1 //===-- LLVMContextImpl.cpp - Implement LLVMContextImpl -------------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This file implements the opaque LLVMContextImpl. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "LLVMContextImpl.h" 15 #include "llvm/ADT/STLExtras.h" 16 #include "llvm/IR/Attributes.h" 17 #include "llvm/IR/DiagnosticInfo.h" 18 #include "llvm/IR/Module.h" 19 #include "llvm/IR/OptBisect.h" 20 #include "llvm/Support/ManagedStatic.h" 21 #include <algorithm> 22 using namespace llvm; 23 24 LLVMContextImpl::LLVMContextImpl(LLVMContext &C) 25 : TheTrueVal(nullptr), TheFalseVal(nullptr), 26 VoidTy(C, Type::VoidTyID), 27 LabelTy(C, Type::LabelTyID), 28 HalfTy(C, Type::HalfTyID), 29 FloatTy(C, Type::FloatTyID), 30 DoubleTy(C, Type::DoubleTyID), 31 MetadataTy(C, Type::MetadataTyID), 32 TokenTy(C, Type::TokenTyID), 33 X86_FP80Ty(C, Type::X86_FP80TyID), 34 FP128Ty(C, Type::FP128TyID), 35 PPC_FP128Ty(C, Type::PPC_FP128TyID), 36 X86_MMXTy(C, Type::X86_MMXTyID), 37 Int1Ty(C, 1), 38 Int8Ty(C, 8), 39 Int16Ty(C, 16), 40 Int32Ty(C, 32), 41 Int64Ty(C, 64), 42 Int128Ty(C, 128) { 43 InlineAsmDiagHandler = nullptr; 44 InlineAsmDiagContext = nullptr; 45 DiagnosticHandler = nullptr; 46 DiagnosticContext = nullptr; 47 RespectDiagnosticFilters = false; 48 DiagnosticHotnessRequested = false; 49 YieldCallback = nullptr; 50 YieldOpaqueHandle = nullptr; 51 NamedStructTypesUniqueID = 0; 52 } 53 54 LLVMContextImpl::~LLVMContextImpl() { 55 // NOTE: We need to delete the contents of OwnedModules, but Module's dtor 56 // will call LLVMContextImpl::removeModule, thus invalidating iterators into 57 // the container. Avoid iterators during this operation: 58 while (!OwnedModules.empty()) 59 delete *OwnedModules.begin(); 60 61 // Drop references for MDNodes. Do this before Values get deleted to avoid 62 // unnecessary RAUW when nodes are still unresolved. 63 for (auto *I : DistinctMDNodes) 64 I->dropAllReferences(); 65 #define HANDLE_MDNODE_LEAF_UNIQUABLE(CLASS) \ 66 for (auto *I : CLASS##s) \ 67 I->dropAllReferences(); 68 #include "llvm/IR/Metadata.def" 69 70 // Also drop references that come from the Value bridges. 71 for (auto &Pair : ValuesAsMetadata) 72 Pair.second->dropUsers(); 73 for (auto &Pair : MetadataAsValues) 74 Pair.second->dropUse(); 75 76 // Destroy MDNodes. 77 for (MDNode *I : DistinctMDNodes) 78 I->deleteAsSubclass(); 79 #define HANDLE_MDNODE_LEAF_UNIQUABLE(CLASS) \ 80 for (CLASS * I : CLASS##s) \ 81 delete I; 82 #include "llvm/IR/Metadata.def" 83 84 // Free the constants. 85 for (auto *I : ExprConstants) 86 I->dropAllReferences(); 87 for (auto *I : ArrayConstants) 88 I->dropAllReferences(); 89 for (auto *I : StructConstants) 90 I->dropAllReferences(); 91 for (auto *I : VectorConstants) 92 I->dropAllReferences(); 93 ExprConstants.freeConstants(); 94 ArrayConstants.freeConstants(); 95 StructConstants.freeConstants(); 96 VectorConstants.freeConstants(); 97 DeleteContainerSeconds(CAZConstants); 98 DeleteContainerSeconds(CPNConstants); 99 DeleteContainerSeconds(UVConstants); 100 InlineAsms.freeConstants(); 101 DeleteContainerSeconds(IntConstants); 102 DeleteContainerSeconds(FPConstants); 103 104 for (auto &CDSConstant : CDSConstants) 105 delete CDSConstant.second; 106 CDSConstants.clear(); 107 108 // Destroy attributes. 109 for (FoldingSetIterator<AttributeImpl> I = AttrsSet.begin(), 110 E = AttrsSet.end(); I != E; ) { 111 FoldingSetIterator<AttributeImpl> Elem = I++; 112 delete &*Elem; 113 } 114 115 // Destroy attribute lists. 116 for (FoldingSetIterator<AttributeSetImpl> I = AttrsLists.begin(), 117 E = AttrsLists.end(); I != E; ) { 118 FoldingSetIterator<AttributeSetImpl> Elem = I++; 119 delete &*Elem; 120 } 121 122 // Destroy attribute node lists. 123 for (FoldingSetIterator<AttributeSetNode> I = AttrsSetNodes.begin(), 124 E = AttrsSetNodes.end(); I != E; ) { 125 FoldingSetIterator<AttributeSetNode> Elem = I++; 126 delete &*Elem; 127 } 128 129 // Destroy MetadataAsValues. 130 { 131 SmallVector<MetadataAsValue *, 8> MDVs; 132 MDVs.reserve(MetadataAsValues.size()); 133 for (auto &Pair : MetadataAsValues) 134 MDVs.push_back(Pair.second); 135 MetadataAsValues.clear(); 136 for (auto *V : MDVs) 137 delete V; 138 } 139 140 // Destroy ValuesAsMetadata. 141 for (auto &Pair : ValuesAsMetadata) 142 delete Pair.second; 143 } 144 145 void LLVMContextImpl::dropTriviallyDeadConstantArrays() { 146 bool Changed; 147 do { 148 Changed = false; 149 150 for (auto I = ArrayConstants.begin(), E = ArrayConstants.end(); I != E;) { 151 auto *C = *I++; 152 if (C->use_empty()) { 153 Changed = true; 154 C->destroyConstant(); 155 } 156 } 157 158 } while (Changed); 159 } 160 161 void Module::dropTriviallyDeadConstantArrays() { 162 Context.pImpl->dropTriviallyDeadConstantArrays(); 163 } 164 165 namespace llvm { 166 /// \brief Make MDOperand transparent for hashing. 167 /// 168 /// This overload of an implementation detail of the hashing library makes 169 /// MDOperand hash to the same value as a \a Metadata pointer. 170 /// 171 /// Note that overloading \a hash_value() as follows: 172 /// 173 /// \code 174 /// size_t hash_value(const MDOperand &X) { return hash_value(X.get()); } 175 /// \endcode 176 /// 177 /// does not cause MDOperand to be transparent. In particular, a bare pointer 178 /// doesn't get hashed before it's combined, whereas \a MDOperand would. 179 static const Metadata *get_hashable_data(const MDOperand &X) { return X.get(); } 180 } 181 182 unsigned MDNodeOpsKey::calculateHash(MDNode *N, unsigned Offset) { 183 unsigned Hash = hash_combine_range(N->op_begin() + Offset, N->op_end()); 184 #ifndef NDEBUG 185 { 186 SmallVector<Metadata *, 8> MDs(N->op_begin() + Offset, N->op_end()); 187 unsigned RawHash = calculateHash(MDs); 188 assert(Hash == RawHash && 189 "Expected hash of MDOperand to equal hash of Metadata*"); 190 } 191 #endif 192 return Hash; 193 } 194 195 unsigned MDNodeOpsKey::calculateHash(ArrayRef<Metadata *> Ops) { 196 return hash_combine_range(Ops.begin(), Ops.end()); 197 } 198 199 StringMapEntry<uint32_t> *LLVMContextImpl::getOrInsertBundleTag(StringRef Tag) { 200 uint32_t NewIdx = BundleTagCache.size(); 201 return &*(BundleTagCache.insert(std::make_pair(Tag, NewIdx)).first); 202 } 203 204 void LLVMContextImpl::getOperandBundleTags(SmallVectorImpl<StringRef> &Tags) const { 205 Tags.resize(BundleTagCache.size()); 206 for (const auto &T : BundleTagCache) 207 Tags[T.second] = T.first(); 208 } 209 210 uint32_t LLVMContextImpl::getOperandBundleTagID(StringRef Tag) const { 211 auto I = BundleTagCache.find(Tag); 212 assert(I != BundleTagCache.end() && "Unknown tag!"); 213 return I->second; 214 } 215 216 // ConstantsContext anchors 217 void UnaryConstantExpr::anchor() { } 218 219 void BinaryConstantExpr::anchor() { } 220 221 void SelectConstantExpr::anchor() { } 222 223 void ExtractElementConstantExpr::anchor() { } 224 225 void InsertElementConstantExpr::anchor() { } 226 227 void ShuffleVectorConstantExpr::anchor() { } 228 229 void ExtractValueConstantExpr::anchor() { } 230 231 void InsertValueConstantExpr::anchor() { } 232 233 void GetElementPtrConstantExpr::anchor() { } 234 235 void CompareConstantExpr::anchor() { } 236 237 /// Singleton instance of the OptBisect class. 238 /// 239 /// This singleton is accessed via the LLVMContext::getOptBisect() function. It 240 /// provides a mechanism to disable passes and individual optimizations at 241 /// compile time based on a command line option (-opt-bisect-limit) in order to 242 /// perform a bisecting search for optimization-related problems. 243 /// 244 /// Even if multiple LLVMContext objects are created, they will all return the 245 /// same instance of OptBisect in order to provide a single bisect count. Any 246 /// code that uses the OptBisect object should be serialized when bisection is 247 /// enabled in order to enable a consistent bisect count. 248 static ManagedStatic<OptBisect> OptBisector; 249 250 OptBisect &LLVMContextImpl::getOptBisect() { 251 return *OptBisector; 252 } 253