1 //===- Module.cpp - Implement the Module class ----------------------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // This file implements the Module class for the IR library. 10 // 11 //===----------------------------------------------------------------------===// 12 13 #include "llvm/IR/Module.h" 14 #include "SymbolTableListTraitsImpl.h" 15 #include "llvm/ADT/SmallString.h" 16 #include "llvm/ADT/SmallVector.h" 17 #include "llvm/ADT/StringMap.h" 18 #include "llvm/ADT/StringRef.h" 19 #include "llvm/ADT/Twine.h" 20 #include "llvm/IR/Attributes.h" 21 #include "llvm/IR/Comdat.h" 22 #include "llvm/IR/Constants.h" 23 #include "llvm/IR/DataLayout.h" 24 #include "llvm/IR/DebugInfoMetadata.h" 25 #include "llvm/IR/DerivedTypes.h" 26 #include "llvm/IR/Function.h" 27 #include "llvm/IR/GVMaterializer.h" 28 #include "llvm/IR/GlobalAlias.h" 29 #include "llvm/IR/GlobalIFunc.h" 30 #include "llvm/IR/GlobalValue.h" 31 #include "llvm/IR/GlobalVariable.h" 32 #include "llvm/IR/LLVMContext.h" 33 #include "llvm/IR/Metadata.h" 34 #include "llvm/IR/ModuleSummaryIndex.h" 35 #include "llvm/IR/SymbolTableListTraits.h" 36 #include "llvm/IR/Type.h" 37 #include "llvm/IR/TypeFinder.h" 38 #include "llvm/IR/Value.h" 39 #include "llvm/IR/ValueSymbolTable.h" 40 #include "llvm/Support/Casting.h" 41 #include "llvm/Support/CodeGen.h" 42 #include "llvm/Support/Error.h" 43 #include "llvm/Support/MemoryBuffer.h" 44 #include "llvm/Support/Path.h" 45 #include "llvm/Support/RandomNumberGenerator.h" 46 #include "llvm/Support/VersionTuple.h" 47 #include <algorithm> 48 #include <cassert> 49 #include <cstdint> 50 #include <memory> 51 #include <optional> 52 #include <utility> 53 #include <vector> 54 55 using namespace llvm; 56 57 extern cl::opt<bool> UseNewDbgInfoFormat; 58 59 //===----------------------------------------------------------------------===// 60 // Methods to implement the globals and functions lists. 61 // 62 63 // Explicit instantiations of SymbolTableListTraits since some of the methods 64 // are not in the public header file. 65 template class llvm::SymbolTableListTraits<Function>; 66 template class llvm::SymbolTableListTraits<GlobalVariable>; 67 template class llvm::SymbolTableListTraits<GlobalAlias>; 68 template class llvm::SymbolTableListTraits<GlobalIFunc>; 69 70 //===----------------------------------------------------------------------===// 71 // Primitive Module methods. 72 // 73 74 Module::Module(StringRef MID, LLVMContext &C) 75 : Context(C), ValSymTab(std::make_unique<ValueSymbolTable>(-1)), 76 ModuleID(std::string(MID)), SourceFileName(std::string(MID)), DL(""), 77 IsNewDbgInfoFormat(UseNewDbgInfoFormat) { 78 Context.addModule(this); 79 } 80 81 Module::~Module() { 82 Context.removeModule(this); 83 dropAllReferences(); 84 GlobalList.clear(); 85 FunctionList.clear(); 86 AliasList.clear(); 87 IFuncList.clear(); 88 } 89 90 void Module::removeDebugIntrinsicDeclarations() { 91 auto *DeclareIntrinsicFn = 92 Intrinsic::getDeclaration(this, Intrinsic::dbg_declare); 93 assert((!isMaterialized() || DeclareIntrinsicFn->hasZeroLiveUses()) && 94 "Debug declare intrinsic should have had uses removed."); 95 DeclareIntrinsicFn->eraseFromParent(); 96 auto *ValueIntrinsicFn = 97 Intrinsic::getDeclaration(this, Intrinsic::dbg_value); 98 assert((!isMaterialized() || ValueIntrinsicFn->hasZeroLiveUses()) && 99 "Debug value intrinsic should have had uses removed."); 100 ValueIntrinsicFn->eraseFromParent(); 101 auto *AssignIntrinsicFn = 102 Intrinsic::getDeclaration(this, Intrinsic::dbg_assign); 103 assert((!isMaterialized() || AssignIntrinsicFn->hasZeroLiveUses()) && 104 "Debug assign intrinsic should have had uses removed."); 105 AssignIntrinsicFn->eraseFromParent(); 106 auto *LabelntrinsicFn = Intrinsic::getDeclaration(this, Intrinsic::dbg_label); 107 assert((!isMaterialized() || LabelntrinsicFn->hasZeroLiveUses()) && 108 "Debug label intrinsic should have had uses removed."); 109 LabelntrinsicFn->eraseFromParent(); 110 } 111 112 std::unique_ptr<RandomNumberGenerator> 113 Module::createRNG(const StringRef Name) const { 114 SmallString<32> Salt(Name); 115 116 // This RNG is guaranteed to produce the same random stream only 117 // when the Module ID and thus the input filename is the same. This 118 // might be problematic if the input filename extension changes 119 // (e.g. from .c to .bc or .ll). 120 // 121 // We could store this salt in NamedMetadata, but this would make 122 // the parameter non-const. This would unfortunately make this 123 // interface unusable by any Machine passes, since they only have a 124 // const reference to their IR Module. Alternatively we can always 125 // store salt metadata from the Module constructor. 126 Salt += sys::path::filename(getModuleIdentifier()); 127 128 return std::unique_ptr<RandomNumberGenerator>( 129 new RandomNumberGenerator(Salt)); 130 } 131 132 /// getNamedValue - Return the first global value in the module with 133 /// the specified name, of arbitrary type. This method returns null 134 /// if a global with the specified name is not found. 135 GlobalValue *Module::getNamedValue(StringRef Name) const { 136 return cast_or_null<GlobalValue>(getValueSymbolTable().lookup(Name)); 137 } 138 139 unsigned Module::getNumNamedValues() const { 140 return getValueSymbolTable().size(); 141 } 142 143 /// getMDKindID - Return a unique non-zero ID for the specified metadata kind. 144 /// This ID is uniqued across modules in the current LLVMContext. 145 unsigned Module::getMDKindID(StringRef Name) const { 146 return Context.getMDKindID(Name); 147 } 148 149 /// getMDKindNames - Populate client supplied SmallVector with the name for 150 /// custom metadata IDs registered in this LLVMContext. ID #0 is not used, 151 /// so it is filled in as an empty string. 152 void Module::getMDKindNames(SmallVectorImpl<StringRef> &Result) const { 153 return Context.getMDKindNames(Result); 154 } 155 156 void Module::getOperandBundleTags(SmallVectorImpl<StringRef> &Result) const { 157 return Context.getOperandBundleTags(Result); 158 } 159 160 //===----------------------------------------------------------------------===// 161 // Methods for easy access to the functions in the module. 162 // 163 164 // getOrInsertFunction - Look up the specified function in the module symbol 165 // table. If it does not exist, add a prototype for the function and return 166 // it. This is nice because it allows most passes to get away with not handling 167 // the symbol table directly for this common task. 168 // 169 FunctionCallee Module::getOrInsertFunction(StringRef Name, FunctionType *Ty, 170 AttributeList AttributeList) { 171 // See if we have a definition for the specified function already. 172 GlobalValue *F = getNamedValue(Name); 173 if (!F) { 174 // Nope, add it 175 Function *New = Function::Create(Ty, GlobalVariable::ExternalLinkage, 176 DL.getProgramAddressSpace(), Name, this); 177 if (!New->isIntrinsic()) // Intrinsics get attrs set on construction 178 New->setAttributes(AttributeList); 179 return {Ty, New}; // Return the new prototype. 180 } 181 182 // Otherwise, we just found the existing function or a prototype. 183 return {Ty, F}; 184 } 185 186 FunctionCallee Module::getOrInsertFunction(StringRef Name, FunctionType *Ty) { 187 return getOrInsertFunction(Name, Ty, AttributeList()); 188 } 189 190 // getFunction - Look up the specified function in the module symbol table. 191 // If it does not exist, return null. 192 // 193 Function *Module::getFunction(StringRef Name) const { 194 return dyn_cast_or_null<Function>(getNamedValue(Name)); 195 } 196 197 //===----------------------------------------------------------------------===// 198 // Methods for easy access to the global variables in the module. 199 // 200 201 /// getGlobalVariable - Look up the specified global variable in the module 202 /// symbol table. If it does not exist, return null. The type argument 203 /// should be the underlying type of the global, i.e., it should not have 204 /// the top-level PointerType, which represents the address of the global. 205 /// If AllowLocal is set to true, this function will return types that 206 /// have an local. By default, these types are not returned. 207 /// 208 GlobalVariable *Module::getGlobalVariable(StringRef Name, 209 bool AllowLocal) const { 210 if (GlobalVariable *Result = 211 dyn_cast_or_null<GlobalVariable>(getNamedValue(Name))) 212 if (AllowLocal || !Result->hasLocalLinkage()) 213 return Result; 214 return nullptr; 215 } 216 217 /// getOrInsertGlobal - Look up the specified global in the module symbol table. 218 /// 1. If it does not exist, add a declaration of the global and return it. 219 /// 2. Else, the global exists but has the wrong type: return the function 220 /// with a constantexpr cast to the right type. 221 /// 3. Finally, if the existing global is the correct declaration, return the 222 /// existing global. 223 Constant *Module::getOrInsertGlobal( 224 StringRef Name, Type *Ty, 225 function_ref<GlobalVariable *()> CreateGlobalCallback) { 226 // See if we have a definition for the specified global already. 227 GlobalVariable *GV = dyn_cast_or_null<GlobalVariable>(getNamedValue(Name)); 228 if (!GV) 229 GV = CreateGlobalCallback(); 230 assert(GV && "The CreateGlobalCallback is expected to create a global"); 231 232 // Otherwise, we just found the existing function or a prototype. 233 return GV; 234 } 235 236 // Overload to construct a global variable using its constructor's defaults. 237 Constant *Module::getOrInsertGlobal(StringRef Name, Type *Ty) { 238 return getOrInsertGlobal(Name, Ty, [&] { 239 return new GlobalVariable(*this, Ty, false, GlobalVariable::ExternalLinkage, 240 nullptr, Name); 241 }); 242 } 243 244 //===----------------------------------------------------------------------===// 245 // Methods for easy access to the global variables in the module. 246 // 247 248 // getNamedAlias - Look up the specified global in the module symbol table. 249 // If it does not exist, return null. 250 // 251 GlobalAlias *Module::getNamedAlias(StringRef Name) const { 252 return dyn_cast_or_null<GlobalAlias>(getNamedValue(Name)); 253 } 254 255 GlobalIFunc *Module::getNamedIFunc(StringRef Name) const { 256 return dyn_cast_or_null<GlobalIFunc>(getNamedValue(Name)); 257 } 258 259 /// getNamedMetadata - Return the first NamedMDNode in the module with the 260 /// specified name. This method returns null if a NamedMDNode with the 261 /// specified name is not found. 262 NamedMDNode *Module::getNamedMetadata(const Twine &Name) const { 263 SmallString<256> NameData; 264 StringRef NameRef = Name.toStringRef(NameData); 265 return NamedMDSymTab.lookup(NameRef); 266 } 267 268 /// getOrInsertNamedMetadata - Return the first named MDNode in the module 269 /// with the specified name. This method returns a new NamedMDNode if a 270 /// NamedMDNode with the specified name is not found. 271 NamedMDNode *Module::getOrInsertNamedMetadata(StringRef Name) { 272 NamedMDNode *&NMD = NamedMDSymTab[Name]; 273 if (!NMD) { 274 NMD = new NamedMDNode(Name); 275 NMD->setParent(this); 276 insertNamedMDNode(NMD); 277 } 278 return NMD; 279 } 280 281 /// eraseNamedMetadata - Remove the given NamedMDNode from this module and 282 /// delete it. 283 void Module::eraseNamedMetadata(NamedMDNode *NMD) { 284 NamedMDSymTab.erase(NMD->getName()); 285 eraseNamedMDNode(NMD); 286 } 287 288 bool Module::isValidModFlagBehavior(Metadata *MD, ModFlagBehavior &MFB) { 289 if (ConstantInt *Behavior = mdconst::dyn_extract_or_null<ConstantInt>(MD)) { 290 uint64_t Val = Behavior->getLimitedValue(); 291 if (Val >= ModFlagBehaviorFirstVal && Val <= ModFlagBehaviorLastVal) { 292 MFB = static_cast<ModFlagBehavior>(Val); 293 return true; 294 } 295 } 296 return false; 297 } 298 299 bool Module::isValidModuleFlag(const MDNode &ModFlag, ModFlagBehavior &MFB, 300 MDString *&Key, Metadata *&Val) { 301 if (ModFlag.getNumOperands() < 3) 302 return false; 303 if (!isValidModFlagBehavior(ModFlag.getOperand(0), MFB)) 304 return false; 305 MDString *K = dyn_cast_or_null<MDString>(ModFlag.getOperand(1)); 306 if (!K) 307 return false; 308 Key = K; 309 Val = ModFlag.getOperand(2); 310 return true; 311 } 312 313 /// getModuleFlagsMetadata - Returns the module flags in the provided vector. 314 void Module:: 315 getModuleFlagsMetadata(SmallVectorImpl<ModuleFlagEntry> &Flags) const { 316 const NamedMDNode *ModFlags = getModuleFlagsMetadata(); 317 if (!ModFlags) return; 318 319 for (const MDNode *Flag : ModFlags->operands()) { 320 ModFlagBehavior MFB; 321 MDString *Key = nullptr; 322 Metadata *Val = nullptr; 323 if (isValidModuleFlag(*Flag, MFB, Key, Val)) { 324 // Check the operands of the MDNode before accessing the operands. 325 // The verifier will actually catch these failures. 326 Flags.push_back(ModuleFlagEntry(MFB, Key, Val)); 327 } 328 } 329 } 330 331 /// Return the corresponding value if Key appears in module flags, otherwise 332 /// return null. 333 Metadata *Module::getModuleFlag(StringRef Key) const { 334 SmallVector<Module::ModuleFlagEntry, 8> ModuleFlags; 335 getModuleFlagsMetadata(ModuleFlags); 336 for (const ModuleFlagEntry &MFE : ModuleFlags) { 337 if (Key == MFE.Key->getString()) 338 return MFE.Val; 339 } 340 return nullptr; 341 } 342 343 /// getModuleFlagsMetadata - Returns the NamedMDNode in the module that 344 /// represents module-level flags. This method returns null if there are no 345 /// module-level flags. 346 NamedMDNode *Module::getModuleFlagsMetadata() const { 347 return getNamedMetadata("llvm.module.flags"); 348 } 349 350 /// getOrInsertModuleFlagsMetadata - Returns the NamedMDNode in the module that 351 /// represents module-level flags. If module-level flags aren't found, it 352 /// creates the named metadata that contains them. 353 NamedMDNode *Module::getOrInsertModuleFlagsMetadata() { 354 return getOrInsertNamedMetadata("llvm.module.flags"); 355 } 356 357 /// addModuleFlag - Add a module-level flag to the module-level flags 358 /// metadata. It will create the module-level flags named metadata if it doesn't 359 /// already exist. 360 void Module::addModuleFlag(ModFlagBehavior Behavior, StringRef Key, 361 Metadata *Val) { 362 Type *Int32Ty = Type::getInt32Ty(Context); 363 Metadata *Ops[3] = { 364 ConstantAsMetadata::get(ConstantInt::get(Int32Ty, Behavior)), 365 MDString::get(Context, Key), Val}; 366 getOrInsertModuleFlagsMetadata()->addOperand(MDNode::get(Context, Ops)); 367 } 368 void Module::addModuleFlag(ModFlagBehavior Behavior, StringRef Key, 369 Constant *Val) { 370 addModuleFlag(Behavior, Key, ConstantAsMetadata::get(Val)); 371 } 372 void Module::addModuleFlag(ModFlagBehavior Behavior, StringRef Key, 373 uint32_t Val) { 374 Type *Int32Ty = Type::getInt32Ty(Context); 375 addModuleFlag(Behavior, Key, ConstantInt::get(Int32Ty, Val)); 376 } 377 void Module::addModuleFlag(MDNode *Node) { 378 assert(Node->getNumOperands() == 3 && 379 "Invalid number of operands for module flag!"); 380 assert(mdconst::hasa<ConstantInt>(Node->getOperand(0)) && 381 isa<MDString>(Node->getOperand(1)) && 382 "Invalid operand types for module flag!"); 383 getOrInsertModuleFlagsMetadata()->addOperand(Node); 384 } 385 386 void Module::setModuleFlag(ModFlagBehavior Behavior, StringRef Key, 387 Metadata *Val) { 388 NamedMDNode *ModFlags = getOrInsertModuleFlagsMetadata(); 389 // Replace the flag if it already exists. 390 for (unsigned I = 0, E = ModFlags->getNumOperands(); I != E; ++I) { 391 MDNode *Flag = ModFlags->getOperand(I); 392 ModFlagBehavior MFB; 393 MDString *K = nullptr; 394 Metadata *V = nullptr; 395 if (isValidModuleFlag(*Flag, MFB, K, V) && K->getString() == Key) { 396 Flag->replaceOperandWith(2, Val); 397 return; 398 } 399 } 400 addModuleFlag(Behavior, Key, Val); 401 } 402 void Module::setModuleFlag(ModFlagBehavior Behavior, StringRef Key, 403 Constant *Val) { 404 setModuleFlag(Behavior, Key, ConstantAsMetadata::get(Val)); 405 } 406 void Module::setModuleFlag(ModFlagBehavior Behavior, StringRef Key, 407 uint32_t Val) { 408 Type *Int32Ty = Type::getInt32Ty(Context); 409 setModuleFlag(Behavior, Key, ConstantInt::get(Int32Ty, Val)); 410 } 411 412 void Module::setDataLayout(StringRef Desc) { 413 DL.reset(Desc); 414 } 415 416 void Module::setDataLayout(const DataLayout &Other) { DL = Other; } 417 418 DICompileUnit *Module::debug_compile_units_iterator::operator*() const { 419 return cast<DICompileUnit>(CUs->getOperand(Idx)); 420 } 421 DICompileUnit *Module::debug_compile_units_iterator::operator->() const { 422 return cast<DICompileUnit>(CUs->getOperand(Idx)); 423 } 424 425 void Module::debug_compile_units_iterator::SkipNoDebugCUs() { 426 while (CUs && (Idx < CUs->getNumOperands()) && 427 ((*this)->getEmissionKind() == DICompileUnit::NoDebug)) 428 ++Idx; 429 } 430 431 iterator_range<Module::global_object_iterator> Module::global_objects() { 432 return concat<GlobalObject>(functions(), globals()); 433 } 434 iterator_range<Module::const_global_object_iterator> 435 Module::global_objects() const { 436 return concat<const GlobalObject>(functions(), globals()); 437 } 438 439 iterator_range<Module::global_value_iterator> Module::global_values() { 440 return concat<GlobalValue>(functions(), globals(), aliases(), ifuncs()); 441 } 442 iterator_range<Module::const_global_value_iterator> 443 Module::global_values() const { 444 return concat<const GlobalValue>(functions(), globals(), aliases(), ifuncs()); 445 } 446 447 //===----------------------------------------------------------------------===// 448 // Methods to control the materialization of GlobalValues in the Module. 449 // 450 void Module::setMaterializer(GVMaterializer *GVM) { 451 assert(!Materializer && 452 "Module already has a GVMaterializer. Call materializeAll" 453 " to clear it out before setting another one."); 454 Materializer.reset(GVM); 455 } 456 457 Error Module::materialize(GlobalValue *GV) { 458 if (!Materializer) 459 return Error::success(); 460 461 return Materializer->materialize(GV); 462 } 463 464 Error Module::materializeAll() { 465 if (!Materializer) 466 return Error::success(); 467 std::unique_ptr<GVMaterializer> M = std::move(Materializer); 468 return M->materializeModule(); 469 } 470 471 Error Module::materializeMetadata() { 472 if (!Materializer) 473 return Error::success(); 474 return Materializer->materializeMetadata(); 475 } 476 477 //===----------------------------------------------------------------------===// 478 // Other module related stuff. 479 // 480 481 std::vector<StructType *> Module::getIdentifiedStructTypes() const { 482 // If we have a materializer, it is possible that some unread function 483 // uses a type that is currently not visible to a TypeFinder, so ask 484 // the materializer which types it created. 485 if (Materializer) 486 return Materializer->getIdentifiedStructTypes(); 487 488 std::vector<StructType *> Ret; 489 TypeFinder SrcStructTypes; 490 SrcStructTypes.run(*this, true); 491 Ret.assign(SrcStructTypes.begin(), SrcStructTypes.end()); 492 return Ret; 493 } 494 495 std::string Module::getUniqueIntrinsicName(StringRef BaseName, Intrinsic::ID Id, 496 const FunctionType *Proto) { 497 auto Encode = [&BaseName](unsigned Suffix) { 498 return (Twine(BaseName) + "." + Twine(Suffix)).str(); 499 }; 500 501 { 502 // fast path - the prototype is already known 503 auto UinItInserted = UniquedIntrinsicNames.insert({{Id, Proto}, 0}); 504 if (!UinItInserted.second) 505 return Encode(UinItInserted.first->second); 506 } 507 508 // Not known yet. A new entry was created with index 0. Check if there already 509 // exists a matching declaration, or select a new entry. 510 511 // Start looking for names with the current known maximum count (or 0). 512 auto NiidItInserted = CurrentIntrinsicIds.insert({BaseName, 0}); 513 unsigned Count = NiidItInserted.first->second; 514 515 // This might be slow if a whole population of intrinsics already existed, but 516 // we cache the values for later usage. 517 std::string NewName; 518 while (true) { 519 NewName = Encode(Count); 520 GlobalValue *F = getNamedValue(NewName); 521 if (!F) { 522 // Reserve this entry for the new proto 523 UniquedIntrinsicNames[{Id, Proto}] = Count; 524 break; 525 } 526 527 // A declaration with this name already exists. Remember it. 528 FunctionType *FT = dyn_cast<FunctionType>(F->getValueType()); 529 auto UinItInserted = UniquedIntrinsicNames.insert({{Id, FT}, Count}); 530 if (FT == Proto) { 531 // It was a declaration for our prototype. This entry was allocated in the 532 // beginning. Update the count to match the existing declaration. 533 UinItInserted.first->second = Count; 534 break; 535 } 536 537 ++Count; 538 } 539 540 NiidItInserted.first->second = Count + 1; 541 542 return NewName; 543 } 544 545 // dropAllReferences() - This function causes all the subelements to "let go" 546 // of all references that they are maintaining. This allows one to 'delete' a 547 // whole module at a time, even though there may be circular references... first 548 // all references are dropped, and all use counts go to zero. Then everything 549 // is deleted for real. Note that no operations are valid on an object that 550 // has "dropped all references", except operator delete. 551 // 552 void Module::dropAllReferences() { 553 for (Function &F : *this) 554 F.dropAllReferences(); 555 556 for (GlobalVariable &GV : globals()) 557 GV.dropAllReferences(); 558 559 for (GlobalAlias &GA : aliases()) 560 GA.dropAllReferences(); 561 562 for (GlobalIFunc &GIF : ifuncs()) 563 GIF.dropAllReferences(); 564 } 565 566 unsigned Module::getNumberRegisterParameters() const { 567 auto *Val = 568 cast_or_null<ConstantAsMetadata>(getModuleFlag("NumRegisterParameters")); 569 if (!Val) 570 return 0; 571 return cast<ConstantInt>(Val->getValue())->getZExtValue(); 572 } 573 574 unsigned Module::getDwarfVersion() const { 575 auto *Val = cast_or_null<ConstantAsMetadata>(getModuleFlag("Dwarf Version")); 576 if (!Val) 577 return 0; 578 return cast<ConstantInt>(Val->getValue())->getZExtValue(); 579 } 580 581 bool Module::isDwarf64() const { 582 auto *Val = cast_or_null<ConstantAsMetadata>(getModuleFlag("DWARF64")); 583 return Val && cast<ConstantInt>(Val->getValue())->isOne(); 584 } 585 586 unsigned Module::getCodeViewFlag() const { 587 auto *Val = cast_or_null<ConstantAsMetadata>(getModuleFlag("CodeView")); 588 if (!Val) 589 return 0; 590 return cast<ConstantInt>(Val->getValue())->getZExtValue(); 591 } 592 593 unsigned Module::getInstructionCount() const { 594 unsigned NumInstrs = 0; 595 for (const Function &F : FunctionList) 596 NumInstrs += F.getInstructionCount(); 597 return NumInstrs; 598 } 599 600 Comdat *Module::getOrInsertComdat(StringRef Name) { 601 auto &Entry = *ComdatSymTab.insert(std::make_pair(Name, Comdat())).first; 602 Entry.second.Name = &Entry; 603 return &Entry.second; 604 } 605 606 PICLevel::Level Module::getPICLevel() const { 607 auto *Val = cast_or_null<ConstantAsMetadata>(getModuleFlag("PIC Level")); 608 609 if (!Val) 610 return PICLevel::NotPIC; 611 612 return static_cast<PICLevel::Level>( 613 cast<ConstantInt>(Val->getValue())->getZExtValue()); 614 } 615 616 void Module::setPICLevel(PICLevel::Level PL) { 617 // The merge result of a non-PIC object and a PIC object can only be reliably 618 // used as a non-PIC object, so use the Min merge behavior. 619 addModuleFlag(ModFlagBehavior::Min, "PIC Level", PL); 620 } 621 622 PIELevel::Level Module::getPIELevel() const { 623 auto *Val = cast_or_null<ConstantAsMetadata>(getModuleFlag("PIE Level")); 624 625 if (!Val) 626 return PIELevel::Default; 627 628 return static_cast<PIELevel::Level>( 629 cast<ConstantInt>(Val->getValue())->getZExtValue()); 630 } 631 632 void Module::setPIELevel(PIELevel::Level PL) { 633 addModuleFlag(ModFlagBehavior::Max, "PIE Level", PL); 634 } 635 636 std::optional<CodeModel::Model> Module::getCodeModel() const { 637 auto *Val = cast_or_null<ConstantAsMetadata>(getModuleFlag("Code Model")); 638 639 if (!Val) 640 return std::nullopt; 641 642 return static_cast<CodeModel::Model>( 643 cast<ConstantInt>(Val->getValue())->getZExtValue()); 644 } 645 646 void Module::setCodeModel(CodeModel::Model CL) { 647 // Linking object files with different code models is undefined behavior 648 // because the compiler would have to generate additional code (to span 649 // longer jumps) if a larger code model is used with a smaller one. 650 // Therefore we will treat attempts to mix code models as an error. 651 addModuleFlag(ModFlagBehavior::Error, "Code Model", CL); 652 } 653 654 std::optional<uint64_t> Module::getLargeDataThreshold() const { 655 auto *Val = 656 cast_or_null<ConstantAsMetadata>(getModuleFlag("Large Data Threshold")); 657 658 if (!Val) 659 return std::nullopt; 660 661 return cast<ConstantInt>(Val->getValue())->getZExtValue(); 662 } 663 664 void Module::setLargeDataThreshold(uint64_t Threshold) { 665 // Since the large data threshold goes along with the code model, the merge 666 // behavior is the same. 667 addModuleFlag(ModFlagBehavior::Error, "Large Data Threshold", 668 ConstantInt::get(Type::getInt64Ty(Context), Threshold)); 669 } 670 671 void Module::setProfileSummary(Metadata *M, ProfileSummary::Kind Kind) { 672 if (Kind == ProfileSummary::PSK_CSInstr) 673 setModuleFlag(ModFlagBehavior::Error, "CSProfileSummary", M); 674 else 675 setModuleFlag(ModFlagBehavior::Error, "ProfileSummary", M); 676 } 677 678 Metadata *Module::getProfileSummary(bool IsCS) const { 679 return (IsCS ? getModuleFlag("CSProfileSummary") 680 : getModuleFlag("ProfileSummary")); 681 } 682 683 bool Module::getSemanticInterposition() const { 684 Metadata *MF = getModuleFlag("SemanticInterposition"); 685 686 auto *Val = cast_or_null<ConstantAsMetadata>(MF); 687 if (!Val) 688 return false; 689 690 return cast<ConstantInt>(Val->getValue())->getZExtValue(); 691 } 692 693 void Module::setSemanticInterposition(bool SI) { 694 addModuleFlag(ModFlagBehavior::Error, "SemanticInterposition", SI); 695 } 696 697 void Module::setOwnedMemoryBuffer(std::unique_ptr<MemoryBuffer> MB) { 698 OwnedMemoryBuffer = std::move(MB); 699 } 700 701 bool Module::getRtLibUseGOT() const { 702 auto *Val = cast_or_null<ConstantAsMetadata>(getModuleFlag("RtLibUseGOT")); 703 return Val && (cast<ConstantInt>(Val->getValue())->getZExtValue() > 0); 704 } 705 706 void Module::setRtLibUseGOT() { 707 addModuleFlag(ModFlagBehavior::Max, "RtLibUseGOT", 1); 708 } 709 710 bool Module::getDirectAccessExternalData() const { 711 auto *Val = cast_or_null<ConstantAsMetadata>( 712 getModuleFlag("direct-access-external-data")); 713 if (Val) 714 return cast<ConstantInt>(Val->getValue())->getZExtValue() > 0; 715 return getPICLevel() == PICLevel::NotPIC; 716 } 717 718 void Module::setDirectAccessExternalData(bool Value) { 719 addModuleFlag(ModFlagBehavior::Max, "direct-access-external-data", Value); 720 } 721 722 UWTableKind Module::getUwtable() const { 723 if (auto *Val = cast_or_null<ConstantAsMetadata>(getModuleFlag("uwtable"))) 724 return UWTableKind(cast<ConstantInt>(Val->getValue())->getZExtValue()); 725 return UWTableKind::None; 726 } 727 728 void Module::setUwtable(UWTableKind Kind) { 729 addModuleFlag(ModFlagBehavior::Max, "uwtable", uint32_t(Kind)); 730 } 731 732 FramePointerKind Module::getFramePointer() const { 733 auto *Val = cast_or_null<ConstantAsMetadata>(getModuleFlag("frame-pointer")); 734 return static_cast<FramePointerKind>( 735 Val ? cast<ConstantInt>(Val->getValue())->getZExtValue() : 0); 736 } 737 738 void Module::setFramePointer(FramePointerKind Kind) { 739 addModuleFlag(ModFlagBehavior::Max, "frame-pointer", static_cast<int>(Kind)); 740 } 741 742 StringRef Module::getStackProtectorGuard() const { 743 Metadata *MD = getModuleFlag("stack-protector-guard"); 744 if (auto *MDS = dyn_cast_or_null<MDString>(MD)) 745 return MDS->getString(); 746 return {}; 747 } 748 749 void Module::setStackProtectorGuard(StringRef Kind) { 750 MDString *ID = MDString::get(getContext(), Kind); 751 addModuleFlag(ModFlagBehavior::Error, "stack-protector-guard", ID); 752 } 753 754 StringRef Module::getStackProtectorGuardReg() const { 755 Metadata *MD = getModuleFlag("stack-protector-guard-reg"); 756 if (auto *MDS = dyn_cast_or_null<MDString>(MD)) 757 return MDS->getString(); 758 return {}; 759 } 760 761 void Module::setStackProtectorGuardReg(StringRef Reg) { 762 MDString *ID = MDString::get(getContext(), Reg); 763 addModuleFlag(ModFlagBehavior::Error, "stack-protector-guard-reg", ID); 764 } 765 766 StringRef Module::getStackProtectorGuardSymbol() const { 767 Metadata *MD = getModuleFlag("stack-protector-guard-symbol"); 768 if (auto *MDS = dyn_cast_or_null<MDString>(MD)) 769 return MDS->getString(); 770 return {}; 771 } 772 773 void Module::setStackProtectorGuardSymbol(StringRef Symbol) { 774 MDString *ID = MDString::get(getContext(), Symbol); 775 addModuleFlag(ModFlagBehavior::Error, "stack-protector-guard-symbol", ID); 776 } 777 778 int Module::getStackProtectorGuardOffset() const { 779 Metadata *MD = getModuleFlag("stack-protector-guard-offset"); 780 if (auto *CI = mdconst::dyn_extract_or_null<ConstantInt>(MD)) 781 return CI->getSExtValue(); 782 return INT_MAX; 783 } 784 785 void Module::setStackProtectorGuardOffset(int Offset) { 786 addModuleFlag(ModFlagBehavior::Error, "stack-protector-guard-offset", Offset); 787 } 788 789 unsigned Module::getOverrideStackAlignment() const { 790 Metadata *MD = getModuleFlag("override-stack-alignment"); 791 if (auto *CI = mdconst::dyn_extract_or_null<ConstantInt>(MD)) 792 return CI->getZExtValue(); 793 return 0; 794 } 795 796 unsigned Module::getMaxTLSAlignment() const { 797 Metadata *MD = getModuleFlag("MaxTLSAlign"); 798 if (auto *CI = mdconst::dyn_extract_or_null<ConstantInt>(MD)) 799 return CI->getZExtValue(); 800 return 0; 801 } 802 803 void Module::setOverrideStackAlignment(unsigned Align) { 804 addModuleFlag(ModFlagBehavior::Error, "override-stack-alignment", Align); 805 } 806 807 static void addSDKVersionMD(const VersionTuple &V, Module &M, StringRef Name) { 808 SmallVector<unsigned, 3> Entries; 809 Entries.push_back(V.getMajor()); 810 if (auto Minor = V.getMinor()) { 811 Entries.push_back(*Minor); 812 if (auto Subminor = V.getSubminor()) 813 Entries.push_back(*Subminor); 814 // Ignore the 'build' component as it can't be represented in the object 815 // file. 816 } 817 M.addModuleFlag(Module::ModFlagBehavior::Warning, Name, 818 ConstantDataArray::get(M.getContext(), Entries)); 819 } 820 821 void Module::setSDKVersion(const VersionTuple &V) { 822 addSDKVersionMD(V, *this, "SDK Version"); 823 } 824 825 static VersionTuple getSDKVersionMD(Metadata *MD) { 826 auto *CM = dyn_cast_or_null<ConstantAsMetadata>(MD); 827 if (!CM) 828 return {}; 829 auto *Arr = dyn_cast_or_null<ConstantDataArray>(CM->getValue()); 830 if (!Arr) 831 return {}; 832 auto getVersionComponent = [&](unsigned Index) -> std::optional<unsigned> { 833 if (Index >= Arr->getNumElements()) 834 return std::nullopt; 835 return (unsigned)Arr->getElementAsInteger(Index); 836 }; 837 auto Major = getVersionComponent(0); 838 if (!Major) 839 return {}; 840 VersionTuple Result = VersionTuple(*Major); 841 if (auto Minor = getVersionComponent(1)) { 842 Result = VersionTuple(*Major, *Minor); 843 if (auto Subminor = getVersionComponent(2)) { 844 Result = VersionTuple(*Major, *Minor, *Subminor); 845 } 846 } 847 return Result; 848 } 849 850 VersionTuple Module::getSDKVersion() const { 851 return getSDKVersionMD(getModuleFlag("SDK Version")); 852 } 853 854 GlobalVariable *llvm::collectUsedGlobalVariables( 855 const Module &M, SmallVectorImpl<GlobalValue *> &Vec, bool CompilerUsed) { 856 const char *Name = CompilerUsed ? "llvm.compiler.used" : "llvm.used"; 857 GlobalVariable *GV = M.getGlobalVariable(Name); 858 if (!GV || !GV->hasInitializer()) 859 return GV; 860 861 const ConstantArray *Init = cast<ConstantArray>(GV->getInitializer()); 862 for (Value *Op : Init->operands()) { 863 GlobalValue *G = cast<GlobalValue>(Op->stripPointerCasts()); 864 Vec.push_back(G); 865 } 866 return GV; 867 } 868 869 void Module::setPartialSampleProfileRatio(const ModuleSummaryIndex &Index) { 870 if (auto *SummaryMD = getProfileSummary(/*IsCS*/ false)) { 871 std::unique_ptr<ProfileSummary> ProfileSummary( 872 ProfileSummary::getFromMD(SummaryMD)); 873 if (ProfileSummary) { 874 if (ProfileSummary->getKind() != ProfileSummary::PSK_Sample || 875 !ProfileSummary->isPartialProfile()) 876 return; 877 uint64_t BlockCount = Index.getBlockCount(); 878 uint32_t NumCounts = ProfileSummary->getNumCounts(); 879 if (!NumCounts) 880 return; 881 double Ratio = (double)BlockCount / NumCounts; 882 ProfileSummary->setPartialProfileRatio(Ratio); 883 setProfileSummary(ProfileSummary->getMD(getContext()), 884 ProfileSummary::PSK_Sample); 885 } 886 } 887 } 888 889 StringRef Module::getDarwinTargetVariantTriple() const { 890 if (const auto *MD = getModuleFlag("darwin.target_variant.triple")) 891 return cast<MDString>(MD)->getString(); 892 return ""; 893 } 894 895 void Module::setDarwinTargetVariantTriple(StringRef T) { 896 addModuleFlag(ModFlagBehavior::Warning, "darwin.target_variant.triple", 897 MDString::get(getContext(), T)); 898 } 899 900 VersionTuple Module::getDarwinTargetVariantSDKVersion() const { 901 return getSDKVersionMD(getModuleFlag("darwin.target_variant.SDK Version")); 902 } 903 904 void Module::setDarwinTargetVariantSDKVersion(VersionTuple Version) { 905 addSDKVersionMD(Version, *this, "darwin.target_variant.SDK Version"); 906 } 907