003 File Manager
Current Path:
/usr/src/contrib/llvm-project/llvm/lib/CodeGen
usr
/
src
/
contrib
/
llvm-project
/
llvm
/
lib
/
CodeGen
/
📁
..
📄
AggressiveAntiDepBreaker.cpp
(37.23 KB)
📄
AggressiveAntiDepBreaker.h
(6.8 KB)
📄
AllocationOrder.cpp
(1.96 KB)
📄
AllocationOrder.h
(2.96 KB)
📄
Analysis.cpp
(32.62 KB)
📁
AsmPrinter
📄
AtomicExpandPass.cpp
(71.86 KB)
📄
BBSectionsPrepare.cpp
(18.8 KB)
📄
BasicTargetTransformInfo.cpp
(1.53 KB)
📄
BranchFolding.cpp
(77.92 KB)
📄
BranchFolding.h
(7.36 KB)
📄
BranchRelaxation.cpp
(19.45 KB)
📄
BreakFalseDeps.cpp
(9.79 KB)
📄
BuiltinGCs.cpp
(4.88 KB)
📄
CFGuardLongjmp.cpp
(3.73 KB)
📄
CFIInstrInserter.cpp
(17.53 KB)
📄
CalcSpillWeights.cpp
(10.22 KB)
📄
CallingConvLower.cpp
(10.4 KB)
📄
CodeGen.cpp
(5.28 KB)
📄
CodeGenPrepare.cpp
(295.01 KB)
📄
CommandFlags.cpp
(24.89 KB)
📄
CriticalAntiDepBreaker.cpp
(27.91 KB)
📄
CriticalAntiDepBreaker.h
(4.22 KB)
📄
DFAPacketizer.cpp
(10.91 KB)
📄
DeadMachineInstructionElim.cpp
(6.52 KB)
📄
DetectDeadLanes.cpp
(20.74 KB)
📄
DwarfEHPrepare.cpp
(9.01 KB)
📄
EarlyIfConversion.cpp
(37.51 KB)
📄
EdgeBundles.cpp
(3.21 KB)
📄
ExecutionDomainFix.cpp
(14.67 KB)
📄
ExpandMemCmp.cpp
(33.66 KB)
📄
ExpandPostRAPseudos.cpp
(7.28 KB)
📄
ExpandReductions.cpp
(7.23 KB)
📄
FEntryInserter.cpp
(1.81 KB)
📄
FaultMaps.cpp
(4.99 KB)
📄
FinalizeISel.cpp
(2.65 KB)
📄
FixupStatepointCallerSaved.cpp
(11.06 KB)
📄
FuncletLayout.cpp
(2.21 KB)
📄
GCMetadata.cpp
(5.1 KB)
📄
GCMetadataPrinter.cpp
(748 B)
📄
GCRootLowering.cpp
(11.46 KB)
📄
GCStrategy.cpp
(708 B)
📁
GlobalISel
📄
GlobalMerge.cpp
(24.52 KB)
📄
HardwareLoops.cpp
(18.44 KB)
📄
IfConversion.cpp
(89.43 KB)
📄
ImplicitNullChecks.cpp
(25.14 KB)
📄
IndirectBrExpandPass.cpp
(7.79 KB)
📄
InlineSpiller.cpp
(58.24 KB)
📄
InterferenceCache.cpp
(8.83 KB)
📄
InterferenceCache.h
(7.22 KB)
📄
InterleavedAccessPass.cpp
(16.59 KB)
📄
InterleavedLoadCombinePass.cpp
(42.35 KB)
📄
IntrinsicLowering.cpp
(17.08 KB)
📄
LLVMTargetMachine.cpp
(10.25 KB)
📄
LatencyPriorityQueue.cpp
(5.64 KB)
📄
LazyMachineBlockFrequencyInfo.cpp
(3.36 KB)
📄
LexicalScopes.cpp
(12.16 KB)
📄
LiveDebugValues.cpp
(78.98 KB)
📄
LiveDebugVariables.cpp
(51.79 KB)
📄
LiveDebugVariables.h
(2.15 KB)
📄
LiveInterval.cpp
(46.67 KB)
📄
LiveIntervalCalc.cpp
(7.62 KB)
📄
LiveIntervalUnion.cpp
(6.36 KB)
📄
LiveIntervals.cpp
(64.59 KB)
📄
LivePhysRegs.cpp
(11.08 KB)
📄
LiveRangeCalc.cpp
(15.72 KB)
📄
LiveRangeEdit.cpp
(17.03 KB)
📄
LiveRangeShrink.cpp
(8.69 KB)
📄
LiveRangeUtils.h
(2.12 KB)
📄
LiveRegMatrix.cpp
(7.47 KB)
📄
LiveRegUnits.cpp
(4.72 KB)
📄
LiveStacks.cpp
(2.95 KB)
📄
LiveVariables.cpp
(30.26 KB)
📄
LocalStackSlotAllocation.cpp
(17.26 KB)
📄
LoopTraversal.cpp
(2.89 KB)
📄
LowLevelType.cpp
(1.93 KB)
📄
LowerEmuTLS.cpp
(5.66 KB)
📄
MBFIWrapper.cpp
(1.57 KB)
📄
MIRCanonicalizerPass.cpp
(12.46 KB)
📄
MIRNamerPass.cpp
(2.16 KB)
📁
MIRParser
📄
MIRPrinter.cpp
(32.67 KB)
📄
MIRPrintingPass.cpp
(1.99 KB)
📄
MIRVRegNamerUtils.cpp
(6.04 KB)
📄
MIRVRegNamerUtils.h
(3.25 KB)
📄
MachineBasicBlock.cpp
(50.47 KB)
📄
MachineBlockFrequencyInfo.cpp
(10.13 KB)
📄
MachineBlockPlacement.cpp
(137.61 KB)
📄
MachineBranchProbabilityInfo.cpp
(3.5 KB)
📄
MachineCSE.cpp
(31.82 KB)
📄
MachineCombiner.cpp
(28.13 KB)
📄
MachineCopyPropagation.cpp
(29.21 KB)
📄
MachineDebugify.cpp
(6.47 KB)
📄
MachineDominanceFrontier.cpp
(1.83 KB)
📄
MachineDominators.cpp
(4.86 KB)
📄
MachineFrameInfo.cpp
(9.77 KB)
📄
MachineFunction.cpp
(42.97 KB)
📄
MachineFunctionPass.cpp
(4.78 KB)
📄
MachineFunctionPrinterPass.cpp
(2.3 KB)
📄
MachineInstr.cpp
(76.39 KB)
📄
MachineInstrBundle.cpp
(11.49 KB)
📄
MachineLICM.cpp
(57.05 KB)
📄
MachineLoopInfo.cpp
(4.98 KB)
📄
MachineLoopUtils.cpp
(5.16 KB)
📄
MachineModuleInfo.cpp
(9.9 KB)
📄
MachineModuleInfoImpls.cpp
(1.5 KB)
📄
MachineOperand.cpp
(39.6 KB)
📄
MachineOptimizationRemarkEmitter.cpp
(3.29 KB)
📄
MachineOutliner.cpp
(42.13 KB)
📄
MachinePipeliner.cpp
(111.33 KB)
📄
MachinePostDominators.cpp
(2.42 KB)
📄
MachineRegionInfo.cpp
(4.75 KB)
📄
MachineRegisterInfo.cpp
(22.97 KB)
📄
MachineSSAUpdater.cpp
(12.99 KB)
📄
MachineScheduler.cpp
(136.89 KB)
📄
MachineSink.cpp
(51.94 KB)
📄
MachineSizeOpts.cpp
(8.76 KB)
📄
MachineStripDebug.cpp
(3.76 KB)
📄
MachineTraceMetrics.cpp
(49.58 KB)
📄
MachineVerifier.cpp
(107.98 KB)
📄
MacroFusion.cpp
(7.55 KB)
📄
ModuloSchedule.cpp
(85.09 KB)
📄
NonRelocatableStringpool.cpp
(1.65 KB)
📄
OptimizePHIs.cpp
(6.7 KB)
📄
PHIElimination.cpp
(27.73 KB)
📄
PHIEliminationUtils.cpp
(2.56 KB)
📄
PHIEliminationUtils.h
(972 B)
📄
ParallelCG.cpp
(3.71 KB)
📄
PatchableFunction.cpp
(3.44 KB)
📄
PeepholeOptimizer.cpp
(78.41 KB)
📄
PostRAHazardRecognizer.cpp
(3.5 KB)
📄
PostRASchedulerList.cpp
(24.31 KB)
📄
PreISelIntrinsicLowering.cpp
(7.91 KB)
📄
ProcessImplicitDefs.cpp
(5.4 KB)
📄
PrologEpilogInserter.cpp
(50.45 KB)
📄
PseudoSourceValue.cpp
(4.71 KB)
📄
RDFGraph.cpp
(58.39 KB)
📄
RDFLiveness.cpp
(40.7 KB)
📄
RDFRegisters.cpp
(11.29 KB)
📄
ReachingDefAnalysis.cpp
(21.74 KB)
📄
RegAllocBase.cpp
(6.31 KB)
📄
RegAllocBase.h
(4.63 KB)
📄
RegAllocBasic.cpp
(11.33 KB)
📄
RegAllocFast.cpp
(45.78 KB)
📄
RegAllocGreedy.cpp
(123.32 KB)
📄
RegAllocPBQP.cpp
(33.14 KB)
📄
RegUsageInfoCollector.cpp
(7.39 KB)
📄
RegUsageInfoPropagate.cpp
(5.07 KB)
📄
RegisterClassInfo.cpp
(6.62 KB)
📄
RegisterCoalescer.cpp
(151.71 KB)
📄
RegisterCoalescer.h
(4.04 KB)
📄
RegisterPressure.cpp
(48.86 KB)
📄
RegisterScavenging.cpp
(27.48 KB)
📄
RegisterUsageInfo.cpp
(3.18 KB)
📄
RenameIndependentSubregs.cpp
(14.79 KB)
📄
ResetMachineFunctionPass.cpp
(3.48 KB)
📄
SafeStack.cpp
(34.12 KB)
📄
SafeStackLayout.cpp
(5.3 KB)
📄
SafeStackLayout.h
(2.41 KB)
📄
ScalarizeMaskedMemIntrin.cpp
(31.46 KB)
📄
ScheduleDAG.cpp
(21.34 KB)
📄
ScheduleDAGInstrs.cpp
(54.59 KB)
📄
ScheduleDAGPrinter.cpp
(3.21 KB)
📄
ScoreboardHazardRecognizer.cpp
(7.96 KB)
📁
SelectionDAG
📄
ShadowStackGCLowering.cpp
(14.16 KB)
📄
ShrinkWrap.cpp
(23.03 KB)
📄
SjLjEHPrepare.cpp
(18.93 KB)
📄
SlotIndexes.cpp
(9.35 KB)
📄
SpillPlacement.cpp
(12.58 KB)
📄
SpillPlacement.h
(6.67 KB)
📄
SplitKit.cpp
(66.39 KB)
📄
SplitKit.h
(23.7 KB)
📄
StackColoring.cpp
(49.03 KB)
📄
StackMapLivenessAnalysis.cpp
(6.16 KB)
📄
StackMaps.cpp
(19.74 KB)
📄
StackProtector.cpp
(22.94 KB)
📄
StackSlotColoring.cpp
(17.12 KB)
📄
SwiftErrorValueTracking.cpp
(11.37 KB)
📄
SwitchLoweringUtils.cpp
(18.33 KB)
📄
TailDuplication.cpp
(3.32 KB)
📄
TailDuplicator.cpp
(38.29 KB)
📄
TargetFrameLoweringImpl.cpp
(6.24 KB)
📄
TargetInstrInfo.cpp
(51.1 KB)
📄
TargetLoweringBase.cpp
(82.53 KB)
📄
TargetLoweringObjectFileImpl.cpp
(80.52 KB)
📄
TargetOptionsImpl.cpp
(2 KB)
📄
TargetPassConfig.cpp
(48.89 KB)
📄
TargetRegisterInfo.cpp
(19.15 KB)
📄
TargetSchedule.cpp
(13.16 KB)
📄
TargetSubtargetInfo.cpp
(1.89 KB)
📄
TwoAddressInstructionPass.cpp
(62.08 KB)
📄
TypePromotion.cpp
(32.46 KB)
📄
UnreachableBlockElim.cpp
(7.48 KB)
📄
ValueTypes.cpp
(19.87 KB)
📄
VirtRegMap.cpp
(21.4 KB)
📄
WasmEHPrepare.cpp
(17.48 KB)
📄
WinEHPrepare.cpp
(51.16 KB)
📄
XRayInstrumentation.cpp
(9.66 KB)
Editing: LexicalScopes.cpp
//===- LexicalScopes.cpp - Collecting lexical scope info ------------------===// // // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. // See https://llvm.org/LICENSE.txt for license information. // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception // //===----------------------------------------------------------------------===// // // This file implements LexicalScopes analysis. // // This pass collects lexical scope information and maps machine instructions // to respective lexical scopes. // //===----------------------------------------------------------------------===// #include "llvm/CodeGen/LexicalScopes.h" #include "llvm/ADT/DenseMap.h" #include "llvm/ADT/SmallVector.h" #include "llvm/CodeGen/MachineBasicBlock.h" #include "llvm/CodeGen/MachineFunction.h" #include "llvm/CodeGen/MachineInstr.h" #include "llvm/Config/llvm-config.h" #include "llvm/IR/DebugInfoMetadata.h" #include "llvm/IR/Function.h" #include "llvm/IR/Metadata.h" #include "llvm/Support/Casting.h" #include "llvm/Support/Compiler.h" #include "llvm/Support/Debug.h" #include "llvm/Support/raw_ostream.h" #include <cassert> #include <string> #include <tuple> #include <utility> using namespace llvm; #define DEBUG_TYPE "lexicalscopes" /// reset - Reset the instance so that it's prepared for another function. void LexicalScopes::reset() { MF = nullptr; CurrentFnLexicalScope = nullptr; LexicalScopeMap.clear(); AbstractScopeMap.clear(); InlinedLexicalScopeMap.clear(); AbstractScopesList.clear(); DominatedBlocks.clear(); } /// initialize - Scan machine function and constuct lexical scope nest. void LexicalScopes::initialize(const MachineFunction &Fn) { reset(); // Don't attempt any lexical scope creation for a NoDebug compile unit. if (Fn.getFunction().getSubprogram()->getUnit()->getEmissionKind() == DICompileUnit::NoDebug) return; MF = &Fn; SmallVector<InsnRange, 4> MIRanges; DenseMap<const MachineInstr *, LexicalScope *> MI2ScopeMap; extractLexicalScopes(MIRanges, MI2ScopeMap); if (CurrentFnLexicalScope) { constructScopeNest(CurrentFnLexicalScope); assignInstructionRanges(MIRanges, MI2ScopeMap); } } /// extractLexicalScopes - Extract instruction ranges for each lexical scopes /// for the given machine function. void LexicalScopes::extractLexicalScopes( SmallVectorImpl<InsnRange> &MIRanges, DenseMap<const MachineInstr *, LexicalScope *> &MI2ScopeMap) { // Scan each instruction and create scopes. First build working set of scopes. for (const auto &MBB : *MF) { const MachineInstr *RangeBeginMI = nullptr; const MachineInstr *PrevMI = nullptr; const DILocation *PrevDL = nullptr; for (const auto &MInsn : MBB) { // Check if instruction has valid location information. const DILocation *MIDL = MInsn.getDebugLoc(); if (!MIDL) { PrevMI = &MInsn; continue; } // If scope has not changed then skip this instruction. if (MIDL == PrevDL) { PrevMI = &MInsn; continue; } // Ignore DBG_VALUE and similar instruction that do not contribute to any // instruction in the output. if (MInsn.isMetaInstruction()) continue; if (RangeBeginMI) { // If we have already seen a beginning of an instruction range and // current instruction scope does not match scope of first instruction // in this range then create a new instruction range. InsnRange R(RangeBeginMI, PrevMI); MI2ScopeMap[RangeBeginMI] = getOrCreateLexicalScope(PrevDL); MIRanges.push_back(R); } // This is a beginning of a new instruction range. RangeBeginMI = &MInsn; // Reset previous markers. PrevMI = &MInsn; PrevDL = MIDL; } // Create last instruction range. if (RangeBeginMI && PrevMI && PrevDL) { InsnRange R(RangeBeginMI, PrevMI); MIRanges.push_back(R); MI2ScopeMap[RangeBeginMI] = getOrCreateLexicalScope(PrevDL); } } } /// findLexicalScope - Find lexical scope, either regular or inlined, for the /// given DebugLoc. Return NULL if not found. LexicalScope *LexicalScopes::findLexicalScope(const DILocation *DL) { DILocalScope *Scope = DL->getScope(); if (!Scope) return nullptr; // The scope that we were created with could have an extra file - which // isn't what we care about in this case. Scope = Scope->getNonLexicalBlockFileScope(); if (auto *IA = DL->getInlinedAt()) { auto I = InlinedLexicalScopeMap.find(std::make_pair(Scope, IA)); return I != InlinedLexicalScopeMap.end() ? &I->second : nullptr; } return findLexicalScope(Scope); } /// getOrCreateLexicalScope - Find lexical scope for the given DebugLoc. If /// not available then create new lexical scope. LexicalScope *LexicalScopes::getOrCreateLexicalScope(const DILocalScope *Scope, const DILocation *IA) { if (IA) { // Skip scopes inlined from a NoDebug compile unit. if (Scope->getSubprogram()->getUnit()->getEmissionKind() == DICompileUnit::NoDebug) return getOrCreateLexicalScope(IA); // Create an abstract scope for inlined function. getOrCreateAbstractScope(Scope); // Create an inlined scope for inlined function. return getOrCreateInlinedScope(Scope, IA); } return getOrCreateRegularScope(Scope); } /// getOrCreateRegularScope - Find or create a regular lexical scope. LexicalScope * LexicalScopes::getOrCreateRegularScope(const DILocalScope *Scope) { assert(Scope && "Invalid Scope encoding!"); Scope = Scope->getNonLexicalBlockFileScope(); auto I = LexicalScopeMap.find(Scope); if (I != LexicalScopeMap.end()) return &I->second; // FIXME: Should the following dyn_cast be DILexicalBlock? LexicalScope *Parent = nullptr; if (auto *Block = dyn_cast<DILexicalBlockBase>(Scope)) Parent = getOrCreateLexicalScope(Block->getScope()); I = LexicalScopeMap.emplace(std::piecewise_construct, std::forward_as_tuple(Scope), std::forward_as_tuple(Parent, Scope, nullptr, false)).first; if (!Parent) { assert(cast<DISubprogram>(Scope)->describes(&MF->getFunction())); assert(!CurrentFnLexicalScope); CurrentFnLexicalScope = &I->second; } return &I->second; } /// getOrCreateInlinedScope - Find or create an inlined lexical scope. LexicalScope * LexicalScopes::getOrCreateInlinedScope(const DILocalScope *Scope, const DILocation *InlinedAt) { assert(Scope && "Invalid Scope encoding!"); Scope = Scope->getNonLexicalBlockFileScope(); std::pair<const DILocalScope *, const DILocation *> P(Scope, InlinedAt); auto I = InlinedLexicalScopeMap.find(P); if (I != InlinedLexicalScopeMap.end()) return &I->second; LexicalScope *Parent; if (auto *Block = dyn_cast<DILexicalBlockBase>(Scope)) Parent = getOrCreateInlinedScope(Block->getScope(), InlinedAt); else Parent = getOrCreateLexicalScope(InlinedAt); I = InlinedLexicalScopeMap .emplace(std::piecewise_construct, std::forward_as_tuple(P), std::forward_as_tuple(Parent, Scope, InlinedAt, false)) .first; return &I->second; } /// getOrCreateAbstractScope - Find or create an abstract lexical scope. LexicalScope * LexicalScopes::getOrCreateAbstractScope(const DILocalScope *Scope) { assert(Scope && "Invalid Scope encoding!"); Scope = Scope->getNonLexicalBlockFileScope(); auto I = AbstractScopeMap.find(Scope); if (I != AbstractScopeMap.end()) return &I->second; // FIXME: Should the following isa be DILexicalBlock? LexicalScope *Parent = nullptr; if (auto *Block = dyn_cast<DILexicalBlockBase>(Scope)) Parent = getOrCreateAbstractScope(Block->getScope()); I = AbstractScopeMap.emplace(std::piecewise_construct, std::forward_as_tuple(Scope), std::forward_as_tuple(Parent, Scope, nullptr, true)).first; if (isa<DISubprogram>(Scope)) AbstractScopesList.push_back(&I->second); return &I->second; } /// constructScopeNest - Traverse the Scope tree depth-first, storing /// traversal state in WorkStack and recording the depth-first /// numbering (setDFSIn, setDFSOut) for edge classification. void LexicalScopes::constructScopeNest(LexicalScope *Scope) { assert(Scope && "Unable to calculate scope dominance graph!"); SmallVector<std::pair<LexicalScope *, size_t>, 4> WorkStack; WorkStack.push_back(std::make_pair(Scope, 0)); unsigned Counter = 0; while (!WorkStack.empty()) { auto &ScopePosition = WorkStack.back(); LexicalScope *WS = ScopePosition.first; size_t ChildNum = ScopePosition.second++; const SmallVectorImpl<LexicalScope *> &Children = WS->getChildren(); if (ChildNum < Children.size()) { auto &ChildScope = Children[ChildNum]; WorkStack.push_back(std::make_pair(ChildScope, 0)); ChildScope->setDFSIn(++Counter); } else { WorkStack.pop_back(); WS->setDFSOut(++Counter); } } } /// assignInstructionRanges - Find ranges of instructions covered by each /// lexical scope. void LexicalScopes::assignInstructionRanges( SmallVectorImpl<InsnRange> &MIRanges, DenseMap<const MachineInstr *, LexicalScope *> &MI2ScopeMap) { LexicalScope *PrevLexicalScope = nullptr; for (const auto &R : MIRanges) { LexicalScope *S = MI2ScopeMap.lookup(R.first); assert(S && "Lost LexicalScope for a machine instruction!"); if (PrevLexicalScope && !PrevLexicalScope->dominates(S)) PrevLexicalScope->closeInsnRange(S); S->openInsnRange(R.first); S->extendInsnRange(R.second); PrevLexicalScope = S; } if (PrevLexicalScope) PrevLexicalScope->closeInsnRange(); } /// getMachineBasicBlocks - Populate given set using machine basic blocks which /// have machine instructions that belong to lexical scope identified by /// DebugLoc. void LexicalScopes::getMachineBasicBlocks( const DILocation *DL, SmallPtrSetImpl<const MachineBasicBlock *> &MBBs) { assert(MF && "Method called on a uninitialized LexicalScopes object!"); MBBs.clear(); LexicalScope *Scope = getOrCreateLexicalScope(DL); if (!Scope) return; if (Scope == CurrentFnLexicalScope) { for (const auto &MBB : *MF) MBBs.insert(&MBB); return; } // The scope ranges can cover multiple basic blocks in each span. Iterate over // all blocks (in the order they are in the function) until we reach the one // containing the end of the span. SmallVectorImpl<InsnRange> &InsnRanges = Scope->getRanges(); for (auto &R : InsnRanges) for (auto CurMBBIt = R.first->getParent()->getIterator(), EndBBIt = std::next(R.second->getParent()->getIterator()); CurMBBIt != EndBBIt; CurMBBIt++) MBBs.insert(&*CurMBBIt); } bool LexicalScopes::dominates(const DILocation *DL, MachineBasicBlock *MBB) { assert(MF && "Unexpected uninitialized LexicalScopes object!"); LexicalScope *Scope = getOrCreateLexicalScope(DL); if (!Scope) return false; // Current function scope covers all basic blocks in the function. if (Scope == CurrentFnLexicalScope && MBB->getParent() == MF) return true; // Fetch all the blocks in DLs scope. Because the range / block list also // contain any subscopes, any instruction that DL dominates can be found in // the block set. // // Cache the set of fetched blocks to avoid repeatedly recomputing the set in // the LiveDebugValues pass. std::unique_ptr<BlockSetT> &Set = DominatedBlocks[DL]; if (!Set) { Set = std::make_unique<BlockSetT>(); getMachineBasicBlocks(DL, *Set); } return Set->count(MBB) != 0; } #if !defined(NDEBUG) || defined(LLVM_ENABLE_DUMP) LLVM_DUMP_METHOD void LexicalScope::dump(unsigned Indent) const { raw_ostream &err = dbgs(); err.indent(Indent); err << "DFSIn: " << DFSIn << " DFSOut: " << DFSOut << "\n"; const MDNode *N = Desc; err.indent(Indent); N->dump(); if (AbstractScope) err << std::string(Indent, ' ') << "Abstract Scope\n"; if (!Children.empty()) err << std::string(Indent + 2, ' ') << "Children ...\n"; for (unsigned i = 0, e = Children.size(); i != e; ++i) if (Children[i] != this) Children[i]->dump(Indent + 2); } #endif
Upload File
Create Folder