mirror of
https://github.com/openharmony/ark_js_runtime.git
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1d9b2ac3dd
Change-Id: I97b58375c2ec30f33778d7f11fb40a9cf0ed346b Signed-off-by: yingguofeng@huawei.com <yingguofeng@huawei.com>
231 lines
9.3 KiB
C++
231 lines
9.3 KiB
C++
/*
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* Copyright (c) 2021 Huawei Device Co., Ltd.
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* Licensed under the Apache License, Version 2.0 (the "License");
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* you may not use this file except in compliance with the License.
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* You may obtain a copy of the License at
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*
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* http://www.apache.org/licenses/LICENSE-2.0
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*
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* Unless required by applicable law or agreed to in writing, software
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* distributed under the License is distributed on an "AS IS" BASIS,
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* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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* See the License for the specific language governing permissions and
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* limitations under the License.
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*/
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#include "llvm_stackmap_parser.h"
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#include <fstream>
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#include <iostream>
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#include <string>
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#include "ecmascript/compiler/compiler_macros.h"
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#include "ecmascript/frames.h"
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#include "ecmascript/mem/object_xray.h"
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#include "ecmascript/mem/slots.h"
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namespace kungfu {
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std::string LocationTy::TypeToString(Kind loc) const
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{
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switch (loc) {
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case Kind::REGISTER:
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return "Register Reg Value in a register";
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case Kind::DIRECT:
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return "Direct Reg + Offset Frame index value";
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case Kind::INDIRECT:
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return "Indirect [Reg + Offset] Spilled value";
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case Kind::CONSTANT:
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return "Constant Offset Small constant";
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case Kind::CONSTANTNDEX:
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return "ConstIndex constants[Offset] Large constant";
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default:
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return "no know location";
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}
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}
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const DwarfRegAndOffsetTypeVector* LLVMStackMapParser::StackMapByAddr(uintptr_t callSiteAddr) const
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{
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auto it = callSiteInfos_.find(callSiteAddr);
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if (it != callSiteInfos_.end()) {
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return &(it->second);
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}
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return nullptr;
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}
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bool LLVMStackMapParser::StackMapByFuncAddrFp(uintptr_t callSiteAddr, uintptr_t frameFp,
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const RootVisitor &v0, const RootRangeVisitor &v1,
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panda::ecmascript::ChunkVector<DerivedData> *data,
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[[maybe_unused]] bool isVerifying) const
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{
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const DwarfRegAndOffsetTypeVector *infos = StackMapByAddr(callSiteAddr);
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if (infos == nullptr) {
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return false;
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}
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uintptr_t *fp = reinterpret_cast<uintptr_t *>(frameFp);
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uintptr_t address = 0;
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uintptr_t base = 0;
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uintptr_t derived = 0;
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int i = 0;
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for (auto &info: *infos) {
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if (info.first == panda::ecmascript::FrameConst::SP_DWARF_REG_NUM) {
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#ifdef PANDA_TARGET_ARM64
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uintptr_t *curFp = reinterpret_cast<uintptr_t *>(*fp);
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uintptr_t *rsp = reinterpret_cast<uintptr_t *>(*(curFp + panda::ecmascript::FrameConst::SP_OFFSET));
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#else
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uintptr_t *rsp = fp + panda::ecmascript::FrameConst::SP_OFFSET;
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#endif
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address = reinterpret_cast<uintptr_t>(rsp) + info.second;
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#if ECMASCRIPT_ENABLE_COMPILER_LOG
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LOG_ECMA(DEBUG) << "SP_DWARF_REG_NUM: info.second:" << info.second << " rbp offset:" <<
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reinterpret_cast<uintptr_t>(*fp) - address << "rsp :" << rsp;
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#endif
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} else if (info.first == panda::ecmascript::FrameConst::FP_DWARF_REG_NUM) {
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uintptr_t tmpFp = *fp;
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address = tmpFp + info.second;
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#if ECMASCRIPT_ENABLE_COMPILER_LOG
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LOG_ECMA(DEBUG) << "FP_DWARF_REG_NUM: info.second:" << info.second;
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#endif
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} else {
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#if ECMASCRIPT_ENABLE_COMPILER_LOG
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LOG_ECMA(DEBUG) << "REG_NUM : info.first:" << info.first;
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#endif
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abort();
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}
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if (i & 0x1) {
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derived = reinterpret_cast<uintptr_t>(address);
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if (base == derived) {
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#if ECMASCRIPT_ENABLE_COMPILER_LOG
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LOG_ECMA(DEBUG) << std::hex << "visit base:" << base << " base Value: " <<
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*reinterpret_cast<uintptr_t *>(base);
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#endif
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v0(panda::ecmascript::Root::ROOT_FRAME, panda::ecmascript::ObjectSlot(base));
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} else {
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#if ECMASCRIPT_ENABLE_COMPILER_LOG
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LOG_ECMA(DEBUG) << std::hex << "push base:" << base << " base Value: " <<
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*reinterpret_cast<uintptr_t *>(base) << " derived:" << derived;
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#endif
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#if ECMASCRIPT_ENABLE_HEAP_VERIFY
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if (!isVerifying) {
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#endif
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data->emplace_back(std::make_tuple(base, *reinterpret_cast<uintptr_t *>(base), derived));
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#if ECMASCRIPT_ENABLE_HEAP_VERIFY
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}
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#endif
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}
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} else {
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base = reinterpret_cast<uintptr_t>(address);
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}
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i++;
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}
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return true;
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}
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void LLVMStackMapParser::CalcCallSite()
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{
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uint64_t recordNum = 0;
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auto calStkMapRecordFunc = [this, &recordNum](uintptr_t address, int recordId) {
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struct StkMapRecordHeadTy recordHead = llvmStackMap_.StkMapRecord[recordNum + recordId].head;
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for (int j = 0; j < recordHead.NumLocations; j++) {
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struct LocationTy loc = llvmStackMap_.StkMapRecord[recordNum + recordId].Locations[j];
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uint32_t instructionOffset = recordHead.InstructionOffset;
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uintptr_t callsite = address + instructionOffset;
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if (loc.location == LocationTy::Kind::INDIRECT) {
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#if ECMASCRIPT_ENABLE_COMPILER_LOG
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LOG_ECMA(DEBUG) << "DwarfRegNum:" << loc.DwarfRegNum << " loc.OffsetOrSmallConstant:" <<
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loc.OffsetOrSmallConstant << "address:" << address << " instructionOffset:" <<
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instructionOffset << " callsite:" << callsite;
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#endif
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DwarfRegAndOffsetType info(loc.DwarfRegNum, loc.OffsetOrSmallConstant);
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auto it = callSiteInfos_.find(callsite);
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if (callSiteInfos_.find(callsite) == callSiteInfos_.end()) {
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callSiteInfos_.insert(std::pair<uintptr_t, DwarfRegAndOffsetTypeVector>(callsite, {info}));
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} else {
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it->second.emplace_back(info);
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}
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}
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}
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};
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for (size_t i = 0; i < llvmStackMap_.StkSizeRecords.size(); i++) {
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uintptr_t address = llvmStackMap_.StkSizeRecords[i].functionAddress;
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uint64_t recordCount = llvmStackMap_.StkSizeRecords[i].recordCount;
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for (uint64_t k = 0; k < recordCount; k++) {
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calStkMapRecordFunc(address, k);
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}
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recordNum += recordCount;
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}
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}
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bool LLVMStackMapParser::CalculateStackMap(std::unique_ptr<uint8_t []> stackMapAddr)
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{
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stackMapAddr_ = std::move(stackMapAddr);
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if (!stackMapAddr_) {
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LOG_ECMA(ERROR) << "stackMapAddr_ nullptr error ! " << std::endl;
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return false;
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}
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dataInfo_ = std::make_unique<DataInfo>(std::move(stackMapAddr_));
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llvmStackMap_.head = dataInfo_->Read<struct Header>();
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uint32_t numFunctions, numConstants, numRecords;
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numFunctions = dataInfo_->Read<uint32_t>();
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numConstants = dataInfo_->Read<uint32_t>();
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numRecords = dataInfo_->Read<uint32_t>();
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for (uint32_t i = 0; i < numFunctions; i++) {
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auto stkRecord = dataInfo_->Read<struct StkSizeRecordTy>();
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llvmStackMap_.StkSizeRecords.push_back(stkRecord);
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}
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for (uint32_t i = 0; i < numConstants; i++) {
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auto val = dataInfo_->Read<struct ConstantsTy>();
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llvmStackMap_.Constants.push_back(val);
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}
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for (uint32_t i = 0; i < numRecords; i++) {
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struct StkMapRecordTy stkSizeRecord;
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auto head = dataInfo_->Read<struct StkMapRecordHeadTy>();
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stkSizeRecord.head = head;
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for (uint16_t j = 0; j < head.NumLocations; j++) {
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auto location = dataInfo_->Read<struct LocationTy>();
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stkSizeRecord.Locations.push_back(location);
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}
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uint16_t padding;
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while (dataInfo_->GetOffset() & 7) { // 7: 8 byte align
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padding = dataInfo_->Read<uint16_t>();
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}
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uint32_t numLiveOuts = dataInfo_->Read<uint32_t>();
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if (numLiveOuts > 0) {
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for (uint32_t j = 0; j < numLiveOuts; j++) {
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auto liveOut = dataInfo_->Read<struct LiveOutsTy>();
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stkSizeRecord.LiveOuts.push_back(liveOut);
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}
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}
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while (dataInfo_->GetOffset() & 7) { // 7: 8 byte align
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padding = dataInfo_->Read<uint16_t>();
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}
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llvmStackMap_.StkMapRecord.push_back(stkSizeRecord);
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}
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CalcCallSite();
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return true;
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}
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bool LLVMStackMapParser::CalculateStackMap(std::unique_ptr<uint8_t []> stackMapAddr,
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uintptr_t hostCodeSectionAddr, uintptr_t deviceCodeSectionAddr)
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{
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bool ret = CalculateStackMap(std::move(stackMapAddr));
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if (!ret) {
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return ret;
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}
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// update functionAddress from host side to device side
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#if ECMASCRIPT_ENABLE_COMPILER_LOG
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LOG_ECMA(DEBUG) << "stackmap calculate update funcitonaddress ";
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#endif
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for (size_t i = 0; i < llvmStackMap_.StkSizeRecords.size(); i++) {
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uintptr_t hostAddr = llvmStackMap_.StkSizeRecords[i].functionAddress;
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uintptr_t deviceAddr = hostAddr - hostCodeSectionAddr + deviceCodeSectionAddr;
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llvmStackMap_.StkSizeRecords[i].functionAddress = deviceAddr;
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#if ECMASCRIPT_ENABLE_COMPILER_LOG
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LOG_ECMA(DEBUG) << std::dec << i << "th function " << std::hex << hostAddr << " ---> " << deviceAddr;
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#endif
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}
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callSiteInfos_.clear();
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CalcCallSite();
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return true;
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}
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} // namespace kungfu
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