt) {
dsubu(rs, zero_reg, rt.rm());
}
void MacroAssembler::Slt(Register rd, Register rs, const Operand& rt) {
if (rt.is_reg()) {
slt(rd, rs, rt.rm());
} else {
if (is_int16(rt.immediate()) && !MustUseReg(rt.rmode())) {
slti(rd, rs, static_cast<int32_t>(rt.immediate()));
} else {
UseScratchRegisterScope temps(this);
BlockTrampolinePoolScope block_trampoline_pool(this);
Register scratch = temps.hasAvailable() ? temps.Acquire() : t8;
DCHECK(rs != scratch);
li(scratch, rt);
slt(rd, rs, scratch);
}
}
}
void MacroAssembler::Sltu(Register rd, Register rs, const Operand& rt) {
if (rt.is_reg()) {
sltu(rd, rs, rt.rm());
} else {
const uint64_t int16_min = std::numeric_limits<int16_t>::min();
if (is_uint15(rt.immediate()) && !MustUseReg(rt.rmode())) {
sltiu(rd, rs, static_cast<int32_t>(rt.immediate()));
} else if (is_uint15(rt.immediate() - int16_min) &&
!MustUseReg(rt.rmode())) {
sltiu(rd, rs, static_cast<uint16_t>(rt.immediate()));
} else {
UseScratchRegisterScope temps(this);
BlockTrampolinePoolScope block_trampoline_pool(this);
Register scratch = temps.hasAvailable() ? temps.Acquire() : t8;
DCHECK(rs != scratch);
li(scratch, rt);
sltu(rd, rs, scratch);
}
}
}
void MacroAssembler::Sle(Register rd, Register rs, const Operand& rt) {
if (rt.is_reg()) {
slt(rd, rt.rm(), rs);
} else {
if (rt.immediate() == 0 && !MustUseReg(rt.rmode())) {
slt(rd, zero_reg, rs);
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.hasAvailable() ? temps.Acquire() : t8;
BlockTrampolinePoolScope block_trampoline_pool(this);
DCHECK(rs != scratch);
li(scratch, rt);
slt(rd, scratch, rs);
}
}
xori(rd, rd, 1);
}
void MacroAssembler::Sleu(Register rd, Register rs, const Operand& rt) {
if (rt.is_reg()) {
sltu(rd, rt.rm(), rs);
} else {
if (rt.immediate() == 0 && !MustUseReg(rt.rmode())) {
sltu(rd, zero_reg, rs);
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.hasAvailable() ? temps.Acquire() : t8;
BlockTrampolinePoolScope block_trampoline_pool(this);
DCHECK(rs != scratch);
li(scratch, rt);
sltu(rd, scratch, rs);
}
}
xori(rd, rd, 1);
}
void MacroAssembler::Sge(Register rd, Register rs, const Operand& rt) {
Slt(rd, rs, rt);
xori(rd, rd, 1);
}
void MacroAssembler::Sgeu(Register rd, Register rs, const Operand& rt) {
Sltu(rd, rs, rt);
xori(rd, rd, 1);
}
void MacroAssembler::Sgt(Register rd, Register rs, const Operand& rt) {
if (rt.is_reg()) {
slt(rd, rt.rm(), rs);
} else {
if (rt.immediate() == 0 && !MustUseReg(rt.rmode())) {
slt(rd, zero_reg, rs);
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.hasAvailable() ? temps.Acquire() : t8;
BlockTrampolinePoolScope block_trampoline_pool(this);
DCHECK(rs != scratch);
li(scratch, rt);
slt(rd, scratch, rs);
}
}
}
void MacroAssembler::Sgtu(Register rd, Register rs, const Operand& rt) {
if (rt.is_reg()) {
sltu(rd, rt.rm(), rs);
} else {
if (rt.immediate() == 0 && !MustUseReg(rt.rmode())) {
sltu(rd, zero_reg, rs);
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.hasAvailable() ? temps.Acquire() : t8;
BlockTrampolinePoolScope block_trampoline_pool(this);
DCHECK(rs != scratch);
li(scratch, rt);
sltu(rd, scratch, rs);
}
}
}
void MacroAssembler::Ror(Register rd, Register rs, const Operand& rt) {
if (rt.is_reg()) {
rotrv(rd, rs, rt.rm());
} else {
int64_t ror_value = rt.immediate() % 32;
if (ror_value < 0) {
ror_value += 32;
}
rotr(rd, rs, ror_value);
}
}
void MacroAssembler::Dror(Register rd, Register rs, const Operand& rt) {
if (rt.is_reg()) {
drotrv(rd, rs, rt.rm());
} else {
int64_t dror_value = rt.immediate() % 64;
if (dror_value < 0) dror_value += 64;
if (dror_value <= 31) {
drotr(rd, rs, dror_value);
} else {
drotr32(rd, rs, dror_value - 32);
}
}
}
void MacroAssembler::Pref(int32_t hint, const MemOperand& rs) {
pref(hint, rs);
}
void MacroAssembler::Lsa(Register rd, Register rt, Register rs, uint8_t sa,
Register scratch) {
DCHECK(sa >= 1 && sa <= 31);
if (kArchVariant == kMips64r6 && sa <= 4) {
lsa(rd, rt, rs, sa - 1);
} else {
Register tmp = rd == rt ? scratch : rd;
DCHECK(tmp != rt);
sll(tmp, rs, sa);
Addu(rd, rt, tmp);
}
}
void MacroAssembler::Dlsa(Register rd, Register rt, Register rs, uint8_t sa,
Register scratch) {
DCHECK(sa >= 1 && sa <= 63);
if (kArchVariant == kMips64r6 && sa <= 4) {
dlsa(rd, rt, rs, sa - 1);
} else {
Register tmp = rd == rt ? scratch : rd;
DCHECK(tmp != rt);
if (sa <= 31)
dsll(tmp, rs, sa);
else
dsll32(tmp, rs, sa - 32);
Daddu(rd, rt, tmp);
}
}
void MacroAssembler::Bovc(Register rs, Register rt, Label* L) {
if (is_trampoline_emitted()) {
Label skip;
bnvc(rs, rt, &skip);
BranchLong(L, PROTECT);
bind(&skip);
} else {
bovc(rs, rt, L);
}
}
void MacroAssembler::Bnvc(Register rs, Register rt, Label* L) {
if (is_trampoline_emitted()) {
Label skip;
bovc(rs, rt, &skip);
BranchLong(L, PROTECT);
bind(&skip);
} else {
bnvc(rs, rt, L);
}
}
void MacroAssembler::ByteSwapSigned(Register dest, Register src,
int operand_size) {
DCHECK(operand_size == 2 || operand_size == 4 || operand_size == 8);
DCHECK(kArchVariant == kMips64r6 || kArchVariant == kMips64r2);
if (operand_size == 2) {
wsbh(dest, src);
seh(dest, dest);
} else if (operand_size == 4) {
wsbh(dest, src);
rotr(dest, dest, 16);
} else {
dsbh(dest, src);
dshd(dest, dest);
}
}
void MacroAssembler::ByteSwapUnsigned(Register dest, Register src,
int operand_size) {
DCHECK(operand_size == 2 || operand_size == 4);
if (operand_size == 2) {
wsbh(dest, src);
andi(dest, dest, 0xFFFF);
} else {
wsbh(dest, src);
rotr(dest, dest, 16);
dinsu_(dest, zero_reg, 32, 32);
}
}
void MacroAssembler::Ulw(Register rd, const MemOperand& rs) {
DCHECK(rd != at);
DCHECK(rs.rm() != at);
if (kArchVariant == kMips64r6) {
Lw(rd, rs);
} else {
DCHECK_EQ(kArchVariant, kMips64r2);
DCHECK(kMipsLwrOffset <= 3 && kMipsLwlOffset <= 3);
MemOperand source = rs;
AdjustBaseAndOffset(&source, OffsetAccessType::TWO_ACCESSES, 3);
if (rd != source.rm()) {
lwr(rd, MemOperand(source.rm(), source.offset() + kMipsLwrOffset));
lwl(rd, MemOperand(source.rm(), source.offset() + kMipsLwlOffset));
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
lwr(scratch, MemOperand(rs.rm(), rs.offset() + kMipsLwrOffset));
lwl(scratch, MemOperand(rs.rm(), rs.offset() + kMipsLwlOffset));
mov(rd, scratch);
}
}
}
void MacroAssembler::Ulwu(Register rd, const MemOperand& rs) {
if (kArchVariant == kMips64r6) {
Lwu(rd, rs);
} else {
DCHECK_EQ(kArchVariant, kMips64r2);
Ulw(rd, rs);
Dext(rd, rd, 0, 32);
}
}
void MacroAssembler::Usw(Register rd, const MemOperand& rs) {
DCHECK(rd != at);
DCHECK(rs.rm() != at);
DCHECK(rd != rs.rm());
if (kArchVariant == kMips64r6) {
Sw(rd, rs);
} else {
DCHECK_EQ(kArchVariant, kMips64r2);
DCHECK(kMipsSwrOffset <= 3 && kMipsSwlOffset <= 3);
MemOperand source = rs;
AdjustBaseAndOffset(&source, OffsetAccessType::TWO_ACCESSES, 3);
swr(rd, MemOperand(source.rm(), source.offset() + kMipsSwrOffset));
swl(rd, MemOperand(source.rm(), source.offset() + kMipsSwlOffset));
}
}
void MacroAssembler::Ulh(Register rd, const MemOperand& rs) {
DCHECK(rd != at);
DCHECK(rs.rm() != at);
if (kArchVariant == kMips64r6) {
Lh(rd, rs);
} else {
DCHECK_EQ(kArchVariant, kMips64r2);
MemOperand source = rs;
AdjustBaseAndOffset(&source, OffsetAccessType::TWO_ACCESSES, 1);
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
if (source.rm() == scratch) {
#if defined(V8_TARGET_LITTLE_ENDIAN)
Lb(rd, MemOperand(source.rm(), source.offset() + 1));
Lbu(scratch, source);
#elif defined(V8_TARGET_BIG_ENDIAN)
Lb(rd, source);
Lbu(scratch, MemOperand(source.rm(), source.offset() + 1));
#endif
} else {
#if defined(V8_TARGET_LITTLE_ENDIAN)
Lbu(scratch, source);
Lb(rd, MemOperand(source.rm(), source.offset() + 1));
#elif defined(V8_TARGET_BIG_ENDIAN)
Lbu(scratch, MemOperand(source.rm(), source.offset() + 1));
Lb(rd, source);
#endif
}
dsll(rd, rd, 8);
or_(rd, rd, scratch);
}
}
void MacroAssembler::Ulhu(Register rd, const MemOperand& rs) {
DCHECK(rd != at);
DCHECK(rs.rm() != at);
if (kArchVariant == kMips64r6) {
Lhu(rd, rs);
} else {
DCHECK_EQ(kArchVariant, kMips64r2);
MemOperand source = rs;
AdjustBaseAndOffset(&source, OffsetAccessType::TWO_ACCESSES, 1);
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
if (source.rm() == scratch) {
#if defined(V8_TARGET_LITTLE_ENDIAN)
Lbu(rd, MemOperand(source.rm(), source.offset() + 1));
Lbu(scratch, source);
#elif defined(V8_TARGET_BIG_ENDIAN)
Lbu(rd, source);
Lbu(scratch, MemOperand(source.rm(), source.offset() + 1));
#endif
} else {
#if defined(V8_TARGET_LITTLE_ENDIAN)
Lbu(scratch, source);
Lbu(rd, MemOperand(source.rm(), source.offset() + 1));
#elif defined(V8_TARGET_BIG_ENDIAN)
Lbu(scratch, MemOperand(source.rm(), source.offset() + 1));
Lbu(rd, source);
#endif
}
dsll(rd, rd, 8);
or_(rd, rd, scratch);
}
}
void MacroAssembler::Ush(Register rd, const MemOperand& rs, Register scratch) {
DCHECK(rd != at);
DCHECK(rs.rm() != at);
DCHECK(rs.rm() != scratch);
DCHECK(scratch != at);
if (kArchVariant == kMips64r6) {
Sh(rd, rs);
} else {
DCHECK_EQ(kArchVariant, kMips64r2);
MemOperand source = rs;
AdjustBaseAndOffset(&source, OffsetAccessType::TWO_ACCESSES, 1);
if (scratch != rd) {
mov(scratch, rd);
}
#if defined(V8_TARGET_LITTLE_ENDIAN)
Sb(scratch, source);
srl(scratch, scratch, 8);
Sb(scratch, MemOperand(source.rm(), source.offset() + 1));
#elif defined(V8_TARGET_BIG_ENDIAN)
Sb(scratch, MemOperand(source.rm(), source.offset() + 1));
srl(scratch, scratch, 8);
Sb(scratch, source);
#endif
}
}
void MacroAssembler::Uld(Register rd, const MemOperand& rs) {
DCHECK(rd != at);
DCHECK(rs.rm() != at);
if (kArchVariant == kMips64r6) {
Ld(rd, rs);
} else {
DCHECK_EQ(kArchVariant, kMips64r2);
DCHECK(kMipsLdrOffset <= 7 && kMipsLdlOffset <= 7);
MemOperand source = rs;
AdjustBaseAndOffset(&source, OffsetAccessType::TWO_ACCESSES, 7);
if (rd != source.rm()) {
ldr(rd, MemOperand(source.rm(), source.offset() + kMipsLdrOffset));
ldl(rd, MemOperand(source.rm(), source.offset() + kMipsLdlOffset));
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
ldr(scratch, MemOperand(rs.rm(), rs.offset() + kMipsLdrOffset));
ldl(scratch, MemOperand(rs.rm(), rs.offset() + kMipsLdlOffset));
mov(rd, scratch);
}
}
}
void MacroAssembler::LoadWordPair(Register rd, const MemOperand& rs,
Register scratch) {
Lwu(rd, rs);
Lw(scratch, MemOperand(rs.rm(), rs.offset() + kPointerSize / 2));
dsll32(scratch, scratch, 0);
Daddu(rd, rd, scratch);
}
void MacroAssembler::Usd(Register rd, const MemOperand& rs) {
DCHECK(rd != at);
DCHECK(rs.rm() != at);
if (kArchVariant == kMips64r6) {
Sd(rd, rs);
} else {
DCHECK_EQ(kArchVariant, kMips64r2);
DCHECK(kMipsSdrOffset <= 7 && kMipsSdlOffset <= 7);
MemOperand source = rs;
AdjustBaseAndOffset(&source, OffsetAccessType::TWO_ACCESSES, 7);
sdr(rd, MemOperand(source.rm(), source.offset() + kMipsSdrOffset));
sdl(rd, MemOperand(source.rm(), source.offset() + kMipsSdlOffset));
}
}
void MacroAssembler::StoreWordPair(Register rd, const MemOperand& rs,
Register scratch) {
Sw(rd, rs);
dsrl32(scratch, rd, 0);
Sw(scratch, MemOperand(rs.rm(), rs.offset() + kPointerSize / 2));
}
void MacroAssembler::Ulwc1(FPURegister fd, const MemOperand& rs,
Register scratch) {
if (kArchVariant == kMips64r6) {
Lwc1(fd, rs);
} else {
DCHECK_EQ(kArchVariant, kMips64r2);
Ulw(scratch, rs);
mtc1(scratch, fd);
}
}
void MacroAssembler::Uswc1(FPURegister fd, const MemOperand& rs,
Register scratch) {
if (kArchVariant == kMips64r6) {
Swc1(fd, rs);
} else {
DCHECK_EQ(kArchVariant, kMips64r2);
mfc1(scratch, fd);
Usw(scratch, rs);
}
}
void MacroAssembler::Uldc1(FPURegister fd, const MemOperand& rs,
Register scratch) {
DCHECK(scratch != at);
if (kArchVariant == kMips64r6) {
Ldc1(fd, rs);
} else {
DCHECK_EQ(kArchVariant, kMips64r2);
Uld(scratch, rs);
dmtc1(scratch, fd);
}
}
void MacroAssembler::Usdc1(FPURegister fd, const MemOperand& rs,
Register scratch) {
DCHECK(scratch != at);
if (kArchVariant == kMips64r6) {
Sdc1(fd, rs);
} else {
DCHECK_EQ(kArchVariant, kMips64r2);
dmfc1(scratch, fd);
Usd(scratch, rs);
}
}
void MacroAssembler::Lb(Register rd, const MemOperand& rs) {
MemOperand source = rs;
AdjustBaseAndOffset(&source);
lb(rd, source);
}
void MacroAssembler::Lbu(Register rd, const MemOperand& rs) {
MemOperand source = rs;
AdjustBaseAndOffset(&source);
lbu(rd, source);
}
void MacroAssembler::Sb(Register rd, const MemOperand& rs) {
MemOperand source = rs;
AdjustBaseAndOffset(&source);
sb(rd, source);
}
void MacroAssembler::Lh(Register rd, const MemOperand& rs) {
MemOperand source = rs;
AdjustBaseAndOffset(&source);
lh(rd, source);
}
void MacroAssembler::Lhu(Register rd, const MemOperand& rs) {
MemOperand source = rs;
AdjustBaseAndOffset(&source);
lhu(rd, source);
}
void MacroAssembler::Sh(Register rd, const MemOperand& rs) {
MemOperand source = rs;
AdjustBaseAndOffset(&source);
sh(rd, source);
}
void MacroAssembler::Lw(Register rd, const MemOperand& rs) {
MemOperand source = rs;
AdjustBaseAndOffset(&source);
lw(rd, source);
}
void MacroAssembler::Lwu(Register rd, const MemOperand& rs) {
MemOperand source = rs;
AdjustBaseAndOffset(&source);
lwu(rd, source);
}
void MacroAssembler::Sw(Register rd, const MemOperand& rs) {
MemOperand source = rs;
AdjustBaseAndOffset(&source);
sw(rd, source);
}
void MacroAssembler::Ld(Register rd, const MemOperand& rs) {
MemOperand source = rs;
AdjustBaseAndOffset(&source);
ld(rd, source);
}
void MacroAssembler::Sd(Register rd, const MemOperand& rs) {
MemOperand source = rs;
AdjustBaseAndOffset(&source);
sd(rd, source);
}
void MacroAssembler::Lwc1(FPURegister fd, const MemOperand& src) {
MemOperand tmp = src;
AdjustBaseAndOffset(&tmp);
lwc1(fd, tmp);
}
void MacroAssembler::Swc1(FPURegister fs, const MemOperand& src) {
MemOperand tmp = src;
AdjustBaseAndOffset(&tmp);
swc1(fs, tmp);
}
void MacroAssembler::Ldc1(FPURegister fd, const MemOperand& src) {
MemOperand tmp = src;
AdjustBaseAndOffset(&tmp);
ldc1(fd, tmp);
}
void MacroAssembler::Sdc1(FPURegister fs, const MemOperand& src) {
MemOperand tmp = src;
AdjustBaseAndOffset(&tmp);
sdc1(fs, tmp);
}
void MacroAssembler::Ll(Register rd, const MemOperand& rs) {
bool is_one_instruction = (kArchVariant == kMips64r6) ? is_int9(rs.offset())
: is_int16(rs.offset());
if (is_one_instruction) {
ll(rd, rs);
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
li(scratch, rs.offset());
daddu(scratch, scratch, rs.rm());
ll(rd, MemOperand(scratch, 0));
}
}
void MacroAssembler::Lld(Register rd, const MemOperand& rs) {
bool is_one_instruction = (kArchVariant == kMips64r6) ? is_int9(rs.offset())
: is_int16(rs.offset());
if (is_one_instruction) {
lld(rd, rs);
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
li(scratch, rs.offset());
daddu(scratch, scratch, rs.rm());
lld(rd, MemOperand(scratch, 0));
}
}
void MacroAssembler::Sc(Register rd, const MemOperand& rs) {
bool is_one_instruction = (kArchVariant == kMips64r6) ? is_int9(rs.offset())
: is_int16(rs.offset());
if (is_one_instruction) {
sc(rd, rs);
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
li(scratch, rs.offset());
daddu(scratch, scratch, rs.rm());
sc(rd, MemOperand(scratch, 0));
}
}
void MacroAssembler::Scd(Register rd, const MemOperand& rs) {
bool is_one_instruction = (kArchVariant == kMips64r6) ? is_int9(rs.offset())
: is_int16(rs.offset());
if (is_one_instruction) {
scd(rd, rs);
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
li(scratch, rs.offset());
daddu(scratch, scratch, rs.rm());
scd(rd, MemOperand(scratch, 0));
}
}
void MacroAssembler::li(Register dst, Handle<HeapObject> value, LiFlags mode) {
if (root_array_available_ && options().isolate_independent_code) {
IndirectLoadConstant(dst, value);
return;
}
li(dst, Operand(value), mode);
}
void MacroAssembler::li(Register dst, ExternalReference reference,
LiFlags mode) {
if (root_array_available()) {
if (reference.IsIsolateFieldId()) {
Daddu(dst, kRootRegister, Operand(reference.offset_from_root_register()));
return;
}
if (options().isolate_independent_code) {
IndirectLoadExternalReference(dst, reference);
return;
}
}
CHECK(!reference.IsIsolateFieldId());
li(dst, Operand(reference), mode);
}
static inline int InstrCountForLiLower32Bit(int64_t value) {
if (!is_int16(static_cast<int32_t>(value)) && (value & kUpper16MaskOf64) &&
(value & kImm16Mask)) {
return 2;
} else {
return 1;
}
}
void MacroAssembler::LiLower32BitHelper(Register rd, Operand j) {
if (is_int16(static_cast<int32_t>(j.immediate()))) {
daddiu(rd, zero_reg, (j.immediate() & kImm16Mask));
} else if (!(j.immediate() & kUpper16MaskOf64)) {
ori(rd, zero_reg, j.immediate() & kImm16Mask);
} else {
lui(rd, j.immediate() >> kLuiShift & kImm16Mask);
if (j.immediate() & kImm16Mask) {
ori(rd, rd, j.immediate() & kImm16Mask);
}
}
}
static inline int InstrCountForLoadReplicatedConst32(int64_t value) {
uint32_t x = static_cast<uint32_t>(value);
uint32_t y = static_cast<uint32_t>(value >> 32);
if (x == y) {
return (is_uint16(x) || is_int16(x) || (x & kImm16Mask) == 0) ? 2 : 3;
}
return INT_MAX;
}
int MacroAssembler::InstrCountForLi64Bit(int64_t value) {
if (is_int32(value)) {
return InstrCountForLiLower32Bit(value);
} else {
int bit31 = value >> 31 & 0x1;
if ((value & kUpper16MaskOf64) == 0 && is_int16(value >> 32) &&
kArchVariant == kMips64r6) {
return 2;
} else if ((value & (kHigher16MaskOf64 | kUpper16MaskOf64)) == 0 &&
kArchVariant == kMips64r6) {
return 2;
} else if ((value & kImm16Mask) == 0 && is_int16((value >> 32) + bit31) &&
kArchVariant == kMips64r6) {
return 2;
} else if ((value & kImm16Mask) == 0 &&
((value >> 31) & 0x1FFFF) == ((0x20000 - bit31) & 0x1FFFF) &&
kArchVariant == kMips64r6) {
return 2;
} else if (is_int16(static_cast<int32_t>(value)) &&
is_int16((value >> 32) + bit31) && kArchVariant == kMips64r6) {
return 2;
} else if (is_int16(static_cast<int32_t>(value)) &&
((value >> 31) & 0x1FFFF) == ((0x20000 - bit31) & 0x1FFFF) &&
kArchVariant == kMips64r6) {
return 2;
} else if (base::bits::IsPowerOfTwo(value + 1) ||
value == std::numeric_limits<int64_t>::max()) {
return 2;
} else {
int shift_cnt = base::bits::CountTrailingZeros64(value);
int rep32_count = InstrCountForLoadReplicatedConst32(value);
int64_t tmp = value >> shift_cnt;
if (is_uint16(tmp)) {
return 2;
} else if (is_int16(tmp)) {
return 2;
} else if (rep32_count < 3) {
return 2;
} else if (is_int32(tmp)) {
return 3;
} else {
shift_cnt = 16 + base::bits::CountTrailingZeros64(value >> 16);
tmp = value >> shift_cnt;
if (is_uint16(tmp)) {
return 3;
} else if (is_int16(tmp)) {
return 3;
} else if (rep32_count < 4) {
return 3;
} else if (kArchVariant == kMips64r6) {
int64_t imm = value;
int count = InstrCountForLiLower32Bit(imm);
imm = (imm >> 32) + bit31;
if (imm & kImm16Mask) {
count++;
}
imm = (imm >> 16) + (imm >> 15 & 0x1);
if (imm & kImm16Mask) {
count++;
}
return count;
} else {
if (is_int48(value)) {
int64_t k = value >> 16;
int count = InstrCountForLiLower32Bit(k) + 1;
if (value & kImm16Mask) {
count++;
}
return count;
} else {
int64_t k = value >> 32;
int count = InstrCountForLiLower32Bit(k);
if ((value >> 16) & kImm16Mask) {
count += 3;
if (value & kImm16Mask) {
count++;
}
} else {
count++;
if (value & kImm16Mask) {
count++;
}
}
return count;
}
}
}
}
}
UNREACHABLE();
return INT_MAX;
}
void MacroAssembler::li_optimized(Register rd, Operand j, LiFlags mode) {
DCHECK(!j.is_reg());
DCHECK(!MustUseReg(j.rmode()));
DCHECK(mode == OPTIMIZE_SIZE);
BlockTrampolinePoolScope block_trampoline_pool(this);
if (is_int32(j.immediate())) {
LiLower32BitHelper(rd, j);
} else {
int bit31 = j.immediate() >> 31 & 0x1;
if ((j.immediate() & kUpper16MaskOf64) == 0 &&
is_int16(j.immediate() >> 32) && kArchVariant == kMips64r6) {
ori(rd, zero_reg, j.immediate() & kImm16Mask);
dahi(rd, j.immediate() >> 32 & kImm16Mask);
} else if ((j.immediate() & (kHigher16MaskOf64 | kUpper16MaskOf64)) == 0 &&
kArchVariant == kMips64r6) {
ori(rd, zero_reg, j.immediate() & kImm16Mask);
dati(rd, j.immediate() >> 48 & kImm16Mask);
} else if ((j.immediate() & kImm16Mask) == 0 &&
is_int16((j.immediate() >> 32) + bit31) &&
kArchVariant == kMips64r6) {
lui(rd, j.immediate() >> kLuiShift & kImm16Mask);
dahi(rd, ((j.immediate() >> 32) + bit31) & kImm16Mask);
} else if ((j.immediate() & kImm16Mask) == 0 &&
((j.immediate() >> 31) & 0x1FFFF) ==
((0x20000 - bit31) & 0x1FFFF) &&
kArchVariant == kMips64r6) {
lui(rd, j.immediate() >> kLuiShift & kImm16Mask);
dati(rd, ((j.immediate() >> 48) + bit31) & kImm16Mask);
} else if (is_int16(static_cast<int32_t>(j.immediate())) &&
is_int16((j.immediate() >> 32) + bit31) &&
kArchVariant == kMips64r6) {
daddiu(rd, zero_reg, j.immediate() & kImm16Mask);
dahi(rd, ((j.immediate() >> 32) + bit31) & kImm16Mask);
} else if (is_int16(static_cast<int32_t>(j.immediate())) &&
((j.immediate() >> 31) & 0x1FFFF) ==
((0x20000 - bit31) & 0x1FFFF) &&
kArchVariant == kMips64r6) {
daddiu(rd, zero_reg, j.immediate() & kImm16Mask);
dati(rd, ((j.immediate() >> 48) + bit31) & kImm16Mask);
} else if (base::bits::IsPowerOfTwo(j.immediate() + 1) ||
j.immediate() == std::numeric_limits<int64_t>::max()) {
int shift_cnt = 64 - base::bits::CountTrailingZeros64(j.immediate() + 1);
daddiu(rd, zero_reg, -1);
if (shift_cnt < 32) {
dsrl(rd, rd, shift_cnt);
} else {
dsrl32(rd, rd, shift_cnt & 31);
}
} else {
int shift_cnt = base::bits::CountTrailingZeros64(j.immediate());
int rep32_count = InstrCountForLoadReplicatedConst32(j.immediate());
int64_t tmp = j.immediate() >> shift_cnt;
if (is_uint16(tmp)) {
ori(rd, zero_reg, tmp & kImm16Mask);
if (shift_cnt < 32) {
dsll(rd, rd, shift_cnt);
} else {
dsll32(rd, rd, shift_cnt & 31);
}
} else if (is_int16(tmp)) {
daddiu(rd, zero_reg, static_cast<int32_t>(tmp));
if (shift_cnt < 32) {
dsll(rd, rd, shift_cnt);
} else {
dsll32(rd, rd, shift_cnt & 31);
}
} else if (rep32_count < 3) {
LiLower32BitHelper(rd, j);
Dins(rd, rd, 32, 32);
} else if (is_int32(tmp)) {
lui(rd, tmp >> kLuiShift & kImm16Mask);
ori(rd, rd, tmp & kImm16Mask);
if (shift_cnt < 32) {
dsll(rd, rd, shift_cnt);
} else {
dsll32(rd, rd, shift_cnt & 31);
}
} else {
shift_cnt = 16 + base::bits::CountTrailingZeros64(j.immediate() >> 16);
tmp = j.immediate() >> shift_cnt;
if (is_uint16(tmp)) {
ori(rd, zero_reg, tmp & kImm16Mask);
if (shift_cnt < 32) {
dsll(rd, rd, shift_cnt);
} else {
dsll32(rd, rd, shift_cnt & 31);
}
ori(rd, rd, j.immediate() & kImm16Mask);
} else if (is_int16(tmp)) {
daddiu(rd, zero_reg, static_cast<int32_t>(tmp));
if (shift_cnt < 32) {
dsll(rd, rd, shift_cnt);
} else {
dsll32(rd, rd, shift_cnt & 31);
}
ori(rd, rd, j.immediate() & kImm16Mask);
} else if (rep32_count < 4) {
LiLower32BitHelper(rd, j);
Dins(rd, rd, 32, 32);
} else if (kArchVariant == kMips64r6) {
int64_t imm = j.immediate();
LiLower32BitHelper(rd, j);
imm = (imm >> 32) + bit31;
if (imm & kImm16Mask) {
dahi(rd, imm & kImm16Mask);
}
imm = (imm >> 16) + (imm >> 15 & 0x1);
if (imm & kImm16Mask) {
dati(rd, imm & kImm16Mask);
}
} else {
if (is_int48(j.immediate())) {
Operand k = Operand(j.immediate() >> 16);
LiLower32BitHelper(rd, k);
dsll(rd, rd, 16);
if (j.immediate() & kImm16Mask) {
ori(rd, rd, j.immediate() & kImm16Mask);
}
} else {
Operand k = Operand(j.immediate() >> 32);
LiLower32BitHelper(rd, k);
if ((j.immediate() >> 16) & kImm16Mask) {
dsll(rd, rd, 16);
ori(rd, rd, (j.immediate() >> 16) & kImm16Mask);
dsll(rd, rd, 16);
if (j.immediate() & kImm16Mask) {
ori(rd, rd, j.immediate() & kImm16Mask);
}
} else {
dsll32(rd, rd, 0);
if (j.immediate() & kImm16Mask) {
ori(rd, rd, j.immediate() & kImm16Mask);
}
}
}
}
}
}
}
}
void MacroAssembler::li(Register rd, Operand j, LiFlags mode) {
DCHECK(!j.is_reg());
BlockTrampolinePoolScope block_trampoline_pool(this);
if (!MustUseReg(j.rmode()) && mode == OPTIMIZE_SIZE) {
int li_count = InstrCountForLi64Bit(j.immediate());
int li_neg_count = InstrCountForLi64Bit(-j.immediate());
int li_not_count = InstrCountForLi64Bit(~j.immediate());
if (li_neg_count <= li_not_count && li_neg_count < li_count - 1) {
DCHECK(j.immediate() != std::numeric_limits<int64_t>::min());
li_optimized(rd, Operand(-j.immediate()), mode);
Dsubu(rd, zero_reg, rd);
} else if (li_neg_count > li_not_count && li_not_count < li_count - 1) {
DCHECK(j.immediate() != std::numeric_limits<int64_t>::min());
li_optimized(rd, Operand(~j.immediate()), mode);
nor(rd, rd, rd);
} else {
li_optimized(rd, j, mode);
}
} else if (MustUseReg(j.rmode())) {
int64_t immediate;
if (j.IsHeapNumberRequest()) {
RequestHeapNumber(j.heap_number_request());
immediate = 0;
} else {
immediate = j.immediate();
}
RecordRelocInfo(j.rmode(), immediate);
if (RelocInfo::IsWasmCanonicalSigId(j.rmode()) ||
RelocInfo::IsWasmCodePointerTableEntry(j.rmode())) {
DCHECK(is_int32(immediate));
lui(rd, (immediate >> 16) & kImm16Mask);
ori(rd, rd, immediate & kImm16Mask);
return;
}
lui(rd, (immediate >> 32) & kImm16Mask);
ori(rd, rd, (immediate >> 16) & kImm16Mask);
dsll(rd, rd, 16);
ori(rd, rd, immediate & kImm16Mask);
} else if (mode == ADDRESS_LOAD) {
lui(rd, (j.immediate() >> 32) & kImm16Mask);
ori(rd, rd, (j.immediate() >> 16) & kImm16Mask);
dsll(rd, rd, 16);
ori(rd, rd, j.immediate() & kImm16Mask);
} else {
if (kArchVariant == kMips64r6) {
int64_t imm = j.immediate();
lui(rd, imm >> kLuiShift & kImm16Mask);
ori(rd, rd, (imm & kImm16Mask));
imm = (imm >> 32) + ((imm >> 31) & 0x1);
dahi(rd, imm & kImm16Mask & kImm16Mask);
imm = (imm >> 16) + ((imm >> 15) & 0x1);
dati(rd, imm & kImm16Mask & kImm16Mask);
} else {
lui(rd, (j.immediate() >> 48) & kImm16Mask);
ori(rd, rd, (j.immediate() >> 32) & kImm16Mask);
dsll(rd, rd, 16);
ori(rd, rd, (j.immediate() >> 16) & kImm16Mask);
dsll(rd, rd, 16);
ori(rd, rd, j.immediate() & kImm16Mask);
}
}
}
void MacroAssembler::LoadIsolateField(Register dst, IsolateFieldId id) {
li(dst, ExternalReference::Create(id));
}
void MacroAssembler::MultiPush(RegList regs) {
int16_t num_to_push = regs.Count();
int16_t stack_offset = num_to_push * kPointerSize;
Dsubu(sp, sp, Operand(stack_offset));
for (int16_t i = kNumRegisters - 1; i >= 0; i--) {
if ((regs.bits() & (1 << i)) != 0) {
stack_offset -= kPointerSize;
Sd(ToRegister(i), MemOperand(sp, stack_offset));
}
}
}
void MacroAssembler::MultiPop(RegList regs) {
int16_t stack_offset = 0;
for (int16_t i = 0; i < kNumRegisters; i++) {
if ((regs.bits() & (1 << i)) != 0) {
Ld(ToRegister(i), MemOperand(sp, stack_offset));
stack_offset += kPointerSize;
}
}
daddiu(sp, sp, stack_offset);
}
void MacroAssembler::MultiPushFPU(DoubleRegList regs) {
int16_t num_to_push = regs.Count();
int16_t stack_offset = num_to_push * kDoubleSize;
Dsubu(sp, sp, Operand(stack_offset));
for (int16_t i = kNumRegisters - 1; i >= 0; i--) {
if ((regs.bits() & (1 << i)) != 0) {
stack_offset -= kDoubleSize;
Sdc1(FPURegister::from_code(i), MemOperand(sp, stack_offset));
}
}
}
void MacroAssembler::MultiPopFPU(DoubleRegList regs) {
int16_t stack_offset = 0;
for (int16_t i = 0; i < kNumRegisters; i++) {
if ((regs.bits() & (1 << i)) != 0) {
Ldc1(FPURegister::from_code(i), MemOperand(sp, stack_offset));
stack_offset += kDoubleSize;
}
}
daddiu(sp, sp, stack_offset);
}
void MacroAssembler::MultiPushMSA(DoubleRegList regs) {
int16_t num_to_push = regs.Count();
int16_t stack_offset = num_to_push * kSimd128Size;
Dsubu(sp, sp, Operand(stack_offset));
for (int16_t i = kNumRegisters - 1; i >= 0; i--) {
if ((regs.bits() & (1 << i)) != 0) {
stack_offset -= kSimd128Size;
st_d(MSARegister::from_code(i), MemOperand(sp, stack_offset));
}
}
}
void MacroAssembler::MultiPopMSA(DoubleRegList regs) {
int16_t stack_offset = 0;
for (int16_t i = 0; i < kNumRegisters; i++) {
if ((regs.bits() & (1 << i)) != 0) {
ld_d(MSARegister::from_code(i), MemOperand(sp, stack_offset));
stack_offset += kSimd128Size;
}
}
daddiu(sp, sp, stack_offset);
}
void MacroAssembler::Ext(Register rt, Register rs, uint16_t pos,
uint16_t size) {
DCHECK_LT(pos, 32);
DCHECK_LT(pos + size, 33);
ext_(rt, rs, pos, size);
}
void MacroAssembler::Dext(Register rt, Register rs, uint16_t pos,
uint16_t size) {
DCHECK(pos < 64 && 0 < size && size <= 64 && 0 < pos + size &&
pos + size <= 64);
if (size > 32) {
dextm_(rt, rs, pos, size);
} else if (pos >= 32) {
dextu_(rt, rs, pos, size);
} else {
dext_(rt, rs, pos, size);
}
}
void MacroAssembler::Ins(Register rt, Register rs, uint16_t pos,
uint16_t size) {
DCHECK_LT(pos, 32);
DCHECK_LE(pos + size, 32);
DCHECK_NE(size, 0);
ins_(rt, rs, pos, size);
}
void MacroAssembler::Dins(Register rt, Register rs, uint16_t pos,
uint16_t size) {
DCHECK(pos < 64 && 0 < size && size <= 64 && 0 < pos + size &&
pos + size <= 64);
if (pos + size <= 32) {
dins_(rt, rs, pos, size);
} else if (pos < 32) {
dinsm_(rt, rs, pos, size);
} else {
dinsu_(rt, rs, pos, size);
}
}
void MacroAssembler::ExtractBits(Register dest, Register source, Register pos,
int size, bool sign_extend) {
dsrav(dest, source, pos);
Dext(dest, dest, 0, size);
if (sign_extend) {
switch (size) {
case 8:
seb(dest, dest);
break;
case 16:
seh(dest, dest);
break;
case 32:
sll(dest, dest, 0);
break;
default:
UNREACHABLE();
}
}
}
void MacroAssembler::InsertBits(Register dest, Register source, Register pos,
int size) {
Dror(dest, dest, pos);
Dins(dest, source, 0, size);
{
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
Dsubu(scratch, zero_reg, pos);
Dror(dest, dest, scratch);
}
}
void MacroAssembler::Neg_s(FPURegister fd, FPURegister fs) {
if (kArchVariant == kMips64r6) {
neg_s(fd, fs);
} else {
DCHECK_EQ(kArchVariant, kMips64r2);
BlockTrampolinePoolScope block_trampoline_pool(this);
Label is_nan, done;
Register scratch1 = t8;
Register scratch2 = t9;
CompareIsNanF32(fs, fs);
BranchTrueShortF(&is_nan);
Branch(USE_DELAY_SLOT, &done);
neg_s(fd, fs);
bind(&is_nan);
mfc1(scratch1, fs);
li(scratch2, kBinary32SignMask);
Xor(scratch1, scratch1, scratch2);
mtc1(scratch1, fd);
bind(&done);
}
}
void MacroAssembler::Neg_d(FPURegister fd, FPURegister fs) {
if (kArchVariant == kMips64r6) {
neg_d(fd, fs);
} else {
DCHECK_EQ(kArchVariant, kMips64r2);
BlockTrampolinePoolScope block_trampoline_pool(this);
Label is_nan, done;
Register scratch1 = t8;
Register scratch2 = t9;
CompareIsNanF64(fs, fs);
BranchTrueShortF(&is_nan);
Branch(USE_DELAY_SLOT, &done);
neg_d(fd, fs);
bind(&is_nan);
dmfc1(scratch1, fs);
li(scratch2, base::Double::kSignMask);
Xor(scratch1, scratch1, scratch2);
dmtc1(scratch1, fd);
bind(&done);
}
}
void MacroAssembler::Cvt_d_uw(FPURegister fd, FPURegister fs) {
BlockTrampolinePoolScope block_trampoline_pool(this);
mfc1(t8, fs);
Cvt_d_uw(fd, t8);
}
void MacroAssembler::Cvt_d_uw(FPURegister fd, Register rs) {
BlockTrampolinePoolScope block_trampoline_pool(this);
DCHECK(rs != t9);
DCHECK(rs != at);
Dext(t9, rs, 0, 32);
dmtc1(t9, fd);
cvt_d_l(fd, fd);
}
void MacroAssembler::Cvt_d_ul(FPURegister fd, FPURegister fs) {
BlockTrampolinePoolScope block_trampoline_pool(this);
dmfc1(t8, fs);
Cvt_d_ul(fd, t8);
}
void MacroAssembler::Cvt_d_ul(FPURegister fd, Register rs) {
BlockTrampolinePoolScope block_trampoline_pool(this);
DCHECK(rs != t9);
DCHECK(rs != at);
Label msb_clear, conversion_done;
Branch(&msb_clear, ge, rs, Operand(zero_reg));
andi(t9, rs, 1);
dsrl(rs, rs, 1);
or_(t9, t9, rs);
dmtc1(t9, fd);
cvt_d_l(fd, fd);
Branch(USE_DELAY_SLOT, &conversion_done);
add_d(fd, fd, fd);
bind(&msb_clear);
dmtc1(rs, fd);
cvt_d_l(fd, fd);
bind(&conversion_done);
}
void MacroAssembler::Cvt_s_uw(FPURegister fd, FPURegister fs) {
BlockTrampolinePoolScope block_trampoline_pool(this);
mfc1(t8, fs);
Cvt_s_uw(fd, t8);
}
void MacroAssembler::Cvt_s_uw(FPURegister fd, Register rs) {
BlockTrampolinePoolScope block_trampoline_pool(this);
DCHECK(rs != t9);
DCHECK(rs != at);
Dext(t9, rs, 0, 32);
dmtc1(t9, fd);
cvt_s_l(fd, fd);
}
void MacroAssembler::Cvt_s_ul(FPURegister fd, FPURegister fs) {
BlockTrampolinePoolScope block_trampoline_pool(this);
dmfc1(t8, fs);
Cvt_s_ul(fd, t8);
}
void MacroAssembler::Cvt_s_ul(FPURegister fd, Register rs) {
BlockTrampolinePoolScope block_trampoline_pool(this);
DCHECK(rs != t9);
DCHECK(rs != at);
Label positive, conversion_done;
Branch(&positive, ge, rs, Operand(zero_reg));
andi(t9, rs, 1);
dsrl(rs, rs, 1);
or_(t9, t9, rs);
dmtc1(t9, fd);
cvt_s_l(fd, fd);
Branch(USE_DELAY_SLOT, &conversion_done);
add_s(fd, fd, fd);
bind(&positive);
dmtc1(rs, fd);
cvt_s_l(fd, fd);
bind(&conversion_done);
}
void MacroAssembler::Round_l_d(FPURegister fd, FPURegister fs) {
round_l_d(fd, fs);
}
void MacroAssembler::Floor_l_d(FPURegister fd, FPURegister fs) {
floor_l_d(fd, fs);
}
void MacroAssembler::Ceil_l_d(FPURegister fd, FPURegister fs) {
ceil_l_d(fd, fs);
}
void MacroAssembler::Trunc_l_d(FPURegister fd, FPURegister fs) {
trunc_l_d(fd, fs);
}
void MacroAssembler::Trunc_l_ud(FPURegister fd, FPURegister fs,
FPURegister scratch) {
BlockTrampolinePoolScope block_trampoline_pool(this);
dmfc1(t8, fs);
{
UseScratchRegisterScope temps(this);
Register scratch1 = temps.Acquire();
li(scratch1, 0x7FFFFFFFFFFFFFFF);
and_(t8, t8, scratch1);
}
dmtc1(t8, fs);
trunc_l_d(fd, fs);
}
void MacroAssembler::Trunc_uw_d(FPURegister fd, FPURegister fs,
FPURegister scratch) {
BlockTrampolinePoolScope block_trampoline_pool(this);
Trunc_uw_d(t8, fs, scratch);
mtc1(t8, fd);
}
void MacroAssembler::Trunc_uw_s(FPURegister fd, FPURegister fs,
FPURegister scratch) {
BlockTrampolinePoolScope block_trampoline_pool(this);
Trunc_uw_s(t8, fs, scratch);
mtc1(t8, fd);
}
void MacroAssembler::Trunc_ul_d(FPURegister fd, FPURegister fs,
FPURegister scratch, Register result) {
BlockTrampolinePoolScope block_trampoline_pool(this);
Trunc_ul_d(t8, fs, scratch, result);
dmtc1(t8, fd);
}
void MacroAssembler::Trunc_ul_s(FPURegister fd, FPURegister fs,
FPURegister scratch, Register result) {
BlockTrampolinePoolScope block_trampoline_pool(this);
Trunc_ul_s(t8, fs, scratch, result);
dmtc1(t8, fd);
}
void MacroAssembler::Trunc_w_d(FPURegister fd, FPURegister fs) {
trunc_w_d(fd, fs);
}
void MacroAssembler::Round_w_d(FPURegister fd, FPURegister fs) {
round_w_d(fd, fs);
}
void MacroAssembler::Floor_w_d(FPURegister fd, FPURegister fs) {
floor_w_d(fd, fs);
}
void MacroAssembler::Ceil_w_d(FPURegister fd, FPURegister fs) {
ceil_w_d(fd, fs);
}
void MacroAssembler::Trunc_uw_d(Register rd, FPURegister fs,
FPURegister scratch) {
DCHECK(fs != scratch);
DCHECK(rd != at);
{
UseScratchRegisterScope temps(this);
Register scratch1 = temps.Acquire();
li(scratch1, 0x41F00000);
mtc1(zero_reg, scratch);
mthc1(scratch1, scratch);
}
Label simple_convert;
CompareF64(ULT, fs, scratch);
BranchTrueShortF(&simple_convert);
Addu(rd, zero_reg, -1);
Label done;
Branch(&done);
bind(&simple_convert);
trunc_l_d(scratch, fs);
mfc1(rd, scratch);
bind(&done);
}
void MacroAssembler::Trunc_uw_s(Register rd, FPURegister fs,
FPURegister scratch) {
DCHECK(fs != scratch);
DCHECK(rd != at);
{
UseScratchRegisterScope temps(this);
Register scratch1 = temps.Acquire();
li(scratch1, 0x4F800000);
mtc1(scratch1, scratch);
}
Label simple_convert;
CompareF32(ULT, fs, scratch);
BranchTrueShortF(&simple_convert);
Addu(rd, zero_reg, -1);
Label done;
Branch(&done);
bind(&simple_convert);
trunc_l_s(scratch, fs);
mfc1(rd, scratch);
bind(&done);
}
void MacroAssembler::Trunc_ul_d(Register rd, FPURegister fs,
FPURegister scratch, Register result) {
DCHECK(fs != scratch);
DCHECK(result.is_valid() ? !AreAliased(rd, result, at) : !AreAliased(rd, at));
Label simple_convert, done, fail;
if (result.is_valid()) {
mov(result, zero_reg);
Move(scratch, -1.0);
CompareF64(ULE, fs, scratch);
BranchTrueShortF(&fail);
}
li(at, 0x43E0000000000000);
dmtc1(at, scratch);
CompareF64(ULT, fs, scratch);
BranchTrueShortF(&simple_convert);
sub_d(scratch, fs, scratch);
trunc_l_d(scratch, scratch);
dmfc1(rd, scratch);
Or(rd, rd, Operand(1UL << 63));
Branch(&done);
bind(&simple_convert);
trunc_l_d(scratch, fs);
dmfc1(rd, scratch);
bind(&done);
if (result.is_valid()) {
{
UseScratchRegisterScope temps(this);
Register scratch1 = temps.Acquire();
addiu(scratch1, zero_reg, -1);
dsrl(scratch1, scratch1, 1);
dmfc1(result, scratch);
xor_(result, result, scratch1);
}
Slt(result, zero_reg, result);
}
bind(&fail);
}
void MacroAssembler::Trunc_ul_s(Register rd, FPURegister fs,
FPURegister scratch, Register result) {
DCHECK(fs != scratch);
DCHECK(result.is_valid() ? !AreAliased(rd, result, at) : !AreAliased(rd, at));
Label simple_convert, done, fail;
if (result.is_valid()) {
mov(result, zero_reg);
Move(scratch, -1.0f);
CompareF32(ULE, fs, scratch);
BranchTrueShortF(&fail);
}
{
UseScratchRegisterScope temps(this);
Register scratch1 = temps.Acquire();
li(scratch1, 0x5F000000);
mtc1(scratch1, scratch);
}
CompareF32(ULT, fs, scratch);
BranchTrueShortF(&simple_convert);
sub_s(scratch, fs, scratch);
trunc_l_s(scratch, scratch);
dmfc1(rd, scratch);
Or(rd, rd, Operand(1UL << 63));
Branch(&done);
bind(&simple_convert);
trunc_l_s(scratch, fs);
dmfc1(rd, scratch);
bind(&done);
if (result.is_valid()) {
{
UseScratchRegisterScope temps(this);
Register scratch1 = temps.Acquire();
addiu(scratch1, zero_reg, -1);
dsrl(scratch1, scratch1, 1);
dmfc1(result, scratch);
xor_(result, result, scratch1);
}
Slt(result, zero_reg, result);
}
bind(&fail);
}
template <typename RoundFunc>
void MacroAssembler::RoundDouble(FPURegister dst, FPURegister src,
FPURoundingMode mode, RoundFunc round) {
BlockTrampolinePoolScope block_trampoline_pool(this);
Register scratch = t8;
if (kArchVariant == kMips64r6) {
cfc1(scratch, FCSR);
li(at, Operand(mode));
ctc1(at, FCSR);
rint_d(dst, src);
ctc1(scratch, FCSR);
} else {
Label done;
if (!IsDoubleZeroRegSet()) {
Move(kDoubleRegZero, 0.0);
}
mfhc1(scratch, src);
Ext(at, scratch, HeapNumber::kExponentShift, HeapNumber::kExponentBits);
Branch(USE_DELAY_SLOT, &done, hs, at,
Operand(HeapNumber::kExponentBias + HeapNumber::kMantissaBits));
mov_d(dst, src);
round(this, dst, src);
dmfc1(at, dst);
Branch(USE_DELAY_SLOT, &done, ne, at, Operand(zero_reg));
cvt_d_l(dst, dst);
srl(at, scratch, 31);
sll(at, at, 31);
mthc1(at, dst);
bind(&done);
}
}
void MacroAssembler::Floor_d_d(FPURegister dst, FPURegister src) {
RoundDouble(dst, src, mode_floor,
[](MacroAssembler* masm, FPURegister dst, FPURegister src) {
masm->floor_l_d(dst, src);
});
}
void MacroAssembler::Ceil_d_d(FPURegister dst, FPURegister src) {
RoundDouble(dst, src, mode_ceil,
[](MacroAssembler* masm, FPURegister dst, FPURegister src) {
masm->ceil_l_d(dst, src);
});
}
void MacroAssembler::Trunc_d_d(FPURegister dst, FPURegister src) {
RoundDouble(dst, src, mode_trunc,
[](MacroAssembler* masm, FPURegister dst, FPURegister src) {
masm->trunc_l_d(dst, src);
});
}
void MacroAssembler::Round_d_d(FPURegister dst, FPURegister src) {
RoundDouble(dst, src, mode_round,
[](MacroAssembler* masm, FPURegister dst, FPURegister src) {
masm->round_l_d(dst, src);
});
}
template <typename RoundFunc>
void MacroAssembler::RoundFloat(FPURegister dst, FPURegister src,
FPURoundingMode mode, RoundFunc round) {
BlockTrampolinePoolScope block_trampoline_pool(this);
Register scratch = t8;
if (kArchVariant == kMips64r6) {
cfc1(scratch, FCSR);
li(at, Operand(mode));
ctc1(at, FCSR);
rint_s(dst, src);
ctc1(scratch, FCSR);
} else {
int32_t kFloat32ExponentBias = 127;
int32_t kFloat32MantissaBits = 23;
int32_t kFloat32ExponentBits = 8;
Label done;
if (!IsDoubleZeroRegSet()) {
Move(kDoubleRegZero, 0.0);
}
mfc1(scratch, src);
Ext(at, scratch, kFloat32MantissaBits, kFloat32ExponentBits);
Branch(USE_DELAY_SLOT, &done, hs, at,
Operand(kFloat32ExponentBias + kFloat32MantissaBits));
mov_s(dst, src);
round(this, dst, src);
mfc1(at, dst);
Branch(USE_DELAY_SLOT, &done, ne, at, Operand(zero_reg));
cvt_s_w(dst, dst);
srl(at, scratch, 31);
sll(at, at, 31);
mtc1(at, dst);
bind(&done);
}
}
void MacroAssembler::Floor_s_s(FPURegister dst, FPURegister src) {
RoundFloat(dst, src, mode_floor,
[](MacroAssembler* masm, FPURegister dst, FPURegister src) {
masm->floor_w_s(dst, src);
});
}
void MacroAssembler::Ceil_s_s(FPURegister dst, FPURegister src) {
RoundFloat(dst, src, mode_ceil,
[](MacroAssembler* masm, FPURegister dst, FPURegister src) {
masm->ceil_w_s(dst, src);
});
}
void MacroAssembler::Trunc_s_s(FPURegister dst, FPURegister src) {
RoundFloat(dst, src, mode_trunc,
[](MacroAssembler* masm, FPURegister dst, FPURegister src) {
masm->trunc_w_s(dst, src);
});
}
void MacroAssembler::Round_s_s(FPURegister dst, FPURegister src) {
RoundFloat(dst, src, mode_round,
[](MacroAssembler* masm, FPURegister dst, FPURegister src) {
masm->round_w_s(dst, src);
});
}
void MacroAssembler::LoadLane(MSASize sz, MSARegister dst, uint8_t laneidx,
MemOperand src) {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
switch (sz) {
case MSA_B:
Lbu(scratch, src);
insert_b(dst, laneidx, scratch);
break;
case MSA_H:
Lhu(scratch, src);
insert_h(dst, laneidx, scratch);
break;
case MSA_W:
Lwu(scratch, src);
insert_w(dst, laneidx, scratch);
break;
case MSA_D:
Ld(scratch, src);
insert_d(dst, laneidx, scratch);
break;
default:
UNREACHABLE();
}
}
void MacroAssembler::StoreLane(MSASize sz, MSARegister src, uint8_t laneidx,
MemOperand dst) {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
switch (sz) {
case MSA_B:
copy_u_b(scratch, src, laneidx);
Sb(scratch, dst);
break;
case MSA_H:
copy_u_h(scratch, src, laneidx);
Sh(scratch, dst);
break;
case MSA_W:
if (laneidx == 0) {
FPURegister src_reg = FPURegister::from_code(src.code());
Swc1(src_reg, dst);
} else {
copy_u_w(scratch, src, laneidx);
Sw(scratch, dst);
}
break;
case MSA_D:
if (laneidx == 0) {
FPURegister src_reg = FPURegister::from_code(src.code());
Sdc1(src_reg, dst);
} else {
copy_s_d(scratch, src, laneidx);
Sd(scratch, dst);
}
break;
default:
UNREACHABLE();
}
}
#define EXT_MUL_BINOP(type, ilv_instr, dotp_instr) \
case type: \
xor_v(kSimd128RegZero, kSimd128RegZero, kSimd128RegZero); \
ilv_instr(kSimd128ScratchReg, kSimd128RegZero, src1); \
ilv_instr(kSimd128RegZero, kSimd128RegZero, src2); \
dotp_instr(dst, kSimd128ScratchReg, kSimd128RegZero); \
break;
void MacroAssembler::ExtMulLow(MSADataType type, MSARegister dst,
MSARegister src1, MSARegister src2) {
switch (type) {
EXT_MUL_BINOP(MSAS8, ilvr_b, dotp_s_h)
EXT_MUL_BINOP(MSAS16, ilvr_h, dotp_s_w)
EXT_MUL_BINOP(MSAS32, ilvr_w, dotp_s_d)
EXT_MUL_BINOP(MSAU8, ilvr_b, dotp_u_h)
EXT_MUL_BINOP(MSAU16, ilvr_h, dotp_u_w)
EXT_MUL_BINOP(MSAU32, ilvr_w, dotp_u_d)
default:
UNREACHABLE();
}
}
void MacroAssembler::ExtMulHigh(MSADataType type, MSARegister dst,
MSARegister src1, MSARegister src2) {
switch (type) {
EXT_MUL_BINOP(MSAS8, ilvl_b, dotp_s_h)
EXT_MUL_BINOP(MSAS16, ilvl_h, dotp_s_w)
EXT_MUL_BINOP(MSAS32, ilvl_w, dotp_s_d)
EXT_MUL_BINOP(MSAU8, ilvl_b, dotp_u_h)
EXT_MUL_BINOP(MSAU16, ilvl_h, dotp_u_w)
EXT_MUL_BINOP(MSAU32, ilvl_w, dotp_u_d)
default:
UNREACHABLE();
}
}
#undef EXT_MUL_BINOP
void MacroAssembler::LoadSplat(MSASize sz, MSARegister dst, MemOperand src) {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
switch (sz) {
case MSA_B:
Lb(scratch, src);
fill_b(dst, scratch);
break;
case MSA_H:
Lh(scratch, src);
fill_h(dst, scratch);
break;
case MSA_W:
Lw(scratch, src);
fill_w(dst, scratch);
break;
case MSA_D:
Ld(scratch, src);
fill_d(dst, scratch);
break;
default:
UNREACHABLE();
}
}
void MacroAssembler::ExtAddPairwise(MSADataType type, MSARegister dst,
MSARegister src) {
switch (type) {
case MSAS8:
hadd_s_h(dst, src, src);
break;
case MSAU8:
hadd_u_h(dst, src, src);
break;
case MSAS16:
hadd_s_w(dst, src, src);
break;
case MSAU16:
hadd_u_w(dst, src, src);
break;
default:
UNREACHABLE();
}
}
void MacroAssembler::MSARoundW(MSARegister dst, MSARegister src,
FPURoundingMode mode) {
BlockTrampolinePoolScope block_trampoline_pool(this);
Register scratch = t8;
Register scratch2 = at;
cfcmsa(scratch, MSACSR);
if (mode == kRoundToNearest) {
scratch2 = zero_reg;
} else {
li(scratch2, Operand(mode));
}
ctcmsa(MSACSR, scratch2);
frint_w(dst, src);
ctcmsa(MSACSR, scratch);
}
void MacroAssembler::MSARoundD(MSARegister dst, MSARegister src,
FPURoundingMode mode) {
BlockTrampolinePoolScope block_trampoline_pool(this);
Register scratch = t8;
Register scratch2 = at;
cfcmsa(scratch, MSACSR);
if (mode == kRoundToNearest) {
scratch2 = zero_reg;
} else {
li(scratch2, Operand(mode));
}
ctcmsa(MSACSR, scratch2);
frint_d(dst, src);
ctcmsa(MSACSR, scratch);
}
void MacroAssembler::Madd_s(FPURegister fd, FPURegister fr, FPURegister fs,
FPURegister ft, FPURegister scratch) {
DCHECK(fr != scratch && fs != scratch && ft != scratch);
mul_s(scratch, fs, ft);
add_s(fd, fr, scratch);
}
void MacroAssembler::Madd_d(FPURegister fd, FPURegister fr, FPURegister fs,
FPURegister ft, FPURegister scratch) {
DCHECK(fr != scratch && fs != scratch && ft != scratch);
mul_d(scratch, fs, ft);
add_d(fd, fr, scratch);
}
void MacroAssembler::Msub_s(FPURegister fd, FPURegister fr, FPURegister fs,
FPURegister ft, FPURegister scratch) {
DCHECK(fr != scratch && fs != scratch && ft != scratch);
mul_s(scratch, fs, ft);
sub_s(fd, scratch, fr);
}
void MacroAssembler::Msub_d(FPURegister fd, FPURegister fr, FPURegister fs,
FPURegister ft, FPURegister scratch) {
DCHECK(fr != scratch && fs != scratch && ft != scratch);
mul_d(scratch, fs, ft);
sub_d(fd, scratch, fr);
}
void MacroAssembler::CompareF(SecondaryField sizeField, FPUCondition cc,
FPURegister cmp1, FPURegister cmp2) {
if (kArchVariant == kMips64r6) {
sizeField = sizeField == D ? L : W;
DCHECK(cmp1 != kDoubleCompareReg && cmp2 != kDoubleCompareReg);
cmp(cc, sizeField, kDoubleCompareReg, cmp1, cmp2);
} else {
c(cc, sizeField, cmp1, cmp2);
}
}
void MacroAssembler::CompareIsNanF(SecondaryField sizeField, FPURegister cmp1,
FPURegister cmp2) {
CompareF(sizeField, UN, cmp1, cmp2);
}
void MacroAssembler::BranchTrueShortF(Label* target, BranchDelaySlot bd) {
if (kArchVariant == kMips64r6) {
bc1nez(target, kDoubleCompareReg);
} else {
bc1t(target);
}
if (bd == PROTECT) {
nop();
}
}
void MacroAssembler::BranchFalseShortF(Label* target, BranchDelaySlot bd) {
if (kArchVariant == kMips64r6) {
bc1eqz(target, kDoubleCompareReg);
} else {
bc1f(target);
}
if (bd == PROTECT) {
nop();
}
}
void MacroAssembler::BranchTrueF(Label* target, BranchDelaySlot bd) {
bool long_branch =
target->is_bound() ? !is_near(target) : is_trampoline_emitted();
if (long_branch) {
Label skip;
BranchFalseShortF(&skip);
BranchLong(target, bd);
bind(&skip);
} else {
BranchTrueShortF(target, bd);
}
}
void MacroAssembler::BranchFalseF(Label* target, BranchDelaySlot bd) {
bool long_branch =
target->is_bound() ? !is_near(target) : is_trampoline_emitted();
if (long_branch) {
Label skip;
BranchTrueShortF(&skip);
BranchLong(target, bd);
bind(&skip);
} else {
BranchFalseShortF(target, bd);
}
}
void MacroAssembler::BranchMSA(Label* target, MSABranchDF df,
MSABranchCondition cond, MSARegister wt,
BranchDelaySlot bd) {
{
BlockTrampolinePoolScope block_trampoline_pool(this);
if (target) {
bool long_branch =
target->is_bound() ? !is_near(target) : is_trampoline_emitted();
if (long_branch) {
Label skip;
MSABranchCondition neg_cond = NegateMSABranchCondition(cond);
BranchShortMSA(df, &skip, neg_cond, wt, bd);
BranchLong(target, bd);
bind(&skip);
} else {
BranchShortMSA(df, target, cond, wt, bd);
}
}
}
}
void MacroAssembler::BranchShortMSA(MSABranchDF df, Label* target,
MSABranchCondition cond, MSARegister wt,
BranchDelaySlot bd) {
if (IsEnabled(MIPS_SIMD)) {
BlockTrampolinePoolScope block_trampoline_pool(this);
if (target) {
switch (cond) {
case all_not_zero:
switch (df) {
case MSA_BRANCH_D:
bnz_d(wt, target);
break;
case MSA_BRANCH_W:
bnz_w(wt, target);
break;
case MSA_BRANCH_H:
bnz_h(wt, target);
break;
case MSA_BRANCH_B:
default:
bnz_b(wt, target);
}
break;
case one_elem_not_zero:
bnz_v(wt, target);
break;
case one_elem_zero:
switch (df) {
case MSA_BRANCH_D:
bz_d(wt, target);
break;
case MSA_BRANCH_W:
bz_w(wt, target);
break;
case MSA_BRANCH_H:
bz_h(wt, target);
break;
case MSA_BRANCH_B:
default:
bz_b(wt, target);
}
break;
case all_zero:
bz_v(wt, target);
break;
default:
UNREACHABLE();
}
}
} else {
UNREACHABLE();
}
if (bd == PROTECT) {
nop();
}
}
void MacroAssembler::MovePair(Register dst0, Register src0, Register dst1,
Register src1) {
DCHECK_NE(dst0, dst1);
if (dst0 != src1) {
Move(dst0, src0);
Move(dst1, src1);
} else if (dst1 != src0) {
Move(dst1, src1);
Move(dst0, src0);
} else {
Swap(dst0, src0);
}
}
void MacroAssembler::FmoveLow(FPURegister dst, Register src_low) {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
DCHECK(src_low != scratch);
mfhc1(scratch, dst);
mtc1(src_low, dst);
mthc1(scratch, dst);
}
void MacroAssembler::Move(FPURegister dst, uint32_t src) {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
li(scratch, Operand(static_cast<int32_t>(src)));
mtc1(scratch, dst);
}
void MacroAssembler::Move(FPURegister dst, uint64_t src) {
if (src == base::bit_cast<uint64_t>(0.0) && has_double_zero_reg_set_) {
mov_d(dst, kDoubleRegZero);
} else if (src == base::bit_cast<uint64_t>(-0.0) &&
has_double_zero_reg_set_) {
Neg_d(dst, kDoubleRegZero);
} else {
uint32_t lo = src & 0xFFFFFFFF;
uint32_t hi = src >> 32;
if (lo != 0) {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
li(scratch, Operand(lo));
mtc1(scratch, dst);
} else {
mtc1(zero_reg, dst);
}
if (hi != 0) {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
li(scratch, Operand(hi));
mthc1(scratch, dst);
} else {
mthc1(zero_reg, dst);
}
if (dst == kDoubleRegZero) has_double_zero_reg_set_ = true;
}
}
void MacroAssembler::Movz(Register rd, Register rs, Register rt) {
if (kArchVariant == kMips64r6) {
Label done;
Branch(&done, ne, rt, Operand(zero_reg));
mov(rd, rs);
bind(&done);
} else {
movz(rd, rs, rt);
}
}
void MacroAssembler::Movn(Register rd, Register rs, Register rt) {
if (kArchVariant == kMips64r6) {
Label done;
Branch(&done, eq, rt, Operand(zero_reg));
mov(rd, rs);
bind(&done);
} else {
movn(rd, rs, rt);
}
}
void MacroAssembler::LoadZeroIfConditionNotZero(Register dest,
Register condition) {
if (kArchVariant == kMips64r6) {
seleqz(dest, dest, condition);
} else {
Movn(dest, zero_reg, condition);
}
}
void MacroAssembler::LoadZeroIfConditionZero(Register dest,
Register condition) {
if (kArchVariant == kMips64r6) {
selnez(dest, dest, condition);
} else {
Movz(dest, zero_reg, condition);
}
}
void MacroAssembler::LoadZeroIfFPUCondition(Register dest) {
if (kArchVariant == kMips64r6) {
dmfc1(kScratchReg, kDoubleCompareReg);
LoadZeroIfConditionNotZero(dest, kScratchReg);
} else {
Movt(dest, zero_reg);
}
}
void MacroAssembler::LoadZeroIfNotFPUCondition(Register dest) {
if (kArchVariant == kMips64r6) {
dmfc1(kScratchReg, kDoubleCompareReg);
LoadZeroIfConditionZero(dest, kScratchReg);
} else {
Movf(dest, zero_reg);
}
}
void MacroAssembler::Movt(Register rd, Register rs, uint16_t cc) {
movt(rd, rs, cc);
}
void MacroAssembler::Movf(Register rd, Register rs, uint16_t cc) {
movf(rd, rs, cc);
}
void MacroAssembler::Clz(Register rd, Register rs) { clz(rd, rs); }
void MacroAssembler::Dclz(Register rd, Register rs) { dclz(rd, rs); }
void MacroAssembler::Ctz(Register rd, Register rs) {
if (kArchVariant == kMips64r6) {
rotr(rd, rs, 16);
wsbh(rd, rd);
bitswap(rd, rd);
Clz(rd, rd);
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
Daddu(scratch, rs, -1);
Xor(rd, scratch, rs);
And(rd, rd, scratch);
Clz(rd, rd);
li(scratch, 32);
Subu(rd, scratch, rd);
}
}
void MacroAssembler::Dctz(Register rd, Register rs) {
if (kArchVariant == kMips64r6) {
dsbh(rd, rs);
dshd(rd, rd);
dbitswap(rd, rd);
dclz(rd, rd);
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
Daddu(scratch, rs, -1);
Xor(rd, scratch, rs);
And(rd, rd, scratch);
dclz(rd, rd);
li(scratch, 64);
Dsubu(rd, scratch, rd);
}
}
void MacroAssembler::Popcnt(Register rd, Register rs) {
ASM_CODE_COMMENT(this);
uint32_t B0 = 0x55555555;
uint32_t B1 = 0x33333333;
uint32_t B2 = 0x0F0F0F0F;
uint32_t value = 0x01010101;
uint32_t shift = 24;
UseScratchRegisterScope temps(this);
BlockTrampolinePoolScope block_trampoline_pool(this);
Register scratch = temps.Acquire();
Register scratch2 = t8;
srl(scratch, rs, 1);
li(scratch2, B0);
And(scratch, scratch, scratch2);
Subu(scratch, rs, scratch);
li(scratch2, B1);
And(rd, scratch, scratch2);
srl(scratch, scratch, 2);
And(scratch, scratch, scratch2);
Addu(scratch, rd, scratch);
srl(rd, scratch, 4);
Addu(rd, rd, scratch);
li(scratch2, B2);
And(rd, rd, scratch2);
li(scratch, value);
Mul(rd, rd, scratch);
srl(rd, rd, shift);
}
void MacroAssembler::Dpopcnt(Register rd, Register rs) {
ASM_CODE_COMMENT(this);
uint64_t B0 = 0x5555555555555555l;
uint64_t B1 = 0x3333333333333333l;
uint64_t B2 = 0x0F0F0F0F0F0F0F0Fl;
uint64_t value = 0x0101010101010101l;
uint64_t shift = 24;
UseScratchRegisterScope temps(this);
BlockTrampolinePoolScope block_trampoline_pool(this);
Register scratch = temps.Acquire();
Register scratch2 = t8;
dsrl(scratch, rs, 1);
li(scratch2, B0);
And(scratch, scratch, scratch2);
Dsubu(scratch, rs, scratch);
li(scratch2, B1);
And(rd, scratch, scratch2);
dsrl(scratch, scratch, 2);
And(scratch, scratch, scratch2);
Daddu(scratch, rd, scratch);
dsrl(rd, scratch, 4);
Daddu(rd, rd, scratch);
li(scratch2, B2);
And(rd, rd, scratch2);
li(scratch, value);
Dmul(rd, rd, scratch);
dsrl32(rd, rd, shift);
}
void MacroAssembler::TryInlineTruncateDoubleToI(Register result,
DoubleRegister double_input,
Label* done) {
DoubleRegister single_scratch = kScratchDoubleReg.low();
BlockTrampolinePoolScope block_trampoline_pool(this);
Register scratch = t9;
trunc_w_d(single_scratch, double_input);
mfc1(result, single_scratch);
cfc1(scratch, FCSR);
And(scratch, scratch,
kFCSROverflowCauseMask | kFCSRUnderflowCauseMask |
kFCSRInvalidOpCauseMask);
Branch(done, eq, scratch, Operand(zero_reg));
}
void MacroAssembler::TruncateDoubleToI(Isolate* isolate, Zone* zone,
Register result,
DoubleRegister double_input,
StubCallMode stub_mode) {
Label done;
TryInlineTruncateDoubleToI(result, double_input, &done);
push(ra);
Dsubu(sp, sp, Operand(kDoubleSize));
Sdc1(double_input, MemOperand(sp, 0));
#if V8_ENABLE_WEBASSEMBLY
if (stub_mode == StubCallMode::kCallWasmRuntimeStub) {
Call(static_cast<Address>(Builtin::kDoubleToI), RelocInfo::WASM_STUB_CALL);
#else
if (false) {
#endif
} else {
CallBuiltin(Builtin::kDoubleToI);
}
Ld(result, MemOperand(sp, 0));
Daddu(sp, sp, Operand(kDoubleSize));
pop(ra);
bind(&done);
}
void MacroAssembler::CompareWord(Condition cond, Register dst, Register lhs,
const Operand& rhs) {
switch (cond) {
case eq:
case ne: {
if (rhs.IsImmediate()) {
if (rhs.immediate() == 0) {
if (cond == eq) {
Sltu(dst, lhs, 1);
} else {
Sltu(dst, zero_reg, lhs);
}
} else if (is_int16(-rhs.immediate())) {
Daddu(dst, lhs, Operand(-rhs.immediate()));
if (cond == eq) {
Sltu(dst, dst, 1);
} else {
Sltu(dst, zero_reg, dst);
}
} else {
Xor(dst, lhs, rhs);
if (cond == eq) {
Sltu(dst, dst, 1);
} else {
Sltu(dst, zero_reg, dst);
}
}
} else {
Xor(dst, lhs, rhs);
if (cond == eq) {
Sltu(dst, dst, 1);
} else {
Sltu(dst, zero_reg, dst);
}
}
break;
}
case lt:
Slt(dst, lhs, rhs);
break;
case gt:
Sgt(dst, lhs, rhs);
break;
case le:
Sle(dst, lhs, rhs);
break;
case ge:
Sge(dst, lhs, rhs);
break;
case lo:
Sltu(dst, lhs, rhs);
break;
case hs:
Sgeu(dst, lhs, rhs);
break;
case hi:
Sgtu(dst, lhs, rhs);
break;
case ls:
Sleu(dst, lhs, rhs);
break;
default:
UNREACHABLE();
}
}
#define BRANCH_ARGS_CHECK(cond, rs, rt) \
DCHECK((cond == cc_always && rs == zero_reg && rt.rm() == zero_reg) || \
(cond != cc_always && (rs != zero_reg || rt.rm() != zero_reg)))
void MacroAssembler::Branch(int32_t offset, BranchDelaySlot bdslot) {
DCHECK_EQ(kArchVariant, kMips64r6 ? is_int26(offset) : is_int16(offset));
BranchShort(offset, bdslot);
}
void MacroAssembler::Branch(int32_t offset, Condition cond, Register rs,
const Operand& rt, BranchDelaySlot bdslot) {
bool is_near = BranchShortCheck(offset, nullptr, cond, rs, rt, bdslot);
DCHECK(is_near);
USE(is_near);
}
void MacroAssembler::Branch(Label* L, BranchDelaySlot bdslot) {
if (L->is_bound()) {
if (is_near_branch(L)) {
BranchShort(L, bdslot);
} else {
BranchLong(L, bdslot);
}
} else {
if (is_trampoline_emitted()) {
BranchLong(L, bdslot);
} else {
BranchShort(L, bdslot);
}
}
}
void MacroAssembler::Branch(Label* L, Condition cond, Register rs,
const Operand& rt, BranchDelaySlot bdslot) {
if (L->is_bound()) {
if (!BranchShortCheck(0, L, cond, rs, rt, bdslot)) {
if (cond != cc_always) {
Label skip;
Condition neg_cond = NegateCondition(cond);
BranchShort(&skip, neg_cond, rs, rt);
BranchLong(L, bdslot);
bind(&skip);
} else {
BranchLong(L, bdslot);
}
}
} else {
if (is_trampoline_emitted()) {
if (cond != cc_always) {
Label skip;
Condition neg_cond = NegateCondition(cond);
BranchShort(&skip, neg_cond, rs, rt);
BranchLong(L, bdslot);
bind(&skip);
} else {
BranchLong(L, bdslot);
}
} else {
BranchShort(L, cond, rs, rt, bdslot);
}
}
}
void MacroAssembler::Branch(Label* L, Condition cond, Register rs,
RootIndex index, BranchDelaySlot bdslot) {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
LoadRoot(scratch, index);
Branch(L, cond, rs, Operand(scratch), bdslot);
}
void MacroAssembler::BranchShortHelper(int16_t offset, Label* L,
BranchDelaySlot bdslot) {
DCHECK(L == nullptr || offset == 0);
offset = GetOffset(offset, L, OffsetSize::kOffset16);
b(offset);
if (bdslot == PROTECT) nop();
}
void MacroAssembler::BranchShortHelperR6(int32_t offset, Label* L) {
DCHECK(L == nullptr || offset == 0);
offset = GetOffset(offset, L, OffsetSize::kOffset26);
bc(offset);
}
void MacroAssembler::BranchShort(int32_t offset, BranchDelaySlot bdslot) {
if (kArchVariant == kMips64r6 && bdslot == PROTECT) {
DCHECK(is_int26(offset));
BranchShortHelperR6(offset, nullptr);
} else {
DCHECK(is_int16(offset));
BranchShortHelper(offset, nullptr, bdslot);
}
}
void MacroAssembler::BranchShort(Label* L, BranchDelaySlot bdslot) {
if (kArchVariant == kMips64r6 && bdslot == PROTECT) {
BranchShortHelperR6(0, L);
} else {
BranchShortHelper(0, L, bdslot);
}
}
int32_t MacroAssembler::GetOffset(int32_t offset, Label* L, OffsetSize bits) {
if (L) {
offset = branch_offset_helper(L, bits) >> 2;
} else {
DCHECK(is_intn(offset, bits));
}
return offset;
}
Register MacroAssembler::GetRtAsRegisterHelper(const Operand& rt,
Register scratch) {
Register r2 = no_reg;
if (rt.is_reg()) {
r2 = rt.rm();
} else {
r2 = scratch;
li(r2, rt);
}
return r2;
}
bool MacroAssembler::CalculateOffset(Label* L, int32_t* offset,
OffsetSize bits) {
if (!is_near(L, bits)) return false;
*offset = GetOffset(*offset, L, bits);
return true;
}
bool MacroAssembler::CalculateOffset(Label* L, int32_t* offset, OffsetSize bits,
Register* scratch, const Operand& rt) {
if (!is_near(L, bits)) return false;
*scratch = GetRtAsRegisterHelper(rt, *scratch);
*offset = GetOffset(*offset, L, bits);
return true;
}
bool MacroAssembler::BranchShortHelperR6(int32_t offset, Label* L,
Condition cond, Register rs,
const Operand& rt) {
DCHECK(L == nullptr || offset == 0);
UseScratchRegisterScope temps(this);
BlockTrampolinePoolScope block_trampoline_pool(this);
Register scratch = temps.hasAvailable() ? temps.Acquire() : t8;
{
BlockTrampolinePoolScope block_trampoline_pool(this);
switch (cond) {
case cc_always:
if (!CalculateOffset(L, &offset, OffsetSize::kOffset26)) return false;
bc(offset);
break;
case eq:
if (rt.is_reg() && rs.code() == rt.rm().code()) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16, &scratch, rt))
return false;
beq(rs, scratch, offset);
nop();
} else if (IsZero(rt)) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset21)) return false;
beqzc(rs, offset);
} else {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16, &scratch, rt))
return false;
beqc(rs, scratch, offset);
}
break;
case ne:
if (rt.is_reg() && rs.code() == rt.rm().code()) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16, &scratch, rt))
return false;
bne(rs, scratch, offset);
nop();
} else if (IsZero(rt)) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset21)) return false;
bnezc(rs, offset);
} else {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16, &scratch, rt))
return false;
bnec(rs, scratch, offset);
}
break;
case greater:
if (rt.is_reg() && rs.code() == rt.rm().code()) {
break;
} else if (rs == zero_reg) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16, &scratch, rt))
return false;
bltzc(scratch, offset);
} else if (IsZero(rt)) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16)) return false;
bgtzc(rs, offset);
} else {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16, &scratch, rt))
return false;
DCHECK(rs != scratch);
bltc(scratch, rs, offset);
}
break;
case greater_equal:
if (rt.is_reg() && rs.code() == rt.rm().code()) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset26)) return false;
bc(offset);
} else if (rs == zero_reg) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16, &scratch, rt))
return false;
blezc(scratch, offset);
} else if (IsZero(rt)) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16)) return false;
bgezc(rs, offset);
} else {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16, &scratch, rt))
return false;
DCHECK(rs != scratch);
bgec(rs, scratch, offset);
}
break;
case less:
if (rt.is_reg() && rs.code() == rt.rm().code()) {
break;
} else if (rs == zero_reg) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16, &scratch, rt))
return false;
bgtzc(scratch, offset);
} else if (IsZero(rt)) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16)) return false;
bltzc(rs, offset);
} else {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16, &scratch, rt))
return false;
DCHECK(rs != scratch);
bltc(rs, scratch, offset);
}
break;
case less_equal:
if (rt.is_reg() && rs.code() == rt.rm().code()) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset26)) return false;
bc(offset);
} else if (rs == zero_reg) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16, &scratch, rt))
return false;
bgezc(scratch, offset);
} else if (IsZero(rt)) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16)) return false;
blezc(rs, offset);
} else {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16, &scratch, rt))
return false;
DCHECK(rs != scratch);
bgec(scratch, rs, offset);
}
break;
case Ugreater:
if (rt.is_reg() && rs.code() == rt.rm().code()) {
break;
} else if (rs == zero_reg) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset21, &scratch, rt))
return false;
bnezc(scratch, offset);
} else if (IsZero(rt)) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset21)) return false;
bnezc(rs, offset);
} else {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16, &scratch, rt))
return false;
DCHECK(rs != scratch);
bltuc(scratch, rs, offset);
}
break;
case Ugreater_equal:
if (rt.is_reg() && rs.code() == rt.rm().code()) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset26)) return false;
bc(offset);
} else if (rs == zero_reg) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset21, &scratch, rt))
return false;
beqzc(scratch, offset);
} else if (IsZero(rt)) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset26)) return false;
bc(offset);
} else {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16, &scratch, rt))
return false;
DCHECK(rs != scratch);
bgeuc(rs, scratch, offset);
}
break;
case Uless:
if (rt.is_reg() && rs.code() == rt.rm().code()) {
break;
} else if (rs == zero_reg) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset21, &scratch, rt))
return false;
bnezc(scratch, offset);
} else if (IsZero(rt)) {
break;
} else {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16, &scratch, rt))
return false;
DCHECK(rs != scratch);
bltuc(rs, scratch, offset);
}
break;
case Uless_equal:
if (rt.is_reg() && rs.code() == rt.rm().code()) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset26)) return false;
bc(offset);
} else if (rs == zero_reg) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset26, &scratch, rt))
return false;
bc(offset);
} else if (IsZero(rt)) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset21)) return false;
beqzc(rs, offset);
} else {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16, &scratch, rt))
return false;
DCHECK(rs != scratch);
bgeuc(scratch, rs, offset);
}
break;
default:
UNREACHABLE();
}
}
CheckTrampolinePoolQuick(1);
return true;
}
bool MacroAssembler::BranchShortHelper(int16_t offset, Label* L, Condition cond,
Register rs, const Operand& rt,
BranchDelaySlot bdslot) {
DCHECK(L == nullptr || offset == 0);
if (!is_near(L, OffsetSize::kOffset16)) return false;
UseScratchRegisterScope temps(this);
BlockTrampolinePoolScope block_trampoline_pool(this);
Register scratch = temps.hasAvailable() ? temps.Acquire() : t8;
int32_t offset32;
{
BlockTrampolinePoolScope block_trampoline_pool(this);
switch (cond) {
case cc_always:
offset32 = GetOffset(offset, L, OffsetSize::kOffset16);
b(offset32);
break;
case eq:
if (IsZero(rt)) {
offset32 = GetOffset(offset, L, OffsetSize::kOffset16);
beq(rs, zero_reg, offset32);
} else {
scratch = GetRtAsRegisterHelper(rt, scratch);
offset32 = GetOffset(offset, L, OffsetSize::kOffset16);
beq(rs, scratch, offset32);
}
break;
case ne:
if (IsZero(rt)) {
offset32 = GetOffset(offset, L, OffsetSize::kOffset16);
bne(rs, zero_reg, offset32);
} else {
scratch = GetRtAsRegisterHelper(rt, scratch);
offset32 = GetOffset(offset, L, OffsetSize::kOffset16);
bne(rs, scratch, offset32);
}
break;
case greater:
if (IsZero(rt)) {
offset32 = GetOffset(offset, L, OffsetSize::kOffset16);
bgtz(rs, offset32);
} else {
Slt(scratch, GetRtAsRegisterHelper(rt, scratch), rs);
offset32 = GetOffset(offset, L, OffsetSize::kOffset16);
bne(scratch, zero_reg, offset32);
}
break;
case greater_equal:
if (IsZero(rt)) {
offset32 = GetOffset(offset, L, OffsetSize::kOffset16);
bgez(rs, offset32);
} else {
Slt(scratch, rs, rt);
offset32 = GetOffset(offset, L, OffsetSize::kOffset16);
beq(scratch, zero_reg, offset32);
}
break;
case less:
if (IsZero(rt)) {
offset32 = GetOffset(offset, L, OffsetSize::kOffset16);
bltz(rs, offset32);
} else {
Slt(scratch, rs, rt);
offset32 = GetOffset(offset, L, OffsetSize::kOffset16);
bne(scratch, zero_reg, offset32);
}
break;
case less_equal:
if (IsZero(rt)) {
offset32 = GetOffset(offset, L, OffsetSize::kOffset16);
blez(rs, offset32);
} else {
Slt(scratch, GetRtAsRegisterHelper(rt, scratch), rs);
offset32 = GetOffset(offset, L, OffsetSize::kOffset16);
beq(scratch, zero_reg, offset32);
}
break;
case Ugreater:
if (IsZero(rt)) {
offset32 = GetOffset(offset, L, OffsetSize::kOffset16);
bne(rs, zero_reg, offset32);
} else {
Sltu(scratch, GetRtAsRegisterHelper(rt, scratch), rs);
offset32 = GetOffset(offset, L, OffsetSize::kOffset16);
bne(scratch, zero_reg, offset32);
}
break;
case Ugreater_equal:
if (IsZero(rt)) {
offset32 = GetOffset(offset, L, OffsetSize::kOffset16);
b(offset32);
} else {
Sltu(scratch, rs, rt);
offset32 = GetOffset(offset, L, OffsetSize::kOffset16);
beq(scratch, zero_reg, offset32);
}
break;
case Uless:
if (IsZero(rt)) {
return true;
} else {
Sltu(scratch, rs, rt);
offset32 = GetOffset(offset, L, OffsetSize::kOffset16);
bne(scratch, zero_reg, offset32);
}
break;
case Uless_equal:
if (IsZero(rt)) {
offset32 = GetOffset(offset, L, OffsetSize::kOffset16);
beq(rs, zero_reg, offset32);
} else {
Sltu(scratch, GetRtAsRegisterHelper(rt, scratch), rs);
offset32 = GetOffset(offset, L, OffsetSize::kOffset16);
beq(scratch, zero_reg, offset32);
}
break;
default:
UNREACHABLE();
}
}
if (bdslot == PROTECT) nop();
return true;
}
bool MacroAssembler::BranchShortCheck(int32_t offset, Label* L, Condition cond,
Register rs, const Operand& rt,
BranchDelaySlot bdslot) {
BRANCH_ARGS_CHECK(cond, rs, rt);
if (!L) {
if (kArchVariant == kMips64r6 && bdslot == PROTECT) {
DCHECK(is_int26(offset));
return BranchShortHelperR6(offset, nullptr, cond, rs, rt);
} else {
DCHECK(is_int16(offset));
return BranchShortHelper(offset, nullptr, cond, rs, rt, bdslot);
}
} else {
DCHECK_EQ(offset, 0);
if (kArchVariant == kMips64r6 && bdslot == PROTECT) {
return BranchShortHelperR6(0, L, cond, rs, rt);
} else {
return BranchShortHelper(0, L, cond, rs, rt, bdslot);
}
}
}
void MacroAssembler::BranchShort(int32_t offset, Condition cond, Register rs,
const Operand& rt, BranchDelaySlot bdslot) {
BranchShortCheck(offset, nullptr, cond, rs, rt, bdslot);
}
void MacroAssembler::BranchShort(Label* L, Condition cond, Register rs,
const Operand& rt, BranchDelaySlot bdslot) {
BranchShortCheck(0, L, cond, rs, rt, bdslot);
}
void MacroAssembler::BranchAndLink(int32_t offset, BranchDelaySlot bdslot) {
BranchAndLinkShort(offset, bdslot);
}
void MacroAssembler::BranchAndLink(int32_t offset, Condition cond, Register rs,
const Operand& rt, BranchDelaySlot bdslot) {
bool is_near = BranchAndLinkShortCheck(offset, nullptr, cond, rs, rt, bdslot);
DCHECK(is_near);
USE(is_near);
}
void MacroAssembler::BranchAndLink(Label* L, BranchDelaySlot bdslot) {
if (L->is_bound()) {
if (is_near_branch(L)) {
BranchAndLinkShort(L, bdslot);
} else {
BranchAndLinkLong(L, bdslot);
}
} else {
if (is_trampoline_emitted()) {
BranchAndLinkLong(L, bdslot);
} else {
BranchAndLinkShort(L, bdslot);
}
}
}
void MacroAssembler::BranchAndLink(Label* L, Condition cond, Register rs,
const Operand& rt, BranchDelaySlot bdslot) {
if (L->is_bound()) {
if (!BranchAndLinkShortCheck(0, L, cond, rs, rt, bdslot)) {
Label skip;
Condition neg_cond = NegateCondition(cond);
BranchShort(&skip, neg_cond, rs, rt);
BranchAndLinkLong(L, bdslot);
bind(&skip);
}
} else {
if (is_trampoline_emitted()) {
Label skip;
Condition neg_cond = NegateCondition(cond);
BranchShort(&skip, neg_cond, rs, rt);
BranchAndLinkLong(L, bdslot);
bind(&skip);
} else {
BranchAndLinkShortCheck(0, L, cond, rs, rt, bdslot);
}
}
}
void MacroAssembler::BranchAndLinkShortHelper(int16_t offset, Label* L,
BranchDelaySlot bdslot) {
DCHECK(L == nullptr || offset == 0);
offset = GetOffset(offset, L, OffsetSize::kOffset16);
bal(offset);
if (bdslot == PROTECT) nop();
}
void MacroAssembler::BranchAndLinkShortHelperR6(int32_t offset, Label* L) {
DCHECK(L == nullptr || offset == 0);
offset = GetOffset(offset, L, OffsetSize::kOffset26);
balc(offset);
}
void MacroAssembler::BranchAndLinkShort(int32_t offset,
BranchDelaySlot bdslot) {
if (kArchVariant == kMips64r6 && bdslot == PROTECT) {
DCHECK(is_int26(offset));
BranchAndLinkShortHelperR6(offset, nullptr);
} else {
DCHECK(is_int16(offset));
BranchAndLinkShortHelper(offset, nullptr, bdslot);
}
}
void MacroAssembler::BranchAndLinkShort(Label* L, BranchDelaySlot bdslot) {
if (kArchVariant == kMips64r6 && bdslot == PROTECT) {
BranchAndLinkShortHelperR6(0, L);
} else {
BranchAndLinkShortHelper(0, L, bdslot);
}
}
bool MacroAssembler::BranchAndLinkShortHelperR6(int32_t offset, Label* L,
Condition cond, Register rs,
const Operand& rt) {
DCHECK(L == nullptr || offset == 0);
UseScratchRegisterScope temps(this);
Register scratch = temps.hasAvailable() ? temps.Acquire() : t8;
OffsetSize bits = OffsetSize::kOffset16;
BlockTrampolinePoolScope block_trampoline_pool(this);
DCHECK((cond == cc_always && is_int26(offset)) || is_int16(offset));
switch (cond) {
case cc_always:
if (!CalculateOffset(L, &offset, OffsetSize::kOffset26)) return false;
balc(offset);
break;
case eq:
if (!is_near(L, bits)) return false;
Subu(scratch, rs, rt);
offset = GetOffset(offset, L, bits);
beqzalc(scratch, offset);
break;
case ne:
if (!is_near(L, bits)) return false;
Subu(scratch, rs, rt);
offset = GetOffset(offset, L, bits);
bnezalc(scratch, offset);
break;
case greater:
if (rs.code() == rt.rm().code()) {
break;
} else if (rs == zero_reg) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16, &scratch, rt))
return false;
bltzalc(scratch, offset);
} else if (IsZero(rt)) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16)) return false;
bgtzalc(rs, offset);
} else {
if (!is_near(L, bits)) return false;
Slt(scratch, GetRtAsRegisterHelper(rt, scratch), rs);
offset = GetOffset(offset, L, bits);
bnezalc(scratch, offset);
}
break;
case greater_equal:
if (rs.code() == rt.rm().code()) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset26)) return false;
balc(offset);
} else if (rs == zero_reg) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16, &scratch, rt))
return false;
blezalc(scratch, offset);
} else if (IsZero(rt)) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16)) return false;
bgezalc(rs, offset);
} else {
if (!is_near(L, bits)) return false;
Slt(scratch, rs, rt);
offset = GetOffset(offset, L, bits);
beqzalc(scratch, offset);
}
break;
case less:
if (rs.code() == rt.rm().code()) {
break;
} else if (rs == zero_reg) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16, &scratch, rt))
return false;
bgtzalc(scratch, offset);
} else if (IsZero(rt)) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16)) return false;
bltzalc(rs, offset);
} else {
if (!is_near(L, bits)) return false;
Slt(scratch, rs, rt);
offset = GetOffset(offset, L, bits);
bnezalc(scratch, offset);
}
break;
case less_equal:
if (rs.code() == rt.rm().code()) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset26)) return false;
balc(offset);
} else if (rs == zero_reg) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16, &scratch, rt))
return false;
bgezalc(scratch, offset);
} else if (IsZero(rt)) {
if (!CalculateOffset(L, &offset, OffsetSize::kOffset16)) return false;
blezalc(rs, offset);
} else {
if (!is_near(L, bits)) return false;
Slt(scratch, GetRtAsRegisterHelper(rt, scratch), rs);
offset = GetOffset(offset, L, bits);
beqzalc(scratch, offset);
}
break;
case Ugreater:
if (!is_near(L, bits)) return false;
Sltu(scratch, GetRtAsRegisterHelper(rt, scratch), rs);
offset = GetOffset(offset, L, bits);
bnezalc(scratch, offset);
break;
case Ugreater_equal:
if (!is_near(L, bits)) return false;
Sltu(scratch, rs, rt);
offset = GetOffset(offset, L, bits);
beqzalc(scratch, offset);
break;
case Uless:
if (!is_near(L, bits)) return false;
Sltu(scratch, rs, rt);
offset = GetOffset(offset, L, bits);
bnezalc(scratch, offset);
break;
case Uless_equal:
if (!is_near(L, bits)) return false;
Sltu(scratch, GetRtAsRegisterHelper(rt, scratch), rs);
offset = GetOffset(offset, L, bits);
beqzalc(scratch, offset);
break;
default:
UNREACHABLE();
}
return true;
}
bool MacroAssembler::BranchAndLinkShortHelper(int16_t offset, Label* L,
Condition cond, Register rs,
const Operand& rt,
BranchDelaySlot bdslot) {
DCHECK(L == nullptr || offset == 0);
if (!is_near(L, OffsetSize::kOffset16)) return false;
Register scratch = t8;
BlockTrampolinePoolScope block_trampoline_pool(this);
switch (cond) {
case cc_always:
offset = GetOffset(offset, L, OffsetSize::kOffset16);
bal(offset);
break;
case eq:
bne(rs, GetRtAsRegisterHelper(rt, scratch), 2);
nop();
offset = GetOffset(offset, L, OffsetSize::kOffset16);
bal(offset);
break;
case ne:
beq(rs, GetRtAsRegisterHelper(rt, scratch), 2);
nop();
offset = GetOffset(offset, L, OffsetSize::kOffset16);
bal(offset);
break;
case greater:
Slt(scratch, GetRtAsRegisterHelper(rt, scratch), rs);
addiu(scratch, scratch, -1);
offset = GetOffset(offset, L, OffsetSize::kOffset16);
bgezal(scratch, offset);
break;
case greater_equal:
Slt(scratch, rs, rt);
addiu(scratch, scratch, -1);
offset = GetOffset(offset, L, OffsetSize::kOffset16);
bltzal(scratch, offset);
break;
case less:
Slt(scratch, rs, rt);
addiu(scratch, scratch, -1);
offset = GetOffset(offset, L, OffsetSize::kOffset16);
bgezal(scratch, offset);
break;
case less_equal:
Slt(scratch, GetRtAsRegisterHelper(rt, scratch), rs);
addiu(scratch, scratch, -1);
offset = GetOffset(offset, L, OffsetSize::kOffset16);
bltzal(scratch, offset);
break;
case Ugreater:
Sltu(scratch, GetRtAsRegisterHelper(rt, scratch), rs);
addiu(scratch, scratch, -1);
offset = GetOffset(offset, L, OffsetSize::kOffset16);
bgezal(scratch, offset);
break;
case Ugreater_equal:
Sltu(scratch, rs, rt);
addiu(scratch, scratch, -1);
offset = GetOffset(offset, L, OffsetSize::kOffset16);
bltzal(scratch, offset);
break;
case Uless:
Sltu(scratch, rs, rt);
addiu(scratch, scratch, -1);
offset = GetOffset(offset, L, OffsetSize::kOffset16);
bgezal(scratch, offset);
break;
case Uless_equal:
Sltu(scratch, GetRtAsRegisterHelper(rt, scratch), rs);
addiu(scratch, scratch, -1);
offset = GetOffset(offset, L, OffsetSize::kOffset16);
bltzal(scratch, offset);
break;
default:
UNREACHABLE();
}
if (bdslot == PROTECT) nop();
return true;
}
bool MacroAssembler::BranchAndLinkShortCheck(int32_t offset, Label* L,
Condition cond, Register rs,
const Operand& rt,
BranchDelaySlot bdslot) {
BRANCH_ARGS_CHECK(cond, rs, rt);
if (!L) {
if (kArchVariant == kMips64r6 && bdslot == PROTECT) {
DCHECK(is_int26(offset));
return BranchAndLinkShortHelperR6(offset, nullptr, cond, rs, rt);
} else {
DCHECK(is_int16(offset));
return BranchAndLinkShortHelper(offset, nullptr, cond, rs, rt, bdslot);
}
} else {
DCHECK_EQ(offset, 0);
if (kArchVariant == kMips64r6 && bdslot == PROTECT) {
return BranchAndLinkShortHelperR6(0, L, cond, rs, rt);
} else {
return BranchAndLinkShortHelper(0, L, cond, rs, rt, bdslot);
}
}
}
void MacroAssembler::LoadFromConstantsTable(Register destination,
int constant_index) {
ASM_CODE_COMMENT(this);
DCHECK(RootsTable::IsImmortalImmovable(RootIndex::kBuiltinsConstantsTable));
LoadRoot(destination, RootIndex::kBuiltinsConstantsTable);
Ld(destination,
FieldMemOperand(destination, OFFSET_OF_DATA_START(FixedArray) +
constant_index * kPointerSize));
}
void MacroAssembler::LoadRootRelative(Register destination, int32_t offset) {
Ld(destination, MemOperand(kRootRegister, offset));
}
void MacroAssembler::StoreRootRelative(int32_t offset, Register value) {
Sd(value, MemOperand(kRootRegister, offset));
}
void MacroAssembler::LoadRootRegisterOffset(Register destination,
intptr_t offset) {
if (offset == 0) {
Move(destination, kRootRegister);
} else {
Daddu(destination, kRootRegister, Operand(offset));
}
}
MemOperand MacroAssembler::ExternalReferenceAsOperand(
ExternalReference reference, Register scratch) {
if (root_array_available()) {
if (reference.IsIsolateFieldId()) {
return MemOperand(kRootRegister, reference.offset_from_root_register());
}
if (options().enable_root_relative_access) {
int64_t offset =
RootRegisterOffsetForExternalReference(isolate(), reference);
if (is_int32(offset)) {
return MemOperand(kRootRegister, static_cast<int32_t>(offset));
}
}
if (root_array_available_ && options().isolate_independent_code) {
if (IsAddressableThroughRootRegister(isolate(), reference)) {
intptr_t offset =
RootRegisterOffsetForExternalReference(isolate(), reference);
CHECK(is_int32(offset));
return MemOperand(kRootRegister, static_cast<int32_t>(offset));
} else {
DCHECK(scratch.is_valid());
Ld(scratch, MemOperand(kRootRegister,
RootRegisterOffsetForExternalReferenceTableEntry(
isolate(), reference)));
return MemOperand(scratch, 0);
}
}
}
DCHECK(scratch.is_valid());
li(scratch, reference);
return MemOperand(scratch, 0);
}
void MacroAssembler::Jump(Register target, Condition cond, Register rs,
const Operand& rt, BranchDelaySlot bd) {
BlockTrampolinePoolScope block_trampoline_pool(this);
if (kArchVariant == kMips64r6 && bd == PROTECT) {
if (cond == cc_always) {
jic(target, 0);
} else {
BRANCH_ARGS_CHECK(cond, rs, rt);
Branch(2, NegateCondition(cond), rs, rt);
jic(target, 0);
}
} else {
if (cond == cc_always) {
jr(target);
} else {
BRANCH_ARGS_CHECK(cond, rs, rt);
Branch(2, NegateCondition(cond), rs, rt);
jr(target);
}
if (bd == PROTECT) nop();
}
}
void MacroAssembler::Jump(intptr_t target, RelocInfo::Mode rmode,
Condition cond, Register rs, const Operand& rt,
BranchDelaySlot bd) {
Label skip;
if (cond != cc_always) {
Branch(USE_DELAY_SLOT, &skip, NegateCondition(cond), rs, rt);
}
{
BlockTrampolinePoolScope block_trampoline_pool(this);
li(t9, Operand(target, rmode));
Jump(t9, al, zero_reg, Operand(zero_reg), bd);
bind(&skip);
}
}
void MacroAssembler::Jump(Address target, RelocInfo::Mode rmode, Condition cond,
Register rs, const Operand& rt, BranchDelaySlot bd) {
DCHECK(!RelocInfo::IsCodeTarget(rmode));
Jump(static_cast<intptr_t>(target), rmode, cond, rs, rt, bd);
}
void MacroAssembler::Jump(Handle<Code> code, RelocInfo::Mode rmode,
Condition cond, Register rs, const Operand& rt,
BranchDelaySlot bd) {
DCHECK(RelocInfo::IsCodeTarget(rmode));
BlockTrampolinePoolScope block_trampoline_pool(this);
Label skip;
if (cond != cc_always) {
BranchShort(&skip, NegateCondition(cond), rs, rt);
}
Builtin builtin = Builtin::kNoBuiltinId;
if (isolate()->builtins()->IsBuiltinHandle(code, &builtin)) {
TailCallBuiltin(builtin);
bind(&skip);
return;
}
Jump(static_cast<intptr_t>(code.address()), rmode, cc_always, rs, rt, bd);
bind(&skip);
}
void MacroAssembler::Jump(const ExternalReference& reference) {
li(t9, reference);
Jump(t9);
}
void MacroAssembler::Call(Register target, Condition cond, Register rs,
const Operand& rt, BranchDelaySlot bd) {
BlockTrampolinePoolScope block_trampoline_pool(this);
if (kArchVariant == kMips64r6 && bd == PROTECT) {
if (cond == cc_always) {
jialc(target, 0);
} else {
BRANCH_ARGS_CHECK(cond, rs, rt);
Branch(2, NegateCondition(cond), rs, rt);
jialc(target, 0);
}
} else {
if (cond == cc_always) {
jalr(target);
} else {
BRANCH_ARGS_CHECK(cond, rs, rt);
Branch(2, NegateCondition(cond), rs, rt);
jalr(target);
}
if (bd == PROTECT) nop();
}
set_pc_for_safepoint();
}
void MacroAssembler::JumpIfIsInRange(Register value, unsigned lower_limit,
unsigned higher_limit,
Label* on_in_range) {
ASM_CODE_COMMENT(this);
if (lower_limit != 0) {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
Dsubu(scratch, value, Operand(lower_limit));
Branch(on_in_range, ls, scratch, Operand(higher_limit - lower_limit));
} else {
Branch(on_in_range, ls, value, Operand(higher_limit - lower_limit));
}
}
void MacroAssembler::Call(Address target, RelocInfo::Mode rmode, Condition cond,
Register rs, const Operand& rt, BranchDelaySlot bd) {
BlockTrampolinePoolScope block_trampoline_pool(this);
li(t9, Operand(static_cast<int64_t>(target), rmode), ADDRESS_LOAD);
Call(t9, cond, rs, rt, bd);
}
void MacroAssembler::Call(Handle<Code> code, RelocInfo::Mode rmode,
Condition cond, Register rs, const Operand& rt,
BranchDelaySlot bd) {
BlockTrampolinePoolScope block_trampoline_pool(this);
Builtin builtin = Builtin::kNoBuiltinId;
if (isolate()->builtins()->IsBuiltinHandle(code, &builtin)) {
CallBuiltin(builtin);
return;
}
DCHECK(RelocInfo::IsCodeTarget(rmode));
Call(code.address(), rmode, cond, rs, rt, bd);
}
void MacroAssembler::LoadEntryFromBuiltinIndex(Register builtin_index,
Register target) {
ASM_CODE_COMMENT(this);
static_assert(kSystemPointerSize == 8);
static_assert(kSmiTagSize == 1);
static_assert(kSmiTag == 0);
SmiUntag(target, builtin_index);
Dlsa(target, kRootRegister, target, kSystemPointerSizeLog2);
Ld(target, MemOperand(target, IsolateData::builtin_entry_table_offset()));
}
void MacroAssembler::LoadEntryFromBuiltin(Builtin builtin,
Register destination) {
Ld(destination, EntryFromBuiltinAsOperand(builtin));
}
MemOperand MacroAssembler::EntryFromBuiltinAsOperand(Builtin builtin) {
DCHECK(root_array_available());
return MemOperand(kRootRegister,
IsolateData::BuiltinEntrySlotOffset(builtin));
}
void MacroAssembler::CallBuiltinByIndex(Register builtin_index,
Register target) {
ASM_CODE_COMMENT(this);
LoadEntryFromBuiltinIndex(builtin_index, target);
Call(target);
}
void MacroAssembler::CallBuiltin(Builtin builtin) {
ASM_CODE_COMMENT_STRING(this, CommentForOffHeapTrampoline("call", builtin));
Register temp = t9;
switch (options().builtin_call_jump_mode) {
case BuiltinCallJumpMode::kAbsolute: {
li(temp, Operand(BuiltinEntry(builtin), RelocInfo::OFF_HEAP_TARGET));
Call(temp);
break;
}
case BuiltinCallJumpMode::kIndirect: {
LoadEntryFromBuiltin(builtin, temp);
Call(temp);
break;
}
case BuiltinCallJumpMode::kForMksnapshot: {
Handle<Code> code = isolate()->builtins()->code_handle(builtin);
IndirectLoadConstant(temp, code);
CallCodeObject(temp, kJSEntrypointTag);
break;
}
case BuiltinCallJumpMode::kPCRelative:
UNREACHABLE();
}
}
void MacroAssembler::TailCallBuiltin(Builtin builtin, Condition cond,
Register type, Operand range) {
if (cond != cc_always) {
Label done;
Branch(&done, NegateCondition(cond), type, range);
TailCallBuiltin(builtin);
bind(&done);
} else {
TailCallBuiltin(builtin);
}
}
void MacroAssembler::TailCallBuiltin(Builtin builtin) {
ASM_CODE_COMMENT_STRING(this,
CommentForOffHeapTrampoline("tail call", builtin));
Register temp = t9;
switch (options().builtin_call_jump_mode) {
case BuiltinCallJumpMode::kAbsolute: {
li(temp, Operand(BuiltinEntry(builtin), RelocInfo::OFF_HEAP_TARGET));
Jump(temp);
break;
}
case BuiltinCallJumpMode::kIndirect: {
LoadEntryFromBuiltin(builtin, temp);
Jump(temp);
break;
}
case BuiltinCallJumpMode::kForMksnapshot: {
Handle<Code> code = isolate()->builtins()->code_handle(builtin);
IndirectLoadConstant(temp, code);
JumpCodeObject(temp, kJSEntrypointTag);
break;
}
case BuiltinCallJumpMode::kPCRelative:
UNREACHABLE();
}
}
void MacroAssembler::PatchAndJump(Address target) {
if (kArchVariant != kMips64r6) {
ASM_CODE_COMMENT(this);
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
mov(scratch, ra);
bal(1);
nop();
ld(t9, MemOperand(ra, kInstrSize * 3));
jr(t9);
mov(ra, scratch);
DCHECK_EQ(reinterpret_cast<uint64_t>(pc_) % 8, 0);
*reinterpret_cast<uint64_t*>(pc_) = target;
pc_ += sizeof(uint64_t);
} else {
UNIMPLEMENTED();
}
}
void MacroAssembler::StoreReturnAddressAndCall(Register target) {
ASM_CODE_COMMENT(this);
Assembler::BlockTrampolinePoolScope block_trampoline_pool(this);
static constexpr int kNumInstructionsToJump = 4;
Label find_ra;
if (kArchVariant >= kMips64r6) {
addiupc(ra, kNumInstructionsToJump + 1);
} else {
nal();
Daddu(ra, ra, kNumInstructionsToJump * kInstrSize);
}
bind(&find_ra);
Sd(ra, MemOperand(sp));
mov(t9, target);
jalr(t9);
daddiu(sp, sp, -kCArgsSlotsSize);
DCHECK_EQ(kNumInstructionsToJump, InstructionsGeneratedSince(&find_ra));
}
void MacroAssembler::Ret(Condition cond, Register rs, const Operand& rt,
BranchDelaySlot bd) {
Jump(ra, cond, rs, rt, bd);
}
void MacroAssembler::BranchLong(Label* L, BranchDelaySlot bdslot) {
if (kArchVariant == kMips64r6 && bdslot == PROTECT &&
(!L->is_bound() || is_near_r6(L))) {
BranchShortHelperR6(0, L);
} else {
BlockTrampolinePoolScope block_trampoline_pool(this);
int64_t imm64 = branch_long_offset(L);
DCHECK(is_int32(imm64));
int32_t imm32 = static_cast<int32_t>(imm64);
or_(t8, ra, zero_reg);
nal();
lui(t9, (imm32 & kHiMaskOf32) >> kLuiShift);
ori(t9, t9, (imm32 & kImm16Mask));
daddu(t9, ra, t9);
if (bdslot == USE_DELAY_SLOT) {
or_(ra, t8, zero_reg);
}
jr(t9);
if (bdslot == PROTECT) or_(ra, t8, zero_reg);
}
}
void MacroAssembler::BranchLong(int32_t offset, BranchDelaySlot bdslot) {
if (kArchVariant == kMips64r6 && bdslot == PROTECT && (is_int26(offset))) {
BranchShortHelperR6(offset, nullptr);
} else {
BlockTrampolinePoolScope block_trampoline_pool(this);
or_(t8, ra, zero_reg);
nal();
lui(t9, (offset & kHiMaskOf32) >> kLuiShift);
ori(t9, t9, (offset & kImm16Mask));
daddu(t9, ra, t9);
if (bdslot == USE_DELAY_SLOT) {
or_(ra, t8, zero_reg);
}
jr(t9);
if (bdslot == PROTECT) or_(ra, t8, zero_reg);
}
}
void MacroAssembler::BranchAndLinkLong(Label* L, BranchDelaySlot bdslot) {
if (kArchVariant == kMips64r6 && bdslot == PROTECT &&
(!L->is_bound() || is_near_r6(L))) {
BranchAndLinkShortHelperR6(0, L);
} else {
BlockTrampolinePoolScope block_trampoline_pool(this);
int64_t imm64 = branch_long_offset(L);
DCHECK(is_int32(imm64));
int32_t imm32 = static_cast<int32_t>(imm64);
lui(t8, (imm32 & kHiMaskOf32) >> kLuiShift);
nal();
ori(t8, t8, (imm32 & kImm16Mask));
daddu(t8, ra, t8);
jalr(t8);
if (bdslot == PROTECT) nop();
}
}
void MacroAssembler::DropArguments(Register count) {
Dlsa(sp, sp, count, kPointerSizeLog2);
}
void MacroAssembler::DropArgumentsAndPushNewReceiver(Register argc,
Register receiver) {
DCHECK(!AreAliased(argc, receiver));
DropArguments(argc);
push(receiver);
}
void MacroAssembler::DropAndRet(int drop) {
int32_t drop_size = drop * kSystemPointerSize;
DCHECK(is_int31(drop_size));
if (is_int16(drop_size)) {
Ret(USE_DELAY_SLOT);
daddiu(sp, sp, drop_size);
} else {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
li(scratch, drop_size);
Ret(USE_DELAY_SLOT);
daddu(sp, sp, scratch);
}
}
void MacroAssembler::DropAndRet(int drop, Condition cond, Register r1,
const Operand& r2) {
Label skip;
if (cond != cc_always) {
Branch(&skip, NegateCondition(cond), r1, r2);
}
Drop(drop);
Ret();
if (cond != cc_always) {
bind(&skip);
}
}
void MacroAssembler::Drop(int count, Condition cond, Register reg,
const Operand& op) {
if (count <= 0) {
return;
}
Label skip;
if (cond != al) {
Branch(&skip, NegateCondition(cond), reg, op);
}
Daddu(sp, sp, Operand(count * kPointerSize));
if (cond != al) {
bind(&skip);
}
}
void MacroAssembler::Swap(Register reg1, Register reg2, Register scratch) {
if (scratch == no_reg) {
Xor(reg1, reg1, Operand(reg2));
Xor(reg2, reg2, Operand(reg1));
Xor(reg1, reg1, Operand(reg2));
} else {
mov(scratch, reg1);
mov(reg1, reg2);
mov(reg2, scratch);
}
}
void MacroAssembler::Call(Label* target) { BranchAndLink(target); }
void MacroAssembler::LoadAddress(Register dst, Label* target) {
uint64_t address = jump_address(target);
li(dst, address);
}
void MacroAssembler::LoadAddressPCRelative(Register dst, Label* target) {
ASM_CODE_COMMENT(this);
nal();
int32_t offset = branch_offset_helper(target, OffsetSize::kOffset16);
DCHECK(is_int16(offset));
mov(t8, ra);
daddiu(dst, ra, offset);
daddiu(dst, dst, -kInstrSize);
mov(ra, t8);
}
void MacroAssembler::Push(Tagged<Smi> smi) {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
li(scratch, Operand(smi));
push(scratch);
}
void MacroAssembler::Push(Handle<HeapObject> handle) {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
li(scratch, Operand(handle));
push(scratch);
}
void MacroAssembler::PushArray(Register array, Register size, Register scratch,
Register scratch2, PushArrayOrder order) {
DCHECK(!AreAliased(array, size, scratch, scratch2));
Label loop, entry;
if (order == PushArrayOrder::kReverse) {
mov(scratch, zero_reg);
jmp(&entry);
bind(&loop);
Dlsa(scratch2, array, scratch, kPointerSizeLog2);
Ld(scratch2, MemOperand(scratch2));
push(scratch2);
Daddu(scratch, scratch, Operand(1));
bind(&entry);
Branch(&loop, less, scratch, Operand(size));
} else {
mov(scratch, size);
jmp(&entry);
bind(&loop);
Dlsa(scratch2, array, scratch, kPointerSizeLog2);
Ld(scratch2, MemOperand(scratch2));
push(scratch2);
bind(&entry);
Daddu(scratch, scratch, Operand(-1));
Branch(&loop, greater_equal, scratch, Operand(zero_reg));
}
}
void MacroAssembler::PushStackHandler() {
static_assert(StackHandlerConstants::kSize == 2 * kPointerSize);
static_assert(StackHandlerConstants::kNextOffset == 0 * kPointerSize);
Push(Smi::zero());
li(t2,
ExternalReference::Create(IsolateAddressId::kHandlerAddress, isolate()));
Ld(t1, MemOperand(t2));
push(t1);
Sd(sp, MemOperand(t2));
}
void MacroAssembler::PopStackHandler() {
static_assert(StackHandlerConstants::kNextOffset == 0);
pop(a1);
Daddu(sp, sp,
Operand(
static_cast<int64_t>(StackHandlerConstants::kSize - kPointerSize)));
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
li(scratch,
ExternalReference::Create(IsolateAddressId::kHandlerAddress, isolate()));
Sd(a1, MemOperand(scratch));
}
void MacroAssembler::FPUCanonicalizeNaN(const DoubleRegister dst,
const DoubleRegister src) {
sub_d(dst, src, kDoubleRegZero);
}
void MacroAssembler::MovFromFloatResult(const DoubleRegister dst) {
if (IsMipsSoftFloatABI) {
if (kArchEndian == kLittle) {
Move(dst, v0, v1);
} else {
Move(dst, v1, v0);
}
} else {
Move(dst, f0);
}
}
void MacroAssembler::MovFromFloatParameter(const DoubleRegister dst) {
if (IsMipsSoftFloatABI) {
if (kArchEndian == kLittle) {
Move(dst, a0, a1);
} else {
Move(dst, a1, a0);
}
} else {
Move(dst, f12);
}
}
void MacroAssembler::MovToFloatParameter(DoubleRegister src) {
if (!IsMipsSoftFloatABI) {
Move(f12, src);
} else {
if (kArchEndian == kLittle) {
Move(a0, a1, src);
} else {
Move(a1, a0, src);
}
}
}
void MacroAssembler::MovToFloatResult(DoubleRegister src) {
if (!IsMipsSoftFloatABI) {
Move(f0, src);
} else {
if (kArchEndian == kLittle) {
Move(v0, v1, src);
} else {
Move(v1, v0, src);
}
}
}
void MacroAssembler::MovToFloatParameters(DoubleRegister src1,
DoubleRegister src2) {
if (!IsMipsSoftFloatABI) {
const DoubleRegister fparg2 = f13;
if (src2 == f12) {
DCHECK(src1 != fparg2);
Move(fparg2, src2);
Move(f12, src1);
} else {
Move(f12, src1);
Move(fparg2, src2);
}
} else {
if (kArchEndian == kLittle) {
Move(a0, a1, src1);
Move(a2, a3, src2);
} else {
Move(a1, a0, src1);
Move(a3, a2, src2);
}
}
}
void MacroAssembler::LoadStackLimit(Register destination, StackLimitKind kind) {
ASM_CODE_COMMENT(this);
DCHECK(root_array_available());
intptr_t offset = kind == StackLimitKind::kRealStackLimit
? IsolateData::real_jslimit_offset()
: IsolateData::jslimit_offset();
Ld(destination, MemOperand(kRootRegister, static_cast<int32_t>(offset)));
}
void MacroAssembler::StackOverflowCheck(Register num_args, Register scratch1,
Register scratch2,
Label* stack_overflow) {
ASM_CODE_COMMENT(this);
LoadStackLimit(scratch1, StackLimitKind::kRealStackLimit);
dsubu(scratch1, sp, scratch1);
dsll(scratch2, num_args, kPointerSizeLog2);
Branch(stack_overflow, le, scratch1, Operand(scratch2));
}
void MacroAssembler::LoadEntrypointFromJSDispatchTable(Register destination,
Register dispatch_handle,
Register scratch) {
DCHECK(!AreAliased(destination, dispatch_handle, scratch));
ASM_CODE_COMMENT(this);
Register index = destination;
CHECK(root_array_available());
Ld(scratch, ExternalReferenceAsOperand(IsolateFieldId::kJSDispatchTable));
dsrl(index, dispatch_handle, kJSDispatchHandleShift);
dsll(destination, index, kJSDispatchTableEntrySizeLog2);
Daddu(scratch, scratch, destination);
Ld(destination, MemOperand(scratch, JSDispatchEntry::kEntrypointOffset));
}
void MacroAssembler::LoadParameterCountFromJSDispatchTable(
Register destination, Register dispatch_handle, Register scratch) {
DCHECK(!AreAliased(destination, dispatch_handle, scratch));
ASM_CODE_COMMENT(this);
Register index = destination;
Ld(scratch, ExternalReferenceAsOperand(IsolateFieldId::kJSDispatchTable));
dsrl(index, dispatch_handle, kJSDispatchHandleShift);
dsll(destination, index, kJSDispatchTableEntrySizeLog2);
Daddu(scratch, scratch, destination);
static_assert(JSDispatchEntry::kParameterCountMask == 0xffff);
Lhu(destination, MemOperand(scratch, JSDispatchEntry::kCodeObjectOffset));
}
void MacroAssembler::LoadEntrypointAndParameterCountFromJSDispatchTable(
Register entrypoint, Register parameter_count, Register dispatch_handle,
Register scratch) {
DCHECK(!AreAliased(entrypoint, parameter_count, dispatch_handle, scratch));
ASM_CODE_COMMENT(this);
Register index = parameter_count;
Ld(scratch, ExternalReferenceAsOperand(IsolateFieldId::kJSDispatchTable));
dsrl(index, dispatch_handle, kJSDispatchHandleShift);
dsll(parameter_count, index, kJSDispatchTableEntrySizeLog2);
Daddu(scratch, scratch, parameter_count);
Ld(entrypoint, MemOperand(scratch, JSDispatchEntry::kEntrypointOffset));
static_assert(JSDispatchEntry::kParameterCountMask == 0xffff);
Lhu(parameter_count, MemOperand(scratch, JSDispatchEntry::kCodeObjectOffset));
}
void MacroAssembler::TestCodeIsMarkedForDeoptimizationAndJump(
Register code_data_container, Register scratch, Condition cond,
Label* target) {
Lwu(scratch, FieldMemOperand(code_data_container, Code::kFlagsOffset));
And(scratch, scratch, Operand(1 << Code::kMarkedForDeoptimizationBit));
Branch(target, cond, scratch, Operand(zero_reg));
}
Operand MacroAssembler::ClearedValue() const {
return Operand(static_cast<int32_t>(i::kClearedWeakValue.ptr()));
}
void MacroAssembler::InvokePrologue(Register expected_parameter_count,
Register actual_parameter_count,
InvokeType type) {
ASM_CODE_COMMENT(this);
Label regular_invoke;
DCHECK_EQ(actual_parameter_count, a0);
DCHECK_EQ(expected_parameter_count, a2);
Dsubu(expected_parameter_count, expected_parameter_count,
actual_parameter_count);
Branch(®ular_invoke, le, expected_parameter_count, Operand(zero_reg));
Label stack_overflow;
StackOverflowCheck(expected_parameter_count, t0, t1, &stack_overflow);
{
Label copy;
Register src = a6, dest = a7;
mov(src, sp);
dsll(t0, expected_parameter_count, kSystemPointerSizeLog2);
Dsubu(sp, sp, Operand(t0));
mov(dest, sp);
mov(t0, actual_parameter_count);
bind(©);
Ld(t1, MemOperand(src, 0));
Sd(t1, MemOperand(dest, 0));
Dsubu(t0, t0, Operand(1));
Daddu(src, src, Operand(kSystemPointerSize));
Daddu(dest, dest, Operand(kSystemPointerSize));
Branch(©, gt, t0, Operand(zero_reg));
}
LoadRoot(t0, RootIndex::kUndefinedValue);
{
Label loop;
bind(&loop);
Sd(t0, MemOperand(a7, 0));
Dsubu(expected_parameter_count, expected_parameter_count, Operand(1));
Daddu(a7, a7, Operand(kSystemPointerSize));
Branch(&loop, gt, expected_parameter_count, Operand(zero_reg));
}
b(®ular_invoke);
nop();
bind(&stack_overflow);
{
FrameScope frame(
this, has_frame() ? StackFrame::NO_FRAME_TYPE : StackFrame::INTERNAL);
CallRuntime(Runtime::kThrowStackOverflow);
break_(0xCC);
}
bind(®ular_invoke);
}
void MacroAssembler::CheckDebugHook(
Register fun, Register new_target,
Register expected_parameter_count_or_dispatch_handle,
Register actual_parameter_count) {
DCHECK(!AreAliased(t0, fun, new_target,
expected_parameter_count_or_dispatch_handle,
actual_parameter_count));
Label skip_hook;
li(t0, ExternalReference::debug_hook_on_function_call_address(isolate()));
Lb(t0, MemOperand(t0));
Branch(&skip_hook, eq, t0, Operand(zero_reg));
{
LoadReceiver(t0);
FrameScope frame(
this, has_frame() ? StackFrame::NO_FRAME_TYPE : StackFrame::INTERNAL);
SmiTag(expected_parameter_count_or_dispatch_handle);
SmiTag(actual_parameter_count);
Push(expected_parameter_count_or_dispatch_handle, actual_parameter_count);
if (new_target.is_valid()) {
Push(new_target);
}
Push(fun, fun, t0);
CallRuntime(Runtime::kDebugOnFunctionCall);
Pop(fun);
if (new_target.is_valid()) {
Pop(new_target);
}
Pop(expected_parameter_count_or_dispatch_handle, actual_parameter_count);
SmiUntag(actual_parameter_count);
SmiUntag(expected_parameter_count_or_dispatch_handle);
}
bind(&skip_hook);
}
void MacroAssembler::InvokeFunction(
Register function, Register actual_parameter_count, InvokeType type,
ArgumentAdaptionMode argument_adaption_mode) {
ASM_CODE_COMMENT(this);
DCHECK(type == InvokeType::kJump || has_frame());
DCHECK_EQ(function, a1);
Ld(cp, FieldMemOperand(function, JSFunction::kContextOffset));
InvokeFunctionCode(function, no_reg, actual_parameter_count, type,
argument_adaption_mode);
}
void MacroAssembler::InvokeFunctionWithNewTarget(
Register function, Register new_target, Register actual_parameter_count,
InvokeType type) {
ASM_CODE_COMMENT(this);
DCHECK(type == InvokeType::kJump || has_frame());
DCHECK_EQ(function, a1);
Ld(cp, FieldMemOperand(function, JSFunction::kContextOffset));
InvokeFunctionCode(function, new_target, actual_parameter_count, type);
}
void MacroAssembler::InvokeFunctionCode(
Register function, Register new_target, Register actual_parameter_count,
InvokeType type, ArgumentAdaptionMode argument_adaption_mode) {
ASM_CODE_COMMENT(this);
DCHECK_IMPLIES(type == InvokeType::kCall, has_frame());
DCHECK_EQ(function, a1);
DCHECK_IMPLIES(new_target.is_valid(), new_target == a3);
Register dispatch_handle = kJavaScriptCallDispatchHandleRegister;
Lw(dispatch_handle,
FieldMemOperand(function, JSFunction::kDispatchHandleOffset));
Label debug_hook, continue_after_hook;
{
li(t0, ExternalReference::debug_hook_on_function_call_address(isolate()));
Lb(t0, MemOperand(t0, 0));
BranchShort(&debug_hook, ne, t0, Operand(zero_reg));
}
bind(&continue_after_hook);
if (!new_target.is_valid()) {
LoadRoot(a3, RootIndex::kUndefinedValue);
}
Register scratch = s1;
if (argument_adaption_mode == ArgumentAdaptionMode::kAdapt) {
Register expected_parameter_count = a2;
LoadParameterCountFromJSDispatchTable(expected_parameter_count,
dispatch_handle, scratch);
InvokePrologue(expected_parameter_count, actual_parameter_count, type);
}
LoadEntrypointFromJSDispatchTable(kJavaScriptCallCodeStartRegister,
dispatch_handle, scratch);
switch (type) {
case InvokeType::kCall:
Call(kJavaScriptCallCodeStartRegister);
break;
case InvokeType::kJump:
Jump(kJavaScriptCallCodeStartRegister);
break;
}
Label done;
Branch(&done);
bind(&debug_hook);
CheckDebugHook(function, new_target, dispatch_handle, actual_parameter_count);
Branch(&continue_after_hook);
bind(&done);
}
void MacroAssembler::GetObjectType(Register object, Register map,
Register type_reg) {
LoadMap(map, object);
Lhu(type_reg, FieldMemOperand(map, Map::kInstanceTypeOffset));
}
void MacroAssembler::GetInstanceTypeRange(Register map, Register type_reg,
InstanceType lower_limit,
Register range) {
Lhu(type_reg, FieldMemOperand(map, Map::kInstanceTypeOffset));
Dsubu(range, type_reg, Operand(lower_limit));
}
void MacroAssembler::DaddOverflow(Register dst, Register left,
const Operand& right, Register overflow) {
ASM_CODE_COMMENT(this);
BlockTrampolinePoolScope block_trampoline_pool(this);
Register right_reg = no_reg;
Register scratch = t8;
if (!right.is_reg()) {
li(at, Operand(right));
right_reg = at;
} else {
right_reg = right.rm();
}
DCHECK(left != scratch && right_reg != scratch && dst != scratch &&
overflow != scratch);
DCHECK(overflow != left && overflow != right_reg);
if (dst == left || dst == right_reg) {
daddu(scratch, left, right_reg);
xor_(overflow, scratch, left);
xor_(at, scratch, right_reg);
and_(overflow, overflow, at);
mov(dst, scratch);
} else {
daddu(dst, left, right_reg);
xor_(overflow, dst, left);
xor_(at, dst, right_reg);
and_(overflow, overflow, at);
}
}
void MacroAssembler::DsubOverflow(Register dst, Register left,
const Operand& right, Register overflow) {
ASM_CODE_COMMENT(this);
BlockTrampolinePoolScope block_trampoline_pool(this);
Register right_reg = no_reg;
Register scratch = t8;
if (!right.is_reg()) {
li(at, Operand(right));
right_reg = at;
} else {
right_reg = right.rm();
}
DCHECK(left != scratch && right_reg != scratch && dst != scratch &&
overflow != scratch);
DCHECK(overflow != left && overflow != right_reg);
if (dst == left || dst == right_reg) {
dsubu(scratch, left, right_reg);
xor_(overflow, left, scratch);
xor_(at, left, right_reg);
and_(overflow, overflow, at);
mov(dst, scratch);
} else {
dsubu(dst, left, right_reg);
xor_(overflow, left, dst);
xor_(at, left, right_reg);
and_(overflow, overflow, at);
}
}
void MacroAssembler::MulOverflow(Register dst, Register left,
const Operand& right, Register overflow) {
ASM_CODE_COMMENT(this);
BlockTrampolinePoolScope block_trampoline_pool(this);
Register right_reg = no_reg;
Register scratch = t8;
if (!right.is_reg()) {
li(at, Operand(right));
right_reg = at;
} else {
right_reg = right.rm();
}
DCHECK(left != scratch && right_reg != scratch && dst != scratch &&
overflow != scratch);
DCHECK(overflow != left && overflow != right_reg);
if (dst == left || dst == right_reg) {
Mul(scratch, left, right_reg);
Mulh(overflow, left, right_reg);
mov(dst, scratch);
} else {
Mul(dst, left, right_reg);
Mulh(overflow, left, right_reg);
}
dsra32(scratch, dst, 0);
xor_(overflow, overflow, scratch);
}
void MacroAssembler::DMulOverflow(Register dst, Register left,
const Operand& right, Register overflow) {
ASM_CODE_COMMENT(this);
BlockTrampolinePoolScope block_trampoline_pool(this);
Register right_reg = no_reg;
Register scratch = t8;
if (!right.is_reg()) {
li(at, Operand(right));
right_reg = at;
} else {
right_reg = right.rm();
}
DCHECK(left != scratch && right_reg != scratch && dst != scratch &&
overflow != scratch);
DCHECK(overflow != left && overflow != right_reg);
if (dst == left || dst == right_reg) {
Dmul(scratch, left, right_reg);
Dmulh(overflow, left, right_reg);
mov(dst, scratch);
} else {
Dmul(dst, left, right_reg);
Dmulh(overflow, left, right_reg);
}
dsra32(scratch, dst, 31);
xor_(overflow, overflow, scratch);
}
void MacroAssembler::CallRuntime(const Runtime::Function* f,
int num_arguments) {
ASM_CODE_COMMENT(this);
CHECK(f->nargs < 0 || f->nargs == num_arguments);
PrepareCEntryArgs(num_arguments);
PrepareCEntryFunction(ExternalReference::Create(f));
bool switch_to_central_stack = options().is_wasm;
CallBuiltin(Builtins::RuntimeCEntry(f->result_size, switch_to_central_stack));
}
void MacroAssembler::TailCallRuntime(Runtime::FunctionId fid) {
ASM_CODE_COMMENT(this);
const Runtime::Function* function = Runtime::FunctionForId(fid);
DCHECK_EQ(1, function->result_size);
if (function->nargs >= 0) {
PrepareCEntryArgs(function->nargs);
}
JumpToExternalReference(ExternalReference::Create(fid));
}
void MacroAssembler::JumpToExternalReference(const ExternalReference& builtin,
bool builtin_exit_frame) {
PrepareCEntryFunction(builtin);
TailCallBuiltin(Builtins::CEntry(1, ArgvMode::kStack, builtin_exit_frame));
}
void MacroAssembler::LoadWeakValue(Register out, Register in,
Label* target_if_cleared) {
Branch(target_if_cleared, eq, in, Operand(kClearedWeakHeapObjectLower32));
And(out, in, Operand(~kWeakHeapObjectMask));
}
void MacroAssembler::EmitIncrementCounter(StatsCounter* counter, int value,
Register scratch1,
Register scratch2) {
DCHECK_GT(value, 0);
if (v8_flags.native_code_counters && counter->Enabled()) {
ASM_CODE_COMMENT(this);
li(scratch2, ExternalReference::Create(counter));
Lw(scratch1, MemOperand(scratch2));
Addu(scratch1, scratch1, Operand(value));
Sw(scratch1, MemOperand(scratch2));
}
}
void MacroAssembler::EmitDecrementCounter(StatsCounter* counter, int value,
Register scratch1,
Register scratch2) {
DCHECK_GT(value, 0);
if (v8_flags.native_code_counters && counter->Enabled()) {
ASM_CODE_COMMENT(this);
li(scratch2, ExternalReference::Create(counter));
Lw(scratch1, MemOperand(scratch2));
Subu(scratch1, scratch1, Operand(value));
Sw(scratch1, MemOperand(scratch2));
}
}
void MacroAssembler::Trap() { stop(); }
void MacroAssembler::DebugBreak() { stop(); }
void MacroAssembler::Check(Condition cc, AbortReason reason, Register rs,
Operand rt) {
Label L;
Branch(&L, cc, rs, rt);
Abort(reason);
bind(&L);
}
void MacroAssembler::SbxCheck(Condition cc, AbortReason reason, Register rj,
Operand rk) {
Check(cc, reason, rj, rk);
}
void MacroAssembler::Abort(AbortReason reason) {
ASM_CODE_COMMENT(this);
if (v8_flags.code_comments) {
RecordComment("Abort message:", SourceLocation{});
RecordComment(GetAbortReason(reason), SourceLocation{});
}
if (!v8_flags.debug_code || v8_flags.trap_on_abort) {
stop();
return;
}
if (should_abort_hard()) {
FrameScope assume_frame(this, StackFrame::NO_FRAME_TYPE);
PrepareCallCFunction(1, a0);
li(a0, Operand(static_cast<int>(reason)));
li(a1, ExternalReference::abort_with_reason());
Call(a1);
return;
}
Label abort_start;
bind(&abort_start);
Move(a0, Smi::FromInt(static_cast<int>(reason)));
{
FrameScope scope(this, StackFrame::NO_FRAME_TYPE);
if (root_array_available()) {
LoadEntryFromBuiltin(Builtin::kAbort, t9);
Call(t9);
} else {
CallBuiltin(Builtin::kAbort);
}
}
if (is_trampoline_pool_blocked()) {
static const int kExpectedAbortInstructions = 10;
int abort_instructions = InstructionsGeneratedSince(&abort_start);
DCHECK_LE(abort_instructions, kExpectedAbortInstructions);
while (abort_instructions++ < kExpectedAbortInstructions) {
nop();
}
}
}
void MacroAssembler::LoadMap(Register destination, Register object) {
Ld(destination, FieldMemOperand(object, HeapObject::kMapOffset));
}
void MacroAssembler::LoadFeedbackVector(Register dst, Register closure,
Register scratch, Label* fbv_undef) {
Label done;
Ld(dst, FieldMemOperand(closure, JSFunction::kFeedbackCellOffset));
Ld(dst, FieldMemOperand(dst, FeedbackCell::kValueOffset));
Ld(scratch, FieldMemOperand(dst, HeapObject::kMapOffset));
Lhu(scratch, FieldMemOperand(scratch, Map::kInstanceTypeOffset));
Branch(&done, eq, scratch, Operand(FEEDBACK_VECTOR_TYPE));
LoadRoot(dst, RootIndex::kUndefinedValue);
Branch(fbv_undef);
bind(&done);
}
void MacroAssembler::LoadNativeContextSlot(Register dst, int index) {
LoadMap(dst, cp);
Ld(dst,
FieldMemOperand(dst, Map::kConstructorOrBackPointerOrNativeContextOffset));
Ld(dst, MemOperand(dst, Context::SlotOffset(index)));
}
void MacroAssembler::StubPrologue(StackFrame::Type type) {
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
li(scratch, Operand(StackFrame::TypeToMarker(type)));
PushCommonFrame(scratch);
}
void MacroAssembler::Prologue() { PushStandardFrame(a1); }
void MacroAssembler::EnterFrame(StackFrame::Type type) {
ASM_CODE_COMMENT(this);
BlockTrampolinePoolScope block_trampoline_pool(this);
Push(ra, fp);
Move(fp, sp);
if (!StackFrame::IsJavaScript(type)) {
li(kScratchReg, Operand(StackFrame::TypeToMarker(type)));
Push(kScratchReg);
}
#if V8_ENABLE_WEBASSEMBLY
if (type == StackFrame::WASM || type == StackFrame::WASM_LIFTOFF_SETUP) {
Push(kWasmImplicitArgRegister);
}
#endif
}
void MacroAssembler::LeaveFrame(StackFrame::Type type) {
ASM_CODE_COMMENT(this);
daddiu(sp, fp, 2 * kPointerSize);
Ld(ra, MemOperand(fp, 1 * kPointerSize));
Ld(fp, MemOperand(fp, 0 * kPointerSize));
}
void MacroAssembler::EnterExitFrame(Register scratch, int stack_space,
StackFrame::Type frame_type) {
ASM_CODE_COMMENT(this);
DCHECK(frame_type == StackFrame::EXIT ||
frame_type == StackFrame::BUILTIN_EXIT ||
frame_type == StackFrame::API_ACCESSOR_EXIT ||
frame_type == StackFrame::API_CALLBACK_EXIT);
using ER = ExternalReference;
static_assert(2 * kPointerSize == ExitFrameConstants::kCallerSPDisplacement);
static_assert(1 * kPointerSize == ExitFrameConstants::kCallerPCOffset);
static_assert(0 * kPointerSize == ExitFrameConstants::kCallerFPOffset);
daddiu(sp, sp, -2 * kPointerSize - ExitFrameConstants::kFixedFrameSizeFromFp);
Sd(ra, MemOperand(sp, 3 * kPointerSize));
Sd(fp, MemOperand(sp, 2 * kPointerSize));
li(scratch, Operand(StackFrame::TypeToMarker(frame_type)));
Sd(scratch, MemOperand(sp, 1 * kPointerSize));
daddiu(fp, sp, ExitFrameConstants::kFixedFrameSizeFromFp);
if (v8_flags.debug_code) {
Sd(zero_reg, MemOperand(fp, ExitFrameConstants::kSPOffset));
}
ER c_entry_fp_address =
ER::Create(IsolateAddressId::kCEntryFPAddress, isolate());
Sd(fp, ExternalReferenceAsOperand(c_entry_fp_address, no_reg));
ER context_address = ER::Create(IsolateAddressId::kContextAddress, isolate());
Sd(cp, ExternalReferenceAsOperand(context_address, no_reg));
const int frame_alignment = MacroAssembler::ActivationFrameAlignment();
DCHECK_GE(stack_space, 0);
Dsubu(sp, sp, Operand((stack_space + 1) * kPointerSize));
if (frame_alignment > 0) {
DCHECK(base::bits::IsPowerOfTwo(frame_alignment));
And(sp, sp, Operand(-frame_alignment));
}
daddiu(scratch, sp, kPointerSize);
Sd(scratch, MemOperand(fp, ExitFrameConstants::kSPOffset));
}
void MacroAssembler::LeaveExitFrame(Register scratch) {
ASM_CODE_COMMENT(this);
BlockTrampolinePoolScope block_trampoline_pool(this);
using ER = ExternalReference;
ER context_address = ER::Create(IsolateAddressId::kContextAddress, isolate());
Ld(cp, ExternalReferenceAsOperand(context_address, no_reg));
if (v8_flags.debug_code) {
li(scratch, Operand(Context::kNoContext));
Sd(scratch, ExternalReferenceAsOperand(context_address, no_reg));
}
ER c_entry_fp_address =
ER::Create(IsolateAddressId::kCEntryFPAddress, isolate());
Sd(zero_reg, ExternalReferenceAsOperand(c_entry_fp_address, no_reg));
mov(sp, fp);
Ld(fp, MemOperand(sp, ExitFrameConstants::kCallerFPOffset));
Ld(ra, MemOperand(sp, ExitFrameConstants::kCallerPCOffset));
daddiu(sp, sp, 2 * kPointerSize);
}
int MacroAssembler::ActivationFrameAlignment() {
#if V8_HOST_ARCH_MIPS || V8_HOST_ARCH_MIPS64
return base::OS::ActivationFrameAlignment();
#else
return v8_flags.sim_stack_alignment;
#endif
}
void MacroAssembler::SmiUntag(Register dst, const MemOperand& src) {
if (SmiValuesAre32Bits()) {
Lw(dst, MemOperand(src.rm(), SmiWordOffset(src.offset())));
} else {
DCHECK(SmiValuesAre31Bits());
Lw(dst, src);
SmiUntag(dst);
}
}
void MacroAssembler::JumpIfSmi(Register value, Label* smi_label,
BranchDelaySlot bd) {
DCHECK_EQ(0, kSmiTag);
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
andi(scratch, value, kSmiTagMask);
Branch(bd, smi_label, eq, scratch, Operand(zero_reg));
}
void MacroAssembler::JumpIfNotSmi(Register value, Label* not_smi_label,
BranchDelaySlot bd) {
DCHECK_EQ(0, kSmiTag);
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
andi(scratch, value, kSmiTagMask);
Branch(bd, not_smi_label, ne, scratch, Operand(zero_reg));
}
#ifdef V8_ENABLE_DEBUG_CODE
void MacroAssembler::Assert(Condition cc, AbortReason reason, Register rs,
Operand rt) {
if (v8_flags.debug_code) Check(cc, reason, rs, rt);
}
void MacroAssembler::AssertJSAny(Register object, Register map_tmp,
Register tmp, AbortReason abort_reason) {
if (!v8_flags.debug_code) return;
ASM_CODE_COMMENT(this);
DCHECK(!AreAliased(object, map_tmp, tmp));
Label ok;
JumpIfSmi(object, &ok);
GetObjectType(object, map_tmp, tmp);
Branch(&ok, kUnsignedLessThanEqual, tmp, Operand(LAST_NAME_TYPE));
Branch(&ok, kUnsignedGreaterThanEqual, tmp, Operand(FIRST_JS_RECEIVER_TYPE));
Branch(&ok, kEqual, map_tmp, RootIndex::kHeapNumberMap);
Branch(&ok, kEqual, map_tmp, RootIndex::kBigIntMap);
Branch(&ok, kEqual, object, RootIndex::kUndefinedValue);
Branch(&ok, kEqual, object, RootIndex::kTrueValue);
Branch(&ok, kEqual, object, RootIndex::kFalseValue);
Branch(&ok, kEqual, object, RootIndex::kNullValue);
Abort(abort_reason);
bind(&ok);
}
void MacroAssembler::AssertNotSmi(Register object) {
if (v8_flags.debug_code) {
ASM_CODE_COMMENT(this);
static_assert(kSmiTag == 0);
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
andi(scratch, object, kSmiTagMask);
Check(ne, AbortReason::kOperandIsASmi, scratch, Operand(zero_reg));
}
}
void MacroAssembler::AssertSmi(Register object) {
if (v8_flags.debug_code) {
ASM_CODE_COMMENT(this);
static_assert(kSmiTag == 0);
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
andi(scratch, object, kSmiTagMask);
Check(eq, AbortReason::kOperandIsASmi, scratch, Operand(zero_reg));
}
}
void MacroAssembler::AssertStackIsAligned() {
if (v8_flags.debug_code) {
ASM_CODE_COMMENT(this);
const int frame_alignment = ActivationFrameAlignment();
const int frame_alignment_mask = frame_alignment - 1;
if (frame_alignment > kPointerSize) {
Label alignment_as_expected;
DCHECK(base::bits::IsPowerOfTwo(frame_alignment));
{
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
andi(scratch, sp, frame_alignment_mask);
Branch(&alignment_as_expected, eq, scratch, Operand(zero_reg));
}
stop();
bind(&alignment_as_expected);
}
}
}
void MacroAssembler::AssertConstructor(Register object) {
if (v8_flags.debug_code) {
ASM_CODE_COMMENT(this);
BlockTrampolinePoolScope block_trampoline_pool(this);
static_assert(kSmiTag == 0);
SmiTst(object, t8);
Check(ne, AbortReason::kOperandIsASmiAndNotAConstructor, t8,
Operand(zero_reg));
LoadMap(t8, object);
Lbu(t8, FieldMemOperand(t8, Map::kBitFieldOffset));
And(t8, t8, Operand(Map::Bits1::IsConstructorBit::kMask));
Check(ne, AbortReason::kOperandIsNotAConstructor, t8, Operand(zero_reg));
}
}
void MacroAssembler::AssertFunction(Register object) {
if (v8_flags.debug_code) {
ASM_CODE_COMMENT(this);
BlockTrampolinePoolScope block_trampoline_pool(this);
static_assert(kSmiTag == 0);
SmiTst(object, t8);
Check(ne, AbortReason::kOperandIsASmiAndNotAFunction, t8,
Operand(zero_reg));
push(object);
LoadMap(object, object);
GetInstanceTypeRange(object, object, FIRST_JS_FUNCTION_TYPE, t8);
Check(ls, AbortReason::kOperandIsNotAFunction, t8,
Operand(LAST_JS_FUNCTION_TYPE - FIRST_JS_FUNCTION_TYPE));
pop(object);
}
}
void MacroAssembler::AssertCallableFunction(Register object) {
if (v8_flags.debug_code) {
ASM_CODE_COMMENT(this);
BlockTrampolinePoolScope block_trampoline_pool(this);
static_assert(kSmiTag == 0);
SmiTst(object, t8);
Check(ne, AbortReason::kOperandIsASmiAndNotAFunction, t8,
Operand(zero_reg));
push(object);
LoadMap(object, object);
GetInstanceTypeRange(object, object, FIRST_CALLABLE_JS_FUNCTION_TYPE, t8);
Check(ls, AbortReason::kOperandIsNotACallableFunction, t8,
Operand(LAST_CALLABLE_JS_FUNCTION_TYPE -
FIRST_CALLABLE_JS_FUNCTION_TYPE));
pop(object);
}
}
void MacroAssembler::AssertBoundFunction(Register object) {
if (v8_flags.debug_code) {
ASM_CODE_COMMENT(this);
BlockTrampolinePoolScope block_trampoline_pool(this);
static_assert(kSmiTag == 0);
SmiTst(object, t8);
Check(ne, AbortReason::kOperandIsASmiAndNotABoundFunction, t8,
Operand(zero_reg));
GetObjectType(object, t8, t8);
Check(eq, AbortReason::kOperandIsNotABoundFunction, t8,
Operand(JS_BOUND_FUNCTION_TYPE));
}
}
void MacroAssembler::AssertGeneratorObject(Register object) {
if (!v8_flags.debug_code) return;
ASM_CODE_COMMENT(this);
BlockTrampolinePoolScope block_trampoline_pool(this);
static_assert(kSmiTag == 0);
SmiTst(object, t8);
Check(ne, AbortReason::kOperandIsASmiAndNotAGeneratorObject, t8,
Operand(zero_reg));
GetObjectType(object, t8, t8);
Dsubu(t8, t8, Operand(FIRST_JS_GENERATOR_OBJECT_TYPE));
Check(
ls, AbortReason::kOperandIsNotAGeneratorObject, t8,
Operand(LAST_JS_GENERATOR_OBJECT_TYPE - FIRST_JS_GENERATOR_OBJECT_TYPE));
}
void MacroAssembler::AssertUndefinedOrAllocationSite(Register object,
Register scratch) {
if (v8_flags.debug_code) {
ASM_CODE_COMMENT(this);
Label done_checking;
AssertNotSmi(object);
LoadRoot(scratch, RootIndex::kUndefinedValue);
Branch(&done_checking, eq, object, Operand(scratch));
GetObjectType(object, scratch, scratch);
Assert(eq, AbortReason::kExpectedUndefinedOrCell, scratch,
Operand(ALLOCATION_SITE_TYPE));
bind(&done_checking);
}
}
#endif
void MacroAssembler::Float32Max(FPURegister dst, FPURegister src1,
FPURegister src2, Label* out_of_line) {
ASM_CODE_COMMENT(this);
if (src1 == src2) {
Move_s(dst, src1);
return;
}
CompareIsNanF32(src1, src2);
BranchTrueF(out_of_line);
if (kArchVariant >= kMips64r6) {
max_s(dst, src1, src2);
} else {
Label return_left, return_right, done;
CompareF32(OLT, src1, src2);
BranchTrueShortF(&return_right);
CompareF32(OLT, src2, src1);
BranchTrueShortF(&return_left);
{
BlockTrampolinePoolScope block_trampoline_pool(this);
mfc1(t8, src1);
dsll32(t8, t8, 0);
Branch(&return_left, eq, t8, Operand(zero_reg));
Branch(&return_right);
}
bind(&return_right);
if (src2 != dst) {
Move_s(dst, src2);
}
Branch(&done);
bind(&return_left);
if (src1 != dst) {
Move_s(dst, src1);
}
bind(&done);
}
}
void MacroAssembler::Float32MaxOutOfLine(FPURegister dst, FPURegister src1,
FPURegister src2) {
add_s(dst, src1, src2);
}
void MacroAssembler::Float32Min(FPURegister dst, FPURegister src1,
FPURegister src2, Label* out_of_line) {
ASM_CODE_COMMENT(this);
if (src1 == src2) {
Move_s(dst, src1);
return;
}
CompareIsNanF32(src1, src2);
BranchTrueF(out_of_line);
if (kArchVariant >= kMips64r6) {
min_s(dst, src1, src2);
} else {
Label return_left, return_right, done;
CompareF32(OLT, src1, src2);
BranchTrueShortF(&return_left);
CompareF32(OLT, src2, src1);
BranchTrueShortF(&return_right);
{
BlockTrampolinePoolScope block_trampoline_pool(this);
mfc1(t8, src1);
dsll32(t8, t8, 0);
Branch(&return_right, eq, t8, Operand(zero_reg));
Branch(&return_left);
}
bind(&return_right);
if (src2 != dst) {
Move_s(dst, src2);
}
Branch(&done);
bind(&return_left);
if (src1 != dst) {
Move_s(dst, src1);
}
bind(&done);
}
}
void MacroAssembler::Float32MinOutOfLine(FPURegister dst, FPURegister src1,
FPURegister src2) {
add_s(dst, src1, src2);
}
void MacroAssembler::Float64Max(FPURegister dst, FPURegister src1,
FPURegister src2, Label* out_of_line) {
ASM_CODE_COMMENT(this);
if (src1 == src2) {
Move_d(dst, src1);
return;
}
CompareIsNanF64(src1, src2);
BranchTrueF(out_of_line);
if (kArchVariant >= kMips64r6) {
max_d(dst, src1, src2);
} else {
Label return_left, return_right, done;
CompareF64(OLT, src1, src2);
BranchTrueShortF(&return_right);
CompareF64(OLT, src2, src1);
BranchTrueShortF(&return_left);
{
BlockTrampolinePoolScope block_trampoline_pool(this);
dmfc1(t8, src1);
Branch(&return_left, eq, t8, Operand(zero_reg));
Branch(&return_right);
}
bind(&return_right);
if (src2 != dst) {
Move_d(dst, src2);
}
Branch(&done);
bind(&return_left);
if (src1 != dst) {
Move_d(dst, src1);
}
bind(&done);
}
}
void MacroAssembler::Float64MaxOutOfLine(FPURegister dst, FPURegister src1,
FPURegister src2) {
add_d(dst, src1, src2);
}
void MacroAssembler::Float64Min(FPURegister dst, FPURegister src1,
FPURegister src2, Label* out_of_line) {
ASM_CODE_COMMENT(this);
if (src1 == src2) {
Move_d(dst, src1);
return;
}
CompareIsNanF64(src1, src2);
BranchTrueF(out_of_line);
if (kArchVariant >= kMips64r6) {
min_d(dst, src1, src2);
} else {
Label return_left, return_right, done;
CompareF64(OLT, src1, src2);
BranchTrueShortF(&return_left);
CompareF64(OLT, src2, src1);
BranchTrueShortF(&return_right);
{
BlockTrampolinePoolScope block_trampoline_pool(this);
dmfc1(t8, src1);
Branch(&return_right, eq, t8, Operand(zero_reg));
Branch(&return_left);
}
bind(&return_right);
if (src2 != dst) {
Move_d(dst, src2);
}
Branch(&done);
bind(&return_left);
if (src1 != dst) {
Move_d(dst, src1);
}
bind(&done);
}
}
void MacroAssembler::Float64MinOutOfLine(FPURegister dst, FPURegister src1,
FPURegister src2) {
add_d(dst, src1, src2);
}
int MacroAssembler::CalculateStackPassedWords(int num_reg_arguments,
int num_double_arguments) {
int stack_passed_words = 0;
int num_args = num_reg_arguments + num_double_arguments;
if (num_args > kRegisterPassedArguments) {
stack_passed_words = num_args - kRegisterPassedArguments;
}
stack_passed_words += kCArgSlotCount;
return stack_passed_words;
}
void MacroAssembler::PrepareCallCFunction(int num_reg_arguments,
int num_double_arguments,
Register scratch) {
ASM_CODE_COMMENT(this);
int frame_alignment = ActivationFrameAlignment();
int stack_passed_arguments =
CalculateStackPassedWords(num_reg_arguments, num_double_arguments);
if (frame_alignment > kPointerSize) {
mov(scratch, sp);
Dsubu(sp, sp, Operand((stack_passed_arguments + 1) * kPointerSize));
DCHECK(base::bits::IsPowerOfTwo(frame_alignment));
And(sp, sp, Operand(-frame_alignment));
Sd(scratch, MemOperand(sp, stack_passed_arguments * kPointerSize));
} else {
Dsubu(sp, sp, Operand(stack_passed_arguments * kPointerSize));
}
}
void MacroAssembler::PrepareCallCFunction(int num_reg_arguments,
Register scratch) {
PrepareCallCFunction(num_reg_arguments, 0, scratch);
}
int MacroAssembler::CallCFunction(ExternalReference function,
int num_reg_arguments,
int num_double_arguments,
SetIsolateDataSlots set_isolate_data_slots,
Label* return_location) {
ASM_CODE_COMMENT(this);
BlockTrampolinePoolScope block_trampoline_pool(this);
li(t9, function);
return CallCFunctionHelper(t9, num_reg_arguments, num_double_arguments,
set_isolate_data_slots, return_location);
}
int MacroAssembler::CallCFunction(Register function, int num_reg_arguments,
int num_double_arguments,
SetIsolateDataSlots set_isolate_data_slots,
Label* return_location) {
ASM_CODE_COMMENT(this);
return CallCFunctionHelper(function, num_reg_arguments, num_double_arguments,
set_isolate_data_slots, return_location);
}
int MacroAssembler::CallCFunction(ExternalReference function, int num_arguments,
SetIsolateDataSlots set_isolate_data_slots,
Label* return_location) {
return CallCFunction(function, num_arguments, 0, set_isolate_data_slots,
return_location);
}
int MacroAssembler::CallCFunction(Register function, int num_arguments,
SetIsolateDataSlots set_isolate_data_slots,
Label* return_location) {
return CallCFunction(function, num_arguments, 0, set_isolate_data_slots,
return_location);
}
int MacroAssembler::CallCFunctionHelper(
Register function, int num_reg_arguments, int num_double_arguments,
SetIsolateDataSlots set_isolate_data_slots, Label* return_location) {
DCHECK_LE(num_reg_arguments + num_double_arguments, kMaxCParameters);
DCHECK(has_frame());
Label get_pc;
#if V8_HOST_ARCH_MIPS || V8_HOST_ARCH_MIPS64
if (v8_flags.debug_code) {
int frame_alignment = base::OS::ActivationFrameAlignment();
int frame_alignment_mask = frame_alignment - 1;
if (frame_alignment > kPointerSize) {
DCHECK(base::bits::IsPowerOfTwo(frame_alignment));
Label alignment_as_expected;
{
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
And(scratch, sp, Operand(frame_alignment_mask));
Branch(&alignment_as_expected, eq, scratch, Operand(zero_reg));
}
stop();
bind(&alignment_as_expected);
}
}
#endif
{
BlockTrampolinePoolScope block_trampoline_pool(this);
if (set_isolate_data_slots == SetIsolateDataSlots::kYes) {
if (function != t9) {
mov(t9, function);
function = t9;
}
Register pc_scratch = t1;
DCHECK(!AreAliased(pc_scratch, function));
CHECK(root_array_available());
LoadAddressPCRelative(pc_scratch, &get_pc);
Sd(pc_scratch,
ExternalReferenceAsOperand(IsolateFieldId::kFastCCallCallerPC));
Sd(fp, ExternalReferenceAsOperand(IsolateFieldId::kFastCCallCallerFP));
}
int call_pc_offset;
{
BlockTrampolinePoolScope block_trampoline_pool(this);
Call(function);
call_pc_offset = pc_offset();
bind(&get_pc);
if (return_location) bind(return_location);
int before_offset = pc_offset();
int stack_passed_arguments =
CalculateStackPassedWords(num_reg_arguments, num_double_arguments);
if (base::OS::ActivationFrameAlignment() > kSystemPointerSize) {
Ld(sp, MemOperand(sp, stack_passed_arguments * kSystemPointerSize));
} else {
Daddu(sp, sp, Operand(stack_passed_arguments * kSystemPointerSize));
}
if (kMaxSizeOfMoveAfterFastCall > pc_offset() - before_offset) {
nop();
}
CHECK_EQ(kMaxSizeOfMoveAfterFastCall, pc_offset() - before_offset);
}
if (set_isolate_data_slots == SetIsolateDataSlots::kYes) {
Sd(zero_reg,
ExternalReferenceAsOperand(IsolateFieldId::kFastCCallCallerFP));
}
set_pc_for_safepoint();
return call_pc_offset;
}
}
#undef BRANCH_ARGS_CHECK
void MacroAssembler::CheckPageFlag(Register object, Register scratch, int mask,
Condition cc, Label* condition_met) {
ASM_CODE_COMMENT(this);
And(scratch, object, Operand(~MemoryChunk::GetAlignmentMaskForAssembler()));
Ld(scratch, MemOperand(scratch, MemoryChunk::FlagsOffset()));
And(scratch, scratch, Operand(mask));
Branch(condition_met, cc, scratch, Operand(zero_reg));
}
Register GetRegisterThatIsNotOneOf(Register reg1, Register reg2, Register reg3,
Register reg4, Register reg5,
Register reg6) {
RegList regs = {reg1, reg2, reg3, reg4, reg5, reg6};
const RegisterConfiguration* config = RegisterConfiguration::Default();
for (int i = 0; i < config->num_allocatable_general_registers(); ++i) {
int code = config->GetAllocatableGeneralCode(i);
Register candidate = Register::from_code(code);
if (regs.has(candidate)) continue;
return candidate;
}
UNREACHABLE();
}
void MacroAssembler::ComputeCodeStartAddress(Register dst) {
push(ra);
if (kArchVariant == kMips64r6) {
addiupc(ra, 1);
} else {
nal();
nop();
}
int pc = pc_offset();
li(dst, Operand(pc));
Dsubu(dst, ra, dst);
pop(ra);
}
void MacroAssembler::AssertNotDeoptimized() {
int offset = InstructionStream::kCodeOffset - InstructionStream::kHeaderSize;
Ld(kScratchReg, MemOperand(kJavaScriptCallCodeStartRegister, offset));
Lwu(kScratchReg, FieldMemOperand(kScratchReg, Code::kFlagsOffset));
Label not_deoptimized;
And(kScratchReg, kScratchReg,
Operand(1 << Code::kMarkedForDeoptimizationBit));
Branch(¬_deoptimized, eq, kScratchReg, Operand(zero_reg));
Abort(AbortReason::kInvalidDeoptimizedCode);
bind(¬_deoptimized);
}
void MacroAssembler::CallForDeoptimization(Builtin target, int, Label* exit,
DeoptimizeKind kind, Label* ret,
Label*) {
ASM_CODE_COMMENT(this);
BlockTrampolinePoolScope block_trampoline_pool(this);
Ld(t9,
MemOperand(kRootRegister, IsolateData::BuiltinEntrySlotOffset(target)));
Call(t9);
DCHECK_EQ(SizeOfCodeGeneratedSince(exit),
(kind == DeoptimizeKind::kLazy) ? Deoptimizer::kLazyDeoptExitSize
: Deoptimizer::kEagerDeoptExitSize);
}
void MacroAssembler::LoadCodeInstructionStart(
Register destination, Register code_data_container_object,
CodeEntrypointTag tag) {
ASM_CODE_COMMENT(this);
Ld(destination, FieldMemOperand(code_data_container_object,
Code::kInstructionStartOffset));
}
void MacroAssembler::CallCodeObject(Register code_data_container_object,
CodeEntrypointTag tag) {
ASM_CODE_COMMENT(this);
LoadCodeInstructionStart(code_data_container_object,
code_data_container_object, tag);
Call(code_data_container_object);
}
void MacroAssembler::JumpCodeObject(Register code_data_container_object,
CodeEntrypointTag tag, JumpMode jump_mode) {
ASM_CODE_COMMENT(this);
DCHECK_EQ(JumpMode::kJump, jump_mode);
LoadCodeInstructionStart(code_data_container_object,
code_data_container_object, tag);
Jump(code_data_container_object);
}
void MacroAssembler::CallJSFunction(Register function_object,
uint16_t argument_count) {
Register code = kJavaScriptCallCodeStartRegister;
Register dispatch_handle = kJavaScriptCallDispatchHandleRegister;
Register parameter_count = s1;
Register scratch = s2;
Lw(dispatch_handle,
FieldMemOperand(function_object, JSFunction::kDispatchHandleOffset));
LoadEntrypointAndParameterCountFromJSDispatchTable(code, parameter_count,
dispatch_handle, scratch);
SbxCheck(le, AbortReason::kJSSignatureMismatch, parameter_count,
Operand(argument_count));
Call(code);
}
void MacroAssembler::JumpJSFunction(Register function_object,
JumpMode jump_mode) {
UNREACHABLE();
}
#ifdef V8_ENABLE_WEBASSEMBLY
void MacroAssembler::ResolveWasmCodePointer(Register target) {
ASM_CODE_COMMENT(this);
ExternalReference global_jump_table =
ExternalReference::wasm_code_pointer_table();
UseScratchRegisterScope temps(this);
Register scratch = temps.Acquire();
xor_(zero_reg, scratch, scratch);
li(scratch, global_jump_table);
static_assert(sizeof(wasm::WasmCodePointerTableEntry) == kSystemPointerSize);
sll(target, target, kSystemPointerSizeLog2);
daddu(scratch, scratch, target);
Ld(target, MemOperand(scratch, 0));
}
void MacroAssembler::CallWasmCodePointer(Register target,
CallJumpMode call_jump_mode) {
ResolveWasmCodePointer(target);
if (call_jump_mode == CallJumpMode::kTailCall) {
Jump(target);
} else {
Call(target);
}
}
#endif
#ifdef V8_ENABLE_DEBUG_CODE
void MacroAssembler::AssertFeedbackCell(Register object, Register scratch) {
if (v8_flags.debug_code) {
GetObjectType(object, scratch, scratch);
Assert(eq, AbortReason::kExpectedFeedbackCell, scratch,
Operand(FEEDBACK_CELL_TYPE));
}
}
void MacroAssembler::AssertFeedbackVector(Register object, Register scratch) {
if (v8_flags.debug_code) {
GetObjectType(object, scratch, scratch);
Assert(eq, AbortReason::kExpectedFeedbackVector, scratch,
Operand(FEEDBACK_VECTOR_TYPE));
}
}
#endif
void MacroAssembler::ReplaceClosureCodeWithOptimizedCode(
Register optimized_code, Register closure, Register scratch1,
Register scratch2) {
ASM_CODE_COMMENT(this);
DCHECK(!AreAliased(optimized_code, closure, scratch1, scratch2));
UNREACHABLE();
}
void MacroAssembler::GenerateTailCallToReturnedCode(
Runtime::FunctionId function_id) {
ASM_CODE_COMMENT(this);
{
FrameScope scope(this, StackFrame::INTERNAL);
SmiTag(kJavaScriptCallArgCountRegister);
Push(kJavaScriptCallTargetRegister, kJavaScriptCallNewTargetRegister,
kJavaScriptCallArgCountRegister);
#ifdef V8_JS_LINKAGE_INCLUDES_DISPATCH_HANDLE
static_assert(kJSDispatchHandleShift > 0);
AssertSmi(kJavaScriptCallDispatchHandleRegister);
Push(kJavaScriptCallDispatchHandleRegister);
#endif
Push(kJavaScriptCallTargetRegister);
CallRuntime(function_id, 1);
#ifdef V8_JS_LINKAGE_INCLUDES_DISPATCH_HANDLE
Pop(kJavaScriptCallDispatchHandleRegister);
#endif
Pop(kJavaScriptCallTargetRegister, kJavaScriptCallNewTargetRegister,
kJavaScriptCallArgCountRegister);
SmiUntag(kJavaScriptCallArgCountRegister);
}
static_assert(kJavaScriptCallCodeStartRegister == a2, "ABI mismatch");
LoadCodeInstructionStart(a2, v0, kJSEntrypointTag);
Jump(a2);
}
void CallApiFunctionAndReturn(MacroAssembler* masm, bool with_profiling,
Register function_address,
ExternalReference thunk_ref, Register thunk_arg,
int slots_to_drop_on_return,
MemOperand* argc_operand,
MemOperand return_value_operand) {
using ER = ExternalReference;
Isolate* isolate = masm->isolate();
MemOperand next_mem_op = __ ExternalReferenceAsOperand(
ER::handle_scope_next_address(isolate), no_reg);
MemOperand limit_mem_op = __ ExternalReferenceAsOperand(
ER::handle_scope_limit_address(isolate), no_reg);
MemOperand level_mem_op = __ ExternalReferenceAsOperand(
ER::handle_scope_level_address(isolate), no_reg);
Register return_value = v0;
Register scratch = a4;
Register scratch2 = a5;
Register prev_next_address_reg = s0;
Register prev_limit_reg = s1;
Register prev_level_reg = s2;
DCHECK(!AreAliased(kCArgRegs[0], kCArgRegs[1],
scratch, scratch2, prev_next_address_reg, prev_limit_reg));
DCHECK(!AreAliased(function_address,
scratch, scratch2, prev_next_address_reg, prev_limit_reg));
DCHECK(!AreAliased(thunk_arg,
scratch, scratch2, prev_next_address_reg, prev_limit_reg));
{
ASM_CODE_COMMENT_STRING(masm,
"Allocate HandleScope in callee-save registers.");
__ Ld(prev_next_address_reg, next_mem_op);
__ Ld(prev_limit_reg, limit_mem_op);
__ Lw(prev_level_reg, level_mem_op);
__ Addu(scratch, prev_level_reg, Operand(1));
__ Sw(scratch, level_mem_op);
}
Label profiler_or_side_effects_check_enabled, done_api_call;
if (with_profiling) {
__ RecordComment("Check if profiler or side effects check is enabled");
__ Lb(scratch,
__ ExternalReferenceAsOperand(IsolateFieldId::kExecutionMode));
__ Branch(&profiler_or_side_effects_check_enabled, ne, scratch,
Operand(zero_reg));
#ifdef V8_RUNTIME_CALL_STATS
__ RecordComment("Check if RCS is enabled");
__ li(scratch, ER::address_of_runtime_stats_flag());
__ Lw(scratch, MemOperand(scratch, 0));
__ Branch(&profiler_or_side_effects_check_enabled, ne, scratch,
Operand(zero_reg));
#endif
}
__ RecordComment("Call the api function directly.");
__ StoreReturnAddressAndCall(function_address);
__ bind(&done_api_call);
Label propagate_exception;
Label delete_allocated_handles;
Label leave_exit_frame;
__ RecordComment("Load value from ReturnValue.");
__ Ld(return_value, return_value_operand);
{
ASM_CODE_COMMENT_STRING(
masm,
"No more valid handles (the result handle was the last one)."
"Restore previous handle scope.");
__ Sd(prev_next_address_reg, next_mem_op);
if (v8_flags.debug_code) {
__ Lw(scratch, level_mem_op);
__ Subu(scratch, scratch, Operand(1));
__ Check(eq, AbortReason::kUnexpectedLevelAfterReturnFromApiCall, scratch,
Operand(prev_level_reg));
}
__ Sw(prev_level_reg, level_mem_op);
__ Ld(scratch, limit_mem_op);
__ Branch(&delete_allocated_handles, ne, prev_limit_reg, Operand(scratch));
}
__ RecordComment("Leave the API exit frame.");
__ bind(&leave_exit_frame);
Register argc_reg = prev_limit_reg;
if (argc_operand != nullptr) {
__ Ld(argc_reg, *argc_operand);
}
__ LeaveExitFrame(scratch);
{
ASM_CODE_COMMENT_STRING(masm,
"Check if the function scheduled an exception.");
__ LoadRoot(scratch, RootIndex::kTheHoleValue);
__ Ld(scratch2, __ ExternalReferenceAsOperand(
ER::exception_address(isolate), no_reg));
__ Branch(&propagate_exception, ne, scratch, Operand(scratch2));
}
__ AssertJSAny(return_value, scratch, scratch2,
AbortReason::kAPICallReturnedInvalidObject);
if (argc_operand == nullptr) {
DCHECK_NE(slots_to_drop_on_return, 0);
__ Daddu(sp, sp, Operand(slots_to_drop_on_return * kSystemPointerSize));
} else {
if (slots_to_drop_on_return != 0) {
__ Daddu(sp, sp, Operand(slots_to_drop_on_return * kSystemPointerSize));
}
__ Dlsa(sp, sp, argc_reg, kSystemPointerSizeLog2);
}
__ Ret();
if (with_profiling) {
ASM_CODE_COMMENT_STRING(masm, "Call the api function via thunk wrapper.");
__ bind(&profiler_or_side_effects_check_enabled);
if (thunk_arg.is_valid()) {
MemOperand thunk_arg_mem_op = __ ExternalReferenceAsOperand(
IsolateFieldId::kApiCallbackThunkArgument);
__ Sd(thunk_arg, thunk_arg_mem_op);
}
__ li(scratch, thunk_ref);
__ StoreReturnAddressAndCall(scratch);
__ Branch(&done_api_call);
}
__ RecordComment("An exception was thrown. Propagate it.");
__ bind(&propagate_exception);
__ TailCallRuntime(Runtime::kPropagateException);
{
ASM_CODE_COMMENT_STRING(
masm, "HandleScope limit has changed. Delete allocated extensions.");
__ bind(&delete_allocated_handles);
__ Sd(prev_limit_reg, limit_mem_op);
Register saved_result = prev_limit_reg;
__ mov(saved_result, v0);
__ mov(kCArgRegs[0], v0);
__ PrepareCallCFunction(1, prev_level_reg);
__ li(kCArgRegs[0], ER::isolate_address());
__ CallCFunction(ER::delete_handle_scope_extensions(), 1);
__ mov(v0, saved_result);
__ jmp(&leave_exit_frame);
}
}
}
}
#undef __
#endif