Files
ark_js_runtime/ecmascript/compiler/circuit_builder.cpp
T
getingke d667d9b5b9 fixed for code style check
Signed-off-by: getingke <getingke@huawei.com>
Change-Id: I3ff8ba9fbeaa282d02f4832a4b6a85e054670765
2022-05-18 20:55:17 +08:00

873 lines
29 KiB
C++

/*
* Copyright (c) 2021 Huawei Device Co., Ltd.
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
*/
#include "ecmascript/compiler/circuit_builder.h"
#include "ecmascript/compiler/circuit_builder-inl.h"
#include "ecmascript/js_thread.h"
#include "ecmascript/js_function.h"
#include "ecmascript/compiler/common_stubs.h"
#include "ecmascript/compiler/rt_call_signature.h"
#include "utils/bit_utils.h"
namespace panda::ecmascript::kungfu {
GateRef CircuitBuilder::Merge(GateRef *inList, size_t controlCount)
{
return circuit_->NewGate(OpCode(OpCode::MERGE), controlCount, controlCount, inList, GateType::EMPTY);
}
GateRef CircuitBuilder::Selector(OpCode opcode, MachineType machineType, GateRef control,
const std::vector<GateRef> &values, int valueCounts, VariableType type)
{
std::vector<GateRef> inList;
inList.push_back(control);
if (values.size() == 0) {
for (int i = 0; i < valueCounts; i++) {
inList.push_back(Circuit::NullGate());
}
} else {
for (int i = 0; i < valueCounts; i++) {
inList.push_back(values[i]);
}
}
return circuit_->NewGate(opcode, machineType, valueCounts, inList, type.GetGateType());
}
GateRef CircuitBuilder::Selector(OpCode opcode, GateRef control,
const std::vector<GateRef> &values, int valueCounts, VariableType type)
{
std::vector<GateRef> inList;
inList.push_back(control);
if (values.size() == 0) {
for (int i = 0; i < valueCounts; i++) {
inList.push_back(Circuit::NullGate());
}
} else {
for (int i = 0; i < valueCounts; i++) {
inList.push_back(values[i]);
}
}
return circuit_->NewGate(opcode, valueCounts, inList, type.GetGateType());
}
GateRef CircuitBuilder::UndefineConstant(GateType type)
{
return circuit_->GetConstantGate(MachineType::I64, JSTaggedValue::VALUE_UNDEFINED, type);
}
GateRef CircuitBuilder::Branch(GateRef state, GateRef condition)
{
return circuit_->NewGate(OpCode(OpCode::IF_BRANCH), 0, { state, condition }, GateType::EMPTY);
}
GateRef CircuitBuilder::SwitchBranch(GateRef state, GateRef index, int caseCounts)
{
return circuit_->NewGate(OpCode(OpCode::SWITCH_BRANCH), caseCounts, { state, index }, GateType::EMPTY);
}
GateRef CircuitBuilder::Return(GateRef state, GateRef depend, GateRef value)
{
auto returnList = Circuit::GetCircuitRoot(OpCode(OpCode::RETURN_LIST));
return circuit_->NewGate(OpCode(OpCode::RETURN), 0, { state, depend, value, returnList }, GateType::EMPTY);
}
GateRef CircuitBuilder::ReturnVoid(GateRef state, GateRef depend)
{
auto returnList = Circuit::GetCircuitRoot(OpCode(OpCode::RETURN_LIST));
return circuit_->NewGate(OpCode(OpCode::RETURN_VOID), 0, { state, depend, returnList }, GateType::EMPTY);
}
GateRef CircuitBuilder::Goto(GateRef state)
{
return circuit_->NewGate(OpCode(OpCode::ORDINARY_BLOCK), 0, { state }, GateType::EMPTY);
}
GateRef CircuitBuilder::LoopBegin(GateRef state)
{
auto nullGate = Circuit::NullGate();
return circuit_->NewGate(OpCode(OpCode::LOOP_BEGIN), 0, { state, nullGate }, GateType::EMPTY);
}
GateRef CircuitBuilder::LoopEnd(GateRef state)
{
return circuit_->NewGate(OpCode(OpCode::LOOP_BACK), 0, { state }, GateType::EMPTY);
}
GateRef CircuitBuilder::IfTrue(GateRef ifBranch)
{
return circuit_->NewGate(OpCode(OpCode::IF_TRUE), 0, { ifBranch }, GateType::EMPTY);
}
GateRef CircuitBuilder::IfFalse(GateRef ifBranch)
{
return circuit_->NewGate(OpCode(OpCode::IF_FALSE), 0, { ifBranch }, GateType::EMPTY);
}
GateRef CircuitBuilder::SwitchCase(GateRef switchBranch, int64_t value)
{
return circuit_->NewGate(OpCode(OpCode::SWITCH_CASE), value, { switchBranch }, GateType::EMPTY);
}
GateRef CircuitBuilder::DefaultCase(GateRef switchBranch)
{
return circuit_->NewGate(OpCode(OpCode::DEFAULT_CASE), 0, { switchBranch }, GateType::EMPTY);
}
GateRef CircuitBuilder::DependRelay(GateRef state, GateRef depend)
{
return circuit_->NewGate(OpCode(OpCode::DEPEND_RELAY), 0, { state, depend }, GateType::EMPTY);
}
GateRef CircuitBuilder::DependAnd(std::initializer_list<GateRef> args)
{
std::vector<GateRef> inputs;
for (auto arg : args) {
inputs.push_back(arg);
}
return circuit_->NewGate(OpCode(OpCode::DEPEND_AND), args.size(), inputs, GateType::EMPTY);
}
GateRef CircuitBuilder::Arguments(size_t index)
{
auto argListOfCircuit = Circuit::GetCircuitRoot(OpCode(OpCode::ARG_LIST));
return GetCircuit()->NewGate(OpCode(OpCode::ARG), MachineType::I64, index, {argListOfCircuit}, GateType::NJS_VALUE);
}
GateRef CircuitBuilder::Int8(int8_t val)
{
return GetCircuit()->GetConstantGate(MachineType::I8, val, GateType::NJS_VALUE);
}
GateRef CircuitBuilder::Int16(int16_t val)
{
return GetCircuit()->GetConstantGate(MachineType::I16, val, GateType::NJS_VALUE);
}
GateRef CircuitBuilder::Int32(int32_t val)
{
return GetCircuit()->GetConstantGate(MachineType::I32, static_cast<BitField>(val), GateType::NJS_VALUE);
}
GateRef CircuitBuilder::Int64(int64_t val)
{
return GetCircuit()->GetConstantGate(MachineType::I64, val, GateType::NJS_VALUE);
}
GateRef CircuitBuilder::IntPtr(int64_t val)
{
return GetCircuit()->GetConstantGate(MachineType::ARCH, val, GateType::NJS_VALUE);
}
GateRef CircuitBuilder::RelocatableData(uint64_t val)
{
auto constantList = Circuit::GetCircuitRoot(OpCode(OpCode::CONSTANT_LIST));
return GetCircuit()->NewGate(OpCode(OpCode::RELOCATABLE_DATA), val, {constantList}, GateType::EMPTY);
}
GateRef CircuitBuilder::Boolean(bool val)
{
return GetCircuit()->GetConstantGate(MachineType::I1, val ? 1 : 0, GateType::NJS_VALUE);
}
GateRef CircuitBuilder::Double(double val)
{
return GetCircuit()->GetConstantGate(MachineType::F64, bit_cast<int64_t>(val), GateType::NJS_VALUE);
}
GateRef CircuitBuilder::HoleConstant(GateType type)
{
return GetCircuit()->GetConstantGate(MachineType::I64, JSTaggedValue::VALUE_HOLE, type);
}
GateRef CircuitBuilder::NullConstant(GateType type)
{
return GetCircuit()->GetConstantGate(MachineType::I64, JSTaggedValue::VALUE_NULL, type);
}
GateRef CircuitBuilder::ExceptionConstant(GateType type)
{
return GetCircuit()->GetConstantGate(MachineType::I64, JSTaggedValue::VALUE_EXCEPTION, type);
}
MachineType CircuitBuilder::GetMachineTypeFromVariableType(VariableType type)
{
return type.GetMachineType();
}
GateRef CircuitBuilder::BinaryArithmetic(OpCode opcode, MachineType machineType, GateRef left, GateRef right)
{
auto circuit = GetCircuit();
GateType type = circuit->LoadGatePtr(left)->GetGateType();
return circuit->NewGate(opcode, machineType, 0, { left, right }, type);
}
GateRef CircuitBuilder::TaggedNumber(OpCode opcode, GateRef value)
{
return GetCircuit()->NewGate(opcode, 0, { value }, GateType::TAGGED_VALUE);
}
GateRef CircuitBuilder::UnaryArithmetic(OpCode opcode, MachineType machineType, GateRef value)
{
return GetCircuit()->NewGate(opcode, machineType, 0, { value }, GateType::NJS_VALUE);
}
GateRef CircuitBuilder::UnaryArithmetic(OpCode opcode, GateRef value)
{
return GetCircuit()->NewGate(opcode, 0, { value }, GateType::NJS_VALUE);
}
GateRef CircuitBuilder::BinaryLogic(OpCode opcode, GateRef left, GateRef right)
{
return GetCircuit()->NewGate(opcode, 0, { left, right }, GateType::NJS_VALUE);
}
GateRef CircuitBuilder::CallBCHandler(GateRef glue, GateRef target, const std::vector<GateRef> &args)
{
const CallSignature *cs = BytecodeStubCSigns::BCHandler();
assert(cs->IsBCStub());
auto label = GetCurrentLabel();
auto depend = label->GetDepend();
GateRef result = Call(cs, glue, target, depend, args);
label->SetDepend(result);
return result;
}
GateRef CircuitBuilder::CallBCDebugger(GateRef glue, GateRef target, const std::vector<GateRef> &args)
{
const CallSignature *cs = BytecodeStubCSigns::BCDebuggerHandler();
assert(cs->IsBCDebuggerStub());
auto label = GetCurrentLabel();
auto depend = label->GetDepend();
GateRef result = Call(cs, glue, target, depend, args);
label->SetDepend(result);
return result;
}
GateRef CircuitBuilder::CallRuntime(GateRef glue, int index, GateRef depend, const std::vector<GateRef> &args)
{
GateRef target = IntPtr(index);
const CallSignature *cs = RuntimeStubCSigns::Get(RTSTUB_ID(CallRuntime));
assert(cs->IsRuntimeStub());
auto label = GetCurrentLabel();
if (depend == Gate::InvalidGateRef) {
depend = label->GetDepend();
}
GateRef result = Call(cs, glue, target, depend, args);
label->SetDepend(result);
return result;
}
GateRef CircuitBuilder::CallRuntimeVarargs(GateRef glue, int index, GateRef argc, GateRef argv)
{
const CallSignature *cs = RuntimeStubCSigns::Get(RTSTUB_ID(CallRuntimeWithArgv));
GateRef target = IntPtr(index);
auto label = GetCurrentLabel();
auto depend = label->GetDepend();
assert(cs->IsRuntimeVAStub());
GateRef result = Call(cs, glue, target, depend, {argc, argv});
label->SetDepend(result);
return result;
}
// call operation
GateRef CircuitBuilder::CallNGCRuntime(GateRef glue, int index, GateRef depend, const std::vector<GateRef> &args)
{
const CallSignature *cs = RuntimeStubCSigns::Get(index);
assert(cs->IsRuntimeNGCStub());
GateRef target = IntPtr(index);
auto label = GetCurrentLabel();
if (depend == Gate::InvalidGateRef) {
depend = label->GetDepend();
}
GateRef result = Call(cs, glue, target, depend, args);
label->SetDepend(result);
return result;
}
GateRef CircuitBuilder::CallStub(GateRef glue, int index, const std::vector<GateRef> &args)
{
const CallSignature *cs = CommonStubCSigns::Get(index);
assert(cs->IsCommonStub());
GateRef target = IntPtr(index);
auto label = GetCurrentLabel();
auto depend = label->GetDepend();
GateRef result = Call(cs, glue, target, depend, args);
label->SetDepend(result);
return result;
}
GateRef CircuitBuilder::Call(const CallSignature* cs, GateRef glue, GateRef target, GateRef depend,
const std::vector<GateRef> &args)
{
std::vector<GateRef> inputs { depend, target, glue };
inputs.insert(inputs.end(), args.begin(), args.end());
OpCode op(OpCode::NOP);
if (cs->IsCommonStub()) {
op = OpCode(OpCode::CALL);
} else if (cs->IsRuntimeVAStub()) {
op = OpCode(OpCode::RUNTIME_CALL_WITH_ARGV);
} else if (cs->IsRuntimeStub()) {
op = OpCode(OpCode::RUNTIME_CALL);
} else if (cs->IsBCDebuggerStub()) {
op = OpCode(OpCode::DEBUGGER_BYTECODE_CALL);
} else if (cs->IsBCHandlerStub()) {
op = OpCode(OpCode::BYTECODE_CALL);
} else if (cs->IsRuntimeNGCStub()) {
op = OpCode(OpCode::NOGC_RUNTIME_CALL);
} else {
UNREACHABLE();
}
MachineType machineType = cs->GetReturnType().GetMachineType();
GateType type = cs->GetReturnType().GetGateType();
GateRef result = GetCircuit()->NewGate(op, machineType, args.size() + 2, inputs, type);
return result;
}
// memory
void CircuitBuilder::Store(VariableType type, GateRef glue, GateRef base, GateRef offset, GateRef value)
{
auto label = GetCurrentLabel();
auto depend = label->GetDepend();
GateRef ptr = PtrAdd(base, offset);
GateRef result = GetCircuit()->NewGate(OpCode(OpCode::STORE), 0, { depend, value, ptr }, type.GetGateType());
label->SetDepend(result);
if (type == VariableType::JS_POINTER() || type == VariableType::JS_ANY()) {
CallStub(glue, CommonStubCSigns::SetValueWithBarrier, {glue, base, offset, value});
}
return;
}
GateRef CircuitBuilder::Alloca(int size)
{
auto allocaList = Circuit::GetCircuitRoot(OpCode(OpCode::ALLOCA_LIST));
return GetCircuit()->NewGate(OpCode(OpCode::ALLOCA), size, { allocaList }, GateType::NJS_VALUE);
}
GateRef CircuitBuilder::TaggedIsString(GateRef obj)
{
Label entry(env_);
SubCfgEntry(&entry);
Label exit(env_);
DEFVAlUE(result, env_, VariableType::BOOL(), False());
Label isHeapObject(env_);
Branch(TaggedIsHeapObject(obj), &isHeapObject, &exit);
Bind(&isHeapObject);
{
result = Equal(GetObjectType(LoadHClass(obj)),
Int32(static_cast<int32_t>(JSType::STRING)));
Jump(&exit);
}
Bind(&exit);
auto ret = *result;
SubCfgExit();
return ret;
}
GateRef CircuitBuilder::TaggedIsStringOrSymbol(GateRef obj)
{
Label entry(env_);
SubCfgEntry(&entry);
Label exit(env_);
DEFVAlUE(result, env_, VariableType::BOOL(), False());
Label isHeapObject(env_);
Branch(TaggedIsHeapObject(obj), &isHeapObject, &exit);
Bind(&isHeapObject);
{
GateRef objType = GetObjectType(LoadHClass(obj));
result = Equal(objType, Int32(static_cast<int32_t>(JSType::STRING)));
Label isString(env_);
Label notString(env_);
Branch(*result, &exit, &notString);
Bind(&notString);
{
result = Equal(objType, Int32(static_cast<int32_t>(JSType::SYMBOL)));
Jump(&exit);
}
}
Bind(&exit);
auto ret = *result;
SubCfgExit();
return ret;
}
GateRef CircuitBuilder::GetGlobalObject(GateRef glue)
{
GateRef offset = IntPtr(JSThread::GlueData::GetGlobalObjOffset(cmpCfg_->Is32Bit()));
return Load(VariableType::JS_ANY(), glue, offset);
}
GateRef CircuitBuilder::GetFunctionBitFieldFromJSFunction(GateRef function)
{
GateRef offset = IntPtr(JSFunction::BIT_FIELD_OFFSET);
return Load(VariableType::INT32(), function, offset);
}
GateRef CircuitBuilder::GetModuleFromFunction(GateRef function)
{
GateRef offset = IntPtr(JSFunction::ECMA_MODULE_OFFSET);
return Load(VariableType::JS_POINTER(), function, offset);
}
GateRef CircuitBuilder::FunctionIsResolved(GateRef function)
{
Label subentry(env_);
SubCfgEntry(&subentry);
Label exit(env_);
Label isUndefined(env_);
Label notUndefined(env_);
DEFVAlUE(result, env_, VariableType::BOOL(), True());
Branch(TaggedIsUndefined(function), &isUndefined, &notUndefined);
Bind(&isUndefined);
{
Jump(&exit);
}
Bind(&notUndefined);
{
GateRef bitfield = GetFunctionBitFieldFromJSFunction(function);
result = NotEqual(Int32And(Int32LSR(bitfield,
Int32(JSFunction::ResolvedBits::START_BIT)),
Int32((1LU << JSFunction::ResolvedBits::SIZE) - 1)),
Int32(0));
Jump(&exit);
}
Bind(&exit);
auto ret = *result;
SubCfgExit();
return ret;
}
void CircuitBuilder::SetResolvedToFunction(GateRef glue, GateRef function, GateRef value)
{
GateRef bitfield = GetFunctionBitFieldFromJSFunction(function);
GateRef mask = Int32(~(((1<<JSFunction::ResolvedBits::SIZE) - 1) << JSFunction::ResolvedBits::START_BIT));
GateRef result = Int32Or(Int32And(bitfield, mask),
Int32LSL(ZExtInt1ToInt32(value), Int32(JSFunction::ResolvedBits::START_BIT)));
Store(VariableType::INT32(), glue, function, IntPtr(JSFunction::BIT_FIELD_OFFSET), result);
}
void CircuitBuilder::SetConstPoolToFunction(GateRef glue, GateRef function, GateRef value)
{
GateRef offset = IntPtr(JSFunction::CONSTANT_POOL_OFFSET);
Store(VariableType::INT64(), glue, function, offset, value);
}
void CircuitBuilder::SetLexicalEnvToFunction(GateRef glue, GateRef function, GateRef value)
{
GateRef offset = IntPtr(JSFunction::LEXICAL_ENV_OFFSET);
Store(VariableType::JS_ANY(), glue, function, offset, value);
}
void CircuitBuilder::SetModuleToFunction(GateRef glue, GateRef function, GateRef value)
{
GateRef offset = IntPtr(JSFunction::ECMA_MODULE_OFFSET);
Store(VariableType::JS_POINTER(), glue, function, offset, value);
}
void CircuitBuilder::SetPropertyInlinedProps(GateRef glue, GateRef obj, GateRef hClass,
GateRef value, GateRef attrOffset, VariableType type)
{
GateRef bitfield = Load(VariableType::INT32(), hClass, IntPtr(JSHClass::BIT_FIELD1_OFFSET));
GateRef inlinedPropsStart = Int32And(Int32LSR(bitfield,
Int32(JSHClass::InlinedPropsStartBits::START_BIT)),
Int32((1LU << JSHClass::InlinedPropsStartBits::SIZE) - 1));
GateRef propOffset = Int32Mul(Int32Add(inlinedPropsStart, attrOffset),
Int32(JSTaggedValue::TaggedTypeSize()));
Store(type, glue, obj, ChangeInt32ToIntPtr(propOffset), value);
}
void CircuitBuilder::SetHomeObjectToFunction(GateRef glue, GateRef function, GateRef value)
{
GateRef offset = IntPtr(JSFunction::HOME_OBJECT_OFFSET);
Store(VariableType::INT64(), glue, function, offset, value);
}
Environment::Environment(size_t arguments, CircuitBuilder *builder)
: circuit_(builder->GetCircuit()), circuitBuilder_(builder), arguments_(arguments)
{
circuitBuilder_->SetEnvironment(this);
for (size_t i = 0; i < arguments; i++) {
arguments_[i] = circuitBuilder_->Arguments(i);
}
entry_ = Label(NewLabel(this, Circuit::GetCircuitRoot(OpCode(OpCode::STATE_ENTRY))));
currentLabel_ = &entry_;
currentLabel_->Seal();
auto depend_entry = Circuit::GetCircuitRoot(OpCode(OpCode::DEPEND_ENTRY));
currentLabel_->SetDepend(depend_entry);
}
Environment::Environment(GateRef hir, Circuit *circuit, CircuitBuilder *builder)
: circuit_(circuit), circuitBuilder_(builder)
{
circuitBuilder_->SetEnvironment(this);
auto hirGate = circuit_->LoadGatePtr(hir);
entry_ = Label(NewLabel(this, circuit_->SaveGatePtr(hirGate->GetInGate(0))));
currentLabel_ = &entry_;
currentLabel_->Seal();
auto dependEntry = circuit_->SaveGatePtr(hirGate->GetInGate(1));
currentLabel_->SetDepend(dependEntry);
for (size_t i = 2; i < hirGate->GetNumIns(); i++) {
inputList_.emplace_back(circuit_->SaveGatePtr(hirGate->GetInGate(i)));
}
}
Environment::Environment(GateRef stateEntry, GateRef dependEntry, std::vector<GateRef>& inlist,
Circuit *circuit, CircuitBuilder *builder) : circuit_(circuit), circuitBuilder_(builder)
{
circuitBuilder_->SetEnvironment(this);
entry_ = Label(NewLabel(this, stateEntry));
currentLabel_ = &entry_;
currentLabel_->Seal();
currentLabel_->SetDepend(dependEntry);
for (auto in : inlist) {
inputList_.emplace_back(in);
}
}
Environment::~Environment()
{
circuitBuilder_->SetEnvironment(nullptr);
for (auto label : rawLabels_) {
delete label;
}
}
void CircuitBuilder::Jump(Label *label)
{
ASSERT(label);
auto currentLabel = env_->GetCurrentLabel();
auto currentControl = currentLabel->GetControl();
auto jump = Goto(currentControl);
currentLabel->SetControl(jump);
label->AppendPredecessor(currentLabel);
label->MergeControl(currentLabel->GetControl());
env_->SetCurrentLabel(nullptr);
}
void CircuitBuilder::Branch(GateRef condition, Label *trueLabel, Label *falseLabel)
{
auto currentLabel = env_->GetCurrentLabel();
auto currentControl = currentLabel->GetControl();
GateRef ifBranch = Branch(currentControl, condition);
currentLabel->SetControl(ifBranch);
GateRef ifTrue = IfTrue(ifBranch);
trueLabel->AppendPredecessor(GetCurrentLabel());
trueLabel->MergeControl(ifTrue);
GateRef ifFalse = IfFalse(ifBranch);
falseLabel->AppendPredecessor(GetCurrentLabel());
falseLabel->MergeControl(ifFalse);
env_->SetCurrentLabel(nullptr);
}
void CircuitBuilder::Switch(GateRef index, Label *defaultLabel, int64_t *keysValue, Label *keysLabel, int numberOfKeys)
{
auto currentLabel = env_->GetCurrentLabel();
auto currentControl = currentLabel->GetControl();
GateRef switchBranch = SwitchBranch(currentControl, index, numberOfKeys);
currentLabel->SetControl(switchBranch);
for (int i = 0; i < numberOfKeys; i++) {
// NOLINTNEXTLINE(cppcoreguidelines-pro-bounds-pointer-arithmetic)
GateRef switchCase = SwitchCase(switchBranch, keysValue[i]);
// NOLINTNEXTLINE(cppcoreguidelines-pro-bounds-pointer-arithmetic)
keysLabel[i].AppendPredecessor(currentLabel);
// NOLINTNEXTLINE(cppcoreguidelines-pro-bounds-pointer-arithmetic)
keysLabel[i].MergeControl(switchCase);
}
GateRef defaultCase = DefaultCase(switchBranch);
defaultLabel->AppendPredecessor(currentLabel);
defaultLabel->MergeControl(defaultCase);
env_->SetCurrentLabel(nullptr);
}
void CircuitBuilder::LoopBegin(Label *loopHead)
{
ASSERT(loopHead);
auto loopControl = LoopBegin(loopHead->GetControl());
loopHead->SetControl(loopControl);
loopHead->SetPreControl(loopControl);
loopHead->Bind();
env_->SetCurrentLabel(loopHead);
}
void CircuitBuilder::LoopEnd(Label *loopHead)
{
ASSERT(loopHead);
auto currentLabel = GetCurrentLabel();
auto currentControl = currentLabel->GetControl();
auto loopend = LoopEnd(currentControl);
currentLabel->SetControl(loopend);
loopHead->AppendPredecessor(currentLabel);
loopHead->MergeControl(loopend);
loopHead->Seal();
loopHead->MergeAllControl();
loopHead->MergeAllDepend();
env_->SetCurrentLabel(nullptr);
}
Label::Label(Environment *env)
{
impl_ = env->NewLabel(env);
}
Label::Label(CircuitBuilder *cirBuilder)
{
auto env = cirBuilder->GetCurrentEnvironment();
impl_ = env->NewLabel(env);
}
void Label::LabelImpl::Seal()
{
for (auto &[variable, gate] : incompletePhis_) {
variable->AddPhiOperand(gate);
}
isSealed_ = true;
}
void Label::LabelImpl::WriteVariable(Variable *var, GateRef value)
{
valueMap_[var] = value;
}
GateRef Label::LabelImpl::ReadVariable(Variable *var)
{
if (valueMap_.find(var) != valueMap_.end()) {
auto result = valueMap_.at(var);
if (!env_->GetCircuit()->GetOpCode(result).IsNop()) {
return result;
}
}
return ReadVariableRecursive(var);
}
GateRef Label::LabelImpl::ReadVariableRecursive(Variable *var)
{
GateRef val;
MachineType MachineType = CircuitBuilder::GetMachineTypeFromVariableType(var->Type());
if (!IsSealed()) {
// only loopheader gate will be not sealed
int valueCounts = static_cast<int>(this->predecessors_.size()) + 1;
if (MachineType == MachineType::NOVALUE) {
val = env_->GetBulder()->Selector(OpCode(OpCode::DEPEND_SELECTOR),
predeControl_, {}, valueCounts, var->Type());
} else {
val = env_->GetBulder()->Selector(OpCode(OpCode::VALUE_SELECTOR),
MachineType, predeControl_, {}, valueCounts, var->Type());
}
env_->AddSelectorToLabel(val, Label(this));
incompletePhis_[var] = val;
} else if (predecessors_.size() == 1) {
val = predecessors_[0]->ReadVariable(var);
} else {
if (MachineType == MachineType::NOVALUE) {
val = env_->GetBulder()->Selector(OpCode(OpCode::DEPEND_SELECTOR),
predeControl_, {}, this->predecessors_.size(), var->Type());
} else {
val = env_->GetBulder()->Selector(OpCode(OpCode::VALUE_SELECTOR), MachineType,
predeControl_, {}, this->predecessors_.size(), var->Type());
}
env_->AddSelectorToLabel(val, Label(this));
WriteVariable(var, val);
val = var->AddPhiOperand(val);
}
WriteVariable(var, val);
return val;
}
void Label::LabelImpl::Bind()
{
ASSERT(!predecessors_.empty());
if (IsLoopHead()) {
// 2 means input number of depend selector gate
loopDepend_ = env_->GetBulder()->Selector(OpCode(OpCode::DEPEND_SELECTOR), predeControl_, {}, 2);
env_->GetCircuit()->NewIn(loopDepend_, 1, predecessors_[0]->GetDepend());
depend_ = loopDepend_;
}
if (IsNeedSeal()) {
Seal();
MergeAllControl();
MergeAllDepend();
}
}
void Label::LabelImpl::MergeAllControl()
{
if (predecessors_.size() < 2) { // 2 : Loop Head only support two predecessors_
return;
}
if (IsLoopHead()) {
ASSERT(predecessors_.size() == 2); // 2 : Loop Head only support two predecessors_
ASSERT(otherPredeControls_.size() == 1);
env_->GetCircuit()->NewIn(predeControl_, 1, otherPredeControls_[0]);
return;
}
// merge all control of predecessors_
std::vector<GateRef> inGates(predecessors_.size());
size_t i = 0;
ASSERT(predeControl_ != -1);
ASSERT((otherPredeControls_.size() + 1) == predecessors_.size());
inGates[i++] = predeControl_;
for (auto in : otherPredeControls_) {
inGates[i++] = in;
}
GateRef merge = env_->GetBulder()->Merge(inGates.data(), inGates.size());
predeControl_ = merge;
control_ = merge;
}
void Label::LabelImpl::MergeAllDepend()
{
if (IsControlCase()) {
// Add depend_relay to current label
auto denpendEntry = Circuit::GetCircuitRoot(OpCode(OpCode::DEPEND_ENTRY));
dependRelay_ = env_->GetBulder()->DependRelay(predeControl_, denpendEntry);
}
if (predecessors_.size() < 2) { // 2 : Loop Head only support two predecessors_
depend_ = predecessors_[0]->GetDepend();
if (dependRelay_ != -1) {
depend_ = env_->GetBulder()->DependAnd({depend_, dependRelay_});
}
return;
}
if (IsLoopHead()) {
ASSERT(predecessors_.size() == 2); // 2 : Loop Head only support two predecessors_
// Add loop depend to in of depend_seclector
ASSERT(loopDepend_ != -1);
// 2 mean 3rd input gate for loopDepend_(depend_selector)
env_->GetCircuit()->NewIn(loopDepend_, 2, predecessors_[1]->GetDepend());
return;
}
// Merge all depends to depend_seclector
std::vector<GateRef> dependsList;
for (auto prede : this->GetPredecessors()) {
dependsList.push_back(prede->GetDepend());
}
depend_ = env_->GetBulder()->Selector(OpCode(OpCode::DEPEND_SELECTOR),
predeControl_, dependsList, dependsList.size());
}
void Label::LabelImpl::AppendPredecessor(Label::LabelImpl *predecessor)
{
if (predecessor != nullptr) {
predecessors_.push_back(predecessor);
}
}
bool Label::LabelImpl::IsNeedSeal() const
{
auto control = env_->GetCircuit()->LoadGatePtr(predeControl_);
auto stateCount = control->GetOpCode().GetStateCount(control->GetBitField());
return predecessors_.size() >= stateCount;
}
bool Label::LabelImpl::IsLoopHead() const
{
return env_->GetCircuit()->IsLoopHead(predeControl_);
}
bool Label::LabelImpl::IsControlCase() const
{
return env_->GetCircuit()->IsControlCase(predeControl_);
}
GateRef Variable::AddPhiOperand(GateRef val)
{
ASSERT(IsSelector(val));
Label label = env_->GetLabelFromSelector(val);
size_t idx = 0;
for (auto pred : label.GetPredecessors()) {
auto preVal = pred.ReadVariable(this);
ASSERT(!env_->GetCircuit()->GetOpCode(preVal).IsNop());
idx++;
val = AddOperandToSelector(val, idx, preVal);
}
return TryRemoveTrivialPhi(val);
}
GateRef Variable::AddOperandToSelector(GateRef val, size_t idx, GateRef in)
{
env_->GetCircuit()->NewIn(val, idx, in);
return val;
}
GateRef Variable::TryRemoveTrivialPhi(GateRef phiVal)
{
Gate *phi = env_->GetCircuit()->LoadGatePtr(phiVal);
Gate *same = nullptr;
for (size_t i = 1; i < phi->GetNumIns(); ++i) {
In *phiIn = phi->GetIn(i);
Gate *op = (!phiIn->IsGateNull()) ? phiIn->GetGate() : nullptr;
if (op == same || op == phi) {
continue; // unique value or self-reference
}
if (same != nullptr) {
return phiVal; // the phi merges at least two valusses: not trivial
}
same = op;
}
if (same == nullptr) {
// the phi is unreachable or in the start block
GateType type = env_->GetCircuit()->GetGateType(phiVal);
same = env_->GetCircuit()->LoadGatePtr(env_->GetBulder()->UndefineConstant(type));
}
auto same_addr_shift = env_->GetCircuit()->SaveGatePtr(same);
// remove the trivial phi
// get all users of phi except self
std::vector<Out *> outs;
if (!phi->IsFirstOutNull()) {
Out *phiOut = phi->GetFirstOut();
while (!phiOut->IsNextOutNull()) {
if (phiOut->GetGate() != phi) {
// remove phi
outs.push_back(phiOut);
}
phiOut = phiOut->GetNextOut();
}
// save last phi out
if (phiOut->GetGate() != phi) {
outs.push_back(phiOut);
}
}
// reroute all outs of phi to same and remove phi
RerouteOuts(outs, same);
phi->DeleteGate();
// try to recursiveby remove all phi users, which might have vecome trivial
for (auto out : outs) {
if (IsSelector(out->GetGate())) {
auto out_addr_shift = env_->GetCircuit()->SaveGatePtr(out->GetGate());
auto result = TryRemoveTrivialPhi(out_addr_shift);
if (same_addr_shift == out_addr_shift) {
same_addr_shift = result;
}
}
}
return same_addr_shift;
}
void Variable::RerouteOuts(const std::vector<Out *> &outs, Gate *newGate)
{
// reroute all outs to new node
for (auto out : outs) {
size_t idx = out->GetIndex();
out->GetGate()->ModifyIn(idx, newGate);
}
}
} // namespace panda::ecmascript::kungfu