1 //===-- CodeGenFunction.h - Per-Function state for LLVM CodeGen -*- C++ -*-===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This is the internal per-function state used for llvm translation. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #ifndef LLVM_CLANG_LIB_CODEGEN_CODEGENFUNCTION_H 15 #define LLVM_CLANG_LIB_CODEGEN_CODEGENFUNCTION_H 16 17 #include "CGBuilder.h" 18 #include "CGDebugInfo.h" 19 #include "CGLoopInfo.h" 20 #include "CGValue.h" 21 #include "CodeGenModule.h" 22 #include "CodeGenPGO.h" 23 #include "EHScopeStack.h" 24 #include "VarBypassDetector.h" 25 #include "clang/AST/CharUnits.h" 26 #include "clang/AST/ExprCXX.h" 27 #include "clang/AST/ExprObjC.h" 28 #include "clang/AST/ExprOpenMP.h" 29 #include "clang/AST/Type.h" 30 #include "clang/Basic/ABI.h" 31 #include "clang/Basic/CapturedStmt.h" 32 #include "clang/Basic/OpenMPKinds.h" 33 #include "clang/Basic/TargetInfo.h" 34 #include "clang/Frontend/CodeGenOptions.h" 35 #include "llvm/ADT/ArrayRef.h" 36 #include "llvm/ADT/DenseMap.h" 37 #include "llvm/ADT/MapVector.h" 38 #include "llvm/ADT/SmallVector.h" 39 #include "llvm/IR/ValueHandle.h" 40 #include "llvm/Support/Debug.h" 41 #include "llvm/Transforms/Utils/SanitizerStats.h" 42 43 namespace llvm { 44 class BasicBlock; 45 class LLVMContext; 46 class MDNode; 47 class Module; 48 class SwitchInst; 49 class Twine; 50 class Value; 51 class CallSite; 52 } 53 54 namespace clang { 55 class ASTContext; 56 class BlockDecl; 57 class CXXDestructorDecl; 58 class CXXForRangeStmt; 59 class CXXTryStmt; 60 class Decl; 61 class LabelDecl; 62 class EnumConstantDecl; 63 class FunctionDecl; 64 class FunctionProtoType; 65 class LabelStmt; 66 class ObjCContainerDecl; 67 class ObjCInterfaceDecl; 68 class ObjCIvarDecl; 69 class ObjCMethodDecl; 70 class ObjCImplementationDecl; 71 class ObjCPropertyImplDecl; 72 class TargetInfo; 73 class VarDecl; 74 class ObjCForCollectionStmt; 75 class ObjCAtTryStmt; 76 class ObjCAtThrowStmt; 77 class ObjCAtSynchronizedStmt; 78 class ObjCAutoreleasePoolStmt; 79 80 namespace analyze_os_log { 81 class OSLogBufferLayout; 82 } 83 84 namespace CodeGen { 85 class CodeGenTypes; 86 class CGCallee; 87 class CGFunctionInfo; 88 class CGRecordLayout; 89 class CGBlockInfo; 90 class CGCXXABI; 91 class BlockByrefHelpers; 92 class BlockByrefInfo; 93 class BlockFlags; 94 class BlockFieldFlags; 95 class RegionCodeGenTy; 96 class TargetCodeGenInfo; 97 struct OMPTaskDataTy; 98 struct CGCoroData; 99 100 /// The kind of evaluation to perform on values of a particular 101 /// type. Basically, is the code in CGExprScalar, CGExprComplex, or 102 /// CGExprAgg? 103 /// 104 /// TODO: should vectors maybe be split out into their own thing? 105 enum TypeEvaluationKind { 106 TEK_Scalar, 107 TEK_Complex, 108 TEK_Aggregate 109 }; 110 111 #define LIST_SANITIZER_CHECKS \ 112 SANITIZER_CHECK(AddOverflow, add_overflow, 0) \ 113 SANITIZER_CHECK(BuiltinUnreachable, builtin_unreachable, 0) \ 114 SANITIZER_CHECK(CFICheckFail, cfi_check_fail, 0) \ 115 SANITIZER_CHECK(DivremOverflow, divrem_overflow, 0) \ 116 SANITIZER_CHECK(DynamicTypeCacheMiss, dynamic_type_cache_miss, 0) \ 117 SANITIZER_CHECK(FloatCastOverflow, float_cast_overflow, 0) \ 118 SANITIZER_CHECK(FunctionTypeMismatch, function_type_mismatch, 0) \ 119 SANITIZER_CHECK(InvalidBuiltin, invalid_builtin, 0) \ 120 SANITIZER_CHECK(LoadInvalidValue, load_invalid_value, 0) \ 121 SANITIZER_CHECK(MissingReturn, missing_return, 0) \ 122 SANITIZER_CHECK(MulOverflow, mul_overflow, 0) \ 123 SANITIZER_CHECK(NegateOverflow, negate_overflow, 0) \ 124 SANITIZER_CHECK(NullabilityArg, nullability_arg, 0) \ 125 SANITIZER_CHECK(NullabilityReturn, nullability_return, 1) \ 126 SANITIZER_CHECK(NonnullArg, nonnull_arg, 0) \ 127 SANITIZER_CHECK(NonnullReturn, nonnull_return, 1) \ 128 SANITIZER_CHECK(OutOfBounds, out_of_bounds, 0) \ 129 SANITIZER_CHECK(PointerOverflow, pointer_overflow, 0) \ 130 SANITIZER_CHECK(ShiftOutOfBounds, shift_out_of_bounds, 0) \ 131 SANITIZER_CHECK(SubOverflow, sub_overflow, 0) \ 132 SANITIZER_CHECK(TypeMismatch, type_mismatch, 1) \ 133 SANITIZER_CHECK(VLABoundNotPositive, vla_bound_not_positive, 0) 134 135 enum SanitizerHandler { 136 #define SANITIZER_CHECK(Enum, Name, Version) Enum, 137 LIST_SANITIZER_CHECKS 138 #undef SANITIZER_CHECK 139 }; 140 141 /// Helper class with most of the code for saving a value for a 142 /// conditional expression cleanup. 143 struct DominatingLLVMValue { 144 typedef llvm::PointerIntPair<llvm::Value*, 1, bool> saved_type; 145 146 /// Answer whether the given value needs extra work to be saved. 147 static bool needsSaving(llvm::Value *value) { 148 // If it's not an instruction, we don't need to save. 149 if (!isa<llvm::Instruction>(value)) return false; 150 151 // If it's an instruction in the entry block, we don't need to save. 152 llvm::BasicBlock *block = cast<llvm::Instruction>(value)->getParent(); 153 return (block != &block->getParent()->getEntryBlock()); 154 } 155 156 static saved_type save(CodeGenFunction &CGF, llvm::Value *value); 157 static llvm::Value *restore(CodeGenFunction &CGF, saved_type value); 158 }; 159 160 /// A partial specialization of DominatingValue for llvm::Values that 161 /// might be llvm::Instructions. 162 template <class T> struct DominatingPointer<T,true> : DominatingLLVMValue { 163 typedef T *type; 164 static type restore(CodeGenFunction &CGF, saved_type value) { 165 return static_cast<T*>(DominatingLLVMValue::restore(CGF, value)); 166 } 167 }; 168 169 /// A specialization of DominatingValue for Address. 170 template <> struct DominatingValue<Address> { 171 typedef Address type; 172 173 struct saved_type { 174 DominatingLLVMValue::saved_type SavedValue; 175 CharUnits Alignment; 176 }; 177 178 static bool needsSaving(type value) { 179 return DominatingLLVMValue::needsSaving(value.getPointer()); 180 } 181 static saved_type save(CodeGenFunction &CGF, type value) { 182 return { DominatingLLVMValue::save(CGF, value.getPointer()), 183 value.getAlignment() }; 184 } 185 static type restore(CodeGenFunction &CGF, saved_type value) { 186 return Address(DominatingLLVMValue::restore(CGF, value.SavedValue), 187 value.Alignment); 188 } 189 }; 190 191 /// A specialization of DominatingValue for RValue. 192 template <> struct DominatingValue<RValue> { 193 typedef RValue type; 194 class saved_type { 195 enum Kind { ScalarLiteral, ScalarAddress, AggregateLiteral, 196 AggregateAddress, ComplexAddress }; 197 198 llvm::Value *Value; 199 unsigned K : 3; 200 unsigned Align : 29; 201 saved_type(llvm::Value *v, Kind k, unsigned a = 0) 202 : Value(v), K(k), Align(a) {} 203 204 public: 205 static bool needsSaving(RValue value); 206 static saved_type save(CodeGenFunction &CGF, RValue value); 207 RValue restore(CodeGenFunction &CGF); 208 209 // implementations in CGCleanup.cpp 210 }; 211 212 static bool needsSaving(type value) { 213 return saved_type::needsSaving(value); 214 } 215 static saved_type save(CodeGenFunction &CGF, type value) { 216 return saved_type::save(CGF, value); 217 } 218 static type restore(CodeGenFunction &CGF, saved_type value) { 219 return value.restore(CGF); 220 } 221 }; 222 223 /// CodeGenFunction - This class organizes the per-function state that is used 224 /// while generating LLVM code. 225 class CodeGenFunction : public CodeGenTypeCache { 226 CodeGenFunction(const CodeGenFunction &) = delete; 227 void operator=(const CodeGenFunction &) = delete; 228 229 friend class CGCXXABI; 230 public: 231 /// A jump destination is an abstract label, branching to which may 232 /// require a jump out through normal cleanups. 233 struct JumpDest { 234 JumpDest() : Block(nullptr), ScopeDepth(), Index(0) {} 235 JumpDest(llvm::BasicBlock *Block, 236 EHScopeStack::stable_iterator Depth, 237 unsigned Index) 238 : Block(Block), ScopeDepth(Depth), Index(Index) {} 239 240 bool isValid() const { return Block != nullptr; } 241 llvm::BasicBlock *getBlock() const { return Block; } 242 EHScopeStack::stable_iterator getScopeDepth() const { return ScopeDepth; } 243 unsigned getDestIndex() const { return Index; } 244 245 // This should be used cautiously. 246 void setScopeDepth(EHScopeStack::stable_iterator depth) { 247 ScopeDepth = depth; 248 } 249 250 private: 251 llvm::BasicBlock *Block; 252 EHScopeStack::stable_iterator ScopeDepth; 253 unsigned Index; 254 }; 255 256 CodeGenModule &CGM; // Per-module state. 257 const TargetInfo &Target; 258 259 typedef std::pair<llvm::Value *, llvm::Value *> ComplexPairTy; 260 LoopInfoStack LoopStack; 261 CGBuilderTy Builder; 262 263 // Stores variables for which we can't generate correct lifetime markers 264 // because of jumps. 265 VarBypassDetector Bypasses; 266 267 // CodeGen lambda for loops and support for ordered clause 268 typedef llvm::function_ref<void(CodeGenFunction &, const OMPLoopDirective &, 269 JumpDest)> 270 CodeGenLoopTy; 271 typedef llvm::function_ref<void(CodeGenFunction &, SourceLocation, 272 const unsigned, const bool)> 273 CodeGenOrderedTy; 274 275 // Codegen lambda for loop bounds in worksharing loop constructs 276 typedef llvm::function_ref<std::pair<LValue, LValue>( 277 CodeGenFunction &, const OMPExecutableDirective &S)> 278 CodeGenLoopBoundsTy; 279 280 // Codegen lambda for loop bounds in dispatch-based loop implementation 281 typedef llvm::function_ref<std::pair<llvm::Value *, llvm::Value *>( 282 CodeGenFunction &, const OMPExecutableDirective &S, Address LB, 283 Address UB)> 284 CodeGenDispatchBoundsTy; 285 286 /// CGBuilder insert helper. This function is called after an 287 /// instruction is created using Builder. 288 void InsertHelper(llvm::Instruction *I, const llvm::Twine &Name, 289 llvm::BasicBlock *BB, 290 llvm::BasicBlock::iterator InsertPt) const; 291 292 /// CurFuncDecl - Holds the Decl for the current outermost 293 /// non-closure context. 294 const Decl *CurFuncDecl; 295 /// CurCodeDecl - This is the inner-most code context, which includes blocks. 296 const Decl *CurCodeDecl; 297 const CGFunctionInfo *CurFnInfo; 298 QualType FnRetTy; 299 llvm::Function *CurFn = nullptr; 300 301 // Holds coroutine data if the current function is a coroutine. We use a 302 // wrapper to manage its lifetime, so that we don't have to define CGCoroData 303 // in this header. 304 struct CGCoroInfo { 305 std::unique_ptr<CGCoroData> Data; 306 CGCoroInfo(); 307 ~CGCoroInfo(); 308 }; 309 CGCoroInfo CurCoro; 310 311 bool isCoroutine() const { 312 return CurCoro.Data != nullptr; 313 } 314 315 /// CurGD - The GlobalDecl for the current function being compiled. 316 GlobalDecl CurGD; 317 318 /// PrologueCleanupDepth - The cleanup depth enclosing all the 319 /// cleanups associated with the parameters. 320 EHScopeStack::stable_iterator PrologueCleanupDepth; 321 322 /// ReturnBlock - Unified return block. 323 JumpDest ReturnBlock; 324 325 /// ReturnValue - The temporary alloca to hold the return 326 /// value. This is invalid iff the function has no return value. 327 Address ReturnValue = Address::invalid(); 328 329 /// Return true if a label was seen in the current scope. 330 bool hasLabelBeenSeenInCurrentScope() const { 331 if (CurLexicalScope) 332 return CurLexicalScope->hasLabels(); 333 return !LabelMap.empty(); 334 } 335 336 /// AllocaInsertPoint - This is an instruction in the entry block before which 337 /// we prefer to insert allocas. 338 llvm::AssertingVH<llvm::Instruction> AllocaInsertPt; 339 340 /// API for captured statement code generation. 341 class CGCapturedStmtInfo { 342 public: 343 explicit CGCapturedStmtInfo(CapturedRegionKind K = CR_Default) 344 : Kind(K), ThisValue(nullptr), CXXThisFieldDecl(nullptr) {} 345 explicit CGCapturedStmtInfo(const CapturedStmt &S, 346 CapturedRegionKind K = CR_Default) 347 : Kind(K), ThisValue(nullptr), CXXThisFieldDecl(nullptr) { 348 349 RecordDecl::field_iterator Field = 350 S.getCapturedRecordDecl()->field_begin(); 351 for (CapturedStmt::const_capture_iterator I = S.capture_begin(), 352 E = S.capture_end(); 353 I != E; ++I, ++Field) { 354 if (I->capturesThis()) 355 CXXThisFieldDecl = *Field; 356 else if (I->capturesVariable()) 357 CaptureFields[I->getCapturedVar()->getCanonicalDecl()] = *Field; 358 else if (I->capturesVariableByCopy()) 359 CaptureFields[I->getCapturedVar()->getCanonicalDecl()] = *Field; 360 } 361 } 362 363 virtual ~CGCapturedStmtInfo(); 364 365 CapturedRegionKind getKind() const { return Kind; } 366 367 virtual void setContextValue(llvm::Value *V) { ThisValue = V; } 368 // Retrieve the value of the context parameter. 369 virtual llvm::Value *getContextValue() const { return ThisValue; } 370 371 /// Lookup the captured field decl for a variable. 372 virtual const FieldDecl *lookup(const VarDecl *VD) const { 373 return CaptureFields.lookup(VD->getCanonicalDecl()); 374 } 375 376 bool isCXXThisExprCaptured() const { return getThisFieldDecl() != nullptr; } 377 virtual FieldDecl *getThisFieldDecl() const { return CXXThisFieldDecl; } 378 379 static bool classof(const CGCapturedStmtInfo *) { 380 return true; 381 } 382 383 /// Emit the captured statement body. 384 virtual void EmitBody(CodeGenFunction &CGF, const Stmt *S) { 385 CGF.incrementProfileCounter(S); 386 CGF.EmitStmt(S); 387 } 388 389 /// Get the name of the capture helper. 390 virtual StringRef getHelperName() const { return "__captured_stmt"; } 391 392 private: 393 /// The kind of captured statement being generated. 394 CapturedRegionKind Kind; 395 396 /// Keep the map between VarDecl and FieldDecl. 397 llvm::SmallDenseMap<const VarDecl *, FieldDecl *> CaptureFields; 398 399 /// The base address of the captured record, passed in as the first 400 /// argument of the parallel region function. 401 llvm::Value *ThisValue; 402 403 /// Captured 'this' type. 404 FieldDecl *CXXThisFieldDecl; 405 }; 406 CGCapturedStmtInfo *CapturedStmtInfo = nullptr; 407 408 /// RAII for correct setting/restoring of CapturedStmtInfo. 409 class CGCapturedStmtRAII { 410 private: 411 CodeGenFunction &CGF; 412 CGCapturedStmtInfo *PrevCapturedStmtInfo; 413 public: 414 CGCapturedStmtRAII(CodeGenFunction &CGF, 415 CGCapturedStmtInfo *NewCapturedStmtInfo) 416 : CGF(CGF), PrevCapturedStmtInfo(CGF.CapturedStmtInfo) { 417 CGF.CapturedStmtInfo = NewCapturedStmtInfo; 418 } 419 ~CGCapturedStmtRAII() { CGF.CapturedStmtInfo = PrevCapturedStmtInfo; } 420 }; 421 422 /// An abstract representation of regular/ObjC call/message targets. 423 class AbstractCallee { 424 /// The function declaration of the callee. 425 const Decl *CalleeDecl; 426 427 public: 428 AbstractCallee() : CalleeDecl(nullptr) {} 429 AbstractCallee(const FunctionDecl *FD) : CalleeDecl(FD) {} 430 AbstractCallee(const ObjCMethodDecl *OMD) : CalleeDecl(OMD) {} 431 bool hasFunctionDecl() const { 432 return dyn_cast_or_null<FunctionDecl>(CalleeDecl); 433 } 434 const Decl *getDecl() const { return CalleeDecl; } 435 unsigned getNumParams() const { 436 if (const auto *FD = dyn_cast<FunctionDecl>(CalleeDecl)) 437 return FD->getNumParams(); 438 return cast<ObjCMethodDecl>(CalleeDecl)->param_size(); 439 } 440 const ParmVarDecl *getParamDecl(unsigned I) const { 441 if (const auto *FD = dyn_cast<FunctionDecl>(CalleeDecl)) 442 return FD->getParamDecl(I); 443 return *(cast<ObjCMethodDecl>(CalleeDecl)->param_begin() + I); 444 } 445 }; 446 447 /// Sanitizers enabled for this function. 448 SanitizerSet SanOpts; 449 450 /// True if CodeGen currently emits code implementing sanitizer checks. 451 bool IsSanitizerScope = false; 452 453 /// RAII object to set/unset CodeGenFunction::IsSanitizerScope. 454 class SanitizerScope { 455 CodeGenFunction *CGF; 456 public: 457 SanitizerScope(CodeGenFunction *CGF); 458 ~SanitizerScope(); 459 }; 460 461 /// In C++, whether we are code generating a thunk. This controls whether we 462 /// should emit cleanups. 463 bool CurFuncIsThunk = false; 464 465 /// In ARC, whether we should autorelease the return value. 466 bool AutoreleaseResult = false; 467 468 /// Whether we processed a Microsoft-style asm block during CodeGen. These can 469 /// potentially set the return value. 470 bool SawAsmBlock = false; 471 472 const FunctionDecl *CurSEHParent = nullptr; 473 474 /// True if the current function is an outlined SEH helper. This can be a 475 /// finally block or filter expression. 476 bool IsOutlinedSEHHelper = false; 477 478 const CodeGen::CGBlockInfo *BlockInfo = nullptr; 479 llvm::Value *BlockPointer = nullptr; 480 481 llvm::DenseMap<const VarDecl *, FieldDecl *> LambdaCaptureFields; 482 FieldDecl *LambdaThisCaptureField = nullptr; 483 484 /// A mapping from NRVO variables to the flags used to indicate 485 /// when the NRVO has been applied to this variable. 486 llvm::DenseMap<const VarDecl *, llvm::Value *> NRVOFlags; 487 488 EHScopeStack EHStack; 489 llvm::SmallVector<char, 256> LifetimeExtendedCleanupStack; 490 llvm::SmallVector<const JumpDest *, 2> SEHTryEpilogueStack; 491 492 llvm::Instruction *CurrentFuncletPad = nullptr; 493 494 class CallLifetimeEnd final : public EHScopeStack::Cleanup { 495 llvm::Value *Addr; 496 llvm::Value *Size; 497 498 public: 499 CallLifetimeEnd(Address addr, llvm::Value *size) 500 : Addr(addr.getPointer()), Size(size) {} 501 502 void Emit(CodeGenFunction &CGF, Flags flags) override { 503 CGF.EmitLifetimeEnd(Size, Addr); 504 } 505 }; 506 507 /// Header for data within LifetimeExtendedCleanupStack. 508 struct LifetimeExtendedCleanupHeader { 509 /// The size of the following cleanup object. 510 unsigned Size; 511 /// The kind of cleanup to push: a value from the CleanupKind enumeration. 512 unsigned Kind : 31; 513 /// Whether this is a conditional cleanup. 514 unsigned IsConditional : 1; 515 516 size_t getSize() const { return Size; } 517 CleanupKind getKind() const { return (CleanupKind)Kind; } 518 bool isConditional() const { return IsConditional; } 519 }; 520 521 /// i32s containing the indexes of the cleanup destinations. 522 Address NormalCleanupDest = Address::invalid(); 523 524 unsigned NextCleanupDestIndex = 1; 525 526 /// FirstBlockInfo - The head of a singly-linked-list of block layouts. 527 CGBlockInfo *FirstBlockInfo = nullptr; 528 529 /// EHResumeBlock - Unified block containing a call to llvm.eh.resume. 530 llvm::BasicBlock *EHResumeBlock = nullptr; 531 532 /// The exception slot. All landing pads write the current exception pointer 533 /// into this alloca. 534 llvm::Value *ExceptionSlot = nullptr; 535 536 /// The selector slot. Under the MandatoryCleanup model, all landing pads 537 /// write the current selector value into this alloca. 538 llvm::AllocaInst *EHSelectorSlot = nullptr; 539 540 /// A stack of exception code slots. Entering an __except block pushes a slot 541 /// on the stack and leaving pops one. The __exception_code() intrinsic loads 542 /// a value from the top of the stack. 543 SmallVector<Address, 1> SEHCodeSlotStack; 544 545 /// Value returned by __exception_info intrinsic. 546 llvm::Value *SEHInfo = nullptr; 547 548 /// Emits a landing pad for the current EH stack. 549 llvm::BasicBlock *EmitLandingPad(); 550 551 llvm::BasicBlock *getInvokeDestImpl(); 552 553 template <class T> 554 typename DominatingValue<T>::saved_type saveValueInCond(T value) { 555 return DominatingValue<T>::save(*this, value); 556 } 557 558 public: 559 /// ObjCEHValueStack - Stack of Objective-C exception values, used for 560 /// rethrows. 561 SmallVector<llvm::Value*, 8> ObjCEHValueStack; 562 563 /// A class controlling the emission of a finally block. 564 class FinallyInfo { 565 /// Where the catchall's edge through the cleanup should go. 566 JumpDest RethrowDest; 567 568 /// A function to call to enter the catch. 569 llvm::Constant *BeginCatchFn; 570 571 /// An i1 variable indicating whether or not the @finally is 572 /// running for an exception. 573 llvm::AllocaInst *ForEHVar; 574 575 /// An i8* variable into which the exception pointer to rethrow 576 /// has been saved. 577 llvm::AllocaInst *SavedExnVar; 578 579 public: 580 void enter(CodeGenFunction &CGF, const Stmt *Finally, 581 llvm::Constant *beginCatchFn, llvm::Constant *endCatchFn, 582 llvm::Constant *rethrowFn); 583 void exit(CodeGenFunction &CGF); 584 }; 585 586 /// Returns true inside SEH __try blocks. 587 bool isSEHTryScope() const { return !SEHTryEpilogueStack.empty(); } 588 589 /// Returns true while emitting a cleanuppad. 590 bool isCleanupPadScope() const { 591 return CurrentFuncletPad && isa<llvm::CleanupPadInst>(CurrentFuncletPad); 592 } 593 594 /// pushFullExprCleanup - Push a cleanup to be run at the end of the 595 /// current full-expression. Safe against the possibility that 596 /// we're currently inside a conditionally-evaluated expression. 597 template <class T, class... As> 598 void pushFullExprCleanup(CleanupKind kind, As... A) { 599 // If we're not in a conditional branch, or if none of the 600 // arguments requires saving, then use the unconditional cleanup. 601 if (!isInConditionalBranch()) 602 return EHStack.pushCleanup<T>(kind, A...); 603 604 // Stash values in a tuple so we can guarantee the order of saves. 605 typedef std::tuple<typename DominatingValue<As>::saved_type...> SavedTuple; 606 SavedTuple Saved{saveValueInCond(A)...}; 607 608 typedef EHScopeStack::ConditionalCleanup<T, As...> CleanupType; 609 EHStack.pushCleanupTuple<CleanupType>(kind, Saved); 610 initFullExprCleanup(); 611 } 612 613 /// Queue a cleanup to be pushed after finishing the current 614 /// full-expression. 615 template <class T, class... As> 616 void pushCleanupAfterFullExpr(CleanupKind Kind, As... A) { 617 if (!isInConditionalBranch()) 618 return pushCleanupAfterFullExprImpl<T>(Kind, Address::invalid(), A...); 619 620 Address ActiveFlag = createCleanupActiveFlag(); 621 assert(!DominatingValue<Address>::needsSaving(ActiveFlag) && 622 "cleanup active flag should never need saving"); 623 624 typedef std::tuple<typename DominatingValue<As>::saved_type...> SavedTuple; 625 SavedTuple Saved{saveValueInCond(A)...}; 626 627 typedef EHScopeStack::ConditionalCleanup<T, As...> CleanupType; 628 pushCleanupAfterFullExprImpl<CleanupType>(Kind, ActiveFlag, Saved); 629 } 630 631 template <class T, class... As> 632 void pushCleanupAfterFullExprImpl(CleanupKind Kind, Address ActiveFlag, 633 As... A) { 634 LifetimeExtendedCleanupHeader Header = {sizeof(T), Kind, 635 ActiveFlag.isValid()}; 636 637 size_t OldSize = LifetimeExtendedCleanupStack.size(); 638 LifetimeExtendedCleanupStack.resize( 639 LifetimeExtendedCleanupStack.size() + sizeof(Header) + Header.Size + 640 (Header.IsConditional ? sizeof(ActiveFlag) : 0)); 641 642 static_assert(sizeof(Header) % alignof(T) == 0, 643 "Cleanup will be allocated on misaligned address"); 644 char *Buffer = &LifetimeExtendedCleanupStack[OldSize]; 645 new (Buffer) LifetimeExtendedCleanupHeader(Header); 646 new (Buffer + sizeof(Header)) T(A...); 647 if (Header.IsConditional) 648 new (Buffer + sizeof(Header) + sizeof(T)) Address(ActiveFlag); 649 } 650 651 /// Set up the last cleanup that was pushed as a conditional 652 /// full-expression cleanup. 653 void initFullExprCleanup() { 654 initFullExprCleanupWithFlag(createCleanupActiveFlag()); 655 } 656 657 void initFullExprCleanupWithFlag(Address ActiveFlag); 658 Address createCleanupActiveFlag(); 659 660 /// PushDestructorCleanup - Push a cleanup to call the 661 /// complete-object destructor of an object of the given type at the 662 /// given address. Does nothing if T is not a C++ class type with a 663 /// non-trivial destructor. 664 void PushDestructorCleanup(QualType T, Address Addr); 665 666 /// PushDestructorCleanup - Push a cleanup to call the 667 /// complete-object variant of the given destructor on the object at 668 /// the given address. 669 void PushDestructorCleanup(const CXXDestructorDecl *Dtor, Address Addr); 670 671 /// PopCleanupBlock - Will pop the cleanup entry on the stack and 672 /// process all branch fixups. 673 void PopCleanupBlock(bool FallThroughIsBranchThrough = false); 674 675 /// DeactivateCleanupBlock - Deactivates the given cleanup block. 676 /// The block cannot be reactivated. Pops it if it's the top of the 677 /// stack. 678 /// 679 /// \param DominatingIP - An instruction which is known to 680 /// dominate the current IP (if set) and which lies along 681 /// all paths of execution between the current IP and the 682 /// the point at which the cleanup comes into scope. 683 void DeactivateCleanupBlock(EHScopeStack::stable_iterator Cleanup, 684 llvm::Instruction *DominatingIP); 685 686 /// ActivateCleanupBlock - Activates an initially-inactive cleanup. 687 /// Cannot be used to resurrect a deactivated cleanup. 688 /// 689 /// \param DominatingIP - An instruction which is known to 690 /// dominate the current IP (if set) and which lies along 691 /// all paths of execution between the current IP and the 692 /// the point at which the cleanup comes into scope. 693 void ActivateCleanupBlock(EHScopeStack::stable_iterator Cleanup, 694 llvm::Instruction *DominatingIP); 695 696 /// Enters a new scope for capturing cleanups, all of which 697 /// will be executed once the scope is exited. 698 class RunCleanupsScope { 699 EHScopeStack::stable_iterator CleanupStackDepth, OldCleanupScopeDepth; 700 size_t LifetimeExtendedCleanupStackSize; 701 bool OldDidCallStackSave; 702 protected: 703 bool PerformCleanup; 704 private: 705 706 RunCleanupsScope(const RunCleanupsScope &) = delete; 707 void operator=(const RunCleanupsScope &) = delete; 708 709 protected: 710 CodeGenFunction& CGF; 711 712 public: 713 /// Enter a new cleanup scope. 714 explicit RunCleanupsScope(CodeGenFunction &CGF) 715 : PerformCleanup(true), CGF(CGF) 716 { 717 CleanupStackDepth = CGF.EHStack.stable_begin(); 718 LifetimeExtendedCleanupStackSize = 719 CGF.LifetimeExtendedCleanupStack.size(); 720 OldDidCallStackSave = CGF.DidCallStackSave; 721 CGF.DidCallStackSave = false; 722 OldCleanupScopeDepth = CGF.CurrentCleanupScopeDepth; 723 CGF.CurrentCleanupScopeDepth = CleanupStackDepth; 724 } 725 726 /// Exit this cleanup scope, emitting any accumulated cleanups. 727 ~RunCleanupsScope() { 728 if (PerformCleanup) 729 ForceCleanup(); 730 } 731 732 /// Determine whether this scope requires any cleanups. 733 bool requiresCleanups() const { 734 return CGF.EHStack.stable_begin() != CleanupStackDepth; 735 } 736 737 /// Force the emission of cleanups now, instead of waiting 738 /// until this object is destroyed. 739 /// \param ValuesToReload - A list of values that need to be available at 740 /// the insertion point after cleanup emission. If cleanup emission created 741 /// a shared cleanup block, these value pointers will be rewritten. 742 /// Otherwise, they not will be modified. 743 void ForceCleanup(std::initializer_list<llvm::Value**> ValuesToReload = {}) { 744 assert(PerformCleanup && "Already forced cleanup"); 745 CGF.DidCallStackSave = OldDidCallStackSave; 746 CGF.PopCleanupBlocks(CleanupStackDepth, LifetimeExtendedCleanupStackSize, 747 ValuesToReload); 748 PerformCleanup = false; 749 CGF.CurrentCleanupScopeDepth = OldCleanupScopeDepth; 750 } 751 }; 752 753 // Cleanup stack depth of the RunCleanupsScope that was pushed most recently. 754 EHScopeStack::stable_iterator CurrentCleanupScopeDepth = 755 EHScopeStack::stable_end(); 756 757 class LexicalScope : public RunCleanupsScope { 758 SourceRange Range; 759 SmallVector<const LabelDecl*, 4> Labels; 760 LexicalScope *ParentScope; 761 762 LexicalScope(const LexicalScope &) = delete; 763 void operator=(const LexicalScope &) = delete; 764 765 public: 766 /// Enter a new cleanup scope. 767 explicit LexicalScope(CodeGenFunction &CGF, SourceRange Range) 768 : RunCleanupsScope(CGF), Range(Range), ParentScope(CGF.CurLexicalScope) { 769 CGF.CurLexicalScope = this; 770 if (CGDebugInfo *DI = CGF.getDebugInfo()) 771 DI->EmitLexicalBlockStart(CGF.Builder, Range.getBegin()); 772 } 773 774 void addLabel(const LabelDecl *label) { 775 assert(PerformCleanup && "adding label to dead scope?"); 776 Labels.push_back(label); 777 } 778 779 /// Exit this cleanup scope, emitting any accumulated 780 /// cleanups. 781 ~LexicalScope() { 782 if (CGDebugInfo *DI = CGF.getDebugInfo()) 783 DI->EmitLexicalBlockEnd(CGF.Builder, Range.getEnd()); 784 785 // If we should perform a cleanup, force them now. Note that 786 // this ends the cleanup scope before rescoping any labels. 787 if (PerformCleanup) { 788 ApplyDebugLocation DL(CGF, Range.getEnd()); 789 ForceCleanup(); 790 } 791 } 792 793 /// Force the emission of cleanups now, instead of waiting 794 /// until this object is destroyed. 795 void ForceCleanup() { 796 CGF.CurLexicalScope = ParentScope; 797 RunCleanupsScope::ForceCleanup(); 798 799 if (!Labels.empty()) 800 rescopeLabels(); 801 } 802 803 bool hasLabels() const { 804 return !Labels.empty(); 805 } 806 807 void rescopeLabels(); 808 }; 809 810 typedef llvm::DenseMap<const Decl *, Address> DeclMapTy; 811 812 /// The class used to assign some variables some temporarily addresses. 813 class OMPMapVars { 814 DeclMapTy SavedLocals; 815 DeclMapTy SavedTempAddresses; 816 OMPMapVars(const OMPMapVars &) = delete; 817 void operator=(const OMPMapVars &) = delete; 818 819 public: 820 explicit OMPMapVars() = default; 821 ~OMPMapVars() { 822 assert(SavedLocals.empty() && "Did not restored original addresses."); 823 }; 824 825 /// Sets the address of the variable \p LocalVD to be \p TempAddr in 826 /// function \p CGF. 827 /// \return true if at least one variable was set already, false otherwise. 828 bool setVarAddr(CodeGenFunction &CGF, const VarDecl *LocalVD, 829 Address TempAddr) { 830 LocalVD = LocalVD->getCanonicalDecl(); 831 // Only save it once. 832 if (SavedLocals.count(LocalVD)) return false; 833 834 // Copy the existing local entry to SavedLocals. 835 auto it = CGF.LocalDeclMap.find(LocalVD); 836 if (it != CGF.LocalDeclMap.end()) 837 SavedLocals.try_emplace(LocalVD, it->second); 838 else 839 SavedLocals.try_emplace(LocalVD, Address::invalid()); 840 841 // Generate the private entry. 842 QualType VarTy = LocalVD->getType(); 843 if (VarTy->isReferenceType()) { 844 Address Temp = CGF.CreateMemTemp(VarTy); 845 CGF.Builder.CreateStore(TempAddr.getPointer(), Temp); 846 TempAddr = Temp; 847 } 848 SavedTempAddresses.try_emplace(LocalVD, TempAddr); 849 850 return true; 851 } 852 853 /// Applies new addresses to the list of the variables. 854 /// \return true if at least one variable is using new address, false 855 /// otherwise. 856 bool apply(CodeGenFunction &CGF) { 857 copyInto(SavedTempAddresses, CGF.LocalDeclMap); 858 SavedTempAddresses.clear(); 859 return !SavedLocals.empty(); 860 } 861 862 /// Restores original addresses of the variables. 863 void restore(CodeGenFunction &CGF) { 864 if (!SavedLocals.empty()) { 865 copyInto(SavedLocals, CGF.LocalDeclMap); 866 SavedLocals.clear(); 867 } 868 } 869 870 private: 871 /// Copy all the entries in the source map over the corresponding 872 /// entries in the destination, which must exist. 873 static void copyInto(const DeclMapTy &Src, DeclMapTy &Dest) { 874 for (auto &Pair : Src) { 875 if (!Pair.second.isValid()) { 876 Dest.erase(Pair.first); 877 continue; 878 } 879 880 auto I = Dest.find(Pair.first); 881 if (I != Dest.end()) 882 I->second = Pair.second; 883 else 884 Dest.insert(Pair); 885 } 886 } 887 }; 888 889 /// The scope used to remap some variables as private in the OpenMP loop body 890 /// (or other captured region emitted without outlining), and to restore old 891 /// vars back on exit. 892 class OMPPrivateScope : public RunCleanupsScope { 893 OMPMapVars MappedVars; 894 OMPPrivateScope(const OMPPrivateScope &) = delete; 895 void operator=(const OMPPrivateScope &) = delete; 896 897 public: 898 /// Enter a new OpenMP private scope. 899 explicit OMPPrivateScope(CodeGenFunction &CGF) : RunCleanupsScope(CGF) {} 900 901 /// Registers \p LocalVD variable as a private and apply \p PrivateGen 902 /// function for it to generate corresponding private variable. \p 903 /// PrivateGen returns an address of the generated private variable. 904 /// \return true if the variable is registered as private, false if it has 905 /// been privatized already. 906 bool addPrivate(const VarDecl *LocalVD, 907 const llvm::function_ref<Address()> PrivateGen) { 908 assert(PerformCleanup && "adding private to dead scope"); 909 return MappedVars.setVarAddr(CGF, LocalVD, PrivateGen()); 910 } 911 912 /// Privatizes local variables previously registered as private. 913 /// Registration is separate from the actual privatization to allow 914 /// initializers use values of the original variables, not the private one. 915 /// This is important, for example, if the private variable is a class 916 /// variable initialized by a constructor that references other private 917 /// variables. But at initialization original variables must be used, not 918 /// private copies. 919 /// \return true if at least one variable was privatized, false otherwise. 920 bool Privatize() { return MappedVars.apply(CGF); } 921 922 void ForceCleanup() { 923 RunCleanupsScope::ForceCleanup(); 924 MappedVars.restore(CGF); 925 } 926 927 /// Exit scope - all the mapped variables are restored. 928 ~OMPPrivateScope() { 929 if (PerformCleanup) 930 ForceCleanup(); 931 } 932 933 /// Checks if the global variable is captured in current function. 934 bool isGlobalVarCaptured(const VarDecl *VD) const { 935 VD = VD->getCanonicalDecl(); 936 return !VD->isLocalVarDeclOrParm() && CGF.LocalDeclMap.count(VD) > 0; 937 } 938 }; 939 940 /// Takes the old cleanup stack size and emits the cleanup blocks 941 /// that have been added. 942 void 943 PopCleanupBlocks(EHScopeStack::stable_iterator OldCleanupStackSize, 944 std::initializer_list<llvm::Value **> ValuesToReload = {}); 945 946 /// Takes the old cleanup stack size and emits the cleanup blocks 947 /// that have been added, then adds all lifetime-extended cleanups from 948 /// the given position to the stack. 949 void 950 PopCleanupBlocks(EHScopeStack::stable_iterator OldCleanupStackSize, 951 size_t OldLifetimeExtendedStackSize, 952 std::initializer_list<llvm::Value **> ValuesToReload = {}); 953 954 void ResolveBranchFixups(llvm::BasicBlock *Target); 955 956 /// The given basic block lies in the current EH scope, but may be a 957 /// target of a potentially scope-crossing jump; get a stable handle 958 /// to which we can perform this jump later. 959 JumpDest getJumpDestInCurrentScope(llvm::BasicBlock *Target) { 960 return JumpDest(Target, 961 EHStack.getInnermostNormalCleanup(), 962 NextCleanupDestIndex++); 963 } 964 965 /// The given basic block lies in the current EH scope, but may be a 966 /// target of a potentially scope-crossing jump; get a stable handle 967 /// to which we can perform this jump later. 968 JumpDest getJumpDestInCurrentScope(StringRef Name = StringRef()) { 969 return getJumpDestInCurrentScope(createBasicBlock(Name)); 970 } 971 972 /// EmitBranchThroughCleanup - Emit a branch from the current insert 973 /// block through the normal cleanup handling code (if any) and then 974 /// on to \arg Dest. 975 void EmitBranchThroughCleanup(JumpDest Dest); 976 977 /// isObviouslyBranchWithoutCleanups - Return true if a branch to the 978 /// specified destination obviously has no cleanups to run. 'false' is always 979 /// a conservatively correct answer for this method. 980 bool isObviouslyBranchWithoutCleanups(JumpDest Dest) const; 981 982 /// popCatchScope - Pops the catch scope at the top of the EHScope 983 /// stack, emitting any required code (other than the catch handlers 984 /// themselves). 985 void popCatchScope(); 986 987 llvm::BasicBlock *getEHResumeBlock(bool isCleanup); 988 llvm::BasicBlock *getEHDispatchBlock(EHScopeStack::stable_iterator scope); 989 llvm::BasicBlock * 990 getFuncletEHDispatchBlock(EHScopeStack::stable_iterator scope); 991 992 /// An object to manage conditionally-evaluated expressions. 993 class ConditionalEvaluation { 994 llvm::BasicBlock *StartBB; 995 996 public: 997 ConditionalEvaluation(CodeGenFunction &CGF) 998 : StartBB(CGF.Builder.GetInsertBlock()) {} 999 1000 void begin(CodeGenFunction &CGF) { 1001 assert(CGF.OutermostConditional != this); 1002 if (!CGF.OutermostConditional) 1003 CGF.OutermostConditional = this; 1004 } 1005 1006 void end(CodeGenFunction &CGF) { 1007 assert(CGF.OutermostConditional != nullptr); 1008 if (CGF.OutermostConditional == this) 1009 CGF.OutermostConditional = nullptr; 1010 } 1011 1012 /// Returns a block which will be executed prior to each 1013 /// evaluation of the conditional code. 1014 llvm::BasicBlock *getStartingBlock() const { 1015 return StartBB; 1016 } 1017 }; 1018 1019 /// isInConditionalBranch - Return true if we're currently emitting 1020 /// one branch or the other of a conditional expression. 1021 bool isInConditionalBranch() const { return OutermostConditional != nullptr; } 1022 1023 void setBeforeOutermostConditional(llvm::Value *value, Address addr) { 1024 assert(isInConditionalBranch()); 1025 llvm::BasicBlock *block = OutermostConditional->getStartingBlock(); 1026 auto store = new llvm::StoreInst(value, addr.getPointer(), &block->back()); 1027 store->setAlignment(addr.getAlignment().getQuantity()); 1028 } 1029 1030 /// An RAII object to record that we're evaluating a statement 1031 /// expression. 1032 class StmtExprEvaluation { 1033 CodeGenFunction &CGF; 1034 1035 /// We have to save the outermost conditional: cleanups in a 1036 /// statement expression aren't conditional just because the 1037 /// StmtExpr is. 1038 ConditionalEvaluation *SavedOutermostConditional; 1039 1040 public: 1041 StmtExprEvaluation(CodeGenFunction &CGF) 1042 : CGF(CGF), SavedOutermostConditional(CGF.OutermostConditional) { 1043 CGF.OutermostConditional = nullptr; 1044 } 1045 1046 ~StmtExprEvaluation() { 1047 CGF.OutermostConditional = SavedOutermostConditional; 1048 CGF.EnsureInsertPoint(); 1049 } 1050 }; 1051 1052 /// An object which temporarily prevents a value from being 1053 /// destroyed by aggressive peephole optimizations that assume that 1054 /// all uses of a value have been realized in the IR. 1055 class PeepholeProtection { 1056 llvm::Instruction *Inst; 1057 friend class CodeGenFunction; 1058 1059 public: 1060 PeepholeProtection() : Inst(nullptr) {} 1061 }; 1062 1063 /// A non-RAII class containing all the information about a bound 1064 /// opaque value. OpaqueValueMapping, below, is a RAII wrapper for 1065 /// this which makes individual mappings very simple; using this 1066 /// class directly is useful when you have a variable number of 1067 /// opaque values or don't want the RAII functionality for some 1068 /// reason. 1069 class OpaqueValueMappingData { 1070 const OpaqueValueExpr *OpaqueValue; 1071 bool BoundLValue; 1072 CodeGenFunction::PeepholeProtection Protection; 1073 1074 OpaqueValueMappingData(const OpaqueValueExpr *ov, 1075 bool boundLValue) 1076 : OpaqueValue(ov), BoundLValue(boundLValue) {} 1077 public: 1078 OpaqueValueMappingData() : OpaqueValue(nullptr) {} 1079 1080 static bool shouldBindAsLValue(const Expr *expr) { 1081 // gl-values should be bound as l-values for obvious reasons. 1082 // Records should be bound as l-values because IR generation 1083 // always keeps them in memory. Expressions of function type 1084 // act exactly like l-values but are formally required to be 1085 // r-values in C. 1086 return expr->isGLValue() || 1087 expr->getType()->isFunctionType() || 1088 hasAggregateEvaluationKind(expr->getType()); 1089 } 1090 1091 static OpaqueValueMappingData bind(CodeGenFunction &CGF, 1092 const OpaqueValueExpr *ov, 1093 const Expr *e) { 1094 if (shouldBindAsLValue(ov)) 1095 return bind(CGF, ov, CGF.EmitLValue(e)); 1096 return bind(CGF, ov, CGF.EmitAnyExpr(e)); 1097 } 1098 1099 static OpaqueValueMappingData bind(CodeGenFunction &CGF, 1100 const OpaqueValueExpr *ov, 1101 const LValue &lv) { 1102 assert(shouldBindAsLValue(ov)); 1103 CGF.OpaqueLValues.insert(std::make_pair(ov, lv)); 1104 return OpaqueValueMappingData(ov, true); 1105 } 1106 1107 static OpaqueValueMappingData bind(CodeGenFunction &CGF, 1108 const OpaqueValueExpr *ov, 1109 const RValue &rv) { 1110 assert(!shouldBindAsLValue(ov)); 1111 CGF.OpaqueRValues.insert(std::make_pair(ov, rv)); 1112 1113 OpaqueValueMappingData data(ov, false); 1114 1115 // Work around an extremely aggressive peephole optimization in 1116 // EmitScalarConversion which assumes that all other uses of a 1117 // value are extant. 1118 data.Protection = CGF.protectFromPeepholes(rv); 1119 1120 return data; 1121 } 1122 1123 bool isValid() const { return OpaqueValue != nullptr; } 1124 void clear() { OpaqueValue = nullptr; } 1125 1126 void unbind(CodeGenFunction &CGF) { 1127 assert(OpaqueValue && "no data to unbind!"); 1128 1129 if (BoundLValue) { 1130 CGF.OpaqueLValues.erase(OpaqueValue); 1131 } else { 1132 CGF.OpaqueRValues.erase(OpaqueValue); 1133 CGF.unprotectFromPeepholes(Protection); 1134 } 1135 } 1136 }; 1137 1138 /// An RAII object to set (and then clear) a mapping for an OpaqueValueExpr. 1139 class OpaqueValueMapping { 1140 CodeGenFunction &CGF; 1141 OpaqueValueMappingData Data; 1142 1143 public: 1144 static bool shouldBindAsLValue(const Expr *expr) { 1145 return OpaqueValueMappingData::shouldBindAsLValue(expr); 1146 } 1147 1148 /// Build the opaque value mapping for the given conditional 1149 /// operator if it's the GNU ?: extension. This is a common 1150 /// enough pattern that the convenience operator is really 1151 /// helpful. 1152 /// 1153 OpaqueValueMapping(CodeGenFunction &CGF, 1154 const AbstractConditionalOperator *op) : CGF(CGF) { 1155 if (isa<ConditionalOperator>(op)) 1156 // Leave Data empty. 1157 return; 1158 1159 const BinaryConditionalOperator *e = cast<BinaryConditionalOperator>(op); 1160 Data = OpaqueValueMappingData::bind(CGF, e->getOpaqueValue(), 1161 e->getCommon()); 1162 } 1163 1164 /// Build the opaque value mapping for an OpaqueValueExpr whose source 1165 /// expression is set to the expression the OVE represents. 1166 OpaqueValueMapping(CodeGenFunction &CGF, const OpaqueValueExpr *OV) 1167 : CGF(CGF) { 1168 if (OV) { 1169 assert(OV->getSourceExpr() && "wrong form of OpaqueValueMapping used " 1170 "for OVE with no source expression"); 1171 Data = OpaqueValueMappingData::bind(CGF, OV, OV->getSourceExpr()); 1172 } 1173 } 1174 1175 OpaqueValueMapping(CodeGenFunction &CGF, 1176 const OpaqueValueExpr *opaqueValue, 1177 LValue lvalue) 1178 : CGF(CGF), Data(OpaqueValueMappingData::bind(CGF, opaqueValue, lvalue)) { 1179 } 1180 1181 OpaqueValueMapping(CodeGenFunction &CGF, 1182 const OpaqueValueExpr *opaqueValue, 1183 RValue rvalue) 1184 : CGF(CGF), Data(OpaqueValueMappingData::bind(CGF, opaqueValue, rvalue)) { 1185 } 1186 1187 void pop() { 1188 Data.unbind(CGF); 1189 Data.clear(); 1190 } 1191 1192 ~OpaqueValueMapping() { 1193 if (Data.isValid()) Data.unbind(CGF); 1194 } 1195 }; 1196 1197 private: 1198 CGDebugInfo *DebugInfo; 1199 bool DisableDebugInfo = false; 1200 1201 /// DidCallStackSave - Whether llvm.stacksave has been called. Used to avoid 1202 /// calling llvm.stacksave for multiple VLAs in the same scope. 1203 bool DidCallStackSave = false; 1204 1205 /// IndirectBranch - The first time an indirect goto is seen we create a block 1206 /// with an indirect branch. Every time we see the address of a label taken, 1207 /// we add the label to the indirect goto. Every subsequent indirect goto is 1208 /// codegen'd as a jump to the IndirectBranch's basic block. 1209 llvm::IndirectBrInst *IndirectBranch = nullptr; 1210 1211 /// LocalDeclMap - This keeps track of the LLVM allocas or globals for local C 1212 /// decls. 1213 DeclMapTy LocalDeclMap; 1214 1215 // Keep track of the cleanups for callee-destructed parameters pushed to the 1216 // cleanup stack so that they can be deactivated later. 1217 llvm::DenseMap<const ParmVarDecl *, EHScopeStack::stable_iterator> 1218 CalleeDestructedParamCleanups; 1219 1220 /// SizeArguments - If a ParmVarDecl had the pass_object_size attribute, this 1221 /// will contain a mapping from said ParmVarDecl to its implicit "object_size" 1222 /// parameter. 1223 llvm::SmallDenseMap<const ParmVarDecl *, const ImplicitParamDecl *, 2> 1224 SizeArguments; 1225 1226 /// Track escaped local variables with auto storage. Used during SEH 1227 /// outlining to produce a call to llvm.localescape. 1228 llvm::DenseMap<llvm::AllocaInst *, int> EscapedLocals; 1229 1230 /// LabelMap - This keeps track of the LLVM basic block for each C label. 1231 llvm::DenseMap<const LabelDecl*, JumpDest> LabelMap; 1232 1233 // BreakContinueStack - This keeps track of where break and continue 1234 // statements should jump to. 1235 struct BreakContinue { 1236 BreakContinue(JumpDest Break, JumpDest Continue) 1237 : BreakBlock(Break), ContinueBlock(Continue) {} 1238 1239 JumpDest BreakBlock; 1240 JumpDest ContinueBlock; 1241 }; 1242 SmallVector<BreakContinue, 8> BreakContinueStack; 1243 1244 /// Handles cancellation exit points in OpenMP-related constructs. 1245 class OpenMPCancelExitStack { 1246 /// Tracks cancellation exit point and join point for cancel-related exit 1247 /// and normal exit. 1248 struct CancelExit { 1249 CancelExit() = default; 1250 CancelExit(OpenMPDirectiveKind Kind, JumpDest ExitBlock, 1251 JumpDest ContBlock) 1252 : Kind(Kind), ExitBlock(ExitBlock), ContBlock(ContBlock) {} 1253 OpenMPDirectiveKind Kind = OMPD_unknown; 1254 /// true if the exit block has been emitted already by the special 1255 /// emitExit() call, false if the default codegen is used. 1256 bool HasBeenEmitted = false; 1257 JumpDest ExitBlock; 1258 JumpDest ContBlock; 1259 }; 1260 1261 SmallVector<CancelExit, 8> Stack; 1262 1263 public: 1264 OpenMPCancelExitStack() : Stack(1) {} 1265 ~OpenMPCancelExitStack() = default; 1266 /// Fetches the exit block for the current OpenMP construct. 1267 JumpDest getExitBlock() const { return Stack.back().ExitBlock; } 1268 /// Emits exit block with special codegen procedure specific for the related 1269 /// OpenMP construct + emits code for normal construct cleanup. 1270 void emitExit(CodeGenFunction &CGF, OpenMPDirectiveKind Kind, 1271 const llvm::function_ref<void(CodeGenFunction &)> CodeGen) { 1272 if (Stack.back().Kind == Kind && getExitBlock().isValid()) { 1273 assert(CGF.getOMPCancelDestination(Kind).isValid()); 1274 assert(CGF.HaveInsertPoint()); 1275 assert(!Stack.back().HasBeenEmitted); 1276 auto IP = CGF.Builder.saveAndClearIP(); 1277 CGF.EmitBlock(Stack.back().ExitBlock.getBlock()); 1278 CodeGen(CGF); 1279 CGF.EmitBranch(Stack.back().ContBlock.getBlock()); 1280 CGF.Builder.restoreIP(IP); 1281 Stack.back().HasBeenEmitted = true; 1282 } 1283 CodeGen(CGF); 1284 } 1285 /// Enter the cancel supporting \a Kind construct. 1286 /// \param Kind OpenMP directive that supports cancel constructs. 1287 /// \param HasCancel true, if the construct has inner cancel directive, 1288 /// false otherwise. 1289 void enter(CodeGenFunction &CGF, OpenMPDirectiveKind Kind, bool HasCancel) { 1290 Stack.push_back({Kind, 1291 HasCancel ? CGF.getJumpDestInCurrentScope("cancel.exit") 1292 : JumpDest(), 1293 HasCancel ? CGF.getJumpDestInCurrentScope("cancel.cont") 1294 : JumpDest()}); 1295 } 1296 /// Emits default exit point for the cancel construct (if the special one 1297 /// has not be used) + join point for cancel/normal exits. 1298 void exit(CodeGenFunction &CGF) { 1299 if (getExitBlock().isValid()) { 1300 assert(CGF.getOMPCancelDestination(Stack.back().Kind).isValid()); 1301 bool HaveIP = CGF.HaveInsertPoint(); 1302 if (!Stack.back().HasBeenEmitted) { 1303 if (HaveIP) 1304 CGF.EmitBranchThroughCleanup(Stack.back().ContBlock); 1305 CGF.EmitBlock(Stack.back().ExitBlock.getBlock()); 1306 CGF.EmitBranchThroughCleanup(Stack.back().ContBlock); 1307 } 1308 CGF.EmitBlock(Stack.back().ContBlock.getBlock()); 1309 if (!HaveIP) { 1310 CGF.Builder.CreateUnreachable(); 1311 CGF.Builder.ClearInsertionPoint(); 1312 } 1313 } 1314 Stack.pop_back(); 1315 } 1316 }; 1317 OpenMPCancelExitStack OMPCancelStack; 1318 1319 CodeGenPGO PGO; 1320 1321 /// Calculate branch weights appropriate for PGO data 1322 llvm::MDNode *createProfileWeights(uint64_t TrueCount, uint64_t FalseCount); 1323 llvm::MDNode *createProfileWeights(ArrayRef<uint64_t> Weights); 1324 llvm::MDNode *createProfileWeightsForLoop(const Stmt *Cond, 1325 uint64_t LoopCount); 1326 1327 public: 1328 /// Increment the profiler's counter for the given statement by \p StepV. 1329 /// If \p StepV is null, the default increment is 1. 1330 void incrementProfileCounter(const Stmt *S, llvm::Value *StepV = nullptr) { 1331 if (CGM.getCodeGenOpts().hasProfileClangInstr()) 1332 PGO.emitCounterIncrement(Builder, S, StepV); 1333 PGO.setCurrentStmt(S); 1334 } 1335 1336 /// Get the profiler's count for the given statement. 1337 uint64_t getProfileCount(const Stmt *S) { 1338 Optional<uint64_t> Count = PGO.getStmtCount(S); 1339 if (!Count.hasValue()) 1340 return 0; 1341 return *Count; 1342 } 1343 1344 /// Set the profiler's current count. 1345 void setCurrentProfileCount(uint64_t Count) { 1346 PGO.setCurrentRegionCount(Count); 1347 } 1348 1349 /// Get the profiler's current count. This is generally the count for the most 1350 /// recently incremented counter. 1351 uint64_t getCurrentProfileCount() { 1352 return PGO.getCurrentRegionCount(); 1353 } 1354 1355 private: 1356 1357 /// SwitchInsn - This is nearest current switch instruction. It is null if 1358 /// current context is not in a switch. 1359 llvm::SwitchInst *SwitchInsn = nullptr; 1360 /// The branch weights of SwitchInsn when doing instrumentation based PGO. 1361 SmallVector<uint64_t, 16> *SwitchWeights = nullptr; 1362 1363 /// CaseRangeBlock - This block holds if condition check for last case 1364 /// statement range in current switch instruction. 1365 llvm::BasicBlock *CaseRangeBlock = nullptr; 1366 1367 /// OpaqueLValues - Keeps track of the current set of opaque value 1368 /// expressions. 1369 llvm::DenseMap<const OpaqueValueExpr *, LValue> OpaqueLValues; 1370 llvm::DenseMap<const OpaqueValueExpr *, RValue> OpaqueRValues; 1371 1372 // VLASizeMap - This keeps track of the associated size for each VLA type. 1373 // We track this by the size expression rather than the type itself because 1374 // in certain situations, like a const qualifier applied to an VLA typedef, 1375 // multiple VLA types can share the same size expression. 1376 // FIXME: Maybe this could be a stack of maps that is pushed/popped as we 1377 // enter/leave scopes. 1378 llvm::DenseMap<const Expr*, llvm::Value*> VLASizeMap; 1379 1380 /// A block containing a single 'unreachable' instruction. Created 1381 /// lazily by getUnreachableBlock(). 1382 llvm::BasicBlock *UnreachableBlock = nullptr; 1383 1384 /// Counts of the number return expressions in the function. 1385 unsigned NumReturnExprs = 0; 1386 1387 /// Count the number of simple (constant) return expressions in the function. 1388 unsigned NumSimpleReturnExprs = 0; 1389 1390 /// The last regular (non-return) debug location (breakpoint) in the function. 1391 SourceLocation LastStopPoint; 1392 1393 public: 1394 /// A scope within which we are constructing the fields of an object which 1395 /// might use a CXXDefaultInitExpr. This stashes away a 'this' value to use 1396 /// if we need to evaluate a CXXDefaultInitExpr within the evaluation. 1397 class FieldConstructionScope { 1398 public: 1399 FieldConstructionScope(CodeGenFunction &CGF, Address This) 1400 : CGF(CGF), OldCXXDefaultInitExprThis(CGF.CXXDefaultInitExprThis) { 1401 CGF.CXXDefaultInitExprThis = This; 1402 } 1403 ~FieldConstructionScope() { 1404 CGF.CXXDefaultInitExprThis = OldCXXDefaultInitExprThis; 1405 } 1406 1407 private: 1408 CodeGenFunction &CGF; 1409 Address OldCXXDefaultInitExprThis; 1410 }; 1411 1412 /// The scope of a CXXDefaultInitExpr. Within this scope, the value of 'this' 1413 /// is overridden to be the object under construction. 1414 class CXXDefaultInitExprScope { 1415 public: 1416 CXXDefaultInitExprScope(CodeGenFunction &CGF) 1417 : CGF(CGF), OldCXXThisValue(CGF.CXXThisValue), 1418 OldCXXThisAlignment(CGF.CXXThisAlignment) { 1419 CGF.CXXThisValue = CGF.CXXDefaultInitExprThis.getPointer(); 1420 CGF.CXXThisAlignment = CGF.CXXDefaultInitExprThis.getAlignment(); 1421 } 1422 ~CXXDefaultInitExprScope() { 1423 CGF.CXXThisValue = OldCXXThisValue; 1424 CGF.CXXThisAlignment = OldCXXThisAlignment; 1425 } 1426 1427 public: 1428 CodeGenFunction &CGF; 1429 llvm::Value *OldCXXThisValue; 1430 CharUnits OldCXXThisAlignment; 1431 }; 1432 1433 /// The scope of an ArrayInitLoopExpr. Within this scope, the value of the 1434 /// current loop index is overridden. 1435 class ArrayInitLoopExprScope { 1436 public: 1437 ArrayInitLoopExprScope(CodeGenFunction &CGF, llvm::Value *Index) 1438 : CGF(CGF), OldArrayInitIndex(CGF.ArrayInitIndex) { 1439 CGF.ArrayInitIndex = Index; 1440 } 1441 ~ArrayInitLoopExprScope() { 1442 CGF.ArrayInitIndex = OldArrayInitIndex; 1443 } 1444 1445 private: 1446 CodeGenFunction &CGF; 1447 llvm::Value *OldArrayInitIndex; 1448 }; 1449 1450 class InlinedInheritingConstructorScope { 1451 public: 1452 InlinedInheritingConstructorScope(CodeGenFunction &CGF, GlobalDecl GD) 1453 : CGF(CGF), OldCurGD(CGF.CurGD), OldCurFuncDecl(CGF.CurFuncDecl), 1454 OldCurCodeDecl(CGF.CurCodeDecl), 1455 OldCXXABIThisDecl(CGF.CXXABIThisDecl), 1456 OldCXXABIThisValue(CGF.CXXABIThisValue), 1457 OldCXXThisValue(CGF.CXXThisValue), 1458 OldCXXABIThisAlignment(CGF.CXXABIThisAlignment), 1459 OldCXXThisAlignment(CGF.CXXThisAlignment), 1460 OldReturnValue(CGF.ReturnValue), OldFnRetTy(CGF.FnRetTy), 1461 OldCXXInheritedCtorInitExprArgs( 1462 std::move(CGF.CXXInheritedCtorInitExprArgs)) { 1463 CGF.CurGD = GD; 1464 CGF.CurFuncDecl = CGF.CurCodeDecl = 1465 cast<CXXConstructorDecl>(GD.getDecl()); 1466 CGF.CXXABIThisDecl = nullptr; 1467 CGF.CXXABIThisValue = nullptr; 1468 CGF.CXXThisValue = nullptr; 1469 CGF.CXXABIThisAlignment = CharUnits(); 1470 CGF.CXXThisAlignment = CharUnits(); 1471 CGF.ReturnValue = Address::invalid(); 1472 CGF.FnRetTy = QualType(); 1473 CGF.CXXInheritedCtorInitExprArgs.clear(); 1474 } 1475 ~InlinedInheritingConstructorScope() { 1476 CGF.CurGD = OldCurGD; 1477 CGF.CurFuncDecl = OldCurFuncDecl; 1478 CGF.CurCodeDecl = OldCurCodeDecl; 1479 CGF.CXXABIThisDecl = OldCXXABIThisDecl; 1480 CGF.CXXABIThisValue = OldCXXABIThisValue; 1481 CGF.CXXThisValue = OldCXXThisValue; 1482 CGF.CXXABIThisAlignment = OldCXXABIThisAlignment; 1483 CGF.CXXThisAlignment = OldCXXThisAlignment; 1484 CGF.ReturnValue = OldReturnValue; 1485 CGF.FnRetTy = OldFnRetTy; 1486 CGF.CXXInheritedCtorInitExprArgs = 1487 std::move(OldCXXInheritedCtorInitExprArgs); 1488 } 1489 1490 private: 1491 CodeGenFunction &CGF; 1492 GlobalDecl OldCurGD; 1493 const Decl *OldCurFuncDecl; 1494 const Decl *OldCurCodeDecl; 1495 ImplicitParamDecl *OldCXXABIThisDecl; 1496 llvm::Value *OldCXXABIThisValue; 1497 llvm::Value *OldCXXThisValue; 1498 CharUnits OldCXXABIThisAlignment; 1499 CharUnits OldCXXThisAlignment; 1500 Address OldReturnValue; 1501 QualType OldFnRetTy; 1502 CallArgList OldCXXInheritedCtorInitExprArgs; 1503 }; 1504 1505 private: 1506 /// CXXThisDecl - When generating code for a C++ member function, 1507 /// this will hold the implicit 'this' declaration. 1508 ImplicitParamDecl *CXXABIThisDecl = nullptr; 1509 llvm::Value *CXXABIThisValue = nullptr; 1510 llvm::Value *CXXThisValue = nullptr; 1511 CharUnits CXXABIThisAlignment; 1512 CharUnits CXXThisAlignment; 1513 1514 /// The value of 'this' to use when evaluating CXXDefaultInitExprs within 1515 /// this expression. 1516 Address CXXDefaultInitExprThis = Address::invalid(); 1517 1518 /// The current array initialization index when evaluating an 1519 /// ArrayInitIndexExpr within an ArrayInitLoopExpr. 1520 llvm::Value *ArrayInitIndex = nullptr; 1521 1522 /// The values of function arguments to use when evaluating 1523 /// CXXInheritedCtorInitExprs within this context. 1524 CallArgList CXXInheritedCtorInitExprArgs; 1525 1526 /// CXXStructorImplicitParamDecl - When generating code for a constructor or 1527 /// destructor, this will hold the implicit argument (e.g. VTT). 1528 ImplicitParamDecl *CXXStructorImplicitParamDecl = nullptr; 1529 llvm::Value *CXXStructorImplicitParamValue = nullptr; 1530 1531 /// OutermostConditional - Points to the outermost active 1532 /// conditional control. This is used so that we know if a 1533 /// temporary should be destroyed conditionally. 1534 ConditionalEvaluation *OutermostConditional = nullptr; 1535 1536 /// The current lexical scope. 1537 LexicalScope *CurLexicalScope = nullptr; 1538 1539 /// The current source location that should be used for exception 1540 /// handling code. 1541 SourceLocation CurEHLocation; 1542 1543 /// BlockByrefInfos - For each __block variable, contains 1544 /// information about the layout of the variable. 1545 llvm::DenseMap<const ValueDecl *, BlockByrefInfo> BlockByrefInfos; 1546 1547 /// Used by -fsanitize=nullability-return to determine whether the return 1548 /// value can be checked. 1549 llvm::Value *RetValNullabilityPrecondition = nullptr; 1550 1551 /// Check if -fsanitize=nullability-return instrumentation is required for 1552 /// this function. 1553 bool requiresReturnValueNullabilityCheck() const { 1554 return RetValNullabilityPrecondition; 1555 } 1556 1557 /// Used to store precise source locations for return statements by the 1558 /// runtime return value checks. 1559 Address ReturnLocation = Address::invalid(); 1560 1561 /// Check if the return value of this function requires sanitization. 1562 bool requiresReturnValueCheck() const { 1563 return requiresReturnValueNullabilityCheck() || 1564 (SanOpts.has(SanitizerKind::ReturnsNonnullAttribute) && 1565 CurCodeDecl && CurCodeDecl->getAttr<ReturnsNonNullAttr>()); 1566 } 1567 1568 llvm::BasicBlock *TerminateLandingPad = nullptr; 1569 llvm::BasicBlock *TerminateHandler = nullptr; 1570 llvm::BasicBlock *TrapBB = nullptr; 1571 1572 /// Terminate funclets keyed by parent funclet pad. 1573 llvm::MapVector<llvm::Value *, llvm::BasicBlock *> TerminateFunclets; 1574 1575 /// Largest vector width used in ths function. Will be used to create a 1576 /// function attribute. 1577 unsigned LargestVectorWidth = 0; 1578 1579 /// True if we need emit the life-time markers. 1580 const bool ShouldEmitLifetimeMarkers; 1581 1582 /// Add OpenCL kernel arg metadata and the kernel attribute metadata to 1583 /// the function metadata. 1584 void EmitOpenCLKernelMetadata(const FunctionDecl *FD, 1585 llvm::Function *Fn); 1586 1587 public: 1588 CodeGenFunction(CodeGenModule &cgm, bool suppressNewContext=false); 1589 ~CodeGenFunction(); 1590 1591 CodeGenTypes &getTypes() const { return CGM.getTypes(); } 1592 ASTContext &getContext() const { return CGM.getContext(); } 1593 CGDebugInfo *getDebugInfo() { 1594 if (DisableDebugInfo) 1595 return nullptr; 1596 return DebugInfo; 1597 } 1598 void disableDebugInfo() { DisableDebugInfo = true; } 1599 void enableDebugInfo() { DisableDebugInfo = false; } 1600 1601 bool shouldUseFusedARCCalls() { 1602 return CGM.getCodeGenOpts().OptimizationLevel == 0; 1603 } 1604 1605 const LangOptions &getLangOpts() const { return CGM.getLangOpts(); } 1606 1607 /// Returns a pointer to the function's exception object and selector slot, 1608 /// which is assigned in every landing pad. 1609 Address getExceptionSlot(); 1610 Address getEHSelectorSlot(); 1611 1612 /// Returns the contents of the function's exception object and selector 1613 /// slots. 1614 llvm::Value *getExceptionFromSlot(); 1615 llvm::Value *getSelectorFromSlot(); 1616 1617 Address getNormalCleanupDestSlot(); 1618 1619 llvm::BasicBlock *getUnreachableBlock() { 1620 if (!UnreachableBlock) { 1621 UnreachableBlock = createBasicBlock("unreachable"); 1622 new llvm::UnreachableInst(getLLVMContext(), UnreachableBlock); 1623 } 1624 return UnreachableBlock; 1625 } 1626 1627 llvm::BasicBlock *getInvokeDest() { 1628 if (!EHStack.requiresLandingPad()) return nullptr; 1629 return getInvokeDestImpl(); 1630 } 1631 1632 bool currentFunctionUsesSEHTry() const { return CurSEHParent != nullptr; } 1633 1634 const TargetInfo &getTarget() const { return Target; } 1635 llvm::LLVMContext &getLLVMContext() { return CGM.getLLVMContext(); } 1636 const TargetCodeGenInfo &getTargetHooks() const { 1637 return CGM.getTargetCodeGenInfo(); 1638 } 1639 1640 //===--------------------------------------------------------------------===// 1641 // Cleanups 1642 //===--------------------------------------------------------------------===// 1643 1644 typedef void Destroyer(CodeGenFunction &CGF, Address addr, QualType ty); 1645 1646 void pushIrregularPartialArrayCleanup(llvm::Value *arrayBegin, 1647 Address arrayEndPointer, 1648 QualType elementType, 1649 CharUnits elementAlignment, 1650 Destroyer *destroyer); 1651 void pushRegularPartialArrayCleanup(llvm::Value *arrayBegin, 1652 llvm::Value *arrayEnd, 1653 QualType elementType, 1654 CharUnits elementAlignment, 1655 Destroyer *destroyer); 1656 1657 void pushDestroy(QualType::DestructionKind dtorKind, 1658 Address addr, QualType type); 1659 void pushEHDestroy(QualType::DestructionKind dtorKind, 1660 Address addr, QualType type); 1661 void pushDestroy(CleanupKind kind, Address addr, QualType type, 1662 Destroyer *destroyer, bool useEHCleanupForArray); 1663 void pushLifetimeExtendedDestroy(CleanupKind kind, Address addr, 1664 QualType type, Destroyer *destroyer, 1665 bool useEHCleanupForArray); 1666 void pushCallObjectDeleteCleanup(const FunctionDecl *OperatorDelete, 1667 llvm::Value *CompletePtr, 1668 QualType ElementType); 1669 void pushStackRestore(CleanupKind kind, Address SPMem); 1670 void emitDestroy(Address addr, QualType type, Destroyer *destroyer, 1671 bool useEHCleanupForArray); 1672 llvm::Function *generateDestroyHelper(Address addr, QualType type, 1673 Destroyer *destroyer, 1674 bool useEHCleanupForArray, 1675 const VarDecl *VD); 1676 void emitArrayDestroy(llvm::Value *begin, llvm::Value *end, 1677 QualType elementType, CharUnits elementAlign, 1678 Destroyer *destroyer, 1679 bool checkZeroLength, bool useEHCleanup); 1680 1681 Destroyer *getDestroyer(QualType::DestructionKind destructionKind); 1682 1683 /// Determines whether an EH cleanup is required to destroy a type 1684 /// with the given destruction kind. 1685 bool needsEHCleanup(QualType::DestructionKind kind) { 1686 switch (kind) { 1687 case QualType::DK_none: 1688 return false; 1689 case QualType::DK_cxx_destructor: 1690 case QualType::DK_objc_weak_lifetime: 1691 case QualType::DK_nontrivial_c_struct: 1692 return getLangOpts().Exceptions; 1693 case QualType::DK_objc_strong_lifetime: 1694 return getLangOpts().Exceptions && 1695 CGM.getCodeGenOpts().ObjCAutoRefCountExceptions; 1696 } 1697 llvm_unreachable("bad destruction kind"); 1698 } 1699 1700 CleanupKind getCleanupKind(QualType::DestructionKind kind) { 1701 return (needsEHCleanup(kind) ? NormalAndEHCleanup : NormalCleanup); 1702 } 1703 1704 //===--------------------------------------------------------------------===// 1705 // Objective-C 1706 //===--------------------------------------------------------------------===// 1707 1708 void GenerateObjCMethod(const ObjCMethodDecl *OMD); 1709 1710 void StartObjCMethod(const ObjCMethodDecl *MD, const ObjCContainerDecl *CD); 1711 1712 /// GenerateObjCGetter - Synthesize an Objective-C property getter function. 1713 void GenerateObjCGetter(ObjCImplementationDecl *IMP, 1714 const ObjCPropertyImplDecl *PID); 1715 void generateObjCGetterBody(const ObjCImplementationDecl *classImpl, 1716 const ObjCPropertyImplDecl *propImpl, 1717 const ObjCMethodDecl *GetterMothodDecl, 1718 llvm::Constant *AtomicHelperFn); 1719 1720 void GenerateObjCCtorDtorMethod(ObjCImplementationDecl *IMP, 1721 ObjCMethodDecl *MD, bool ctor); 1722 1723 /// GenerateObjCSetter - Synthesize an Objective-C property setter function 1724 /// for the given property. 1725 void GenerateObjCSetter(ObjCImplementationDecl *IMP, 1726 const ObjCPropertyImplDecl *PID); 1727 void generateObjCSetterBody(const ObjCImplementationDecl *classImpl, 1728 const ObjCPropertyImplDecl *propImpl, 1729 llvm::Constant *AtomicHelperFn); 1730 1731 //===--------------------------------------------------------------------===// 1732 // Block Bits 1733 //===--------------------------------------------------------------------===// 1734 1735 /// Emit block literal. 1736 /// \return an LLVM value which is a pointer to a struct which contains 1737 /// information about the block, including the block invoke function, the 1738 /// captured variables, etc. 1739 llvm::Value *EmitBlockLiteral(const BlockExpr *); 1740 static void destroyBlockInfos(CGBlockInfo *info); 1741 1742 llvm::Function *GenerateBlockFunction(GlobalDecl GD, 1743 const CGBlockInfo &Info, 1744 const DeclMapTy &ldm, 1745 bool IsLambdaConversionToBlock, 1746 bool BuildGlobalBlock); 1747 1748 llvm::Constant *GenerateCopyHelperFunction(const CGBlockInfo &blockInfo); 1749 llvm::Constant *GenerateDestroyHelperFunction(const CGBlockInfo &blockInfo); 1750 llvm::Constant *GenerateObjCAtomicSetterCopyHelperFunction( 1751 const ObjCPropertyImplDecl *PID); 1752 llvm::Constant *GenerateObjCAtomicGetterCopyHelperFunction( 1753 const ObjCPropertyImplDecl *PID); 1754 llvm::Value *EmitBlockCopyAndAutorelease(llvm::Value *Block, QualType Ty); 1755 1756 void BuildBlockRelease(llvm::Value *DeclPtr, BlockFieldFlags flags); 1757 1758 class AutoVarEmission; 1759 1760 void emitByrefStructureInit(const AutoVarEmission &emission); 1761 void enterByrefCleanup(const AutoVarEmission &emission); 1762 1763 void setBlockContextParameter(const ImplicitParamDecl *D, unsigned argNum, 1764 llvm::Value *ptr); 1765 1766 Address LoadBlockStruct(); 1767 Address GetAddrOfBlockDecl(const VarDecl *var, bool ByRef); 1768 1769 /// BuildBlockByrefAddress - Computes the location of the 1770 /// data in a variable which is declared as __block. 1771 Address emitBlockByrefAddress(Address baseAddr, const VarDecl *V, 1772 bool followForward = true); 1773 Address emitBlockByrefAddress(Address baseAddr, 1774 const BlockByrefInfo &info, 1775 bool followForward, 1776 const llvm::Twine &name); 1777 1778 const BlockByrefInfo &getBlockByrefInfo(const VarDecl *var); 1779 1780 QualType BuildFunctionArgList(GlobalDecl GD, FunctionArgList &Args); 1781 1782 void GenerateCode(GlobalDecl GD, llvm::Function *Fn, 1783 const CGFunctionInfo &FnInfo); 1784 /// Emit code for the start of a function. 1785 /// \param Loc The location to be associated with the function. 1786 /// \param StartLoc The location of the function body. 1787 void StartFunction(GlobalDecl GD, 1788 QualType RetTy, 1789 llvm::Function *Fn, 1790 const CGFunctionInfo &FnInfo, 1791 const FunctionArgList &Args, 1792 SourceLocation Loc = SourceLocation(), 1793 SourceLocation StartLoc = SourceLocation()); 1794 1795 static bool IsConstructorDelegationValid(const CXXConstructorDecl *Ctor); 1796 1797 void EmitConstructorBody(FunctionArgList &Args); 1798 void EmitDestructorBody(FunctionArgList &Args); 1799 void emitImplicitAssignmentOperatorBody(FunctionArgList &Args); 1800 void EmitFunctionBody(FunctionArgList &Args, const Stmt *Body); 1801 void EmitBlockWithFallThrough(llvm::BasicBlock *BB, const Stmt *S); 1802 1803 void EmitForwardingCallToLambda(const CXXMethodDecl *LambdaCallOperator, 1804 CallArgList &CallArgs); 1805 void EmitLambdaBlockInvokeBody(); 1806 void EmitLambdaDelegatingInvokeBody(const CXXMethodDecl *MD); 1807 void EmitLambdaStaticInvokeBody(const CXXMethodDecl *MD); 1808 void EmitAsanPrologueOrEpilogue(bool Prologue); 1809 1810 /// Emit the unified return block, trying to avoid its emission when 1811 /// possible. 1812 /// \return The debug location of the user written return statement if the 1813 /// return block is is avoided. 1814 llvm::DebugLoc EmitReturnBlock(); 1815 1816 /// FinishFunction - Complete IR generation of the current function. It is 1817 /// legal to call this function even if there is no current insertion point. 1818 void FinishFunction(SourceLocation EndLoc=SourceLocation()); 1819 1820 void StartThunk(llvm::Function *Fn, GlobalDecl GD, 1821 const CGFunctionInfo &FnInfo, bool IsUnprototyped); 1822 1823 void EmitCallAndReturnForThunk(llvm::Constant *Callee, const ThunkInfo *Thunk, 1824 bool IsUnprototyped); 1825 1826 void FinishThunk(); 1827 1828 /// Emit a musttail call for a thunk with a potentially adjusted this pointer. 1829 void EmitMustTailThunk(const CXXMethodDecl *MD, llvm::Value *AdjustedThisPtr, 1830 llvm::Value *Callee); 1831 1832 /// Generate a thunk for the given method. 1833 void generateThunk(llvm::Function *Fn, const CGFunctionInfo &FnInfo, 1834 GlobalDecl GD, const ThunkInfo &Thunk, 1835 bool IsUnprototyped); 1836 1837 llvm::Function *GenerateVarArgsThunk(llvm::Function *Fn, 1838 const CGFunctionInfo &FnInfo, 1839 GlobalDecl GD, const ThunkInfo &Thunk); 1840 1841 void EmitCtorPrologue(const CXXConstructorDecl *CD, CXXCtorType Type, 1842 FunctionArgList &Args); 1843 1844 void EmitInitializerForField(FieldDecl *Field, LValue LHS, Expr *Init); 1845 1846 /// Struct with all information about dynamic [sub]class needed to set vptr. 1847 struct VPtr { 1848 BaseSubobject Base; 1849 const CXXRecordDecl *NearestVBase; 1850 CharUnits OffsetFromNearestVBase; 1851 const CXXRecordDecl *VTableClass; 1852 }; 1853 1854 /// Initialize the vtable pointer of the given subobject. 1855 void InitializeVTablePointer(const VPtr &vptr); 1856 1857 typedef llvm::SmallVector<VPtr, 4> VPtrsVector; 1858 1859 typedef llvm::SmallPtrSet<const CXXRecordDecl *, 4> VisitedVirtualBasesSetTy; 1860 VPtrsVector getVTablePointers(const CXXRecordDecl *VTableClass); 1861 1862 void getVTablePointers(BaseSubobject Base, const CXXRecordDecl *NearestVBase, 1863 CharUnits OffsetFromNearestVBase, 1864 bool BaseIsNonVirtualPrimaryBase, 1865 const CXXRecordDecl *VTableClass, 1866 VisitedVirtualBasesSetTy &VBases, VPtrsVector &vptrs); 1867 1868 void InitializeVTablePointers(const CXXRecordDecl *ClassDecl); 1869 1870 /// GetVTablePtr - Return the Value of the vtable pointer member pointed 1871 /// to by This. 1872 llvm::Value *GetVTablePtr(Address This, llvm::Type *VTableTy, 1873 const CXXRecordDecl *VTableClass); 1874 1875 enum CFITypeCheckKind { 1876 CFITCK_VCall, 1877 CFITCK_NVCall, 1878 CFITCK_DerivedCast, 1879 CFITCK_UnrelatedCast, 1880 CFITCK_ICall, 1881 CFITCK_NVMFCall, 1882 CFITCK_VMFCall, 1883 }; 1884 1885 /// Derived is the presumed address of an object of type T after a 1886 /// cast. If T is a polymorphic class type, emit a check that the virtual 1887 /// table for Derived belongs to a class derived from T. 1888 void EmitVTablePtrCheckForCast(QualType T, llvm::Value *Derived, 1889 bool MayBeNull, CFITypeCheckKind TCK, 1890 SourceLocation Loc); 1891 1892 /// EmitVTablePtrCheckForCall - Virtual method MD is being called via VTable. 1893 /// If vptr CFI is enabled, emit a check that VTable is valid. 1894 void EmitVTablePtrCheckForCall(const CXXRecordDecl *RD, llvm::Value *VTable, 1895 CFITypeCheckKind TCK, SourceLocation Loc); 1896 1897 /// EmitVTablePtrCheck - Emit a check that VTable is a valid virtual table for 1898 /// RD using llvm.type.test. 1899 void EmitVTablePtrCheck(const CXXRecordDecl *RD, llvm::Value *VTable, 1900 CFITypeCheckKind TCK, SourceLocation Loc); 1901 1902 /// If whole-program virtual table optimization is enabled, emit an assumption 1903 /// that VTable is a member of RD's type identifier. Or, if vptr CFI is 1904 /// enabled, emit a check that VTable is a member of RD's type identifier. 1905 void EmitTypeMetadataCodeForVCall(const CXXRecordDecl *RD, 1906 llvm::Value *VTable, SourceLocation Loc); 1907 1908 /// Returns whether we should perform a type checked load when loading a 1909 /// virtual function for virtual calls to members of RD. This is generally 1910 /// true when both vcall CFI and whole-program-vtables are enabled. 1911 bool ShouldEmitVTableTypeCheckedLoad(const CXXRecordDecl *RD); 1912 1913 /// Emit a type checked load from the given vtable. 1914 llvm::Value *EmitVTableTypeCheckedLoad(const CXXRecordDecl *RD, llvm::Value *VTable, 1915 uint64_t VTableByteOffset); 1916 1917 /// EnterDtorCleanups - Enter the cleanups necessary to complete the 1918 /// given phase of destruction for a destructor. The end result 1919 /// should call destructors on members and base classes in reverse 1920 /// order of their construction. 1921 void EnterDtorCleanups(const CXXDestructorDecl *Dtor, CXXDtorType Type); 1922 1923 /// ShouldInstrumentFunction - Return true if the current function should be 1924 /// instrumented with __cyg_profile_func_* calls 1925 bool ShouldInstrumentFunction(); 1926 1927 /// ShouldXRayInstrument - Return true if the current function should be 1928 /// instrumented with XRay nop sleds. 1929 bool ShouldXRayInstrumentFunction() const; 1930 1931 /// AlwaysEmitXRayCustomEvents - Return true if we must unconditionally emit 1932 /// XRay custom event handling calls. 1933 bool AlwaysEmitXRayCustomEvents() const; 1934 1935 /// AlwaysEmitXRayTypedEvents - Return true if clang must unconditionally emit 1936 /// XRay typed event handling calls. 1937 bool AlwaysEmitXRayTypedEvents() const; 1938 1939 /// Encode an address into a form suitable for use in a function prologue. 1940 llvm::Constant *EncodeAddrForUseInPrologue(llvm::Function *F, 1941 llvm::Constant *Addr); 1942 1943 /// Decode an address used in a function prologue, encoded by \c 1944 /// EncodeAddrForUseInPrologue. 1945 llvm::Value *DecodeAddrUsedInPrologue(llvm::Value *F, 1946 llvm::Value *EncodedAddr); 1947 1948 /// EmitFunctionProlog - Emit the target specific LLVM code to load the 1949 /// arguments for the given function. This is also responsible for naming the 1950 /// LLVM function arguments. 1951 void EmitFunctionProlog(const CGFunctionInfo &FI, 1952 llvm::Function *Fn, 1953 const FunctionArgList &Args); 1954 1955 /// EmitFunctionEpilog - Emit the target specific LLVM code to return the 1956 /// given temporary. 1957 void EmitFunctionEpilog(const CGFunctionInfo &FI, bool EmitRetDbgLoc, 1958 SourceLocation EndLoc); 1959 1960 /// Emit a test that checks if the return value \p RV is nonnull. 1961 void EmitReturnValueCheck(llvm::Value *RV); 1962 1963 /// EmitStartEHSpec - Emit the start of the exception spec. 1964 void EmitStartEHSpec(const Decl *D); 1965 1966 /// EmitEndEHSpec - Emit the end of the exception spec. 1967 void EmitEndEHSpec(const Decl *D); 1968 1969 /// getTerminateLandingPad - Return a landing pad that just calls terminate. 1970 llvm::BasicBlock *getTerminateLandingPad(); 1971 1972 /// getTerminateLandingPad - Return a cleanup funclet that just calls 1973 /// terminate. 1974 llvm::BasicBlock *getTerminateFunclet(); 1975 1976 /// getTerminateHandler - Return a handler (not a landing pad, just 1977 /// a catch handler) that just calls terminate. This is used when 1978 /// a terminate scope encloses a try. 1979 llvm::BasicBlock *getTerminateHandler(); 1980 1981 llvm::Type *ConvertTypeForMem(QualType T); 1982 llvm::Type *ConvertType(QualType T); 1983 llvm::Type *ConvertType(const TypeDecl *T) { 1984 return ConvertType(getContext().getTypeDeclType(T)); 1985 } 1986 1987 /// LoadObjCSelf - Load the value of self. This function is only valid while 1988 /// generating code for an Objective-C method. 1989 llvm::Value *LoadObjCSelf(); 1990 1991 /// TypeOfSelfObject - Return type of object that this self represents. 1992 QualType TypeOfSelfObject(); 1993 1994 /// getEvaluationKind - Return the TypeEvaluationKind of QualType \c T. 1995 static TypeEvaluationKind getEvaluationKind(QualType T); 1996 1997 static bool hasScalarEvaluationKind(QualType T) { 1998 return getEvaluationKind(T) == TEK_Scalar; 1999 } 2000 2001 static bool hasAggregateEvaluationKind(QualType T) { 2002 return getEvaluationKind(T) == TEK_Aggregate; 2003 } 2004 2005 /// createBasicBlock - Create an LLVM basic block. 2006 llvm::BasicBlock *createBasicBlock(const Twine &name = "", 2007 llvm::Function *parent = nullptr, 2008 llvm::BasicBlock *before = nullptr) { 2009 return llvm::BasicBlock::Create(getLLVMContext(), name, parent, before); 2010 } 2011 2012 /// getBasicBlockForLabel - Return the LLVM basicblock that the specified 2013 /// label maps to. 2014 JumpDest getJumpDestForLabel(const LabelDecl *S); 2015 2016 /// SimplifyForwardingBlocks - If the given basic block is only a branch to 2017 /// another basic block, simplify it. This assumes that no other code could 2018 /// potentially reference the basic block. 2019 void SimplifyForwardingBlocks(llvm::BasicBlock *BB); 2020 2021 /// EmitBlock - Emit the given block \arg BB and set it as the insert point, 2022 /// adding a fall-through branch from the current insert block if 2023 /// necessary. It is legal to call this function even if there is no current 2024 /// insertion point. 2025 /// 2026 /// IsFinished - If true, indicates that the caller has finished emitting 2027 /// branches to the given block and does not expect to emit code into it. This 2028 /// means the block can be ignored if it is unreachable. 2029 void EmitBlock(llvm::BasicBlock *BB, bool IsFinished=false); 2030 2031 /// EmitBlockAfterUses - Emit the given block somewhere hopefully 2032 /// near its uses, and leave the insertion point in it. 2033 void EmitBlockAfterUses(llvm::BasicBlock *BB); 2034 2035 /// EmitBranch - Emit a branch to the specified basic block from the current 2036 /// insert block, taking care to avoid creation of branches from dummy 2037 /// blocks. It is legal to call this function even if there is no current 2038 /// insertion point. 2039 /// 2040 /// This function clears the current insertion point. The caller should follow 2041 /// calls to this function with calls to Emit*Block prior to generation new 2042 /// code. 2043 void EmitBranch(llvm::BasicBlock *Block); 2044 2045 /// HaveInsertPoint - True if an insertion point is defined. If not, this 2046 /// indicates that the current code being emitted is unreachable. 2047 bool HaveInsertPoint() const { 2048 return Builder.GetInsertBlock() != nullptr; 2049 } 2050 2051 /// EnsureInsertPoint - Ensure that an insertion point is defined so that 2052 /// emitted IR has a place to go. Note that by definition, if this function 2053 /// creates a block then that block is unreachable; callers may do better to 2054 /// detect when no insertion point is defined and simply skip IR generation. 2055 void EnsureInsertPoint() { 2056 if (!HaveInsertPoint()) 2057 EmitBlock(createBasicBlock()); 2058 } 2059 2060 /// ErrorUnsupported - Print out an error that codegen doesn't support the 2061 /// specified stmt yet. 2062 void ErrorUnsupported(const Stmt *S, const char *Type); 2063 2064 //===--------------------------------------------------------------------===// 2065 // Helpers 2066 //===--------------------------------------------------------------------===// 2067 2068 LValue MakeAddrLValue(Address Addr, QualType T, 2069 AlignmentSource Source = AlignmentSource::Type) { 2070 return LValue::MakeAddr(Addr, T, getContext(), LValueBaseInfo(Source), 2071 CGM.getTBAAAccessInfo(T)); 2072 } 2073 2074 LValue MakeAddrLValue(Address Addr, QualType T, LValueBaseInfo BaseInfo, 2075 TBAAAccessInfo TBAAInfo) { 2076 return LValue::MakeAddr(Addr, T, getContext(), BaseInfo, TBAAInfo); 2077 } 2078 2079 LValue MakeAddrLValue(llvm::Value *V, QualType T, CharUnits Alignment, 2080 AlignmentSource Source = AlignmentSource::Type) { 2081 return LValue::MakeAddr(Address(V, Alignment), T, getContext(), 2082 LValueBaseInfo(Source), CGM.getTBAAAccessInfo(T)); 2083 } 2084 2085 LValue MakeAddrLValue(llvm::Value *V, QualType T, CharUnits Alignment, 2086 LValueBaseInfo BaseInfo, TBAAAccessInfo TBAAInfo) { 2087 return LValue::MakeAddr(Address(V, Alignment), T, getContext(), 2088 BaseInfo, TBAAInfo); 2089 } 2090 2091 LValue MakeNaturalAlignPointeeAddrLValue(llvm::Value *V, QualType T); 2092 LValue MakeNaturalAlignAddrLValue(llvm::Value *V, QualType T); 2093 CharUnits getNaturalTypeAlignment(QualType T, 2094 LValueBaseInfo *BaseInfo = nullptr, 2095 TBAAAccessInfo *TBAAInfo = nullptr, 2096 bool forPointeeType = false); 2097 CharUnits getNaturalPointeeTypeAlignment(QualType T, 2098 LValueBaseInfo *BaseInfo = nullptr, 2099 TBAAAccessInfo *TBAAInfo = nullptr); 2100 2101 Address EmitLoadOfReference(LValue RefLVal, 2102 LValueBaseInfo *PointeeBaseInfo = nullptr, 2103 TBAAAccessInfo *PointeeTBAAInfo = nullptr); 2104 LValue EmitLoadOfReferenceLValue(LValue RefLVal); 2105 LValue EmitLoadOfReferenceLValue(Address RefAddr, QualType RefTy, 2106 AlignmentSource Source = 2107 AlignmentSource::Type) { 2108 LValue RefLVal = MakeAddrLValue(RefAddr, RefTy, LValueBaseInfo(Source), 2109 CGM.getTBAAAccessInfo(RefTy)); 2110 return EmitLoadOfReferenceLValue(RefLVal); 2111 } 2112 2113 Address EmitLoadOfPointer(Address Ptr, const PointerType *PtrTy, 2114 LValueBaseInfo *BaseInfo = nullptr, 2115 TBAAAccessInfo *TBAAInfo = nullptr); 2116 LValue EmitLoadOfPointerLValue(Address Ptr, const PointerType *PtrTy); 2117 2118 /// CreateTempAlloca - This creates an alloca and inserts it into the entry 2119 /// block if \p ArraySize is nullptr, otherwise inserts it at the current 2120 /// insertion point of the builder. The caller is responsible for setting an 2121 /// appropriate alignment on 2122 /// the alloca. 2123 /// 2124 /// \p ArraySize is the number of array elements to be allocated if it 2125 /// is not nullptr. 2126 /// 2127 /// LangAS::Default is the address space of pointers to local variables and 2128 /// temporaries, as exposed in the source language. In certain 2129 /// configurations, this is not the same as the alloca address space, and a 2130 /// cast is needed to lift the pointer from the alloca AS into 2131 /// LangAS::Default. This can happen when the target uses a restricted 2132 /// address space for the stack but the source language requires 2133 /// LangAS::Default to be a generic address space. The latter condition is 2134 /// common for most programming languages; OpenCL is an exception in that 2135 /// LangAS::Default is the private address space, which naturally maps 2136 /// to the stack. 2137 /// 2138 /// Because the address of a temporary is often exposed to the program in 2139 /// various ways, this function will perform the cast. The original alloca 2140 /// instruction is returned through \p Alloca if it is not nullptr. 2141 /// 2142 /// The cast is not performaed in CreateTempAllocaWithoutCast. This is 2143 /// more efficient if the caller knows that the address will not be exposed. 2144 llvm::AllocaInst *CreateTempAlloca(llvm::Type *Ty, const Twine &Name = "tmp", 2145 llvm::Value *ArraySize = nullptr); 2146 Address CreateTempAlloca(llvm::Type *Ty, CharUnits align, 2147 const Twine &Name = "tmp", 2148 llvm::Value *ArraySize = nullptr, 2149 Address *Alloca = nullptr); 2150 Address CreateTempAllocaWithoutCast(llvm::Type *Ty, CharUnits align, 2151 const Twine &Name = "tmp", 2152 llvm::Value *ArraySize = nullptr); 2153 2154 /// CreateDefaultAlignedTempAlloca - This creates an alloca with the 2155 /// default ABI alignment of the given LLVM type. 2156 /// 2157 /// IMPORTANT NOTE: This is *not* generally the right alignment for 2158 /// any given AST type that happens to have been lowered to the 2159 /// given IR type. This should only ever be used for function-local, 2160 /// IR-driven manipulations like saving and restoring a value. Do 2161 /// not hand this address off to arbitrary IRGen routines, and especially 2162 /// do not pass it as an argument to a function that might expect a 2163 /// properly ABI-aligned value. 2164 Address CreateDefaultAlignTempAlloca(llvm::Type *Ty, 2165 const Twine &Name = "tmp"); 2166 2167 /// InitTempAlloca - Provide an initial value for the given alloca which 2168 /// will be observable at all locations in the function. 2169 /// 2170 /// The address should be something that was returned from one of 2171 /// the CreateTempAlloca or CreateMemTemp routines, and the 2172 /// initializer must be valid in the entry block (i.e. it must 2173 /// either be a constant or an argument value). 2174 void InitTempAlloca(Address Alloca, llvm::Value *Value); 2175 2176 /// CreateIRTemp - Create a temporary IR object of the given type, with 2177 /// appropriate alignment. This routine should only be used when an temporary 2178 /// value needs to be stored into an alloca (for example, to avoid explicit 2179 /// PHI construction), but the type is the IR type, not the type appropriate 2180 /// for storing in memory. 2181 /// 2182 /// That is, this is exactly equivalent to CreateMemTemp, but calling 2183 /// ConvertType instead of ConvertTypeForMem. 2184 Address CreateIRTemp(QualType T, const Twine &Name = "tmp"); 2185 2186 /// CreateMemTemp - Create a temporary memory object of the given type, with 2187 /// appropriate alignmen and cast it to the default address space. Returns 2188 /// the original alloca instruction by \p Alloca if it is not nullptr. 2189 Address CreateMemTemp(QualType T, const Twine &Name = "tmp", 2190 Address *Alloca = nullptr); 2191 Address CreateMemTemp(QualType T, CharUnits Align, const Twine &Name = "tmp", 2192 Address *Alloca = nullptr); 2193 2194 /// CreateMemTemp - Create a temporary memory object of the given type, with 2195 /// appropriate alignmen without casting it to the default address space. 2196 Address CreateMemTempWithoutCast(QualType T, const Twine &Name = "tmp"); 2197 Address CreateMemTempWithoutCast(QualType T, CharUnits Align, 2198 const Twine &Name = "tmp"); 2199 2200 /// CreateAggTemp - Create a temporary memory object for the given 2201 /// aggregate type. 2202 AggValueSlot CreateAggTemp(QualType T, const Twine &Name = "tmp") { 2203 return AggValueSlot::forAddr(CreateMemTemp(T, Name), 2204 T.getQualifiers(), 2205 AggValueSlot::IsNotDestructed, 2206 AggValueSlot::DoesNotNeedGCBarriers, 2207 AggValueSlot::IsNotAliased, 2208 AggValueSlot::DoesNotOverlap); 2209 } 2210 2211 /// Emit a cast to void* in the appropriate address space. 2212 llvm::Value *EmitCastToVoidPtr(llvm::Value *value); 2213 2214 /// EvaluateExprAsBool - Perform the usual unary conversions on the specified 2215 /// expression and compare the result against zero, returning an Int1Ty value. 2216 llvm::Value *EvaluateExprAsBool(const Expr *E); 2217 2218 /// EmitIgnoredExpr - Emit an expression in a context which ignores the result. 2219 void EmitIgnoredExpr(const Expr *E); 2220 2221 /// EmitAnyExpr - Emit code to compute the specified expression which can have 2222 /// any type. The result is returned as an RValue struct. If this is an 2223 /// aggregate expression, the aggloc/agglocvolatile arguments indicate where 2224 /// the result should be returned. 2225 /// 2226 /// \param ignoreResult True if the resulting value isn't used. 2227 RValue EmitAnyExpr(const Expr *E, 2228 AggValueSlot aggSlot = AggValueSlot::ignored(), 2229 bool ignoreResult = false); 2230 2231 // EmitVAListRef - Emit a "reference" to a va_list; this is either the address 2232 // or the value of the expression, depending on how va_list is defined. 2233 Address EmitVAListRef(const Expr *E); 2234 2235 /// Emit a "reference" to a __builtin_ms_va_list; this is 2236 /// always the value of the expression, because a __builtin_ms_va_list is a 2237 /// pointer to a char. 2238 Address EmitMSVAListRef(const Expr *E); 2239 2240 /// EmitAnyExprToTemp - Similarly to EmitAnyExpr(), however, the result will 2241 /// always be accessible even if no aggregate location is provided. 2242 RValue EmitAnyExprToTemp(const Expr *E); 2243 2244 /// EmitAnyExprToMem - Emits the code necessary to evaluate an 2245 /// arbitrary expression into the given memory location. 2246 void EmitAnyExprToMem(const Expr *E, Address Location, 2247 Qualifiers Quals, bool IsInitializer); 2248 2249 void EmitAnyExprToExn(const Expr *E, Address Addr); 2250 2251 /// EmitExprAsInit - Emits the code necessary to initialize a 2252 /// location in memory with the given initializer. 2253 void EmitExprAsInit(const Expr *init, const ValueDecl *D, LValue lvalue, 2254 bool capturedByInit); 2255 2256 /// hasVolatileMember - returns true if aggregate type has a volatile 2257 /// member. 2258 bool hasVolatileMember(QualType T) { 2259 if (const RecordType *RT = T->getAs<RecordType>()) { 2260 const RecordDecl *RD = cast<RecordDecl>(RT->getDecl()); 2261 return RD->hasVolatileMember(); 2262 } 2263 return false; 2264 } 2265 2266 /// Determine whether a return value slot may overlap some other object. 2267 AggValueSlot::Overlap_t overlapForReturnValue() { 2268 // FIXME: Assuming no overlap here breaks guaranteed copy elision for base 2269 // class subobjects. These cases may need to be revisited depending on the 2270 // resolution of the relevant core issue. 2271 return AggValueSlot::DoesNotOverlap; 2272 } 2273 2274 /// Determine whether a field initialization may overlap some other object. 2275 AggValueSlot::Overlap_t overlapForFieldInit(const FieldDecl *FD) { 2276 // FIXME: These cases can result in overlap as a result of P0840R0's 2277 // [[no_unique_address]] attribute. We can still infer NoOverlap in the 2278 // presence of that attribute if the field is within the nvsize of its 2279 // containing class, because non-virtual subobjects are initialized in 2280 // address order. 2281 return AggValueSlot::DoesNotOverlap; 2282 } 2283 2284 /// Determine whether a base class initialization may overlap some other 2285 /// object. 2286 AggValueSlot::Overlap_t overlapForBaseInit(const CXXRecordDecl *RD, 2287 const CXXRecordDecl *BaseRD, 2288 bool IsVirtual); 2289 2290 /// Emit an aggregate assignment. 2291 void EmitAggregateAssign(LValue Dest, LValue Src, QualType EltTy) { 2292 bool IsVolatile = hasVolatileMember(EltTy); 2293 EmitAggregateCopy(Dest, Src, EltTy, AggValueSlot::MayOverlap, IsVolatile); 2294 } 2295 2296 void EmitAggregateCopyCtor(LValue Dest, LValue Src, 2297 AggValueSlot::Overlap_t MayOverlap) { 2298 EmitAggregateCopy(Dest, Src, Src.getType(), MayOverlap); 2299 } 2300 2301 /// EmitAggregateCopy - Emit an aggregate copy. 2302 /// 2303 /// \param isVolatile \c true iff either the source or the destination is 2304 /// volatile. 2305 /// \param MayOverlap Whether the tail padding of the destination might be 2306 /// occupied by some other object. More efficient code can often be 2307 /// generated if not. 2308 void EmitAggregateCopy(LValue Dest, LValue Src, QualType EltTy, 2309 AggValueSlot::Overlap_t MayOverlap, 2310 bool isVolatile = false); 2311 2312 /// GetAddrOfLocalVar - Return the address of a local variable. 2313 Address GetAddrOfLocalVar(const VarDecl *VD) { 2314 auto it = LocalDeclMap.find(VD); 2315 assert(it != LocalDeclMap.end() && 2316 "Invalid argument to GetAddrOfLocalVar(), no decl!"); 2317 return it->second; 2318 } 2319 2320 /// Given an opaque value expression, return its LValue mapping if it exists, 2321 /// otherwise create one. 2322 LValue getOrCreateOpaqueLValueMapping(const OpaqueValueExpr *e); 2323 2324 /// Given an opaque value expression, return its RValue mapping if it exists, 2325 /// otherwise create one. 2326 RValue getOrCreateOpaqueRValueMapping(const OpaqueValueExpr *e); 2327 2328 /// Get the index of the current ArrayInitLoopExpr, if any. 2329 llvm::Value *getArrayInitIndex() { return ArrayInitIndex; } 2330 2331 /// getAccessedFieldNo - Given an encoded value and a result number, return 2332 /// the input field number being accessed. 2333 static unsigned getAccessedFieldNo(unsigned Idx, const llvm::Constant *Elts); 2334 2335 llvm::BlockAddress *GetAddrOfLabel(const LabelDecl *L); 2336 llvm::BasicBlock *GetIndirectGotoBlock(); 2337 2338 /// Check if \p E is a C++ "this" pointer wrapped in value-preserving casts. 2339 static bool IsWrappedCXXThis(const Expr *E); 2340 2341 /// EmitNullInitialization - Generate code to set a value of the given type to 2342 /// null, If the type contains data member pointers, they will be initialized 2343 /// to -1 in accordance with the Itanium C++ ABI. 2344 void EmitNullInitialization(Address DestPtr, QualType Ty); 2345 2346 /// Emits a call to an LLVM variable-argument intrinsic, either 2347 /// \c llvm.va_start or \c llvm.va_end. 2348 /// \param ArgValue A reference to the \c va_list as emitted by either 2349 /// \c EmitVAListRef or \c EmitMSVAListRef. 2350 /// \param IsStart If \c true, emits a call to \c llvm.va_start; otherwise, 2351 /// calls \c llvm.va_end. 2352 llvm::Value *EmitVAStartEnd(llvm::Value *ArgValue, bool IsStart); 2353 2354 /// Generate code to get an argument from the passed in pointer 2355 /// and update it accordingly. 2356 /// \param VE The \c VAArgExpr for which to generate code. 2357 /// \param VAListAddr Receives a reference to the \c va_list as emitted by 2358 /// either \c EmitVAListRef or \c EmitMSVAListRef. 2359 /// \returns A pointer to the argument. 2360 // FIXME: We should be able to get rid of this method and use the va_arg 2361 // instruction in LLVM instead once it works well enough. 2362 Address EmitVAArg(VAArgExpr *VE, Address &VAListAddr); 2363 2364 /// emitArrayLength - Compute the length of an array, even if it's a 2365 /// VLA, and drill down to the base element type. 2366 llvm::Value *emitArrayLength(const ArrayType *arrayType, 2367 QualType &baseType, 2368 Address &addr); 2369 2370 /// EmitVLASize - Capture all the sizes for the VLA expressions in 2371 /// the given variably-modified type and store them in the VLASizeMap. 2372 /// 2373 /// This function can be called with a null (unreachable) insert point. 2374 void EmitVariablyModifiedType(QualType Ty); 2375 2376 struct VlaSizePair { 2377 llvm::Value *NumElts; 2378 QualType Type; 2379 2380 VlaSizePair(llvm::Value *NE, QualType T) : NumElts(NE), Type(T) {} 2381 }; 2382 2383 /// Return the number of elements for a single dimension 2384 /// for the given array type. 2385 VlaSizePair getVLAElements1D(const VariableArrayType *vla); 2386 VlaSizePair getVLAElements1D(QualType vla); 2387 2388 /// Returns an LLVM value that corresponds to the size, 2389 /// in non-variably-sized elements, of a variable length array type, 2390 /// plus that largest non-variably-sized element type. Assumes that 2391 /// the type has already been emitted with EmitVariablyModifiedType. 2392 VlaSizePair getVLASize(const VariableArrayType *vla); 2393 VlaSizePair getVLASize(QualType vla); 2394 2395 /// LoadCXXThis - Load the value of 'this'. This function is only valid while 2396 /// generating code for an C++ member function. 2397 llvm::Value *LoadCXXThis() { 2398 assert(CXXThisValue && "no 'this' value for this function"); 2399 return CXXThisValue; 2400 } 2401 Address LoadCXXThisAddress(); 2402 2403 /// LoadCXXVTT - Load the VTT parameter to base constructors/destructors have 2404 /// virtual bases. 2405 // FIXME: Every place that calls LoadCXXVTT is something 2406 // that needs to be abstracted properly. 2407 llvm::Value *LoadCXXVTT() { 2408 assert(CXXStructorImplicitParamValue && "no VTT value for this function"); 2409 return CXXStructorImplicitParamValue; 2410 } 2411 2412 /// GetAddressOfBaseOfCompleteClass - Convert the given pointer to a 2413 /// complete class to the given direct base. 2414 Address 2415 GetAddressOfDirectBaseInCompleteClass(Address Value, 2416 const CXXRecordDecl *Derived, 2417 const CXXRecordDecl *Base, 2418 bool BaseIsVirtual); 2419 2420 static bool ShouldNullCheckClassCastValue(const CastExpr *Cast); 2421 2422 /// GetAddressOfBaseClass - This function will add the necessary delta to the 2423 /// load of 'this' and returns address of the base class. 2424 Address GetAddressOfBaseClass(Address Value, 2425 const CXXRecordDecl *Derived, 2426 CastExpr::path_const_iterator PathBegin, 2427 CastExpr::path_const_iterator PathEnd, 2428 bool NullCheckValue, SourceLocation Loc); 2429 2430 Address GetAddressOfDerivedClass(Address Value, 2431 const CXXRecordDecl *Derived, 2432 CastExpr::path_const_iterator PathBegin, 2433 CastExpr::path_const_iterator PathEnd, 2434 bool NullCheckValue); 2435 2436 /// GetVTTParameter - Return the VTT parameter that should be passed to a 2437 /// base constructor/destructor with virtual bases. 2438 /// FIXME: VTTs are Itanium ABI-specific, so the definition should move 2439 /// to ItaniumCXXABI.cpp together with all the references to VTT. 2440 llvm::Value *GetVTTParameter(GlobalDecl GD, bool ForVirtualBase, 2441 bool Delegating); 2442 2443 void EmitDelegateCXXConstructorCall(const CXXConstructorDecl *Ctor, 2444 CXXCtorType CtorType, 2445 const FunctionArgList &Args, 2446 SourceLocation Loc); 2447 // It's important not to confuse this and the previous function. Delegating 2448 // constructors are the C++0x feature. The constructor delegate optimization 2449 // is used to reduce duplication in the base and complete consturctors where 2450 // they are substantially the same. 2451 void EmitDelegatingCXXConstructorCall(const CXXConstructorDecl *Ctor, 2452 const FunctionArgList &Args); 2453 2454 /// Emit a call to an inheriting constructor (that is, one that invokes a 2455 /// constructor inherited from a base class) by inlining its definition. This 2456 /// is necessary if the ABI does not support forwarding the arguments to the 2457 /// base class constructor (because they're variadic or similar). 2458 void EmitInlinedInheritingCXXConstructorCall(const CXXConstructorDecl *Ctor, 2459 CXXCtorType CtorType, 2460 bool ForVirtualBase, 2461 bool Delegating, 2462 CallArgList &Args); 2463 2464 /// Emit a call to a constructor inherited from a base class, passing the 2465 /// current constructor's arguments along unmodified (without even making 2466 /// a copy). 2467 void EmitInheritedCXXConstructorCall(const CXXConstructorDecl *D, 2468 bool ForVirtualBase, Address This, 2469 bool InheritedFromVBase, 2470 const CXXInheritedCtorInitExpr *E); 2471 2472 void EmitCXXConstructorCall(const CXXConstructorDecl *D, CXXCtorType Type, 2473 bool ForVirtualBase, bool Delegating, 2474 Address This, const CXXConstructExpr *E, 2475 AggValueSlot::Overlap_t Overlap); 2476 2477 void EmitCXXConstructorCall(const CXXConstructorDecl *D, CXXCtorType Type, 2478 bool ForVirtualBase, bool Delegating, 2479 Address This, CallArgList &Args, 2480 AggValueSlot::Overlap_t Overlap, 2481 SourceLocation Loc); 2482 2483 /// Emit assumption load for all bases. Requires to be be called only on 2484 /// most-derived class and not under construction of the object. 2485 void EmitVTableAssumptionLoads(const CXXRecordDecl *ClassDecl, Address This); 2486 2487 /// Emit assumption that vptr load == global vtable. 2488 void EmitVTableAssumptionLoad(const VPtr &vptr, Address This); 2489 2490 void EmitSynthesizedCXXCopyCtorCall(const CXXConstructorDecl *D, 2491 Address This, Address Src, 2492 const CXXConstructExpr *E); 2493 2494 void EmitCXXAggrConstructorCall(const CXXConstructorDecl *D, 2495 const ArrayType *ArrayTy, 2496 Address ArrayPtr, 2497 const CXXConstructExpr *E, 2498 bool ZeroInitialization = false); 2499 2500 void EmitCXXAggrConstructorCall(const CXXConstructorDecl *D, 2501 llvm::Value *NumElements, 2502 Address ArrayPtr, 2503 const CXXConstructExpr *E, 2504 bool ZeroInitialization = false); 2505 2506 static Destroyer destroyCXXObject; 2507 2508 void EmitCXXDestructorCall(const CXXDestructorDecl *D, CXXDtorType Type, 2509 bool ForVirtualBase, bool Delegating, 2510 Address This); 2511 2512 void EmitNewArrayInitializer(const CXXNewExpr *E, QualType elementType, 2513 llvm::Type *ElementTy, Address NewPtr, 2514 llvm::Value *NumElements, 2515 llvm::Value *AllocSizeWithoutCookie); 2516 2517 void EmitCXXTemporary(const CXXTemporary *Temporary, QualType TempType, 2518 Address Ptr); 2519 2520 llvm::Value *EmitLifetimeStart(uint64_t Size, llvm::Value *Addr); 2521 void EmitLifetimeEnd(llvm::Value *Size, llvm::Value *Addr); 2522 2523 llvm::Value *EmitCXXNewExpr(const CXXNewExpr *E); 2524 void EmitCXXDeleteExpr(const CXXDeleteExpr *E); 2525 2526 void EmitDeleteCall(const FunctionDecl *DeleteFD, llvm::Value *Ptr, 2527 QualType DeleteTy, llvm::Value *NumElements = nullptr, 2528 CharUnits CookieSize = CharUnits()); 2529 2530 RValue EmitBuiltinNewDeleteCall(const FunctionProtoType *Type, 2531 const CallExpr *TheCallExpr, bool IsDelete); 2532 2533 llvm::Value *EmitCXXTypeidExpr(const CXXTypeidExpr *E); 2534 llvm::Value *EmitDynamicCast(Address V, const CXXDynamicCastExpr *DCE); 2535 Address EmitCXXUuidofExpr(const CXXUuidofExpr *E); 2536 2537 /// Situations in which we might emit a check for the suitability of a 2538 /// pointer or glvalue. 2539 enum TypeCheckKind { 2540 /// Checking the operand of a load. Must be suitably sized and aligned. 2541 TCK_Load, 2542 /// Checking the destination of a store. Must be suitably sized and aligned. 2543 TCK_Store, 2544 /// Checking the bound value in a reference binding. Must be suitably sized 2545 /// and aligned, but is not required to refer to an object (until the 2546 /// reference is used), per core issue 453. 2547 TCK_ReferenceBinding, 2548 /// Checking the object expression in a non-static data member access. Must 2549 /// be an object within its lifetime. 2550 TCK_MemberAccess, 2551 /// Checking the 'this' pointer for a call to a non-static member function. 2552 /// Must be an object within its lifetime. 2553 TCK_MemberCall, 2554 /// Checking the 'this' pointer for a constructor call. 2555 TCK_ConstructorCall, 2556 /// Checking the operand of a static_cast to a derived pointer type. Must be 2557 /// null or an object within its lifetime. 2558 TCK_DowncastPointer, 2559 /// Checking the operand of a static_cast to a derived reference type. Must 2560 /// be an object within its lifetime. 2561 TCK_DowncastReference, 2562 /// Checking the operand of a cast to a base object. Must be suitably sized 2563 /// and aligned. 2564 TCK_Upcast, 2565 /// Checking the operand of a cast to a virtual base object. Must be an 2566 /// object within its lifetime. 2567 TCK_UpcastToVirtualBase, 2568 /// Checking the value assigned to a _Nonnull pointer. Must not be null. 2569 TCK_NonnullAssign, 2570 /// Checking the operand of a dynamic_cast or a typeid expression. Must be 2571 /// null or an object within its lifetime. 2572 TCK_DynamicOperation 2573 }; 2574 2575 /// Determine whether the pointer type check \p TCK permits null pointers. 2576 static bool isNullPointerAllowed(TypeCheckKind TCK); 2577 2578 /// Determine whether the pointer type check \p TCK requires a vptr check. 2579 static bool isVptrCheckRequired(TypeCheckKind TCK, QualType Ty); 2580 2581 /// Whether any type-checking sanitizers are enabled. If \c false, 2582 /// calls to EmitTypeCheck can be skipped. 2583 bool sanitizePerformTypeCheck() const; 2584 2585 /// Emit a check that \p V is the address of storage of the 2586 /// appropriate size and alignment for an object of type \p Type. 2587 void EmitTypeCheck(TypeCheckKind TCK, SourceLocation Loc, llvm::Value *V, 2588 QualType Type, CharUnits Alignment = CharUnits::Zero(), 2589 SanitizerSet SkippedChecks = SanitizerSet()); 2590 2591 /// Emit a check that \p Base points into an array object, which 2592 /// we can access at index \p Index. \p Accessed should be \c false if we 2593 /// this expression is used as an lvalue, for instance in "&Arr[Idx]". 2594 void EmitBoundsCheck(const Expr *E, const Expr *Base, llvm::Value *Index, 2595 QualType IndexType, bool Accessed); 2596 2597 llvm::Value *EmitScalarPrePostIncDec(const UnaryOperator *E, LValue LV, 2598 bool isInc, bool isPre); 2599 ComplexPairTy EmitComplexPrePostIncDec(const UnaryOperator *E, LValue LV, 2600 bool isInc, bool isPre); 2601 2602 void EmitAlignmentAssumption(llvm::Value *PtrValue, unsigned Alignment, 2603 llvm::Value *OffsetValue = nullptr) { 2604 Builder.CreateAlignmentAssumption(CGM.getDataLayout(), PtrValue, Alignment, 2605 OffsetValue); 2606 } 2607 2608 /// Converts Location to a DebugLoc, if debug information is enabled. 2609 llvm::DebugLoc SourceLocToDebugLoc(SourceLocation Location); 2610 2611 2612 //===--------------------------------------------------------------------===// 2613 // Declaration Emission 2614 //===--------------------------------------------------------------------===// 2615 2616 /// EmitDecl - Emit a declaration. 2617 /// 2618 /// This function can be called with a null (unreachable) insert point. 2619 void EmitDecl(const Decl &D); 2620 2621 /// EmitVarDecl - Emit a local variable declaration. 2622 /// 2623 /// This function can be called with a null (unreachable) insert point. 2624 void EmitVarDecl(const VarDecl &D); 2625 2626 void EmitScalarInit(const Expr *init, const ValueDecl *D, LValue lvalue, 2627 bool capturedByInit); 2628 2629 typedef void SpecialInitFn(CodeGenFunction &Init, const VarDecl &D, 2630 llvm::Value *Address); 2631 2632 /// Determine whether the given initializer is trivial in the sense 2633 /// that it requires no code to be generated. 2634 bool isTrivialInitializer(const Expr *Init); 2635 2636 /// EmitAutoVarDecl - Emit an auto variable declaration. 2637 /// 2638 /// This function can be called with a null (unreachable) insert point. 2639 void EmitAutoVarDecl(const VarDecl &D); 2640 2641 class AutoVarEmission { 2642 friend class CodeGenFunction; 2643 2644 const VarDecl *Variable; 2645 2646 /// The address of the alloca for languages with explicit address space 2647 /// (e.g. OpenCL) or alloca casted to generic pointer for address space 2648 /// agnostic languages (e.g. C++). Invalid if the variable was emitted 2649 /// as a global constant. 2650 Address Addr; 2651 2652 llvm::Value *NRVOFlag; 2653 2654 /// True if the variable is a __block variable. 2655 bool IsByRef; 2656 2657 /// True if the variable is of aggregate type and has a constant 2658 /// initializer. 2659 bool IsConstantAggregate; 2660 2661 /// Non-null if we should use lifetime annotations. 2662 llvm::Value *SizeForLifetimeMarkers; 2663 2664 /// Address with original alloca instruction. Invalid if the variable was 2665 /// emitted as a global constant. 2666 Address AllocaAddr; 2667 2668 struct Invalid {}; 2669 AutoVarEmission(Invalid) 2670 : Variable(nullptr), Addr(Address::invalid()), 2671 AllocaAddr(Address::invalid()) {} 2672 2673 AutoVarEmission(const VarDecl &variable) 2674 : Variable(&variable), Addr(Address::invalid()), NRVOFlag(nullptr), 2675 IsByRef(false), IsConstantAggregate(false), 2676 SizeForLifetimeMarkers(nullptr), AllocaAddr(Address::invalid()) {} 2677 2678 bool wasEmittedAsGlobal() const { return !Addr.isValid(); } 2679 2680 public: 2681 static AutoVarEmission invalid() { return AutoVarEmission(Invalid()); } 2682 2683 bool useLifetimeMarkers() const { 2684 return SizeForLifetimeMarkers != nullptr; 2685 } 2686 llvm::Value *getSizeForLifetimeMarkers() const { 2687 assert(useLifetimeMarkers()); 2688 return SizeForLifetimeMarkers; 2689 } 2690 2691 /// Returns the raw, allocated address, which is not necessarily 2692 /// the address of the object itself. It is casted to default 2693 /// address space for address space agnostic languages. 2694 Address getAllocatedAddress() const { 2695 return Addr; 2696 } 2697 2698 /// Returns the address for the original alloca instruction. 2699 Address getOriginalAllocatedAddress() const { return AllocaAddr; } 2700 2701 /// Returns the address of the object within this declaration. 2702 /// Note that this does not chase the forwarding pointer for 2703 /// __block decls. 2704 Address getObjectAddress(CodeGenFunction &CGF) const { 2705 if (!IsByRef) return Addr; 2706 2707 return CGF.emitBlockByrefAddress(Addr, Variable, /*forward*/ false); 2708 } 2709 }; 2710 AutoVarEmission EmitAutoVarAlloca(const VarDecl &var); 2711 void EmitAutoVarInit(const AutoVarEmission &emission); 2712 void EmitAutoVarCleanups(const AutoVarEmission &emission); 2713 void emitAutoVarTypeCleanup(const AutoVarEmission &emission, 2714 QualType::DestructionKind dtorKind); 2715 2716 /// Emits the alloca and debug information for the size expressions for each 2717 /// dimension of an array. It registers the association of its (1-dimensional) 2718 /// QualTypes and size expression's debug node, so that CGDebugInfo can 2719 /// reference this node when creating the DISubrange object to describe the 2720 /// array types. 2721 void EmitAndRegisterVariableArrayDimensions(CGDebugInfo *DI, 2722 const VarDecl &D, 2723 bool EmitDebugInfo); 2724 2725 void EmitStaticVarDecl(const VarDecl &D, 2726 llvm::GlobalValue::LinkageTypes Linkage); 2727 2728 class ParamValue { 2729 llvm::Value *Value; 2730 unsigned Alignment; 2731 ParamValue(llvm::Value *V, unsigned A) : Value(V), Alignment(A) {} 2732 public: 2733 static ParamValue forDirect(llvm::Value *value) { 2734 return ParamValue(value, 0); 2735 } 2736 static ParamValue forIndirect(Address addr) { 2737 assert(!addr.getAlignment().isZero()); 2738 return ParamValue(addr.getPointer(), addr.getAlignment().getQuantity()); 2739 } 2740 2741 bool isIndirect() const { return Alignment != 0; } 2742 llvm::Value *getAnyValue() const { return Value; } 2743 2744 llvm::Value *getDirectValue() const { 2745 assert(!isIndirect()); 2746 return Value; 2747 } 2748 2749 Address getIndirectAddress() const { 2750 assert(isIndirect()); 2751 return Address(Value, CharUnits::fromQuantity(Alignment)); 2752 } 2753 }; 2754 2755 /// EmitParmDecl - Emit a ParmVarDecl or an ImplicitParamDecl. 2756 void EmitParmDecl(const VarDecl &D, ParamValue Arg, unsigned ArgNo); 2757 2758 /// protectFromPeepholes - Protect a value that we're intending to 2759 /// store to the side, but which will probably be used later, from 2760 /// aggressive peepholing optimizations that might delete it. 2761 /// 2762 /// Pass the result to unprotectFromPeepholes to declare that 2763 /// protection is no longer required. 2764 /// 2765 /// There's no particular reason why this shouldn't apply to 2766 /// l-values, it's just that no existing peepholes work on pointers. 2767 PeepholeProtection protectFromPeepholes(RValue rvalue); 2768 void unprotectFromPeepholes(PeepholeProtection protection); 2769 2770 void EmitAlignmentAssumption(llvm::Value *PtrValue, llvm::Value *Alignment, 2771 llvm::Value *OffsetValue = nullptr) { 2772 Builder.CreateAlignmentAssumption(CGM.getDataLayout(), PtrValue, Alignment, 2773 OffsetValue); 2774 } 2775 2776 //===--------------------------------------------------------------------===// 2777 // Statement Emission 2778 //===--------------------------------------------------------------------===// 2779 2780 /// EmitStopPoint - Emit a debug stoppoint if we are emitting debug info. 2781 void EmitStopPoint(const Stmt *S); 2782 2783 /// EmitStmt - Emit the code for the statement \arg S. It is legal to call 2784 /// this function even if there is no current insertion point. 2785 /// 2786 /// This function may clear the current insertion point; callers should use 2787 /// EnsureInsertPoint if they wish to subsequently generate code without first 2788 /// calling EmitBlock, EmitBranch, or EmitStmt. 2789 void EmitStmt(const Stmt *S, ArrayRef<const Attr *> Attrs = None); 2790 2791 /// EmitSimpleStmt - Try to emit a "simple" statement which does not 2792 /// necessarily require an insertion point or debug information; typically 2793 /// because the statement amounts to a jump or a container of other 2794 /// statements. 2795 /// 2796 /// \return True if the statement was handled. 2797 bool EmitSimpleStmt(const Stmt *S); 2798 2799 Address EmitCompoundStmt(const CompoundStmt &S, bool GetLast = false, 2800 AggValueSlot AVS = AggValueSlot::ignored()); 2801 Address EmitCompoundStmtWithoutScope(const CompoundStmt &S, 2802 bool GetLast = false, 2803 AggValueSlot AVS = 2804 AggValueSlot::ignored()); 2805 2806 /// EmitLabel - Emit the block for the given label. It is legal to call this 2807 /// function even if there is no current insertion point. 2808 void EmitLabel(const LabelDecl *D); // helper for EmitLabelStmt. 2809 2810 void EmitLabelStmt(const LabelStmt &S); 2811 void EmitAttributedStmt(const AttributedStmt &S); 2812 void EmitGotoStmt(const GotoStmt &S); 2813 void EmitIndirectGotoStmt(const IndirectGotoStmt &S); 2814 void EmitIfStmt(const IfStmt &S); 2815 2816 void EmitWhileStmt(const WhileStmt &S, 2817 ArrayRef<const Attr *> Attrs = None); 2818 void EmitDoStmt(const DoStmt &S, ArrayRef<const Attr *> Attrs = None); 2819 void EmitForStmt(const ForStmt &S, 2820 ArrayRef<const Attr *> Attrs = None); 2821 void EmitReturnStmt(const ReturnStmt &S); 2822 void EmitDeclStmt(const DeclStmt &S); 2823 void EmitBreakStmt(const BreakStmt &S); 2824 void EmitContinueStmt(const ContinueStmt &S); 2825 void EmitSwitchStmt(const SwitchStmt &S); 2826 void EmitDefaultStmt(const DefaultStmt &S); 2827 void EmitCaseStmt(const CaseStmt &S); 2828 void EmitCaseStmtRange(const CaseStmt &S); 2829 void EmitAsmStmt(const AsmStmt &S); 2830 2831 void EmitObjCForCollectionStmt(const ObjCForCollectionStmt &S); 2832 void EmitObjCAtTryStmt(const ObjCAtTryStmt &S); 2833 void EmitObjCAtThrowStmt(const ObjCAtThrowStmt &S); 2834 void EmitObjCAtSynchronizedStmt(const ObjCAtSynchronizedStmt &S); 2835 void EmitObjCAutoreleasePoolStmt(const ObjCAutoreleasePoolStmt &S); 2836 2837 void EmitCoroutineBody(const CoroutineBodyStmt &S); 2838 void EmitCoreturnStmt(const CoreturnStmt &S); 2839 RValue EmitCoawaitExpr(const CoawaitExpr &E, 2840 AggValueSlot aggSlot = AggValueSlot::ignored(), 2841 bool ignoreResult = false); 2842 LValue EmitCoawaitLValue(const CoawaitExpr *E); 2843 RValue EmitCoyieldExpr(const CoyieldExpr &E, 2844 AggValueSlot aggSlot = AggValueSlot::ignored(), 2845 bool ignoreResult = false); 2846 LValue EmitCoyieldLValue(const CoyieldExpr *E); 2847 RValue EmitCoroutineIntrinsic(const CallExpr *E, unsigned int IID); 2848 2849 void EnterCXXTryStmt(const CXXTryStmt &S, bool IsFnTryBlock = false); 2850 void ExitCXXTryStmt(const CXXTryStmt &S, bool IsFnTryBlock = false); 2851 2852 void EmitCXXTryStmt(const CXXTryStmt &S); 2853 void EmitSEHTryStmt(const SEHTryStmt &S); 2854 void EmitSEHLeaveStmt(const SEHLeaveStmt &S); 2855 void EnterSEHTryStmt(const SEHTryStmt &S); 2856 void ExitSEHTryStmt(const SEHTryStmt &S); 2857 2858 void startOutlinedSEHHelper(CodeGenFunction &ParentCGF, bool IsFilter, 2859 const Stmt *OutlinedStmt); 2860 2861 llvm::Function *GenerateSEHFilterFunction(CodeGenFunction &ParentCGF, 2862 const SEHExceptStmt &Except); 2863 2864 llvm::Function *GenerateSEHFinallyFunction(CodeGenFunction &ParentCGF, 2865 const SEHFinallyStmt &Finally); 2866 2867 void EmitSEHExceptionCodeSave(CodeGenFunction &ParentCGF, 2868 llvm::Value *ParentFP, 2869 llvm::Value *EntryEBP); 2870 llvm::Value *EmitSEHExceptionCode(); 2871 llvm::Value *EmitSEHExceptionInfo(); 2872 llvm::Value *EmitSEHAbnormalTermination(); 2873 2874 /// Emit simple code for OpenMP directives in Simd-only mode. 2875 void EmitSimpleOMPExecutableDirective(const OMPExecutableDirective &D); 2876 2877 /// Scan the outlined statement for captures from the parent function. For 2878 /// each capture, mark the capture as escaped and emit a call to 2879 /// llvm.localrecover. Insert the localrecover result into the LocalDeclMap. 2880 void EmitCapturedLocals(CodeGenFunction &ParentCGF, const Stmt *OutlinedStmt, 2881 bool IsFilter); 2882 2883 /// Recovers the address of a local in a parent function. ParentVar is the 2884 /// address of the variable used in the immediate parent function. It can 2885 /// either be an alloca or a call to llvm.localrecover if there are nested 2886 /// outlined functions. ParentFP is the frame pointer of the outermost parent 2887 /// frame. 2888 Address recoverAddrOfEscapedLocal(CodeGenFunction &ParentCGF, 2889 Address ParentVar, 2890 llvm::Value *ParentFP); 2891 2892 void EmitCXXForRangeStmt(const CXXForRangeStmt &S, 2893 ArrayRef<const Attr *> Attrs = None); 2894 2895 /// Controls insertion of cancellation exit blocks in worksharing constructs. 2896 class OMPCancelStackRAII { 2897 CodeGenFunction &CGF; 2898 2899 public: 2900 OMPCancelStackRAII(CodeGenFunction &CGF, OpenMPDirectiveKind Kind, 2901 bool HasCancel) 2902 : CGF(CGF) { 2903 CGF.OMPCancelStack.enter(CGF, Kind, HasCancel); 2904 } 2905 ~OMPCancelStackRAII() { CGF.OMPCancelStack.exit(CGF); } 2906 }; 2907 2908 /// Returns calculated size of the specified type. 2909 llvm::Value *getTypeSize(QualType Ty); 2910 LValue InitCapturedStruct(const CapturedStmt &S); 2911 llvm::Function *EmitCapturedStmt(const CapturedStmt &S, CapturedRegionKind K); 2912 llvm::Function *GenerateCapturedStmtFunction(const CapturedStmt &S); 2913 Address GenerateCapturedStmtArgument(const CapturedStmt &S); 2914 llvm::Function *GenerateOpenMPCapturedStmtFunction(const CapturedStmt &S); 2915 void GenerateOpenMPCapturedVars(const CapturedStmt &S, 2916 SmallVectorImpl<llvm::Value *> &CapturedVars); 2917 void emitOMPSimpleStore(LValue LVal, RValue RVal, QualType RValTy, 2918 SourceLocation Loc); 2919 /// Perform element by element copying of arrays with type \a 2920 /// OriginalType from \a SrcAddr to \a DestAddr using copying procedure 2921 /// generated by \a CopyGen. 2922 /// 2923 /// \param DestAddr Address of the destination array. 2924 /// \param SrcAddr Address of the source array. 2925 /// \param OriginalType Type of destination and source arrays. 2926 /// \param CopyGen Copying procedure that copies value of single array element 2927 /// to another single array element. 2928 void EmitOMPAggregateAssign( 2929 Address DestAddr, Address SrcAddr, QualType OriginalType, 2930 const llvm::function_ref<void(Address, Address)> CopyGen); 2931 /// Emit proper copying of data from one variable to another. 2932 /// 2933 /// \param OriginalType Original type of the copied variables. 2934 /// \param DestAddr Destination address. 2935 /// \param SrcAddr Source address. 2936 /// \param DestVD Destination variable used in \a CopyExpr (for arrays, has 2937 /// type of the base array element). 2938 /// \param SrcVD Source variable used in \a CopyExpr (for arrays, has type of 2939 /// the base array element). 2940 /// \param Copy Actual copygin expression for copying data from \a SrcVD to \a 2941 /// DestVD. 2942 void EmitOMPCopy(QualType OriginalType, 2943 Address DestAddr, Address SrcAddr, 2944 const VarDecl *DestVD, const VarDecl *SrcVD, 2945 const Expr *Copy); 2946 /// Emit atomic update code for constructs: \a X = \a X \a BO \a E or 2947 /// \a X = \a E \a BO \a E. 2948 /// 2949 /// \param X Value to be updated. 2950 /// \param E Update value. 2951 /// \param BO Binary operation for update operation. 2952 /// \param IsXLHSInRHSPart true if \a X is LHS in RHS part of the update 2953 /// expression, false otherwise. 2954 /// \param AO Atomic ordering of the generated atomic instructions. 2955 /// \param CommonGen Code generator for complex expressions that cannot be 2956 /// expressed through atomicrmw instruction. 2957 /// \returns <true, OldAtomicValue> if simple 'atomicrmw' instruction was 2958 /// generated, <false, RValue::get(nullptr)> otherwise. 2959 std::pair<bool, RValue> EmitOMPAtomicSimpleUpdateExpr( 2960 LValue X, RValue E, BinaryOperatorKind BO, bool IsXLHSInRHSPart, 2961 llvm::AtomicOrdering AO, SourceLocation Loc, 2962 const llvm::function_ref<RValue(RValue)> CommonGen); 2963 bool EmitOMPFirstprivateClause(const OMPExecutableDirective &D, 2964 OMPPrivateScope &PrivateScope); 2965 void EmitOMPPrivateClause(const OMPExecutableDirective &D, 2966 OMPPrivateScope &PrivateScope); 2967 void EmitOMPUseDevicePtrClause( 2968 const OMPClause &C, OMPPrivateScope &PrivateScope, 2969 const llvm::DenseMap<const ValueDecl *, Address> &CaptureDeviceAddrMap); 2970 /// Emit code for copyin clause in \a D directive. The next code is 2971 /// generated at the start of outlined functions for directives: 2972 /// \code 2973 /// threadprivate_var1 = master_threadprivate_var1; 2974 /// operator=(threadprivate_var2, master_threadprivate_var2); 2975 /// ... 2976 /// __kmpc_barrier(&loc, global_tid); 2977 /// \endcode 2978 /// 2979 /// \param D OpenMP directive possibly with 'copyin' clause(s). 2980 /// \returns true if at least one copyin variable is found, false otherwise. 2981 bool EmitOMPCopyinClause(const OMPExecutableDirective &D); 2982 /// Emit initial code for lastprivate variables. If some variable is 2983 /// not also firstprivate, then the default initialization is used. Otherwise 2984 /// initialization of this variable is performed by EmitOMPFirstprivateClause 2985 /// method. 2986 /// 2987 /// \param D Directive that may have 'lastprivate' directives. 2988 /// \param PrivateScope Private scope for capturing lastprivate variables for 2989 /// proper codegen in internal captured statement. 2990 /// 2991 /// \returns true if there is at least one lastprivate variable, false 2992 /// otherwise. 2993 bool EmitOMPLastprivateClauseInit(const OMPExecutableDirective &D, 2994 OMPPrivateScope &PrivateScope); 2995 /// Emit final copying of lastprivate values to original variables at 2996 /// the end of the worksharing or simd directive. 2997 /// 2998 /// \param D Directive that has at least one 'lastprivate' directives. 2999 /// \param IsLastIterCond Boolean condition that must be set to 'i1 true' if 3000 /// it is the last iteration of the loop code in associated directive, or to 3001 /// 'i1 false' otherwise. If this item is nullptr, no final check is required. 3002 void EmitOMPLastprivateClauseFinal(const OMPExecutableDirective &D, 3003 bool NoFinals, 3004 llvm::Value *IsLastIterCond = nullptr); 3005 /// Emit initial code for linear clauses. 3006 void EmitOMPLinearClause(const OMPLoopDirective &D, 3007 CodeGenFunction::OMPPrivateScope &PrivateScope); 3008 /// Emit final code for linear clauses. 3009 /// \param CondGen Optional conditional code for final part of codegen for 3010 /// linear clause. 3011 void EmitOMPLinearClauseFinal( 3012 const OMPLoopDirective &D, 3013 const llvm::function_ref<llvm::Value *(CodeGenFunction &)> CondGen); 3014 /// Emit initial code for reduction variables. Creates reduction copies 3015 /// and initializes them with the values according to OpenMP standard. 3016 /// 3017 /// \param D Directive (possibly) with the 'reduction' clause. 3018 /// \param PrivateScope Private scope for capturing reduction variables for 3019 /// proper codegen in internal captured statement. 3020 /// 3021 void EmitOMPReductionClauseInit(const OMPExecutableDirective &D, 3022 OMPPrivateScope &PrivateScope); 3023 /// Emit final update of reduction values to original variables at 3024 /// the end of the directive. 3025 /// 3026 /// \param D Directive that has at least one 'reduction' directives. 3027 /// \param ReductionKind The kind of reduction to perform. 3028 void EmitOMPReductionClauseFinal(const OMPExecutableDirective &D, 3029 const OpenMPDirectiveKind ReductionKind); 3030 /// Emit initial code for linear variables. Creates private copies 3031 /// and initializes them with the values according to OpenMP standard. 3032 /// 3033 /// \param D Directive (possibly) with the 'linear' clause. 3034 /// \return true if at least one linear variable is found that should be 3035 /// initialized with the value of the original variable, false otherwise. 3036 bool EmitOMPLinearClauseInit(const OMPLoopDirective &D); 3037 3038 typedef const llvm::function_ref<void(CodeGenFunction & /*CGF*/, 3039 llvm::Value * /*OutlinedFn*/, 3040 const OMPTaskDataTy & /*Data*/)> 3041 TaskGenTy; 3042 void EmitOMPTaskBasedDirective(const OMPExecutableDirective &S, 3043 const OpenMPDirectiveKind CapturedRegion, 3044 const RegionCodeGenTy &BodyGen, 3045 const TaskGenTy &TaskGen, OMPTaskDataTy &Data); 3046 struct OMPTargetDataInfo { 3047 Address BasePointersArray = Address::invalid(); 3048 Address PointersArray = Address::invalid(); 3049 Address SizesArray = Address::invalid(); 3050 unsigned NumberOfTargetItems = 0; 3051 explicit OMPTargetDataInfo() = default; 3052 OMPTargetDataInfo(Address BasePointersArray, Address PointersArray, 3053 Address SizesArray, unsigned NumberOfTargetItems) 3054 : BasePointersArray(BasePointersArray), PointersArray(PointersArray), 3055 SizesArray(SizesArray), NumberOfTargetItems(NumberOfTargetItems) {} 3056 }; 3057 void EmitOMPTargetTaskBasedDirective(const OMPExecutableDirective &S, 3058 const RegionCodeGenTy &BodyGen, 3059 OMPTargetDataInfo &InputInfo); 3060 3061 void EmitOMPParallelDirective(const OMPParallelDirective &S); 3062 void EmitOMPSimdDirective(const OMPSimdDirective &S); 3063 void EmitOMPForDirective(const OMPForDirective &S); 3064 void EmitOMPForSimdDirective(const OMPForSimdDirective &S); 3065 void EmitOMPSectionsDirective(const OMPSectionsDirective &S); 3066 void EmitOMPSectionDirective(const OMPSectionDirective &S); 3067 void EmitOMPSingleDirective(const OMPSingleDirective &S); 3068 void EmitOMPMasterDirective(const OMPMasterDirective &S); 3069 void EmitOMPCriticalDirective(const OMPCriticalDirective &S); 3070 void EmitOMPParallelForDirective(const OMPParallelForDirective &S); 3071 void EmitOMPParallelForSimdDirective(const OMPParallelForSimdDirective &S); 3072 void EmitOMPParallelSectionsDirective(const OMPParallelSectionsDirective &S); 3073 void EmitOMPTaskDirective(const OMPTaskDirective &S); 3074 void EmitOMPTaskyieldDirective(const OMPTaskyieldDirective &S); 3075 void EmitOMPBarrierDirective(const OMPBarrierDirective &S); 3076 void EmitOMPTaskwaitDirective(const OMPTaskwaitDirective &S); 3077 void EmitOMPTaskgroupDirective(const OMPTaskgroupDirective &S); 3078 void EmitOMPFlushDirective(const OMPFlushDirective &S); 3079 void EmitOMPOrderedDirective(const OMPOrderedDirective &S); 3080 void EmitOMPAtomicDirective(const OMPAtomicDirective &S); 3081 void EmitOMPTargetDirective(const OMPTargetDirective &S); 3082 void EmitOMPTargetDataDirective(const OMPTargetDataDirective &S); 3083 void EmitOMPTargetEnterDataDirective(const OMPTargetEnterDataDirective &S); 3084 void EmitOMPTargetExitDataDirective(const OMPTargetExitDataDirective &S); 3085 void EmitOMPTargetUpdateDirective(const OMPTargetUpdateDirective &S); 3086 void EmitOMPTargetParallelDirective(const OMPTargetParallelDirective &S); 3087 void 3088 EmitOMPTargetParallelForDirective(const OMPTargetParallelForDirective &S); 3089 void EmitOMPTeamsDirective(const OMPTeamsDirective &S); 3090 void 3091 EmitOMPCancellationPointDirective(const OMPCancellationPointDirective &S); 3092 void EmitOMPCancelDirective(const OMPCancelDirective &S); 3093 void EmitOMPTaskLoopBasedDirective(const OMPLoopDirective &S); 3094 void EmitOMPTaskLoopDirective(const OMPTaskLoopDirective &S); 3095 void EmitOMPTaskLoopSimdDirective(const OMPTaskLoopSimdDirective &S); 3096 void EmitOMPDistributeDirective(const OMPDistributeDirective &S); 3097 void EmitOMPDistributeParallelForDirective( 3098 const OMPDistributeParallelForDirective &S); 3099 void EmitOMPDistributeParallelForSimdDirective( 3100 const OMPDistributeParallelForSimdDirective &S); 3101 void EmitOMPDistributeSimdDirective(const OMPDistributeSimdDirective &S); 3102 void EmitOMPTargetParallelForSimdDirective( 3103 const OMPTargetParallelForSimdDirective &S); 3104 void EmitOMPTargetSimdDirective(const OMPTargetSimdDirective &S); 3105 void EmitOMPTeamsDistributeDirective(const OMPTeamsDistributeDirective &S); 3106 void 3107 EmitOMPTeamsDistributeSimdDirective(const OMPTeamsDistributeSimdDirective &S); 3108 void EmitOMPTeamsDistributeParallelForSimdDirective( 3109 const OMPTeamsDistributeParallelForSimdDirective &S); 3110 void EmitOMPTeamsDistributeParallelForDirective( 3111 const OMPTeamsDistributeParallelForDirective &S); 3112 void EmitOMPTargetTeamsDirective(const OMPTargetTeamsDirective &S); 3113 void EmitOMPTargetTeamsDistributeDirective( 3114 const OMPTargetTeamsDistributeDirective &S); 3115 void EmitOMPTargetTeamsDistributeParallelForDirective( 3116 const OMPTargetTeamsDistributeParallelForDirective &S); 3117 void EmitOMPTargetTeamsDistributeParallelForSimdDirective( 3118 const OMPTargetTeamsDistributeParallelForSimdDirective &S); 3119 void EmitOMPTargetTeamsDistributeSimdDirective( 3120 const OMPTargetTeamsDistributeSimdDirective &S); 3121 3122 /// Emit device code for the target directive. 3123 static void EmitOMPTargetDeviceFunction(CodeGenModule &CGM, 3124 StringRef ParentName, 3125 const OMPTargetDirective &S); 3126 static void 3127 EmitOMPTargetParallelDeviceFunction(CodeGenModule &CGM, StringRef ParentName, 3128 const OMPTargetParallelDirective &S); 3129 /// Emit device code for the target parallel for directive. 3130 static void EmitOMPTargetParallelForDeviceFunction( 3131 CodeGenModule &CGM, StringRef ParentName, 3132 const OMPTargetParallelForDirective &S); 3133 /// Emit device code for the target parallel for simd directive. 3134 static void EmitOMPTargetParallelForSimdDeviceFunction( 3135 CodeGenModule &CGM, StringRef ParentName, 3136 const OMPTargetParallelForSimdDirective &S); 3137 /// Emit device code for the target teams directive. 3138 static void 3139 EmitOMPTargetTeamsDeviceFunction(CodeGenModule &CGM, StringRef ParentName, 3140 const OMPTargetTeamsDirective &S); 3141 /// Emit device code for the target teams distribute directive. 3142 static void EmitOMPTargetTeamsDistributeDeviceFunction( 3143 CodeGenModule &CGM, StringRef ParentName, 3144 const OMPTargetTeamsDistributeDirective &S); 3145 /// Emit device code for the target teams distribute simd directive. 3146 static void EmitOMPTargetTeamsDistributeSimdDeviceFunction( 3147 CodeGenModule &CGM, StringRef ParentName, 3148 const OMPTargetTeamsDistributeSimdDirective &S); 3149 /// Emit device code for the target simd directive. 3150 static void EmitOMPTargetSimdDeviceFunction(CodeGenModule &CGM, 3151 StringRef ParentName, 3152 const OMPTargetSimdDirective &S); 3153 /// Emit device code for the target teams distribute parallel for simd 3154 /// directive. 3155 static void EmitOMPTargetTeamsDistributeParallelForSimdDeviceFunction( 3156 CodeGenModule &CGM, StringRef ParentName, 3157 const OMPTargetTeamsDistributeParallelForSimdDirective &S); 3158 3159 static void EmitOMPTargetTeamsDistributeParallelForDeviceFunction( 3160 CodeGenModule &CGM, StringRef ParentName, 3161 const OMPTargetTeamsDistributeParallelForDirective &S); 3162 /// Emit inner loop of the worksharing/simd construct. 3163 /// 3164 /// \param S Directive, for which the inner loop must be emitted. 3165 /// \param RequiresCleanup true, if directive has some associated private 3166 /// variables. 3167 /// \param LoopCond Bollean condition for loop continuation. 3168 /// \param IncExpr Increment expression for loop control variable. 3169 /// \param BodyGen Generator for the inner body of the inner loop. 3170 /// \param PostIncGen Genrator for post-increment code (required for ordered 3171 /// loop directvies). 3172 void EmitOMPInnerLoop( 3173 const Stmt &S, bool RequiresCleanup, const Expr *LoopCond, 3174 const Expr *IncExpr, 3175 const llvm::function_ref<void(CodeGenFunction &)> BodyGen, 3176 const llvm::function_ref<void(CodeGenFunction &)> PostIncGen); 3177 3178 JumpDest getOMPCancelDestination(OpenMPDirectiveKind Kind); 3179 /// Emit initial code for loop counters of loop-based directives. 3180 void EmitOMPPrivateLoopCounters(const OMPLoopDirective &S, 3181 OMPPrivateScope &LoopScope); 3182 3183 /// Helper for the OpenMP loop directives. 3184 void EmitOMPLoopBody(const OMPLoopDirective &D, JumpDest LoopExit); 3185 3186 /// Emit code for the worksharing loop-based directive. 3187 /// \return true, if this construct has any lastprivate clause, false - 3188 /// otherwise. 3189 bool EmitOMPWorksharingLoop(const OMPLoopDirective &S, Expr *EUB, 3190 const CodeGenLoopBoundsTy &CodeGenLoopBounds, 3191 const CodeGenDispatchBoundsTy &CGDispatchBounds); 3192 3193 /// Emit code for the distribute loop-based directive. 3194 void EmitOMPDistributeLoop(const OMPLoopDirective &S, 3195 const CodeGenLoopTy &CodeGenLoop, Expr *IncExpr); 3196 3197 /// Helpers for the OpenMP loop directives. 3198 void EmitOMPSimdInit(const OMPLoopDirective &D, bool IsMonotonic = false); 3199 void EmitOMPSimdFinal( 3200 const OMPLoopDirective &D, 3201 const llvm::function_ref<llvm::Value *(CodeGenFunction &)> CondGen); 3202 3203 /// Emits the lvalue for the expression with possibly captured variable. 3204 LValue EmitOMPSharedLValue(const Expr *E); 3205 3206 private: 3207 /// Helpers for blocks. 3208 llvm::Value *EmitBlockLiteral(const CGBlockInfo &Info); 3209 3210 /// struct with the values to be passed to the OpenMP loop-related functions 3211 struct OMPLoopArguments { 3212 /// loop lower bound 3213 Address LB = Address::invalid(); 3214 /// loop upper bound 3215 Address UB = Address::invalid(); 3216 /// loop stride 3217 Address ST = Address::invalid(); 3218 /// isLastIteration argument for runtime functions 3219 Address IL = Address::invalid(); 3220 /// Chunk value generated by sema 3221 llvm::Value *Chunk = nullptr; 3222 /// EnsureUpperBound 3223 Expr *EUB = nullptr; 3224 /// IncrementExpression 3225 Expr *IncExpr = nullptr; 3226 /// Loop initialization 3227 Expr *Init = nullptr; 3228 /// Loop exit condition 3229 Expr *Cond = nullptr; 3230 /// Update of LB after a whole chunk has been executed 3231 Expr *NextLB = nullptr; 3232 /// Update of UB after a whole chunk has been executed 3233 Expr *NextUB = nullptr; 3234 OMPLoopArguments() = default; 3235 OMPLoopArguments(Address LB, Address UB, Address ST, Address IL, 3236 llvm::Value *Chunk = nullptr, Expr *EUB = nullptr, 3237 Expr *IncExpr = nullptr, Expr *Init = nullptr, 3238 Expr *Cond = nullptr, Expr *NextLB = nullptr, 3239 Expr *NextUB = nullptr) 3240 : LB(LB), UB(UB), ST(ST), IL(IL), Chunk(Chunk), EUB(EUB), 3241 IncExpr(IncExpr), Init(Init), Cond(Cond), NextLB(NextLB), 3242 NextUB(NextUB) {} 3243 }; 3244 void EmitOMPOuterLoop(bool DynamicOrOrdered, bool IsMonotonic, 3245 const OMPLoopDirective &S, OMPPrivateScope &LoopScope, 3246 const OMPLoopArguments &LoopArgs, 3247 const CodeGenLoopTy &CodeGenLoop, 3248 const CodeGenOrderedTy &CodeGenOrdered); 3249 void EmitOMPForOuterLoop(const OpenMPScheduleTy &ScheduleKind, 3250 bool IsMonotonic, const OMPLoopDirective &S, 3251 OMPPrivateScope &LoopScope, bool Ordered, 3252 const OMPLoopArguments &LoopArgs, 3253 const CodeGenDispatchBoundsTy &CGDispatchBounds); 3254 void EmitOMPDistributeOuterLoop(OpenMPDistScheduleClauseKind ScheduleKind, 3255 const OMPLoopDirective &S, 3256 OMPPrivateScope &LoopScope, 3257 const OMPLoopArguments &LoopArgs, 3258 const CodeGenLoopTy &CodeGenLoopContent); 3259 /// Emit code for sections directive. 3260 void EmitSections(const OMPExecutableDirective &S); 3261 3262 public: 3263 3264 //===--------------------------------------------------------------------===// 3265 // LValue Expression Emission 3266 //===--------------------------------------------------------------------===// 3267 3268 /// GetUndefRValue - Get an appropriate 'undef' rvalue for the given type. 3269 RValue GetUndefRValue(QualType Ty); 3270 3271 /// EmitUnsupportedRValue - Emit a dummy r-value using the type of E 3272 /// and issue an ErrorUnsupported style diagnostic (using the 3273 /// provided Name). 3274 RValue EmitUnsupportedRValue(const Expr *E, 3275 const char *Name); 3276 3277 /// EmitUnsupportedLValue - Emit a dummy l-value using the type of E and issue 3278 /// an ErrorUnsupported style diagnostic (using the provided Name). 3279 LValue EmitUnsupportedLValue(const Expr *E, 3280 const char *Name); 3281 3282 /// EmitLValue - Emit code to compute a designator that specifies the location 3283 /// of the expression. 3284 /// 3285 /// This can return one of two things: a simple address or a bitfield 3286 /// reference. In either case, the LLVM Value* in the LValue structure is 3287 /// guaranteed to be an LLVM pointer type. 3288 /// 3289 /// If this returns a bitfield reference, nothing about the pointee type of 3290 /// the LLVM value is known: For example, it may not be a pointer to an 3291 /// integer. 3292 /// 3293 /// If this returns a normal address, and if the lvalue's C type is fixed 3294 /// size, this method guarantees that the returned pointer type will point to 3295 /// an LLVM type of the same size of the lvalue's type. If the lvalue has a 3296 /// variable length type, this is not possible. 3297 /// 3298 LValue EmitLValue(const Expr *E); 3299 3300 /// Same as EmitLValue but additionally we generate checking code to 3301 /// guard against undefined behavior. This is only suitable when we know 3302 /// that the address will be used to access the object. 3303 LValue EmitCheckedLValue(const Expr *E, TypeCheckKind TCK); 3304 3305 RValue convertTempToRValue(Address addr, QualType type, 3306 SourceLocation Loc); 3307 3308 void EmitAtomicInit(Expr *E, LValue lvalue); 3309 3310 bool LValueIsSuitableForInlineAtomic(LValue Src); 3311 3312 RValue EmitAtomicLoad(LValue LV, SourceLocation SL, 3313 AggValueSlot Slot = AggValueSlot::ignored()); 3314 3315 RValue EmitAtomicLoad(LValue lvalue, SourceLocation loc, 3316 llvm::AtomicOrdering AO, bool IsVolatile = false, 3317 AggValueSlot slot = AggValueSlot::ignored()); 3318 3319 void EmitAtomicStore(RValue rvalue, LValue lvalue, bool isInit); 3320 3321 void EmitAtomicStore(RValue rvalue, LValue lvalue, llvm::AtomicOrdering AO, 3322 bool IsVolatile, bool isInit); 3323 3324 std::pair<RValue, llvm::Value *> EmitAtomicCompareExchange( 3325 LValue Obj, RValue Expected, RValue Desired, SourceLocation Loc, 3326 llvm::AtomicOrdering Success = 3327 llvm::AtomicOrdering::SequentiallyConsistent, 3328 llvm::AtomicOrdering Failure = 3329 llvm::AtomicOrdering::SequentiallyConsistent, 3330 bool IsWeak = false, AggValueSlot Slot = AggValueSlot::ignored()); 3331 3332 void EmitAtomicUpdate(LValue LVal, llvm::AtomicOrdering AO, 3333 const llvm::function_ref<RValue(RValue)> &UpdateOp, 3334 bool IsVolatile); 3335 3336 /// EmitToMemory - Change a scalar value from its value 3337 /// representation to its in-memory representation. 3338 llvm::Value *EmitToMemory(llvm::Value *Value, QualType Ty); 3339 3340 /// EmitFromMemory - Change a scalar value from its memory 3341 /// representation to its value representation. 3342 llvm::Value *EmitFromMemory(llvm::Value *Value, QualType Ty); 3343 3344 /// Check if the scalar \p Value is within the valid range for the given 3345 /// type \p Ty. 3346 /// 3347 /// Returns true if a check is needed (even if the range is unknown). 3348 bool EmitScalarRangeCheck(llvm::Value *Value, QualType Ty, 3349 SourceLocation Loc); 3350 3351 /// EmitLoadOfScalar - Load a scalar value from an address, taking 3352 /// care to appropriately convert from the memory representation to 3353 /// the LLVM value representation. 3354 llvm::Value *EmitLoadOfScalar(Address Addr, bool Volatile, QualType Ty, 3355 SourceLocation Loc, 3356 AlignmentSource Source = AlignmentSource::Type, 3357 bool isNontemporal = false) { 3358 return EmitLoadOfScalar(Addr, Volatile, Ty, Loc, LValueBaseInfo(Source), 3359 CGM.getTBAAAccessInfo(Ty), isNontemporal); 3360 } 3361 3362 llvm::Value *EmitLoadOfScalar(Address Addr, bool Volatile, QualType Ty, 3363 SourceLocation Loc, LValueBaseInfo BaseInfo, 3364 TBAAAccessInfo TBAAInfo, 3365 bool isNontemporal = false); 3366 3367 /// EmitLoadOfScalar - Load a scalar value from an address, taking 3368 /// care to appropriately convert from the memory representation to 3369 /// the LLVM value representation. The l-value must be a simple 3370 /// l-value. 3371 llvm::Value *EmitLoadOfScalar(LValue lvalue, SourceLocation Loc); 3372 3373 /// EmitStoreOfScalar - Store a scalar value to an address, taking 3374 /// care to appropriately convert from the memory representation to 3375 /// the LLVM value representation. 3376 void EmitStoreOfScalar(llvm::Value *Value, Address Addr, 3377 bool Volatile, QualType Ty, 3378 AlignmentSource Source = AlignmentSource::Type, 3379 bool isInit = false, bool isNontemporal = false) { 3380 EmitStoreOfScalar(Value, Addr, Volatile, Ty, LValueBaseInfo(Source), 3381 CGM.getTBAAAccessInfo(Ty), isInit, isNontemporal); 3382 } 3383 3384 void EmitStoreOfScalar(llvm::Value *Value, Address Addr, 3385 bool Volatile, QualType Ty, 3386 LValueBaseInfo BaseInfo, TBAAAccessInfo TBAAInfo, 3387 bool isInit = false, bool isNontemporal = false); 3388 3389 /// EmitStoreOfScalar - Store a scalar value to an address, taking 3390 /// care to appropriately convert from the memory representation to 3391 /// the LLVM value representation. The l-value must be a simple 3392 /// l-value. The isInit flag indicates whether this is an initialization. 3393 /// If so, atomic qualifiers are ignored and the store is always non-atomic. 3394 void EmitStoreOfScalar(llvm::Value *value, LValue lvalue, bool isInit=false); 3395 3396 /// EmitLoadOfLValue - Given an expression that represents a value lvalue, 3397 /// this method emits the address of the lvalue, then loads the result as an 3398 /// rvalue, returning the rvalue. 3399 RValue EmitLoadOfLValue(LValue V, SourceLocation Loc); 3400 RValue EmitLoadOfExtVectorElementLValue(LValue V); 3401 RValue EmitLoadOfBitfieldLValue(LValue LV, SourceLocation Loc); 3402 RValue EmitLoadOfGlobalRegLValue(LValue LV); 3403 3404 /// EmitStoreThroughLValue - Store the specified rvalue into the specified 3405 /// lvalue, where both are guaranteed to the have the same type, and that type 3406 /// is 'Ty'. 3407 void EmitStoreThroughLValue(RValue Src, LValue Dst, bool isInit = false); 3408 void EmitStoreThroughExtVectorComponentLValue(RValue Src, LValue Dst); 3409 void EmitStoreThroughGlobalRegLValue(RValue Src, LValue Dst); 3410 3411 /// EmitStoreThroughBitfieldLValue - Store Src into Dst with same constraints 3412 /// as EmitStoreThroughLValue. 3413 /// 3414 /// \param Result [out] - If non-null, this will be set to a Value* for the 3415 /// bit-field contents after the store, appropriate for use as the result of 3416 /// an assignment to the bit-field. 3417 void EmitStoreThroughBitfieldLValue(RValue Src, LValue Dst, 3418 llvm::Value **Result=nullptr); 3419 3420 /// Emit an l-value for an assignment (simple or compound) of complex type. 3421 LValue EmitComplexAssignmentLValue(const BinaryOperator *E); 3422 LValue EmitComplexCompoundAssignmentLValue(const CompoundAssignOperator *E); 3423 LValue EmitScalarCompoundAssignWithComplex(const CompoundAssignOperator *E, 3424 llvm::Value *&Result); 3425 3426 // Note: only available for agg return types 3427 LValue EmitBinaryOperatorLValue(const BinaryOperator *E); 3428 LValue EmitCompoundAssignmentLValue(const CompoundAssignOperator *E); 3429 // Note: only available for agg return types 3430 LValue EmitCallExprLValue(const CallExpr *E); 3431 // Note: only available for agg return types 3432 LValue EmitVAArgExprLValue(const VAArgExpr *E); 3433 LValue EmitDeclRefLValue(const DeclRefExpr *E); 3434 LValue EmitStringLiteralLValue(const StringLiteral *E); 3435 LValue EmitObjCEncodeExprLValue(const ObjCEncodeExpr *E); 3436 LValue EmitPredefinedLValue(const PredefinedExpr *E); 3437 LValue EmitUnaryOpLValue(const UnaryOperator *E); 3438 LValue EmitArraySubscriptExpr(const ArraySubscriptExpr *E, 3439 bool Accessed = false); 3440 LValue EmitOMPArraySectionExpr(const OMPArraySectionExpr *E, 3441 bool IsLowerBound = true); 3442 LValue EmitExtVectorElementExpr(const ExtVectorElementExpr *E); 3443 LValue EmitMemberExpr(const MemberExpr *E); 3444 LValue EmitObjCIsaExpr(const ObjCIsaExpr *E); 3445 LValue EmitCompoundLiteralLValue(const CompoundLiteralExpr *E); 3446 LValue EmitInitListLValue(const InitListExpr *E); 3447 LValue EmitConditionalOperatorLValue(const AbstractConditionalOperator *E); 3448 LValue EmitCastLValue(const CastExpr *E); 3449 LValue EmitMaterializeTemporaryExpr(const MaterializeTemporaryExpr *E); 3450 LValue EmitOpaqueValueLValue(const OpaqueValueExpr *e); 3451 3452 Address EmitExtVectorElementLValue(LValue V); 3453 3454 RValue EmitRValueForField(LValue LV, const FieldDecl *FD, SourceLocation Loc); 3455 3456 Address EmitArrayToPointerDecay(const Expr *Array, 3457 LValueBaseInfo *BaseInfo = nullptr, 3458 TBAAAccessInfo *TBAAInfo = nullptr); 3459 3460 class ConstantEmission { 3461 llvm::PointerIntPair<llvm::Constant*, 1, bool> ValueAndIsReference; 3462 ConstantEmission(llvm::Constant *C, bool isReference) 3463 : ValueAndIsReference(C, isReference) {} 3464 public: 3465 ConstantEmission() {} 3466 static ConstantEmission forReference(llvm::Constant *C) { 3467 return ConstantEmission(C, true); 3468 } 3469 static ConstantEmission forValue(llvm::Constant *C) { 3470 return ConstantEmission(C, false); 3471 } 3472 3473 explicit operator bool() const { 3474 return ValueAndIsReference.getOpaqueValue() != nullptr; 3475 } 3476 3477 bool isReference() const { return ValueAndIsReference.getInt(); } 3478 LValue getReferenceLValue(CodeGenFunction &CGF, Expr *refExpr) const { 3479 assert(isReference()); 3480 return CGF.MakeNaturalAlignAddrLValue(ValueAndIsReference.getPointer(), 3481 refExpr->getType()); 3482 } 3483 3484 llvm::Constant *getValue() const { 3485 assert(!isReference()); 3486 return ValueAndIsReference.getPointer(); 3487 } 3488 }; 3489 3490 ConstantEmission tryEmitAsConstant(DeclRefExpr *refExpr); 3491 ConstantEmission tryEmitAsConstant(const MemberExpr *ME); 3492 3493 RValue EmitPseudoObjectRValue(const PseudoObjectExpr *e, 3494 AggValueSlot slot = AggValueSlot::ignored()); 3495 LValue EmitPseudoObjectLValue(const PseudoObjectExpr *e); 3496 3497 llvm::Value *EmitIvarOffset(const ObjCInterfaceDecl *Interface, 3498 const ObjCIvarDecl *Ivar); 3499 LValue EmitLValueForField(LValue Base, const FieldDecl* Field); 3500 LValue EmitLValueForLambdaField(const FieldDecl *Field); 3501 3502 /// EmitLValueForFieldInitialization - Like EmitLValueForField, except that 3503 /// if the Field is a reference, this will return the address of the reference 3504 /// and not the address of the value stored in the reference. 3505 LValue EmitLValueForFieldInitialization(LValue Base, 3506 const FieldDecl* Field); 3507 3508 LValue EmitLValueForIvar(QualType ObjectTy, 3509 llvm::Value* Base, const ObjCIvarDecl *Ivar, 3510 unsigned CVRQualifiers); 3511 3512 LValue EmitCXXConstructLValue(const CXXConstructExpr *E); 3513 LValue EmitCXXBindTemporaryLValue(const CXXBindTemporaryExpr *E); 3514 LValue EmitLambdaLValue(const LambdaExpr *E); 3515 LValue EmitCXXTypeidLValue(const CXXTypeidExpr *E); 3516 LValue EmitCXXUuidofLValue(const CXXUuidofExpr *E); 3517 3518 LValue EmitObjCMessageExprLValue(const ObjCMessageExpr *E); 3519 LValue EmitObjCIvarRefLValue(const ObjCIvarRefExpr *E); 3520 LValue EmitStmtExprLValue(const StmtExpr *E); 3521 LValue EmitPointerToDataMemberBinaryExpr(const BinaryOperator *E); 3522 LValue EmitObjCSelectorLValue(const ObjCSelectorExpr *E); 3523 void EmitDeclRefExprDbgValue(const DeclRefExpr *E, const APValue &Init); 3524 3525 //===--------------------------------------------------------------------===// 3526 // Scalar Expression Emission 3527 //===--------------------------------------------------------------------===// 3528 3529 /// EmitCall - Generate a call of the given function, expecting the given 3530 /// result type, and using the given argument list which specifies both the 3531 /// LLVM arguments and the types they were derived from. 3532 RValue EmitCall(const CGFunctionInfo &CallInfo, const CGCallee &Callee, 3533 ReturnValueSlot ReturnValue, const CallArgList &Args, 3534 llvm::Instruction **callOrInvoke, SourceLocation Loc); 3535 RValue EmitCall(const CGFunctionInfo &CallInfo, const CGCallee &Callee, 3536 ReturnValueSlot ReturnValue, const CallArgList &Args, 3537 llvm::Instruction **callOrInvoke = nullptr) { 3538 return EmitCall(CallInfo, Callee, ReturnValue, Args, callOrInvoke, 3539 SourceLocation()); 3540 } 3541 RValue EmitCall(QualType FnType, const CGCallee &Callee, const CallExpr *E, 3542 ReturnValueSlot ReturnValue, llvm::Value *Chain = nullptr); 3543 RValue EmitCallExpr(const CallExpr *E, 3544 ReturnValueSlot ReturnValue = ReturnValueSlot()); 3545 RValue EmitSimpleCallExpr(const CallExpr *E, ReturnValueSlot ReturnValue); 3546 CGCallee EmitCallee(const Expr *E); 3547 3548 void checkTargetFeatures(const CallExpr *E, const FunctionDecl *TargetDecl); 3549 3550 llvm::CallInst *EmitRuntimeCall(llvm::Value *callee, 3551 const Twine &name = ""); 3552 llvm::CallInst *EmitRuntimeCall(llvm::Value *callee, 3553 ArrayRef<llvm::Value*> args, 3554 const Twine &name = ""); 3555 llvm::CallInst *EmitNounwindRuntimeCall(llvm::Value *callee, 3556 const Twine &name = ""); 3557 llvm::CallInst *EmitNounwindRuntimeCall(llvm::Value *callee, 3558 ArrayRef<llvm::Value*> args, 3559 const Twine &name = ""); 3560 3561 SmallVector<llvm::OperandBundleDef, 1> 3562 getBundlesForFunclet(llvm::Value *Callee); 3563 3564 llvm::CallSite EmitCallOrInvoke(llvm::Value *Callee, 3565 ArrayRef<llvm::Value *> Args, 3566 const Twine &Name = ""); 3567 llvm::CallSite EmitRuntimeCallOrInvoke(llvm::Value *callee, 3568 ArrayRef<llvm::Value*> args, 3569 const Twine &name = ""); 3570 llvm::CallSite EmitRuntimeCallOrInvoke(llvm::Value *callee, 3571 const Twine &name = ""); 3572 void EmitNoreturnRuntimeCallOrInvoke(llvm::Value *callee, 3573 ArrayRef<llvm::Value*> args); 3574 3575 CGCallee BuildAppleKextVirtualCall(const CXXMethodDecl *MD, 3576 NestedNameSpecifier *Qual, 3577 llvm::Type *Ty); 3578 3579 CGCallee BuildAppleKextVirtualDestructorCall(const CXXDestructorDecl *DD, 3580 CXXDtorType Type, 3581 const CXXRecordDecl *RD); 3582 3583 // These functions emit calls to the special functions of non-trivial C 3584 // structs. 3585 void defaultInitNonTrivialCStructVar(LValue Dst); 3586 void callCStructDefaultConstructor(LValue Dst); 3587 void callCStructDestructor(LValue Dst); 3588 void callCStructCopyConstructor(LValue Dst, LValue Src); 3589 void callCStructMoveConstructor(LValue Dst, LValue Src); 3590 void callCStructCopyAssignmentOperator(LValue Dst, LValue Src); 3591 void callCStructMoveAssignmentOperator(LValue Dst, LValue Src); 3592 3593 RValue 3594 EmitCXXMemberOrOperatorCall(const CXXMethodDecl *Method, 3595 const CGCallee &Callee, 3596 ReturnValueSlot ReturnValue, llvm::Value *This, 3597 llvm::Value *ImplicitParam, 3598 QualType ImplicitParamTy, const CallExpr *E, 3599 CallArgList *RtlArgs); 3600 RValue EmitCXXDestructorCall(const CXXDestructorDecl *DD, 3601 const CGCallee &Callee, 3602 llvm::Value *This, llvm::Value *ImplicitParam, 3603 QualType ImplicitParamTy, const CallExpr *E, 3604 StructorType Type); 3605 RValue EmitCXXMemberCallExpr(const CXXMemberCallExpr *E, 3606 ReturnValueSlot ReturnValue); 3607 RValue EmitCXXMemberOrOperatorMemberCallExpr(const CallExpr *CE, 3608 const CXXMethodDecl *MD, 3609 ReturnValueSlot ReturnValue, 3610 bool HasQualifier, 3611 NestedNameSpecifier *Qualifier, 3612 bool IsArrow, const Expr *Base); 3613 // Compute the object pointer. 3614 Address EmitCXXMemberDataPointerAddress(const Expr *E, Address base, 3615 llvm::Value *memberPtr, 3616 const MemberPointerType *memberPtrType, 3617 LValueBaseInfo *BaseInfo = nullptr, 3618 TBAAAccessInfo *TBAAInfo = nullptr); 3619 RValue EmitCXXMemberPointerCallExpr(const CXXMemberCallExpr *E, 3620 ReturnValueSlot ReturnValue); 3621 3622 RValue EmitCXXOperatorMemberCallExpr(const CXXOperatorCallExpr *E, 3623 const CXXMethodDecl *MD, 3624 ReturnValueSlot ReturnValue); 3625 RValue EmitCXXPseudoDestructorExpr(const CXXPseudoDestructorExpr *E); 3626 3627 RValue EmitCUDAKernelCallExpr(const CUDAKernelCallExpr *E, 3628 ReturnValueSlot ReturnValue); 3629 3630 RValue EmitNVPTXDevicePrintfCallExpr(const CallExpr *E, 3631 ReturnValueSlot ReturnValue); 3632 3633 RValue EmitBuiltinExpr(const FunctionDecl *FD, 3634 unsigned BuiltinID, const CallExpr *E, 3635 ReturnValueSlot ReturnValue); 3636 3637 /// Emit IR for __builtin_os_log_format. 3638 RValue emitBuiltinOSLogFormat(const CallExpr &E); 3639 3640 llvm::Function *generateBuiltinOSLogHelperFunction( 3641 const analyze_os_log::OSLogBufferLayout &Layout, 3642 CharUnits BufferAlignment); 3643 3644 RValue EmitBlockCallExpr(const CallExpr *E, ReturnValueSlot ReturnValue); 3645 3646 /// EmitTargetBuiltinExpr - Emit the given builtin call. Returns 0 if the call 3647 /// is unhandled by the current target. 3648 llvm::Value *EmitTargetBuiltinExpr(unsigned BuiltinID, const CallExpr *E); 3649 3650 llvm::Value *EmitAArch64CompareBuiltinExpr(llvm::Value *Op, llvm::Type *Ty, 3651 const llvm::CmpInst::Predicate Fp, 3652 const llvm::CmpInst::Predicate Ip, 3653 const llvm::Twine &Name = ""); 3654 llvm::Value *EmitARMBuiltinExpr(unsigned BuiltinID, const CallExpr *E, 3655 llvm::Triple::ArchType Arch); 3656 3657 llvm::Value *EmitCommonNeonBuiltinExpr(unsigned BuiltinID, 3658 unsigned LLVMIntrinsic, 3659 unsigned AltLLVMIntrinsic, 3660 const char *NameHint, 3661 unsigned Modifier, 3662 const CallExpr *E, 3663 SmallVectorImpl<llvm::Value *> &Ops, 3664 Address PtrOp0, Address PtrOp1, 3665 llvm::Triple::ArchType Arch); 3666 3667 llvm::Value *EmitISOVolatileLoad(const CallExpr *E); 3668 llvm::Value *EmitISOVolatileStore(const CallExpr *E); 3669 3670 llvm::Function *LookupNeonLLVMIntrinsic(unsigned IntrinsicID, 3671 unsigned Modifier, llvm::Type *ArgTy, 3672 const CallExpr *E); 3673 llvm::Value *EmitNeonCall(llvm::Function *F, 3674 SmallVectorImpl<llvm::Value*> &O, 3675 const char *name, 3676 unsigned shift = 0, bool rightshift = false); 3677 llvm::Value *EmitNeonSplat(llvm::Value *V, llvm::Constant *Idx); 3678 llvm::Value *EmitNeonShiftVector(llvm::Value *V, llvm::Type *Ty, 3679 bool negateForRightShift); 3680 llvm::Value *EmitNeonRShiftImm(llvm::Value *Vec, llvm::Value *Amt, 3681 llvm::Type *Ty, bool usgn, const char *name); 3682 llvm::Value *vectorWrapScalar16(llvm::Value *Op); 3683 llvm::Value *EmitAArch64BuiltinExpr(unsigned BuiltinID, const CallExpr *E, 3684 llvm::Triple::ArchType Arch); 3685 3686 llvm::Value *BuildVector(ArrayRef<llvm::Value*> Ops); 3687 llvm::Value *EmitX86BuiltinExpr(unsigned BuiltinID, const CallExpr *E); 3688 llvm::Value *EmitPPCBuiltinExpr(unsigned BuiltinID, const CallExpr *E); 3689 llvm::Value *EmitAMDGPUBuiltinExpr(unsigned BuiltinID, const CallExpr *E); 3690 llvm::Value *EmitSystemZBuiltinExpr(unsigned BuiltinID, const CallExpr *E); 3691 llvm::Value *EmitNVPTXBuiltinExpr(unsigned BuiltinID, const CallExpr *E); 3692 llvm::Value *EmitWebAssemblyBuiltinExpr(unsigned BuiltinID, 3693 const CallExpr *E); 3694 llvm::Value *EmitHexagonBuiltinExpr(unsigned BuiltinID, const CallExpr *E); 3695 3696 private: 3697 enum class MSVCIntrin; 3698 3699 public: 3700 llvm::Value *EmitMSVCBuiltinExpr(MSVCIntrin BuiltinID, const CallExpr *E); 3701 3702 llvm::Value *EmitBuiltinAvailable(ArrayRef<llvm::Value *> Args); 3703 3704 llvm::Value *EmitObjCProtocolExpr(const ObjCProtocolExpr *E); 3705 llvm::Value *EmitObjCStringLiteral(const ObjCStringLiteral *E); 3706 llvm::Value *EmitObjCBoxedExpr(const ObjCBoxedExpr *E); 3707 llvm::Value *EmitObjCArrayLiteral(const ObjCArrayLiteral *E); 3708 llvm::Value *EmitObjCDictionaryLiteral(const ObjCDictionaryLiteral *E); 3709 llvm::Value *EmitObjCCollectionLiteral(const Expr *E, 3710 const ObjCMethodDecl *MethodWithObjects); 3711 llvm::Value *EmitObjCSelectorExpr(const ObjCSelectorExpr *E); 3712 RValue EmitObjCMessageExpr(const ObjCMessageExpr *E, 3713 ReturnValueSlot Return = ReturnValueSlot()); 3714 3715 /// Retrieves the default cleanup kind for an ARC cleanup. 3716 /// Except under -fobjc-arc-eh, ARC cleanups are normal-only. 3717 CleanupKind getARCCleanupKind() { 3718 return CGM.getCodeGenOpts().ObjCAutoRefCountExceptions 3719 ? NormalAndEHCleanup : NormalCleanup; 3720 } 3721 3722 // ARC primitives. 3723 void EmitARCInitWeak(Address addr, llvm::Value *value); 3724 void EmitARCDestroyWeak(Address addr); 3725 llvm::Value *EmitARCLoadWeak(Address addr); 3726 llvm::Value *EmitARCLoadWeakRetained(Address addr); 3727 llvm::Value *EmitARCStoreWeak(Address addr, llvm::Value *value, bool ignored); 3728 void emitARCCopyAssignWeak(QualType Ty, Address DstAddr, Address SrcAddr); 3729 void emitARCMoveAssignWeak(QualType Ty, Address DstAddr, Address SrcAddr); 3730 void EmitARCCopyWeak(Address dst, Address src); 3731 void EmitARCMoveWeak(Address dst, Address src); 3732 llvm::Value *EmitARCRetainAutorelease(QualType type, llvm::Value *value); 3733 llvm::Value *EmitARCRetainAutoreleaseNonBlock(llvm::Value *value); 3734 llvm::Value *EmitARCStoreStrong(LValue lvalue, llvm::Value *value, 3735 bool resultIgnored); 3736 llvm::Value *EmitARCStoreStrongCall(Address addr, llvm::Value *value, 3737 bool resultIgnored); 3738 llvm::Value *EmitARCRetain(QualType type, llvm::Value *value); 3739 llvm::Value *EmitARCRetainNonBlock(llvm::Value *value); 3740 llvm::Value *EmitARCRetainBlock(llvm::Value *value, bool mandatory); 3741 void EmitARCDestroyStrong(Address addr, ARCPreciseLifetime_t precise); 3742 void EmitARCRelease(llvm::Value *value, ARCPreciseLifetime_t precise); 3743 llvm::Value *EmitARCAutorelease(llvm::Value *value); 3744 llvm::Value *EmitARCAutoreleaseReturnValue(llvm::Value *value); 3745 llvm::Value *EmitARCRetainAutoreleaseReturnValue(llvm::Value *value); 3746 llvm::Value *EmitARCRetainAutoreleasedReturnValue(llvm::Value *value); 3747 llvm::Value *EmitARCUnsafeClaimAutoreleasedReturnValue(llvm::Value *value); 3748 3749 std::pair<LValue,llvm::Value*> 3750 EmitARCStoreAutoreleasing(const BinaryOperator *e); 3751 std::pair<LValue,llvm::Value*> 3752 EmitARCStoreStrong(const BinaryOperator *e, bool ignored); 3753 std::pair<LValue,llvm::Value*> 3754 EmitARCStoreUnsafeUnretained(const BinaryOperator *e, bool ignored); 3755 3756 llvm::Value *EmitObjCThrowOperand(const Expr *expr); 3757 llvm::Value *EmitObjCConsumeObject(QualType T, llvm::Value *Ptr); 3758 llvm::Value *EmitObjCExtendObjectLifetime(QualType T, llvm::Value *Ptr); 3759 3760 llvm::Value *EmitARCExtendBlockObject(const Expr *expr); 3761 llvm::Value *EmitARCReclaimReturnedObject(const Expr *e, 3762 bool allowUnsafeClaim); 3763 llvm::Value *EmitARCRetainScalarExpr(const Expr *expr); 3764 llvm::Value *EmitARCRetainAutoreleaseScalarExpr(const Expr *expr); 3765 llvm::Value *EmitARCUnsafeUnretainedScalarExpr(const Expr *expr); 3766 3767 void EmitARCIntrinsicUse(ArrayRef<llvm::Value*> values); 3768 3769 static Destroyer destroyARCStrongImprecise; 3770 static Destroyer destroyARCStrongPrecise; 3771 static Destroyer destroyARCWeak; 3772 static Destroyer emitARCIntrinsicUse; 3773 static Destroyer destroyNonTrivialCStruct; 3774 3775 void EmitObjCAutoreleasePoolPop(llvm::Value *Ptr); 3776 llvm::Value *EmitObjCAutoreleasePoolPush(); 3777 llvm::Value *EmitObjCMRRAutoreleasePoolPush(); 3778 void EmitObjCAutoreleasePoolCleanup(llvm::Value *Ptr); 3779 void EmitObjCMRRAutoreleasePoolPop(llvm::Value *Ptr); 3780 3781 /// Emits a reference binding to the passed in expression. 3782 RValue EmitReferenceBindingToExpr(const Expr *E); 3783 3784 //===--------------------------------------------------------------------===// 3785 // Expression Emission 3786 //===--------------------------------------------------------------------===// 3787 3788 // Expressions are broken into three classes: scalar, complex, aggregate. 3789 3790 /// EmitScalarExpr - Emit the computation of the specified expression of LLVM 3791 /// scalar type, returning the result. 3792 llvm::Value *EmitScalarExpr(const Expr *E , bool IgnoreResultAssign = false); 3793 3794 /// Emit a conversion from the specified type to the specified destination 3795 /// type, both of which are LLVM scalar types. 3796 llvm::Value *EmitScalarConversion(llvm::Value *Src, QualType SrcTy, 3797 QualType DstTy, SourceLocation Loc); 3798 3799 /// Emit a conversion from the specified complex type to the specified 3800 /// destination type, where the destination type is an LLVM scalar type. 3801 llvm::Value *EmitComplexToScalarConversion(ComplexPairTy Src, QualType SrcTy, 3802 QualType DstTy, 3803 SourceLocation Loc); 3804 3805 /// EmitAggExpr - Emit the computation of the specified expression 3806 /// of aggregate type. The result is computed into the given slot, 3807 /// which may be null to indicate that the value is not needed. 3808 void EmitAggExpr(const Expr *E, AggValueSlot AS); 3809 3810 /// EmitAggExprToLValue - Emit the computation of the specified expression of 3811 /// aggregate type into a temporary LValue. 3812 LValue EmitAggExprToLValue(const Expr *E); 3813 3814 /// EmitExtendGCLifetime - Given a pointer to an Objective-C object, 3815 /// make sure it survives garbage collection until this point. 3816 void EmitExtendGCLifetime(llvm::Value *object); 3817 3818 /// EmitComplexExpr - Emit the computation of the specified expression of 3819 /// complex type, returning the result. 3820 ComplexPairTy EmitComplexExpr(const Expr *E, 3821 bool IgnoreReal = false, 3822 bool IgnoreImag = false); 3823 3824 /// EmitComplexExprIntoLValue - Emit the given expression of complex 3825 /// type and place its result into the specified l-value. 3826 void EmitComplexExprIntoLValue(const Expr *E, LValue dest, bool isInit); 3827 3828 /// EmitStoreOfComplex - Store a complex number into the specified l-value. 3829 void EmitStoreOfComplex(ComplexPairTy V, LValue dest, bool isInit); 3830 3831 /// EmitLoadOfComplex - Load a complex number from the specified l-value. 3832 ComplexPairTy EmitLoadOfComplex(LValue src, SourceLocation loc); 3833 3834 Address emitAddrOfRealComponent(Address complex, QualType complexType); 3835 Address emitAddrOfImagComponent(Address complex, QualType complexType); 3836 3837 /// AddInitializerToStaticVarDecl - Add the initializer for 'D' to the 3838 /// global variable that has already been created for it. If the initializer 3839 /// has a different type than GV does, this may free GV and return a different 3840 /// one. Otherwise it just returns GV. 3841 llvm::GlobalVariable * 3842 AddInitializerToStaticVarDecl(const VarDecl &D, 3843 llvm::GlobalVariable *GV); 3844 3845 3846 /// EmitCXXGlobalVarDeclInit - Create the initializer for a C++ 3847 /// variable with global storage. 3848 void EmitCXXGlobalVarDeclInit(const VarDecl &D, llvm::Constant *DeclPtr, 3849 bool PerformInit); 3850 3851 llvm::Constant *createAtExitStub(const VarDecl &VD, llvm::Constant *Dtor, 3852 llvm::Constant *Addr); 3853 3854 /// Call atexit() with a function that passes the given argument to 3855 /// the given function. 3856 void registerGlobalDtorWithAtExit(const VarDecl &D, llvm::Constant *fn, 3857 llvm::Constant *addr); 3858 3859 /// Call atexit() with function dtorStub. 3860 void registerGlobalDtorWithAtExit(llvm::Constant *dtorStub); 3861 3862 /// Emit code in this function to perform a guarded variable 3863 /// initialization. Guarded initializations are used when it's not 3864 /// possible to prove that an initialization will be done exactly 3865 /// once, e.g. with a static local variable or a static data member 3866 /// of a class template. 3867 void EmitCXXGuardedInit(const VarDecl &D, llvm::GlobalVariable *DeclPtr, 3868 bool PerformInit); 3869 3870 enum class GuardKind { VariableGuard, TlsGuard }; 3871 3872 /// Emit a branch to select whether or not to perform guarded initialization. 3873 void EmitCXXGuardedInitBranch(llvm::Value *NeedsInit, 3874 llvm::BasicBlock *InitBlock, 3875 llvm::BasicBlock *NoInitBlock, 3876 GuardKind Kind, const VarDecl *D); 3877 3878 /// GenerateCXXGlobalInitFunc - Generates code for initializing global 3879 /// variables. 3880 void GenerateCXXGlobalInitFunc(llvm::Function *Fn, 3881 ArrayRef<llvm::Function *> CXXThreadLocals, 3882 Address Guard = Address::invalid()); 3883 3884 /// GenerateCXXGlobalDtorsFunc - Generates code for destroying global 3885 /// variables. 3886 void GenerateCXXGlobalDtorsFunc( 3887 llvm::Function *Fn, 3888 const std::vector<std::pair<llvm::WeakTrackingVH, llvm::Constant *>> 3889 &DtorsAndObjects); 3890 3891 void GenerateCXXGlobalVarDeclInitFunc(llvm::Function *Fn, 3892 const VarDecl *D, 3893 llvm::GlobalVariable *Addr, 3894 bool PerformInit); 3895 3896 void EmitCXXConstructExpr(const CXXConstructExpr *E, AggValueSlot Dest); 3897 3898 void EmitSynthesizedCXXCopyCtor(Address Dest, Address Src, const Expr *Exp); 3899 3900 void enterFullExpression(const ExprWithCleanups *E) { 3901 if (E->getNumObjects() == 0) return; 3902 enterNonTrivialFullExpression(E); 3903 } 3904 void enterNonTrivialFullExpression(const ExprWithCleanups *E); 3905 3906 void EmitCXXThrowExpr(const CXXThrowExpr *E, bool KeepInsertionPoint = true); 3907 3908 void EmitLambdaExpr(const LambdaExpr *E, AggValueSlot Dest); 3909 3910 RValue EmitAtomicExpr(AtomicExpr *E); 3911 3912 //===--------------------------------------------------------------------===// 3913 // Annotations Emission 3914 //===--------------------------------------------------------------------===// 3915 3916 /// Emit an annotation call (intrinsic or builtin). 3917 llvm::Value *EmitAnnotationCall(llvm::Value *AnnotationFn, 3918 llvm::Value *AnnotatedVal, 3919 StringRef AnnotationStr, 3920 SourceLocation Location); 3921 3922 /// Emit local annotations for the local variable V, declared by D. 3923 void EmitVarAnnotations(const VarDecl *D, llvm::Value *V); 3924 3925 /// Emit field annotations for the given field & value. Returns the 3926 /// annotation result. 3927 Address EmitFieldAnnotations(const FieldDecl *D, Address V); 3928 3929 //===--------------------------------------------------------------------===// 3930 // Internal Helpers 3931 //===--------------------------------------------------------------------===// 3932 3933 /// ContainsLabel - Return true if the statement contains a label in it. If 3934 /// this statement is not executed normally, it not containing a label means 3935 /// that we can just remove the code. 3936 static bool ContainsLabel(const Stmt *S, bool IgnoreCaseStmts = false); 3937 3938 /// containsBreak - Return true if the statement contains a break out of it. 3939 /// If the statement (recursively) contains a switch or loop with a break 3940 /// inside of it, this is fine. 3941 static bool containsBreak(const Stmt *S); 3942 3943 /// Determine if the given statement might introduce a declaration into the 3944 /// current scope, by being a (possibly-labelled) DeclStmt. 3945 static bool mightAddDeclToScope(const Stmt *S); 3946 3947 /// ConstantFoldsToSimpleInteger - If the specified expression does not fold 3948 /// to a constant, or if it does but contains a label, return false. If it 3949 /// constant folds return true and set the boolean result in Result. 3950 bool ConstantFoldsToSimpleInteger(const Expr *Cond, bool &Result, 3951 bool AllowLabels = false); 3952 3953 /// ConstantFoldsToSimpleInteger - If the specified expression does not fold 3954 /// to a constant, or if it does but contains a label, return false. If it 3955 /// constant folds return true and set the folded value. 3956 bool ConstantFoldsToSimpleInteger(const Expr *Cond, llvm::APSInt &Result, 3957 bool AllowLabels = false); 3958 3959 /// EmitBranchOnBoolExpr - Emit a branch on a boolean condition (e.g. for an 3960 /// if statement) to the specified blocks. Based on the condition, this might 3961 /// try to simplify the codegen of the conditional based on the branch. 3962 /// TrueCount should be the number of times we expect the condition to 3963 /// evaluate to true based on PGO data. 3964 void EmitBranchOnBoolExpr(const Expr *Cond, llvm::BasicBlock *TrueBlock, 3965 llvm::BasicBlock *FalseBlock, uint64_t TrueCount); 3966 3967 /// Given an assignment `*LHS = RHS`, emit a test that checks if \p RHS is 3968 /// nonnull, if \p LHS is marked _Nonnull. 3969 void EmitNullabilityCheck(LValue LHS, llvm::Value *RHS, SourceLocation Loc); 3970 3971 /// An enumeration which makes it easier to specify whether or not an 3972 /// operation is a subtraction. 3973 enum { NotSubtraction = false, IsSubtraction = true }; 3974 3975 /// Same as IRBuilder::CreateInBoundsGEP, but additionally emits a check to 3976 /// detect undefined behavior when the pointer overflow sanitizer is enabled. 3977 /// \p SignedIndices indicates whether any of the GEP indices are signed. 3978 /// \p IsSubtraction indicates whether the expression used to form the GEP 3979 /// is a subtraction. 3980 llvm::Value *EmitCheckedInBoundsGEP(llvm::Value *Ptr, 3981 ArrayRef<llvm::Value *> IdxList, 3982 bool SignedIndices, 3983 bool IsSubtraction, 3984 SourceLocation Loc, 3985 const Twine &Name = ""); 3986 3987 /// Specifies which type of sanitizer check to apply when handling a 3988 /// particular builtin. 3989 enum BuiltinCheckKind { 3990 BCK_CTZPassedZero, 3991 BCK_CLZPassedZero, 3992 }; 3993 3994 /// Emits an argument for a call to a builtin. If the builtin sanitizer is 3995 /// enabled, a runtime check specified by \p Kind is also emitted. 3996 llvm::Value *EmitCheckedArgForBuiltin(const Expr *E, BuiltinCheckKind Kind); 3997 3998 /// Emit a description of a type in a format suitable for passing to 3999 /// a runtime sanitizer handler. 4000 llvm::Constant *EmitCheckTypeDescriptor(QualType T); 4001 4002 /// Convert a value into a format suitable for passing to a runtime 4003 /// sanitizer handler. 4004 llvm::Value *EmitCheckValue(llvm::Value *V); 4005 4006 /// Emit a description of a source location in a format suitable for 4007 /// passing to a runtime sanitizer handler. 4008 llvm::Constant *EmitCheckSourceLocation(SourceLocation Loc); 4009 4010 /// Create a basic block that will call a handler function in a 4011 /// sanitizer runtime with the provided arguments, and create a conditional 4012 /// branch to it. 4013 void EmitCheck(ArrayRef<std::pair<llvm::Value *, SanitizerMask>> Checked, 4014 SanitizerHandler Check, ArrayRef<llvm::Constant *> StaticArgs, 4015 ArrayRef<llvm::Value *> DynamicArgs); 4016 4017 /// Emit a slow path cross-DSO CFI check which calls __cfi_slowpath 4018 /// if Cond if false. 4019 void EmitCfiSlowPathCheck(SanitizerMask Kind, llvm::Value *Cond, 4020 llvm::ConstantInt *TypeId, llvm::Value *Ptr, 4021 ArrayRef<llvm::Constant *> StaticArgs); 4022 4023 /// Emit a reached-unreachable diagnostic if \p Loc is valid and runtime 4024 /// checking is enabled. Otherwise, just emit an unreachable instruction. 4025 void EmitUnreachable(SourceLocation Loc); 4026 4027 /// Create a basic block that will call the trap intrinsic, and emit a 4028 /// conditional branch to it, for the -ftrapv checks. 4029 void EmitTrapCheck(llvm::Value *Checked); 4030 4031 /// Emit a call to trap or debugtrap and attach function attribute 4032 /// "trap-func-name" if specified. 4033 llvm::CallInst *EmitTrapCall(llvm::Intrinsic::ID IntrID); 4034 4035 /// Emit a stub for the cross-DSO CFI check function. 4036 void EmitCfiCheckStub(); 4037 4038 /// Emit a cross-DSO CFI failure handling function. 4039 void EmitCfiCheckFail(); 4040 4041 /// Create a check for a function parameter that may potentially be 4042 /// declared as non-null. 4043 void EmitNonNullArgCheck(RValue RV, QualType ArgType, SourceLocation ArgLoc, 4044 AbstractCallee AC, unsigned ParmNum); 4045 4046 /// EmitCallArg - Emit a single call argument. 4047 void EmitCallArg(CallArgList &args, const Expr *E, QualType ArgType); 4048 4049 /// EmitDelegateCallArg - We are performing a delegate call; that 4050 /// is, the current function is delegating to another one. Produce 4051 /// a r-value suitable for passing the given parameter. 4052 void EmitDelegateCallArg(CallArgList &args, const VarDecl *param, 4053 SourceLocation loc); 4054 4055 /// SetFPAccuracy - Set the minimum required accuracy of the given floating 4056 /// point operation, expressed as the maximum relative error in ulp. 4057 void SetFPAccuracy(llvm::Value *Val, float Accuracy); 4058 4059 private: 4060 llvm::MDNode *getRangeForLoadFromType(QualType Ty); 4061 void EmitReturnOfRValue(RValue RV, QualType Ty); 4062 4063 void deferPlaceholderReplacement(llvm::Instruction *Old, llvm::Value *New); 4064 4065 llvm::SmallVector<std::pair<llvm::Instruction *, llvm::Value *>, 4> 4066 DeferredReplacements; 4067 4068 /// Set the address of a local variable. 4069 void setAddrOfLocalVar(const VarDecl *VD, Address Addr) { 4070 assert(!LocalDeclMap.count(VD) && "Decl already exists in LocalDeclMap!"); 4071 LocalDeclMap.insert({VD, Addr}); 4072 } 4073 4074 /// ExpandTypeFromArgs - Reconstruct a structure of type \arg Ty 4075 /// from function arguments into \arg Dst. See ABIArgInfo::Expand. 4076 /// 4077 /// \param AI - The first function argument of the expansion. 4078 void ExpandTypeFromArgs(QualType Ty, LValue Dst, 4079 SmallVectorImpl<llvm::Value *>::iterator &AI); 4080 4081 /// ExpandTypeToArgs - Expand an CallArg \arg Arg, with the LLVM type for \arg 4082 /// Ty, into individual arguments on the provided vector \arg IRCallArgs, 4083 /// starting at index \arg IRCallArgPos. See ABIArgInfo::Expand. 4084 void ExpandTypeToArgs(QualType Ty, CallArg Arg, llvm::FunctionType *IRFuncTy, 4085 SmallVectorImpl<llvm::Value *> &IRCallArgs, 4086 unsigned &IRCallArgPos); 4087 4088 llvm::Value* EmitAsmInput(const TargetInfo::ConstraintInfo &Info, 4089 const Expr *InputExpr, std::string &ConstraintStr); 4090 4091 llvm::Value* EmitAsmInputLValue(const TargetInfo::ConstraintInfo &Info, 4092 LValue InputValue, QualType InputType, 4093 std::string &ConstraintStr, 4094 SourceLocation Loc); 4095 4096 /// Attempts to statically evaluate the object size of E. If that 4097 /// fails, emits code to figure the size of E out for us. This is 4098 /// pass_object_size aware. 4099 /// 4100 /// If EmittedExpr is non-null, this will use that instead of re-emitting E. 4101 llvm::Value *evaluateOrEmitBuiltinObjectSize(const Expr *E, unsigned Type, 4102 llvm::IntegerType *ResType, 4103 llvm::Value *EmittedE); 4104 4105 /// Emits the size of E, as required by __builtin_object_size. This 4106 /// function is aware of pass_object_size parameters, and will act accordingly 4107 /// if E is a parameter with the pass_object_size attribute. 4108 llvm::Value *emitBuiltinObjectSize(const Expr *E, unsigned Type, 4109 llvm::IntegerType *ResType, 4110 llvm::Value *EmittedE); 4111 4112 public: 4113 #ifndef NDEBUG 4114 // Determine whether the given argument is an Objective-C method 4115 // that may have type parameters in its signature. 4116 static bool isObjCMethodWithTypeParams(const ObjCMethodDecl *method) { 4117 const DeclContext *dc = method->getDeclContext(); 4118 if (const ObjCInterfaceDecl *classDecl= dyn_cast<ObjCInterfaceDecl>(dc)) { 4119 return classDecl->getTypeParamListAsWritten(); 4120 } 4121 4122 if (const ObjCCategoryDecl *catDecl = dyn_cast<ObjCCategoryDecl>(dc)) { 4123 return catDecl->getTypeParamList(); 4124 } 4125 4126 return false; 4127 } 4128 4129 template<typename T> 4130 static bool isObjCMethodWithTypeParams(const T *) { return false; } 4131 #endif 4132 4133 enum class EvaluationOrder { 4134 ///! No language constraints on evaluation order. 4135 Default, 4136 ///! Language semantics require left-to-right evaluation. 4137 ForceLeftToRight, 4138 ///! Language semantics require right-to-left evaluation. 4139 ForceRightToLeft 4140 }; 4141 4142 /// EmitCallArgs - Emit call arguments for a function. 4143 template <typename T> 4144 void EmitCallArgs(CallArgList &Args, const T *CallArgTypeInfo, 4145 llvm::iterator_range<CallExpr::const_arg_iterator> ArgRange, 4146 AbstractCallee AC = AbstractCallee(), 4147 unsigned ParamsToSkip = 0, 4148 EvaluationOrder Order = EvaluationOrder::Default) { 4149 SmallVector<QualType, 16> ArgTypes; 4150 CallExpr::const_arg_iterator Arg = ArgRange.begin(); 4151 4152 assert((ParamsToSkip == 0 || CallArgTypeInfo) && 4153 "Can't skip parameters if type info is not provided"); 4154 if (CallArgTypeInfo) { 4155 #ifndef NDEBUG 4156 bool isGenericMethod = isObjCMethodWithTypeParams(CallArgTypeInfo); 4157 #endif 4158 4159 // First, use the argument types that the type info knows about 4160 for (auto I = CallArgTypeInfo->param_type_begin() + ParamsToSkip, 4161 E = CallArgTypeInfo->param_type_end(); 4162 I != E; ++I, ++Arg) { 4163 assert(Arg != ArgRange.end() && "Running over edge of argument list!"); 4164 assert((isGenericMethod || 4165 ((*I)->isVariablyModifiedType() || 4166 (*I).getNonReferenceType()->isObjCRetainableType() || 4167 getContext() 4168 .getCanonicalType((*I).getNonReferenceType()) 4169 .getTypePtr() == 4170 getContext() 4171 .getCanonicalType((*Arg)->getType()) 4172 .getTypePtr())) && 4173 "type mismatch in call argument!"); 4174 ArgTypes.push_back(*I); 4175 } 4176 } 4177 4178 // Either we've emitted all the call args, or we have a call to variadic 4179 // function. 4180 assert((Arg == ArgRange.end() || !CallArgTypeInfo || 4181 CallArgTypeInfo->isVariadic()) && 4182 "Extra arguments in non-variadic function!"); 4183 4184 // If we still have any arguments, emit them using the type of the argument. 4185 for (auto *A : llvm::make_range(Arg, ArgRange.end())) 4186 ArgTypes.push_back(CallArgTypeInfo ? getVarArgType(A) : A->getType()); 4187 4188 EmitCallArgs(Args, ArgTypes, ArgRange, AC, ParamsToSkip, Order); 4189 } 4190 4191 void EmitCallArgs(CallArgList &Args, ArrayRef<QualType> ArgTypes, 4192 llvm::iterator_range<CallExpr::const_arg_iterator> ArgRange, 4193 AbstractCallee AC = AbstractCallee(), 4194 unsigned ParamsToSkip = 0, 4195 EvaluationOrder Order = EvaluationOrder::Default); 4196 4197 /// EmitPointerWithAlignment - Given an expression with a pointer type, 4198 /// emit the value and compute our best estimate of the alignment of the 4199 /// pointee. 4200 /// 4201 /// \param BaseInfo - If non-null, this will be initialized with 4202 /// information about the source of the alignment and the may-alias 4203 /// attribute. Note that this function will conservatively fall back on 4204 /// the type when it doesn't recognize the expression and may-alias will 4205 /// be set to false. 4206 /// 4207 /// One reasonable way to use this information is when there's a language 4208 /// guarantee that the pointer must be aligned to some stricter value, and 4209 /// we're simply trying to ensure that sufficiently obvious uses of under- 4210 /// aligned objects don't get miscompiled; for example, a placement new 4211 /// into the address of a local variable. In such a case, it's quite 4212 /// reasonable to just ignore the returned alignment when it isn't from an 4213 /// explicit source. 4214 Address EmitPointerWithAlignment(const Expr *Addr, 4215 LValueBaseInfo *BaseInfo = nullptr, 4216 TBAAAccessInfo *TBAAInfo = nullptr); 4217 4218 /// If \p E references a parameter with pass_object_size info or a constant 4219 /// array size modifier, emit the object size divided by the size of \p EltTy. 4220 /// Otherwise return null. 4221 llvm::Value *LoadPassedObjectSize(const Expr *E, QualType EltTy); 4222 4223 void EmitSanitizerStatReport(llvm::SanitizerStatKind SSK); 4224 4225 struct TargetMultiVersionResolverOption { 4226 llvm::Function *Function; 4227 TargetAttr::ParsedTargetAttr ParsedAttribute; 4228 unsigned Priority; 4229 TargetMultiVersionResolverOption( 4230 const TargetInfo &TargInfo, llvm::Function *F, 4231 const clang::TargetAttr::ParsedTargetAttr &PT) 4232 : Function(F), ParsedAttribute(PT), Priority(0u) { 4233 for (StringRef Feat : PT.Features) 4234 Priority = std::max(Priority, 4235 TargInfo.multiVersionSortPriority(Feat.substr(1))); 4236 4237 if (!PT.Architecture.empty()) 4238 Priority = std::max(Priority, 4239 TargInfo.multiVersionSortPriority(PT.Architecture)); 4240 } 4241 4242 bool operator>(const TargetMultiVersionResolverOption &Other) const { 4243 return Priority > Other.Priority; 4244 } 4245 }; 4246 void EmitTargetMultiVersionResolver( 4247 llvm::Function *Resolver, 4248 ArrayRef<TargetMultiVersionResolverOption> Options); 4249 4250 struct CPUDispatchMultiVersionResolverOption { 4251 llvm::Function *Function; 4252 // Note: EmitX86CPUSupports only has 32 bits available, so we store the mask 4253 // as 32 bits here. When 64-bit support is added to __builtin_cpu_supports, 4254 // this can be extended to 64 bits. 4255 uint32_t FeatureMask; 4256 CPUDispatchMultiVersionResolverOption(llvm::Function *F, uint64_t Mask) 4257 : Function(F), FeatureMask(static_cast<uint32_t>(Mask)) {} 4258 bool operator>(const CPUDispatchMultiVersionResolverOption &Other) const { 4259 return FeatureMask > Other.FeatureMask; 4260 } 4261 }; 4262 void EmitCPUDispatchMultiVersionResolver( 4263 llvm::Function *Resolver, 4264 ArrayRef<CPUDispatchMultiVersionResolverOption> Options); 4265 static uint32_t GetX86CpuSupportsMask(ArrayRef<StringRef> FeatureStrs); 4266 4267 private: 4268 QualType getVarArgType(const Expr *Arg); 4269 4270 void EmitDeclMetadata(); 4271 4272 BlockByrefHelpers *buildByrefHelpers(llvm::StructType &byrefType, 4273 const AutoVarEmission &emission); 4274 4275 void AddObjCARCExceptionMetadata(llvm::Instruction *Inst); 4276 4277 llvm::Value *GetValueForARMHint(unsigned BuiltinID); 4278 llvm::Value *EmitX86CpuIs(const CallExpr *E); 4279 llvm::Value *EmitX86CpuIs(StringRef CPUStr); 4280 llvm::Value *EmitX86CpuSupports(const CallExpr *E); 4281 llvm::Value *EmitX86CpuSupports(ArrayRef<StringRef> FeatureStrs); 4282 llvm::Value *EmitX86CpuSupports(uint32_t Mask); 4283 llvm::Value *EmitX86CpuInit(); 4284 llvm::Value * 4285 FormResolverCondition(const TargetMultiVersionResolverOption &RO); 4286 }; 4287 4288 inline DominatingLLVMValue::saved_type 4289 DominatingLLVMValue::save(CodeGenFunction &CGF, llvm::Value *value) { 4290 if (!needsSaving(value)) return saved_type(value, false); 4291 4292 // Otherwise, we need an alloca. 4293 auto align = CharUnits::fromQuantity( 4294 CGF.CGM.getDataLayout().getPrefTypeAlignment(value->getType())); 4295 Address alloca = 4296 CGF.CreateTempAlloca(value->getType(), align, "cond-cleanup.save"); 4297 CGF.Builder.CreateStore(value, alloca); 4298 4299 return saved_type(alloca.getPointer(), true); 4300 } 4301 4302 inline llvm::Value *DominatingLLVMValue::restore(CodeGenFunction &CGF, 4303 saved_type value) { 4304 // If the value says it wasn't saved, trust that it's still dominating. 4305 if (!value.getInt()) return value.getPointer(); 4306 4307 // Otherwise, it should be an alloca instruction, as set up in save(). 4308 auto alloca = cast<llvm::AllocaInst>(value.getPointer()); 4309 return CGF.Builder.CreateAlignedLoad(alloca, alloca->getAlignment()); 4310 } 4311 4312 } // end namespace CodeGen 4313 } // end namespace clang 4314 4315 #endif 4316