1 //===- AsmWriter.cpp - Printing LLVM as an assembly file ------------------===// 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 library implements `print` family of functions in classes like 10 // Module, Function, Value, etc. In-memory representation of those classes is 11 // converted to IR strings. 12 // 13 // Note that these routines must be extremely tolerant of various errors in the 14 // LLVM code, because it can be used for debugging transformations. 15 // 16 //===----------------------------------------------------------------------===// 17 18 #include "llvm/ADT/APFloat.h" 19 #include "llvm/ADT/APInt.h" 20 #include "llvm/ADT/ArrayRef.h" 21 #include "llvm/ADT/DenseMap.h" 22 #include "llvm/ADT/None.h" 23 #include "llvm/ADT/Optional.h" 24 #include "llvm/ADT/STLExtras.h" 25 #include "llvm/ADT/SetVector.h" 26 #include "llvm/ADT/SmallString.h" 27 #include "llvm/ADT/SmallVector.h" 28 #include "llvm/ADT/StringExtras.h" 29 #include "llvm/ADT/StringRef.h" 30 #include "llvm/ADT/iterator_range.h" 31 #include "llvm/BinaryFormat/Dwarf.h" 32 #include "llvm/Config/llvm-config.h" 33 #include "llvm/IR/Argument.h" 34 #include "llvm/IR/AssemblyAnnotationWriter.h" 35 #include "llvm/IR/Attributes.h" 36 #include "llvm/IR/BasicBlock.h" 37 #include "llvm/IR/CFG.h" 38 #include "llvm/IR/CallingConv.h" 39 #include "llvm/IR/Comdat.h" 40 #include "llvm/IR/Constant.h" 41 #include "llvm/IR/Constants.h" 42 #include "llvm/IR/DebugInfoMetadata.h" 43 #include "llvm/IR/DerivedTypes.h" 44 #include "llvm/IR/Function.h" 45 #include "llvm/IR/GlobalAlias.h" 46 #include "llvm/IR/GlobalIFunc.h" 47 #include "llvm/IR/GlobalIndirectSymbol.h" 48 #include "llvm/IR/GlobalObject.h" 49 #include "llvm/IR/GlobalValue.h" 50 #include "llvm/IR/GlobalVariable.h" 51 #include "llvm/IR/IRPrintingPasses.h" 52 #include "llvm/IR/InlineAsm.h" 53 #include "llvm/IR/InstrTypes.h" 54 #include "llvm/IR/Instruction.h" 55 #include "llvm/IR/Instructions.h" 56 #include "llvm/IR/LLVMContext.h" 57 #include "llvm/IR/Metadata.h" 58 #include "llvm/IR/Module.h" 59 #include "llvm/IR/ModuleSlotTracker.h" 60 #include "llvm/IR/ModuleSummaryIndex.h" 61 #include "llvm/IR/Operator.h" 62 #include "llvm/IR/Statepoint.h" 63 #include "llvm/IR/Type.h" 64 #include "llvm/IR/TypeFinder.h" 65 #include "llvm/IR/Use.h" 66 #include "llvm/IR/UseListOrder.h" 67 #include "llvm/IR/User.h" 68 #include "llvm/IR/Value.h" 69 #include "llvm/Support/AtomicOrdering.h" 70 #include "llvm/Support/Casting.h" 71 #include "llvm/Support/Compiler.h" 72 #include "llvm/Support/Debug.h" 73 #include "llvm/Support/ErrorHandling.h" 74 #include "llvm/Support/Format.h" 75 #include "llvm/Support/FormattedStream.h" 76 #include "llvm/Support/raw_ostream.h" 77 #include <algorithm> 78 #include <cassert> 79 #include <cctype> 80 #include <cstddef> 81 #include <cstdint> 82 #include <iterator> 83 #include <memory> 84 #include <string> 85 #include <tuple> 86 #include <utility> 87 #include <vector> 88 89 using namespace llvm; 90 91 // Make virtual table appear in this compilation unit. 92 AssemblyAnnotationWriter::~AssemblyAnnotationWriter() = default; 93 94 //===----------------------------------------------------------------------===// 95 // Helper Functions 96 //===----------------------------------------------------------------------===// 97 98 namespace { 99 100 struct OrderMap { 101 DenseMap<const Value *, std::pair<unsigned, bool>> IDs; 102 103 unsigned size() const { return IDs.size(); } 104 std::pair<unsigned, bool> &operator[](const Value *V) { return IDs[V]; } 105 106 std::pair<unsigned, bool> lookup(const Value *V) const { 107 return IDs.lookup(V); 108 } 109 110 void index(const Value *V) { 111 // Explicitly sequence get-size and insert-value operations to avoid UB. 112 unsigned ID = IDs.size() + 1; 113 IDs[V].first = ID; 114 } 115 }; 116 117 } // end anonymous namespace 118 119 static void orderValue(const Value *V, OrderMap &OM) { 120 if (OM.lookup(V).first) 121 return; 122 123 if (const Constant *C = dyn_cast<Constant>(V)) 124 if (C->getNumOperands() && !isa<GlobalValue>(C)) 125 for (const Value *Op : C->operands()) 126 if (!isa<BasicBlock>(Op) && !isa<GlobalValue>(Op)) 127 orderValue(Op, OM); 128 129 // Note: we cannot cache this lookup above, since inserting into the map 130 // changes the map's size, and thus affects the other IDs. 131 OM.index(V); 132 } 133 134 static OrderMap orderModule(const Module *M) { 135 // This needs to match the order used by ValueEnumerator::ValueEnumerator() 136 // and ValueEnumerator::incorporateFunction(). 137 OrderMap OM; 138 139 for (const GlobalVariable &G : M->globals()) { 140 if (G.hasInitializer()) 141 if (!isa<GlobalValue>(G.getInitializer())) 142 orderValue(G.getInitializer(), OM); 143 orderValue(&G, OM); 144 } 145 for (const GlobalAlias &A : M->aliases()) { 146 if (!isa<GlobalValue>(A.getAliasee())) 147 orderValue(A.getAliasee(), OM); 148 orderValue(&A, OM); 149 } 150 for (const GlobalIFunc &I : M->ifuncs()) { 151 if (!isa<GlobalValue>(I.getResolver())) 152 orderValue(I.getResolver(), OM); 153 orderValue(&I, OM); 154 } 155 for (const Function &F : *M) { 156 for (const Use &U : F.operands()) 157 if (!isa<GlobalValue>(U.get())) 158 orderValue(U.get(), OM); 159 160 orderValue(&F, OM); 161 162 if (F.isDeclaration()) 163 continue; 164 165 for (const Argument &A : F.args()) 166 orderValue(&A, OM); 167 for (const BasicBlock &BB : F) { 168 orderValue(&BB, OM); 169 for (const Instruction &I : BB) { 170 for (const Value *Op : I.operands()) 171 if ((isa<Constant>(*Op) && !isa<GlobalValue>(*Op)) || 172 isa<InlineAsm>(*Op)) 173 orderValue(Op, OM); 174 orderValue(&I, OM); 175 } 176 } 177 } 178 return OM; 179 } 180 181 static void predictValueUseListOrderImpl(const Value *V, const Function *F, 182 unsigned ID, const OrderMap &OM, 183 UseListOrderStack &Stack) { 184 // Predict use-list order for this one. 185 using Entry = std::pair<const Use *, unsigned>; 186 SmallVector<Entry, 64> List; 187 for (const Use &U : V->uses()) 188 // Check if this user will be serialized. 189 if (OM.lookup(U.getUser()).first) 190 List.push_back(std::make_pair(&U, List.size())); 191 192 if (List.size() < 2) 193 // We may have lost some users. 194 return; 195 196 bool GetsReversed = 197 !isa<GlobalVariable>(V) && !isa<Function>(V) && !isa<BasicBlock>(V); 198 if (auto *BA = dyn_cast<BlockAddress>(V)) 199 ID = OM.lookup(BA->getBasicBlock()).first; 200 llvm::sort(List, [&](const Entry &L, const Entry &R) { 201 const Use *LU = L.first; 202 const Use *RU = R.first; 203 if (LU == RU) 204 return false; 205 206 auto LID = OM.lookup(LU->getUser()).first; 207 auto RID = OM.lookup(RU->getUser()).first; 208 209 // If ID is 4, then expect: 7 6 5 1 2 3. 210 if (LID < RID) { 211 if (GetsReversed) 212 if (RID <= ID) 213 return true; 214 return false; 215 } 216 if (RID < LID) { 217 if (GetsReversed) 218 if (LID <= ID) 219 return false; 220 return true; 221 } 222 223 // LID and RID are equal, so we have different operands of the same user. 224 // Assume operands are added in order for all instructions. 225 if (GetsReversed) 226 if (LID <= ID) 227 return LU->getOperandNo() < RU->getOperandNo(); 228 return LU->getOperandNo() > RU->getOperandNo(); 229 }); 230 231 if (std::is_sorted( 232 List.begin(), List.end(), 233 [](const Entry &L, const Entry &R) { return L.second < R.second; })) 234 // Order is already correct. 235 return; 236 237 // Store the shuffle. 238 Stack.emplace_back(V, F, List.size()); 239 assert(List.size() == Stack.back().Shuffle.size() && "Wrong size"); 240 for (size_t I = 0, E = List.size(); I != E; ++I) 241 Stack.back().Shuffle[I] = List[I].second; 242 } 243 244 static void predictValueUseListOrder(const Value *V, const Function *F, 245 OrderMap &OM, UseListOrderStack &Stack) { 246 auto &IDPair = OM[V]; 247 assert(IDPair.first && "Unmapped value"); 248 if (IDPair.second) 249 // Already predicted. 250 return; 251 252 // Do the actual prediction. 253 IDPair.second = true; 254 if (!V->use_empty() && std::next(V->use_begin()) != V->use_end()) 255 predictValueUseListOrderImpl(V, F, IDPair.first, OM, Stack); 256 257 // Recursive descent into constants. 258 if (const Constant *C = dyn_cast<Constant>(V)) 259 if (C->getNumOperands()) // Visit GlobalValues. 260 for (const Value *Op : C->operands()) 261 if (isa<Constant>(Op)) // Visit GlobalValues. 262 predictValueUseListOrder(Op, F, OM, Stack); 263 } 264 265 static UseListOrderStack predictUseListOrder(const Module *M) { 266 OrderMap OM = orderModule(M); 267 268 // Use-list orders need to be serialized after all the users have been added 269 // to a value, or else the shuffles will be incomplete. Store them per 270 // function in a stack. 271 // 272 // Aside from function order, the order of values doesn't matter much here. 273 UseListOrderStack Stack; 274 275 // We want to visit the functions backward now so we can list function-local 276 // constants in the last Function they're used in. Module-level constants 277 // have already been visited above. 278 for (const Function &F : make_range(M->rbegin(), M->rend())) { 279 if (F.isDeclaration()) 280 continue; 281 for (const BasicBlock &BB : F) 282 predictValueUseListOrder(&BB, &F, OM, Stack); 283 for (const Argument &A : F.args()) 284 predictValueUseListOrder(&A, &F, OM, Stack); 285 for (const BasicBlock &BB : F) 286 for (const Instruction &I : BB) 287 for (const Value *Op : I.operands()) 288 if (isa<Constant>(*Op) || isa<InlineAsm>(*Op)) // Visit GlobalValues. 289 predictValueUseListOrder(Op, &F, OM, Stack); 290 for (const BasicBlock &BB : F) 291 for (const Instruction &I : BB) 292 predictValueUseListOrder(&I, &F, OM, Stack); 293 } 294 295 // Visit globals last. 296 for (const GlobalVariable &G : M->globals()) 297 predictValueUseListOrder(&G, nullptr, OM, Stack); 298 for (const Function &F : *M) 299 predictValueUseListOrder(&F, nullptr, OM, Stack); 300 for (const GlobalAlias &A : M->aliases()) 301 predictValueUseListOrder(&A, nullptr, OM, Stack); 302 for (const GlobalIFunc &I : M->ifuncs()) 303 predictValueUseListOrder(&I, nullptr, OM, Stack); 304 for (const GlobalVariable &G : M->globals()) 305 if (G.hasInitializer()) 306 predictValueUseListOrder(G.getInitializer(), nullptr, OM, Stack); 307 for (const GlobalAlias &A : M->aliases()) 308 predictValueUseListOrder(A.getAliasee(), nullptr, OM, Stack); 309 for (const GlobalIFunc &I : M->ifuncs()) 310 predictValueUseListOrder(I.getResolver(), nullptr, OM, Stack); 311 for (const Function &F : *M) 312 for (const Use &U : F.operands()) 313 predictValueUseListOrder(U.get(), nullptr, OM, Stack); 314 315 return Stack; 316 } 317 318 static const Module *getModuleFromVal(const Value *V) { 319 if (const Argument *MA = dyn_cast<Argument>(V)) 320 return MA->getParent() ? MA->getParent()->getParent() : nullptr; 321 322 if (const BasicBlock *BB = dyn_cast<BasicBlock>(V)) 323 return BB->getParent() ? BB->getParent()->getParent() : nullptr; 324 325 if (const Instruction *I = dyn_cast<Instruction>(V)) { 326 const Function *M = I->getParent() ? I->getParent()->getParent() : nullptr; 327 return M ? M->getParent() : nullptr; 328 } 329 330 if (const GlobalValue *GV = dyn_cast<GlobalValue>(V)) 331 return GV->getParent(); 332 333 if (const auto *MAV = dyn_cast<MetadataAsValue>(V)) { 334 for (const User *U : MAV->users()) 335 if (isa<Instruction>(U)) 336 if (const Module *M = getModuleFromVal(U)) 337 return M; 338 return nullptr; 339 } 340 341 return nullptr; 342 } 343 344 static void PrintCallingConv(unsigned cc, raw_ostream &Out) { 345 switch (cc) { 346 default: Out << "cc" << cc; break; 347 case CallingConv::Fast: Out << "fastcc"; break; 348 case CallingConv::Cold: Out << "coldcc"; break; 349 case CallingConv::WebKit_JS: Out << "webkit_jscc"; break; 350 case CallingConv::AnyReg: Out << "anyregcc"; break; 351 case CallingConv::PreserveMost: Out << "preserve_mostcc"; break; 352 case CallingConv::PreserveAll: Out << "preserve_allcc"; break; 353 case CallingConv::CXX_FAST_TLS: Out << "cxx_fast_tlscc"; break; 354 case CallingConv::GHC: Out << "ghccc"; break; 355 case CallingConv::X86_StdCall: Out << "x86_stdcallcc"; break; 356 case CallingConv::X86_FastCall: Out << "x86_fastcallcc"; break; 357 case CallingConv::X86_ThisCall: Out << "x86_thiscallcc"; break; 358 case CallingConv::X86_RegCall: Out << "x86_regcallcc"; break; 359 case CallingConv::X86_VectorCall:Out << "x86_vectorcallcc"; break; 360 case CallingConv::Intel_OCL_BI: Out << "intel_ocl_bicc"; break; 361 case CallingConv::ARM_APCS: Out << "arm_apcscc"; break; 362 case CallingConv::ARM_AAPCS: Out << "arm_aapcscc"; break; 363 case CallingConv::ARM_AAPCS_VFP: Out << "arm_aapcs_vfpcc"; break; 364 case CallingConv::AArch64_VectorCall: Out << "aarch64_vector_pcs"; break; 365 case CallingConv::MSP430_INTR: Out << "msp430_intrcc"; break; 366 case CallingConv::AVR_INTR: Out << "avr_intrcc "; break; 367 case CallingConv::AVR_SIGNAL: Out << "avr_signalcc "; break; 368 case CallingConv::PTX_Kernel: Out << "ptx_kernel"; break; 369 case CallingConv::PTX_Device: Out << "ptx_device"; break; 370 case CallingConv::X86_64_SysV: Out << "x86_64_sysvcc"; break; 371 case CallingConv::Win64: Out << "win64cc"; break; 372 case CallingConv::SPIR_FUNC: Out << "spir_func"; break; 373 case CallingConv::SPIR_KERNEL: Out << "spir_kernel"; break; 374 case CallingConv::Swift: Out << "swiftcc"; break; 375 case CallingConv::X86_INTR: Out << "x86_intrcc"; break; 376 case CallingConv::HHVM: Out << "hhvmcc"; break; 377 case CallingConv::HHVM_C: Out << "hhvm_ccc"; break; 378 case CallingConv::AMDGPU_VS: Out << "amdgpu_vs"; break; 379 case CallingConv::AMDGPU_LS: Out << "amdgpu_ls"; break; 380 case CallingConv::AMDGPU_HS: Out << "amdgpu_hs"; break; 381 case CallingConv::AMDGPU_ES: Out << "amdgpu_es"; break; 382 case CallingConv::AMDGPU_GS: Out << "amdgpu_gs"; break; 383 case CallingConv::AMDGPU_PS: Out << "amdgpu_ps"; break; 384 case CallingConv::AMDGPU_CS: Out << "amdgpu_cs"; break; 385 case CallingConv::AMDGPU_KERNEL: Out << "amdgpu_kernel"; break; 386 } 387 } 388 389 enum PrefixType { 390 GlobalPrefix, 391 ComdatPrefix, 392 LabelPrefix, 393 LocalPrefix, 394 NoPrefix 395 }; 396 397 void llvm::printLLVMNameWithoutPrefix(raw_ostream &OS, StringRef Name) { 398 assert(!Name.empty() && "Cannot get empty name!"); 399 400 // Scan the name to see if it needs quotes first. 401 bool NeedsQuotes = isdigit(static_cast<unsigned char>(Name[0])); 402 if (!NeedsQuotes) { 403 for (unsigned i = 0, e = Name.size(); i != e; ++i) { 404 // By making this unsigned, the value passed in to isalnum will always be 405 // in the range 0-255. This is important when building with MSVC because 406 // its implementation will assert. This situation can arise when dealing 407 // with UTF-8 multibyte characters. 408 unsigned char C = Name[i]; 409 if (!isalnum(static_cast<unsigned char>(C)) && C != '-' && C != '.' && 410 C != '_') { 411 NeedsQuotes = true; 412 break; 413 } 414 } 415 } 416 417 // If we didn't need any quotes, just write out the name in one blast. 418 if (!NeedsQuotes) { 419 OS << Name; 420 return; 421 } 422 423 // Okay, we need quotes. Output the quotes and escape any scary characters as 424 // needed. 425 OS << '"'; 426 printEscapedString(Name, OS); 427 OS << '"'; 428 } 429 430 /// Turn the specified name into an 'LLVM name', which is either prefixed with % 431 /// (if the string only contains simple characters) or is surrounded with ""'s 432 /// (if it has special chars in it). Print it out. 433 static void PrintLLVMName(raw_ostream &OS, StringRef Name, PrefixType Prefix) { 434 switch (Prefix) { 435 case NoPrefix: 436 break; 437 case GlobalPrefix: 438 OS << '@'; 439 break; 440 case ComdatPrefix: 441 OS << '$'; 442 break; 443 case LabelPrefix: 444 break; 445 case LocalPrefix: 446 OS << '%'; 447 break; 448 } 449 printLLVMNameWithoutPrefix(OS, Name); 450 } 451 452 /// Turn the specified name into an 'LLVM name', which is either prefixed with % 453 /// (if the string only contains simple characters) or is surrounded with ""'s 454 /// (if it has special chars in it). Print it out. 455 static void PrintLLVMName(raw_ostream &OS, const Value *V) { 456 PrintLLVMName(OS, V->getName(), 457 isa<GlobalValue>(V) ? GlobalPrefix : LocalPrefix); 458 } 459 460 namespace { 461 462 class TypePrinting { 463 public: 464 TypePrinting(const Module *M = nullptr) : DeferredM(M) {} 465 466 TypePrinting(const TypePrinting &) = delete; 467 TypePrinting &operator=(const TypePrinting &) = delete; 468 469 /// The named types that are used by the current module. 470 TypeFinder &getNamedTypes(); 471 472 /// The numbered types, number to type mapping. 473 std::vector<StructType *> &getNumberedTypes(); 474 475 bool empty(); 476 477 void print(Type *Ty, raw_ostream &OS); 478 479 void printStructBody(StructType *Ty, raw_ostream &OS); 480 481 private: 482 void incorporateTypes(); 483 484 /// A module to process lazily when needed. Set to nullptr as soon as used. 485 const Module *DeferredM; 486 487 TypeFinder NamedTypes; 488 489 // The numbered types, along with their value. 490 DenseMap<StructType *, unsigned> Type2Number; 491 492 std::vector<StructType *> NumberedTypes; 493 }; 494 495 } // end anonymous namespace 496 497 TypeFinder &TypePrinting::getNamedTypes() { 498 incorporateTypes(); 499 return NamedTypes; 500 } 501 502 std::vector<StructType *> &TypePrinting::getNumberedTypes() { 503 incorporateTypes(); 504 505 // We know all the numbers that each type is used and we know that it is a 506 // dense assignment. Convert the map to an index table, if it's not done 507 // already (judging from the sizes): 508 if (NumberedTypes.size() == Type2Number.size()) 509 return NumberedTypes; 510 511 NumberedTypes.resize(Type2Number.size()); 512 for (const auto &P : Type2Number) { 513 assert(P.second < NumberedTypes.size() && "Didn't get a dense numbering?"); 514 assert(!NumberedTypes[P.second] && "Didn't get a unique numbering?"); 515 NumberedTypes[P.second] = P.first; 516 } 517 return NumberedTypes; 518 } 519 520 bool TypePrinting::empty() { 521 incorporateTypes(); 522 return NamedTypes.empty() && Type2Number.empty(); 523 } 524 525 void TypePrinting::incorporateTypes() { 526 if (!DeferredM) 527 return; 528 529 NamedTypes.run(*DeferredM, false); 530 DeferredM = nullptr; 531 532 // The list of struct types we got back includes all the struct types, split 533 // the unnamed ones out to a numbering and remove the anonymous structs. 534 unsigned NextNumber = 0; 535 536 std::vector<StructType*>::iterator NextToUse = NamedTypes.begin(), I, E; 537 for (I = NamedTypes.begin(), E = NamedTypes.end(); I != E; ++I) { 538 StructType *STy = *I; 539 540 // Ignore anonymous types. 541 if (STy->isLiteral()) 542 continue; 543 544 if (STy->getName().empty()) 545 Type2Number[STy] = NextNumber++; 546 else 547 *NextToUse++ = STy; 548 } 549 550 NamedTypes.erase(NextToUse, NamedTypes.end()); 551 } 552 553 /// Write the specified type to the specified raw_ostream, making use of type 554 /// names or up references to shorten the type name where possible. 555 void TypePrinting::print(Type *Ty, raw_ostream &OS) { 556 switch (Ty->getTypeID()) { 557 case Type::VoidTyID: OS << "void"; return; 558 case Type::HalfTyID: OS << "half"; return; 559 case Type::FloatTyID: OS << "float"; return; 560 case Type::DoubleTyID: OS << "double"; return; 561 case Type::X86_FP80TyID: OS << "x86_fp80"; return; 562 case Type::FP128TyID: OS << "fp128"; return; 563 case Type::PPC_FP128TyID: OS << "ppc_fp128"; return; 564 case Type::LabelTyID: OS << "label"; return; 565 case Type::MetadataTyID: OS << "metadata"; return; 566 case Type::X86_MMXTyID: OS << "x86_mmx"; return; 567 case Type::TokenTyID: OS << "token"; return; 568 case Type::IntegerTyID: 569 OS << 'i' << cast<IntegerType>(Ty)->getBitWidth(); 570 return; 571 572 case Type::FunctionTyID: { 573 FunctionType *FTy = cast<FunctionType>(Ty); 574 print(FTy->getReturnType(), OS); 575 OS << " ("; 576 for (FunctionType::param_iterator I = FTy->param_begin(), 577 E = FTy->param_end(); I != E; ++I) { 578 if (I != FTy->param_begin()) 579 OS << ", "; 580 print(*I, OS); 581 } 582 if (FTy->isVarArg()) { 583 if (FTy->getNumParams()) OS << ", "; 584 OS << "..."; 585 } 586 OS << ')'; 587 return; 588 } 589 case Type::StructTyID: { 590 StructType *STy = cast<StructType>(Ty); 591 592 if (STy->isLiteral()) 593 return printStructBody(STy, OS); 594 595 if (!STy->getName().empty()) 596 return PrintLLVMName(OS, STy->getName(), LocalPrefix); 597 598 incorporateTypes(); 599 const auto I = Type2Number.find(STy); 600 if (I != Type2Number.end()) 601 OS << '%' << I->second; 602 else // Not enumerated, print the hex address. 603 OS << "%\"type " << STy << '\"'; 604 return; 605 } 606 case Type::PointerTyID: { 607 PointerType *PTy = cast<PointerType>(Ty); 608 print(PTy->getElementType(), OS); 609 if (unsigned AddressSpace = PTy->getAddressSpace()) 610 OS << " addrspace(" << AddressSpace << ')'; 611 OS << '*'; 612 return; 613 } 614 case Type::ArrayTyID: { 615 ArrayType *ATy = cast<ArrayType>(Ty); 616 OS << '[' << ATy->getNumElements() << " x "; 617 print(ATy->getElementType(), OS); 618 OS << ']'; 619 return; 620 } 621 case Type::VectorTyID: { 622 VectorType *PTy = cast<VectorType>(Ty); 623 OS << "<" << PTy->getNumElements() << " x "; 624 print(PTy->getElementType(), OS); 625 OS << '>'; 626 return; 627 } 628 } 629 llvm_unreachable("Invalid TypeID"); 630 } 631 632 void TypePrinting::printStructBody(StructType *STy, raw_ostream &OS) { 633 if (STy->isOpaque()) { 634 OS << "opaque"; 635 return; 636 } 637 638 if (STy->isPacked()) 639 OS << '<'; 640 641 if (STy->getNumElements() == 0) { 642 OS << "{}"; 643 } else { 644 StructType::element_iterator I = STy->element_begin(); 645 OS << "{ "; 646 print(*I++, OS); 647 for (StructType::element_iterator E = STy->element_end(); I != E; ++I) { 648 OS << ", "; 649 print(*I, OS); 650 } 651 652 OS << " }"; 653 } 654 if (STy->isPacked()) 655 OS << '>'; 656 } 657 658 namespace llvm { 659 660 //===----------------------------------------------------------------------===// 661 // SlotTracker Class: Enumerate slot numbers for unnamed values 662 //===----------------------------------------------------------------------===// 663 /// This class provides computation of slot numbers for LLVM Assembly writing. 664 /// 665 class SlotTracker { 666 public: 667 /// ValueMap - A mapping of Values to slot numbers. 668 using ValueMap = DenseMap<const Value *, unsigned>; 669 670 private: 671 /// TheModule - The module for which we are holding slot numbers. 672 const Module* TheModule; 673 674 /// TheFunction - The function for which we are holding slot numbers. 675 const Function* TheFunction = nullptr; 676 bool FunctionProcessed = false; 677 bool ShouldInitializeAllMetadata; 678 679 /// The summary index for which we are holding slot numbers. 680 const ModuleSummaryIndex *TheIndex = nullptr; 681 682 /// mMap - The slot map for the module level data. 683 ValueMap mMap; 684 unsigned mNext = 0; 685 686 /// fMap - The slot map for the function level data. 687 ValueMap fMap; 688 unsigned fNext = 0; 689 690 /// mdnMap - Map for MDNodes. 691 DenseMap<const MDNode*, unsigned> mdnMap; 692 unsigned mdnNext = 0; 693 694 /// asMap - The slot map for attribute sets. 695 DenseMap<AttributeSet, unsigned> asMap; 696 unsigned asNext = 0; 697 698 /// ModulePathMap - The slot map for Module paths used in the summary index. 699 StringMap<unsigned> ModulePathMap; 700 unsigned ModulePathNext = 0; 701 702 /// GUIDMap - The slot map for GUIDs used in the summary index. 703 DenseMap<GlobalValue::GUID, unsigned> GUIDMap; 704 unsigned GUIDNext = 0; 705 706 /// TypeIdMap - The slot map for type ids used in the summary index. 707 StringMap<unsigned> TypeIdMap; 708 unsigned TypeIdNext = 0; 709 710 public: 711 /// Construct from a module. 712 /// 713 /// If \c ShouldInitializeAllMetadata, initializes all metadata in all 714 /// functions, giving correct numbering for metadata referenced only from 715 /// within a function (even if no functions have been initialized). 716 explicit SlotTracker(const Module *M, 717 bool ShouldInitializeAllMetadata = false); 718 719 /// Construct from a function, starting out in incorp state. 720 /// 721 /// If \c ShouldInitializeAllMetadata, initializes all metadata in all 722 /// functions, giving correct numbering for metadata referenced only from 723 /// within a function (even if no functions have been initialized). 724 explicit SlotTracker(const Function *F, 725 bool ShouldInitializeAllMetadata = false); 726 727 /// Construct from a module summary index. 728 explicit SlotTracker(const ModuleSummaryIndex *Index); 729 730 SlotTracker(const SlotTracker &) = delete; 731 SlotTracker &operator=(const SlotTracker &) = delete; 732 733 /// Return the slot number of the specified value in it's type 734 /// plane. If something is not in the SlotTracker, return -1. 735 int getLocalSlot(const Value *V); 736 int getGlobalSlot(const GlobalValue *V); 737 int getMetadataSlot(const MDNode *N); 738 int getAttributeGroupSlot(AttributeSet AS); 739 int getModulePathSlot(StringRef Path); 740 int getGUIDSlot(GlobalValue::GUID GUID); 741 int getTypeIdSlot(StringRef Id); 742 743 /// If you'd like to deal with a function instead of just a module, use 744 /// this method to get its data into the SlotTracker. 745 void incorporateFunction(const Function *F) { 746 TheFunction = F; 747 FunctionProcessed = false; 748 } 749 750 const Function *getFunction() const { return TheFunction; } 751 752 /// After calling incorporateFunction, use this method to remove the 753 /// most recently incorporated function from the SlotTracker. This 754 /// will reset the state of the machine back to just the module contents. 755 void purgeFunction(); 756 757 /// MDNode map iterators. 758 using mdn_iterator = DenseMap<const MDNode*, unsigned>::iterator; 759 760 mdn_iterator mdn_begin() { return mdnMap.begin(); } 761 mdn_iterator mdn_end() { return mdnMap.end(); } 762 unsigned mdn_size() const { return mdnMap.size(); } 763 bool mdn_empty() const { return mdnMap.empty(); } 764 765 /// AttributeSet map iterators. 766 using as_iterator = DenseMap<AttributeSet, unsigned>::iterator; 767 768 as_iterator as_begin() { return asMap.begin(); } 769 as_iterator as_end() { return asMap.end(); } 770 unsigned as_size() const { return asMap.size(); } 771 bool as_empty() const { return asMap.empty(); } 772 773 /// GUID map iterators. 774 using guid_iterator = DenseMap<GlobalValue::GUID, unsigned>::iterator; 775 776 /// These functions do the actual initialization. 777 inline void initializeIfNeeded(); 778 void initializeIndexIfNeeded(); 779 780 // Implementation Details 781 private: 782 /// CreateModuleSlot - Insert the specified GlobalValue* into the slot table. 783 void CreateModuleSlot(const GlobalValue *V); 784 785 /// CreateMetadataSlot - Insert the specified MDNode* into the slot table. 786 void CreateMetadataSlot(const MDNode *N); 787 788 /// CreateFunctionSlot - Insert the specified Value* into the slot table. 789 void CreateFunctionSlot(const Value *V); 790 791 /// Insert the specified AttributeSet into the slot table. 792 void CreateAttributeSetSlot(AttributeSet AS); 793 794 inline void CreateModulePathSlot(StringRef Path); 795 void CreateGUIDSlot(GlobalValue::GUID GUID); 796 void CreateTypeIdSlot(StringRef Id); 797 798 /// Add all of the module level global variables (and their initializers) 799 /// and function declarations, but not the contents of those functions. 800 void processModule(); 801 void processIndex(); 802 803 /// Add all of the functions arguments, basic blocks, and instructions. 804 void processFunction(); 805 806 /// Add the metadata directly attached to a GlobalObject. 807 void processGlobalObjectMetadata(const GlobalObject &GO); 808 809 /// Add all of the metadata from a function. 810 void processFunctionMetadata(const Function &F); 811 812 /// Add all of the metadata from an instruction. 813 void processInstructionMetadata(const Instruction &I); 814 }; 815 816 } // end namespace llvm 817 818 ModuleSlotTracker::ModuleSlotTracker(SlotTracker &Machine, const Module *M, 819 const Function *F) 820 : M(M), F(F), Machine(&Machine) {} 821 822 ModuleSlotTracker::ModuleSlotTracker(const Module *M, 823 bool ShouldInitializeAllMetadata) 824 : ShouldCreateStorage(M), 825 ShouldInitializeAllMetadata(ShouldInitializeAllMetadata), M(M) {} 826 827 ModuleSlotTracker::~ModuleSlotTracker() = default; 828 829 SlotTracker *ModuleSlotTracker::getMachine() { 830 if (!ShouldCreateStorage) 831 return Machine; 832 833 ShouldCreateStorage = false; 834 MachineStorage = 835 llvm::make_unique<SlotTracker>(M, ShouldInitializeAllMetadata); 836 Machine = MachineStorage.get(); 837 return Machine; 838 } 839 840 void ModuleSlotTracker::incorporateFunction(const Function &F) { 841 // Using getMachine() may lazily create the slot tracker. 842 if (!getMachine()) 843 return; 844 845 // Nothing to do if this is the right function already. 846 if (this->F == &F) 847 return; 848 if (this->F) 849 Machine->purgeFunction(); 850 Machine->incorporateFunction(&F); 851 this->F = &F; 852 } 853 854 int ModuleSlotTracker::getLocalSlot(const Value *V) { 855 assert(F && "No function incorporated"); 856 return Machine->getLocalSlot(V); 857 } 858 859 static SlotTracker *createSlotTracker(const Value *V) { 860 if (const Argument *FA = dyn_cast<Argument>(V)) 861 return new SlotTracker(FA->getParent()); 862 863 if (const Instruction *I = dyn_cast<Instruction>(V)) 864 if (I->getParent()) 865 return new SlotTracker(I->getParent()->getParent()); 866 867 if (const BasicBlock *BB = dyn_cast<BasicBlock>(V)) 868 return new SlotTracker(BB->getParent()); 869 870 if (const GlobalVariable *GV = dyn_cast<GlobalVariable>(V)) 871 return new SlotTracker(GV->getParent()); 872 873 if (const GlobalAlias *GA = dyn_cast<GlobalAlias>(V)) 874 return new SlotTracker(GA->getParent()); 875 876 if (const GlobalIFunc *GIF = dyn_cast<GlobalIFunc>(V)) 877 return new SlotTracker(GIF->getParent()); 878 879 if (const Function *Func = dyn_cast<Function>(V)) 880 return new SlotTracker(Func); 881 882 return nullptr; 883 } 884 885 #if 0 886 #define ST_DEBUG(X) dbgs() << X 887 #else 888 #define ST_DEBUG(X) 889 #endif 890 891 // Module level constructor. Causes the contents of the Module (sans functions) 892 // to be added to the slot table. 893 SlotTracker::SlotTracker(const Module *M, bool ShouldInitializeAllMetadata) 894 : TheModule(M), ShouldInitializeAllMetadata(ShouldInitializeAllMetadata) {} 895 896 // Function level constructor. Causes the contents of the Module and the one 897 // function provided to be added to the slot table. 898 SlotTracker::SlotTracker(const Function *F, bool ShouldInitializeAllMetadata) 899 : TheModule(F ? F->getParent() : nullptr), TheFunction(F), 900 ShouldInitializeAllMetadata(ShouldInitializeAllMetadata) {} 901 902 SlotTracker::SlotTracker(const ModuleSummaryIndex *Index) 903 : TheModule(nullptr), ShouldInitializeAllMetadata(false), TheIndex(Index) {} 904 905 inline void SlotTracker::initializeIfNeeded() { 906 if (TheModule) { 907 processModule(); 908 TheModule = nullptr; ///< Prevent re-processing next time we're called. 909 } 910 911 if (TheFunction && !FunctionProcessed) 912 processFunction(); 913 } 914 915 void SlotTracker::initializeIndexIfNeeded() { 916 if (!TheIndex) 917 return; 918 processIndex(); 919 TheIndex = nullptr; ///< Prevent re-processing next time we're called. 920 } 921 922 // Iterate through all the global variables, functions, and global 923 // variable initializers and create slots for them. 924 void SlotTracker::processModule() { 925 ST_DEBUG("begin processModule!\n"); 926 927 // Add all of the unnamed global variables to the value table. 928 for (const GlobalVariable &Var : TheModule->globals()) { 929 if (!Var.hasName()) 930 CreateModuleSlot(&Var); 931 processGlobalObjectMetadata(Var); 932 auto Attrs = Var.getAttributes(); 933 if (Attrs.hasAttributes()) 934 CreateAttributeSetSlot(Attrs); 935 } 936 937 for (const GlobalAlias &A : TheModule->aliases()) { 938 if (!A.hasName()) 939 CreateModuleSlot(&A); 940 } 941 942 for (const GlobalIFunc &I : TheModule->ifuncs()) { 943 if (!I.hasName()) 944 CreateModuleSlot(&I); 945 } 946 947 // Add metadata used by named metadata. 948 for (const NamedMDNode &NMD : TheModule->named_metadata()) { 949 for (unsigned i = 0, e = NMD.getNumOperands(); i != e; ++i) 950 CreateMetadataSlot(NMD.getOperand(i)); 951 } 952 953 for (const Function &F : *TheModule) { 954 if (!F.hasName()) 955 // Add all the unnamed functions to the table. 956 CreateModuleSlot(&F); 957 958 if (ShouldInitializeAllMetadata) 959 processFunctionMetadata(F); 960 961 // Add all the function attributes to the table. 962 // FIXME: Add attributes of other objects? 963 AttributeSet FnAttrs = F.getAttributes().getFnAttributes(); 964 if (FnAttrs.hasAttributes()) 965 CreateAttributeSetSlot(FnAttrs); 966 } 967 968 ST_DEBUG("end processModule!\n"); 969 } 970 971 // Process the arguments, basic blocks, and instructions of a function. 972 void SlotTracker::processFunction() { 973 ST_DEBUG("begin processFunction!\n"); 974 fNext = 0; 975 976 // Process function metadata if it wasn't hit at the module-level. 977 if (!ShouldInitializeAllMetadata) 978 processFunctionMetadata(*TheFunction); 979 980 // Add all the function arguments with no names. 981 for(Function::const_arg_iterator AI = TheFunction->arg_begin(), 982 AE = TheFunction->arg_end(); AI != AE; ++AI) 983 if (!AI->hasName()) 984 CreateFunctionSlot(&*AI); 985 986 ST_DEBUG("Inserting Instructions:\n"); 987 988 // Add all of the basic blocks and instructions with no names. 989 for (auto &BB : *TheFunction) { 990 if (!BB.hasName()) 991 CreateFunctionSlot(&BB); 992 993 for (auto &I : BB) { 994 if (!I.getType()->isVoidTy() && !I.hasName()) 995 CreateFunctionSlot(&I); 996 997 // We allow direct calls to any llvm.foo function here, because the 998 // target may not be linked into the optimizer. 999 if (const auto *Call = dyn_cast<CallBase>(&I)) { 1000 // Add all the call attributes to the table. 1001 AttributeSet Attrs = Call->getAttributes().getFnAttributes(); 1002 if (Attrs.hasAttributes()) 1003 CreateAttributeSetSlot(Attrs); 1004 } 1005 } 1006 } 1007 1008 FunctionProcessed = true; 1009 1010 ST_DEBUG("end processFunction!\n"); 1011 } 1012 1013 // Iterate through all the GUID in the index and create slots for them. 1014 void SlotTracker::processIndex() { 1015 ST_DEBUG("begin processIndex!\n"); 1016 assert(TheIndex); 1017 1018 // The first block of slots are just the module ids, which start at 0 and are 1019 // assigned consecutively. Since the StringMap iteration order isn't 1020 // guaranteed, use a std::map to order by module ID before assigning slots. 1021 std::map<uint64_t, StringRef> ModuleIdToPathMap; 1022 for (auto &ModPath : TheIndex->modulePaths()) 1023 ModuleIdToPathMap[ModPath.second.first] = ModPath.first(); 1024 for (auto &ModPair : ModuleIdToPathMap) 1025 CreateModulePathSlot(ModPair.second); 1026 1027 // Start numbering the GUIDs after the module ids. 1028 GUIDNext = ModulePathNext; 1029 1030 for (auto &GlobalList : *TheIndex) 1031 CreateGUIDSlot(GlobalList.first); 1032 1033 // Start numbering the TypeIds after the GUIDs. 1034 TypeIdNext = GUIDNext; 1035 1036 for (auto TidIter = TheIndex->typeIds().begin(); 1037 TidIter != TheIndex->typeIds().end(); TidIter++) 1038 CreateTypeIdSlot(TidIter->second.first); 1039 1040 ST_DEBUG("end processIndex!\n"); 1041 } 1042 1043 void SlotTracker::processGlobalObjectMetadata(const GlobalObject &GO) { 1044 SmallVector<std::pair<unsigned, MDNode *>, 4> MDs; 1045 GO.getAllMetadata(MDs); 1046 for (auto &MD : MDs) 1047 CreateMetadataSlot(MD.second); 1048 } 1049 1050 void SlotTracker::processFunctionMetadata(const Function &F) { 1051 processGlobalObjectMetadata(F); 1052 for (auto &BB : F) { 1053 for (auto &I : BB) 1054 processInstructionMetadata(I); 1055 } 1056 } 1057 1058 void SlotTracker::processInstructionMetadata(const Instruction &I) { 1059 // Process metadata used directly by intrinsics. 1060 if (const CallInst *CI = dyn_cast<CallInst>(&I)) 1061 if (Function *F = CI->getCalledFunction()) 1062 if (F->isIntrinsic()) 1063 for (auto &Op : I.operands()) 1064 if (auto *V = dyn_cast_or_null<MetadataAsValue>(Op)) 1065 if (MDNode *N = dyn_cast<MDNode>(V->getMetadata())) 1066 CreateMetadataSlot(N); 1067 1068 // Process metadata attached to this instruction. 1069 SmallVector<std::pair<unsigned, MDNode *>, 4> MDs; 1070 I.getAllMetadata(MDs); 1071 for (auto &MD : MDs) 1072 CreateMetadataSlot(MD.second); 1073 } 1074 1075 /// Clean up after incorporating a function. This is the only way to get out of 1076 /// the function incorporation state that affects get*Slot/Create*Slot. Function 1077 /// incorporation state is indicated by TheFunction != 0. 1078 void SlotTracker::purgeFunction() { 1079 ST_DEBUG("begin purgeFunction!\n"); 1080 fMap.clear(); // Simply discard the function level map 1081 TheFunction = nullptr; 1082 FunctionProcessed = false; 1083 ST_DEBUG("end purgeFunction!\n"); 1084 } 1085 1086 /// getGlobalSlot - Get the slot number of a global value. 1087 int SlotTracker::getGlobalSlot(const GlobalValue *V) { 1088 // Check for uninitialized state and do lazy initialization. 1089 initializeIfNeeded(); 1090 1091 // Find the value in the module map 1092 ValueMap::iterator MI = mMap.find(V); 1093 return MI == mMap.end() ? -1 : (int)MI->second; 1094 } 1095 1096 /// getMetadataSlot - Get the slot number of a MDNode. 1097 int SlotTracker::getMetadataSlot(const MDNode *N) { 1098 // Check for uninitialized state and do lazy initialization. 1099 initializeIfNeeded(); 1100 1101 // Find the MDNode in the module map 1102 mdn_iterator MI = mdnMap.find(N); 1103 return MI == mdnMap.end() ? -1 : (int)MI->second; 1104 } 1105 1106 /// getLocalSlot - Get the slot number for a value that is local to a function. 1107 int SlotTracker::getLocalSlot(const Value *V) { 1108 assert(!isa<Constant>(V) && "Can't get a constant or global slot with this!"); 1109 1110 // Check for uninitialized state and do lazy initialization. 1111 initializeIfNeeded(); 1112 1113 ValueMap::iterator FI = fMap.find(V); 1114 return FI == fMap.end() ? -1 : (int)FI->second; 1115 } 1116 1117 int SlotTracker::getAttributeGroupSlot(AttributeSet AS) { 1118 // Check for uninitialized state and do lazy initialization. 1119 initializeIfNeeded(); 1120 1121 // Find the AttributeSet in the module map. 1122 as_iterator AI = asMap.find(AS); 1123 return AI == asMap.end() ? -1 : (int)AI->second; 1124 } 1125 1126 int SlotTracker::getModulePathSlot(StringRef Path) { 1127 // Check for uninitialized state and do lazy initialization. 1128 initializeIndexIfNeeded(); 1129 1130 // Find the Module path in the map 1131 auto I = ModulePathMap.find(Path); 1132 return I == ModulePathMap.end() ? -1 : (int)I->second; 1133 } 1134 1135 int SlotTracker::getGUIDSlot(GlobalValue::GUID GUID) { 1136 // Check for uninitialized state and do lazy initialization. 1137 initializeIndexIfNeeded(); 1138 1139 // Find the GUID in the map 1140 guid_iterator I = GUIDMap.find(GUID); 1141 return I == GUIDMap.end() ? -1 : (int)I->second; 1142 } 1143 1144 int SlotTracker::getTypeIdSlot(StringRef Id) { 1145 // Check for uninitialized state and do lazy initialization. 1146 initializeIndexIfNeeded(); 1147 1148 // Find the TypeId string in the map 1149 auto I = TypeIdMap.find(Id); 1150 return I == TypeIdMap.end() ? -1 : (int)I->second; 1151 } 1152 1153 /// CreateModuleSlot - Insert the specified GlobalValue* into the slot table. 1154 void SlotTracker::CreateModuleSlot(const GlobalValue *V) { 1155 assert(V && "Can't insert a null Value into SlotTracker!"); 1156 assert(!V->getType()->isVoidTy() && "Doesn't need a slot!"); 1157 assert(!V->hasName() && "Doesn't need a slot!"); 1158 1159 unsigned DestSlot = mNext++; 1160 mMap[V] = DestSlot; 1161 1162 ST_DEBUG(" Inserting value [" << V->getType() << "] = " << V << " slot=" << 1163 DestSlot << " ["); 1164 // G = Global, F = Function, A = Alias, I = IFunc, o = other 1165 ST_DEBUG((isa<GlobalVariable>(V) ? 'G' : 1166 (isa<Function>(V) ? 'F' : 1167 (isa<GlobalAlias>(V) ? 'A' : 1168 (isa<GlobalIFunc>(V) ? 'I' : 'o')))) << "]\n"); 1169 } 1170 1171 /// CreateSlot - Create a new slot for the specified value if it has no name. 1172 void SlotTracker::CreateFunctionSlot(const Value *V) { 1173 assert(!V->getType()->isVoidTy() && !V->hasName() && "Doesn't need a slot!"); 1174 1175 unsigned DestSlot = fNext++; 1176 fMap[V] = DestSlot; 1177 1178 // G = Global, F = Function, o = other 1179 ST_DEBUG(" Inserting value [" << V->getType() << "] = " << V << " slot=" << 1180 DestSlot << " [o]\n"); 1181 } 1182 1183 /// CreateModuleSlot - Insert the specified MDNode* into the slot table. 1184 void SlotTracker::CreateMetadataSlot(const MDNode *N) { 1185 assert(N && "Can't insert a null Value into SlotTracker!"); 1186 1187 // Don't make slots for DIExpressions. We just print them inline everywhere. 1188 if (isa<DIExpression>(N)) 1189 return; 1190 1191 unsigned DestSlot = mdnNext; 1192 if (!mdnMap.insert(std::make_pair(N, DestSlot)).second) 1193 return; 1194 ++mdnNext; 1195 1196 // Recursively add any MDNodes referenced by operands. 1197 for (unsigned i = 0, e = N->getNumOperands(); i != e; ++i) 1198 if (const MDNode *Op = dyn_cast_or_null<MDNode>(N->getOperand(i))) 1199 CreateMetadataSlot(Op); 1200 } 1201 1202 void SlotTracker::CreateAttributeSetSlot(AttributeSet AS) { 1203 assert(AS.hasAttributes() && "Doesn't need a slot!"); 1204 1205 as_iterator I = asMap.find(AS); 1206 if (I != asMap.end()) 1207 return; 1208 1209 unsigned DestSlot = asNext++; 1210 asMap[AS] = DestSlot; 1211 } 1212 1213 /// Create a new slot for the specified Module 1214 void SlotTracker::CreateModulePathSlot(StringRef Path) { 1215 ModulePathMap[Path] = ModulePathNext++; 1216 } 1217 1218 /// Create a new slot for the specified GUID 1219 void SlotTracker::CreateGUIDSlot(GlobalValue::GUID GUID) { 1220 GUIDMap[GUID] = GUIDNext++; 1221 } 1222 1223 /// Create a new slot for the specified Id 1224 void SlotTracker::CreateTypeIdSlot(StringRef Id) { 1225 TypeIdMap[Id] = TypeIdNext++; 1226 } 1227 1228 //===----------------------------------------------------------------------===// 1229 // AsmWriter Implementation 1230 //===----------------------------------------------------------------------===// 1231 1232 static void WriteAsOperandInternal(raw_ostream &Out, const Value *V, 1233 TypePrinting *TypePrinter, 1234 SlotTracker *Machine, 1235 const Module *Context); 1236 1237 static void WriteAsOperandInternal(raw_ostream &Out, const Metadata *MD, 1238 TypePrinting *TypePrinter, 1239 SlotTracker *Machine, const Module *Context, 1240 bool FromValue = false); 1241 1242 static void WriteOptimizationInfo(raw_ostream &Out, const User *U) { 1243 if (const FPMathOperator *FPO = dyn_cast<const FPMathOperator>(U)) { 1244 // 'Fast' is an abbreviation for all fast-math-flags. 1245 if (FPO->isFast()) 1246 Out << " fast"; 1247 else { 1248 if (FPO->hasAllowReassoc()) 1249 Out << " reassoc"; 1250 if (FPO->hasNoNaNs()) 1251 Out << " nnan"; 1252 if (FPO->hasNoInfs()) 1253 Out << " ninf"; 1254 if (FPO->hasNoSignedZeros()) 1255 Out << " nsz"; 1256 if (FPO->hasAllowReciprocal()) 1257 Out << " arcp"; 1258 if (FPO->hasAllowContract()) 1259 Out << " contract"; 1260 if (FPO->hasApproxFunc()) 1261 Out << " afn"; 1262 } 1263 } 1264 1265 if (const OverflowingBinaryOperator *OBO = 1266 dyn_cast<OverflowingBinaryOperator>(U)) { 1267 if (OBO->hasNoUnsignedWrap()) 1268 Out << " nuw"; 1269 if (OBO->hasNoSignedWrap()) 1270 Out << " nsw"; 1271 } else if (const PossiblyExactOperator *Div = 1272 dyn_cast<PossiblyExactOperator>(U)) { 1273 if (Div->isExact()) 1274 Out << " exact"; 1275 } else if (const GEPOperator *GEP = dyn_cast<GEPOperator>(U)) { 1276 if (GEP->isInBounds()) 1277 Out << " inbounds"; 1278 } 1279 } 1280 1281 static void WriteConstantInternal(raw_ostream &Out, const Constant *CV, 1282 TypePrinting &TypePrinter, 1283 SlotTracker *Machine, 1284 const Module *Context) { 1285 if (const ConstantInt *CI = dyn_cast<ConstantInt>(CV)) { 1286 if (CI->getType()->isIntegerTy(1)) { 1287 Out << (CI->getZExtValue() ? "true" : "false"); 1288 return; 1289 } 1290 Out << CI->getValue(); 1291 return; 1292 } 1293 1294 if (const ConstantFP *CFP = dyn_cast<ConstantFP>(CV)) { 1295 const APFloat &APF = CFP->getValueAPF(); 1296 if (&APF.getSemantics() == &APFloat::IEEEsingle() || 1297 &APF.getSemantics() == &APFloat::IEEEdouble()) { 1298 // We would like to output the FP constant value in exponential notation, 1299 // but we cannot do this if doing so will lose precision. Check here to 1300 // make sure that we only output it in exponential format if we can parse 1301 // the value back and get the same value. 1302 // 1303 bool ignored; 1304 bool isDouble = &APF.getSemantics() == &APFloat::IEEEdouble(); 1305 bool isInf = APF.isInfinity(); 1306 bool isNaN = APF.isNaN(); 1307 if (!isInf && !isNaN) { 1308 double Val = isDouble ? APF.convertToDouble() : APF.convertToFloat(); 1309 SmallString<128> StrVal; 1310 APF.toString(StrVal, 6, 0, false); 1311 // Check to make sure that the stringized number is not some string like 1312 // "Inf" or NaN, that atof will accept, but the lexer will not. Check 1313 // that the string matches the "[-+]?[0-9]" regex. 1314 // 1315 assert(((StrVal[0] >= '0' && StrVal[0] <= '9') || 1316 ((StrVal[0] == '-' || StrVal[0] == '+') && 1317 (StrVal[1] >= '0' && StrVal[1] <= '9'))) && 1318 "[-+]?[0-9] regex does not match!"); 1319 // Reparse stringized version! 1320 if (APFloat(APFloat::IEEEdouble(), StrVal).convertToDouble() == Val) { 1321 Out << StrVal; 1322 return; 1323 } 1324 } 1325 // Otherwise we could not reparse it to exactly the same value, so we must 1326 // output the string in hexadecimal format! Note that loading and storing 1327 // floating point types changes the bits of NaNs on some hosts, notably 1328 // x86, so we must not use these types. 1329 static_assert(sizeof(double) == sizeof(uint64_t), 1330 "assuming that double is 64 bits!"); 1331 APFloat apf = APF; 1332 // Floats are represented in ASCII IR as double, convert. 1333 if (!isDouble) 1334 apf.convert(APFloat::IEEEdouble(), APFloat::rmNearestTiesToEven, 1335 &ignored); 1336 Out << format_hex(apf.bitcastToAPInt().getZExtValue(), 0, /*Upper=*/true); 1337 return; 1338 } 1339 1340 // Either half, or some form of long double. 1341 // These appear as a magic letter identifying the type, then a 1342 // fixed number of hex digits. 1343 Out << "0x"; 1344 APInt API = APF.bitcastToAPInt(); 1345 if (&APF.getSemantics() == &APFloat::x87DoubleExtended()) { 1346 Out << 'K'; 1347 Out << format_hex_no_prefix(API.getHiBits(16).getZExtValue(), 4, 1348 /*Upper=*/true); 1349 Out << format_hex_no_prefix(API.getLoBits(64).getZExtValue(), 16, 1350 /*Upper=*/true); 1351 return; 1352 } else if (&APF.getSemantics() == &APFloat::IEEEquad()) { 1353 Out << 'L'; 1354 Out << format_hex_no_prefix(API.getLoBits(64).getZExtValue(), 16, 1355 /*Upper=*/true); 1356 Out << format_hex_no_prefix(API.getHiBits(64).getZExtValue(), 16, 1357 /*Upper=*/true); 1358 } else if (&APF.getSemantics() == &APFloat::PPCDoubleDouble()) { 1359 Out << 'M'; 1360 Out << format_hex_no_prefix(API.getLoBits(64).getZExtValue(), 16, 1361 /*Upper=*/true); 1362 Out << format_hex_no_prefix(API.getHiBits(64).getZExtValue(), 16, 1363 /*Upper=*/true); 1364 } else if (&APF.getSemantics() == &APFloat::IEEEhalf()) { 1365 Out << 'H'; 1366 Out << format_hex_no_prefix(API.getZExtValue(), 4, 1367 /*Upper=*/true); 1368 } else 1369 llvm_unreachable("Unsupported floating point type"); 1370 return; 1371 } 1372 1373 if (isa<ConstantAggregateZero>(CV)) { 1374 Out << "zeroinitializer"; 1375 return; 1376 } 1377 1378 if (const BlockAddress *BA = dyn_cast<BlockAddress>(CV)) { 1379 Out << "blockaddress("; 1380 WriteAsOperandInternal(Out, BA->getFunction(), &TypePrinter, Machine, 1381 Context); 1382 Out << ", "; 1383 WriteAsOperandInternal(Out, BA->getBasicBlock(), &TypePrinter, Machine, 1384 Context); 1385 Out << ")"; 1386 return; 1387 } 1388 1389 if (const ConstantArray *CA = dyn_cast<ConstantArray>(CV)) { 1390 Type *ETy = CA->getType()->getElementType(); 1391 Out << '['; 1392 TypePrinter.print(ETy, Out); 1393 Out << ' '; 1394 WriteAsOperandInternal(Out, CA->getOperand(0), 1395 &TypePrinter, Machine, 1396 Context); 1397 for (unsigned i = 1, e = CA->getNumOperands(); i != e; ++i) { 1398 Out << ", "; 1399 TypePrinter.print(ETy, Out); 1400 Out << ' '; 1401 WriteAsOperandInternal(Out, CA->getOperand(i), &TypePrinter, Machine, 1402 Context); 1403 } 1404 Out << ']'; 1405 return; 1406 } 1407 1408 if (const ConstantDataArray *CA = dyn_cast<ConstantDataArray>(CV)) { 1409 // As a special case, print the array as a string if it is an array of 1410 // i8 with ConstantInt values. 1411 if (CA->isString()) { 1412 Out << "c\""; 1413 printEscapedString(CA->getAsString(), Out); 1414 Out << '"'; 1415 return; 1416 } 1417 1418 Type *ETy = CA->getType()->getElementType(); 1419 Out << '['; 1420 TypePrinter.print(ETy, Out); 1421 Out << ' '; 1422 WriteAsOperandInternal(Out, CA->getElementAsConstant(0), 1423 &TypePrinter, Machine, 1424 Context); 1425 for (unsigned i = 1, e = CA->getNumElements(); i != e; ++i) { 1426 Out << ", "; 1427 TypePrinter.print(ETy, Out); 1428 Out << ' '; 1429 WriteAsOperandInternal(Out, CA->getElementAsConstant(i), &TypePrinter, 1430 Machine, Context); 1431 } 1432 Out << ']'; 1433 return; 1434 } 1435 1436 if (const ConstantStruct *CS = dyn_cast<ConstantStruct>(CV)) { 1437 if (CS->getType()->isPacked()) 1438 Out << '<'; 1439 Out << '{'; 1440 unsigned N = CS->getNumOperands(); 1441 if (N) { 1442 Out << ' '; 1443 TypePrinter.print(CS->getOperand(0)->getType(), Out); 1444 Out << ' '; 1445 1446 WriteAsOperandInternal(Out, CS->getOperand(0), &TypePrinter, Machine, 1447 Context); 1448 1449 for (unsigned i = 1; i < N; i++) { 1450 Out << ", "; 1451 TypePrinter.print(CS->getOperand(i)->getType(), Out); 1452 Out << ' '; 1453 1454 WriteAsOperandInternal(Out, CS->getOperand(i), &TypePrinter, Machine, 1455 Context); 1456 } 1457 Out << ' '; 1458 } 1459 1460 Out << '}'; 1461 if (CS->getType()->isPacked()) 1462 Out << '>'; 1463 return; 1464 } 1465 1466 if (isa<ConstantVector>(CV) || isa<ConstantDataVector>(CV)) { 1467 Type *ETy = CV->getType()->getVectorElementType(); 1468 Out << '<'; 1469 TypePrinter.print(ETy, Out); 1470 Out << ' '; 1471 WriteAsOperandInternal(Out, CV->getAggregateElement(0U), &TypePrinter, 1472 Machine, Context); 1473 for (unsigned i = 1, e = CV->getType()->getVectorNumElements(); i != e;++i){ 1474 Out << ", "; 1475 TypePrinter.print(ETy, Out); 1476 Out << ' '; 1477 WriteAsOperandInternal(Out, CV->getAggregateElement(i), &TypePrinter, 1478 Machine, Context); 1479 } 1480 Out << '>'; 1481 return; 1482 } 1483 1484 if (isa<ConstantPointerNull>(CV)) { 1485 Out << "null"; 1486 return; 1487 } 1488 1489 if (isa<ConstantTokenNone>(CV)) { 1490 Out << "none"; 1491 return; 1492 } 1493 1494 if (isa<UndefValue>(CV)) { 1495 Out << "undef"; 1496 return; 1497 } 1498 1499 if (const ConstantExpr *CE = dyn_cast<ConstantExpr>(CV)) { 1500 Out << CE->getOpcodeName(); 1501 WriteOptimizationInfo(Out, CE); 1502 if (CE->isCompare()) 1503 Out << ' ' << CmpInst::getPredicateName( 1504 static_cast<CmpInst::Predicate>(CE->getPredicate())); 1505 Out << " ("; 1506 1507 Optional<unsigned> InRangeOp; 1508 if (const GEPOperator *GEP = dyn_cast<GEPOperator>(CE)) { 1509 TypePrinter.print(GEP->getSourceElementType(), Out); 1510 Out << ", "; 1511 InRangeOp = GEP->getInRangeIndex(); 1512 if (InRangeOp) 1513 ++*InRangeOp; 1514 } 1515 1516 for (User::const_op_iterator OI=CE->op_begin(); OI != CE->op_end(); ++OI) { 1517 if (InRangeOp && unsigned(OI - CE->op_begin()) == *InRangeOp) 1518 Out << "inrange "; 1519 TypePrinter.print((*OI)->getType(), Out); 1520 Out << ' '; 1521 WriteAsOperandInternal(Out, *OI, &TypePrinter, Machine, Context); 1522 if (OI+1 != CE->op_end()) 1523 Out << ", "; 1524 } 1525 1526 if (CE->hasIndices()) { 1527 ArrayRef<unsigned> Indices = CE->getIndices(); 1528 for (unsigned i = 0, e = Indices.size(); i != e; ++i) 1529 Out << ", " << Indices[i]; 1530 } 1531 1532 if (CE->isCast()) { 1533 Out << " to "; 1534 TypePrinter.print(CE->getType(), Out); 1535 } 1536 1537 Out << ')'; 1538 return; 1539 } 1540 1541 Out << "<placeholder or erroneous Constant>"; 1542 } 1543 1544 static void writeMDTuple(raw_ostream &Out, const MDTuple *Node, 1545 TypePrinting *TypePrinter, SlotTracker *Machine, 1546 const Module *Context) { 1547 Out << "!{"; 1548 for (unsigned mi = 0, me = Node->getNumOperands(); mi != me; ++mi) { 1549 const Metadata *MD = Node->getOperand(mi); 1550 if (!MD) 1551 Out << "null"; 1552 else if (auto *MDV = dyn_cast<ValueAsMetadata>(MD)) { 1553 Value *V = MDV->getValue(); 1554 TypePrinter->print(V->getType(), Out); 1555 Out << ' '; 1556 WriteAsOperandInternal(Out, V, TypePrinter, Machine, Context); 1557 } else { 1558 WriteAsOperandInternal(Out, MD, TypePrinter, Machine, Context); 1559 } 1560 if (mi + 1 != me) 1561 Out << ", "; 1562 } 1563 1564 Out << "}"; 1565 } 1566 1567 namespace { 1568 1569 struct FieldSeparator { 1570 bool Skip = true; 1571 const char *Sep; 1572 1573 FieldSeparator(const char *Sep = ", ") : Sep(Sep) {} 1574 }; 1575 1576 raw_ostream &operator<<(raw_ostream &OS, FieldSeparator &FS) { 1577 if (FS.Skip) { 1578 FS.Skip = false; 1579 return OS; 1580 } 1581 return OS << FS.Sep; 1582 } 1583 1584 struct MDFieldPrinter { 1585 raw_ostream &Out; 1586 FieldSeparator FS; 1587 TypePrinting *TypePrinter = nullptr; 1588 SlotTracker *Machine = nullptr; 1589 const Module *Context = nullptr; 1590 1591 explicit MDFieldPrinter(raw_ostream &Out) : Out(Out) {} 1592 MDFieldPrinter(raw_ostream &Out, TypePrinting *TypePrinter, 1593 SlotTracker *Machine, const Module *Context) 1594 : Out(Out), TypePrinter(TypePrinter), Machine(Machine), Context(Context) { 1595 } 1596 1597 void printTag(const DINode *N); 1598 void printMacinfoType(const DIMacroNode *N); 1599 void printChecksum(const DIFile::ChecksumInfo<StringRef> &N); 1600 void printString(StringRef Name, StringRef Value, 1601 bool ShouldSkipEmpty = true); 1602 void printMetadata(StringRef Name, const Metadata *MD, 1603 bool ShouldSkipNull = true); 1604 template <class IntTy> 1605 void printInt(StringRef Name, IntTy Int, bool ShouldSkipZero = true); 1606 void printBool(StringRef Name, bool Value, Optional<bool> Default = None); 1607 void printDIFlags(StringRef Name, DINode::DIFlags Flags); 1608 void printDISPFlags(StringRef Name, DISubprogram::DISPFlags Flags); 1609 template <class IntTy, class Stringifier> 1610 void printDwarfEnum(StringRef Name, IntTy Value, Stringifier toString, 1611 bool ShouldSkipZero = true); 1612 void printEmissionKind(StringRef Name, DICompileUnit::DebugEmissionKind EK); 1613 void printNameTableKind(StringRef Name, 1614 DICompileUnit::DebugNameTableKind NTK); 1615 }; 1616 1617 } // end anonymous namespace 1618 1619 void MDFieldPrinter::printTag(const DINode *N) { 1620 Out << FS << "tag: "; 1621 auto Tag = dwarf::TagString(N->getTag()); 1622 if (!Tag.empty()) 1623 Out << Tag; 1624 else 1625 Out << N->getTag(); 1626 } 1627 1628 void MDFieldPrinter::printMacinfoType(const DIMacroNode *N) { 1629 Out << FS << "type: "; 1630 auto Type = dwarf::MacinfoString(N->getMacinfoType()); 1631 if (!Type.empty()) 1632 Out << Type; 1633 else 1634 Out << N->getMacinfoType(); 1635 } 1636 1637 void MDFieldPrinter::printChecksum( 1638 const DIFile::ChecksumInfo<StringRef> &Checksum) { 1639 Out << FS << "checksumkind: " << Checksum.getKindAsString(); 1640 printString("checksum", Checksum.Value, /* ShouldSkipEmpty */ false); 1641 } 1642 1643 void MDFieldPrinter::printString(StringRef Name, StringRef Value, 1644 bool ShouldSkipEmpty) { 1645 if (ShouldSkipEmpty && Value.empty()) 1646 return; 1647 1648 Out << FS << Name << ": \""; 1649 printEscapedString(Value, Out); 1650 Out << "\""; 1651 } 1652 1653 static void writeMetadataAsOperand(raw_ostream &Out, const Metadata *MD, 1654 TypePrinting *TypePrinter, 1655 SlotTracker *Machine, 1656 const Module *Context) { 1657 if (!MD) { 1658 Out << "null"; 1659 return; 1660 } 1661 WriteAsOperandInternal(Out, MD, TypePrinter, Machine, Context); 1662 } 1663 1664 void MDFieldPrinter::printMetadata(StringRef Name, const Metadata *MD, 1665 bool ShouldSkipNull) { 1666 if (ShouldSkipNull && !MD) 1667 return; 1668 1669 Out << FS << Name << ": "; 1670 writeMetadataAsOperand(Out, MD, TypePrinter, Machine, Context); 1671 } 1672 1673 template <class IntTy> 1674 void MDFieldPrinter::printInt(StringRef Name, IntTy Int, bool ShouldSkipZero) { 1675 if (ShouldSkipZero && !Int) 1676 return; 1677 1678 Out << FS << Name << ": " << Int; 1679 } 1680 1681 void MDFieldPrinter::printBool(StringRef Name, bool Value, 1682 Optional<bool> Default) { 1683 if (Default && Value == *Default) 1684 return; 1685 Out << FS << Name << ": " << (Value ? "true" : "false"); 1686 } 1687 1688 void MDFieldPrinter::printDIFlags(StringRef Name, DINode::DIFlags Flags) { 1689 if (!Flags) 1690 return; 1691 1692 Out << FS << Name << ": "; 1693 1694 SmallVector<DINode::DIFlags, 8> SplitFlags; 1695 auto Extra = DINode::splitFlags(Flags, SplitFlags); 1696 1697 FieldSeparator FlagsFS(" | "); 1698 for (auto F : SplitFlags) { 1699 auto StringF = DINode::getFlagString(F); 1700 assert(!StringF.empty() && "Expected valid flag"); 1701 Out << FlagsFS << StringF; 1702 } 1703 if (Extra || SplitFlags.empty()) 1704 Out << FlagsFS << Extra; 1705 } 1706 1707 void MDFieldPrinter::printDISPFlags(StringRef Name, 1708 DISubprogram::DISPFlags Flags) { 1709 // Always print this field, because no flags in the IR at all will be 1710 // interpreted as old-style isDefinition: true. 1711 Out << FS << Name << ": "; 1712 1713 if (!Flags) { 1714 Out << 0; 1715 return; 1716 } 1717 1718 SmallVector<DISubprogram::DISPFlags, 8> SplitFlags; 1719 auto Extra = DISubprogram::splitFlags(Flags, SplitFlags); 1720 1721 FieldSeparator FlagsFS(" | "); 1722 for (auto F : SplitFlags) { 1723 auto StringF = DISubprogram::getFlagString(F); 1724 assert(!StringF.empty() && "Expected valid flag"); 1725 Out << FlagsFS << StringF; 1726 } 1727 if (Extra || SplitFlags.empty()) 1728 Out << FlagsFS << Extra; 1729 } 1730 1731 void MDFieldPrinter::printEmissionKind(StringRef Name, 1732 DICompileUnit::DebugEmissionKind EK) { 1733 Out << FS << Name << ": " << DICompileUnit::emissionKindString(EK); 1734 } 1735 1736 void MDFieldPrinter::printNameTableKind(StringRef Name, 1737 DICompileUnit::DebugNameTableKind NTK) { 1738 if (NTK == DICompileUnit::DebugNameTableKind::Default) 1739 return; 1740 Out << FS << Name << ": " << DICompileUnit::nameTableKindString(NTK); 1741 } 1742 1743 template <class IntTy, class Stringifier> 1744 void MDFieldPrinter::printDwarfEnum(StringRef Name, IntTy Value, 1745 Stringifier toString, bool ShouldSkipZero) { 1746 if (!Value) 1747 return; 1748 1749 Out << FS << Name << ": "; 1750 auto S = toString(Value); 1751 if (!S.empty()) 1752 Out << S; 1753 else 1754 Out << Value; 1755 } 1756 1757 static void writeGenericDINode(raw_ostream &Out, const GenericDINode *N, 1758 TypePrinting *TypePrinter, SlotTracker *Machine, 1759 const Module *Context) { 1760 Out << "!GenericDINode("; 1761 MDFieldPrinter Printer(Out, TypePrinter, Machine, Context); 1762 Printer.printTag(N); 1763 Printer.printString("header", N->getHeader()); 1764 if (N->getNumDwarfOperands()) { 1765 Out << Printer.FS << "operands: {"; 1766 FieldSeparator IFS; 1767 for (auto &I : N->dwarf_operands()) { 1768 Out << IFS; 1769 writeMetadataAsOperand(Out, I, TypePrinter, Machine, Context); 1770 } 1771 Out << "}"; 1772 } 1773 Out << ")"; 1774 } 1775 1776 static void writeDILocation(raw_ostream &Out, const DILocation *DL, 1777 TypePrinting *TypePrinter, SlotTracker *Machine, 1778 const Module *Context) { 1779 Out << "!DILocation("; 1780 MDFieldPrinter Printer(Out, TypePrinter, Machine, Context); 1781 // Always output the line, since 0 is a relevant and important value for it. 1782 Printer.printInt("line", DL->getLine(), /* ShouldSkipZero */ false); 1783 Printer.printInt("column", DL->getColumn()); 1784 Printer.printMetadata("scope", DL->getRawScope(), /* ShouldSkipNull */ false); 1785 Printer.printMetadata("inlinedAt", DL->getRawInlinedAt()); 1786 Printer.printBool("isImplicitCode", DL->isImplicitCode(), 1787 /* Default */ false); 1788 Out << ")"; 1789 } 1790 1791 static void writeDISubrange(raw_ostream &Out, const DISubrange *N, 1792 TypePrinting *TypePrinter, SlotTracker *Machine, 1793 const Module *Context) { 1794 Out << "!DISubrange("; 1795 MDFieldPrinter Printer(Out, TypePrinter, Machine, Context); 1796 if (auto *CE = N->getCount().dyn_cast<ConstantInt*>()) 1797 Printer.printInt("count", CE->getSExtValue(), /* ShouldSkipZero */ false); 1798 else 1799 Printer.printMetadata("count", N->getCount().dyn_cast<DIVariable*>(), 1800 /*ShouldSkipNull */ false); 1801 Printer.printInt("lowerBound", N->getLowerBound()); 1802 Out << ")"; 1803 } 1804 1805 static void writeDIEnumerator(raw_ostream &Out, const DIEnumerator *N, 1806 TypePrinting *, SlotTracker *, const Module *) { 1807 Out << "!DIEnumerator("; 1808 MDFieldPrinter Printer(Out); 1809 Printer.printString("name", N->getName(), /* ShouldSkipEmpty */ false); 1810 if (N->isUnsigned()) { 1811 auto Value = static_cast<uint64_t>(N->getValue()); 1812 Printer.printInt("value", Value, /* ShouldSkipZero */ false); 1813 Printer.printBool("isUnsigned", true); 1814 } else { 1815 Printer.printInt("value", N->getValue(), /* ShouldSkipZero */ false); 1816 } 1817 Out << ")"; 1818 } 1819 1820 static void writeDIBasicType(raw_ostream &Out, const DIBasicType *N, 1821 TypePrinting *, SlotTracker *, const Module *) { 1822 Out << "!DIBasicType("; 1823 MDFieldPrinter Printer(Out); 1824 if (N->getTag() != dwarf::DW_TAG_base_type) 1825 Printer.printTag(N); 1826 Printer.printString("name", N->getName()); 1827 Printer.printInt("size", N->getSizeInBits()); 1828 Printer.printInt("align", N->getAlignInBits()); 1829 Printer.printDwarfEnum("encoding", N->getEncoding(), 1830 dwarf::AttributeEncodingString); 1831 Printer.printDIFlags("flags", N->getFlags()); 1832 Out << ")"; 1833 } 1834 1835 static void writeDIDerivedType(raw_ostream &Out, const DIDerivedType *N, 1836 TypePrinting *TypePrinter, SlotTracker *Machine, 1837 const Module *Context) { 1838 Out << "!DIDerivedType("; 1839 MDFieldPrinter Printer(Out, TypePrinter, Machine, Context); 1840 Printer.printTag(N); 1841 Printer.printString("name", N->getName()); 1842 Printer.printMetadata("scope", N->getRawScope()); 1843 Printer.printMetadata("file", N->getRawFile()); 1844 Printer.printInt("line", N->getLine()); 1845 Printer.printMetadata("baseType", N->getRawBaseType(), 1846 /* ShouldSkipNull */ false); 1847 Printer.printInt("size", N->getSizeInBits()); 1848 Printer.printInt("align", N->getAlignInBits()); 1849 Printer.printInt("offset", N->getOffsetInBits()); 1850 Printer.printDIFlags("flags", N->getFlags()); 1851 Printer.printMetadata("extraData", N->getRawExtraData()); 1852 if (const auto &DWARFAddressSpace = N->getDWARFAddressSpace()) 1853 Printer.printInt("dwarfAddressSpace", *DWARFAddressSpace, 1854 /* ShouldSkipZero */ false); 1855 Out << ")"; 1856 } 1857 1858 static void writeDICompositeType(raw_ostream &Out, const DICompositeType *N, 1859 TypePrinting *TypePrinter, 1860 SlotTracker *Machine, const Module *Context) { 1861 Out << "!DICompositeType("; 1862 MDFieldPrinter Printer(Out, TypePrinter, Machine, Context); 1863 Printer.printTag(N); 1864 Printer.printString("name", N->getName()); 1865 Printer.printMetadata("scope", N->getRawScope()); 1866 Printer.printMetadata("file", N->getRawFile()); 1867 Printer.printInt("line", N->getLine()); 1868 Printer.printMetadata("baseType", N->getRawBaseType()); 1869 Printer.printInt("size", N->getSizeInBits()); 1870 Printer.printInt("align", N->getAlignInBits()); 1871 Printer.printInt("offset", N->getOffsetInBits()); 1872 Printer.printDIFlags("flags", N->getFlags()); 1873 Printer.printMetadata("elements", N->getRawElements()); 1874 Printer.printDwarfEnum("runtimeLang", N->getRuntimeLang(), 1875 dwarf::LanguageString); 1876 Printer.printMetadata("vtableHolder", N->getRawVTableHolder()); 1877 Printer.printMetadata("templateParams", N->getRawTemplateParams()); 1878 Printer.printString("identifier", N->getIdentifier()); 1879 Printer.printMetadata("discriminator", N->getRawDiscriminator()); 1880 Out << ")"; 1881 } 1882 1883 static void writeDISubroutineType(raw_ostream &Out, const DISubroutineType *N, 1884 TypePrinting *TypePrinter, 1885 SlotTracker *Machine, const Module *Context) { 1886 Out << "!DISubroutineType("; 1887 MDFieldPrinter Printer(Out, TypePrinter, Machine, Context); 1888 Printer.printDIFlags("flags", N->getFlags()); 1889 Printer.printDwarfEnum("cc", N->getCC(), dwarf::ConventionString); 1890 Printer.printMetadata("types", N->getRawTypeArray(), 1891 /* ShouldSkipNull */ false); 1892 Out << ")"; 1893 } 1894 1895 static void writeDIFile(raw_ostream &Out, const DIFile *N, TypePrinting *, 1896 SlotTracker *, const Module *) { 1897 Out << "!DIFile("; 1898 MDFieldPrinter Printer(Out); 1899 Printer.printString("filename", N->getFilename(), 1900 /* ShouldSkipEmpty */ false); 1901 Printer.printString("directory", N->getDirectory(), 1902 /* ShouldSkipEmpty */ false); 1903 // Print all values for checksum together, or not at all. 1904 if (N->getChecksum()) 1905 Printer.printChecksum(*N->getChecksum()); 1906 Printer.printString("source", N->getSource().getValueOr(StringRef()), 1907 /* ShouldSkipEmpty */ true); 1908 Out << ")"; 1909 } 1910 1911 static void writeDICompileUnit(raw_ostream &Out, const DICompileUnit *N, 1912 TypePrinting *TypePrinter, SlotTracker *Machine, 1913 const Module *Context) { 1914 Out << "!DICompileUnit("; 1915 MDFieldPrinter Printer(Out, TypePrinter, Machine, Context); 1916 Printer.printDwarfEnum("language", N->getSourceLanguage(), 1917 dwarf::LanguageString, /* ShouldSkipZero */ false); 1918 Printer.printMetadata("file", N->getRawFile(), /* ShouldSkipNull */ false); 1919 Printer.printString("producer", N->getProducer()); 1920 Printer.printBool("isOptimized", N->isOptimized()); 1921 Printer.printString("flags", N->getFlags()); 1922 Printer.printInt("runtimeVersion", N->getRuntimeVersion(), 1923 /* ShouldSkipZero */ false); 1924 Printer.printString("splitDebugFilename", N->getSplitDebugFilename()); 1925 Printer.printEmissionKind("emissionKind", N->getEmissionKind()); 1926 Printer.printMetadata("enums", N->getRawEnumTypes()); 1927 Printer.printMetadata("retainedTypes", N->getRawRetainedTypes()); 1928 Printer.printMetadata("globals", N->getRawGlobalVariables()); 1929 Printer.printMetadata("imports", N->getRawImportedEntities()); 1930 Printer.printMetadata("macros", N->getRawMacros()); 1931 Printer.printInt("dwoId", N->getDWOId()); 1932 Printer.printBool("splitDebugInlining", N->getSplitDebugInlining(), true); 1933 Printer.printBool("debugInfoForProfiling", N->getDebugInfoForProfiling(), 1934 false); 1935 Printer.printNameTableKind("nameTableKind", N->getNameTableKind()); 1936 Printer.printBool("rangesBaseAddress", N->getRangesBaseAddress(), false); 1937 Out << ")"; 1938 } 1939 1940 static void writeDISubprogram(raw_ostream &Out, const DISubprogram *N, 1941 TypePrinting *TypePrinter, SlotTracker *Machine, 1942 const Module *Context) { 1943 Out << "!DISubprogram("; 1944 MDFieldPrinter Printer(Out, TypePrinter, Machine, Context); 1945 Printer.printString("name", N->getName()); 1946 Printer.printString("linkageName", N->getLinkageName()); 1947 Printer.printMetadata("scope", N->getRawScope(), /* ShouldSkipNull */ false); 1948 Printer.printMetadata("file", N->getRawFile()); 1949 Printer.printInt("line", N->getLine()); 1950 Printer.printMetadata("type", N->getRawType()); 1951 Printer.printInt("scopeLine", N->getScopeLine()); 1952 Printer.printMetadata("containingType", N->getRawContainingType()); 1953 if (N->getVirtuality() != dwarf::DW_VIRTUALITY_none || 1954 N->getVirtualIndex() != 0) 1955 Printer.printInt("virtualIndex", N->getVirtualIndex(), false); 1956 Printer.printInt("thisAdjustment", N->getThisAdjustment()); 1957 Printer.printDIFlags("flags", N->getFlags()); 1958 Printer.printDISPFlags("spFlags", N->getSPFlags()); 1959 Printer.printMetadata("unit", N->getRawUnit()); 1960 Printer.printMetadata("templateParams", N->getRawTemplateParams()); 1961 Printer.printMetadata("declaration", N->getRawDeclaration()); 1962 Printer.printMetadata("retainedNodes", N->getRawRetainedNodes()); 1963 Printer.printMetadata("thrownTypes", N->getRawThrownTypes()); 1964 Out << ")"; 1965 } 1966 1967 static void writeDILexicalBlock(raw_ostream &Out, const DILexicalBlock *N, 1968 TypePrinting *TypePrinter, SlotTracker *Machine, 1969 const Module *Context) { 1970 Out << "!DILexicalBlock("; 1971 MDFieldPrinter Printer(Out, TypePrinter, Machine, Context); 1972 Printer.printMetadata("scope", N->getRawScope(), /* ShouldSkipNull */ false); 1973 Printer.printMetadata("file", N->getRawFile()); 1974 Printer.printInt("line", N->getLine()); 1975 Printer.printInt("column", N->getColumn()); 1976 Out << ")"; 1977 } 1978 1979 static void writeDILexicalBlockFile(raw_ostream &Out, 1980 const DILexicalBlockFile *N, 1981 TypePrinting *TypePrinter, 1982 SlotTracker *Machine, 1983 const Module *Context) { 1984 Out << "!DILexicalBlockFile("; 1985 MDFieldPrinter Printer(Out, TypePrinter, Machine, Context); 1986 Printer.printMetadata("scope", N->getRawScope(), /* ShouldSkipNull */ false); 1987 Printer.printMetadata("file", N->getRawFile()); 1988 Printer.printInt("discriminator", N->getDiscriminator(), 1989 /* ShouldSkipZero */ false); 1990 Out << ")"; 1991 } 1992 1993 static void writeDINamespace(raw_ostream &Out, const DINamespace *N, 1994 TypePrinting *TypePrinter, SlotTracker *Machine, 1995 const Module *Context) { 1996 Out << "!DINamespace("; 1997 MDFieldPrinter Printer(Out, TypePrinter, Machine, Context); 1998 Printer.printString("name", N->getName()); 1999 Printer.printMetadata("scope", N->getRawScope(), /* ShouldSkipNull */ false); 2000 Printer.printBool("exportSymbols", N->getExportSymbols(), false); 2001 Out << ")"; 2002 } 2003 2004 static void writeDICommonBlock(raw_ostream &Out, const DICommonBlock *N, 2005 TypePrinting *TypePrinter, SlotTracker *Machine, 2006 const Module *Context) { 2007 Out << "!DICommonBlock("; 2008 MDFieldPrinter Printer(Out, TypePrinter, Machine, Context); 2009 Printer.printMetadata("scope", N->getRawScope(), false); 2010 Printer.printMetadata("declaration", N->getRawDecl(), false); 2011 Printer.printString("name", N->getName()); 2012 Printer.printMetadata("file", N->getRawFile()); 2013 Printer.printInt("line", N->getLineNo()); 2014 Out << ")"; 2015 } 2016 2017 static void writeDIMacro(raw_ostream &Out, const DIMacro *N, 2018 TypePrinting *TypePrinter, SlotTracker *Machine, 2019 const Module *Context) { 2020 Out << "!DIMacro("; 2021 MDFieldPrinter Printer(Out, TypePrinter, Machine, Context); 2022 Printer.printMacinfoType(N); 2023 Printer.printInt("line", N->getLine()); 2024 Printer.printString("name", N->getName()); 2025 Printer.printString("value", N->getValue()); 2026 Out << ")"; 2027 } 2028 2029 static void writeDIMacroFile(raw_ostream &Out, const DIMacroFile *N, 2030 TypePrinting *TypePrinter, SlotTracker *Machine, 2031 const Module *Context) { 2032 Out << "!DIMacroFile("; 2033 MDFieldPrinter Printer(Out, TypePrinter, Machine, Context); 2034 Printer.printInt("line", N->getLine()); 2035 Printer.printMetadata("file", N->getRawFile(), /* ShouldSkipNull */ false); 2036 Printer.printMetadata("nodes", N->getRawElements()); 2037 Out << ")"; 2038 } 2039 2040 static void writeDIModule(raw_ostream &Out, const DIModule *N, 2041 TypePrinting *TypePrinter, SlotTracker *Machine, 2042 const Module *Context) { 2043 Out << "!DIModule("; 2044 MDFieldPrinter Printer(Out, TypePrinter, Machine, Context); 2045 Printer.printMetadata("scope", N->getRawScope(), /* ShouldSkipNull */ false); 2046 Printer.printString("name", N->getName()); 2047 Printer.printString("configMacros", N->getConfigurationMacros()); 2048 Printer.printString("includePath", N->getIncludePath()); 2049 Printer.printString("isysroot", N->getISysRoot()); 2050 Out << ")"; 2051 } 2052 2053 2054 static void writeDITemplateTypeParameter(raw_ostream &Out, 2055 const DITemplateTypeParameter *N, 2056 TypePrinting *TypePrinter, 2057 SlotTracker *Machine, 2058 const Module *Context) { 2059 Out << "!DITemplateTypeParameter("; 2060 MDFieldPrinter Printer(Out, TypePrinter, Machine, Context); 2061 Printer.printString("name", N->getName()); 2062 Printer.printMetadata("type", N->getRawType(), /* ShouldSkipNull */ false); 2063 Out << ")"; 2064 } 2065 2066 static void writeDITemplateValueParameter(raw_ostream &Out, 2067 const DITemplateValueParameter *N, 2068 TypePrinting *TypePrinter, 2069 SlotTracker *Machine, 2070 const Module *Context) { 2071 Out << "!DITemplateValueParameter("; 2072 MDFieldPrinter Printer(Out, TypePrinter, Machine, Context); 2073 if (N->getTag() != dwarf::DW_TAG_template_value_parameter) 2074 Printer.printTag(N); 2075 Printer.printString("name", N->getName()); 2076 Printer.printMetadata("type", N->getRawType()); 2077 Printer.printMetadata("value", N->getValue(), /* ShouldSkipNull */ false); 2078 Out << ")"; 2079 } 2080 2081 static void writeDIGlobalVariable(raw_ostream &Out, const DIGlobalVariable *N, 2082 TypePrinting *TypePrinter, 2083 SlotTracker *Machine, const Module *Context) { 2084 Out << "!DIGlobalVariable("; 2085 MDFieldPrinter Printer(Out, TypePrinter, Machine, Context); 2086 Printer.printString("name", N->getName()); 2087 Printer.printString("linkageName", N->getLinkageName()); 2088 Printer.printMetadata("scope", N->getRawScope(), /* ShouldSkipNull */ false); 2089 Printer.printMetadata("file", N->getRawFile()); 2090 Printer.printInt("line", N->getLine()); 2091 Printer.printMetadata("type", N->getRawType()); 2092 Printer.printBool("isLocal", N->isLocalToUnit()); 2093 Printer.printBool("isDefinition", N->isDefinition()); 2094 Printer.printMetadata("declaration", N->getRawStaticDataMemberDeclaration()); 2095 Printer.printMetadata("templateParams", N->getRawTemplateParams()); 2096 Printer.printInt("align", N->getAlignInBits()); 2097 Out << ")"; 2098 } 2099 2100 static void writeDILocalVariable(raw_ostream &Out, const DILocalVariable *N, 2101 TypePrinting *TypePrinter, 2102 SlotTracker *Machine, const Module *Context) { 2103 Out << "!DILocalVariable("; 2104 MDFieldPrinter Printer(Out, TypePrinter, Machine, Context); 2105 Printer.printString("name", N->getName()); 2106 Printer.printInt("arg", N->getArg()); 2107 Printer.printMetadata("scope", N->getRawScope(), /* ShouldSkipNull */ false); 2108 Printer.printMetadata("file", N->getRawFile()); 2109 Printer.printInt("line", N->getLine()); 2110 Printer.printMetadata("type", N->getRawType()); 2111 Printer.printDIFlags("flags", N->getFlags()); 2112 Printer.printInt("align", N->getAlignInBits()); 2113 Out << ")"; 2114 } 2115 2116 static void writeDILabel(raw_ostream &Out, const DILabel *N, 2117 TypePrinting *TypePrinter, 2118 SlotTracker *Machine, const Module *Context) { 2119 Out << "!DILabel("; 2120 MDFieldPrinter Printer(Out, TypePrinter, Machine, Context); 2121 Printer.printMetadata("scope", N->getRawScope(), /* ShouldSkipNull */ false); 2122 Printer.printString("name", N->getName()); 2123 Printer.printMetadata("file", N->getRawFile()); 2124 Printer.printInt("line", N->getLine()); 2125 Out << ")"; 2126 } 2127 2128 static void writeDIExpression(raw_ostream &Out, const DIExpression *N, 2129 TypePrinting *TypePrinter, SlotTracker *Machine, 2130 const Module *Context) { 2131 Out << "!DIExpression("; 2132 FieldSeparator FS; 2133 if (N->isValid()) { 2134 for (auto I = N->expr_op_begin(), E = N->expr_op_end(); I != E; ++I) { 2135 auto OpStr = dwarf::OperationEncodingString(I->getOp()); 2136 assert(!OpStr.empty() && "Expected valid opcode"); 2137 2138 Out << FS << OpStr; 2139 if (I->getOp() == dwarf::DW_OP_LLVM_convert) { 2140 Out << FS << I->getArg(0); 2141 Out << FS << dwarf::AttributeEncodingString(I->getArg(1)); 2142 } else { 2143 for (unsigned A = 0, AE = I->getNumArgs(); A != AE; ++A) 2144 Out << FS << I->getArg(A); 2145 } 2146 } 2147 } else { 2148 for (const auto &I : N->getElements()) 2149 Out << FS << I; 2150 } 2151 Out << ")"; 2152 } 2153 2154 static void writeDIGlobalVariableExpression(raw_ostream &Out, 2155 const DIGlobalVariableExpression *N, 2156 TypePrinting *TypePrinter, 2157 SlotTracker *Machine, 2158 const Module *Context) { 2159 Out << "!DIGlobalVariableExpression("; 2160 MDFieldPrinter Printer(Out, TypePrinter, Machine, Context); 2161 Printer.printMetadata("var", N->getVariable()); 2162 Printer.printMetadata("expr", N->getExpression()); 2163 Out << ")"; 2164 } 2165 2166 static void writeDIObjCProperty(raw_ostream &Out, const DIObjCProperty *N, 2167 TypePrinting *TypePrinter, SlotTracker *Machine, 2168 const Module *Context) { 2169 Out << "!DIObjCProperty("; 2170 MDFieldPrinter Printer(Out, TypePrinter, Machine, Context); 2171 Printer.printString("name", N->getName()); 2172 Printer.printMetadata("file", N->getRawFile()); 2173 Printer.printInt("line", N->getLine()); 2174 Printer.printString("setter", N->getSetterName()); 2175 Printer.printString("getter", N->getGetterName()); 2176 Printer.printInt("attributes", N->getAttributes()); 2177 Printer.printMetadata("type", N->getRawType()); 2178 Out << ")"; 2179 } 2180 2181 static void writeDIImportedEntity(raw_ostream &Out, const DIImportedEntity *N, 2182 TypePrinting *TypePrinter, 2183 SlotTracker *Machine, const Module *Context) { 2184 Out << "!DIImportedEntity("; 2185 MDFieldPrinter Printer(Out, TypePrinter, Machine, Context); 2186 Printer.printTag(N); 2187 Printer.printString("name", N->getName()); 2188 Printer.printMetadata("scope", N->getRawScope(), /* ShouldSkipNull */ false); 2189 Printer.printMetadata("entity", N->getRawEntity()); 2190 Printer.printMetadata("file", N->getRawFile()); 2191 Printer.printInt("line", N->getLine()); 2192 Out << ")"; 2193 } 2194 2195 static void WriteMDNodeBodyInternal(raw_ostream &Out, const MDNode *Node, 2196 TypePrinting *TypePrinter, 2197 SlotTracker *Machine, 2198 const Module *Context) { 2199 if (Node->isDistinct()) 2200 Out << "distinct "; 2201 else if (Node->isTemporary()) 2202 Out << "<temporary!> "; // Handle broken code. 2203 2204 switch (Node->getMetadataID()) { 2205 default: 2206 llvm_unreachable("Expected uniquable MDNode"); 2207 #define HANDLE_MDNODE_LEAF(CLASS) \ 2208 case Metadata::CLASS##Kind: \ 2209 write##CLASS(Out, cast<CLASS>(Node), TypePrinter, Machine, Context); \ 2210 break; 2211 #include "llvm/IR/Metadata.def" 2212 } 2213 } 2214 2215 // Full implementation of printing a Value as an operand with support for 2216 // TypePrinting, etc. 2217 static void WriteAsOperandInternal(raw_ostream &Out, const Value *V, 2218 TypePrinting *TypePrinter, 2219 SlotTracker *Machine, 2220 const Module *Context) { 2221 if (V->hasName()) { 2222 PrintLLVMName(Out, V); 2223 return; 2224 } 2225 2226 const Constant *CV = dyn_cast<Constant>(V); 2227 if (CV && !isa<GlobalValue>(CV)) { 2228 assert(TypePrinter && "Constants require TypePrinting!"); 2229 WriteConstantInternal(Out, CV, *TypePrinter, Machine, Context); 2230 return; 2231 } 2232 2233 if (const InlineAsm *IA = dyn_cast<InlineAsm>(V)) { 2234 Out << "asm "; 2235 if (IA->hasSideEffects()) 2236 Out << "sideeffect "; 2237 if (IA->isAlignStack()) 2238 Out << "alignstack "; 2239 // We don't emit the AD_ATT dialect as it's the assumed default. 2240 if (IA->getDialect() == InlineAsm::AD_Intel) 2241 Out << "inteldialect "; 2242 Out << '"'; 2243 printEscapedString(IA->getAsmString(), Out); 2244 Out << "\", \""; 2245 printEscapedString(IA->getConstraintString(), Out); 2246 Out << '"'; 2247 return; 2248 } 2249 2250 if (auto *MD = dyn_cast<MetadataAsValue>(V)) { 2251 WriteAsOperandInternal(Out, MD->getMetadata(), TypePrinter, Machine, 2252 Context, /* FromValue */ true); 2253 return; 2254 } 2255 2256 char Prefix = '%'; 2257 int Slot; 2258 // If we have a SlotTracker, use it. 2259 if (Machine) { 2260 if (const GlobalValue *GV = dyn_cast<GlobalValue>(V)) { 2261 Slot = Machine->getGlobalSlot(GV); 2262 Prefix = '@'; 2263 } else { 2264 Slot = Machine->getLocalSlot(V); 2265 2266 // If the local value didn't succeed, then we may be referring to a value 2267 // from a different function. Translate it, as this can happen when using 2268 // address of blocks. 2269 if (Slot == -1) 2270 if ((Machine = createSlotTracker(V))) { 2271 Slot = Machine->getLocalSlot(V); 2272 delete Machine; 2273 } 2274 } 2275 } else if ((Machine = createSlotTracker(V))) { 2276 // Otherwise, create one to get the # and then destroy it. 2277 if (const GlobalValue *GV = dyn_cast<GlobalValue>(V)) { 2278 Slot = Machine->getGlobalSlot(GV); 2279 Prefix = '@'; 2280 } else { 2281 Slot = Machine->getLocalSlot(V); 2282 } 2283 delete Machine; 2284 Machine = nullptr; 2285 } else { 2286 Slot = -1; 2287 } 2288 2289 if (Slot != -1) 2290 Out << Prefix << Slot; 2291 else 2292 Out << "<badref>"; 2293 } 2294 2295 static void WriteAsOperandInternal(raw_ostream &Out, const Metadata *MD, 2296 TypePrinting *TypePrinter, 2297 SlotTracker *Machine, const Module *Context, 2298 bool FromValue) { 2299 // Write DIExpressions inline when used as a value. Improves readability of 2300 // debug info intrinsics. 2301 if (const DIExpression *Expr = dyn_cast<DIExpression>(MD)) { 2302 writeDIExpression(Out, Expr, TypePrinter, Machine, Context); 2303 return; 2304 } 2305 2306 if (const MDNode *N = dyn_cast<MDNode>(MD)) { 2307 std::unique_ptr<SlotTracker> MachineStorage; 2308 if (!Machine) { 2309 MachineStorage = make_unique<SlotTracker>(Context); 2310 Machine = MachineStorage.get(); 2311 } 2312 int Slot = Machine->getMetadataSlot(N); 2313 if (Slot == -1) { 2314 if (const DILocation *Loc = dyn_cast<DILocation>(N)) { 2315 writeDILocation(Out, Loc, TypePrinter, Machine, Context); 2316 return; 2317 } 2318 // Give the pointer value instead of "badref", since this comes up all 2319 // the time when debugging. 2320 Out << "<" << N << ">"; 2321 } else 2322 Out << '!' << Slot; 2323 return; 2324 } 2325 2326 if (const MDString *MDS = dyn_cast<MDString>(MD)) { 2327 Out << "!\""; 2328 printEscapedString(MDS->getString(), Out); 2329 Out << '"'; 2330 return; 2331 } 2332 2333 auto *V = cast<ValueAsMetadata>(MD); 2334 assert(TypePrinter && "TypePrinter required for metadata values"); 2335 assert((FromValue || !isa<LocalAsMetadata>(V)) && 2336 "Unexpected function-local metadata outside of value argument"); 2337 2338 TypePrinter->print(V->getValue()->getType(), Out); 2339 Out << ' '; 2340 WriteAsOperandInternal(Out, V->getValue(), TypePrinter, Machine, Context); 2341 } 2342 2343 namespace { 2344 2345 class AssemblyWriter { 2346 formatted_raw_ostream &Out; 2347 const Module *TheModule = nullptr; 2348 const ModuleSummaryIndex *TheIndex = nullptr; 2349 std::unique_ptr<SlotTracker> SlotTrackerStorage; 2350 SlotTracker &Machine; 2351 TypePrinting TypePrinter; 2352 AssemblyAnnotationWriter *AnnotationWriter = nullptr; 2353 SetVector<const Comdat *> Comdats; 2354 bool IsForDebug; 2355 bool ShouldPreserveUseListOrder; 2356 UseListOrderStack UseListOrders; 2357 SmallVector<StringRef, 8> MDNames; 2358 /// Synchronization scope names registered with LLVMContext. 2359 SmallVector<StringRef, 8> SSNs; 2360 DenseMap<const GlobalValueSummary *, GlobalValue::GUID> SummaryToGUIDMap; 2361 2362 public: 2363 /// Construct an AssemblyWriter with an external SlotTracker 2364 AssemblyWriter(formatted_raw_ostream &o, SlotTracker &Mac, const Module *M, 2365 AssemblyAnnotationWriter *AAW, bool IsForDebug, 2366 bool ShouldPreserveUseListOrder = false); 2367 2368 AssemblyWriter(formatted_raw_ostream &o, SlotTracker &Mac, 2369 const ModuleSummaryIndex *Index, bool IsForDebug); 2370 2371 void printMDNodeBody(const MDNode *MD); 2372 void printNamedMDNode(const NamedMDNode *NMD); 2373 2374 void printModule(const Module *M); 2375 2376 void writeOperand(const Value *Op, bool PrintType); 2377 void writeParamOperand(const Value *Operand, AttributeSet Attrs); 2378 void writeOperandBundles(const CallBase *Call); 2379 void writeSyncScope(const LLVMContext &Context, 2380 SyncScope::ID SSID); 2381 void writeAtomic(const LLVMContext &Context, 2382 AtomicOrdering Ordering, 2383 SyncScope::ID SSID); 2384 void writeAtomicCmpXchg(const LLVMContext &Context, 2385 AtomicOrdering SuccessOrdering, 2386 AtomicOrdering FailureOrdering, 2387 SyncScope::ID SSID); 2388 2389 void writeAllMDNodes(); 2390 void writeMDNode(unsigned Slot, const MDNode *Node); 2391 void writeAllAttributeGroups(); 2392 2393 void printTypeIdentities(); 2394 void printGlobal(const GlobalVariable *GV); 2395 void printIndirectSymbol(const GlobalIndirectSymbol *GIS); 2396 void printComdat(const Comdat *C); 2397 void printFunction(const Function *F); 2398 void printArgument(const Argument *FA, AttributeSet Attrs); 2399 void printBasicBlock(const BasicBlock *BB); 2400 void printInstructionLine(const Instruction &I); 2401 void printInstruction(const Instruction &I); 2402 2403 void printUseListOrder(const UseListOrder &Order); 2404 void printUseLists(const Function *F); 2405 2406 void printModuleSummaryIndex(); 2407 void printSummaryInfo(unsigned Slot, const ValueInfo &VI); 2408 void printSummary(const GlobalValueSummary &Summary); 2409 void printAliasSummary(const AliasSummary *AS); 2410 void printGlobalVarSummary(const GlobalVarSummary *GS); 2411 void printFunctionSummary(const FunctionSummary *FS); 2412 void printTypeIdSummary(const TypeIdSummary &TIS); 2413 void printTypeTestResolution(const TypeTestResolution &TTRes); 2414 void printArgs(const std::vector<uint64_t> &Args); 2415 void printWPDRes(const WholeProgramDevirtResolution &WPDRes); 2416 void printTypeIdInfo(const FunctionSummary::TypeIdInfo &TIDInfo); 2417 void printVFuncId(const FunctionSummary::VFuncId VFId); 2418 void 2419 printNonConstVCalls(const std::vector<FunctionSummary::VFuncId> VCallList, 2420 const char *Tag); 2421 void 2422 printConstVCalls(const std::vector<FunctionSummary::ConstVCall> VCallList, 2423 const char *Tag); 2424 2425 private: 2426 /// Print out metadata attachments. 2427 void printMetadataAttachments( 2428 const SmallVectorImpl<std::pair<unsigned, MDNode *>> &MDs, 2429 StringRef Separator); 2430 2431 // printInfoComment - Print a little comment after the instruction indicating 2432 // which slot it occupies. 2433 void printInfoComment(const Value &V); 2434 2435 // printGCRelocateComment - print comment after call to the gc.relocate 2436 // intrinsic indicating base and derived pointer names. 2437 void printGCRelocateComment(const GCRelocateInst &Relocate); 2438 }; 2439 2440 } // end anonymous namespace 2441 2442 AssemblyWriter::AssemblyWriter(formatted_raw_ostream &o, SlotTracker &Mac, 2443 const Module *M, AssemblyAnnotationWriter *AAW, 2444 bool IsForDebug, bool ShouldPreserveUseListOrder) 2445 : Out(o), TheModule(M), Machine(Mac), TypePrinter(M), AnnotationWriter(AAW), 2446 IsForDebug(IsForDebug), 2447 ShouldPreserveUseListOrder(ShouldPreserveUseListOrder) { 2448 if (!TheModule) 2449 return; 2450 for (const GlobalObject &GO : TheModule->global_objects()) 2451 if (const Comdat *C = GO.getComdat()) 2452 Comdats.insert(C); 2453 } 2454 2455 AssemblyWriter::AssemblyWriter(formatted_raw_ostream &o, SlotTracker &Mac, 2456 const ModuleSummaryIndex *Index, bool IsForDebug) 2457 : Out(o), TheIndex(Index), Machine(Mac), TypePrinter(/*Module=*/nullptr), 2458 IsForDebug(IsForDebug), ShouldPreserveUseListOrder(false) {} 2459 2460 void AssemblyWriter::writeOperand(const Value *Operand, bool PrintType) { 2461 if (!Operand) { 2462 Out << "<null operand!>"; 2463 return; 2464 } 2465 if (PrintType) { 2466 TypePrinter.print(Operand->getType(), Out); 2467 Out << ' '; 2468 } 2469 WriteAsOperandInternal(Out, Operand, &TypePrinter, &Machine, TheModule); 2470 } 2471 2472 void AssemblyWriter::writeSyncScope(const LLVMContext &Context, 2473 SyncScope::ID SSID) { 2474 switch (SSID) { 2475 case SyncScope::System: { 2476 break; 2477 } 2478 default: { 2479 if (SSNs.empty()) 2480 Context.getSyncScopeNames(SSNs); 2481 2482 Out << " syncscope(\""; 2483 printEscapedString(SSNs[SSID], Out); 2484 Out << "\")"; 2485 break; 2486 } 2487 } 2488 } 2489 2490 void AssemblyWriter::writeAtomic(const LLVMContext &Context, 2491 AtomicOrdering Ordering, 2492 SyncScope::ID SSID) { 2493 if (Ordering == AtomicOrdering::NotAtomic) 2494 return; 2495 2496 writeSyncScope(Context, SSID); 2497 Out << " " << toIRString(Ordering); 2498 } 2499 2500 void AssemblyWriter::writeAtomicCmpXchg(const LLVMContext &Context, 2501 AtomicOrdering SuccessOrdering, 2502 AtomicOrdering FailureOrdering, 2503 SyncScope::ID SSID) { 2504 assert(SuccessOrdering != AtomicOrdering::NotAtomic && 2505 FailureOrdering != AtomicOrdering::NotAtomic); 2506 2507 writeSyncScope(Context, SSID); 2508 Out << " " << toIRString(SuccessOrdering); 2509 Out << " " << toIRString(FailureOrdering); 2510 } 2511 2512 void AssemblyWriter::writeParamOperand(const Value *Operand, 2513 AttributeSet Attrs) { 2514 if (!Operand) { 2515 Out << "<null operand!>"; 2516 return; 2517 } 2518 2519 // Print the type 2520 TypePrinter.print(Operand->getType(), Out); 2521 // Print parameter attributes list 2522 if (Attrs.hasAttributes()) 2523 Out << ' ' << Attrs.getAsString(); 2524 Out << ' '; 2525 // Print the operand 2526 WriteAsOperandInternal(Out, Operand, &TypePrinter, &Machine, TheModule); 2527 } 2528 2529 void AssemblyWriter::writeOperandBundles(const CallBase *Call) { 2530 if (!Call->hasOperandBundles()) 2531 return; 2532 2533 Out << " [ "; 2534 2535 bool FirstBundle = true; 2536 for (unsigned i = 0, e = Call->getNumOperandBundles(); i != e; ++i) { 2537 OperandBundleUse BU = Call->getOperandBundleAt(i); 2538 2539 if (!FirstBundle) 2540 Out << ", "; 2541 FirstBundle = false; 2542 2543 Out << '"'; 2544 printEscapedString(BU.getTagName(), Out); 2545 Out << '"'; 2546 2547 Out << '('; 2548 2549 bool FirstInput = true; 2550 for (const auto &Input : BU.Inputs) { 2551 if (!FirstInput) 2552 Out << ", "; 2553 FirstInput = false; 2554 2555 TypePrinter.print(Input->getType(), Out); 2556 Out << " "; 2557 WriteAsOperandInternal(Out, Input, &TypePrinter, &Machine, TheModule); 2558 } 2559 2560 Out << ')'; 2561 } 2562 2563 Out << " ]"; 2564 } 2565 2566 void AssemblyWriter::printModule(const Module *M) { 2567 Machine.initializeIfNeeded(); 2568 2569 if (ShouldPreserveUseListOrder) 2570 UseListOrders = predictUseListOrder(M); 2571 2572 if (!M->getModuleIdentifier().empty() && 2573 // Don't print the ID if it will start a new line (which would 2574 // require a comment char before it). 2575 M->getModuleIdentifier().find('\n') == std::string::npos) 2576 Out << "; ModuleID = '" << M->getModuleIdentifier() << "'\n"; 2577 2578 if (!M->getSourceFileName().empty()) { 2579 Out << "source_filename = \""; 2580 printEscapedString(M->getSourceFileName(), Out); 2581 Out << "\"\n"; 2582 } 2583 2584 const std::string &DL = M->getDataLayoutStr(); 2585 if (!DL.empty()) 2586 Out << "target datalayout = \"" << DL << "\"\n"; 2587 if (!M->getTargetTriple().empty()) 2588 Out << "target triple = \"" << M->getTargetTriple() << "\"\n"; 2589 2590 if (!M->getModuleInlineAsm().empty()) { 2591 Out << '\n'; 2592 2593 // Split the string into lines, to make it easier to read the .ll file. 2594 StringRef Asm = M->getModuleInlineAsm(); 2595 do { 2596 StringRef Front; 2597 std::tie(Front, Asm) = Asm.split('\n'); 2598 2599 // We found a newline, print the portion of the asm string from the 2600 // last newline up to this newline. 2601 Out << "module asm \""; 2602 printEscapedString(Front, Out); 2603 Out << "\"\n"; 2604 } while (!Asm.empty()); 2605 } 2606 2607 printTypeIdentities(); 2608 2609 // Output all comdats. 2610 if (!Comdats.empty()) 2611 Out << '\n'; 2612 for (const Comdat *C : Comdats) { 2613 printComdat(C); 2614 if (C != Comdats.back()) 2615 Out << '\n'; 2616 } 2617 2618 // Output all globals. 2619 if (!M->global_empty()) Out << '\n'; 2620 for (const GlobalVariable &GV : M->globals()) { 2621 printGlobal(&GV); Out << '\n'; 2622 } 2623 2624 // Output all aliases. 2625 if (!M->alias_empty()) Out << "\n"; 2626 for (const GlobalAlias &GA : M->aliases()) 2627 printIndirectSymbol(&GA); 2628 2629 // Output all ifuncs. 2630 if (!M->ifunc_empty()) Out << "\n"; 2631 for (const GlobalIFunc &GI : M->ifuncs()) 2632 printIndirectSymbol(&GI); 2633 2634 // Output global use-lists. 2635 printUseLists(nullptr); 2636 2637 // Output all of the functions. 2638 for (const Function &F : *M) 2639 printFunction(&F); 2640 assert(UseListOrders.empty() && "All use-lists should have been consumed"); 2641 2642 // Output all attribute groups. 2643 if (!Machine.as_empty()) { 2644 Out << '\n'; 2645 writeAllAttributeGroups(); 2646 } 2647 2648 // Output named metadata. 2649 if (!M->named_metadata_empty()) Out << '\n'; 2650 2651 for (const NamedMDNode &Node : M->named_metadata()) 2652 printNamedMDNode(&Node); 2653 2654 // Output metadata. 2655 if (!Machine.mdn_empty()) { 2656 Out << '\n'; 2657 writeAllMDNodes(); 2658 } 2659 } 2660 2661 void AssemblyWriter::printModuleSummaryIndex() { 2662 assert(TheIndex); 2663 Machine.initializeIndexIfNeeded(); 2664 2665 Out << "\n"; 2666 2667 // Print module path entries. To print in order, add paths to a vector 2668 // indexed by module slot. 2669 std::vector<std::pair<std::string, ModuleHash>> moduleVec; 2670 std::string RegularLTOModuleName = "[Regular LTO]"; 2671 moduleVec.resize(TheIndex->modulePaths().size()); 2672 for (auto &ModPath : TheIndex->modulePaths()) 2673 moduleVec[Machine.getModulePathSlot(ModPath.first())] = std::make_pair( 2674 // A module id of -1 is a special entry for a regular LTO module created 2675 // during the thin link. 2676 ModPath.second.first == -1u ? RegularLTOModuleName 2677 : (std::string)ModPath.first(), 2678 ModPath.second.second); 2679 2680 unsigned i = 0; 2681 for (auto &ModPair : moduleVec) { 2682 Out << "^" << i++ << " = module: ("; 2683 Out << "path: \""; 2684 printEscapedString(ModPair.first, Out); 2685 Out << "\", hash: ("; 2686 FieldSeparator FS; 2687 for (auto Hash : ModPair.second) 2688 Out << FS << Hash; 2689 Out << "))\n"; 2690 } 2691 2692 // FIXME: Change AliasSummary to hold a ValueInfo instead of summary pointer 2693 // for aliasee (then update BitcodeWriter.cpp and remove get/setAliaseeGUID). 2694 for (auto &GlobalList : *TheIndex) { 2695 auto GUID = GlobalList.first; 2696 for (auto &Summary : GlobalList.second.SummaryList) 2697 SummaryToGUIDMap[Summary.get()] = GUID; 2698 } 2699 2700 // Print the global value summary entries. 2701 for (auto &GlobalList : *TheIndex) { 2702 auto GUID = GlobalList.first; 2703 auto VI = TheIndex->getValueInfo(GlobalList); 2704 printSummaryInfo(Machine.getGUIDSlot(GUID), VI); 2705 } 2706 2707 // Print the TypeIdMap entries. 2708 for (auto TidIter = TheIndex->typeIds().begin(); 2709 TidIter != TheIndex->typeIds().end(); TidIter++) { 2710 Out << "^" << Machine.getTypeIdSlot(TidIter->second.first) 2711 << " = typeid: (name: \"" << TidIter->second.first << "\""; 2712 printTypeIdSummary(TidIter->second.second); 2713 Out << ") ; guid = " << TidIter->first << "\n"; 2714 } 2715 } 2716 2717 static const char * 2718 getWholeProgDevirtResKindName(WholeProgramDevirtResolution::Kind K) { 2719 switch (K) { 2720 case WholeProgramDevirtResolution::Indir: 2721 return "indir"; 2722 case WholeProgramDevirtResolution::SingleImpl: 2723 return "singleImpl"; 2724 case WholeProgramDevirtResolution::BranchFunnel: 2725 return "branchFunnel"; 2726 } 2727 llvm_unreachable("invalid WholeProgramDevirtResolution kind"); 2728 } 2729 2730 static const char *getWholeProgDevirtResByArgKindName( 2731 WholeProgramDevirtResolution::ByArg::Kind K) { 2732 switch (K) { 2733 case WholeProgramDevirtResolution::ByArg::Indir: 2734 return "indir"; 2735 case WholeProgramDevirtResolution::ByArg::UniformRetVal: 2736 return "uniformRetVal"; 2737 case WholeProgramDevirtResolution::ByArg::UniqueRetVal: 2738 return "uniqueRetVal"; 2739 case WholeProgramDevirtResolution::ByArg::VirtualConstProp: 2740 return "virtualConstProp"; 2741 } 2742 llvm_unreachable("invalid WholeProgramDevirtResolution::ByArg kind"); 2743 } 2744 2745 static const char *getTTResKindName(TypeTestResolution::Kind K) { 2746 switch (K) { 2747 case TypeTestResolution::Unsat: 2748 return "unsat"; 2749 case TypeTestResolution::ByteArray: 2750 return "byteArray"; 2751 case TypeTestResolution::Inline: 2752 return "inline"; 2753 case TypeTestResolution::Single: 2754 return "single"; 2755 case TypeTestResolution::AllOnes: 2756 return "allOnes"; 2757 } 2758 llvm_unreachable("invalid TypeTestResolution kind"); 2759 } 2760 2761 void AssemblyWriter::printTypeTestResolution(const TypeTestResolution &TTRes) { 2762 Out << "typeTestRes: (kind: " << getTTResKindName(TTRes.TheKind) 2763 << ", sizeM1BitWidth: " << TTRes.SizeM1BitWidth; 2764 2765 // The following fields are only used if the target does not support the use 2766 // of absolute symbols to store constants. Print only if non-zero. 2767 if (TTRes.AlignLog2) 2768 Out << ", alignLog2: " << TTRes.AlignLog2; 2769 if (TTRes.SizeM1) 2770 Out << ", sizeM1: " << TTRes.SizeM1; 2771 if (TTRes.BitMask) 2772 // BitMask is uint8_t which causes it to print the corresponding char. 2773 Out << ", bitMask: " << (unsigned)TTRes.BitMask; 2774 if (TTRes.InlineBits) 2775 Out << ", inlineBits: " << TTRes.InlineBits; 2776 2777 Out << ")"; 2778 } 2779 2780 void AssemblyWriter::printTypeIdSummary(const TypeIdSummary &TIS) { 2781 Out << ", summary: ("; 2782 printTypeTestResolution(TIS.TTRes); 2783 if (!TIS.WPDRes.empty()) { 2784 Out << ", wpdResolutions: ("; 2785 FieldSeparator FS; 2786 for (auto &WPDRes : TIS.WPDRes) { 2787 Out << FS; 2788 Out << "(offset: " << WPDRes.first << ", "; 2789 printWPDRes(WPDRes.second); 2790 Out << ")"; 2791 } 2792 Out << ")"; 2793 } 2794 Out << ")"; 2795 } 2796 2797 void AssemblyWriter::printArgs(const std::vector<uint64_t> &Args) { 2798 Out << "args: ("; 2799 FieldSeparator FS; 2800 for (auto arg : Args) { 2801 Out << FS; 2802 Out << arg; 2803 } 2804 Out << ")"; 2805 } 2806 2807 void AssemblyWriter::printWPDRes(const WholeProgramDevirtResolution &WPDRes) { 2808 Out << "wpdRes: (kind: "; 2809 Out << getWholeProgDevirtResKindName(WPDRes.TheKind); 2810 2811 if (WPDRes.TheKind == WholeProgramDevirtResolution::SingleImpl) 2812 Out << ", singleImplName: \"" << WPDRes.SingleImplName << "\""; 2813 2814 if (!WPDRes.ResByArg.empty()) { 2815 Out << ", resByArg: ("; 2816 FieldSeparator FS; 2817 for (auto &ResByArg : WPDRes.ResByArg) { 2818 Out << FS; 2819 printArgs(ResByArg.first); 2820 Out << ", byArg: (kind: "; 2821 Out << getWholeProgDevirtResByArgKindName(ResByArg.second.TheKind); 2822 if (ResByArg.second.TheKind == 2823 WholeProgramDevirtResolution::ByArg::UniformRetVal || 2824 ResByArg.second.TheKind == 2825 WholeProgramDevirtResolution::ByArg::UniqueRetVal) 2826 Out << ", info: " << ResByArg.second.Info; 2827 2828 // The following fields are only used if the target does not support the 2829 // use of absolute symbols to store constants. Print only if non-zero. 2830 if (ResByArg.second.Byte || ResByArg.second.Bit) 2831 Out << ", byte: " << ResByArg.second.Byte 2832 << ", bit: " << ResByArg.second.Bit; 2833 2834 Out << ")"; 2835 } 2836 Out << ")"; 2837 } 2838 Out << ")"; 2839 } 2840 2841 static const char *getSummaryKindName(GlobalValueSummary::SummaryKind SK) { 2842 switch (SK) { 2843 case GlobalValueSummary::AliasKind: 2844 return "alias"; 2845 case GlobalValueSummary::FunctionKind: 2846 return "function"; 2847 case GlobalValueSummary::GlobalVarKind: 2848 return "variable"; 2849 } 2850 llvm_unreachable("invalid summary kind"); 2851 } 2852 2853 void AssemblyWriter::printAliasSummary(const AliasSummary *AS) { 2854 Out << ", aliasee: "; 2855 // The indexes emitted for distributed backends may not include the 2856 // aliasee summary (only if it is being imported directly). Handle 2857 // that case by just emitting "null" as the aliasee. 2858 if (AS->hasAliasee()) 2859 Out << "^" << Machine.getGUIDSlot(SummaryToGUIDMap[&AS->getAliasee()]); 2860 else 2861 Out << "null"; 2862 } 2863 2864 void AssemblyWriter::printGlobalVarSummary(const GlobalVarSummary *GS) { 2865 Out << ", varFlags: (readonly: " << GS->VarFlags.ReadOnly << ")"; 2866 } 2867 2868 static std::string getLinkageName(GlobalValue::LinkageTypes LT) { 2869 switch (LT) { 2870 case GlobalValue::ExternalLinkage: 2871 return "external"; 2872 case GlobalValue::PrivateLinkage: 2873 return "private"; 2874 case GlobalValue::InternalLinkage: 2875 return "internal"; 2876 case GlobalValue::LinkOnceAnyLinkage: 2877 return "linkonce"; 2878 case GlobalValue::LinkOnceODRLinkage: 2879 return "linkonce_odr"; 2880 case GlobalValue::WeakAnyLinkage: 2881 return "weak"; 2882 case GlobalValue::WeakODRLinkage: 2883 return "weak_odr"; 2884 case GlobalValue::CommonLinkage: 2885 return "common"; 2886 case GlobalValue::AppendingLinkage: 2887 return "appending"; 2888 case GlobalValue::ExternalWeakLinkage: 2889 return "extern_weak"; 2890 case GlobalValue::AvailableExternallyLinkage: 2891 return "available_externally"; 2892 } 2893 llvm_unreachable("invalid linkage"); 2894 } 2895 2896 // When printing the linkage types in IR where the ExternalLinkage is 2897 // not printed, and other linkage types are expected to be printed with 2898 // a space after the name. 2899 static std::string getLinkageNameWithSpace(GlobalValue::LinkageTypes LT) { 2900 if (LT == GlobalValue::ExternalLinkage) 2901 return ""; 2902 return getLinkageName(LT) + " "; 2903 } 2904 2905 void AssemblyWriter::printFunctionSummary(const FunctionSummary *FS) { 2906 Out << ", insts: " << FS->instCount(); 2907 2908 FunctionSummary::FFlags FFlags = FS->fflags(); 2909 if (FFlags.ReadNone | FFlags.ReadOnly | FFlags.NoRecurse | 2910 FFlags.ReturnDoesNotAlias) { 2911 Out << ", funcFlags: ("; 2912 Out << "readNone: " << FFlags.ReadNone; 2913 Out << ", readOnly: " << FFlags.ReadOnly; 2914 Out << ", noRecurse: " << FFlags.NoRecurse; 2915 Out << ", returnDoesNotAlias: " << FFlags.ReturnDoesNotAlias; 2916 Out << ", noInline: " << FFlags.NoInline; 2917 Out << ")"; 2918 } 2919 if (!FS->calls().empty()) { 2920 Out << ", calls: ("; 2921 FieldSeparator IFS; 2922 for (auto &Call : FS->calls()) { 2923 Out << IFS; 2924 Out << "(callee: ^" << Machine.getGUIDSlot(Call.first.getGUID()); 2925 if (Call.second.getHotness() != CalleeInfo::HotnessType::Unknown) 2926 Out << ", hotness: " << getHotnessName(Call.second.getHotness()); 2927 else if (Call.second.RelBlockFreq) 2928 Out << ", relbf: " << Call.second.RelBlockFreq; 2929 Out << ")"; 2930 } 2931 Out << ")"; 2932 } 2933 2934 if (const auto *TIdInfo = FS->getTypeIdInfo()) 2935 printTypeIdInfo(*TIdInfo); 2936 } 2937 2938 void AssemblyWriter::printTypeIdInfo( 2939 const FunctionSummary::TypeIdInfo &TIDInfo) { 2940 Out << ", typeIdInfo: ("; 2941 FieldSeparator TIDFS; 2942 if (!TIDInfo.TypeTests.empty()) { 2943 Out << TIDFS; 2944 Out << "typeTests: ("; 2945 FieldSeparator FS; 2946 for (auto &GUID : TIDInfo.TypeTests) { 2947 auto TidIter = TheIndex->typeIds().equal_range(GUID); 2948 if (TidIter.first == TidIter.second) { 2949 Out << FS; 2950 Out << GUID; 2951 continue; 2952 } 2953 // Print all type id that correspond to this GUID. 2954 for (auto It = TidIter.first; It != TidIter.second; ++It) { 2955 Out << FS; 2956 auto Slot = Machine.getTypeIdSlot(It->second.first); 2957 assert(Slot != -1); 2958 Out << "^" << Slot; 2959 } 2960 } 2961 Out << ")"; 2962 } 2963 if (!TIDInfo.TypeTestAssumeVCalls.empty()) { 2964 Out << TIDFS; 2965 printNonConstVCalls(TIDInfo.TypeTestAssumeVCalls, "typeTestAssumeVCalls"); 2966 } 2967 if (!TIDInfo.TypeCheckedLoadVCalls.empty()) { 2968 Out << TIDFS; 2969 printNonConstVCalls(TIDInfo.TypeCheckedLoadVCalls, "typeCheckedLoadVCalls"); 2970 } 2971 if (!TIDInfo.TypeTestAssumeConstVCalls.empty()) { 2972 Out << TIDFS; 2973 printConstVCalls(TIDInfo.TypeTestAssumeConstVCalls, 2974 "typeTestAssumeConstVCalls"); 2975 } 2976 if (!TIDInfo.TypeCheckedLoadConstVCalls.empty()) { 2977 Out << TIDFS; 2978 printConstVCalls(TIDInfo.TypeCheckedLoadConstVCalls, 2979 "typeCheckedLoadConstVCalls"); 2980 } 2981 Out << ")"; 2982 } 2983 2984 void AssemblyWriter::printVFuncId(const FunctionSummary::VFuncId VFId) { 2985 auto TidIter = TheIndex->typeIds().equal_range(VFId.GUID); 2986 if (TidIter.first == TidIter.second) { 2987 Out << "vFuncId: ("; 2988 Out << "guid: " << VFId.GUID; 2989 Out << ", offset: " << VFId.Offset; 2990 Out << ")"; 2991 return; 2992 } 2993 // Print all type id that correspond to this GUID. 2994 FieldSeparator FS; 2995 for (auto It = TidIter.first; It != TidIter.second; ++It) { 2996 Out << FS; 2997 Out << "vFuncId: ("; 2998 auto Slot = Machine.getTypeIdSlot(It->second.first); 2999 assert(Slot != -1); 3000 Out << "^" << Slot; 3001 Out << ", offset: " << VFId.Offset; 3002 Out << ")"; 3003 } 3004 } 3005 3006 void AssemblyWriter::printNonConstVCalls( 3007 const std::vector<FunctionSummary::VFuncId> VCallList, const char *Tag) { 3008 Out << Tag << ": ("; 3009 FieldSeparator FS; 3010 for (auto &VFuncId : VCallList) { 3011 Out << FS; 3012 printVFuncId(VFuncId); 3013 } 3014 Out << ")"; 3015 } 3016 3017 void AssemblyWriter::printConstVCalls( 3018 const std::vector<FunctionSummary::ConstVCall> VCallList, const char *Tag) { 3019 Out << Tag << ": ("; 3020 FieldSeparator FS; 3021 for (auto &ConstVCall : VCallList) { 3022 Out << FS; 3023 Out << "("; 3024 printVFuncId(ConstVCall.VFunc); 3025 if (!ConstVCall.Args.empty()) { 3026 Out << ", "; 3027 printArgs(ConstVCall.Args); 3028 } 3029 Out << ")"; 3030 } 3031 Out << ")"; 3032 } 3033 3034 void AssemblyWriter::printSummary(const GlobalValueSummary &Summary) { 3035 GlobalValueSummary::GVFlags GVFlags = Summary.flags(); 3036 GlobalValue::LinkageTypes LT = (GlobalValue::LinkageTypes)GVFlags.Linkage; 3037 Out << getSummaryKindName(Summary.getSummaryKind()) << ": "; 3038 Out << "(module: ^" << Machine.getModulePathSlot(Summary.modulePath()) 3039 << ", flags: ("; 3040 Out << "linkage: " << getLinkageName(LT); 3041 Out << ", notEligibleToImport: " << GVFlags.NotEligibleToImport; 3042 Out << ", live: " << GVFlags.Live; 3043 Out << ", dsoLocal: " << GVFlags.DSOLocal; 3044 Out << ", canAutoHide: " << GVFlags.CanAutoHide; 3045 Out << ")"; 3046 3047 if (Summary.getSummaryKind() == GlobalValueSummary::AliasKind) 3048 printAliasSummary(cast<AliasSummary>(&Summary)); 3049 else if (Summary.getSummaryKind() == GlobalValueSummary::FunctionKind) 3050 printFunctionSummary(cast<FunctionSummary>(&Summary)); 3051 else 3052 printGlobalVarSummary(cast<GlobalVarSummary>(&Summary)); 3053 3054 auto RefList = Summary.refs(); 3055 if (!RefList.empty()) { 3056 Out << ", refs: ("; 3057 FieldSeparator FS; 3058 for (auto &Ref : RefList) { 3059 Out << FS; 3060 if (Ref.isReadOnly()) 3061 Out << "readonly "; 3062 Out << "^" << Machine.getGUIDSlot(Ref.getGUID()); 3063 } 3064 Out << ")"; 3065 } 3066 3067 Out << ")"; 3068 } 3069 3070 void AssemblyWriter::printSummaryInfo(unsigned Slot, const ValueInfo &VI) { 3071 Out << "^" << Slot << " = gv: ("; 3072 if (!VI.name().empty()) 3073 Out << "name: \"" << VI.name() << "\""; 3074 else 3075 Out << "guid: " << VI.getGUID(); 3076 if (!VI.getSummaryList().empty()) { 3077 Out << ", summaries: ("; 3078 FieldSeparator FS; 3079 for (auto &Summary : VI.getSummaryList()) { 3080 Out << FS; 3081 printSummary(*Summary); 3082 } 3083 Out << ")"; 3084 } 3085 Out << ")"; 3086 if (!VI.name().empty()) 3087 Out << " ; guid = " << VI.getGUID(); 3088 Out << "\n"; 3089 } 3090 3091 static void printMetadataIdentifier(StringRef Name, 3092 formatted_raw_ostream &Out) { 3093 if (Name.empty()) { 3094 Out << "<empty name> "; 3095 } else { 3096 if (isalpha(static_cast<unsigned char>(Name[0])) || Name[0] == '-' || 3097 Name[0] == '$' || Name[0] == '.' || Name[0] == '_') 3098 Out << Name[0]; 3099 else 3100 Out << '\\' << hexdigit(Name[0] >> 4) << hexdigit(Name[0] & 0x0F); 3101 for (unsigned i = 1, e = Name.size(); i != e; ++i) { 3102 unsigned char C = Name[i]; 3103 if (isalnum(static_cast<unsigned char>(C)) || C == '-' || C == '$' || 3104 C == '.' || C == '_') 3105 Out << C; 3106 else 3107 Out << '\\' << hexdigit(C >> 4) << hexdigit(C & 0x0F); 3108 } 3109 } 3110 } 3111 3112 void AssemblyWriter::printNamedMDNode(const NamedMDNode *NMD) { 3113 Out << '!'; 3114 printMetadataIdentifier(NMD->getName(), Out); 3115 Out << " = !{"; 3116 for (unsigned i = 0, e = NMD->getNumOperands(); i != e; ++i) { 3117 if (i) 3118 Out << ", "; 3119 3120 // Write DIExpressions inline. 3121 // FIXME: Ban DIExpressions in NamedMDNodes, they will serve no purpose. 3122 MDNode *Op = NMD->getOperand(i); 3123 if (auto *Expr = dyn_cast<DIExpression>(Op)) { 3124 writeDIExpression(Out, Expr, nullptr, nullptr, nullptr); 3125 continue; 3126 } 3127 3128 int Slot = Machine.getMetadataSlot(Op); 3129 if (Slot == -1) 3130 Out << "<badref>"; 3131 else 3132 Out << '!' << Slot; 3133 } 3134 Out << "}\n"; 3135 } 3136 3137 static void PrintVisibility(GlobalValue::VisibilityTypes Vis, 3138 formatted_raw_ostream &Out) { 3139 switch (Vis) { 3140 case GlobalValue::DefaultVisibility: break; 3141 case GlobalValue::HiddenVisibility: Out << "hidden "; break; 3142 case GlobalValue::ProtectedVisibility: Out << "protected "; break; 3143 } 3144 } 3145 3146 static void PrintDSOLocation(const GlobalValue &GV, 3147 formatted_raw_ostream &Out) { 3148 // GVs with local linkage or non default visibility are implicitly dso_local, 3149 // so we don't print it. 3150 bool Implicit = GV.hasLocalLinkage() || 3151 (!GV.hasExternalWeakLinkage() && !GV.hasDefaultVisibility()); 3152 if (GV.isDSOLocal() && !Implicit) 3153 Out << "dso_local "; 3154 } 3155 3156 static void PrintDLLStorageClass(GlobalValue::DLLStorageClassTypes SCT, 3157 formatted_raw_ostream &Out) { 3158 switch (SCT) { 3159 case GlobalValue::DefaultStorageClass: break; 3160 case GlobalValue::DLLImportStorageClass: Out << "dllimport "; break; 3161 case GlobalValue::DLLExportStorageClass: Out << "dllexport "; break; 3162 } 3163 } 3164 3165 static void PrintThreadLocalModel(GlobalVariable::ThreadLocalMode TLM, 3166 formatted_raw_ostream &Out) { 3167 switch (TLM) { 3168 case GlobalVariable::NotThreadLocal: 3169 break; 3170 case GlobalVariable::GeneralDynamicTLSModel: 3171 Out << "thread_local "; 3172 break; 3173 case GlobalVariable::LocalDynamicTLSModel: 3174 Out << "thread_local(localdynamic) "; 3175 break; 3176 case GlobalVariable::InitialExecTLSModel: 3177 Out << "thread_local(initialexec) "; 3178 break; 3179 case GlobalVariable::LocalExecTLSModel: 3180 Out << "thread_local(localexec) "; 3181 break; 3182 } 3183 } 3184 3185 static StringRef getUnnamedAddrEncoding(GlobalVariable::UnnamedAddr UA) { 3186 switch (UA) { 3187 case GlobalVariable::UnnamedAddr::None: 3188 return ""; 3189 case GlobalVariable::UnnamedAddr::Local: 3190 return "local_unnamed_addr"; 3191 case GlobalVariable::UnnamedAddr::Global: 3192 return "unnamed_addr"; 3193 } 3194 llvm_unreachable("Unknown UnnamedAddr"); 3195 } 3196 3197 static void maybePrintComdat(formatted_raw_ostream &Out, 3198 const GlobalObject &GO) { 3199 const Comdat *C = GO.getComdat(); 3200 if (!C) 3201 return; 3202 3203 if (isa<GlobalVariable>(GO)) 3204 Out << ','; 3205 Out << " comdat"; 3206 3207 if (GO.getName() == C->getName()) 3208 return; 3209 3210 Out << '('; 3211 PrintLLVMName(Out, C->getName(), ComdatPrefix); 3212 Out << ')'; 3213 } 3214 3215 void AssemblyWriter::printGlobal(const GlobalVariable *GV) { 3216 if (GV->isMaterializable()) 3217 Out << "; Materializable\n"; 3218 3219 WriteAsOperandInternal(Out, GV, &TypePrinter, &Machine, GV->getParent()); 3220 Out << " = "; 3221 3222 if (!GV->hasInitializer() && GV->hasExternalLinkage()) 3223 Out << "external "; 3224 3225 Out << getLinkageNameWithSpace(GV->getLinkage()); 3226 PrintDSOLocation(*GV, Out); 3227 PrintVisibility(GV->getVisibility(), Out); 3228 PrintDLLStorageClass(GV->getDLLStorageClass(), Out); 3229 PrintThreadLocalModel(GV->getThreadLocalMode(), Out); 3230 StringRef UA = getUnnamedAddrEncoding(GV->getUnnamedAddr()); 3231 if (!UA.empty()) 3232 Out << UA << ' '; 3233 3234 if (unsigned AddressSpace = GV->getType()->getAddressSpace()) 3235 Out << "addrspace(" << AddressSpace << ") "; 3236 if (GV->isExternallyInitialized()) Out << "externally_initialized "; 3237 Out << (GV->isConstant() ? "constant " : "global "); 3238 TypePrinter.print(GV->getValueType(), Out); 3239 3240 if (GV->hasInitializer()) { 3241 Out << ' '; 3242 writeOperand(GV->getInitializer(), false); 3243 } 3244 3245 if (GV->hasSection()) { 3246 Out << ", section \""; 3247 printEscapedString(GV->getSection(), Out); 3248 Out << '"'; 3249 } 3250 maybePrintComdat(Out, *GV); 3251 if (GV->getAlignment()) 3252 Out << ", align " << GV->getAlignment(); 3253 3254 SmallVector<std::pair<unsigned, MDNode *>, 4> MDs; 3255 GV->getAllMetadata(MDs); 3256 printMetadataAttachments(MDs, ", "); 3257 3258 auto Attrs = GV->getAttributes(); 3259 if (Attrs.hasAttributes()) 3260 Out << " #" << Machine.getAttributeGroupSlot(Attrs); 3261 3262 printInfoComment(*GV); 3263 } 3264 3265 void AssemblyWriter::printIndirectSymbol(const GlobalIndirectSymbol *GIS) { 3266 if (GIS->isMaterializable()) 3267 Out << "; Materializable\n"; 3268 3269 WriteAsOperandInternal(Out, GIS, &TypePrinter, &Machine, GIS->getParent()); 3270 Out << " = "; 3271 3272 Out << getLinkageNameWithSpace(GIS->getLinkage()); 3273 PrintDSOLocation(*GIS, Out); 3274 PrintVisibility(GIS->getVisibility(), Out); 3275 PrintDLLStorageClass(GIS->getDLLStorageClass(), Out); 3276 PrintThreadLocalModel(GIS->getThreadLocalMode(), Out); 3277 StringRef UA = getUnnamedAddrEncoding(GIS->getUnnamedAddr()); 3278 if (!UA.empty()) 3279 Out << UA << ' '; 3280 3281 if (isa<GlobalAlias>(GIS)) 3282 Out << "alias "; 3283 else if (isa<GlobalIFunc>(GIS)) 3284 Out << "ifunc "; 3285 else 3286 llvm_unreachable("Not an alias or ifunc!"); 3287 3288 TypePrinter.print(GIS->getValueType(), Out); 3289 3290 Out << ", "; 3291 3292 const Constant *IS = GIS->getIndirectSymbol(); 3293 3294 if (!IS) { 3295 TypePrinter.print(GIS->getType(), Out); 3296 Out << " <<NULL ALIASEE>>"; 3297 } else { 3298 writeOperand(IS, !isa<ConstantExpr>(IS)); 3299 } 3300 3301 printInfoComment(*GIS); 3302 Out << '\n'; 3303 } 3304 3305 void AssemblyWriter::printComdat(const Comdat *C) { 3306 C->print(Out); 3307 } 3308 3309 void AssemblyWriter::printTypeIdentities() { 3310 if (TypePrinter.empty()) 3311 return; 3312 3313 Out << '\n'; 3314 3315 // Emit all numbered types. 3316 auto &NumberedTypes = TypePrinter.getNumberedTypes(); 3317 for (unsigned I = 0, E = NumberedTypes.size(); I != E; ++I) { 3318 Out << '%' << I << " = type "; 3319 3320 // Make sure we print out at least one level of the type structure, so 3321 // that we do not get %2 = type %2 3322 TypePrinter.printStructBody(NumberedTypes[I], Out); 3323 Out << '\n'; 3324 } 3325 3326 auto &NamedTypes = TypePrinter.getNamedTypes(); 3327 for (unsigned I = 0, E = NamedTypes.size(); I != E; ++I) { 3328 PrintLLVMName(Out, NamedTypes[I]->getName(), LocalPrefix); 3329 Out << " = type "; 3330 3331 // Make sure we print out at least one level of the type structure, so 3332 // that we do not get %FILE = type %FILE 3333 TypePrinter.printStructBody(NamedTypes[I], Out); 3334 Out << '\n'; 3335 } 3336 } 3337 3338 /// printFunction - Print all aspects of a function. 3339 void AssemblyWriter::printFunction(const Function *F) { 3340 // Print out the return type and name. 3341 Out << '\n'; 3342 3343 if (AnnotationWriter) AnnotationWriter->emitFunctionAnnot(F, Out); 3344 3345 if (F->isMaterializable()) 3346 Out << "; Materializable\n"; 3347 3348 const AttributeList &Attrs = F->getAttributes(); 3349 if (Attrs.hasAttributes(AttributeList::FunctionIndex)) { 3350 AttributeSet AS = Attrs.getFnAttributes(); 3351 std::string AttrStr; 3352 3353 for (const Attribute &Attr : AS) { 3354 if (!Attr.isStringAttribute()) { 3355 if (!AttrStr.empty()) AttrStr += ' '; 3356 AttrStr += Attr.getAsString(); 3357 } 3358 } 3359 3360 if (!AttrStr.empty()) 3361 Out << "; Function Attrs: " << AttrStr << '\n'; 3362 } 3363 3364 Machine.incorporateFunction(F); 3365 3366 if (F->isDeclaration()) { 3367 Out << "declare"; 3368 SmallVector<std::pair<unsigned, MDNode *>, 4> MDs; 3369 F->getAllMetadata(MDs); 3370 printMetadataAttachments(MDs, " "); 3371 Out << ' '; 3372 } else 3373 Out << "define "; 3374 3375 Out << getLinkageNameWithSpace(F->getLinkage()); 3376 PrintDSOLocation(*F, Out); 3377 PrintVisibility(F->getVisibility(), Out); 3378 PrintDLLStorageClass(F->getDLLStorageClass(), Out); 3379 3380 // Print the calling convention. 3381 if (F->getCallingConv() != CallingConv::C) { 3382 PrintCallingConv(F->getCallingConv(), Out); 3383 Out << " "; 3384 } 3385 3386 FunctionType *FT = F->getFunctionType(); 3387 if (Attrs.hasAttributes(AttributeList::ReturnIndex)) 3388 Out << Attrs.getAsString(AttributeList::ReturnIndex) << ' '; 3389 TypePrinter.print(F->getReturnType(), Out); 3390 Out << ' '; 3391 WriteAsOperandInternal(Out, F, &TypePrinter, &Machine, F->getParent()); 3392 Out << '('; 3393 3394 // Loop over the arguments, printing them... 3395 if (F->isDeclaration() && !IsForDebug) { 3396 // We're only interested in the type here - don't print argument names. 3397 for (unsigned I = 0, E = FT->getNumParams(); I != E; ++I) { 3398 // Insert commas as we go... the first arg doesn't get a comma 3399 if (I) 3400 Out << ", "; 3401 // Output type... 3402 TypePrinter.print(FT->getParamType(I), Out); 3403 3404 AttributeSet ArgAttrs = Attrs.getParamAttributes(I); 3405 if (ArgAttrs.hasAttributes()) 3406 Out << ' ' << ArgAttrs.getAsString(); 3407 } 3408 } else { 3409 // The arguments are meaningful here, print them in detail. 3410 for (const Argument &Arg : F->args()) { 3411 // Insert commas as we go... the first arg doesn't get a comma 3412 if (Arg.getArgNo() != 0) 3413 Out << ", "; 3414 printArgument(&Arg, Attrs.getParamAttributes(Arg.getArgNo())); 3415 } 3416 } 3417 3418 // Finish printing arguments... 3419 if (FT->isVarArg()) { 3420 if (FT->getNumParams()) Out << ", "; 3421 Out << "..."; // Output varargs portion of signature! 3422 } 3423 Out << ')'; 3424 StringRef UA = getUnnamedAddrEncoding(F->getUnnamedAddr()); 3425 if (!UA.empty()) 3426 Out << ' ' << UA; 3427 // We print the function address space if it is non-zero or if we are writing 3428 // a module with a non-zero program address space or if there is no valid 3429 // Module* so that the file can be parsed without the datalayout string. 3430 const Module *Mod = F->getParent(); 3431 if (F->getAddressSpace() != 0 || !Mod || 3432 Mod->getDataLayout().getProgramAddressSpace() != 0) 3433 Out << " addrspace(" << F->getAddressSpace() << ")"; 3434 if (Attrs.hasAttributes(AttributeList::FunctionIndex)) 3435 Out << " #" << Machine.getAttributeGroupSlot(Attrs.getFnAttributes()); 3436 if (F->hasSection()) { 3437 Out << " section \""; 3438 printEscapedString(F->getSection(), Out); 3439 Out << '"'; 3440 } 3441 maybePrintComdat(Out, *F); 3442 if (F->getAlignment()) 3443 Out << " align " << F->getAlignment(); 3444 if (F->hasGC()) 3445 Out << " gc \"" << F->getGC() << '"'; 3446 if (F->hasPrefixData()) { 3447 Out << " prefix "; 3448 writeOperand(F->getPrefixData(), true); 3449 } 3450 if (F->hasPrologueData()) { 3451 Out << " prologue "; 3452 writeOperand(F->getPrologueData(), true); 3453 } 3454 if (F->hasPersonalityFn()) { 3455 Out << " personality "; 3456 writeOperand(F->getPersonalityFn(), /*PrintType=*/true); 3457 } 3458 3459 if (F->isDeclaration()) { 3460 Out << '\n'; 3461 } else { 3462 SmallVector<std::pair<unsigned, MDNode *>, 4> MDs; 3463 F->getAllMetadata(MDs); 3464 printMetadataAttachments(MDs, " "); 3465 3466 Out << " {"; 3467 // Output all of the function's basic blocks. 3468 for (const BasicBlock &BB : *F) 3469 printBasicBlock(&BB); 3470 3471 // Output the function's use-lists. 3472 printUseLists(F); 3473 3474 Out << "}\n"; 3475 } 3476 3477 Machine.purgeFunction(); 3478 } 3479 3480 /// printArgument - This member is called for every argument that is passed into 3481 /// the function. Simply print it out 3482 void AssemblyWriter::printArgument(const Argument *Arg, AttributeSet Attrs) { 3483 // Output type... 3484 TypePrinter.print(Arg->getType(), Out); 3485 3486 // Output parameter attributes list 3487 if (Attrs.hasAttributes()) 3488 Out << ' ' << Attrs.getAsString(); 3489 3490 // Output name, if available... 3491 if (Arg->hasName()) { 3492 Out << ' '; 3493 PrintLLVMName(Out, Arg); 3494 } 3495 } 3496 3497 /// printBasicBlock - This member is called for each basic block in a method. 3498 void AssemblyWriter::printBasicBlock(const BasicBlock *BB) { 3499 bool IsEntryBlock = BB == &BB->getParent()->getEntryBlock(); 3500 if (BB->hasName()) { // Print out the label if it exists... 3501 Out << "\n"; 3502 PrintLLVMName(Out, BB->getName(), LabelPrefix); 3503 Out << ':'; 3504 } else if (!IsEntryBlock) { 3505 Out << "\n"; 3506 int Slot = Machine.getLocalSlot(BB); 3507 if (Slot != -1) 3508 Out << Slot << ":"; 3509 else 3510 Out << "<badref>:"; 3511 } 3512 3513 if (!BB->getParent()) { 3514 Out.PadToColumn(50); 3515 Out << "; Error: Block without parent!"; 3516 } else if (!IsEntryBlock) { 3517 // Output predecessors for the block. 3518 Out.PadToColumn(50); 3519 Out << ";"; 3520 const_pred_iterator PI = pred_begin(BB), PE = pred_end(BB); 3521 3522 if (PI == PE) { 3523 Out << " No predecessors!"; 3524 } else { 3525 Out << " preds = "; 3526 writeOperand(*PI, false); 3527 for (++PI; PI != PE; ++PI) { 3528 Out << ", "; 3529 writeOperand(*PI, false); 3530 } 3531 } 3532 } 3533 3534 Out << "\n"; 3535 3536 if (AnnotationWriter) AnnotationWriter->emitBasicBlockStartAnnot(BB, Out); 3537 3538 // Output all of the instructions in the basic block... 3539 for (const Instruction &I : *BB) { 3540 printInstructionLine(I); 3541 } 3542 3543 if (AnnotationWriter) AnnotationWriter->emitBasicBlockEndAnnot(BB, Out); 3544 } 3545 3546 /// printInstructionLine - Print an instruction and a newline character. 3547 void AssemblyWriter::printInstructionLine(const Instruction &I) { 3548 printInstruction(I); 3549 Out << '\n'; 3550 } 3551 3552 /// printGCRelocateComment - print comment after call to the gc.relocate 3553 /// intrinsic indicating base and derived pointer names. 3554 void AssemblyWriter::printGCRelocateComment(const GCRelocateInst &Relocate) { 3555 Out << " ; ("; 3556 writeOperand(Relocate.getBasePtr(), false); 3557 Out << ", "; 3558 writeOperand(Relocate.getDerivedPtr(), false); 3559 Out << ")"; 3560 } 3561 3562 /// printInfoComment - Print a little comment after the instruction indicating 3563 /// which slot it occupies. 3564 void AssemblyWriter::printInfoComment(const Value &V) { 3565 if (const auto *Relocate = dyn_cast<GCRelocateInst>(&V)) 3566 printGCRelocateComment(*Relocate); 3567 3568 if (AnnotationWriter) 3569 AnnotationWriter->printInfoComment(V, Out); 3570 } 3571 3572 static void maybePrintCallAddrSpace(const Value *Operand, const Instruction *I, 3573 raw_ostream &Out) { 3574 // We print the address space of the call if it is non-zero. 3575 unsigned CallAddrSpace = Operand->getType()->getPointerAddressSpace(); 3576 bool PrintAddrSpace = CallAddrSpace != 0; 3577 if (!PrintAddrSpace) { 3578 const Module *Mod = getModuleFromVal(I); 3579 // We also print it if it is zero but not equal to the program address space 3580 // or if we can't find a valid Module* to make it possible to parse 3581 // the resulting file even without a datalayout string. 3582 if (!Mod || Mod->getDataLayout().getProgramAddressSpace() != 0) 3583 PrintAddrSpace = true; 3584 } 3585 if (PrintAddrSpace) 3586 Out << " addrspace(" << CallAddrSpace << ")"; 3587 } 3588 3589 // This member is called for each Instruction in a function.. 3590 void AssemblyWriter::printInstruction(const Instruction &I) { 3591 if (AnnotationWriter) AnnotationWriter->emitInstructionAnnot(&I, Out); 3592 3593 // Print out indentation for an instruction. 3594 Out << " "; 3595 3596 // Print out name if it exists... 3597 if (I.hasName()) { 3598 PrintLLVMName(Out, &I); 3599 Out << " = "; 3600 } else if (!I.getType()->isVoidTy()) { 3601 // Print out the def slot taken. 3602 int SlotNum = Machine.getLocalSlot(&I); 3603 if (SlotNum == -1) 3604 Out << "<badref> = "; 3605 else 3606 Out << '%' << SlotNum << " = "; 3607 } 3608 3609 if (const CallInst *CI = dyn_cast<CallInst>(&I)) { 3610 if (CI->isMustTailCall()) 3611 Out << "musttail "; 3612 else if (CI->isTailCall()) 3613 Out << "tail "; 3614 else if (CI->isNoTailCall()) 3615 Out << "notail "; 3616 } 3617 3618 // Print out the opcode... 3619 Out << I.getOpcodeName(); 3620 3621 // If this is an atomic load or store, print out the atomic marker. 3622 if ((isa<LoadInst>(I) && cast<LoadInst>(I).isAtomic()) || 3623 (isa<StoreInst>(I) && cast<StoreInst>(I).isAtomic())) 3624 Out << " atomic"; 3625 3626 if (isa<AtomicCmpXchgInst>(I) && cast<AtomicCmpXchgInst>(I).isWeak()) 3627 Out << " weak"; 3628 3629 // If this is a volatile operation, print out the volatile marker. 3630 if ((isa<LoadInst>(I) && cast<LoadInst>(I).isVolatile()) || 3631 (isa<StoreInst>(I) && cast<StoreInst>(I).isVolatile()) || 3632 (isa<AtomicCmpXchgInst>(I) && cast<AtomicCmpXchgInst>(I).isVolatile()) || 3633 (isa<AtomicRMWInst>(I) && cast<AtomicRMWInst>(I).isVolatile())) 3634 Out << " volatile"; 3635 3636 // Print out optimization information. 3637 WriteOptimizationInfo(Out, &I); 3638 3639 // Print out the compare instruction predicates 3640 if (const CmpInst *CI = dyn_cast<CmpInst>(&I)) 3641 Out << ' ' << CmpInst::getPredicateName(CI->getPredicate()); 3642 3643 // Print out the atomicrmw operation 3644 if (const AtomicRMWInst *RMWI = dyn_cast<AtomicRMWInst>(&I)) 3645 Out << ' ' << AtomicRMWInst::getOperationName(RMWI->getOperation()); 3646 3647 // Print out the type of the operands... 3648 const Value *Operand = I.getNumOperands() ? I.getOperand(0) : nullptr; 3649 3650 // Special case conditional branches to swizzle the condition out to the front 3651 if (isa<BranchInst>(I) && cast<BranchInst>(I).isConditional()) { 3652 const BranchInst &BI(cast<BranchInst>(I)); 3653 Out << ' '; 3654 writeOperand(BI.getCondition(), true); 3655 Out << ", "; 3656 writeOperand(BI.getSuccessor(0), true); 3657 Out << ", "; 3658 writeOperand(BI.getSuccessor(1), true); 3659 3660 } else if (isa<SwitchInst>(I)) { 3661 const SwitchInst& SI(cast<SwitchInst>(I)); 3662 // Special case switch instruction to get formatting nice and correct. 3663 Out << ' '; 3664 writeOperand(SI.getCondition(), true); 3665 Out << ", "; 3666 writeOperand(SI.getDefaultDest(), true); 3667 Out << " ["; 3668 for (auto Case : SI.cases()) { 3669 Out << "\n "; 3670 writeOperand(Case.getCaseValue(), true); 3671 Out << ", "; 3672 writeOperand(Case.getCaseSuccessor(), true); 3673 } 3674 Out << "\n ]"; 3675 } else if (isa<IndirectBrInst>(I)) { 3676 // Special case indirectbr instruction to get formatting nice and correct. 3677 Out << ' '; 3678 writeOperand(Operand, true); 3679 Out << ", ["; 3680 3681 for (unsigned i = 1, e = I.getNumOperands(); i != e; ++i) { 3682 if (i != 1) 3683 Out << ", "; 3684 writeOperand(I.getOperand(i), true); 3685 } 3686 Out << ']'; 3687 } else if (const PHINode *PN = dyn_cast<PHINode>(&I)) { 3688 Out << ' '; 3689 TypePrinter.print(I.getType(), Out); 3690 Out << ' '; 3691 3692 for (unsigned op = 0, Eop = PN->getNumIncomingValues(); op < Eop; ++op) { 3693 if (op) Out << ", "; 3694 Out << "[ "; 3695 writeOperand(PN->getIncomingValue(op), false); Out << ", "; 3696 writeOperand(PN->getIncomingBlock(op), false); Out << " ]"; 3697 } 3698 } else if (const ExtractValueInst *EVI = dyn_cast<ExtractValueInst>(&I)) { 3699 Out << ' '; 3700 writeOperand(I.getOperand(0), true); 3701 for (const unsigned *i = EVI->idx_begin(), *e = EVI->idx_end(); i != e; ++i) 3702 Out << ", " << *i; 3703 } else if (const InsertValueInst *IVI = dyn_cast<InsertValueInst>(&I)) { 3704 Out << ' '; 3705 writeOperand(I.getOperand(0), true); Out << ", "; 3706 writeOperand(I.getOperand(1), true); 3707 for (const unsigned *i = IVI->idx_begin(), *e = IVI->idx_end(); i != e; ++i) 3708 Out << ", " << *i; 3709 } else if (const LandingPadInst *LPI = dyn_cast<LandingPadInst>(&I)) { 3710 Out << ' '; 3711 TypePrinter.print(I.getType(), Out); 3712 if (LPI->isCleanup() || LPI->getNumClauses() != 0) 3713 Out << '\n'; 3714 3715 if (LPI->isCleanup()) 3716 Out << " cleanup"; 3717 3718 for (unsigned i = 0, e = LPI->getNumClauses(); i != e; ++i) { 3719 if (i != 0 || LPI->isCleanup()) Out << "\n"; 3720 if (LPI->isCatch(i)) 3721 Out << " catch "; 3722 else 3723 Out << " filter "; 3724 3725 writeOperand(LPI->getClause(i), true); 3726 } 3727 } else if (const auto *CatchSwitch = dyn_cast<CatchSwitchInst>(&I)) { 3728 Out << " within "; 3729 writeOperand(CatchSwitch->getParentPad(), /*PrintType=*/false); 3730 Out << " ["; 3731 unsigned Op = 0; 3732 for (const BasicBlock *PadBB : CatchSwitch->handlers()) { 3733 if (Op > 0) 3734 Out << ", "; 3735 writeOperand(PadBB, /*PrintType=*/true); 3736 ++Op; 3737 } 3738 Out << "] unwind "; 3739 if (const BasicBlock *UnwindDest = CatchSwitch->getUnwindDest()) 3740 writeOperand(UnwindDest, /*PrintType=*/true); 3741 else 3742 Out << "to caller"; 3743 } else if (const auto *FPI = dyn_cast<FuncletPadInst>(&I)) { 3744 Out << " within "; 3745 writeOperand(FPI->getParentPad(), /*PrintType=*/false); 3746 Out << " ["; 3747 for (unsigned Op = 0, NumOps = FPI->getNumArgOperands(); Op < NumOps; 3748 ++Op) { 3749 if (Op > 0) 3750 Out << ", "; 3751 writeOperand(FPI->getArgOperand(Op), /*PrintType=*/true); 3752 } 3753 Out << ']'; 3754 } else if (isa<ReturnInst>(I) && !Operand) { 3755 Out << " void"; 3756 } else if (const auto *CRI = dyn_cast<CatchReturnInst>(&I)) { 3757 Out << " from "; 3758 writeOperand(CRI->getOperand(0), /*PrintType=*/false); 3759 3760 Out << " to "; 3761 writeOperand(CRI->getOperand(1), /*PrintType=*/true); 3762 } else if (const auto *CRI = dyn_cast<CleanupReturnInst>(&I)) { 3763 Out << " from "; 3764 writeOperand(CRI->getOperand(0), /*PrintType=*/false); 3765 3766 Out << " unwind "; 3767 if (CRI->hasUnwindDest()) 3768 writeOperand(CRI->getOperand(1), /*PrintType=*/true); 3769 else 3770 Out << "to caller"; 3771 } else if (const CallInst *CI = dyn_cast<CallInst>(&I)) { 3772 // Print the calling convention being used. 3773 if (CI->getCallingConv() != CallingConv::C) { 3774 Out << " "; 3775 PrintCallingConv(CI->getCallingConv(), Out); 3776 } 3777 3778 Operand = CI->getCalledValue(); 3779 FunctionType *FTy = CI->getFunctionType(); 3780 Type *RetTy = FTy->getReturnType(); 3781 const AttributeList &PAL = CI->getAttributes(); 3782 3783 if (PAL.hasAttributes(AttributeList::ReturnIndex)) 3784 Out << ' ' << PAL.getAsString(AttributeList::ReturnIndex); 3785 3786 // Only print addrspace(N) if necessary: 3787 maybePrintCallAddrSpace(Operand, &I, Out); 3788 3789 // If possible, print out the short form of the call instruction. We can 3790 // only do this if the first argument is a pointer to a nonvararg function, 3791 // and if the return type is not a pointer to a function. 3792 // 3793 Out << ' '; 3794 TypePrinter.print(FTy->isVarArg() ? FTy : RetTy, Out); 3795 Out << ' '; 3796 writeOperand(Operand, false); 3797 Out << '('; 3798 for (unsigned op = 0, Eop = CI->getNumArgOperands(); op < Eop; ++op) { 3799 if (op > 0) 3800 Out << ", "; 3801 writeParamOperand(CI->getArgOperand(op), PAL.getParamAttributes(op)); 3802 } 3803 3804 // Emit an ellipsis if this is a musttail call in a vararg function. This 3805 // is only to aid readability, musttail calls forward varargs by default. 3806 if (CI->isMustTailCall() && CI->getParent() && 3807 CI->getParent()->getParent() && 3808 CI->getParent()->getParent()->isVarArg()) 3809 Out << ", ..."; 3810 3811 Out << ')'; 3812 if (PAL.hasAttributes(AttributeList::FunctionIndex)) 3813 Out << " #" << Machine.getAttributeGroupSlot(PAL.getFnAttributes()); 3814 3815 writeOperandBundles(CI); 3816 } else if (const InvokeInst *II = dyn_cast<InvokeInst>(&I)) { 3817 Operand = II->getCalledValue(); 3818 FunctionType *FTy = II->getFunctionType(); 3819 Type *RetTy = FTy->getReturnType(); 3820 const AttributeList &PAL = II->getAttributes(); 3821 3822 // Print the calling convention being used. 3823 if (II->getCallingConv() != CallingConv::C) { 3824 Out << " "; 3825 PrintCallingConv(II->getCallingConv(), Out); 3826 } 3827 3828 if (PAL.hasAttributes(AttributeList::ReturnIndex)) 3829 Out << ' ' << PAL.getAsString(AttributeList::ReturnIndex); 3830 3831 // Only print addrspace(N) if necessary: 3832 maybePrintCallAddrSpace(Operand, &I, Out); 3833 3834 // If possible, print out the short form of the invoke instruction. We can 3835 // only do this if the first argument is a pointer to a nonvararg function, 3836 // and if the return type is not a pointer to a function. 3837 // 3838 Out << ' '; 3839 TypePrinter.print(FTy->isVarArg() ? FTy : RetTy, Out); 3840 Out << ' '; 3841 writeOperand(Operand, false); 3842 Out << '('; 3843 for (unsigned op = 0, Eop = II->getNumArgOperands(); op < Eop; ++op) { 3844 if (op) 3845 Out << ", "; 3846 writeParamOperand(II->getArgOperand(op), PAL.getParamAttributes(op)); 3847 } 3848 3849 Out << ')'; 3850 if (PAL.hasAttributes(AttributeList::FunctionIndex)) 3851 Out << " #" << Machine.getAttributeGroupSlot(PAL.getFnAttributes()); 3852 3853 writeOperandBundles(II); 3854 3855 Out << "\n to "; 3856 writeOperand(II->getNormalDest(), true); 3857 Out << " unwind "; 3858 writeOperand(II->getUnwindDest(), true); 3859 } else if (const CallBrInst *CBI = dyn_cast<CallBrInst>(&I)) { 3860 Operand = CBI->getCalledValue(); 3861 FunctionType *FTy = CBI->getFunctionType(); 3862 Type *RetTy = FTy->getReturnType(); 3863 const AttributeList &PAL = CBI->getAttributes(); 3864 3865 // Print the calling convention being used. 3866 if (CBI->getCallingConv() != CallingConv::C) { 3867 Out << " "; 3868 PrintCallingConv(CBI->getCallingConv(), Out); 3869 } 3870 3871 if (PAL.hasAttributes(AttributeList::ReturnIndex)) 3872 Out << ' ' << PAL.getAsString(AttributeList::ReturnIndex); 3873 3874 // If possible, print out the short form of the callbr instruction. We can 3875 // only do this if the first argument is a pointer to a nonvararg function, 3876 // and if the return type is not a pointer to a function. 3877 // 3878 Out << ' '; 3879 TypePrinter.print(FTy->isVarArg() ? FTy : RetTy, Out); 3880 Out << ' '; 3881 writeOperand(Operand, false); 3882 Out << '('; 3883 for (unsigned op = 0, Eop = CBI->getNumArgOperands(); op < Eop; ++op) { 3884 if (op) 3885 Out << ", "; 3886 writeParamOperand(CBI->getArgOperand(op), PAL.getParamAttributes(op)); 3887 } 3888 3889 Out << ')'; 3890 if (PAL.hasAttributes(AttributeList::FunctionIndex)) 3891 Out << " #" << Machine.getAttributeGroupSlot(PAL.getFnAttributes()); 3892 3893 writeOperandBundles(CBI); 3894 3895 Out << "\n to "; 3896 writeOperand(CBI->getDefaultDest(), true); 3897 Out << " ["; 3898 for (unsigned i = 0, e = CBI->getNumIndirectDests(); i != e; ++i) { 3899 if (i != 0) 3900 Out << ", "; 3901 writeOperand(CBI->getIndirectDest(i), true); 3902 } 3903 Out << ']'; 3904 } else if (const AllocaInst *AI = dyn_cast<AllocaInst>(&I)) { 3905 Out << ' '; 3906 if (AI->isUsedWithInAlloca()) 3907 Out << "inalloca "; 3908 if (AI->isSwiftError()) 3909 Out << "swifterror "; 3910 TypePrinter.print(AI->getAllocatedType(), Out); 3911 3912 // Explicitly write the array size if the code is broken, if it's an array 3913 // allocation, or if the type is not canonical for scalar allocations. The 3914 // latter case prevents the type from mutating when round-tripping through 3915 // assembly. 3916 if (!AI->getArraySize() || AI->isArrayAllocation() || 3917 !AI->getArraySize()->getType()->isIntegerTy(32)) { 3918 Out << ", "; 3919 writeOperand(AI->getArraySize(), true); 3920 } 3921 if (AI->getAlignment()) { 3922 Out << ", align " << AI->getAlignment(); 3923 } 3924 3925 unsigned AddrSpace = AI->getType()->getAddressSpace(); 3926 if (AddrSpace != 0) { 3927 Out << ", addrspace(" << AddrSpace << ')'; 3928 } 3929 } else if (isa<CastInst>(I)) { 3930 if (Operand) { 3931 Out << ' '; 3932 writeOperand(Operand, true); // Work with broken code 3933 } 3934 Out << " to "; 3935 TypePrinter.print(I.getType(), Out); 3936 } else if (isa<VAArgInst>(I)) { 3937 if (Operand) { 3938 Out << ' '; 3939 writeOperand(Operand, true); // Work with broken code 3940 } 3941 Out << ", "; 3942 TypePrinter.print(I.getType(), Out); 3943 } else if (Operand) { // Print the normal way. 3944 if (const auto *GEP = dyn_cast<GetElementPtrInst>(&I)) { 3945 Out << ' '; 3946 TypePrinter.print(GEP->getSourceElementType(), Out); 3947 Out << ','; 3948 } else if (const auto *LI = dyn_cast<LoadInst>(&I)) { 3949 Out << ' '; 3950 TypePrinter.print(LI->getType(), Out); 3951 Out << ','; 3952 } 3953 3954 // PrintAllTypes - Instructions who have operands of all the same type 3955 // omit the type from all but the first operand. If the instruction has 3956 // different type operands (for example br), then they are all printed. 3957 bool PrintAllTypes = false; 3958 Type *TheType = Operand->getType(); 3959 3960 // Select, Store and ShuffleVector always print all types. 3961 if (isa<SelectInst>(I) || isa<StoreInst>(I) || isa<ShuffleVectorInst>(I) 3962 || isa<ReturnInst>(I)) { 3963 PrintAllTypes = true; 3964 } else { 3965 for (unsigned i = 1, E = I.getNumOperands(); i != E; ++i) { 3966 Operand = I.getOperand(i); 3967 // note that Operand shouldn't be null, but the test helps make dump() 3968 // more tolerant of malformed IR 3969 if (Operand && Operand->getType() != TheType) { 3970 PrintAllTypes = true; // We have differing types! Print them all! 3971 break; 3972 } 3973 } 3974 } 3975 3976 if (!PrintAllTypes) { 3977 Out << ' '; 3978 TypePrinter.print(TheType, Out); 3979 } 3980 3981 Out << ' '; 3982 for (unsigned i = 0, E = I.getNumOperands(); i != E; ++i) { 3983 if (i) Out << ", "; 3984 writeOperand(I.getOperand(i), PrintAllTypes); 3985 } 3986 } 3987 3988 // Print atomic ordering/alignment for memory operations 3989 if (const LoadInst *LI = dyn_cast<LoadInst>(&I)) { 3990 if (LI->isAtomic()) 3991 writeAtomic(LI->getContext(), LI->getOrdering(), LI->getSyncScopeID()); 3992 if (LI->getAlignment()) 3993 Out << ", align " << LI->getAlignment(); 3994 } else if (const StoreInst *SI = dyn_cast<StoreInst>(&I)) { 3995 if (SI->isAtomic()) 3996 writeAtomic(SI->getContext(), SI->getOrdering(), SI->getSyncScopeID()); 3997 if (SI->getAlignment()) 3998 Out << ", align " << SI->getAlignment(); 3999 } else if (const AtomicCmpXchgInst *CXI = dyn_cast<AtomicCmpXchgInst>(&I)) { 4000 writeAtomicCmpXchg(CXI->getContext(), CXI->getSuccessOrdering(), 4001 CXI->getFailureOrdering(), CXI->getSyncScopeID()); 4002 } else if (const AtomicRMWInst *RMWI = dyn_cast<AtomicRMWInst>(&I)) { 4003 writeAtomic(RMWI->getContext(), RMWI->getOrdering(), 4004 RMWI->getSyncScopeID()); 4005 } else if (const FenceInst *FI = dyn_cast<FenceInst>(&I)) { 4006 writeAtomic(FI->getContext(), FI->getOrdering(), FI->getSyncScopeID()); 4007 } 4008 4009 // Print Metadata info. 4010 SmallVector<std::pair<unsigned, MDNode *>, 4> InstMD; 4011 I.getAllMetadata(InstMD); 4012 printMetadataAttachments(InstMD, ", "); 4013 4014 // Print a nice comment. 4015 printInfoComment(I); 4016 } 4017 4018 void AssemblyWriter::printMetadataAttachments( 4019 const SmallVectorImpl<std::pair<unsigned, MDNode *>> &MDs, 4020 StringRef Separator) { 4021 if (MDs.empty()) 4022 return; 4023 4024 if (MDNames.empty()) 4025 MDs[0].second->getContext().getMDKindNames(MDNames); 4026 4027 for (const auto &I : MDs) { 4028 unsigned Kind = I.first; 4029 Out << Separator; 4030 if (Kind < MDNames.size()) { 4031 Out << "!"; 4032 printMetadataIdentifier(MDNames[Kind], Out); 4033 } else 4034 Out << "!<unknown kind #" << Kind << ">"; 4035 Out << ' '; 4036 WriteAsOperandInternal(Out, I.second, &TypePrinter, &Machine, TheModule); 4037 } 4038 } 4039 4040 void AssemblyWriter::writeMDNode(unsigned Slot, const MDNode *Node) { 4041 Out << '!' << Slot << " = "; 4042 printMDNodeBody(Node); 4043 Out << "\n"; 4044 } 4045 4046 void AssemblyWriter::writeAllMDNodes() { 4047 SmallVector<const MDNode *, 16> Nodes; 4048 Nodes.resize(Machine.mdn_size()); 4049 for (SlotTracker::mdn_iterator I = Machine.mdn_begin(), E = Machine.mdn_end(); 4050 I != E; ++I) 4051 Nodes[I->second] = cast<MDNode>(I->first); 4052 4053 for (unsigned i = 0, e = Nodes.size(); i != e; ++i) { 4054 writeMDNode(i, Nodes[i]); 4055 } 4056 } 4057 4058 void AssemblyWriter::printMDNodeBody(const MDNode *Node) { 4059 WriteMDNodeBodyInternal(Out, Node, &TypePrinter, &Machine, TheModule); 4060 } 4061 4062 void AssemblyWriter::writeAllAttributeGroups() { 4063 std::vector<std::pair<AttributeSet, unsigned>> asVec; 4064 asVec.resize(Machine.as_size()); 4065 4066 for (SlotTracker::as_iterator I = Machine.as_begin(), E = Machine.as_end(); 4067 I != E; ++I) 4068 asVec[I->second] = *I; 4069 4070 for (const auto &I : asVec) 4071 Out << "attributes #" << I.second << " = { " 4072 << I.first.getAsString(true) << " }\n"; 4073 } 4074 4075 void AssemblyWriter::printUseListOrder(const UseListOrder &Order) { 4076 bool IsInFunction = Machine.getFunction(); 4077 if (IsInFunction) 4078 Out << " "; 4079 4080 Out << "uselistorder"; 4081 if (const BasicBlock *BB = 4082 IsInFunction ? nullptr : dyn_cast<BasicBlock>(Order.V)) { 4083 Out << "_bb "; 4084 writeOperand(BB->getParent(), false); 4085 Out << ", "; 4086 writeOperand(BB, false); 4087 } else { 4088 Out << " "; 4089 writeOperand(Order.V, true); 4090 } 4091 Out << ", { "; 4092 4093 assert(Order.Shuffle.size() >= 2 && "Shuffle too small"); 4094 Out << Order.Shuffle[0]; 4095 for (unsigned I = 1, E = Order.Shuffle.size(); I != E; ++I) 4096 Out << ", " << Order.Shuffle[I]; 4097 Out << " }\n"; 4098 } 4099 4100 void AssemblyWriter::printUseLists(const Function *F) { 4101 auto hasMore = 4102 [&]() { return !UseListOrders.empty() && UseListOrders.back().F == F; }; 4103 if (!hasMore()) 4104 // Nothing to do. 4105 return; 4106 4107 Out << "\n; uselistorder directives\n"; 4108 while (hasMore()) { 4109 printUseListOrder(UseListOrders.back()); 4110 UseListOrders.pop_back(); 4111 } 4112 } 4113 4114 //===----------------------------------------------------------------------===// 4115 // External Interface declarations 4116 //===----------------------------------------------------------------------===// 4117 4118 void Function::print(raw_ostream &ROS, AssemblyAnnotationWriter *AAW, 4119 bool ShouldPreserveUseListOrder, 4120 bool IsForDebug) const { 4121 SlotTracker SlotTable(this->getParent()); 4122 formatted_raw_ostream OS(ROS); 4123 AssemblyWriter W(OS, SlotTable, this->getParent(), AAW, 4124 IsForDebug, 4125 ShouldPreserveUseListOrder); 4126 W.printFunction(this); 4127 } 4128 4129 void Module::print(raw_ostream &ROS, AssemblyAnnotationWriter *AAW, 4130 bool ShouldPreserveUseListOrder, bool IsForDebug) const { 4131 SlotTracker SlotTable(this); 4132 formatted_raw_ostream OS(ROS); 4133 AssemblyWriter W(OS, SlotTable, this, AAW, IsForDebug, 4134 ShouldPreserveUseListOrder); 4135 W.printModule(this); 4136 } 4137 4138 void NamedMDNode::print(raw_ostream &ROS, bool IsForDebug) const { 4139 SlotTracker SlotTable(getParent()); 4140 formatted_raw_ostream OS(ROS); 4141 AssemblyWriter W(OS, SlotTable, getParent(), nullptr, IsForDebug); 4142 W.printNamedMDNode(this); 4143 } 4144 4145 void NamedMDNode::print(raw_ostream &ROS, ModuleSlotTracker &MST, 4146 bool IsForDebug) const { 4147 Optional<SlotTracker> LocalST; 4148 SlotTracker *SlotTable; 4149 if (auto *ST = MST.getMachine()) 4150 SlotTable = ST; 4151 else { 4152 LocalST.emplace(getParent()); 4153 SlotTable = &*LocalST; 4154 } 4155 4156 formatted_raw_ostream OS(ROS); 4157 AssemblyWriter W(OS, *SlotTable, getParent(), nullptr, IsForDebug); 4158 W.printNamedMDNode(this); 4159 } 4160 4161 void Comdat::print(raw_ostream &ROS, bool /*IsForDebug*/) const { 4162 PrintLLVMName(ROS, getName(), ComdatPrefix); 4163 ROS << " = comdat "; 4164 4165 switch (getSelectionKind()) { 4166 case Comdat::Any: 4167 ROS << "any"; 4168 break; 4169 case Comdat::ExactMatch: 4170 ROS << "exactmatch"; 4171 break; 4172 case Comdat::Largest: 4173 ROS << "largest"; 4174 break; 4175 case Comdat::NoDuplicates: 4176 ROS << "noduplicates"; 4177 break; 4178 case Comdat::SameSize: 4179 ROS << "samesize"; 4180 break; 4181 } 4182 4183 ROS << '\n'; 4184 } 4185 4186 void Type::print(raw_ostream &OS, bool /*IsForDebug*/, bool NoDetails) const { 4187 TypePrinting TP; 4188 TP.print(const_cast<Type*>(this), OS); 4189 4190 if (NoDetails) 4191 return; 4192 4193 // If the type is a named struct type, print the body as well. 4194 if (StructType *STy = dyn_cast<StructType>(const_cast<Type*>(this))) 4195 if (!STy->isLiteral()) { 4196 OS << " = type "; 4197 TP.printStructBody(STy, OS); 4198 } 4199 } 4200 4201 static bool isReferencingMDNode(const Instruction &I) { 4202 if (const auto *CI = dyn_cast<CallInst>(&I)) 4203 if (Function *F = CI->getCalledFunction()) 4204 if (F->isIntrinsic()) 4205 for (auto &Op : I.operands()) 4206 if (auto *V = dyn_cast_or_null<MetadataAsValue>(Op)) 4207 if (isa<MDNode>(V->getMetadata())) 4208 return true; 4209 return false; 4210 } 4211 4212 void Value::print(raw_ostream &ROS, bool IsForDebug) const { 4213 bool ShouldInitializeAllMetadata = false; 4214 if (auto *I = dyn_cast<Instruction>(this)) 4215 ShouldInitializeAllMetadata = isReferencingMDNode(*I); 4216 else if (isa<Function>(this) || isa<MetadataAsValue>(this)) 4217 ShouldInitializeAllMetadata = true; 4218 4219 ModuleSlotTracker MST(getModuleFromVal(this), ShouldInitializeAllMetadata); 4220 print(ROS, MST, IsForDebug); 4221 } 4222 4223 void Value::print(raw_ostream &ROS, ModuleSlotTracker &MST, 4224 bool IsForDebug) const { 4225 formatted_raw_ostream OS(ROS); 4226 SlotTracker EmptySlotTable(static_cast<const Module *>(nullptr)); 4227 SlotTracker &SlotTable = 4228 MST.getMachine() ? *MST.getMachine() : EmptySlotTable; 4229 auto incorporateFunction = [&](const Function *F) { 4230 if (F) 4231 MST.incorporateFunction(*F); 4232 }; 4233 4234 if (const Instruction *I = dyn_cast<Instruction>(this)) { 4235 incorporateFunction(I->getParent() ? I->getParent()->getParent() : nullptr); 4236 AssemblyWriter W(OS, SlotTable, getModuleFromVal(I), nullptr, IsForDebug); 4237 W.printInstruction(*I); 4238 } else if (const BasicBlock *BB = dyn_cast<BasicBlock>(this)) { 4239 incorporateFunction(BB->getParent()); 4240 AssemblyWriter W(OS, SlotTable, getModuleFromVal(BB), nullptr, IsForDebug); 4241 W.printBasicBlock(BB); 4242 } else if (const GlobalValue *GV = dyn_cast<GlobalValue>(this)) { 4243 AssemblyWriter W(OS, SlotTable, GV->getParent(), nullptr, IsForDebug); 4244 if (const GlobalVariable *V = dyn_cast<GlobalVariable>(GV)) 4245 W.printGlobal(V); 4246 else if (const Function *F = dyn_cast<Function>(GV)) 4247 W.printFunction(F); 4248 else 4249 W.printIndirectSymbol(cast<GlobalIndirectSymbol>(GV)); 4250 } else if (const MetadataAsValue *V = dyn_cast<MetadataAsValue>(this)) { 4251 V->getMetadata()->print(ROS, MST, getModuleFromVal(V)); 4252 } else if (const Constant *C = dyn_cast<Constant>(this)) { 4253 TypePrinting TypePrinter; 4254 TypePrinter.print(C->getType(), OS); 4255 OS << ' '; 4256 WriteConstantInternal(OS, C, TypePrinter, MST.getMachine(), nullptr); 4257 } else if (isa<InlineAsm>(this) || isa<Argument>(this)) { 4258 this->printAsOperand(OS, /* PrintType */ true, MST); 4259 } else { 4260 llvm_unreachable("Unknown value to print out!"); 4261 } 4262 } 4263 4264 /// Print without a type, skipping the TypePrinting object. 4265 /// 4266 /// \return \c true iff printing was successful. 4267 static bool printWithoutType(const Value &V, raw_ostream &O, 4268 SlotTracker *Machine, const Module *M) { 4269 if (V.hasName() || isa<GlobalValue>(V) || 4270 (!isa<Constant>(V) && !isa<MetadataAsValue>(V))) { 4271 WriteAsOperandInternal(O, &V, nullptr, Machine, M); 4272 return true; 4273 } 4274 return false; 4275 } 4276 4277 static void printAsOperandImpl(const Value &V, raw_ostream &O, bool PrintType, 4278 ModuleSlotTracker &MST) { 4279 TypePrinting TypePrinter(MST.getModule()); 4280 if (PrintType) { 4281 TypePrinter.print(V.getType(), O); 4282 O << ' '; 4283 } 4284 4285 WriteAsOperandInternal(O, &V, &TypePrinter, MST.getMachine(), 4286 MST.getModule()); 4287 } 4288 4289 void Value::printAsOperand(raw_ostream &O, bool PrintType, 4290 const Module *M) const { 4291 if (!M) 4292 M = getModuleFromVal(this); 4293 4294 if (!PrintType) 4295 if (printWithoutType(*this, O, nullptr, M)) 4296 return; 4297 4298 SlotTracker Machine( 4299 M, /* ShouldInitializeAllMetadata */ isa<MetadataAsValue>(this)); 4300 ModuleSlotTracker MST(Machine, M); 4301 printAsOperandImpl(*this, O, PrintType, MST); 4302 } 4303 4304 void Value::printAsOperand(raw_ostream &O, bool PrintType, 4305 ModuleSlotTracker &MST) const { 4306 if (!PrintType) 4307 if (printWithoutType(*this, O, MST.getMachine(), MST.getModule())) 4308 return; 4309 4310 printAsOperandImpl(*this, O, PrintType, MST); 4311 } 4312 4313 static void printMetadataImpl(raw_ostream &ROS, const Metadata &MD, 4314 ModuleSlotTracker &MST, const Module *M, 4315 bool OnlyAsOperand) { 4316 formatted_raw_ostream OS(ROS); 4317 4318 TypePrinting TypePrinter(M); 4319 4320 WriteAsOperandInternal(OS, &MD, &TypePrinter, MST.getMachine(), M, 4321 /* FromValue */ true); 4322 4323 auto *N = dyn_cast<MDNode>(&MD); 4324 if (OnlyAsOperand || !N || isa<DIExpression>(MD)) 4325 return; 4326 4327 OS << " = "; 4328 WriteMDNodeBodyInternal(OS, N, &TypePrinter, MST.getMachine(), M); 4329 } 4330 4331 void Metadata::printAsOperand(raw_ostream &OS, const Module *M) const { 4332 ModuleSlotTracker MST(M, isa<MDNode>(this)); 4333 printMetadataImpl(OS, *this, MST, M, /* OnlyAsOperand */ true); 4334 } 4335 4336 void Metadata::printAsOperand(raw_ostream &OS, ModuleSlotTracker &MST, 4337 const Module *M) const { 4338 printMetadataImpl(OS, *this, MST, M, /* OnlyAsOperand */ true); 4339 } 4340 4341 void Metadata::print(raw_ostream &OS, const Module *M, 4342 bool /*IsForDebug*/) const { 4343 ModuleSlotTracker MST(M, isa<MDNode>(this)); 4344 printMetadataImpl(OS, *this, MST, M, /* OnlyAsOperand */ false); 4345 } 4346 4347 void Metadata::print(raw_ostream &OS, ModuleSlotTracker &MST, 4348 const Module *M, bool /*IsForDebug*/) const { 4349 printMetadataImpl(OS, *this, MST, M, /* OnlyAsOperand */ false); 4350 } 4351 4352 void ModuleSummaryIndex::print(raw_ostream &ROS, bool IsForDebug) const { 4353 SlotTracker SlotTable(this); 4354 formatted_raw_ostream OS(ROS); 4355 AssemblyWriter W(OS, SlotTable, this, IsForDebug); 4356 W.printModuleSummaryIndex(); 4357 } 4358 4359 #if !defined(NDEBUG) || defined(LLVM_ENABLE_DUMP) 4360 // Value::dump - allow easy printing of Values from the debugger. 4361 LLVM_DUMP_METHOD 4362 void Value::dump() const { print(dbgs(), /*IsForDebug=*/true); dbgs() << '\n'; } 4363 4364 // Type::dump - allow easy printing of Types from the debugger. 4365 LLVM_DUMP_METHOD 4366 void Type::dump() const { print(dbgs(), /*IsForDebug=*/true); dbgs() << '\n'; } 4367 4368 // Module::dump() - Allow printing of Modules from the debugger. 4369 LLVM_DUMP_METHOD 4370 void Module::dump() const { 4371 print(dbgs(), nullptr, 4372 /*ShouldPreserveUseListOrder=*/false, /*IsForDebug=*/true); 4373 } 4374 4375 // Allow printing of Comdats from the debugger. 4376 LLVM_DUMP_METHOD 4377 void Comdat::dump() const { print(dbgs(), /*IsForDebug=*/true); } 4378 4379 // NamedMDNode::dump() - Allow printing of NamedMDNodes from the debugger. 4380 LLVM_DUMP_METHOD 4381 void NamedMDNode::dump() const { print(dbgs(), /*IsForDebug=*/true); } 4382 4383 LLVM_DUMP_METHOD 4384 void Metadata::dump() const { dump(nullptr); } 4385 4386 LLVM_DUMP_METHOD 4387 void Metadata::dump(const Module *M) const { 4388 print(dbgs(), M, /*IsForDebug=*/true); 4389 dbgs() << '\n'; 4390 } 4391 4392 // Allow printing of ModuleSummaryIndex from the debugger. 4393 LLVM_DUMP_METHOD 4394 void ModuleSummaryIndex::dump() const { print(dbgs(), /*IsForDebug=*/true); } 4395 #endif 4396