1 //===--- ExprConstant.cpp - Expression Constant Evaluator -----------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // This file implements the Expr constant evaluator. 10 // 11 // Constant expression evaluation produces four main results: 12 // 13 // * A success/failure flag indicating whether constant folding was successful. 14 // This is the 'bool' return value used by most of the code in this file. A 15 // 'false' return value indicates that constant folding has failed, and any 16 // appropriate diagnostic has already been produced. 17 // 18 // * An evaluated result, valid only if constant folding has not failed. 19 // 20 // * A flag indicating if evaluation encountered (unevaluated) side-effects. 21 // These arise in cases such as (sideEffect(), 0) and (sideEffect() || 1), 22 // where it is possible to determine the evaluated result regardless. 23 // 24 // * A set of notes indicating why the evaluation was not a constant expression 25 // (under the C++11 / C++1y rules only, at the moment), or, if folding failed 26 // too, why the expression could not be folded. 27 // 28 // If we are checking for a potential constant expression, failure to constant 29 // fold a potential constant sub-expression will be indicated by a 'false' 30 // return value (the expression could not be folded) and no diagnostic (the 31 // expression is not necessarily non-constant). 32 // 33 //===----------------------------------------------------------------------===// 34 35 #include "Interp/Context.h" 36 #include "Interp/Frame.h" 37 #include "Interp/State.h" 38 #include "clang/AST/APValue.h" 39 #include "clang/AST/ASTContext.h" 40 #include "clang/AST/ASTDiagnostic.h" 41 #include "clang/AST/ASTLambda.h" 42 #include "clang/AST/Attr.h" 43 #include "clang/AST/CXXInheritance.h" 44 #include "clang/AST/CharUnits.h" 45 #include "clang/AST/CurrentSourceLocExprScope.h" 46 #include "clang/AST/Expr.h" 47 #include "clang/AST/OSLog.h" 48 #include "clang/AST/OptionalDiagnostic.h" 49 #include "clang/AST/RecordLayout.h" 50 #include "clang/AST/StmtVisitor.h" 51 #include "clang/AST/TypeLoc.h" 52 #include "clang/Basic/Builtins.h" 53 #include "clang/Basic/TargetInfo.h" 54 #include "llvm/ADT/APFixedPoint.h" 55 #include "llvm/ADT/Optional.h" 56 #include "llvm/ADT/SmallBitVector.h" 57 #include "llvm/Support/Debug.h" 58 #include "llvm/Support/SaveAndRestore.h" 59 #include "llvm/Support/raw_ostream.h" 60 #include <cstring> 61 #include <functional> 62 63 #define DEBUG_TYPE "exprconstant" 64 65 using namespace clang; 66 using llvm::APFixedPoint; 67 using llvm::APInt; 68 using llvm::APSInt; 69 using llvm::APFloat; 70 using llvm::FixedPointSemantics; 71 using llvm::Optional; 72 73 namespace { 74 struct LValue; 75 class CallStackFrame; 76 class EvalInfo; 77 78 using SourceLocExprScopeGuard = 79 CurrentSourceLocExprScope::SourceLocExprScopeGuard; 80 81 static QualType getType(APValue::LValueBase B) { 82 return B.getType(); 83 } 84 85 /// Get an LValue path entry, which is known to not be an array index, as a 86 /// field declaration. 87 static const FieldDecl *getAsField(APValue::LValuePathEntry E) { 88 return dyn_cast_or_null<FieldDecl>(E.getAsBaseOrMember().getPointer()); 89 } 90 /// Get an LValue path entry, which is known to not be an array index, as a 91 /// base class declaration. 92 static const CXXRecordDecl *getAsBaseClass(APValue::LValuePathEntry E) { 93 return dyn_cast_or_null<CXXRecordDecl>(E.getAsBaseOrMember().getPointer()); 94 } 95 /// Determine whether this LValue path entry for a base class names a virtual 96 /// base class. 97 static bool isVirtualBaseClass(APValue::LValuePathEntry E) { 98 return E.getAsBaseOrMember().getInt(); 99 } 100 101 /// Given an expression, determine the type used to store the result of 102 /// evaluating that expression. 103 static QualType getStorageType(const ASTContext &Ctx, const Expr *E) { 104 if (E->isPRValue()) 105 return E->getType(); 106 return Ctx.getLValueReferenceType(E->getType()); 107 } 108 109 /// Given a CallExpr, try to get the alloc_size attribute. May return null. 110 static const AllocSizeAttr *getAllocSizeAttr(const CallExpr *CE) { 111 if (const FunctionDecl *DirectCallee = CE->getDirectCallee()) 112 return DirectCallee->getAttr<AllocSizeAttr>(); 113 if (const Decl *IndirectCallee = CE->getCalleeDecl()) 114 return IndirectCallee->getAttr<AllocSizeAttr>(); 115 return nullptr; 116 } 117 118 /// Attempts to unwrap a CallExpr (with an alloc_size attribute) from an Expr. 119 /// This will look through a single cast. 120 /// 121 /// Returns null if we couldn't unwrap a function with alloc_size. 122 static const CallExpr *tryUnwrapAllocSizeCall(const Expr *E) { 123 if (!E->getType()->isPointerType()) 124 return nullptr; 125 126 E = E->IgnoreParens(); 127 // If we're doing a variable assignment from e.g. malloc(N), there will 128 // probably be a cast of some kind. In exotic cases, we might also see a 129 // top-level ExprWithCleanups. Ignore them either way. 130 if (const auto *FE = dyn_cast<FullExpr>(E)) 131 E = FE->getSubExpr()->IgnoreParens(); 132 133 if (const auto *Cast = dyn_cast<CastExpr>(E)) 134 E = Cast->getSubExpr()->IgnoreParens(); 135 136 if (const auto *CE = dyn_cast<CallExpr>(E)) 137 return getAllocSizeAttr(CE) ? CE : nullptr; 138 return nullptr; 139 } 140 141 /// Determines whether or not the given Base contains a call to a function 142 /// with the alloc_size attribute. 143 static bool isBaseAnAllocSizeCall(APValue::LValueBase Base) { 144 const auto *E = Base.dyn_cast<const Expr *>(); 145 return E && E->getType()->isPointerType() && tryUnwrapAllocSizeCall(E); 146 } 147 148 /// Determines whether the given kind of constant expression is only ever 149 /// used for name mangling. If so, it's permitted to reference things that we 150 /// can't generate code for (in particular, dllimported functions). 151 static bool isForManglingOnly(ConstantExprKind Kind) { 152 switch (Kind) { 153 case ConstantExprKind::Normal: 154 case ConstantExprKind::ClassTemplateArgument: 155 case ConstantExprKind::ImmediateInvocation: 156 // Note that non-type template arguments of class type are emitted as 157 // template parameter objects. 158 return false; 159 160 case ConstantExprKind::NonClassTemplateArgument: 161 return true; 162 } 163 llvm_unreachable("unknown ConstantExprKind"); 164 } 165 166 static bool isTemplateArgument(ConstantExprKind Kind) { 167 switch (Kind) { 168 case ConstantExprKind::Normal: 169 case ConstantExprKind::ImmediateInvocation: 170 return false; 171 172 case ConstantExprKind::ClassTemplateArgument: 173 case ConstantExprKind::NonClassTemplateArgument: 174 return true; 175 } 176 llvm_unreachable("unknown ConstantExprKind"); 177 } 178 179 /// The bound to claim that an array of unknown bound has. 180 /// The value in MostDerivedArraySize is undefined in this case. So, set it 181 /// to an arbitrary value that's likely to loudly break things if it's used. 182 static const uint64_t AssumedSizeForUnsizedArray = 183 std::numeric_limits<uint64_t>::max() / 2; 184 185 /// Determines if an LValue with the given LValueBase will have an unsized 186 /// array in its designator. 187 /// Find the path length and type of the most-derived subobject in the given 188 /// path, and find the size of the containing array, if any. 189 static unsigned 190 findMostDerivedSubobject(ASTContext &Ctx, APValue::LValueBase Base, 191 ArrayRef<APValue::LValuePathEntry> Path, 192 uint64_t &ArraySize, QualType &Type, bool &IsArray, 193 bool &FirstEntryIsUnsizedArray) { 194 // This only accepts LValueBases from APValues, and APValues don't support 195 // arrays that lack size info. 196 assert(!isBaseAnAllocSizeCall(Base) && 197 "Unsized arrays shouldn't appear here"); 198 unsigned MostDerivedLength = 0; 199 Type = getType(Base); 200 201 for (unsigned I = 0, N = Path.size(); I != N; ++I) { 202 if (Type->isArrayType()) { 203 const ArrayType *AT = Ctx.getAsArrayType(Type); 204 Type = AT->getElementType(); 205 MostDerivedLength = I + 1; 206 IsArray = true; 207 208 if (auto *CAT = dyn_cast<ConstantArrayType>(AT)) { 209 ArraySize = CAT->getSize().getZExtValue(); 210 } else { 211 assert(I == 0 && "unexpected unsized array designator"); 212 FirstEntryIsUnsizedArray = true; 213 ArraySize = AssumedSizeForUnsizedArray; 214 } 215 } else if (Type->isAnyComplexType()) { 216 const ComplexType *CT = Type->castAs<ComplexType>(); 217 Type = CT->getElementType(); 218 ArraySize = 2; 219 MostDerivedLength = I + 1; 220 IsArray = true; 221 } else if (const FieldDecl *FD = getAsField(Path[I])) { 222 Type = FD->getType(); 223 ArraySize = 0; 224 MostDerivedLength = I + 1; 225 IsArray = false; 226 } else { 227 // Path[I] describes a base class. 228 ArraySize = 0; 229 IsArray = false; 230 } 231 } 232 return MostDerivedLength; 233 } 234 235 /// A path from a glvalue to a subobject of that glvalue. 236 struct SubobjectDesignator { 237 /// True if the subobject was named in a manner not supported by C++11. Such 238 /// lvalues can still be folded, but they are not core constant expressions 239 /// and we cannot perform lvalue-to-rvalue conversions on them. 240 unsigned Invalid : 1; 241 242 /// Is this a pointer one past the end of an object? 243 unsigned IsOnePastTheEnd : 1; 244 245 /// Indicator of whether the first entry is an unsized array. 246 unsigned FirstEntryIsAnUnsizedArray : 1; 247 248 /// Indicator of whether the most-derived object is an array element. 249 unsigned MostDerivedIsArrayElement : 1; 250 251 /// The length of the path to the most-derived object of which this is a 252 /// subobject. 253 unsigned MostDerivedPathLength : 28; 254 255 /// The size of the array of which the most-derived object is an element. 256 /// This will always be 0 if the most-derived object is not an array 257 /// element. 0 is not an indicator of whether or not the most-derived object 258 /// is an array, however, because 0-length arrays are allowed. 259 /// 260 /// If the current array is an unsized array, the value of this is 261 /// undefined. 262 uint64_t MostDerivedArraySize; 263 264 /// The type of the most derived object referred to by this address. 265 QualType MostDerivedType; 266 267 typedef APValue::LValuePathEntry PathEntry; 268 269 /// The entries on the path from the glvalue to the designated subobject. 270 SmallVector<PathEntry, 8> Entries; 271 272 SubobjectDesignator() : Invalid(true) {} 273 274 explicit SubobjectDesignator(QualType T) 275 : Invalid(false), IsOnePastTheEnd(false), 276 FirstEntryIsAnUnsizedArray(false), MostDerivedIsArrayElement(false), 277 MostDerivedPathLength(0), MostDerivedArraySize(0), 278 MostDerivedType(T) {} 279 280 SubobjectDesignator(ASTContext &Ctx, const APValue &V) 281 : Invalid(!V.isLValue() || !V.hasLValuePath()), IsOnePastTheEnd(false), 282 FirstEntryIsAnUnsizedArray(false), MostDerivedIsArrayElement(false), 283 MostDerivedPathLength(0), MostDerivedArraySize(0) { 284 assert(V.isLValue() && "Non-LValue used to make an LValue designator?"); 285 if (!Invalid) { 286 IsOnePastTheEnd = V.isLValueOnePastTheEnd(); 287 ArrayRef<PathEntry> VEntries = V.getLValuePath(); 288 Entries.insert(Entries.end(), VEntries.begin(), VEntries.end()); 289 if (V.getLValueBase()) { 290 bool IsArray = false; 291 bool FirstIsUnsizedArray = false; 292 MostDerivedPathLength = findMostDerivedSubobject( 293 Ctx, V.getLValueBase(), V.getLValuePath(), MostDerivedArraySize, 294 MostDerivedType, IsArray, FirstIsUnsizedArray); 295 MostDerivedIsArrayElement = IsArray; 296 FirstEntryIsAnUnsizedArray = FirstIsUnsizedArray; 297 } 298 } 299 } 300 301 void truncate(ASTContext &Ctx, APValue::LValueBase Base, 302 unsigned NewLength) { 303 if (Invalid) 304 return; 305 306 assert(Base && "cannot truncate path for null pointer"); 307 assert(NewLength <= Entries.size() && "not a truncation"); 308 309 if (NewLength == Entries.size()) 310 return; 311 Entries.resize(NewLength); 312 313 bool IsArray = false; 314 bool FirstIsUnsizedArray = false; 315 MostDerivedPathLength = findMostDerivedSubobject( 316 Ctx, Base, Entries, MostDerivedArraySize, MostDerivedType, IsArray, 317 FirstIsUnsizedArray); 318 MostDerivedIsArrayElement = IsArray; 319 FirstEntryIsAnUnsizedArray = FirstIsUnsizedArray; 320 } 321 322 void setInvalid() { 323 Invalid = true; 324 Entries.clear(); 325 } 326 327 /// Determine whether the most derived subobject is an array without a 328 /// known bound. 329 bool isMostDerivedAnUnsizedArray() const { 330 assert(!Invalid && "Calling this makes no sense on invalid designators"); 331 return Entries.size() == 1 && FirstEntryIsAnUnsizedArray; 332 } 333 334 /// Determine what the most derived array's size is. Results in an assertion 335 /// failure if the most derived array lacks a size. 336 uint64_t getMostDerivedArraySize() const { 337 assert(!isMostDerivedAnUnsizedArray() && "Unsized array has no size"); 338 return MostDerivedArraySize; 339 } 340 341 /// Determine whether this is a one-past-the-end pointer. 342 bool isOnePastTheEnd() const { 343 assert(!Invalid); 344 if (IsOnePastTheEnd) 345 return true; 346 if (!isMostDerivedAnUnsizedArray() && MostDerivedIsArrayElement && 347 Entries[MostDerivedPathLength - 1].getAsArrayIndex() == 348 MostDerivedArraySize) 349 return true; 350 return false; 351 } 352 353 /// Get the range of valid index adjustments in the form 354 /// {maximum value that can be subtracted from this pointer, 355 /// maximum value that can be added to this pointer} 356 std::pair<uint64_t, uint64_t> validIndexAdjustments() { 357 if (Invalid || isMostDerivedAnUnsizedArray()) 358 return {0, 0}; 359 360 // [expr.add]p4: For the purposes of these operators, a pointer to a 361 // nonarray object behaves the same as a pointer to the first element of 362 // an array of length one with the type of the object as its element type. 363 bool IsArray = MostDerivedPathLength == Entries.size() && 364 MostDerivedIsArrayElement; 365 uint64_t ArrayIndex = IsArray ? Entries.back().getAsArrayIndex() 366 : (uint64_t)IsOnePastTheEnd; 367 uint64_t ArraySize = 368 IsArray ? getMostDerivedArraySize() : (uint64_t)1; 369 return {ArrayIndex, ArraySize - ArrayIndex}; 370 } 371 372 /// Check that this refers to a valid subobject. 373 bool isValidSubobject() const { 374 if (Invalid) 375 return false; 376 return !isOnePastTheEnd(); 377 } 378 /// Check that this refers to a valid subobject, and if not, produce a 379 /// relevant diagnostic and set the designator as invalid. 380 bool checkSubobject(EvalInfo &Info, const Expr *E, CheckSubobjectKind CSK); 381 382 /// Get the type of the designated object. 383 QualType getType(ASTContext &Ctx) const { 384 assert(!Invalid && "invalid designator has no subobject type"); 385 return MostDerivedPathLength == Entries.size() 386 ? MostDerivedType 387 : Ctx.getRecordType(getAsBaseClass(Entries.back())); 388 } 389 390 /// Update this designator to refer to the first element within this array. 391 void addArrayUnchecked(const ConstantArrayType *CAT) { 392 Entries.push_back(PathEntry::ArrayIndex(0)); 393 394 // This is a most-derived object. 395 MostDerivedType = CAT->getElementType(); 396 MostDerivedIsArrayElement = true; 397 MostDerivedArraySize = CAT->getSize().getZExtValue(); 398 MostDerivedPathLength = Entries.size(); 399 } 400 /// Update this designator to refer to the first element within the array of 401 /// elements of type T. This is an array of unknown size. 402 void addUnsizedArrayUnchecked(QualType ElemTy) { 403 Entries.push_back(PathEntry::ArrayIndex(0)); 404 405 MostDerivedType = ElemTy; 406 MostDerivedIsArrayElement = true; 407 // The value in MostDerivedArraySize is undefined in this case. So, set it 408 // to an arbitrary value that's likely to loudly break things if it's 409 // used. 410 MostDerivedArraySize = AssumedSizeForUnsizedArray; 411 MostDerivedPathLength = Entries.size(); 412 } 413 /// Update this designator to refer to the given base or member of this 414 /// object. 415 void addDeclUnchecked(const Decl *D, bool Virtual = false) { 416 Entries.push_back(APValue::BaseOrMemberType(D, Virtual)); 417 418 // If this isn't a base class, it's a new most-derived object. 419 if (const FieldDecl *FD = dyn_cast<FieldDecl>(D)) { 420 MostDerivedType = FD->getType(); 421 MostDerivedIsArrayElement = false; 422 MostDerivedArraySize = 0; 423 MostDerivedPathLength = Entries.size(); 424 } 425 } 426 /// Update this designator to refer to the given complex component. 427 void addComplexUnchecked(QualType EltTy, bool Imag) { 428 Entries.push_back(PathEntry::ArrayIndex(Imag)); 429 430 // This is technically a most-derived object, though in practice this 431 // is unlikely to matter. 432 MostDerivedType = EltTy; 433 MostDerivedIsArrayElement = true; 434 MostDerivedArraySize = 2; 435 MostDerivedPathLength = Entries.size(); 436 } 437 void diagnoseUnsizedArrayPointerArithmetic(EvalInfo &Info, const Expr *E); 438 void diagnosePointerArithmetic(EvalInfo &Info, const Expr *E, 439 const APSInt &N); 440 /// Add N to the address of this subobject. 441 void adjustIndex(EvalInfo &Info, const Expr *E, APSInt N) { 442 if (Invalid || !N) return; 443 uint64_t TruncatedN = N.extOrTrunc(64).getZExtValue(); 444 if (isMostDerivedAnUnsizedArray()) { 445 diagnoseUnsizedArrayPointerArithmetic(Info, E); 446 // Can't verify -- trust that the user is doing the right thing (or if 447 // not, trust that the caller will catch the bad behavior). 448 // FIXME: Should we reject if this overflows, at least? 449 Entries.back() = PathEntry::ArrayIndex( 450 Entries.back().getAsArrayIndex() + TruncatedN); 451 return; 452 } 453 454 // [expr.add]p4: For the purposes of these operators, a pointer to a 455 // nonarray object behaves the same as a pointer to the first element of 456 // an array of length one with the type of the object as its element type. 457 bool IsArray = MostDerivedPathLength == Entries.size() && 458 MostDerivedIsArrayElement; 459 uint64_t ArrayIndex = IsArray ? Entries.back().getAsArrayIndex() 460 : (uint64_t)IsOnePastTheEnd; 461 uint64_t ArraySize = 462 IsArray ? getMostDerivedArraySize() : (uint64_t)1; 463 464 if (N < -(int64_t)ArrayIndex || N > ArraySize - ArrayIndex) { 465 // Calculate the actual index in a wide enough type, so we can include 466 // it in the note. 467 N = N.extend(std::max<unsigned>(N.getBitWidth() + 1, 65)); 468 (llvm::APInt&)N += ArrayIndex; 469 assert(N.ugt(ArraySize) && "bounds check failed for in-bounds index"); 470 diagnosePointerArithmetic(Info, E, N); 471 setInvalid(); 472 return; 473 } 474 475 ArrayIndex += TruncatedN; 476 assert(ArrayIndex <= ArraySize && 477 "bounds check succeeded for out-of-bounds index"); 478 479 if (IsArray) 480 Entries.back() = PathEntry::ArrayIndex(ArrayIndex); 481 else 482 IsOnePastTheEnd = (ArrayIndex != 0); 483 } 484 }; 485 486 /// A scope at the end of which an object can need to be destroyed. 487 enum class ScopeKind { 488 Block, 489 FullExpression, 490 Call 491 }; 492 493 /// A reference to a particular call and its arguments. 494 struct CallRef { 495 CallRef() : OrigCallee(), CallIndex(0), Version() {} 496 CallRef(const FunctionDecl *Callee, unsigned CallIndex, unsigned Version) 497 : OrigCallee(Callee), CallIndex(CallIndex), Version(Version) {} 498 499 explicit operator bool() const { return OrigCallee; } 500 501 /// Get the parameter that the caller initialized, corresponding to the 502 /// given parameter in the callee. 503 const ParmVarDecl *getOrigParam(const ParmVarDecl *PVD) const { 504 return OrigCallee ? OrigCallee->getParamDecl(PVD->getFunctionScopeIndex()) 505 : PVD; 506 } 507 508 /// The callee at the point where the arguments were evaluated. This might 509 /// be different from the actual callee (a different redeclaration, or a 510 /// virtual override), but this function's parameters are the ones that 511 /// appear in the parameter map. 512 const FunctionDecl *OrigCallee; 513 /// The call index of the frame that holds the argument values. 514 unsigned CallIndex; 515 /// The version of the parameters corresponding to this call. 516 unsigned Version; 517 }; 518 519 /// A stack frame in the constexpr call stack. 520 class CallStackFrame : public interp::Frame { 521 public: 522 EvalInfo &Info; 523 524 /// Parent - The caller of this stack frame. 525 CallStackFrame *Caller; 526 527 /// Callee - The function which was called. 528 const FunctionDecl *Callee; 529 530 /// This - The binding for the this pointer in this call, if any. 531 const LValue *This; 532 533 /// Information on how to find the arguments to this call. Our arguments 534 /// are stored in our parent's CallStackFrame, using the ParmVarDecl* as a 535 /// key and this value as the version. 536 CallRef Arguments; 537 538 /// Source location information about the default argument or default 539 /// initializer expression we're evaluating, if any. 540 CurrentSourceLocExprScope CurSourceLocExprScope; 541 542 // Note that we intentionally use std::map here so that references to 543 // values are stable. 544 typedef std::pair<const void *, unsigned> MapKeyTy; 545 typedef std::map<MapKeyTy, APValue> MapTy; 546 /// Temporaries - Temporary lvalues materialized within this stack frame. 547 MapTy Temporaries; 548 549 /// CallLoc - The location of the call expression for this call. 550 SourceLocation CallLoc; 551 552 /// Index - The call index of this call. 553 unsigned Index; 554 555 /// The stack of integers for tracking version numbers for temporaries. 556 SmallVector<unsigned, 2> TempVersionStack = {1}; 557 unsigned CurTempVersion = TempVersionStack.back(); 558 559 unsigned getTempVersion() const { return TempVersionStack.back(); } 560 561 void pushTempVersion() { 562 TempVersionStack.push_back(++CurTempVersion); 563 } 564 565 void popTempVersion() { 566 TempVersionStack.pop_back(); 567 } 568 569 CallRef createCall(const FunctionDecl *Callee) { 570 return {Callee, Index, ++CurTempVersion}; 571 } 572 573 // FIXME: Adding this to every 'CallStackFrame' may have a nontrivial impact 574 // on the overall stack usage of deeply-recursing constexpr evaluations. 575 // (We should cache this map rather than recomputing it repeatedly.) 576 // But let's try this and see how it goes; we can look into caching the map 577 // as a later change. 578 579 /// LambdaCaptureFields - Mapping from captured variables/this to 580 /// corresponding data members in the closure class. 581 llvm::DenseMap<const VarDecl *, FieldDecl *> LambdaCaptureFields; 582 FieldDecl *LambdaThisCaptureField; 583 584 CallStackFrame(EvalInfo &Info, SourceLocation CallLoc, 585 const FunctionDecl *Callee, const LValue *This, 586 CallRef Arguments); 587 ~CallStackFrame(); 588 589 // Return the temporary for Key whose version number is Version. 590 APValue *getTemporary(const void *Key, unsigned Version) { 591 MapKeyTy KV(Key, Version); 592 auto LB = Temporaries.lower_bound(KV); 593 if (LB != Temporaries.end() && LB->first == KV) 594 return &LB->second; 595 // Pair (Key,Version) wasn't found in the map. Check that no elements 596 // in the map have 'Key' as their key. 597 assert((LB == Temporaries.end() || LB->first.first != Key) && 598 (LB == Temporaries.begin() || std::prev(LB)->first.first != Key) && 599 "Element with key 'Key' found in map"); 600 return nullptr; 601 } 602 603 // Return the current temporary for Key in the map. 604 APValue *getCurrentTemporary(const void *Key) { 605 auto UB = Temporaries.upper_bound(MapKeyTy(Key, UINT_MAX)); 606 if (UB != Temporaries.begin() && std::prev(UB)->first.first == Key) 607 return &std::prev(UB)->second; 608 return nullptr; 609 } 610 611 // Return the version number of the current temporary for Key. 612 unsigned getCurrentTemporaryVersion(const void *Key) const { 613 auto UB = Temporaries.upper_bound(MapKeyTy(Key, UINT_MAX)); 614 if (UB != Temporaries.begin() && std::prev(UB)->first.first == Key) 615 return std::prev(UB)->first.second; 616 return 0; 617 } 618 619 /// Allocate storage for an object of type T in this stack frame. 620 /// Populates LV with a handle to the created object. Key identifies 621 /// the temporary within the stack frame, and must not be reused without 622 /// bumping the temporary version number. 623 template<typename KeyT> 624 APValue &createTemporary(const KeyT *Key, QualType T, 625 ScopeKind Scope, LValue &LV); 626 627 /// Allocate storage for a parameter of a function call made in this frame. 628 APValue &createParam(CallRef Args, const ParmVarDecl *PVD, LValue &LV); 629 630 void describe(llvm::raw_ostream &OS) override; 631 632 Frame *getCaller() const override { return Caller; } 633 SourceLocation getCallLocation() const override { return CallLoc; } 634 const FunctionDecl *getCallee() const override { return Callee; } 635 636 bool isStdFunction() const { 637 for (const DeclContext *DC = Callee; DC; DC = DC->getParent()) 638 if (DC->isStdNamespace()) 639 return true; 640 return false; 641 } 642 643 private: 644 APValue &createLocal(APValue::LValueBase Base, const void *Key, QualType T, 645 ScopeKind Scope); 646 }; 647 648 /// Temporarily override 'this'. 649 class ThisOverrideRAII { 650 public: 651 ThisOverrideRAII(CallStackFrame &Frame, const LValue *NewThis, bool Enable) 652 : Frame(Frame), OldThis(Frame.This) { 653 if (Enable) 654 Frame.This = NewThis; 655 } 656 ~ThisOverrideRAII() { 657 Frame.This = OldThis; 658 } 659 private: 660 CallStackFrame &Frame; 661 const LValue *OldThis; 662 }; 663 } 664 665 static bool HandleDestruction(EvalInfo &Info, const Expr *E, 666 const LValue &This, QualType ThisType); 667 static bool HandleDestruction(EvalInfo &Info, SourceLocation Loc, 668 APValue::LValueBase LVBase, APValue &Value, 669 QualType T); 670 671 namespace { 672 /// A cleanup, and a flag indicating whether it is lifetime-extended. 673 class Cleanup { 674 llvm::PointerIntPair<APValue*, 2, ScopeKind> Value; 675 APValue::LValueBase Base; 676 QualType T; 677 678 public: 679 Cleanup(APValue *Val, APValue::LValueBase Base, QualType T, 680 ScopeKind Scope) 681 : Value(Val, Scope), Base(Base), T(T) {} 682 683 /// Determine whether this cleanup should be performed at the end of the 684 /// given kind of scope. 685 bool isDestroyedAtEndOf(ScopeKind K) const { 686 return (int)Value.getInt() >= (int)K; 687 } 688 bool endLifetime(EvalInfo &Info, bool RunDestructors) { 689 if (RunDestructors) { 690 SourceLocation Loc; 691 if (const ValueDecl *VD = Base.dyn_cast<const ValueDecl*>()) 692 Loc = VD->getLocation(); 693 else if (const Expr *E = Base.dyn_cast<const Expr*>()) 694 Loc = E->getExprLoc(); 695 return HandleDestruction(Info, Loc, Base, *Value.getPointer(), T); 696 } 697 *Value.getPointer() = APValue(); 698 return true; 699 } 700 701 bool hasSideEffect() { 702 return T.isDestructedType(); 703 } 704 }; 705 706 /// A reference to an object whose construction we are currently evaluating. 707 struct ObjectUnderConstruction { 708 APValue::LValueBase Base; 709 ArrayRef<APValue::LValuePathEntry> Path; 710 friend bool operator==(const ObjectUnderConstruction &LHS, 711 const ObjectUnderConstruction &RHS) { 712 return LHS.Base == RHS.Base && LHS.Path == RHS.Path; 713 } 714 friend llvm::hash_code hash_value(const ObjectUnderConstruction &Obj) { 715 return llvm::hash_combine(Obj.Base, Obj.Path); 716 } 717 }; 718 enum class ConstructionPhase { 719 None, 720 Bases, 721 AfterBases, 722 AfterFields, 723 Destroying, 724 DestroyingBases 725 }; 726 } 727 728 namespace llvm { 729 template<> struct DenseMapInfo<ObjectUnderConstruction> { 730 using Base = DenseMapInfo<APValue::LValueBase>; 731 static ObjectUnderConstruction getEmptyKey() { 732 return {Base::getEmptyKey(), {}}; } 733 static ObjectUnderConstruction getTombstoneKey() { 734 return {Base::getTombstoneKey(), {}}; 735 } 736 static unsigned getHashValue(const ObjectUnderConstruction &Object) { 737 return hash_value(Object); 738 } 739 static bool isEqual(const ObjectUnderConstruction &LHS, 740 const ObjectUnderConstruction &RHS) { 741 return LHS == RHS; 742 } 743 }; 744 } 745 746 namespace { 747 /// A dynamically-allocated heap object. 748 struct DynAlloc { 749 /// The value of this heap-allocated object. 750 APValue Value; 751 /// The allocating expression; used for diagnostics. Either a CXXNewExpr 752 /// or a CallExpr (the latter is for direct calls to operator new inside 753 /// std::allocator<T>::allocate). 754 const Expr *AllocExpr = nullptr; 755 756 enum Kind { 757 New, 758 ArrayNew, 759 StdAllocator 760 }; 761 762 /// Get the kind of the allocation. This must match between allocation 763 /// and deallocation. 764 Kind getKind() const { 765 if (auto *NE = dyn_cast<CXXNewExpr>(AllocExpr)) 766 return NE->isArray() ? ArrayNew : New; 767 assert(isa<CallExpr>(AllocExpr)); 768 return StdAllocator; 769 } 770 }; 771 772 struct DynAllocOrder { 773 bool operator()(DynamicAllocLValue L, DynamicAllocLValue R) const { 774 return L.getIndex() < R.getIndex(); 775 } 776 }; 777 778 /// EvalInfo - This is a private struct used by the evaluator to capture 779 /// information about a subexpression as it is folded. It retains information 780 /// about the AST context, but also maintains information about the folded 781 /// expression. 782 /// 783 /// If an expression could be evaluated, it is still possible it is not a C 784 /// "integer constant expression" or constant expression. If not, this struct 785 /// captures information about how and why not. 786 /// 787 /// One bit of information passed *into* the request for constant folding 788 /// indicates whether the subexpression is "evaluated" or not according to C 789 /// rules. For example, the RHS of (0 && foo()) is not evaluated. We can 790 /// evaluate the expression regardless of what the RHS is, but C only allows 791 /// certain things in certain situations. 792 class EvalInfo : public interp::State { 793 public: 794 ASTContext &Ctx; 795 796 /// EvalStatus - Contains information about the evaluation. 797 Expr::EvalStatus &EvalStatus; 798 799 /// CurrentCall - The top of the constexpr call stack. 800 CallStackFrame *CurrentCall; 801 802 /// CallStackDepth - The number of calls in the call stack right now. 803 unsigned CallStackDepth; 804 805 /// NextCallIndex - The next call index to assign. 806 unsigned NextCallIndex; 807 808 /// StepsLeft - The remaining number of evaluation steps we're permitted 809 /// to perform. This is essentially a limit for the number of statements 810 /// we will evaluate. 811 unsigned StepsLeft; 812 813 /// Enable the experimental new constant interpreter. If an expression is 814 /// not supported by the interpreter, an error is triggered. 815 bool EnableNewConstInterp; 816 817 /// BottomFrame - The frame in which evaluation started. This must be 818 /// initialized after CurrentCall and CallStackDepth. 819 CallStackFrame BottomFrame; 820 821 /// A stack of values whose lifetimes end at the end of some surrounding 822 /// evaluation frame. 823 llvm::SmallVector<Cleanup, 16> CleanupStack; 824 825 /// EvaluatingDecl - This is the declaration whose initializer is being 826 /// evaluated, if any. 827 APValue::LValueBase EvaluatingDecl; 828 829 enum class EvaluatingDeclKind { 830 None, 831 /// We're evaluating the construction of EvaluatingDecl. 832 Ctor, 833 /// We're evaluating the destruction of EvaluatingDecl. 834 Dtor, 835 }; 836 EvaluatingDeclKind IsEvaluatingDecl = EvaluatingDeclKind::None; 837 838 /// EvaluatingDeclValue - This is the value being constructed for the 839 /// declaration whose initializer is being evaluated, if any. 840 APValue *EvaluatingDeclValue; 841 842 /// Set of objects that are currently being constructed. 843 llvm::DenseMap<ObjectUnderConstruction, ConstructionPhase> 844 ObjectsUnderConstruction; 845 846 /// Current heap allocations, along with the location where each was 847 /// allocated. We use std::map here because we need stable addresses 848 /// for the stored APValues. 849 std::map<DynamicAllocLValue, DynAlloc, DynAllocOrder> HeapAllocs; 850 851 /// The number of heap allocations performed so far in this evaluation. 852 unsigned NumHeapAllocs = 0; 853 854 struct EvaluatingConstructorRAII { 855 EvalInfo &EI; 856 ObjectUnderConstruction Object; 857 bool DidInsert; 858 EvaluatingConstructorRAII(EvalInfo &EI, ObjectUnderConstruction Object, 859 bool HasBases) 860 : EI(EI), Object(Object) { 861 DidInsert = 862 EI.ObjectsUnderConstruction 863 .insert({Object, HasBases ? ConstructionPhase::Bases 864 : ConstructionPhase::AfterBases}) 865 .second; 866 } 867 void finishedConstructingBases() { 868 EI.ObjectsUnderConstruction[Object] = ConstructionPhase::AfterBases; 869 } 870 void finishedConstructingFields() { 871 EI.ObjectsUnderConstruction[Object] = ConstructionPhase::AfterFields; 872 } 873 ~EvaluatingConstructorRAII() { 874 if (DidInsert) EI.ObjectsUnderConstruction.erase(Object); 875 } 876 }; 877 878 struct EvaluatingDestructorRAII { 879 EvalInfo &EI; 880 ObjectUnderConstruction Object; 881 bool DidInsert; 882 EvaluatingDestructorRAII(EvalInfo &EI, ObjectUnderConstruction Object) 883 : EI(EI), Object(Object) { 884 DidInsert = EI.ObjectsUnderConstruction 885 .insert({Object, ConstructionPhase::Destroying}) 886 .second; 887 } 888 void startedDestroyingBases() { 889 EI.ObjectsUnderConstruction[Object] = 890 ConstructionPhase::DestroyingBases; 891 } 892 ~EvaluatingDestructorRAII() { 893 if (DidInsert) 894 EI.ObjectsUnderConstruction.erase(Object); 895 } 896 }; 897 898 ConstructionPhase 899 isEvaluatingCtorDtor(APValue::LValueBase Base, 900 ArrayRef<APValue::LValuePathEntry> Path) { 901 return ObjectsUnderConstruction.lookup({Base, Path}); 902 } 903 904 /// If we're currently speculatively evaluating, the outermost call stack 905 /// depth at which we can mutate state, otherwise 0. 906 unsigned SpeculativeEvaluationDepth = 0; 907 908 /// The current array initialization index, if we're performing array 909 /// initialization. 910 uint64_t ArrayInitIndex = -1; 911 912 /// HasActiveDiagnostic - Was the previous diagnostic stored? If so, further 913 /// notes attached to it will also be stored, otherwise they will not be. 914 bool HasActiveDiagnostic; 915 916 /// Have we emitted a diagnostic explaining why we couldn't constant 917 /// fold (not just why it's not strictly a constant expression)? 918 bool HasFoldFailureDiagnostic; 919 920 /// Whether or not we're in a context where the front end requires a 921 /// constant value. 922 bool InConstantContext; 923 924 /// Whether we're checking that an expression is a potential constant 925 /// expression. If so, do not fail on constructs that could become constant 926 /// later on (such as a use of an undefined global). 927 bool CheckingPotentialConstantExpression = false; 928 929 /// Whether we're checking for an expression that has undefined behavior. 930 /// If so, we will produce warnings if we encounter an operation that is 931 /// always undefined. 932 /// 933 /// Note that we still need to evaluate the expression normally when this 934 /// is set; this is used when evaluating ICEs in C. 935 bool CheckingForUndefinedBehavior = false; 936 937 enum EvaluationMode { 938 /// Evaluate as a constant expression. Stop if we find that the expression 939 /// is not a constant expression. 940 EM_ConstantExpression, 941 942 /// Evaluate as a constant expression. Stop if we find that the expression 943 /// is not a constant expression. Some expressions can be retried in the 944 /// optimizer if we don't constant fold them here, but in an unevaluated 945 /// context we try to fold them immediately since the optimizer never 946 /// gets a chance to look at it. 947 EM_ConstantExpressionUnevaluated, 948 949 /// Fold the expression to a constant. Stop if we hit a side-effect that 950 /// we can't model. 951 EM_ConstantFold, 952 953 /// Evaluate in any way we know how. Don't worry about side-effects that 954 /// can't be modeled. 955 EM_IgnoreSideEffects, 956 } EvalMode; 957 958 /// Are we checking whether the expression is a potential constant 959 /// expression? 960 bool checkingPotentialConstantExpression() const override { 961 return CheckingPotentialConstantExpression; 962 } 963 964 /// Are we checking an expression for overflow? 965 // FIXME: We should check for any kind of undefined or suspicious behavior 966 // in such constructs, not just overflow. 967 bool checkingForUndefinedBehavior() const override { 968 return CheckingForUndefinedBehavior; 969 } 970 971 EvalInfo(const ASTContext &C, Expr::EvalStatus &S, EvaluationMode Mode) 972 : Ctx(const_cast<ASTContext &>(C)), EvalStatus(S), CurrentCall(nullptr), 973 CallStackDepth(0), NextCallIndex(1), 974 StepsLeft(C.getLangOpts().ConstexprStepLimit), 975 EnableNewConstInterp(C.getLangOpts().EnableNewConstInterp), 976 BottomFrame(*this, SourceLocation(), nullptr, nullptr, CallRef()), 977 EvaluatingDecl((const ValueDecl *)nullptr), 978 EvaluatingDeclValue(nullptr), HasActiveDiagnostic(false), 979 HasFoldFailureDiagnostic(false), InConstantContext(false), 980 EvalMode(Mode) {} 981 982 ~EvalInfo() { 983 discardCleanups(); 984 } 985 986 ASTContext &getCtx() const override { return Ctx; } 987 988 void setEvaluatingDecl(APValue::LValueBase Base, APValue &Value, 989 EvaluatingDeclKind EDK = EvaluatingDeclKind::Ctor) { 990 EvaluatingDecl = Base; 991 IsEvaluatingDecl = EDK; 992 EvaluatingDeclValue = &Value; 993 } 994 995 bool CheckCallLimit(SourceLocation Loc) { 996 // Don't perform any constexpr calls (other than the call we're checking) 997 // when checking a potential constant expression. 998 if (checkingPotentialConstantExpression() && CallStackDepth > 1) 999 return false; 1000 if (NextCallIndex == 0) { 1001 // NextCallIndex has wrapped around. 1002 FFDiag(Loc, diag::note_constexpr_call_limit_exceeded); 1003 return false; 1004 } 1005 if (CallStackDepth <= getLangOpts().ConstexprCallDepth) 1006 return true; 1007 FFDiag(Loc, diag::note_constexpr_depth_limit_exceeded) 1008 << getLangOpts().ConstexprCallDepth; 1009 return false; 1010 } 1011 1012 std::pair<CallStackFrame *, unsigned> 1013 getCallFrameAndDepth(unsigned CallIndex) { 1014 assert(CallIndex && "no call index in getCallFrameAndDepth"); 1015 // We will eventually hit BottomFrame, which has Index 1, so Frame can't 1016 // be null in this loop. 1017 unsigned Depth = CallStackDepth; 1018 CallStackFrame *Frame = CurrentCall; 1019 while (Frame->Index > CallIndex) { 1020 Frame = Frame->Caller; 1021 --Depth; 1022 } 1023 if (Frame->Index == CallIndex) 1024 return {Frame, Depth}; 1025 return {nullptr, 0}; 1026 } 1027 1028 bool nextStep(const Stmt *S) { 1029 if (!StepsLeft) { 1030 FFDiag(S->getBeginLoc(), diag::note_constexpr_step_limit_exceeded); 1031 return false; 1032 } 1033 --StepsLeft; 1034 return true; 1035 } 1036 1037 APValue *createHeapAlloc(const Expr *E, QualType T, LValue &LV); 1038 1039 Optional<DynAlloc*> lookupDynamicAlloc(DynamicAllocLValue DA) { 1040 Optional<DynAlloc*> Result; 1041 auto It = HeapAllocs.find(DA); 1042 if (It != HeapAllocs.end()) 1043 Result = &It->second; 1044 return Result; 1045 } 1046 1047 /// Get the allocated storage for the given parameter of the given call. 1048 APValue *getParamSlot(CallRef Call, const ParmVarDecl *PVD) { 1049 CallStackFrame *Frame = getCallFrameAndDepth(Call.CallIndex).first; 1050 return Frame ? Frame->getTemporary(Call.getOrigParam(PVD), Call.Version) 1051 : nullptr; 1052 } 1053 1054 /// Information about a stack frame for std::allocator<T>::[de]allocate. 1055 struct StdAllocatorCaller { 1056 unsigned FrameIndex; 1057 QualType ElemType; 1058 explicit operator bool() const { return FrameIndex != 0; }; 1059 }; 1060 1061 StdAllocatorCaller getStdAllocatorCaller(StringRef FnName) const { 1062 for (const CallStackFrame *Call = CurrentCall; Call != &BottomFrame; 1063 Call = Call->Caller) { 1064 const auto *MD = dyn_cast_or_null<CXXMethodDecl>(Call->Callee); 1065 if (!MD) 1066 continue; 1067 const IdentifierInfo *FnII = MD->getIdentifier(); 1068 if (!FnII || !FnII->isStr(FnName)) 1069 continue; 1070 1071 const auto *CTSD = 1072 dyn_cast<ClassTemplateSpecializationDecl>(MD->getParent()); 1073 if (!CTSD) 1074 continue; 1075 1076 const IdentifierInfo *ClassII = CTSD->getIdentifier(); 1077 const TemplateArgumentList &TAL = CTSD->getTemplateArgs(); 1078 if (CTSD->isInStdNamespace() && ClassII && 1079 ClassII->isStr("allocator") && TAL.size() >= 1 && 1080 TAL[0].getKind() == TemplateArgument::Type) 1081 return {Call->Index, TAL[0].getAsType()}; 1082 } 1083 1084 return {}; 1085 } 1086 1087 void performLifetimeExtension() { 1088 // Disable the cleanups for lifetime-extended temporaries. 1089 llvm::erase_if(CleanupStack, [](Cleanup &C) { 1090 return !C.isDestroyedAtEndOf(ScopeKind::FullExpression); 1091 }); 1092 } 1093 1094 /// Throw away any remaining cleanups at the end of evaluation. If any 1095 /// cleanups would have had a side-effect, note that as an unmodeled 1096 /// side-effect and return false. Otherwise, return true. 1097 bool discardCleanups() { 1098 for (Cleanup &C : CleanupStack) { 1099 if (C.hasSideEffect() && !noteSideEffect()) { 1100 CleanupStack.clear(); 1101 return false; 1102 } 1103 } 1104 CleanupStack.clear(); 1105 return true; 1106 } 1107 1108 private: 1109 interp::Frame *getCurrentFrame() override { return CurrentCall; } 1110 const interp::Frame *getBottomFrame() const override { return &BottomFrame; } 1111 1112 bool hasActiveDiagnostic() override { return HasActiveDiagnostic; } 1113 void setActiveDiagnostic(bool Flag) override { HasActiveDiagnostic = Flag; } 1114 1115 void setFoldFailureDiagnostic(bool Flag) override { 1116 HasFoldFailureDiagnostic = Flag; 1117 } 1118 1119 Expr::EvalStatus &getEvalStatus() const override { return EvalStatus; } 1120 1121 // If we have a prior diagnostic, it will be noting that the expression 1122 // isn't a constant expression. This diagnostic is more important, 1123 // unless we require this evaluation to produce a constant expression. 1124 // 1125 // FIXME: We might want to show both diagnostics to the user in 1126 // EM_ConstantFold mode. 1127 bool hasPriorDiagnostic() override { 1128 if (!EvalStatus.Diag->empty()) { 1129 switch (EvalMode) { 1130 case EM_ConstantFold: 1131 case EM_IgnoreSideEffects: 1132 if (!HasFoldFailureDiagnostic) 1133 break; 1134 // We've already failed to fold something. Keep that diagnostic. 1135 LLVM_FALLTHROUGH; 1136 case EM_ConstantExpression: 1137 case EM_ConstantExpressionUnevaluated: 1138 setActiveDiagnostic(false); 1139 return true; 1140 } 1141 } 1142 return false; 1143 } 1144 1145 unsigned getCallStackDepth() override { return CallStackDepth; } 1146 1147 public: 1148 /// Should we continue evaluation after encountering a side-effect that we 1149 /// couldn't model? 1150 bool keepEvaluatingAfterSideEffect() { 1151 switch (EvalMode) { 1152 case EM_IgnoreSideEffects: 1153 return true; 1154 1155 case EM_ConstantExpression: 1156 case EM_ConstantExpressionUnevaluated: 1157 case EM_ConstantFold: 1158 // By default, assume any side effect might be valid in some other 1159 // evaluation of this expression from a different context. 1160 return checkingPotentialConstantExpression() || 1161 checkingForUndefinedBehavior(); 1162 } 1163 llvm_unreachable("Missed EvalMode case"); 1164 } 1165 1166 /// Note that we have had a side-effect, and determine whether we should 1167 /// keep evaluating. 1168 bool noteSideEffect() { 1169 EvalStatus.HasSideEffects = true; 1170 return keepEvaluatingAfterSideEffect(); 1171 } 1172 1173 /// Should we continue evaluation after encountering undefined behavior? 1174 bool keepEvaluatingAfterUndefinedBehavior() { 1175 switch (EvalMode) { 1176 case EM_IgnoreSideEffects: 1177 case EM_ConstantFold: 1178 return true; 1179 1180 case EM_ConstantExpression: 1181 case EM_ConstantExpressionUnevaluated: 1182 return checkingForUndefinedBehavior(); 1183 } 1184 llvm_unreachable("Missed EvalMode case"); 1185 } 1186 1187 /// Note that we hit something that was technically undefined behavior, but 1188 /// that we can evaluate past it (such as signed overflow or floating-point 1189 /// division by zero.) 1190 bool noteUndefinedBehavior() override { 1191 EvalStatus.HasUndefinedBehavior = true; 1192 return keepEvaluatingAfterUndefinedBehavior(); 1193 } 1194 1195 /// Should we continue evaluation as much as possible after encountering a 1196 /// construct which can't be reduced to a value? 1197 bool keepEvaluatingAfterFailure() const override { 1198 if (!StepsLeft) 1199 return false; 1200 1201 switch (EvalMode) { 1202 case EM_ConstantExpression: 1203 case EM_ConstantExpressionUnevaluated: 1204 case EM_ConstantFold: 1205 case EM_IgnoreSideEffects: 1206 return checkingPotentialConstantExpression() || 1207 checkingForUndefinedBehavior(); 1208 } 1209 llvm_unreachable("Missed EvalMode case"); 1210 } 1211 1212 /// Notes that we failed to evaluate an expression that other expressions 1213 /// directly depend on, and determine if we should keep evaluating. This 1214 /// should only be called if we actually intend to keep evaluating. 1215 /// 1216 /// Call noteSideEffect() instead if we may be able to ignore the value that 1217 /// we failed to evaluate, e.g. if we failed to evaluate Foo() in: 1218 /// 1219 /// (Foo(), 1) // use noteSideEffect 1220 /// (Foo() || true) // use noteSideEffect 1221 /// Foo() + 1 // use noteFailure 1222 LLVM_NODISCARD bool noteFailure() { 1223 // Failure when evaluating some expression often means there is some 1224 // subexpression whose evaluation was skipped. Therefore, (because we 1225 // don't track whether we skipped an expression when unwinding after an 1226 // evaluation failure) every evaluation failure that bubbles up from a 1227 // subexpression implies that a side-effect has potentially happened. We 1228 // skip setting the HasSideEffects flag to true until we decide to 1229 // continue evaluating after that point, which happens here. 1230 bool KeepGoing = keepEvaluatingAfterFailure(); 1231 EvalStatus.HasSideEffects |= KeepGoing; 1232 return KeepGoing; 1233 } 1234 1235 class ArrayInitLoopIndex { 1236 EvalInfo &Info; 1237 uint64_t OuterIndex; 1238 1239 public: 1240 ArrayInitLoopIndex(EvalInfo &Info) 1241 : Info(Info), OuterIndex(Info.ArrayInitIndex) { 1242 Info.ArrayInitIndex = 0; 1243 } 1244 ~ArrayInitLoopIndex() { Info.ArrayInitIndex = OuterIndex; } 1245 1246 operator uint64_t&() { return Info.ArrayInitIndex; } 1247 }; 1248 }; 1249 1250 /// Object used to treat all foldable expressions as constant expressions. 1251 struct FoldConstant { 1252 EvalInfo &Info; 1253 bool Enabled; 1254 bool HadNoPriorDiags; 1255 EvalInfo::EvaluationMode OldMode; 1256 1257 explicit FoldConstant(EvalInfo &Info, bool Enabled) 1258 : Info(Info), 1259 Enabled(Enabled), 1260 HadNoPriorDiags(Info.EvalStatus.Diag && 1261 Info.EvalStatus.Diag->empty() && 1262 !Info.EvalStatus.HasSideEffects), 1263 OldMode(Info.EvalMode) { 1264 if (Enabled) 1265 Info.EvalMode = EvalInfo::EM_ConstantFold; 1266 } 1267 void keepDiagnostics() { Enabled = false; } 1268 ~FoldConstant() { 1269 if (Enabled && HadNoPriorDiags && !Info.EvalStatus.Diag->empty() && 1270 !Info.EvalStatus.HasSideEffects) 1271 Info.EvalStatus.Diag->clear(); 1272 Info.EvalMode = OldMode; 1273 } 1274 }; 1275 1276 /// RAII object used to set the current evaluation mode to ignore 1277 /// side-effects. 1278 struct IgnoreSideEffectsRAII { 1279 EvalInfo &Info; 1280 EvalInfo::EvaluationMode OldMode; 1281 explicit IgnoreSideEffectsRAII(EvalInfo &Info) 1282 : Info(Info), OldMode(Info.EvalMode) { 1283 Info.EvalMode = EvalInfo::EM_IgnoreSideEffects; 1284 } 1285 1286 ~IgnoreSideEffectsRAII() { Info.EvalMode = OldMode; } 1287 }; 1288 1289 /// RAII object used to optionally suppress diagnostics and side-effects from 1290 /// a speculative evaluation. 1291 class SpeculativeEvaluationRAII { 1292 EvalInfo *Info = nullptr; 1293 Expr::EvalStatus OldStatus; 1294 unsigned OldSpeculativeEvaluationDepth; 1295 1296 void moveFromAndCancel(SpeculativeEvaluationRAII &&Other) { 1297 Info = Other.Info; 1298 OldStatus = Other.OldStatus; 1299 OldSpeculativeEvaluationDepth = Other.OldSpeculativeEvaluationDepth; 1300 Other.Info = nullptr; 1301 } 1302 1303 void maybeRestoreState() { 1304 if (!Info) 1305 return; 1306 1307 Info->EvalStatus = OldStatus; 1308 Info->SpeculativeEvaluationDepth = OldSpeculativeEvaluationDepth; 1309 } 1310 1311 public: 1312 SpeculativeEvaluationRAII() = default; 1313 1314 SpeculativeEvaluationRAII( 1315 EvalInfo &Info, SmallVectorImpl<PartialDiagnosticAt> *NewDiag = nullptr) 1316 : Info(&Info), OldStatus(Info.EvalStatus), 1317 OldSpeculativeEvaluationDepth(Info.SpeculativeEvaluationDepth) { 1318 Info.EvalStatus.Diag = NewDiag; 1319 Info.SpeculativeEvaluationDepth = Info.CallStackDepth + 1; 1320 } 1321 1322 SpeculativeEvaluationRAII(const SpeculativeEvaluationRAII &Other) = delete; 1323 SpeculativeEvaluationRAII(SpeculativeEvaluationRAII &&Other) { 1324 moveFromAndCancel(std::move(Other)); 1325 } 1326 1327 SpeculativeEvaluationRAII &operator=(SpeculativeEvaluationRAII &&Other) { 1328 maybeRestoreState(); 1329 moveFromAndCancel(std::move(Other)); 1330 return *this; 1331 } 1332 1333 ~SpeculativeEvaluationRAII() { maybeRestoreState(); } 1334 }; 1335 1336 /// RAII object wrapping a full-expression or block scope, and handling 1337 /// the ending of the lifetime of temporaries created within it. 1338 template<ScopeKind Kind> 1339 class ScopeRAII { 1340 EvalInfo &Info; 1341 unsigned OldStackSize; 1342 public: 1343 ScopeRAII(EvalInfo &Info) 1344 : Info(Info), OldStackSize(Info.CleanupStack.size()) { 1345 // Push a new temporary version. This is needed to distinguish between 1346 // temporaries created in different iterations of a loop. 1347 Info.CurrentCall->pushTempVersion(); 1348 } 1349 bool destroy(bool RunDestructors = true) { 1350 bool OK = cleanup(Info, RunDestructors, OldStackSize); 1351 OldStackSize = -1U; 1352 return OK; 1353 } 1354 ~ScopeRAII() { 1355 if (OldStackSize != -1U) 1356 destroy(false); 1357 // Body moved to a static method to encourage the compiler to inline away 1358 // instances of this class. 1359 Info.CurrentCall->popTempVersion(); 1360 } 1361 private: 1362 static bool cleanup(EvalInfo &Info, bool RunDestructors, 1363 unsigned OldStackSize) { 1364 assert(OldStackSize <= Info.CleanupStack.size() && 1365 "running cleanups out of order?"); 1366 1367 // Run all cleanups for a block scope, and non-lifetime-extended cleanups 1368 // for a full-expression scope. 1369 bool Success = true; 1370 for (unsigned I = Info.CleanupStack.size(); I > OldStackSize; --I) { 1371 if (Info.CleanupStack[I - 1].isDestroyedAtEndOf(Kind)) { 1372 if (!Info.CleanupStack[I - 1].endLifetime(Info, RunDestructors)) { 1373 Success = false; 1374 break; 1375 } 1376 } 1377 } 1378 1379 // Compact any retained cleanups. 1380 auto NewEnd = Info.CleanupStack.begin() + OldStackSize; 1381 if (Kind != ScopeKind::Block) 1382 NewEnd = 1383 std::remove_if(NewEnd, Info.CleanupStack.end(), [](Cleanup &C) { 1384 return C.isDestroyedAtEndOf(Kind); 1385 }); 1386 Info.CleanupStack.erase(NewEnd, Info.CleanupStack.end()); 1387 return Success; 1388 } 1389 }; 1390 typedef ScopeRAII<ScopeKind::Block> BlockScopeRAII; 1391 typedef ScopeRAII<ScopeKind::FullExpression> FullExpressionRAII; 1392 typedef ScopeRAII<ScopeKind::Call> CallScopeRAII; 1393 } 1394 1395 bool SubobjectDesignator::checkSubobject(EvalInfo &Info, const Expr *E, 1396 CheckSubobjectKind CSK) { 1397 if (Invalid) 1398 return false; 1399 if (isOnePastTheEnd()) { 1400 Info.CCEDiag(E, diag::note_constexpr_past_end_subobject) 1401 << CSK; 1402 setInvalid(); 1403 return false; 1404 } 1405 // Note, we do not diagnose if isMostDerivedAnUnsizedArray(), because there 1406 // must actually be at least one array element; even a VLA cannot have a 1407 // bound of zero. And if our index is nonzero, we already had a CCEDiag. 1408 return true; 1409 } 1410 1411 void SubobjectDesignator::diagnoseUnsizedArrayPointerArithmetic(EvalInfo &Info, 1412 const Expr *E) { 1413 Info.CCEDiag(E, diag::note_constexpr_unsized_array_indexed); 1414 // Do not set the designator as invalid: we can represent this situation, 1415 // and correct handling of __builtin_object_size requires us to do so. 1416 } 1417 1418 void SubobjectDesignator::diagnosePointerArithmetic(EvalInfo &Info, 1419 const Expr *E, 1420 const APSInt &N) { 1421 // If we're complaining, we must be able to statically determine the size of 1422 // the most derived array. 1423 if (MostDerivedPathLength == Entries.size() && MostDerivedIsArrayElement) 1424 Info.CCEDiag(E, diag::note_constexpr_array_index) 1425 << N << /*array*/ 0 1426 << static_cast<unsigned>(getMostDerivedArraySize()); 1427 else 1428 Info.CCEDiag(E, diag::note_constexpr_array_index) 1429 << N << /*non-array*/ 1; 1430 setInvalid(); 1431 } 1432 1433 CallStackFrame::CallStackFrame(EvalInfo &Info, SourceLocation CallLoc, 1434 const FunctionDecl *Callee, const LValue *This, 1435 CallRef Call) 1436 : Info(Info), Caller(Info.CurrentCall), Callee(Callee), This(This), 1437 Arguments(Call), CallLoc(CallLoc), Index(Info.NextCallIndex++) { 1438 Info.CurrentCall = this; 1439 ++Info.CallStackDepth; 1440 } 1441 1442 CallStackFrame::~CallStackFrame() { 1443 assert(Info.CurrentCall == this && "calls retired out of order"); 1444 --Info.CallStackDepth; 1445 Info.CurrentCall = Caller; 1446 } 1447 1448 static bool isRead(AccessKinds AK) { 1449 return AK == AK_Read || AK == AK_ReadObjectRepresentation; 1450 } 1451 1452 static bool isModification(AccessKinds AK) { 1453 switch (AK) { 1454 case AK_Read: 1455 case AK_ReadObjectRepresentation: 1456 case AK_MemberCall: 1457 case AK_DynamicCast: 1458 case AK_TypeId: 1459 return false; 1460 case AK_Assign: 1461 case AK_Increment: 1462 case AK_Decrement: 1463 case AK_Construct: 1464 case AK_Destroy: 1465 return true; 1466 } 1467 llvm_unreachable("unknown access kind"); 1468 } 1469 1470 static bool isAnyAccess(AccessKinds AK) { 1471 return isRead(AK) || isModification(AK); 1472 } 1473 1474 /// Is this an access per the C++ definition? 1475 static bool isFormalAccess(AccessKinds AK) { 1476 return isAnyAccess(AK) && AK != AK_Construct && AK != AK_Destroy; 1477 } 1478 1479 /// Is this kind of axcess valid on an indeterminate object value? 1480 static bool isValidIndeterminateAccess(AccessKinds AK) { 1481 switch (AK) { 1482 case AK_Read: 1483 case AK_Increment: 1484 case AK_Decrement: 1485 // These need the object's value. 1486 return false; 1487 1488 case AK_ReadObjectRepresentation: 1489 case AK_Assign: 1490 case AK_Construct: 1491 case AK_Destroy: 1492 // Construction and destruction don't need the value. 1493 return true; 1494 1495 case AK_MemberCall: 1496 case AK_DynamicCast: 1497 case AK_TypeId: 1498 // These aren't really meaningful on scalars. 1499 return true; 1500 } 1501 llvm_unreachable("unknown access kind"); 1502 } 1503 1504 namespace { 1505 struct ComplexValue { 1506 private: 1507 bool IsInt; 1508 1509 public: 1510 APSInt IntReal, IntImag; 1511 APFloat FloatReal, FloatImag; 1512 1513 ComplexValue() : FloatReal(APFloat::Bogus()), FloatImag(APFloat::Bogus()) {} 1514 1515 void makeComplexFloat() { IsInt = false; } 1516 bool isComplexFloat() const { return !IsInt; } 1517 APFloat &getComplexFloatReal() { return FloatReal; } 1518 APFloat &getComplexFloatImag() { return FloatImag; } 1519 1520 void makeComplexInt() { IsInt = true; } 1521 bool isComplexInt() const { return IsInt; } 1522 APSInt &getComplexIntReal() { return IntReal; } 1523 APSInt &getComplexIntImag() { return IntImag; } 1524 1525 void moveInto(APValue &v) const { 1526 if (isComplexFloat()) 1527 v = APValue(FloatReal, FloatImag); 1528 else 1529 v = APValue(IntReal, IntImag); 1530 } 1531 void setFrom(const APValue &v) { 1532 assert(v.isComplexFloat() || v.isComplexInt()); 1533 if (v.isComplexFloat()) { 1534 makeComplexFloat(); 1535 FloatReal = v.getComplexFloatReal(); 1536 FloatImag = v.getComplexFloatImag(); 1537 } else { 1538 makeComplexInt(); 1539 IntReal = v.getComplexIntReal(); 1540 IntImag = v.getComplexIntImag(); 1541 } 1542 } 1543 }; 1544 1545 struct LValue { 1546 APValue::LValueBase Base; 1547 CharUnits Offset; 1548 SubobjectDesignator Designator; 1549 bool IsNullPtr : 1; 1550 bool InvalidBase : 1; 1551 1552 const APValue::LValueBase getLValueBase() const { return Base; } 1553 CharUnits &getLValueOffset() { return Offset; } 1554 const CharUnits &getLValueOffset() const { return Offset; } 1555 SubobjectDesignator &getLValueDesignator() { return Designator; } 1556 const SubobjectDesignator &getLValueDesignator() const { return Designator;} 1557 bool isNullPointer() const { return IsNullPtr;} 1558 1559 unsigned getLValueCallIndex() const { return Base.getCallIndex(); } 1560 unsigned getLValueVersion() const { return Base.getVersion(); } 1561 1562 void moveInto(APValue &V) const { 1563 if (Designator.Invalid) 1564 V = APValue(Base, Offset, APValue::NoLValuePath(), IsNullPtr); 1565 else { 1566 assert(!InvalidBase && "APValues can't handle invalid LValue bases"); 1567 V = APValue(Base, Offset, Designator.Entries, 1568 Designator.IsOnePastTheEnd, IsNullPtr); 1569 } 1570 } 1571 void setFrom(ASTContext &Ctx, const APValue &V) { 1572 assert(V.isLValue() && "Setting LValue from a non-LValue?"); 1573 Base = V.getLValueBase(); 1574 Offset = V.getLValueOffset(); 1575 InvalidBase = false; 1576 Designator = SubobjectDesignator(Ctx, V); 1577 IsNullPtr = V.isNullPointer(); 1578 } 1579 1580 void set(APValue::LValueBase B, bool BInvalid = false) { 1581 #ifndef NDEBUG 1582 // We only allow a few types of invalid bases. Enforce that here. 1583 if (BInvalid) { 1584 const auto *E = B.get<const Expr *>(); 1585 assert((isa<MemberExpr>(E) || tryUnwrapAllocSizeCall(E)) && 1586 "Unexpected type of invalid base"); 1587 } 1588 #endif 1589 1590 Base = B; 1591 Offset = CharUnits::fromQuantity(0); 1592 InvalidBase = BInvalid; 1593 Designator = SubobjectDesignator(getType(B)); 1594 IsNullPtr = false; 1595 } 1596 1597 void setNull(ASTContext &Ctx, QualType PointerTy) { 1598 Base = (const ValueDecl *)nullptr; 1599 Offset = 1600 CharUnits::fromQuantity(Ctx.getTargetNullPointerValue(PointerTy)); 1601 InvalidBase = false; 1602 Designator = SubobjectDesignator(PointerTy->getPointeeType()); 1603 IsNullPtr = true; 1604 } 1605 1606 void setInvalid(APValue::LValueBase B, unsigned I = 0) { 1607 set(B, true); 1608 } 1609 1610 std::string toString(ASTContext &Ctx, QualType T) const { 1611 APValue Printable; 1612 moveInto(Printable); 1613 return Printable.getAsString(Ctx, T); 1614 } 1615 1616 private: 1617 // Check that this LValue is not based on a null pointer. If it is, produce 1618 // a diagnostic and mark the designator as invalid. 1619 template <typename GenDiagType> 1620 bool checkNullPointerDiagnosingWith(const GenDiagType &GenDiag) { 1621 if (Designator.Invalid) 1622 return false; 1623 if (IsNullPtr) { 1624 GenDiag(); 1625 Designator.setInvalid(); 1626 return false; 1627 } 1628 return true; 1629 } 1630 1631 public: 1632 bool checkNullPointer(EvalInfo &Info, const Expr *E, 1633 CheckSubobjectKind CSK) { 1634 return checkNullPointerDiagnosingWith([&Info, E, CSK] { 1635 Info.CCEDiag(E, diag::note_constexpr_null_subobject) << CSK; 1636 }); 1637 } 1638 1639 bool checkNullPointerForFoldAccess(EvalInfo &Info, const Expr *E, 1640 AccessKinds AK) { 1641 return checkNullPointerDiagnosingWith([&Info, E, AK] { 1642 Info.FFDiag(E, diag::note_constexpr_access_null) << AK; 1643 }); 1644 } 1645 1646 // Check this LValue refers to an object. If not, set the designator to be 1647 // invalid and emit a diagnostic. 1648 bool checkSubobject(EvalInfo &Info, const Expr *E, CheckSubobjectKind CSK) { 1649 return (CSK == CSK_ArrayToPointer || checkNullPointer(Info, E, CSK)) && 1650 Designator.checkSubobject(Info, E, CSK); 1651 } 1652 1653 void addDecl(EvalInfo &Info, const Expr *E, 1654 const Decl *D, bool Virtual = false) { 1655 if (checkSubobject(Info, E, isa<FieldDecl>(D) ? CSK_Field : CSK_Base)) 1656 Designator.addDeclUnchecked(D, Virtual); 1657 } 1658 void addUnsizedArray(EvalInfo &Info, const Expr *E, QualType ElemTy) { 1659 if (!Designator.Entries.empty()) { 1660 Info.CCEDiag(E, diag::note_constexpr_unsupported_unsized_array); 1661 Designator.setInvalid(); 1662 return; 1663 } 1664 if (checkSubobject(Info, E, CSK_ArrayToPointer)) { 1665 assert(getType(Base)->isPointerType() || getType(Base)->isArrayType()); 1666 Designator.FirstEntryIsAnUnsizedArray = true; 1667 Designator.addUnsizedArrayUnchecked(ElemTy); 1668 } 1669 } 1670 void addArray(EvalInfo &Info, const Expr *E, const ConstantArrayType *CAT) { 1671 if (checkSubobject(Info, E, CSK_ArrayToPointer)) 1672 Designator.addArrayUnchecked(CAT); 1673 } 1674 void addComplex(EvalInfo &Info, const Expr *E, QualType EltTy, bool Imag) { 1675 if (checkSubobject(Info, E, Imag ? CSK_Imag : CSK_Real)) 1676 Designator.addComplexUnchecked(EltTy, Imag); 1677 } 1678 void clearIsNullPointer() { 1679 IsNullPtr = false; 1680 } 1681 void adjustOffsetAndIndex(EvalInfo &Info, const Expr *E, 1682 const APSInt &Index, CharUnits ElementSize) { 1683 // An index of 0 has no effect. (In C, adding 0 to a null pointer is UB, 1684 // but we're not required to diagnose it and it's valid in C++.) 1685 if (!Index) 1686 return; 1687 1688 // Compute the new offset in the appropriate width, wrapping at 64 bits. 1689 // FIXME: When compiling for a 32-bit target, we should use 32-bit 1690 // offsets. 1691 uint64_t Offset64 = Offset.getQuantity(); 1692 uint64_t ElemSize64 = ElementSize.getQuantity(); 1693 uint64_t Index64 = Index.extOrTrunc(64).getZExtValue(); 1694 Offset = CharUnits::fromQuantity(Offset64 + ElemSize64 * Index64); 1695 1696 if (checkNullPointer(Info, E, CSK_ArrayIndex)) 1697 Designator.adjustIndex(Info, E, Index); 1698 clearIsNullPointer(); 1699 } 1700 void adjustOffset(CharUnits N) { 1701 Offset += N; 1702 if (N.getQuantity()) 1703 clearIsNullPointer(); 1704 } 1705 }; 1706 1707 struct MemberPtr { 1708 MemberPtr() {} 1709 explicit MemberPtr(const ValueDecl *Decl) 1710 : DeclAndIsDerivedMember(Decl, false) {} 1711 1712 /// The member or (direct or indirect) field referred to by this member 1713 /// pointer, or 0 if this is a null member pointer. 1714 const ValueDecl *getDecl() const { 1715 return DeclAndIsDerivedMember.getPointer(); 1716 } 1717 /// Is this actually a member of some type derived from the relevant class? 1718 bool isDerivedMember() const { 1719 return DeclAndIsDerivedMember.getInt(); 1720 } 1721 /// Get the class which the declaration actually lives in. 1722 const CXXRecordDecl *getContainingRecord() const { 1723 return cast<CXXRecordDecl>( 1724 DeclAndIsDerivedMember.getPointer()->getDeclContext()); 1725 } 1726 1727 void moveInto(APValue &V) const { 1728 V = APValue(getDecl(), isDerivedMember(), Path); 1729 } 1730 void setFrom(const APValue &V) { 1731 assert(V.isMemberPointer()); 1732 DeclAndIsDerivedMember.setPointer(V.getMemberPointerDecl()); 1733 DeclAndIsDerivedMember.setInt(V.isMemberPointerToDerivedMember()); 1734 Path.clear(); 1735 ArrayRef<const CXXRecordDecl*> P = V.getMemberPointerPath(); 1736 Path.insert(Path.end(), P.begin(), P.end()); 1737 } 1738 1739 /// DeclAndIsDerivedMember - The member declaration, and a flag indicating 1740 /// whether the member is a member of some class derived from the class type 1741 /// of the member pointer. 1742 llvm::PointerIntPair<const ValueDecl*, 1, bool> DeclAndIsDerivedMember; 1743 /// Path - The path of base/derived classes from the member declaration's 1744 /// class (exclusive) to the class type of the member pointer (inclusive). 1745 SmallVector<const CXXRecordDecl*, 4> Path; 1746 1747 /// Perform a cast towards the class of the Decl (either up or down the 1748 /// hierarchy). 1749 bool castBack(const CXXRecordDecl *Class) { 1750 assert(!Path.empty()); 1751 const CXXRecordDecl *Expected; 1752 if (Path.size() >= 2) 1753 Expected = Path[Path.size() - 2]; 1754 else 1755 Expected = getContainingRecord(); 1756 if (Expected->getCanonicalDecl() != Class->getCanonicalDecl()) { 1757 // C++11 [expr.static.cast]p12: In a conversion from (D::*) to (B::*), 1758 // if B does not contain the original member and is not a base or 1759 // derived class of the class containing the original member, the result 1760 // of the cast is undefined. 1761 // C++11 [conv.mem]p2 does not cover this case for a cast from (B::*) to 1762 // (D::*). We consider that to be a language defect. 1763 return false; 1764 } 1765 Path.pop_back(); 1766 return true; 1767 } 1768 /// Perform a base-to-derived member pointer cast. 1769 bool castToDerived(const CXXRecordDecl *Derived) { 1770 if (!getDecl()) 1771 return true; 1772 if (!isDerivedMember()) { 1773 Path.push_back(Derived); 1774 return true; 1775 } 1776 if (!castBack(Derived)) 1777 return false; 1778 if (Path.empty()) 1779 DeclAndIsDerivedMember.setInt(false); 1780 return true; 1781 } 1782 /// Perform a derived-to-base member pointer cast. 1783 bool castToBase(const CXXRecordDecl *Base) { 1784 if (!getDecl()) 1785 return true; 1786 if (Path.empty()) 1787 DeclAndIsDerivedMember.setInt(true); 1788 if (isDerivedMember()) { 1789 Path.push_back(Base); 1790 return true; 1791 } 1792 return castBack(Base); 1793 } 1794 }; 1795 1796 /// Compare two member pointers, which are assumed to be of the same type. 1797 static bool operator==(const MemberPtr &LHS, const MemberPtr &RHS) { 1798 if (!LHS.getDecl() || !RHS.getDecl()) 1799 return !LHS.getDecl() && !RHS.getDecl(); 1800 if (LHS.getDecl()->getCanonicalDecl() != RHS.getDecl()->getCanonicalDecl()) 1801 return false; 1802 return LHS.Path == RHS.Path; 1803 } 1804 } 1805 1806 static bool Evaluate(APValue &Result, EvalInfo &Info, const Expr *E); 1807 static bool EvaluateInPlace(APValue &Result, EvalInfo &Info, 1808 const LValue &This, const Expr *E, 1809 bool AllowNonLiteralTypes = false); 1810 static bool EvaluateLValue(const Expr *E, LValue &Result, EvalInfo &Info, 1811 bool InvalidBaseOK = false); 1812 static bool EvaluatePointer(const Expr *E, LValue &Result, EvalInfo &Info, 1813 bool InvalidBaseOK = false); 1814 static bool EvaluateMemberPointer(const Expr *E, MemberPtr &Result, 1815 EvalInfo &Info); 1816 static bool EvaluateTemporary(const Expr *E, LValue &Result, EvalInfo &Info); 1817 static bool EvaluateInteger(const Expr *E, APSInt &Result, EvalInfo &Info); 1818 static bool EvaluateIntegerOrLValue(const Expr *E, APValue &Result, 1819 EvalInfo &Info); 1820 static bool EvaluateFloat(const Expr *E, APFloat &Result, EvalInfo &Info); 1821 static bool EvaluateComplex(const Expr *E, ComplexValue &Res, EvalInfo &Info); 1822 static bool EvaluateAtomic(const Expr *E, const LValue *This, APValue &Result, 1823 EvalInfo &Info); 1824 static bool EvaluateAsRValue(EvalInfo &Info, const Expr *E, APValue &Result); 1825 static bool EvaluateBuiltinStrLen(const Expr *E, uint64_t &Result, 1826 EvalInfo &Info); 1827 1828 /// Evaluate an integer or fixed point expression into an APResult. 1829 static bool EvaluateFixedPointOrInteger(const Expr *E, APFixedPoint &Result, 1830 EvalInfo &Info); 1831 1832 /// Evaluate only a fixed point expression into an APResult. 1833 static bool EvaluateFixedPoint(const Expr *E, APFixedPoint &Result, 1834 EvalInfo &Info); 1835 1836 //===----------------------------------------------------------------------===// 1837 // Misc utilities 1838 //===----------------------------------------------------------------------===// 1839 1840 /// Negate an APSInt in place, converting it to a signed form if necessary, and 1841 /// preserving its value (by extending by up to one bit as needed). 1842 static void negateAsSigned(APSInt &Int) { 1843 if (Int.isUnsigned() || Int.isMinSignedValue()) { 1844 Int = Int.extend(Int.getBitWidth() + 1); 1845 Int.setIsSigned(true); 1846 } 1847 Int = -Int; 1848 } 1849 1850 template<typename KeyT> 1851 APValue &CallStackFrame::createTemporary(const KeyT *Key, QualType T, 1852 ScopeKind Scope, LValue &LV) { 1853 unsigned Version = getTempVersion(); 1854 APValue::LValueBase Base(Key, Index, Version); 1855 LV.set(Base); 1856 return createLocal(Base, Key, T, Scope); 1857 } 1858 1859 /// Allocate storage for a parameter of a function call made in this frame. 1860 APValue &CallStackFrame::createParam(CallRef Args, const ParmVarDecl *PVD, 1861 LValue &LV) { 1862 assert(Args.CallIndex == Index && "creating parameter in wrong frame"); 1863 APValue::LValueBase Base(PVD, Index, Args.Version); 1864 LV.set(Base); 1865 // We always destroy parameters at the end of the call, even if we'd allow 1866 // them to live to the end of the full-expression at runtime, in order to 1867 // give portable results and match other compilers. 1868 return createLocal(Base, PVD, PVD->getType(), ScopeKind::Call); 1869 } 1870 1871 APValue &CallStackFrame::createLocal(APValue::LValueBase Base, const void *Key, 1872 QualType T, ScopeKind Scope) { 1873 assert(Base.getCallIndex() == Index && "lvalue for wrong frame"); 1874 unsigned Version = Base.getVersion(); 1875 APValue &Result = Temporaries[MapKeyTy(Key, Version)]; 1876 assert(Result.isAbsent() && "local created multiple times"); 1877 1878 // If we're creating a local immediately in the operand of a speculative 1879 // evaluation, don't register a cleanup to be run outside the speculative 1880 // evaluation context, since we won't actually be able to initialize this 1881 // object. 1882 if (Index <= Info.SpeculativeEvaluationDepth) { 1883 if (T.isDestructedType()) 1884 Info.noteSideEffect(); 1885 } else { 1886 Info.CleanupStack.push_back(Cleanup(&Result, Base, T, Scope)); 1887 } 1888 return Result; 1889 } 1890 1891 APValue *EvalInfo::createHeapAlloc(const Expr *E, QualType T, LValue &LV) { 1892 if (NumHeapAllocs > DynamicAllocLValue::getMaxIndex()) { 1893 FFDiag(E, diag::note_constexpr_heap_alloc_limit_exceeded); 1894 return nullptr; 1895 } 1896 1897 DynamicAllocLValue DA(NumHeapAllocs++); 1898 LV.set(APValue::LValueBase::getDynamicAlloc(DA, T)); 1899 auto Result = HeapAllocs.emplace(std::piecewise_construct, 1900 std::forward_as_tuple(DA), std::tuple<>()); 1901 assert(Result.second && "reused a heap alloc index?"); 1902 Result.first->second.AllocExpr = E; 1903 return &Result.first->second.Value; 1904 } 1905 1906 /// Produce a string describing the given constexpr call. 1907 void CallStackFrame::describe(raw_ostream &Out) { 1908 unsigned ArgIndex = 0; 1909 bool IsMemberCall = isa<CXXMethodDecl>(Callee) && 1910 !isa<CXXConstructorDecl>(Callee) && 1911 cast<CXXMethodDecl>(Callee)->isInstance(); 1912 1913 if (!IsMemberCall) 1914 Out << *Callee << '('; 1915 1916 if (This && IsMemberCall) { 1917 APValue Val; 1918 This->moveInto(Val); 1919 Val.printPretty(Out, Info.Ctx, 1920 This->Designator.MostDerivedType); 1921 // FIXME: Add parens around Val if needed. 1922 Out << "->" << *Callee << '('; 1923 IsMemberCall = false; 1924 } 1925 1926 for (FunctionDecl::param_const_iterator I = Callee->param_begin(), 1927 E = Callee->param_end(); I != E; ++I, ++ArgIndex) { 1928 if (ArgIndex > (unsigned)IsMemberCall) 1929 Out << ", "; 1930 1931 const ParmVarDecl *Param = *I; 1932 APValue *V = Info.getParamSlot(Arguments, Param); 1933 if (V) 1934 V->printPretty(Out, Info.Ctx, Param->getType()); 1935 else 1936 Out << "<...>"; 1937 1938 if (ArgIndex == 0 && IsMemberCall) 1939 Out << "->" << *Callee << '('; 1940 } 1941 1942 Out << ')'; 1943 } 1944 1945 /// Evaluate an expression to see if it had side-effects, and discard its 1946 /// result. 1947 /// \return \c true if the caller should keep evaluating. 1948 static bool EvaluateIgnoredValue(EvalInfo &Info, const Expr *E) { 1949 assert(!E->isValueDependent()); 1950 APValue Scratch; 1951 if (!Evaluate(Scratch, Info, E)) 1952 // We don't need the value, but we might have skipped a side effect here. 1953 return Info.noteSideEffect(); 1954 return true; 1955 } 1956 1957 /// Should this call expression be treated as a constant? 1958 static bool IsConstantCall(const CallExpr *E) { 1959 unsigned Builtin = E->getBuiltinCallee(); 1960 return (Builtin == Builtin::BI__builtin___CFStringMakeConstantString || 1961 Builtin == Builtin::BI__builtin___NSStringMakeConstantString || 1962 Builtin == Builtin::BI__builtin_function_start); 1963 } 1964 1965 static bool IsGlobalLValue(APValue::LValueBase B) { 1966 // C++11 [expr.const]p3 An address constant expression is a prvalue core 1967 // constant expression of pointer type that evaluates to... 1968 1969 // ... a null pointer value, or a prvalue core constant expression of type 1970 // std::nullptr_t. 1971 if (!B) return true; 1972 1973 if (const ValueDecl *D = B.dyn_cast<const ValueDecl*>()) { 1974 // ... the address of an object with static storage duration, 1975 if (const VarDecl *VD = dyn_cast<VarDecl>(D)) 1976 return VD->hasGlobalStorage(); 1977 if (isa<TemplateParamObjectDecl>(D)) 1978 return true; 1979 // ... the address of a function, 1980 // ... the address of a GUID [MS extension], 1981 // ... the address of an unnamed global constant 1982 return isa<FunctionDecl, MSGuidDecl, UnnamedGlobalConstantDecl>(D); 1983 } 1984 1985 if (B.is<TypeInfoLValue>() || B.is<DynamicAllocLValue>()) 1986 return true; 1987 1988 const Expr *E = B.get<const Expr*>(); 1989 switch (E->getStmtClass()) { 1990 default: 1991 return false; 1992 case Expr::CompoundLiteralExprClass: { 1993 const CompoundLiteralExpr *CLE = cast<CompoundLiteralExpr>(E); 1994 return CLE->isFileScope() && CLE->isLValue(); 1995 } 1996 case Expr::MaterializeTemporaryExprClass: 1997 // A materialized temporary might have been lifetime-extended to static 1998 // storage duration. 1999 return cast<MaterializeTemporaryExpr>(E)->getStorageDuration() == SD_Static; 2000 // A string literal has static storage duration. 2001 case Expr::StringLiteralClass: 2002 case Expr::PredefinedExprClass: 2003 case Expr::ObjCStringLiteralClass: 2004 case Expr::ObjCEncodeExprClass: 2005 return true; 2006 case Expr::ObjCBoxedExprClass: 2007 return cast<ObjCBoxedExpr>(E)->isExpressibleAsConstantInitializer(); 2008 case Expr::CallExprClass: 2009 return IsConstantCall(cast<CallExpr>(E)); 2010 // For GCC compatibility, &&label has static storage duration. 2011 case Expr::AddrLabelExprClass: 2012 return true; 2013 // A Block literal expression may be used as the initialization value for 2014 // Block variables at global or local static scope. 2015 case Expr::BlockExprClass: 2016 return !cast<BlockExpr>(E)->getBlockDecl()->hasCaptures(); 2017 // The APValue generated from a __builtin_source_location will be emitted as a 2018 // literal. 2019 case Expr::SourceLocExprClass: 2020 return true; 2021 case Expr::ImplicitValueInitExprClass: 2022 // FIXME: 2023 // We can never form an lvalue with an implicit value initialization as its 2024 // base through expression evaluation, so these only appear in one case: the 2025 // implicit variable declaration we invent when checking whether a constexpr 2026 // constructor can produce a constant expression. We must assume that such 2027 // an expression might be a global lvalue. 2028 return true; 2029 } 2030 } 2031 2032 static const ValueDecl *GetLValueBaseDecl(const LValue &LVal) { 2033 return LVal.Base.dyn_cast<const ValueDecl*>(); 2034 } 2035 2036 static bool IsLiteralLValue(const LValue &Value) { 2037 if (Value.getLValueCallIndex()) 2038 return false; 2039 const Expr *E = Value.Base.dyn_cast<const Expr*>(); 2040 return E && !isa<MaterializeTemporaryExpr>(E); 2041 } 2042 2043 static bool IsWeakLValue(const LValue &Value) { 2044 const ValueDecl *Decl = GetLValueBaseDecl(Value); 2045 return Decl && Decl->isWeak(); 2046 } 2047 2048 static bool isZeroSized(const LValue &Value) { 2049 const ValueDecl *Decl = GetLValueBaseDecl(Value); 2050 if (Decl && isa<VarDecl>(Decl)) { 2051 QualType Ty = Decl->getType(); 2052 if (Ty->isArrayType()) 2053 return Ty->isIncompleteType() || 2054 Decl->getASTContext().getTypeSize(Ty) == 0; 2055 } 2056 return false; 2057 } 2058 2059 static bool HasSameBase(const LValue &A, const LValue &B) { 2060 if (!A.getLValueBase()) 2061 return !B.getLValueBase(); 2062 if (!B.getLValueBase()) 2063 return false; 2064 2065 if (A.getLValueBase().getOpaqueValue() != 2066 B.getLValueBase().getOpaqueValue()) 2067 return false; 2068 2069 return A.getLValueCallIndex() == B.getLValueCallIndex() && 2070 A.getLValueVersion() == B.getLValueVersion(); 2071 } 2072 2073 static void NoteLValueLocation(EvalInfo &Info, APValue::LValueBase Base) { 2074 assert(Base && "no location for a null lvalue"); 2075 const ValueDecl *VD = Base.dyn_cast<const ValueDecl*>(); 2076 2077 // For a parameter, find the corresponding call stack frame (if it still 2078 // exists), and point at the parameter of the function definition we actually 2079 // invoked. 2080 if (auto *PVD = dyn_cast_or_null<ParmVarDecl>(VD)) { 2081 unsigned Idx = PVD->getFunctionScopeIndex(); 2082 for (CallStackFrame *F = Info.CurrentCall; F; F = F->Caller) { 2083 if (F->Arguments.CallIndex == Base.getCallIndex() && 2084 F->Arguments.Version == Base.getVersion() && F->Callee && 2085 Idx < F->Callee->getNumParams()) { 2086 VD = F->Callee->getParamDecl(Idx); 2087 break; 2088 } 2089 } 2090 } 2091 2092 if (VD) 2093 Info.Note(VD->getLocation(), diag::note_declared_at); 2094 else if (const Expr *E = Base.dyn_cast<const Expr*>()) 2095 Info.Note(E->getExprLoc(), diag::note_constexpr_temporary_here); 2096 else if (DynamicAllocLValue DA = Base.dyn_cast<DynamicAllocLValue>()) { 2097 // FIXME: Produce a note for dangling pointers too. 2098 if (Optional<DynAlloc*> Alloc = Info.lookupDynamicAlloc(DA)) 2099 Info.Note((*Alloc)->AllocExpr->getExprLoc(), 2100 diag::note_constexpr_dynamic_alloc_here); 2101 } 2102 // We have no information to show for a typeid(T) object. 2103 } 2104 2105 enum class CheckEvaluationResultKind { 2106 ConstantExpression, 2107 FullyInitialized, 2108 }; 2109 2110 /// Materialized temporaries that we've already checked to determine if they're 2111 /// initializsed by a constant expression. 2112 using CheckedTemporaries = 2113 llvm::SmallPtrSet<const MaterializeTemporaryExpr *, 8>; 2114 2115 static bool CheckEvaluationResult(CheckEvaluationResultKind CERK, 2116 EvalInfo &Info, SourceLocation DiagLoc, 2117 QualType Type, const APValue &Value, 2118 ConstantExprKind Kind, 2119 SourceLocation SubobjectLoc, 2120 CheckedTemporaries &CheckedTemps); 2121 2122 /// Check that this reference or pointer core constant expression is a valid 2123 /// value for an address or reference constant expression. Return true if we 2124 /// can fold this expression, whether or not it's a constant expression. 2125 static bool CheckLValueConstantExpression(EvalInfo &Info, SourceLocation Loc, 2126 QualType Type, const LValue &LVal, 2127 ConstantExprKind Kind, 2128 CheckedTemporaries &CheckedTemps) { 2129 bool IsReferenceType = Type->isReferenceType(); 2130 2131 APValue::LValueBase Base = LVal.getLValueBase(); 2132 const SubobjectDesignator &Designator = LVal.getLValueDesignator(); 2133 2134 const Expr *BaseE = Base.dyn_cast<const Expr *>(); 2135 const ValueDecl *BaseVD = Base.dyn_cast<const ValueDecl*>(); 2136 2137 // Additional restrictions apply in a template argument. We only enforce the 2138 // C++20 restrictions here; additional syntactic and semantic restrictions 2139 // are applied elsewhere. 2140 if (isTemplateArgument(Kind)) { 2141 int InvalidBaseKind = -1; 2142 StringRef Ident; 2143 if (Base.is<TypeInfoLValue>()) 2144 InvalidBaseKind = 0; 2145 else if (isa_and_nonnull<StringLiteral>(BaseE)) 2146 InvalidBaseKind = 1; 2147 else if (isa_and_nonnull<MaterializeTemporaryExpr>(BaseE) || 2148 isa_and_nonnull<LifetimeExtendedTemporaryDecl>(BaseVD)) 2149 InvalidBaseKind = 2; 2150 else if (auto *PE = dyn_cast_or_null<PredefinedExpr>(BaseE)) { 2151 InvalidBaseKind = 3; 2152 Ident = PE->getIdentKindName(); 2153 } 2154 2155 if (InvalidBaseKind != -1) { 2156 Info.FFDiag(Loc, diag::note_constexpr_invalid_template_arg) 2157 << IsReferenceType << !Designator.Entries.empty() << InvalidBaseKind 2158 << Ident; 2159 return false; 2160 } 2161 } 2162 2163 if (auto *FD = dyn_cast_or_null<FunctionDecl>(BaseVD)) { 2164 if (FD->isConsteval()) { 2165 Info.FFDiag(Loc, diag::note_consteval_address_accessible) 2166 << !Type->isAnyPointerType(); 2167 Info.Note(FD->getLocation(), diag::note_declared_at); 2168 return false; 2169 } 2170 } 2171 2172 // Check that the object is a global. Note that the fake 'this' object we 2173 // manufacture when checking potential constant expressions is conservatively 2174 // assumed to be global here. 2175 if (!IsGlobalLValue(Base)) { 2176 if (Info.getLangOpts().CPlusPlus11) { 2177 const ValueDecl *VD = Base.dyn_cast<const ValueDecl*>(); 2178 Info.FFDiag(Loc, diag::note_constexpr_non_global, 1) 2179 << IsReferenceType << !Designator.Entries.empty() 2180 << !!VD << VD; 2181 2182 auto *VarD = dyn_cast_or_null<VarDecl>(VD); 2183 if (VarD && VarD->isConstexpr()) { 2184 // Non-static local constexpr variables have unintuitive semantics: 2185 // constexpr int a = 1; 2186 // constexpr const int *p = &a; 2187 // ... is invalid because the address of 'a' is not constant. Suggest 2188 // adding a 'static' in this case. 2189 Info.Note(VarD->getLocation(), diag::note_constexpr_not_static) 2190 << VarD 2191 << FixItHint::CreateInsertion(VarD->getBeginLoc(), "static "); 2192 } else { 2193 NoteLValueLocation(Info, Base); 2194 } 2195 } else { 2196 Info.FFDiag(Loc); 2197 } 2198 // Don't allow references to temporaries to escape. 2199 return false; 2200 } 2201 assert((Info.checkingPotentialConstantExpression() || 2202 LVal.getLValueCallIndex() == 0) && 2203 "have call index for global lvalue"); 2204 2205 if (Base.is<DynamicAllocLValue>()) { 2206 Info.FFDiag(Loc, diag::note_constexpr_dynamic_alloc) 2207 << IsReferenceType << !Designator.Entries.empty(); 2208 NoteLValueLocation(Info, Base); 2209 return false; 2210 } 2211 2212 if (BaseVD) { 2213 if (const VarDecl *Var = dyn_cast<const VarDecl>(BaseVD)) { 2214 // Check if this is a thread-local variable. 2215 if (Var->getTLSKind()) 2216 // FIXME: Diagnostic! 2217 return false; 2218 2219 // A dllimport variable never acts like a constant, unless we're 2220 // evaluating a value for use only in name mangling. 2221 if (!isForManglingOnly(Kind) && Var->hasAttr<DLLImportAttr>()) 2222 // FIXME: Diagnostic! 2223 return false; 2224 2225 // In CUDA/HIP device compilation, only device side variables have 2226 // constant addresses. 2227 if (Info.getCtx().getLangOpts().CUDA && 2228 Info.getCtx().getLangOpts().CUDAIsDevice && 2229 Info.getCtx().CUDAConstantEvalCtx.NoWrongSidedVars) { 2230 if ((!Var->hasAttr<CUDADeviceAttr>() && 2231 !Var->hasAttr<CUDAConstantAttr>() && 2232 !Var->getType()->isCUDADeviceBuiltinSurfaceType() && 2233 !Var->getType()->isCUDADeviceBuiltinTextureType()) || 2234 Var->hasAttr<HIPManagedAttr>()) 2235 return false; 2236 } 2237 } 2238 if (const auto *FD = dyn_cast<const FunctionDecl>(BaseVD)) { 2239 // __declspec(dllimport) must be handled very carefully: 2240 // We must never initialize an expression with the thunk in C++. 2241 // Doing otherwise would allow the same id-expression to yield 2242 // different addresses for the same function in different translation 2243 // units. However, this means that we must dynamically initialize the 2244 // expression with the contents of the import address table at runtime. 2245 // 2246 // The C language has no notion of ODR; furthermore, it has no notion of 2247 // dynamic initialization. This means that we are permitted to 2248 // perform initialization with the address of the thunk. 2249 if (Info.getLangOpts().CPlusPlus && !isForManglingOnly(Kind) && 2250 FD->hasAttr<DLLImportAttr>()) 2251 // FIXME: Diagnostic! 2252 return false; 2253 } 2254 } else if (const auto *MTE = 2255 dyn_cast_or_null<MaterializeTemporaryExpr>(BaseE)) { 2256 if (CheckedTemps.insert(MTE).second) { 2257 QualType TempType = getType(Base); 2258 if (TempType.isDestructedType()) { 2259 Info.FFDiag(MTE->getExprLoc(), 2260 diag::note_constexpr_unsupported_temporary_nontrivial_dtor) 2261 << TempType; 2262 return false; 2263 } 2264 2265 APValue *V = MTE->getOrCreateValue(false); 2266 assert(V && "evasluation result refers to uninitialised temporary"); 2267 if (!CheckEvaluationResult(CheckEvaluationResultKind::ConstantExpression, 2268 Info, MTE->getExprLoc(), TempType, *V, 2269 Kind, SourceLocation(), CheckedTemps)) 2270 return false; 2271 } 2272 } 2273 2274 // Allow address constant expressions to be past-the-end pointers. This is 2275 // an extension: the standard requires them to point to an object. 2276 if (!IsReferenceType) 2277 return true; 2278 2279 // A reference constant expression must refer to an object. 2280 if (!Base) { 2281 // FIXME: diagnostic 2282 Info.CCEDiag(Loc); 2283 return true; 2284 } 2285 2286 // Does this refer one past the end of some object? 2287 if (!Designator.Invalid && Designator.isOnePastTheEnd()) { 2288 Info.FFDiag(Loc, diag::note_constexpr_past_end, 1) 2289 << !Designator.Entries.empty() << !!BaseVD << BaseVD; 2290 NoteLValueLocation(Info, Base); 2291 } 2292 2293 return true; 2294 } 2295 2296 /// Member pointers are constant expressions unless they point to a 2297 /// non-virtual dllimport member function. 2298 static bool CheckMemberPointerConstantExpression(EvalInfo &Info, 2299 SourceLocation Loc, 2300 QualType Type, 2301 const APValue &Value, 2302 ConstantExprKind Kind) { 2303 const ValueDecl *Member = Value.getMemberPointerDecl(); 2304 const auto *FD = dyn_cast_or_null<CXXMethodDecl>(Member); 2305 if (!FD) 2306 return true; 2307 if (FD->isConsteval()) { 2308 Info.FFDiag(Loc, diag::note_consteval_address_accessible) << /*pointer*/ 0; 2309 Info.Note(FD->getLocation(), diag::note_declared_at); 2310 return false; 2311 } 2312 return isForManglingOnly(Kind) || FD->isVirtual() || 2313 !FD->hasAttr<DLLImportAttr>(); 2314 } 2315 2316 /// Check that this core constant expression is of literal type, and if not, 2317 /// produce an appropriate diagnostic. 2318 static bool CheckLiteralType(EvalInfo &Info, const Expr *E, 2319 const LValue *This = nullptr) { 2320 if (!E->isPRValue() || E->getType()->isLiteralType(Info.Ctx)) 2321 return true; 2322 2323 // C++1y: A constant initializer for an object o [...] may also invoke 2324 // constexpr constructors for o and its subobjects even if those objects 2325 // are of non-literal class types. 2326 // 2327 // C++11 missed this detail for aggregates, so classes like this: 2328 // struct foo_t { union { int i; volatile int j; } u; }; 2329 // are not (obviously) initializable like so: 2330 // __attribute__((__require_constant_initialization__)) 2331 // static const foo_t x = {{0}}; 2332 // because "i" is a subobject with non-literal initialization (due to the 2333 // volatile member of the union). See: 2334 // http://www.open-std.org/jtc1/sc22/wg21/docs/cwg_active.html#1677 2335 // Therefore, we use the C++1y behavior. 2336 if (This && Info.EvaluatingDecl == This->getLValueBase()) 2337 return true; 2338 2339 // Prvalue constant expressions must be of literal types. 2340 if (Info.getLangOpts().CPlusPlus11) 2341 Info.FFDiag(E, diag::note_constexpr_nonliteral) 2342 << E->getType(); 2343 else 2344 Info.FFDiag(E, diag::note_invalid_subexpr_in_const_expr); 2345 return false; 2346 } 2347 2348 static bool CheckEvaluationResult(CheckEvaluationResultKind CERK, 2349 EvalInfo &Info, SourceLocation DiagLoc, 2350 QualType Type, const APValue &Value, 2351 ConstantExprKind Kind, 2352 SourceLocation SubobjectLoc, 2353 CheckedTemporaries &CheckedTemps) { 2354 if (!Value.hasValue()) { 2355 Info.FFDiag(DiagLoc, diag::note_constexpr_uninitialized) 2356 << true << Type; 2357 if (SubobjectLoc.isValid()) 2358 Info.Note(SubobjectLoc, diag::note_constexpr_subobject_declared_here); 2359 return false; 2360 } 2361 2362 // We allow _Atomic(T) to be initialized from anything that T can be 2363 // initialized from. 2364 if (const AtomicType *AT = Type->getAs<AtomicType>()) 2365 Type = AT->getValueType(); 2366 2367 // Core issue 1454: For a literal constant expression of array or class type, 2368 // each subobject of its value shall have been initialized by a constant 2369 // expression. 2370 if (Value.isArray()) { 2371 QualType EltTy = Type->castAsArrayTypeUnsafe()->getElementType(); 2372 for (unsigned I = 0, N = Value.getArrayInitializedElts(); I != N; ++I) { 2373 if (!CheckEvaluationResult(CERK, Info, DiagLoc, EltTy, 2374 Value.getArrayInitializedElt(I), Kind, 2375 SubobjectLoc, CheckedTemps)) 2376 return false; 2377 } 2378 if (!Value.hasArrayFiller()) 2379 return true; 2380 return CheckEvaluationResult(CERK, Info, DiagLoc, EltTy, 2381 Value.getArrayFiller(), Kind, SubobjectLoc, 2382 CheckedTemps); 2383 } 2384 if (Value.isUnion() && Value.getUnionField()) { 2385 return CheckEvaluationResult( 2386 CERK, Info, DiagLoc, Value.getUnionField()->getType(), 2387 Value.getUnionValue(), Kind, Value.getUnionField()->getLocation(), 2388 CheckedTemps); 2389 } 2390 if (Value.isStruct()) { 2391 RecordDecl *RD = Type->castAs<RecordType>()->getDecl(); 2392 if (const CXXRecordDecl *CD = dyn_cast<CXXRecordDecl>(RD)) { 2393 unsigned BaseIndex = 0; 2394 for (const CXXBaseSpecifier &BS : CD->bases()) { 2395 if (!CheckEvaluationResult(CERK, Info, DiagLoc, BS.getType(), 2396 Value.getStructBase(BaseIndex), Kind, 2397 BS.getBeginLoc(), CheckedTemps)) 2398 return false; 2399 ++BaseIndex; 2400 } 2401 } 2402 for (const auto *I : RD->fields()) { 2403 if (I->isUnnamedBitfield()) 2404 continue; 2405 2406 if (!CheckEvaluationResult(CERK, Info, DiagLoc, I->getType(), 2407 Value.getStructField(I->getFieldIndex()), 2408 Kind, I->getLocation(), CheckedTemps)) 2409 return false; 2410 } 2411 } 2412 2413 if (Value.isLValue() && 2414 CERK == CheckEvaluationResultKind::ConstantExpression) { 2415 LValue LVal; 2416 LVal.setFrom(Info.Ctx, Value); 2417 return CheckLValueConstantExpression(Info, DiagLoc, Type, LVal, Kind, 2418 CheckedTemps); 2419 } 2420 2421 if (Value.isMemberPointer() && 2422 CERK == CheckEvaluationResultKind::ConstantExpression) 2423 return CheckMemberPointerConstantExpression(Info, DiagLoc, Type, Value, Kind); 2424 2425 // Everything else is fine. 2426 return true; 2427 } 2428 2429 /// Check that this core constant expression value is a valid value for a 2430 /// constant expression. If not, report an appropriate diagnostic. Does not 2431 /// check that the expression is of literal type. 2432 static bool CheckConstantExpression(EvalInfo &Info, SourceLocation DiagLoc, 2433 QualType Type, const APValue &Value, 2434 ConstantExprKind Kind) { 2435 // Nothing to check for a constant expression of type 'cv void'. 2436 if (Type->isVoidType()) 2437 return true; 2438 2439 CheckedTemporaries CheckedTemps; 2440 return CheckEvaluationResult(CheckEvaluationResultKind::ConstantExpression, 2441 Info, DiagLoc, Type, Value, Kind, 2442 SourceLocation(), CheckedTemps); 2443 } 2444 2445 /// Check that this evaluated value is fully-initialized and can be loaded by 2446 /// an lvalue-to-rvalue conversion. 2447 static bool CheckFullyInitialized(EvalInfo &Info, SourceLocation DiagLoc, 2448 QualType Type, const APValue &Value) { 2449 CheckedTemporaries CheckedTemps; 2450 return CheckEvaluationResult( 2451 CheckEvaluationResultKind::FullyInitialized, Info, DiagLoc, Type, Value, 2452 ConstantExprKind::Normal, SourceLocation(), CheckedTemps); 2453 } 2454 2455 /// Enforce C++2a [expr.const]/4.17, which disallows new-expressions unless 2456 /// "the allocated storage is deallocated within the evaluation". 2457 static bool CheckMemoryLeaks(EvalInfo &Info) { 2458 if (!Info.HeapAllocs.empty()) { 2459 // We can still fold to a constant despite a compile-time memory leak, 2460 // so long as the heap allocation isn't referenced in the result (we check 2461 // that in CheckConstantExpression). 2462 Info.CCEDiag(Info.HeapAllocs.begin()->second.AllocExpr, 2463 diag::note_constexpr_memory_leak) 2464 << unsigned(Info.HeapAllocs.size() - 1); 2465 } 2466 return true; 2467 } 2468 2469 static bool EvalPointerValueAsBool(const APValue &Value, bool &Result) { 2470 // A null base expression indicates a null pointer. These are always 2471 // evaluatable, and they are false unless the offset is zero. 2472 if (!Value.getLValueBase()) { 2473 Result = !Value.getLValueOffset().isZero(); 2474 return true; 2475 } 2476 2477 // We have a non-null base. These are generally known to be true, but if it's 2478 // a weak declaration it can be null at runtime. 2479 Result = true; 2480 const ValueDecl *Decl = Value.getLValueBase().dyn_cast<const ValueDecl*>(); 2481 return !Decl || !Decl->isWeak(); 2482 } 2483 2484 static bool HandleConversionToBool(const APValue &Val, bool &Result) { 2485 switch (Val.getKind()) { 2486 case APValue::None: 2487 case APValue::Indeterminate: 2488 return false; 2489 case APValue::Int: 2490 Result = Val.getInt().getBoolValue(); 2491 return true; 2492 case APValue::FixedPoint: 2493 Result = Val.getFixedPoint().getBoolValue(); 2494 return true; 2495 case APValue::Float: 2496 Result = !Val.getFloat().isZero(); 2497 return true; 2498 case APValue::ComplexInt: 2499 Result = Val.getComplexIntReal().getBoolValue() || 2500 Val.getComplexIntImag().getBoolValue(); 2501 return true; 2502 case APValue::ComplexFloat: 2503 Result = !Val.getComplexFloatReal().isZero() || 2504 !Val.getComplexFloatImag().isZero(); 2505 return true; 2506 case APValue::LValue: 2507 return EvalPointerValueAsBool(Val, Result); 2508 case APValue::MemberPointer: 2509 Result = Val.getMemberPointerDecl(); 2510 return true; 2511 case APValue::Vector: 2512 case APValue::Array: 2513 case APValue::Struct: 2514 case APValue::Union: 2515 case APValue::AddrLabelDiff: 2516 return false; 2517 } 2518 2519 llvm_unreachable("unknown APValue kind"); 2520 } 2521 2522 static bool EvaluateAsBooleanCondition(const Expr *E, bool &Result, 2523 EvalInfo &Info) { 2524 assert(!E->isValueDependent()); 2525 assert(E->isPRValue() && "missing lvalue-to-rvalue conv in bool condition"); 2526 APValue Val; 2527 if (!Evaluate(Val, Info, E)) 2528 return false; 2529 return HandleConversionToBool(Val, Result); 2530 } 2531 2532 template<typename T> 2533 static bool HandleOverflow(EvalInfo &Info, const Expr *E, 2534 const T &SrcValue, QualType DestType) { 2535 Info.CCEDiag(E, diag::note_constexpr_overflow) 2536 << SrcValue << DestType; 2537 return Info.noteUndefinedBehavior(); 2538 } 2539 2540 static bool HandleFloatToIntCast(EvalInfo &Info, const Expr *E, 2541 QualType SrcType, const APFloat &Value, 2542 QualType DestType, APSInt &Result) { 2543 unsigned DestWidth = Info.Ctx.getIntWidth(DestType); 2544 // Determine whether we are converting to unsigned or signed. 2545 bool DestSigned = DestType->isSignedIntegerOrEnumerationType(); 2546 2547 Result = APSInt(DestWidth, !DestSigned); 2548 bool ignored; 2549 if (Value.convertToInteger(Result, llvm::APFloat::rmTowardZero, &ignored) 2550 & APFloat::opInvalidOp) 2551 return HandleOverflow(Info, E, Value, DestType); 2552 return true; 2553 } 2554 2555 /// Get rounding mode to use in evaluation of the specified expression. 2556 /// 2557 /// If rounding mode is unknown at compile time, still try to evaluate the 2558 /// expression. If the result is exact, it does not depend on rounding mode. 2559 /// So return "tonearest" mode instead of "dynamic". 2560 static llvm::RoundingMode getActiveRoundingMode(EvalInfo &Info, const Expr *E) { 2561 llvm::RoundingMode RM = 2562 E->getFPFeaturesInEffect(Info.Ctx.getLangOpts()).getRoundingMode(); 2563 if (RM == llvm::RoundingMode::Dynamic) 2564 RM = llvm::RoundingMode::NearestTiesToEven; 2565 return RM; 2566 } 2567 2568 /// Check if the given evaluation result is allowed for constant evaluation. 2569 static bool checkFloatingPointResult(EvalInfo &Info, const Expr *E, 2570 APFloat::opStatus St) { 2571 // In a constant context, assume that any dynamic rounding mode or FP 2572 // exception state matches the default floating-point environment. 2573 if (Info.InConstantContext) 2574 return true; 2575 2576 FPOptions FPO = E->getFPFeaturesInEffect(Info.Ctx.getLangOpts()); 2577 if ((St & APFloat::opInexact) && 2578 FPO.getRoundingMode() == llvm::RoundingMode::Dynamic) { 2579 // Inexact result means that it depends on rounding mode. If the requested 2580 // mode is dynamic, the evaluation cannot be made in compile time. 2581 Info.FFDiag(E, diag::note_constexpr_dynamic_rounding); 2582 return false; 2583 } 2584 2585 if ((St != APFloat::opOK) && 2586 (FPO.getRoundingMode() == llvm::RoundingMode::Dynamic || 2587 FPO.getExceptionMode() != LangOptions::FPE_Ignore || 2588 FPO.getAllowFEnvAccess())) { 2589 Info.FFDiag(E, diag::note_constexpr_float_arithmetic_strict); 2590 return false; 2591 } 2592 2593 if ((St & APFloat::opStatus::opInvalidOp) && 2594 FPO.getExceptionMode() != LangOptions::FPE_Ignore) { 2595 // There is no usefully definable result. 2596 Info.FFDiag(E); 2597 return false; 2598 } 2599 2600 // FIXME: if: 2601 // - evaluation triggered other FP exception, and 2602 // - exception mode is not "ignore", and 2603 // - the expression being evaluated is not a part of global variable 2604 // initializer, 2605 // the evaluation probably need to be rejected. 2606 return true; 2607 } 2608 2609 static bool HandleFloatToFloatCast(EvalInfo &Info, const Expr *E, 2610 QualType SrcType, QualType DestType, 2611 APFloat &Result) { 2612 assert(isa<CastExpr>(E) || isa<CompoundAssignOperator>(E)); 2613 llvm::RoundingMode RM = getActiveRoundingMode(Info, E); 2614 APFloat::opStatus St; 2615 APFloat Value = Result; 2616 bool ignored; 2617 St = Result.convert(Info.Ctx.getFloatTypeSemantics(DestType), RM, &ignored); 2618 return checkFloatingPointResult(Info, E, St); 2619 } 2620 2621 static APSInt HandleIntToIntCast(EvalInfo &Info, const Expr *E, 2622 QualType DestType, QualType SrcType, 2623 const APSInt &Value) { 2624 unsigned DestWidth = Info.Ctx.getIntWidth(DestType); 2625 // Figure out if this is a truncate, extend or noop cast. 2626 // If the input is signed, do a sign extend, noop, or truncate. 2627 APSInt Result = Value.extOrTrunc(DestWidth); 2628 Result.setIsUnsigned(DestType->isUnsignedIntegerOrEnumerationType()); 2629 if (DestType->isBooleanType()) 2630 Result = Value.getBoolValue(); 2631 return Result; 2632 } 2633 2634 static bool HandleIntToFloatCast(EvalInfo &Info, const Expr *E, 2635 const FPOptions FPO, 2636 QualType SrcType, const APSInt &Value, 2637 QualType DestType, APFloat &Result) { 2638 Result = APFloat(Info.Ctx.getFloatTypeSemantics(DestType), 1); 2639 APFloat::opStatus St = Result.convertFromAPInt(Value, Value.isSigned(), 2640 APFloat::rmNearestTiesToEven); 2641 if (!Info.InConstantContext && St != llvm::APFloatBase::opOK && 2642 FPO.isFPConstrained()) { 2643 Info.FFDiag(E, diag::note_constexpr_float_arithmetic_strict); 2644 return false; 2645 } 2646 return true; 2647 } 2648 2649 static bool truncateBitfieldValue(EvalInfo &Info, const Expr *E, 2650 APValue &Value, const FieldDecl *FD) { 2651 assert(FD->isBitField() && "truncateBitfieldValue on non-bitfield"); 2652 2653 if (!Value.isInt()) { 2654 // Trying to store a pointer-cast-to-integer into a bitfield. 2655 // FIXME: In this case, we should provide the diagnostic for casting 2656 // a pointer to an integer. 2657 assert(Value.isLValue() && "integral value neither int nor lvalue?"); 2658 Info.FFDiag(E); 2659 return false; 2660 } 2661 2662 APSInt &Int = Value.getInt(); 2663 unsigned OldBitWidth = Int.getBitWidth(); 2664 unsigned NewBitWidth = FD->getBitWidthValue(Info.Ctx); 2665 if (NewBitWidth < OldBitWidth) 2666 Int = Int.trunc(NewBitWidth).extend(OldBitWidth); 2667 return true; 2668 } 2669 2670 static bool EvalAndBitcastToAPInt(EvalInfo &Info, const Expr *E, 2671 llvm::APInt &Res) { 2672 APValue SVal; 2673 if (!Evaluate(SVal, Info, E)) 2674 return false; 2675 if (SVal.isInt()) { 2676 Res = SVal.getInt(); 2677 return true; 2678 } 2679 if (SVal.isFloat()) { 2680 Res = SVal.getFloat().bitcastToAPInt(); 2681 return true; 2682 } 2683 if (SVal.isVector()) { 2684 QualType VecTy = E->getType(); 2685 unsigned VecSize = Info.Ctx.getTypeSize(VecTy); 2686 QualType EltTy = VecTy->castAs<VectorType>()->getElementType(); 2687 unsigned EltSize = Info.Ctx.getTypeSize(EltTy); 2688 bool BigEndian = Info.Ctx.getTargetInfo().isBigEndian(); 2689 Res = llvm::APInt::getZero(VecSize); 2690 for (unsigned i = 0; i < SVal.getVectorLength(); i++) { 2691 APValue &Elt = SVal.getVectorElt(i); 2692 llvm::APInt EltAsInt; 2693 if (Elt.isInt()) { 2694 EltAsInt = Elt.getInt(); 2695 } else if (Elt.isFloat()) { 2696 EltAsInt = Elt.getFloat().bitcastToAPInt(); 2697 } else { 2698 // Don't try to handle vectors of anything other than int or float 2699 // (not sure if it's possible to hit this case). 2700 Info.FFDiag(E, diag::note_invalid_subexpr_in_const_expr); 2701 return false; 2702 } 2703 unsigned BaseEltSize = EltAsInt.getBitWidth(); 2704 if (BigEndian) 2705 Res |= EltAsInt.zextOrTrunc(VecSize).rotr(i*EltSize+BaseEltSize); 2706 else 2707 Res |= EltAsInt.zextOrTrunc(VecSize).rotl(i*EltSize); 2708 } 2709 return true; 2710 } 2711 // Give up if the input isn't an int, float, or vector. For example, we 2712 // reject "(v4i16)(intptr_t)&a". 2713 Info.FFDiag(E, diag::note_invalid_subexpr_in_const_expr); 2714 return false; 2715 } 2716 2717 /// Perform the given integer operation, which is known to need at most BitWidth 2718 /// bits, and check for overflow in the original type (if that type was not an 2719 /// unsigned type). 2720 template<typename Operation> 2721 static bool CheckedIntArithmetic(EvalInfo &Info, const Expr *E, 2722 const APSInt &LHS, const APSInt &RHS, 2723 unsigned BitWidth, Operation Op, 2724 APSInt &Result) { 2725 if (LHS.isUnsigned()) { 2726 Result = Op(LHS, RHS); 2727 return true; 2728 } 2729 2730 APSInt Value(Op(LHS.extend(BitWidth), RHS.extend(BitWidth)), false); 2731 Result = Value.trunc(LHS.getBitWidth()); 2732 if (Result.extend(BitWidth) != Value) { 2733 if (Info.checkingForUndefinedBehavior()) 2734 Info.Ctx.getDiagnostics().Report(E->getExprLoc(), 2735 diag::warn_integer_constant_overflow) 2736 << toString(Result, 10) << E->getType(); 2737 return HandleOverflow(Info, E, Value, E->getType()); 2738 } 2739 return true; 2740 } 2741 2742 /// Perform the given binary integer operation. 2743 static bool handleIntIntBinOp(EvalInfo &Info, const Expr *E, const APSInt &LHS, 2744 BinaryOperatorKind Opcode, APSInt RHS, 2745 APSInt &Result) { 2746 switch (Opcode) { 2747 default: 2748 Info.FFDiag(E); 2749 return false; 2750 case BO_Mul: 2751 return CheckedIntArithmetic(Info, E, LHS, RHS, LHS.getBitWidth() * 2, 2752 std::multiplies<APSInt>(), Result); 2753 case BO_Add: 2754 return CheckedIntArithmetic(Info, E, LHS, RHS, LHS.getBitWidth() + 1, 2755 std::plus<APSInt>(), Result); 2756 case BO_Sub: 2757 return CheckedIntArithmetic(Info, E, LHS, RHS, LHS.getBitWidth() + 1, 2758 std::minus<APSInt>(), Result); 2759 case BO_And: Result = LHS & RHS; return true; 2760 case BO_Xor: Result = LHS ^ RHS; return true; 2761 case BO_Or: Result = LHS | RHS; return true; 2762 case BO_Div: 2763 case BO_Rem: 2764 if (RHS == 0) { 2765 Info.FFDiag(E, diag::note_expr_divide_by_zero); 2766 return false; 2767 } 2768 Result = (Opcode == BO_Rem ? LHS % RHS : LHS / RHS); 2769 // Check for overflow case: INT_MIN / -1 or INT_MIN % -1. APSInt supports 2770 // this operation and gives the two's complement result. 2771 if (RHS.isNegative() && RHS.isAllOnes() && LHS.isSigned() && 2772 LHS.isMinSignedValue()) 2773 return HandleOverflow(Info, E, -LHS.extend(LHS.getBitWidth() + 1), 2774 E->getType()); 2775 return true; 2776 case BO_Shl: { 2777 if (Info.getLangOpts().OpenCL) 2778 // OpenCL 6.3j: shift values are effectively % word size of LHS. 2779 RHS &= APSInt(llvm::APInt(RHS.getBitWidth(), 2780 static_cast<uint64_t>(LHS.getBitWidth() - 1)), 2781 RHS.isUnsigned()); 2782 else if (RHS.isSigned() && RHS.isNegative()) { 2783 // During constant-folding, a negative shift is an opposite shift. Such 2784 // a shift is not a constant expression. 2785 Info.CCEDiag(E, diag::note_constexpr_negative_shift) << RHS; 2786 RHS = -RHS; 2787 goto shift_right; 2788 } 2789 shift_left: 2790 // C++11 [expr.shift]p1: Shift width must be less than the bit width of 2791 // the shifted type. 2792 unsigned SA = (unsigned) RHS.getLimitedValue(LHS.getBitWidth()-1); 2793 if (SA != RHS) { 2794 Info.CCEDiag(E, diag::note_constexpr_large_shift) 2795 << RHS << E->getType() << LHS.getBitWidth(); 2796 } else if (LHS.isSigned() && !Info.getLangOpts().CPlusPlus20) { 2797 // C++11 [expr.shift]p2: A signed left shift must have a non-negative 2798 // operand, and must not overflow the corresponding unsigned type. 2799 // C++2a [expr.shift]p2: E1 << E2 is the unique value congruent to 2800 // E1 x 2^E2 module 2^N. 2801 if (LHS.isNegative()) 2802 Info.CCEDiag(E, diag::note_constexpr_lshift_of_negative) << LHS; 2803 else if (LHS.countLeadingZeros() < SA) 2804 Info.CCEDiag(E, diag::note_constexpr_lshift_discards); 2805 } 2806 Result = LHS << SA; 2807 return true; 2808 } 2809 case BO_Shr: { 2810 if (Info.getLangOpts().OpenCL) 2811 // OpenCL 6.3j: shift values are effectively % word size of LHS. 2812 RHS &= APSInt(llvm::APInt(RHS.getBitWidth(), 2813 static_cast<uint64_t>(LHS.getBitWidth() - 1)), 2814 RHS.isUnsigned()); 2815 else if (RHS.isSigned() && RHS.isNegative()) { 2816 // During constant-folding, a negative shift is an opposite shift. Such a 2817 // shift is not a constant expression. 2818 Info.CCEDiag(E, diag::note_constexpr_negative_shift) << RHS; 2819 RHS = -RHS; 2820 goto shift_left; 2821 } 2822 shift_right: 2823 // C++11 [expr.shift]p1: Shift width must be less than the bit width of the 2824 // shifted type. 2825 unsigned SA = (unsigned) RHS.getLimitedValue(LHS.getBitWidth()-1); 2826 if (SA != RHS) 2827 Info.CCEDiag(E, diag::note_constexpr_large_shift) 2828 << RHS << E->getType() << LHS.getBitWidth(); 2829 Result = LHS >> SA; 2830 return true; 2831 } 2832 2833 case BO_LT: Result = LHS < RHS; return true; 2834 case BO_GT: Result = LHS > RHS; return true; 2835 case BO_LE: Result = LHS <= RHS; return true; 2836 case BO_GE: Result = LHS >= RHS; return true; 2837 case BO_EQ: Result = LHS == RHS; return true; 2838 case BO_NE: Result = LHS != RHS; return true; 2839 case BO_Cmp: 2840 llvm_unreachable("BO_Cmp should be handled elsewhere"); 2841 } 2842 } 2843 2844 /// Perform the given binary floating-point operation, in-place, on LHS. 2845 static bool handleFloatFloatBinOp(EvalInfo &Info, const BinaryOperator *E, 2846 APFloat &LHS, BinaryOperatorKind Opcode, 2847 const APFloat &RHS) { 2848 llvm::RoundingMode RM = getActiveRoundingMode(Info, E); 2849 APFloat::opStatus St; 2850 switch (Opcode) { 2851 default: 2852 Info.FFDiag(E); 2853 return false; 2854 case BO_Mul: 2855 St = LHS.multiply(RHS, RM); 2856 break; 2857 case BO_Add: 2858 St = LHS.add(RHS, RM); 2859 break; 2860 case BO_Sub: 2861 St = LHS.subtract(RHS, RM); 2862 break; 2863 case BO_Div: 2864 // [expr.mul]p4: 2865 // If the second operand of / or % is zero the behavior is undefined. 2866 if (RHS.isZero()) 2867 Info.CCEDiag(E, diag::note_expr_divide_by_zero); 2868 St = LHS.divide(RHS, RM); 2869 break; 2870 } 2871 2872 // [expr.pre]p4: 2873 // If during the evaluation of an expression, the result is not 2874 // mathematically defined [...], the behavior is undefined. 2875 // FIXME: C++ rules require us to not conform to IEEE 754 here. 2876 if (LHS.isNaN()) { 2877 Info.CCEDiag(E, diag::note_constexpr_float_arithmetic) << LHS.isNaN(); 2878 return Info.noteUndefinedBehavior(); 2879 } 2880 2881 return checkFloatingPointResult(Info, E, St); 2882 } 2883 2884 static bool handleLogicalOpForVector(const APInt &LHSValue, 2885 BinaryOperatorKind Opcode, 2886 const APInt &RHSValue, APInt &Result) { 2887 bool LHS = (LHSValue != 0); 2888 bool RHS = (RHSValue != 0); 2889 2890 if (Opcode == BO_LAnd) 2891 Result = LHS && RHS; 2892 else 2893 Result = LHS || RHS; 2894 return true; 2895 } 2896 static bool handleLogicalOpForVector(const APFloat &LHSValue, 2897 BinaryOperatorKind Opcode, 2898 const APFloat &RHSValue, APInt &Result) { 2899 bool LHS = !LHSValue.isZero(); 2900 bool RHS = !RHSValue.isZero(); 2901 2902 if (Opcode == BO_LAnd) 2903 Result = LHS && RHS; 2904 else 2905 Result = LHS || RHS; 2906 return true; 2907 } 2908 2909 static bool handleLogicalOpForVector(const APValue &LHSValue, 2910 BinaryOperatorKind Opcode, 2911 const APValue &RHSValue, APInt &Result) { 2912 // The result is always an int type, however operands match the first. 2913 if (LHSValue.getKind() == APValue::Int) 2914 return handleLogicalOpForVector(LHSValue.getInt(), Opcode, 2915 RHSValue.getInt(), Result); 2916 assert(LHSValue.getKind() == APValue::Float && "Should be no other options"); 2917 return handleLogicalOpForVector(LHSValue.getFloat(), Opcode, 2918 RHSValue.getFloat(), Result); 2919 } 2920 2921 template <typename APTy> 2922 static bool 2923 handleCompareOpForVectorHelper(const APTy &LHSValue, BinaryOperatorKind Opcode, 2924 const APTy &RHSValue, APInt &Result) { 2925 switch (Opcode) { 2926 default: 2927 llvm_unreachable("unsupported binary operator"); 2928 case BO_EQ: 2929 Result = (LHSValue == RHSValue); 2930 break; 2931 case BO_NE: 2932 Result = (LHSValue != RHSValue); 2933 break; 2934 case BO_LT: 2935 Result = (LHSValue < RHSValue); 2936 break; 2937 case BO_GT: 2938 Result = (LHSValue > RHSValue); 2939 break; 2940 case BO_LE: 2941 Result = (LHSValue <= RHSValue); 2942 break; 2943 case BO_GE: 2944 Result = (LHSValue >= RHSValue); 2945 break; 2946 } 2947 2948 // The boolean operations on these vector types use an instruction that 2949 // results in a mask of '-1' for the 'truth' value. Ensure that we negate 1 2950 // to -1 to make sure that we produce the correct value. 2951 Result.negate(); 2952 2953 return true; 2954 } 2955 2956 static bool handleCompareOpForVector(const APValue &LHSValue, 2957 BinaryOperatorKind Opcode, 2958 const APValue &RHSValue, APInt &Result) { 2959 // The result is always an int type, however operands match the first. 2960 if (LHSValue.getKind() == APValue::Int) 2961 return handleCompareOpForVectorHelper(LHSValue.getInt(), Opcode, 2962 RHSValue.getInt(), Result); 2963 assert(LHSValue.getKind() == APValue::Float && "Should be no other options"); 2964 return handleCompareOpForVectorHelper(LHSValue.getFloat(), Opcode, 2965 RHSValue.getFloat(), Result); 2966 } 2967 2968 // Perform binary operations for vector types, in place on the LHS. 2969 static bool handleVectorVectorBinOp(EvalInfo &Info, const BinaryOperator *E, 2970 BinaryOperatorKind Opcode, 2971 APValue &LHSValue, 2972 const APValue &RHSValue) { 2973 assert(Opcode != BO_PtrMemD && Opcode != BO_PtrMemI && 2974 "Operation not supported on vector types"); 2975 2976 const auto *VT = E->getType()->castAs<VectorType>(); 2977 unsigned NumElements = VT->getNumElements(); 2978 QualType EltTy = VT->getElementType(); 2979 2980 // In the cases (typically C as I've observed) where we aren't evaluating 2981 // constexpr but are checking for cases where the LHS isn't yet evaluatable, 2982 // just give up. 2983 if (!LHSValue.isVector()) { 2984 assert(LHSValue.isLValue() && 2985 "A vector result that isn't a vector OR uncalculated LValue"); 2986 Info.FFDiag(E); 2987 return false; 2988 } 2989 2990 assert(LHSValue.getVectorLength() == NumElements && 2991 RHSValue.getVectorLength() == NumElements && "Different vector sizes"); 2992 2993 SmallVector<APValue, 4> ResultElements; 2994 2995 for (unsigned EltNum = 0; EltNum < NumElements; ++EltNum) { 2996 APValue LHSElt = LHSValue.getVectorElt(EltNum); 2997 APValue RHSElt = RHSValue.getVectorElt(EltNum); 2998 2999 if (EltTy->isIntegerType()) { 3000 APSInt EltResult{Info.Ctx.getIntWidth(EltTy), 3001 EltTy->isUnsignedIntegerType()}; 3002 bool Success = true; 3003 3004 if (BinaryOperator::isLogicalOp(Opcode)) 3005 Success = handleLogicalOpForVector(LHSElt, Opcode, RHSElt, EltResult); 3006 else if (BinaryOperator::isComparisonOp(Opcode)) 3007 Success = handleCompareOpForVector(LHSElt, Opcode, RHSElt, EltResult); 3008 else 3009 Success = handleIntIntBinOp(Info, E, LHSElt.getInt(), Opcode, 3010 RHSElt.getInt(), EltResult); 3011 3012 if (!Success) { 3013 Info.FFDiag(E); 3014 return false; 3015 } 3016 ResultElements.emplace_back(EltResult); 3017 3018 } else if (EltTy->isFloatingType()) { 3019 assert(LHSElt.getKind() == APValue::Float && 3020 RHSElt.getKind() == APValue::Float && 3021 "Mismatched LHS/RHS/Result Type"); 3022 APFloat LHSFloat = LHSElt.getFloat(); 3023 3024 if (!handleFloatFloatBinOp(Info, E, LHSFloat, Opcode, 3025 RHSElt.getFloat())) { 3026 Info.FFDiag(E); 3027 return false; 3028 } 3029 3030 ResultElements.emplace_back(LHSFloat); 3031 } 3032 } 3033 3034 LHSValue = APValue(ResultElements.data(), ResultElements.size()); 3035 return true; 3036 } 3037 3038 /// Cast an lvalue referring to a base subobject to a derived class, by 3039 /// truncating the lvalue's path to the given length. 3040 static bool CastToDerivedClass(EvalInfo &Info, const Expr *E, LValue &Result, 3041 const RecordDecl *TruncatedType, 3042 unsigned TruncatedElements) { 3043 SubobjectDesignator &D = Result.Designator; 3044 3045 // Check we actually point to a derived class object. 3046 if (TruncatedElements == D.Entries.size()) 3047 return true; 3048 assert(TruncatedElements >= D.MostDerivedPathLength && 3049 "not casting to a derived class"); 3050 if (!Result.checkSubobject(Info, E, CSK_Derived)) 3051 return false; 3052 3053 // Truncate the path to the subobject, and remove any derived-to-base offsets. 3054 const RecordDecl *RD = TruncatedType; 3055 for (unsigned I = TruncatedElements, N = D.Entries.size(); I != N; ++I) { 3056 if (RD->isInvalidDecl()) return false; 3057 const ASTRecordLayout &Layout = Info.Ctx.getASTRecordLayout(RD); 3058 const CXXRecordDecl *Base = getAsBaseClass(D.Entries[I]); 3059 if (isVirtualBaseClass(D.Entries[I])) 3060 Result.Offset -= Layout.getVBaseClassOffset(Base); 3061 else 3062 Result.Offset -= Layout.getBaseClassOffset(Base); 3063 RD = Base; 3064 } 3065 D.Entries.resize(TruncatedElements); 3066 return true; 3067 } 3068 3069 static bool HandleLValueDirectBase(EvalInfo &Info, const Expr *E, LValue &Obj, 3070 const CXXRecordDecl *Derived, 3071 const CXXRecordDecl *Base, 3072 const ASTRecordLayout *RL = nullptr) { 3073 if (!RL) { 3074 if (Derived->isInvalidDecl()) return false; 3075 RL = &Info.Ctx.getASTRecordLayout(Derived); 3076 } 3077 3078 Obj.getLValueOffset() += RL->getBaseClassOffset(Base); 3079 Obj.addDecl(Info, E, Base, /*Virtual*/ false); 3080 return true; 3081 } 3082 3083 static bool HandleLValueBase(EvalInfo &Info, const Expr *E, LValue &Obj, 3084 const CXXRecordDecl *DerivedDecl, 3085 const CXXBaseSpecifier *Base) { 3086 const CXXRecordDecl *BaseDecl = Base->getType()->getAsCXXRecordDecl(); 3087 3088 if (!Base->isVirtual()) 3089 return HandleLValueDirectBase(Info, E, Obj, DerivedDecl, BaseDecl); 3090 3091 SubobjectDesignator &D = Obj.Designator; 3092 if (D.Invalid) 3093 return false; 3094 3095 // Extract most-derived object and corresponding type. 3096 DerivedDecl = D.MostDerivedType->getAsCXXRecordDecl(); 3097 if (!CastToDerivedClass(Info, E, Obj, DerivedDecl, D.MostDerivedPathLength)) 3098 return false; 3099 3100 // Find the virtual base class. 3101 if (DerivedDecl->isInvalidDecl()) return false; 3102 const ASTRecordLayout &Layout = Info.Ctx.getASTRecordLayout(DerivedDecl); 3103 Obj.getLValueOffset() += Layout.getVBaseClassOffset(BaseDecl); 3104 Obj.addDecl(Info, E, BaseDecl, /*Virtual*/ true); 3105 return true; 3106 } 3107 3108 static bool HandleLValueBasePath(EvalInfo &Info, const CastExpr *E, 3109 QualType Type, LValue &Result) { 3110 for (CastExpr::path_const_iterator PathI = E->path_begin(), 3111 PathE = E->path_end(); 3112 PathI != PathE; ++PathI) { 3113 if (!HandleLValueBase(Info, E, Result, Type->getAsCXXRecordDecl(), 3114 *PathI)) 3115 return false; 3116 Type = (*PathI)->getType(); 3117 } 3118 return true; 3119 } 3120 3121 /// Cast an lvalue referring to a derived class to a known base subobject. 3122 static bool CastToBaseClass(EvalInfo &Info, const Expr *E, LValue &Result, 3123 const CXXRecordDecl *DerivedRD, 3124 const CXXRecordDecl *BaseRD) { 3125 CXXBasePaths Paths(/*FindAmbiguities=*/false, 3126 /*RecordPaths=*/true, /*DetectVirtual=*/false); 3127 if (!DerivedRD->isDerivedFrom(BaseRD, Paths)) 3128 llvm_unreachable("Class must be derived from the passed in base class!"); 3129 3130 for (CXXBasePathElement &Elem : Paths.front()) 3131 if (!HandleLValueBase(Info, E, Result, Elem.Class, Elem.Base)) 3132 return false; 3133 return true; 3134 } 3135 3136 /// Update LVal to refer to the given field, which must be a member of the type 3137 /// currently described by LVal. 3138 static bool HandleLValueMember(EvalInfo &Info, const Expr *E, LValue &LVal, 3139 const FieldDecl *FD, 3140 const ASTRecordLayout *RL = nullptr) { 3141 if (!RL) { 3142 if (FD->getParent()->isInvalidDecl()) return false; 3143 RL = &Info.Ctx.getASTRecordLayout(FD->getParent()); 3144 } 3145 3146 unsigned I = FD->getFieldIndex(); 3147 LVal.adjustOffset(Info.Ctx.toCharUnitsFromBits(RL->getFieldOffset(I))); 3148 LVal.addDecl(Info, E, FD); 3149 return true; 3150 } 3151 3152 /// Update LVal to refer to the given indirect field. 3153 static bool HandleLValueIndirectMember(EvalInfo &Info, const Expr *E, 3154 LValue &LVal, 3155 const IndirectFieldDecl *IFD) { 3156 for (const auto *C : IFD->chain()) 3157 if (!HandleLValueMember(Info, E, LVal, cast<FieldDecl>(C))) 3158 return false; 3159 return true; 3160 } 3161 3162 /// Get the size of the given type in char units. 3163 static bool HandleSizeof(EvalInfo &Info, SourceLocation Loc, 3164 QualType Type, CharUnits &Size) { 3165 // sizeof(void), __alignof__(void), sizeof(function) = 1 as a gcc 3166 // extension. 3167 if (Type->isVoidType() || Type->isFunctionType()) { 3168 Size = CharUnits::One(); 3169 return true; 3170 } 3171 3172 if (Type->isDependentType()) { 3173 Info.FFDiag(Loc); 3174 return false; 3175 } 3176 3177 if (!Type->isConstantSizeType()) { 3178 // sizeof(vla) is not a constantexpr: C99 6.5.3.4p2. 3179 // FIXME: Better diagnostic. 3180 Info.FFDiag(Loc); 3181 return false; 3182 } 3183 3184 Size = Info.Ctx.getTypeSizeInChars(Type); 3185 return true; 3186 } 3187 3188 /// Update a pointer value to model pointer arithmetic. 3189 /// \param Info - Information about the ongoing evaluation. 3190 /// \param E - The expression being evaluated, for diagnostic purposes. 3191 /// \param LVal - The pointer value to be updated. 3192 /// \param EltTy - The pointee type represented by LVal. 3193 /// \param Adjustment - The adjustment, in objects of type EltTy, to add. 3194 static bool HandleLValueArrayAdjustment(EvalInfo &Info, const Expr *E, 3195 LValue &LVal, QualType EltTy, 3196 APSInt Adjustment) { 3197 CharUnits SizeOfPointee; 3198 if (!HandleSizeof(Info, E->getExprLoc(), EltTy, SizeOfPointee)) 3199 return false; 3200 3201 LVal.adjustOffsetAndIndex(Info, E, Adjustment, SizeOfPointee); 3202 return true; 3203 } 3204 3205 static bool HandleLValueArrayAdjustment(EvalInfo &Info, const Expr *E, 3206 LValue &LVal, QualType EltTy, 3207 int64_t Adjustment) { 3208 return HandleLValueArrayAdjustment(Info, E, LVal, EltTy, 3209 APSInt::get(Adjustment)); 3210 } 3211 3212 /// Update an lvalue to refer to a component of a complex number. 3213 /// \param Info - Information about the ongoing evaluation. 3214 /// \param LVal - The lvalue to be updated. 3215 /// \param EltTy - The complex number's component type. 3216 /// \param Imag - False for the real component, true for the imaginary. 3217 static bool HandleLValueComplexElement(EvalInfo &Info, const Expr *E, 3218 LValue &LVal, QualType EltTy, 3219 bool Imag) { 3220 if (Imag) { 3221 CharUnits SizeOfComponent; 3222 if (!HandleSizeof(Info, E->getExprLoc(), EltTy, SizeOfComponent)) 3223 return false; 3224 LVal.Offset += SizeOfComponent; 3225 } 3226 LVal.addComplex(Info, E, EltTy, Imag); 3227 return true; 3228 } 3229 3230 /// Try to evaluate the initializer for a variable declaration. 3231 /// 3232 /// \param Info Information about the ongoing evaluation. 3233 /// \param E An expression to be used when printing diagnostics. 3234 /// \param VD The variable whose initializer should be obtained. 3235 /// \param Version The version of the variable within the frame. 3236 /// \param Frame The frame in which the variable was created. Must be null 3237 /// if this variable is not local to the evaluation. 3238 /// \param Result Filled in with a pointer to the value of the variable. 3239 static bool evaluateVarDeclInit(EvalInfo &Info, const Expr *E, 3240 const VarDecl *VD, CallStackFrame *Frame, 3241 unsigned Version, APValue *&Result) { 3242 APValue::LValueBase Base(VD, Frame ? Frame->Index : 0, Version); 3243 3244 // If this is a local variable, dig out its value. 3245 if (Frame) { 3246 Result = Frame->getTemporary(VD, Version); 3247 if (Result) 3248 return true; 3249 3250 if (!isa<ParmVarDecl>(VD)) { 3251 // Assume variables referenced within a lambda's call operator that were 3252 // not declared within the call operator are captures and during checking 3253 // of a potential constant expression, assume they are unknown constant 3254 // expressions. 3255 assert(isLambdaCallOperator(Frame->Callee) && 3256 (VD->getDeclContext() != Frame->Callee || VD->isInitCapture()) && 3257 "missing value for local variable"); 3258 if (Info.checkingPotentialConstantExpression()) 3259 return false; 3260 // FIXME: This diagnostic is bogus; we do support captures. Is this code 3261 // still reachable at all? 3262 Info.FFDiag(E->getBeginLoc(), 3263 diag::note_unimplemented_constexpr_lambda_feature_ast) 3264 << "captures not currently allowed"; 3265 return false; 3266 } 3267 } 3268 3269 // If we're currently evaluating the initializer of this declaration, use that 3270 // in-flight value. 3271 if (Info.EvaluatingDecl == Base) { 3272 Result = Info.EvaluatingDeclValue; 3273 return true; 3274 } 3275 3276 if (isa<ParmVarDecl>(VD)) { 3277 // Assume parameters of a potential constant expression are usable in 3278 // constant expressions. 3279 if (!Info.checkingPotentialConstantExpression() || 3280 !Info.CurrentCall->Callee || 3281 !Info.CurrentCall->Callee->Equals(VD->getDeclContext())) { 3282 if (Info.getLangOpts().CPlusPlus11) { 3283 Info.FFDiag(E, diag::note_constexpr_function_param_value_unknown) 3284 << VD; 3285 NoteLValueLocation(Info, Base); 3286 } else { 3287 Info.FFDiag(E); 3288 } 3289 } 3290 return false; 3291 } 3292 3293 // Dig out the initializer, and use the declaration which it's attached to. 3294 // FIXME: We should eventually check whether the variable has a reachable 3295 // initializing declaration. 3296 const Expr *Init = VD->getAnyInitializer(VD); 3297 if (!Init) { 3298 // Don't diagnose during potential constant expression checking; an 3299 // initializer might be added later. 3300 if (!Info.checkingPotentialConstantExpression()) { 3301 Info.FFDiag(E, diag::note_constexpr_var_init_unknown, 1) 3302 << VD; 3303 NoteLValueLocation(Info, Base); 3304 } 3305 return false; 3306 } 3307 3308 if (Init->isValueDependent()) { 3309 // The DeclRefExpr is not value-dependent, but the variable it refers to 3310 // has a value-dependent initializer. This should only happen in 3311 // constant-folding cases, where the variable is not actually of a suitable 3312 // type for use in a constant expression (otherwise the DeclRefExpr would 3313 // have been value-dependent too), so diagnose that. 3314 assert(!VD->mightBeUsableInConstantExpressions(Info.Ctx)); 3315 if (!Info.checkingPotentialConstantExpression()) { 3316 Info.FFDiag(E, Info.getLangOpts().CPlusPlus11 3317 ? diag::note_constexpr_ltor_non_constexpr 3318 : diag::note_constexpr_ltor_non_integral, 1) 3319 << VD << VD->getType(); 3320 NoteLValueLocation(Info, Base); 3321 } 3322 return false; 3323 } 3324 3325 // Check that we can fold the initializer. In C++, we will have already done 3326 // this in the cases where it matters for conformance. 3327 if (!VD->evaluateValue()) { 3328 Info.FFDiag(E, diag::note_constexpr_var_init_non_constant, 1) << VD; 3329 NoteLValueLocation(Info, Base); 3330 return false; 3331 } 3332 3333 // Check that the variable is actually usable in constant expressions. For a 3334 // const integral variable or a reference, we might have a non-constant 3335 // initializer that we can nonetheless evaluate the initializer for. Such 3336 // variables are not usable in constant expressions. In C++98, the 3337 // initializer also syntactically needs to be an ICE. 3338 // 3339 // FIXME: We don't diagnose cases that aren't potentially usable in constant 3340 // expressions here; doing so would regress diagnostics for things like 3341 // reading from a volatile constexpr variable. 3342 if ((Info.getLangOpts().CPlusPlus && !VD->hasConstantInitialization() && 3343 VD->mightBeUsableInConstantExpressions(Info.Ctx)) || 3344 ((Info.getLangOpts().CPlusPlus || Info.getLangOpts().OpenCL) && 3345 !Info.getLangOpts().CPlusPlus11 && !VD->hasICEInitializer(Info.Ctx))) { 3346 Info.CCEDiag(E, diag::note_constexpr_var_init_non_constant, 1) << VD; 3347 NoteLValueLocation(Info, Base); 3348 } 3349 3350 // Never use the initializer of a weak variable, not even for constant 3351 // folding. We can't be sure that this is the definition that will be used. 3352 if (VD->isWeak()) { 3353 Info.FFDiag(E, diag::note_constexpr_var_init_weak) << VD; 3354 NoteLValueLocation(Info, Base); 3355 return false; 3356 } 3357 3358 Result = VD->getEvaluatedValue(); 3359 return true; 3360 } 3361 3362 /// Get the base index of the given base class within an APValue representing 3363 /// the given derived class. 3364 static unsigned getBaseIndex(const CXXRecordDecl *Derived, 3365 const CXXRecordDecl *Base) { 3366 Base = Base->getCanonicalDecl(); 3367 unsigned Index = 0; 3368 for (CXXRecordDecl::base_class_const_iterator I = Derived->bases_begin(), 3369 E = Derived->bases_end(); I != E; ++I, ++Index) { 3370 if (I->getType()->getAsCXXRecordDecl()->getCanonicalDecl() == Base) 3371 return Index; 3372 } 3373 3374 llvm_unreachable("base class missing from derived class's bases list"); 3375 } 3376 3377 /// Extract the value of a character from a string literal. 3378 static APSInt extractStringLiteralCharacter(EvalInfo &Info, const Expr *Lit, 3379 uint64_t Index) { 3380 assert(!isa<SourceLocExpr>(Lit) && 3381 "SourceLocExpr should have already been converted to a StringLiteral"); 3382 3383 // FIXME: Support MakeStringConstant 3384 if (const auto *ObjCEnc = dyn_cast<ObjCEncodeExpr>(Lit)) { 3385 std::string Str; 3386 Info.Ctx.getObjCEncodingForType(ObjCEnc->getEncodedType(), Str); 3387 assert(Index <= Str.size() && "Index too large"); 3388 return APSInt::getUnsigned(Str.c_str()[Index]); 3389 } 3390 3391 if (auto PE = dyn_cast<PredefinedExpr>(Lit)) 3392 Lit = PE->getFunctionName(); 3393 const StringLiteral *S = cast<StringLiteral>(Lit); 3394 const ConstantArrayType *CAT = 3395 Info.Ctx.getAsConstantArrayType(S->getType()); 3396 assert(CAT && "string literal isn't an array"); 3397 QualType CharType = CAT->getElementType(); 3398 assert(CharType->isIntegerType() && "unexpected character type"); 3399 3400 APSInt Value(S->getCharByteWidth() * Info.Ctx.getCharWidth(), 3401 CharType->isUnsignedIntegerType()); 3402 if (Index < S->getLength()) 3403 Value = S->getCodeUnit(Index); 3404 return Value; 3405 } 3406 3407 // Expand a string literal into an array of characters. 3408 // 3409 // FIXME: This is inefficient; we should probably introduce something similar 3410 // to the LLVM ConstantDataArray to make this cheaper. 3411 static void expandStringLiteral(EvalInfo &Info, const StringLiteral *S, 3412 APValue &Result, 3413 QualType AllocType = QualType()) { 3414 const ConstantArrayType *CAT = Info.Ctx.getAsConstantArrayType( 3415 AllocType.isNull() ? S->getType() : AllocType); 3416 assert(CAT && "string literal isn't an array"); 3417 QualType CharType = CAT->getElementType(); 3418 assert(CharType->isIntegerType() && "unexpected character type"); 3419 3420 unsigned Elts = CAT->getSize().getZExtValue(); 3421 Result = APValue(APValue::UninitArray(), 3422 std::min(S->getLength(), Elts), Elts); 3423 APSInt Value(S->getCharByteWidth() * Info.Ctx.getCharWidth(), 3424 CharType->isUnsignedIntegerType()); 3425 if (Result.hasArrayFiller()) 3426 Result.getArrayFiller() = APValue(Value); 3427 for (unsigned I = 0, N = Result.getArrayInitializedElts(); I != N; ++I) { 3428 Value = S->getCodeUnit(I); 3429 Result.getArrayInitializedElt(I) = APValue(Value); 3430 } 3431 } 3432 3433 // Expand an array so that it has more than Index filled elements. 3434 static void expandArray(APValue &Array, unsigned Index) { 3435 unsigned Size = Array.getArraySize(); 3436 assert(Index < Size); 3437 3438 // Always at least double the number of elements for which we store a value. 3439 unsigned OldElts = Array.getArrayInitializedElts(); 3440 unsigned NewElts = std::max(Index+1, OldElts * 2); 3441 NewElts = std::min(Size, std::max(NewElts, 8u)); 3442 3443 // Copy the data across. 3444 APValue NewValue(APValue::UninitArray(), NewElts, Size); 3445 for (unsigned I = 0; I != OldElts; ++I) 3446 NewValue.getArrayInitializedElt(I).swap(Array.getArrayInitializedElt(I)); 3447 for (unsigned I = OldElts; I != NewElts; ++I) 3448 NewValue.getArrayInitializedElt(I) = Array.getArrayFiller(); 3449 if (NewValue.hasArrayFiller()) 3450 NewValue.getArrayFiller() = Array.getArrayFiller(); 3451 Array.swap(NewValue); 3452 } 3453 3454 /// Determine whether a type would actually be read by an lvalue-to-rvalue 3455 /// conversion. If it's of class type, we may assume that the copy operation 3456 /// is trivial. Note that this is never true for a union type with fields 3457 /// (because the copy always "reads" the active member) and always true for 3458 /// a non-class type. 3459 static bool isReadByLvalueToRvalueConversion(const CXXRecordDecl *RD); 3460 static bool isReadByLvalueToRvalueConversion(QualType T) { 3461 CXXRecordDecl *RD = T->getBaseElementTypeUnsafe()->getAsCXXRecordDecl(); 3462 return !RD || isReadByLvalueToRvalueConversion(RD); 3463 } 3464 static bool isReadByLvalueToRvalueConversion(const CXXRecordDecl *RD) { 3465 // FIXME: A trivial copy of a union copies the object representation, even if 3466 // the union is empty. 3467 if (RD->isUnion()) 3468 return !RD->field_empty(); 3469 if (RD->isEmpty()) 3470 return false; 3471 3472 for (auto *Field : RD->fields()) 3473 if (!Field->isUnnamedBitfield() && 3474 isReadByLvalueToRvalueConversion(Field->getType())) 3475 return true; 3476 3477 for (auto &BaseSpec : RD->bases()) 3478 if (isReadByLvalueToRvalueConversion(BaseSpec.getType())) 3479 return true; 3480 3481 return false; 3482 } 3483 3484 /// Diagnose an attempt to read from any unreadable field within the specified 3485 /// type, which might be a class type. 3486 static bool diagnoseMutableFields(EvalInfo &Info, const Expr *E, AccessKinds AK, 3487 QualType T) { 3488 CXXRecordDecl *RD = T->getBaseElementTypeUnsafe()->getAsCXXRecordDecl(); 3489 if (!RD) 3490 return false; 3491 3492 if (!RD->hasMutableFields()) 3493 return false; 3494 3495 for (auto *Field : RD->fields()) { 3496 // If we're actually going to read this field in some way, then it can't 3497 // be mutable. If we're in a union, then assigning to a mutable field 3498 // (even an empty one) can change the active member, so that's not OK. 3499 // FIXME: Add core issue number for the union case. 3500 if (Field->isMutable() && 3501 (RD->isUnion() || isReadByLvalueToRvalueConversion(Field->getType()))) { 3502 Info.FFDiag(E, diag::note_constexpr_access_mutable, 1) << AK << Field; 3503 Info.Note(Field->getLocation(), diag::note_declared_at); 3504 return true; 3505 } 3506 3507 if (diagnoseMutableFields(Info, E, AK, Field->getType())) 3508 return true; 3509 } 3510 3511 for (auto &BaseSpec : RD->bases()) 3512 if (diagnoseMutableFields(Info, E, AK, BaseSpec.getType())) 3513 return true; 3514 3515 // All mutable fields were empty, and thus not actually read. 3516 return false; 3517 } 3518 3519 static bool lifetimeStartedInEvaluation(EvalInfo &Info, 3520 APValue::LValueBase Base, 3521 bool MutableSubobject = false) { 3522 // A temporary or transient heap allocation we created. 3523 if (Base.getCallIndex() || Base.is<DynamicAllocLValue>()) 3524 return true; 3525 3526 switch (Info.IsEvaluatingDecl) { 3527 case EvalInfo::EvaluatingDeclKind::None: 3528 return false; 3529 3530 case EvalInfo::EvaluatingDeclKind::Ctor: 3531 // The variable whose initializer we're evaluating. 3532 if (Info.EvaluatingDecl == Base) 3533 return true; 3534 3535 // A temporary lifetime-extended by the variable whose initializer we're 3536 // evaluating. 3537 if (auto *BaseE = Base.dyn_cast<const Expr *>()) 3538 if (auto *BaseMTE = dyn_cast<MaterializeTemporaryExpr>(BaseE)) 3539 return Info.EvaluatingDecl == BaseMTE->getExtendingDecl(); 3540 return false; 3541 3542 case EvalInfo::EvaluatingDeclKind::Dtor: 3543 // C++2a [expr.const]p6: 3544 // [during constant destruction] the lifetime of a and its non-mutable 3545 // subobjects (but not its mutable subobjects) [are] considered to start 3546 // within e. 3547 if (MutableSubobject || Base != Info.EvaluatingDecl) 3548 return false; 3549 // FIXME: We can meaningfully extend this to cover non-const objects, but 3550 // we will need special handling: we should be able to access only 3551 // subobjects of such objects that are themselves declared const. 3552 QualType T = getType(Base); 3553 return T.isConstQualified() || T->isReferenceType(); 3554 } 3555 3556 llvm_unreachable("unknown evaluating decl kind"); 3557 } 3558 3559 namespace { 3560 /// A handle to a complete object (an object that is not a subobject of 3561 /// another object). 3562 struct CompleteObject { 3563 /// The identity of the object. 3564 APValue::LValueBase Base; 3565 /// The value of the complete object. 3566 APValue *Value; 3567 /// The type of the complete object. 3568 QualType Type; 3569 3570 CompleteObject() : Value(nullptr) {} 3571 CompleteObject(APValue::LValueBase Base, APValue *Value, QualType Type) 3572 : Base(Base), Value(Value), Type(Type) {} 3573 3574 bool mayAccessMutableMembers(EvalInfo &Info, AccessKinds AK) const { 3575 // If this isn't a "real" access (eg, if it's just accessing the type 3576 // info), allow it. We assume the type doesn't change dynamically for 3577 // subobjects of constexpr objects (even though we'd hit UB here if it 3578 // did). FIXME: Is this right? 3579 if (!isAnyAccess(AK)) 3580 return true; 3581 3582 // In C++14 onwards, it is permitted to read a mutable member whose 3583 // lifetime began within the evaluation. 3584 // FIXME: Should we also allow this in C++11? 3585 if (!Info.getLangOpts().CPlusPlus14) 3586 return false; 3587 return lifetimeStartedInEvaluation(Info, Base, /*MutableSubobject*/true); 3588 } 3589 3590 explicit operator bool() const { return !Type.isNull(); } 3591 }; 3592 } // end anonymous namespace 3593 3594 static QualType getSubobjectType(QualType ObjType, QualType SubobjType, 3595 bool IsMutable = false) { 3596 // C++ [basic.type.qualifier]p1: 3597 // - A const object is an object of type const T or a non-mutable subobject 3598 // of a const object. 3599 if (ObjType.isConstQualified() && !IsMutable) 3600 SubobjType.addConst(); 3601 // - A volatile object is an object of type const T or a subobject of a 3602 // volatile object. 3603 if (ObjType.isVolatileQualified()) 3604 SubobjType.addVolatile(); 3605 return SubobjType; 3606 } 3607 3608 /// Find the designated sub-object of an rvalue. 3609 template<typename SubobjectHandler> 3610 typename SubobjectHandler::result_type 3611 findSubobject(EvalInfo &Info, const Expr *E, const CompleteObject &Obj, 3612 const SubobjectDesignator &Sub, SubobjectHandler &handler) { 3613 if (Sub.Invalid) 3614 // A diagnostic will have already been produced. 3615 return handler.failed(); 3616 if (Sub.isOnePastTheEnd() || Sub.isMostDerivedAnUnsizedArray()) { 3617 if (Info.getLangOpts().CPlusPlus11) 3618 Info.FFDiag(E, Sub.isOnePastTheEnd() 3619 ? diag::note_constexpr_access_past_end 3620 : diag::note_constexpr_access_unsized_array) 3621 << handler.AccessKind; 3622 else 3623 Info.FFDiag(E); 3624 return handler.failed(); 3625 } 3626 3627 APValue *O = Obj.Value; 3628 QualType ObjType = Obj.Type; 3629 const FieldDecl *LastField = nullptr; 3630 const FieldDecl *VolatileField = nullptr; 3631 3632 // Walk the designator's path to find the subobject. 3633 for (unsigned I = 0, N = Sub.Entries.size(); /**/; ++I) { 3634 // Reading an indeterminate value is undefined, but assigning over one is OK. 3635 if ((O->isAbsent() && !(handler.AccessKind == AK_Construct && I == N)) || 3636 (O->isIndeterminate() && 3637 !isValidIndeterminateAccess(handler.AccessKind))) { 3638 if (!Info.checkingPotentialConstantExpression()) 3639 Info.FFDiag(E, diag::note_constexpr_access_uninit) 3640 << handler.AccessKind << O->isIndeterminate(); 3641 return handler.failed(); 3642 } 3643 3644 // C++ [class.ctor]p5, C++ [class.dtor]p5: 3645 // const and volatile semantics are not applied on an object under 3646 // {con,de}struction. 3647 if ((ObjType.isConstQualified() || ObjType.isVolatileQualified()) && 3648 ObjType->isRecordType() && 3649 Info.isEvaluatingCtorDtor( 3650 Obj.Base, llvm::makeArrayRef(Sub.Entries.begin(), 3651 Sub.Entries.begin() + I)) != 3652 ConstructionPhase::None) { 3653 ObjType = Info.Ctx.getCanonicalType(ObjType); 3654 ObjType.removeLocalConst(); 3655 ObjType.removeLocalVolatile(); 3656 } 3657 3658 // If this is our last pass, check that the final object type is OK. 3659 if (I == N || (I == N - 1 && ObjType->isAnyComplexType())) { 3660 // Accesses to volatile objects are prohibited. 3661 if (ObjType.isVolatileQualified() && isFormalAccess(handler.AccessKind)) { 3662 if (Info.getLangOpts().CPlusPlus) { 3663 int DiagKind; 3664 SourceLocation Loc; 3665 const NamedDecl *Decl = nullptr; 3666 if (VolatileField) { 3667 DiagKind = 2; 3668 Loc = VolatileField->getLocation(); 3669 Decl = VolatileField; 3670 } else if (auto *VD = Obj.Base.dyn_cast<const ValueDecl*>()) { 3671 DiagKind = 1; 3672 Loc = VD->getLocation(); 3673 Decl = VD; 3674 } else { 3675 DiagKind = 0; 3676 if (auto *E = Obj.Base.dyn_cast<const Expr *>()) 3677 Loc = E->getExprLoc(); 3678 } 3679 Info.FFDiag(E, diag::note_constexpr_access_volatile_obj, 1) 3680 << handler.AccessKind << DiagKind << Decl; 3681 Info.Note(Loc, diag::note_constexpr_volatile_here) << DiagKind; 3682 } else { 3683 Info.FFDiag(E, diag::note_invalid_subexpr_in_const_expr); 3684 } 3685 return handler.failed(); 3686 } 3687 3688 // If we are reading an object of class type, there may still be more 3689 // things we need to check: if there are any mutable subobjects, we 3690 // cannot perform this read. (This only happens when performing a trivial 3691 // copy or assignment.) 3692 if (ObjType->isRecordType() && 3693 !Obj.mayAccessMutableMembers(Info, handler.AccessKind) && 3694 diagnoseMutableFields(Info, E, handler.AccessKind, ObjType)) 3695 return handler.failed(); 3696 } 3697 3698 if (I == N) { 3699 if (!handler.found(*O, ObjType)) 3700 return false; 3701 3702 // If we modified a bit-field, truncate it to the right width. 3703 if (isModification(handler.AccessKind) && 3704 LastField && LastField->isBitField() && 3705 !truncateBitfieldValue(Info, E, *O, LastField)) 3706 return false; 3707 3708 return true; 3709 } 3710 3711 LastField = nullptr; 3712 if (ObjType->isArrayType()) { 3713 // Next subobject is an array element. 3714 const ConstantArrayType *CAT = Info.Ctx.getAsConstantArrayType(ObjType); 3715 assert(CAT && "vla in literal type?"); 3716 uint64_t Index = Sub.Entries[I].getAsArrayIndex(); 3717 if (CAT->getSize().ule(Index)) { 3718 // Note, it should not be possible to form a pointer with a valid 3719 // designator which points more than one past the end of the array. 3720 if (Info.getLangOpts().CPlusPlus11) 3721 Info.FFDiag(E, diag::note_constexpr_access_past_end) 3722 << handler.AccessKind; 3723 else 3724 Info.FFDiag(E); 3725 return handler.failed(); 3726 } 3727 3728 ObjType = CAT->getElementType(); 3729 3730 if (O->getArrayInitializedElts() > Index) 3731 O = &O->getArrayInitializedElt(Index); 3732 else if (!isRead(handler.AccessKind)) { 3733 expandArray(*O, Index); 3734 O = &O->getArrayInitializedElt(Index); 3735 } else 3736 O = &O->getArrayFiller(); 3737 } else if (ObjType->isAnyComplexType()) { 3738 // Next subobject is a complex number. 3739 uint64_t Index = Sub.Entries[I].getAsArrayIndex(); 3740 if (Index > 1) { 3741 if (Info.getLangOpts().CPlusPlus11) 3742 Info.FFDiag(E, diag::note_constexpr_access_past_end) 3743 << handler.AccessKind; 3744 else 3745 Info.FFDiag(E); 3746 return handler.failed(); 3747 } 3748 3749 ObjType = getSubobjectType( 3750 ObjType, ObjType->castAs<ComplexType>()->getElementType()); 3751 3752 assert(I == N - 1 && "extracting subobject of scalar?"); 3753 if (O->isComplexInt()) { 3754 return handler.found(Index ? O->getComplexIntImag() 3755 : O->getComplexIntReal(), ObjType); 3756 } else { 3757 assert(O->isComplexFloat()); 3758 return handler.found(Index ? O->getComplexFloatImag() 3759 : O->getComplexFloatReal(), ObjType); 3760 } 3761 } else if (const FieldDecl *Field = getAsField(Sub.Entries[I])) { 3762 if (Field->isMutable() && 3763 !Obj.mayAccessMutableMembers(Info, handler.AccessKind)) { 3764 Info.FFDiag(E, diag::note_constexpr_access_mutable, 1) 3765 << handler.AccessKind << Field; 3766 Info.Note(Field->getLocation(), diag::note_declared_at); 3767 return handler.failed(); 3768 } 3769 3770 // Next subobject is a class, struct or union field. 3771 RecordDecl *RD = ObjType->castAs<RecordType>()->getDecl(); 3772 if (RD->isUnion()) { 3773 const FieldDecl *UnionField = O->getUnionField(); 3774 if (!UnionField || 3775 UnionField->getCanonicalDecl() != Field->getCanonicalDecl()) { 3776 if (I == N - 1 && handler.AccessKind == AK_Construct) { 3777 // Placement new onto an inactive union member makes it active. 3778 O->setUnion(Field, APValue()); 3779 } else { 3780 // FIXME: If O->getUnionValue() is absent, report that there's no 3781 // active union member rather than reporting the prior active union 3782 // member. We'll need to fix nullptr_t to not use APValue() as its 3783 // representation first. 3784 Info.FFDiag(E, diag::note_constexpr_access_inactive_union_member) 3785 << handler.AccessKind << Field << !UnionField << UnionField; 3786 return handler.failed(); 3787 } 3788 } 3789 O = &O->getUnionValue(); 3790 } else 3791 O = &O->getStructField(Field->getFieldIndex()); 3792 3793 ObjType = getSubobjectType(ObjType, Field->getType(), Field->isMutable()); 3794 LastField = Field; 3795 if (Field->getType().isVolatileQualified()) 3796 VolatileField = Field; 3797 } else { 3798 // Next subobject is a base class. 3799 const CXXRecordDecl *Derived = ObjType->getAsCXXRecordDecl(); 3800 const CXXRecordDecl *Base = getAsBaseClass(Sub.Entries[I]); 3801 O = &O->getStructBase(getBaseIndex(Derived, Base)); 3802 3803 ObjType = getSubobjectType(ObjType, Info.Ctx.getRecordType(Base)); 3804 } 3805 } 3806 } 3807 3808 namespace { 3809 struct ExtractSubobjectHandler { 3810 EvalInfo &Info; 3811 const Expr *E; 3812 APValue &Result; 3813 const AccessKinds AccessKind; 3814 3815 typedef bool result_type; 3816 bool failed() { return false; } 3817 bool found(APValue &Subobj, QualType SubobjType) { 3818 Result = Subobj; 3819 if (AccessKind == AK_ReadObjectRepresentation) 3820 return true; 3821 return CheckFullyInitialized(Info, E->getExprLoc(), SubobjType, Result); 3822 } 3823 bool found(APSInt &Value, QualType SubobjType) { 3824 Result = APValue(Value); 3825 return true; 3826 } 3827 bool found(APFloat &Value, QualType SubobjType) { 3828 Result = APValue(Value); 3829 return true; 3830 } 3831 }; 3832 } // end anonymous namespace 3833 3834 /// Extract the designated sub-object of an rvalue. 3835 static bool extractSubobject(EvalInfo &Info, const Expr *E, 3836 const CompleteObject &Obj, 3837 const SubobjectDesignator &Sub, APValue &Result, 3838 AccessKinds AK = AK_Read) { 3839 assert(AK == AK_Read || AK == AK_ReadObjectRepresentation); 3840 ExtractSubobjectHandler Handler = {Info, E, Result, AK}; 3841 return findSubobject(Info, E, Obj, Sub, Handler); 3842 } 3843 3844 namespace { 3845 struct ModifySubobjectHandler { 3846 EvalInfo &Info; 3847 APValue &NewVal; 3848 const Expr *E; 3849 3850 typedef bool result_type; 3851 static const AccessKinds AccessKind = AK_Assign; 3852 3853 bool checkConst(QualType QT) { 3854 // Assigning to a const object has undefined behavior. 3855 if (QT.isConstQualified()) { 3856 Info.FFDiag(E, diag::note_constexpr_modify_const_type) << QT; 3857 return false; 3858 } 3859 return true; 3860 } 3861 3862 bool failed() { return false; } 3863 bool found(APValue &Subobj, QualType SubobjType) { 3864 if (!checkConst(SubobjType)) 3865 return false; 3866 // We've been given ownership of NewVal, so just swap it in. 3867 Subobj.swap(NewVal); 3868 return true; 3869 } 3870 bool found(APSInt &Value, QualType SubobjType) { 3871 if (!checkConst(SubobjType)) 3872 return false; 3873 if (!NewVal.isInt()) { 3874 // Maybe trying to write a cast pointer value into a complex? 3875 Info.FFDiag(E); 3876 return false; 3877 } 3878 Value = NewVal.getInt(); 3879 return true; 3880 } 3881 bool found(APFloat &Value, QualType SubobjType) { 3882 if (!checkConst(SubobjType)) 3883 return false; 3884 Value = NewVal.getFloat(); 3885 return true; 3886 } 3887 }; 3888 } // end anonymous namespace 3889 3890 const AccessKinds ModifySubobjectHandler::AccessKind; 3891 3892 /// Update the designated sub-object of an rvalue to the given value. 3893 static bool modifySubobject(EvalInfo &Info, const Expr *E, 3894 const CompleteObject &Obj, 3895 const SubobjectDesignator &Sub, 3896 APValue &NewVal) { 3897 ModifySubobjectHandler Handler = { Info, NewVal, E }; 3898 return findSubobject(Info, E, Obj, Sub, Handler); 3899 } 3900 3901 /// Find the position where two subobject designators diverge, or equivalently 3902 /// the length of the common initial subsequence. 3903 static unsigned FindDesignatorMismatch(QualType ObjType, 3904 const SubobjectDesignator &A, 3905 const SubobjectDesignator &B, 3906 bool &WasArrayIndex) { 3907 unsigned I = 0, N = std::min(A.Entries.size(), B.Entries.size()); 3908 for (/**/; I != N; ++I) { 3909 if (!ObjType.isNull() && 3910 (ObjType->isArrayType() || ObjType->isAnyComplexType())) { 3911 // Next subobject is an array element. 3912 if (A.Entries[I].getAsArrayIndex() != B.Entries[I].getAsArrayIndex()) { 3913 WasArrayIndex = true; 3914 return I; 3915 } 3916 if (ObjType->isAnyComplexType()) 3917 ObjType = ObjType->castAs<ComplexType>()->getElementType(); 3918 else 3919 ObjType = ObjType->castAsArrayTypeUnsafe()->getElementType(); 3920 } else { 3921 if (A.Entries[I].getAsBaseOrMember() != 3922 B.Entries[I].getAsBaseOrMember()) { 3923 WasArrayIndex = false; 3924 return I; 3925 } 3926 if (const FieldDecl *FD = getAsField(A.Entries[I])) 3927 // Next subobject is a field. 3928 ObjType = FD->getType(); 3929 else 3930 // Next subobject is a base class. 3931 ObjType = QualType(); 3932 } 3933 } 3934 WasArrayIndex = false; 3935 return I; 3936 } 3937 3938 /// Determine whether the given subobject designators refer to elements of the 3939 /// same array object. 3940 static bool AreElementsOfSameArray(QualType ObjType, 3941 const SubobjectDesignator &A, 3942 const SubobjectDesignator &B) { 3943 if (A.Entries.size() != B.Entries.size()) 3944 return false; 3945 3946 bool IsArray = A.MostDerivedIsArrayElement; 3947 if (IsArray && A.MostDerivedPathLength != A.Entries.size()) 3948 // A is a subobject of the array element. 3949 return false; 3950 3951 // If A (and B) designates an array element, the last entry will be the array 3952 // index. That doesn't have to match. Otherwise, we're in the 'implicit array 3953 // of length 1' case, and the entire path must match. 3954 bool WasArrayIndex; 3955 unsigned CommonLength = FindDesignatorMismatch(ObjType, A, B, WasArrayIndex); 3956 return CommonLength >= A.Entries.size() - IsArray; 3957 } 3958 3959 /// Find the complete object to which an LValue refers. 3960 static CompleteObject findCompleteObject(EvalInfo &Info, const Expr *E, 3961 AccessKinds AK, const LValue &LVal, 3962 QualType LValType) { 3963 if (LVal.InvalidBase) { 3964 Info.FFDiag(E); 3965 return CompleteObject(); 3966 } 3967 3968 if (!LVal.Base) { 3969 Info.FFDiag(E, diag::note_constexpr_access_null) << AK; 3970 return CompleteObject(); 3971 } 3972 3973 CallStackFrame *Frame = nullptr; 3974 unsigned Depth = 0; 3975 if (LVal.getLValueCallIndex()) { 3976 std::tie(Frame, Depth) = 3977 Info.getCallFrameAndDepth(LVal.getLValueCallIndex()); 3978 if (!Frame) { 3979 Info.FFDiag(E, diag::note_constexpr_lifetime_ended, 1) 3980 << AK << LVal.Base.is<const ValueDecl*>(); 3981 NoteLValueLocation(Info, LVal.Base); 3982 return CompleteObject(); 3983 } 3984 } 3985 3986 bool IsAccess = isAnyAccess(AK); 3987 3988 // C++11 DR1311: An lvalue-to-rvalue conversion on a volatile-qualified type 3989 // is not a constant expression (even if the object is non-volatile). We also 3990 // apply this rule to C++98, in order to conform to the expected 'volatile' 3991 // semantics. 3992 if (isFormalAccess(AK) && LValType.isVolatileQualified()) { 3993 if (Info.getLangOpts().CPlusPlus) 3994 Info.FFDiag(E, diag::note_constexpr_access_volatile_type) 3995 << AK << LValType; 3996 else 3997 Info.FFDiag(E); 3998 return CompleteObject(); 3999 } 4000 4001 // Compute value storage location and type of base object. 4002 APValue *BaseVal = nullptr; 4003 QualType BaseType = getType(LVal.Base); 4004 4005 if (Info.getLangOpts().CPlusPlus14 && LVal.Base == Info.EvaluatingDecl && 4006 lifetimeStartedInEvaluation(Info, LVal.Base)) { 4007 // This is the object whose initializer we're evaluating, so its lifetime 4008 // started in the current evaluation. 4009 BaseVal = Info.EvaluatingDeclValue; 4010 } else if (const ValueDecl *D = LVal.Base.dyn_cast<const ValueDecl *>()) { 4011 // Allow reading from a GUID declaration. 4012 if (auto *GD = dyn_cast<MSGuidDecl>(D)) { 4013 if (isModification(AK)) { 4014 // All the remaining cases do not permit modification of the object. 4015 Info.FFDiag(E, diag::note_constexpr_modify_global); 4016 return CompleteObject(); 4017 } 4018 APValue &V = GD->getAsAPValue(); 4019 if (V.isAbsent()) { 4020 Info.FFDiag(E, diag::note_constexpr_unsupported_layout) 4021 << GD->getType(); 4022 return CompleteObject(); 4023 } 4024 return CompleteObject(LVal.Base, &V, GD->getType()); 4025 } 4026 4027 // Allow reading the APValue from an UnnamedGlobalConstantDecl. 4028 if (auto *GCD = dyn_cast<UnnamedGlobalConstantDecl>(D)) { 4029 if (isModification(AK)) { 4030 Info.FFDiag(E, diag::note_constexpr_modify_global); 4031 return CompleteObject(); 4032 } 4033 return CompleteObject(LVal.Base, const_cast<APValue *>(&GCD->getValue()), 4034 GCD->getType()); 4035 } 4036 4037 // Allow reading from template parameter objects. 4038 if (auto *TPO = dyn_cast<TemplateParamObjectDecl>(D)) { 4039 if (isModification(AK)) { 4040 Info.FFDiag(E, diag::note_constexpr_modify_global); 4041 return CompleteObject(); 4042 } 4043 return CompleteObject(LVal.Base, const_cast<APValue *>(&TPO->getValue()), 4044 TPO->getType()); 4045 } 4046 4047 // In C++98, const, non-volatile integers initialized with ICEs are ICEs. 4048 // In C++11, constexpr, non-volatile variables initialized with constant 4049 // expressions are constant expressions too. Inside constexpr functions, 4050 // parameters are constant expressions even if they're non-const. 4051 // In C++1y, objects local to a constant expression (those with a Frame) are 4052 // both readable and writable inside constant expressions. 4053 // In C, such things can also be folded, although they are not ICEs. 4054 const VarDecl *VD = dyn_cast<VarDecl>(D); 4055 if (VD) { 4056 if (const VarDecl *VDef = VD->getDefinition(Info.Ctx)) 4057 VD = VDef; 4058 } 4059 if (!VD || VD->isInvalidDecl()) { 4060 Info.FFDiag(E); 4061 return CompleteObject(); 4062 } 4063 4064 bool IsConstant = BaseType.isConstant(Info.Ctx); 4065 4066 // Unless we're looking at a local variable or argument in a constexpr call, 4067 // the variable we're reading must be const. 4068 if (!Frame) { 4069 if (IsAccess && isa<ParmVarDecl>(VD)) { 4070 // Access of a parameter that's not associated with a frame isn't going 4071 // to work out, but we can leave it to evaluateVarDeclInit to provide a 4072 // suitable diagnostic. 4073 } else if (Info.getLangOpts().CPlusPlus14 && 4074 lifetimeStartedInEvaluation(Info, LVal.Base)) { 4075 // OK, we can read and modify an object if we're in the process of 4076 // evaluating its initializer, because its lifetime began in this 4077 // evaluation. 4078 } else if (isModification(AK)) { 4079 // All the remaining cases do not permit modification of the object. 4080 Info.FFDiag(E, diag::note_constexpr_modify_global); 4081 return CompleteObject(); 4082 } else if (VD->isConstexpr()) { 4083 // OK, we can read this variable. 4084 } else if (BaseType->isIntegralOrEnumerationType()) { 4085 if (!IsConstant) { 4086 if (!IsAccess) 4087 return CompleteObject(LVal.getLValueBase(), nullptr, BaseType); 4088 if (Info.getLangOpts().CPlusPlus) { 4089 Info.FFDiag(E, diag::note_constexpr_ltor_non_const_int, 1) << VD; 4090 Info.Note(VD->getLocation(), diag::note_declared_at); 4091 } else { 4092 Info.FFDiag(E); 4093 } 4094 return CompleteObject(); 4095 } 4096 } else if (!IsAccess) { 4097 return CompleteObject(LVal.getLValueBase(), nullptr, BaseType); 4098 } else if (IsConstant && Info.checkingPotentialConstantExpression() && 4099 BaseType->isLiteralType(Info.Ctx) && !VD->hasDefinition()) { 4100 // This variable might end up being constexpr. Don't diagnose it yet. 4101 } else if (IsConstant) { 4102 // Keep evaluating to see what we can do. In particular, we support 4103 // folding of const floating-point types, in order to make static const 4104 // data members of such types (supported as an extension) more useful. 4105 if (Info.getLangOpts().CPlusPlus) { 4106 Info.CCEDiag(E, Info.getLangOpts().CPlusPlus11 4107 ? diag::note_constexpr_ltor_non_constexpr 4108 : diag::note_constexpr_ltor_non_integral, 1) 4109 << VD << BaseType; 4110 Info.Note(VD->getLocation(), diag::note_declared_at); 4111 } else { 4112 Info.CCEDiag(E); 4113 } 4114 } else { 4115 // Never allow reading a non-const value. 4116 if (Info.getLangOpts().CPlusPlus) { 4117 Info.FFDiag(E, Info.getLangOpts().CPlusPlus11 4118 ? diag::note_constexpr_ltor_non_constexpr 4119 : diag::note_constexpr_ltor_non_integral, 1) 4120 << VD << BaseType; 4121 Info.Note(VD->getLocation(), diag::note_declared_at); 4122 } else { 4123 Info.FFDiag(E); 4124 } 4125 return CompleteObject(); 4126 } 4127 } 4128 4129 if (!evaluateVarDeclInit(Info, E, VD, Frame, LVal.getLValueVersion(), BaseVal)) 4130 return CompleteObject(); 4131 } else if (DynamicAllocLValue DA = LVal.Base.dyn_cast<DynamicAllocLValue>()) { 4132 Optional<DynAlloc*> Alloc = Info.lookupDynamicAlloc(DA); 4133 if (!Alloc) { 4134 Info.FFDiag(E, diag::note_constexpr_access_deleted_object) << AK; 4135 return CompleteObject(); 4136 } 4137 return CompleteObject(LVal.Base, &(*Alloc)->Value, 4138 LVal.Base.getDynamicAllocType()); 4139 } else { 4140 const Expr *Base = LVal.Base.dyn_cast<const Expr*>(); 4141 4142 if (!Frame) { 4143 if (const MaterializeTemporaryExpr *MTE = 4144 dyn_cast_or_null<MaterializeTemporaryExpr>(Base)) { 4145 assert(MTE->getStorageDuration() == SD_Static && 4146 "should have a frame for a non-global materialized temporary"); 4147 4148 // C++20 [expr.const]p4: [DR2126] 4149 // An object or reference is usable in constant expressions if it is 4150 // - a temporary object of non-volatile const-qualified literal type 4151 // whose lifetime is extended to that of a variable that is usable 4152 // in constant expressions 4153 // 4154 // C++20 [expr.const]p5: 4155 // an lvalue-to-rvalue conversion [is not allowed unless it applies to] 4156 // - a non-volatile glvalue that refers to an object that is usable 4157 // in constant expressions, or 4158 // - a non-volatile glvalue of literal type that refers to a 4159 // non-volatile object whose lifetime began within the evaluation 4160 // of E; 4161 // 4162 // C++11 misses the 'began within the evaluation of e' check and 4163 // instead allows all temporaries, including things like: 4164 // int &&r = 1; 4165 // int x = ++r; 4166 // constexpr int k = r; 4167 // Therefore we use the C++14-onwards rules in C++11 too. 4168 // 4169 // Note that temporaries whose lifetimes began while evaluating a 4170 // variable's constructor are not usable while evaluating the 4171 // corresponding destructor, not even if they're of const-qualified 4172 // types. 4173 if (!MTE->isUsableInConstantExpressions(Info.Ctx) && 4174 !lifetimeStartedInEvaluation(Info, LVal.Base)) { 4175 if (!IsAccess) 4176 return CompleteObject(LVal.getLValueBase(), nullptr, BaseType); 4177 Info.FFDiag(E, diag::note_constexpr_access_static_temporary, 1) << AK; 4178 Info.Note(MTE->getExprLoc(), diag::note_constexpr_temporary_here); 4179 return CompleteObject(); 4180 } 4181 4182 BaseVal = MTE->getOrCreateValue(false); 4183 assert(BaseVal && "got reference to unevaluated temporary"); 4184 } else { 4185 if (!IsAccess) 4186 return CompleteObject(LVal.getLValueBase(), nullptr, BaseType); 4187 APValue Val; 4188 LVal.moveInto(Val); 4189 Info.FFDiag(E, diag::note_constexpr_access_unreadable_object) 4190 << AK 4191 << Val.getAsString(Info.Ctx, 4192 Info.Ctx.getLValueReferenceType(LValType)); 4193 NoteLValueLocation(Info, LVal.Base); 4194 return CompleteObject(); 4195 } 4196 } else { 4197 BaseVal = Frame->getTemporary(Base, LVal.Base.getVersion()); 4198 assert(BaseVal && "missing value for temporary"); 4199 } 4200 } 4201 4202 // In C++14, we can't safely access any mutable state when we might be 4203 // evaluating after an unmodeled side effect. Parameters are modeled as state 4204 // in the caller, but aren't visible once the call returns, so they can be 4205 // modified in a speculatively-evaluated call. 4206 // 4207 // FIXME: Not all local state is mutable. Allow local constant subobjects 4208 // to be read here (but take care with 'mutable' fields). 4209 unsigned VisibleDepth = Depth; 4210 if (llvm::isa_and_nonnull<ParmVarDecl>( 4211 LVal.Base.dyn_cast<const ValueDecl *>())) 4212 ++VisibleDepth; 4213 if ((Frame && Info.getLangOpts().CPlusPlus14 && 4214 Info.EvalStatus.HasSideEffects) || 4215 (isModification(AK) && VisibleDepth < Info.SpeculativeEvaluationDepth)) 4216 return CompleteObject(); 4217 4218 return CompleteObject(LVal.getLValueBase(), BaseVal, BaseType); 4219 } 4220 4221 /// Perform an lvalue-to-rvalue conversion on the given glvalue. This 4222 /// can also be used for 'lvalue-to-lvalue' conversions for looking up the 4223 /// glvalue referred to by an entity of reference type. 4224 /// 4225 /// \param Info - Information about the ongoing evaluation. 4226 /// \param Conv - The expression for which we are performing the conversion. 4227 /// Used for diagnostics. 4228 /// \param Type - The type of the glvalue (before stripping cv-qualifiers in the 4229 /// case of a non-class type). 4230 /// \param LVal - The glvalue on which we are attempting to perform this action. 4231 /// \param RVal - The produced value will be placed here. 4232 /// \param WantObjectRepresentation - If true, we're looking for the object 4233 /// representation rather than the value, and in particular, 4234 /// there is no requirement that the result be fully initialized. 4235 static bool 4236 handleLValueToRValueConversion(EvalInfo &Info, const Expr *Conv, QualType Type, 4237 const LValue &LVal, APValue &RVal, 4238 bool WantObjectRepresentation = false) { 4239 if (LVal.Designator.Invalid) 4240 return false; 4241 4242 // Check for special cases where there is no existing APValue to look at. 4243 const Expr *Base = LVal.Base.dyn_cast<const Expr*>(); 4244 4245 AccessKinds AK = 4246 WantObjectRepresentation ? AK_ReadObjectRepresentation : AK_Read; 4247 4248 if (Base && !LVal.getLValueCallIndex() && !Type.isVolatileQualified()) { 4249 if (const CompoundLiteralExpr *CLE = dyn_cast<CompoundLiteralExpr>(Base)) { 4250 // In C99, a CompoundLiteralExpr is an lvalue, and we defer evaluating the 4251 // initializer until now for such expressions. Such an expression can't be 4252 // an ICE in C, so this only matters for fold. 4253 if (Type.isVolatileQualified()) { 4254 Info.FFDiag(Conv); 4255 return false; 4256 } 4257 4258 APValue Lit; 4259 if (!Evaluate(Lit, Info, CLE->getInitializer())) 4260 return false; 4261 4262 // According to GCC info page: 4263 // 4264 // 6.28 Compound Literals 4265 // 4266 // As an optimization, G++ sometimes gives array compound literals longer 4267 // lifetimes: when the array either appears outside a function or has a 4268 // const-qualified type. If foo and its initializer had elements of type 4269 // char *const rather than char *, or if foo were a global variable, the 4270 // array would have static storage duration. But it is probably safest 4271 // just to avoid the use of array compound literals in C++ code. 4272 // 4273 // Obey that rule by checking constness for converted array types. 4274 4275 QualType CLETy = CLE->getType(); 4276 if (CLETy->isArrayType() && !Type->isArrayType()) { 4277 if (!CLETy.isConstant(Info.Ctx)) { 4278 Info.FFDiag(Conv); 4279 Info.Note(CLE->getExprLoc(), diag::note_declared_at); 4280 return false; 4281 } 4282 } 4283 4284 CompleteObject LitObj(LVal.Base, &Lit, Base->getType()); 4285 return extractSubobject(Info, Conv, LitObj, LVal.Designator, RVal, AK); 4286 } else if (isa<StringLiteral>(Base) || isa<PredefinedExpr>(Base)) { 4287 // Special-case character extraction so we don't have to construct an 4288 // APValue for the whole string. 4289 assert(LVal.Designator.Entries.size() <= 1 && 4290 "Can only read characters from string literals"); 4291 if (LVal.Designator.Entries.empty()) { 4292 // Fail for now for LValue to RValue conversion of an array. 4293 // (This shouldn't show up in C/C++, but it could be triggered by a 4294 // weird EvaluateAsRValue call from a tool.) 4295 Info.FFDiag(Conv); 4296 return false; 4297 } 4298 if (LVal.Designator.isOnePastTheEnd()) { 4299 if (Info.getLangOpts().CPlusPlus11) 4300 Info.FFDiag(Conv, diag::note_constexpr_access_past_end) << AK; 4301 else 4302 Info.FFDiag(Conv); 4303 return false; 4304 } 4305 uint64_t CharIndex = LVal.Designator.Entries[0].getAsArrayIndex(); 4306 RVal = APValue(extractStringLiteralCharacter(Info, Base, CharIndex)); 4307 return true; 4308 } 4309 } 4310 4311 CompleteObject Obj = findCompleteObject(Info, Conv, AK, LVal, Type); 4312 return Obj && extractSubobject(Info, Conv, Obj, LVal.Designator, RVal, AK); 4313 } 4314 4315 /// Perform an assignment of Val to LVal. Takes ownership of Val. 4316 static bool handleAssignment(EvalInfo &Info, const Expr *E, const LValue &LVal, 4317 QualType LValType, APValue &Val) { 4318 if (LVal.Designator.Invalid) 4319 return false; 4320 4321 if (!Info.getLangOpts().CPlusPlus14) { 4322 Info.FFDiag(E); 4323 return false; 4324 } 4325 4326 CompleteObject Obj = findCompleteObject(Info, E, AK_Assign, LVal, LValType); 4327 return Obj && modifySubobject(Info, E, Obj, LVal.Designator, Val); 4328 } 4329 4330 namespace { 4331 struct CompoundAssignSubobjectHandler { 4332 EvalInfo &Info; 4333 const CompoundAssignOperator *E; 4334 QualType PromotedLHSType; 4335 BinaryOperatorKind Opcode; 4336 const APValue &RHS; 4337 4338 static const AccessKinds AccessKind = AK_Assign; 4339 4340 typedef bool result_type; 4341 4342 bool checkConst(QualType QT) { 4343 // Assigning to a const object has undefined behavior. 4344 if (QT.isConstQualified()) { 4345 Info.FFDiag(E, diag::note_constexpr_modify_const_type) << QT; 4346 return false; 4347 } 4348 return true; 4349 } 4350 4351 bool failed() { return false; } 4352 bool found(APValue &Subobj, QualType SubobjType) { 4353 switch (Subobj.getKind()) { 4354 case APValue::Int: 4355 return found(Subobj.getInt(), SubobjType); 4356 case APValue::Float: 4357 return found(Subobj.getFloat(), SubobjType); 4358 case APValue::ComplexInt: 4359 case APValue::ComplexFloat: 4360 // FIXME: Implement complex compound assignment. 4361 Info.FFDiag(E); 4362 return false; 4363 case APValue::LValue: 4364 return foundPointer(Subobj, SubobjType); 4365 case APValue::Vector: 4366 return foundVector(Subobj, SubobjType); 4367 default: 4368 // FIXME: can this happen? 4369 Info.FFDiag(E); 4370 return false; 4371 } 4372 } 4373 4374 bool foundVector(APValue &Value, QualType SubobjType) { 4375 if (!checkConst(SubobjType)) 4376 return false; 4377 4378 if (!SubobjType->isVectorType()) { 4379 Info.FFDiag(E); 4380 return false; 4381 } 4382 return handleVectorVectorBinOp(Info, E, Opcode, Value, RHS); 4383 } 4384 4385 bool found(APSInt &Value, QualType SubobjType) { 4386 if (!checkConst(SubobjType)) 4387 return false; 4388 4389 if (!SubobjType->isIntegerType()) { 4390 // We don't support compound assignment on integer-cast-to-pointer 4391 // values. 4392 Info.FFDiag(E); 4393 return false; 4394 } 4395 4396 if (RHS.isInt()) { 4397 APSInt LHS = 4398 HandleIntToIntCast(Info, E, PromotedLHSType, SubobjType, Value); 4399 if (!handleIntIntBinOp(Info, E, LHS, Opcode, RHS.getInt(), LHS)) 4400 return false; 4401 Value = HandleIntToIntCast(Info, E, SubobjType, PromotedLHSType, LHS); 4402 return true; 4403 } else if (RHS.isFloat()) { 4404 const FPOptions FPO = E->getFPFeaturesInEffect( 4405 Info.Ctx.getLangOpts()); 4406 APFloat FValue(0.0); 4407 return HandleIntToFloatCast(Info, E, FPO, SubobjType, Value, 4408 PromotedLHSType, FValue) && 4409 handleFloatFloatBinOp(Info, E, FValue, Opcode, RHS.getFloat()) && 4410 HandleFloatToIntCast(Info, E, PromotedLHSType, FValue, SubobjType, 4411 Value); 4412 } 4413 4414 Info.FFDiag(E); 4415 return false; 4416 } 4417 bool found(APFloat &Value, QualType SubobjType) { 4418 return checkConst(SubobjType) && 4419 HandleFloatToFloatCast(Info, E, SubobjType, PromotedLHSType, 4420 Value) && 4421 handleFloatFloatBinOp(Info, E, Value, Opcode, RHS.getFloat()) && 4422 HandleFloatToFloatCast(Info, E, PromotedLHSType, SubobjType, Value); 4423 } 4424 bool foundPointer(APValue &Subobj, QualType SubobjType) { 4425 if (!checkConst(SubobjType)) 4426 return false; 4427 4428 QualType PointeeType; 4429 if (const PointerType *PT = SubobjType->getAs<PointerType>()) 4430 PointeeType = PT->getPointeeType(); 4431 4432 if (PointeeType.isNull() || !RHS.isInt() || 4433 (Opcode != BO_Add && Opcode != BO_Sub)) { 4434 Info.FFDiag(E); 4435 return false; 4436 } 4437 4438 APSInt Offset = RHS.getInt(); 4439 if (Opcode == BO_Sub) 4440 negateAsSigned(Offset); 4441 4442 LValue LVal; 4443 LVal.setFrom(Info.Ctx, Subobj); 4444 if (!HandleLValueArrayAdjustment(Info, E, LVal, PointeeType, Offset)) 4445 return false; 4446 LVal.moveInto(Subobj); 4447 return true; 4448 } 4449 }; 4450 } // end anonymous namespace 4451 4452 const AccessKinds CompoundAssignSubobjectHandler::AccessKind; 4453 4454 /// Perform a compound assignment of LVal <op>= RVal. 4455 static bool handleCompoundAssignment(EvalInfo &Info, 4456 const CompoundAssignOperator *E, 4457 const LValue &LVal, QualType LValType, 4458 QualType PromotedLValType, 4459 BinaryOperatorKind Opcode, 4460 const APValue &RVal) { 4461 if (LVal.Designator.Invalid) 4462 return false; 4463 4464 if (!Info.getLangOpts().CPlusPlus14) { 4465 Info.FFDiag(E); 4466 return false; 4467 } 4468 4469 CompleteObject Obj = findCompleteObject(Info, E, AK_Assign, LVal, LValType); 4470 CompoundAssignSubobjectHandler Handler = { Info, E, PromotedLValType, Opcode, 4471 RVal }; 4472 return Obj && findSubobject(Info, E, Obj, LVal.Designator, Handler); 4473 } 4474 4475 namespace { 4476 struct IncDecSubobjectHandler { 4477 EvalInfo &Info; 4478 const UnaryOperator *E; 4479 AccessKinds AccessKind; 4480 APValue *Old; 4481 4482 typedef bool result_type; 4483 4484 bool checkConst(QualType QT) { 4485 // Assigning to a const object has undefined behavior. 4486 if (QT.isConstQualified()) { 4487 Info.FFDiag(E, diag::note_constexpr_modify_const_type) << QT; 4488 return false; 4489 } 4490 return true; 4491 } 4492 4493 bool failed() { return false; } 4494 bool found(APValue &Subobj, QualType SubobjType) { 4495 // Stash the old value. Also clear Old, so we don't clobber it later 4496 // if we're post-incrementing a complex. 4497 if (Old) { 4498 *Old = Subobj; 4499 Old = nullptr; 4500 } 4501 4502 switch (Subobj.getKind()) { 4503 case APValue::Int: 4504 return found(Subobj.getInt(), SubobjType); 4505 case APValue::Float: 4506 return found(Subobj.getFloat(), SubobjType); 4507 case APValue::ComplexInt: 4508 return found(Subobj.getComplexIntReal(), 4509 SubobjType->castAs<ComplexType>()->getElementType() 4510 .withCVRQualifiers(SubobjType.getCVRQualifiers())); 4511 case APValue::ComplexFloat: 4512 return found(Subobj.getComplexFloatReal(), 4513 SubobjType->castAs<ComplexType>()->getElementType() 4514 .withCVRQualifiers(SubobjType.getCVRQualifiers())); 4515 case APValue::LValue: 4516 return foundPointer(Subobj, SubobjType); 4517 default: 4518 // FIXME: can this happen? 4519 Info.FFDiag(E); 4520 return false; 4521 } 4522 } 4523 bool found(APSInt &Value, QualType SubobjType) { 4524 if (!checkConst(SubobjType)) 4525 return false; 4526 4527 if (!SubobjType->isIntegerType()) { 4528 // We don't support increment / decrement on integer-cast-to-pointer 4529 // values. 4530 Info.FFDiag(E); 4531 return false; 4532 } 4533 4534 if (Old) *Old = APValue(Value); 4535 4536 // bool arithmetic promotes to int, and the conversion back to bool 4537 // doesn't reduce mod 2^n, so special-case it. 4538 if (SubobjType->isBooleanType()) { 4539 if (AccessKind == AK_Increment) 4540 Value = 1; 4541 else 4542 Value = !Value; 4543 return true; 4544 } 4545 4546 bool WasNegative = Value.isNegative(); 4547 if (AccessKind == AK_Increment) { 4548 ++Value; 4549 4550 if (!WasNegative && Value.isNegative() && E->canOverflow()) { 4551 APSInt ActualValue(Value, /*IsUnsigned*/true); 4552 return HandleOverflow(Info, E, ActualValue, SubobjType); 4553 } 4554 } else { 4555 --Value; 4556 4557 if (WasNegative && !Value.isNegative() && E->canOverflow()) { 4558 unsigned BitWidth = Value.getBitWidth(); 4559 APSInt ActualValue(Value.sext(BitWidth + 1), /*IsUnsigned*/false); 4560 ActualValue.setBit(BitWidth); 4561 return HandleOverflow(Info, E, ActualValue, SubobjType); 4562 } 4563 } 4564 return true; 4565 } 4566 bool found(APFloat &Value, QualType SubobjType) { 4567 if (!checkConst(SubobjType)) 4568 return false; 4569 4570 if (Old) *Old = APValue(Value); 4571 4572 APFloat One(Value.getSemantics(), 1); 4573 if (AccessKind == AK_Increment) 4574 Value.add(One, APFloat::rmNearestTiesToEven); 4575 else 4576 Value.subtract(One, APFloat::rmNearestTiesToEven); 4577 return true; 4578 } 4579 bool foundPointer(APValue &Subobj, QualType SubobjType) { 4580 if (!checkConst(SubobjType)) 4581 return false; 4582 4583 QualType PointeeType; 4584 if (const PointerType *PT = SubobjType->getAs<PointerType>()) 4585 PointeeType = PT->getPointeeType(); 4586 else { 4587 Info.FFDiag(E); 4588 return false; 4589 } 4590 4591 LValue LVal; 4592 LVal.setFrom(Info.Ctx, Subobj); 4593 if (!HandleLValueArrayAdjustment(Info, E, LVal, PointeeType, 4594 AccessKind == AK_Increment ? 1 : -1)) 4595 return false; 4596 LVal.moveInto(Subobj); 4597 return true; 4598 } 4599 }; 4600 } // end anonymous namespace 4601 4602 /// Perform an increment or decrement on LVal. 4603 static bool handleIncDec(EvalInfo &Info, const Expr *E, const LValue &LVal, 4604 QualType LValType, bool IsIncrement, APValue *Old) { 4605 if (LVal.Designator.Invalid) 4606 return false; 4607 4608 if (!Info.getLangOpts().CPlusPlus14) { 4609 Info.FFDiag(E); 4610 return false; 4611 } 4612 4613 AccessKinds AK = IsIncrement ? AK_Increment : AK_Decrement; 4614 CompleteObject Obj = findCompleteObject(Info, E, AK, LVal, LValType); 4615 IncDecSubobjectHandler Handler = {Info, cast<UnaryOperator>(E), AK, Old}; 4616 return Obj && findSubobject(Info, E, Obj, LVal.Designator, Handler); 4617 } 4618 4619 /// Build an lvalue for the object argument of a member function call. 4620 static bool EvaluateObjectArgument(EvalInfo &Info, const Expr *Object, 4621 LValue &This) { 4622 if (Object->getType()->isPointerType() && Object->isPRValue()) 4623 return EvaluatePointer(Object, This, Info); 4624 4625 if (Object->isGLValue()) 4626 return EvaluateLValue(Object, This, Info); 4627 4628 if (Object->getType()->isLiteralType(Info.Ctx)) 4629 return EvaluateTemporary(Object, This, Info); 4630 4631 Info.FFDiag(Object, diag::note_constexpr_nonliteral) << Object->getType(); 4632 return false; 4633 } 4634 4635 /// HandleMemberPointerAccess - Evaluate a member access operation and build an 4636 /// lvalue referring to the result. 4637 /// 4638 /// \param Info - Information about the ongoing evaluation. 4639 /// \param LV - An lvalue referring to the base of the member pointer. 4640 /// \param RHS - The member pointer expression. 4641 /// \param IncludeMember - Specifies whether the member itself is included in 4642 /// the resulting LValue subobject designator. This is not possible when 4643 /// creating a bound member function. 4644 /// \return The field or method declaration to which the member pointer refers, 4645 /// or 0 if evaluation fails. 4646 static const ValueDecl *HandleMemberPointerAccess(EvalInfo &Info, 4647 QualType LVType, 4648 LValue &LV, 4649 const Expr *RHS, 4650 bool IncludeMember = true) { 4651 MemberPtr MemPtr; 4652 if (!EvaluateMemberPointer(RHS, MemPtr, Info)) 4653 return nullptr; 4654 4655 // C++11 [expr.mptr.oper]p6: If the second operand is the null pointer to 4656 // member value, the behavior is undefined. 4657 if (!MemPtr.getDecl()) { 4658 // FIXME: Specific diagnostic. 4659 Info.FFDiag(RHS); 4660 return nullptr; 4661 } 4662 4663 if (MemPtr.isDerivedMember()) { 4664 // This is a member of some derived class. Truncate LV appropriately. 4665 // The end of the derived-to-base path for the base object must match the 4666 // derived-to-base path for the member pointer. 4667 if (LV.Designator.MostDerivedPathLength + MemPtr.Path.size() > 4668 LV.Designator.Entries.size()) { 4669 Info.FFDiag(RHS); 4670 return nullptr; 4671 } 4672 unsigned PathLengthToMember = 4673 LV.Designator.Entries.size() - MemPtr.Path.size(); 4674 for (unsigned I = 0, N = MemPtr.Path.size(); I != N; ++I) { 4675 const CXXRecordDecl *LVDecl = getAsBaseClass( 4676 LV.Designator.Entries[PathLengthToMember + I]); 4677 const CXXRecordDecl *MPDecl = MemPtr.Path[I]; 4678 if (LVDecl->getCanonicalDecl() != MPDecl->getCanonicalDecl()) { 4679 Info.FFDiag(RHS); 4680 return nullptr; 4681 } 4682 } 4683 4684 // Truncate the lvalue to the appropriate derived class. 4685 if (!CastToDerivedClass(Info, RHS, LV, MemPtr.getContainingRecord(), 4686 PathLengthToMember)) 4687 return nullptr; 4688 } else if (!MemPtr.Path.empty()) { 4689 // Extend the LValue path with the member pointer's path. 4690 LV.Designator.Entries.reserve(LV.Designator.Entries.size() + 4691 MemPtr.Path.size() + IncludeMember); 4692 4693 // Walk down to the appropriate base class. 4694 if (const PointerType *PT = LVType->getAs<PointerType>()) 4695 LVType = PT->getPointeeType(); 4696 const CXXRecordDecl *RD = LVType->getAsCXXRecordDecl(); 4697 assert(RD && "member pointer access on non-class-type expression"); 4698 // The first class in the path is that of the lvalue. 4699 for (unsigned I = 1, N = MemPtr.Path.size(); I != N; ++I) { 4700 const CXXRecordDecl *Base = MemPtr.Path[N - I - 1]; 4701 if (!HandleLValueDirectBase(Info, RHS, LV, RD, Base)) 4702 return nullptr; 4703 RD = Base; 4704 } 4705 // Finally cast to the class containing the member. 4706 if (!HandleLValueDirectBase(Info, RHS, LV, RD, 4707 MemPtr.getContainingRecord())) 4708 return nullptr; 4709 } 4710 4711 // Add the member. Note that we cannot build bound member functions here. 4712 if (IncludeMember) { 4713 if (const FieldDecl *FD = dyn_cast<FieldDecl>(MemPtr.getDecl())) { 4714 if (!HandleLValueMember(Info, RHS, LV, FD)) 4715 return nullptr; 4716 } else if (const IndirectFieldDecl *IFD = 4717 dyn_cast<IndirectFieldDecl>(MemPtr.getDecl())) { 4718 if (!HandleLValueIndirectMember(Info, RHS, LV, IFD)) 4719 return nullptr; 4720 } else { 4721 llvm_unreachable("can't construct reference to bound member function"); 4722 } 4723 } 4724 4725 return MemPtr.getDecl(); 4726 } 4727 4728 static const ValueDecl *HandleMemberPointerAccess(EvalInfo &Info, 4729 const BinaryOperator *BO, 4730 LValue &LV, 4731 bool IncludeMember = true) { 4732 assert(BO->getOpcode() == BO_PtrMemD || BO->getOpcode() == BO_PtrMemI); 4733 4734 if (!EvaluateObjectArgument(Info, BO->getLHS(), LV)) { 4735 if (Info.noteFailure()) { 4736 MemberPtr MemPtr; 4737 EvaluateMemberPointer(BO->getRHS(), MemPtr, Info); 4738 } 4739 return nullptr; 4740 } 4741 4742 return HandleMemberPointerAccess(Info, BO->getLHS()->getType(), LV, 4743 BO->getRHS(), IncludeMember); 4744 } 4745 4746 /// HandleBaseToDerivedCast - Apply the given base-to-derived cast operation on 4747 /// the provided lvalue, which currently refers to the base object. 4748 static bool HandleBaseToDerivedCast(EvalInfo &Info, const CastExpr *E, 4749 LValue &Result) { 4750 SubobjectDesignator &D = Result.Designator; 4751 if (D.Invalid || !Result.checkNullPointer(Info, E, CSK_Derived)) 4752 return false; 4753 4754 QualType TargetQT = E->getType(); 4755 if (const PointerType *PT = TargetQT->getAs<PointerType>()) 4756 TargetQT = PT->getPointeeType(); 4757 4758 // Check this cast lands within the final derived-to-base subobject path. 4759 if (D.MostDerivedPathLength + E->path_size() > D.Entries.size()) { 4760 Info.CCEDiag(E, diag::note_constexpr_invalid_downcast) 4761 << D.MostDerivedType << TargetQT; 4762 return false; 4763 } 4764 4765 // Check the type of the final cast. We don't need to check the path, 4766 // since a cast can only be formed if the path is unique. 4767 unsigned NewEntriesSize = D.Entries.size() - E->path_size(); 4768 const CXXRecordDecl *TargetType = TargetQT->getAsCXXRecordDecl(); 4769 const CXXRecordDecl *FinalType; 4770 if (NewEntriesSize == D.MostDerivedPathLength) 4771 FinalType = D.MostDerivedType->getAsCXXRecordDecl(); 4772 else 4773 FinalType = getAsBaseClass(D.Entries[NewEntriesSize - 1]); 4774 if (FinalType->getCanonicalDecl() != TargetType->getCanonicalDecl()) { 4775 Info.CCEDiag(E, diag::note_constexpr_invalid_downcast) 4776 << D.MostDerivedType << TargetQT; 4777 return false; 4778 } 4779 4780 // Truncate the lvalue to the appropriate derived class. 4781 return CastToDerivedClass(Info, E, Result, TargetType, NewEntriesSize); 4782 } 4783 4784 /// Get the value to use for a default-initialized object of type T. 4785 /// Return false if it encounters something invalid. 4786 static bool getDefaultInitValue(QualType T, APValue &Result) { 4787 bool Success = true; 4788 if (auto *RD = T->getAsCXXRecordDecl()) { 4789 if (RD->isInvalidDecl()) { 4790 Result = APValue(); 4791 return false; 4792 } 4793 if (RD->isUnion()) { 4794 Result = APValue((const FieldDecl *)nullptr); 4795 return true; 4796 } 4797 Result = APValue(APValue::UninitStruct(), RD->getNumBases(), 4798 std::distance(RD->field_begin(), RD->field_end())); 4799 4800 unsigned Index = 0; 4801 for (CXXRecordDecl::base_class_const_iterator I = RD->bases_begin(), 4802 End = RD->bases_end(); 4803 I != End; ++I, ++Index) 4804 Success &= getDefaultInitValue(I->getType(), Result.getStructBase(Index)); 4805 4806 for (const auto *I : RD->fields()) { 4807 if (I->isUnnamedBitfield()) 4808 continue; 4809 Success &= getDefaultInitValue(I->getType(), 4810 Result.getStructField(I->getFieldIndex())); 4811 } 4812 return Success; 4813 } 4814 4815 if (auto *AT = 4816 dyn_cast_or_null<ConstantArrayType>(T->getAsArrayTypeUnsafe())) { 4817 Result = APValue(APValue::UninitArray(), 0, AT->getSize().getZExtValue()); 4818 if (Result.hasArrayFiller()) 4819 Success &= 4820 getDefaultInitValue(AT->getElementType(), Result.getArrayFiller()); 4821 4822 return Success; 4823 } 4824 4825 Result = APValue::IndeterminateValue(); 4826 return true; 4827 } 4828 4829 namespace { 4830 enum EvalStmtResult { 4831 /// Evaluation failed. 4832 ESR_Failed, 4833 /// Hit a 'return' statement. 4834 ESR_Returned, 4835 /// Evaluation succeeded. 4836 ESR_Succeeded, 4837 /// Hit a 'continue' statement. 4838 ESR_Continue, 4839 /// Hit a 'break' statement. 4840 ESR_Break, 4841 /// Still scanning for 'case' or 'default' statement. 4842 ESR_CaseNotFound 4843 }; 4844 } 4845 4846 static bool EvaluateVarDecl(EvalInfo &Info, const VarDecl *VD) { 4847 // We don't need to evaluate the initializer for a static local. 4848 if (!VD->hasLocalStorage()) 4849 return true; 4850 4851 LValue Result; 4852 APValue &Val = Info.CurrentCall->createTemporary(VD, VD->getType(), 4853 ScopeKind::Block, Result); 4854 4855 const Expr *InitE = VD->getInit(); 4856 if (!InitE) { 4857 if (VD->getType()->isDependentType()) 4858 return Info.noteSideEffect(); 4859 return getDefaultInitValue(VD->getType(), Val); 4860 } 4861 if (InitE->isValueDependent()) 4862 return false; 4863 4864 if (!EvaluateInPlace(Val, Info, Result, InitE)) { 4865 // Wipe out any partially-computed value, to allow tracking that this 4866 // evaluation failed. 4867 Val = APValue(); 4868 return false; 4869 } 4870 4871 return true; 4872 } 4873 4874 static bool EvaluateDecl(EvalInfo &Info, const Decl *D) { 4875 bool OK = true; 4876 4877 if (const VarDecl *VD = dyn_cast<VarDecl>(D)) 4878 OK &= EvaluateVarDecl(Info, VD); 4879 4880 if (const DecompositionDecl *DD = dyn_cast<DecompositionDecl>(D)) 4881 for (auto *BD : DD->bindings()) 4882 if (auto *VD = BD->getHoldingVar()) 4883 OK &= EvaluateDecl(Info, VD); 4884 4885 return OK; 4886 } 4887 4888 static bool EvaluateDependentExpr(const Expr *E, EvalInfo &Info) { 4889 assert(E->isValueDependent()); 4890 if (Info.noteSideEffect()) 4891 return true; 4892 assert(E->containsErrors() && "valid value-dependent expression should never " 4893 "reach invalid code path."); 4894 return false; 4895 } 4896 4897 /// Evaluate a condition (either a variable declaration or an expression). 4898 static bool EvaluateCond(EvalInfo &Info, const VarDecl *CondDecl, 4899 const Expr *Cond, bool &Result) { 4900 if (Cond->isValueDependent()) 4901 return false; 4902 FullExpressionRAII Scope(Info); 4903 if (CondDecl && !EvaluateDecl(Info, CondDecl)) 4904 return false; 4905 if (!EvaluateAsBooleanCondition(Cond, Result, Info)) 4906 return false; 4907 return Scope.destroy(); 4908 } 4909 4910 namespace { 4911 /// A location where the result (returned value) of evaluating a 4912 /// statement should be stored. 4913 struct StmtResult { 4914 /// The APValue that should be filled in with the returned value. 4915 APValue &Value; 4916 /// The location containing the result, if any (used to support RVO). 4917 const LValue *Slot; 4918 }; 4919 4920 struct TempVersionRAII { 4921 CallStackFrame &Frame; 4922 4923 TempVersionRAII(CallStackFrame &Frame) : Frame(Frame) { 4924 Frame.pushTempVersion(); 4925 } 4926 4927 ~TempVersionRAII() { 4928 Frame.popTempVersion(); 4929 } 4930 }; 4931 4932 } 4933 4934 static EvalStmtResult EvaluateStmt(StmtResult &Result, EvalInfo &Info, 4935 const Stmt *S, 4936 const SwitchCase *SC = nullptr); 4937 4938 /// Evaluate the body of a loop, and translate the result as appropriate. 4939 static EvalStmtResult EvaluateLoopBody(StmtResult &Result, EvalInfo &Info, 4940 const Stmt *Body, 4941 const SwitchCase *Case = nullptr) { 4942 BlockScopeRAII Scope(Info); 4943 4944 EvalStmtResult ESR = EvaluateStmt(Result, Info, Body, Case); 4945 if (ESR != ESR_Failed && ESR != ESR_CaseNotFound && !Scope.destroy()) 4946 ESR = ESR_Failed; 4947 4948 switch (ESR) { 4949 case ESR_Break: 4950 return ESR_Succeeded; 4951 case ESR_Succeeded: 4952 case ESR_Continue: 4953 return ESR_Continue; 4954 case ESR_Failed: 4955 case ESR_Returned: 4956 case ESR_CaseNotFound: 4957 return ESR; 4958 } 4959 llvm_unreachable("Invalid EvalStmtResult!"); 4960 } 4961 4962 /// Evaluate a switch statement. 4963 static EvalStmtResult EvaluateSwitch(StmtResult &Result, EvalInfo &Info, 4964 const SwitchStmt *SS) { 4965 BlockScopeRAII Scope(Info); 4966 4967 // Evaluate the switch condition. 4968 APSInt Value; 4969 { 4970 if (const Stmt *Init = SS->getInit()) { 4971 EvalStmtResult ESR = EvaluateStmt(Result, Info, Init); 4972 if (ESR != ESR_Succeeded) { 4973 if (ESR != ESR_Failed && !Scope.destroy()) 4974 ESR = ESR_Failed; 4975 return ESR; 4976 } 4977 } 4978 4979 FullExpressionRAII CondScope(Info); 4980 if (SS->getConditionVariable() && 4981 !EvaluateDecl(Info, SS->getConditionVariable())) 4982 return ESR_Failed; 4983 if (SS->getCond()->isValueDependent()) { 4984 if (!EvaluateDependentExpr(SS->getCond(), Info)) 4985 return ESR_Failed; 4986 } else { 4987 if (!EvaluateInteger(SS->getCond(), Value, Info)) 4988 return ESR_Failed; 4989 } 4990 if (!CondScope.destroy()) 4991 return ESR_Failed; 4992 } 4993 4994 // Find the switch case corresponding to the value of the condition. 4995 // FIXME: Cache this lookup. 4996 const SwitchCase *Found = nullptr; 4997 for (const SwitchCase *SC = SS->getSwitchCaseList(); SC; 4998 SC = SC->getNextSwitchCase()) { 4999 if (isa<DefaultStmt>(SC)) { 5000 Found = SC; 5001 continue; 5002 } 5003 5004 const CaseStmt *CS = cast<CaseStmt>(SC); 5005 APSInt LHS = CS->getLHS()->EvaluateKnownConstInt(Info.Ctx); 5006 APSInt RHS = CS->getRHS() ? CS->getRHS()->EvaluateKnownConstInt(Info.Ctx) 5007 : LHS; 5008 if (LHS <= Value && Value <= RHS) { 5009 Found = SC; 5010 break; 5011 } 5012 } 5013 5014 if (!Found) 5015 return Scope.destroy() ? ESR_Succeeded : ESR_Failed; 5016 5017 // Search the switch body for the switch case and evaluate it from there. 5018 EvalStmtResult ESR = EvaluateStmt(Result, Info, SS->getBody(), Found); 5019 if (ESR != ESR_Failed && ESR != ESR_CaseNotFound && !Scope.destroy()) 5020 return ESR_Failed; 5021 5022 switch (ESR) { 5023 case ESR_Break: 5024 return ESR_Succeeded; 5025 case ESR_Succeeded: 5026 case ESR_Continue: 5027 case ESR_Failed: 5028 case ESR_Returned: 5029 return ESR; 5030 case ESR_CaseNotFound: 5031 // This can only happen if the switch case is nested within a statement 5032 // expression. We have no intention of supporting that. 5033 Info.FFDiag(Found->getBeginLoc(), 5034 diag::note_constexpr_stmt_expr_unsupported); 5035 return ESR_Failed; 5036 } 5037 llvm_unreachable("Invalid EvalStmtResult!"); 5038 } 5039 5040 static bool CheckLocalVariableDeclaration(EvalInfo &Info, const VarDecl *VD) { 5041 // An expression E is a core constant expression unless the evaluation of E 5042 // would evaluate one of the following: [C++2b] - a control flow that passes 5043 // through a declaration of a variable with static or thread storage duration. 5044 if (VD->isLocalVarDecl() && VD->isStaticLocal()) { 5045 Info.CCEDiag(VD->getLocation(), diag::note_constexpr_static_local) 5046 << (VD->getTSCSpec() == TSCS_unspecified ? 0 : 1) << VD; 5047 return false; 5048 } 5049 return true; 5050 } 5051 5052 // Evaluate a statement. 5053 static EvalStmtResult EvaluateStmt(StmtResult &Result, EvalInfo &Info, 5054 const Stmt *S, const SwitchCase *Case) { 5055 if (!Info.nextStep(S)) 5056 return ESR_Failed; 5057 5058 // If we're hunting down a 'case' or 'default' label, recurse through 5059 // substatements until we hit the label. 5060 if (Case) { 5061 switch (S->getStmtClass()) { 5062 case Stmt::CompoundStmtClass: 5063 // FIXME: Precompute which substatement of a compound statement we 5064 // would jump to, and go straight there rather than performing a 5065 // linear scan each time. 5066 case Stmt::LabelStmtClass: 5067 case Stmt::AttributedStmtClass: 5068 case Stmt::DoStmtClass: 5069 break; 5070 5071 case Stmt::CaseStmtClass: 5072 case Stmt::DefaultStmtClass: 5073 if (Case == S) 5074 Case = nullptr; 5075 break; 5076 5077 case Stmt::IfStmtClass: { 5078 // FIXME: Precompute which side of an 'if' we would jump to, and go 5079 // straight there rather than scanning both sides. 5080 const IfStmt *IS = cast<IfStmt>(S); 5081 5082 // Wrap the evaluation in a block scope, in case it's a DeclStmt 5083 // preceded by our switch label. 5084 BlockScopeRAII Scope(Info); 5085 5086 // Step into the init statement in case it brings an (uninitialized) 5087 // variable into scope. 5088 if (const Stmt *Init = IS->getInit()) { 5089 EvalStmtResult ESR = EvaluateStmt(Result, Info, Init, Case); 5090 if (ESR != ESR_CaseNotFound) { 5091 assert(ESR != ESR_Succeeded); 5092 return ESR; 5093 } 5094 } 5095 5096 // Condition variable must be initialized if it exists. 5097 // FIXME: We can skip evaluating the body if there's a condition 5098 // variable, as there can't be any case labels within it. 5099 // (The same is true for 'for' statements.) 5100 5101 EvalStmtResult ESR = EvaluateStmt(Result, Info, IS->getThen(), Case); 5102 if (ESR == ESR_Failed) 5103 return ESR; 5104 if (ESR != ESR_CaseNotFound) 5105 return Scope.destroy() ? ESR : ESR_Failed; 5106 if (!IS->getElse()) 5107 return ESR_CaseNotFound; 5108 5109 ESR = EvaluateStmt(Result, Info, IS->getElse(), Case); 5110 if (ESR == ESR_Failed) 5111 return ESR; 5112 if (ESR != ESR_CaseNotFound) 5113 return Scope.destroy() ? ESR : ESR_Failed; 5114 return ESR_CaseNotFound; 5115 } 5116 5117 case Stmt::WhileStmtClass: { 5118 EvalStmtResult ESR = 5119 EvaluateLoopBody(Result, Info, cast<WhileStmt>(S)->getBody(), Case); 5120 if (ESR != ESR_Continue) 5121 return ESR; 5122 break; 5123 } 5124 5125 case Stmt::ForStmtClass: { 5126 const ForStmt *FS = cast<ForStmt>(S); 5127 BlockScopeRAII Scope(Info); 5128 5129 // Step into the init statement in case it brings an (uninitialized) 5130 // variable into scope. 5131 if (const Stmt *Init = FS->getInit()) { 5132 EvalStmtResult ESR = EvaluateStmt(Result, Info, Init, Case); 5133 if (ESR != ESR_CaseNotFound) { 5134 assert(ESR != ESR_Succeeded); 5135 return ESR; 5136 } 5137 } 5138 5139 EvalStmtResult ESR = 5140 EvaluateLoopBody(Result, Info, FS->getBody(), Case); 5141 if (ESR != ESR_Continue) 5142 return ESR; 5143 if (const auto *Inc = FS->getInc()) { 5144 if (Inc->isValueDependent()) { 5145 if (!EvaluateDependentExpr(Inc, Info)) 5146 return ESR_Failed; 5147 } else { 5148 FullExpressionRAII IncScope(Info); 5149 if (!EvaluateIgnoredValue(Info, Inc) || !IncScope.destroy()) 5150 return ESR_Failed; 5151 } 5152 } 5153 break; 5154 } 5155 5156 case Stmt::DeclStmtClass: { 5157 // Start the lifetime of any uninitialized variables we encounter. They 5158 // might be used by the selected branch of the switch. 5159 const DeclStmt *DS = cast<DeclStmt>(S); 5160 for (const auto *D : DS->decls()) { 5161 if (const auto *VD = dyn_cast<VarDecl>(D)) { 5162 if (!CheckLocalVariableDeclaration(Info, VD)) 5163 return ESR_Failed; 5164 if (VD->hasLocalStorage() && !VD->getInit()) 5165 if (!EvaluateVarDecl(Info, VD)) 5166 return ESR_Failed; 5167 // FIXME: If the variable has initialization that can't be jumped 5168 // over, bail out of any immediately-surrounding compound-statement 5169 // too. There can't be any case labels here. 5170 } 5171 } 5172 return ESR_CaseNotFound; 5173 } 5174 5175 default: 5176 return ESR_CaseNotFound; 5177 } 5178 } 5179 5180 switch (S->getStmtClass()) { 5181 default: 5182 if (const Expr *E = dyn_cast<Expr>(S)) { 5183 if (E->isValueDependent()) { 5184 if (!EvaluateDependentExpr(E, Info)) 5185 return ESR_Failed; 5186 } else { 5187 // Don't bother evaluating beyond an expression-statement which couldn't 5188 // be evaluated. 5189 // FIXME: Do we need the FullExpressionRAII object here? 5190 // VisitExprWithCleanups should create one when necessary. 5191 FullExpressionRAII Scope(Info); 5192 if (!EvaluateIgnoredValue(Info, E) || !Scope.destroy()) 5193 return ESR_Failed; 5194 } 5195 return ESR_Succeeded; 5196 } 5197 5198 Info.FFDiag(S->getBeginLoc()); 5199 return ESR_Failed; 5200 5201 case Stmt::NullStmtClass: 5202 return ESR_Succeeded; 5203 5204 case Stmt::DeclStmtClass: { 5205 const DeclStmt *DS = cast<DeclStmt>(S); 5206 for (const auto *D : DS->decls()) { 5207 const VarDecl *VD = dyn_cast_or_null<VarDecl>(D); 5208 if (VD && !CheckLocalVariableDeclaration(Info, VD)) 5209 return ESR_Failed; 5210 // Each declaration initialization is its own full-expression. 5211 FullExpressionRAII Scope(Info); 5212 if (!EvaluateDecl(Info, D) && !Info.noteFailure()) 5213 return ESR_Failed; 5214 if (!Scope.destroy()) 5215 return ESR_Failed; 5216 } 5217 return ESR_Succeeded; 5218 } 5219 5220 case Stmt::ReturnStmtClass: { 5221 const Expr *RetExpr = cast<ReturnStmt>(S)->getRetValue(); 5222 FullExpressionRAII Scope(Info); 5223 if (RetExpr && RetExpr->isValueDependent()) { 5224 EvaluateDependentExpr(RetExpr, Info); 5225 // We know we returned, but we don't know what the value is. 5226 return ESR_Failed; 5227 } 5228 if (RetExpr && 5229 !(Result.Slot 5230 ? EvaluateInPlace(Result.Value, Info, *Result.Slot, RetExpr) 5231 : Evaluate(Result.Value, Info, RetExpr))) 5232 return ESR_Failed; 5233 return Scope.destroy() ? ESR_Returned : ESR_Failed; 5234 } 5235 5236 case Stmt::CompoundStmtClass: { 5237 BlockScopeRAII Scope(Info); 5238 5239 const CompoundStmt *CS = cast<CompoundStmt>(S); 5240 for (const auto *BI : CS->body()) { 5241 EvalStmtResult ESR = EvaluateStmt(Result, Info, BI, Case); 5242 if (ESR == ESR_Succeeded) 5243 Case = nullptr; 5244 else if (ESR != ESR_CaseNotFound) { 5245 if (ESR != ESR_Failed && !Scope.destroy()) 5246 return ESR_Failed; 5247 return ESR; 5248 } 5249 } 5250 if (Case) 5251 return ESR_CaseNotFound; 5252 return Scope.destroy() ? ESR_Succeeded : ESR_Failed; 5253 } 5254 5255 case Stmt::IfStmtClass: { 5256 const IfStmt *IS = cast<IfStmt>(S); 5257 5258 // Evaluate the condition, as either a var decl or as an expression. 5259 BlockScopeRAII Scope(Info); 5260 if (const Stmt *Init = IS->getInit()) { 5261 EvalStmtResult ESR = EvaluateStmt(Result, Info, Init); 5262 if (ESR != ESR_Succeeded) { 5263 if (ESR != ESR_Failed && !Scope.destroy()) 5264 return ESR_Failed; 5265 return ESR; 5266 } 5267 } 5268 bool Cond; 5269 if (IS->isConsteval()) { 5270 Cond = IS->isNonNegatedConsteval(); 5271 // If we are not in a constant context, if consteval should not evaluate 5272 // to true. 5273 if (!Info.InConstantContext) 5274 Cond = !Cond; 5275 } else if (!EvaluateCond(Info, IS->getConditionVariable(), IS->getCond(), 5276 Cond)) 5277 return ESR_Failed; 5278 5279 if (const Stmt *SubStmt = Cond ? IS->getThen() : IS->getElse()) { 5280 EvalStmtResult ESR = EvaluateStmt(Result, Info, SubStmt); 5281 if (ESR != ESR_Succeeded) { 5282 if (ESR != ESR_Failed && !Scope.destroy()) 5283 return ESR_Failed; 5284 return ESR; 5285 } 5286 } 5287 return Scope.destroy() ? ESR_Succeeded : ESR_Failed; 5288 } 5289 5290 case Stmt::WhileStmtClass: { 5291 const WhileStmt *WS = cast<WhileStmt>(S); 5292 while (true) { 5293 BlockScopeRAII Scope(Info); 5294 bool Continue; 5295 if (!EvaluateCond(Info, WS->getConditionVariable(), WS->getCond(), 5296 Continue)) 5297 return ESR_Failed; 5298 if (!Continue) 5299 break; 5300 5301 EvalStmtResult ESR = EvaluateLoopBody(Result, Info, WS->getBody()); 5302 if (ESR != ESR_Continue) { 5303 if (ESR != ESR_Failed && !Scope.destroy()) 5304 return ESR_Failed; 5305 return ESR; 5306 } 5307 if (!Scope.destroy()) 5308 return ESR_Failed; 5309 } 5310 return ESR_Succeeded; 5311 } 5312 5313 case Stmt::DoStmtClass: { 5314 const DoStmt *DS = cast<DoStmt>(S); 5315 bool Continue; 5316 do { 5317 EvalStmtResult ESR = EvaluateLoopBody(Result, Info, DS->getBody(), Case); 5318 if (ESR != ESR_Continue) 5319 return ESR; 5320 Case = nullptr; 5321 5322 if (DS->getCond()->isValueDependent()) { 5323 EvaluateDependentExpr(DS->getCond(), Info); 5324 // Bailout as we don't know whether to keep going or terminate the loop. 5325 return ESR_Failed; 5326 } 5327 FullExpressionRAII CondScope(Info); 5328 if (!EvaluateAsBooleanCondition(DS->getCond(), Continue, Info) || 5329 !CondScope.destroy()) 5330 return ESR_Failed; 5331 } while (Continue); 5332 return ESR_Succeeded; 5333 } 5334 5335 case Stmt::ForStmtClass: { 5336 const ForStmt *FS = cast<ForStmt>(S); 5337 BlockScopeRAII ForScope(Info); 5338 if (FS->getInit()) { 5339 EvalStmtResult ESR = EvaluateStmt(Result, Info, FS->getInit()); 5340 if (ESR != ESR_Succeeded) { 5341 if (ESR != ESR_Failed && !ForScope.destroy()) 5342 return ESR_Failed; 5343 return ESR; 5344 } 5345 } 5346 while (true) { 5347 BlockScopeRAII IterScope(Info); 5348 bool Continue = true; 5349 if (FS->getCond() && !EvaluateCond(Info, FS->getConditionVariable(), 5350 FS->getCond(), Continue)) 5351 return ESR_Failed; 5352 if (!Continue) 5353 break; 5354 5355 EvalStmtResult ESR = EvaluateLoopBody(Result, Info, FS->getBody()); 5356 if (ESR != ESR_Continue) { 5357 if (ESR != ESR_Failed && (!IterScope.destroy() || !ForScope.destroy())) 5358 return ESR_Failed; 5359 return ESR; 5360 } 5361 5362 if (const auto *Inc = FS->getInc()) { 5363 if (Inc->isValueDependent()) { 5364 if (!EvaluateDependentExpr(Inc, Info)) 5365 return ESR_Failed; 5366 } else { 5367 FullExpressionRAII IncScope(Info); 5368 if (!EvaluateIgnoredValue(Info, Inc) || !IncScope.destroy()) 5369 return ESR_Failed; 5370 } 5371 } 5372 5373 if (!IterScope.destroy()) 5374 return ESR_Failed; 5375 } 5376 return ForScope.destroy() ? ESR_Succeeded : ESR_Failed; 5377 } 5378 5379 case Stmt::CXXForRangeStmtClass: { 5380 const CXXForRangeStmt *FS = cast<CXXForRangeStmt>(S); 5381 BlockScopeRAII Scope(Info); 5382 5383 // Evaluate the init-statement if present. 5384 if (FS->getInit()) { 5385 EvalStmtResult ESR = EvaluateStmt(Result, Info, FS->getInit()); 5386 if (ESR != ESR_Succeeded) { 5387 if (ESR != ESR_Failed && !Scope.destroy()) 5388 return ESR_Failed; 5389 return ESR; 5390 } 5391 } 5392 5393 // Initialize the __range variable. 5394 EvalStmtResult ESR = EvaluateStmt(Result, Info, FS->getRangeStmt()); 5395 if (ESR != ESR_Succeeded) { 5396 if (ESR != ESR_Failed && !Scope.destroy()) 5397 return ESR_Failed; 5398 return ESR; 5399 } 5400 5401 // In error-recovery cases it's possible to get here even if we failed to 5402 // synthesize the __begin and __end variables. 5403 if (!FS->getBeginStmt() || !FS->getEndStmt() || !FS->getCond()) 5404 return ESR_Failed; 5405 5406 // Create the __begin and __end iterators. 5407 ESR = EvaluateStmt(Result, Info, FS->getBeginStmt()); 5408 if (ESR != ESR_Succeeded) { 5409 if (ESR != ESR_Failed && !Scope.destroy()) 5410 return ESR_Failed; 5411 return ESR; 5412 } 5413 ESR = EvaluateStmt(Result, Info, FS->getEndStmt()); 5414 if (ESR != ESR_Succeeded) { 5415 if (ESR != ESR_Failed && !Scope.destroy()) 5416 return ESR_Failed; 5417 return ESR; 5418 } 5419 5420 while (true) { 5421 // Condition: __begin != __end. 5422 { 5423 if (FS->getCond()->isValueDependent()) { 5424 EvaluateDependentExpr(FS->getCond(), Info); 5425 // We don't know whether to keep going or terminate the loop. 5426 return ESR_Failed; 5427 } 5428 bool Continue = true; 5429 FullExpressionRAII CondExpr(Info); 5430 if (!EvaluateAsBooleanCondition(FS->getCond(), Continue, Info)) 5431 return ESR_Failed; 5432 if (!Continue) 5433 break; 5434 } 5435 5436 // User's variable declaration, initialized by *__begin. 5437 BlockScopeRAII InnerScope(Info); 5438 ESR = EvaluateStmt(Result, Info, FS->getLoopVarStmt()); 5439 if (ESR != ESR_Succeeded) { 5440 if (ESR != ESR_Failed && (!InnerScope.destroy() || !Scope.destroy())) 5441 return ESR_Failed; 5442 return ESR; 5443 } 5444 5445 // Loop body. 5446 ESR = EvaluateLoopBody(Result, Info, FS->getBody()); 5447 if (ESR != ESR_Continue) { 5448 if (ESR != ESR_Failed && (!InnerScope.destroy() || !Scope.destroy())) 5449 return ESR_Failed; 5450 return ESR; 5451 } 5452 if (FS->getInc()->isValueDependent()) { 5453 if (!EvaluateDependentExpr(FS->getInc(), Info)) 5454 return ESR_Failed; 5455 } else { 5456 // Increment: ++__begin 5457 if (!EvaluateIgnoredValue(Info, FS->getInc())) 5458 return ESR_Failed; 5459 } 5460 5461 if (!InnerScope.destroy()) 5462 return ESR_Failed; 5463 } 5464 5465 return Scope.destroy() ? ESR_Succeeded : ESR_Failed; 5466 } 5467 5468 case Stmt::SwitchStmtClass: 5469 return EvaluateSwitch(Result, Info, cast<SwitchStmt>(S)); 5470 5471 case Stmt::ContinueStmtClass: 5472 return ESR_Continue; 5473 5474 case Stmt::BreakStmtClass: 5475 return ESR_Break; 5476 5477 case Stmt::LabelStmtClass: 5478 return EvaluateStmt(Result, Info, cast<LabelStmt>(S)->getSubStmt(), Case); 5479 5480 case Stmt::AttributedStmtClass: 5481 // As a general principle, C++11 attributes can be ignored without 5482 // any semantic impact. 5483 return EvaluateStmt(Result, Info, cast<AttributedStmt>(S)->getSubStmt(), 5484 Case); 5485 5486 case Stmt::CaseStmtClass: 5487 case Stmt::DefaultStmtClass: 5488 return EvaluateStmt(Result, Info, cast<SwitchCase>(S)->getSubStmt(), Case); 5489 case Stmt::CXXTryStmtClass: 5490 // Evaluate try blocks by evaluating all sub statements. 5491 return EvaluateStmt(Result, Info, cast<CXXTryStmt>(S)->getTryBlock(), Case); 5492 } 5493 } 5494 5495 /// CheckTrivialDefaultConstructor - Check whether a constructor is a trivial 5496 /// default constructor. If so, we'll fold it whether or not it's marked as 5497 /// constexpr. If it is marked as constexpr, we will never implicitly define it, 5498 /// so we need special handling. 5499 static bool CheckTrivialDefaultConstructor(EvalInfo &Info, SourceLocation Loc, 5500 const CXXConstructorDecl *CD, 5501 bool IsValueInitialization) { 5502 if (!CD->isTrivial() || !CD->isDefaultConstructor()) 5503 return false; 5504 5505 // Value-initialization does not call a trivial default constructor, so such a 5506 // call is a core constant expression whether or not the constructor is 5507 // constexpr. 5508 if (!CD->isConstexpr() && !IsValueInitialization) { 5509 if (Info.getLangOpts().CPlusPlus11) { 5510 // FIXME: If DiagDecl is an implicitly-declared special member function, 5511 // we should be much more explicit about why it's not constexpr. 5512 Info.CCEDiag(Loc, diag::note_constexpr_invalid_function, 1) 5513 << /*IsConstexpr*/0 << /*IsConstructor*/1 << CD; 5514 Info.Note(CD->getLocation(), diag::note_declared_at); 5515 } else { 5516 Info.CCEDiag(Loc, diag::note_invalid_subexpr_in_const_expr); 5517 } 5518 } 5519 return true; 5520 } 5521 5522 /// CheckConstexprFunction - Check that a function can be called in a constant 5523 /// expression. 5524 static bool CheckConstexprFunction(EvalInfo &Info, SourceLocation CallLoc, 5525 const FunctionDecl *Declaration, 5526 const FunctionDecl *Definition, 5527 const Stmt *Body) { 5528 // Potential constant expressions can contain calls to declared, but not yet 5529 // defined, constexpr functions. 5530 if (Info.checkingPotentialConstantExpression() && !Definition && 5531 Declaration->isConstexpr()) 5532 return false; 5533 5534 // Bail out if the function declaration itself is invalid. We will 5535 // have produced a relevant diagnostic while parsing it, so just 5536 // note the problematic sub-expression. 5537 if (Declaration->isInvalidDecl()) { 5538 Info.FFDiag(CallLoc, diag::note_invalid_subexpr_in_const_expr); 5539 return false; 5540 } 5541 5542 // DR1872: An instantiated virtual constexpr function can't be called in a 5543 // constant expression (prior to C++20). We can still constant-fold such a 5544 // call. 5545 if (!Info.Ctx.getLangOpts().CPlusPlus20 && isa<CXXMethodDecl>(Declaration) && 5546 cast<CXXMethodDecl>(Declaration)->isVirtual()) 5547 Info.CCEDiag(CallLoc, diag::note_constexpr_virtual_call); 5548 5549 if (Definition && Definition->isInvalidDecl()) { 5550 Info.FFDiag(CallLoc, diag::note_invalid_subexpr_in_const_expr); 5551 return false; 5552 } 5553 5554 // Can we evaluate this function call? 5555 if (Definition && Definition->isConstexpr() && Body) 5556 return true; 5557 5558 if (Info.getLangOpts().CPlusPlus11) { 5559 const FunctionDecl *DiagDecl = Definition ? Definition : Declaration; 5560 5561 // If this function is not constexpr because it is an inherited 5562 // non-constexpr constructor, diagnose that directly. 5563 auto *CD = dyn_cast<CXXConstructorDecl>(DiagDecl); 5564 if (CD && CD->isInheritingConstructor()) { 5565 auto *Inherited = CD->getInheritedConstructor().getConstructor(); 5566 if (!Inherited->isConstexpr()) 5567 DiagDecl = CD = Inherited; 5568 } 5569 5570 // FIXME: If DiagDecl is an implicitly-declared special member function 5571 // or an inheriting constructor, we should be much more explicit about why 5572 // it's not constexpr. 5573 if (CD && CD->isInheritingConstructor()) 5574 Info.FFDiag(CallLoc, diag::note_constexpr_invalid_inhctor, 1) 5575 << CD->getInheritedConstructor().getConstructor()->getParent(); 5576 else 5577 Info.FFDiag(CallLoc, diag::note_constexpr_invalid_function, 1) 5578 << DiagDecl->isConstexpr() << (bool)CD << DiagDecl; 5579 Info.Note(DiagDecl->getLocation(), diag::note_declared_at); 5580 } else { 5581 Info.FFDiag(CallLoc, diag::note_invalid_subexpr_in_const_expr); 5582 } 5583 return false; 5584 } 5585 5586 namespace { 5587 struct CheckDynamicTypeHandler { 5588 AccessKinds AccessKind; 5589 typedef bool result_type; 5590 bool failed() { return false; } 5591 bool found(APValue &Subobj, QualType SubobjType) { return true; } 5592 bool found(APSInt &Value, QualType SubobjType) { return true; } 5593 bool found(APFloat &Value, QualType SubobjType) { return true; } 5594 }; 5595 } // end anonymous namespace 5596 5597 /// Check that we can access the notional vptr of an object / determine its 5598 /// dynamic type. 5599 static bool checkDynamicType(EvalInfo &Info, const Expr *E, const LValue &This, 5600 AccessKinds AK, bool Polymorphic) { 5601 if (This.Designator.Invalid) 5602 return false; 5603 5604 CompleteObject Obj = findCompleteObject(Info, E, AK, This, QualType()); 5605 5606 if (!Obj) 5607 return false; 5608 5609 if (!Obj.Value) { 5610 // The object is not usable in constant expressions, so we can't inspect 5611 // its value to see if it's in-lifetime or what the active union members 5612 // are. We can still check for a one-past-the-end lvalue. 5613 if (This.Designator.isOnePastTheEnd() || 5614 This.Designator.isMostDerivedAnUnsizedArray()) { 5615 Info.FFDiag(E, This.Designator.isOnePastTheEnd() 5616 ? diag::note_constexpr_access_past_end 5617 : diag::note_constexpr_access_unsized_array) 5618 << AK; 5619 return false; 5620 } else if (Polymorphic) { 5621 // Conservatively refuse to perform a polymorphic operation if we would 5622 // not be able to read a notional 'vptr' value. 5623 APValue Val; 5624 This.moveInto(Val); 5625 QualType StarThisType = 5626 Info.Ctx.getLValueReferenceType(This.Designator.getType(Info.Ctx)); 5627 Info.FFDiag(E, diag::note_constexpr_polymorphic_unknown_dynamic_type) 5628 << AK << Val.getAsString(Info.Ctx, StarThisType); 5629 return false; 5630 } 5631 return true; 5632 } 5633 5634 CheckDynamicTypeHandler Handler{AK}; 5635 return Obj && findSubobject(Info, E, Obj, This.Designator, Handler); 5636 } 5637 5638 /// Check that the pointee of the 'this' pointer in a member function call is 5639 /// either within its lifetime or in its period of construction or destruction. 5640 static bool 5641 checkNonVirtualMemberCallThisPointer(EvalInfo &Info, const Expr *E, 5642 const LValue &This, 5643 const CXXMethodDecl *NamedMember) { 5644 return checkDynamicType( 5645 Info, E, This, 5646 isa<CXXDestructorDecl>(NamedMember) ? AK_Destroy : AK_MemberCall, false); 5647 } 5648 5649 struct DynamicType { 5650 /// The dynamic class type of the object. 5651 const CXXRecordDecl *Type; 5652 /// The corresponding path length in the lvalue. 5653 unsigned PathLength; 5654 }; 5655 5656 static const CXXRecordDecl *getBaseClassType(SubobjectDesignator &Designator, 5657 unsigned PathLength) { 5658 assert(PathLength >= Designator.MostDerivedPathLength && PathLength <= 5659 Designator.Entries.size() && "invalid path length"); 5660 return (PathLength == Designator.MostDerivedPathLength) 5661 ? Designator.MostDerivedType->getAsCXXRecordDecl() 5662 : getAsBaseClass(Designator.Entries[PathLength - 1]); 5663 } 5664 5665 /// Determine the dynamic type of an object. 5666 static Optional<DynamicType> ComputeDynamicType(EvalInfo &Info, const Expr *E, 5667 LValue &This, AccessKinds AK) { 5668 // If we don't have an lvalue denoting an object of class type, there is no 5669 // meaningful dynamic type. (We consider objects of non-class type to have no 5670 // dynamic type.) 5671 if (!checkDynamicType(Info, E, This, AK, true)) 5672 return None; 5673 5674 // Refuse to compute a dynamic type in the presence of virtual bases. This 5675 // shouldn't happen other than in constant-folding situations, since literal 5676 // types can't have virtual bases. 5677 // 5678 // Note that consumers of DynamicType assume that the type has no virtual 5679 // bases, and will need modifications if this restriction is relaxed. 5680 const CXXRecordDecl *Class = 5681 This.Designator.MostDerivedType->getAsCXXRecordDecl(); 5682 if (!Class || Class->getNumVBases()) { 5683 Info.FFDiag(E); 5684 return None; 5685 } 5686 5687 // FIXME: For very deep class hierarchies, it might be beneficial to use a 5688 // binary search here instead. But the overwhelmingly common case is that 5689 // we're not in the middle of a constructor, so it probably doesn't matter 5690 // in practice. 5691 ArrayRef<APValue::LValuePathEntry> Path = This.Designator.Entries; 5692 for (unsigned PathLength = This.Designator.MostDerivedPathLength; 5693 PathLength <= Path.size(); ++PathLength) { 5694 switch (Info.isEvaluatingCtorDtor(This.getLValueBase(), 5695 Path.slice(0, PathLength))) { 5696 case ConstructionPhase::Bases: 5697 case ConstructionPhase::DestroyingBases: 5698 // We're constructing or destroying a base class. This is not the dynamic 5699 // type. 5700 break; 5701 5702 case ConstructionPhase::None: 5703 case ConstructionPhase::AfterBases: 5704 case ConstructionPhase::AfterFields: 5705 case ConstructionPhase::Destroying: 5706 // We've finished constructing the base classes and not yet started 5707 // destroying them again, so this is the dynamic type. 5708 return DynamicType{getBaseClassType(This.Designator, PathLength), 5709 PathLength}; 5710 } 5711 } 5712 5713 // CWG issue 1517: we're constructing a base class of the object described by 5714 // 'This', so that object has not yet begun its period of construction and 5715 // any polymorphic operation on it results in undefined behavior. 5716 Info.FFDiag(E); 5717 return None; 5718 } 5719 5720 /// Perform virtual dispatch. 5721 static const CXXMethodDecl *HandleVirtualDispatch( 5722 EvalInfo &Info, const Expr *E, LValue &This, const CXXMethodDecl *Found, 5723 llvm::SmallVectorImpl<QualType> &CovariantAdjustmentPath) { 5724 Optional<DynamicType> DynType = ComputeDynamicType( 5725 Info, E, This, 5726 isa<CXXDestructorDecl>(Found) ? AK_Destroy : AK_MemberCall); 5727 if (!DynType) 5728 return nullptr; 5729 5730 // Find the final overrider. It must be declared in one of the classes on the 5731 // path from the dynamic type to the static type. 5732 // FIXME: If we ever allow literal types to have virtual base classes, that 5733 // won't be true. 5734 const CXXMethodDecl *Callee = Found; 5735 unsigned PathLength = DynType->PathLength; 5736 for (/**/; PathLength <= This.Designator.Entries.size(); ++PathLength) { 5737 const CXXRecordDecl *Class = getBaseClassType(This.Designator, PathLength); 5738 const CXXMethodDecl *Overrider = 5739 Found->getCorrespondingMethodDeclaredInClass(Class, false); 5740 if (Overrider) { 5741 Callee = Overrider; 5742 break; 5743 } 5744 } 5745 5746 // C++2a [class.abstract]p6: 5747 // the effect of making a virtual call to a pure virtual function [...] is 5748 // undefined 5749 if (Callee->isPure()) { 5750 Info.FFDiag(E, diag::note_constexpr_pure_virtual_call, 1) << Callee; 5751 Info.Note(Callee->getLocation(), diag::note_declared_at); 5752 return nullptr; 5753 } 5754 5755 // If necessary, walk the rest of the path to determine the sequence of 5756 // covariant adjustment steps to apply. 5757 if (!Info.Ctx.hasSameUnqualifiedType(Callee->getReturnType(), 5758 Found->getReturnType())) { 5759 CovariantAdjustmentPath.push_back(Callee->getReturnType()); 5760 for (unsigned CovariantPathLength = PathLength + 1; 5761 CovariantPathLength != This.Designator.Entries.size(); 5762 ++CovariantPathLength) { 5763 const CXXRecordDecl *NextClass = 5764 getBaseClassType(This.Designator, CovariantPathLength); 5765 const CXXMethodDecl *Next = 5766 Found->getCorrespondingMethodDeclaredInClass(NextClass, false); 5767 if (Next && !Info.Ctx.hasSameUnqualifiedType( 5768 Next->getReturnType(), CovariantAdjustmentPath.back())) 5769 CovariantAdjustmentPath.push_back(Next->getReturnType()); 5770 } 5771 if (!Info.Ctx.hasSameUnqualifiedType(Found->getReturnType(), 5772 CovariantAdjustmentPath.back())) 5773 CovariantAdjustmentPath.push_back(Found->getReturnType()); 5774 } 5775 5776 // Perform 'this' adjustment. 5777 if (!CastToDerivedClass(Info, E, This, Callee->getParent(), PathLength)) 5778 return nullptr; 5779 5780 return Callee; 5781 } 5782 5783 /// Perform the adjustment from a value returned by a virtual function to 5784 /// a value of the statically expected type, which may be a pointer or 5785 /// reference to a base class of the returned type. 5786 static bool HandleCovariantReturnAdjustment(EvalInfo &Info, const Expr *E, 5787 APValue &Result, 5788 ArrayRef<QualType> Path) { 5789 assert(Result.isLValue() && 5790 "unexpected kind of APValue for covariant return"); 5791 if (Result.isNullPointer()) 5792 return true; 5793 5794 LValue LVal; 5795 LVal.setFrom(Info.Ctx, Result); 5796 5797 const CXXRecordDecl *OldClass = Path[0]->getPointeeCXXRecordDecl(); 5798 for (unsigned I = 1; I != Path.size(); ++I) { 5799 const CXXRecordDecl *NewClass = Path[I]->getPointeeCXXRecordDecl(); 5800 assert(OldClass && NewClass && "unexpected kind of covariant return"); 5801 if (OldClass != NewClass && 5802 !CastToBaseClass(Info, E, LVal, OldClass, NewClass)) 5803 return false; 5804 OldClass = NewClass; 5805 } 5806 5807 LVal.moveInto(Result); 5808 return true; 5809 } 5810 5811 /// Determine whether \p Base, which is known to be a direct base class of 5812 /// \p Derived, is a public base class. 5813 static bool isBaseClassPublic(const CXXRecordDecl *Derived, 5814 const CXXRecordDecl *Base) { 5815 for (const CXXBaseSpecifier &BaseSpec : Derived->bases()) { 5816 auto *BaseClass = BaseSpec.getType()->getAsCXXRecordDecl(); 5817 if (BaseClass && declaresSameEntity(BaseClass, Base)) 5818 return BaseSpec.getAccessSpecifier() == AS_public; 5819 } 5820 llvm_unreachable("Base is not a direct base of Derived"); 5821 } 5822 5823 /// Apply the given dynamic cast operation on the provided lvalue. 5824 /// 5825 /// This implements the hard case of dynamic_cast, requiring a "runtime check" 5826 /// to find a suitable target subobject. 5827 static bool HandleDynamicCast(EvalInfo &Info, const ExplicitCastExpr *E, 5828 LValue &Ptr) { 5829 // We can't do anything with a non-symbolic pointer value. 5830 SubobjectDesignator &D = Ptr.Designator; 5831 if (D.Invalid) 5832 return false; 5833 5834 // C++ [expr.dynamic.cast]p6: 5835 // If v is a null pointer value, the result is a null pointer value. 5836 if (Ptr.isNullPointer() && !E->isGLValue()) 5837 return true; 5838 5839 // For all the other cases, we need the pointer to point to an object within 5840 // its lifetime / period of construction / destruction, and we need to know 5841 // its dynamic type. 5842 Optional<DynamicType> DynType = 5843 ComputeDynamicType(Info, E, Ptr, AK_DynamicCast); 5844 if (!DynType) 5845 return false; 5846 5847 // C++ [expr.dynamic.cast]p7: 5848 // If T is "pointer to cv void", then the result is a pointer to the most 5849 // derived object 5850 if (E->getType()->isVoidPointerType()) 5851 return CastToDerivedClass(Info, E, Ptr, DynType->Type, DynType->PathLength); 5852 5853 const CXXRecordDecl *C = E->getTypeAsWritten()->getPointeeCXXRecordDecl(); 5854 assert(C && "dynamic_cast target is not void pointer nor class"); 5855 CanQualType CQT = Info.Ctx.getCanonicalType(Info.Ctx.getRecordType(C)); 5856 5857 auto RuntimeCheckFailed = [&] (CXXBasePaths *Paths) { 5858 // C++ [expr.dynamic.cast]p9: 5859 if (!E->isGLValue()) { 5860 // The value of a failed cast to pointer type is the null pointer value 5861 // of the required result type. 5862 Ptr.setNull(Info.Ctx, E->getType()); 5863 return true; 5864 } 5865 5866 // A failed cast to reference type throws [...] std::bad_cast. 5867 unsigned DiagKind; 5868 if (!Paths && (declaresSameEntity(DynType->Type, C) || 5869 DynType->Type->isDerivedFrom(C))) 5870 DiagKind = 0; 5871 else if (!Paths || Paths->begin() == Paths->end()) 5872 DiagKind = 1; 5873 else if (Paths->isAmbiguous(CQT)) 5874 DiagKind = 2; 5875 else { 5876 assert(Paths->front().Access != AS_public && "why did the cast fail?"); 5877 DiagKind = 3; 5878 } 5879 Info.FFDiag(E, diag::note_constexpr_dynamic_cast_to_reference_failed) 5880 << DiagKind << Ptr.Designator.getType(Info.Ctx) 5881 << Info.Ctx.getRecordType(DynType->Type) 5882 << E->getType().getUnqualifiedType(); 5883 return false; 5884 }; 5885 5886 // Runtime check, phase 1: 5887 // Walk from the base subobject towards the derived object looking for the 5888 // target type. 5889 for (int PathLength = Ptr.Designator.Entries.size(); 5890 PathLength >= (int)DynType->PathLength; --PathLength) { 5891 const CXXRecordDecl *Class = getBaseClassType(Ptr.Designator, PathLength); 5892 if (declaresSameEntity(Class, C)) 5893 return CastToDerivedClass(Info, E, Ptr, Class, PathLength); 5894 // We can only walk across public inheritance edges. 5895 if (PathLength > (int)DynType->PathLength && 5896 !isBaseClassPublic(getBaseClassType(Ptr.Designator, PathLength - 1), 5897 Class)) 5898 return RuntimeCheckFailed(nullptr); 5899 } 5900 5901 // Runtime check, phase 2: 5902 // Search the dynamic type for an unambiguous public base of type C. 5903 CXXBasePaths Paths(/*FindAmbiguities=*/true, 5904 /*RecordPaths=*/true, /*DetectVirtual=*/false); 5905 if (DynType->Type->isDerivedFrom(C, Paths) && !Paths.isAmbiguous(CQT) && 5906 Paths.front().Access == AS_public) { 5907 // Downcast to the dynamic type... 5908 if (!CastToDerivedClass(Info, E, Ptr, DynType->Type, DynType->PathLength)) 5909 return false; 5910 // ... then upcast to the chosen base class subobject. 5911 for (CXXBasePathElement &Elem : Paths.front()) 5912 if (!HandleLValueBase(Info, E, Ptr, Elem.Class, Elem.Base)) 5913 return false; 5914 return true; 5915 } 5916 5917 // Otherwise, the runtime check fails. 5918 return RuntimeCheckFailed(&Paths); 5919 } 5920 5921 namespace { 5922 struct StartLifetimeOfUnionMemberHandler { 5923 EvalInfo &Info; 5924 const Expr *LHSExpr; 5925 const FieldDecl *Field; 5926 bool DuringInit; 5927 bool Failed = false; 5928 static const AccessKinds AccessKind = AK_Assign; 5929 5930 typedef bool result_type; 5931 bool failed() { return Failed; } 5932 bool found(APValue &Subobj, QualType SubobjType) { 5933 // We are supposed to perform no initialization but begin the lifetime of 5934 // the object. We interpret that as meaning to do what default 5935 // initialization of the object would do if all constructors involved were 5936 // trivial: 5937 // * All base, non-variant member, and array element subobjects' lifetimes 5938 // begin 5939 // * No variant members' lifetimes begin 5940 // * All scalar subobjects whose lifetimes begin have indeterminate values 5941 assert(SubobjType->isUnionType()); 5942 if (declaresSameEntity(Subobj.getUnionField(), Field)) { 5943 // This union member is already active. If it's also in-lifetime, there's 5944 // nothing to do. 5945 if (Subobj.getUnionValue().hasValue()) 5946 return true; 5947 } else if (DuringInit) { 5948 // We're currently in the process of initializing a different union 5949 // member. If we carried on, that initialization would attempt to 5950 // store to an inactive union member, resulting in undefined behavior. 5951 Info.FFDiag(LHSExpr, 5952 diag::note_constexpr_union_member_change_during_init); 5953 return false; 5954 } 5955 APValue Result; 5956 Failed = !getDefaultInitValue(Field->getType(), Result); 5957 Subobj.setUnion(Field, Result); 5958 return true; 5959 } 5960 bool found(APSInt &Value, QualType SubobjType) { 5961 llvm_unreachable("wrong value kind for union object"); 5962 } 5963 bool found(APFloat &Value, QualType SubobjType) { 5964 llvm_unreachable("wrong value kind for union object"); 5965 } 5966 }; 5967 } // end anonymous namespace 5968 5969 const AccessKinds StartLifetimeOfUnionMemberHandler::AccessKind; 5970 5971 /// Handle a builtin simple-assignment or a call to a trivial assignment 5972 /// operator whose left-hand side might involve a union member access. If it 5973 /// does, implicitly start the lifetime of any accessed union elements per 5974 /// C++20 [class.union]5. 5975 static bool HandleUnionActiveMemberChange(EvalInfo &Info, const Expr *LHSExpr, 5976 const LValue &LHS) { 5977 if (LHS.InvalidBase || LHS.Designator.Invalid) 5978 return false; 5979 5980 llvm::SmallVector<std::pair<unsigned, const FieldDecl*>, 4> UnionPathLengths; 5981 // C++ [class.union]p5: 5982 // define the set S(E) of subexpressions of E as follows: 5983 unsigned PathLength = LHS.Designator.Entries.size(); 5984 for (const Expr *E = LHSExpr; E != nullptr;) { 5985 // -- If E is of the form A.B, S(E) contains the elements of S(A)... 5986 if (auto *ME = dyn_cast<MemberExpr>(E)) { 5987 auto *FD = dyn_cast<FieldDecl>(ME->getMemberDecl()); 5988 // Note that we can't implicitly start the lifetime of a reference, 5989 // so we don't need to proceed any further if we reach one. 5990 if (!FD || FD->getType()->isReferenceType()) 5991 break; 5992 5993 // ... and also contains A.B if B names a union member ... 5994 if (FD->getParent()->isUnion()) { 5995 // ... of a non-class, non-array type, or of a class type with a 5996 // trivial default constructor that is not deleted, or an array of 5997 // such types. 5998 auto *RD = 5999 FD->getType()->getBaseElementTypeUnsafe()->getAsCXXRecordDecl(); 6000 if (!RD || RD->hasTrivialDefaultConstructor()) 6001 UnionPathLengths.push_back({PathLength - 1, FD}); 6002 } 6003 6004 E = ME->getBase(); 6005 --PathLength; 6006 assert(declaresSameEntity(FD, 6007 LHS.Designator.Entries[PathLength] 6008 .getAsBaseOrMember().getPointer())); 6009 6010 // -- If E is of the form A[B] and is interpreted as a built-in array 6011 // subscripting operator, S(E) is [S(the array operand, if any)]. 6012 } else if (auto *ASE = dyn_cast<ArraySubscriptExpr>(E)) { 6013 // Step over an ArrayToPointerDecay implicit cast. 6014 auto *Base = ASE->getBase()->IgnoreImplicit(); 6015 if (!Base->getType()->isArrayType()) 6016 break; 6017 6018 E = Base; 6019 --PathLength; 6020 6021 } else if (auto *ICE = dyn_cast<ImplicitCastExpr>(E)) { 6022 // Step over a derived-to-base conversion. 6023 E = ICE->getSubExpr(); 6024 if (ICE->getCastKind() == CK_NoOp) 6025 continue; 6026 if (ICE->getCastKind() != CK_DerivedToBase && 6027 ICE->getCastKind() != CK_UncheckedDerivedToBase) 6028 break; 6029 // Walk path backwards as we walk up from the base to the derived class. 6030 for (const CXXBaseSpecifier *Elt : llvm::reverse(ICE->path())) { 6031 --PathLength; 6032 (void)Elt; 6033 assert(declaresSameEntity(Elt->getType()->getAsCXXRecordDecl(), 6034 LHS.Designator.Entries[PathLength] 6035 .getAsBaseOrMember().getPointer())); 6036 } 6037 6038 // -- Otherwise, S(E) is empty. 6039 } else { 6040 break; 6041 } 6042 } 6043 6044 // Common case: no unions' lifetimes are started. 6045 if (UnionPathLengths.empty()) 6046 return true; 6047 6048 // if modification of X [would access an inactive union member], an object 6049 // of the type of X is implicitly created 6050 CompleteObject Obj = 6051 findCompleteObject(Info, LHSExpr, AK_Assign, LHS, LHSExpr->getType()); 6052 if (!Obj) 6053 return false; 6054 for (std::pair<unsigned, const FieldDecl *> LengthAndField : 6055 llvm::reverse(UnionPathLengths)) { 6056 // Form a designator for the union object. 6057 SubobjectDesignator D = LHS.Designator; 6058 D.truncate(Info.Ctx, LHS.Base, LengthAndField.first); 6059 6060 bool DuringInit = Info.isEvaluatingCtorDtor(LHS.Base, D.Entries) == 6061 ConstructionPhase::AfterBases; 6062 StartLifetimeOfUnionMemberHandler StartLifetime{ 6063 Info, LHSExpr, LengthAndField.second, DuringInit}; 6064 if (!findSubobject(Info, LHSExpr, Obj, D, StartLifetime)) 6065 return false; 6066 } 6067 6068 return true; 6069 } 6070 6071 static bool EvaluateCallArg(const ParmVarDecl *PVD, const Expr *Arg, 6072 CallRef Call, EvalInfo &Info, 6073 bool NonNull = false) { 6074 LValue LV; 6075 // Create the parameter slot and register its destruction. For a vararg 6076 // argument, create a temporary. 6077 // FIXME: For calling conventions that destroy parameters in the callee, 6078 // should we consider performing destruction when the function returns 6079 // instead? 6080 APValue &V = PVD ? Info.CurrentCall->createParam(Call, PVD, LV) 6081 : Info.CurrentCall->createTemporary(Arg, Arg->getType(), 6082 ScopeKind::Call, LV); 6083 if (!EvaluateInPlace(V, Info, LV, Arg)) 6084 return false; 6085 6086 // Passing a null pointer to an __attribute__((nonnull)) parameter results in 6087 // undefined behavior, so is non-constant. 6088 if (NonNull && V.isLValue() && V.isNullPointer()) { 6089 Info.CCEDiag(Arg, diag::note_non_null_attribute_failed); 6090 return false; 6091 } 6092 6093 return true; 6094 } 6095 6096 /// Evaluate the arguments to a function call. 6097 static bool EvaluateArgs(ArrayRef<const Expr *> Args, CallRef Call, 6098 EvalInfo &Info, const FunctionDecl *Callee, 6099 bool RightToLeft = false) { 6100 bool Success = true; 6101 llvm::SmallBitVector ForbiddenNullArgs; 6102 if (Callee->hasAttr<NonNullAttr>()) { 6103 ForbiddenNullArgs.resize(Args.size()); 6104 for (const auto *Attr : Callee->specific_attrs<NonNullAttr>()) { 6105 if (!Attr->args_size()) { 6106 ForbiddenNullArgs.set(); 6107 break; 6108 } else 6109 for (auto Idx : Attr->args()) { 6110 unsigned ASTIdx = Idx.getASTIndex(); 6111 if (ASTIdx >= Args.size()) 6112 continue; 6113 ForbiddenNullArgs[ASTIdx] = true; 6114 } 6115 } 6116 } 6117 for (unsigned I = 0; I < Args.size(); I++) { 6118 unsigned Idx = RightToLeft ? Args.size() - I - 1 : I; 6119 const ParmVarDecl *PVD = 6120 Idx < Callee->getNumParams() ? Callee->getParamDecl(Idx) : nullptr; 6121 bool NonNull = !ForbiddenNullArgs.empty() && ForbiddenNullArgs[Idx]; 6122 if (!EvaluateCallArg(PVD, Args[Idx], Call, Info, NonNull)) { 6123 // If we're checking for a potential constant expression, evaluate all 6124 // initializers even if some of them fail. 6125 if (!Info.noteFailure()) 6126 return false; 6127 Success = false; 6128 } 6129 } 6130 return Success; 6131 } 6132 6133 /// Perform a trivial copy from Param, which is the parameter of a copy or move 6134 /// constructor or assignment operator. 6135 static bool handleTrivialCopy(EvalInfo &Info, const ParmVarDecl *Param, 6136 const Expr *E, APValue &Result, 6137 bool CopyObjectRepresentation) { 6138 // Find the reference argument. 6139 CallStackFrame *Frame = Info.CurrentCall; 6140 APValue *RefValue = Info.getParamSlot(Frame->Arguments, Param); 6141 if (!RefValue) { 6142 Info.FFDiag(E); 6143 return false; 6144 } 6145 6146 // Copy out the contents of the RHS object. 6147 LValue RefLValue; 6148 RefLValue.setFrom(Info.Ctx, *RefValue); 6149 return handleLValueToRValueConversion( 6150 Info, E, Param->getType().getNonReferenceType(), RefLValue, Result, 6151 CopyObjectRepresentation); 6152 } 6153 6154 /// Evaluate a function call. 6155 static bool HandleFunctionCall(SourceLocation CallLoc, 6156 const FunctionDecl *Callee, const LValue *This, 6157 ArrayRef<const Expr *> Args, CallRef Call, 6158 const Stmt *Body, EvalInfo &Info, 6159 APValue &Result, const LValue *ResultSlot) { 6160 if (!Info.CheckCallLimit(CallLoc)) 6161 return false; 6162 6163 CallStackFrame Frame(Info, CallLoc, Callee, This, Call); 6164 6165 // For a trivial copy or move assignment, perform an APValue copy. This is 6166 // essential for unions, where the operations performed by the assignment 6167 // operator cannot be represented as statements. 6168 // 6169 // Skip this for non-union classes with no fields; in that case, the defaulted 6170 // copy/move does not actually read the object. 6171 const CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(Callee); 6172 if (MD && MD->isDefaulted() && 6173 (MD->getParent()->isUnion() || 6174 (MD->isTrivial() && 6175 isReadByLvalueToRvalueConversion(MD->getParent())))) { 6176 assert(This && 6177 (MD->isCopyAssignmentOperator() || MD->isMoveAssignmentOperator())); 6178 APValue RHSValue; 6179 if (!handleTrivialCopy(Info, MD->getParamDecl(0), Args[0], RHSValue, 6180 MD->getParent()->isUnion())) 6181 return false; 6182 if (!handleAssignment(Info, Args[0], *This, MD->getThisType(), 6183 RHSValue)) 6184 return false; 6185 This->moveInto(Result); 6186 return true; 6187 } else if (MD && isLambdaCallOperator(MD)) { 6188 // We're in a lambda; determine the lambda capture field maps unless we're 6189 // just constexpr checking a lambda's call operator. constexpr checking is 6190 // done before the captures have been added to the closure object (unless 6191 // we're inferring constexpr-ness), so we don't have access to them in this 6192 // case. But since we don't need the captures to constexpr check, we can 6193 // just ignore them. 6194 if (!Info.checkingPotentialConstantExpression()) 6195 MD->getParent()->getCaptureFields(Frame.LambdaCaptureFields, 6196 Frame.LambdaThisCaptureField); 6197 } 6198 6199 StmtResult Ret = {Result, ResultSlot}; 6200 EvalStmtResult ESR = EvaluateStmt(Ret, Info, Body); 6201 if (ESR == ESR_Succeeded) { 6202 if (Callee->getReturnType()->isVoidType()) 6203 return true; 6204 Info.FFDiag(Callee->getEndLoc(), diag::note_constexpr_no_return); 6205 } 6206 return ESR == ESR_Returned; 6207 } 6208 6209 /// Evaluate a constructor call. 6210 static bool HandleConstructorCall(const Expr *E, const LValue &This, 6211 CallRef Call, 6212 const CXXConstructorDecl *Definition, 6213 EvalInfo &Info, APValue &Result) { 6214 SourceLocation CallLoc = E->getExprLoc(); 6215 if (!Info.CheckCallLimit(CallLoc)) 6216 return false; 6217 6218 const CXXRecordDecl *RD = Definition->getParent(); 6219 if (RD->getNumVBases()) { 6220 Info.FFDiag(CallLoc, diag::note_constexpr_virtual_base) << RD; 6221 return false; 6222 } 6223 6224 EvalInfo::EvaluatingConstructorRAII EvalObj( 6225 Info, 6226 ObjectUnderConstruction{This.getLValueBase(), This.Designator.Entries}, 6227 RD->getNumBases()); 6228 CallStackFrame Frame(Info, CallLoc, Definition, &This, Call); 6229 6230 // FIXME: Creating an APValue just to hold a nonexistent return value is 6231 // wasteful. 6232 APValue RetVal; 6233 StmtResult Ret = {RetVal, nullptr}; 6234 6235 // If it's a delegating constructor, delegate. 6236 if (Definition->isDelegatingConstructor()) { 6237 CXXConstructorDecl::init_const_iterator I = Definition->init_begin(); 6238 if ((*I)->getInit()->isValueDependent()) { 6239 if (!EvaluateDependentExpr((*I)->getInit(), Info)) 6240 return false; 6241 } else { 6242 FullExpressionRAII InitScope(Info); 6243 if (!EvaluateInPlace(Result, Info, This, (*I)->getInit()) || 6244 !InitScope.destroy()) 6245 return false; 6246 } 6247 return EvaluateStmt(Ret, Info, Definition->getBody()) != ESR_Failed; 6248 } 6249 6250 // For a trivial copy or move constructor, perform an APValue copy. This is 6251 // essential for unions (or classes with anonymous union members), where the 6252 // operations performed by the constructor cannot be represented by 6253 // ctor-initializers. 6254 // 6255 // Skip this for empty non-union classes; we should not perform an 6256 // lvalue-to-rvalue conversion on them because their copy constructor does not 6257 // actually read them. 6258 if (Definition->isDefaulted() && Definition->isCopyOrMoveConstructor() && 6259 (Definition->getParent()->isUnion() || 6260 (Definition->isTrivial() && 6261 isReadByLvalueToRvalueConversion(Definition->getParent())))) { 6262 return handleTrivialCopy(Info, Definition->getParamDecl(0), E, Result, 6263 Definition->getParent()->isUnion()); 6264 } 6265 6266 // Reserve space for the struct members. 6267 if (!Result.hasValue()) { 6268 if (!RD->isUnion()) 6269 Result = APValue(APValue::UninitStruct(), RD->getNumBases(), 6270 std::distance(RD->field_begin(), RD->field_end())); 6271 else 6272 // A union starts with no active member. 6273 Result = APValue((const FieldDecl*)nullptr); 6274 } 6275 6276 if (RD->isInvalidDecl()) return false; 6277 const ASTRecordLayout &Layout = Info.Ctx.getASTRecordLayout(RD); 6278 6279 // A scope for temporaries lifetime-extended by reference members. 6280 BlockScopeRAII LifetimeExtendedScope(Info); 6281 6282 bool Success = true; 6283 unsigned BasesSeen = 0; 6284 #ifndef NDEBUG 6285 CXXRecordDecl::base_class_const_iterator BaseIt = RD->bases_begin(); 6286 #endif 6287 CXXRecordDecl::field_iterator FieldIt = RD->field_begin(); 6288 auto SkipToField = [&](FieldDecl *FD, bool Indirect) { 6289 // We might be initializing the same field again if this is an indirect 6290 // field initialization. 6291 if (FieldIt == RD->field_end() || 6292 FieldIt->getFieldIndex() > FD->getFieldIndex()) { 6293 assert(Indirect && "fields out of order?"); 6294 return; 6295 } 6296 6297 // Default-initialize any fields with no explicit initializer. 6298 for (; !declaresSameEntity(*FieldIt, FD); ++FieldIt) { 6299 assert(FieldIt != RD->field_end() && "missing field?"); 6300 if (!FieldIt->isUnnamedBitfield()) 6301 Success &= getDefaultInitValue( 6302 FieldIt->getType(), 6303 Result.getStructField(FieldIt->getFieldIndex())); 6304 } 6305 ++FieldIt; 6306 }; 6307 for (const auto *I : Definition->inits()) { 6308 LValue Subobject = This; 6309 LValue SubobjectParent = This; 6310 APValue *Value = &Result; 6311 6312 // Determine the subobject to initialize. 6313 FieldDecl *FD = nullptr; 6314 if (I->isBaseInitializer()) { 6315 QualType BaseType(I->getBaseClass(), 0); 6316 #ifndef NDEBUG 6317 // Non-virtual base classes are initialized in the order in the class 6318 // definition. We have already checked for virtual base classes. 6319 assert(!BaseIt->isVirtual() && "virtual base for literal type"); 6320 assert(Info.Ctx.hasSameType(BaseIt->getType(), BaseType) && 6321 "base class initializers not in expected order"); 6322 ++BaseIt; 6323 #endif 6324 if (!HandleLValueDirectBase(Info, I->getInit(), Subobject, RD, 6325 BaseType->getAsCXXRecordDecl(), &Layout)) 6326 return false; 6327 Value = &Result.getStructBase(BasesSeen++); 6328 } else if ((FD = I->getMember())) { 6329 if (!HandleLValueMember(Info, I->getInit(), Subobject, FD, &Layout)) 6330 return false; 6331 if (RD->isUnion()) { 6332 Result = APValue(FD); 6333 Value = &Result.getUnionValue(); 6334 } else { 6335 SkipToField(FD, false); 6336 Value = &Result.getStructField(FD->getFieldIndex()); 6337 } 6338 } else if (IndirectFieldDecl *IFD = I->getIndirectMember()) { 6339 // Walk the indirect field decl's chain to find the object to initialize, 6340 // and make sure we've initialized every step along it. 6341 auto IndirectFieldChain = IFD->chain(); 6342 for (auto *C : IndirectFieldChain) { 6343 FD = cast<FieldDecl>(C); 6344 CXXRecordDecl *CD = cast<CXXRecordDecl>(FD->getParent()); 6345 // Switch the union field if it differs. This happens if we had 6346 // preceding zero-initialization, and we're now initializing a union 6347 // subobject other than the first. 6348 // FIXME: In this case, the values of the other subobjects are 6349 // specified, since zero-initialization sets all padding bits to zero. 6350 if (!Value->hasValue() || 6351 (Value->isUnion() && Value->getUnionField() != FD)) { 6352 if (CD->isUnion()) 6353 *Value = APValue(FD); 6354 else 6355 // FIXME: This immediately starts the lifetime of all members of 6356 // an anonymous struct. It would be preferable to strictly start 6357 // member lifetime in initialization order. 6358 Success &= getDefaultInitValue(Info.Ctx.getRecordType(CD), *Value); 6359 } 6360 // Store Subobject as its parent before updating it for the last element 6361 // in the chain. 6362 if (C == IndirectFieldChain.back()) 6363 SubobjectParent = Subobject; 6364 if (!HandleLValueMember(Info, I->getInit(), Subobject, FD)) 6365 return false; 6366 if (CD->isUnion()) 6367 Value = &Value->getUnionValue(); 6368 else { 6369 if (C == IndirectFieldChain.front() && !RD->isUnion()) 6370 SkipToField(FD, true); 6371 Value = &Value->getStructField(FD->getFieldIndex()); 6372 } 6373 } 6374 } else { 6375 llvm_unreachable("unknown base initializer kind"); 6376 } 6377 6378 // Need to override This for implicit field initializers as in this case 6379 // This refers to innermost anonymous struct/union containing initializer, 6380 // not to currently constructed class. 6381 const Expr *Init = I->getInit(); 6382 if (Init->isValueDependent()) { 6383 if (!EvaluateDependentExpr(Init, Info)) 6384 return false; 6385 } else { 6386 ThisOverrideRAII ThisOverride(*Info.CurrentCall, &SubobjectParent, 6387 isa<CXXDefaultInitExpr>(Init)); 6388 FullExpressionRAII InitScope(Info); 6389 if (!EvaluateInPlace(*Value, Info, Subobject, Init) || 6390 (FD && FD->isBitField() && 6391 !truncateBitfieldValue(Info, Init, *Value, FD))) { 6392 // If we're checking for a potential constant expression, evaluate all 6393 // initializers even if some of them fail. 6394 if (!Info.noteFailure()) 6395 return false; 6396 Success = false; 6397 } 6398 } 6399 6400 // This is the point at which the dynamic type of the object becomes this 6401 // class type. 6402 if (I->isBaseInitializer() && BasesSeen == RD->getNumBases()) 6403 EvalObj.finishedConstructingBases(); 6404 } 6405 6406 // Default-initialize any remaining fields. 6407 if (!RD->isUnion()) { 6408 for (; FieldIt != RD->field_end(); ++FieldIt) { 6409 if (!FieldIt->isUnnamedBitfield()) 6410 Success &= getDefaultInitValue( 6411 FieldIt->getType(), 6412 Result.getStructField(FieldIt->getFieldIndex())); 6413 } 6414 } 6415 6416 EvalObj.finishedConstructingFields(); 6417 6418 return Success && 6419 EvaluateStmt(Ret, Info, Definition->getBody()) != ESR_Failed && 6420 LifetimeExtendedScope.destroy(); 6421 } 6422 6423 static bool HandleConstructorCall(const Expr *E, const LValue &This, 6424 ArrayRef<const Expr*> Args, 6425 const CXXConstructorDecl *Definition, 6426 EvalInfo &Info, APValue &Result) { 6427 CallScopeRAII CallScope(Info); 6428 CallRef Call = Info.CurrentCall->createCall(Definition); 6429 if (!EvaluateArgs(Args, Call, Info, Definition)) 6430 return false; 6431 6432 return HandleConstructorCall(E, This, Call, Definition, Info, Result) && 6433 CallScope.destroy(); 6434 } 6435 6436 static bool HandleDestructionImpl(EvalInfo &Info, SourceLocation CallLoc, 6437 const LValue &This, APValue &Value, 6438 QualType T) { 6439 // Objects can only be destroyed while they're within their lifetimes. 6440 // FIXME: We have no representation for whether an object of type nullptr_t 6441 // is in its lifetime; it usually doesn't matter. Perhaps we should model it 6442 // as indeterminate instead? 6443 if (Value.isAbsent() && !T->isNullPtrType()) { 6444 APValue Printable; 6445 This.moveInto(Printable); 6446 Info.FFDiag(CallLoc, diag::note_constexpr_destroy_out_of_lifetime) 6447 << Printable.getAsString(Info.Ctx, Info.Ctx.getLValueReferenceType(T)); 6448 return false; 6449 } 6450 6451 // Invent an expression for location purposes. 6452 // FIXME: We shouldn't need to do this. 6453 OpaqueValueExpr LocE(CallLoc, Info.Ctx.IntTy, VK_PRValue); 6454 6455 // For arrays, destroy elements right-to-left. 6456 if (const ConstantArrayType *CAT = Info.Ctx.getAsConstantArrayType(T)) { 6457 uint64_t Size = CAT->getSize().getZExtValue(); 6458 QualType ElemT = CAT->getElementType(); 6459 6460 LValue ElemLV = This; 6461 ElemLV.addArray(Info, &LocE, CAT); 6462 if (!HandleLValueArrayAdjustment(Info, &LocE, ElemLV, ElemT, Size)) 6463 return false; 6464 6465 // Ensure that we have actual array elements available to destroy; the 6466 // destructors might mutate the value, so we can't run them on the array 6467 // filler. 6468 if (Size && Size > Value.getArrayInitializedElts()) 6469 expandArray(Value, Value.getArraySize() - 1); 6470 6471 for (; Size != 0; --Size) { 6472 APValue &Elem = Value.getArrayInitializedElt(Size - 1); 6473 if (!HandleLValueArrayAdjustment(Info, &LocE, ElemLV, ElemT, -1) || 6474 !HandleDestructionImpl(Info, CallLoc, ElemLV, Elem, ElemT)) 6475 return false; 6476 } 6477 6478 // End the lifetime of this array now. 6479 Value = APValue(); 6480 return true; 6481 } 6482 6483 const CXXRecordDecl *RD = T->getAsCXXRecordDecl(); 6484 if (!RD) { 6485 if (T.isDestructedType()) { 6486 Info.FFDiag(CallLoc, diag::note_constexpr_unsupported_destruction) << T; 6487 return false; 6488 } 6489 6490 Value = APValue(); 6491 return true; 6492 } 6493 6494 if (RD->getNumVBases()) { 6495 Info.FFDiag(CallLoc, diag::note_constexpr_virtual_base) << RD; 6496 return false; 6497 } 6498 6499 const CXXDestructorDecl *DD = RD->getDestructor(); 6500 if (!DD && !RD->hasTrivialDestructor()) { 6501 Info.FFDiag(CallLoc); 6502 return false; 6503 } 6504 6505 if (!DD || DD->isTrivial() || 6506 (RD->isAnonymousStructOrUnion() && RD->isUnion())) { 6507 // A trivial destructor just ends the lifetime of the object. Check for 6508 // this case before checking for a body, because we might not bother 6509 // building a body for a trivial destructor. Note that it doesn't matter 6510 // whether the destructor is constexpr in this case; all trivial 6511 // destructors are constexpr. 6512 // 6513 // If an anonymous union would be destroyed, some enclosing destructor must 6514 // have been explicitly defined, and the anonymous union destruction should 6515 // have no effect. 6516 Value = APValue(); 6517 return true; 6518 } 6519 6520 if (!Info.CheckCallLimit(CallLoc)) 6521 return false; 6522 6523 const FunctionDecl *Definition = nullptr; 6524 const Stmt *Body = DD->getBody(Definition); 6525 6526 if (!CheckConstexprFunction(Info, CallLoc, DD, Definition, Body)) 6527 return false; 6528 6529 CallStackFrame Frame(Info, CallLoc, Definition, &This, CallRef()); 6530 6531 // We're now in the period of destruction of this object. 6532 unsigned BasesLeft = RD->getNumBases(); 6533 EvalInfo::EvaluatingDestructorRAII EvalObj( 6534 Info, 6535 ObjectUnderConstruction{This.getLValueBase(), This.Designator.Entries}); 6536 if (!EvalObj.DidInsert) { 6537 // C++2a [class.dtor]p19: 6538 // the behavior is undefined if the destructor is invoked for an object 6539 // whose lifetime has ended 6540 // (Note that formally the lifetime ends when the period of destruction 6541 // begins, even though certain uses of the object remain valid until the 6542 // period of destruction ends.) 6543 Info.FFDiag(CallLoc, diag::note_constexpr_double_destroy); 6544 return false; 6545 } 6546 6547 // FIXME: Creating an APValue just to hold a nonexistent return value is 6548 // wasteful. 6549 APValue RetVal; 6550 StmtResult Ret = {RetVal, nullptr}; 6551 if (EvaluateStmt(Ret, Info, Definition->getBody()) == ESR_Failed) 6552 return false; 6553 6554 // A union destructor does not implicitly destroy its members. 6555 if (RD->isUnion()) 6556 return true; 6557 6558 const ASTRecordLayout &Layout = Info.Ctx.getASTRecordLayout(RD); 6559 6560 // We don't have a good way to iterate fields in reverse, so collect all the 6561 // fields first and then walk them backwards. 6562 SmallVector<FieldDecl*, 16> Fields(RD->fields()); 6563 for (const FieldDecl *FD : llvm::reverse(Fields)) { 6564 if (FD->isUnnamedBitfield()) 6565 continue; 6566 6567 LValue Subobject = This; 6568 if (!HandleLValueMember(Info, &LocE, Subobject, FD, &Layout)) 6569 return false; 6570 6571 APValue *SubobjectValue = &Value.getStructField(FD->getFieldIndex()); 6572 if (!HandleDestructionImpl(Info, CallLoc, Subobject, *SubobjectValue, 6573 FD->getType())) 6574 return false; 6575 } 6576 6577 if (BasesLeft != 0) 6578 EvalObj.startedDestroyingBases(); 6579 6580 // Destroy base classes in reverse order. 6581 for (const CXXBaseSpecifier &Base : llvm::reverse(RD->bases())) { 6582 --BasesLeft; 6583 6584 QualType BaseType = Base.getType(); 6585 LValue Subobject = This; 6586 if (!HandleLValueDirectBase(Info, &LocE, Subobject, RD, 6587 BaseType->getAsCXXRecordDecl(), &Layout)) 6588 return false; 6589 6590 APValue *SubobjectValue = &Value.getStructBase(BasesLeft); 6591 if (!HandleDestructionImpl(Info, CallLoc, Subobject, *SubobjectValue, 6592 BaseType)) 6593 return false; 6594 } 6595 assert(BasesLeft == 0 && "NumBases was wrong?"); 6596 6597 // The period of destruction ends now. The object is gone. 6598 Value = APValue(); 6599 return true; 6600 } 6601 6602 namespace { 6603 struct DestroyObjectHandler { 6604 EvalInfo &Info; 6605 const Expr *E; 6606 const LValue &This; 6607 const AccessKinds AccessKind; 6608 6609 typedef bool result_type; 6610 bool failed() { return false; } 6611 bool found(APValue &Subobj, QualType SubobjType) { 6612 return HandleDestructionImpl(Info, E->getExprLoc(), This, Subobj, 6613 SubobjType); 6614 } 6615 bool found(APSInt &Value, QualType SubobjType) { 6616 Info.FFDiag(E, diag::note_constexpr_destroy_complex_elem); 6617 return false; 6618 } 6619 bool found(APFloat &Value, QualType SubobjType) { 6620 Info.FFDiag(E, diag::note_constexpr_destroy_complex_elem); 6621 return false; 6622 } 6623 }; 6624 } 6625 6626 /// Perform a destructor or pseudo-destructor call on the given object, which 6627 /// might in general not be a complete object. 6628 static bool HandleDestruction(EvalInfo &Info, const Expr *E, 6629 const LValue &This, QualType ThisType) { 6630 CompleteObject Obj = findCompleteObject(Info, E, AK_Destroy, This, ThisType); 6631 DestroyObjectHandler Handler = {Info, E, This, AK_Destroy}; 6632 return Obj && findSubobject(Info, E, Obj, This.Designator, Handler); 6633 } 6634 6635 /// Destroy and end the lifetime of the given complete object. 6636 static bool HandleDestruction(EvalInfo &Info, SourceLocation Loc, 6637 APValue::LValueBase LVBase, APValue &Value, 6638 QualType T) { 6639 // If we've had an unmodeled side-effect, we can't rely on mutable state 6640 // (such as the object we're about to destroy) being correct. 6641 if (Info.EvalStatus.HasSideEffects) 6642 return false; 6643 6644 LValue LV; 6645 LV.set({LVBase}); 6646 return HandleDestructionImpl(Info, Loc, LV, Value, T); 6647 } 6648 6649 /// Perform a call to 'perator new' or to `__builtin_operator_new'. 6650 static bool HandleOperatorNewCall(EvalInfo &Info, const CallExpr *E, 6651 LValue &Result) { 6652 if (Info.checkingPotentialConstantExpression() || 6653 Info.SpeculativeEvaluationDepth) 6654 return false; 6655 6656 // This is permitted only within a call to std::allocator<T>::allocate. 6657 auto Caller = Info.getStdAllocatorCaller("allocate"); 6658 if (!Caller) { 6659 Info.FFDiag(E->getExprLoc(), Info.getLangOpts().CPlusPlus20 6660 ? diag::note_constexpr_new_untyped 6661 : diag::note_constexpr_new); 6662 return false; 6663 } 6664 6665 QualType ElemType = Caller.ElemType; 6666 if (ElemType->isIncompleteType() || ElemType->isFunctionType()) { 6667 Info.FFDiag(E->getExprLoc(), 6668 diag::note_constexpr_new_not_complete_object_type) 6669 << (ElemType->isIncompleteType() ? 0 : 1) << ElemType; 6670 return false; 6671 } 6672 6673 APSInt ByteSize; 6674 if (!EvaluateInteger(E->getArg(0), ByteSize, Info)) 6675 return false; 6676 bool IsNothrow = false; 6677 for (unsigned I = 1, N = E->getNumArgs(); I != N; ++I) { 6678 EvaluateIgnoredValue(Info, E->getArg(I)); 6679 IsNothrow |= E->getType()->isNothrowT(); 6680 } 6681 6682 CharUnits ElemSize; 6683 if (!HandleSizeof(Info, E->getExprLoc(), ElemType, ElemSize)) 6684 return false; 6685 APInt Size, Remainder; 6686 APInt ElemSizeAP(ByteSize.getBitWidth(), ElemSize.getQuantity()); 6687 APInt::udivrem(ByteSize, ElemSizeAP, Size, Remainder); 6688 if (Remainder != 0) { 6689 // This likely indicates a bug in the implementation of 'std::allocator'. 6690 Info.FFDiag(E->getExprLoc(), diag::note_constexpr_operator_new_bad_size) 6691 << ByteSize << APSInt(ElemSizeAP, true) << ElemType; 6692 return false; 6693 } 6694 6695 if (ByteSize.getActiveBits() > ConstantArrayType::getMaxSizeBits(Info.Ctx)) { 6696 if (IsNothrow) { 6697 Result.setNull(Info.Ctx, E->getType()); 6698 return true; 6699 } 6700 6701 Info.FFDiag(E, diag::note_constexpr_new_too_large) << APSInt(Size, true); 6702 return false; 6703 } 6704 6705 QualType AllocType = Info.Ctx.getConstantArrayType(ElemType, Size, nullptr, 6706 ArrayType::Normal, 0); 6707 APValue *Val = Info.createHeapAlloc(E, AllocType, Result); 6708 *Val = APValue(APValue::UninitArray(), 0, Size.getZExtValue()); 6709 Result.addArray(Info, E, cast<ConstantArrayType>(AllocType)); 6710 return true; 6711 } 6712 6713 static bool hasVirtualDestructor(QualType T) { 6714 if (CXXRecordDecl *RD = T->getAsCXXRecordDecl()) 6715 if (CXXDestructorDecl *DD = RD->getDestructor()) 6716 return DD->isVirtual(); 6717 return false; 6718 } 6719 6720 static const FunctionDecl *getVirtualOperatorDelete(QualType T) { 6721 if (CXXRecordDecl *RD = T->getAsCXXRecordDecl()) 6722 if (CXXDestructorDecl *DD = RD->getDestructor()) 6723 return DD->isVirtual() ? DD->getOperatorDelete() : nullptr; 6724 return nullptr; 6725 } 6726 6727 /// Check that the given object is a suitable pointer to a heap allocation that 6728 /// still exists and is of the right kind for the purpose of a deletion. 6729 /// 6730 /// On success, returns the heap allocation to deallocate. On failure, produces 6731 /// a diagnostic and returns None. 6732 static Optional<DynAlloc *> CheckDeleteKind(EvalInfo &Info, const Expr *E, 6733 const LValue &Pointer, 6734 DynAlloc::Kind DeallocKind) { 6735 auto PointerAsString = [&] { 6736 return Pointer.toString(Info.Ctx, Info.Ctx.VoidPtrTy); 6737 }; 6738 6739 DynamicAllocLValue DA = Pointer.Base.dyn_cast<DynamicAllocLValue>(); 6740 if (!DA) { 6741 Info.FFDiag(E, diag::note_constexpr_delete_not_heap_alloc) 6742 << PointerAsString(); 6743 if (Pointer.Base) 6744 NoteLValueLocation(Info, Pointer.Base); 6745 return None; 6746 } 6747 6748 Optional<DynAlloc *> Alloc = Info.lookupDynamicAlloc(DA); 6749 if (!Alloc) { 6750 Info.FFDiag(E, diag::note_constexpr_double_delete); 6751 return None; 6752 } 6753 6754 QualType AllocType = Pointer.Base.getDynamicAllocType(); 6755 if (DeallocKind != (*Alloc)->getKind()) { 6756 Info.FFDiag(E, diag::note_constexpr_new_delete_mismatch) 6757 << DeallocKind << (*Alloc)->getKind() << AllocType; 6758 NoteLValueLocation(Info, Pointer.Base); 6759 return None; 6760 } 6761 6762 bool Subobject = false; 6763 if (DeallocKind == DynAlloc::New) { 6764 Subobject = Pointer.Designator.MostDerivedPathLength != 0 || 6765 Pointer.Designator.isOnePastTheEnd(); 6766 } else { 6767 Subobject = Pointer.Designator.Entries.size() != 1 || 6768 Pointer.Designator.Entries[0].getAsArrayIndex() != 0; 6769 } 6770 if (Subobject) { 6771 Info.FFDiag(E, diag::note_constexpr_delete_subobject) 6772 << PointerAsString() << Pointer.Designator.isOnePastTheEnd(); 6773 return None; 6774 } 6775 6776 return Alloc; 6777 } 6778 6779 // Perform a call to 'operator delete' or '__builtin_operator_delete'. 6780 bool HandleOperatorDeleteCall(EvalInfo &Info, const CallExpr *E) { 6781 if (Info.checkingPotentialConstantExpression() || 6782 Info.SpeculativeEvaluationDepth) 6783 return false; 6784 6785 // This is permitted only within a call to std::allocator<T>::deallocate. 6786 if (!Info.getStdAllocatorCaller("deallocate")) { 6787 Info.FFDiag(E->getExprLoc()); 6788 return true; 6789 } 6790 6791 LValue Pointer; 6792 if (!EvaluatePointer(E->getArg(0), Pointer, Info)) 6793 return false; 6794 for (unsigned I = 1, N = E->getNumArgs(); I != N; ++I) 6795 EvaluateIgnoredValue(Info, E->getArg(I)); 6796 6797 if (Pointer.Designator.Invalid) 6798 return false; 6799 6800 // Deleting a null pointer would have no effect, but it's not permitted by 6801 // std::allocator<T>::deallocate's contract. 6802 if (Pointer.isNullPointer()) { 6803 Info.CCEDiag(E->getExprLoc(), diag::note_constexpr_deallocate_null); 6804 return true; 6805 } 6806 6807 if (!CheckDeleteKind(Info, E, Pointer, DynAlloc::StdAllocator)) 6808 return false; 6809 6810 Info.HeapAllocs.erase(Pointer.Base.get<DynamicAllocLValue>()); 6811 return true; 6812 } 6813 6814 //===----------------------------------------------------------------------===// 6815 // Generic Evaluation 6816 //===----------------------------------------------------------------------===// 6817 namespace { 6818 6819 class BitCastBuffer { 6820 // FIXME: We're going to need bit-level granularity when we support 6821 // bit-fields. 6822 // FIXME: Its possible under the C++ standard for 'char' to not be 8 bits, but 6823 // we don't support a host or target where that is the case. Still, we should 6824 // use a more generic type in case we ever do. 6825 SmallVector<Optional<unsigned char>, 32> Bytes; 6826 6827 static_assert(std::numeric_limits<unsigned char>::digits >= 8, 6828 "Need at least 8 bit unsigned char"); 6829 6830 bool TargetIsLittleEndian; 6831 6832 public: 6833 BitCastBuffer(CharUnits Width, bool TargetIsLittleEndian) 6834 : Bytes(Width.getQuantity()), 6835 TargetIsLittleEndian(TargetIsLittleEndian) {} 6836 6837 LLVM_NODISCARD 6838 bool readObject(CharUnits Offset, CharUnits Width, 6839 SmallVectorImpl<unsigned char> &Output) const { 6840 for (CharUnits I = Offset, E = Offset + Width; I != E; ++I) { 6841 // If a byte of an integer is uninitialized, then the whole integer is 6842 // uninitialized. 6843 if (!Bytes[I.getQuantity()]) 6844 return false; 6845 Output.push_back(*Bytes[I.getQuantity()]); 6846 } 6847 if (llvm::sys::IsLittleEndianHost != TargetIsLittleEndian) 6848 std::reverse(Output.begin(), Output.end()); 6849 return true; 6850 } 6851 6852 void writeObject(CharUnits Offset, SmallVectorImpl<unsigned char> &Input) { 6853 if (llvm::sys::IsLittleEndianHost != TargetIsLittleEndian) 6854 std::reverse(Input.begin(), Input.end()); 6855 6856 size_t Index = 0; 6857 for (unsigned char Byte : Input) { 6858 assert(!Bytes[Offset.getQuantity() + Index] && "overwriting a byte?"); 6859 Bytes[Offset.getQuantity() + Index] = Byte; 6860 ++Index; 6861 } 6862 } 6863 6864 size_t size() { return Bytes.size(); } 6865 }; 6866 6867 /// Traverse an APValue to produce an BitCastBuffer, emulating how the current 6868 /// target would represent the value at runtime. 6869 class APValueToBufferConverter { 6870 EvalInfo &Info; 6871 BitCastBuffer Buffer; 6872 const CastExpr *BCE; 6873 6874 APValueToBufferConverter(EvalInfo &Info, CharUnits ObjectWidth, 6875 const CastExpr *BCE) 6876 : Info(Info), 6877 Buffer(ObjectWidth, Info.Ctx.getTargetInfo().isLittleEndian()), 6878 BCE(BCE) {} 6879 6880 bool visit(const APValue &Val, QualType Ty) { 6881 return visit(Val, Ty, CharUnits::fromQuantity(0)); 6882 } 6883 6884 // Write out Val with type Ty into Buffer starting at Offset. 6885 bool visit(const APValue &Val, QualType Ty, CharUnits Offset) { 6886 assert((size_t)Offset.getQuantity() <= Buffer.size()); 6887 6888 // As a special case, nullptr_t has an indeterminate value. 6889 if (Ty->isNullPtrType()) 6890 return true; 6891 6892 // Dig through Src to find the byte at SrcOffset. 6893 switch (Val.getKind()) { 6894 case APValue::Indeterminate: 6895 case APValue::None: 6896 return true; 6897 6898 case APValue::Int: 6899 return visitInt(Val.getInt(), Ty, Offset); 6900 case APValue::Float: 6901 return visitFloat(Val.getFloat(), Ty, Offset); 6902 case APValue::Array: 6903 return visitArray(Val, Ty, Offset); 6904 case APValue::Struct: 6905 return visitRecord(Val, Ty, Offset); 6906 6907 case APValue::ComplexInt: 6908 case APValue::ComplexFloat: 6909 case APValue::Vector: 6910 case APValue::FixedPoint: 6911 // FIXME: We should support these. 6912 6913 case APValue::Union: 6914 case APValue::MemberPointer: 6915 case APValue::AddrLabelDiff: { 6916 Info.FFDiag(BCE->getBeginLoc(), 6917 diag::note_constexpr_bit_cast_unsupported_type) 6918 << Ty; 6919 return false; 6920 } 6921 6922 case APValue::LValue: 6923 llvm_unreachable("LValue subobject in bit_cast?"); 6924 } 6925 llvm_unreachable("Unhandled APValue::ValueKind"); 6926 } 6927 6928 bool visitRecord(const APValue &Val, QualType Ty, CharUnits Offset) { 6929 const RecordDecl *RD = Ty->getAsRecordDecl(); 6930 const ASTRecordLayout &Layout = Info.Ctx.getASTRecordLayout(RD); 6931 6932 // Visit the base classes. 6933 if (auto *CXXRD = dyn_cast<CXXRecordDecl>(RD)) { 6934 for (size_t I = 0, E = CXXRD->getNumBases(); I != E; ++I) { 6935 const CXXBaseSpecifier &BS = CXXRD->bases_begin()[I]; 6936 CXXRecordDecl *BaseDecl = BS.getType()->getAsCXXRecordDecl(); 6937 6938 if (!visitRecord(Val.getStructBase(I), BS.getType(), 6939 Layout.getBaseClassOffset(BaseDecl) + Offset)) 6940 return false; 6941 } 6942 } 6943 6944 // Visit the fields. 6945 unsigned FieldIdx = 0; 6946 for (FieldDecl *FD : RD->fields()) { 6947 if (FD->isBitField()) { 6948 Info.FFDiag(BCE->getBeginLoc(), 6949 diag::note_constexpr_bit_cast_unsupported_bitfield); 6950 return false; 6951 } 6952 6953 uint64_t FieldOffsetBits = Layout.getFieldOffset(FieldIdx); 6954 6955 assert(FieldOffsetBits % Info.Ctx.getCharWidth() == 0 && 6956 "only bit-fields can have sub-char alignment"); 6957 CharUnits FieldOffset = 6958 Info.Ctx.toCharUnitsFromBits(FieldOffsetBits) + Offset; 6959 QualType FieldTy = FD->getType(); 6960 if (!visit(Val.getStructField(FieldIdx), FieldTy, FieldOffset)) 6961 return false; 6962 ++FieldIdx; 6963 } 6964 6965 return true; 6966 } 6967 6968 bool visitArray(const APValue &Val, QualType Ty, CharUnits Offset) { 6969 const auto *CAT = 6970 dyn_cast_or_null<ConstantArrayType>(Ty->getAsArrayTypeUnsafe()); 6971 if (!CAT) 6972 return false; 6973 6974 CharUnits ElemWidth = Info.Ctx.getTypeSizeInChars(CAT->getElementType()); 6975 unsigned NumInitializedElts = Val.getArrayInitializedElts(); 6976 unsigned ArraySize = Val.getArraySize(); 6977 // First, initialize the initialized elements. 6978 for (unsigned I = 0; I != NumInitializedElts; ++I) { 6979 const APValue &SubObj = Val.getArrayInitializedElt(I); 6980 if (!visit(SubObj, CAT->getElementType(), Offset + I * ElemWidth)) 6981 return false; 6982 } 6983 6984 // Next, initialize the rest of the array using the filler. 6985 if (Val.hasArrayFiller()) { 6986 const APValue &Filler = Val.getArrayFiller(); 6987 for (unsigned I = NumInitializedElts; I != ArraySize; ++I) { 6988 if (!visit(Filler, CAT->getElementType(), Offset + I * ElemWidth)) 6989 return false; 6990 } 6991 } 6992 6993 return true; 6994 } 6995 6996 bool visitInt(const APSInt &Val, QualType Ty, CharUnits Offset) { 6997 APSInt AdjustedVal = Val; 6998 unsigned Width = AdjustedVal.getBitWidth(); 6999 if (Ty->isBooleanType()) { 7000 Width = Info.Ctx.getTypeSize(Ty); 7001 AdjustedVal = AdjustedVal.extend(Width); 7002 } 7003 7004 SmallVector<unsigned char, 8> Bytes(Width / 8); 7005 llvm::StoreIntToMemory(AdjustedVal, &*Bytes.begin(), Width / 8); 7006 Buffer.writeObject(Offset, Bytes); 7007 return true; 7008 } 7009 7010 bool visitFloat(const APFloat &Val, QualType Ty, CharUnits Offset) { 7011 APSInt AsInt(Val.bitcastToAPInt()); 7012 return visitInt(AsInt, Ty, Offset); 7013 } 7014 7015 public: 7016 static Optional<BitCastBuffer> convert(EvalInfo &Info, const APValue &Src, 7017 const CastExpr *BCE) { 7018 CharUnits DstSize = Info.Ctx.getTypeSizeInChars(BCE->getType()); 7019 APValueToBufferConverter Converter(Info, DstSize, BCE); 7020 if (!Converter.visit(Src, BCE->getSubExpr()->getType())) 7021 return None; 7022 return Converter.Buffer; 7023 } 7024 }; 7025 7026 /// Write an BitCastBuffer into an APValue. 7027 class BufferToAPValueConverter { 7028 EvalInfo &Info; 7029 const BitCastBuffer &Buffer; 7030 const CastExpr *BCE; 7031 7032 BufferToAPValueConverter(EvalInfo &Info, const BitCastBuffer &Buffer, 7033 const CastExpr *BCE) 7034 : Info(Info), Buffer(Buffer), BCE(BCE) {} 7035 7036 // Emit an unsupported bit_cast type error. Sema refuses to build a bit_cast 7037 // with an invalid type, so anything left is a deficiency on our part (FIXME). 7038 // Ideally this will be unreachable. 7039 llvm::NoneType unsupportedType(QualType Ty) { 7040 Info.FFDiag(BCE->getBeginLoc(), 7041 diag::note_constexpr_bit_cast_unsupported_type) 7042 << Ty; 7043 return None; 7044 } 7045 7046 llvm::NoneType unrepresentableValue(QualType Ty, const APSInt &Val) { 7047 Info.FFDiag(BCE->getBeginLoc(), 7048 diag::note_constexpr_bit_cast_unrepresentable_value) 7049 << Ty << toString(Val, /*Radix=*/10); 7050 return None; 7051 } 7052 7053 Optional<APValue> visit(const BuiltinType *T, CharUnits Offset, 7054 const EnumType *EnumSugar = nullptr) { 7055 if (T->isNullPtrType()) { 7056 uint64_t NullValue = Info.Ctx.getTargetNullPointerValue(QualType(T, 0)); 7057 return APValue((Expr *)nullptr, 7058 /*Offset=*/CharUnits::fromQuantity(NullValue), 7059 APValue::NoLValuePath{}, /*IsNullPtr=*/true); 7060 } 7061 7062 CharUnits SizeOf = Info.Ctx.getTypeSizeInChars(T); 7063 7064 // Work around floating point types that contain unused padding bytes. This 7065 // is really just `long double` on x86, which is the only fundamental type 7066 // with padding bytes. 7067 if (T->isRealFloatingType()) { 7068 const llvm::fltSemantics &Semantics = 7069 Info.Ctx.getFloatTypeSemantics(QualType(T, 0)); 7070 unsigned NumBits = llvm::APFloatBase::getSizeInBits(Semantics); 7071 assert(NumBits % 8 == 0); 7072 CharUnits NumBytes = CharUnits::fromQuantity(NumBits / 8); 7073 if (NumBytes != SizeOf) 7074 SizeOf = NumBytes; 7075 } 7076 7077 SmallVector<uint8_t, 8> Bytes; 7078 if (!Buffer.readObject(Offset, SizeOf, Bytes)) { 7079 // If this is std::byte or unsigned char, then its okay to store an 7080 // indeterminate value. 7081 bool IsStdByte = EnumSugar && EnumSugar->isStdByteType(); 7082 bool IsUChar = 7083 !EnumSugar && (T->isSpecificBuiltinType(BuiltinType::UChar) || 7084 T->isSpecificBuiltinType(BuiltinType::Char_U)); 7085 if (!IsStdByte && !IsUChar) { 7086 QualType DisplayType(EnumSugar ? (const Type *)EnumSugar : T, 0); 7087 Info.FFDiag(BCE->getExprLoc(), 7088 diag::note_constexpr_bit_cast_indet_dest) 7089 << DisplayType << Info.Ctx.getLangOpts().CharIsSigned; 7090 return None; 7091 } 7092 7093 return APValue::IndeterminateValue(); 7094 } 7095 7096 APSInt Val(SizeOf.getQuantity() * Info.Ctx.getCharWidth(), true); 7097 llvm::LoadIntFromMemory(Val, &*Bytes.begin(), Bytes.size()); 7098 7099 if (T->isIntegralOrEnumerationType()) { 7100 Val.setIsSigned(T->isSignedIntegerOrEnumerationType()); 7101 7102 unsigned IntWidth = Info.Ctx.getIntWidth(QualType(T, 0)); 7103 if (IntWidth != Val.getBitWidth()) { 7104 APSInt Truncated = Val.trunc(IntWidth); 7105 if (Truncated.extend(Val.getBitWidth()) != Val) 7106 return unrepresentableValue(QualType(T, 0), Val); 7107 Val = Truncated; 7108 } 7109 7110 return APValue(Val); 7111 } 7112 7113 if (T->isRealFloatingType()) { 7114 const llvm::fltSemantics &Semantics = 7115 Info.Ctx.getFloatTypeSemantics(QualType(T, 0)); 7116 return APValue(APFloat(Semantics, Val)); 7117 } 7118 7119 return unsupportedType(QualType(T, 0)); 7120 } 7121 7122 Optional<APValue> visit(const RecordType *RTy, CharUnits Offset) { 7123 const RecordDecl *RD = RTy->getAsRecordDecl(); 7124 const ASTRecordLayout &Layout = Info.Ctx.getASTRecordLayout(RD); 7125 7126 unsigned NumBases = 0; 7127 if (auto *CXXRD = dyn_cast<CXXRecordDecl>(RD)) 7128 NumBases = CXXRD->getNumBases(); 7129 7130 APValue ResultVal(APValue::UninitStruct(), NumBases, 7131 std::distance(RD->field_begin(), RD->field_end())); 7132 7133 // Visit the base classes. 7134 if (auto *CXXRD = dyn_cast<CXXRecordDecl>(RD)) { 7135 for (size_t I = 0, E = CXXRD->getNumBases(); I != E; ++I) { 7136 const CXXBaseSpecifier &BS = CXXRD->bases_begin()[I]; 7137 CXXRecordDecl *BaseDecl = BS.getType()->getAsCXXRecordDecl(); 7138 if (BaseDecl->isEmpty() || 7139 Info.Ctx.getASTRecordLayout(BaseDecl).getNonVirtualSize().isZero()) 7140 continue; 7141 7142 Optional<APValue> SubObj = visitType( 7143 BS.getType(), Layout.getBaseClassOffset(BaseDecl) + Offset); 7144 if (!SubObj) 7145 return None; 7146 ResultVal.getStructBase(I) = *SubObj; 7147 } 7148 } 7149 7150 // Visit the fields. 7151 unsigned FieldIdx = 0; 7152 for (FieldDecl *FD : RD->fields()) { 7153 // FIXME: We don't currently support bit-fields. A lot of the logic for 7154 // this is in CodeGen, so we need to factor it around. 7155 if (FD->isBitField()) { 7156 Info.FFDiag(BCE->getBeginLoc(), 7157 diag::note_constexpr_bit_cast_unsupported_bitfield); 7158 return None; 7159 } 7160 7161 uint64_t FieldOffsetBits = Layout.getFieldOffset(FieldIdx); 7162 assert(FieldOffsetBits % Info.Ctx.getCharWidth() == 0); 7163 7164 CharUnits FieldOffset = 7165 CharUnits::fromQuantity(FieldOffsetBits / Info.Ctx.getCharWidth()) + 7166 Offset; 7167 QualType FieldTy = FD->getType(); 7168 Optional<APValue> SubObj = visitType(FieldTy, FieldOffset); 7169 if (!SubObj) 7170 return None; 7171 ResultVal.getStructField(FieldIdx) = *SubObj; 7172 ++FieldIdx; 7173 } 7174 7175 return ResultVal; 7176 } 7177 7178 Optional<APValue> visit(const EnumType *Ty, CharUnits Offset) { 7179 QualType RepresentationType = Ty->getDecl()->getIntegerType(); 7180 assert(!RepresentationType.isNull() && 7181 "enum forward decl should be caught by Sema"); 7182 const auto *AsBuiltin = 7183 RepresentationType.getCanonicalType()->castAs<BuiltinType>(); 7184 // Recurse into the underlying type. Treat std::byte transparently as 7185 // unsigned char. 7186 return visit(AsBuiltin, Offset, /*EnumTy=*/Ty); 7187 } 7188 7189 Optional<APValue> visit(const ConstantArrayType *Ty, CharUnits Offset) { 7190 size_t Size = Ty->getSize().getLimitedValue(); 7191 CharUnits ElementWidth = Info.Ctx.getTypeSizeInChars(Ty->getElementType()); 7192 7193 APValue ArrayValue(APValue::UninitArray(), Size, Size); 7194 for (size_t I = 0; I != Size; ++I) { 7195 Optional<APValue> ElementValue = 7196 visitType(Ty->getElementType(), Offset + I * ElementWidth); 7197 if (!ElementValue) 7198 return None; 7199 ArrayValue.getArrayInitializedElt(I) = std::move(*ElementValue); 7200 } 7201 7202 return ArrayValue; 7203 } 7204 7205 Optional<APValue> visit(const Type *Ty, CharUnits Offset) { 7206 return unsupportedType(QualType(Ty, 0)); 7207 } 7208 7209 Optional<APValue> visitType(QualType Ty, CharUnits Offset) { 7210 QualType Can = Ty.getCanonicalType(); 7211 7212 switch (Can->getTypeClass()) { 7213 #define TYPE(Class, Base) \ 7214 case Type::Class: \ 7215 return visit(cast<Class##Type>(Can.getTypePtr()), Offset); 7216 #define ABSTRACT_TYPE(Class, Base) 7217 #define NON_CANONICAL_TYPE(Class, Base) \ 7218 case Type::Class: \ 7219 llvm_unreachable("non-canonical type should be impossible!"); 7220 #define DEPENDENT_TYPE(Class, Base) \ 7221 case Type::Class: \ 7222 llvm_unreachable( \ 7223 "dependent types aren't supported in the constant evaluator!"); 7224 #define NON_CANONICAL_UNLESS_DEPENDENT(Class, Base) \ 7225 case Type::Class: \ 7226 llvm_unreachable("either dependent or not canonical!"); 7227 #include "clang/AST/TypeNodes.inc" 7228 } 7229 llvm_unreachable("Unhandled Type::TypeClass"); 7230 } 7231 7232 public: 7233 // Pull out a full value of type DstType. 7234 static Optional<APValue> convert(EvalInfo &Info, BitCastBuffer &Buffer, 7235 const CastExpr *BCE) { 7236 BufferToAPValueConverter Converter(Info, Buffer, BCE); 7237 return Converter.visitType(BCE->getType(), CharUnits::fromQuantity(0)); 7238 } 7239 }; 7240 7241 static bool checkBitCastConstexprEligibilityType(SourceLocation Loc, 7242 QualType Ty, EvalInfo *Info, 7243 const ASTContext &Ctx, 7244 bool CheckingDest) { 7245 Ty = Ty.getCanonicalType(); 7246 7247 auto diag = [&](int Reason) { 7248 if (Info) 7249 Info->FFDiag(Loc, diag::note_constexpr_bit_cast_invalid_type) 7250 << CheckingDest << (Reason == 4) << Reason; 7251 return false; 7252 }; 7253 auto note = [&](int Construct, QualType NoteTy, SourceLocation NoteLoc) { 7254 if (Info) 7255 Info->Note(NoteLoc, diag::note_constexpr_bit_cast_invalid_subtype) 7256 << NoteTy << Construct << Ty; 7257 return false; 7258 }; 7259 7260 if (Ty->isUnionType()) 7261 return diag(0); 7262 if (Ty->isPointerType()) 7263 return diag(1); 7264 if (Ty->isMemberPointerType()) 7265 return diag(2); 7266 if (Ty.isVolatileQualified()) 7267 return diag(3); 7268 7269 if (RecordDecl *Record = Ty->getAsRecordDecl()) { 7270 if (auto *CXXRD = dyn_cast<CXXRecordDecl>(Record)) { 7271 for (CXXBaseSpecifier &BS : CXXRD->bases()) 7272 if (!checkBitCastConstexprEligibilityType(Loc, BS.getType(), Info, Ctx, 7273 CheckingDest)) 7274 return note(1, BS.getType(), BS.getBeginLoc()); 7275 } 7276 for (FieldDecl *FD : Record->fields()) { 7277 if (FD->getType()->isReferenceType()) 7278 return diag(4); 7279 if (!checkBitCastConstexprEligibilityType(Loc, FD->getType(), Info, Ctx, 7280 CheckingDest)) 7281 return note(0, FD->getType(), FD->getBeginLoc()); 7282 } 7283 } 7284 7285 if (Ty->isArrayType() && 7286 !checkBitCastConstexprEligibilityType(Loc, Ctx.getBaseElementType(Ty), 7287 Info, Ctx, CheckingDest)) 7288 return false; 7289 7290 return true; 7291 } 7292 7293 static bool checkBitCastConstexprEligibility(EvalInfo *Info, 7294 const ASTContext &Ctx, 7295 const CastExpr *BCE) { 7296 bool DestOK = checkBitCastConstexprEligibilityType( 7297 BCE->getBeginLoc(), BCE->getType(), Info, Ctx, true); 7298 bool SourceOK = DestOK && checkBitCastConstexprEligibilityType( 7299 BCE->getBeginLoc(), 7300 BCE->getSubExpr()->getType(), Info, Ctx, false); 7301 return SourceOK; 7302 } 7303 7304 static bool handleLValueToRValueBitCast(EvalInfo &Info, APValue &DestValue, 7305 APValue &SourceValue, 7306 const CastExpr *BCE) { 7307 assert(CHAR_BIT == 8 && Info.Ctx.getTargetInfo().getCharWidth() == 8 && 7308 "no host or target supports non 8-bit chars"); 7309 assert(SourceValue.isLValue() && 7310 "LValueToRValueBitcast requires an lvalue operand!"); 7311 7312 if (!checkBitCastConstexprEligibility(&Info, Info.Ctx, BCE)) 7313 return false; 7314 7315 LValue SourceLValue; 7316 APValue SourceRValue; 7317 SourceLValue.setFrom(Info.Ctx, SourceValue); 7318 if (!handleLValueToRValueConversion( 7319 Info, BCE, BCE->getSubExpr()->getType().withConst(), SourceLValue, 7320 SourceRValue, /*WantObjectRepresentation=*/true)) 7321 return false; 7322 7323 // Read out SourceValue into a char buffer. 7324 Optional<BitCastBuffer> Buffer = 7325 APValueToBufferConverter::convert(Info, SourceRValue, BCE); 7326 if (!Buffer) 7327 return false; 7328 7329 // Write out the buffer into a new APValue. 7330 Optional<APValue> MaybeDestValue = 7331 BufferToAPValueConverter::convert(Info, *Buffer, BCE); 7332 if (!MaybeDestValue) 7333 return false; 7334 7335 DestValue = std::move(*MaybeDestValue); 7336 return true; 7337 } 7338 7339 template <class Derived> 7340 class ExprEvaluatorBase 7341 : public ConstStmtVisitor<Derived, bool> { 7342 private: 7343 Derived &getDerived() { return static_cast<Derived&>(*this); } 7344 bool DerivedSuccess(const APValue &V, const Expr *E) { 7345 return getDerived().Success(V, E); 7346 } 7347 bool DerivedZeroInitialization(const Expr *E) { 7348 return getDerived().ZeroInitialization(E); 7349 } 7350 7351 // Check whether a conditional operator with a non-constant condition is a 7352 // potential constant expression. If neither arm is a potential constant 7353 // expression, then the conditional operator is not either. 7354 template<typename ConditionalOperator> 7355 void CheckPotentialConstantConditional(const ConditionalOperator *E) { 7356 assert(Info.checkingPotentialConstantExpression()); 7357 7358 // Speculatively evaluate both arms. 7359 SmallVector<PartialDiagnosticAt, 8> Diag; 7360 { 7361 SpeculativeEvaluationRAII Speculate(Info, &Diag); 7362 StmtVisitorTy::Visit(E->getFalseExpr()); 7363 if (Diag.empty()) 7364 return; 7365 } 7366 7367 { 7368 SpeculativeEvaluationRAII Speculate(Info, &Diag); 7369 Diag.clear(); 7370 StmtVisitorTy::Visit(E->getTrueExpr()); 7371 if (Diag.empty()) 7372 return; 7373 } 7374 7375 Error(E, diag::note_constexpr_conditional_never_const); 7376 } 7377 7378 7379 template<typename ConditionalOperator> 7380 bool HandleConditionalOperator(const ConditionalOperator *E) { 7381 bool BoolResult; 7382 if (!EvaluateAsBooleanCondition(E->getCond(), BoolResult, Info)) { 7383 if (Info.checkingPotentialConstantExpression() && Info.noteFailure()) { 7384 CheckPotentialConstantConditional(E); 7385 return false; 7386 } 7387 if (Info.noteFailure()) { 7388 StmtVisitorTy::Visit(E->getTrueExpr()); 7389 StmtVisitorTy::Visit(E->getFalseExpr()); 7390 } 7391 return false; 7392 } 7393 7394 Expr *EvalExpr = BoolResult ? E->getTrueExpr() : E->getFalseExpr(); 7395 return StmtVisitorTy::Visit(EvalExpr); 7396 } 7397 7398 protected: 7399 EvalInfo &Info; 7400 typedef ConstStmtVisitor<Derived, bool> StmtVisitorTy; 7401 typedef ExprEvaluatorBase ExprEvaluatorBaseTy; 7402 7403 OptionalDiagnostic CCEDiag(const Expr *E, diag::kind D) { 7404 return Info.CCEDiag(E, D); 7405 } 7406 7407 bool ZeroInitialization(const Expr *E) { return Error(E); } 7408 7409 public: 7410 ExprEvaluatorBase(EvalInfo &Info) : Info(Info) {} 7411 7412 EvalInfo &getEvalInfo() { return Info; } 7413 7414 /// Report an evaluation error. This should only be called when an error is 7415 /// first discovered. When propagating an error, just return false. 7416 bool Error(const Expr *E, diag::kind D) { 7417 Info.FFDiag(E, D); 7418 return false; 7419 } 7420 bool Error(const Expr *E) { 7421 return Error(E, diag::note_invalid_subexpr_in_const_expr); 7422 } 7423 7424 bool VisitStmt(const Stmt *) { 7425 llvm_unreachable("Expression evaluator should not be called on stmts"); 7426 } 7427 bool VisitExpr(const Expr *E) { 7428 return Error(E); 7429 } 7430 7431 bool VisitConstantExpr(const ConstantExpr *E) { 7432 if (E->hasAPValueResult()) 7433 return DerivedSuccess(E->getAPValueResult(), E); 7434 7435 return StmtVisitorTy::Visit(E->getSubExpr()); 7436 } 7437 7438 bool VisitParenExpr(const ParenExpr *E) 7439 { return StmtVisitorTy::Visit(E->getSubExpr()); } 7440 bool VisitUnaryExtension(const UnaryOperator *E) 7441 { return StmtVisitorTy::Visit(E->getSubExpr()); } 7442 bool VisitUnaryPlus(const UnaryOperator *E) 7443 { return StmtVisitorTy::Visit(E->getSubExpr()); } 7444 bool VisitChooseExpr(const ChooseExpr *E) 7445 { return StmtVisitorTy::Visit(E->getChosenSubExpr()); } 7446 bool VisitGenericSelectionExpr(const GenericSelectionExpr *E) 7447 { return StmtVisitorTy::Visit(E->getResultExpr()); } 7448 bool VisitSubstNonTypeTemplateParmExpr(const SubstNonTypeTemplateParmExpr *E) 7449 { return StmtVisitorTy::Visit(E->getReplacement()); } 7450 bool VisitCXXDefaultArgExpr(const CXXDefaultArgExpr *E) { 7451 TempVersionRAII RAII(*Info.CurrentCall); 7452 SourceLocExprScopeGuard Guard(E, Info.CurrentCall->CurSourceLocExprScope); 7453 return StmtVisitorTy::Visit(E->getExpr()); 7454 } 7455 bool VisitCXXDefaultInitExpr(const CXXDefaultInitExpr *E) { 7456 TempVersionRAII RAII(*Info.CurrentCall); 7457 // The initializer may not have been parsed yet, or might be erroneous. 7458 if (!E->getExpr()) 7459 return Error(E); 7460 SourceLocExprScopeGuard Guard(E, Info.CurrentCall->CurSourceLocExprScope); 7461 return StmtVisitorTy::Visit(E->getExpr()); 7462 } 7463 7464 bool VisitExprWithCleanups(const ExprWithCleanups *E) { 7465 FullExpressionRAII Scope(Info); 7466 return StmtVisitorTy::Visit(E->getSubExpr()) && Scope.destroy(); 7467 } 7468 7469 // Temporaries are registered when created, so we don't care about 7470 // CXXBindTemporaryExpr. 7471 bool VisitCXXBindTemporaryExpr(const CXXBindTemporaryExpr *E) { 7472 return StmtVisitorTy::Visit(E->getSubExpr()); 7473 } 7474 7475 bool VisitCXXReinterpretCastExpr(const CXXReinterpretCastExpr *E) { 7476 CCEDiag(E, diag::note_constexpr_invalid_cast) << 0; 7477 return static_cast<Derived*>(this)->VisitCastExpr(E); 7478 } 7479 bool VisitCXXDynamicCastExpr(const CXXDynamicCastExpr *E) { 7480 if (!Info.Ctx.getLangOpts().CPlusPlus20) 7481 CCEDiag(E, diag::note_constexpr_invalid_cast) << 1; 7482 return static_cast<Derived*>(this)->VisitCastExpr(E); 7483 } 7484 bool VisitBuiltinBitCastExpr(const BuiltinBitCastExpr *E) { 7485 return static_cast<Derived*>(this)->VisitCastExpr(E); 7486 } 7487 7488 bool VisitBinaryOperator(const BinaryOperator *E) { 7489 switch (E->getOpcode()) { 7490 default: 7491 return Error(E); 7492 7493 case BO_Comma: 7494 VisitIgnoredValue(E->getLHS()); 7495 return StmtVisitorTy::Visit(E->getRHS()); 7496 7497 case BO_PtrMemD: 7498 case BO_PtrMemI: { 7499 LValue Obj; 7500 if (!HandleMemberPointerAccess(Info, E, Obj)) 7501 return false; 7502 APValue Result; 7503 if (!handleLValueToRValueConversion(Info, E, E->getType(), Obj, Result)) 7504 return false; 7505 return DerivedSuccess(Result, E); 7506 } 7507 } 7508 } 7509 7510 bool VisitCXXRewrittenBinaryOperator(const CXXRewrittenBinaryOperator *E) { 7511 return StmtVisitorTy::Visit(E->getSemanticForm()); 7512 } 7513 7514 bool VisitBinaryConditionalOperator(const BinaryConditionalOperator *E) { 7515 // Evaluate and cache the common expression. We treat it as a temporary, 7516 // even though it's not quite the same thing. 7517 LValue CommonLV; 7518 if (!Evaluate(Info.CurrentCall->createTemporary( 7519 E->getOpaqueValue(), 7520 getStorageType(Info.Ctx, E->getOpaqueValue()), 7521 ScopeKind::FullExpression, CommonLV), 7522 Info, E->getCommon())) 7523 return false; 7524 7525 return HandleConditionalOperator(E); 7526 } 7527 7528 bool VisitConditionalOperator(const ConditionalOperator *E) { 7529 bool IsBcpCall = false; 7530 // If the condition (ignoring parens) is a __builtin_constant_p call, 7531 // the result is a constant expression if it can be folded without 7532 // side-effects. This is an important GNU extension. See GCC PR38377 7533 // for discussion. 7534 if (const CallExpr *CallCE = 7535 dyn_cast<CallExpr>(E->getCond()->IgnoreParenCasts())) 7536 if (CallCE->getBuiltinCallee() == Builtin::BI__builtin_constant_p) 7537 IsBcpCall = true; 7538 7539 // Always assume __builtin_constant_p(...) ? ... : ... is a potential 7540 // constant expression; we can't check whether it's potentially foldable. 7541 // FIXME: We should instead treat __builtin_constant_p as non-constant if 7542 // it would return 'false' in this mode. 7543 if (Info.checkingPotentialConstantExpression() && IsBcpCall) 7544 return false; 7545 7546 FoldConstant Fold(Info, IsBcpCall); 7547 if (!HandleConditionalOperator(E)) { 7548 Fold.keepDiagnostics(); 7549 return false; 7550 } 7551 7552 return true; 7553 } 7554 7555 bool VisitOpaqueValueExpr(const OpaqueValueExpr *E) { 7556 if (APValue *Value = Info.CurrentCall->getCurrentTemporary(E)) 7557 return DerivedSuccess(*Value, E); 7558 7559 const Expr *Source = E->getSourceExpr(); 7560 if (!Source) 7561 return Error(E); 7562 if (Source == E) { 7563 assert(0 && "OpaqueValueExpr recursively refers to itself"); 7564 return Error(E); 7565 } 7566 return StmtVisitorTy::Visit(Source); 7567 } 7568 7569 bool VisitPseudoObjectExpr(const PseudoObjectExpr *E) { 7570 for (const Expr *SemE : E->semantics()) { 7571 if (auto *OVE = dyn_cast<OpaqueValueExpr>(SemE)) { 7572 // FIXME: We can't handle the case where an OpaqueValueExpr is also the 7573 // result expression: there could be two different LValues that would 7574 // refer to the same object in that case, and we can't model that. 7575 if (SemE == E->getResultExpr()) 7576 return Error(E); 7577 7578 // Unique OVEs get evaluated if and when we encounter them when 7579 // emitting the rest of the semantic form, rather than eagerly. 7580 if (OVE->isUnique()) 7581 continue; 7582 7583 LValue LV; 7584 if (!Evaluate(Info.CurrentCall->createTemporary( 7585 OVE, getStorageType(Info.Ctx, OVE), 7586 ScopeKind::FullExpression, LV), 7587 Info, OVE->getSourceExpr())) 7588 return false; 7589 } else if (SemE == E->getResultExpr()) { 7590 if (!StmtVisitorTy::Visit(SemE)) 7591 return false; 7592 } else { 7593 if (!EvaluateIgnoredValue(Info, SemE)) 7594 return false; 7595 } 7596 } 7597 return true; 7598 } 7599 7600 bool VisitCallExpr(const CallExpr *E) { 7601 APValue Result; 7602 if (!handleCallExpr(E, Result, nullptr)) 7603 return false; 7604 return DerivedSuccess(Result, E); 7605 } 7606 7607 bool handleCallExpr(const CallExpr *E, APValue &Result, 7608 const LValue *ResultSlot) { 7609 CallScopeRAII CallScope(Info); 7610 7611 const Expr *Callee = E->getCallee()->IgnoreParens(); 7612 QualType CalleeType = Callee->getType(); 7613 7614 const FunctionDecl *FD = nullptr; 7615 LValue *This = nullptr, ThisVal; 7616 auto Args = llvm::makeArrayRef(E->getArgs(), E->getNumArgs()); 7617 bool HasQualifier = false; 7618 7619 CallRef Call; 7620 7621 // Extract function decl and 'this' pointer from the callee. 7622 if (CalleeType->isSpecificBuiltinType(BuiltinType::BoundMember)) { 7623 const CXXMethodDecl *Member = nullptr; 7624 if (const MemberExpr *ME = dyn_cast<MemberExpr>(Callee)) { 7625 // Explicit bound member calls, such as x.f() or p->g(); 7626 if (!EvaluateObjectArgument(Info, ME->getBase(), ThisVal)) 7627 return false; 7628 Member = dyn_cast<CXXMethodDecl>(ME->getMemberDecl()); 7629 if (!Member) 7630 return Error(Callee); 7631 This = &ThisVal; 7632 HasQualifier = ME->hasQualifier(); 7633 } else if (const BinaryOperator *BE = dyn_cast<BinaryOperator>(Callee)) { 7634 // Indirect bound member calls ('.*' or '->*'). 7635 const ValueDecl *D = 7636 HandleMemberPointerAccess(Info, BE, ThisVal, false); 7637 if (!D) 7638 return false; 7639 Member = dyn_cast<CXXMethodDecl>(D); 7640 if (!Member) 7641 return Error(Callee); 7642 This = &ThisVal; 7643 } else if (const auto *PDE = dyn_cast<CXXPseudoDestructorExpr>(Callee)) { 7644 if (!Info.getLangOpts().CPlusPlus20) 7645 Info.CCEDiag(PDE, diag::note_constexpr_pseudo_destructor); 7646 return EvaluateObjectArgument(Info, PDE->getBase(), ThisVal) && 7647 HandleDestruction(Info, PDE, ThisVal, PDE->getDestroyedType()); 7648 } else 7649 return Error(Callee); 7650 FD = Member; 7651 } else if (CalleeType->isFunctionPointerType()) { 7652 LValue CalleeLV; 7653 if (!EvaluatePointer(Callee, CalleeLV, Info)) 7654 return false; 7655 7656 if (!CalleeLV.getLValueOffset().isZero()) 7657 return Error(Callee); 7658 FD = dyn_cast_or_null<FunctionDecl>( 7659 CalleeLV.getLValueBase().dyn_cast<const ValueDecl *>()); 7660 if (!FD) 7661 return Error(Callee); 7662 // Don't call function pointers which have been cast to some other type. 7663 // Per DR (no number yet), the caller and callee can differ in noexcept. 7664 if (!Info.Ctx.hasSameFunctionTypeIgnoringExceptionSpec( 7665 CalleeType->getPointeeType(), FD->getType())) { 7666 return Error(E); 7667 } 7668 7669 // For an (overloaded) assignment expression, evaluate the RHS before the 7670 // LHS. 7671 auto *OCE = dyn_cast<CXXOperatorCallExpr>(E); 7672 if (OCE && OCE->isAssignmentOp()) { 7673 assert(Args.size() == 2 && "wrong number of arguments in assignment"); 7674 Call = Info.CurrentCall->createCall(FD); 7675 if (!EvaluateArgs(isa<CXXMethodDecl>(FD) ? Args.slice(1) : Args, Call, 7676 Info, FD, /*RightToLeft=*/true)) 7677 return false; 7678 } 7679 7680 // Overloaded operator calls to member functions are represented as normal 7681 // calls with '*this' as the first argument. 7682 const CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(FD); 7683 if (MD && !MD->isStatic()) { 7684 // FIXME: When selecting an implicit conversion for an overloaded 7685 // operator delete, we sometimes try to evaluate calls to conversion 7686 // operators without a 'this' parameter! 7687 if (Args.empty()) 7688 return Error(E); 7689 7690 if (!EvaluateObjectArgument(Info, Args[0], ThisVal)) 7691 return false; 7692 This = &ThisVal; 7693 7694 // If this is syntactically a simple assignment using a trivial 7695 // assignment operator, start the lifetimes of union members as needed, 7696 // per C++20 [class.union]5. 7697 if (Info.getLangOpts().CPlusPlus20 && OCE && 7698 OCE->getOperator() == OO_Equal && MD->isTrivial() && 7699 !HandleUnionActiveMemberChange(Info, Args[0], ThisVal)) 7700 return false; 7701 7702 Args = Args.slice(1); 7703 } else if (MD && MD->isLambdaStaticInvoker()) { 7704 // Map the static invoker for the lambda back to the call operator. 7705 // Conveniently, we don't have to slice out the 'this' argument (as is 7706 // being done for the non-static case), since a static member function 7707 // doesn't have an implicit argument passed in. 7708 const CXXRecordDecl *ClosureClass = MD->getParent(); 7709 assert( 7710 ClosureClass->captures_begin() == ClosureClass->captures_end() && 7711 "Number of captures must be zero for conversion to function-ptr"); 7712 7713 const CXXMethodDecl *LambdaCallOp = 7714 ClosureClass->getLambdaCallOperator(); 7715 7716 // Set 'FD', the function that will be called below, to the call 7717 // operator. If the closure object represents a generic lambda, find 7718 // the corresponding specialization of the call operator. 7719 7720 if (ClosureClass->isGenericLambda()) { 7721 assert(MD->isFunctionTemplateSpecialization() && 7722 "A generic lambda's static-invoker function must be a " 7723 "template specialization"); 7724 const TemplateArgumentList *TAL = MD->getTemplateSpecializationArgs(); 7725 FunctionTemplateDecl *CallOpTemplate = 7726 LambdaCallOp->getDescribedFunctionTemplate(); 7727 void *InsertPos = nullptr; 7728 FunctionDecl *CorrespondingCallOpSpecialization = 7729 CallOpTemplate->findSpecialization(TAL->asArray(), InsertPos); 7730 assert(CorrespondingCallOpSpecialization && 7731 "We must always have a function call operator specialization " 7732 "that corresponds to our static invoker specialization"); 7733 FD = cast<CXXMethodDecl>(CorrespondingCallOpSpecialization); 7734 } else 7735 FD = LambdaCallOp; 7736 } else if (FD->isReplaceableGlobalAllocationFunction()) { 7737 if (FD->getDeclName().getCXXOverloadedOperator() == OO_New || 7738 FD->getDeclName().getCXXOverloadedOperator() == OO_Array_New) { 7739 LValue Ptr; 7740 if (!HandleOperatorNewCall(Info, E, Ptr)) 7741 return false; 7742 Ptr.moveInto(Result); 7743 return CallScope.destroy(); 7744 } else { 7745 return HandleOperatorDeleteCall(Info, E) && CallScope.destroy(); 7746 } 7747 } 7748 } else 7749 return Error(E); 7750 7751 // Evaluate the arguments now if we've not already done so. 7752 if (!Call) { 7753 Call = Info.CurrentCall->createCall(FD); 7754 if (!EvaluateArgs(Args, Call, Info, FD)) 7755 return false; 7756 } 7757 7758 SmallVector<QualType, 4> CovariantAdjustmentPath; 7759 if (This) { 7760 auto *NamedMember = dyn_cast<CXXMethodDecl>(FD); 7761 if (NamedMember && NamedMember->isVirtual() && !HasQualifier) { 7762 // Perform virtual dispatch, if necessary. 7763 FD = HandleVirtualDispatch(Info, E, *This, NamedMember, 7764 CovariantAdjustmentPath); 7765 if (!FD) 7766 return false; 7767 } else { 7768 // Check that the 'this' pointer points to an object of the right type. 7769 // FIXME: If this is an assignment operator call, we may need to change 7770 // the active union member before we check this. 7771 if (!checkNonVirtualMemberCallThisPointer(Info, E, *This, NamedMember)) 7772 return false; 7773 } 7774 } 7775 7776 // Destructor calls are different enough that they have their own codepath. 7777 if (auto *DD = dyn_cast<CXXDestructorDecl>(FD)) { 7778 assert(This && "no 'this' pointer for destructor call"); 7779 return HandleDestruction(Info, E, *This, 7780 Info.Ctx.getRecordType(DD->getParent())) && 7781 CallScope.destroy(); 7782 } 7783 7784 const FunctionDecl *Definition = nullptr; 7785 Stmt *Body = FD->getBody(Definition); 7786 7787 if (!CheckConstexprFunction(Info, E->getExprLoc(), FD, Definition, Body) || 7788 !HandleFunctionCall(E->getExprLoc(), Definition, This, Args, Call, 7789 Body, Info, Result, ResultSlot)) 7790 return false; 7791 7792 if (!CovariantAdjustmentPath.empty() && 7793 !HandleCovariantReturnAdjustment(Info, E, Result, 7794 CovariantAdjustmentPath)) 7795 return false; 7796 7797 return CallScope.destroy(); 7798 } 7799 7800 bool VisitCompoundLiteralExpr(const CompoundLiteralExpr *E) { 7801 return StmtVisitorTy::Visit(E->getInitializer()); 7802 } 7803 bool VisitInitListExpr(const InitListExpr *E) { 7804 if (E->getNumInits() == 0) 7805 return DerivedZeroInitialization(E); 7806 if (E->getNumInits() == 1) 7807 return StmtVisitorTy::Visit(E->getInit(0)); 7808 return Error(E); 7809 } 7810 bool VisitImplicitValueInitExpr(const ImplicitValueInitExpr *E) { 7811 return DerivedZeroInitialization(E); 7812 } 7813 bool VisitCXXScalarValueInitExpr(const CXXScalarValueInitExpr *E) { 7814 return DerivedZeroInitialization(E); 7815 } 7816 bool VisitCXXNullPtrLiteralExpr(const CXXNullPtrLiteralExpr *E) { 7817 return DerivedZeroInitialization(E); 7818 } 7819 7820 /// A member expression where the object is a prvalue is itself a prvalue. 7821 bool VisitMemberExpr(const MemberExpr *E) { 7822 assert(!Info.Ctx.getLangOpts().CPlusPlus11 && 7823 "missing temporary materialization conversion"); 7824 assert(!E->isArrow() && "missing call to bound member function?"); 7825 7826 APValue Val; 7827 if (!Evaluate(Val, Info, E->getBase())) 7828 return false; 7829 7830 QualType BaseTy = E->getBase()->getType(); 7831 7832 const FieldDecl *FD = dyn_cast<FieldDecl>(E->getMemberDecl()); 7833 if (!FD) return Error(E); 7834 assert(!FD->getType()->isReferenceType() && "prvalue reference?"); 7835 assert(BaseTy->castAs<RecordType>()->getDecl()->getCanonicalDecl() == 7836 FD->getParent()->getCanonicalDecl() && "record / field mismatch"); 7837 7838 // Note: there is no lvalue base here. But this case should only ever 7839 // happen in C or in C++98, where we cannot be evaluating a constexpr 7840 // constructor, which is the only case the base matters. 7841 CompleteObject Obj(APValue::LValueBase(), &Val, BaseTy); 7842 SubobjectDesignator Designator(BaseTy); 7843 Designator.addDeclUnchecked(FD); 7844 7845 APValue Result; 7846 return extractSubobject(Info, E, Obj, Designator, Result) && 7847 DerivedSuccess(Result, E); 7848 } 7849 7850 bool VisitExtVectorElementExpr(const ExtVectorElementExpr *E) { 7851 APValue Val; 7852 if (!Evaluate(Val, Info, E->getBase())) 7853 return false; 7854 7855 if (Val.isVector()) { 7856 SmallVector<uint32_t, 4> Indices; 7857 E->getEncodedElementAccess(Indices); 7858 if (Indices.size() == 1) { 7859 // Return scalar. 7860 return DerivedSuccess(Val.getVectorElt(Indices[0]), E); 7861 } else { 7862 // Construct new APValue vector. 7863 SmallVector<APValue, 4> Elts; 7864 for (unsigned I = 0; I < Indices.size(); ++I) { 7865 Elts.push_back(Val.getVectorElt(Indices[I])); 7866 } 7867 APValue VecResult(Elts.data(), Indices.size()); 7868 return DerivedSuccess(VecResult, E); 7869 } 7870 } 7871 7872 return false; 7873 } 7874 7875 bool VisitCastExpr(const CastExpr *E) { 7876 switch (E->getCastKind()) { 7877 default: 7878 break; 7879 7880 case CK_AtomicToNonAtomic: { 7881 APValue AtomicVal; 7882 // This does not need to be done in place even for class/array types: 7883 // atomic-to-non-atomic conversion implies copying the object 7884 // representation. 7885 if (!Evaluate(AtomicVal, Info, E->getSubExpr())) 7886 return false; 7887 return DerivedSuccess(AtomicVal, E); 7888 } 7889 7890 case CK_NoOp: 7891 case CK_UserDefinedConversion: 7892 return StmtVisitorTy::Visit(E->getSubExpr()); 7893 7894 case CK_LValueToRValue: { 7895 LValue LVal; 7896 if (!EvaluateLValue(E->getSubExpr(), LVal, Info)) 7897 return false; 7898 APValue RVal; 7899 // Note, we use the subexpression's type in order to retain cv-qualifiers. 7900 if (!handleLValueToRValueConversion(Info, E, E->getSubExpr()->getType(), 7901 LVal, RVal)) 7902 return false; 7903 return DerivedSuccess(RVal, E); 7904 } 7905 case CK_LValueToRValueBitCast: { 7906 APValue DestValue, SourceValue; 7907 if (!Evaluate(SourceValue, Info, E->getSubExpr())) 7908 return false; 7909 if (!handleLValueToRValueBitCast(Info, DestValue, SourceValue, E)) 7910 return false; 7911 return DerivedSuccess(DestValue, E); 7912 } 7913 7914 case CK_AddressSpaceConversion: { 7915 APValue Value; 7916 if (!Evaluate(Value, Info, E->getSubExpr())) 7917 return false; 7918 return DerivedSuccess(Value, E); 7919 } 7920 } 7921 7922 return Error(E); 7923 } 7924 7925 bool VisitUnaryPostInc(const UnaryOperator *UO) { 7926 return VisitUnaryPostIncDec(UO); 7927 } 7928 bool VisitUnaryPostDec(const UnaryOperator *UO) { 7929 return VisitUnaryPostIncDec(UO); 7930 } 7931 bool VisitUnaryPostIncDec(const UnaryOperator *UO) { 7932 if (!Info.getLangOpts().CPlusPlus14 && !Info.keepEvaluatingAfterFailure()) 7933 return Error(UO); 7934 7935 LValue LVal; 7936 if (!EvaluateLValue(UO->getSubExpr(), LVal, Info)) 7937 return false; 7938 APValue RVal; 7939 if (!handleIncDec(this->Info, UO, LVal, UO->getSubExpr()->getType(), 7940 UO->isIncrementOp(), &RVal)) 7941 return false; 7942 return DerivedSuccess(RVal, UO); 7943 } 7944 7945 bool VisitStmtExpr(const StmtExpr *E) { 7946 // We will have checked the full-expressions inside the statement expression 7947 // when they were completed, and don't need to check them again now. 7948 llvm::SaveAndRestore<bool> NotCheckingForUB( 7949 Info.CheckingForUndefinedBehavior, false); 7950 7951 const CompoundStmt *CS = E->getSubStmt(); 7952 if (CS->body_empty()) 7953 return true; 7954 7955 BlockScopeRAII Scope(Info); 7956 for (CompoundStmt::const_body_iterator BI = CS->body_begin(), 7957 BE = CS->body_end(); 7958 /**/; ++BI) { 7959 if (BI + 1 == BE) { 7960 const Expr *FinalExpr = dyn_cast<Expr>(*BI); 7961 if (!FinalExpr) { 7962 Info.FFDiag((*BI)->getBeginLoc(), 7963 diag::note_constexpr_stmt_expr_unsupported); 7964 return false; 7965 } 7966 return this->Visit(FinalExpr) && Scope.destroy(); 7967 } 7968 7969 APValue ReturnValue; 7970 StmtResult Result = { ReturnValue, nullptr }; 7971 EvalStmtResult ESR = EvaluateStmt(Result, Info, *BI); 7972 if (ESR != ESR_Succeeded) { 7973 // FIXME: If the statement-expression terminated due to 'return', 7974 // 'break', or 'continue', it would be nice to propagate that to 7975 // the outer statement evaluation rather than bailing out. 7976 if (ESR != ESR_Failed) 7977 Info.FFDiag((*BI)->getBeginLoc(), 7978 diag::note_constexpr_stmt_expr_unsupported); 7979 return false; 7980 } 7981 } 7982 7983 llvm_unreachable("Return from function from the loop above."); 7984 } 7985 7986 /// Visit a value which is evaluated, but whose value is ignored. 7987 void VisitIgnoredValue(const Expr *E) { 7988 EvaluateIgnoredValue(Info, E); 7989 } 7990 7991 /// Potentially visit a MemberExpr's base expression. 7992 void VisitIgnoredBaseExpression(const Expr *E) { 7993 // While MSVC doesn't evaluate the base expression, it does diagnose the 7994 // presence of side-effecting behavior. 7995 if (Info.getLangOpts().MSVCCompat && !E->HasSideEffects(Info.Ctx)) 7996 return; 7997 VisitIgnoredValue(E); 7998 } 7999 }; 8000 8001 } // namespace 8002 8003 //===----------------------------------------------------------------------===// 8004 // Common base class for lvalue and temporary evaluation. 8005 //===----------------------------------------------------------------------===// 8006 namespace { 8007 template<class Derived> 8008 class LValueExprEvaluatorBase 8009 : public ExprEvaluatorBase<Derived> { 8010 protected: 8011 LValue &Result; 8012 bool InvalidBaseOK; 8013 typedef LValueExprEvaluatorBase LValueExprEvaluatorBaseTy; 8014 typedef ExprEvaluatorBase<Derived> ExprEvaluatorBaseTy; 8015 8016 bool Success(APValue::LValueBase B) { 8017 Result.set(B); 8018 return true; 8019 } 8020 8021 bool evaluatePointer(const Expr *E, LValue &Result) { 8022 return EvaluatePointer(E, Result, this->Info, InvalidBaseOK); 8023 } 8024 8025 public: 8026 LValueExprEvaluatorBase(EvalInfo &Info, LValue &Result, bool InvalidBaseOK) 8027 : ExprEvaluatorBaseTy(Info), Result(Result), 8028 InvalidBaseOK(InvalidBaseOK) {} 8029 8030 bool Success(const APValue &V, const Expr *E) { 8031 Result.setFrom(this->Info.Ctx, V); 8032 return true; 8033 } 8034 8035 bool VisitMemberExpr(const MemberExpr *E) { 8036 // Handle non-static data members. 8037 QualType BaseTy; 8038 bool EvalOK; 8039 if (E->isArrow()) { 8040 EvalOK = evaluatePointer(E->getBase(), Result); 8041 BaseTy = E->getBase()->getType()->castAs<PointerType>()->getPointeeType(); 8042 } else if (E->getBase()->isPRValue()) { 8043 assert(E->getBase()->getType()->isRecordType()); 8044 EvalOK = EvaluateTemporary(E->getBase(), Result, this->Info); 8045 BaseTy = E->getBase()->getType(); 8046 } else { 8047 EvalOK = this->Visit(E->getBase()); 8048 BaseTy = E->getBase()->getType(); 8049 } 8050 if (!EvalOK) { 8051 if (!InvalidBaseOK) 8052 return false; 8053 Result.setInvalid(E); 8054 return true; 8055 } 8056 8057 const ValueDecl *MD = E->getMemberDecl(); 8058 if (const FieldDecl *FD = dyn_cast<FieldDecl>(E->getMemberDecl())) { 8059 assert(BaseTy->castAs<RecordType>()->getDecl()->getCanonicalDecl() == 8060 FD->getParent()->getCanonicalDecl() && "record / field mismatch"); 8061 (void)BaseTy; 8062 if (!HandleLValueMember(this->Info, E, Result, FD)) 8063 return false; 8064 } else if (const IndirectFieldDecl *IFD = dyn_cast<IndirectFieldDecl>(MD)) { 8065 if (!HandleLValueIndirectMember(this->Info, E, Result, IFD)) 8066 return false; 8067 } else 8068 return this->Error(E); 8069 8070 if (MD->getType()->isReferenceType()) { 8071 APValue RefValue; 8072 if (!handleLValueToRValueConversion(this->Info, E, MD->getType(), Result, 8073 RefValue)) 8074 return false; 8075 return Success(RefValue, E); 8076 } 8077 return true; 8078 } 8079 8080 bool VisitBinaryOperator(const BinaryOperator *E) { 8081 switch (E->getOpcode()) { 8082 default: 8083 return ExprEvaluatorBaseTy::VisitBinaryOperator(E); 8084 8085 case BO_PtrMemD: 8086 case BO_PtrMemI: 8087 return HandleMemberPointerAccess(this->Info, E, Result); 8088 } 8089 } 8090 8091 bool VisitCastExpr(const CastExpr *E) { 8092 switch (E->getCastKind()) { 8093 default: 8094 return ExprEvaluatorBaseTy::VisitCastExpr(E); 8095 8096 case CK_DerivedToBase: 8097 case CK_UncheckedDerivedToBase: 8098 if (!this->Visit(E->getSubExpr())) 8099 return false; 8100 8101 // Now figure out the necessary offset to add to the base LV to get from 8102 // the derived class to the base class. 8103 return HandleLValueBasePath(this->Info, E, E->getSubExpr()->getType(), 8104 Result); 8105 } 8106 } 8107 }; 8108 } 8109 8110 //===----------------------------------------------------------------------===// 8111 // LValue Evaluation 8112 // 8113 // This is used for evaluating lvalues (in C and C++), xvalues (in C++11), 8114 // function designators (in C), decl references to void objects (in C), and 8115 // temporaries (if building with -Wno-address-of-temporary). 8116 // 8117 // LValue evaluation produces values comprising a base expression of one of the 8118 // following types: 8119 // - Declarations 8120 // * VarDecl 8121 // * FunctionDecl 8122 // - Literals 8123 // * CompoundLiteralExpr in C (and in global scope in C++) 8124 // * StringLiteral 8125 // * PredefinedExpr 8126 // * ObjCStringLiteralExpr 8127 // * ObjCEncodeExpr 8128 // * AddrLabelExpr 8129 // * BlockExpr 8130 // * CallExpr for a MakeStringConstant builtin 8131 // - typeid(T) expressions, as TypeInfoLValues 8132 // - Locals and temporaries 8133 // * MaterializeTemporaryExpr 8134 // * Any Expr, with a CallIndex indicating the function in which the temporary 8135 // was evaluated, for cases where the MaterializeTemporaryExpr is missing 8136 // from the AST (FIXME). 8137 // * A MaterializeTemporaryExpr that has static storage duration, with no 8138 // CallIndex, for a lifetime-extended temporary. 8139 // * The ConstantExpr that is currently being evaluated during evaluation of an 8140 // immediate invocation. 8141 // plus an offset in bytes. 8142 //===----------------------------------------------------------------------===// 8143 namespace { 8144 class LValueExprEvaluator 8145 : public LValueExprEvaluatorBase<LValueExprEvaluator> { 8146 public: 8147 LValueExprEvaluator(EvalInfo &Info, LValue &Result, bool InvalidBaseOK) : 8148 LValueExprEvaluatorBaseTy(Info, Result, InvalidBaseOK) {} 8149 8150 bool VisitVarDecl(const Expr *E, const VarDecl *VD); 8151 bool VisitUnaryPreIncDec(const UnaryOperator *UO); 8152 8153 bool VisitCallExpr(const CallExpr *E); 8154 bool VisitDeclRefExpr(const DeclRefExpr *E); 8155 bool VisitPredefinedExpr(const PredefinedExpr *E) { return Success(E); } 8156 bool VisitMaterializeTemporaryExpr(const MaterializeTemporaryExpr *E); 8157 bool VisitCompoundLiteralExpr(const CompoundLiteralExpr *E); 8158 bool VisitMemberExpr(const MemberExpr *E); 8159 bool VisitStringLiteral(const StringLiteral *E) { return Success(E); } 8160 bool VisitObjCEncodeExpr(const ObjCEncodeExpr *E) { return Success(E); } 8161 bool VisitCXXTypeidExpr(const CXXTypeidExpr *E); 8162 bool VisitCXXUuidofExpr(const CXXUuidofExpr *E); 8163 bool VisitArraySubscriptExpr(const ArraySubscriptExpr *E); 8164 bool VisitUnaryDeref(const UnaryOperator *E); 8165 bool VisitUnaryReal(const UnaryOperator *E); 8166 bool VisitUnaryImag(const UnaryOperator *E); 8167 bool VisitUnaryPreInc(const UnaryOperator *UO) { 8168 return VisitUnaryPreIncDec(UO); 8169 } 8170 bool VisitUnaryPreDec(const UnaryOperator *UO) { 8171 return VisitUnaryPreIncDec(UO); 8172 } 8173 bool VisitBinAssign(const BinaryOperator *BO); 8174 bool VisitCompoundAssignOperator(const CompoundAssignOperator *CAO); 8175 8176 bool VisitCastExpr(const CastExpr *E) { 8177 switch (E->getCastKind()) { 8178 default: 8179 return LValueExprEvaluatorBaseTy::VisitCastExpr(E); 8180 8181 case CK_LValueBitCast: 8182 this->CCEDiag(E, diag::note_constexpr_invalid_cast) << 2; 8183 if (!Visit(E->getSubExpr())) 8184 return false; 8185 Result.Designator.setInvalid(); 8186 return true; 8187 8188 case CK_BaseToDerived: 8189 if (!Visit(E->getSubExpr())) 8190 return false; 8191 return HandleBaseToDerivedCast(Info, E, Result); 8192 8193 case CK_Dynamic: 8194 if (!Visit(E->getSubExpr())) 8195 return false; 8196 return HandleDynamicCast(Info, cast<ExplicitCastExpr>(E), Result); 8197 } 8198 } 8199 }; 8200 } // end anonymous namespace 8201 8202 /// Evaluate an expression as an lvalue. This can be legitimately called on 8203 /// expressions which are not glvalues, in three cases: 8204 /// * function designators in C, and 8205 /// * "extern void" objects 8206 /// * @selector() expressions in Objective-C 8207 static bool EvaluateLValue(const Expr *E, LValue &Result, EvalInfo &Info, 8208 bool InvalidBaseOK) { 8209 assert(!E->isValueDependent()); 8210 assert(E->isGLValue() || E->getType()->isFunctionType() || 8211 E->getType()->isVoidType() || isa<ObjCSelectorExpr>(E)); 8212 return LValueExprEvaluator(Info, Result, InvalidBaseOK).Visit(E); 8213 } 8214 8215 bool LValueExprEvaluator::VisitDeclRefExpr(const DeclRefExpr *E) { 8216 const NamedDecl *D = E->getDecl(); 8217 if (isa<FunctionDecl, MSGuidDecl, TemplateParamObjectDecl, 8218 UnnamedGlobalConstantDecl>(D)) 8219 return Success(cast<ValueDecl>(D)); 8220 if (const VarDecl *VD = dyn_cast<VarDecl>(D)) 8221 return VisitVarDecl(E, VD); 8222 if (const BindingDecl *BD = dyn_cast<BindingDecl>(D)) 8223 return Visit(BD->getBinding()); 8224 return Error(E); 8225 } 8226 8227 8228 bool LValueExprEvaluator::VisitVarDecl(const Expr *E, const VarDecl *VD) { 8229 8230 // If we are within a lambda's call operator, check whether the 'VD' referred 8231 // to within 'E' actually represents a lambda-capture that maps to a 8232 // data-member/field within the closure object, and if so, evaluate to the 8233 // field or what the field refers to. 8234 if (Info.CurrentCall && isLambdaCallOperator(Info.CurrentCall->Callee) && 8235 isa<DeclRefExpr>(E) && 8236 cast<DeclRefExpr>(E)->refersToEnclosingVariableOrCapture()) { 8237 // We don't always have a complete capture-map when checking or inferring if 8238 // the function call operator meets the requirements of a constexpr function 8239 // - but we don't need to evaluate the captures to determine constexprness 8240 // (dcl.constexpr C++17). 8241 if (Info.checkingPotentialConstantExpression()) 8242 return false; 8243 8244 if (auto *FD = Info.CurrentCall->LambdaCaptureFields.lookup(VD)) { 8245 // Start with 'Result' referring to the complete closure object... 8246 Result = *Info.CurrentCall->This; 8247 // ... then update it to refer to the field of the closure object 8248 // that represents the capture. 8249 if (!HandleLValueMember(Info, E, Result, FD)) 8250 return false; 8251 // And if the field is of reference type, update 'Result' to refer to what 8252 // the field refers to. 8253 if (FD->getType()->isReferenceType()) { 8254 APValue RVal; 8255 if (!handleLValueToRValueConversion(Info, E, FD->getType(), Result, 8256 RVal)) 8257 return false; 8258 Result.setFrom(Info.Ctx, RVal); 8259 } 8260 return true; 8261 } 8262 } 8263 8264 CallStackFrame *Frame = nullptr; 8265 unsigned Version = 0; 8266 if (VD->hasLocalStorage()) { 8267 // Only if a local variable was declared in the function currently being 8268 // evaluated, do we expect to be able to find its value in the current 8269 // frame. (Otherwise it was likely declared in an enclosing context and 8270 // could either have a valid evaluatable value (for e.g. a constexpr 8271 // variable) or be ill-formed (and trigger an appropriate evaluation 8272 // diagnostic)). 8273 CallStackFrame *CurrFrame = Info.CurrentCall; 8274 if (CurrFrame->Callee && CurrFrame->Callee->Equals(VD->getDeclContext())) { 8275 // Function parameters are stored in some caller's frame. (Usually the 8276 // immediate caller, but for an inherited constructor they may be more 8277 // distant.) 8278 if (auto *PVD = dyn_cast<ParmVarDecl>(VD)) { 8279 if (CurrFrame->Arguments) { 8280 VD = CurrFrame->Arguments.getOrigParam(PVD); 8281 Frame = 8282 Info.getCallFrameAndDepth(CurrFrame->Arguments.CallIndex).first; 8283 Version = CurrFrame->Arguments.Version; 8284 } 8285 } else { 8286 Frame = CurrFrame; 8287 Version = CurrFrame->getCurrentTemporaryVersion(VD); 8288 } 8289 } 8290 } 8291 8292 if (!VD->getType()->isReferenceType()) { 8293 if (Frame) { 8294 Result.set({VD, Frame->Index, Version}); 8295 return true; 8296 } 8297 return Success(VD); 8298 } 8299 8300 if (!Info.getLangOpts().CPlusPlus11) { 8301 Info.CCEDiag(E, diag::note_constexpr_ltor_non_integral, 1) 8302 << VD << VD->getType(); 8303 Info.Note(VD->getLocation(), diag::note_declared_at); 8304 } 8305 8306 APValue *V; 8307 if (!evaluateVarDeclInit(Info, E, VD, Frame, Version, V)) 8308 return false; 8309 if (!V->hasValue()) { 8310 // FIXME: Is it possible for V to be indeterminate here? If so, we should 8311 // adjust the diagnostic to say that. 8312 if (!Info.checkingPotentialConstantExpression()) 8313 Info.FFDiag(E, diag::note_constexpr_use_uninit_reference); 8314 return false; 8315 } 8316 return Success(*V, E); 8317 } 8318 8319 bool LValueExprEvaluator::VisitCallExpr(const CallExpr *E) { 8320 switch (E->getBuiltinCallee()) { 8321 case Builtin::BIas_const: 8322 case Builtin::BIforward: 8323 case Builtin::BImove: 8324 case Builtin::BImove_if_noexcept: 8325 if (cast<FunctionDecl>(E->getCalleeDecl())->isConstexpr()) 8326 return Visit(E->getArg(0)); 8327 break; 8328 } 8329 8330 return ExprEvaluatorBaseTy::VisitCallExpr(E); 8331 } 8332 8333 bool LValueExprEvaluator::VisitMaterializeTemporaryExpr( 8334 const MaterializeTemporaryExpr *E) { 8335 // Walk through the expression to find the materialized temporary itself. 8336 SmallVector<const Expr *, 2> CommaLHSs; 8337 SmallVector<SubobjectAdjustment, 2> Adjustments; 8338 const Expr *Inner = 8339 E->getSubExpr()->skipRValueSubobjectAdjustments(CommaLHSs, Adjustments); 8340 8341 // If we passed any comma operators, evaluate their LHSs. 8342 for (unsigned I = 0, N = CommaLHSs.size(); I != N; ++I) 8343 if (!EvaluateIgnoredValue(Info, CommaLHSs[I])) 8344 return false; 8345 8346 // A materialized temporary with static storage duration can appear within the 8347 // result of a constant expression evaluation, so we need to preserve its 8348 // value for use outside this evaluation. 8349 APValue *Value; 8350 if (E->getStorageDuration() == SD_Static) { 8351 // FIXME: What about SD_Thread? 8352 Value = E->getOrCreateValue(true); 8353 *Value = APValue(); 8354 Result.set(E); 8355 } else { 8356 Value = &Info.CurrentCall->createTemporary( 8357 E, E->getType(), 8358 E->getStorageDuration() == SD_FullExpression ? ScopeKind::FullExpression 8359 : ScopeKind::Block, 8360 Result); 8361 } 8362 8363 QualType Type = Inner->getType(); 8364 8365 // Materialize the temporary itself. 8366 if (!EvaluateInPlace(*Value, Info, Result, Inner)) { 8367 *Value = APValue(); 8368 return false; 8369 } 8370 8371 // Adjust our lvalue to refer to the desired subobject. 8372 for (unsigned I = Adjustments.size(); I != 0; /**/) { 8373 --I; 8374 switch (Adjustments[I].Kind) { 8375 case SubobjectAdjustment::DerivedToBaseAdjustment: 8376 if (!HandleLValueBasePath(Info, Adjustments[I].DerivedToBase.BasePath, 8377 Type, Result)) 8378 return false; 8379 Type = Adjustments[I].DerivedToBase.BasePath->getType(); 8380 break; 8381 8382 case SubobjectAdjustment::FieldAdjustment: 8383 if (!HandleLValueMember(Info, E, Result, Adjustments[I].Field)) 8384 return false; 8385 Type = Adjustments[I].Field->getType(); 8386 break; 8387 8388 case SubobjectAdjustment::MemberPointerAdjustment: 8389 if (!HandleMemberPointerAccess(this->Info, Type, Result, 8390 Adjustments[I].Ptr.RHS)) 8391 return false; 8392 Type = Adjustments[I].Ptr.MPT->getPointeeType(); 8393 break; 8394 } 8395 } 8396 8397 return true; 8398 } 8399 8400 bool 8401 LValueExprEvaluator::VisitCompoundLiteralExpr(const CompoundLiteralExpr *E) { 8402 assert((!Info.getLangOpts().CPlusPlus || E->isFileScope()) && 8403 "lvalue compound literal in c++?"); 8404 // Defer visiting the literal until the lvalue-to-rvalue conversion. We can 8405 // only see this when folding in C, so there's no standard to follow here. 8406 return Success(E); 8407 } 8408 8409 bool LValueExprEvaluator::VisitCXXTypeidExpr(const CXXTypeidExpr *E) { 8410 TypeInfoLValue TypeInfo; 8411 8412 if (!E->isPotentiallyEvaluated()) { 8413 if (E->isTypeOperand()) 8414 TypeInfo = TypeInfoLValue(E->getTypeOperand(Info.Ctx).getTypePtr()); 8415 else 8416 TypeInfo = TypeInfoLValue(E->getExprOperand()->getType().getTypePtr()); 8417 } else { 8418 if (!Info.Ctx.getLangOpts().CPlusPlus20) { 8419 Info.CCEDiag(E, diag::note_constexpr_typeid_polymorphic) 8420 << E->getExprOperand()->getType() 8421 << E->getExprOperand()->getSourceRange(); 8422 } 8423 8424 if (!Visit(E->getExprOperand())) 8425 return false; 8426 8427 Optional<DynamicType> DynType = 8428 ComputeDynamicType(Info, E, Result, AK_TypeId); 8429 if (!DynType) 8430 return false; 8431 8432 TypeInfo = 8433 TypeInfoLValue(Info.Ctx.getRecordType(DynType->Type).getTypePtr()); 8434 } 8435 8436 return Success(APValue::LValueBase::getTypeInfo(TypeInfo, E->getType())); 8437 } 8438 8439 bool LValueExprEvaluator::VisitCXXUuidofExpr(const CXXUuidofExpr *E) { 8440 return Success(E->getGuidDecl()); 8441 } 8442 8443 bool LValueExprEvaluator::VisitMemberExpr(const MemberExpr *E) { 8444 // Handle static data members. 8445 if (const VarDecl *VD = dyn_cast<VarDecl>(E->getMemberDecl())) { 8446 VisitIgnoredBaseExpression(E->getBase()); 8447 return VisitVarDecl(E, VD); 8448 } 8449 8450 // Handle static member functions. 8451 if (const CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(E->getMemberDecl())) { 8452 if (MD->isStatic()) { 8453 VisitIgnoredBaseExpression(E->getBase()); 8454 return Success(MD); 8455 } 8456 } 8457 8458 // Handle non-static data members. 8459 return LValueExprEvaluatorBaseTy::VisitMemberExpr(E); 8460 } 8461 8462 bool LValueExprEvaluator::VisitArraySubscriptExpr(const ArraySubscriptExpr *E) { 8463 // FIXME: Deal with vectors as array subscript bases. 8464 if (E->getBase()->getType()->isVectorType() || 8465 E->getBase()->getType()->isVLSTBuiltinType()) 8466 return Error(E); 8467 8468 APSInt Index; 8469 bool Success = true; 8470 8471 // C++17's rules require us to evaluate the LHS first, regardless of which 8472 // side is the base. 8473 for (const Expr *SubExpr : {E->getLHS(), E->getRHS()}) { 8474 if (SubExpr == E->getBase() ? !evaluatePointer(SubExpr, Result) 8475 : !EvaluateInteger(SubExpr, Index, Info)) { 8476 if (!Info.noteFailure()) 8477 return false; 8478 Success = false; 8479 } 8480 } 8481 8482 return Success && 8483 HandleLValueArrayAdjustment(Info, E, Result, E->getType(), Index); 8484 } 8485 8486 bool LValueExprEvaluator::VisitUnaryDeref(const UnaryOperator *E) { 8487 return evaluatePointer(E->getSubExpr(), Result); 8488 } 8489 8490 bool LValueExprEvaluator::VisitUnaryReal(const UnaryOperator *E) { 8491 if (!Visit(E->getSubExpr())) 8492 return false; 8493 // __real is a no-op on scalar lvalues. 8494 if (E->getSubExpr()->getType()->isAnyComplexType()) 8495 HandleLValueComplexElement(Info, E, Result, E->getType(), false); 8496 return true; 8497 } 8498 8499 bool LValueExprEvaluator::VisitUnaryImag(const UnaryOperator *E) { 8500 assert(E->getSubExpr()->getType()->isAnyComplexType() && 8501 "lvalue __imag__ on scalar?"); 8502 if (!Visit(E->getSubExpr())) 8503 return false; 8504 HandleLValueComplexElement(Info, E, Result, E->getType(), true); 8505 return true; 8506 } 8507 8508 bool LValueExprEvaluator::VisitUnaryPreIncDec(const UnaryOperator *UO) { 8509 if (!Info.getLangOpts().CPlusPlus14 && !Info.keepEvaluatingAfterFailure()) 8510 return Error(UO); 8511 8512 if (!this->Visit(UO->getSubExpr())) 8513 return false; 8514 8515 return handleIncDec( 8516 this->Info, UO, Result, UO->getSubExpr()->getType(), 8517 UO->isIncrementOp(), nullptr); 8518 } 8519 8520 bool LValueExprEvaluator::VisitCompoundAssignOperator( 8521 const CompoundAssignOperator *CAO) { 8522 if (!Info.getLangOpts().CPlusPlus14 && !Info.keepEvaluatingAfterFailure()) 8523 return Error(CAO); 8524 8525 bool Success = true; 8526 8527 // C++17 onwards require that we evaluate the RHS first. 8528 APValue RHS; 8529 if (!Evaluate(RHS, this->Info, CAO->getRHS())) { 8530 if (!Info.noteFailure()) 8531 return false; 8532 Success = false; 8533 } 8534 8535 // The overall lvalue result is the result of evaluating the LHS. 8536 if (!this->Visit(CAO->getLHS()) || !Success) 8537 return false; 8538 8539 return handleCompoundAssignment( 8540 this->Info, CAO, 8541 Result, CAO->getLHS()->getType(), CAO->getComputationLHSType(), 8542 CAO->getOpForCompoundAssignment(CAO->getOpcode()), RHS); 8543 } 8544 8545 bool LValueExprEvaluator::VisitBinAssign(const BinaryOperator *E) { 8546 if (!Info.getLangOpts().CPlusPlus14 && !Info.keepEvaluatingAfterFailure()) 8547 return Error(E); 8548 8549 bool Success = true; 8550 8551 // C++17 onwards require that we evaluate the RHS first. 8552 APValue NewVal; 8553 if (!Evaluate(NewVal, this->Info, E->getRHS())) { 8554 if (!Info.noteFailure()) 8555 return false; 8556 Success = false; 8557 } 8558 8559 if (!this->Visit(E->getLHS()) || !Success) 8560 return false; 8561 8562 if (Info.getLangOpts().CPlusPlus20 && 8563 !HandleUnionActiveMemberChange(Info, E->getLHS(), Result)) 8564 return false; 8565 8566 return handleAssignment(this->Info, E, Result, E->getLHS()->getType(), 8567 NewVal); 8568 } 8569 8570 //===----------------------------------------------------------------------===// 8571 // Pointer Evaluation 8572 //===----------------------------------------------------------------------===// 8573 8574 /// Attempts to compute the number of bytes available at the pointer 8575 /// returned by a function with the alloc_size attribute. Returns true if we 8576 /// were successful. Places an unsigned number into `Result`. 8577 /// 8578 /// This expects the given CallExpr to be a call to a function with an 8579 /// alloc_size attribute. 8580 static bool getBytesReturnedByAllocSizeCall(const ASTContext &Ctx, 8581 const CallExpr *Call, 8582 llvm::APInt &Result) { 8583 const AllocSizeAttr *AllocSize = getAllocSizeAttr(Call); 8584 8585 assert(AllocSize && AllocSize->getElemSizeParam().isValid()); 8586 unsigned SizeArgNo = AllocSize->getElemSizeParam().getASTIndex(); 8587 unsigned BitsInSizeT = Ctx.getTypeSize(Ctx.getSizeType()); 8588 if (Call->getNumArgs() <= SizeArgNo) 8589 return false; 8590 8591 auto EvaluateAsSizeT = [&](const Expr *E, APSInt &Into) { 8592 Expr::EvalResult ExprResult; 8593 if (!E->EvaluateAsInt(ExprResult, Ctx, Expr::SE_AllowSideEffects)) 8594 return false; 8595 Into = ExprResult.Val.getInt(); 8596 if (Into.isNegative() || !Into.isIntN(BitsInSizeT)) 8597 return false; 8598 Into = Into.zext(BitsInSizeT); 8599 return true; 8600 }; 8601 8602 APSInt SizeOfElem; 8603 if (!EvaluateAsSizeT(Call->getArg(SizeArgNo), SizeOfElem)) 8604 return false; 8605 8606 if (!AllocSize->getNumElemsParam().isValid()) { 8607 Result = std::move(SizeOfElem); 8608 return true; 8609 } 8610 8611 APSInt NumberOfElems; 8612 unsigned NumArgNo = AllocSize->getNumElemsParam().getASTIndex(); 8613 if (!EvaluateAsSizeT(Call->getArg(NumArgNo), NumberOfElems)) 8614 return false; 8615 8616 bool Overflow; 8617 llvm::APInt BytesAvailable = SizeOfElem.umul_ov(NumberOfElems, Overflow); 8618 if (Overflow) 8619 return false; 8620 8621 Result = std::move(BytesAvailable); 8622 return true; 8623 } 8624 8625 /// Convenience function. LVal's base must be a call to an alloc_size 8626 /// function. 8627 static bool getBytesReturnedByAllocSizeCall(const ASTContext &Ctx, 8628 const LValue &LVal, 8629 llvm::APInt &Result) { 8630 assert(isBaseAnAllocSizeCall(LVal.getLValueBase()) && 8631 "Can't get the size of a non alloc_size function"); 8632 const auto *Base = LVal.getLValueBase().get<const Expr *>(); 8633 const CallExpr *CE = tryUnwrapAllocSizeCall(Base); 8634 return getBytesReturnedByAllocSizeCall(Ctx, CE, Result); 8635 } 8636 8637 /// Attempts to evaluate the given LValueBase as the result of a call to 8638 /// a function with the alloc_size attribute. If it was possible to do so, this 8639 /// function will return true, make Result's Base point to said function call, 8640 /// and mark Result's Base as invalid. 8641 static bool evaluateLValueAsAllocSize(EvalInfo &Info, APValue::LValueBase Base, 8642 LValue &Result) { 8643 if (Base.isNull()) 8644 return false; 8645 8646 // Because we do no form of static analysis, we only support const variables. 8647 // 8648 // Additionally, we can't support parameters, nor can we support static 8649 // variables (in the latter case, use-before-assign isn't UB; in the former, 8650 // we have no clue what they'll be assigned to). 8651 const auto *VD = 8652 dyn_cast_or_null<VarDecl>(Base.dyn_cast<const ValueDecl *>()); 8653 if (!VD || !VD->isLocalVarDecl() || !VD->getType().isConstQualified()) 8654 return false; 8655 8656 const Expr *Init = VD->getAnyInitializer(); 8657 if (!Init || Init->getType().isNull()) 8658 return false; 8659 8660 const Expr *E = Init->IgnoreParens(); 8661 if (!tryUnwrapAllocSizeCall(E)) 8662 return false; 8663 8664 // Store E instead of E unwrapped so that the type of the LValue's base is 8665 // what the user wanted. 8666 Result.setInvalid(E); 8667 8668 QualType Pointee = E->getType()->castAs<PointerType>()->getPointeeType(); 8669 Result.addUnsizedArray(Info, E, Pointee); 8670 return true; 8671 } 8672 8673 namespace { 8674 class PointerExprEvaluator 8675 : public ExprEvaluatorBase<PointerExprEvaluator> { 8676 LValue &Result; 8677 bool InvalidBaseOK; 8678 8679 bool Success(const Expr *E) { 8680 Result.set(E); 8681 return true; 8682 } 8683 8684 bool evaluateLValue(const Expr *E, LValue &Result) { 8685 return EvaluateLValue(E, Result, Info, InvalidBaseOK); 8686 } 8687 8688 bool evaluatePointer(const Expr *E, LValue &Result) { 8689 return EvaluatePointer(E, Result, Info, InvalidBaseOK); 8690 } 8691 8692 bool visitNonBuiltinCallExpr(const CallExpr *E); 8693 public: 8694 8695 PointerExprEvaluator(EvalInfo &info, LValue &Result, bool InvalidBaseOK) 8696 : ExprEvaluatorBaseTy(info), Result(Result), 8697 InvalidBaseOK(InvalidBaseOK) {} 8698 8699 bool Success(const APValue &V, const Expr *E) { 8700 Result.setFrom(Info.Ctx, V); 8701 return true; 8702 } 8703 bool ZeroInitialization(const Expr *E) { 8704 Result.setNull(Info.Ctx, E->getType()); 8705 return true; 8706 } 8707 8708 bool VisitBinaryOperator(const BinaryOperator *E); 8709 bool VisitCastExpr(const CastExpr* E); 8710 bool VisitUnaryAddrOf(const UnaryOperator *E); 8711 bool VisitObjCStringLiteral(const ObjCStringLiteral *E) 8712 { return Success(E); } 8713 bool VisitObjCBoxedExpr(const ObjCBoxedExpr *E) { 8714 if (E->isExpressibleAsConstantInitializer()) 8715 return Success(E); 8716 if (Info.noteFailure()) 8717 EvaluateIgnoredValue(Info, E->getSubExpr()); 8718 return Error(E); 8719 } 8720 bool VisitAddrLabelExpr(const AddrLabelExpr *E) 8721 { return Success(E); } 8722 bool VisitCallExpr(const CallExpr *E); 8723 bool VisitBuiltinCallExpr(const CallExpr *E, unsigned BuiltinOp); 8724 bool VisitBlockExpr(const BlockExpr *E) { 8725 if (!E->getBlockDecl()->hasCaptures()) 8726 return Success(E); 8727 return Error(E); 8728 } 8729 bool VisitCXXThisExpr(const CXXThisExpr *E) { 8730 // Can't look at 'this' when checking a potential constant expression. 8731 if (Info.checkingPotentialConstantExpression()) 8732 return false; 8733 if (!Info.CurrentCall->This) { 8734 if (Info.getLangOpts().CPlusPlus11) 8735 Info.FFDiag(E, diag::note_constexpr_this) << E->isImplicit(); 8736 else 8737 Info.FFDiag(E); 8738 return false; 8739 } 8740 Result = *Info.CurrentCall->This; 8741 // If we are inside a lambda's call operator, the 'this' expression refers 8742 // to the enclosing '*this' object (either by value or reference) which is 8743 // either copied into the closure object's field that represents the '*this' 8744 // or refers to '*this'. 8745 if (isLambdaCallOperator(Info.CurrentCall->Callee)) { 8746 // Ensure we actually have captured 'this'. (an error will have 8747 // been previously reported if not). 8748 if (!Info.CurrentCall->LambdaThisCaptureField) 8749 return false; 8750 8751 // Update 'Result' to refer to the data member/field of the closure object 8752 // that represents the '*this' capture. 8753 if (!HandleLValueMember(Info, E, Result, 8754 Info.CurrentCall->LambdaThisCaptureField)) 8755 return false; 8756 // If we captured '*this' by reference, replace the field with its referent. 8757 if (Info.CurrentCall->LambdaThisCaptureField->getType() 8758 ->isPointerType()) { 8759 APValue RVal; 8760 if (!handleLValueToRValueConversion(Info, E, E->getType(), Result, 8761 RVal)) 8762 return false; 8763 8764 Result.setFrom(Info.Ctx, RVal); 8765 } 8766 } 8767 return true; 8768 } 8769 8770 bool VisitCXXNewExpr(const CXXNewExpr *E); 8771 8772 bool VisitSourceLocExpr(const SourceLocExpr *E) { 8773 assert(!E->isIntType() && "SourceLocExpr isn't a pointer type?"); 8774 APValue LValResult = E->EvaluateInContext( 8775 Info.Ctx, Info.CurrentCall->CurSourceLocExprScope.getDefaultExpr()); 8776 Result.setFrom(Info.Ctx, LValResult); 8777 return true; 8778 } 8779 8780 bool VisitSYCLUniqueStableNameExpr(const SYCLUniqueStableNameExpr *E) { 8781 std::string ResultStr = E->ComputeName(Info.Ctx); 8782 8783 QualType CharTy = Info.Ctx.CharTy.withConst(); 8784 APInt Size(Info.Ctx.getTypeSize(Info.Ctx.getSizeType()), 8785 ResultStr.size() + 1); 8786 QualType ArrayTy = Info.Ctx.getConstantArrayType(CharTy, Size, nullptr, 8787 ArrayType::Normal, 0); 8788 8789 StringLiteral *SL = 8790 StringLiteral::Create(Info.Ctx, ResultStr, StringLiteral::Ordinary, 8791 /*Pascal*/ false, ArrayTy, E->getLocation()); 8792 8793 evaluateLValue(SL, Result); 8794 Result.addArray(Info, E, cast<ConstantArrayType>(ArrayTy)); 8795 return true; 8796 } 8797 8798 // FIXME: Missing: @protocol, @selector 8799 }; 8800 } // end anonymous namespace 8801 8802 static bool EvaluatePointer(const Expr* E, LValue& Result, EvalInfo &Info, 8803 bool InvalidBaseOK) { 8804 assert(!E->isValueDependent()); 8805 assert(E->isPRValue() && E->getType()->hasPointerRepresentation()); 8806 return PointerExprEvaluator(Info, Result, InvalidBaseOK).Visit(E); 8807 } 8808 8809 bool PointerExprEvaluator::VisitBinaryOperator(const BinaryOperator *E) { 8810 if (E->getOpcode() != BO_Add && 8811 E->getOpcode() != BO_Sub) 8812 return ExprEvaluatorBaseTy::VisitBinaryOperator(E); 8813 8814 const Expr *PExp = E->getLHS(); 8815 const Expr *IExp = E->getRHS(); 8816 if (IExp->getType()->isPointerType()) 8817 std::swap(PExp, IExp); 8818 8819 bool EvalPtrOK = evaluatePointer(PExp, Result); 8820 if (!EvalPtrOK && !Info.noteFailure()) 8821 return false; 8822 8823 llvm::APSInt Offset; 8824 if (!EvaluateInteger(IExp, Offset, Info) || !EvalPtrOK) 8825 return false; 8826 8827 if (E->getOpcode() == BO_Sub) 8828 negateAsSigned(Offset); 8829 8830 QualType Pointee = PExp->getType()->castAs<PointerType>()->getPointeeType(); 8831 return HandleLValueArrayAdjustment(Info, E, Result, Pointee, Offset); 8832 } 8833 8834 bool PointerExprEvaluator::VisitUnaryAddrOf(const UnaryOperator *E) { 8835 return evaluateLValue(E->getSubExpr(), Result); 8836 } 8837 8838 // Is the provided decl 'std::source_location::current'? 8839 static bool IsDeclSourceLocationCurrent(const FunctionDecl *FD) { 8840 if (!FD) 8841 return false; 8842 const IdentifierInfo *FnII = FD->getIdentifier(); 8843 if (!FnII || !FnII->isStr("current")) 8844 return false; 8845 8846 const auto *RD = dyn_cast<RecordDecl>(FD->getParent()); 8847 if (!RD) 8848 return false; 8849 8850 const IdentifierInfo *ClassII = RD->getIdentifier(); 8851 return RD->isInStdNamespace() && ClassII && ClassII->isStr("source_location"); 8852 } 8853 8854 bool PointerExprEvaluator::VisitCastExpr(const CastExpr *E) { 8855 const Expr *SubExpr = E->getSubExpr(); 8856 8857 switch (E->getCastKind()) { 8858 default: 8859 break; 8860 case CK_BitCast: 8861 case CK_CPointerToObjCPointerCast: 8862 case CK_BlockPointerToObjCPointerCast: 8863 case CK_AnyPointerToBlockPointerCast: 8864 case CK_AddressSpaceConversion: 8865 if (!Visit(SubExpr)) 8866 return false; 8867 // Bitcasts to cv void* are static_casts, not reinterpret_casts, so are 8868 // permitted in constant expressions in C++11. Bitcasts from cv void* are 8869 // also static_casts, but we disallow them as a resolution to DR1312. 8870 if (!E->getType()->isVoidPointerType()) { 8871 // In some circumstances, we permit casting from void* to cv1 T*, when the 8872 // actual pointee object is actually a cv2 T. 8873 bool VoidPtrCastMaybeOK = 8874 !Result.InvalidBase && !Result.Designator.Invalid && 8875 !Result.IsNullPtr && 8876 Info.Ctx.hasSameUnqualifiedType(Result.Designator.getType(Info.Ctx), 8877 E->getType()->getPointeeType()); 8878 // 1. We'll allow it in std::allocator::allocate, and anything which that 8879 // calls. 8880 // 2. HACK 2022-03-28: Work around an issue with libstdc++'s 8881 // <source_location> header. Fixed in GCC 12 and later (2022-04-??). 8882 // We'll allow it in the body of std::source_location::current. GCC's 8883 // implementation had a parameter of type `void*`, and casts from 8884 // that back to `const __impl*` in its body. 8885 if (VoidPtrCastMaybeOK && 8886 (Info.getStdAllocatorCaller("allocate") || 8887 IsDeclSourceLocationCurrent(Info.CurrentCall->Callee))) { 8888 // Permitted. 8889 } else { 8890 Result.Designator.setInvalid(); 8891 if (SubExpr->getType()->isVoidPointerType()) 8892 CCEDiag(E, diag::note_constexpr_invalid_cast) 8893 << 3 << SubExpr->getType(); 8894 else 8895 CCEDiag(E, diag::note_constexpr_invalid_cast) << 2; 8896 } 8897 } 8898 if (E->getCastKind() == CK_AddressSpaceConversion && Result.IsNullPtr) 8899 ZeroInitialization(E); 8900 return true; 8901 8902 case CK_DerivedToBase: 8903 case CK_UncheckedDerivedToBase: 8904 if (!evaluatePointer(E->getSubExpr(), Result)) 8905 return false; 8906 if (!Result.Base && Result.Offset.isZero()) 8907 return true; 8908 8909 // Now figure out the necessary offset to add to the base LV to get from 8910 // the derived class to the base class. 8911 return HandleLValueBasePath(Info, E, E->getSubExpr()->getType()-> 8912 castAs<PointerType>()->getPointeeType(), 8913 Result); 8914 8915 case CK_BaseToDerived: 8916 if (!Visit(E->getSubExpr())) 8917 return false; 8918 if (!Result.Base && Result.Offset.isZero()) 8919 return true; 8920 return HandleBaseToDerivedCast(Info, E, Result); 8921 8922 case CK_Dynamic: 8923 if (!Visit(E->getSubExpr())) 8924 return false; 8925 return HandleDynamicCast(Info, cast<ExplicitCastExpr>(E), Result); 8926 8927 case CK_NullToPointer: 8928 VisitIgnoredValue(E->getSubExpr()); 8929 return ZeroInitialization(E); 8930 8931 case CK_IntegralToPointer: { 8932 CCEDiag(E, diag::note_constexpr_invalid_cast) << 2; 8933 8934 APValue Value; 8935 if (!EvaluateIntegerOrLValue(SubExpr, Value, Info)) 8936 break; 8937 8938 if (Value.isInt()) { 8939 unsigned Size = Info.Ctx.getTypeSize(E->getType()); 8940 uint64_t N = Value.getInt().extOrTrunc(Size).getZExtValue(); 8941 Result.Base = (Expr*)nullptr; 8942 Result.InvalidBase = false; 8943 Result.Offset = CharUnits::fromQuantity(N); 8944 Result.Designator.setInvalid(); 8945 Result.IsNullPtr = false; 8946 return true; 8947 } else { 8948 // Cast is of an lvalue, no need to change value. 8949 Result.setFrom(Info.Ctx, Value); 8950 return true; 8951 } 8952 } 8953 8954 case CK_ArrayToPointerDecay: { 8955 if (SubExpr->isGLValue()) { 8956 if (!evaluateLValue(SubExpr, Result)) 8957 return false; 8958 } else { 8959 APValue &Value = Info.CurrentCall->createTemporary( 8960 SubExpr, SubExpr->getType(), ScopeKind::FullExpression, Result); 8961 if (!EvaluateInPlace(Value, Info, Result, SubExpr)) 8962 return false; 8963 } 8964 // The result is a pointer to the first element of the array. 8965 auto *AT = Info.Ctx.getAsArrayType(SubExpr->getType()); 8966 if (auto *CAT = dyn_cast<ConstantArrayType>(AT)) 8967 Result.addArray(Info, E, CAT); 8968 else 8969 Result.addUnsizedArray(Info, E, AT->getElementType()); 8970 return true; 8971 } 8972 8973 case CK_FunctionToPointerDecay: 8974 return evaluateLValue(SubExpr, Result); 8975 8976 case CK_LValueToRValue: { 8977 LValue LVal; 8978 if (!evaluateLValue(E->getSubExpr(), LVal)) 8979 return false; 8980 8981 APValue RVal; 8982 // Note, we use the subexpression's type in order to retain cv-qualifiers. 8983 if (!handleLValueToRValueConversion(Info, E, E->getSubExpr()->getType(), 8984 LVal, RVal)) 8985 return InvalidBaseOK && 8986 evaluateLValueAsAllocSize(Info, LVal.Base, Result); 8987 return Success(RVal, E); 8988 } 8989 } 8990 8991 return ExprEvaluatorBaseTy::VisitCastExpr(E); 8992 } 8993 8994 static CharUnits GetAlignOfType(EvalInfo &Info, QualType T, 8995 UnaryExprOrTypeTrait ExprKind) { 8996 // C++ [expr.alignof]p3: 8997 // When alignof is applied to a reference type, the result is the 8998 // alignment of the referenced type. 8999 if (const ReferenceType *Ref = T->getAs<ReferenceType>()) 9000 T = Ref->getPointeeType(); 9001 9002 if (T.getQualifiers().hasUnaligned()) 9003 return CharUnits::One(); 9004 9005 const bool AlignOfReturnsPreferred = 9006 Info.Ctx.getLangOpts().getClangABICompat() <= LangOptions::ClangABI::Ver7; 9007 9008 // __alignof is defined to return the preferred alignment. 9009 // Before 8, clang returned the preferred alignment for alignof and _Alignof 9010 // as well. 9011 if (ExprKind == UETT_PreferredAlignOf || AlignOfReturnsPreferred) 9012 return Info.Ctx.toCharUnitsFromBits( 9013 Info.Ctx.getPreferredTypeAlign(T.getTypePtr())); 9014 // alignof and _Alignof are defined to return the ABI alignment. 9015 else if (ExprKind == UETT_AlignOf) 9016 return Info.Ctx.getTypeAlignInChars(T.getTypePtr()); 9017 else 9018 llvm_unreachable("GetAlignOfType on a non-alignment ExprKind"); 9019 } 9020 9021 static CharUnits GetAlignOfExpr(EvalInfo &Info, const Expr *E, 9022 UnaryExprOrTypeTrait ExprKind) { 9023 E = E->IgnoreParens(); 9024 9025 // The kinds of expressions that we have special-case logic here for 9026 // should be kept up to date with the special checks for those 9027 // expressions in Sema. 9028 9029 // alignof decl is always accepted, even if it doesn't make sense: we default 9030 // to 1 in those cases. 9031 if (const DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(E)) 9032 return Info.Ctx.getDeclAlign(DRE->getDecl(), 9033 /*RefAsPointee*/true); 9034 9035 if (const MemberExpr *ME = dyn_cast<MemberExpr>(E)) 9036 return Info.Ctx.getDeclAlign(ME->getMemberDecl(), 9037 /*RefAsPointee*/true); 9038 9039 return GetAlignOfType(Info, E->getType(), ExprKind); 9040 } 9041 9042 static CharUnits getBaseAlignment(EvalInfo &Info, const LValue &Value) { 9043 if (const auto *VD = Value.Base.dyn_cast<const ValueDecl *>()) 9044 return Info.Ctx.getDeclAlign(VD); 9045 if (const auto *E = Value.Base.dyn_cast<const Expr *>()) 9046 return GetAlignOfExpr(Info, E, UETT_AlignOf); 9047 return GetAlignOfType(Info, Value.Base.getTypeInfoType(), UETT_AlignOf); 9048 } 9049 9050 /// Evaluate the value of the alignment argument to __builtin_align_{up,down}, 9051 /// __builtin_is_aligned and __builtin_assume_aligned. 9052 static bool getAlignmentArgument(const Expr *E, QualType ForType, 9053 EvalInfo &Info, APSInt &Alignment) { 9054 if (!EvaluateInteger(E, Alignment, Info)) 9055 return false; 9056 if (Alignment < 0 || !Alignment.isPowerOf2()) { 9057 Info.FFDiag(E, diag::note_constexpr_invalid_alignment) << Alignment; 9058 return false; 9059 } 9060 unsigned SrcWidth = Info.Ctx.getIntWidth(ForType); 9061 APSInt MaxValue(APInt::getOneBitSet(SrcWidth, SrcWidth - 1)); 9062 if (APSInt::compareValues(Alignment, MaxValue) > 0) { 9063 Info.FFDiag(E, diag::note_constexpr_alignment_too_big) 9064 << MaxValue << ForType << Alignment; 9065 return false; 9066 } 9067 // Ensure both alignment and source value have the same bit width so that we 9068 // don't assert when computing the resulting value. 9069 APSInt ExtAlignment = 9070 APSInt(Alignment.zextOrTrunc(SrcWidth), /*isUnsigned=*/true); 9071 assert(APSInt::compareValues(Alignment, ExtAlignment) == 0 && 9072 "Alignment should not be changed by ext/trunc"); 9073 Alignment = ExtAlignment; 9074 assert(Alignment.getBitWidth() == SrcWidth); 9075 return true; 9076 } 9077 9078 // To be clear: this happily visits unsupported builtins. Better name welcomed. 9079 bool PointerExprEvaluator::visitNonBuiltinCallExpr(const CallExpr *E) { 9080 if (ExprEvaluatorBaseTy::VisitCallExpr(E)) 9081 return true; 9082 9083 if (!(InvalidBaseOK && getAllocSizeAttr(E))) 9084 return false; 9085 9086 Result.setInvalid(E); 9087 QualType PointeeTy = E->getType()->castAs<PointerType>()->getPointeeType(); 9088 Result.addUnsizedArray(Info, E, PointeeTy); 9089 return true; 9090 } 9091 9092 bool PointerExprEvaluator::VisitCallExpr(const CallExpr *E) { 9093 if (IsConstantCall(E)) 9094 return Success(E); 9095 9096 if (unsigned BuiltinOp = E->getBuiltinCallee()) 9097 return VisitBuiltinCallExpr(E, BuiltinOp); 9098 9099 return visitNonBuiltinCallExpr(E); 9100 } 9101 9102 // Determine if T is a character type for which we guarantee that 9103 // sizeof(T) == 1. 9104 static bool isOneByteCharacterType(QualType T) { 9105 return T->isCharType() || T->isChar8Type(); 9106 } 9107 9108 bool PointerExprEvaluator::VisitBuiltinCallExpr(const CallExpr *E, 9109 unsigned BuiltinOp) { 9110 switch (BuiltinOp) { 9111 case Builtin::BIaddressof: 9112 case Builtin::BI__addressof: 9113 case Builtin::BI__builtin_addressof: 9114 return evaluateLValue(E->getArg(0), Result); 9115 case Builtin::BI__builtin_assume_aligned: { 9116 // We need to be very careful here because: if the pointer does not have the 9117 // asserted alignment, then the behavior is undefined, and undefined 9118 // behavior is non-constant. 9119 if (!evaluatePointer(E->getArg(0), Result)) 9120 return false; 9121 9122 LValue OffsetResult(Result); 9123 APSInt Alignment; 9124 if (!getAlignmentArgument(E->getArg(1), E->getArg(0)->getType(), Info, 9125 Alignment)) 9126 return false; 9127 CharUnits Align = CharUnits::fromQuantity(Alignment.getZExtValue()); 9128 9129 if (E->getNumArgs() > 2) { 9130 APSInt Offset; 9131 if (!EvaluateInteger(E->getArg(2), Offset, Info)) 9132 return false; 9133 9134 int64_t AdditionalOffset = -Offset.getZExtValue(); 9135 OffsetResult.Offset += CharUnits::fromQuantity(AdditionalOffset); 9136 } 9137 9138 // If there is a base object, then it must have the correct alignment. 9139 if (OffsetResult.Base) { 9140 CharUnits BaseAlignment = getBaseAlignment(Info, OffsetResult); 9141 9142 if (BaseAlignment < Align) { 9143 Result.Designator.setInvalid(); 9144 // FIXME: Add support to Diagnostic for long / long long. 9145 CCEDiag(E->getArg(0), 9146 diag::note_constexpr_baa_insufficient_alignment) << 0 9147 << (unsigned)BaseAlignment.getQuantity() 9148 << (unsigned)Align.getQuantity(); 9149 return false; 9150 } 9151 } 9152 9153 // The offset must also have the correct alignment. 9154 if (OffsetResult.Offset.alignTo(Align) != OffsetResult.Offset) { 9155 Result.Designator.setInvalid(); 9156 9157 (OffsetResult.Base 9158 ? CCEDiag(E->getArg(0), 9159 diag::note_constexpr_baa_insufficient_alignment) << 1 9160 : CCEDiag(E->getArg(0), 9161 diag::note_constexpr_baa_value_insufficient_alignment)) 9162 << (int)OffsetResult.Offset.getQuantity() 9163 << (unsigned)Align.getQuantity(); 9164 return false; 9165 } 9166 9167 return true; 9168 } 9169 case Builtin::BI__builtin_align_up: 9170 case Builtin::BI__builtin_align_down: { 9171 if (!evaluatePointer(E->getArg(0), Result)) 9172 return false; 9173 APSInt Alignment; 9174 if (!getAlignmentArgument(E->getArg(1), E->getArg(0)->getType(), Info, 9175 Alignment)) 9176 return false; 9177 CharUnits BaseAlignment = getBaseAlignment(Info, Result); 9178 CharUnits PtrAlign = BaseAlignment.alignmentAtOffset(Result.Offset); 9179 // For align_up/align_down, we can return the same value if the alignment 9180 // is known to be greater or equal to the requested value. 9181 if (PtrAlign.getQuantity() >= Alignment) 9182 return true; 9183 9184 // The alignment could be greater than the minimum at run-time, so we cannot 9185 // infer much about the resulting pointer value. One case is possible: 9186 // For `_Alignas(32) char buf[N]; __builtin_align_down(&buf[idx], 32)` we 9187 // can infer the correct index if the requested alignment is smaller than 9188 // the base alignment so we can perform the computation on the offset. 9189 if (BaseAlignment.getQuantity() >= Alignment) { 9190 assert(Alignment.getBitWidth() <= 64 && 9191 "Cannot handle > 64-bit address-space"); 9192 uint64_t Alignment64 = Alignment.getZExtValue(); 9193 CharUnits NewOffset = CharUnits::fromQuantity( 9194 BuiltinOp == Builtin::BI__builtin_align_down 9195 ? llvm::alignDown(Result.Offset.getQuantity(), Alignment64) 9196 : llvm::alignTo(Result.Offset.getQuantity(), Alignment64)); 9197 Result.adjustOffset(NewOffset - Result.Offset); 9198 // TODO: diagnose out-of-bounds values/only allow for arrays? 9199 return true; 9200 } 9201 // Otherwise, we cannot constant-evaluate the result. 9202 Info.FFDiag(E->getArg(0), diag::note_constexpr_alignment_adjust) 9203 << Alignment; 9204 return false; 9205 } 9206 case Builtin::BI__builtin_operator_new: 9207 return HandleOperatorNewCall(Info, E, Result); 9208 case Builtin::BI__builtin_launder: 9209 return evaluatePointer(E->getArg(0), Result); 9210 case Builtin::BIstrchr: 9211 case Builtin::BIwcschr: 9212 case Builtin::BImemchr: 9213 case Builtin::BIwmemchr: 9214 if (Info.getLangOpts().CPlusPlus11) 9215 Info.CCEDiag(E, diag::note_constexpr_invalid_function) 9216 << /*isConstexpr*/0 << /*isConstructor*/0 9217 << (std::string("'") + Info.Ctx.BuiltinInfo.getName(BuiltinOp) + "'"); 9218 else 9219 Info.CCEDiag(E, diag::note_invalid_subexpr_in_const_expr); 9220 LLVM_FALLTHROUGH; 9221 case Builtin::BI__builtin_strchr: 9222 case Builtin::BI__builtin_wcschr: 9223 case Builtin::BI__builtin_memchr: 9224 case Builtin::BI__builtin_char_memchr: 9225 case Builtin::BI__builtin_wmemchr: { 9226 if (!Visit(E->getArg(0))) 9227 return false; 9228 APSInt Desired; 9229 if (!EvaluateInteger(E->getArg(1), Desired, Info)) 9230 return false; 9231 uint64_t MaxLength = uint64_t(-1); 9232 if (BuiltinOp != Builtin::BIstrchr && 9233 BuiltinOp != Builtin::BIwcschr && 9234 BuiltinOp != Builtin::BI__builtin_strchr && 9235 BuiltinOp != Builtin::BI__builtin_wcschr) { 9236 APSInt N; 9237 if (!EvaluateInteger(E->getArg(2), N, Info)) 9238 return false; 9239 MaxLength = N.getExtValue(); 9240 } 9241 // We cannot find the value if there are no candidates to match against. 9242 if (MaxLength == 0u) 9243 return ZeroInitialization(E); 9244 if (!Result.checkNullPointerForFoldAccess(Info, E, AK_Read) || 9245 Result.Designator.Invalid) 9246 return false; 9247 QualType CharTy = Result.Designator.getType(Info.Ctx); 9248 bool IsRawByte = BuiltinOp == Builtin::BImemchr || 9249 BuiltinOp == Builtin::BI__builtin_memchr; 9250 assert(IsRawByte || 9251 Info.Ctx.hasSameUnqualifiedType( 9252 CharTy, E->getArg(0)->getType()->getPointeeType())); 9253 // Pointers to const void may point to objects of incomplete type. 9254 if (IsRawByte && CharTy->isIncompleteType()) { 9255 Info.FFDiag(E, diag::note_constexpr_ltor_incomplete_type) << CharTy; 9256 return false; 9257 } 9258 // Give up on byte-oriented matching against multibyte elements. 9259 // FIXME: We can compare the bytes in the correct order. 9260 if (IsRawByte && !isOneByteCharacterType(CharTy)) { 9261 Info.FFDiag(E, diag::note_constexpr_memchr_unsupported) 9262 << (std::string("'") + Info.Ctx.BuiltinInfo.getName(BuiltinOp) + "'") 9263 << CharTy; 9264 return false; 9265 } 9266 // Figure out what value we're actually looking for (after converting to 9267 // the corresponding unsigned type if necessary). 9268 uint64_t DesiredVal; 9269 bool StopAtNull = false; 9270 switch (BuiltinOp) { 9271 case Builtin::BIstrchr: 9272 case Builtin::BI__builtin_strchr: 9273 // strchr compares directly to the passed integer, and therefore 9274 // always fails if given an int that is not a char. 9275 if (!APSInt::isSameValue(HandleIntToIntCast(Info, E, CharTy, 9276 E->getArg(1)->getType(), 9277 Desired), 9278 Desired)) 9279 return ZeroInitialization(E); 9280 StopAtNull = true; 9281 LLVM_FALLTHROUGH; 9282 case Builtin::BImemchr: 9283 case Builtin::BI__builtin_memchr: 9284 case Builtin::BI__builtin_char_memchr: 9285 // memchr compares by converting both sides to unsigned char. That's also 9286 // correct for strchr if we get this far (to cope with plain char being 9287 // unsigned in the strchr case). 9288 DesiredVal = Desired.trunc(Info.Ctx.getCharWidth()).getZExtValue(); 9289 break; 9290 9291 case Builtin::BIwcschr: 9292 case Builtin::BI__builtin_wcschr: 9293 StopAtNull = true; 9294 LLVM_FALLTHROUGH; 9295 case Builtin::BIwmemchr: 9296 case Builtin::BI__builtin_wmemchr: 9297 // wcschr and wmemchr are given a wchar_t to look for. Just use it. 9298 DesiredVal = Desired.getZExtValue(); 9299 break; 9300 } 9301 9302 for (; MaxLength; --MaxLength) { 9303 APValue Char; 9304 if (!handleLValueToRValueConversion(Info, E, CharTy, Result, Char) || 9305 !Char.isInt()) 9306 return false; 9307 if (Char.getInt().getZExtValue() == DesiredVal) 9308 return true; 9309 if (StopAtNull && !Char.getInt()) 9310 break; 9311 if (!HandleLValueArrayAdjustment(Info, E, Result, CharTy, 1)) 9312 return false; 9313 } 9314 // Not found: return nullptr. 9315 return ZeroInitialization(E); 9316 } 9317 9318 case Builtin::BImemcpy: 9319 case Builtin::BImemmove: 9320 case Builtin::BIwmemcpy: 9321 case Builtin::BIwmemmove: 9322 if (Info.getLangOpts().CPlusPlus11) 9323 Info.CCEDiag(E, diag::note_constexpr_invalid_function) 9324 << /*isConstexpr*/0 << /*isConstructor*/0 9325 << (std::string("'") + Info.Ctx.BuiltinInfo.getName(BuiltinOp) + "'"); 9326 else 9327 Info.CCEDiag(E, diag::note_invalid_subexpr_in_const_expr); 9328 LLVM_FALLTHROUGH; 9329 case Builtin::BI__builtin_memcpy: 9330 case Builtin::BI__builtin_memmove: 9331 case Builtin::BI__builtin_wmemcpy: 9332 case Builtin::BI__builtin_wmemmove: { 9333 bool WChar = BuiltinOp == Builtin::BIwmemcpy || 9334 BuiltinOp == Builtin::BIwmemmove || 9335 BuiltinOp == Builtin::BI__builtin_wmemcpy || 9336 BuiltinOp == Builtin::BI__builtin_wmemmove; 9337 bool Move = BuiltinOp == Builtin::BImemmove || 9338 BuiltinOp == Builtin::BIwmemmove || 9339 BuiltinOp == Builtin::BI__builtin_memmove || 9340 BuiltinOp == Builtin::BI__builtin_wmemmove; 9341 9342 // The result of mem* is the first argument. 9343 if (!Visit(E->getArg(0))) 9344 return false; 9345 LValue Dest = Result; 9346 9347 LValue Src; 9348 if (!EvaluatePointer(E->getArg(1), Src, Info)) 9349 return false; 9350 9351 APSInt N; 9352 if (!EvaluateInteger(E->getArg(2), N, Info)) 9353 return false; 9354 assert(!N.isSigned() && "memcpy and friends take an unsigned size"); 9355 9356 // If the size is zero, we treat this as always being a valid no-op. 9357 // (Even if one of the src and dest pointers is null.) 9358 if (!N) 9359 return true; 9360 9361 // Otherwise, if either of the operands is null, we can't proceed. Don't 9362 // try to determine the type of the copied objects, because there aren't 9363 // any. 9364 if (!Src.Base || !Dest.Base) { 9365 APValue Val; 9366 (!Src.Base ? Src : Dest).moveInto(Val); 9367 Info.FFDiag(E, diag::note_constexpr_memcpy_null) 9368 << Move << WChar << !!Src.Base 9369 << Val.getAsString(Info.Ctx, E->getArg(0)->getType()); 9370 return false; 9371 } 9372 if (Src.Designator.Invalid || Dest.Designator.Invalid) 9373 return false; 9374 9375 // We require that Src and Dest are both pointers to arrays of 9376 // trivially-copyable type. (For the wide version, the designator will be 9377 // invalid if the designated object is not a wchar_t.) 9378 QualType T = Dest.Designator.getType(Info.Ctx); 9379 QualType SrcT = Src.Designator.getType(Info.Ctx); 9380 if (!Info.Ctx.hasSameUnqualifiedType(T, SrcT)) { 9381 // FIXME: Consider using our bit_cast implementation to support this. 9382 Info.FFDiag(E, diag::note_constexpr_memcpy_type_pun) << Move << SrcT << T; 9383 return false; 9384 } 9385 if (T->isIncompleteType()) { 9386 Info.FFDiag(E, diag::note_constexpr_memcpy_incomplete_type) << Move << T; 9387 return false; 9388 } 9389 if (!T.isTriviallyCopyableType(Info.Ctx)) { 9390 Info.FFDiag(E, diag::note_constexpr_memcpy_nontrivial) << Move << T; 9391 return false; 9392 } 9393 9394 // Figure out how many T's we're copying. 9395 uint64_t TSize = Info.Ctx.getTypeSizeInChars(T).getQuantity(); 9396 if (!WChar) { 9397 uint64_t Remainder; 9398 llvm::APInt OrigN = N; 9399 llvm::APInt::udivrem(OrigN, TSize, N, Remainder); 9400 if (Remainder) { 9401 Info.FFDiag(E, diag::note_constexpr_memcpy_unsupported) 9402 << Move << WChar << 0 << T << toString(OrigN, 10, /*Signed*/false) 9403 << (unsigned)TSize; 9404 return false; 9405 } 9406 } 9407 9408 // Check that the copying will remain within the arrays, just so that we 9409 // can give a more meaningful diagnostic. This implicitly also checks that 9410 // N fits into 64 bits. 9411 uint64_t RemainingSrcSize = Src.Designator.validIndexAdjustments().second; 9412 uint64_t RemainingDestSize = Dest.Designator.validIndexAdjustments().second; 9413 if (N.ugt(RemainingSrcSize) || N.ugt(RemainingDestSize)) { 9414 Info.FFDiag(E, diag::note_constexpr_memcpy_unsupported) 9415 << Move << WChar << (N.ugt(RemainingSrcSize) ? 1 : 2) << T 9416 << toString(N, 10, /*Signed*/false); 9417 return false; 9418 } 9419 uint64_t NElems = N.getZExtValue(); 9420 uint64_t NBytes = NElems * TSize; 9421 9422 // Check for overlap. 9423 int Direction = 1; 9424 if (HasSameBase(Src, Dest)) { 9425 uint64_t SrcOffset = Src.getLValueOffset().getQuantity(); 9426 uint64_t DestOffset = Dest.getLValueOffset().getQuantity(); 9427 if (DestOffset >= SrcOffset && DestOffset - SrcOffset < NBytes) { 9428 // Dest is inside the source region. 9429 if (!Move) { 9430 Info.FFDiag(E, diag::note_constexpr_memcpy_overlap) << WChar; 9431 return false; 9432 } 9433 // For memmove and friends, copy backwards. 9434 if (!HandleLValueArrayAdjustment(Info, E, Src, T, NElems - 1) || 9435 !HandleLValueArrayAdjustment(Info, E, Dest, T, NElems - 1)) 9436 return false; 9437 Direction = -1; 9438 } else if (!Move && SrcOffset >= DestOffset && 9439 SrcOffset - DestOffset < NBytes) { 9440 // Src is inside the destination region for memcpy: invalid. 9441 Info.FFDiag(E, diag::note_constexpr_memcpy_overlap) << WChar; 9442 return false; 9443 } 9444 } 9445 9446 while (true) { 9447 APValue Val; 9448 // FIXME: Set WantObjectRepresentation to true if we're copying a 9449 // char-like type? 9450 if (!handleLValueToRValueConversion(Info, E, T, Src, Val) || 9451 !handleAssignment(Info, E, Dest, T, Val)) 9452 return false; 9453 // Do not iterate past the last element; if we're copying backwards, that 9454 // might take us off the start of the array. 9455 if (--NElems == 0) 9456 return true; 9457 if (!HandleLValueArrayAdjustment(Info, E, Src, T, Direction) || 9458 !HandleLValueArrayAdjustment(Info, E, Dest, T, Direction)) 9459 return false; 9460 } 9461 } 9462 9463 default: 9464 break; 9465 } 9466 9467 return visitNonBuiltinCallExpr(E); 9468 } 9469 9470 static bool EvaluateArrayNewInitList(EvalInfo &Info, LValue &This, 9471 APValue &Result, const InitListExpr *ILE, 9472 QualType AllocType); 9473 static bool EvaluateArrayNewConstructExpr(EvalInfo &Info, LValue &This, 9474 APValue &Result, 9475 const CXXConstructExpr *CCE, 9476 QualType AllocType); 9477 9478 bool PointerExprEvaluator::VisitCXXNewExpr(const CXXNewExpr *E) { 9479 if (!Info.getLangOpts().CPlusPlus20) 9480 Info.CCEDiag(E, diag::note_constexpr_new); 9481 9482 // We cannot speculatively evaluate a delete expression. 9483 if (Info.SpeculativeEvaluationDepth) 9484 return false; 9485 9486 FunctionDecl *OperatorNew = E->getOperatorNew(); 9487 9488 bool IsNothrow = false; 9489 bool IsPlacement = false; 9490 if (OperatorNew->isReservedGlobalPlacementOperator() && 9491 Info.CurrentCall->isStdFunction() && !E->isArray()) { 9492 // FIXME Support array placement new. 9493 assert(E->getNumPlacementArgs() == 1); 9494 if (!EvaluatePointer(E->getPlacementArg(0), Result, Info)) 9495 return false; 9496 if (Result.Designator.Invalid) 9497 return false; 9498 IsPlacement = true; 9499 } else if (!OperatorNew->isReplaceableGlobalAllocationFunction()) { 9500 Info.FFDiag(E, diag::note_constexpr_new_non_replaceable) 9501 << isa<CXXMethodDecl>(OperatorNew) << OperatorNew; 9502 return false; 9503 } else if (E->getNumPlacementArgs()) { 9504 // The only new-placement list we support is of the form (std::nothrow). 9505 // 9506 // FIXME: There is no restriction on this, but it's not clear that any 9507 // other form makes any sense. We get here for cases such as: 9508 // 9509 // new (std::align_val_t{N}) X(int) 9510 // 9511 // (which should presumably be valid only if N is a multiple of 9512 // alignof(int), and in any case can't be deallocated unless N is 9513 // alignof(X) and X has new-extended alignment). 9514 if (E->getNumPlacementArgs() != 1 || 9515 !E->getPlacementArg(0)->getType()->isNothrowT()) 9516 return Error(E, diag::note_constexpr_new_placement); 9517 9518 LValue Nothrow; 9519 if (!EvaluateLValue(E->getPlacementArg(0), Nothrow, Info)) 9520 return false; 9521 IsNothrow = true; 9522 } 9523 9524 const Expr *Init = E->getInitializer(); 9525 const InitListExpr *ResizedArrayILE = nullptr; 9526 const CXXConstructExpr *ResizedArrayCCE = nullptr; 9527 bool ValueInit = false; 9528 9529 QualType AllocType = E->getAllocatedType(); 9530 if (Optional<const Expr *> ArraySize = E->getArraySize()) { 9531 const Expr *Stripped = *ArraySize; 9532 for (; auto *ICE = dyn_cast<ImplicitCastExpr>(Stripped); 9533 Stripped = ICE->getSubExpr()) 9534 if (ICE->getCastKind() != CK_NoOp && 9535 ICE->getCastKind() != CK_IntegralCast) 9536 break; 9537 9538 llvm::APSInt ArrayBound; 9539 if (!EvaluateInteger(Stripped, ArrayBound, Info)) 9540 return false; 9541 9542 // C++ [expr.new]p9: 9543 // The expression is erroneous if: 9544 // -- [...] its value before converting to size_t [or] applying the 9545 // second standard conversion sequence is less than zero 9546 if (ArrayBound.isSigned() && ArrayBound.isNegative()) { 9547 if (IsNothrow) 9548 return ZeroInitialization(E); 9549 9550 Info.FFDiag(*ArraySize, diag::note_constexpr_new_negative) 9551 << ArrayBound << (*ArraySize)->getSourceRange(); 9552 return false; 9553 } 9554 9555 // -- its value is such that the size of the allocated object would 9556 // exceed the implementation-defined limit 9557 if (ConstantArrayType::getNumAddressingBits(Info.Ctx, AllocType, 9558 ArrayBound) > 9559 ConstantArrayType::getMaxSizeBits(Info.Ctx)) { 9560 if (IsNothrow) 9561 return ZeroInitialization(E); 9562 9563 Info.FFDiag(*ArraySize, diag::note_constexpr_new_too_large) 9564 << ArrayBound << (*ArraySize)->getSourceRange(); 9565 return false; 9566 } 9567 9568 // -- the new-initializer is a braced-init-list and the number of 9569 // array elements for which initializers are provided [...] 9570 // exceeds the number of elements to initialize 9571 if (!Init) { 9572 // No initialization is performed. 9573 } else if (isa<CXXScalarValueInitExpr>(Init) || 9574 isa<ImplicitValueInitExpr>(Init)) { 9575 ValueInit = true; 9576 } else if (auto *CCE = dyn_cast<CXXConstructExpr>(Init)) { 9577 ResizedArrayCCE = CCE; 9578 } else { 9579 auto *CAT = Info.Ctx.getAsConstantArrayType(Init->getType()); 9580 assert(CAT && "unexpected type for array initializer"); 9581 9582 unsigned Bits = 9583 std::max(CAT->getSize().getBitWidth(), ArrayBound.getBitWidth()); 9584 llvm::APInt InitBound = CAT->getSize().zext(Bits); 9585 llvm::APInt AllocBound = ArrayBound.zext(Bits); 9586 if (InitBound.ugt(AllocBound)) { 9587 if (IsNothrow) 9588 return ZeroInitialization(E); 9589 9590 Info.FFDiag(*ArraySize, diag::note_constexpr_new_too_small) 9591 << toString(AllocBound, 10, /*Signed=*/false) 9592 << toString(InitBound, 10, /*Signed=*/false) 9593 << (*ArraySize)->getSourceRange(); 9594 return false; 9595 } 9596 9597 // If the sizes differ, we must have an initializer list, and we need 9598 // special handling for this case when we initialize. 9599 if (InitBound != AllocBound) 9600 ResizedArrayILE = cast<InitListExpr>(Init); 9601 } 9602 9603 AllocType = Info.Ctx.getConstantArrayType(AllocType, ArrayBound, nullptr, 9604 ArrayType::Normal, 0); 9605 } else { 9606 assert(!AllocType->isArrayType() && 9607 "array allocation with non-array new"); 9608 } 9609 9610 APValue *Val; 9611 if (IsPlacement) { 9612 AccessKinds AK = AK_Construct; 9613 struct FindObjectHandler { 9614 EvalInfo &Info; 9615 const Expr *E; 9616 QualType AllocType; 9617 const AccessKinds AccessKind; 9618 APValue *Value; 9619 9620 typedef bool result_type; 9621 bool failed() { return false; } 9622 bool found(APValue &Subobj, QualType SubobjType) { 9623 // FIXME: Reject the cases where [basic.life]p8 would not permit the 9624 // old name of the object to be used to name the new object. 9625 if (!Info.Ctx.hasSameUnqualifiedType(SubobjType, AllocType)) { 9626 Info.FFDiag(E, diag::note_constexpr_placement_new_wrong_type) << 9627 SubobjType << AllocType; 9628 return false; 9629 } 9630 Value = &Subobj; 9631 return true; 9632 } 9633 bool found(APSInt &Value, QualType SubobjType) { 9634 Info.FFDiag(E, diag::note_constexpr_construct_complex_elem); 9635 return false; 9636 } 9637 bool found(APFloat &Value, QualType SubobjType) { 9638 Info.FFDiag(E, diag::note_constexpr_construct_complex_elem); 9639 return false; 9640 } 9641 } Handler = {Info, E, AllocType, AK, nullptr}; 9642 9643 CompleteObject Obj = findCompleteObject(Info, E, AK, Result, AllocType); 9644 if (!Obj || !findSubobject(Info, E, Obj, Result.Designator, Handler)) 9645 return false; 9646 9647 Val = Handler.Value; 9648 9649 // [basic.life]p1: 9650 // The lifetime of an object o of type T ends when [...] the storage 9651 // which the object occupies is [...] reused by an object that is not 9652 // nested within o (6.6.2). 9653 *Val = APValue(); 9654 } else { 9655 // Perform the allocation and obtain a pointer to the resulting object. 9656 Val = Info.createHeapAlloc(E, AllocType, Result); 9657 if (!Val) 9658 return false; 9659 } 9660 9661 if (ValueInit) { 9662 ImplicitValueInitExpr VIE(AllocType); 9663 if (!EvaluateInPlace(*Val, Info, Result, &VIE)) 9664 return false; 9665 } else if (ResizedArrayILE) { 9666 if (!EvaluateArrayNewInitList(Info, Result, *Val, ResizedArrayILE, 9667 AllocType)) 9668 return false; 9669 } else if (ResizedArrayCCE) { 9670 if (!EvaluateArrayNewConstructExpr(Info, Result, *Val, ResizedArrayCCE, 9671 AllocType)) 9672 return false; 9673 } else if (Init) { 9674 if (!EvaluateInPlace(*Val, Info, Result, Init)) 9675 return false; 9676 } else if (!getDefaultInitValue(AllocType, *Val)) { 9677 return false; 9678 } 9679 9680 // Array new returns a pointer to the first element, not a pointer to the 9681 // array. 9682 if (auto *AT = AllocType->getAsArrayTypeUnsafe()) 9683 Result.addArray(Info, E, cast<ConstantArrayType>(AT)); 9684 9685 return true; 9686 } 9687 //===----------------------------------------------------------------------===// 9688 // Member Pointer Evaluation 9689 //===----------------------------------------------------------------------===// 9690 9691 namespace { 9692 class MemberPointerExprEvaluator 9693 : public ExprEvaluatorBase<MemberPointerExprEvaluator> { 9694 MemberPtr &Result; 9695 9696 bool Success(const ValueDecl *D) { 9697 Result = MemberPtr(D); 9698 return true; 9699 } 9700 public: 9701 9702 MemberPointerExprEvaluator(EvalInfo &Info, MemberPtr &Result) 9703 : ExprEvaluatorBaseTy(Info), Result(Result) {} 9704 9705 bool Success(const APValue &V, const Expr *E) { 9706 Result.setFrom(V); 9707 return true; 9708 } 9709 bool ZeroInitialization(const Expr *E) { 9710 return Success((const ValueDecl*)nullptr); 9711 } 9712 9713 bool VisitCastExpr(const CastExpr *E); 9714 bool VisitUnaryAddrOf(const UnaryOperator *E); 9715 }; 9716 } // end anonymous namespace 9717 9718 static bool EvaluateMemberPointer(const Expr *E, MemberPtr &Result, 9719 EvalInfo &Info) { 9720 assert(!E->isValueDependent()); 9721 assert(E->isPRValue() && E->getType()->isMemberPointerType()); 9722 return MemberPointerExprEvaluator(Info, Result).Visit(E); 9723 } 9724 9725 bool MemberPointerExprEvaluator::VisitCastExpr(const CastExpr *E) { 9726 switch (E->getCastKind()) { 9727 default: 9728 return ExprEvaluatorBaseTy::VisitCastExpr(E); 9729 9730 case CK_NullToMemberPointer: 9731 VisitIgnoredValue(E->getSubExpr()); 9732 return ZeroInitialization(E); 9733 9734 case CK_BaseToDerivedMemberPointer: { 9735 if (!Visit(E->getSubExpr())) 9736 return false; 9737 if (E->path_empty()) 9738 return true; 9739 // Base-to-derived member pointer casts store the path in derived-to-base 9740 // order, so iterate backwards. The CXXBaseSpecifier also provides us with 9741 // the wrong end of the derived->base arc, so stagger the path by one class. 9742 typedef std::reverse_iterator<CastExpr::path_const_iterator> ReverseIter; 9743 for (ReverseIter PathI(E->path_end() - 1), PathE(E->path_begin()); 9744 PathI != PathE; ++PathI) { 9745 assert(!(*PathI)->isVirtual() && "memptr cast through vbase"); 9746 const CXXRecordDecl *Derived = (*PathI)->getType()->getAsCXXRecordDecl(); 9747 if (!Result.castToDerived(Derived)) 9748 return Error(E); 9749 } 9750 const Type *FinalTy = E->getType()->castAs<MemberPointerType>()->getClass(); 9751 if (!Result.castToDerived(FinalTy->getAsCXXRecordDecl())) 9752 return Error(E); 9753 return true; 9754 } 9755 9756 case CK_DerivedToBaseMemberPointer: 9757 if (!Visit(E->getSubExpr())) 9758 return false; 9759 for (CastExpr::path_const_iterator PathI = E->path_begin(), 9760 PathE = E->path_end(); PathI != PathE; ++PathI) { 9761 assert(!(*PathI)->isVirtual() && "memptr cast through vbase"); 9762 const CXXRecordDecl *Base = (*PathI)->getType()->getAsCXXRecordDecl(); 9763 if (!Result.castToBase(Base)) 9764 return Error(E); 9765 } 9766 return true; 9767 } 9768 } 9769 9770 bool MemberPointerExprEvaluator::VisitUnaryAddrOf(const UnaryOperator *E) { 9771 // C++11 [expr.unary.op]p3 has very strict rules on how the address of a 9772 // member can be formed. 9773 return Success(cast<DeclRefExpr>(E->getSubExpr())->getDecl()); 9774 } 9775 9776 //===----------------------------------------------------------------------===// 9777 // Record Evaluation 9778 //===----------------------------------------------------------------------===// 9779 9780 namespace { 9781 class RecordExprEvaluator 9782 : public ExprEvaluatorBase<RecordExprEvaluator> { 9783 const LValue &This; 9784 APValue &Result; 9785 public: 9786 9787 RecordExprEvaluator(EvalInfo &info, const LValue &This, APValue &Result) 9788 : ExprEvaluatorBaseTy(info), This(This), Result(Result) {} 9789 9790 bool Success(const APValue &V, const Expr *E) { 9791 Result = V; 9792 return true; 9793 } 9794 bool ZeroInitialization(const Expr *E) { 9795 return ZeroInitialization(E, E->getType()); 9796 } 9797 bool ZeroInitialization(const Expr *E, QualType T); 9798 9799 bool VisitCallExpr(const CallExpr *E) { 9800 return handleCallExpr(E, Result, &This); 9801 } 9802 bool VisitCastExpr(const CastExpr *E); 9803 bool VisitInitListExpr(const InitListExpr *E); 9804 bool VisitCXXConstructExpr(const CXXConstructExpr *E) { 9805 return VisitCXXConstructExpr(E, E->getType()); 9806 } 9807 bool VisitLambdaExpr(const LambdaExpr *E); 9808 bool VisitCXXInheritedCtorInitExpr(const CXXInheritedCtorInitExpr *E); 9809 bool VisitCXXConstructExpr(const CXXConstructExpr *E, QualType T); 9810 bool VisitCXXStdInitializerListExpr(const CXXStdInitializerListExpr *E); 9811 bool VisitBinCmp(const BinaryOperator *E); 9812 }; 9813 } 9814 9815 /// Perform zero-initialization on an object of non-union class type. 9816 /// C++11 [dcl.init]p5: 9817 /// To zero-initialize an object or reference of type T means: 9818 /// [...] 9819 /// -- if T is a (possibly cv-qualified) non-union class type, 9820 /// each non-static data member and each base-class subobject is 9821 /// zero-initialized 9822 static bool HandleClassZeroInitialization(EvalInfo &Info, const Expr *E, 9823 const RecordDecl *RD, 9824 const LValue &This, APValue &Result) { 9825 assert(!RD->isUnion() && "Expected non-union class type"); 9826 const CXXRecordDecl *CD = dyn_cast<CXXRecordDecl>(RD); 9827 Result = APValue(APValue::UninitStruct(), CD ? CD->getNumBases() : 0, 9828 std::distance(RD->field_begin(), RD->field_end())); 9829 9830 if (RD->isInvalidDecl()) return false; 9831 const ASTRecordLayout &Layout = Info.Ctx.getASTRecordLayout(RD); 9832 9833 if (CD) { 9834 unsigned Index = 0; 9835 for (CXXRecordDecl::base_class_const_iterator I = CD->bases_begin(), 9836 End = CD->bases_end(); I != End; ++I, ++Index) { 9837 const CXXRecordDecl *Base = I->getType()->getAsCXXRecordDecl(); 9838 LValue Subobject = This; 9839 if (!HandleLValueDirectBase(Info, E, Subobject, CD, Base, &Layout)) 9840 return false; 9841 if (!HandleClassZeroInitialization(Info, E, Base, Subobject, 9842 Result.getStructBase(Index))) 9843 return false; 9844 } 9845 } 9846 9847 for (const auto *I : RD->fields()) { 9848 // -- if T is a reference type, no initialization is performed. 9849 if (I->isUnnamedBitfield() || I->getType()->isReferenceType()) 9850 continue; 9851 9852 LValue Subobject = This; 9853 if (!HandleLValueMember(Info, E, Subobject, I, &Layout)) 9854 return false; 9855 9856 ImplicitValueInitExpr VIE(I->getType()); 9857 if (!EvaluateInPlace( 9858 Result.getStructField(I->getFieldIndex()), Info, Subobject, &VIE)) 9859 return false; 9860 } 9861 9862 return true; 9863 } 9864 9865 bool RecordExprEvaluator::ZeroInitialization(const Expr *E, QualType T) { 9866 const RecordDecl *RD = T->castAs<RecordType>()->getDecl(); 9867 if (RD->isInvalidDecl()) return false; 9868 if (RD->isUnion()) { 9869 // C++11 [dcl.init]p5: If T is a (possibly cv-qualified) union type, the 9870 // object's first non-static named data member is zero-initialized 9871 RecordDecl::field_iterator I = RD->field_begin(); 9872 while (I != RD->field_end() && (*I)->isUnnamedBitfield()) 9873 ++I; 9874 if (I == RD->field_end()) { 9875 Result = APValue((const FieldDecl*)nullptr); 9876 return true; 9877 } 9878 9879 LValue Subobject = This; 9880 if (!HandleLValueMember(Info, E, Subobject, *I)) 9881 return false; 9882 Result = APValue(*I); 9883 ImplicitValueInitExpr VIE(I->getType()); 9884 return EvaluateInPlace(Result.getUnionValue(), Info, Subobject, &VIE); 9885 } 9886 9887 if (isa<CXXRecordDecl>(RD) && cast<CXXRecordDecl>(RD)->getNumVBases()) { 9888 Info.FFDiag(E, diag::note_constexpr_virtual_base) << RD; 9889 return false; 9890 } 9891 9892 return HandleClassZeroInitialization(Info, E, RD, This, Result); 9893 } 9894 9895 bool RecordExprEvaluator::VisitCastExpr(const CastExpr *E) { 9896 switch (E->getCastKind()) { 9897 default: 9898 return ExprEvaluatorBaseTy::VisitCastExpr(E); 9899 9900 case CK_ConstructorConversion: 9901 return Visit(E->getSubExpr()); 9902 9903 case CK_DerivedToBase: 9904 case CK_UncheckedDerivedToBase: { 9905 APValue DerivedObject; 9906 if (!Evaluate(DerivedObject, Info, E->getSubExpr())) 9907 return false; 9908 if (!DerivedObject.isStruct()) 9909 return Error(E->getSubExpr()); 9910 9911 // Derived-to-base rvalue conversion: just slice off the derived part. 9912 APValue *Value = &DerivedObject; 9913 const CXXRecordDecl *RD = E->getSubExpr()->getType()->getAsCXXRecordDecl(); 9914 for (CastExpr::path_const_iterator PathI = E->path_begin(), 9915 PathE = E->path_end(); PathI != PathE; ++PathI) { 9916 assert(!(*PathI)->isVirtual() && "record rvalue with virtual base"); 9917 const CXXRecordDecl *Base = (*PathI)->getType()->getAsCXXRecordDecl(); 9918 Value = &Value->getStructBase(getBaseIndex(RD, Base)); 9919 RD = Base; 9920 } 9921 Result = *Value; 9922 return true; 9923 } 9924 } 9925 } 9926 9927 bool RecordExprEvaluator::VisitInitListExpr(const InitListExpr *E) { 9928 if (E->isTransparent()) 9929 return Visit(E->getInit(0)); 9930 9931 const RecordDecl *RD = E->getType()->castAs<RecordType>()->getDecl(); 9932 if (RD->isInvalidDecl()) return false; 9933 const ASTRecordLayout &Layout = Info.Ctx.getASTRecordLayout(RD); 9934 auto *CXXRD = dyn_cast<CXXRecordDecl>(RD); 9935 9936 EvalInfo::EvaluatingConstructorRAII EvalObj( 9937 Info, 9938 ObjectUnderConstruction{This.getLValueBase(), This.Designator.Entries}, 9939 CXXRD && CXXRD->getNumBases()); 9940 9941 if (RD->isUnion()) { 9942 const FieldDecl *Field = E->getInitializedFieldInUnion(); 9943 Result = APValue(Field); 9944 if (!Field) 9945 return true; 9946 9947 // If the initializer list for a union does not contain any elements, the 9948 // first element of the union is value-initialized. 9949 // FIXME: The element should be initialized from an initializer list. 9950 // Is this difference ever observable for initializer lists which 9951 // we don't build? 9952 ImplicitValueInitExpr VIE(Field->getType()); 9953 const Expr *InitExpr = E->getNumInits() ? E->getInit(0) : &VIE; 9954 9955 LValue Subobject = This; 9956 if (!HandleLValueMember(Info, InitExpr, Subobject, Field, &Layout)) 9957 return false; 9958 9959 // Temporarily override This, in case there's a CXXDefaultInitExpr in here. 9960 ThisOverrideRAII ThisOverride(*Info.CurrentCall, &This, 9961 isa<CXXDefaultInitExpr>(InitExpr)); 9962 9963 if (EvaluateInPlace(Result.getUnionValue(), Info, Subobject, InitExpr)) { 9964 if (Field->isBitField()) 9965 return truncateBitfieldValue(Info, InitExpr, Result.getUnionValue(), 9966 Field); 9967 return true; 9968 } 9969 9970 return false; 9971 } 9972 9973 if (!Result.hasValue()) 9974 Result = APValue(APValue::UninitStruct(), CXXRD ? CXXRD->getNumBases() : 0, 9975 std::distance(RD->field_begin(), RD->field_end())); 9976 unsigned ElementNo = 0; 9977 bool Success = true; 9978 9979 // Initialize base classes. 9980 if (CXXRD && CXXRD->getNumBases()) { 9981 for (const auto &Base : CXXRD->bases()) { 9982 assert(ElementNo < E->getNumInits() && "missing init for base class"); 9983 const Expr *Init = E->getInit(ElementNo); 9984 9985 LValue Subobject = This; 9986 if (!HandleLValueBase(Info, Init, Subobject, CXXRD, &Base)) 9987 return false; 9988 9989 APValue &FieldVal = Result.getStructBase(ElementNo); 9990 if (!EvaluateInPlace(FieldVal, Info, Subobject, Init)) { 9991 if (!Info.noteFailure()) 9992 return false; 9993 Success = false; 9994 } 9995 ++ElementNo; 9996 } 9997 9998 EvalObj.finishedConstructingBases(); 9999 } 10000 10001 // Initialize members. 10002 for (const auto *Field : RD->fields()) { 10003 // Anonymous bit-fields are not considered members of the class for 10004 // purposes of aggregate initialization. 10005 if (Field->isUnnamedBitfield()) 10006 continue; 10007 10008 LValue Subobject = This; 10009 10010 bool HaveInit = ElementNo < E->getNumInits(); 10011 10012 // FIXME: Diagnostics here should point to the end of the initializer 10013 // list, not the start. 10014 if (!HandleLValueMember(Info, HaveInit ? E->getInit(ElementNo) : E, 10015 Subobject, Field, &Layout)) 10016 return false; 10017 10018 // Perform an implicit value-initialization for members beyond the end of 10019 // the initializer list. 10020 ImplicitValueInitExpr VIE(HaveInit ? Info.Ctx.IntTy : Field->getType()); 10021 const Expr *Init = HaveInit ? E->getInit(ElementNo++) : &VIE; 10022 10023 if (Field->getType()->isIncompleteArrayType()) { 10024 if (auto *CAT = Info.Ctx.getAsConstantArrayType(Init->getType())) { 10025 if (!CAT->getSize().isZero()) { 10026 // Bail out for now. This might sort of "work", but the rest of the 10027 // code isn't really prepared to handle it. 10028 Info.FFDiag(Init, diag::note_constexpr_unsupported_flexible_array); 10029 return false; 10030 } 10031 } 10032 } 10033 10034 // Temporarily override This, in case there's a CXXDefaultInitExpr in here. 10035 ThisOverrideRAII ThisOverride(*Info.CurrentCall, &This, 10036 isa<CXXDefaultInitExpr>(Init)); 10037 10038 APValue &FieldVal = Result.getStructField(Field->getFieldIndex()); 10039 if (!EvaluateInPlace(FieldVal, Info, Subobject, Init) || 10040 (Field->isBitField() && !truncateBitfieldValue(Info, Init, 10041 FieldVal, Field))) { 10042 if (!Info.noteFailure()) 10043 return false; 10044 Success = false; 10045 } 10046 } 10047 10048 EvalObj.finishedConstructingFields(); 10049 10050 return Success; 10051 } 10052 10053 bool RecordExprEvaluator::VisitCXXConstructExpr(const CXXConstructExpr *E, 10054 QualType T) { 10055 // Note that E's type is not necessarily the type of our class here; we might 10056 // be initializing an array element instead. 10057 const CXXConstructorDecl *FD = E->getConstructor(); 10058 if (FD->isInvalidDecl() || FD->getParent()->isInvalidDecl()) return false; 10059 10060 bool ZeroInit = E->requiresZeroInitialization(); 10061 if (CheckTrivialDefaultConstructor(Info, E->getExprLoc(), FD, ZeroInit)) { 10062 // If we've already performed zero-initialization, we're already done. 10063 if (Result.hasValue()) 10064 return true; 10065 10066 if (ZeroInit) 10067 return ZeroInitialization(E, T); 10068 10069 return getDefaultInitValue(T, Result); 10070 } 10071 10072 const FunctionDecl *Definition = nullptr; 10073 auto Body = FD->getBody(Definition); 10074 10075 if (!CheckConstexprFunction(Info, E->getExprLoc(), FD, Definition, Body)) 10076 return false; 10077 10078 // Avoid materializing a temporary for an elidable copy/move constructor. 10079 if (E->isElidable() && !ZeroInit) { 10080 // FIXME: This only handles the simplest case, where the source object 10081 // is passed directly as the first argument to the constructor. 10082 // This should also handle stepping though implicit casts and 10083 // and conversion sequences which involve two steps, with a 10084 // conversion operator followed by a converting constructor. 10085 const Expr *SrcObj = E->getArg(0); 10086 assert(SrcObj->isTemporaryObject(Info.Ctx, FD->getParent())); 10087 assert(Info.Ctx.hasSameUnqualifiedType(E->getType(), SrcObj->getType())); 10088 if (const MaterializeTemporaryExpr *ME = 10089 dyn_cast<MaterializeTemporaryExpr>(SrcObj)) 10090 return Visit(ME->getSubExpr()); 10091 } 10092 10093 if (ZeroInit && !ZeroInitialization(E, T)) 10094 return false; 10095 10096 auto Args = llvm::makeArrayRef(E->getArgs(), E->getNumArgs()); 10097 return HandleConstructorCall(E, This, Args, 10098 cast<CXXConstructorDecl>(Definition), Info, 10099 Result); 10100 } 10101 10102 bool RecordExprEvaluator::VisitCXXInheritedCtorInitExpr( 10103 const CXXInheritedCtorInitExpr *E) { 10104 if (!Info.CurrentCall) { 10105 assert(Info.checkingPotentialConstantExpression()); 10106 return false; 10107 } 10108 10109 const CXXConstructorDecl *FD = E->getConstructor(); 10110 if (FD->isInvalidDecl() || FD->getParent()->isInvalidDecl()) 10111 return false; 10112 10113 const FunctionDecl *Definition = nullptr; 10114 auto Body = FD->getBody(Definition); 10115 10116 if (!CheckConstexprFunction(Info, E->getExprLoc(), FD, Definition, Body)) 10117 return false; 10118 10119 return HandleConstructorCall(E, This, Info.CurrentCall->Arguments, 10120 cast<CXXConstructorDecl>(Definition), Info, 10121 Result); 10122 } 10123 10124 bool RecordExprEvaluator::VisitCXXStdInitializerListExpr( 10125 const CXXStdInitializerListExpr *E) { 10126 const ConstantArrayType *ArrayType = 10127 Info.Ctx.getAsConstantArrayType(E->getSubExpr()->getType()); 10128 10129 LValue Array; 10130 if (!EvaluateLValue(E->getSubExpr(), Array, Info)) 10131 return false; 10132 10133 // Get a pointer to the first element of the array. 10134 Array.addArray(Info, E, ArrayType); 10135 10136 auto InvalidType = [&] { 10137 Info.FFDiag(E, diag::note_constexpr_unsupported_layout) 10138 << E->getType(); 10139 return false; 10140 }; 10141 10142 // FIXME: Perform the checks on the field types in SemaInit. 10143 RecordDecl *Record = E->getType()->castAs<RecordType>()->getDecl(); 10144 RecordDecl::field_iterator Field = Record->field_begin(); 10145 if (Field == Record->field_end()) 10146 return InvalidType(); 10147 10148 // Start pointer. 10149 if (!Field->getType()->isPointerType() || 10150 !Info.Ctx.hasSameType(Field->getType()->getPointeeType(), 10151 ArrayType->getElementType())) 10152 return InvalidType(); 10153 10154 // FIXME: What if the initializer_list type has base classes, etc? 10155 Result = APValue(APValue::UninitStruct(), 0, 2); 10156 Array.moveInto(Result.getStructField(0)); 10157 10158 if (++Field == Record->field_end()) 10159 return InvalidType(); 10160 10161 if (Field->getType()->isPointerType() && 10162 Info.Ctx.hasSameType(Field->getType()->getPointeeType(), 10163 ArrayType->getElementType())) { 10164 // End pointer. 10165 if (!HandleLValueArrayAdjustment(Info, E, Array, 10166 ArrayType->getElementType(), 10167 ArrayType->getSize().getZExtValue())) 10168 return false; 10169 Array.moveInto(Result.getStructField(1)); 10170 } else if (Info.Ctx.hasSameType(Field->getType(), Info.Ctx.getSizeType())) 10171 // Length. 10172 Result.getStructField(1) = APValue(APSInt(ArrayType->getSize())); 10173 else 10174 return InvalidType(); 10175 10176 if (++Field != Record->field_end()) 10177 return InvalidType(); 10178 10179 return true; 10180 } 10181 10182 bool RecordExprEvaluator::VisitLambdaExpr(const LambdaExpr *E) { 10183 const CXXRecordDecl *ClosureClass = E->getLambdaClass(); 10184 if (ClosureClass->isInvalidDecl()) 10185 return false; 10186 10187 const size_t NumFields = 10188 std::distance(ClosureClass->field_begin(), ClosureClass->field_end()); 10189 10190 assert(NumFields == (size_t)std::distance(E->capture_init_begin(), 10191 E->capture_init_end()) && 10192 "The number of lambda capture initializers should equal the number of " 10193 "fields within the closure type"); 10194 10195 Result = APValue(APValue::UninitStruct(), /*NumBases*/0, NumFields); 10196 // Iterate through all the lambda's closure object's fields and initialize 10197 // them. 10198 auto *CaptureInitIt = E->capture_init_begin(); 10199 bool Success = true; 10200 const ASTRecordLayout &Layout = Info.Ctx.getASTRecordLayout(ClosureClass); 10201 for (const auto *Field : ClosureClass->fields()) { 10202 assert(CaptureInitIt != E->capture_init_end()); 10203 // Get the initializer for this field 10204 Expr *const CurFieldInit = *CaptureInitIt++; 10205 10206 // If there is no initializer, either this is a VLA or an error has 10207 // occurred. 10208 if (!CurFieldInit) 10209 return Error(E); 10210 10211 LValue Subobject = This; 10212 10213 if (!HandleLValueMember(Info, E, Subobject, Field, &Layout)) 10214 return false; 10215 10216 APValue &FieldVal = Result.getStructField(Field->getFieldIndex()); 10217 if (!EvaluateInPlace(FieldVal, Info, Subobject, CurFieldInit)) { 10218 if (!Info.keepEvaluatingAfterFailure()) 10219 return false; 10220 Success = false; 10221 } 10222 } 10223 return Success; 10224 } 10225 10226 static bool EvaluateRecord(const Expr *E, const LValue &This, 10227 APValue &Result, EvalInfo &Info) { 10228 assert(!E->isValueDependent()); 10229 assert(E->isPRValue() && E->getType()->isRecordType() && 10230 "can't evaluate expression as a record rvalue"); 10231 return RecordExprEvaluator(Info, This, Result).Visit(E); 10232 } 10233 10234 //===----------------------------------------------------------------------===// 10235 // Temporary Evaluation 10236 // 10237 // Temporaries are represented in the AST as rvalues, but generally behave like 10238 // lvalues. The full-object of which the temporary is a subobject is implicitly 10239 // materialized so that a reference can bind to it. 10240 //===----------------------------------------------------------------------===// 10241 namespace { 10242 class TemporaryExprEvaluator 10243 : public LValueExprEvaluatorBase<TemporaryExprEvaluator> { 10244 public: 10245 TemporaryExprEvaluator(EvalInfo &Info, LValue &Result) : 10246 LValueExprEvaluatorBaseTy(Info, Result, false) {} 10247 10248 /// Visit an expression which constructs the value of this temporary. 10249 bool VisitConstructExpr(const Expr *E) { 10250 APValue &Value = Info.CurrentCall->createTemporary( 10251 E, E->getType(), ScopeKind::FullExpression, Result); 10252 return EvaluateInPlace(Value, Info, Result, E); 10253 } 10254 10255 bool VisitCastExpr(const CastExpr *E) { 10256 switch (E->getCastKind()) { 10257 default: 10258 return LValueExprEvaluatorBaseTy::VisitCastExpr(E); 10259 10260 case CK_ConstructorConversion: 10261 return VisitConstructExpr(E->getSubExpr()); 10262 } 10263 } 10264 bool VisitInitListExpr(const InitListExpr *E) { 10265 return VisitConstructExpr(E); 10266 } 10267 bool VisitCXXConstructExpr(const CXXConstructExpr *E) { 10268 return VisitConstructExpr(E); 10269 } 10270 bool VisitCallExpr(const CallExpr *E) { 10271 return VisitConstructExpr(E); 10272 } 10273 bool VisitCXXStdInitializerListExpr(const CXXStdInitializerListExpr *E) { 10274 return VisitConstructExpr(E); 10275 } 10276 bool VisitLambdaExpr(const LambdaExpr *E) { 10277 return VisitConstructExpr(E); 10278 } 10279 }; 10280 } // end anonymous namespace 10281 10282 /// Evaluate an expression of record type as a temporary. 10283 static bool EvaluateTemporary(const Expr *E, LValue &Result, EvalInfo &Info) { 10284 assert(!E->isValueDependent()); 10285 assert(E->isPRValue() && E->getType()->isRecordType()); 10286 return TemporaryExprEvaluator(Info, Result).Visit(E); 10287 } 10288 10289 //===----------------------------------------------------------------------===// 10290 // Vector Evaluation 10291 //===----------------------------------------------------------------------===// 10292 10293 namespace { 10294 class VectorExprEvaluator 10295 : public ExprEvaluatorBase<VectorExprEvaluator> { 10296 APValue &Result; 10297 public: 10298 10299 VectorExprEvaluator(EvalInfo &info, APValue &Result) 10300 : ExprEvaluatorBaseTy(info), Result(Result) {} 10301 10302 bool Success(ArrayRef<APValue> V, const Expr *E) { 10303 assert(V.size() == E->getType()->castAs<VectorType>()->getNumElements()); 10304 // FIXME: remove this APValue copy. 10305 Result = APValue(V.data(), V.size()); 10306 return true; 10307 } 10308 bool Success(const APValue &V, const Expr *E) { 10309 assert(V.isVector()); 10310 Result = V; 10311 return true; 10312 } 10313 bool ZeroInitialization(const Expr *E); 10314 10315 bool VisitUnaryReal(const UnaryOperator *E) 10316 { return Visit(E->getSubExpr()); } 10317 bool VisitCastExpr(const CastExpr* E); 10318 bool VisitInitListExpr(const InitListExpr *E); 10319 bool VisitUnaryImag(const UnaryOperator *E); 10320 bool VisitBinaryOperator(const BinaryOperator *E); 10321 bool VisitUnaryOperator(const UnaryOperator *E); 10322 // FIXME: Missing: conditional operator (for GNU 10323 // conditional select), shufflevector, ExtVectorElementExpr 10324 }; 10325 } // end anonymous namespace 10326 10327 static bool EvaluateVector(const Expr* E, APValue& Result, EvalInfo &Info) { 10328 assert(E->isPRValue() && E->getType()->isVectorType() && 10329 "not a vector prvalue"); 10330 return VectorExprEvaluator(Info, Result).Visit(E); 10331 } 10332 10333 bool VectorExprEvaluator::VisitCastExpr(const CastExpr *E) { 10334 const VectorType *VTy = E->getType()->castAs<VectorType>(); 10335 unsigned NElts = VTy->getNumElements(); 10336 10337 const Expr *SE = E->getSubExpr(); 10338 QualType SETy = SE->getType(); 10339 10340 switch (E->getCastKind()) { 10341 case CK_VectorSplat: { 10342 APValue Val = APValue(); 10343 if (SETy->isIntegerType()) { 10344 APSInt IntResult; 10345 if (!EvaluateInteger(SE, IntResult, Info)) 10346 return false; 10347 Val = APValue(std::move(IntResult)); 10348 } else if (SETy->isRealFloatingType()) { 10349 APFloat FloatResult(0.0); 10350 if (!EvaluateFloat(SE, FloatResult, Info)) 10351 return false; 10352 Val = APValue(std::move(FloatResult)); 10353 } else { 10354 return Error(E); 10355 } 10356 10357 // Splat and create vector APValue. 10358 SmallVector<APValue, 4> Elts(NElts, Val); 10359 return Success(Elts, E); 10360 } 10361 case CK_BitCast: { 10362 // Evaluate the operand into an APInt we can extract from. 10363 llvm::APInt SValInt; 10364 if (!EvalAndBitcastToAPInt(Info, SE, SValInt)) 10365 return false; 10366 // Extract the elements 10367 QualType EltTy = VTy->getElementType(); 10368 unsigned EltSize = Info.Ctx.getTypeSize(EltTy); 10369 bool BigEndian = Info.Ctx.getTargetInfo().isBigEndian(); 10370 SmallVector<APValue, 4> Elts; 10371 if (EltTy->isRealFloatingType()) { 10372 const llvm::fltSemantics &Sem = Info.Ctx.getFloatTypeSemantics(EltTy); 10373 unsigned FloatEltSize = EltSize; 10374 if (&Sem == &APFloat::x87DoubleExtended()) 10375 FloatEltSize = 80; 10376 for (unsigned i = 0; i < NElts; i++) { 10377 llvm::APInt Elt; 10378 if (BigEndian) 10379 Elt = SValInt.rotl(i * EltSize + FloatEltSize).trunc(FloatEltSize); 10380 else 10381 Elt = SValInt.rotr(i * EltSize).trunc(FloatEltSize); 10382 Elts.push_back(APValue(APFloat(Sem, Elt))); 10383 } 10384 } else if (EltTy->isIntegerType()) { 10385 for (unsigned i = 0; i < NElts; i++) { 10386 llvm::APInt Elt; 10387 if (BigEndian) 10388 Elt = SValInt.rotl(i*EltSize+EltSize).zextOrTrunc(EltSize); 10389 else 10390 Elt = SValInt.rotr(i*EltSize).zextOrTrunc(EltSize); 10391 Elts.push_back(APValue(APSInt(Elt, !EltTy->isSignedIntegerType()))); 10392 } 10393 } else { 10394 return Error(E); 10395 } 10396 return Success(Elts, E); 10397 } 10398 default: 10399 return ExprEvaluatorBaseTy::VisitCastExpr(E); 10400 } 10401 } 10402 10403 bool 10404 VectorExprEvaluator::VisitInitListExpr(const InitListExpr *E) { 10405 const VectorType *VT = E->getType()->castAs<VectorType>(); 10406 unsigned NumInits = E->getNumInits(); 10407 unsigned NumElements = VT->getNumElements(); 10408 10409 QualType EltTy = VT->getElementType(); 10410 SmallVector<APValue, 4> Elements; 10411 10412 // The number of initializers can be less than the number of 10413 // vector elements. For OpenCL, this can be due to nested vector 10414 // initialization. For GCC compatibility, missing trailing elements 10415 // should be initialized with zeroes. 10416 unsigned CountInits = 0, CountElts = 0; 10417 while (CountElts < NumElements) { 10418 // Handle nested vector initialization. 10419 if (CountInits < NumInits 10420 && E->getInit(CountInits)->getType()->isVectorType()) { 10421 APValue v; 10422 if (!EvaluateVector(E->getInit(CountInits), v, Info)) 10423 return Error(E); 10424 unsigned vlen = v.getVectorLength(); 10425 for (unsigned j = 0; j < vlen; j++) 10426 Elements.push_back(v.getVectorElt(j)); 10427 CountElts += vlen; 10428 } else if (EltTy->isIntegerType()) { 10429 llvm::APSInt sInt(32); 10430 if (CountInits < NumInits) { 10431 if (!EvaluateInteger(E->getInit(CountInits), sInt, Info)) 10432 return false; 10433 } else // trailing integer zero. 10434 sInt = Info.Ctx.MakeIntValue(0, EltTy); 10435 Elements.push_back(APValue(sInt)); 10436 CountElts++; 10437 } else { 10438 llvm::APFloat f(0.0); 10439 if (CountInits < NumInits) { 10440 if (!EvaluateFloat(E->getInit(CountInits), f, Info)) 10441 return false; 10442 } else // trailing float zero. 10443 f = APFloat::getZero(Info.Ctx.getFloatTypeSemantics(EltTy)); 10444 Elements.push_back(APValue(f)); 10445 CountElts++; 10446 } 10447 CountInits++; 10448 } 10449 return Success(Elements, E); 10450 } 10451 10452 bool 10453 VectorExprEvaluator::ZeroInitialization(const Expr *E) { 10454 const auto *VT = E->getType()->castAs<VectorType>(); 10455 QualType EltTy = VT->getElementType(); 10456 APValue ZeroElement; 10457 if (EltTy->isIntegerType()) 10458 ZeroElement = APValue(Info.Ctx.MakeIntValue(0, EltTy)); 10459 else 10460 ZeroElement = 10461 APValue(APFloat::getZero(Info.Ctx.getFloatTypeSemantics(EltTy))); 10462 10463 SmallVector<APValue, 4> Elements(VT->getNumElements(), ZeroElement); 10464 return Success(Elements, E); 10465 } 10466 10467 bool VectorExprEvaluator::VisitUnaryImag(const UnaryOperator *E) { 10468 VisitIgnoredValue(E->getSubExpr()); 10469 return ZeroInitialization(E); 10470 } 10471 10472 bool VectorExprEvaluator::VisitBinaryOperator(const BinaryOperator *E) { 10473 BinaryOperatorKind Op = E->getOpcode(); 10474 assert(Op != BO_PtrMemD && Op != BO_PtrMemI && Op != BO_Cmp && 10475 "Operation not supported on vector types"); 10476 10477 if (Op == BO_Comma) 10478 return ExprEvaluatorBaseTy::VisitBinaryOperator(E); 10479 10480 Expr *LHS = E->getLHS(); 10481 Expr *RHS = E->getRHS(); 10482 10483 assert(LHS->getType()->isVectorType() && RHS->getType()->isVectorType() && 10484 "Must both be vector types"); 10485 // Checking JUST the types are the same would be fine, except shifts don't 10486 // need to have their types be the same (since you always shift by an int). 10487 assert(LHS->getType()->castAs<VectorType>()->getNumElements() == 10488 E->getType()->castAs<VectorType>()->getNumElements() && 10489 RHS->getType()->castAs<VectorType>()->getNumElements() == 10490 E->getType()->castAs<VectorType>()->getNumElements() && 10491 "All operands must be the same size."); 10492 10493 APValue LHSValue; 10494 APValue RHSValue; 10495 bool LHSOK = Evaluate(LHSValue, Info, LHS); 10496 if (!LHSOK && !Info.noteFailure()) 10497 return false; 10498 if (!Evaluate(RHSValue, Info, RHS) || !LHSOK) 10499 return false; 10500 10501 if (!handleVectorVectorBinOp(Info, E, Op, LHSValue, RHSValue)) 10502 return false; 10503 10504 return Success(LHSValue, E); 10505 } 10506 10507 static llvm::Optional<APValue> handleVectorUnaryOperator(ASTContext &Ctx, 10508 QualType ResultTy, 10509 UnaryOperatorKind Op, 10510 APValue Elt) { 10511 switch (Op) { 10512 case UO_Plus: 10513 // Nothing to do here. 10514 return Elt; 10515 case UO_Minus: 10516 if (Elt.getKind() == APValue::Int) { 10517 Elt.getInt().negate(); 10518 } else { 10519 assert(Elt.getKind() == APValue::Float && 10520 "Vector can only be int or float type"); 10521 Elt.getFloat().changeSign(); 10522 } 10523 return Elt; 10524 case UO_Not: 10525 // This is only valid for integral types anyway, so we don't have to handle 10526 // float here. 10527 assert(Elt.getKind() == APValue::Int && 10528 "Vector operator ~ can only be int"); 10529 Elt.getInt().flipAllBits(); 10530 return Elt; 10531 case UO_LNot: { 10532 if (Elt.getKind() == APValue::Int) { 10533 Elt.getInt() = !Elt.getInt(); 10534 // operator ! on vectors returns -1 for 'truth', so negate it. 10535 Elt.getInt().negate(); 10536 return Elt; 10537 } 10538 assert(Elt.getKind() == APValue::Float && 10539 "Vector can only be int or float type"); 10540 // Float types result in an int of the same size, but -1 for true, or 0 for 10541 // false. 10542 APSInt EltResult{Ctx.getIntWidth(ResultTy), 10543 ResultTy->isUnsignedIntegerType()}; 10544 if (Elt.getFloat().isZero()) 10545 EltResult.setAllBits(); 10546 else 10547 EltResult.clearAllBits(); 10548 10549 return APValue{EltResult}; 10550 } 10551 default: 10552 // FIXME: Implement the rest of the unary operators. 10553 return llvm::None; 10554 } 10555 } 10556 10557 bool VectorExprEvaluator::VisitUnaryOperator(const UnaryOperator *E) { 10558 Expr *SubExpr = E->getSubExpr(); 10559 const auto *VD = SubExpr->getType()->castAs<VectorType>(); 10560 // This result element type differs in the case of negating a floating point 10561 // vector, since the result type is the a vector of the equivilant sized 10562 // integer. 10563 const QualType ResultEltTy = VD->getElementType(); 10564 UnaryOperatorKind Op = E->getOpcode(); 10565 10566 APValue SubExprValue; 10567 if (!Evaluate(SubExprValue, Info, SubExpr)) 10568 return false; 10569 10570 // FIXME: This vector evaluator someday needs to be changed to be LValue 10571 // aware/keep LValue information around, rather than dealing with just vector 10572 // types directly. Until then, we cannot handle cases where the operand to 10573 // these unary operators is an LValue. The only case I've been able to see 10574 // cause this is operator++ assigning to a member expression (only valid in 10575 // altivec compilations) in C mode, so this shouldn't limit us too much. 10576 if (SubExprValue.isLValue()) 10577 return false; 10578 10579 assert(SubExprValue.getVectorLength() == VD->getNumElements() && 10580 "Vector length doesn't match type?"); 10581 10582 SmallVector<APValue, 4> ResultElements; 10583 for (unsigned EltNum = 0; EltNum < VD->getNumElements(); ++EltNum) { 10584 llvm::Optional<APValue> Elt = handleVectorUnaryOperator( 10585 Info.Ctx, ResultEltTy, Op, SubExprValue.getVectorElt(EltNum)); 10586 if (!Elt) 10587 return false; 10588 ResultElements.push_back(*Elt); 10589 } 10590 return Success(APValue(ResultElements.data(), ResultElements.size()), E); 10591 } 10592 10593 //===----------------------------------------------------------------------===// 10594 // Array Evaluation 10595 //===----------------------------------------------------------------------===// 10596 10597 namespace { 10598 class ArrayExprEvaluator 10599 : public ExprEvaluatorBase<ArrayExprEvaluator> { 10600 const LValue &This; 10601 APValue &Result; 10602 public: 10603 10604 ArrayExprEvaluator(EvalInfo &Info, const LValue &This, APValue &Result) 10605 : ExprEvaluatorBaseTy(Info), This(This), Result(Result) {} 10606 10607 bool Success(const APValue &V, const Expr *E) { 10608 assert(V.isArray() && "expected array"); 10609 Result = V; 10610 return true; 10611 } 10612 10613 bool ZeroInitialization(const Expr *E) { 10614 const ConstantArrayType *CAT = 10615 Info.Ctx.getAsConstantArrayType(E->getType()); 10616 if (!CAT) { 10617 if (E->getType()->isIncompleteArrayType()) { 10618 // We can be asked to zero-initialize a flexible array member; this 10619 // is represented as an ImplicitValueInitExpr of incomplete array 10620 // type. In this case, the array has zero elements. 10621 Result = APValue(APValue::UninitArray(), 0, 0); 10622 return true; 10623 } 10624 // FIXME: We could handle VLAs here. 10625 return Error(E); 10626 } 10627 10628 Result = APValue(APValue::UninitArray(), 0, 10629 CAT->getSize().getZExtValue()); 10630 if (!Result.hasArrayFiller()) 10631 return true; 10632 10633 // Zero-initialize all elements. 10634 LValue Subobject = This; 10635 Subobject.addArray(Info, E, CAT); 10636 ImplicitValueInitExpr VIE(CAT->getElementType()); 10637 return EvaluateInPlace(Result.getArrayFiller(), Info, Subobject, &VIE); 10638 } 10639 10640 bool VisitCallExpr(const CallExpr *E) { 10641 return handleCallExpr(E, Result, &This); 10642 } 10643 bool VisitInitListExpr(const InitListExpr *E, 10644 QualType AllocType = QualType()); 10645 bool VisitArrayInitLoopExpr(const ArrayInitLoopExpr *E); 10646 bool VisitCXXConstructExpr(const CXXConstructExpr *E); 10647 bool VisitCXXConstructExpr(const CXXConstructExpr *E, 10648 const LValue &Subobject, 10649 APValue *Value, QualType Type); 10650 bool VisitStringLiteral(const StringLiteral *E, 10651 QualType AllocType = QualType()) { 10652 expandStringLiteral(Info, E, Result, AllocType); 10653 return true; 10654 } 10655 }; 10656 } // end anonymous namespace 10657 10658 static bool EvaluateArray(const Expr *E, const LValue &This, 10659 APValue &Result, EvalInfo &Info) { 10660 assert(!E->isValueDependent()); 10661 assert(E->isPRValue() && E->getType()->isArrayType() && 10662 "not an array prvalue"); 10663 return ArrayExprEvaluator(Info, This, Result).Visit(E); 10664 } 10665 10666 static bool EvaluateArrayNewInitList(EvalInfo &Info, LValue &This, 10667 APValue &Result, const InitListExpr *ILE, 10668 QualType AllocType) { 10669 assert(!ILE->isValueDependent()); 10670 assert(ILE->isPRValue() && ILE->getType()->isArrayType() && 10671 "not an array prvalue"); 10672 return ArrayExprEvaluator(Info, This, Result) 10673 .VisitInitListExpr(ILE, AllocType); 10674 } 10675 10676 static bool EvaluateArrayNewConstructExpr(EvalInfo &Info, LValue &This, 10677 APValue &Result, 10678 const CXXConstructExpr *CCE, 10679 QualType AllocType) { 10680 assert(!CCE->isValueDependent()); 10681 assert(CCE->isPRValue() && CCE->getType()->isArrayType() && 10682 "not an array prvalue"); 10683 return ArrayExprEvaluator(Info, This, Result) 10684 .VisitCXXConstructExpr(CCE, This, &Result, AllocType); 10685 } 10686 10687 // Return true iff the given array filler may depend on the element index. 10688 static bool MaybeElementDependentArrayFiller(const Expr *FillerExpr) { 10689 // For now, just allow non-class value-initialization and initialization 10690 // lists comprised of them. 10691 if (isa<ImplicitValueInitExpr>(FillerExpr)) 10692 return false; 10693 if (const InitListExpr *ILE = dyn_cast<InitListExpr>(FillerExpr)) { 10694 for (unsigned I = 0, E = ILE->getNumInits(); I != E; ++I) { 10695 if (MaybeElementDependentArrayFiller(ILE->getInit(I))) 10696 return true; 10697 } 10698 return false; 10699 } 10700 return true; 10701 } 10702 10703 bool ArrayExprEvaluator::VisitInitListExpr(const InitListExpr *E, 10704 QualType AllocType) { 10705 const ConstantArrayType *CAT = Info.Ctx.getAsConstantArrayType( 10706 AllocType.isNull() ? E->getType() : AllocType); 10707 if (!CAT) 10708 return Error(E); 10709 10710 // C++11 [dcl.init.string]p1: A char array [...] can be initialized by [...] 10711 // an appropriately-typed string literal enclosed in braces. 10712 if (E->isStringLiteralInit()) { 10713 auto *SL = dyn_cast<StringLiteral>(E->getInit(0)->IgnoreParenImpCasts()); 10714 // FIXME: Support ObjCEncodeExpr here once we support it in 10715 // ArrayExprEvaluator generally. 10716 if (!SL) 10717 return Error(E); 10718 return VisitStringLiteral(SL, AllocType); 10719 } 10720 // Any other transparent list init will need proper handling of the 10721 // AllocType; we can't just recurse to the inner initializer. 10722 assert(!E->isTransparent() && 10723 "transparent array list initialization is not string literal init?"); 10724 10725 bool Success = true; 10726 10727 assert((!Result.isArray() || Result.getArrayInitializedElts() == 0) && 10728 "zero-initialized array shouldn't have any initialized elts"); 10729 APValue Filler; 10730 if (Result.isArray() && Result.hasArrayFiller()) 10731 Filler = Result.getArrayFiller(); 10732 10733 unsigned NumEltsToInit = E->getNumInits(); 10734 unsigned NumElts = CAT->getSize().getZExtValue(); 10735 const Expr *FillerExpr = E->hasArrayFiller() ? E->getArrayFiller() : nullptr; 10736 10737 // If the initializer might depend on the array index, run it for each 10738 // array element. 10739 if (NumEltsToInit != NumElts && MaybeElementDependentArrayFiller(FillerExpr)) 10740 NumEltsToInit = NumElts; 10741 10742 LLVM_DEBUG(llvm::dbgs() << "The number of elements to initialize: " 10743 << NumEltsToInit << ".\n"); 10744 10745 Result = APValue(APValue::UninitArray(), NumEltsToInit, NumElts); 10746 10747 // If the array was previously zero-initialized, preserve the 10748 // zero-initialized values. 10749 if (Filler.hasValue()) { 10750 for (unsigned I = 0, E = Result.getArrayInitializedElts(); I != E; ++I) 10751 Result.getArrayInitializedElt(I) = Filler; 10752 if (Result.hasArrayFiller()) 10753 Result.getArrayFiller() = Filler; 10754 } 10755 10756 LValue Subobject = This; 10757 Subobject.addArray(Info, E, CAT); 10758 for (unsigned Index = 0; Index != NumEltsToInit; ++Index) { 10759 const Expr *Init = 10760 Index < E->getNumInits() ? E->getInit(Index) : FillerExpr; 10761 if (!EvaluateInPlace(Result.getArrayInitializedElt(Index), 10762 Info, Subobject, Init) || 10763 !HandleLValueArrayAdjustment(Info, Init, Subobject, 10764 CAT->getElementType(), 1)) { 10765 if (!Info.noteFailure()) 10766 return false; 10767 Success = false; 10768 } 10769 } 10770 10771 if (!Result.hasArrayFiller()) 10772 return Success; 10773 10774 // If we get here, we have a trivial filler, which we can just evaluate 10775 // once and splat over the rest of the array elements. 10776 assert(FillerExpr && "no array filler for incomplete init list"); 10777 return EvaluateInPlace(Result.getArrayFiller(), Info, Subobject, 10778 FillerExpr) && Success; 10779 } 10780 10781 bool ArrayExprEvaluator::VisitArrayInitLoopExpr(const ArrayInitLoopExpr *E) { 10782 LValue CommonLV; 10783 if (E->getCommonExpr() && 10784 !Evaluate(Info.CurrentCall->createTemporary( 10785 E->getCommonExpr(), 10786 getStorageType(Info.Ctx, E->getCommonExpr()), 10787 ScopeKind::FullExpression, CommonLV), 10788 Info, E->getCommonExpr()->getSourceExpr())) 10789 return false; 10790 10791 auto *CAT = cast<ConstantArrayType>(E->getType()->castAsArrayTypeUnsafe()); 10792 10793 uint64_t Elements = CAT->getSize().getZExtValue(); 10794 Result = APValue(APValue::UninitArray(), Elements, Elements); 10795 10796 LValue Subobject = This; 10797 Subobject.addArray(Info, E, CAT); 10798 10799 bool Success = true; 10800 for (EvalInfo::ArrayInitLoopIndex Index(Info); Index != Elements; ++Index) { 10801 if (!EvaluateInPlace(Result.getArrayInitializedElt(Index), 10802 Info, Subobject, E->getSubExpr()) || 10803 !HandleLValueArrayAdjustment(Info, E, Subobject, 10804 CAT->getElementType(), 1)) { 10805 if (!Info.noteFailure()) 10806 return false; 10807 Success = false; 10808 } 10809 } 10810 10811 return Success; 10812 } 10813 10814 bool ArrayExprEvaluator::VisitCXXConstructExpr(const CXXConstructExpr *E) { 10815 return VisitCXXConstructExpr(E, This, &Result, E->getType()); 10816 } 10817 10818 bool ArrayExprEvaluator::VisitCXXConstructExpr(const CXXConstructExpr *E, 10819 const LValue &Subobject, 10820 APValue *Value, 10821 QualType Type) { 10822 bool HadZeroInit = Value->hasValue(); 10823 10824 if (const ConstantArrayType *CAT = Info.Ctx.getAsConstantArrayType(Type)) { 10825 unsigned FinalSize = CAT->getSize().getZExtValue(); 10826 10827 // Preserve the array filler if we had prior zero-initialization. 10828 APValue Filler = 10829 HadZeroInit && Value->hasArrayFiller() ? Value->getArrayFiller() 10830 : APValue(); 10831 10832 *Value = APValue(APValue::UninitArray(), 0, FinalSize); 10833 if (FinalSize == 0) 10834 return true; 10835 10836 LValue ArrayElt = Subobject; 10837 ArrayElt.addArray(Info, E, CAT); 10838 // We do the whole initialization in two passes, first for just one element, 10839 // then for the whole array. It's possible we may find out we can't do const 10840 // init in the first pass, in which case we avoid allocating a potentially 10841 // large array. We don't do more passes because expanding array requires 10842 // copying the data, which is wasteful. 10843 for (const unsigned N : {1u, FinalSize}) { 10844 unsigned OldElts = Value->getArrayInitializedElts(); 10845 if (OldElts == N) 10846 break; 10847 10848 // Expand the array to appropriate size. 10849 APValue NewValue(APValue::UninitArray(), N, FinalSize); 10850 for (unsigned I = 0; I < OldElts; ++I) 10851 NewValue.getArrayInitializedElt(I).swap( 10852 Value->getArrayInitializedElt(I)); 10853 Value->swap(NewValue); 10854 10855 if (HadZeroInit) 10856 for (unsigned I = OldElts; I < N; ++I) 10857 Value->getArrayInitializedElt(I) = Filler; 10858 10859 // Initialize the elements. 10860 for (unsigned I = OldElts; I < N; ++I) { 10861 if (!VisitCXXConstructExpr(E, ArrayElt, 10862 &Value->getArrayInitializedElt(I), 10863 CAT->getElementType()) || 10864 !HandleLValueArrayAdjustment(Info, E, ArrayElt, 10865 CAT->getElementType(), 1)) 10866 return false; 10867 // When checking for const initilization any diagnostic is considered 10868 // an error. 10869 if (Info.EvalStatus.Diag && !Info.EvalStatus.Diag->empty() && 10870 !Info.keepEvaluatingAfterFailure()) 10871 return false; 10872 } 10873 } 10874 10875 return true; 10876 } 10877 10878 if (!Type->isRecordType()) 10879 return Error(E); 10880 10881 return RecordExprEvaluator(Info, Subobject, *Value) 10882 .VisitCXXConstructExpr(E, Type); 10883 } 10884 10885 //===----------------------------------------------------------------------===// 10886 // Integer Evaluation 10887 // 10888 // As a GNU extension, we support casting pointers to sufficiently-wide integer 10889 // types and back in constant folding. Integer values are thus represented 10890 // either as an integer-valued APValue, or as an lvalue-valued APValue. 10891 //===----------------------------------------------------------------------===// 10892 10893 namespace { 10894 class IntExprEvaluator 10895 : public ExprEvaluatorBase<IntExprEvaluator> { 10896 APValue &Result; 10897 public: 10898 IntExprEvaluator(EvalInfo &info, APValue &result) 10899 : ExprEvaluatorBaseTy(info), Result(result) {} 10900 10901 bool Success(const llvm::APSInt &SI, const Expr *E, APValue &Result) { 10902 assert(E->getType()->isIntegralOrEnumerationType() && 10903 "Invalid evaluation result."); 10904 assert(SI.isSigned() == E->getType()->isSignedIntegerOrEnumerationType() && 10905 "Invalid evaluation result."); 10906 assert(SI.getBitWidth() == Info.Ctx.getIntWidth(E->getType()) && 10907 "Invalid evaluation result."); 10908 Result = APValue(SI); 10909 return true; 10910 } 10911 bool Success(const llvm::APSInt &SI, const Expr *E) { 10912 return Success(SI, E, Result); 10913 } 10914 10915 bool Success(const llvm::APInt &I, const Expr *E, APValue &Result) { 10916 assert(E->getType()->isIntegralOrEnumerationType() && 10917 "Invalid evaluation result."); 10918 assert(I.getBitWidth() == Info.Ctx.getIntWidth(E->getType()) && 10919 "Invalid evaluation result."); 10920 Result = APValue(APSInt(I)); 10921 Result.getInt().setIsUnsigned( 10922 E->getType()->isUnsignedIntegerOrEnumerationType()); 10923 return true; 10924 } 10925 bool Success(const llvm::APInt &I, const Expr *E) { 10926 return Success(I, E, Result); 10927 } 10928 10929 bool Success(uint64_t Value, const Expr *E, APValue &Result) { 10930 assert(E->getType()->isIntegralOrEnumerationType() && 10931 "Invalid evaluation result."); 10932 Result = APValue(Info.Ctx.MakeIntValue(Value, E->getType())); 10933 return true; 10934 } 10935 bool Success(uint64_t Value, const Expr *E) { 10936 return Success(Value, E, Result); 10937 } 10938 10939 bool Success(CharUnits Size, const Expr *E) { 10940 return Success(Size.getQuantity(), E); 10941 } 10942 10943 bool Success(const APValue &V, const Expr *E) { 10944 if (V.isLValue() || V.isAddrLabelDiff() || V.isIndeterminate()) { 10945 Result = V; 10946 return true; 10947 } 10948 return Success(V.getInt(), E); 10949 } 10950 10951 bool ZeroInitialization(const Expr *E) { return Success(0, E); } 10952 10953 //===--------------------------------------------------------------------===// 10954 // Visitor Methods 10955 //===--------------------------------------------------------------------===// 10956 10957 bool VisitIntegerLiteral(const IntegerLiteral *E) { 10958 return Success(E->getValue(), E); 10959 } 10960 bool VisitCharacterLiteral(const CharacterLiteral *E) { 10961 return Success(E->getValue(), E); 10962 } 10963 10964 bool CheckReferencedDecl(const Expr *E, const Decl *D); 10965 bool VisitDeclRefExpr(const DeclRefExpr *E) { 10966 if (CheckReferencedDecl(E, E->getDecl())) 10967 return true; 10968 10969 return ExprEvaluatorBaseTy::VisitDeclRefExpr(E); 10970 } 10971 bool VisitMemberExpr(const MemberExpr *E) { 10972 if (CheckReferencedDecl(E, E->getMemberDecl())) { 10973 VisitIgnoredBaseExpression(E->getBase()); 10974 return true; 10975 } 10976 10977 return ExprEvaluatorBaseTy::VisitMemberExpr(E); 10978 } 10979 10980 bool VisitCallExpr(const CallExpr *E); 10981 bool VisitBuiltinCallExpr(const CallExpr *E, unsigned BuiltinOp); 10982 bool VisitBinaryOperator(const BinaryOperator *E); 10983 bool VisitOffsetOfExpr(const OffsetOfExpr *E); 10984 bool VisitUnaryOperator(const UnaryOperator *E); 10985 10986 bool VisitCastExpr(const CastExpr* E); 10987 bool VisitUnaryExprOrTypeTraitExpr(const UnaryExprOrTypeTraitExpr *E); 10988 10989 bool VisitCXXBoolLiteralExpr(const CXXBoolLiteralExpr *E) { 10990 return Success(E->getValue(), E); 10991 } 10992 10993 bool VisitObjCBoolLiteralExpr(const ObjCBoolLiteralExpr *E) { 10994 return Success(E->getValue(), E); 10995 } 10996 10997 bool VisitArrayInitIndexExpr(const ArrayInitIndexExpr *E) { 10998 if (Info.ArrayInitIndex == uint64_t(-1)) { 10999 // We were asked to evaluate this subexpression independent of the 11000 // enclosing ArrayInitLoopExpr. We can't do that. 11001 Info.FFDiag(E); 11002 return false; 11003 } 11004 return Success(Info.ArrayInitIndex, E); 11005 } 11006 11007 // Note, GNU defines __null as an integer, not a pointer. 11008 bool VisitGNUNullExpr(const GNUNullExpr *E) { 11009 return ZeroInitialization(E); 11010 } 11011 11012 bool VisitTypeTraitExpr(const TypeTraitExpr *E) { 11013 return Success(E->getValue(), E); 11014 } 11015 11016 bool VisitArrayTypeTraitExpr(const ArrayTypeTraitExpr *E) { 11017 return Success(E->getValue(), E); 11018 } 11019 11020 bool VisitExpressionTraitExpr(const ExpressionTraitExpr *E) { 11021 return Success(E->getValue(), E); 11022 } 11023 11024 bool VisitUnaryReal(const UnaryOperator *E); 11025 bool VisitUnaryImag(const UnaryOperator *E); 11026 11027 bool VisitCXXNoexceptExpr(const CXXNoexceptExpr *E); 11028 bool VisitSizeOfPackExpr(const SizeOfPackExpr *E); 11029 bool VisitSourceLocExpr(const SourceLocExpr *E); 11030 bool VisitConceptSpecializationExpr(const ConceptSpecializationExpr *E); 11031 bool VisitRequiresExpr(const RequiresExpr *E); 11032 // FIXME: Missing: array subscript of vector, member of vector 11033 }; 11034 11035 class FixedPointExprEvaluator 11036 : public ExprEvaluatorBase<FixedPointExprEvaluator> { 11037 APValue &Result; 11038 11039 public: 11040 FixedPointExprEvaluator(EvalInfo &info, APValue &result) 11041 : ExprEvaluatorBaseTy(info), Result(result) {} 11042 11043 bool Success(const llvm::APInt &I, const Expr *E) { 11044 return Success( 11045 APFixedPoint(I, Info.Ctx.getFixedPointSemantics(E->getType())), E); 11046 } 11047 11048 bool Success(uint64_t Value, const Expr *E) { 11049 return Success( 11050 APFixedPoint(Value, Info.Ctx.getFixedPointSemantics(E->getType())), E); 11051 } 11052 11053 bool Success(const APValue &V, const Expr *E) { 11054 return Success(V.getFixedPoint(), E); 11055 } 11056 11057 bool Success(const APFixedPoint &V, const Expr *E) { 11058 assert(E->getType()->isFixedPointType() && "Invalid evaluation result."); 11059 assert(V.getWidth() == Info.Ctx.getIntWidth(E->getType()) && 11060 "Invalid evaluation result."); 11061 Result = APValue(V); 11062 return true; 11063 } 11064 11065 //===--------------------------------------------------------------------===// 11066 // Visitor Methods 11067 //===--------------------------------------------------------------------===// 11068 11069 bool VisitFixedPointLiteral(const FixedPointLiteral *E) { 11070 return Success(E->getValue(), E); 11071 } 11072 11073 bool VisitCastExpr(const CastExpr *E); 11074 bool VisitUnaryOperator(const UnaryOperator *E); 11075 bool VisitBinaryOperator(const BinaryOperator *E); 11076 }; 11077 } // end anonymous namespace 11078 11079 /// EvaluateIntegerOrLValue - Evaluate an rvalue integral-typed expression, and 11080 /// produce either the integer value or a pointer. 11081 /// 11082 /// GCC has a heinous extension which folds casts between pointer types and 11083 /// pointer-sized integral types. We support this by allowing the evaluation of 11084 /// an integer rvalue to produce a pointer (represented as an lvalue) instead. 11085 /// Some simple arithmetic on such values is supported (they are treated much 11086 /// like char*). 11087 static bool EvaluateIntegerOrLValue(const Expr *E, APValue &Result, 11088 EvalInfo &Info) { 11089 assert(!E->isValueDependent()); 11090 assert(E->isPRValue() && E->getType()->isIntegralOrEnumerationType()); 11091 return IntExprEvaluator(Info, Result).Visit(E); 11092 } 11093 11094 static bool EvaluateInteger(const Expr *E, APSInt &Result, EvalInfo &Info) { 11095 assert(!E->isValueDependent()); 11096 APValue Val; 11097 if (!EvaluateIntegerOrLValue(E, Val, Info)) 11098 return false; 11099 if (!Val.isInt()) { 11100 // FIXME: It would be better to produce the diagnostic for casting 11101 // a pointer to an integer. 11102 Info.FFDiag(E, diag::note_invalid_subexpr_in_const_expr); 11103 return false; 11104 } 11105 Result = Val.getInt(); 11106 return true; 11107 } 11108 11109 bool IntExprEvaluator::VisitSourceLocExpr(const SourceLocExpr *E) { 11110 APValue Evaluated = E->EvaluateInContext( 11111 Info.Ctx, Info.CurrentCall->CurSourceLocExprScope.getDefaultExpr()); 11112 return Success(Evaluated, E); 11113 } 11114 11115 static bool EvaluateFixedPoint(const Expr *E, APFixedPoint &Result, 11116 EvalInfo &Info) { 11117 assert(!E->isValueDependent()); 11118 if (E->getType()->isFixedPointType()) { 11119 APValue Val; 11120 if (!FixedPointExprEvaluator(Info, Val).Visit(E)) 11121 return false; 11122 if (!Val.isFixedPoint()) 11123 return false; 11124 11125 Result = Val.getFixedPoint(); 11126 return true; 11127 } 11128 return false; 11129 } 11130 11131 static bool EvaluateFixedPointOrInteger(const Expr *E, APFixedPoint &Result, 11132 EvalInfo &Info) { 11133 assert(!E->isValueDependent()); 11134 if (E->getType()->isIntegerType()) { 11135 auto FXSema = Info.Ctx.getFixedPointSemantics(E->getType()); 11136 APSInt Val; 11137 if (!EvaluateInteger(E, Val, Info)) 11138 return false; 11139 Result = APFixedPoint(Val, FXSema); 11140 return true; 11141 } else if (E->getType()->isFixedPointType()) { 11142 return EvaluateFixedPoint(E, Result, Info); 11143 } 11144 return false; 11145 } 11146 11147 /// Check whether the given declaration can be directly converted to an integral 11148 /// rvalue. If not, no diagnostic is produced; there are other things we can 11149 /// try. 11150 bool IntExprEvaluator::CheckReferencedDecl(const Expr* E, const Decl* D) { 11151 // Enums are integer constant exprs. 11152 if (const EnumConstantDecl *ECD = dyn_cast<EnumConstantDecl>(D)) { 11153 // Check for signedness/width mismatches between E type and ECD value. 11154 bool SameSign = (ECD->getInitVal().isSigned() 11155 == E->getType()->isSignedIntegerOrEnumerationType()); 11156 bool SameWidth = (ECD->getInitVal().getBitWidth() 11157 == Info.Ctx.getIntWidth(E->getType())); 11158 if (SameSign && SameWidth) 11159 return Success(ECD->getInitVal(), E); 11160 else { 11161 // Get rid of mismatch (otherwise Success assertions will fail) 11162 // by computing a new value matching the type of E. 11163 llvm::APSInt Val = ECD->getInitVal(); 11164 if (!SameSign) 11165 Val.setIsSigned(!ECD->getInitVal().isSigned()); 11166 if (!SameWidth) 11167 Val = Val.extOrTrunc(Info.Ctx.getIntWidth(E->getType())); 11168 return Success(Val, E); 11169 } 11170 } 11171 return false; 11172 } 11173 11174 /// Values returned by __builtin_classify_type, chosen to match the values 11175 /// produced by GCC's builtin. 11176 enum class GCCTypeClass { 11177 None = -1, 11178 Void = 0, 11179 Integer = 1, 11180 // GCC reserves 2 for character types, but instead classifies them as 11181 // integers. 11182 Enum = 3, 11183 Bool = 4, 11184 Pointer = 5, 11185 // GCC reserves 6 for references, but appears to never use it (because 11186 // expressions never have reference type, presumably). 11187 PointerToDataMember = 7, 11188 RealFloat = 8, 11189 Complex = 9, 11190 // GCC reserves 10 for functions, but does not use it since GCC version 6 due 11191 // to decay to pointer. (Prior to version 6 it was only used in C++ mode). 11192 // GCC claims to reserve 11 for pointers to member functions, but *actually* 11193 // uses 12 for that purpose, same as for a class or struct. Maybe it 11194 // internally implements a pointer to member as a struct? Who knows. 11195 PointerToMemberFunction = 12, // Not a bug, see above. 11196 ClassOrStruct = 12, 11197 Union = 13, 11198 // GCC reserves 14 for arrays, but does not use it since GCC version 6 due to 11199 // decay to pointer. (Prior to version 6 it was only used in C++ mode). 11200 // GCC reserves 15 for strings, but actually uses 5 (pointer) for string 11201 // literals. 11202 }; 11203 11204 /// EvaluateBuiltinClassifyType - Evaluate __builtin_classify_type the same way 11205 /// as GCC. 11206 static GCCTypeClass 11207 EvaluateBuiltinClassifyType(QualType T, const LangOptions &LangOpts) { 11208 assert(!T->isDependentType() && "unexpected dependent type"); 11209 11210 QualType CanTy = T.getCanonicalType(); 11211 const BuiltinType *BT = dyn_cast<BuiltinType>(CanTy); 11212 11213 switch (CanTy->getTypeClass()) { 11214 #define TYPE(ID, BASE) 11215 #define DEPENDENT_TYPE(ID, BASE) case Type::ID: 11216 #define NON_CANONICAL_TYPE(ID, BASE) case Type::ID: 11217 #define NON_CANONICAL_UNLESS_DEPENDENT_TYPE(ID, BASE) case Type::ID: 11218 #include "clang/AST/TypeNodes.inc" 11219 case Type::Auto: 11220 case Type::DeducedTemplateSpecialization: 11221 llvm_unreachable("unexpected non-canonical or dependent type"); 11222 11223 case Type::Builtin: 11224 switch (BT->getKind()) { 11225 #define BUILTIN_TYPE(ID, SINGLETON_ID) 11226 #define SIGNED_TYPE(ID, SINGLETON_ID) \ 11227 case BuiltinType::ID: return GCCTypeClass::Integer; 11228 #define FLOATING_TYPE(ID, SINGLETON_ID) \ 11229 case BuiltinType::ID: return GCCTypeClass::RealFloat; 11230 #define PLACEHOLDER_TYPE(ID, SINGLETON_ID) \ 11231 case BuiltinType::ID: break; 11232 #include "clang/AST/BuiltinTypes.def" 11233 case BuiltinType::Void: 11234 return GCCTypeClass::Void; 11235 11236 case BuiltinType::Bool: 11237 return GCCTypeClass::Bool; 11238 11239 case BuiltinType::Char_U: 11240 case BuiltinType::UChar: 11241 case BuiltinType::WChar_U: 11242 case BuiltinType::Char8: 11243 case BuiltinType::Char16: 11244 case BuiltinType::Char32: 11245 case BuiltinType::UShort: 11246 case BuiltinType::UInt: 11247 case BuiltinType::ULong: 11248 case BuiltinType::ULongLong: 11249 case BuiltinType::UInt128: 11250 return GCCTypeClass::Integer; 11251 11252 case BuiltinType::UShortAccum: 11253 case BuiltinType::UAccum: 11254 case BuiltinType::ULongAccum: 11255 case BuiltinType::UShortFract: 11256 case BuiltinType::UFract: 11257 case BuiltinType::ULongFract: 11258 case BuiltinType::SatUShortAccum: 11259 case BuiltinType::SatUAccum: 11260 case BuiltinType::SatULongAccum: 11261 case BuiltinType::SatUShortFract: 11262 case BuiltinType::SatUFract: 11263 case BuiltinType::SatULongFract: 11264 return GCCTypeClass::None; 11265 11266 case BuiltinType::NullPtr: 11267 11268 case BuiltinType::ObjCId: 11269 case BuiltinType::ObjCClass: 11270 case BuiltinType::ObjCSel: 11271 #define IMAGE_TYPE(ImgType, Id, SingletonId, Access, Suffix) \ 11272 case BuiltinType::Id: 11273 #include "clang/Basic/OpenCLImageTypes.def" 11274 #define EXT_OPAQUE_TYPE(ExtType, Id, Ext) \ 11275 case BuiltinType::Id: 11276 #include "clang/Basic/OpenCLExtensionTypes.def" 11277 case BuiltinType::OCLSampler: 11278 case BuiltinType::OCLEvent: 11279 case BuiltinType::OCLClkEvent: 11280 case BuiltinType::OCLQueue: 11281 case BuiltinType::OCLReserveID: 11282 #define SVE_TYPE(Name, Id, SingletonId) \ 11283 case BuiltinType::Id: 11284 #include "clang/Basic/AArch64SVEACLETypes.def" 11285 #define PPC_VECTOR_TYPE(Name, Id, Size) \ 11286 case BuiltinType::Id: 11287 #include "clang/Basic/PPCTypes.def" 11288 #define RVV_TYPE(Name, Id, SingletonId) case BuiltinType::Id: 11289 #include "clang/Basic/RISCVVTypes.def" 11290 return GCCTypeClass::None; 11291 11292 case BuiltinType::Dependent: 11293 llvm_unreachable("unexpected dependent type"); 11294 }; 11295 llvm_unreachable("unexpected placeholder type"); 11296 11297 case Type::Enum: 11298 return LangOpts.CPlusPlus ? GCCTypeClass::Enum : GCCTypeClass::Integer; 11299 11300 case Type::Pointer: 11301 case Type::ConstantArray: 11302 case Type::VariableArray: 11303 case Type::IncompleteArray: 11304 case Type::FunctionNoProto: 11305 case Type::FunctionProto: 11306 return GCCTypeClass::Pointer; 11307 11308 case Type::MemberPointer: 11309 return CanTy->isMemberDataPointerType() 11310 ? GCCTypeClass::PointerToDataMember 11311 : GCCTypeClass::PointerToMemberFunction; 11312 11313 case Type::Complex: 11314 return GCCTypeClass::Complex; 11315 11316 case Type::Record: 11317 return CanTy->isUnionType() ? GCCTypeClass::Union 11318 : GCCTypeClass::ClassOrStruct; 11319 11320 case Type::Atomic: 11321 // GCC classifies _Atomic T the same as T. 11322 return EvaluateBuiltinClassifyType( 11323 CanTy->castAs<AtomicType>()->getValueType(), LangOpts); 11324 11325 case Type::BlockPointer: 11326 case Type::Vector: 11327 case Type::ExtVector: 11328 case Type::ConstantMatrix: 11329 case Type::ObjCObject: 11330 case Type::ObjCInterface: 11331 case Type::ObjCObjectPointer: 11332 case Type::Pipe: 11333 case Type::BitInt: 11334 // GCC classifies vectors as None. We follow its lead and classify all 11335 // other types that don't fit into the regular classification the same way. 11336 return GCCTypeClass::None; 11337 11338 case Type::LValueReference: 11339 case Type::RValueReference: 11340 llvm_unreachable("invalid type for expression"); 11341 } 11342 11343 llvm_unreachable("unexpected type class"); 11344 } 11345 11346 /// EvaluateBuiltinClassifyType - Evaluate __builtin_classify_type the same way 11347 /// as GCC. 11348 static GCCTypeClass 11349 EvaluateBuiltinClassifyType(const CallExpr *E, const LangOptions &LangOpts) { 11350 // If no argument was supplied, default to None. This isn't 11351 // ideal, however it is what gcc does. 11352 if (E->getNumArgs() == 0) 11353 return GCCTypeClass::None; 11354 11355 // FIXME: Bizarrely, GCC treats a call with more than one argument as not 11356 // being an ICE, but still folds it to a constant using the type of the first 11357 // argument. 11358 return EvaluateBuiltinClassifyType(E->getArg(0)->getType(), LangOpts); 11359 } 11360 11361 /// EvaluateBuiltinConstantPForLValue - Determine the result of 11362 /// __builtin_constant_p when applied to the given pointer. 11363 /// 11364 /// A pointer is only "constant" if it is null (or a pointer cast to integer) 11365 /// or it points to the first character of a string literal. 11366 static bool EvaluateBuiltinConstantPForLValue(const APValue &LV) { 11367 APValue::LValueBase Base = LV.getLValueBase(); 11368 if (Base.isNull()) { 11369 // A null base is acceptable. 11370 return true; 11371 } else if (const Expr *E = Base.dyn_cast<const Expr *>()) { 11372 if (!isa<StringLiteral>(E)) 11373 return false; 11374 return LV.getLValueOffset().isZero(); 11375 } else if (Base.is<TypeInfoLValue>()) { 11376 // Surprisingly, GCC considers __builtin_constant_p(&typeid(int)) to 11377 // evaluate to true. 11378 return true; 11379 } else { 11380 // Any other base is not constant enough for GCC. 11381 return false; 11382 } 11383 } 11384 11385 /// EvaluateBuiltinConstantP - Evaluate __builtin_constant_p as similarly to 11386 /// GCC as we can manage. 11387 static bool EvaluateBuiltinConstantP(EvalInfo &Info, const Expr *Arg) { 11388 // This evaluation is not permitted to have side-effects, so evaluate it in 11389 // a speculative evaluation context. 11390 SpeculativeEvaluationRAII SpeculativeEval(Info); 11391 11392 // Constant-folding is always enabled for the operand of __builtin_constant_p 11393 // (even when the enclosing evaluation context otherwise requires a strict 11394 // language-specific constant expression). 11395 FoldConstant Fold(Info, true); 11396 11397 QualType ArgType = Arg->getType(); 11398 11399 // __builtin_constant_p always has one operand. The rules which gcc follows 11400 // are not precisely documented, but are as follows: 11401 // 11402 // - If the operand is of integral, floating, complex or enumeration type, 11403 // and can be folded to a known value of that type, it returns 1. 11404 // - If the operand can be folded to a pointer to the first character 11405 // of a string literal (or such a pointer cast to an integral type) 11406 // or to a null pointer or an integer cast to a pointer, it returns 1. 11407 // 11408 // Otherwise, it returns 0. 11409 // 11410 // FIXME: GCC also intends to return 1 for literals of aggregate types, but 11411 // its support for this did not work prior to GCC 9 and is not yet well 11412 // understood. 11413 if (ArgType->isIntegralOrEnumerationType() || ArgType->isFloatingType() || 11414 ArgType->isAnyComplexType() || ArgType->isPointerType() || 11415 ArgType->isNullPtrType()) { 11416 APValue V; 11417 if (!::EvaluateAsRValue(Info, Arg, V) || Info.EvalStatus.HasSideEffects) { 11418 Fold.keepDiagnostics(); 11419 return false; 11420 } 11421 11422 // For a pointer (possibly cast to integer), there are special rules. 11423 if (V.getKind() == APValue::LValue) 11424 return EvaluateBuiltinConstantPForLValue(V); 11425 11426 // Otherwise, any constant value is good enough. 11427 return V.hasValue(); 11428 } 11429 11430 // Anything else isn't considered to be sufficiently constant. 11431 return false; 11432 } 11433 11434 /// Retrieves the "underlying object type" of the given expression, 11435 /// as used by __builtin_object_size. 11436 static QualType getObjectType(APValue::LValueBase B) { 11437 if (const ValueDecl *D = B.dyn_cast<const ValueDecl*>()) { 11438 if (const VarDecl *VD = dyn_cast<VarDecl>(D)) 11439 return VD->getType(); 11440 } else if (const Expr *E = B.dyn_cast<const Expr*>()) { 11441 if (isa<CompoundLiteralExpr>(E)) 11442 return E->getType(); 11443 } else if (B.is<TypeInfoLValue>()) { 11444 return B.getTypeInfoType(); 11445 } else if (B.is<DynamicAllocLValue>()) { 11446 return B.getDynamicAllocType(); 11447 } 11448 11449 return QualType(); 11450 } 11451 11452 /// A more selective version of E->IgnoreParenCasts for 11453 /// tryEvaluateBuiltinObjectSize. This ignores some casts/parens that serve only 11454 /// to change the type of E. 11455 /// Ex. For E = `(short*)((char*)(&foo))`, returns `&foo` 11456 /// 11457 /// Always returns an RValue with a pointer representation. 11458 static const Expr *ignorePointerCastsAndParens(const Expr *E) { 11459 assert(E->isPRValue() && E->getType()->hasPointerRepresentation()); 11460 11461 auto *NoParens = E->IgnoreParens(); 11462 auto *Cast = dyn_cast<CastExpr>(NoParens); 11463 if (Cast == nullptr) 11464 return NoParens; 11465 11466 // We only conservatively allow a few kinds of casts, because this code is 11467 // inherently a simple solution that seeks to support the common case. 11468 auto CastKind = Cast->getCastKind(); 11469 if (CastKind != CK_NoOp && CastKind != CK_BitCast && 11470 CastKind != CK_AddressSpaceConversion) 11471 return NoParens; 11472 11473 auto *SubExpr = Cast->getSubExpr(); 11474 if (!SubExpr->getType()->hasPointerRepresentation() || !SubExpr->isPRValue()) 11475 return NoParens; 11476 return ignorePointerCastsAndParens(SubExpr); 11477 } 11478 11479 /// Checks to see if the given LValue's Designator is at the end of the LValue's 11480 /// record layout. e.g. 11481 /// struct { struct { int a, b; } fst, snd; } obj; 11482 /// obj.fst // no 11483 /// obj.snd // yes 11484 /// obj.fst.a // no 11485 /// obj.fst.b // no 11486 /// obj.snd.a // no 11487 /// obj.snd.b // yes 11488 /// 11489 /// Please note: this function is specialized for how __builtin_object_size 11490 /// views "objects". 11491 /// 11492 /// If this encounters an invalid RecordDecl or otherwise cannot determine the 11493 /// correct result, it will always return true. 11494 static bool isDesignatorAtObjectEnd(const ASTContext &Ctx, const LValue &LVal) { 11495 assert(!LVal.Designator.Invalid); 11496 11497 auto IsLastOrInvalidFieldDecl = [&Ctx](const FieldDecl *FD, bool &Invalid) { 11498 const RecordDecl *Parent = FD->getParent(); 11499 Invalid = Parent->isInvalidDecl(); 11500 if (Invalid || Parent->isUnion()) 11501 return true; 11502 const ASTRecordLayout &Layout = Ctx.getASTRecordLayout(Parent); 11503 return FD->getFieldIndex() + 1 == Layout.getFieldCount(); 11504 }; 11505 11506 auto &Base = LVal.getLValueBase(); 11507 if (auto *ME = dyn_cast_or_null<MemberExpr>(Base.dyn_cast<const Expr *>())) { 11508 if (auto *FD = dyn_cast<FieldDecl>(ME->getMemberDecl())) { 11509 bool Invalid; 11510 if (!IsLastOrInvalidFieldDecl(FD, Invalid)) 11511 return Invalid; 11512 } else if (auto *IFD = dyn_cast<IndirectFieldDecl>(ME->getMemberDecl())) { 11513 for (auto *FD : IFD->chain()) { 11514 bool Invalid; 11515 if (!IsLastOrInvalidFieldDecl(cast<FieldDecl>(FD), Invalid)) 11516 return Invalid; 11517 } 11518 } 11519 } 11520 11521 unsigned I = 0; 11522 QualType BaseType = getType(Base); 11523 if (LVal.Designator.FirstEntryIsAnUnsizedArray) { 11524 // If we don't know the array bound, conservatively assume we're looking at 11525 // the final array element. 11526 ++I; 11527 if (BaseType->isIncompleteArrayType()) 11528 BaseType = Ctx.getAsArrayType(BaseType)->getElementType(); 11529 else 11530 BaseType = BaseType->castAs<PointerType>()->getPointeeType(); 11531 } 11532 11533 for (unsigned E = LVal.Designator.Entries.size(); I != E; ++I) { 11534 const auto &Entry = LVal.Designator.Entries[I]; 11535 if (BaseType->isArrayType()) { 11536 // Because __builtin_object_size treats arrays as objects, we can ignore 11537 // the index iff this is the last array in the Designator. 11538 if (I + 1 == E) 11539 return true; 11540 const auto *CAT = cast<ConstantArrayType>(Ctx.getAsArrayType(BaseType)); 11541 uint64_t Index = Entry.getAsArrayIndex(); 11542 if (Index + 1 != CAT->getSize()) 11543 return false; 11544 BaseType = CAT->getElementType(); 11545 } else if (BaseType->isAnyComplexType()) { 11546 const auto *CT = BaseType->castAs<ComplexType>(); 11547 uint64_t Index = Entry.getAsArrayIndex(); 11548 if (Index != 1) 11549 return false; 11550 BaseType = CT->getElementType(); 11551 } else if (auto *FD = getAsField(Entry)) { 11552 bool Invalid; 11553 if (!IsLastOrInvalidFieldDecl(FD, Invalid)) 11554 return Invalid; 11555 BaseType = FD->getType(); 11556 } else { 11557 assert(getAsBaseClass(Entry) && "Expecting cast to a base class"); 11558 return false; 11559 } 11560 } 11561 return true; 11562 } 11563 11564 /// Tests to see if the LValue has a user-specified designator (that isn't 11565 /// necessarily valid). Note that this always returns 'true' if the LValue has 11566 /// an unsized array as its first designator entry, because there's currently no 11567 /// way to tell if the user typed *foo or foo[0]. 11568 static bool refersToCompleteObject(const LValue &LVal) { 11569 if (LVal.Designator.Invalid) 11570 return false; 11571 11572 if (!LVal.Designator.Entries.empty()) 11573 return LVal.Designator.isMostDerivedAnUnsizedArray(); 11574 11575 if (!LVal.InvalidBase) 11576 return true; 11577 11578 // If `E` is a MemberExpr, then the first part of the designator is hiding in 11579 // the LValueBase. 11580 const auto *E = LVal.Base.dyn_cast<const Expr *>(); 11581 return !E || !isa<MemberExpr>(E); 11582 } 11583 11584 /// Attempts to detect a user writing into a piece of memory that's impossible 11585 /// to figure out the size of by just using types. 11586 static bool isUserWritingOffTheEnd(const ASTContext &Ctx, const LValue &LVal) { 11587 const SubobjectDesignator &Designator = LVal.Designator; 11588 // Notes: 11589 // - Users can only write off of the end when we have an invalid base. Invalid 11590 // bases imply we don't know where the memory came from. 11591 // - We used to be a bit more aggressive here; we'd only be conservative if 11592 // the array at the end was flexible, or if it had 0 or 1 elements. This 11593 // broke some common standard library extensions (PR30346), but was 11594 // otherwise seemingly fine. It may be useful to reintroduce this behavior 11595 // with some sort of list. OTOH, it seems that GCC is always 11596 // conservative with the last element in structs (if it's an array), so our 11597 // current behavior is more compatible than an explicit list approach would 11598 // be. 11599 int StrictFlexArraysLevel = Ctx.getLangOpts().StrictFlexArrays; 11600 return LVal.InvalidBase && 11601 Designator.Entries.size() == Designator.MostDerivedPathLength && 11602 Designator.MostDerivedIsArrayElement && 11603 (Designator.isMostDerivedAnUnsizedArray() || 11604 Designator.getMostDerivedArraySize() == 0 || 11605 (Designator.getMostDerivedArraySize() == 1 && 11606 StrictFlexArraysLevel < 2) || 11607 StrictFlexArraysLevel == 0) && 11608 isDesignatorAtObjectEnd(Ctx, LVal); 11609 } 11610 11611 /// Converts the given APInt to CharUnits, assuming the APInt is unsigned. 11612 /// Fails if the conversion would cause loss of precision. 11613 static bool convertUnsignedAPIntToCharUnits(const llvm::APInt &Int, 11614 CharUnits &Result) { 11615 auto CharUnitsMax = std::numeric_limits<CharUnits::QuantityType>::max(); 11616 if (Int.ugt(CharUnitsMax)) 11617 return false; 11618 Result = CharUnits::fromQuantity(Int.getZExtValue()); 11619 return true; 11620 } 11621 11622 /// Helper for tryEvaluateBuiltinObjectSize -- Given an LValue, this will 11623 /// determine how many bytes exist from the beginning of the object to either 11624 /// the end of the current subobject, or the end of the object itself, depending 11625 /// on what the LValue looks like + the value of Type. 11626 /// 11627 /// If this returns false, the value of Result is undefined. 11628 static bool determineEndOffset(EvalInfo &Info, SourceLocation ExprLoc, 11629 unsigned Type, const LValue &LVal, 11630 CharUnits &EndOffset) { 11631 bool DetermineForCompleteObject = refersToCompleteObject(LVal); 11632 11633 auto CheckedHandleSizeof = [&](QualType Ty, CharUnits &Result) { 11634 if (Ty.isNull() || Ty->isIncompleteType() || Ty->isFunctionType()) 11635 return false; 11636 return HandleSizeof(Info, ExprLoc, Ty, Result); 11637 }; 11638 11639 // We want to evaluate the size of the entire object. This is a valid fallback 11640 // for when Type=1 and the designator is invalid, because we're asked for an 11641 // upper-bound. 11642 if (!(Type & 1) || LVal.Designator.Invalid || DetermineForCompleteObject) { 11643 // Type=3 wants a lower bound, so we can't fall back to this. 11644 if (Type == 3 && !DetermineForCompleteObject) 11645 return false; 11646 11647 llvm::APInt APEndOffset; 11648 if (isBaseAnAllocSizeCall(LVal.getLValueBase()) && 11649 getBytesReturnedByAllocSizeCall(Info.Ctx, LVal, APEndOffset)) 11650 return convertUnsignedAPIntToCharUnits(APEndOffset, EndOffset); 11651 11652 if (LVal.InvalidBase) 11653 return false; 11654 11655 QualType BaseTy = getObjectType(LVal.getLValueBase()); 11656 return CheckedHandleSizeof(BaseTy, EndOffset); 11657 } 11658 11659 // We want to evaluate the size of a subobject. 11660 const SubobjectDesignator &Designator = LVal.Designator; 11661 11662 // The following is a moderately common idiom in C: 11663 // 11664 // struct Foo { int a; char c[1]; }; 11665 // struct Foo *F = (struct Foo *)malloc(sizeof(struct Foo) + strlen(Bar)); 11666 // strcpy(&F->c[0], Bar); 11667 // 11668 // In order to not break too much legacy code, we need to support it. 11669 if (isUserWritingOffTheEnd(Info.Ctx, LVal)) { 11670 // If we can resolve this to an alloc_size call, we can hand that back, 11671 // because we know for certain how many bytes there are to write to. 11672 llvm::APInt APEndOffset; 11673 if (isBaseAnAllocSizeCall(LVal.getLValueBase()) && 11674 getBytesReturnedByAllocSizeCall(Info.Ctx, LVal, APEndOffset)) 11675 return convertUnsignedAPIntToCharUnits(APEndOffset, EndOffset); 11676 11677 // If we cannot determine the size of the initial allocation, then we can't 11678 // given an accurate upper-bound. However, we are still able to give 11679 // conservative lower-bounds for Type=3. 11680 if (Type == 1) 11681 return false; 11682 } 11683 11684 CharUnits BytesPerElem; 11685 if (!CheckedHandleSizeof(Designator.MostDerivedType, BytesPerElem)) 11686 return false; 11687 11688 // According to the GCC documentation, we want the size of the subobject 11689 // denoted by the pointer. But that's not quite right -- what we actually 11690 // want is the size of the immediately-enclosing array, if there is one. 11691 int64_t ElemsRemaining; 11692 if (Designator.MostDerivedIsArrayElement && 11693 Designator.Entries.size() == Designator.MostDerivedPathLength) { 11694 uint64_t ArraySize = Designator.getMostDerivedArraySize(); 11695 uint64_t ArrayIndex = Designator.Entries.back().getAsArrayIndex(); 11696 ElemsRemaining = ArraySize <= ArrayIndex ? 0 : ArraySize - ArrayIndex; 11697 } else { 11698 ElemsRemaining = Designator.isOnePastTheEnd() ? 0 : 1; 11699 } 11700 11701 EndOffset = LVal.getLValueOffset() + BytesPerElem * ElemsRemaining; 11702 return true; 11703 } 11704 11705 /// Tries to evaluate the __builtin_object_size for @p E. If successful, 11706 /// returns true and stores the result in @p Size. 11707 /// 11708 /// If @p WasError is non-null, this will report whether the failure to evaluate 11709 /// is to be treated as an Error in IntExprEvaluator. 11710 static bool tryEvaluateBuiltinObjectSize(const Expr *E, unsigned Type, 11711 EvalInfo &Info, uint64_t &Size) { 11712 // Determine the denoted object. 11713 LValue LVal; 11714 { 11715 // The operand of __builtin_object_size is never evaluated for side-effects. 11716 // If there are any, but we can determine the pointed-to object anyway, then 11717 // ignore the side-effects. 11718 SpeculativeEvaluationRAII SpeculativeEval(Info); 11719 IgnoreSideEffectsRAII Fold(Info); 11720 11721 if (E->isGLValue()) { 11722 // It's possible for us to be given GLValues if we're called via 11723 // Expr::tryEvaluateObjectSize. 11724 APValue RVal; 11725 if (!EvaluateAsRValue(Info, E, RVal)) 11726 return false; 11727 LVal.setFrom(Info.Ctx, RVal); 11728 } else if (!EvaluatePointer(ignorePointerCastsAndParens(E), LVal, Info, 11729 /*InvalidBaseOK=*/true)) 11730 return false; 11731 } 11732 11733 // If we point to before the start of the object, there are no accessible 11734 // bytes. 11735 if (LVal.getLValueOffset().isNegative()) { 11736 Size = 0; 11737 return true; 11738 } 11739 11740 CharUnits EndOffset; 11741 if (!determineEndOffset(Info, E->getExprLoc(), Type, LVal, EndOffset)) 11742 return false; 11743 11744 // If we've fallen outside of the end offset, just pretend there's nothing to 11745 // write to/read from. 11746 if (EndOffset <= LVal.getLValueOffset()) 11747 Size = 0; 11748 else 11749 Size = (EndOffset - LVal.getLValueOffset()).getQuantity(); 11750 return true; 11751 } 11752 11753 bool IntExprEvaluator::VisitCallExpr(const CallExpr *E) { 11754 if (unsigned BuiltinOp = E->getBuiltinCallee()) 11755 return VisitBuiltinCallExpr(E, BuiltinOp); 11756 11757 return ExprEvaluatorBaseTy::VisitCallExpr(E); 11758 } 11759 11760 static bool getBuiltinAlignArguments(const CallExpr *E, EvalInfo &Info, 11761 APValue &Val, APSInt &Alignment) { 11762 QualType SrcTy = E->getArg(0)->getType(); 11763 if (!getAlignmentArgument(E->getArg(1), SrcTy, Info, Alignment)) 11764 return false; 11765 // Even though we are evaluating integer expressions we could get a pointer 11766 // argument for the __builtin_is_aligned() case. 11767 if (SrcTy->isPointerType()) { 11768 LValue Ptr; 11769 if (!EvaluatePointer(E->getArg(0), Ptr, Info)) 11770 return false; 11771 Ptr.moveInto(Val); 11772 } else if (!SrcTy->isIntegralOrEnumerationType()) { 11773 Info.FFDiag(E->getArg(0)); 11774 return false; 11775 } else { 11776 APSInt SrcInt; 11777 if (!EvaluateInteger(E->getArg(0), SrcInt, Info)) 11778 return false; 11779 assert(SrcInt.getBitWidth() >= Alignment.getBitWidth() && 11780 "Bit widths must be the same"); 11781 Val = APValue(SrcInt); 11782 } 11783 assert(Val.hasValue()); 11784 return true; 11785 } 11786 11787 bool IntExprEvaluator::VisitBuiltinCallExpr(const CallExpr *E, 11788 unsigned BuiltinOp) { 11789 switch (BuiltinOp) { 11790 default: 11791 return ExprEvaluatorBaseTy::VisitCallExpr(E); 11792 11793 case Builtin::BI__builtin_dynamic_object_size: 11794 case Builtin::BI__builtin_object_size: { 11795 // The type was checked when we built the expression. 11796 unsigned Type = 11797 E->getArg(1)->EvaluateKnownConstInt(Info.Ctx).getZExtValue(); 11798 assert(Type <= 3 && "unexpected type"); 11799 11800 uint64_t Size; 11801 if (tryEvaluateBuiltinObjectSize(E->getArg(0), Type, Info, Size)) 11802 return Success(Size, E); 11803 11804 if (E->getArg(0)->HasSideEffects(Info.Ctx)) 11805 return Success((Type & 2) ? 0 : -1, E); 11806 11807 // Expression had no side effects, but we couldn't statically determine the 11808 // size of the referenced object. 11809 switch (Info.EvalMode) { 11810 case EvalInfo::EM_ConstantExpression: 11811 case EvalInfo::EM_ConstantFold: 11812 case EvalInfo::EM_IgnoreSideEffects: 11813 // Leave it to IR generation. 11814 return Error(E); 11815 case EvalInfo::EM_ConstantExpressionUnevaluated: 11816 // Reduce it to a constant now. 11817 return Success((Type & 2) ? 0 : -1, E); 11818 } 11819 11820 llvm_unreachable("unexpected EvalMode"); 11821 } 11822 11823 case Builtin::BI__builtin_os_log_format_buffer_size: { 11824 analyze_os_log::OSLogBufferLayout Layout; 11825 analyze_os_log::computeOSLogBufferLayout(Info.Ctx, E, Layout); 11826 return Success(Layout.size().getQuantity(), E); 11827 } 11828 11829 case Builtin::BI__builtin_is_aligned: { 11830 APValue Src; 11831 APSInt Alignment; 11832 if (!getBuiltinAlignArguments(E, Info, Src, Alignment)) 11833 return false; 11834 if (Src.isLValue()) { 11835 // If we evaluated a pointer, check the minimum known alignment. 11836 LValue Ptr; 11837 Ptr.setFrom(Info.Ctx, Src); 11838 CharUnits BaseAlignment = getBaseAlignment(Info, Ptr); 11839 CharUnits PtrAlign = BaseAlignment.alignmentAtOffset(Ptr.Offset); 11840 // We can return true if the known alignment at the computed offset is 11841 // greater than the requested alignment. 11842 assert(PtrAlign.isPowerOfTwo()); 11843 assert(Alignment.isPowerOf2()); 11844 if (PtrAlign.getQuantity() >= Alignment) 11845 return Success(1, E); 11846 // If the alignment is not known to be sufficient, some cases could still 11847 // be aligned at run time. However, if the requested alignment is less or 11848 // equal to the base alignment and the offset is not aligned, we know that 11849 // the run-time value can never be aligned. 11850 if (BaseAlignment.getQuantity() >= Alignment && 11851 PtrAlign.getQuantity() < Alignment) 11852 return Success(0, E); 11853 // Otherwise we can't infer whether the value is sufficiently aligned. 11854 // TODO: __builtin_is_aligned(__builtin_align_{down,up{(expr, N), N) 11855 // in cases where we can't fully evaluate the pointer. 11856 Info.FFDiag(E->getArg(0), diag::note_constexpr_alignment_compute) 11857 << Alignment; 11858 return false; 11859 } 11860 assert(Src.isInt()); 11861 return Success((Src.getInt() & (Alignment - 1)) == 0 ? 1 : 0, E); 11862 } 11863 case Builtin::BI__builtin_align_up: { 11864 APValue Src; 11865 APSInt Alignment; 11866 if (!getBuiltinAlignArguments(E, Info, Src, Alignment)) 11867 return false; 11868 if (!Src.isInt()) 11869 return Error(E); 11870 APSInt AlignedVal = 11871 APSInt((Src.getInt() + (Alignment - 1)) & ~(Alignment - 1), 11872 Src.getInt().isUnsigned()); 11873 assert(AlignedVal.getBitWidth() == Src.getInt().getBitWidth()); 11874 return Success(AlignedVal, E); 11875 } 11876 case Builtin::BI__builtin_align_down: { 11877 APValue Src; 11878 APSInt Alignment; 11879 if (!getBuiltinAlignArguments(E, Info, Src, Alignment)) 11880 return false; 11881 if (!Src.isInt()) 11882 return Error(E); 11883 APSInt AlignedVal = 11884 APSInt(Src.getInt() & ~(Alignment - 1), Src.getInt().isUnsigned()); 11885 assert(AlignedVal.getBitWidth() == Src.getInt().getBitWidth()); 11886 return Success(AlignedVal, E); 11887 } 11888 11889 case Builtin::BI__builtin_bitreverse8: 11890 case Builtin::BI__builtin_bitreverse16: 11891 case Builtin::BI__builtin_bitreverse32: 11892 case Builtin::BI__builtin_bitreverse64: { 11893 APSInt Val; 11894 if (!EvaluateInteger(E->getArg(0), Val, Info)) 11895 return false; 11896 11897 return Success(Val.reverseBits(), E); 11898 } 11899 11900 case Builtin::BI__builtin_bswap16: 11901 case Builtin::BI__builtin_bswap32: 11902 case Builtin::BI__builtin_bswap64: { 11903 APSInt Val; 11904 if (!EvaluateInteger(E->getArg(0), Val, Info)) 11905 return false; 11906 11907 return Success(Val.byteSwap(), E); 11908 } 11909 11910 case Builtin::BI__builtin_classify_type: 11911 return Success((int)EvaluateBuiltinClassifyType(E, Info.getLangOpts()), E); 11912 11913 case Builtin::BI__builtin_clrsb: 11914 case Builtin::BI__builtin_clrsbl: 11915 case Builtin::BI__builtin_clrsbll: { 11916 APSInt Val; 11917 if (!EvaluateInteger(E->getArg(0), Val, Info)) 11918 return false; 11919 11920 return Success(Val.getBitWidth() - Val.getMinSignedBits(), E); 11921 } 11922 11923 case Builtin::BI__builtin_clz: 11924 case Builtin::BI__builtin_clzl: 11925 case Builtin::BI__builtin_clzll: 11926 case Builtin::BI__builtin_clzs: { 11927 APSInt Val; 11928 if (!EvaluateInteger(E->getArg(0), Val, Info)) 11929 return false; 11930 if (!Val) 11931 return Error(E); 11932 11933 return Success(Val.countLeadingZeros(), E); 11934 } 11935 11936 case Builtin::BI__builtin_constant_p: { 11937 const Expr *Arg = E->getArg(0); 11938 if (EvaluateBuiltinConstantP(Info, Arg)) 11939 return Success(true, E); 11940 if (Info.InConstantContext || Arg->HasSideEffects(Info.Ctx)) { 11941 // Outside a constant context, eagerly evaluate to false in the presence 11942 // of side-effects in order to avoid -Wunsequenced false-positives in 11943 // a branch on __builtin_constant_p(expr). 11944 return Success(false, E); 11945 } 11946 Info.FFDiag(E, diag::note_invalid_subexpr_in_const_expr); 11947 return false; 11948 } 11949 11950 case Builtin::BI__builtin_is_constant_evaluated: { 11951 const auto *Callee = Info.CurrentCall->getCallee(); 11952 if (Info.InConstantContext && !Info.CheckingPotentialConstantExpression && 11953 (Info.CallStackDepth == 1 || 11954 (Info.CallStackDepth == 2 && Callee->isInStdNamespace() && 11955 Callee->getIdentifier() && 11956 Callee->getIdentifier()->isStr("is_constant_evaluated")))) { 11957 // FIXME: Find a better way to avoid duplicated diagnostics. 11958 if (Info.EvalStatus.Diag) 11959 Info.report((Info.CallStackDepth == 1) ? E->getExprLoc() 11960 : Info.CurrentCall->CallLoc, 11961 diag::warn_is_constant_evaluated_always_true_constexpr) 11962 << (Info.CallStackDepth == 1 ? "__builtin_is_constant_evaluated" 11963 : "std::is_constant_evaluated"); 11964 } 11965 11966 return Success(Info.InConstantContext, E); 11967 } 11968 11969 case Builtin::BI__builtin_ctz: 11970 case Builtin::BI__builtin_ctzl: 11971 case Builtin::BI__builtin_ctzll: 11972 case Builtin::BI__builtin_ctzs: { 11973 APSInt Val; 11974 if (!EvaluateInteger(E->getArg(0), Val, Info)) 11975 return false; 11976 if (!Val) 11977 return Error(E); 11978 11979 return Success(Val.countTrailingZeros(), E); 11980 } 11981 11982 case Builtin::BI__builtin_eh_return_data_regno: { 11983 int Operand = E->getArg(0)->EvaluateKnownConstInt(Info.Ctx).getZExtValue(); 11984 Operand = Info.Ctx.getTargetInfo().getEHDataRegisterNumber(Operand); 11985 return Success(Operand, E); 11986 } 11987 11988 case Builtin::BI__builtin_expect: 11989 case Builtin::BI__builtin_expect_with_probability: 11990 return Visit(E->getArg(0)); 11991 11992 case Builtin::BI__builtin_ffs: 11993 case Builtin::BI__builtin_ffsl: 11994 case Builtin::BI__builtin_ffsll: { 11995 APSInt Val; 11996 if (!EvaluateInteger(E->getArg(0), Val, Info)) 11997 return false; 11998 11999 unsigned N = Val.countTrailingZeros(); 12000 return Success(N == Val.getBitWidth() ? 0 : N + 1, E); 12001 } 12002 12003 case Builtin::BI__builtin_fpclassify: { 12004 APFloat Val(0.0); 12005 if (!EvaluateFloat(E->getArg(5), Val, Info)) 12006 return false; 12007 unsigned Arg; 12008 switch (Val.getCategory()) { 12009 case APFloat::fcNaN: Arg = 0; break; 12010 case APFloat::fcInfinity: Arg = 1; break; 12011 case APFloat::fcNormal: Arg = Val.isDenormal() ? 3 : 2; break; 12012 case APFloat::fcZero: Arg = 4; break; 12013 } 12014 return Visit(E->getArg(Arg)); 12015 } 12016 12017 case Builtin::BI__builtin_isinf_sign: { 12018 APFloat Val(0.0); 12019 return EvaluateFloat(E->getArg(0), Val, Info) && 12020 Success(Val.isInfinity() ? (Val.isNegative() ? -1 : 1) : 0, E); 12021 } 12022 12023 case Builtin::BI__builtin_isinf: { 12024 APFloat Val(0.0); 12025 return EvaluateFloat(E->getArg(0), Val, Info) && 12026 Success(Val.isInfinity() ? 1 : 0, E); 12027 } 12028 12029 case Builtin::BI__builtin_isfinite: { 12030 APFloat Val(0.0); 12031 return EvaluateFloat(E->getArg(0), Val, Info) && 12032 Success(Val.isFinite() ? 1 : 0, E); 12033 } 12034 12035 case Builtin::BI__builtin_isnan: { 12036 APFloat Val(0.0); 12037 return EvaluateFloat(E->getArg(0), Val, Info) && 12038 Success(Val.isNaN() ? 1 : 0, E); 12039 } 12040 12041 case Builtin::BI__builtin_isnormal: { 12042 APFloat Val(0.0); 12043 return EvaluateFloat(E->getArg(0), Val, Info) && 12044 Success(Val.isNormal() ? 1 : 0, E); 12045 } 12046 12047 case Builtin::BI__builtin_parity: 12048 case Builtin::BI__builtin_parityl: 12049 case Builtin::BI__builtin_parityll: { 12050 APSInt Val; 12051 if (!EvaluateInteger(E->getArg(0), Val, Info)) 12052 return false; 12053 12054 return Success(Val.countPopulation() % 2, E); 12055 } 12056 12057 case Builtin::BI__builtin_popcount: 12058 case Builtin::BI__builtin_popcountl: 12059 case Builtin::BI__builtin_popcountll: { 12060 APSInt Val; 12061 if (!EvaluateInteger(E->getArg(0), Val, Info)) 12062 return false; 12063 12064 return Success(Val.countPopulation(), E); 12065 } 12066 12067 case Builtin::BI__builtin_rotateleft8: 12068 case Builtin::BI__builtin_rotateleft16: 12069 case Builtin::BI__builtin_rotateleft32: 12070 case Builtin::BI__builtin_rotateleft64: 12071 case Builtin::BI_rotl8: // Microsoft variants of rotate right 12072 case Builtin::BI_rotl16: 12073 case Builtin::BI_rotl: 12074 case Builtin::BI_lrotl: 12075 case Builtin::BI_rotl64: { 12076 APSInt Val, Amt; 12077 if (!EvaluateInteger(E->getArg(0), Val, Info) || 12078 !EvaluateInteger(E->getArg(1), Amt, Info)) 12079 return false; 12080 12081 return Success(Val.rotl(Amt.urem(Val.getBitWidth())), E); 12082 } 12083 12084 case Builtin::BI__builtin_rotateright8: 12085 case Builtin::BI__builtin_rotateright16: 12086 case Builtin::BI__builtin_rotateright32: 12087 case Builtin::BI__builtin_rotateright64: 12088 case Builtin::BI_rotr8: // Microsoft variants of rotate right 12089 case Builtin::BI_rotr16: 12090 case Builtin::BI_rotr: 12091 case Builtin::BI_lrotr: 12092 case Builtin::BI_rotr64: { 12093 APSInt Val, Amt; 12094 if (!EvaluateInteger(E->getArg(0), Val, Info) || 12095 !EvaluateInteger(E->getArg(1), Amt, Info)) 12096 return false; 12097 12098 return Success(Val.rotr(Amt.urem(Val.getBitWidth())), E); 12099 } 12100 12101 case Builtin::BIstrlen: 12102 case Builtin::BIwcslen: 12103 // A call to strlen is not a constant expression. 12104 if (Info.getLangOpts().CPlusPlus11) 12105 Info.CCEDiag(E, diag::note_constexpr_invalid_function) 12106 << /*isConstexpr*/0 << /*isConstructor*/0 12107 << (std::string("'") + Info.Ctx.BuiltinInfo.getName(BuiltinOp) + "'"); 12108 else 12109 Info.CCEDiag(E, diag::note_invalid_subexpr_in_const_expr); 12110 LLVM_FALLTHROUGH; 12111 case Builtin::BI__builtin_strlen: 12112 case Builtin::BI__builtin_wcslen: { 12113 // As an extension, we support __builtin_strlen() as a constant expression, 12114 // and support folding strlen() to a constant. 12115 uint64_t StrLen; 12116 if (EvaluateBuiltinStrLen(E->getArg(0), StrLen, Info)) 12117 return Success(StrLen, E); 12118 return false; 12119 } 12120 12121 case Builtin::BIstrcmp: 12122 case Builtin::BIwcscmp: 12123 case Builtin::BIstrncmp: 12124 case Builtin::BIwcsncmp: 12125 case Builtin::BImemcmp: 12126 case Builtin::BIbcmp: 12127 case Builtin::BIwmemcmp: 12128 // A call to strlen is not a constant expression. 12129 if (Info.getLangOpts().CPlusPlus11) 12130 Info.CCEDiag(E, diag::note_constexpr_invalid_function) 12131 << /*isConstexpr*/0 << /*isConstructor*/0 12132 << (std::string("'") + Info.Ctx.BuiltinInfo.getName(BuiltinOp) + "'"); 12133 else 12134 Info.CCEDiag(E, diag::note_invalid_subexpr_in_const_expr); 12135 LLVM_FALLTHROUGH; 12136 case Builtin::BI__builtin_strcmp: 12137 case Builtin::BI__builtin_wcscmp: 12138 case Builtin::BI__builtin_strncmp: 12139 case Builtin::BI__builtin_wcsncmp: 12140 case Builtin::BI__builtin_memcmp: 12141 case Builtin::BI__builtin_bcmp: 12142 case Builtin::BI__builtin_wmemcmp: { 12143 LValue String1, String2; 12144 if (!EvaluatePointer(E->getArg(0), String1, Info) || 12145 !EvaluatePointer(E->getArg(1), String2, Info)) 12146 return false; 12147 12148 uint64_t MaxLength = uint64_t(-1); 12149 if (BuiltinOp != Builtin::BIstrcmp && 12150 BuiltinOp != Builtin::BIwcscmp && 12151 BuiltinOp != Builtin::BI__builtin_strcmp && 12152 BuiltinOp != Builtin::BI__builtin_wcscmp) { 12153 APSInt N; 12154 if (!EvaluateInteger(E->getArg(2), N, Info)) 12155 return false; 12156 MaxLength = N.getExtValue(); 12157 } 12158 12159 // Empty substrings compare equal by definition. 12160 if (MaxLength == 0u) 12161 return Success(0, E); 12162 12163 if (!String1.checkNullPointerForFoldAccess(Info, E, AK_Read) || 12164 !String2.checkNullPointerForFoldAccess(Info, E, AK_Read) || 12165 String1.Designator.Invalid || String2.Designator.Invalid) 12166 return false; 12167 12168 QualType CharTy1 = String1.Designator.getType(Info.Ctx); 12169 QualType CharTy2 = String2.Designator.getType(Info.Ctx); 12170 12171 bool IsRawByte = BuiltinOp == Builtin::BImemcmp || 12172 BuiltinOp == Builtin::BIbcmp || 12173 BuiltinOp == Builtin::BI__builtin_memcmp || 12174 BuiltinOp == Builtin::BI__builtin_bcmp; 12175 12176 assert(IsRawByte || 12177 (Info.Ctx.hasSameUnqualifiedType( 12178 CharTy1, E->getArg(0)->getType()->getPointeeType()) && 12179 Info.Ctx.hasSameUnqualifiedType(CharTy1, CharTy2))); 12180 12181 // For memcmp, allow comparing any arrays of '[[un]signed] char' or 12182 // 'char8_t', but no other types. 12183 if (IsRawByte && 12184 !(isOneByteCharacterType(CharTy1) && isOneByteCharacterType(CharTy2))) { 12185 // FIXME: Consider using our bit_cast implementation to support this. 12186 Info.FFDiag(E, diag::note_constexpr_memcmp_unsupported) 12187 << (std::string("'") + Info.Ctx.BuiltinInfo.getName(BuiltinOp) + "'") 12188 << CharTy1 << CharTy2; 12189 return false; 12190 } 12191 12192 const auto &ReadCurElems = [&](APValue &Char1, APValue &Char2) { 12193 return handleLValueToRValueConversion(Info, E, CharTy1, String1, Char1) && 12194 handleLValueToRValueConversion(Info, E, CharTy2, String2, Char2) && 12195 Char1.isInt() && Char2.isInt(); 12196 }; 12197 const auto &AdvanceElems = [&] { 12198 return HandleLValueArrayAdjustment(Info, E, String1, CharTy1, 1) && 12199 HandleLValueArrayAdjustment(Info, E, String2, CharTy2, 1); 12200 }; 12201 12202 bool StopAtNull = 12203 (BuiltinOp != Builtin::BImemcmp && BuiltinOp != Builtin::BIbcmp && 12204 BuiltinOp != Builtin::BIwmemcmp && 12205 BuiltinOp != Builtin::BI__builtin_memcmp && 12206 BuiltinOp != Builtin::BI__builtin_bcmp && 12207 BuiltinOp != Builtin::BI__builtin_wmemcmp); 12208 bool IsWide = BuiltinOp == Builtin::BIwcscmp || 12209 BuiltinOp == Builtin::BIwcsncmp || 12210 BuiltinOp == Builtin::BIwmemcmp || 12211 BuiltinOp == Builtin::BI__builtin_wcscmp || 12212 BuiltinOp == Builtin::BI__builtin_wcsncmp || 12213 BuiltinOp == Builtin::BI__builtin_wmemcmp; 12214 12215 for (; MaxLength; --MaxLength) { 12216 APValue Char1, Char2; 12217 if (!ReadCurElems(Char1, Char2)) 12218 return false; 12219 if (Char1.getInt().ne(Char2.getInt())) { 12220 if (IsWide) // wmemcmp compares with wchar_t signedness. 12221 return Success(Char1.getInt() < Char2.getInt() ? -1 : 1, E); 12222 // memcmp always compares unsigned chars. 12223 return Success(Char1.getInt().ult(Char2.getInt()) ? -1 : 1, E); 12224 } 12225 if (StopAtNull && !Char1.getInt()) 12226 return Success(0, E); 12227 assert(!(StopAtNull && !Char2.getInt())); 12228 if (!AdvanceElems()) 12229 return false; 12230 } 12231 // We hit the strncmp / memcmp limit. 12232 return Success(0, E); 12233 } 12234 12235 case Builtin::BI__atomic_always_lock_free: 12236 case Builtin::BI__atomic_is_lock_free: 12237 case Builtin::BI__c11_atomic_is_lock_free: { 12238 APSInt SizeVal; 12239 if (!EvaluateInteger(E->getArg(0), SizeVal, Info)) 12240 return false; 12241 12242 // For __atomic_is_lock_free(sizeof(_Atomic(T))), if the size is a power 12243 // of two less than or equal to the maximum inline atomic width, we know it 12244 // is lock-free. If the size isn't a power of two, or greater than the 12245 // maximum alignment where we promote atomics, we know it is not lock-free 12246 // (at least not in the sense of atomic_is_lock_free). Otherwise, 12247 // the answer can only be determined at runtime; for example, 16-byte 12248 // atomics have lock-free implementations on some, but not all, 12249 // x86-64 processors. 12250 12251 // Check power-of-two. 12252 CharUnits Size = CharUnits::fromQuantity(SizeVal.getZExtValue()); 12253 if (Size.isPowerOfTwo()) { 12254 // Check against inlining width. 12255 unsigned InlineWidthBits = 12256 Info.Ctx.getTargetInfo().getMaxAtomicInlineWidth(); 12257 if (Size <= Info.Ctx.toCharUnitsFromBits(InlineWidthBits)) { 12258 if (BuiltinOp == Builtin::BI__c11_atomic_is_lock_free || 12259 Size == CharUnits::One() || 12260 E->getArg(1)->isNullPointerConstant(Info.Ctx, 12261 Expr::NPC_NeverValueDependent)) 12262 // OK, we will inline appropriately-aligned operations of this size, 12263 // and _Atomic(T) is appropriately-aligned. 12264 return Success(1, E); 12265 12266 QualType PointeeType = E->getArg(1)->IgnoreImpCasts()->getType()-> 12267 castAs<PointerType>()->getPointeeType(); 12268 if (!PointeeType->isIncompleteType() && 12269 Info.Ctx.getTypeAlignInChars(PointeeType) >= Size) { 12270 // OK, we will inline operations on this object. 12271 return Success(1, E); 12272 } 12273 } 12274 } 12275 12276 return BuiltinOp == Builtin::BI__atomic_always_lock_free ? 12277 Success(0, E) : Error(E); 12278 } 12279 case Builtin::BI__builtin_add_overflow: 12280 case Builtin::BI__builtin_sub_overflow: 12281 case Builtin::BI__builtin_mul_overflow: 12282 case Builtin::BI__builtin_sadd_overflow: 12283 case Builtin::BI__builtin_uadd_overflow: 12284 case Builtin::BI__builtin_uaddl_overflow: 12285 case Builtin::BI__builtin_uaddll_overflow: 12286 case Builtin::BI__builtin_usub_overflow: 12287 case Builtin::BI__builtin_usubl_overflow: 12288 case Builtin::BI__builtin_usubll_overflow: 12289 case Builtin::BI__builtin_umul_overflow: 12290 case Builtin::BI__builtin_umull_overflow: 12291 case Builtin::BI__builtin_umulll_overflow: 12292 case Builtin::BI__builtin_saddl_overflow: 12293 case Builtin::BI__builtin_saddll_overflow: 12294 case Builtin::BI__builtin_ssub_overflow: 12295 case Builtin::BI__builtin_ssubl_overflow: 12296 case Builtin::BI__builtin_ssubll_overflow: 12297 case Builtin::BI__builtin_smul_overflow: 12298 case Builtin::BI__builtin_smull_overflow: 12299 case Builtin::BI__builtin_smulll_overflow: { 12300 LValue ResultLValue; 12301 APSInt LHS, RHS; 12302 12303 QualType ResultType = E->getArg(2)->getType()->getPointeeType(); 12304 if (!EvaluateInteger(E->getArg(0), LHS, Info) || 12305 !EvaluateInteger(E->getArg(1), RHS, Info) || 12306 !EvaluatePointer(E->getArg(2), ResultLValue, Info)) 12307 return false; 12308 12309 APSInt Result; 12310 bool DidOverflow = false; 12311 12312 // If the types don't have to match, enlarge all 3 to the largest of them. 12313 if (BuiltinOp == Builtin::BI__builtin_add_overflow || 12314 BuiltinOp == Builtin::BI__builtin_sub_overflow || 12315 BuiltinOp == Builtin::BI__builtin_mul_overflow) { 12316 bool IsSigned = LHS.isSigned() || RHS.isSigned() || 12317 ResultType->isSignedIntegerOrEnumerationType(); 12318 bool AllSigned = LHS.isSigned() && RHS.isSigned() && 12319 ResultType->isSignedIntegerOrEnumerationType(); 12320 uint64_t LHSSize = LHS.getBitWidth(); 12321 uint64_t RHSSize = RHS.getBitWidth(); 12322 uint64_t ResultSize = Info.Ctx.getTypeSize(ResultType); 12323 uint64_t MaxBits = std::max(std::max(LHSSize, RHSSize), ResultSize); 12324 12325 // Add an additional bit if the signedness isn't uniformly agreed to. We 12326 // could do this ONLY if there is a signed and an unsigned that both have 12327 // MaxBits, but the code to check that is pretty nasty. The issue will be 12328 // caught in the shrink-to-result later anyway. 12329 if (IsSigned && !AllSigned) 12330 ++MaxBits; 12331 12332 LHS = APSInt(LHS.extOrTrunc(MaxBits), !IsSigned); 12333 RHS = APSInt(RHS.extOrTrunc(MaxBits), !IsSigned); 12334 Result = APSInt(MaxBits, !IsSigned); 12335 } 12336 12337 // Find largest int. 12338 switch (BuiltinOp) { 12339 default: 12340 llvm_unreachable("Invalid value for BuiltinOp"); 12341 case Builtin::BI__builtin_add_overflow: 12342 case Builtin::BI__builtin_sadd_overflow: 12343 case Builtin::BI__builtin_saddl_overflow: 12344 case Builtin::BI__builtin_saddll_overflow: 12345 case Builtin::BI__builtin_uadd_overflow: 12346 case Builtin::BI__builtin_uaddl_overflow: 12347 case Builtin::BI__builtin_uaddll_overflow: 12348 Result = LHS.isSigned() ? LHS.sadd_ov(RHS, DidOverflow) 12349 : LHS.uadd_ov(RHS, DidOverflow); 12350 break; 12351 case Builtin::BI__builtin_sub_overflow: 12352 case Builtin::BI__builtin_ssub_overflow: 12353 case Builtin::BI__builtin_ssubl_overflow: 12354 case Builtin::BI__builtin_ssubll_overflow: 12355 case Builtin::BI__builtin_usub_overflow: 12356 case Builtin::BI__builtin_usubl_overflow: 12357 case Builtin::BI__builtin_usubll_overflow: 12358 Result = LHS.isSigned() ? LHS.ssub_ov(RHS, DidOverflow) 12359 : LHS.usub_ov(RHS, DidOverflow); 12360 break; 12361 case Builtin::BI__builtin_mul_overflow: 12362 case Builtin::BI__builtin_smul_overflow: 12363 case Builtin::BI__builtin_smull_overflow: 12364 case Builtin::BI__builtin_smulll_overflow: 12365 case Builtin::BI__builtin_umul_overflow: 12366 case Builtin::BI__builtin_umull_overflow: 12367 case Builtin::BI__builtin_umulll_overflow: 12368 Result = LHS.isSigned() ? LHS.smul_ov(RHS, DidOverflow) 12369 : LHS.umul_ov(RHS, DidOverflow); 12370 break; 12371 } 12372 12373 // In the case where multiple sizes are allowed, truncate and see if 12374 // the values are the same. 12375 if (BuiltinOp == Builtin::BI__builtin_add_overflow || 12376 BuiltinOp == Builtin::BI__builtin_sub_overflow || 12377 BuiltinOp == Builtin::BI__builtin_mul_overflow) { 12378 // APSInt doesn't have a TruncOrSelf, so we use extOrTrunc instead, 12379 // since it will give us the behavior of a TruncOrSelf in the case where 12380 // its parameter <= its size. We previously set Result to be at least the 12381 // type-size of the result, so getTypeSize(ResultType) <= Result.BitWidth 12382 // will work exactly like TruncOrSelf. 12383 APSInt Temp = Result.extOrTrunc(Info.Ctx.getTypeSize(ResultType)); 12384 Temp.setIsSigned(ResultType->isSignedIntegerOrEnumerationType()); 12385 12386 if (!APSInt::isSameValue(Temp, Result)) 12387 DidOverflow = true; 12388 Result = Temp; 12389 } 12390 12391 APValue APV{Result}; 12392 if (!handleAssignment(Info, E, ResultLValue, ResultType, APV)) 12393 return false; 12394 return Success(DidOverflow, E); 12395 } 12396 } 12397 } 12398 12399 /// Determine whether this is a pointer past the end of the complete 12400 /// object referred to by the lvalue. 12401 static bool isOnePastTheEndOfCompleteObject(const ASTContext &Ctx, 12402 const LValue &LV) { 12403 // A null pointer can be viewed as being "past the end" but we don't 12404 // choose to look at it that way here. 12405 if (!LV.getLValueBase()) 12406 return false; 12407 12408 // If the designator is valid and refers to a subobject, we're not pointing 12409 // past the end. 12410 if (!LV.getLValueDesignator().Invalid && 12411 !LV.getLValueDesignator().isOnePastTheEnd()) 12412 return false; 12413 12414 // A pointer to an incomplete type might be past-the-end if the type's size is 12415 // zero. We cannot tell because the type is incomplete. 12416 QualType Ty = getType(LV.getLValueBase()); 12417 if (Ty->isIncompleteType()) 12418 return true; 12419 12420 // We're a past-the-end pointer if we point to the byte after the object, 12421 // no matter what our type or path is. 12422 auto Size = Ctx.getTypeSizeInChars(Ty); 12423 return LV.getLValueOffset() == Size; 12424 } 12425 12426 namespace { 12427 12428 /// Data recursive integer evaluator of certain binary operators. 12429 /// 12430 /// We use a data recursive algorithm for binary operators so that we are able 12431 /// to handle extreme cases of chained binary operators without causing stack 12432 /// overflow. 12433 class DataRecursiveIntBinOpEvaluator { 12434 struct EvalResult { 12435 APValue Val; 12436 bool Failed; 12437 12438 EvalResult() : Failed(false) { } 12439 12440 void swap(EvalResult &RHS) { 12441 Val.swap(RHS.Val); 12442 Failed = RHS.Failed; 12443 RHS.Failed = false; 12444 } 12445 }; 12446 12447 struct Job { 12448 const Expr *E; 12449 EvalResult LHSResult; // meaningful only for binary operator expression. 12450 enum { AnyExprKind, BinOpKind, BinOpVisitedLHSKind } Kind; 12451 12452 Job() = default; 12453 Job(Job &&) = default; 12454 12455 void startSpeculativeEval(EvalInfo &Info) { 12456 SpecEvalRAII = SpeculativeEvaluationRAII(Info); 12457 } 12458 12459 private: 12460 SpeculativeEvaluationRAII SpecEvalRAII; 12461 }; 12462 12463 SmallVector<Job, 16> Queue; 12464 12465 IntExprEvaluator &IntEval; 12466 EvalInfo &Info; 12467 APValue &FinalResult; 12468 12469 public: 12470 DataRecursiveIntBinOpEvaluator(IntExprEvaluator &IntEval, APValue &Result) 12471 : IntEval(IntEval), Info(IntEval.getEvalInfo()), FinalResult(Result) { } 12472 12473 /// True if \param E is a binary operator that we are going to handle 12474 /// data recursively. 12475 /// We handle binary operators that are comma, logical, or that have operands 12476 /// with integral or enumeration type. 12477 static bool shouldEnqueue(const BinaryOperator *E) { 12478 return E->getOpcode() == BO_Comma || E->isLogicalOp() || 12479 (E->isPRValue() && E->getType()->isIntegralOrEnumerationType() && 12480 E->getLHS()->getType()->isIntegralOrEnumerationType() && 12481 E->getRHS()->getType()->isIntegralOrEnumerationType()); 12482 } 12483 12484 bool Traverse(const BinaryOperator *E) { 12485 enqueue(E); 12486 EvalResult PrevResult; 12487 while (!Queue.empty()) 12488 process(PrevResult); 12489 12490 if (PrevResult.Failed) return false; 12491 12492 FinalResult.swap(PrevResult.Val); 12493 return true; 12494 } 12495 12496 private: 12497 bool Success(uint64_t Value, const Expr *E, APValue &Result) { 12498 return IntEval.Success(Value, E, Result); 12499 } 12500 bool Success(const APSInt &Value, const Expr *E, APValue &Result) { 12501 return IntEval.Success(Value, E, Result); 12502 } 12503 bool Error(const Expr *E) { 12504 return IntEval.Error(E); 12505 } 12506 bool Error(const Expr *E, diag::kind D) { 12507 return IntEval.Error(E, D); 12508 } 12509 12510 OptionalDiagnostic CCEDiag(const Expr *E, diag::kind D) { 12511 return Info.CCEDiag(E, D); 12512 } 12513 12514 // Returns true if visiting the RHS is necessary, false otherwise. 12515 bool VisitBinOpLHSOnly(EvalResult &LHSResult, const BinaryOperator *E, 12516 bool &SuppressRHSDiags); 12517 12518 bool VisitBinOp(const EvalResult &LHSResult, const EvalResult &RHSResult, 12519 const BinaryOperator *E, APValue &Result); 12520 12521 void EvaluateExpr(const Expr *E, EvalResult &Result) { 12522 Result.Failed = !Evaluate(Result.Val, Info, E); 12523 if (Result.Failed) 12524 Result.Val = APValue(); 12525 } 12526 12527 void process(EvalResult &Result); 12528 12529 void enqueue(const Expr *E) { 12530 E = E->IgnoreParens(); 12531 Queue.resize(Queue.size()+1); 12532 Queue.back().E = E; 12533 Queue.back().Kind = Job::AnyExprKind; 12534 } 12535 }; 12536 12537 } 12538 12539 bool DataRecursiveIntBinOpEvaluator:: 12540 VisitBinOpLHSOnly(EvalResult &LHSResult, const BinaryOperator *E, 12541 bool &SuppressRHSDiags) { 12542 if (E->getOpcode() == BO_Comma) { 12543 // Ignore LHS but note if we could not evaluate it. 12544 if (LHSResult.Failed) 12545 return Info.noteSideEffect(); 12546 return true; 12547 } 12548 12549 if (E->isLogicalOp()) { 12550 bool LHSAsBool; 12551 if (!LHSResult.Failed && HandleConversionToBool(LHSResult.Val, LHSAsBool)) { 12552 // We were able to evaluate the LHS, see if we can get away with not 12553 // evaluating the RHS: 0 && X -> 0, 1 || X -> 1 12554 if (LHSAsBool == (E->getOpcode() == BO_LOr)) { 12555 Success(LHSAsBool, E, LHSResult.Val); 12556 return false; // Ignore RHS 12557 } 12558 } else { 12559 LHSResult.Failed = true; 12560 12561 // Since we weren't able to evaluate the left hand side, it 12562 // might have had side effects. 12563 if (!Info.noteSideEffect()) 12564 return false; 12565 12566 // We can't evaluate the LHS; however, sometimes the result 12567 // is determined by the RHS: X && 0 -> 0, X || 1 -> 1. 12568 // Don't ignore RHS and suppress diagnostics from this arm. 12569 SuppressRHSDiags = true; 12570 } 12571 12572 return true; 12573 } 12574 12575 assert(E->getLHS()->getType()->isIntegralOrEnumerationType() && 12576 E->getRHS()->getType()->isIntegralOrEnumerationType()); 12577 12578 if (LHSResult.Failed && !Info.noteFailure()) 12579 return false; // Ignore RHS; 12580 12581 return true; 12582 } 12583 12584 static void addOrSubLValueAsInteger(APValue &LVal, const APSInt &Index, 12585 bool IsSub) { 12586 // Compute the new offset in the appropriate width, wrapping at 64 bits. 12587 // FIXME: When compiling for a 32-bit target, we should use 32-bit 12588 // offsets. 12589 assert(!LVal.hasLValuePath() && "have designator for integer lvalue"); 12590 CharUnits &Offset = LVal.getLValueOffset(); 12591 uint64_t Offset64 = Offset.getQuantity(); 12592 uint64_t Index64 = Index.extOrTrunc(64).getZExtValue(); 12593 Offset = CharUnits::fromQuantity(IsSub ? Offset64 - Index64 12594 : Offset64 + Index64); 12595 } 12596 12597 bool DataRecursiveIntBinOpEvaluator:: 12598 VisitBinOp(const EvalResult &LHSResult, const EvalResult &RHSResult, 12599 const BinaryOperator *E, APValue &Result) { 12600 if (E->getOpcode() == BO_Comma) { 12601 if (RHSResult.Failed) 12602 return false; 12603 Result = RHSResult.Val; 12604 return true; 12605 } 12606 12607 if (E->isLogicalOp()) { 12608 bool lhsResult, rhsResult; 12609 bool LHSIsOK = HandleConversionToBool(LHSResult.Val, lhsResult); 12610 bool RHSIsOK = HandleConversionToBool(RHSResult.Val, rhsResult); 12611 12612 if (LHSIsOK) { 12613 if (RHSIsOK) { 12614 if (E->getOpcode() == BO_LOr) 12615 return Success(lhsResult || rhsResult, E, Result); 12616 else 12617 return Success(lhsResult && rhsResult, E, Result); 12618 } 12619 } else { 12620 if (RHSIsOK) { 12621 // We can't evaluate the LHS; however, sometimes the result 12622 // is determined by the RHS: X && 0 -> 0, X || 1 -> 1. 12623 if (rhsResult == (E->getOpcode() == BO_LOr)) 12624 return Success(rhsResult, E, Result); 12625 } 12626 } 12627 12628 return false; 12629 } 12630 12631 assert(E->getLHS()->getType()->isIntegralOrEnumerationType() && 12632 E->getRHS()->getType()->isIntegralOrEnumerationType()); 12633 12634 if (LHSResult.Failed || RHSResult.Failed) 12635 return false; 12636 12637 const APValue &LHSVal = LHSResult.Val; 12638 const APValue &RHSVal = RHSResult.Val; 12639 12640 // Handle cases like (unsigned long)&a + 4. 12641 if (E->isAdditiveOp() && LHSVal.isLValue() && RHSVal.isInt()) { 12642 Result = LHSVal; 12643 addOrSubLValueAsInteger(Result, RHSVal.getInt(), E->getOpcode() == BO_Sub); 12644 return true; 12645 } 12646 12647 // Handle cases like 4 + (unsigned long)&a 12648 if (E->getOpcode() == BO_Add && 12649 RHSVal.isLValue() && LHSVal.isInt()) { 12650 Result = RHSVal; 12651 addOrSubLValueAsInteger(Result, LHSVal.getInt(), /*IsSub*/false); 12652 return true; 12653 } 12654 12655 if (E->getOpcode() == BO_Sub && LHSVal.isLValue() && RHSVal.isLValue()) { 12656 // Handle (intptr_t)&&A - (intptr_t)&&B. 12657 if (!LHSVal.getLValueOffset().isZero() || 12658 !RHSVal.getLValueOffset().isZero()) 12659 return false; 12660 const Expr *LHSExpr = LHSVal.getLValueBase().dyn_cast<const Expr*>(); 12661 const Expr *RHSExpr = RHSVal.getLValueBase().dyn_cast<const Expr*>(); 12662 if (!LHSExpr || !RHSExpr) 12663 return false; 12664 const AddrLabelExpr *LHSAddrExpr = dyn_cast<AddrLabelExpr>(LHSExpr); 12665 const AddrLabelExpr *RHSAddrExpr = dyn_cast<AddrLabelExpr>(RHSExpr); 12666 if (!LHSAddrExpr || !RHSAddrExpr) 12667 return false; 12668 // Make sure both labels come from the same function. 12669 if (LHSAddrExpr->getLabel()->getDeclContext() != 12670 RHSAddrExpr->getLabel()->getDeclContext()) 12671 return false; 12672 Result = APValue(LHSAddrExpr, RHSAddrExpr); 12673 return true; 12674 } 12675 12676 // All the remaining cases expect both operands to be an integer 12677 if (!LHSVal.isInt() || !RHSVal.isInt()) 12678 return Error(E); 12679 12680 // Set up the width and signedness manually, in case it can't be deduced 12681 // from the operation we're performing. 12682 // FIXME: Don't do this in the cases where we can deduce it. 12683 APSInt Value(Info.Ctx.getIntWidth(E->getType()), 12684 E->getType()->isUnsignedIntegerOrEnumerationType()); 12685 if (!handleIntIntBinOp(Info, E, LHSVal.getInt(), E->getOpcode(), 12686 RHSVal.getInt(), Value)) 12687 return false; 12688 return Success(Value, E, Result); 12689 } 12690 12691 void DataRecursiveIntBinOpEvaluator::process(EvalResult &Result) { 12692 Job &job = Queue.back(); 12693 12694 switch (job.Kind) { 12695 case Job::AnyExprKind: { 12696 if (const BinaryOperator *Bop = dyn_cast<BinaryOperator>(job.E)) { 12697 if (shouldEnqueue(Bop)) { 12698 job.Kind = Job::BinOpKind; 12699 enqueue(Bop->getLHS()); 12700 return; 12701 } 12702 } 12703 12704 EvaluateExpr(job.E, Result); 12705 Queue.pop_back(); 12706 return; 12707 } 12708 12709 case Job::BinOpKind: { 12710 const BinaryOperator *Bop = cast<BinaryOperator>(job.E); 12711 bool SuppressRHSDiags = false; 12712 if (!VisitBinOpLHSOnly(Result, Bop, SuppressRHSDiags)) { 12713 Queue.pop_back(); 12714 return; 12715 } 12716 if (SuppressRHSDiags) 12717 job.startSpeculativeEval(Info); 12718 job.LHSResult.swap(Result); 12719 job.Kind = Job::BinOpVisitedLHSKind; 12720 enqueue(Bop->getRHS()); 12721 return; 12722 } 12723 12724 case Job::BinOpVisitedLHSKind: { 12725 const BinaryOperator *Bop = cast<BinaryOperator>(job.E); 12726 EvalResult RHS; 12727 RHS.swap(Result); 12728 Result.Failed = !VisitBinOp(job.LHSResult, RHS, Bop, Result.Val); 12729 Queue.pop_back(); 12730 return; 12731 } 12732 } 12733 12734 llvm_unreachable("Invalid Job::Kind!"); 12735 } 12736 12737 namespace { 12738 enum class CmpResult { 12739 Unequal, 12740 Less, 12741 Equal, 12742 Greater, 12743 Unordered, 12744 }; 12745 } 12746 12747 template <class SuccessCB, class AfterCB> 12748 static bool 12749 EvaluateComparisonBinaryOperator(EvalInfo &Info, const BinaryOperator *E, 12750 SuccessCB &&Success, AfterCB &&DoAfter) { 12751 assert(!E->isValueDependent()); 12752 assert(E->isComparisonOp() && "expected comparison operator"); 12753 assert((E->getOpcode() == BO_Cmp || 12754 E->getType()->isIntegralOrEnumerationType()) && 12755 "unsupported binary expression evaluation"); 12756 auto Error = [&](const Expr *E) { 12757 Info.FFDiag(E, diag::note_invalid_subexpr_in_const_expr); 12758 return false; 12759 }; 12760 12761 bool IsRelational = E->isRelationalOp() || E->getOpcode() == BO_Cmp; 12762 bool IsEquality = E->isEqualityOp(); 12763 12764 QualType LHSTy = E->getLHS()->getType(); 12765 QualType RHSTy = E->getRHS()->getType(); 12766 12767 if (LHSTy->isIntegralOrEnumerationType() && 12768 RHSTy->isIntegralOrEnumerationType()) { 12769 APSInt LHS, RHS; 12770 bool LHSOK = EvaluateInteger(E->getLHS(), LHS, Info); 12771 if (!LHSOK && !Info.noteFailure()) 12772 return false; 12773 if (!EvaluateInteger(E->getRHS(), RHS, Info) || !LHSOK) 12774 return false; 12775 if (LHS < RHS) 12776 return Success(CmpResult::Less, E); 12777 if (LHS > RHS) 12778 return Success(CmpResult::Greater, E); 12779 return Success(CmpResult::Equal, E); 12780 } 12781 12782 if (LHSTy->isFixedPointType() || RHSTy->isFixedPointType()) { 12783 APFixedPoint LHSFX(Info.Ctx.getFixedPointSemantics(LHSTy)); 12784 APFixedPoint RHSFX(Info.Ctx.getFixedPointSemantics(RHSTy)); 12785 12786 bool LHSOK = EvaluateFixedPointOrInteger(E->getLHS(), LHSFX, Info); 12787 if (!LHSOK && !Info.noteFailure()) 12788 return false; 12789 if (!EvaluateFixedPointOrInteger(E->getRHS(), RHSFX, Info) || !LHSOK) 12790 return false; 12791 if (LHSFX < RHSFX) 12792 return Success(CmpResult::Less, E); 12793 if (LHSFX > RHSFX) 12794 return Success(CmpResult::Greater, E); 12795 return Success(CmpResult::Equal, E); 12796 } 12797 12798 if (LHSTy->isAnyComplexType() || RHSTy->isAnyComplexType()) { 12799 ComplexValue LHS, RHS; 12800 bool LHSOK; 12801 if (E->isAssignmentOp()) { 12802 LValue LV; 12803 EvaluateLValue(E->getLHS(), LV, Info); 12804 LHSOK = false; 12805 } else if (LHSTy->isRealFloatingType()) { 12806 LHSOK = EvaluateFloat(E->getLHS(), LHS.FloatReal, Info); 12807 if (LHSOK) { 12808 LHS.makeComplexFloat(); 12809 LHS.FloatImag = APFloat(LHS.FloatReal.getSemantics()); 12810 } 12811 } else { 12812 LHSOK = EvaluateComplex(E->getLHS(), LHS, Info); 12813 } 12814 if (!LHSOK && !Info.noteFailure()) 12815 return false; 12816 12817 if (E->getRHS()->getType()->isRealFloatingType()) { 12818 if (!EvaluateFloat(E->getRHS(), RHS.FloatReal, Info) || !LHSOK) 12819 return false; 12820 RHS.makeComplexFloat(); 12821 RHS.FloatImag = APFloat(RHS.FloatReal.getSemantics()); 12822 } else if (!EvaluateComplex(E->getRHS(), RHS, Info) || !LHSOK) 12823 return false; 12824 12825 if (LHS.isComplexFloat()) { 12826 APFloat::cmpResult CR_r = 12827 LHS.getComplexFloatReal().compare(RHS.getComplexFloatReal()); 12828 APFloat::cmpResult CR_i = 12829 LHS.getComplexFloatImag().compare(RHS.getComplexFloatImag()); 12830 bool IsEqual = CR_r == APFloat::cmpEqual && CR_i == APFloat::cmpEqual; 12831 return Success(IsEqual ? CmpResult::Equal : CmpResult::Unequal, E); 12832 } else { 12833 assert(IsEquality && "invalid complex comparison"); 12834 bool IsEqual = LHS.getComplexIntReal() == RHS.getComplexIntReal() && 12835 LHS.getComplexIntImag() == RHS.getComplexIntImag(); 12836 return Success(IsEqual ? CmpResult::Equal : CmpResult::Unequal, E); 12837 } 12838 } 12839 12840 if (LHSTy->isRealFloatingType() && 12841 RHSTy->isRealFloatingType()) { 12842 APFloat RHS(0.0), LHS(0.0); 12843 12844 bool LHSOK = EvaluateFloat(E->getRHS(), RHS, Info); 12845 if (!LHSOK && !Info.noteFailure()) 12846 return false; 12847 12848 if (!EvaluateFloat(E->getLHS(), LHS, Info) || !LHSOK) 12849 return false; 12850 12851 assert(E->isComparisonOp() && "Invalid binary operator!"); 12852 llvm::APFloatBase::cmpResult APFloatCmpResult = LHS.compare(RHS); 12853 if (!Info.InConstantContext && 12854 APFloatCmpResult == APFloat::cmpUnordered && 12855 E->getFPFeaturesInEffect(Info.Ctx.getLangOpts()).isFPConstrained()) { 12856 // Note: Compares may raise invalid in some cases involving NaN or sNaN. 12857 Info.FFDiag(E, diag::note_constexpr_float_arithmetic_strict); 12858 return false; 12859 } 12860 auto GetCmpRes = [&]() { 12861 switch (APFloatCmpResult) { 12862 case APFloat::cmpEqual: 12863 return CmpResult::Equal; 12864 case APFloat::cmpLessThan: 12865 return CmpResult::Less; 12866 case APFloat::cmpGreaterThan: 12867 return CmpResult::Greater; 12868 case APFloat::cmpUnordered: 12869 return CmpResult::Unordered; 12870 } 12871 llvm_unreachable("Unrecognised APFloat::cmpResult enum"); 12872 }; 12873 return Success(GetCmpRes(), E); 12874 } 12875 12876 if (LHSTy->isPointerType() && RHSTy->isPointerType()) { 12877 LValue LHSValue, RHSValue; 12878 12879 bool LHSOK = EvaluatePointer(E->getLHS(), LHSValue, Info); 12880 if (!LHSOK && !Info.noteFailure()) 12881 return false; 12882 12883 if (!EvaluatePointer(E->getRHS(), RHSValue, Info) || !LHSOK) 12884 return false; 12885 12886 // Reject differing bases from the normal codepath; we special-case 12887 // comparisons to null. 12888 if (!HasSameBase(LHSValue, RHSValue)) { 12889 // Inequalities and subtractions between unrelated pointers have 12890 // unspecified or undefined behavior. 12891 if (!IsEquality) { 12892 Info.FFDiag(E, diag::note_constexpr_pointer_comparison_unspecified); 12893 return false; 12894 } 12895 // A constant address may compare equal to the address of a symbol. 12896 // The one exception is that address of an object cannot compare equal 12897 // to a null pointer constant. 12898 if ((!LHSValue.Base && !LHSValue.Offset.isZero()) || 12899 (!RHSValue.Base && !RHSValue.Offset.isZero())) 12900 return Error(E); 12901 // It's implementation-defined whether distinct literals will have 12902 // distinct addresses. In clang, the result of such a comparison is 12903 // unspecified, so it is not a constant expression. However, we do know 12904 // that the address of a literal will be non-null. 12905 if ((IsLiteralLValue(LHSValue) || IsLiteralLValue(RHSValue)) && 12906 LHSValue.Base && RHSValue.Base) 12907 return Error(E); 12908 // We can't tell whether weak symbols will end up pointing to the same 12909 // object. 12910 if (IsWeakLValue(LHSValue) || IsWeakLValue(RHSValue)) 12911 return Error(E); 12912 // We can't compare the address of the start of one object with the 12913 // past-the-end address of another object, per C++ DR1652. 12914 if ((LHSValue.Base && LHSValue.Offset.isZero() && 12915 isOnePastTheEndOfCompleteObject(Info.Ctx, RHSValue)) || 12916 (RHSValue.Base && RHSValue.Offset.isZero() && 12917 isOnePastTheEndOfCompleteObject(Info.Ctx, LHSValue))) 12918 return Error(E); 12919 // We can't tell whether an object is at the same address as another 12920 // zero sized object. 12921 if ((RHSValue.Base && isZeroSized(LHSValue)) || 12922 (LHSValue.Base && isZeroSized(RHSValue))) 12923 return Error(E); 12924 return Success(CmpResult::Unequal, E); 12925 } 12926 12927 const CharUnits &LHSOffset = LHSValue.getLValueOffset(); 12928 const CharUnits &RHSOffset = RHSValue.getLValueOffset(); 12929 12930 SubobjectDesignator &LHSDesignator = LHSValue.getLValueDesignator(); 12931 SubobjectDesignator &RHSDesignator = RHSValue.getLValueDesignator(); 12932 12933 // C++11 [expr.rel]p3: 12934 // Pointers to void (after pointer conversions) can be compared, with a 12935 // result defined as follows: If both pointers represent the same 12936 // address or are both the null pointer value, the result is true if the 12937 // operator is <= or >= and false otherwise; otherwise the result is 12938 // unspecified. 12939 // We interpret this as applying to pointers to *cv* void. 12940 if (LHSTy->isVoidPointerType() && LHSOffset != RHSOffset && IsRelational) 12941 Info.CCEDiag(E, diag::note_constexpr_void_comparison); 12942 12943 // C++11 [expr.rel]p2: 12944 // - If two pointers point to non-static data members of the same object, 12945 // or to subobjects or array elements fo such members, recursively, the 12946 // pointer to the later declared member compares greater provided the 12947 // two members have the same access control and provided their class is 12948 // not a union. 12949 // [...] 12950 // - Otherwise pointer comparisons are unspecified. 12951 if (!LHSDesignator.Invalid && !RHSDesignator.Invalid && IsRelational) { 12952 bool WasArrayIndex; 12953 unsigned Mismatch = FindDesignatorMismatch( 12954 getType(LHSValue.Base), LHSDesignator, RHSDesignator, WasArrayIndex); 12955 // At the point where the designators diverge, the comparison has a 12956 // specified value if: 12957 // - we are comparing array indices 12958 // - we are comparing fields of a union, or fields with the same access 12959 // Otherwise, the result is unspecified and thus the comparison is not a 12960 // constant expression. 12961 if (!WasArrayIndex && Mismatch < LHSDesignator.Entries.size() && 12962 Mismatch < RHSDesignator.Entries.size()) { 12963 const FieldDecl *LF = getAsField(LHSDesignator.Entries[Mismatch]); 12964 const FieldDecl *RF = getAsField(RHSDesignator.Entries[Mismatch]); 12965 if (!LF && !RF) 12966 Info.CCEDiag(E, diag::note_constexpr_pointer_comparison_base_classes); 12967 else if (!LF) 12968 Info.CCEDiag(E, diag::note_constexpr_pointer_comparison_base_field) 12969 << getAsBaseClass(LHSDesignator.Entries[Mismatch]) 12970 << RF->getParent() << RF; 12971 else if (!RF) 12972 Info.CCEDiag(E, diag::note_constexpr_pointer_comparison_base_field) 12973 << getAsBaseClass(RHSDesignator.Entries[Mismatch]) 12974 << LF->getParent() << LF; 12975 else if (!LF->getParent()->isUnion() && 12976 LF->getAccess() != RF->getAccess()) 12977 Info.CCEDiag(E, 12978 diag::note_constexpr_pointer_comparison_differing_access) 12979 << LF << LF->getAccess() << RF << RF->getAccess() 12980 << LF->getParent(); 12981 } 12982 } 12983 12984 // The comparison here must be unsigned, and performed with the same 12985 // width as the pointer. 12986 unsigned PtrSize = Info.Ctx.getTypeSize(LHSTy); 12987 uint64_t CompareLHS = LHSOffset.getQuantity(); 12988 uint64_t CompareRHS = RHSOffset.getQuantity(); 12989 assert(PtrSize <= 64 && "Unexpected pointer width"); 12990 uint64_t Mask = ~0ULL >> (64 - PtrSize); 12991 CompareLHS &= Mask; 12992 CompareRHS &= Mask; 12993 12994 // If there is a base and this is a relational operator, we can only 12995 // compare pointers within the object in question; otherwise, the result 12996 // depends on where the object is located in memory. 12997 if (!LHSValue.Base.isNull() && IsRelational) { 12998 QualType BaseTy = getType(LHSValue.Base); 12999 if (BaseTy->isIncompleteType()) 13000 return Error(E); 13001 CharUnits Size = Info.Ctx.getTypeSizeInChars(BaseTy); 13002 uint64_t OffsetLimit = Size.getQuantity(); 13003 if (CompareLHS > OffsetLimit || CompareRHS > OffsetLimit) 13004 return Error(E); 13005 } 13006 13007 if (CompareLHS < CompareRHS) 13008 return Success(CmpResult::Less, E); 13009 if (CompareLHS > CompareRHS) 13010 return Success(CmpResult::Greater, E); 13011 return Success(CmpResult::Equal, E); 13012 } 13013 13014 if (LHSTy->isMemberPointerType()) { 13015 assert(IsEquality && "unexpected member pointer operation"); 13016 assert(RHSTy->isMemberPointerType() && "invalid comparison"); 13017 13018 MemberPtr LHSValue, RHSValue; 13019 13020 bool LHSOK = EvaluateMemberPointer(E->getLHS(), LHSValue, Info); 13021 if (!LHSOK && !Info.noteFailure()) 13022 return false; 13023 13024 if (!EvaluateMemberPointer(E->getRHS(), RHSValue, Info) || !LHSOK) 13025 return false; 13026 13027 // C++11 [expr.eq]p2: 13028 // If both operands are null, they compare equal. Otherwise if only one is 13029 // null, they compare unequal. 13030 if (!LHSValue.getDecl() || !RHSValue.getDecl()) { 13031 bool Equal = !LHSValue.getDecl() && !RHSValue.getDecl(); 13032 return Success(Equal ? CmpResult::Equal : CmpResult::Unequal, E); 13033 } 13034 13035 // Otherwise if either is a pointer to a virtual member function, the 13036 // result is unspecified. 13037 if (const CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(LHSValue.getDecl())) 13038 if (MD->isVirtual()) 13039 Info.CCEDiag(E, diag::note_constexpr_compare_virtual_mem_ptr) << MD; 13040 if (const CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(RHSValue.getDecl())) 13041 if (MD->isVirtual()) 13042 Info.CCEDiag(E, diag::note_constexpr_compare_virtual_mem_ptr) << MD; 13043 13044 // Otherwise they compare equal if and only if they would refer to the 13045 // same member of the same most derived object or the same subobject if 13046 // they were dereferenced with a hypothetical object of the associated 13047 // class type. 13048 bool Equal = LHSValue == RHSValue; 13049 return Success(Equal ? CmpResult::Equal : CmpResult::Unequal, E); 13050 } 13051 13052 if (LHSTy->isNullPtrType()) { 13053 assert(E->isComparisonOp() && "unexpected nullptr operation"); 13054 assert(RHSTy->isNullPtrType() && "missing pointer conversion"); 13055 // C++11 [expr.rel]p4, [expr.eq]p3: If two operands of type std::nullptr_t 13056 // are compared, the result is true of the operator is <=, >= or ==, and 13057 // false otherwise. 13058 return Success(CmpResult::Equal, E); 13059 } 13060 13061 return DoAfter(); 13062 } 13063 13064 bool RecordExprEvaluator::VisitBinCmp(const BinaryOperator *E) { 13065 if (!CheckLiteralType(Info, E)) 13066 return false; 13067 13068 auto OnSuccess = [&](CmpResult CR, const BinaryOperator *E) { 13069 ComparisonCategoryResult CCR; 13070 switch (CR) { 13071 case CmpResult::Unequal: 13072 llvm_unreachable("should never produce Unequal for three-way comparison"); 13073 case CmpResult::Less: 13074 CCR = ComparisonCategoryResult::Less; 13075 break; 13076 case CmpResult::Equal: 13077 CCR = ComparisonCategoryResult::Equal; 13078 break; 13079 case CmpResult::Greater: 13080 CCR = ComparisonCategoryResult::Greater; 13081 break; 13082 case CmpResult::Unordered: 13083 CCR = ComparisonCategoryResult::Unordered; 13084 break; 13085 } 13086 // Evaluation succeeded. Lookup the information for the comparison category 13087 // type and fetch the VarDecl for the result. 13088 const ComparisonCategoryInfo &CmpInfo = 13089 Info.Ctx.CompCategories.getInfoForType(E->getType()); 13090 const VarDecl *VD = CmpInfo.getValueInfo(CmpInfo.makeWeakResult(CCR))->VD; 13091 // Check and evaluate the result as a constant expression. 13092 LValue LV; 13093 LV.set(VD); 13094 if (!handleLValueToRValueConversion(Info, E, E->getType(), LV, Result)) 13095 return false; 13096 return CheckConstantExpression(Info, E->getExprLoc(), E->getType(), Result, 13097 ConstantExprKind::Normal); 13098 }; 13099 return EvaluateComparisonBinaryOperator(Info, E, OnSuccess, [&]() { 13100 return ExprEvaluatorBaseTy::VisitBinCmp(E); 13101 }); 13102 } 13103 13104 bool IntExprEvaluator::VisitBinaryOperator(const BinaryOperator *E) { 13105 // We don't support assignment in C. C++ assignments don't get here because 13106 // assignment is an lvalue in C++. 13107 if (E->isAssignmentOp()) { 13108 Error(E); 13109 if (!Info.noteFailure()) 13110 return false; 13111 } 13112 13113 if (DataRecursiveIntBinOpEvaluator::shouldEnqueue(E)) 13114 return DataRecursiveIntBinOpEvaluator(*this, Result).Traverse(E); 13115 13116 assert((!E->getLHS()->getType()->isIntegralOrEnumerationType() || 13117 !E->getRHS()->getType()->isIntegralOrEnumerationType()) && 13118 "DataRecursiveIntBinOpEvaluator should have handled integral types"); 13119 13120 if (E->isComparisonOp()) { 13121 // Evaluate builtin binary comparisons by evaluating them as three-way 13122 // comparisons and then translating the result. 13123 auto OnSuccess = [&](CmpResult CR, const BinaryOperator *E) { 13124 assert((CR != CmpResult::Unequal || E->isEqualityOp()) && 13125 "should only produce Unequal for equality comparisons"); 13126 bool IsEqual = CR == CmpResult::Equal, 13127 IsLess = CR == CmpResult::Less, 13128 IsGreater = CR == CmpResult::Greater; 13129 auto Op = E->getOpcode(); 13130 switch (Op) { 13131 default: 13132 llvm_unreachable("unsupported binary operator"); 13133 case BO_EQ: 13134 case BO_NE: 13135 return Success(IsEqual == (Op == BO_EQ), E); 13136 case BO_LT: 13137 return Success(IsLess, E); 13138 case BO_GT: 13139 return Success(IsGreater, E); 13140 case BO_LE: 13141 return Success(IsEqual || IsLess, E); 13142 case BO_GE: 13143 return Success(IsEqual || IsGreater, E); 13144 } 13145 }; 13146 return EvaluateComparisonBinaryOperator(Info, E, OnSuccess, [&]() { 13147 return ExprEvaluatorBaseTy::VisitBinaryOperator(E); 13148 }); 13149 } 13150 13151 QualType LHSTy = E->getLHS()->getType(); 13152 QualType RHSTy = E->getRHS()->getType(); 13153 13154 if (LHSTy->isPointerType() && RHSTy->isPointerType() && 13155 E->getOpcode() == BO_Sub) { 13156 LValue LHSValue, RHSValue; 13157 13158 bool LHSOK = EvaluatePointer(E->getLHS(), LHSValue, Info); 13159 if (!LHSOK && !Info.noteFailure()) 13160 return false; 13161 13162 if (!EvaluatePointer(E->getRHS(), RHSValue, Info) || !LHSOK) 13163 return false; 13164 13165 // Reject differing bases from the normal codepath; we special-case 13166 // comparisons to null. 13167 if (!HasSameBase(LHSValue, RHSValue)) { 13168 // Handle &&A - &&B. 13169 if (!LHSValue.Offset.isZero() || !RHSValue.Offset.isZero()) 13170 return Error(E); 13171 const Expr *LHSExpr = LHSValue.Base.dyn_cast<const Expr *>(); 13172 const Expr *RHSExpr = RHSValue.Base.dyn_cast<const Expr *>(); 13173 if (!LHSExpr || !RHSExpr) 13174 return Error(E); 13175 const AddrLabelExpr *LHSAddrExpr = dyn_cast<AddrLabelExpr>(LHSExpr); 13176 const AddrLabelExpr *RHSAddrExpr = dyn_cast<AddrLabelExpr>(RHSExpr); 13177 if (!LHSAddrExpr || !RHSAddrExpr) 13178 return Error(E); 13179 // Make sure both labels come from the same function. 13180 if (LHSAddrExpr->getLabel()->getDeclContext() != 13181 RHSAddrExpr->getLabel()->getDeclContext()) 13182 return Error(E); 13183 return Success(APValue(LHSAddrExpr, RHSAddrExpr), E); 13184 } 13185 const CharUnits &LHSOffset = LHSValue.getLValueOffset(); 13186 const CharUnits &RHSOffset = RHSValue.getLValueOffset(); 13187 13188 SubobjectDesignator &LHSDesignator = LHSValue.getLValueDesignator(); 13189 SubobjectDesignator &RHSDesignator = RHSValue.getLValueDesignator(); 13190 13191 // C++11 [expr.add]p6: 13192 // Unless both pointers point to elements of the same array object, or 13193 // one past the last element of the array object, the behavior is 13194 // undefined. 13195 if (!LHSDesignator.Invalid && !RHSDesignator.Invalid && 13196 !AreElementsOfSameArray(getType(LHSValue.Base), LHSDesignator, 13197 RHSDesignator)) 13198 Info.CCEDiag(E, diag::note_constexpr_pointer_subtraction_not_same_array); 13199 13200 QualType Type = E->getLHS()->getType(); 13201 QualType ElementType = Type->castAs<PointerType>()->getPointeeType(); 13202 13203 CharUnits ElementSize; 13204 if (!HandleSizeof(Info, E->getExprLoc(), ElementType, ElementSize)) 13205 return false; 13206 13207 // As an extension, a type may have zero size (empty struct or union in 13208 // C, array of zero length). Pointer subtraction in such cases has 13209 // undefined behavior, so is not constant. 13210 if (ElementSize.isZero()) { 13211 Info.FFDiag(E, diag::note_constexpr_pointer_subtraction_zero_size) 13212 << ElementType; 13213 return false; 13214 } 13215 13216 // FIXME: LLVM and GCC both compute LHSOffset - RHSOffset at runtime, 13217 // and produce incorrect results when it overflows. Such behavior 13218 // appears to be non-conforming, but is common, so perhaps we should 13219 // assume the standard intended for such cases to be undefined behavior 13220 // and check for them. 13221 13222 // Compute (LHSOffset - RHSOffset) / Size carefully, checking for 13223 // overflow in the final conversion to ptrdiff_t. 13224 APSInt LHS(llvm::APInt(65, (int64_t)LHSOffset.getQuantity(), true), false); 13225 APSInt RHS(llvm::APInt(65, (int64_t)RHSOffset.getQuantity(), true), false); 13226 APSInt ElemSize(llvm::APInt(65, (int64_t)ElementSize.getQuantity(), true), 13227 false); 13228 APSInt TrueResult = (LHS - RHS) / ElemSize; 13229 APSInt Result = TrueResult.trunc(Info.Ctx.getIntWidth(E->getType())); 13230 13231 if (Result.extend(65) != TrueResult && 13232 !HandleOverflow(Info, E, TrueResult, E->getType())) 13233 return false; 13234 return Success(Result, E); 13235 } 13236 13237 return ExprEvaluatorBaseTy::VisitBinaryOperator(E); 13238 } 13239 13240 /// VisitUnaryExprOrTypeTraitExpr - Evaluate a sizeof, alignof or vec_step with 13241 /// a result as the expression's type. 13242 bool IntExprEvaluator::VisitUnaryExprOrTypeTraitExpr( 13243 const UnaryExprOrTypeTraitExpr *E) { 13244 switch(E->getKind()) { 13245 case UETT_PreferredAlignOf: 13246 case UETT_AlignOf: { 13247 if (E->isArgumentType()) 13248 return Success(GetAlignOfType(Info, E->getArgumentType(), E->getKind()), 13249 E); 13250 else 13251 return Success(GetAlignOfExpr(Info, E->getArgumentExpr(), E->getKind()), 13252 E); 13253 } 13254 13255 case UETT_VecStep: { 13256 QualType Ty = E->getTypeOfArgument(); 13257 13258 if (Ty->isVectorType()) { 13259 unsigned n = Ty->castAs<VectorType>()->getNumElements(); 13260 13261 // The vec_step built-in functions that take a 3-component 13262 // vector return 4. (OpenCL 1.1 spec 6.11.12) 13263 if (n == 3) 13264 n = 4; 13265 13266 return Success(n, E); 13267 } else 13268 return Success(1, E); 13269 } 13270 13271 case UETT_SizeOf: { 13272 QualType SrcTy = E->getTypeOfArgument(); 13273 // C++ [expr.sizeof]p2: "When applied to a reference or a reference type, 13274 // the result is the size of the referenced type." 13275 if (const ReferenceType *Ref = SrcTy->getAs<ReferenceType>()) 13276 SrcTy = Ref->getPointeeType(); 13277 13278 CharUnits Sizeof; 13279 if (!HandleSizeof(Info, E->getExprLoc(), SrcTy, Sizeof)) 13280 return false; 13281 return Success(Sizeof, E); 13282 } 13283 case UETT_OpenMPRequiredSimdAlign: 13284 assert(E->isArgumentType()); 13285 return Success( 13286 Info.Ctx.toCharUnitsFromBits( 13287 Info.Ctx.getOpenMPDefaultSimdAlign(E->getArgumentType())) 13288 .getQuantity(), 13289 E); 13290 } 13291 13292 llvm_unreachable("unknown expr/type trait"); 13293 } 13294 13295 bool IntExprEvaluator::VisitOffsetOfExpr(const OffsetOfExpr *OOE) { 13296 CharUnits Result; 13297 unsigned n = OOE->getNumComponents(); 13298 if (n == 0) 13299 return Error(OOE); 13300 QualType CurrentType = OOE->getTypeSourceInfo()->getType(); 13301 for (unsigned i = 0; i != n; ++i) { 13302 OffsetOfNode ON = OOE->getComponent(i); 13303 switch (ON.getKind()) { 13304 case OffsetOfNode::Array: { 13305 const Expr *Idx = OOE->getIndexExpr(ON.getArrayExprIndex()); 13306 APSInt IdxResult; 13307 if (!EvaluateInteger(Idx, IdxResult, Info)) 13308 return false; 13309 const ArrayType *AT = Info.Ctx.getAsArrayType(CurrentType); 13310 if (!AT) 13311 return Error(OOE); 13312 CurrentType = AT->getElementType(); 13313 CharUnits ElementSize = Info.Ctx.getTypeSizeInChars(CurrentType); 13314 Result += IdxResult.getSExtValue() * ElementSize; 13315 break; 13316 } 13317 13318 case OffsetOfNode::Field: { 13319 FieldDecl *MemberDecl = ON.getField(); 13320 const RecordType *RT = CurrentType->getAs<RecordType>(); 13321 if (!RT) 13322 return Error(OOE); 13323 RecordDecl *RD = RT->getDecl(); 13324 if (RD->isInvalidDecl()) return false; 13325 const ASTRecordLayout &RL = Info.Ctx.getASTRecordLayout(RD); 13326 unsigned i = MemberDecl->getFieldIndex(); 13327 assert(i < RL.getFieldCount() && "offsetof field in wrong type"); 13328 Result += Info.Ctx.toCharUnitsFromBits(RL.getFieldOffset(i)); 13329 CurrentType = MemberDecl->getType().getNonReferenceType(); 13330 break; 13331 } 13332 13333 case OffsetOfNode::Identifier: 13334 llvm_unreachable("dependent __builtin_offsetof"); 13335 13336 case OffsetOfNode::Base: { 13337 CXXBaseSpecifier *BaseSpec = ON.getBase(); 13338 if (BaseSpec->isVirtual()) 13339 return Error(OOE); 13340 13341 // Find the layout of the class whose base we are looking into. 13342 const RecordType *RT = CurrentType->getAs<RecordType>(); 13343 if (!RT) 13344 return Error(OOE); 13345 RecordDecl *RD = RT->getDecl(); 13346 if (RD->isInvalidDecl()) return false; 13347 const ASTRecordLayout &RL = Info.Ctx.getASTRecordLayout(RD); 13348 13349 // Find the base class itself. 13350 CurrentType = BaseSpec->getType(); 13351 const RecordType *BaseRT = CurrentType->getAs<RecordType>(); 13352 if (!BaseRT) 13353 return Error(OOE); 13354 13355 // Add the offset to the base. 13356 Result += RL.getBaseClassOffset(cast<CXXRecordDecl>(BaseRT->getDecl())); 13357 break; 13358 } 13359 } 13360 } 13361 return Success(Result, OOE); 13362 } 13363 13364 bool IntExprEvaluator::VisitUnaryOperator(const UnaryOperator *E) { 13365 switch (E->getOpcode()) { 13366 default: 13367 // Address, indirect, pre/post inc/dec, etc are not valid constant exprs. 13368 // See C99 6.6p3. 13369 return Error(E); 13370 case UO_Extension: 13371 // FIXME: Should extension allow i-c-e extension expressions in its scope? 13372 // If so, we could clear the diagnostic ID. 13373 return Visit(E->getSubExpr()); 13374 case UO_Plus: 13375 // The result is just the value. 13376 return Visit(E->getSubExpr()); 13377 case UO_Minus: { 13378 if (!Visit(E->getSubExpr())) 13379 return false; 13380 if (!Result.isInt()) return Error(E); 13381 const APSInt &Value = Result.getInt(); 13382 if (Value.isSigned() && Value.isMinSignedValue() && E->canOverflow() && 13383 !HandleOverflow(Info, E, -Value.extend(Value.getBitWidth() + 1), 13384 E->getType())) 13385 return false; 13386 return Success(-Value, E); 13387 } 13388 case UO_Not: { 13389 if (!Visit(E->getSubExpr())) 13390 return false; 13391 if (!Result.isInt()) return Error(E); 13392 return Success(~Result.getInt(), E); 13393 } 13394 case UO_LNot: { 13395 bool bres; 13396 if (!EvaluateAsBooleanCondition(E->getSubExpr(), bres, Info)) 13397 return false; 13398 return Success(!bres, E); 13399 } 13400 } 13401 } 13402 13403 /// HandleCast - This is used to evaluate implicit or explicit casts where the 13404 /// result type is integer. 13405 bool IntExprEvaluator::VisitCastExpr(const CastExpr *E) { 13406 const Expr *SubExpr = E->getSubExpr(); 13407 QualType DestType = E->getType(); 13408 QualType SrcType = SubExpr->getType(); 13409 13410 switch (E->getCastKind()) { 13411 case CK_BaseToDerived: 13412 case CK_DerivedToBase: 13413 case CK_UncheckedDerivedToBase: 13414 case CK_Dynamic: 13415 case CK_ToUnion: 13416 case CK_ArrayToPointerDecay: 13417 case CK_FunctionToPointerDecay: 13418 case CK_NullToPointer: 13419 case CK_NullToMemberPointer: 13420 case CK_BaseToDerivedMemberPointer: 13421 case CK_DerivedToBaseMemberPointer: 13422 case CK_ReinterpretMemberPointer: 13423 case CK_ConstructorConversion: 13424 case CK_IntegralToPointer: 13425 case CK_ToVoid: 13426 case CK_VectorSplat: 13427 case CK_IntegralToFloating: 13428 case CK_FloatingCast: 13429 case CK_CPointerToObjCPointerCast: 13430 case CK_BlockPointerToObjCPointerCast: 13431 case CK_AnyPointerToBlockPointerCast: 13432 case CK_ObjCObjectLValueCast: 13433 case CK_FloatingRealToComplex: 13434 case CK_FloatingComplexToReal: 13435 case CK_FloatingComplexCast: 13436 case CK_FloatingComplexToIntegralComplex: 13437 case CK_IntegralRealToComplex: 13438 case CK_IntegralComplexCast: 13439 case CK_IntegralComplexToFloatingComplex: 13440 case CK_BuiltinFnToFnPtr: 13441 case CK_ZeroToOCLOpaqueType: 13442 case CK_NonAtomicToAtomic: 13443 case CK_AddressSpaceConversion: 13444 case CK_IntToOCLSampler: 13445 case CK_FloatingToFixedPoint: 13446 case CK_FixedPointToFloating: 13447 case CK_FixedPointCast: 13448 case CK_IntegralToFixedPoint: 13449 case CK_MatrixCast: 13450 llvm_unreachable("invalid cast kind for integral value"); 13451 13452 case CK_BitCast: 13453 case CK_Dependent: 13454 case CK_LValueBitCast: 13455 case CK_ARCProduceObject: 13456 case CK_ARCConsumeObject: 13457 case CK_ARCReclaimReturnedObject: 13458 case CK_ARCExtendBlockObject: 13459 case CK_CopyAndAutoreleaseBlockObject: 13460 return Error(E); 13461 13462 case CK_UserDefinedConversion: 13463 case CK_LValueToRValue: 13464 case CK_AtomicToNonAtomic: 13465 case CK_NoOp: 13466 case CK_LValueToRValueBitCast: 13467 return ExprEvaluatorBaseTy::VisitCastExpr(E); 13468 13469 case CK_MemberPointerToBoolean: 13470 case CK_PointerToBoolean: 13471 case CK_IntegralToBoolean: 13472 case CK_FloatingToBoolean: 13473 case CK_BooleanToSignedIntegral: 13474 case CK_FloatingComplexToBoolean: 13475 case CK_IntegralComplexToBoolean: { 13476 bool BoolResult; 13477 if (!EvaluateAsBooleanCondition(SubExpr, BoolResult, Info)) 13478 return false; 13479 uint64_t IntResult = BoolResult; 13480 if (BoolResult && E->getCastKind() == CK_BooleanToSignedIntegral) 13481 IntResult = (uint64_t)-1; 13482 return Success(IntResult, E); 13483 } 13484 13485 case CK_FixedPointToIntegral: { 13486 APFixedPoint Src(Info.Ctx.getFixedPointSemantics(SrcType)); 13487 if (!EvaluateFixedPoint(SubExpr, Src, Info)) 13488 return false; 13489 bool Overflowed; 13490 llvm::APSInt Result = Src.convertToInt( 13491 Info.Ctx.getIntWidth(DestType), 13492 DestType->isSignedIntegerOrEnumerationType(), &Overflowed); 13493 if (Overflowed && !HandleOverflow(Info, E, Result, DestType)) 13494 return false; 13495 return Success(Result, E); 13496 } 13497 13498 case CK_FixedPointToBoolean: { 13499 // Unsigned padding does not affect this. 13500 APValue Val; 13501 if (!Evaluate(Val, Info, SubExpr)) 13502 return false; 13503 return Success(Val.getFixedPoint().getBoolValue(), E); 13504 } 13505 13506 case CK_IntegralCast: { 13507 if (!Visit(SubExpr)) 13508 return false; 13509 13510 if (!Result.isInt()) { 13511 // Allow casts of address-of-label differences if they are no-ops 13512 // or narrowing. (The narrowing case isn't actually guaranteed to 13513 // be constant-evaluatable except in some narrow cases which are hard 13514 // to detect here. We let it through on the assumption the user knows 13515 // what they are doing.) 13516 if (Result.isAddrLabelDiff()) 13517 return Info.Ctx.getTypeSize(DestType) <= Info.Ctx.getTypeSize(SrcType); 13518 // Only allow casts of lvalues if they are lossless. 13519 return Info.Ctx.getTypeSize(DestType) == Info.Ctx.getTypeSize(SrcType); 13520 } 13521 13522 return Success(HandleIntToIntCast(Info, E, DestType, SrcType, 13523 Result.getInt()), E); 13524 } 13525 13526 case CK_PointerToIntegral: { 13527 CCEDiag(E, diag::note_constexpr_invalid_cast) << 2; 13528 13529 LValue LV; 13530 if (!EvaluatePointer(SubExpr, LV, Info)) 13531 return false; 13532 13533 if (LV.getLValueBase()) { 13534 // Only allow based lvalue casts if they are lossless. 13535 // FIXME: Allow a larger integer size than the pointer size, and allow 13536 // narrowing back down to pointer width in subsequent integral casts. 13537 // FIXME: Check integer type's active bits, not its type size. 13538 if (Info.Ctx.getTypeSize(DestType) != Info.Ctx.getTypeSize(SrcType)) 13539 return Error(E); 13540 13541 LV.Designator.setInvalid(); 13542 LV.moveInto(Result); 13543 return true; 13544 } 13545 13546 APSInt AsInt; 13547 APValue V; 13548 LV.moveInto(V); 13549 if (!V.toIntegralConstant(AsInt, SrcType, Info.Ctx)) 13550 llvm_unreachable("Can't cast this!"); 13551 13552 return Success(HandleIntToIntCast(Info, E, DestType, SrcType, AsInt), E); 13553 } 13554 13555 case CK_IntegralComplexToReal: { 13556 ComplexValue C; 13557 if (!EvaluateComplex(SubExpr, C, Info)) 13558 return false; 13559 return Success(C.getComplexIntReal(), E); 13560 } 13561 13562 case CK_FloatingToIntegral: { 13563 APFloat F(0.0); 13564 if (!EvaluateFloat(SubExpr, F, Info)) 13565 return false; 13566 13567 APSInt Value; 13568 if (!HandleFloatToIntCast(Info, E, SrcType, F, DestType, Value)) 13569 return false; 13570 return Success(Value, E); 13571 } 13572 } 13573 13574 llvm_unreachable("unknown cast resulting in integral value"); 13575 } 13576 13577 bool IntExprEvaluator::VisitUnaryReal(const UnaryOperator *E) { 13578 if (E->getSubExpr()->getType()->isAnyComplexType()) { 13579 ComplexValue LV; 13580 if (!EvaluateComplex(E->getSubExpr(), LV, Info)) 13581 return false; 13582 if (!LV.isComplexInt()) 13583 return Error(E); 13584 return Success(LV.getComplexIntReal(), E); 13585 } 13586 13587 return Visit(E->getSubExpr()); 13588 } 13589 13590 bool IntExprEvaluator::VisitUnaryImag(const UnaryOperator *E) { 13591 if (E->getSubExpr()->getType()->isComplexIntegerType()) { 13592 ComplexValue LV; 13593 if (!EvaluateComplex(E->getSubExpr(), LV, Info)) 13594 return false; 13595 if (!LV.isComplexInt()) 13596 return Error(E); 13597 return Success(LV.getComplexIntImag(), E); 13598 } 13599 13600 VisitIgnoredValue(E->getSubExpr()); 13601 return Success(0, E); 13602 } 13603 13604 bool IntExprEvaluator::VisitSizeOfPackExpr(const SizeOfPackExpr *E) { 13605 return Success(E->getPackLength(), E); 13606 } 13607 13608 bool IntExprEvaluator::VisitCXXNoexceptExpr(const CXXNoexceptExpr *E) { 13609 return Success(E->getValue(), E); 13610 } 13611 13612 bool IntExprEvaluator::VisitConceptSpecializationExpr( 13613 const ConceptSpecializationExpr *E) { 13614 return Success(E->isSatisfied(), E); 13615 } 13616 13617 bool IntExprEvaluator::VisitRequiresExpr(const RequiresExpr *E) { 13618 return Success(E->isSatisfied(), E); 13619 } 13620 13621 bool FixedPointExprEvaluator::VisitUnaryOperator(const UnaryOperator *E) { 13622 switch (E->getOpcode()) { 13623 default: 13624 // Invalid unary operators 13625 return Error(E); 13626 case UO_Plus: 13627 // The result is just the value. 13628 return Visit(E->getSubExpr()); 13629 case UO_Minus: { 13630 if (!Visit(E->getSubExpr())) return false; 13631 if (!Result.isFixedPoint()) 13632 return Error(E); 13633 bool Overflowed; 13634 APFixedPoint Negated = Result.getFixedPoint().negate(&Overflowed); 13635 if (Overflowed && !HandleOverflow(Info, E, Negated, E->getType())) 13636 return false; 13637 return Success(Negated, E); 13638 } 13639 case UO_LNot: { 13640 bool bres; 13641 if (!EvaluateAsBooleanCondition(E->getSubExpr(), bres, Info)) 13642 return false; 13643 return Success(!bres, E); 13644 } 13645 } 13646 } 13647 13648 bool FixedPointExprEvaluator::VisitCastExpr(const CastExpr *E) { 13649 const Expr *SubExpr = E->getSubExpr(); 13650 QualType DestType = E->getType(); 13651 assert(DestType->isFixedPointType() && 13652 "Expected destination type to be a fixed point type"); 13653 auto DestFXSema = Info.Ctx.getFixedPointSemantics(DestType); 13654 13655 switch (E->getCastKind()) { 13656 case CK_FixedPointCast: { 13657 APFixedPoint Src(Info.Ctx.getFixedPointSemantics(SubExpr->getType())); 13658 if (!EvaluateFixedPoint(SubExpr, Src, Info)) 13659 return false; 13660 bool Overflowed; 13661 APFixedPoint Result = Src.convert(DestFXSema, &Overflowed); 13662 if (Overflowed) { 13663 if (Info.checkingForUndefinedBehavior()) 13664 Info.Ctx.getDiagnostics().Report(E->getExprLoc(), 13665 diag::warn_fixedpoint_constant_overflow) 13666 << Result.toString() << E->getType(); 13667 if (!HandleOverflow(Info, E, Result, E->getType())) 13668 return false; 13669 } 13670 return Success(Result, E); 13671 } 13672 case CK_IntegralToFixedPoint: { 13673 APSInt Src; 13674 if (!EvaluateInteger(SubExpr, Src, Info)) 13675 return false; 13676 13677 bool Overflowed; 13678 APFixedPoint IntResult = APFixedPoint::getFromIntValue( 13679 Src, Info.Ctx.getFixedPointSemantics(DestType), &Overflowed); 13680 13681 if (Overflowed) { 13682 if (Info.checkingForUndefinedBehavior()) 13683 Info.Ctx.getDiagnostics().Report(E->getExprLoc(), 13684 diag::warn_fixedpoint_constant_overflow) 13685 << IntResult.toString() << E->getType(); 13686 if (!HandleOverflow(Info, E, IntResult, E->getType())) 13687 return false; 13688 } 13689 13690 return Success(IntResult, E); 13691 } 13692 case CK_FloatingToFixedPoint: { 13693 APFloat Src(0.0); 13694 if (!EvaluateFloat(SubExpr, Src, Info)) 13695 return false; 13696 13697 bool Overflowed; 13698 APFixedPoint Result = APFixedPoint::getFromFloatValue( 13699 Src, Info.Ctx.getFixedPointSemantics(DestType), &Overflowed); 13700 13701 if (Overflowed) { 13702 if (Info.checkingForUndefinedBehavior()) 13703 Info.Ctx.getDiagnostics().Report(E->getExprLoc(), 13704 diag::warn_fixedpoint_constant_overflow) 13705 << Result.toString() << E->getType(); 13706 if (!HandleOverflow(Info, E, Result, E->getType())) 13707 return false; 13708 } 13709 13710 return Success(Result, E); 13711 } 13712 case CK_NoOp: 13713 case CK_LValueToRValue: 13714 return ExprEvaluatorBaseTy::VisitCastExpr(E); 13715 default: 13716 return Error(E); 13717 } 13718 } 13719 13720 bool FixedPointExprEvaluator::VisitBinaryOperator(const BinaryOperator *E) { 13721 if (E->isPtrMemOp() || E->isAssignmentOp() || E->getOpcode() == BO_Comma) 13722 return ExprEvaluatorBaseTy::VisitBinaryOperator(E); 13723 13724 const Expr *LHS = E->getLHS(); 13725 const Expr *RHS = E->getRHS(); 13726 FixedPointSemantics ResultFXSema = 13727 Info.Ctx.getFixedPointSemantics(E->getType()); 13728 13729 APFixedPoint LHSFX(Info.Ctx.getFixedPointSemantics(LHS->getType())); 13730 if (!EvaluateFixedPointOrInteger(LHS, LHSFX, Info)) 13731 return false; 13732 APFixedPoint RHSFX(Info.Ctx.getFixedPointSemantics(RHS->getType())); 13733 if (!EvaluateFixedPointOrInteger(RHS, RHSFX, Info)) 13734 return false; 13735 13736 bool OpOverflow = false, ConversionOverflow = false; 13737 APFixedPoint Result(LHSFX.getSemantics()); 13738 switch (E->getOpcode()) { 13739 case BO_Add: { 13740 Result = LHSFX.add(RHSFX, &OpOverflow) 13741 .convert(ResultFXSema, &ConversionOverflow); 13742 break; 13743 } 13744 case BO_Sub: { 13745 Result = LHSFX.sub(RHSFX, &OpOverflow) 13746 .convert(ResultFXSema, &ConversionOverflow); 13747 break; 13748 } 13749 case BO_Mul: { 13750 Result = LHSFX.mul(RHSFX, &OpOverflow) 13751 .convert(ResultFXSema, &ConversionOverflow); 13752 break; 13753 } 13754 case BO_Div: { 13755 if (RHSFX.getValue() == 0) { 13756 Info.FFDiag(E, diag::note_expr_divide_by_zero); 13757 return false; 13758 } 13759 Result = LHSFX.div(RHSFX, &OpOverflow) 13760 .convert(ResultFXSema, &ConversionOverflow); 13761 break; 13762 } 13763 case BO_Shl: 13764 case BO_Shr: { 13765 FixedPointSemantics LHSSema = LHSFX.getSemantics(); 13766 llvm::APSInt RHSVal = RHSFX.getValue(); 13767 13768 unsigned ShiftBW = 13769 LHSSema.getWidth() - (unsigned)LHSSema.hasUnsignedPadding(); 13770 unsigned Amt = RHSVal.getLimitedValue(ShiftBW - 1); 13771 // Embedded-C 4.1.6.2.2: 13772 // The right operand must be nonnegative and less than the total number 13773 // of (nonpadding) bits of the fixed-point operand ... 13774 if (RHSVal.isNegative()) 13775 Info.CCEDiag(E, diag::note_constexpr_negative_shift) << RHSVal; 13776 else if (Amt != RHSVal) 13777 Info.CCEDiag(E, diag::note_constexpr_large_shift) 13778 << RHSVal << E->getType() << ShiftBW; 13779 13780 if (E->getOpcode() == BO_Shl) 13781 Result = LHSFX.shl(Amt, &OpOverflow); 13782 else 13783 Result = LHSFX.shr(Amt, &OpOverflow); 13784 break; 13785 } 13786 default: 13787 return false; 13788 } 13789 if (OpOverflow || ConversionOverflow) { 13790 if (Info.checkingForUndefinedBehavior()) 13791 Info.Ctx.getDiagnostics().Report(E->getExprLoc(), 13792 diag::warn_fixedpoint_constant_overflow) 13793 << Result.toString() << E->getType(); 13794 if (!HandleOverflow(Info, E, Result, E->getType())) 13795 return false; 13796 } 13797 return Success(Result, E); 13798 } 13799 13800 //===----------------------------------------------------------------------===// 13801 // Float Evaluation 13802 //===----------------------------------------------------------------------===// 13803 13804 namespace { 13805 class FloatExprEvaluator 13806 : public ExprEvaluatorBase<FloatExprEvaluator> { 13807 APFloat &Result; 13808 public: 13809 FloatExprEvaluator(EvalInfo &info, APFloat &result) 13810 : ExprEvaluatorBaseTy(info), Result(result) {} 13811 13812 bool Success(const APValue &V, const Expr *e) { 13813 Result = V.getFloat(); 13814 return true; 13815 } 13816 13817 bool ZeroInitialization(const Expr *E) { 13818 Result = APFloat::getZero(Info.Ctx.getFloatTypeSemantics(E->getType())); 13819 return true; 13820 } 13821 13822 bool VisitCallExpr(const CallExpr *E); 13823 13824 bool VisitUnaryOperator(const UnaryOperator *E); 13825 bool VisitBinaryOperator(const BinaryOperator *E); 13826 bool VisitFloatingLiteral(const FloatingLiteral *E); 13827 bool VisitCastExpr(const CastExpr *E); 13828 13829 bool VisitUnaryReal(const UnaryOperator *E); 13830 bool VisitUnaryImag(const UnaryOperator *E); 13831 13832 // FIXME: Missing: array subscript of vector, member of vector 13833 }; 13834 } // end anonymous namespace 13835 13836 static bool EvaluateFloat(const Expr* E, APFloat& Result, EvalInfo &Info) { 13837 assert(!E->isValueDependent()); 13838 assert(E->isPRValue() && E->getType()->isRealFloatingType()); 13839 return FloatExprEvaluator(Info, Result).Visit(E); 13840 } 13841 13842 static bool TryEvaluateBuiltinNaN(const ASTContext &Context, 13843 QualType ResultTy, 13844 const Expr *Arg, 13845 bool SNaN, 13846 llvm::APFloat &Result) { 13847 const StringLiteral *S = dyn_cast<StringLiteral>(Arg->IgnoreParenCasts()); 13848 if (!S) return false; 13849 13850 const llvm::fltSemantics &Sem = Context.getFloatTypeSemantics(ResultTy); 13851 13852 llvm::APInt fill; 13853 13854 // Treat empty strings as if they were zero. 13855 if (S->getString().empty()) 13856 fill = llvm::APInt(32, 0); 13857 else if (S->getString().getAsInteger(0, fill)) 13858 return false; 13859 13860 if (Context.getTargetInfo().isNan2008()) { 13861 if (SNaN) 13862 Result = llvm::APFloat::getSNaN(Sem, false, &fill); 13863 else 13864 Result = llvm::APFloat::getQNaN(Sem, false, &fill); 13865 } else { 13866 // Prior to IEEE 754-2008, architectures were allowed to choose whether 13867 // the first bit of their significand was set for qNaN or sNaN. MIPS chose 13868 // a different encoding to what became a standard in 2008, and for pre- 13869 // 2008 revisions, MIPS interpreted sNaN-2008 as qNan and qNaN-2008 as 13870 // sNaN. This is now known as "legacy NaN" encoding. 13871 if (SNaN) 13872 Result = llvm::APFloat::getQNaN(Sem, false, &fill); 13873 else 13874 Result = llvm::APFloat::getSNaN(Sem, false, &fill); 13875 } 13876 13877 return true; 13878 } 13879 13880 bool FloatExprEvaluator::VisitCallExpr(const CallExpr *E) { 13881 switch (E->getBuiltinCallee()) { 13882 default: 13883 return ExprEvaluatorBaseTy::VisitCallExpr(E); 13884 13885 case Builtin::BI__builtin_huge_val: 13886 case Builtin::BI__builtin_huge_valf: 13887 case Builtin::BI__builtin_huge_vall: 13888 case Builtin::BI__builtin_huge_valf16: 13889 case Builtin::BI__builtin_huge_valf128: 13890 case Builtin::BI__builtin_inf: 13891 case Builtin::BI__builtin_inff: 13892 case Builtin::BI__builtin_infl: 13893 case Builtin::BI__builtin_inff16: 13894 case Builtin::BI__builtin_inff128: { 13895 const llvm::fltSemantics &Sem = 13896 Info.Ctx.getFloatTypeSemantics(E->getType()); 13897 Result = llvm::APFloat::getInf(Sem); 13898 return true; 13899 } 13900 13901 case Builtin::BI__builtin_nans: 13902 case Builtin::BI__builtin_nansf: 13903 case Builtin::BI__builtin_nansl: 13904 case Builtin::BI__builtin_nansf16: 13905 case Builtin::BI__builtin_nansf128: 13906 if (!TryEvaluateBuiltinNaN(Info.Ctx, E->getType(), E->getArg(0), 13907 true, Result)) 13908 return Error(E); 13909 return true; 13910 13911 case Builtin::BI__builtin_nan: 13912 case Builtin::BI__builtin_nanf: 13913 case Builtin::BI__builtin_nanl: 13914 case Builtin::BI__builtin_nanf16: 13915 case Builtin::BI__builtin_nanf128: 13916 // If this is __builtin_nan() turn this into a nan, otherwise we 13917 // can't constant fold it. 13918 if (!TryEvaluateBuiltinNaN(Info.Ctx, E->getType(), E->getArg(0), 13919 false, Result)) 13920 return Error(E); 13921 return true; 13922 13923 case Builtin::BI__builtin_fabs: 13924 case Builtin::BI__builtin_fabsf: 13925 case Builtin::BI__builtin_fabsl: 13926 case Builtin::BI__builtin_fabsf128: 13927 // The C standard says "fabs raises no floating-point exceptions, 13928 // even if x is a signaling NaN. The returned value is independent of 13929 // the current rounding direction mode." Therefore constant folding can 13930 // proceed without regard to the floating point settings. 13931 // Reference, WG14 N2478 F.10.4.3 13932 if (!EvaluateFloat(E->getArg(0), Result, Info)) 13933 return false; 13934 13935 if (Result.isNegative()) 13936 Result.changeSign(); 13937 return true; 13938 13939 case Builtin::BI__arithmetic_fence: 13940 return EvaluateFloat(E->getArg(0), Result, Info); 13941 13942 // FIXME: Builtin::BI__builtin_powi 13943 // FIXME: Builtin::BI__builtin_powif 13944 // FIXME: Builtin::BI__builtin_powil 13945 13946 case Builtin::BI__builtin_copysign: 13947 case Builtin::BI__builtin_copysignf: 13948 case Builtin::BI__builtin_copysignl: 13949 case Builtin::BI__builtin_copysignf128: { 13950 APFloat RHS(0.); 13951 if (!EvaluateFloat(E->getArg(0), Result, Info) || 13952 !EvaluateFloat(E->getArg(1), RHS, Info)) 13953 return false; 13954 Result.copySign(RHS); 13955 return true; 13956 } 13957 } 13958 } 13959 13960 bool FloatExprEvaluator::VisitUnaryReal(const UnaryOperator *E) { 13961 if (E->getSubExpr()->getType()->isAnyComplexType()) { 13962 ComplexValue CV; 13963 if (!EvaluateComplex(E->getSubExpr(), CV, Info)) 13964 return false; 13965 Result = CV.FloatReal; 13966 return true; 13967 } 13968 13969 return Visit(E->getSubExpr()); 13970 } 13971 13972 bool FloatExprEvaluator::VisitUnaryImag(const UnaryOperator *E) { 13973 if (E->getSubExpr()->getType()->isAnyComplexType()) { 13974 ComplexValue CV; 13975 if (!EvaluateComplex(E->getSubExpr(), CV, Info)) 13976 return false; 13977 Result = CV.FloatImag; 13978 return true; 13979 } 13980 13981 VisitIgnoredValue(E->getSubExpr()); 13982 const llvm::fltSemantics &Sem = Info.Ctx.getFloatTypeSemantics(E->getType()); 13983 Result = llvm::APFloat::getZero(Sem); 13984 return true; 13985 } 13986 13987 bool FloatExprEvaluator::VisitUnaryOperator(const UnaryOperator *E) { 13988 switch (E->getOpcode()) { 13989 default: return Error(E); 13990 case UO_Plus: 13991 return EvaluateFloat(E->getSubExpr(), Result, Info); 13992 case UO_Minus: 13993 // In C standard, WG14 N2478 F.3 p4 13994 // "the unary - raises no floating point exceptions, 13995 // even if the operand is signalling." 13996 if (!EvaluateFloat(E->getSubExpr(), Result, Info)) 13997 return false; 13998 Result.changeSign(); 13999 return true; 14000 } 14001 } 14002 14003 bool FloatExprEvaluator::VisitBinaryOperator(const BinaryOperator *E) { 14004 if (E->isPtrMemOp() || E->isAssignmentOp() || E->getOpcode() == BO_Comma) 14005 return ExprEvaluatorBaseTy::VisitBinaryOperator(E); 14006 14007 APFloat RHS(0.0); 14008 bool LHSOK = EvaluateFloat(E->getLHS(), Result, Info); 14009 if (!LHSOK && !Info.noteFailure()) 14010 return false; 14011 return EvaluateFloat(E->getRHS(), RHS, Info) && LHSOK && 14012 handleFloatFloatBinOp(Info, E, Result, E->getOpcode(), RHS); 14013 } 14014 14015 bool FloatExprEvaluator::VisitFloatingLiteral(const FloatingLiteral *E) { 14016 Result = E->getValue(); 14017 return true; 14018 } 14019 14020 bool FloatExprEvaluator::VisitCastExpr(const CastExpr *E) { 14021 const Expr* SubExpr = E->getSubExpr(); 14022 14023 switch (E->getCastKind()) { 14024 default: 14025 return ExprEvaluatorBaseTy::VisitCastExpr(E); 14026 14027 case CK_IntegralToFloating: { 14028 APSInt IntResult; 14029 const FPOptions FPO = E->getFPFeaturesInEffect( 14030 Info.Ctx.getLangOpts()); 14031 return EvaluateInteger(SubExpr, IntResult, Info) && 14032 HandleIntToFloatCast(Info, E, FPO, SubExpr->getType(), 14033 IntResult, E->getType(), Result); 14034 } 14035 14036 case CK_FixedPointToFloating: { 14037 APFixedPoint FixResult(Info.Ctx.getFixedPointSemantics(SubExpr->getType())); 14038 if (!EvaluateFixedPoint(SubExpr, FixResult, Info)) 14039 return false; 14040 Result = 14041 FixResult.convertToFloat(Info.Ctx.getFloatTypeSemantics(E->getType())); 14042 return true; 14043 } 14044 14045 case CK_FloatingCast: { 14046 if (!Visit(SubExpr)) 14047 return false; 14048 return HandleFloatToFloatCast(Info, E, SubExpr->getType(), E->getType(), 14049 Result); 14050 } 14051 14052 case CK_FloatingComplexToReal: { 14053 ComplexValue V; 14054 if (!EvaluateComplex(SubExpr, V, Info)) 14055 return false; 14056 Result = V.getComplexFloatReal(); 14057 return true; 14058 } 14059 } 14060 } 14061 14062 //===----------------------------------------------------------------------===// 14063 // Complex Evaluation (for float and integer) 14064 //===----------------------------------------------------------------------===// 14065 14066 namespace { 14067 class ComplexExprEvaluator 14068 : public ExprEvaluatorBase<ComplexExprEvaluator> { 14069 ComplexValue &Result; 14070 14071 public: 14072 ComplexExprEvaluator(EvalInfo &info, ComplexValue &Result) 14073 : ExprEvaluatorBaseTy(info), Result(Result) {} 14074 14075 bool Success(const APValue &V, const Expr *e) { 14076 Result.setFrom(V); 14077 return true; 14078 } 14079 14080 bool ZeroInitialization(const Expr *E); 14081 14082 //===--------------------------------------------------------------------===// 14083 // Visitor Methods 14084 //===--------------------------------------------------------------------===// 14085 14086 bool VisitImaginaryLiteral(const ImaginaryLiteral *E); 14087 bool VisitCastExpr(const CastExpr *E); 14088 bool VisitBinaryOperator(const BinaryOperator *E); 14089 bool VisitUnaryOperator(const UnaryOperator *E); 14090 bool VisitInitListExpr(const InitListExpr *E); 14091 bool VisitCallExpr(const CallExpr *E); 14092 }; 14093 } // end anonymous namespace 14094 14095 static bool EvaluateComplex(const Expr *E, ComplexValue &Result, 14096 EvalInfo &Info) { 14097 assert(!E->isValueDependent()); 14098 assert(E->isPRValue() && E->getType()->isAnyComplexType()); 14099 return ComplexExprEvaluator(Info, Result).Visit(E); 14100 } 14101 14102 bool ComplexExprEvaluator::ZeroInitialization(const Expr *E) { 14103 QualType ElemTy = E->getType()->castAs<ComplexType>()->getElementType(); 14104 if (ElemTy->isRealFloatingType()) { 14105 Result.makeComplexFloat(); 14106 APFloat Zero = APFloat::getZero(Info.Ctx.getFloatTypeSemantics(ElemTy)); 14107 Result.FloatReal = Zero; 14108 Result.FloatImag = Zero; 14109 } else { 14110 Result.makeComplexInt(); 14111 APSInt Zero = Info.Ctx.MakeIntValue(0, ElemTy); 14112 Result.IntReal = Zero; 14113 Result.IntImag = Zero; 14114 } 14115 return true; 14116 } 14117 14118 bool ComplexExprEvaluator::VisitImaginaryLiteral(const ImaginaryLiteral *E) { 14119 const Expr* SubExpr = E->getSubExpr(); 14120 14121 if (SubExpr->getType()->isRealFloatingType()) { 14122 Result.makeComplexFloat(); 14123 APFloat &Imag = Result.FloatImag; 14124 if (!EvaluateFloat(SubExpr, Imag, Info)) 14125 return false; 14126 14127 Result.FloatReal = APFloat(Imag.getSemantics()); 14128 return true; 14129 } else { 14130 assert(SubExpr->getType()->isIntegerType() && 14131 "Unexpected imaginary literal."); 14132 14133 Result.makeComplexInt(); 14134 APSInt &Imag = Result.IntImag; 14135 if (!EvaluateInteger(SubExpr, Imag, Info)) 14136 return false; 14137 14138 Result.IntReal = APSInt(Imag.getBitWidth(), !Imag.isSigned()); 14139 return true; 14140 } 14141 } 14142 14143 bool ComplexExprEvaluator::VisitCastExpr(const CastExpr *E) { 14144 14145 switch (E->getCastKind()) { 14146 case CK_BitCast: 14147 case CK_BaseToDerived: 14148 case CK_DerivedToBase: 14149 case CK_UncheckedDerivedToBase: 14150 case CK_Dynamic: 14151 case CK_ToUnion: 14152 case CK_ArrayToPointerDecay: 14153 case CK_FunctionToPointerDecay: 14154 case CK_NullToPointer: 14155 case CK_NullToMemberPointer: 14156 case CK_BaseToDerivedMemberPointer: 14157 case CK_DerivedToBaseMemberPointer: 14158 case CK_MemberPointerToBoolean: 14159 case CK_ReinterpretMemberPointer: 14160 case CK_ConstructorConversion: 14161 case CK_IntegralToPointer: 14162 case CK_PointerToIntegral: 14163 case CK_PointerToBoolean: 14164 case CK_ToVoid: 14165 case CK_VectorSplat: 14166 case CK_IntegralCast: 14167 case CK_BooleanToSignedIntegral: 14168 case CK_IntegralToBoolean: 14169 case CK_IntegralToFloating: 14170 case CK_FloatingToIntegral: 14171 case CK_FloatingToBoolean: 14172 case CK_FloatingCast: 14173 case CK_CPointerToObjCPointerCast: 14174 case CK_BlockPointerToObjCPointerCast: 14175 case CK_AnyPointerToBlockPointerCast: 14176 case CK_ObjCObjectLValueCast: 14177 case CK_FloatingComplexToReal: 14178 case CK_FloatingComplexToBoolean: 14179 case CK_IntegralComplexToReal: 14180 case CK_IntegralComplexToBoolean: 14181 case CK_ARCProduceObject: 14182 case CK_ARCConsumeObject: 14183 case CK_ARCReclaimReturnedObject: 14184 case CK_ARCExtendBlockObject: 14185 case CK_CopyAndAutoreleaseBlockObject: 14186 case CK_BuiltinFnToFnPtr: 14187 case CK_ZeroToOCLOpaqueType: 14188 case CK_NonAtomicToAtomic: 14189 case CK_AddressSpaceConversion: 14190 case CK_IntToOCLSampler: 14191 case CK_FloatingToFixedPoint: 14192 case CK_FixedPointToFloating: 14193 case CK_FixedPointCast: 14194 case CK_FixedPointToBoolean: 14195 case CK_FixedPointToIntegral: 14196 case CK_IntegralToFixedPoint: 14197 case CK_MatrixCast: 14198 llvm_unreachable("invalid cast kind for complex value"); 14199 14200 case CK_LValueToRValue: 14201 case CK_AtomicToNonAtomic: 14202 case CK_NoOp: 14203 case CK_LValueToRValueBitCast: 14204 return ExprEvaluatorBaseTy::VisitCastExpr(E); 14205 14206 case CK_Dependent: 14207 case CK_LValueBitCast: 14208 case CK_UserDefinedConversion: 14209 return Error(E); 14210 14211 case CK_FloatingRealToComplex: { 14212 APFloat &Real = Result.FloatReal; 14213 if (!EvaluateFloat(E->getSubExpr(), Real, Info)) 14214 return false; 14215 14216 Result.makeComplexFloat(); 14217 Result.FloatImag = APFloat(Real.getSemantics()); 14218 return true; 14219 } 14220 14221 case CK_FloatingComplexCast: { 14222 if (!Visit(E->getSubExpr())) 14223 return false; 14224 14225 QualType To = E->getType()->castAs<ComplexType>()->getElementType(); 14226 QualType From 14227 = E->getSubExpr()->getType()->castAs<ComplexType>()->getElementType(); 14228 14229 return HandleFloatToFloatCast(Info, E, From, To, Result.FloatReal) && 14230 HandleFloatToFloatCast(Info, E, From, To, Result.FloatImag); 14231 } 14232 14233 case CK_FloatingComplexToIntegralComplex: { 14234 if (!Visit(E->getSubExpr())) 14235 return false; 14236 14237 QualType To = E->getType()->castAs<ComplexType>()->getElementType(); 14238 QualType From 14239 = E->getSubExpr()->getType()->castAs<ComplexType>()->getElementType(); 14240 Result.makeComplexInt(); 14241 return HandleFloatToIntCast(Info, E, From, Result.FloatReal, 14242 To, Result.IntReal) && 14243 HandleFloatToIntCast(Info, E, From, Result.FloatImag, 14244 To, Result.IntImag); 14245 } 14246 14247 case CK_IntegralRealToComplex: { 14248 APSInt &Real = Result.IntReal; 14249 if (!EvaluateInteger(E->getSubExpr(), Real, Info)) 14250 return false; 14251 14252 Result.makeComplexInt(); 14253 Result.IntImag = APSInt(Real.getBitWidth(), !Real.isSigned()); 14254 return true; 14255 } 14256 14257 case CK_IntegralComplexCast: { 14258 if (!Visit(E->getSubExpr())) 14259 return false; 14260 14261 QualType To = E->getType()->castAs<ComplexType>()->getElementType(); 14262 QualType From 14263 = E->getSubExpr()->getType()->castAs<ComplexType>()->getElementType(); 14264 14265 Result.IntReal = HandleIntToIntCast(Info, E, To, From, Result.IntReal); 14266 Result.IntImag = HandleIntToIntCast(Info, E, To, From, Result.IntImag); 14267 return true; 14268 } 14269 14270 case CK_IntegralComplexToFloatingComplex: { 14271 if (!Visit(E->getSubExpr())) 14272 return false; 14273 14274 const FPOptions FPO = E->getFPFeaturesInEffect( 14275 Info.Ctx.getLangOpts()); 14276 QualType To = E->getType()->castAs<ComplexType>()->getElementType(); 14277 QualType From 14278 = E->getSubExpr()->getType()->castAs<ComplexType>()->getElementType(); 14279 Result.makeComplexFloat(); 14280 return HandleIntToFloatCast(Info, E, FPO, From, Result.IntReal, 14281 To, Result.FloatReal) && 14282 HandleIntToFloatCast(Info, E, FPO, From, Result.IntImag, 14283 To, Result.FloatImag); 14284 } 14285 } 14286 14287 llvm_unreachable("unknown cast resulting in complex value"); 14288 } 14289 14290 bool ComplexExprEvaluator::VisitBinaryOperator(const BinaryOperator *E) { 14291 if (E->isPtrMemOp() || E->isAssignmentOp() || E->getOpcode() == BO_Comma) 14292 return ExprEvaluatorBaseTy::VisitBinaryOperator(E); 14293 14294 // Track whether the LHS or RHS is real at the type system level. When this is 14295 // the case we can simplify our evaluation strategy. 14296 bool LHSReal = false, RHSReal = false; 14297 14298 bool LHSOK; 14299 if (E->getLHS()->getType()->isRealFloatingType()) { 14300 LHSReal = true; 14301 APFloat &Real = Result.FloatReal; 14302 LHSOK = EvaluateFloat(E->getLHS(), Real, Info); 14303 if (LHSOK) { 14304 Result.makeComplexFloat(); 14305 Result.FloatImag = APFloat(Real.getSemantics()); 14306 } 14307 } else { 14308 LHSOK = Visit(E->getLHS()); 14309 } 14310 if (!LHSOK && !Info.noteFailure()) 14311 return false; 14312 14313 ComplexValue RHS; 14314 if (E->getRHS()->getType()->isRealFloatingType()) { 14315 RHSReal = true; 14316 APFloat &Real = RHS.FloatReal; 14317 if (!EvaluateFloat(E->getRHS(), Real, Info) || !LHSOK) 14318 return false; 14319 RHS.makeComplexFloat(); 14320 RHS.FloatImag = APFloat(Real.getSemantics()); 14321 } else if (!EvaluateComplex(E->getRHS(), RHS, Info) || !LHSOK) 14322 return false; 14323 14324 assert(!(LHSReal && RHSReal) && 14325 "Cannot have both operands of a complex operation be real."); 14326 switch (E->getOpcode()) { 14327 default: return Error(E); 14328 case BO_Add: 14329 if (Result.isComplexFloat()) { 14330 Result.getComplexFloatReal().add(RHS.getComplexFloatReal(), 14331 APFloat::rmNearestTiesToEven); 14332 if (LHSReal) 14333 Result.getComplexFloatImag() = RHS.getComplexFloatImag(); 14334 else if (!RHSReal) 14335 Result.getComplexFloatImag().add(RHS.getComplexFloatImag(), 14336 APFloat::rmNearestTiesToEven); 14337 } else { 14338 Result.getComplexIntReal() += RHS.getComplexIntReal(); 14339 Result.getComplexIntImag() += RHS.getComplexIntImag(); 14340 } 14341 break; 14342 case BO_Sub: 14343 if (Result.isComplexFloat()) { 14344 Result.getComplexFloatReal().subtract(RHS.getComplexFloatReal(), 14345 APFloat::rmNearestTiesToEven); 14346 if (LHSReal) { 14347 Result.getComplexFloatImag() = RHS.getComplexFloatImag(); 14348 Result.getComplexFloatImag().changeSign(); 14349 } else if (!RHSReal) { 14350 Result.getComplexFloatImag().subtract(RHS.getComplexFloatImag(), 14351 APFloat::rmNearestTiesToEven); 14352 } 14353 } else { 14354 Result.getComplexIntReal() -= RHS.getComplexIntReal(); 14355 Result.getComplexIntImag() -= RHS.getComplexIntImag(); 14356 } 14357 break; 14358 case BO_Mul: 14359 if (Result.isComplexFloat()) { 14360 // This is an implementation of complex multiplication according to the 14361 // constraints laid out in C11 Annex G. The implementation uses the 14362 // following naming scheme: 14363 // (a + ib) * (c + id) 14364 ComplexValue LHS = Result; 14365 APFloat &A = LHS.getComplexFloatReal(); 14366 APFloat &B = LHS.getComplexFloatImag(); 14367 APFloat &C = RHS.getComplexFloatReal(); 14368 APFloat &D = RHS.getComplexFloatImag(); 14369 APFloat &ResR = Result.getComplexFloatReal(); 14370 APFloat &ResI = Result.getComplexFloatImag(); 14371 if (LHSReal) { 14372 assert(!RHSReal && "Cannot have two real operands for a complex op!"); 14373 ResR = A * C; 14374 ResI = A * D; 14375 } else if (RHSReal) { 14376 ResR = C * A; 14377 ResI = C * B; 14378 } else { 14379 // In the fully general case, we need to handle NaNs and infinities 14380 // robustly. 14381 APFloat AC = A * C; 14382 APFloat BD = B * D; 14383 APFloat AD = A * D; 14384 APFloat BC = B * C; 14385 ResR = AC - BD; 14386 ResI = AD + BC; 14387 if (ResR.isNaN() && ResI.isNaN()) { 14388 bool Recalc = false; 14389 if (A.isInfinity() || B.isInfinity()) { 14390 A = APFloat::copySign( 14391 APFloat(A.getSemantics(), A.isInfinity() ? 1 : 0), A); 14392 B = APFloat::copySign( 14393 APFloat(B.getSemantics(), B.isInfinity() ? 1 : 0), B); 14394 if (C.isNaN()) 14395 C = APFloat::copySign(APFloat(C.getSemantics()), C); 14396 if (D.isNaN()) 14397 D = APFloat::copySign(APFloat(D.getSemantics()), D); 14398 Recalc = true; 14399 } 14400 if (C.isInfinity() || D.isInfinity()) { 14401 C = APFloat::copySign( 14402 APFloat(C.getSemantics(), C.isInfinity() ? 1 : 0), C); 14403 D = APFloat::copySign( 14404 APFloat(D.getSemantics(), D.isInfinity() ? 1 : 0), D); 14405 if (A.isNaN()) 14406 A = APFloat::copySign(APFloat(A.getSemantics()), A); 14407 if (B.isNaN()) 14408 B = APFloat::copySign(APFloat(B.getSemantics()), B); 14409 Recalc = true; 14410 } 14411 if (!Recalc && (AC.isInfinity() || BD.isInfinity() || 14412 AD.isInfinity() || BC.isInfinity())) { 14413 if (A.isNaN()) 14414 A = APFloat::copySign(APFloat(A.getSemantics()), A); 14415 if (B.isNaN()) 14416 B = APFloat::copySign(APFloat(B.getSemantics()), B); 14417 if (C.isNaN()) 14418 C = APFloat::copySign(APFloat(C.getSemantics()), C); 14419 if (D.isNaN()) 14420 D = APFloat::copySign(APFloat(D.getSemantics()), D); 14421 Recalc = true; 14422 } 14423 if (Recalc) { 14424 ResR = APFloat::getInf(A.getSemantics()) * (A * C - B * D); 14425 ResI = APFloat::getInf(A.getSemantics()) * (A * D + B * C); 14426 } 14427 } 14428 } 14429 } else { 14430 ComplexValue LHS = Result; 14431 Result.getComplexIntReal() = 14432 (LHS.getComplexIntReal() * RHS.getComplexIntReal() - 14433 LHS.getComplexIntImag() * RHS.getComplexIntImag()); 14434 Result.getComplexIntImag() = 14435 (LHS.getComplexIntReal() * RHS.getComplexIntImag() + 14436 LHS.getComplexIntImag() * RHS.getComplexIntReal()); 14437 } 14438 break; 14439 case BO_Div: 14440 if (Result.isComplexFloat()) { 14441 // This is an implementation of complex division according to the 14442 // constraints laid out in C11 Annex G. The implementation uses the 14443 // following naming scheme: 14444 // (a + ib) / (c + id) 14445 ComplexValue LHS = Result; 14446 APFloat &A = LHS.getComplexFloatReal(); 14447 APFloat &B = LHS.getComplexFloatImag(); 14448 APFloat &C = RHS.getComplexFloatReal(); 14449 APFloat &D = RHS.getComplexFloatImag(); 14450 APFloat &ResR = Result.getComplexFloatReal(); 14451 APFloat &ResI = Result.getComplexFloatImag(); 14452 if (RHSReal) { 14453 ResR = A / C; 14454 ResI = B / C; 14455 } else { 14456 if (LHSReal) { 14457 // No real optimizations we can do here, stub out with zero. 14458 B = APFloat::getZero(A.getSemantics()); 14459 } 14460 int DenomLogB = 0; 14461 APFloat MaxCD = maxnum(abs(C), abs(D)); 14462 if (MaxCD.isFinite()) { 14463 DenomLogB = ilogb(MaxCD); 14464 C = scalbn(C, -DenomLogB, APFloat::rmNearestTiesToEven); 14465 D = scalbn(D, -DenomLogB, APFloat::rmNearestTiesToEven); 14466 } 14467 APFloat Denom = C * C + D * D; 14468 ResR = scalbn((A * C + B * D) / Denom, -DenomLogB, 14469 APFloat::rmNearestTiesToEven); 14470 ResI = scalbn((B * C - A * D) / Denom, -DenomLogB, 14471 APFloat::rmNearestTiesToEven); 14472 if (ResR.isNaN() && ResI.isNaN()) { 14473 if (Denom.isPosZero() && (!A.isNaN() || !B.isNaN())) { 14474 ResR = APFloat::getInf(ResR.getSemantics(), C.isNegative()) * A; 14475 ResI = APFloat::getInf(ResR.getSemantics(), C.isNegative()) * B; 14476 } else if ((A.isInfinity() || B.isInfinity()) && C.isFinite() && 14477 D.isFinite()) { 14478 A = APFloat::copySign( 14479 APFloat(A.getSemantics(), A.isInfinity() ? 1 : 0), A); 14480 B = APFloat::copySign( 14481 APFloat(B.getSemantics(), B.isInfinity() ? 1 : 0), B); 14482 ResR = APFloat::getInf(ResR.getSemantics()) * (A * C + B * D); 14483 ResI = APFloat::getInf(ResI.getSemantics()) * (B * C - A * D); 14484 } else if (MaxCD.isInfinity() && A.isFinite() && B.isFinite()) { 14485 C = APFloat::copySign( 14486 APFloat(C.getSemantics(), C.isInfinity() ? 1 : 0), C); 14487 D = APFloat::copySign( 14488 APFloat(D.getSemantics(), D.isInfinity() ? 1 : 0), D); 14489 ResR = APFloat::getZero(ResR.getSemantics()) * (A * C + B * D); 14490 ResI = APFloat::getZero(ResI.getSemantics()) * (B * C - A * D); 14491 } 14492 } 14493 } 14494 } else { 14495 if (RHS.getComplexIntReal() == 0 && RHS.getComplexIntImag() == 0) 14496 return Error(E, diag::note_expr_divide_by_zero); 14497 14498 ComplexValue LHS = Result; 14499 APSInt Den = RHS.getComplexIntReal() * RHS.getComplexIntReal() + 14500 RHS.getComplexIntImag() * RHS.getComplexIntImag(); 14501 Result.getComplexIntReal() = 14502 (LHS.getComplexIntReal() * RHS.getComplexIntReal() + 14503 LHS.getComplexIntImag() * RHS.getComplexIntImag()) / Den; 14504 Result.getComplexIntImag() = 14505 (LHS.getComplexIntImag() * RHS.getComplexIntReal() - 14506 LHS.getComplexIntReal() * RHS.getComplexIntImag()) / Den; 14507 } 14508 break; 14509 } 14510 14511 return true; 14512 } 14513 14514 bool ComplexExprEvaluator::VisitUnaryOperator(const UnaryOperator *E) { 14515 // Get the operand value into 'Result'. 14516 if (!Visit(E->getSubExpr())) 14517 return false; 14518 14519 switch (E->getOpcode()) { 14520 default: 14521 return Error(E); 14522 case UO_Extension: 14523 return true; 14524 case UO_Plus: 14525 // The result is always just the subexpr. 14526 return true; 14527 case UO_Minus: 14528 if (Result.isComplexFloat()) { 14529 Result.getComplexFloatReal().changeSign(); 14530 Result.getComplexFloatImag().changeSign(); 14531 } 14532 else { 14533 Result.getComplexIntReal() = -Result.getComplexIntReal(); 14534 Result.getComplexIntImag() = -Result.getComplexIntImag(); 14535 } 14536 return true; 14537 case UO_Not: 14538 if (Result.isComplexFloat()) 14539 Result.getComplexFloatImag().changeSign(); 14540 else 14541 Result.getComplexIntImag() = -Result.getComplexIntImag(); 14542 return true; 14543 } 14544 } 14545 14546 bool ComplexExprEvaluator::VisitInitListExpr(const InitListExpr *E) { 14547 if (E->getNumInits() == 2) { 14548 if (E->getType()->isComplexType()) { 14549 Result.makeComplexFloat(); 14550 if (!EvaluateFloat(E->getInit(0), Result.FloatReal, Info)) 14551 return false; 14552 if (!EvaluateFloat(E->getInit(1), Result.FloatImag, Info)) 14553 return false; 14554 } else { 14555 Result.makeComplexInt(); 14556 if (!EvaluateInteger(E->getInit(0), Result.IntReal, Info)) 14557 return false; 14558 if (!EvaluateInteger(E->getInit(1), Result.IntImag, Info)) 14559 return false; 14560 } 14561 return true; 14562 } 14563 return ExprEvaluatorBaseTy::VisitInitListExpr(E); 14564 } 14565 14566 bool ComplexExprEvaluator::VisitCallExpr(const CallExpr *E) { 14567 switch (E->getBuiltinCallee()) { 14568 case Builtin::BI__builtin_complex: 14569 Result.makeComplexFloat(); 14570 if (!EvaluateFloat(E->getArg(0), Result.FloatReal, Info)) 14571 return false; 14572 if (!EvaluateFloat(E->getArg(1), Result.FloatImag, Info)) 14573 return false; 14574 return true; 14575 14576 default: 14577 break; 14578 } 14579 14580 return ExprEvaluatorBaseTy::VisitCallExpr(E); 14581 } 14582 14583 //===----------------------------------------------------------------------===// 14584 // Atomic expression evaluation, essentially just handling the NonAtomicToAtomic 14585 // implicit conversion. 14586 //===----------------------------------------------------------------------===// 14587 14588 namespace { 14589 class AtomicExprEvaluator : 14590 public ExprEvaluatorBase<AtomicExprEvaluator> { 14591 const LValue *This; 14592 APValue &Result; 14593 public: 14594 AtomicExprEvaluator(EvalInfo &Info, const LValue *This, APValue &Result) 14595 : ExprEvaluatorBaseTy(Info), This(This), Result(Result) {} 14596 14597 bool Success(const APValue &V, const Expr *E) { 14598 Result = V; 14599 return true; 14600 } 14601 14602 bool ZeroInitialization(const Expr *E) { 14603 ImplicitValueInitExpr VIE( 14604 E->getType()->castAs<AtomicType>()->getValueType()); 14605 // For atomic-qualified class (and array) types in C++, initialize the 14606 // _Atomic-wrapped subobject directly, in-place. 14607 return This ? EvaluateInPlace(Result, Info, *This, &VIE) 14608 : Evaluate(Result, Info, &VIE); 14609 } 14610 14611 bool VisitCastExpr(const CastExpr *E) { 14612 switch (E->getCastKind()) { 14613 default: 14614 return ExprEvaluatorBaseTy::VisitCastExpr(E); 14615 case CK_NonAtomicToAtomic: 14616 return This ? EvaluateInPlace(Result, Info, *This, E->getSubExpr()) 14617 : Evaluate(Result, Info, E->getSubExpr()); 14618 } 14619 } 14620 }; 14621 } // end anonymous namespace 14622 14623 static bool EvaluateAtomic(const Expr *E, const LValue *This, APValue &Result, 14624 EvalInfo &Info) { 14625 assert(!E->isValueDependent()); 14626 assert(E->isPRValue() && E->getType()->isAtomicType()); 14627 return AtomicExprEvaluator(Info, This, Result).Visit(E); 14628 } 14629 14630 //===----------------------------------------------------------------------===// 14631 // Void expression evaluation, primarily for a cast to void on the LHS of a 14632 // comma operator 14633 //===----------------------------------------------------------------------===// 14634 14635 namespace { 14636 class VoidExprEvaluator 14637 : public ExprEvaluatorBase<VoidExprEvaluator> { 14638 public: 14639 VoidExprEvaluator(EvalInfo &Info) : ExprEvaluatorBaseTy(Info) {} 14640 14641 bool Success(const APValue &V, const Expr *e) { return true; } 14642 14643 bool ZeroInitialization(const Expr *E) { return true; } 14644 14645 bool VisitCastExpr(const CastExpr *E) { 14646 switch (E->getCastKind()) { 14647 default: 14648 return ExprEvaluatorBaseTy::VisitCastExpr(E); 14649 case CK_ToVoid: 14650 VisitIgnoredValue(E->getSubExpr()); 14651 return true; 14652 } 14653 } 14654 14655 bool VisitCallExpr(const CallExpr *E) { 14656 switch (E->getBuiltinCallee()) { 14657 case Builtin::BI__assume: 14658 case Builtin::BI__builtin_assume: 14659 // The argument is not evaluated! 14660 return true; 14661 14662 case Builtin::BI__builtin_operator_delete: 14663 return HandleOperatorDeleteCall(Info, E); 14664 14665 default: 14666 break; 14667 } 14668 14669 return ExprEvaluatorBaseTy::VisitCallExpr(E); 14670 } 14671 14672 bool VisitCXXDeleteExpr(const CXXDeleteExpr *E); 14673 }; 14674 } // end anonymous namespace 14675 14676 bool VoidExprEvaluator::VisitCXXDeleteExpr(const CXXDeleteExpr *E) { 14677 // We cannot speculatively evaluate a delete expression. 14678 if (Info.SpeculativeEvaluationDepth) 14679 return false; 14680 14681 FunctionDecl *OperatorDelete = E->getOperatorDelete(); 14682 if (!OperatorDelete->isReplaceableGlobalAllocationFunction()) { 14683 Info.FFDiag(E, diag::note_constexpr_new_non_replaceable) 14684 << isa<CXXMethodDecl>(OperatorDelete) << OperatorDelete; 14685 return false; 14686 } 14687 14688 const Expr *Arg = E->getArgument(); 14689 14690 LValue Pointer; 14691 if (!EvaluatePointer(Arg, Pointer, Info)) 14692 return false; 14693 if (Pointer.Designator.Invalid) 14694 return false; 14695 14696 // Deleting a null pointer has no effect. 14697 if (Pointer.isNullPointer()) { 14698 // This is the only case where we need to produce an extension warning: 14699 // the only other way we can succeed is if we find a dynamic allocation, 14700 // and we will have warned when we allocated it in that case. 14701 if (!Info.getLangOpts().CPlusPlus20) 14702 Info.CCEDiag(E, diag::note_constexpr_new); 14703 return true; 14704 } 14705 14706 Optional<DynAlloc *> Alloc = CheckDeleteKind( 14707 Info, E, Pointer, E->isArrayForm() ? DynAlloc::ArrayNew : DynAlloc::New); 14708 if (!Alloc) 14709 return false; 14710 QualType AllocType = Pointer.Base.getDynamicAllocType(); 14711 14712 // For the non-array case, the designator must be empty if the static type 14713 // does not have a virtual destructor. 14714 if (!E->isArrayForm() && Pointer.Designator.Entries.size() != 0 && 14715 !hasVirtualDestructor(Arg->getType()->getPointeeType())) { 14716 Info.FFDiag(E, diag::note_constexpr_delete_base_nonvirt_dtor) 14717 << Arg->getType()->getPointeeType() << AllocType; 14718 return false; 14719 } 14720 14721 // For a class type with a virtual destructor, the selected operator delete 14722 // is the one looked up when building the destructor. 14723 if (!E->isArrayForm() && !E->isGlobalDelete()) { 14724 const FunctionDecl *VirtualDelete = getVirtualOperatorDelete(AllocType); 14725 if (VirtualDelete && 14726 !VirtualDelete->isReplaceableGlobalAllocationFunction()) { 14727 Info.FFDiag(E, diag::note_constexpr_new_non_replaceable) 14728 << isa<CXXMethodDecl>(VirtualDelete) << VirtualDelete; 14729 return false; 14730 } 14731 } 14732 14733 if (!HandleDestruction(Info, E->getExprLoc(), Pointer.getLValueBase(), 14734 (*Alloc)->Value, AllocType)) 14735 return false; 14736 14737 if (!Info.HeapAllocs.erase(Pointer.Base.dyn_cast<DynamicAllocLValue>())) { 14738 // The element was already erased. This means the destructor call also 14739 // deleted the object. 14740 // FIXME: This probably results in undefined behavior before we get this 14741 // far, and should be diagnosed elsewhere first. 14742 Info.FFDiag(E, diag::note_constexpr_double_delete); 14743 return false; 14744 } 14745 14746 return true; 14747 } 14748 14749 static bool EvaluateVoid(const Expr *E, EvalInfo &Info) { 14750 assert(!E->isValueDependent()); 14751 assert(E->isPRValue() && E->getType()->isVoidType()); 14752 return VoidExprEvaluator(Info).Visit(E); 14753 } 14754 14755 //===----------------------------------------------------------------------===// 14756 // Top level Expr::EvaluateAsRValue method. 14757 //===----------------------------------------------------------------------===// 14758 14759 static bool Evaluate(APValue &Result, EvalInfo &Info, const Expr *E) { 14760 assert(!E->isValueDependent()); 14761 // In C, function designators are not lvalues, but we evaluate them as if they 14762 // are. 14763 QualType T = E->getType(); 14764 if (E->isGLValue() || T->isFunctionType()) { 14765 LValue LV; 14766 if (!EvaluateLValue(E, LV, Info)) 14767 return false; 14768 LV.moveInto(Result); 14769 } else if (T->isVectorType()) { 14770 if (!EvaluateVector(E, Result, Info)) 14771 return false; 14772 } else if (T->isIntegralOrEnumerationType()) { 14773 if (!IntExprEvaluator(Info, Result).Visit(E)) 14774 return false; 14775 } else if (T->hasPointerRepresentation()) { 14776 LValue LV; 14777 if (!EvaluatePointer(E, LV, Info)) 14778 return false; 14779 LV.moveInto(Result); 14780 } else if (T->isRealFloatingType()) { 14781 llvm::APFloat F(0.0); 14782 if (!EvaluateFloat(E, F, Info)) 14783 return false; 14784 Result = APValue(F); 14785 } else if (T->isAnyComplexType()) { 14786 ComplexValue C; 14787 if (!EvaluateComplex(E, C, Info)) 14788 return false; 14789 C.moveInto(Result); 14790 } else if (T->isFixedPointType()) { 14791 if (!FixedPointExprEvaluator(Info, Result).Visit(E)) return false; 14792 } else if (T->isMemberPointerType()) { 14793 MemberPtr P; 14794 if (!EvaluateMemberPointer(E, P, Info)) 14795 return false; 14796 P.moveInto(Result); 14797 return true; 14798 } else if (T->isArrayType()) { 14799 LValue LV; 14800 APValue &Value = 14801 Info.CurrentCall->createTemporary(E, T, ScopeKind::FullExpression, LV); 14802 if (!EvaluateArray(E, LV, Value, Info)) 14803 return false; 14804 Result = Value; 14805 } else if (T->isRecordType()) { 14806 LValue LV; 14807 APValue &Value = 14808 Info.CurrentCall->createTemporary(E, T, ScopeKind::FullExpression, LV); 14809 if (!EvaluateRecord(E, LV, Value, Info)) 14810 return false; 14811 Result = Value; 14812 } else if (T->isVoidType()) { 14813 if (!Info.getLangOpts().CPlusPlus11) 14814 Info.CCEDiag(E, diag::note_constexpr_nonliteral) 14815 << E->getType(); 14816 if (!EvaluateVoid(E, Info)) 14817 return false; 14818 } else if (T->isAtomicType()) { 14819 QualType Unqual = T.getAtomicUnqualifiedType(); 14820 if (Unqual->isArrayType() || Unqual->isRecordType()) { 14821 LValue LV; 14822 APValue &Value = Info.CurrentCall->createTemporary( 14823 E, Unqual, ScopeKind::FullExpression, LV); 14824 if (!EvaluateAtomic(E, &LV, Value, Info)) 14825 return false; 14826 } else { 14827 if (!EvaluateAtomic(E, nullptr, Result, Info)) 14828 return false; 14829 } 14830 } else if (Info.getLangOpts().CPlusPlus11) { 14831 Info.FFDiag(E, diag::note_constexpr_nonliteral) << E->getType(); 14832 return false; 14833 } else { 14834 Info.FFDiag(E, diag::note_invalid_subexpr_in_const_expr); 14835 return false; 14836 } 14837 14838 return true; 14839 } 14840 14841 /// EvaluateInPlace - Evaluate an expression in-place in an APValue. In some 14842 /// cases, the in-place evaluation is essential, since later initializers for 14843 /// an object can indirectly refer to subobjects which were initialized earlier. 14844 static bool EvaluateInPlace(APValue &Result, EvalInfo &Info, const LValue &This, 14845 const Expr *E, bool AllowNonLiteralTypes) { 14846 assert(!E->isValueDependent()); 14847 14848 if (!AllowNonLiteralTypes && !CheckLiteralType(Info, E, &This)) 14849 return false; 14850 14851 if (E->isPRValue()) { 14852 // Evaluate arrays and record types in-place, so that later initializers can 14853 // refer to earlier-initialized members of the object. 14854 QualType T = E->getType(); 14855 if (T->isArrayType()) 14856 return EvaluateArray(E, This, Result, Info); 14857 else if (T->isRecordType()) 14858 return EvaluateRecord(E, This, Result, Info); 14859 else if (T->isAtomicType()) { 14860 QualType Unqual = T.getAtomicUnqualifiedType(); 14861 if (Unqual->isArrayType() || Unqual->isRecordType()) 14862 return EvaluateAtomic(E, &This, Result, Info); 14863 } 14864 } 14865 14866 // For any other type, in-place evaluation is unimportant. 14867 return Evaluate(Result, Info, E); 14868 } 14869 14870 /// EvaluateAsRValue - Try to evaluate this expression, performing an implicit 14871 /// lvalue-to-rvalue cast if it is an lvalue. 14872 static bool EvaluateAsRValue(EvalInfo &Info, const Expr *E, APValue &Result) { 14873 assert(!E->isValueDependent()); 14874 if (Info.EnableNewConstInterp) { 14875 if (!Info.Ctx.getInterpContext().evaluateAsRValue(Info, E, Result)) 14876 return false; 14877 } else { 14878 if (E->getType().isNull()) 14879 return false; 14880 14881 if (!CheckLiteralType(Info, E)) 14882 return false; 14883 14884 if (!::Evaluate(Result, Info, E)) 14885 return false; 14886 14887 if (E->isGLValue()) { 14888 LValue LV; 14889 LV.setFrom(Info.Ctx, Result); 14890 if (!handleLValueToRValueConversion(Info, E, E->getType(), LV, Result)) 14891 return false; 14892 } 14893 } 14894 14895 // Check this core constant expression is a constant expression. 14896 return CheckConstantExpression(Info, E->getExprLoc(), E->getType(), Result, 14897 ConstantExprKind::Normal) && 14898 CheckMemoryLeaks(Info); 14899 } 14900 14901 static bool FastEvaluateAsRValue(const Expr *Exp, Expr::EvalResult &Result, 14902 const ASTContext &Ctx, bool &IsConst) { 14903 // Fast-path evaluations of integer literals, since we sometimes see files 14904 // containing vast quantities of these. 14905 if (const IntegerLiteral *L = dyn_cast<IntegerLiteral>(Exp)) { 14906 Result.Val = APValue(APSInt(L->getValue(), 14907 L->getType()->isUnsignedIntegerType())); 14908 IsConst = true; 14909 return true; 14910 } 14911 14912 // This case should be rare, but we need to check it before we check on 14913 // the type below. 14914 if (Exp->getType().isNull()) { 14915 IsConst = false; 14916 return true; 14917 } 14918 14919 // FIXME: Evaluating values of large array and record types can cause 14920 // performance problems. Only do so in C++11 for now. 14921 if (Exp->isPRValue() && 14922 (Exp->getType()->isArrayType() || Exp->getType()->isRecordType()) && 14923 !Ctx.getLangOpts().CPlusPlus11) { 14924 IsConst = false; 14925 return true; 14926 } 14927 return false; 14928 } 14929 14930 static bool hasUnacceptableSideEffect(Expr::EvalStatus &Result, 14931 Expr::SideEffectsKind SEK) { 14932 return (SEK < Expr::SE_AllowSideEffects && Result.HasSideEffects) || 14933 (SEK < Expr::SE_AllowUndefinedBehavior && Result.HasUndefinedBehavior); 14934 } 14935 14936 static bool EvaluateAsRValue(const Expr *E, Expr::EvalResult &Result, 14937 const ASTContext &Ctx, EvalInfo &Info) { 14938 assert(!E->isValueDependent()); 14939 bool IsConst; 14940 if (FastEvaluateAsRValue(E, Result, Ctx, IsConst)) 14941 return IsConst; 14942 14943 return EvaluateAsRValue(Info, E, Result.Val); 14944 } 14945 14946 static bool EvaluateAsInt(const Expr *E, Expr::EvalResult &ExprResult, 14947 const ASTContext &Ctx, 14948 Expr::SideEffectsKind AllowSideEffects, 14949 EvalInfo &Info) { 14950 assert(!E->isValueDependent()); 14951 if (!E->getType()->isIntegralOrEnumerationType()) 14952 return false; 14953 14954 if (!::EvaluateAsRValue(E, ExprResult, Ctx, Info) || 14955 !ExprResult.Val.isInt() || 14956 hasUnacceptableSideEffect(ExprResult, AllowSideEffects)) 14957 return false; 14958 14959 return true; 14960 } 14961 14962 static bool EvaluateAsFixedPoint(const Expr *E, Expr::EvalResult &ExprResult, 14963 const ASTContext &Ctx, 14964 Expr::SideEffectsKind AllowSideEffects, 14965 EvalInfo &Info) { 14966 assert(!E->isValueDependent()); 14967 if (!E->getType()->isFixedPointType()) 14968 return false; 14969 14970 if (!::EvaluateAsRValue(E, ExprResult, Ctx, Info)) 14971 return false; 14972 14973 if (!ExprResult.Val.isFixedPoint() || 14974 hasUnacceptableSideEffect(ExprResult, AllowSideEffects)) 14975 return false; 14976 14977 return true; 14978 } 14979 14980 /// EvaluateAsRValue - Return true if this is a constant which we can fold using 14981 /// any crazy technique (that has nothing to do with language standards) that 14982 /// we want to. If this function returns true, it returns the folded constant 14983 /// in Result. If this expression is a glvalue, an lvalue-to-rvalue conversion 14984 /// will be applied to the result. 14985 bool Expr::EvaluateAsRValue(EvalResult &Result, const ASTContext &Ctx, 14986 bool InConstantContext) const { 14987 assert(!isValueDependent() && 14988 "Expression evaluator can't be called on a dependent expression."); 14989 EvalInfo Info(Ctx, Result, EvalInfo::EM_IgnoreSideEffects); 14990 Info.InConstantContext = InConstantContext; 14991 return ::EvaluateAsRValue(this, Result, Ctx, Info); 14992 } 14993 14994 bool Expr::EvaluateAsBooleanCondition(bool &Result, const ASTContext &Ctx, 14995 bool InConstantContext) const { 14996 assert(!isValueDependent() && 14997 "Expression evaluator can't be called on a dependent expression."); 14998 EvalResult Scratch; 14999 return EvaluateAsRValue(Scratch, Ctx, InConstantContext) && 15000 HandleConversionToBool(Scratch.Val, Result); 15001 } 15002 15003 bool Expr::EvaluateAsInt(EvalResult &Result, const ASTContext &Ctx, 15004 SideEffectsKind AllowSideEffects, 15005 bool InConstantContext) const { 15006 assert(!isValueDependent() && 15007 "Expression evaluator can't be called on a dependent expression."); 15008 EvalInfo Info(Ctx, Result, EvalInfo::EM_IgnoreSideEffects); 15009 Info.InConstantContext = InConstantContext; 15010 return ::EvaluateAsInt(this, Result, Ctx, AllowSideEffects, Info); 15011 } 15012 15013 bool Expr::EvaluateAsFixedPoint(EvalResult &Result, const ASTContext &Ctx, 15014 SideEffectsKind AllowSideEffects, 15015 bool InConstantContext) const { 15016 assert(!isValueDependent() && 15017 "Expression evaluator can't be called on a dependent expression."); 15018 EvalInfo Info(Ctx, Result, EvalInfo::EM_IgnoreSideEffects); 15019 Info.InConstantContext = InConstantContext; 15020 return ::EvaluateAsFixedPoint(this, Result, Ctx, AllowSideEffects, Info); 15021 } 15022 15023 bool Expr::EvaluateAsFloat(APFloat &Result, const ASTContext &Ctx, 15024 SideEffectsKind AllowSideEffects, 15025 bool InConstantContext) const { 15026 assert(!isValueDependent() && 15027 "Expression evaluator can't be called on a dependent expression."); 15028 15029 if (!getType()->isRealFloatingType()) 15030 return false; 15031 15032 EvalResult ExprResult; 15033 if (!EvaluateAsRValue(ExprResult, Ctx, InConstantContext) || 15034 !ExprResult.Val.isFloat() || 15035 hasUnacceptableSideEffect(ExprResult, AllowSideEffects)) 15036 return false; 15037 15038 Result = ExprResult.Val.getFloat(); 15039 return true; 15040 } 15041 15042 bool Expr::EvaluateAsLValue(EvalResult &Result, const ASTContext &Ctx, 15043 bool InConstantContext) const { 15044 assert(!isValueDependent() && 15045 "Expression evaluator can't be called on a dependent expression."); 15046 15047 EvalInfo Info(Ctx, Result, EvalInfo::EM_ConstantFold); 15048 Info.InConstantContext = InConstantContext; 15049 LValue LV; 15050 CheckedTemporaries CheckedTemps; 15051 if (!EvaluateLValue(this, LV, Info) || !Info.discardCleanups() || 15052 Result.HasSideEffects || 15053 !CheckLValueConstantExpression(Info, getExprLoc(), 15054 Ctx.getLValueReferenceType(getType()), LV, 15055 ConstantExprKind::Normal, CheckedTemps)) 15056 return false; 15057 15058 LV.moveInto(Result.Val); 15059 return true; 15060 } 15061 15062 static bool EvaluateDestruction(const ASTContext &Ctx, APValue::LValueBase Base, 15063 APValue DestroyedValue, QualType Type, 15064 SourceLocation Loc, Expr::EvalStatus &EStatus, 15065 bool IsConstantDestruction) { 15066 EvalInfo Info(Ctx, EStatus, 15067 IsConstantDestruction ? EvalInfo::EM_ConstantExpression 15068 : EvalInfo::EM_ConstantFold); 15069 Info.setEvaluatingDecl(Base, DestroyedValue, 15070 EvalInfo::EvaluatingDeclKind::Dtor); 15071 Info.InConstantContext = IsConstantDestruction; 15072 15073 LValue LVal; 15074 LVal.set(Base); 15075 15076 if (!HandleDestruction(Info, Loc, Base, DestroyedValue, Type) || 15077 EStatus.HasSideEffects) 15078 return false; 15079 15080 if (!Info.discardCleanups()) 15081 llvm_unreachable("Unhandled cleanup; missing full expression marker?"); 15082 15083 return true; 15084 } 15085 15086 bool Expr::EvaluateAsConstantExpr(EvalResult &Result, const ASTContext &Ctx, 15087 ConstantExprKind Kind) const { 15088 assert(!isValueDependent() && 15089 "Expression evaluator can't be called on a dependent expression."); 15090 15091 EvalInfo::EvaluationMode EM = EvalInfo::EM_ConstantExpression; 15092 EvalInfo Info(Ctx, Result, EM); 15093 Info.InConstantContext = true; 15094 15095 // The type of the object we're initializing is 'const T' for a class NTTP. 15096 QualType T = getType(); 15097 if (Kind == ConstantExprKind::ClassTemplateArgument) 15098 T.addConst(); 15099 15100 // If we're evaluating a prvalue, fake up a MaterializeTemporaryExpr to 15101 // represent the result of the evaluation. CheckConstantExpression ensures 15102 // this doesn't escape. 15103 MaterializeTemporaryExpr BaseMTE(T, const_cast<Expr*>(this), true); 15104 APValue::LValueBase Base(&BaseMTE); 15105 15106 Info.setEvaluatingDecl(Base, Result.Val); 15107 LValue LVal; 15108 LVal.set(Base); 15109 15110 if (!::EvaluateInPlace(Result.Val, Info, LVal, this) || Result.HasSideEffects) 15111 return false; 15112 15113 if (!Info.discardCleanups()) 15114 llvm_unreachable("Unhandled cleanup; missing full expression marker?"); 15115 15116 if (!CheckConstantExpression(Info, getExprLoc(), getStorageType(Ctx, this), 15117 Result.Val, Kind)) 15118 return false; 15119 if (!CheckMemoryLeaks(Info)) 15120 return false; 15121 15122 // If this is a class template argument, it's required to have constant 15123 // destruction too. 15124 if (Kind == ConstantExprKind::ClassTemplateArgument && 15125 (!EvaluateDestruction(Ctx, Base, Result.Val, T, getBeginLoc(), Result, 15126 true) || 15127 Result.HasSideEffects)) { 15128 // FIXME: Prefix a note to indicate that the problem is lack of constant 15129 // destruction. 15130 return false; 15131 } 15132 15133 return true; 15134 } 15135 15136 bool Expr::EvaluateAsInitializer(APValue &Value, const ASTContext &Ctx, 15137 const VarDecl *VD, 15138 SmallVectorImpl<PartialDiagnosticAt> &Notes, 15139 bool IsConstantInitialization) const { 15140 assert(!isValueDependent() && 15141 "Expression evaluator can't be called on a dependent expression."); 15142 15143 // FIXME: Evaluating initializers for large array and record types can cause 15144 // performance problems. Only do so in C++11 for now. 15145 if (isPRValue() && (getType()->isArrayType() || getType()->isRecordType()) && 15146 !Ctx.getLangOpts().CPlusPlus11) 15147 return false; 15148 15149 Expr::EvalStatus EStatus; 15150 EStatus.Diag = &Notes; 15151 15152 EvalInfo Info(Ctx, EStatus, 15153 (IsConstantInitialization && Ctx.getLangOpts().CPlusPlus11) 15154 ? EvalInfo::EM_ConstantExpression 15155 : EvalInfo::EM_ConstantFold); 15156 Info.setEvaluatingDecl(VD, Value); 15157 Info.InConstantContext = IsConstantInitialization; 15158 15159 SourceLocation DeclLoc = VD->getLocation(); 15160 QualType DeclTy = VD->getType(); 15161 15162 if (Info.EnableNewConstInterp) { 15163 auto &InterpCtx = const_cast<ASTContext &>(Ctx).getInterpContext(); 15164 if (!InterpCtx.evaluateAsInitializer(Info, VD, Value)) 15165 return false; 15166 } else { 15167 LValue LVal; 15168 LVal.set(VD); 15169 15170 if (!EvaluateInPlace(Value, Info, LVal, this, 15171 /*AllowNonLiteralTypes=*/true) || 15172 EStatus.HasSideEffects) 15173 return false; 15174 15175 // At this point, any lifetime-extended temporaries are completely 15176 // initialized. 15177 Info.performLifetimeExtension(); 15178 15179 if (!Info.discardCleanups()) 15180 llvm_unreachable("Unhandled cleanup; missing full expression marker?"); 15181 } 15182 return CheckConstantExpression(Info, DeclLoc, DeclTy, Value, 15183 ConstantExprKind::Normal) && 15184 CheckMemoryLeaks(Info); 15185 } 15186 15187 bool VarDecl::evaluateDestruction( 15188 SmallVectorImpl<PartialDiagnosticAt> &Notes) const { 15189 Expr::EvalStatus EStatus; 15190 EStatus.Diag = &Notes; 15191 15192 // Only treat the destruction as constant destruction if we formally have 15193 // constant initialization (or are usable in a constant expression). 15194 bool IsConstantDestruction = hasConstantInitialization(); 15195 15196 // Make a copy of the value for the destructor to mutate, if we know it. 15197 // Otherwise, treat the value as default-initialized; if the destructor works 15198 // anyway, then the destruction is constant (and must be essentially empty). 15199 APValue DestroyedValue; 15200 if (getEvaluatedValue() && !getEvaluatedValue()->isAbsent()) 15201 DestroyedValue = *getEvaluatedValue(); 15202 else if (!getDefaultInitValue(getType(), DestroyedValue)) 15203 return false; 15204 15205 if (!EvaluateDestruction(getASTContext(), this, std::move(DestroyedValue), 15206 getType(), getLocation(), EStatus, 15207 IsConstantDestruction) || 15208 EStatus.HasSideEffects) 15209 return false; 15210 15211 ensureEvaluatedStmt()->HasConstantDestruction = true; 15212 return true; 15213 } 15214 15215 /// isEvaluatable - Call EvaluateAsRValue to see if this expression can be 15216 /// constant folded, but discard the result. 15217 bool Expr::isEvaluatable(const ASTContext &Ctx, SideEffectsKind SEK) const { 15218 assert(!isValueDependent() && 15219 "Expression evaluator can't be called on a dependent expression."); 15220 15221 EvalResult Result; 15222 return EvaluateAsRValue(Result, Ctx, /* in constant context */ true) && 15223 !hasUnacceptableSideEffect(Result, SEK); 15224 } 15225 15226 APSInt Expr::EvaluateKnownConstInt(const ASTContext &Ctx, 15227 SmallVectorImpl<PartialDiagnosticAt> *Diag) const { 15228 assert(!isValueDependent() && 15229 "Expression evaluator can't be called on a dependent expression."); 15230 15231 EvalResult EVResult; 15232 EVResult.Diag = Diag; 15233 EvalInfo Info(Ctx, EVResult, EvalInfo::EM_IgnoreSideEffects); 15234 Info.InConstantContext = true; 15235 15236 bool Result = ::EvaluateAsRValue(this, EVResult, Ctx, Info); 15237 (void)Result; 15238 assert(Result && "Could not evaluate expression"); 15239 assert(EVResult.Val.isInt() && "Expression did not evaluate to integer"); 15240 15241 return EVResult.Val.getInt(); 15242 } 15243 15244 APSInt Expr::EvaluateKnownConstIntCheckOverflow( 15245 const ASTContext &Ctx, SmallVectorImpl<PartialDiagnosticAt> *Diag) const { 15246 assert(!isValueDependent() && 15247 "Expression evaluator can't be called on a dependent expression."); 15248 15249 EvalResult EVResult; 15250 EVResult.Diag = Diag; 15251 EvalInfo Info(Ctx, EVResult, EvalInfo::EM_IgnoreSideEffects); 15252 Info.InConstantContext = true; 15253 Info.CheckingForUndefinedBehavior = true; 15254 15255 bool Result = ::EvaluateAsRValue(Info, this, EVResult.Val); 15256 (void)Result; 15257 assert(Result && "Could not evaluate expression"); 15258 assert(EVResult.Val.isInt() && "Expression did not evaluate to integer"); 15259 15260 return EVResult.Val.getInt(); 15261 } 15262 15263 void Expr::EvaluateForOverflow(const ASTContext &Ctx) const { 15264 assert(!isValueDependent() && 15265 "Expression evaluator can't be called on a dependent expression."); 15266 15267 bool IsConst; 15268 EvalResult EVResult; 15269 if (!FastEvaluateAsRValue(this, EVResult, Ctx, IsConst)) { 15270 EvalInfo Info(Ctx, EVResult, EvalInfo::EM_IgnoreSideEffects); 15271 Info.CheckingForUndefinedBehavior = true; 15272 (void)::EvaluateAsRValue(Info, this, EVResult.Val); 15273 } 15274 } 15275 15276 bool Expr::EvalResult::isGlobalLValue() const { 15277 assert(Val.isLValue()); 15278 return IsGlobalLValue(Val.getLValueBase()); 15279 } 15280 15281 /// isIntegerConstantExpr - this recursive routine will test if an expression is 15282 /// an integer constant expression. 15283 15284 /// FIXME: Pass up a reason why! Invalid operation in i-c-e, division by zero, 15285 /// comma, etc 15286 15287 // CheckICE - This function does the fundamental ICE checking: the returned 15288 // ICEDiag contains an ICEKind indicating whether the expression is an ICE, 15289 // and a (possibly null) SourceLocation indicating the location of the problem. 15290 // 15291 // Note that to reduce code duplication, this helper does no evaluation 15292 // itself; the caller checks whether the expression is evaluatable, and 15293 // in the rare cases where CheckICE actually cares about the evaluated 15294 // value, it calls into Evaluate. 15295 15296 namespace { 15297 15298 enum ICEKind { 15299 /// This expression is an ICE. 15300 IK_ICE, 15301 /// This expression is not an ICE, but if it isn't evaluated, it's 15302 /// a legal subexpression for an ICE. This return value is used to handle 15303 /// the comma operator in C99 mode, and non-constant subexpressions. 15304 IK_ICEIfUnevaluated, 15305 /// This expression is not an ICE, and is not a legal subexpression for one. 15306 IK_NotICE 15307 }; 15308 15309 struct ICEDiag { 15310 ICEKind Kind; 15311 SourceLocation Loc; 15312 15313 ICEDiag(ICEKind IK, SourceLocation l) : Kind(IK), Loc(l) {} 15314 }; 15315 15316 } 15317 15318 static ICEDiag NoDiag() { return ICEDiag(IK_ICE, SourceLocation()); } 15319 15320 static ICEDiag Worst(ICEDiag A, ICEDiag B) { return A.Kind >= B.Kind ? A : B; } 15321 15322 static ICEDiag CheckEvalInICE(const Expr* E, const ASTContext &Ctx) { 15323 Expr::EvalResult EVResult; 15324 Expr::EvalStatus Status; 15325 EvalInfo Info(Ctx, Status, EvalInfo::EM_ConstantExpression); 15326 15327 Info.InConstantContext = true; 15328 if (!::EvaluateAsRValue(E, EVResult, Ctx, Info) || EVResult.HasSideEffects || 15329 !EVResult.Val.isInt()) 15330 return ICEDiag(IK_NotICE, E->getBeginLoc()); 15331 15332 return NoDiag(); 15333 } 15334 15335 static ICEDiag CheckICE(const Expr* E, const ASTContext &Ctx) { 15336 assert(!E->isValueDependent() && "Should not see value dependent exprs!"); 15337 if (!E->getType()->isIntegralOrEnumerationType()) 15338 return ICEDiag(IK_NotICE, E->getBeginLoc()); 15339 15340 switch (E->getStmtClass()) { 15341 #define ABSTRACT_STMT(Node) 15342 #define STMT(Node, Base) case Expr::Node##Class: 15343 #define EXPR(Node, Base) 15344 #include "clang/AST/StmtNodes.inc" 15345 case Expr::PredefinedExprClass: 15346 case Expr::FloatingLiteralClass: 15347 case Expr::ImaginaryLiteralClass: 15348 case Expr::StringLiteralClass: 15349 case Expr::ArraySubscriptExprClass: 15350 case Expr::MatrixSubscriptExprClass: 15351 case Expr::OMPArraySectionExprClass: 15352 case Expr::OMPArrayShapingExprClass: 15353 case Expr::OMPIteratorExprClass: 15354 case Expr::MemberExprClass: 15355 case Expr::CompoundAssignOperatorClass: 15356 case Expr::CompoundLiteralExprClass: 15357 case Expr::ExtVectorElementExprClass: 15358 case Expr::DesignatedInitExprClass: 15359 case Expr::ArrayInitLoopExprClass: 15360 case Expr::ArrayInitIndexExprClass: 15361 case Expr::NoInitExprClass: 15362 case Expr::DesignatedInitUpdateExprClass: 15363 case Expr::ImplicitValueInitExprClass: 15364 case Expr::ParenListExprClass: 15365 case Expr::VAArgExprClass: 15366 case Expr::AddrLabelExprClass: 15367 case Expr::StmtExprClass: 15368 case Expr::CXXMemberCallExprClass: 15369 case Expr::CUDAKernelCallExprClass: 15370 case Expr::CXXAddrspaceCastExprClass: 15371 case Expr::CXXDynamicCastExprClass: 15372 case Expr::CXXTypeidExprClass: 15373 case Expr::CXXUuidofExprClass: 15374 case Expr::MSPropertyRefExprClass: 15375 case Expr::MSPropertySubscriptExprClass: 15376 case Expr::CXXNullPtrLiteralExprClass: 15377 case Expr::UserDefinedLiteralClass: 15378 case Expr::CXXThisExprClass: 15379 case Expr::CXXThrowExprClass: 15380 case Expr::CXXNewExprClass: 15381 case Expr::CXXDeleteExprClass: 15382 case Expr::CXXPseudoDestructorExprClass: 15383 case Expr::UnresolvedLookupExprClass: 15384 case Expr::TypoExprClass: 15385 case Expr::RecoveryExprClass: 15386 case Expr::DependentScopeDeclRefExprClass: 15387 case Expr::CXXConstructExprClass: 15388 case Expr::CXXInheritedCtorInitExprClass: 15389 case Expr::CXXStdInitializerListExprClass: 15390 case Expr::CXXBindTemporaryExprClass: 15391 case Expr::ExprWithCleanupsClass: 15392 case Expr::CXXTemporaryObjectExprClass: 15393 case Expr::CXXUnresolvedConstructExprClass: 15394 case Expr::CXXDependentScopeMemberExprClass: 15395 case Expr::UnresolvedMemberExprClass: 15396 case Expr::ObjCStringLiteralClass: 15397 case Expr::ObjCBoxedExprClass: 15398 case Expr::ObjCArrayLiteralClass: 15399 case Expr::ObjCDictionaryLiteralClass: 15400 case Expr::ObjCEncodeExprClass: 15401 case Expr::ObjCMessageExprClass: 15402 case Expr::ObjCSelectorExprClass: 15403 case Expr::ObjCProtocolExprClass: 15404 case Expr::ObjCIvarRefExprClass: 15405 case Expr::ObjCPropertyRefExprClass: 15406 case Expr::ObjCSubscriptRefExprClass: 15407 case Expr::ObjCIsaExprClass: 15408 case Expr::ObjCAvailabilityCheckExprClass: 15409 case Expr::ShuffleVectorExprClass: 15410 case Expr::ConvertVectorExprClass: 15411 case Expr::BlockExprClass: 15412 case Expr::NoStmtClass: 15413 case Expr::OpaqueValueExprClass: 15414 case Expr::PackExpansionExprClass: 15415 case Expr::SubstNonTypeTemplateParmPackExprClass: 15416 case Expr::FunctionParmPackExprClass: 15417 case Expr::AsTypeExprClass: 15418 case Expr::ObjCIndirectCopyRestoreExprClass: 15419 case Expr::MaterializeTemporaryExprClass: 15420 case Expr::PseudoObjectExprClass: 15421 case Expr::AtomicExprClass: 15422 case Expr::LambdaExprClass: 15423 case Expr::CXXFoldExprClass: 15424 case Expr::CoawaitExprClass: 15425 case Expr::DependentCoawaitExprClass: 15426 case Expr::CoyieldExprClass: 15427 case Expr::SYCLUniqueStableNameExprClass: 15428 return ICEDiag(IK_NotICE, E->getBeginLoc()); 15429 15430 case Expr::InitListExprClass: { 15431 // C++03 [dcl.init]p13: If T is a scalar type, then a declaration of the 15432 // form "T x = { a };" is equivalent to "T x = a;". 15433 // Unless we're initializing a reference, T is a scalar as it is known to be 15434 // of integral or enumeration type. 15435 if (E->isPRValue()) 15436 if (cast<InitListExpr>(E)->getNumInits() == 1) 15437 return CheckICE(cast<InitListExpr>(E)->getInit(0), Ctx); 15438 return ICEDiag(IK_NotICE, E->getBeginLoc()); 15439 } 15440 15441 case Expr::SizeOfPackExprClass: 15442 case Expr::GNUNullExprClass: 15443 case Expr::SourceLocExprClass: 15444 return NoDiag(); 15445 15446 case Expr::SubstNonTypeTemplateParmExprClass: 15447 return 15448 CheckICE(cast<SubstNonTypeTemplateParmExpr>(E)->getReplacement(), Ctx); 15449 15450 case Expr::ConstantExprClass: 15451 return CheckICE(cast<ConstantExpr>(E)->getSubExpr(), Ctx); 15452 15453 case Expr::ParenExprClass: 15454 return CheckICE(cast<ParenExpr>(E)->getSubExpr(), Ctx); 15455 case Expr::GenericSelectionExprClass: 15456 return CheckICE(cast<GenericSelectionExpr>(E)->getResultExpr(), Ctx); 15457 case Expr::IntegerLiteralClass: 15458 case Expr::FixedPointLiteralClass: 15459 case Expr::CharacterLiteralClass: 15460 case Expr::ObjCBoolLiteralExprClass: 15461 case Expr::CXXBoolLiteralExprClass: 15462 case Expr::CXXScalarValueInitExprClass: 15463 case Expr::TypeTraitExprClass: 15464 case Expr::ConceptSpecializationExprClass: 15465 case Expr::RequiresExprClass: 15466 case Expr::ArrayTypeTraitExprClass: 15467 case Expr::ExpressionTraitExprClass: 15468 case Expr::CXXNoexceptExprClass: 15469 return NoDiag(); 15470 case Expr::CallExprClass: 15471 case Expr::CXXOperatorCallExprClass: { 15472 // C99 6.6/3 allows function calls within unevaluated subexpressions of 15473 // constant expressions, but they can never be ICEs because an ICE cannot 15474 // contain an operand of (pointer to) function type. 15475 const CallExpr *CE = cast<CallExpr>(E); 15476 if (CE->getBuiltinCallee()) 15477 return CheckEvalInICE(E, Ctx); 15478 return ICEDiag(IK_NotICE, E->getBeginLoc()); 15479 } 15480 case Expr::CXXRewrittenBinaryOperatorClass: 15481 return CheckICE(cast<CXXRewrittenBinaryOperator>(E)->getSemanticForm(), 15482 Ctx); 15483 case Expr::DeclRefExprClass: { 15484 const NamedDecl *D = cast<DeclRefExpr>(E)->getDecl(); 15485 if (isa<EnumConstantDecl>(D)) 15486 return NoDiag(); 15487 15488 // C++ and OpenCL (FIXME: spec reference?) allow reading const-qualified 15489 // integer variables in constant expressions: 15490 // 15491 // C++ 7.1.5.1p2 15492 // A variable of non-volatile const-qualified integral or enumeration 15493 // type initialized by an ICE can be used in ICEs. 15494 // 15495 // We sometimes use CheckICE to check the C++98 rules in C++11 mode. In 15496 // that mode, use of reference variables should not be allowed. 15497 const VarDecl *VD = dyn_cast<VarDecl>(D); 15498 if (VD && VD->isUsableInConstantExpressions(Ctx) && 15499 !VD->getType()->isReferenceType()) 15500 return NoDiag(); 15501 15502 return ICEDiag(IK_NotICE, E->getBeginLoc()); 15503 } 15504 case Expr::UnaryOperatorClass: { 15505 const UnaryOperator *Exp = cast<UnaryOperator>(E); 15506 switch (Exp->getOpcode()) { 15507 case UO_PostInc: 15508 case UO_PostDec: 15509 case UO_PreInc: 15510 case UO_PreDec: 15511 case UO_AddrOf: 15512 case UO_Deref: 15513 case UO_Coawait: 15514 // C99 6.6/3 allows increment and decrement within unevaluated 15515 // subexpressions of constant expressions, but they can never be ICEs 15516 // because an ICE cannot contain an lvalue operand. 15517 return ICEDiag(IK_NotICE, E->getBeginLoc()); 15518 case UO_Extension: 15519 case UO_LNot: 15520 case UO_Plus: 15521 case UO_Minus: 15522 case UO_Not: 15523 case UO_Real: 15524 case UO_Imag: 15525 return CheckICE(Exp->getSubExpr(), Ctx); 15526 } 15527 llvm_unreachable("invalid unary operator class"); 15528 } 15529 case Expr::OffsetOfExprClass: { 15530 // Note that per C99, offsetof must be an ICE. And AFAIK, using 15531 // EvaluateAsRValue matches the proposed gcc behavior for cases like 15532 // "offsetof(struct s{int x[4];}, x[1.0])". This doesn't affect 15533 // compliance: we should warn earlier for offsetof expressions with 15534 // array subscripts that aren't ICEs, and if the array subscripts 15535 // are ICEs, the value of the offsetof must be an integer constant. 15536 return CheckEvalInICE(E, Ctx); 15537 } 15538 case Expr::UnaryExprOrTypeTraitExprClass: { 15539 const UnaryExprOrTypeTraitExpr *Exp = cast<UnaryExprOrTypeTraitExpr>(E); 15540 if ((Exp->getKind() == UETT_SizeOf) && 15541 Exp->getTypeOfArgument()->isVariableArrayType()) 15542 return ICEDiag(IK_NotICE, E->getBeginLoc()); 15543 return NoDiag(); 15544 } 15545 case Expr::BinaryOperatorClass: { 15546 const BinaryOperator *Exp = cast<BinaryOperator>(E); 15547 switch (Exp->getOpcode()) { 15548 case BO_PtrMemD: 15549 case BO_PtrMemI: 15550 case BO_Assign: 15551 case BO_MulAssign: 15552 case BO_DivAssign: 15553 case BO_RemAssign: 15554 case BO_AddAssign: 15555 case BO_SubAssign: 15556 case BO_ShlAssign: 15557 case BO_ShrAssign: 15558 case BO_AndAssign: 15559 case BO_XorAssign: 15560 case BO_OrAssign: 15561 // C99 6.6/3 allows assignments within unevaluated subexpressions of 15562 // constant expressions, but they can never be ICEs because an ICE cannot 15563 // contain an lvalue operand. 15564 return ICEDiag(IK_NotICE, E->getBeginLoc()); 15565 15566 case BO_Mul: 15567 case BO_Div: 15568 case BO_Rem: 15569 case BO_Add: 15570 case BO_Sub: 15571 case BO_Shl: 15572 case BO_Shr: 15573 case BO_LT: 15574 case BO_GT: 15575 case BO_LE: 15576 case BO_GE: 15577 case BO_EQ: 15578 case BO_NE: 15579 case BO_And: 15580 case BO_Xor: 15581 case BO_Or: 15582 case BO_Comma: 15583 case BO_Cmp: { 15584 ICEDiag LHSResult = CheckICE(Exp->getLHS(), Ctx); 15585 ICEDiag RHSResult = CheckICE(Exp->getRHS(), Ctx); 15586 if (Exp->getOpcode() == BO_Div || 15587 Exp->getOpcode() == BO_Rem) { 15588 // EvaluateAsRValue gives an error for undefined Div/Rem, so make sure 15589 // we don't evaluate one. 15590 if (LHSResult.Kind == IK_ICE && RHSResult.Kind == IK_ICE) { 15591 llvm::APSInt REval = Exp->getRHS()->EvaluateKnownConstInt(Ctx); 15592 if (REval == 0) 15593 return ICEDiag(IK_ICEIfUnevaluated, E->getBeginLoc()); 15594 if (REval.isSigned() && REval.isAllOnes()) { 15595 llvm::APSInt LEval = Exp->getLHS()->EvaluateKnownConstInt(Ctx); 15596 if (LEval.isMinSignedValue()) 15597 return ICEDiag(IK_ICEIfUnevaluated, E->getBeginLoc()); 15598 } 15599 } 15600 } 15601 if (Exp->getOpcode() == BO_Comma) { 15602 if (Ctx.getLangOpts().C99) { 15603 // C99 6.6p3 introduces a strange edge case: comma can be in an ICE 15604 // if it isn't evaluated. 15605 if (LHSResult.Kind == IK_ICE && RHSResult.Kind == IK_ICE) 15606 return ICEDiag(IK_ICEIfUnevaluated, E->getBeginLoc()); 15607 } else { 15608 // In both C89 and C++, commas in ICEs are illegal. 15609 return ICEDiag(IK_NotICE, E->getBeginLoc()); 15610 } 15611 } 15612 return Worst(LHSResult, RHSResult); 15613 } 15614 case BO_LAnd: 15615 case BO_LOr: { 15616 ICEDiag LHSResult = CheckICE(Exp->getLHS(), Ctx); 15617 ICEDiag RHSResult = CheckICE(Exp->getRHS(), Ctx); 15618 if (LHSResult.Kind == IK_ICE && RHSResult.Kind == IK_ICEIfUnevaluated) { 15619 // Rare case where the RHS has a comma "side-effect"; we need 15620 // to actually check the condition to see whether the side 15621 // with the comma is evaluated. 15622 if ((Exp->getOpcode() == BO_LAnd) != 15623 (Exp->getLHS()->EvaluateKnownConstInt(Ctx) == 0)) 15624 return RHSResult; 15625 return NoDiag(); 15626 } 15627 15628 return Worst(LHSResult, RHSResult); 15629 } 15630 } 15631 llvm_unreachable("invalid binary operator kind"); 15632 } 15633 case Expr::ImplicitCastExprClass: 15634 case Expr::CStyleCastExprClass: 15635 case Expr::CXXFunctionalCastExprClass: 15636 case Expr::CXXStaticCastExprClass: 15637 case Expr::CXXReinterpretCastExprClass: 15638 case Expr::CXXConstCastExprClass: 15639 case Expr::ObjCBridgedCastExprClass: { 15640 const Expr *SubExpr = cast<CastExpr>(E)->getSubExpr(); 15641 if (isa<ExplicitCastExpr>(E)) { 15642 if (const FloatingLiteral *FL 15643 = dyn_cast<FloatingLiteral>(SubExpr->IgnoreParenImpCasts())) { 15644 unsigned DestWidth = Ctx.getIntWidth(E->getType()); 15645 bool DestSigned = E->getType()->isSignedIntegerOrEnumerationType(); 15646 APSInt IgnoredVal(DestWidth, !DestSigned); 15647 bool Ignored; 15648 // If the value does not fit in the destination type, the behavior is 15649 // undefined, so we are not required to treat it as a constant 15650 // expression. 15651 if (FL->getValue().convertToInteger(IgnoredVal, 15652 llvm::APFloat::rmTowardZero, 15653 &Ignored) & APFloat::opInvalidOp) 15654 return ICEDiag(IK_NotICE, E->getBeginLoc()); 15655 return NoDiag(); 15656 } 15657 } 15658 switch (cast<CastExpr>(E)->getCastKind()) { 15659 case CK_LValueToRValue: 15660 case CK_AtomicToNonAtomic: 15661 case CK_NonAtomicToAtomic: 15662 case CK_NoOp: 15663 case CK_IntegralToBoolean: 15664 case CK_IntegralCast: 15665 return CheckICE(SubExpr, Ctx); 15666 default: 15667 return ICEDiag(IK_NotICE, E->getBeginLoc()); 15668 } 15669 } 15670 case Expr::BinaryConditionalOperatorClass: { 15671 const BinaryConditionalOperator *Exp = cast<BinaryConditionalOperator>(E); 15672 ICEDiag CommonResult = CheckICE(Exp->getCommon(), Ctx); 15673 if (CommonResult.Kind == IK_NotICE) return CommonResult; 15674 ICEDiag FalseResult = CheckICE(Exp->getFalseExpr(), Ctx); 15675 if (FalseResult.Kind == IK_NotICE) return FalseResult; 15676 if (CommonResult.Kind == IK_ICEIfUnevaluated) return CommonResult; 15677 if (FalseResult.Kind == IK_ICEIfUnevaluated && 15678 Exp->getCommon()->EvaluateKnownConstInt(Ctx) != 0) return NoDiag(); 15679 return FalseResult; 15680 } 15681 case Expr::ConditionalOperatorClass: { 15682 const ConditionalOperator *Exp = cast<ConditionalOperator>(E); 15683 // If the condition (ignoring parens) is a __builtin_constant_p call, 15684 // then only the true side is actually considered in an integer constant 15685 // expression, and it is fully evaluated. This is an important GNU 15686 // extension. See GCC PR38377 for discussion. 15687 if (const CallExpr *CallCE 15688 = dyn_cast<CallExpr>(Exp->getCond()->IgnoreParenCasts())) 15689 if (CallCE->getBuiltinCallee() == Builtin::BI__builtin_constant_p) 15690 return CheckEvalInICE(E, Ctx); 15691 ICEDiag CondResult = CheckICE(Exp->getCond(), Ctx); 15692 if (CondResult.Kind == IK_NotICE) 15693 return CondResult; 15694 15695 ICEDiag TrueResult = CheckICE(Exp->getTrueExpr(), Ctx); 15696 ICEDiag FalseResult = CheckICE(Exp->getFalseExpr(), Ctx); 15697 15698 if (TrueResult.Kind == IK_NotICE) 15699 return TrueResult; 15700 if (FalseResult.Kind == IK_NotICE) 15701 return FalseResult; 15702 if (CondResult.Kind == IK_ICEIfUnevaluated) 15703 return CondResult; 15704 if (TrueResult.Kind == IK_ICE && FalseResult.Kind == IK_ICE) 15705 return NoDiag(); 15706 // Rare case where the diagnostics depend on which side is evaluated 15707 // Note that if we get here, CondResult is 0, and at least one of 15708 // TrueResult and FalseResult is non-zero. 15709 if (Exp->getCond()->EvaluateKnownConstInt(Ctx) == 0) 15710 return FalseResult; 15711 return TrueResult; 15712 } 15713 case Expr::CXXDefaultArgExprClass: 15714 return CheckICE(cast<CXXDefaultArgExpr>(E)->getExpr(), Ctx); 15715 case Expr::CXXDefaultInitExprClass: 15716 return CheckICE(cast<CXXDefaultInitExpr>(E)->getExpr(), Ctx); 15717 case Expr::ChooseExprClass: { 15718 return CheckICE(cast<ChooseExpr>(E)->getChosenSubExpr(), Ctx); 15719 } 15720 case Expr::BuiltinBitCastExprClass: { 15721 if (!checkBitCastConstexprEligibility(nullptr, Ctx, cast<CastExpr>(E))) 15722 return ICEDiag(IK_NotICE, E->getBeginLoc()); 15723 return CheckICE(cast<CastExpr>(E)->getSubExpr(), Ctx); 15724 } 15725 } 15726 15727 llvm_unreachable("Invalid StmtClass!"); 15728 } 15729 15730 /// Evaluate an expression as a C++11 integral constant expression. 15731 static bool EvaluateCPlusPlus11IntegralConstantExpr(const ASTContext &Ctx, 15732 const Expr *E, 15733 llvm::APSInt *Value, 15734 SourceLocation *Loc) { 15735 if (!E->getType()->isIntegralOrUnscopedEnumerationType()) { 15736 if (Loc) *Loc = E->getExprLoc(); 15737 return false; 15738 } 15739 15740 APValue Result; 15741 if (!E->isCXX11ConstantExpr(Ctx, &Result, Loc)) 15742 return false; 15743 15744 if (!Result.isInt()) { 15745 if (Loc) *Loc = E->getExprLoc(); 15746 return false; 15747 } 15748 15749 if (Value) *Value = Result.getInt(); 15750 return true; 15751 } 15752 15753 bool Expr::isIntegerConstantExpr(const ASTContext &Ctx, 15754 SourceLocation *Loc) const { 15755 assert(!isValueDependent() && 15756 "Expression evaluator can't be called on a dependent expression."); 15757 15758 if (Ctx.getLangOpts().CPlusPlus11) 15759 return EvaluateCPlusPlus11IntegralConstantExpr(Ctx, this, nullptr, Loc); 15760 15761 ICEDiag D = CheckICE(this, Ctx); 15762 if (D.Kind != IK_ICE) { 15763 if (Loc) *Loc = D.Loc; 15764 return false; 15765 } 15766 return true; 15767 } 15768 15769 Optional<llvm::APSInt> Expr::getIntegerConstantExpr(const ASTContext &Ctx, 15770 SourceLocation *Loc, 15771 bool isEvaluated) const { 15772 if (isValueDependent()) { 15773 // Expression evaluator can't succeed on a dependent expression. 15774 return None; 15775 } 15776 15777 APSInt Value; 15778 15779 if (Ctx.getLangOpts().CPlusPlus11) { 15780 if (EvaluateCPlusPlus11IntegralConstantExpr(Ctx, this, &Value, Loc)) 15781 return Value; 15782 return None; 15783 } 15784 15785 if (!isIntegerConstantExpr(Ctx, Loc)) 15786 return None; 15787 15788 // The only possible side-effects here are due to UB discovered in the 15789 // evaluation (for instance, INT_MAX + 1). In such a case, we are still 15790 // required to treat the expression as an ICE, so we produce the folded 15791 // value. 15792 EvalResult ExprResult; 15793 Expr::EvalStatus Status; 15794 EvalInfo Info(Ctx, Status, EvalInfo::EM_IgnoreSideEffects); 15795 Info.InConstantContext = true; 15796 15797 if (!::EvaluateAsInt(this, ExprResult, Ctx, SE_AllowSideEffects, Info)) 15798 llvm_unreachable("ICE cannot be evaluated!"); 15799 15800 return ExprResult.Val.getInt(); 15801 } 15802 15803 bool Expr::isCXX98IntegralConstantExpr(const ASTContext &Ctx) const { 15804 assert(!isValueDependent() && 15805 "Expression evaluator can't be called on a dependent expression."); 15806 15807 return CheckICE(this, Ctx).Kind == IK_ICE; 15808 } 15809 15810 bool Expr::isCXX11ConstantExpr(const ASTContext &Ctx, APValue *Result, 15811 SourceLocation *Loc) const { 15812 assert(!isValueDependent() && 15813 "Expression evaluator can't be called on a dependent expression."); 15814 15815 // We support this checking in C++98 mode in order to diagnose compatibility 15816 // issues. 15817 assert(Ctx.getLangOpts().CPlusPlus); 15818 15819 // Build evaluation settings. 15820 Expr::EvalStatus Status; 15821 SmallVector<PartialDiagnosticAt, 8> Diags; 15822 Status.Diag = &Diags; 15823 EvalInfo Info(Ctx, Status, EvalInfo::EM_ConstantExpression); 15824 15825 APValue Scratch; 15826 bool IsConstExpr = 15827 ::EvaluateAsRValue(Info, this, Result ? *Result : Scratch) && 15828 // FIXME: We don't produce a diagnostic for this, but the callers that 15829 // call us on arbitrary full-expressions should generally not care. 15830 Info.discardCleanups() && !Status.HasSideEffects; 15831 15832 if (!Diags.empty()) { 15833 IsConstExpr = false; 15834 if (Loc) *Loc = Diags[0].first; 15835 } else if (!IsConstExpr) { 15836 // FIXME: This shouldn't happen. 15837 if (Loc) *Loc = getExprLoc(); 15838 } 15839 15840 return IsConstExpr; 15841 } 15842 15843 bool Expr::EvaluateWithSubstitution(APValue &Value, ASTContext &Ctx, 15844 const FunctionDecl *Callee, 15845 ArrayRef<const Expr*> Args, 15846 const Expr *This) const { 15847 assert(!isValueDependent() && 15848 "Expression evaluator can't be called on a dependent expression."); 15849 15850 Expr::EvalStatus Status; 15851 EvalInfo Info(Ctx, Status, EvalInfo::EM_ConstantExpressionUnevaluated); 15852 Info.InConstantContext = true; 15853 15854 LValue ThisVal; 15855 const LValue *ThisPtr = nullptr; 15856 if (This) { 15857 #ifndef NDEBUG 15858 auto *MD = dyn_cast<CXXMethodDecl>(Callee); 15859 assert(MD && "Don't provide `this` for non-methods."); 15860 assert(!MD->isStatic() && "Don't provide `this` for static methods."); 15861 #endif 15862 if (!This->isValueDependent() && 15863 EvaluateObjectArgument(Info, This, ThisVal) && 15864 !Info.EvalStatus.HasSideEffects) 15865 ThisPtr = &ThisVal; 15866 15867 // Ignore any side-effects from a failed evaluation. This is safe because 15868 // they can't interfere with any other argument evaluation. 15869 Info.EvalStatus.HasSideEffects = false; 15870 } 15871 15872 CallRef Call = Info.CurrentCall->createCall(Callee); 15873 for (ArrayRef<const Expr*>::iterator I = Args.begin(), E = Args.end(); 15874 I != E; ++I) { 15875 unsigned Idx = I - Args.begin(); 15876 if (Idx >= Callee->getNumParams()) 15877 break; 15878 const ParmVarDecl *PVD = Callee->getParamDecl(Idx); 15879 if ((*I)->isValueDependent() || 15880 !EvaluateCallArg(PVD, *I, Call, Info) || 15881 Info.EvalStatus.HasSideEffects) { 15882 // If evaluation fails, throw away the argument entirely. 15883 if (APValue *Slot = Info.getParamSlot(Call, PVD)) 15884 *Slot = APValue(); 15885 } 15886 15887 // Ignore any side-effects from a failed evaluation. This is safe because 15888 // they can't interfere with any other argument evaluation. 15889 Info.EvalStatus.HasSideEffects = false; 15890 } 15891 15892 // Parameter cleanups happen in the caller and are not part of this 15893 // evaluation. 15894 Info.discardCleanups(); 15895 Info.EvalStatus.HasSideEffects = false; 15896 15897 // Build fake call to Callee. 15898 CallStackFrame Frame(Info, Callee->getLocation(), Callee, ThisPtr, Call); 15899 // FIXME: Missing ExprWithCleanups in enable_if conditions? 15900 FullExpressionRAII Scope(Info); 15901 return Evaluate(Value, Info, this) && Scope.destroy() && 15902 !Info.EvalStatus.HasSideEffects; 15903 } 15904 15905 bool Expr::isPotentialConstantExpr(const FunctionDecl *FD, 15906 SmallVectorImpl< 15907 PartialDiagnosticAt> &Diags) { 15908 // FIXME: It would be useful to check constexpr function templates, but at the 15909 // moment the constant expression evaluator cannot cope with the non-rigorous 15910 // ASTs which we build for dependent expressions. 15911 if (FD->isDependentContext()) 15912 return true; 15913 15914 Expr::EvalStatus Status; 15915 Status.Diag = &Diags; 15916 15917 EvalInfo Info(FD->getASTContext(), Status, EvalInfo::EM_ConstantExpression); 15918 Info.InConstantContext = true; 15919 Info.CheckingPotentialConstantExpression = true; 15920 15921 // The constexpr VM attempts to compile all methods to bytecode here. 15922 if (Info.EnableNewConstInterp) { 15923 Info.Ctx.getInterpContext().isPotentialConstantExpr(Info, FD); 15924 return Diags.empty(); 15925 } 15926 15927 const CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(FD); 15928 const CXXRecordDecl *RD = MD ? MD->getParent()->getCanonicalDecl() : nullptr; 15929 15930 // Fabricate an arbitrary expression on the stack and pretend that it 15931 // is a temporary being used as the 'this' pointer. 15932 LValue This; 15933 ImplicitValueInitExpr VIE(RD ? Info.Ctx.getRecordType(RD) : Info.Ctx.IntTy); 15934 This.set({&VIE, Info.CurrentCall->Index}); 15935 15936 ArrayRef<const Expr*> Args; 15937 15938 APValue Scratch; 15939 if (const CXXConstructorDecl *CD = dyn_cast<CXXConstructorDecl>(FD)) { 15940 // Evaluate the call as a constant initializer, to allow the construction 15941 // of objects of non-literal types. 15942 Info.setEvaluatingDecl(This.getLValueBase(), Scratch); 15943 HandleConstructorCall(&VIE, This, Args, CD, Info, Scratch); 15944 } else { 15945 SourceLocation Loc = FD->getLocation(); 15946 HandleFunctionCall(Loc, FD, (MD && MD->isInstance()) ? &This : nullptr, 15947 Args, CallRef(), FD->getBody(), Info, Scratch, nullptr); 15948 } 15949 15950 return Diags.empty(); 15951 } 15952 15953 bool Expr::isPotentialConstantExprUnevaluated(Expr *E, 15954 const FunctionDecl *FD, 15955 SmallVectorImpl< 15956 PartialDiagnosticAt> &Diags) { 15957 assert(!E->isValueDependent() && 15958 "Expression evaluator can't be called on a dependent expression."); 15959 15960 Expr::EvalStatus Status; 15961 Status.Diag = &Diags; 15962 15963 EvalInfo Info(FD->getASTContext(), Status, 15964 EvalInfo::EM_ConstantExpressionUnevaluated); 15965 Info.InConstantContext = true; 15966 Info.CheckingPotentialConstantExpression = true; 15967 15968 // Fabricate a call stack frame to give the arguments a plausible cover story. 15969 CallStackFrame Frame(Info, SourceLocation(), FD, /*This*/ nullptr, CallRef()); 15970 15971 APValue ResultScratch; 15972 Evaluate(ResultScratch, Info, E); 15973 return Diags.empty(); 15974 } 15975 15976 bool Expr::tryEvaluateObjectSize(uint64_t &Result, ASTContext &Ctx, 15977 unsigned Type) const { 15978 if (!getType()->isPointerType()) 15979 return false; 15980 15981 Expr::EvalStatus Status; 15982 EvalInfo Info(Ctx, Status, EvalInfo::EM_ConstantFold); 15983 return tryEvaluateBuiltinObjectSize(this, Type, Info, Result); 15984 } 15985 15986 static bool EvaluateBuiltinStrLen(const Expr *E, uint64_t &Result, 15987 EvalInfo &Info) { 15988 if (!E->getType()->hasPointerRepresentation() || !E->isPRValue()) 15989 return false; 15990 15991 LValue String; 15992 15993 if (!EvaluatePointer(E, String, Info)) 15994 return false; 15995 15996 QualType CharTy = E->getType()->getPointeeType(); 15997 15998 // Fast path: if it's a string literal, search the string value. 15999 if (const StringLiteral *S = dyn_cast_or_null<StringLiteral>( 16000 String.getLValueBase().dyn_cast<const Expr *>())) { 16001 StringRef Str = S->getBytes(); 16002 int64_t Off = String.Offset.getQuantity(); 16003 if (Off >= 0 && (uint64_t)Off <= (uint64_t)Str.size() && 16004 S->getCharByteWidth() == 1 && 16005 // FIXME: Add fast-path for wchar_t too. 16006 Info.Ctx.hasSameUnqualifiedType(CharTy, Info.Ctx.CharTy)) { 16007 Str = Str.substr(Off); 16008 16009 StringRef::size_type Pos = Str.find(0); 16010 if (Pos != StringRef::npos) 16011 Str = Str.substr(0, Pos); 16012 16013 Result = Str.size(); 16014 return true; 16015 } 16016 16017 // Fall through to slow path. 16018 } 16019 16020 // Slow path: scan the bytes of the string looking for the terminating 0. 16021 for (uint64_t Strlen = 0; /**/; ++Strlen) { 16022 APValue Char; 16023 if (!handleLValueToRValueConversion(Info, E, CharTy, String, Char) || 16024 !Char.isInt()) 16025 return false; 16026 if (!Char.getInt()) { 16027 Result = Strlen; 16028 return true; 16029 } 16030 if (!HandleLValueArrayAdjustment(Info, E, String, CharTy, 1)) 16031 return false; 16032 } 16033 } 16034 16035 bool Expr::tryEvaluateStrLen(uint64_t &Result, ASTContext &Ctx) const { 16036 Expr::EvalStatus Status; 16037 EvalInfo Info(Ctx, Status, EvalInfo::EM_ConstantFold); 16038 return EvaluateBuiltinStrLen(this, Result, Info); 16039 } 16040