1 //===--- Compiler.cpp - Code generator for expressions ---*- C++ -*-===// 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 #include "Compiler.h" 10 #include "ByteCodeEmitter.h" 11 #include "Context.h" 12 #include "FixedPoint.h" 13 #include "Floating.h" 14 #include "Function.h" 15 #include "InterpShared.h" 16 #include "PrimType.h" 17 #include "Program.h" 18 #include "clang/AST/Attr.h" 19 20 using namespace clang; 21 using namespace clang::interp; 22 23 using APSInt = llvm::APSInt; 24 25 namespace clang { 26 namespace interp { 27 28 static std::optional<bool> getBoolValue(const Expr *E) { 29 if (const auto *CE = dyn_cast_if_present<ConstantExpr>(E); 30 CE && CE->hasAPValueResult() && 31 CE->getResultAPValueKind() == APValue::ValueKind::Int) { 32 return CE->getResultAsAPSInt().getBoolValue(); 33 } 34 35 return std::nullopt; 36 } 37 38 /// Scope used to handle temporaries in toplevel variable declarations. 39 template <class Emitter> class DeclScope final : public LocalScope<Emitter> { 40 public: 41 DeclScope(Compiler<Emitter> *Ctx, const ValueDecl *VD) 42 : LocalScope<Emitter>(Ctx, VD), Scope(Ctx->P), 43 OldInitializingDecl(Ctx->InitializingDecl) { 44 Ctx->InitializingDecl = VD; 45 Ctx->InitStack.push_back(InitLink::Decl(VD)); 46 } 47 48 ~DeclScope() { 49 this->Ctx->InitializingDecl = OldInitializingDecl; 50 this->Ctx->InitStack.pop_back(); 51 } 52 53 private: 54 Program::DeclScope Scope; 55 const ValueDecl *OldInitializingDecl; 56 }; 57 58 /// Scope used to handle initialization methods. 59 template <class Emitter> class OptionScope final { 60 public: 61 /// Root constructor, compiling or discarding primitives. 62 OptionScope(Compiler<Emitter> *Ctx, bool NewDiscardResult, 63 bool NewInitializing) 64 : Ctx(Ctx), OldDiscardResult(Ctx->DiscardResult), 65 OldInitializing(Ctx->Initializing) { 66 Ctx->DiscardResult = NewDiscardResult; 67 Ctx->Initializing = NewInitializing; 68 } 69 70 ~OptionScope() { 71 Ctx->DiscardResult = OldDiscardResult; 72 Ctx->Initializing = OldInitializing; 73 } 74 75 private: 76 /// Parent context. 77 Compiler<Emitter> *Ctx; 78 /// Old discard flag to restore. 79 bool OldDiscardResult; 80 bool OldInitializing; 81 }; 82 83 template <class Emitter> 84 bool InitLink::emit(Compiler<Emitter> *Ctx, const Expr *E) const { 85 switch (Kind) { 86 case K_This: 87 return Ctx->emitThis(E); 88 case K_Field: 89 // We're assuming there's a base pointer on the stack already. 90 return Ctx->emitGetPtrFieldPop(Offset, E); 91 case K_Temp: 92 return Ctx->emitGetPtrLocal(Offset, E); 93 case K_Decl: 94 return Ctx->visitDeclRef(D, E); 95 case K_Elem: 96 if (!Ctx->emitConstUint32(Offset, E)) 97 return false; 98 return Ctx->emitArrayElemPtrPopUint32(E); 99 case K_RVO: 100 return Ctx->emitRVOPtr(E); 101 case K_InitList: 102 return true; 103 default: 104 llvm_unreachable("Unhandled InitLink kind"); 105 } 106 return true; 107 } 108 109 /// Scope managing label targets. 110 template <class Emitter> class LabelScope { 111 public: 112 virtual ~LabelScope() {} 113 114 protected: 115 LabelScope(Compiler<Emitter> *Ctx) : Ctx(Ctx) {} 116 /// Compiler instance. 117 Compiler<Emitter> *Ctx; 118 }; 119 120 /// Sets the context for break/continue statements. 121 template <class Emitter> class LoopScope final : public LabelScope<Emitter> { 122 public: 123 using LabelTy = typename Compiler<Emitter>::LabelTy; 124 using OptLabelTy = typename Compiler<Emitter>::OptLabelTy; 125 126 LoopScope(Compiler<Emitter> *Ctx, LabelTy BreakLabel, LabelTy ContinueLabel) 127 : LabelScope<Emitter>(Ctx), OldBreakLabel(Ctx->BreakLabel), 128 OldContinueLabel(Ctx->ContinueLabel), 129 OldBreakVarScope(Ctx->BreakVarScope), 130 OldContinueVarScope(Ctx->ContinueVarScope) { 131 this->Ctx->BreakLabel = BreakLabel; 132 this->Ctx->ContinueLabel = ContinueLabel; 133 this->Ctx->BreakVarScope = this->Ctx->VarScope; 134 this->Ctx->ContinueVarScope = this->Ctx->VarScope; 135 } 136 137 ~LoopScope() { 138 this->Ctx->BreakLabel = OldBreakLabel; 139 this->Ctx->ContinueLabel = OldContinueLabel; 140 this->Ctx->ContinueVarScope = OldContinueVarScope; 141 this->Ctx->BreakVarScope = OldBreakVarScope; 142 } 143 144 private: 145 OptLabelTy OldBreakLabel; 146 OptLabelTy OldContinueLabel; 147 VariableScope<Emitter> *OldBreakVarScope; 148 VariableScope<Emitter> *OldContinueVarScope; 149 }; 150 151 // Sets the context for a switch scope, mapping labels. 152 template <class Emitter> class SwitchScope final : public LabelScope<Emitter> { 153 public: 154 using LabelTy = typename Compiler<Emitter>::LabelTy; 155 using OptLabelTy = typename Compiler<Emitter>::OptLabelTy; 156 using CaseMap = typename Compiler<Emitter>::CaseMap; 157 158 SwitchScope(Compiler<Emitter> *Ctx, CaseMap &&CaseLabels, LabelTy BreakLabel, 159 OptLabelTy DefaultLabel) 160 : LabelScope<Emitter>(Ctx), OldBreakLabel(Ctx->BreakLabel), 161 OldDefaultLabel(this->Ctx->DefaultLabel), 162 OldCaseLabels(std::move(this->Ctx->CaseLabels)), 163 OldLabelVarScope(Ctx->BreakVarScope) { 164 this->Ctx->BreakLabel = BreakLabel; 165 this->Ctx->DefaultLabel = DefaultLabel; 166 this->Ctx->CaseLabels = std::move(CaseLabels); 167 this->Ctx->BreakVarScope = this->Ctx->VarScope; 168 } 169 170 ~SwitchScope() { 171 this->Ctx->BreakLabel = OldBreakLabel; 172 this->Ctx->DefaultLabel = OldDefaultLabel; 173 this->Ctx->CaseLabels = std::move(OldCaseLabels); 174 this->Ctx->BreakVarScope = OldLabelVarScope; 175 } 176 177 private: 178 OptLabelTy OldBreakLabel; 179 OptLabelTy OldDefaultLabel; 180 CaseMap OldCaseLabels; 181 VariableScope<Emitter> *OldLabelVarScope; 182 }; 183 184 template <class Emitter> class StmtExprScope final { 185 public: 186 StmtExprScope(Compiler<Emitter> *Ctx) : Ctx(Ctx), OldFlag(Ctx->InStmtExpr) { 187 Ctx->InStmtExpr = true; 188 } 189 190 ~StmtExprScope() { Ctx->InStmtExpr = OldFlag; } 191 192 private: 193 Compiler<Emitter> *Ctx; 194 bool OldFlag; 195 }; 196 197 } // namespace interp 198 } // namespace clang 199 200 template <class Emitter> 201 bool Compiler<Emitter>::VisitCastExpr(const CastExpr *CE) { 202 const Expr *SubExpr = CE->getSubExpr(); 203 204 if (DiscardResult) 205 return this->delegate(SubExpr); 206 207 switch (CE->getCastKind()) { 208 case CK_LValueToRValue: { 209 if (SubExpr->getType().isVolatileQualified()) 210 return this->emitInvalidCast(CastKind::Volatile, /*Fatal=*/true, CE); 211 212 std::optional<PrimType> SubExprT = classify(SubExpr->getType()); 213 // Prepare storage for the result. 214 if (!Initializing && !SubExprT) { 215 std::optional<unsigned> LocalIndex = allocateLocal(SubExpr); 216 if (!LocalIndex) 217 return false; 218 if (!this->emitGetPtrLocal(*LocalIndex, CE)) 219 return false; 220 } 221 222 if (!this->visit(SubExpr)) 223 return false; 224 225 if (SubExprT) 226 return this->emitLoadPop(*SubExprT, CE); 227 228 // If the subexpr type is not primitive, we need to perform a copy here. 229 // This happens for example in C when dereferencing a pointer of struct 230 // type. 231 return this->emitMemcpy(CE); 232 } 233 234 case CK_DerivedToBaseMemberPointer: { 235 assert(classifyPrim(CE->getType()) == PT_MemberPtr); 236 assert(classifyPrim(SubExpr->getType()) == PT_MemberPtr); 237 const auto *FromMP = SubExpr->getType()->castAs<MemberPointerType>(); 238 const auto *ToMP = CE->getType()->castAs<MemberPointerType>(); 239 240 unsigned DerivedOffset = 241 Ctx.collectBaseOffset(ToMP->getMostRecentCXXRecordDecl(), 242 FromMP->getMostRecentCXXRecordDecl()); 243 244 if (!this->delegate(SubExpr)) 245 return false; 246 247 return this->emitGetMemberPtrBasePop(DerivedOffset, CE); 248 } 249 250 case CK_BaseToDerivedMemberPointer: { 251 assert(classifyPrim(CE) == PT_MemberPtr); 252 assert(classifyPrim(SubExpr) == PT_MemberPtr); 253 const auto *FromMP = SubExpr->getType()->castAs<MemberPointerType>(); 254 const auto *ToMP = CE->getType()->castAs<MemberPointerType>(); 255 256 unsigned DerivedOffset = 257 Ctx.collectBaseOffset(FromMP->getMostRecentCXXRecordDecl(), 258 ToMP->getMostRecentCXXRecordDecl()); 259 260 if (!this->delegate(SubExpr)) 261 return false; 262 return this->emitGetMemberPtrBasePop(-DerivedOffset, CE); 263 } 264 265 case CK_UncheckedDerivedToBase: 266 case CK_DerivedToBase: { 267 if (!this->delegate(SubExpr)) 268 return false; 269 270 const auto extractRecordDecl = [](QualType Ty) -> const CXXRecordDecl * { 271 if (const auto *PT = dyn_cast<PointerType>(Ty)) 272 return PT->getPointeeType()->getAsCXXRecordDecl(); 273 return Ty->getAsCXXRecordDecl(); 274 }; 275 276 // FIXME: We can express a series of non-virtual casts as a single 277 // GetPtrBasePop op. 278 QualType CurType = SubExpr->getType(); 279 for (const CXXBaseSpecifier *B : CE->path()) { 280 if (B->isVirtual()) { 281 if (!this->emitGetPtrVirtBasePop(extractRecordDecl(B->getType()), CE)) 282 return false; 283 CurType = B->getType(); 284 } else { 285 unsigned DerivedOffset = collectBaseOffset(B->getType(), CurType); 286 if (!this->emitGetPtrBasePop( 287 DerivedOffset, /*NullOK=*/CE->getType()->isPointerType(), CE)) 288 return false; 289 CurType = B->getType(); 290 } 291 } 292 293 return true; 294 } 295 296 case CK_BaseToDerived: { 297 if (!this->delegate(SubExpr)) 298 return false; 299 unsigned DerivedOffset = 300 collectBaseOffset(SubExpr->getType(), CE->getType()); 301 302 const Type *TargetType = CE->getType().getTypePtr(); 303 if (TargetType->isPointerOrReferenceType()) 304 TargetType = TargetType->getPointeeType().getTypePtr(); 305 return this->emitGetPtrDerivedPop(DerivedOffset, 306 /*NullOK=*/CE->getType()->isPointerType(), 307 TargetType, CE); 308 } 309 310 case CK_FloatingCast: { 311 // HLSL uses CK_FloatingCast to cast between vectors. 312 if (!SubExpr->getType()->isFloatingType() || 313 !CE->getType()->isFloatingType()) 314 return false; 315 if (!this->visit(SubExpr)) 316 return false; 317 const auto *TargetSemantics = &Ctx.getFloatSemantics(CE->getType()); 318 return this->emitCastFP(TargetSemantics, getRoundingMode(CE), CE); 319 } 320 321 case CK_IntegralToFloating: { 322 if (!CE->getType()->isRealFloatingType()) 323 return false; 324 if (!this->visit(SubExpr)) 325 return false; 326 const auto *TargetSemantics = &Ctx.getFloatSemantics(CE->getType()); 327 return this->emitCastIntegralFloating( 328 classifyPrim(SubExpr), TargetSemantics, getFPOptions(CE), CE); 329 } 330 331 case CK_FloatingToBoolean: { 332 if (!SubExpr->getType()->isRealFloatingType() || 333 !CE->getType()->isBooleanType()) 334 return false; 335 if (const auto *FL = dyn_cast<FloatingLiteral>(SubExpr)) 336 return this->emitConstBool(FL->getValue().isNonZero(), CE); 337 if (!this->visit(SubExpr)) 338 return false; 339 return this->emitCastFloatingIntegralBool(getFPOptions(CE), CE); 340 } 341 342 case CK_FloatingToIntegral: { 343 if (!this->visit(SubExpr)) 344 return false; 345 PrimType ToT = classifyPrim(CE); 346 if (ToT == PT_IntAP) 347 return this->emitCastFloatingIntegralAP(Ctx.getBitWidth(CE->getType()), 348 getFPOptions(CE), CE); 349 if (ToT == PT_IntAPS) 350 return this->emitCastFloatingIntegralAPS(Ctx.getBitWidth(CE->getType()), 351 getFPOptions(CE), CE); 352 353 return this->emitCastFloatingIntegral(ToT, getFPOptions(CE), CE); 354 } 355 356 case CK_NullToPointer: 357 case CK_NullToMemberPointer: { 358 if (!this->discard(SubExpr)) 359 return false; 360 const Descriptor *Desc = nullptr; 361 const QualType PointeeType = CE->getType()->getPointeeType(); 362 if (!PointeeType.isNull()) { 363 if (std::optional<PrimType> T = classify(PointeeType)) 364 Desc = P.createDescriptor(SubExpr, *T); 365 else 366 Desc = P.createDescriptor(SubExpr, PointeeType.getTypePtr(), 367 std::nullopt, /*IsConst=*/true); 368 } 369 370 uint64_t Val = Ctx.getASTContext().getTargetNullPointerValue(CE->getType()); 371 return this->emitNull(classifyPrim(CE->getType()), Val, Desc, CE); 372 } 373 374 case CK_PointerToIntegral: { 375 if (!this->visit(SubExpr)) 376 return false; 377 378 // If SubExpr doesn't result in a pointer, make it one. 379 if (PrimType FromT = classifyPrim(SubExpr->getType()); FromT != PT_Ptr) { 380 assert(isPtrType(FromT)); 381 if (!this->emitDecayPtr(FromT, PT_Ptr, CE)) 382 return false; 383 } 384 385 PrimType T = classifyPrim(CE->getType()); 386 if (T == PT_IntAP) 387 return this->emitCastPointerIntegralAP(Ctx.getBitWidth(CE->getType()), 388 CE); 389 if (T == PT_IntAPS) 390 return this->emitCastPointerIntegralAPS(Ctx.getBitWidth(CE->getType()), 391 CE); 392 return this->emitCastPointerIntegral(T, CE); 393 } 394 395 case CK_ArrayToPointerDecay: { 396 if (!this->visit(SubExpr)) 397 return false; 398 return this->emitArrayDecay(CE); 399 } 400 401 case CK_IntegralToPointer: { 402 QualType IntType = SubExpr->getType(); 403 assert(IntType->isIntegralOrEnumerationType()); 404 if (!this->visit(SubExpr)) 405 return false; 406 // FIXME: I think the discard is wrong since the int->ptr cast might cause a 407 // diagnostic. 408 PrimType T = classifyPrim(IntType); 409 QualType PtrType = CE->getType(); 410 const Descriptor *Desc; 411 if (std::optional<PrimType> T = classify(PtrType->getPointeeType())) 412 Desc = P.createDescriptor(SubExpr, *T); 413 else if (PtrType->getPointeeType()->isVoidType()) 414 Desc = nullptr; 415 else 416 Desc = P.createDescriptor(CE, PtrType->getPointeeType().getTypePtr(), 417 Descriptor::InlineDescMD, /*IsConst=*/true); 418 419 if (!this->emitGetIntPtr(T, Desc, CE)) 420 return false; 421 422 PrimType DestPtrT = classifyPrim(PtrType); 423 if (DestPtrT == PT_Ptr) 424 return true; 425 426 // In case we're converting the integer to a non-Pointer. 427 return this->emitDecayPtr(PT_Ptr, DestPtrT, CE); 428 } 429 430 case CK_AtomicToNonAtomic: 431 case CK_ConstructorConversion: 432 case CK_FunctionToPointerDecay: 433 case CK_NonAtomicToAtomic: 434 case CK_NoOp: 435 case CK_UserDefinedConversion: 436 case CK_AddressSpaceConversion: 437 case CK_CPointerToObjCPointerCast: 438 return this->delegate(SubExpr); 439 440 case CK_BitCast: { 441 // Reject bitcasts to atomic types. 442 if (CE->getType()->isAtomicType()) { 443 if (!this->discard(SubExpr)) 444 return false; 445 return this->emitInvalidCast(CastKind::Reinterpret, /*Fatal=*/true, CE); 446 } 447 QualType SubExprTy = SubExpr->getType(); 448 std::optional<PrimType> FromT = classify(SubExprTy); 449 // Casts from integer/vector to vector. 450 if (CE->getType()->isVectorType()) 451 return this->emitBuiltinBitCast(CE); 452 453 std::optional<PrimType> ToT = classify(CE->getType()); 454 if (!FromT || !ToT) 455 return false; 456 457 assert(isPtrType(*FromT)); 458 assert(isPtrType(*ToT)); 459 if (FromT == ToT) { 460 if (CE->getType()->isVoidPointerType()) 461 return this->delegate(SubExpr); 462 463 if (!this->visit(SubExpr)) 464 return false; 465 if (CE->getType()->isFunctionPointerType()) 466 return true; 467 if (FromT == PT_Ptr) 468 return this->emitPtrPtrCast(SubExprTy->isVoidPointerType(), CE); 469 return true; 470 } 471 472 if (!this->visit(SubExpr)) 473 return false; 474 return this->emitDecayPtr(*FromT, *ToT, CE); 475 } 476 case CK_IntegralToBoolean: 477 case CK_FixedPointToBoolean: { 478 // HLSL uses this to cast to one-element vectors. 479 std::optional<PrimType> FromT = classify(SubExpr->getType()); 480 if (!FromT) 481 return false; 482 483 if (const auto *IL = dyn_cast<IntegerLiteral>(SubExpr)) 484 return this->emitConst(IL->getValue(), CE); 485 if (!this->visit(SubExpr)) 486 return false; 487 return this->emitCast(*FromT, classifyPrim(CE), CE); 488 } 489 490 case CK_BooleanToSignedIntegral: 491 case CK_IntegralCast: { 492 std::optional<PrimType> FromT = classify(SubExpr->getType()); 493 std::optional<PrimType> ToT = classify(CE->getType()); 494 if (!FromT || !ToT) 495 return false; 496 497 // Try to emit a casted known constant value directly. 498 if (const auto *IL = dyn_cast<IntegerLiteral>(SubExpr)) { 499 if (ToT != PT_IntAP && ToT != PT_IntAPS && FromT != PT_IntAP && 500 FromT != PT_IntAPS && !CE->getType()->isEnumeralType()) 501 return this->emitConst(IL->getValue(), CE); 502 if (!this->emitConst(IL->getValue(), SubExpr)) 503 return false; 504 } else { 505 if (!this->visit(SubExpr)) 506 return false; 507 } 508 509 // Possibly diagnose casts to enum types if the target type does not 510 // have a fixed size. 511 if (Ctx.getLangOpts().CPlusPlus && CE->getType()->isEnumeralType()) { 512 if (const auto *ET = CE->getType().getCanonicalType()->castAs<EnumType>(); 513 !ET->getDecl()->isFixed()) { 514 if (!this->emitCheckEnumValue(*FromT, ET->getDecl(), CE)) 515 return false; 516 } 517 } 518 519 if (ToT == PT_IntAP) { 520 if (!this->emitCastAP(*FromT, Ctx.getBitWidth(CE->getType()), CE)) 521 return false; 522 } else if (ToT == PT_IntAPS) { 523 if (!this->emitCastAPS(*FromT, Ctx.getBitWidth(CE->getType()), CE)) 524 return false; 525 } else { 526 if (FromT == ToT) 527 return true; 528 if (!this->emitCast(*FromT, *ToT, CE)) 529 return false; 530 } 531 if (CE->getCastKind() == CK_BooleanToSignedIntegral) 532 return this->emitNeg(*ToT, CE); 533 return true; 534 } 535 536 case CK_PointerToBoolean: 537 case CK_MemberPointerToBoolean: { 538 PrimType PtrT = classifyPrim(SubExpr->getType()); 539 540 if (!this->visit(SubExpr)) 541 return false; 542 return this->emitIsNonNull(PtrT, CE); 543 } 544 545 case CK_IntegralComplexToBoolean: 546 case CK_FloatingComplexToBoolean: { 547 if (!this->visit(SubExpr)) 548 return false; 549 return this->emitComplexBoolCast(SubExpr); 550 } 551 552 case CK_IntegralComplexToReal: 553 case CK_FloatingComplexToReal: 554 return this->emitComplexReal(SubExpr); 555 556 case CK_IntegralRealToComplex: 557 case CK_FloatingRealToComplex: { 558 // We're creating a complex value here, so we need to 559 // allocate storage for it. 560 if (!Initializing) { 561 std::optional<unsigned> LocalIndex = allocateTemporary(CE); 562 if (!LocalIndex) 563 return false; 564 if (!this->emitGetPtrLocal(*LocalIndex, CE)) 565 return false; 566 } 567 568 PrimType T = classifyPrim(SubExpr->getType()); 569 // Init the complex value to {SubExpr, 0}. 570 if (!this->visitArrayElemInit(0, SubExpr, T)) 571 return false; 572 // Zero-init the second element. 573 if (!this->visitZeroInitializer(T, SubExpr->getType(), SubExpr)) 574 return false; 575 return this->emitInitElem(T, 1, SubExpr); 576 } 577 578 case CK_IntegralComplexCast: 579 case CK_FloatingComplexCast: 580 case CK_IntegralComplexToFloatingComplex: 581 case CK_FloatingComplexToIntegralComplex: { 582 assert(CE->getType()->isAnyComplexType()); 583 assert(SubExpr->getType()->isAnyComplexType()); 584 if (!Initializing) { 585 std::optional<unsigned> LocalIndex = allocateLocal(CE); 586 if (!LocalIndex) 587 return false; 588 if (!this->emitGetPtrLocal(*LocalIndex, CE)) 589 return false; 590 } 591 592 // Location for the SubExpr. 593 // Since SubExpr is of complex type, visiting it results in a pointer 594 // anyway, so we just create a temporary pointer variable. 595 unsigned SubExprOffset = 596 allocateLocalPrimitive(SubExpr, PT_Ptr, /*IsConst=*/true); 597 if (!this->visit(SubExpr)) 598 return false; 599 if (!this->emitSetLocal(PT_Ptr, SubExprOffset, CE)) 600 return false; 601 602 PrimType SourceElemT = classifyComplexElementType(SubExpr->getType()); 603 QualType DestElemType = 604 CE->getType()->getAs<ComplexType>()->getElementType(); 605 PrimType DestElemT = classifyPrim(DestElemType); 606 // Cast both elements individually. 607 for (unsigned I = 0; I != 2; ++I) { 608 if (!this->emitGetLocal(PT_Ptr, SubExprOffset, CE)) 609 return false; 610 if (!this->emitArrayElemPop(SourceElemT, I, CE)) 611 return false; 612 613 // Do the cast. 614 if (!this->emitPrimCast(SourceElemT, DestElemT, DestElemType, CE)) 615 return false; 616 617 // Save the value. 618 if (!this->emitInitElem(DestElemT, I, CE)) 619 return false; 620 } 621 return true; 622 } 623 624 case CK_VectorSplat: { 625 assert(!classify(CE->getType())); 626 assert(classify(SubExpr->getType())); 627 assert(CE->getType()->isVectorType()); 628 629 if (!Initializing) { 630 std::optional<unsigned> LocalIndex = allocateLocal(CE); 631 if (!LocalIndex) 632 return false; 633 if (!this->emitGetPtrLocal(*LocalIndex, CE)) 634 return false; 635 } 636 637 const auto *VT = CE->getType()->getAs<VectorType>(); 638 PrimType ElemT = classifyPrim(SubExpr->getType()); 639 unsigned ElemOffset = 640 allocateLocalPrimitive(SubExpr, ElemT, /*IsConst=*/true); 641 642 // Prepare a local variable for the scalar value. 643 if (!this->visit(SubExpr)) 644 return false; 645 if (classifyPrim(SubExpr) == PT_Ptr && !this->emitLoadPop(ElemT, CE)) 646 return false; 647 648 if (!this->emitSetLocal(ElemT, ElemOffset, CE)) 649 return false; 650 651 for (unsigned I = 0; I != VT->getNumElements(); ++I) { 652 if (!this->emitGetLocal(ElemT, ElemOffset, CE)) 653 return false; 654 if (!this->emitInitElem(ElemT, I, CE)) 655 return false; 656 } 657 658 return true; 659 } 660 661 case CK_HLSLVectorTruncation: { 662 assert(SubExpr->getType()->isVectorType()); 663 if (std::optional<PrimType> ResultT = classify(CE)) { 664 assert(!DiscardResult); 665 // Result must be either a float or integer. Take the first element. 666 if (!this->visit(SubExpr)) 667 return false; 668 return this->emitArrayElemPop(*ResultT, 0, CE); 669 } 670 // Otherwise, this truncates from one vector type to another. 671 assert(CE->getType()->isVectorType()); 672 673 if (!Initializing) { 674 std::optional<unsigned> LocalIndex = allocateTemporary(CE); 675 if (!LocalIndex) 676 return false; 677 if (!this->emitGetPtrLocal(*LocalIndex, CE)) 678 return false; 679 } 680 unsigned ToSize = CE->getType()->getAs<VectorType>()->getNumElements(); 681 assert(SubExpr->getType()->getAs<VectorType>()->getNumElements() > ToSize); 682 if (!this->visit(SubExpr)) 683 return false; 684 return this->emitCopyArray(classifyVectorElementType(CE->getType()), 0, 0, 685 ToSize, CE); 686 }; 687 688 case CK_IntegralToFixedPoint: { 689 if (!this->visit(SubExpr)) 690 return false; 691 692 auto Sem = 693 Ctx.getASTContext().getFixedPointSemantics(CE->getType()).toOpaqueInt(); 694 return this->emitCastIntegralFixedPoint(classifyPrim(SubExpr->getType()), 695 Sem, CE); 696 } 697 case CK_FloatingToFixedPoint: { 698 if (!this->visit(SubExpr)) 699 return false; 700 701 auto Sem = 702 Ctx.getASTContext().getFixedPointSemantics(CE->getType()).toOpaqueInt(); 703 return this->emitCastFloatingFixedPoint(Sem, CE); 704 } 705 case CK_FixedPointToFloating: { 706 if (!this->visit(SubExpr)) 707 return false; 708 const auto *TargetSemantics = &Ctx.getFloatSemantics(CE->getType()); 709 return this->emitCastFixedPointFloating(TargetSemantics, CE); 710 } 711 case CK_FixedPointToIntegral: { 712 if (!this->visit(SubExpr)) 713 return false; 714 return this->emitCastFixedPointIntegral(classifyPrim(CE->getType()), CE); 715 } 716 case CK_FixedPointCast: { 717 if (!this->visit(SubExpr)) 718 return false; 719 auto Sem = 720 Ctx.getASTContext().getFixedPointSemantics(CE->getType()).toOpaqueInt(); 721 return this->emitCastFixedPoint(Sem, CE); 722 } 723 724 case CK_ToVoid: 725 return discard(SubExpr); 726 727 default: 728 return this->emitInvalid(CE); 729 } 730 llvm_unreachable("Unhandled clang::CastKind enum"); 731 } 732 733 template <class Emitter> 734 bool Compiler<Emitter>::VisitBuiltinBitCastExpr(const BuiltinBitCastExpr *E) { 735 return this->emitBuiltinBitCast(E); 736 } 737 738 template <class Emitter> 739 bool Compiler<Emitter>::VisitIntegerLiteral(const IntegerLiteral *LE) { 740 if (DiscardResult) 741 return true; 742 743 return this->emitConst(LE->getValue(), LE); 744 } 745 746 template <class Emitter> 747 bool Compiler<Emitter>::VisitFloatingLiteral(const FloatingLiteral *E) { 748 if (DiscardResult) 749 return true; 750 751 APFloat F = E->getValue(); 752 return this->emitFloat(F, E); 753 } 754 755 template <class Emitter> 756 bool Compiler<Emitter>::VisitImaginaryLiteral(const ImaginaryLiteral *E) { 757 assert(E->getType()->isAnyComplexType()); 758 if (DiscardResult) 759 return true; 760 761 if (!Initializing) { 762 std::optional<unsigned> LocalIndex = allocateTemporary(E); 763 if (!LocalIndex) 764 return false; 765 if (!this->emitGetPtrLocal(*LocalIndex, E)) 766 return false; 767 } 768 769 const Expr *SubExpr = E->getSubExpr(); 770 PrimType SubExprT = classifyPrim(SubExpr->getType()); 771 772 if (!this->visitZeroInitializer(SubExprT, SubExpr->getType(), SubExpr)) 773 return false; 774 if (!this->emitInitElem(SubExprT, 0, SubExpr)) 775 return false; 776 return this->visitArrayElemInit(1, SubExpr, SubExprT); 777 } 778 779 template <class Emitter> 780 bool Compiler<Emitter>::VisitFixedPointLiteral(const FixedPointLiteral *E) { 781 assert(E->getType()->isFixedPointType()); 782 assert(classifyPrim(E) == PT_FixedPoint); 783 784 if (DiscardResult) 785 return true; 786 787 auto Sem = Ctx.getASTContext().getFixedPointSemantics(E->getType()); 788 APInt Value = E->getValue(); 789 return this->emitConstFixedPoint(FixedPoint(Value, Sem), E); 790 } 791 792 template <class Emitter> 793 bool Compiler<Emitter>::VisitParenExpr(const ParenExpr *E) { 794 return this->delegate(E->getSubExpr()); 795 } 796 797 template <class Emitter> 798 bool Compiler<Emitter>::VisitBinaryOperator(const BinaryOperator *BO) { 799 // Need short-circuiting for these. 800 if (BO->isLogicalOp() && !BO->getType()->isVectorType()) 801 return this->VisitLogicalBinOp(BO); 802 803 const Expr *LHS = BO->getLHS(); 804 const Expr *RHS = BO->getRHS(); 805 806 // Handle comma operators. Just discard the LHS 807 // and delegate to RHS. 808 if (BO->isCommaOp()) { 809 if (!this->discard(LHS)) 810 return false; 811 if (RHS->getType()->isVoidType()) 812 return this->discard(RHS); 813 814 return this->delegate(RHS); 815 } 816 817 if (BO->getType()->isAnyComplexType()) 818 return this->VisitComplexBinOp(BO); 819 if (BO->getType()->isVectorType()) 820 return this->VisitVectorBinOp(BO); 821 if ((LHS->getType()->isAnyComplexType() || 822 RHS->getType()->isAnyComplexType()) && 823 BO->isComparisonOp()) 824 return this->emitComplexComparison(LHS, RHS, BO); 825 if (LHS->getType()->isFixedPointType() || RHS->getType()->isFixedPointType()) 826 return this->VisitFixedPointBinOp(BO); 827 828 if (BO->isPtrMemOp()) { 829 if (!this->visit(LHS)) 830 return false; 831 832 if (!this->visit(RHS)) 833 return false; 834 835 if (!this->emitToMemberPtr(BO)) 836 return false; 837 838 if (classifyPrim(BO) == PT_MemberPtr) 839 return true; 840 841 if (!this->emitCastMemberPtrPtr(BO)) 842 return false; 843 return DiscardResult ? this->emitPopPtr(BO) : true; 844 } 845 846 // Typecheck the args. 847 std::optional<PrimType> LT = classify(LHS); 848 std::optional<PrimType> RT = classify(RHS); 849 std::optional<PrimType> T = classify(BO->getType()); 850 851 // Special case for C++'s three-way/spaceship operator <=>, which 852 // returns a std::{strong,weak,partial}_ordering (which is a class, so doesn't 853 // have a PrimType). 854 if (!T && BO->getOpcode() == BO_Cmp) { 855 if (DiscardResult) 856 return true; 857 const ComparisonCategoryInfo *CmpInfo = 858 Ctx.getASTContext().CompCategories.lookupInfoForType(BO->getType()); 859 assert(CmpInfo); 860 861 // We need a temporary variable holding our return value. 862 if (!Initializing) { 863 std::optional<unsigned> ResultIndex = this->allocateLocal(BO); 864 if (!this->emitGetPtrLocal(*ResultIndex, BO)) 865 return false; 866 } 867 868 if (!visit(LHS) || !visit(RHS)) 869 return false; 870 871 return this->emitCMP3(*LT, CmpInfo, BO); 872 } 873 874 if (!LT || !RT || !T) 875 return false; 876 877 // Pointer arithmetic special case. 878 if (BO->getOpcode() == BO_Add || BO->getOpcode() == BO_Sub) { 879 if (isPtrType(*T) || (isPtrType(*LT) && isPtrType(*RT))) 880 return this->VisitPointerArithBinOp(BO); 881 } 882 883 // Assignments require us to evalute the RHS first. 884 if (BO->getOpcode() == BO_Assign) { 885 886 if (!visit(RHS) || !visit(LHS)) 887 return false; 888 889 // We don't support assignments in C. 890 if (!Ctx.getLangOpts().CPlusPlus && !this->emitInvalid(BO)) 891 return false; 892 893 if (!this->emitFlip(*LT, *RT, BO)) 894 return false; 895 } else { 896 if (!visit(LHS) || !visit(RHS)) 897 return false; 898 } 899 900 // For languages such as C, cast the result of one 901 // of our comparision opcodes to T (which is usually int). 902 auto MaybeCastToBool = [this, T, BO](bool Result) { 903 if (!Result) 904 return false; 905 if (DiscardResult) 906 return this->emitPop(*T, BO); 907 if (T != PT_Bool) 908 return this->emitCast(PT_Bool, *T, BO); 909 return true; 910 }; 911 912 auto Discard = [this, T, BO](bool Result) { 913 if (!Result) 914 return false; 915 return DiscardResult ? this->emitPop(*T, BO) : true; 916 }; 917 918 switch (BO->getOpcode()) { 919 case BO_EQ: 920 return MaybeCastToBool(this->emitEQ(*LT, BO)); 921 case BO_NE: 922 return MaybeCastToBool(this->emitNE(*LT, BO)); 923 case BO_LT: 924 return MaybeCastToBool(this->emitLT(*LT, BO)); 925 case BO_LE: 926 return MaybeCastToBool(this->emitLE(*LT, BO)); 927 case BO_GT: 928 return MaybeCastToBool(this->emitGT(*LT, BO)); 929 case BO_GE: 930 return MaybeCastToBool(this->emitGE(*LT, BO)); 931 case BO_Sub: 932 if (BO->getType()->isFloatingType()) 933 return Discard(this->emitSubf(getFPOptions(BO), BO)); 934 return Discard(this->emitSub(*T, BO)); 935 case BO_Add: 936 if (BO->getType()->isFloatingType()) 937 return Discard(this->emitAddf(getFPOptions(BO), BO)); 938 return Discard(this->emitAdd(*T, BO)); 939 case BO_Mul: 940 if (BO->getType()->isFloatingType()) 941 return Discard(this->emitMulf(getFPOptions(BO), BO)); 942 return Discard(this->emitMul(*T, BO)); 943 case BO_Rem: 944 return Discard(this->emitRem(*T, BO)); 945 case BO_Div: 946 if (BO->getType()->isFloatingType()) 947 return Discard(this->emitDivf(getFPOptions(BO), BO)); 948 return Discard(this->emitDiv(*T, BO)); 949 case BO_Assign: 950 if (DiscardResult) 951 return LHS->refersToBitField() ? this->emitStoreBitFieldPop(*T, BO) 952 : this->emitStorePop(*T, BO); 953 if (LHS->refersToBitField()) { 954 if (!this->emitStoreBitField(*T, BO)) 955 return false; 956 } else { 957 if (!this->emitStore(*T, BO)) 958 return false; 959 } 960 // Assignments aren't necessarily lvalues in C. 961 // Load from them in that case. 962 if (!BO->isLValue()) 963 return this->emitLoadPop(*T, BO); 964 return true; 965 case BO_And: 966 return Discard(this->emitBitAnd(*T, BO)); 967 case BO_Or: 968 return Discard(this->emitBitOr(*T, BO)); 969 case BO_Shl: 970 return Discard(this->emitShl(*LT, *RT, BO)); 971 case BO_Shr: 972 return Discard(this->emitShr(*LT, *RT, BO)); 973 case BO_Xor: 974 return Discard(this->emitBitXor(*T, BO)); 975 case BO_LOr: 976 case BO_LAnd: 977 llvm_unreachable("Already handled earlier"); 978 default: 979 return false; 980 } 981 982 llvm_unreachable("Unhandled binary op"); 983 } 984 985 /// Perform addition/subtraction of a pointer and an integer or 986 /// subtraction of two pointers. 987 template <class Emitter> 988 bool Compiler<Emitter>::VisitPointerArithBinOp(const BinaryOperator *E) { 989 BinaryOperatorKind Op = E->getOpcode(); 990 const Expr *LHS = E->getLHS(); 991 const Expr *RHS = E->getRHS(); 992 993 if ((Op != BO_Add && Op != BO_Sub) || 994 (!LHS->getType()->isPointerType() && !RHS->getType()->isPointerType())) 995 return false; 996 997 std::optional<PrimType> LT = classify(LHS); 998 std::optional<PrimType> RT = classify(RHS); 999 1000 if (!LT || !RT) 1001 return false; 1002 1003 // Visit the given pointer expression and optionally convert to a PT_Ptr. 1004 auto visitAsPointer = [&](const Expr *E, PrimType T) -> bool { 1005 if (!this->visit(E)) 1006 return false; 1007 if (T != PT_Ptr) 1008 return this->emitDecayPtr(T, PT_Ptr, E); 1009 return true; 1010 }; 1011 1012 if (LHS->getType()->isPointerType() && RHS->getType()->isPointerType()) { 1013 if (Op != BO_Sub) 1014 return false; 1015 1016 assert(E->getType()->isIntegerType()); 1017 if (!visitAsPointer(RHS, *RT) || !visitAsPointer(LHS, *LT)) 1018 return false; 1019 1020 PrimType IntT = classifyPrim(E->getType()); 1021 if (!this->emitSubPtr(IntT, E)) 1022 return false; 1023 return DiscardResult ? this->emitPop(IntT, E) : true; 1024 } 1025 1026 PrimType OffsetType; 1027 if (LHS->getType()->isIntegerType()) { 1028 if (!visitAsPointer(RHS, *RT)) 1029 return false; 1030 if (!this->visit(LHS)) 1031 return false; 1032 OffsetType = *LT; 1033 } else if (RHS->getType()->isIntegerType()) { 1034 if (!visitAsPointer(LHS, *LT)) 1035 return false; 1036 if (!this->visit(RHS)) 1037 return false; 1038 OffsetType = *RT; 1039 } else { 1040 return false; 1041 } 1042 1043 // Do the operation and optionally transform to 1044 // result pointer type. 1045 if (Op == BO_Add) { 1046 if (!this->emitAddOffset(OffsetType, E)) 1047 return false; 1048 1049 if (classifyPrim(E) != PT_Ptr) 1050 return this->emitDecayPtr(PT_Ptr, classifyPrim(E), E); 1051 return true; 1052 } else if (Op == BO_Sub) { 1053 if (!this->emitSubOffset(OffsetType, E)) 1054 return false; 1055 1056 if (classifyPrim(E) != PT_Ptr) 1057 return this->emitDecayPtr(PT_Ptr, classifyPrim(E), E); 1058 return true; 1059 } 1060 1061 return false; 1062 } 1063 1064 template <class Emitter> 1065 bool Compiler<Emitter>::VisitLogicalBinOp(const BinaryOperator *E) { 1066 assert(E->isLogicalOp()); 1067 BinaryOperatorKind Op = E->getOpcode(); 1068 const Expr *LHS = E->getLHS(); 1069 const Expr *RHS = E->getRHS(); 1070 std::optional<PrimType> T = classify(E->getType()); 1071 1072 if (Op == BO_LOr) { 1073 // Logical OR. Visit LHS and only evaluate RHS if LHS was FALSE. 1074 LabelTy LabelTrue = this->getLabel(); 1075 LabelTy LabelEnd = this->getLabel(); 1076 1077 if (!this->visitBool(LHS)) 1078 return false; 1079 if (!this->jumpTrue(LabelTrue)) 1080 return false; 1081 1082 if (!this->visitBool(RHS)) 1083 return false; 1084 if (!this->jump(LabelEnd)) 1085 return false; 1086 1087 this->emitLabel(LabelTrue); 1088 this->emitConstBool(true, E); 1089 this->fallthrough(LabelEnd); 1090 this->emitLabel(LabelEnd); 1091 1092 } else { 1093 assert(Op == BO_LAnd); 1094 // Logical AND. 1095 // Visit LHS. Only visit RHS if LHS was TRUE. 1096 LabelTy LabelFalse = this->getLabel(); 1097 LabelTy LabelEnd = this->getLabel(); 1098 1099 if (!this->visitBool(LHS)) 1100 return false; 1101 if (!this->jumpFalse(LabelFalse)) 1102 return false; 1103 1104 if (!this->visitBool(RHS)) 1105 return false; 1106 if (!this->jump(LabelEnd)) 1107 return false; 1108 1109 this->emitLabel(LabelFalse); 1110 this->emitConstBool(false, E); 1111 this->fallthrough(LabelEnd); 1112 this->emitLabel(LabelEnd); 1113 } 1114 1115 if (DiscardResult) 1116 return this->emitPopBool(E); 1117 1118 // For C, cast back to integer type. 1119 assert(T); 1120 if (T != PT_Bool) 1121 return this->emitCast(PT_Bool, *T, E); 1122 return true; 1123 } 1124 1125 template <class Emitter> 1126 bool Compiler<Emitter>::VisitComplexBinOp(const BinaryOperator *E) { 1127 // Prepare storage for result. 1128 if (!Initializing) { 1129 std::optional<unsigned> LocalIndex = allocateTemporary(E); 1130 if (!LocalIndex) 1131 return false; 1132 if (!this->emitGetPtrLocal(*LocalIndex, E)) 1133 return false; 1134 } 1135 1136 // Both LHS and RHS might _not_ be of complex type, but one of them 1137 // needs to be. 1138 const Expr *LHS = E->getLHS(); 1139 const Expr *RHS = E->getRHS(); 1140 1141 PrimType ResultElemT = this->classifyComplexElementType(E->getType()); 1142 unsigned ResultOffset = ~0u; 1143 if (!DiscardResult) 1144 ResultOffset = this->allocateLocalPrimitive(E, PT_Ptr, /*IsConst=*/true); 1145 1146 // Save result pointer in ResultOffset 1147 if (!this->DiscardResult) { 1148 if (!this->emitDupPtr(E)) 1149 return false; 1150 if (!this->emitSetLocal(PT_Ptr, ResultOffset, E)) 1151 return false; 1152 } 1153 QualType LHSType = LHS->getType(); 1154 if (const auto *AT = LHSType->getAs<AtomicType>()) 1155 LHSType = AT->getValueType(); 1156 QualType RHSType = RHS->getType(); 1157 if (const auto *AT = RHSType->getAs<AtomicType>()) 1158 RHSType = AT->getValueType(); 1159 1160 bool LHSIsComplex = LHSType->isAnyComplexType(); 1161 unsigned LHSOffset; 1162 bool RHSIsComplex = RHSType->isAnyComplexType(); 1163 1164 // For ComplexComplex Mul, we have special ops to make their implementation 1165 // easier. 1166 BinaryOperatorKind Op = E->getOpcode(); 1167 if (Op == BO_Mul && LHSIsComplex && RHSIsComplex) { 1168 assert(classifyPrim(LHSType->getAs<ComplexType>()->getElementType()) == 1169 classifyPrim(RHSType->getAs<ComplexType>()->getElementType())); 1170 PrimType ElemT = 1171 classifyPrim(LHSType->getAs<ComplexType>()->getElementType()); 1172 if (!this->visit(LHS)) 1173 return false; 1174 if (!this->visit(RHS)) 1175 return false; 1176 return this->emitMulc(ElemT, E); 1177 } 1178 1179 if (Op == BO_Div && RHSIsComplex) { 1180 QualType ElemQT = RHSType->getAs<ComplexType>()->getElementType(); 1181 PrimType ElemT = classifyPrim(ElemQT); 1182 // If the LHS is not complex, we still need to do the full complex 1183 // division, so just stub create a complex value and stub it out with 1184 // the LHS and a zero. 1185 1186 if (!LHSIsComplex) { 1187 // This is using the RHS type for the fake-complex LHS. 1188 std::optional<unsigned> LocalIndex = allocateTemporary(RHS); 1189 if (!LocalIndex) 1190 return false; 1191 LHSOffset = *LocalIndex; 1192 1193 if (!this->emitGetPtrLocal(LHSOffset, E)) 1194 return false; 1195 1196 if (!this->visit(LHS)) 1197 return false; 1198 // real is LHS 1199 if (!this->emitInitElem(ElemT, 0, E)) 1200 return false; 1201 // imag is zero 1202 if (!this->visitZeroInitializer(ElemT, ElemQT, E)) 1203 return false; 1204 if (!this->emitInitElem(ElemT, 1, E)) 1205 return false; 1206 } else { 1207 if (!this->visit(LHS)) 1208 return false; 1209 } 1210 1211 if (!this->visit(RHS)) 1212 return false; 1213 return this->emitDivc(ElemT, E); 1214 } 1215 1216 // Evaluate LHS and save value to LHSOffset. 1217 if (LHSType->isAnyComplexType()) { 1218 LHSOffset = this->allocateLocalPrimitive(LHS, PT_Ptr, /*IsConst=*/true); 1219 if (!this->visit(LHS)) 1220 return false; 1221 if (!this->emitSetLocal(PT_Ptr, LHSOffset, E)) 1222 return false; 1223 } else { 1224 PrimType LHST = classifyPrim(LHSType); 1225 LHSOffset = this->allocateLocalPrimitive(LHS, LHST, /*IsConst=*/true); 1226 if (!this->visit(LHS)) 1227 return false; 1228 if (!this->emitSetLocal(LHST, LHSOffset, E)) 1229 return false; 1230 } 1231 1232 // Same with RHS. 1233 unsigned RHSOffset; 1234 if (RHSType->isAnyComplexType()) { 1235 RHSOffset = this->allocateLocalPrimitive(RHS, PT_Ptr, /*IsConst=*/true); 1236 if (!this->visit(RHS)) 1237 return false; 1238 if (!this->emitSetLocal(PT_Ptr, RHSOffset, E)) 1239 return false; 1240 } else { 1241 PrimType RHST = classifyPrim(RHSType); 1242 RHSOffset = this->allocateLocalPrimitive(RHS, RHST, /*IsConst=*/true); 1243 if (!this->visit(RHS)) 1244 return false; 1245 if (!this->emitSetLocal(RHST, RHSOffset, E)) 1246 return false; 1247 } 1248 1249 // For both LHS and RHS, either load the value from the complex pointer, or 1250 // directly from the local variable. For index 1 (i.e. the imaginary part), 1251 // just load 0 and do the operation anyway. 1252 auto loadComplexValue = [this](bool IsComplex, bool LoadZero, 1253 unsigned ElemIndex, unsigned Offset, 1254 const Expr *E) -> bool { 1255 if (IsComplex) { 1256 if (!this->emitGetLocal(PT_Ptr, Offset, E)) 1257 return false; 1258 return this->emitArrayElemPop(classifyComplexElementType(E->getType()), 1259 ElemIndex, E); 1260 } 1261 if (ElemIndex == 0 || !LoadZero) 1262 return this->emitGetLocal(classifyPrim(E->getType()), Offset, E); 1263 return this->visitZeroInitializer(classifyPrim(E->getType()), E->getType(), 1264 E); 1265 }; 1266 1267 // Now we can get pointers to the LHS and RHS from the offsets above. 1268 for (unsigned ElemIndex = 0; ElemIndex != 2; ++ElemIndex) { 1269 // Result pointer for the store later. 1270 if (!this->DiscardResult) { 1271 if (!this->emitGetLocal(PT_Ptr, ResultOffset, E)) 1272 return false; 1273 } 1274 1275 // The actual operation. 1276 switch (Op) { 1277 case BO_Add: 1278 if (!loadComplexValue(LHSIsComplex, true, ElemIndex, LHSOffset, LHS)) 1279 return false; 1280 1281 if (!loadComplexValue(RHSIsComplex, true, ElemIndex, RHSOffset, RHS)) 1282 return false; 1283 if (ResultElemT == PT_Float) { 1284 if (!this->emitAddf(getFPOptions(E), E)) 1285 return false; 1286 } else { 1287 if (!this->emitAdd(ResultElemT, E)) 1288 return false; 1289 } 1290 break; 1291 case BO_Sub: 1292 if (!loadComplexValue(LHSIsComplex, true, ElemIndex, LHSOffset, LHS)) 1293 return false; 1294 1295 if (!loadComplexValue(RHSIsComplex, true, ElemIndex, RHSOffset, RHS)) 1296 return false; 1297 if (ResultElemT == PT_Float) { 1298 if (!this->emitSubf(getFPOptions(E), E)) 1299 return false; 1300 } else { 1301 if (!this->emitSub(ResultElemT, E)) 1302 return false; 1303 } 1304 break; 1305 case BO_Mul: 1306 if (!loadComplexValue(LHSIsComplex, false, ElemIndex, LHSOffset, LHS)) 1307 return false; 1308 1309 if (!loadComplexValue(RHSIsComplex, false, ElemIndex, RHSOffset, RHS)) 1310 return false; 1311 1312 if (ResultElemT == PT_Float) { 1313 if (!this->emitMulf(getFPOptions(E), E)) 1314 return false; 1315 } else { 1316 if (!this->emitMul(ResultElemT, E)) 1317 return false; 1318 } 1319 break; 1320 case BO_Div: 1321 assert(!RHSIsComplex); 1322 if (!loadComplexValue(LHSIsComplex, false, ElemIndex, LHSOffset, LHS)) 1323 return false; 1324 1325 if (!loadComplexValue(RHSIsComplex, false, ElemIndex, RHSOffset, RHS)) 1326 return false; 1327 1328 if (ResultElemT == PT_Float) { 1329 if (!this->emitDivf(getFPOptions(E), E)) 1330 return false; 1331 } else { 1332 if (!this->emitDiv(ResultElemT, E)) 1333 return false; 1334 } 1335 break; 1336 1337 default: 1338 return false; 1339 } 1340 1341 if (!this->DiscardResult) { 1342 // Initialize array element with the value we just computed. 1343 if (!this->emitInitElemPop(ResultElemT, ElemIndex, E)) 1344 return false; 1345 } else { 1346 if (!this->emitPop(ResultElemT, E)) 1347 return false; 1348 } 1349 } 1350 return true; 1351 } 1352 1353 template <class Emitter> 1354 bool Compiler<Emitter>::VisitVectorBinOp(const BinaryOperator *E) { 1355 assert(!E->isCommaOp() && 1356 "Comma op should be handled in VisitBinaryOperator"); 1357 assert(E->getType()->isVectorType()); 1358 assert(E->getLHS()->getType()->isVectorType()); 1359 assert(E->getRHS()->getType()->isVectorType()); 1360 1361 // Prepare storage for result. 1362 if (!Initializing && !E->isCompoundAssignmentOp()) { 1363 std::optional<unsigned> LocalIndex = allocateTemporary(E); 1364 if (!LocalIndex) 1365 return false; 1366 if (!this->emitGetPtrLocal(*LocalIndex, E)) 1367 return false; 1368 } 1369 1370 const Expr *LHS = E->getLHS(); 1371 const Expr *RHS = E->getRHS(); 1372 const auto *VecTy = E->getType()->getAs<VectorType>(); 1373 auto Op = E->isCompoundAssignmentOp() 1374 ? BinaryOperator::getOpForCompoundAssignment(E->getOpcode()) 1375 : E->getOpcode(); 1376 1377 PrimType ElemT = this->classifyVectorElementType(LHS->getType()); 1378 PrimType RHSElemT = this->classifyVectorElementType(RHS->getType()); 1379 PrimType ResultElemT = this->classifyVectorElementType(E->getType()); 1380 1381 // Evaluate LHS and save value to LHSOffset. 1382 unsigned LHSOffset = 1383 this->allocateLocalPrimitive(LHS, PT_Ptr, /*IsConst=*/true); 1384 if (!this->visit(LHS)) 1385 return false; 1386 if (!this->emitSetLocal(PT_Ptr, LHSOffset, E)) 1387 return false; 1388 1389 // Evaluate RHS and save value to RHSOffset. 1390 unsigned RHSOffset = 1391 this->allocateLocalPrimitive(RHS, PT_Ptr, /*IsConst=*/true); 1392 if (!this->visit(RHS)) 1393 return false; 1394 if (!this->emitSetLocal(PT_Ptr, RHSOffset, E)) 1395 return false; 1396 1397 if (E->isCompoundAssignmentOp() && !this->emitGetLocal(PT_Ptr, LHSOffset, E)) 1398 return false; 1399 1400 // BitAdd/BitOr/BitXor/Shl/Shr doesn't support bool type, we need perform the 1401 // integer promotion. 1402 bool NeedIntPromot = ElemT == PT_Bool && (E->isBitwiseOp() || E->isShiftOp()); 1403 QualType PromotTy = 1404 Ctx.getASTContext().getPromotedIntegerType(Ctx.getASTContext().BoolTy); 1405 PrimType PromotT = classifyPrim(PromotTy); 1406 PrimType OpT = NeedIntPromot ? PromotT : ElemT; 1407 1408 auto getElem = [=](unsigned Offset, PrimType ElemT, unsigned Index) { 1409 if (!this->emitGetLocal(PT_Ptr, Offset, E)) 1410 return false; 1411 if (!this->emitArrayElemPop(ElemT, Index, E)) 1412 return false; 1413 if (E->isLogicalOp()) { 1414 if (!this->emitPrimCast(ElemT, PT_Bool, Ctx.getASTContext().BoolTy, E)) 1415 return false; 1416 if (!this->emitPrimCast(PT_Bool, ResultElemT, VecTy->getElementType(), E)) 1417 return false; 1418 } else if (NeedIntPromot) { 1419 if (!this->emitPrimCast(ElemT, PromotT, PromotTy, E)) 1420 return false; 1421 } 1422 return true; 1423 }; 1424 1425 #define EMIT_ARITH_OP(OP) \ 1426 { \ 1427 if (ElemT == PT_Float) { \ 1428 if (!this->emit##OP##f(getFPOptions(E), E)) \ 1429 return false; \ 1430 } else { \ 1431 if (!this->emit##OP(ElemT, E)) \ 1432 return false; \ 1433 } \ 1434 break; \ 1435 } 1436 1437 for (unsigned I = 0; I != VecTy->getNumElements(); ++I) { 1438 if (!getElem(LHSOffset, ElemT, I)) 1439 return false; 1440 if (!getElem(RHSOffset, RHSElemT, I)) 1441 return false; 1442 switch (Op) { 1443 case BO_Add: 1444 EMIT_ARITH_OP(Add) 1445 case BO_Sub: 1446 EMIT_ARITH_OP(Sub) 1447 case BO_Mul: 1448 EMIT_ARITH_OP(Mul) 1449 case BO_Div: 1450 EMIT_ARITH_OP(Div) 1451 case BO_Rem: 1452 if (!this->emitRem(ElemT, E)) 1453 return false; 1454 break; 1455 case BO_And: 1456 if (!this->emitBitAnd(OpT, E)) 1457 return false; 1458 break; 1459 case BO_Or: 1460 if (!this->emitBitOr(OpT, E)) 1461 return false; 1462 break; 1463 case BO_Xor: 1464 if (!this->emitBitXor(OpT, E)) 1465 return false; 1466 break; 1467 case BO_Shl: 1468 if (!this->emitShl(OpT, RHSElemT, E)) 1469 return false; 1470 break; 1471 case BO_Shr: 1472 if (!this->emitShr(OpT, RHSElemT, E)) 1473 return false; 1474 break; 1475 case BO_EQ: 1476 if (!this->emitEQ(ElemT, E)) 1477 return false; 1478 break; 1479 case BO_NE: 1480 if (!this->emitNE(ElemT, E)) 1481 return false; 1482 break; 1483 case BO_LE: 1484 if (!this->emitLE(ElemT, E)) 1485 return false; 1486 break; 1487 case BO_LT: 1488 if (!this->emitLT(ElemT, E)) 1489 return false; 1490 break; 1491 case BO_GE: 1492 if (!this->emitGE(ElemT, E)) 1493 return false; 1494 break; 1495 case BO_GT: 1496 if (!this->emitGT(ElemT, E)) 1497 return false; 1498 break; 1499 case BO_LAnd: 1500 // a && b is equivalent to a!=0 & b!=0 1501 if (!this->emitBitAnd(ResultElemT, E)) 1502 return false; 1503 break; 1504 case BO_LOr: 1505 // a || b is equivalent to a!=0 | b!=0 1506 if (!this->emitBitOr(ResultElemT, E)) 1507 return false; 1508 break; 1509 default: 1510 return this->emitInvalid(E); 1511 } 1512 1513 // The result of the comparison is a vector of the same width and number 1514 // of elements as the comparison operands with a signed integral element 1515 // type. 1516 // 1517 // https://gcc.gnu.org/onlinedocs/gcc/Vector-Extensions.html 1518 if (E->isComparisonOp()) { 1519 if (!this->emitPrimCast(PT_Bool, ResultElemT, VecTy->getElementType(), E)) 1520 return false; 1521 if (!this->emitNeg(ResultElemT, E)) 1522 return false; 1523 } 1524 1525 // If we performed an integer promotion, we need to cast the compute result 1526 // into result vector element type. 1527 if (NeedIntPromot && 1528 !this->emitPrimCast(PromotT, ResultElemT, VecTy->getElementType(), E)) 1529 return false; 1530 1531 // Initialize array element with the value we just computed. 1532 if (!this->emitInitElem(ResultElemT, I, E)) 1533 return false; 1534 } 1535 1536 if (DiscardResult && E->isCompoundAssignmentOp() && !this->emitPopPtr(E)) 1537 return false; 1538 return true; 1539 } 1540 1541 template <class Emitter> 1542 bool Compiler<Emitter>::VisitFixedPointBinOp(const BinaryOperator *E) { 1543 const Expr *LHS = E->getLHS(); 1544 const Expr *RHS = E->getRHS(); 1545 const ASTContext &ASTCtx = Ctx.getASTContext(); 1546 1547 assert(LHS->getType()->isFixedPointType() || 1548 RHS->getType()->isFixedPointType()); 1549 1550 auto LHSSema = ASTCtx.getFixedPointSemantics(LHS->getType()); 1551 auto LHSSemaInt = LHSSema.toOpaqueInt(); 1552 auto RHSSema = ASTCtx.getFixedPointSemantics(RHS->getType()); 1553 auto RHSSemaInt = RHSSema.toOpaqueInt(); 1554 1555 if (!this->visit(LHS)) 1556 return false; 1557 if (!LHS->getType()->isFixedPointType()) { 1558 if (!this->emitCastIntegralFixedPoint(classifyPrim(LHS->getType()), 1559 LHSSemaInt, E)) 1560 return false; 1561 } 1562 1563 if (!this->visit(RHS)) 1564 return false; 1565 if (!RHS->getType()->isFixedPointType()) { 1566 if (!this->emitCastIntegralFixedPoint(classifyPrim(RHS->getType()), 1567 RHSSemaInt, E)) 1568 return false; 1569 } 1570 1571 // Convert the result to the target semantics. 1572 auto ConvertResult = [&](bool R) -> bool { 1573 if (!R) 1574 return false; 1575 auto ResultSema = ASTCtx.getFixedPointSemantics(E->getType()).toOpaqueInt(); 1576 auto CommonSema = LHSSema.getCommonSemantics(RHSSema).toOpaqueInt(); 1577 if (ResultSema != CommonSema) 1578 return this->emitCastFixedPoint(ResultSema, E); 1579 return true; 1580 }; 1581 1582 auto MaybeCastToBool = [&](bool Result) { 1583 if (!Result) 1584 return false; 1585 PrimType T = classifyPrim(E); 1586 if (DiscardResult) 1587 return this->emitPop(T, E); 1588 if (T != PT_Bool) 1589 return this->emitCast(PT_Bool, T, E); 1590 return true; 1591 }; 1592 1593 switch (E->getOpcode()) { 1594 case BO_EQ: 1595 return MaybeCastToBool(this->emitEQFixedPoint(E)); 1596 case BO_NE: 1597 return MaybeCastToBool(this->emitNEFixedPoint(E)); 1598 case BO_LT: 1599 return MaybeCastToBool(this->emitLTFixedPoint(E)); 1600 case BO_LE: 1601 return MaybeCastToBool(this->emitLEFixedPoint(E)); 1602 case BO_GT: 1603 return MaybeCastToBool(this->emitGTFixedPoint(E)); 1604 case BO_GE: 1605 return MaybeCastToBool(this->emitGEFixedPoint(E)); 1606 case BO_Add: 1607 return ConvertResult(this->emitAddFixedPoint(E)); 1608 case BO_Sub: 1609 return ConvertResult(this->emitSubFixedPoint(E)); 1610 case BO_Mul: 1611 return ConvertResult(this->emitMulFixedPoint(E)); 1612 case BO_Div: 1613 return ConvertResult(this->emitDivFixedPoint(E)); 1614 case BO_Shl: 1615 return ConvertResult(this->emitShiftFixedPoint(/*Left=*/true, E)); 1616 case BO_Shr: 1617 return ConvertResult(this->emitShiftFixedPoint(/*Left=*/false, E)); 1618 1619 default: 1620 return this->emitInvalid(E); 1621 } 1622 1623 llvm_unreachable("unhandled binop opcode"); 1624 } 1625 1626 template <class Emitter> 1627 bool Compiler<Emitter>::VisitFixedPointUnaryOperator(const UnaryOperator *E) { 1628 const Expr *SubExpr = E->getSubExpr(); 1629 assert(SubExpr->getType()->isFixedPointType()); 1630 1631 switch (E->getOpcode()) { 1632 case UO_Plus: 1633 return this->delegate(SubExpr); 1634 case UO_Minus: 1635 if (!this->visit(SubExpr)) 1636 return false; 1637 return this->emitNegFixedPoint(E); 1638 default: 1639 return false; 1640 } 1641 1642 llvm_unreachable("Unhandled unary opcode"); 1643 } 1644 1645 template <class Emitter> 1646 bool Compiler<Emitter>::VisitImplicitValueInitExpr( 1647 const ImplicitValueInitExpr *E) { 1648 QualType QT = E->getType(); 1649 1650 if (std::optional<PrimType> T = classify(QT)) 1651 return this->visitZeroInitializer(*T, QT, E); 1652 1653 if (QT->isRecordType()) { 1654 const RecordDecl *RD = QT->getAsRecordDecl(); 1655 assert(RD); 1656 if (RD->isInvalidDecl()) 1657 return false; 1658 1659 if (const auto *CXXRD = dyn_cast<CXXRecordDecl>(RD); 1660 CXXRD && CXXRD->getNumVBases() > 0) { 1661 // TODO: Diagnose. 1662 return false; 1663 } 1664 1665 const Record *R = getRecord(QT); 1666 if (!R) 1667 return false; 1668 1669 assert(Initializing); 1670 return this->visitZeroRecordInitializer(R, E); 1671 } 1672 1673 if (QT->isIncompleteArrayType()) 1674 return true; 1675 1676 if (QT->isArrayType()) 1677 return this->visitZeroArrayInitializer(QT, E); 1678 1679 if (const auto *ComplexTy = E->getType()->getAs<ComplexType>()) { 1680 assert(Initializing); 1681 QualType ElemQT = ComplexTy->getElementType(); 1682 PrimType ElemT = classifyPrim(ElemQT); 1683 for (unsigned I = 0; I < 2; ++I) { 1684 if (!this->visitZeroInitializer(ElemT, ElemQT, E)) 1685 return false; 1686 if (!this->emitInitElem(ElemT, I, E)) 1687 return false; 1688 } 1689 return true; 1690 } 1691 1692 if (const auto *VecT = E->getType()->getAs<VectorType>()) { 1693 unsigned NumVecElements = VecT->getNumElements(); 1694 QualType ElemQT = VecT->getElementType(); 1695 PrimType ElemT = classifyPrim(ElemQT); 1696 1697 for (unsigned I = 0; I < NumVecElements; ++I) { 1698 if (!this->visitZeroInitializer(ElemT, ElemQT, E)) 1699 return false; 1700 if (!this->emitInitElem(ElemT, I, E)) 1701 return false; 1702 } 1703 return true; 1704 } 1705 1706 return false; 1707 } 1708 1709 template <class Emitter> 1710 bool Compiler<Emitter>::VisitArraySubscriptExpr(const ArraySubscriptExpr *E) { 1711 const Expr *LHS = E->getLHS(); 1712 const Expr *RHS = E->getRHS(); 1713 const Expr *Index = E->getIdx(); 1714 const Expr *Base = E->getBase(); 1715 1716 // C++17's rules require us to evaluate the LHS first, regardless of which 1717 // side is the base. 1718 bool Success = true; 1719 for (const Expr *SubExpr : {LHS, RHS}) { 1720 if (!this->visit(SubExpr)) { 1721 Success = false; 1722 continue; 1723 } 1724 1725 // Expand the base if this is a subscript on a 1726 // pointer expression. 1727 if (SubExpr == Base && Base->getType()->isPointerType()) { 1728 if (!this->emitExpandPtr(E)) 1729 Success = false; 1730 } 1731 } 1732 1733 if (!Success) 1734 return false; 1735 1736 std::optional<PrimType> IndexT = classify(Index->getType()); 1737 // In error-recovery cases, the index expression has a dependent type. 1738 if (!IndexT) 1739 return this->emitError(E); 1740 // If the index is first, we need to change that. 1741 if (LHS == Index) { 1742 if (!this->emitFlip(PT_Ptr, *IndexT, E)) 1743 return false; 1744 } 1745 1746 if (!this->emitArrayElemPtrPop(*IndexT, E)) 1747 return false; 1748 if (DiscardResult) 1749 return this->emitPopPtr(E); 1750 return true; 1751 } 1752 1753 template <class Emitter> 1754 bool Compiler<Emitter>::visitInitList(ArrayRef<const Expr *> Inits, 1755 const Expr *ArrayFiller, const Expr *E) { 1756 InitLinkScope<Emitter> ILS(this, InitLink::InitList()); 1757 1758 QualType QT = E->getType(); 1759 if (const auto *AT = QT->getAs<AtomicType>()) 1760 QT = AT->getValueType(); 1761 1762 if (QT->isVoidType()) { 1763 if (Inits.size() == 0) 1764 return true; 1765 return this->emitInvalid(E); 1766 } 1767 1768 // Handle discarding first. 1769 if (DiscardResult) { 1770 for (const Expr *Init : Inits) { 1771 if (!this->discard(Init)) 1772 return false; 1773 } 1774 return true; 1775 } 1776 1777 // Primitive values. 1778 if (std::optional<PrimType> T = classify(QT)) { 1779 assert(!DiscardResult); 1780 if (Inits.size() == 0) 1781 return this->visitZeroInitializer(*T, QT, E); 1782 assert(Inits.size() == 1); 1783 return this->delegate(Inits[0]); 1784 } 1785 1786 if (QT->isRecordType()) { 1787 const Record *R = getRecord(QT); 1788 1789 if (Inits.size() == 1 && E->getType() == Inits[0]->getType()) 1790 return this->delegate(Inits[0]); 1791 1792 auto initPrimitiveField = [=](const Record::Field *FieldToInit, 1793 const Expr *Init, PrimType T) -> bool { 1794 InitStackScope<Emitter> ISS(this, isa<CXXDefaultInitExpr>(Init)); 1795 InitLinkScope<Emitter> ILS(this, InitLink::Field(FieldToInit->Offset)); 1796 if (!this->visit(Init)) 1797 return false; 1798 1799 if (FieldToInit->isBitField()) 1800 return this->emitInitBitField(T, FieldToInit, E); 1801 return this->emitInitField(T, FieldToInit->Offset, E); 1802 }; 1803 1804 auto initCompositeField = [=](const Record::Field *FieldToInit, 1805 const Expr *Init) -> bool { 1806 InitStackScope<Emitter> ISS(this, isa<CXXDefaultInitExpr>(Init)); 1807 InitLinkScope<Emitter> ILS(this, InitLink::Field(FieldToInit->Offset)); 1808 1809 // Non-primitive case. Get a pointer to the field-to-initialize 1810 // on the stack and recurse into visitInitializer(). 1811 if (!this->emitGetPtrField(FieldToInit->Offset, Init)) 1812 return false; 1813 if (!this->visitInitializer(Init)) 1814 return false; 1815 return this->emitPopPtr(E); 1816 }; 1817 1818 if (R->isUnion()) { 1819 if (Inits.size() == 0) { 1820 if (!this->visitZeroRecordInitializer(R, E)) 1821 return false; 1822 } else { 1823 const Expr *Init = Inits[0]; 1824 const FieldDecl *FToInit = nullptr; 1825 if (const auto *ILE = dyn_cast<InitListExpr>(E)) 1826 FToInit = ILE->getInitializedFieldInUnion(); 1827 else 1828 FToInit = cast<CXXParenListInitExpr>(E)->getInitializedFieldInUnion(); 1829 1830 const Record::Field *FieldToInit = R->getField(FToInit); 1831 if (std::optional<PrimType> T = classify(Init)) { 1832 if (!initPrimitiveField(FieldToInit, Init, *T)) 1833 return false; 1834 } else { 1835 if (!initCompositeField(FieldToInit, Init)) 1836 return false; 1837 } 1838 } 1839 return this->emitFinishInit(E); 1840 } 1841 1842 assert(!R->isUnion()); 1843 unsigned InitIndex = 0; 1844 for (const Expr *Init : Inits) { 1845 // Skip unnamed bitfields. 1846 while (InitIndex < R->getNumFields() && 1847 R->getField(InitIndex)->isUnnamedBitField()) 1848 ++InitIndex; 1849 1850 if (std::optional<PrimType> T = classify(Init)) { 1851 const Record::Field *FieldToInit = R->getField(InitIndex); 1852 if (!initPrimitiveField(FieldToInit, Init, *T)) 1853 return false; 1854 ++InitIndex; 1855 } else { 1856 // Initializer for a direct base class. 1857 if (const Record::Base *B = R->getBase(Init->getType())) { 1858 if (!this->emitGetPtrBase(B->Offset, Init)) 1859 return false; 1860 1861 if (!this->visitInitializer(Init)) 1862 return false; 1863 1864 if (!this->emitFinishInitPop(E)) 1865 return false; 1866 // Base initializers don't increase InitIndex, since they don't count 1867 // into the Record's fields. 1868 } else { 1869 const Record::Field *FieldToInit = R->getField(InitIndex); 1870 if (!initCompositeField(FieldToInit, Init)) 1871 return false; 1872 ++InitIndex; 1873 } 1874 } 1875 } 1876 return this->emitFinishInit(E); 1877 } 1878 1879 if (QT->isArrayType()) { 1880 if (Inits.size() == 1 && QT == Inits[0]->getType()) 1881 return this->delegate(Inits[0]); 1882 1883 const ConstantArrayType *CAT = 1884 Ctx.getASTContext().getAsConstantArrayType(QT); 1885 uint64_t NumElems = CAT->getZExtSize(); 1886 1887 if (!this->emitCheckArraySize(NumElems, E)) 1888 return false; 1889 1890 std::optional<PrimType> InitT = classify(CAT->getElementType()); 1891 unsigned ElementIndex = 0; 1892 for (const Expr *Init : Inits) { 1893 if (const auto *EmbedS = 1894 dyn_cast<EmbedExpr>(Init->IgnoreParenImpCasts())) { 1895 PrimType TargetT = classifyPrim(Init->getType()); 1896 1897 auto Eval = [&](const Expr *Init, unsigned ElemIndex) { 1898 PrimType InitT = classifyPrim(Init->getType()); 1899 if (!this->visit(Init)) 1900 return false; 1901 if (InitT != TargetT) { 1902 if (!this->emitCast(InitT, TargetT, E)) 1903 return false; 1904 } 1905 return this->emitInitElem(TargetT, ElemIndex, Init); 1906 }; 1907 if (!EmbedS->doForEachDataElement(Eval, ElementIndex)) 1908 return false; 1909 } else { 1910 if (!this->visitArrayElemInit(ElementIndex, Init, InitT)) 1911 return false; 1912 ++ElementIndex; 1913 } 1914 } 1915 1916 // Expand the filler expression. 1917 // FIXME: This should go away. 1918 if (ArrayFiller) { 1919 for (; ElementIndex != NumElems; ++ElementIndex) { 1920 if (!this->visitArrayElemInit(ElementIndex, ArrayFiller, InitT)) 1921 return false; 1922 } 1923 } 1924 1925 return this->emitFinishInit(E); 1926 } 1927 1928 if (const auto *ComplexTy = QT->getAs<ComplexType>()) { 1929 unsigned NumInits = Inits.size(); 1930 1931 if (NumInits == 1) 1932 return this->delegate(Inits[0]); 1933 1934 QualType ElemQT = ComplexTy->getElementType(); 1935 PrimType ElemT = classifyPrim(ElemQT); 1936 if (NumInits == 0) { 1937 // Zero-initialize both elements. 1938 for (unsigned I = 0; I < 2; ++I) { 1939 if (!this->visitZeroInitializer(ElemT, ElemQT, E)) 1940 return false; 1941 if (!this->emitInitElem(ElemT, I, E)) 1942 return false; 1943 } 1944 } else if (NumInits == 2) { 1945 unsigned InitIndex = 0; 1946 for (const Expr *Init : Inits) { 1947 if (!this->visit(Init)) 1948 return false; 1949 1950 if (!this->emitInitElem(ElemT, InitIndex, E)) 1951 return false; 1952 ++InitIndex; 1953 } 1954 } 1955 return true; 1956 } 1957 1958 if (const auto *VecT = QT->getAs<VectorType>()) { 1959 unsigned NumVecElements = VecT->getNumElements(); 1960 assert(NumVecElements >= Inits.size()); 1961 1962 QualType ElemQT = VecT->getElementType(); 1963 PrimType ElemT = classifyPrim(ElemQT); 1964 1965 // All initializer elements. 1966 unsigned InitIndex = 0; 1967 for (const Expr *Init : Inits) { 1968 if (!this->visit(Init)) 1969 return false; 1970 1971 // If the initializer is of vector type itself, we have to deconstruct 1972 // that and initialize all the target fields from the initializer fields. 1973 if (const auto *InitVecT = Init->getType()->getAs<VectorType>()) { 1974 if (!this->emitCopyArray(ElemT, 0, InitIndex, 1975 InitVecT->getNumElements(), E)) 1976 return false; 1977 InitIndex += InitVecT->getNumElements(); 1978 } else { 1979 if (!this->emitInitElem(ElemT, InitIndex, E)) 1980 return false; 1981 ++InitIndex; 1982 } 1983 } 1984 1985 assert(InitIndex <= NumVecElements); 1986 1987 // Fill the rest with zeroes. 1988 for (; InitIndex != NumVecElements; ++InitIndex) { 1989 if (!this->visitZeroInitializer(ElemT, ElemQT, E)) 1990 return false; 1991 if (!this->emitInitElem(ElemT, InitIndex, E)) 1992 return false; 1993 } 1994 return true; 1995 } 1996 1997 return false; 1998 } 1999 2000 /// Pointer to the array(not the element!) must be on the stack when calling 2001 /// this. 2002 template <class Emitter> 2003 bool Compiler<Emitter>::visitArrayElemInit(unsigned ElemIndex, const Expr *Init, 2004 std::optional<PrimType> InitT) { 2005 if (InitT) { 2006 // Visit the primitive element like normal. 2007 if (!this->visit(Init)) 2008 return false; 2009 return this->emitInitElem(*InitT, ElemIndex, Init); 2010 } 2011 2012 InitLinkScope<Emitter> ILS(this, InitLink::Elem(ElemIndex)); 2013 // Advance the pointer currently on the stack to the given 2014 // dimension. 2015 if (!this->emitConstUint32(ElemIndex, Init)) 2016 return false; 2017 if (!this->emitArrayElemPtrUint32(Init)) 2018 return false; 2019 if (!this->visitInitializer(Init)) 2020 return false; 2021 return this->emitFinishInitPop(Init); 2022 } 2023 2024 template <class Emitter> 2025 bool Compiler<Emitter>::visitCallArgs(ArrayRef<const Expr *> Args, 2026 const FunctionDecl *FuncDecl) { 2027 assert(VarScope->getKind() == ScopeKind::Call); 2028 llvm::BitVector NonNullArgs = collectNonNullArgs(FuncDecl, Args); 2029 2030 unsigned ArgIndex = 0; 2031 for (const Expr *Arg : Args) { 2032 if (std::optional<PrimType> T = classify(Arg)) { 2033 if (!this->visit(Arg)) 2034 return false; 2035 } else { 2036 2037 std::optional<unsigned> LocalIndex = allocateLocal( 2038 Arg, Arg->getType(), /*ExtendingDecl=*/nullptr, ScopeKind::Call); 2039 if (!LocalIndex) 2040 return false; 2041 2042 if (!this->emitGetPtrLocal(*LocalIndex, Arg)) 2043 return false; 2044 InitLinkScope<Emitter> ILS(this, InitLink::Temp(*LocalIndex)); 2045 if (!this->visitInitializer(Arg)) 2046 return false; 2047 } 2048 2049 if (FuncDecl && NonNullArgs[ArgIndex]) { 2050 PrimType ArgT = classify(Arg).value_or(PT_Ptr); 2051 if (ArgT == PT_Ptr) { 2052 if (!this->emitCheckNonNullArg(ArgT, Arg)) 2053 return false; 2054 } 2055 } 2056 2057 ++ArgIndex; 2058 } 2059 2060 return true; 2061 } 2062 2063 template <class Emitter> 2064 bool Compiler<Emitter>::VisitInitListExpr(const InitListExpr *E) { 2065 return this->visitInitList(E->inits(), E->getArrayFiller(), E); 2066 } 2067 2068 template <class Emitter> 2069 bool Compiler<Emitter>::VisitCXXParenListInitExpr( 2070 const CXXParenListInitExpr *E) { 2071 return this->visitInitList(E->getInitExprs(), E->getArrayFiller(), E); 2072 } 2073 2074 template <class Emitter> 2075 bool Compiler<Emitter>::VisitSubstNonTypeTemplateParmExpr( 2076 const SubstNonTypeTemplateParmExpr *E) { 2077 return this->delegate(E->getReplacement()); 2078 } 2079 2080 template <class Emitter> 2081 bool Compiler<Emitter>::VisitConstantExpr(const ConstantExpr *E) { 2082 std::optional<PrimType> T = classify(E->getType()); 2083 if (T && E->hasAPValueResult()) { 2084 // Try to emit the APValue directly, without visiting the subexpr. 2085 // This will only fail if we can't emit the APValue, so won't emit any 2086 // diagnostics or any double values. 2087 if (DiscardResult) 2088 return true; 2089 2090 if (this->visitAPValue(E->getAPValueResult(), *T, E)) 2091 return true; 2092 } 2093 return this->delegate(E->getSubExpr()); 2094 } 2095 2096 template <class Emitter> 2097 bool Compiler<Emitter>::VisitEmbedExpr(const EmbedExpr *E) { 2098 auto It = E->begin(); 2099 return this->visit(*It); 2100 } 2101 2102 static CharUnits AlignOfType(QualType T, const ASTContext &ASTCtx, 2103 UnaryExprOrTypeTrait Kind) { 2104 bool AlignOfReturnsPreferred = 2105 ASTCtx.getLangOpts().getClangABICompat() <= LangOptions::ClangABI::Ver7; 2106 2107 // C++ [expr.alignof]p3: 2108 // When alignof is applied to a reference type, the result is the 2109 // alignment of the referenced type. 2110 if (const auto *Ref = T->getAs<ReferenceType>()) 2111 T = Ref->getPointeeType(); 2112 2113 if (T.getQualifiers().hasUnaligned()) 2114 return CharUnits::One(); 2115 2116 // __alignof is defined to return the preferred alignment. 2117 // Before 8, clang returned the preferred alignment for alignof and 2118 // _Alignof as well. 2119 if (Kind == UETT_PreferredAlignOf || AlignOfReturnsPreferred) 2120 return ASTCtx.toCharUnitsFromBits(ASTCtx.getPreferredTypeAlign(T)); 2121 2122 return ASTCtx.getTypeAlignInChars(T); 2123 } 2124 2125 template <class Emitter> 2126 bool Compiler<Emitter>::VisitUnaryExprOrTypeTraitExpr( 2127 const UnaryExprOrTypeTraitExpr *E) { 2128 UnaryExprOrTypeTrait Kind = E->getKind(); 2129 const ASTContext &ASTCtx = Ctx.getASTContext(); 2130 2131 if (Kind == UETT_SizeOf || Kind == UETT_DataSizeOf) { 2132 QualType ArgType = E->getTypeOfArgument(); 2133 2134 // C++ [expr.sizeof]p2: "When applied to a reference or a reference type, 2135 // the result is the size of the referenced type." 2136 if (const auto *Ref = ArgType->getAs<ReferenceType>()) 2137 ArgType = Ref->getPointeeType(); 2138 2139 CharUnits Size; 2140 if (ArgType->isVoidType() || ArgType->isFunctionType()) 2141 Size = CharUnits::One(); 2142 else { 2143 if (ArgType->isDependentType() || !ArgType->isConstantSizeType()) 2144 return this->emitInvalid(E); 2145 2146 if (Kind == UETT_SizeOf) 2147 Size = ASTCtx.getTypeSizeInChars(ArgType); 2148 else 2149 Size = ASTCtx.getTypeInfoDataSizeInChars(ArgType).Width; 2150 } 2151 2152 if (DiscardResult) 2153 return true; 2154 2155 return this->emitConst(Size.getQuantity(), E); 2156 } 2157 2158 if (Kind == UETT_CountOf) { 2159 QualType Ty = E->getTypeOfArgument(); 2160 assert(Ty->isArrayType()); 2161 2162 // We don't need to worry about array element qualifiers, so getting the 2163 // unsafe array type is fine. 2164 if (const auto *CAT = 2165 dyn_cast<ConstantArrayType>(Ty->getAsArrayTypeUnsafe())) { 2166 if (DiscardResult) 2167 return true; 2168 return this->emitConst(CAT->getSize(), E); 2169 } 2170 2171 assert(!Ty->isConstantSizeType()); 2172 2173 // If it's a variable-length array type, we need to check whether it is a 2174 // multidimensional array. If so, we need to check the size expression of 2175 // the VLA to see if it's a constant size. If so, we can return that value. 2176 const auto *VAT = ASTCtx.getAsVariableArrayType(Ty); 2177 assert(VAT); 2178 if (VAT->getElementType()->isArrayType()) { 2179 std::optional<APSInt> Res = 2180 VAT->getSizeExpr()->getIntegerConstantExpr(ASTCtx); 2181 if (Res) { 2182 if (DiscardResult) 2183 return true; 2184 return this->emitConst(*Res, E); 2185 } 2186 } 2187 } 2188 2189 if (Kind == UETT_AlignOf || Kind == UETT_PreferredAlignOf) { 2190 CharUnits Size; 2191 2192 if (E->isArgumentType()) { 2193 QualType ArgType = E->getTypeOfArgument(); 2194 2195 Size = AlignOfType(ArgType, ASTCtx, Kind); 2196 } else { 2197 // Argument is an expression, not a type. 2198 const Expr *Arg = E->getArgumentExpr()->IgnoreParens(); 2199 2200 // The kinds of expressions that we have special-case logic here for 2201 // should be kept up to date with the special checks for those 2202 // expressions in Sema. 2203 2204 // alignof decl is always accepted, even if it doesn't make sense: we 2205 // default to 1 in those cases. 2206 if (const auto *DRE = dyn_cast<DeclRefExpr>(Arg)) 2207 Size = ASTCtx.getDeclAlign(DRE->getDecl(), 2208 /*RefAsPointee*/ true); 2209 else if (const auto *ME = dyn_cast<MemberExpr>(Arg)) 2210 Size = ASTCtx.getDeclAlign(ME->getMemberDecl(), 2211 /*RefAsPointee*/ true); 2212 else 2213 Size = AlignOfType(Arg->getType(), ASTCtx, Kind); 2214 } 2215 2216 if (DiscardResult) 2217 return true; 2218 2219 return this->emitConst(Size.getQuantity(), E); 2220 } 2221 2222 if (Kind == UETT_VectorElements) { 2223 if (const auto *VT = E->getTypeOfArgument()->getAs<VectorType>()) 2224 return this->emitConst(VT->getNumElements(), E); 2225 assert(E->getTypeOfArgument()->isSizelessVectorType()); 2226 return this->emitSizelessVectorElementSize(E); 2227 } 2228 2229 if (Kind == UETT_VecStep) { 2230 if (const auto *VT = E->getTypeOfArgument()->getAs<VectorType>()) { 2231 unsigned N = VT->getNumElements(); 2232 2233 // The vec_step built-in functions that take a 3-component 2234 // vector return 4. (OpenCL 1.1 spec 6.11.12) 2235 if (N == 3) 2236 N = 4; 2237 2238 return this->emitConst(N, E); 2239 } 2240 return this->emitConst(1, E); 2241 } 2242 2243 if (Kind == UETT_OpenMPRequiredSimdAlign) { 2244 assert(E->isArgumentType()); 2245 unsigned Bits = ASTCtx.getOpenMPDefaultSimdAlign(E->getArgumentType()); 2246 2247 return this->emitConst(ASTCtx.toCharUnitsFromBits(Bits).getQuantity(), E); 2248 } 2249 2250 if (Kind == UETT_PtrAuthTypeDiscriminator) { 2251 if (E->getArgumentType()->isDependentType()) 2252 return this->emitInvalid(E); 2253 2254 return this->emitConst( 2255 const_cast<ASTContext &>(ASTCtx).getPointerAuthTypeDiscriminator( 2256 E->getArgumentType()), 2257 E); 2258 } 2259 2260 return false; 2261 } 2262 2263 template <class Emitter> 2264 bool Compiler<Emitter>::VisitMemberExpr(const MemberExpr *E) { 2265 // 'Base.Member' 2266 const Expr *Base = E->getBase(); 2267 const ValueDecl *Member = E->getMemberDecl(); 2268 2269 if (DiscardResult) 2270 return this->discard(Base); 2271 2272 // MemberExprs are almost always lvalues, in which case we don't need to 2273 // do the load. But sometimes they aren't. 2274 const auto maybeLoadValue = [&]() -> bool { 2275 if (E->isGLValue()) 2276 return true; 2277 if (std::optional<PrimType> T = classify(E)) 2278 return this->emitLoadPop(*T, E); 2279 return false; 2280 }; 2281 2282 if (const auto *VD = dyn_cast<VarDecl>(Member)) { 2283 // I am almost confident in saying that a var decl must be static 2284 // and therefore registered as a global variable. But this will probably 2285 // turn out to be wrong some time in the future, as always. 2286 if (auto GlobalIndex = P.getGlobal(VD)) 2287 return this->emitGetPtrGlobal(*GlobalIndex, E) && maybeLoadValue(); 2288 return false; 2289 } 2290 2291 if (!isa<FieldDecl>(Member)) { 2292 if (!this->discard(Base) && !this->emitSideEffect(E)) 2293 return false; 2294 2295 return this->visitDeclRef(Member, E); 2296 } 2297 2298 if (Initializing) { 2299 if (!this->delegate(Base)) 2300 return false; 2301 } else { 2302 if (!this->visit(Base)) 2303 return false; 2304 } 2305 2306 // Base above gives us a pointer on the stack. 2307 const auto *FD = cast<FieldDecl>(Member); 2308 const RecordDecl *RD = FD->getParent(); 2309 const Record *R = getRecord(RD); 2310 if (!R) 2311 return false; 2312 const Record::Field *F = R->getField(FD); 2313 // Leave a pointer to the field on the stack. 2314 if (F->Decl->getType()->isReferenceType()) 2315 return this->emitGetFieldPop(PT_Ptr, F->Offset, E) && maybeLoadValue(); 2316 return this->emitGetPtrFieldPop(F->Offset, E) && maybeLoadValue(); 2317 } 2318 2319 template <class Emitter> 2320 bool Compiler<Emitter>::VisitArrayInitIndexExpr(const ArrayInitIndexExpr *E) { 2321 // ArrayIndex might not be set if a ArrayInitIndexExpr is being evaluated 2322 // stand-alone, e.g. via EvaluateAsInt(). 2323 if (!ArrayIndex) 2324 return false; 2325 return this->emitConst(*ArrayIndex, E); 2326 } 2327 2328 template <class Emitter> 2329 bool Compiler<Emitter>::VisitArrayInitLoopExpr(const ArrayInitLoopExpr *E) { 2330 assert(Initializing); 2331 assert(!DiscardResult); 2332 2333 // We visit the common opaque expression here once so we have its value 2334 // cached. 2335 if (!this->discard(E->getCommonExpr())) 2336 return false; 2337 2338 // TODO: This compiles to quite a lot of bytecode if the array is larger. 2339 // Investigate compiling this to a loop. 2340 const Expr *SubExpr = E->getSubExpr(); 2341 size_t Size = E->getArraySize().getZExtValue(); 2342 std::optional<PrimType> SubExprT = classify(SubExpr); 2343 2344 // So, every iteration, we execute an assignment here 2345 // where the LHS is on the stack (the target array) 2346 // and the RHS is our SubExpr. 2347 for (size_t I = 0; I != Size; ++I) { 2348 ArrayIndexScope<Emitter> IndexScope(this, I); 2349 BlockScope<Emitter> BS(this); 2350 2351 if (!this->visitArrayElemInit(I, SubExpr, SubExprT)) 2352 return false; 2353 if (!BS.destroyLocals()) 2354 return false; 2355 } 2356 return true; 2357 } 2358 2359 template <class Emitter> 2360 bool Compiler<Emitter>::VisitOpaqueValueExpr(const OpaqueValueExpr *E) { 2361 const Expr *SourceExpr = E->getSourceExpr(); 2362 if (!SourceExpr) 2363 return false; 2364 2365 if (Initializing) 2366 return this->visitInitializer(SourceExpr); 2367 2368 PrimType SubExprT = classify(SourceExpr).value_or(PT_Ptr); 2369 if (auto It = OpaqueExprs.find(E); It != OpaqueExprs.end()) 2370 return this->emitGetLocal(SubExprT, It->second, E); 2371 2372 if (!this->visit(SourceExpr)) 2373 return false; 2374 2375 // At this point we either have the evaluated source expression or a pointer 2376 // to an object on the stack. We want to create a local variable that stores 2377 // this value. 2378 unsigned LocalIndex = allocateLocalPrimitive(E, SubExprT, /*IsConst=*/true); 2379 if (!this->emitSetLocal(SubExprT, LocalIndex, E)) 2380 return false; 2381 2382 // Here the local variable is created but the value is removed from the stack, 2383 // so we put it back if the caller needs it. 2384 if (!DiscardResult) { 2385 if (!this->emitGetLocal(SubExprT, LocalIndex, E)) 2386 return false; 2387 } 2388 2389 // This is cleaned up when the local variable is destroyed. 2390 OpaqueExprs.insert({E, LocalIndex}); 2391 2392 return true; 2393 } 2394 2395 template <class Emitter> 2396 bool Compiler<Emitter>::VisitAbstractConditionalOperator( 2397 const AbstractConditionalOperator *E) { 2398 const Expr *Condition = E->getCond(); 2399 const Expr *TrueExpr = E->getTrueExpr(); 2400 const Expr *FalseExpr = E->getFalseExpr(); 2401 2402 auto visitChildExpr = [&](const Expr *E) -> bool { 2403 LocalScope<Emitter> S(this); 2404 if (!this->delegate(E)) 2405 return false; 2406 return S.destroyLocals(); 2407 }; 2408 2409 if (std::optional<bool> BoolValue = getBoolValue(Condition)) { 2410 if (BoolValue) 2411 return visitChildExpr(TrueExpr); 2412 return visitChildExpr(FalseExpr); 2413 } 2414 2415 bool IsBcpCall = false; 2416 if (const auto *CE = dyn_cast<CallExpr>(Condition->IgnoreParenCasts()); 2417 CE && CE->getBuiltinCallee() == Builtin::BI__builtin_constant_p) { 2418 IsBcpCall = true; 2419 } 2420 2421 LabelTy LabelEnd = this->getLabel(); // Label after the operator. 2422 LabelTy LabelFalse = this->getLabel(); // Label for the false expr. 2423 2424 if (IsBcpCall) { 2425 if (!this->emitStartSpeculation(E)) 2426 return false; 2427 } 2428 2429 if (!this->visitBool(Condition)) { 2430 // If the condition failed and we're checking for undefined behavior 2431 // (which only happens with EvalEmitter) check the TrueExpr and FalseExpr 2432 // as well. 2433 if (this->checkingForUndefinedBehavior()) { 2434 if (!this->discard(TrueExpr)) 2435 return false; 2436 if (!this->discard(FalseExpr)) 2437 return false; 2438 } 2439 return false; 2440 } 2441 2442 if (!this->jumpFalse(LabelFalse)) 2443 return false; 2444 if (!visitChildExpr(TrueExpr)) 2445 return false; 2446 if (!this->jump(LabelEnd)) 2447 return false; 2448 this->emitLabel(LabelFalse); 2449 if (!visitChildExpr(FalseExpr)) 2450 return false; 2451 this->fallthrough(LabelEnd); 2452 this->emitLabel(LabelEnd); 2453 2454 if (IsBcpCall) 2455 return this->emitEndSpeculation(E); 2456 return true; 2457 } 2458 2459 template <class Emitter> 2460 bool Compiler<Emitter>::VisitStringLiteral(const StringLiteral *E) { 2461 if (DiscardResult) 2462 return true; 2463 2464 if (!Initializing) { 2465 unsigned StringIndex = P.createGlobalString(E); 2466 return this->emitGetPtrGlobal(StringIndex, E); 2467 } 2468 2469 // We are initializing an array on the stack. 2470 const ConstantArrayType *CAT = 2471 Ctx.getASTContext().getAsConstantArrayType(E->getType()); 2472 assert(CAT && "a string literal that's not a constant array?"); 2473 2474 // If the initializer string is too long, a diagnostic has already been 2475 // emitted. Read only the array length from the string literal. 2476 unsigned ArraySize = CAT->getZExtSize(); 2477 unsigned N = std::min(ArraySize, E->getLength()); 2478 unsigned CharWidth = E->getCharByteWidth(); 2479 2480 for (unsigned I = 0; I != N; ++I) { 2481 uint32_t CodeUnit = E->getCodeUnit(I); 2482 2483 if (CharWidth == 1) { 2484 this->emitConstSint8(CodeUnit, E); 2485 this->emitInitElemSint8(I, E); 2486 } else if (CharWidth == 2) { 2487 this->emitConstUint16(CodeUnit, E); 2488 this->emitInitElemUint16(I, E); 2489 } else if (CharWidth == 4) { 2490 this->emitConstUint32(CodeUnit, E); 2491 this->emitInitElemUint32(I, E); 2492 } else { 2493 llvm_unreachable("unsupported character width"); 2494 } 2495 } 2496 2497 // Fill up the rest of the char array with NUL bytes. 2498 for (unsigned I = N; I != ArraySize; ++I) { 2499 if (CharWidth == 1) { 2500 this->emitConstSint8(0, E); 2501 this->emitInitElemSint8(I, E); 2502 } else if (CharWidth == 2) { 2503 this->emitConstUint16(0, E); 2504 this->emitInitElemUint16(I, E); 2505 } else if (CharWidth == 4) { 2506 this->emitConstUint32(0, E); 2507 this->emitInitElemUint32(I, E); 2508 } else { 2509 llvm_unreachable("unsupported character width"); 2510 } 2511 } 2512 2513 return true; 2514 } 2515 2516 template <class Emitter> 2517 bool Compiler<Emitter>::VisitObjCStringLiteral(const ObjCStringLiteral *E) { 2518 if (DiscardResult) 2519 return true; 2520 return this->emitDummyPtr(E, E); 2521 } 2522 2523 template <class Emitter> 2524 bool Compiler<Emitter>::VisitObjCEncodeExpr(const ObjCEncodeExpr *E) { 2525 auto &A = Ctx.getASTContext(); 2526 std::string Str; 2527 A.getObjCEncodingForType(E->getEncodedType(), Str); 2528 StringLiteral *SL = 2529 StringLiteral::Create(A, Str, StringLiteralKind::Ordinary, 2530 /*Pascal=*/false, E->getType(), E->getAtLoc()); 2531 return this->delegate(SL); 2532 } 2533 2534 template <class Emitter> 2535 bool Compiler<Emitter>::VisitSYCLUniqueStableNameExpr( 2536 const SYCLUniqueStableNameExpr *E) { 2537 if (DiscardResult) 2538 return true; 2539 2540 assert(!Initializing); 2541 2542 auto &A = Ctx.getASTContext(); 2543 std::string ResultStr = E->ComputeName(A); 2544 2545 QualType CharTy = A.CharTy.withConst(); 2546 APInt Size(A.getTypeSize(A.getSizeType()), ResultStr.size() + 1); 2547 QualType ArrayTy = A.getConstantArrayType(CharTy, Size, nullptr, 2548 ArraySizeModifier::Normal, 0); 2549 2550 StringLiteral *SL = 2551 StringLiteral::Create(A, ResultStr, StringLiteralKind::Ordinary, 2552 /*Pascal=*/false, ArrayTy, E->getLocation()); 2553 2554 unsigned StringIndex = P.createGlobalString(SL); 2555 return this->emitGetPtrGlobal(StringIndex, E); 2556 } 2557 2558 template <class Emitter> 2559 bool Compiler<Emitter>::VisitCharacterLiteral(const CharacterLiteral *E) { 2560 if (DiscardResult) 2561 return true; 2562 return this->emitConst(E->getValue(), E); 2563 } 2564 2565 template <class Emitter> 2566 bool Compiler<Emitter>::VisitFloatCompoundAssignOperator( 2567 const CompoundAssignOperator *E) { 2568 2569 const Expr *LHS = E->getLHS(); 2570 const Expr *RHS = E->getRHS(); 2571 QualType LHSType = LHS->getType(); 2572 QualType LHSComputationType = E->getComputationLHSType(); 2573 QualType ResultType = E->getComputationResultType(); 2574 std::optional<PrimType> LT = classify(LHSComputationType); 2575 std::optional<PrimType> RT = classify(ResultType); 2576 2577 assert(ResultType->isFloatingType()); 2578 2579 if (!LT || !RT) 2580 return false; 2581 2582 PrimType LHST = classifyPrim(LHSType); 2583 2584 // C++17 onwards require that we evaluate the RHS first. 2585 // Compute RHS and save it in a temporary variable so we can 2586 // load it again later. 2587 if (!visit(RHS)) 2588 return false; 2589 2590 unsigned TempOffset = this->allocateLocalPrimitive(E, *RT, /*IsConst=*/true); 2591 if (!this->emitSetLocal(*RT, TempOffset, E)) 2592 return false; 2593 2594 // First, visit LHS. 2595 if (!visit(LHS)) 2596 return false; 2597 if (!this->emitLoad(LHST, E)) 2598 return false; 2599 2600 // If necessary, convert LHS to its computation type. 2601 if (!this->emitPrimCast(LHST, classifyPrim(LHSComputationType), 2602 LHSComputationType, E)) 2603 return false; 2604 2605 // Now load RHS. 2606 if (!this->emitGetLocal(*RT, TempOffset, E)) 2607 return false; 2608 2609 switch (E->getOpcode()) { 2610 case BO_AddAssign: 2611 if (!this->emitAddf(getFPOptions(E), E)) 2612 return false; 2613 break; 2614 case BO_SubAssign: 2615 if (!this->emitSubf(getFPOptions(E), E)) 2616 return false; 2617 break; 2618 case BO_MulAssign: 2619 if (!this->emitMulf(getFPOptions(E), E)) 2620 return false; 2621 break; 2622 case BO_DivAssign: 2623 if (!this->emitDivf(getFPOptions(E), E)) 2624 return false; 2625 break; 2626 default: 2627 return false; 2628 } 2629 2630 if (!this->emitPrimCast(classifyPrim(ResultType), LHST, LHS->getType(), E)) 2631 return false; 2632 2633 if (DiscardResult) 2634 return this->emitStorePop(LHST, E); 2635 return this->emitStore(LHST, E); 2636 } 2637 2638 template <class Emitter> 2639 bool Compiler<Emitter>::VisitPointerCompoundAssignOperator( 2640 const CompoundAssignOperator *E) { 2641 BinaryOperatorKind Op = E->getOpcode(); 2642 const Expr *LHS = E->getLHS(); 2643 const Expr *RHS = E->getRHS(); 2644 std::optional<PrimType> LT = classify(LHS->getType()); 2645 std::optional<PrimType> RT = classify(RHS->getType()); 2646 2647 if (Op != BO_AddAssign && Op != BO_SubAssign) 2648 return false; 2649 2650 if (!LT || !RT) 2651 return false; 2652 2653 if (!visit(LHS)) 2654 return false; 2655 2656 if (!this->emitLoad(*LT, LHS)) 2657 return false; 2658 2659 if (!visit(RHS)) 2660 return false; 2661 2662 if (Op == BO_AddAssign) { 2663 if (!this->emitAddOffset(*RT, E)) 2664 return false; 2665 } else { 2666 if (!this->emitSubOffset(*RT, E)) 2667 return false; 2668 } 2669 2670 if (DiscardResult) 2671 return this->emitStorePopPtr(E); 2672 return this->emitStorePtr(E); 2673 } 2674 2675 template <class Emitter> 2676 bool Compiler<Emitter>::VisitCompoundAssignOperator( 2677 const CompoundAssignOperator *E) { 2678 if (E->getType()->isVectorType()) 2679 return VisitVectorBinOp(E); 2680 2681 const Expr *LHS = E->getLHS(); 2682 const Expr *RHS = E->getRHS(); 2683 std::optional<PrimType> LHSComputationT = 2684 classify(E->getComputationLHSType()); 2685 std::optional<PrimType> LT = classify(LHS->getType()); 2686 std::optional<PrimType> RT = classify(RHS->getType()); 2687 std::optional<PrimType> ResultT = classify(E->getType()); 2688 2689 if (!Ctx.getLangOpts().CPlusPlus14) 2690 return this->visit(RHS) && this->visit(LHS) && this->emitError(E); 2691 2692 if (!LT || !RT || !ResultT || !LHSComputationT) 2693 return false; 2694 2695 // Handle floating point operations separately here, since they 2696 // require special care. 2697 2698 if (ResultT == PT_Float || RT == PT_Float) 2699 return VisitFloatCompoundAssignOperator(E); 2700 2701 if (E->getType()->isPointerType()) 2702 return VisitPointerCompoundAssignOperator(E); 2703 2704 assert(!E->getType()->isPointerType() && "Handled above"); 2705 assert(!E->getType()->isFloatingType() && "Handled above"); 2706 2707 // C++17 onwards require that we evaluate the RHS first. 2708 // Compute RHS and save it in a temporary variable so we can 2709 // load it again later. 2710 // FIXME: Compound assignments are unsequenced in C, so we might 2711 // have to figure out how to reject them. 2712 if (!visit(RHS)) 2713 return false; 2714 2715 unsigned TempOffset = this->allocateLocalPrimitive(E, *RT, /*IsConst=*/true); 2716 2717 if (!this->emitSetLocal(*RT, TempOffset, E)) 2718 return false; 2719 2720 // Get LHS pointer, load its value and cast it to the 2721 // computation type if necessary. 2722 if (!visit(LHS)) 2723 return false; 2724 if (!this->emitLoad(*LT, E)) 2725 return false; 2726 if (LT != LHSComputationT) { 2727 if (!this->emitCast(*LT, *LHSComputationT, E)) 2728 return false; 2729 } 2730 2731 // Get the RHS value on the stack. 2732 if (!this->emitGetLocal(*RT, TempOffset, E)) 2733 return false; 2734 2735 // Perform operation. 2736 switch (E->getOpcode()) { 2737 case BO_AddAssign: 2738 if (!this->emitAdd(*LHSComputationT, E)) 2739 return false; 2740 break; 2741 case BO_SubAssign: 2742 if (!this->emitSub(*LHSComputationT, E)) 2743 return false; 2744 break; 2745 case BO_MulAssign: 2746 if (!this->emitMul(*LHSComputationT, E)) 2747 return false; 2748 break; 2749 case BO_DivAssign: 2750 if (!this->emitDiv(*LHSComputationT, E)) 2751 return false; 2752 break; 2753 case BO_RemAssign: 2754 if (!this->emitRem(*LHSComputationT, E)) 2755 return false; 2756 break; 2757 case BO_ShlAssign: 2758 if (!this->emitShl(*LHSComputationT, *RT, E)) 2759 return false; 2760 break; 2761 case BO_ShrAssign: 2762 if (!this->emitShr(*LHSComputationT, *RT, E)) 2763 return false; 2764 break; 2765 case BO_AndAssign: 2766 if (!this->emitBitAnd(*LHSComputationT, E)) 2767 return false; 2768 break; 2769 case BO_XorAssign: 2770 if (!this->emitBitXor(*LHSComputationT, E)) 2771 return false; 2772 break; 2773 case BO_OrAssign: 2774 if (!this->emitBitOr(*LHSComputationT, E)) 2775 return false; 2776 break; 2777 default: 2778 llvm_unreachable("Unimplemented compound assign operator"); 2779 } 2780 2781 // And now cast from LHSComputationT to ResultT. 2782 if (ResultT != LHSComputationT) { 2783 if (!this->emitCast(*LHSComputationT, *ResultT, E)) 2784 return false; 2785 } 2786 2787 // And store the result in LHS. 2788 if (DiscardResult) { 2789 if (LHS->refersToBitField()) 2790 return this->emitStoreBitFieldPop(*ResultT, E); 2791 return this->emitStorePop(*ResultT, E); 2792 } 2793 if (LHS->refersToBitField()) 2794 return this->emitStoreBitField(*ResultT, E); 2795 return this->emitStore(*ResultT, E); 2796 } 2797 2798 template <class Emitter> 2799 bool Compiler<Emitter>::VisitExprWithCleanups(const ExprWithCleanups *E) { 2800 LocalScope<Emitter> ES(this); 2801 const Expr *SubExpr = E->getSubExpr(); 2802 2803 return this->delegate(SubExpr) && ES.destroyLocals(E); 2804 } 2805 2806 template <class Emitter> 2807 bool Compiler<Emitter>::VisitMaterializeTemporaryExpr( 2808 const MaterializeTemporaryExpr *E) { 2809 const Expr *SubExpr = E->getSubExpr(); 2810 2811 if (Initializing) { 2812 // We already have a value, just initialize that. 2813 return this->delegate(SubExpr); 2814 } 2815 // If we don't end up using the materialized temporary anyway, don't 2816 // bother creating it. 2817 if (DiscardResult) 2818 return this->discard(SubExpr); 2819 2820 // When we're initializing a global variable *or* the storage duration of 2821 // the temporary is explicitly static, create a global variable. 2822 std::optional<PrimType> SubExprT = classify(SubExpr); 2823 bool IsStatic = E->getStorageDuration() == SD_Static; 2824 if (IsStatic) { 2825 std::optional<unsigned> GlobalIndex = P.createGlobal(E); 2826 if (!GlobalIndex) 2827 return false; 2828 2829 const LifetimeExtendedTemporaryDecl *TempDecl = 2830 E->getLifetimeExtendedTemporaryDecl(); 2831 if (IsStatic) 2832 assert(TempDecl); 2833 2834 if (SubExprT) { 2835 if (!this->visit(SubExpr)) 2836 return false; 2837 if (IsStatic) { 2838 if (!this->emitInitGlobalTemp(*SubExprT, *GlobalIndex, TempDecl, E)) 2839 return false; 2840 } else { 2841 if (!this->emitInitGlobal(*SubExprT, *GlobalIndex, E)) 2842 return false; 2843 } 2844 return this->emitGetPtrGlobal(*GlobalIndex, E); 2845 } 2846 2847 if (!this->checkLiteralType(SubExpr)) 2848 return false; 2849 // Non-primitive values. 2850 if (!this->emitGetPtrGlobal(*GlobalIndex, E)) 2851 return false; 2852 if (!this->visitInitializer(SubExpr)) 2853 return false; 2854 if (IsStatic) 2855 return this->emitInitGlobalTempComp(TempDecl, E); 2856 return true; 2857 } 2858 2859 // For everyhing else, use local variables. 2860 if (SubExprT) { 2861 bool IsConst = SubExpr->getType().isConstQualified(); 2862 unsigned LocalIndex = 2863 allocateLocalPrimitive(E, *SubExprT, IsConst, E->getExtendingDecl()); 2864 if (!this->visit(SubExpr)) 2865 return false; 2866 if (!this->emitSetLocal(*SubExprT, LocalIndex, E)) 2867 return false; 2868 return this->emitGetPtrLocal(LocalIndex, E); 2869 } else { 2870 2871 if (!this->checkLiteralType(SubExpr)) 2872 return false; 2873 2874 const Expr *Inner = E->getSubExpr()->skipRValueSubobjectAdjustments(); 2875 if (std::optional<unsigned> LocalIndex = 2876 allocateLocal(E, Inner->getType(), E->getExtendingDecl())) { 2877 InitLinkScope<Emitter> ILS(this, InitLink::Temp(*LocalIndex)); 2878 if (!this->emitGetPtrLocal(*LocalIndex, E)) 2879 return false; 2880 return this->visitInitializer(SubExpr) && this->emitFinishInit(E); 2881 } 2882 } 2883 return false; 2884 } 2885 2886 template <class Emitter> 2887 bool Compiler<Emitter>::VisitCXXBindTemporaryExpr( 2888 const CXXBindTemporaryExpr *E) { 2889 const Expr *SubExpr = E->getSubExpr(); 2890 2891 if (Initializing) 2892 return this->delegate(SubExpr); 2893 2894 // Make sure we create a temporary even if we're discarding, since that will 2895 // make sure we will also call the destructor. 2896 2897 if (!this->visit(SubExpr)) 2898 return false; 2899 2900 if (DiscardResult) 2901 return this->emitPopPtr(E); 2902 return true; 2903 } 2904 2905 template <class Emitter> 2906 bool Compiler<Emitter>::VisitCompoundLiteralExpr(const CompoundLiteralExpr *E) { 2907 const Expr *Init = E->getInitializer(); 2908 if (DiscardResult) 2909 return this->discard(Init); 2910 2911 if (Initializing) { 2912 // We already have a value, just initialize that. 2913 return this->visitInitializer(Init) && this->emitFinishInit(E); 2914 } 2915 2916 std::optional<PrimType> T = classify(E->getType()); 2917 if (E->isFileScope()) { 2918 // Avoid creating a variable if this is a primitive RValue anyway. 2919 if (T && !E->isLValue()) 2920 return this->delegate(Init); 2921 2922 if (std::optional<unsigned> GlobalIndex = P.createGlobal(E)) { 2923 if (!this->emitGetPtrGlobal(*GlobalIndex, E)) 2924 return false; 2925 2926 if (T) { 2927 if (!this->visit(Init)) 2928 return false; 2929 return this->emitInitGlobal(*T, *GlobalIndex, E); 2930 } 2931 2932 return this->visitInitializer(Init) && this->emitFinishInit(E); 2933 } 2934 2935 return false; 2936 } 2937 2938 // Otherwise, use a local variable. 2939 if (T && !E->isLValue()) { 2940 // For primitive types, we just visit the initializer. 2941 return this->delegate(Init); 2942 } 2943 2944 unsigned LocalIndex; 2945 if (T) 2946 LocalIndex = this->allocateLocalPrimitive(Init, *T, /*IsConst=*/false); 2947 else if (std::optional<unsigned> MaybeIndex = this->allocateLocal(Init)) 2948 LocalIndex = *MaybeIndex; 2949 else 2950 return false; 2951 2952 if (!this->emitGetPtrLocal(LocalIndex, E)) 2953 return false; 2954 2955 if (T) 2956 return this->visit(Init) && this->emitInit(*T, E); 2957 return this->visitInitializer(Init) && this->emitFinishInit(E); 2958 } 2959 2960 template <class Emitter> 2961 bool Compiler<Emitter>::VisitTypeTraitExpr(const TypeTraitExpr *E) { 2962 if (DiscardResult) 2963 return true; 2964 if (E->isStoredAsBoolean()) { 2965 if (E->getType()->isBooleanType()) 2966 return this->emitConstBool(E->getBoolValue(), E); 2967 return this->emitConst(E->getBoolValue(), E); 2968 } 2969 PrimType T = classifyPrim(E->getType()); 2970 return this->visitAPValue(E->getAPValue(), T, E); 2971 } 2972 2973 template <class Emitter> 2974 bool Compiler<Emitter>::VisitArrayTypeTraitExpr(const ArrayTypeTraitExpr *E) { 2975 if (DiscardResult) 2976 return true; 2977 return this->emitConst(E->getValue(), E); 2978 } 2979 2980 template <class Emitter> 2981 bool Compiler<Emitter>::VisitLambdaExpr(const LambdaExpr *E) { 2982 if (DiscardResult) 2983 return true; 2984 2985 assert(Initializing); 2986 const Record *R = P.getOrCreateRecord(E->getLambdaClass()); 2987 if (!R) 2988 return false; 2989 2990 auto *CaptureInitIt = E->capture_init_begin(); 2991 // Initialize all fields (which represent lambda captures) of the 2992 // record with their initializers. 2993 for (const Record::Field &F : R->fields()) { 2994 const Expr *Init = *CaptureInitIt; 2995 if (!Init || Init->containsErrors()) 2996 continue; 2997 ++CaptureInitIt; 2998 2999 if (std::optional<PrimType> T = classify(Init)) { 3000 if (!this->visit(Init)) 3001 return false; 3002 3003 if (!this->emitInitField(*T, F.Offset, E)) 3004 return false; 3005 } else { 3006 if (!this->emitGetPtrField(F.Offset, E)) 3007 return false; 3008 3009 if (!this->visitInitializer(Init)) 3010 return false; 3011 3012 if (!this->emitPopPtr(E)) 3013 return false; 3014 } 3015 } 3016 3017 return true; 3018 } 3019 3020 template <class Emitter> 3021 bool Compiler<Emitter>::VisitPredefinedExpr(const PredefinedExpr *E) { 3022 if (DiscardResult) 3023 return true; 3024 3025 if (!Initializing) { 3026 unsigned StringIndex = P.createGlobalString(E->getFunctionName(), E); 3027 return this->emitGetPtrGlobal(StringIndex, E); 3028 } 3029 3030 return this->delegate(E->getFunctionName()); 3031 } 3032 3033 template <class Emitter> 3034 bool Compiler<Emitter>::VisitCXXThrowExpr(const CXXThrowExpr *E) { 3035 if (E->getSubExpr() && !this->discard(E->getSubExpr())) 3036 return false; 3037 3038 return this->emitInvalid(E); 3039 } 3040 3041 template <class Emitter> 3042 bool Compiler<Emitter>::VisitCXXReinterpretCastExpr( 3043 const CXXReinterpretCastExpr *E) { 3044 const Expr *SubExpr = E->getSubExpr(); 3045 3046 std::optional<PrimType> FromT = classify(SubExpr); 3047 std::optional<PrimType> ToT = classify(E); 3048 3049 if (!FromT || !ToT) 3050 return this->emitInvalidCast(CastKind::Reinterpret, /*Fatal=*/true, E); 3051 3052 if (FromT == PT_Ptr || ToT == PT_Ptr) { 3053 // Both types could be PT_Ptr because their expressions are glvalues. 3054 std::optional<PrimType> PointeeFromT; 3055 if (SubExpr->getType()->isPointerOrReferenceType()) 3056 PointeeFromT = classify(SubExpr->getType()->getPointeeType()); 3057 else 3058 PointeeFromT = classify(SubExpr->getType()); 3059 3060 std::optional<PrimType> PointeeToT; 3061 if (E->getType()->isPointerOrReferenceType()) 3062 PointeeToT = classify(E->getType()->getPointeeType()); 3063 else 3064 PointeeToT = classify(E->getType()); 3065 3066 bool Fatal = true; 3067 if (PointeeToT && PointeeFromT) { 3068 if (isIntegralType(*PointeeFromT) && isIntegralType(*PointeeToT)) 3069 Fatal = false; 3070 } else { 3071 Fatal = SubExpr->getType().getTypePtr() != E->getType().getTypePtr(); 3072 } 3073 3074 if (!this->emitInvalidCast(CastKind::Reinterpret, Fatal, E)) 3075 return false; 3076 3077 if (E->getCastKind() == CK_LValueBitCast) 3078 return this->delegate(SubExpr); 3079 return this->VisitCastExpr(E); 3080 } 3081 3082 // Try to actually do the cast. 3083 bool Fatal = (ToT != FromT); 3084 if (!this->emitInvalidCast(CastKind::Reinterpret, Fatal, E)) 3085 return false; 3086 3087 return this->VisitCastExpr(E); 3088 } 3089 3090 template <class Emitter> 3091 bool Compiler<Emitter>::VisitCXXDynamicCastExpr(const CXXDynamicCastExpr *E) { 3092 3093 if (!Ctx.getLangOpts().CPlusPlus20) { 3094 if (!this->emitInvalidCast(CastKind::Dynamic, /*Fatal=*/false, E)) 3095 return false; 3096 } 3097 3098 return this->VisitCastExpr(E); 3099 } 3100 3101 template <class Emitter> 3102 bool Compiler<Emitter>::VisitCXXNoexceptExpr(const CXXNoexceptExpr *E) { 3103 assert(E->getType()->isBooleanType()); 3104 3105 if (DiscardResult) 3106 return true; 3107 return this->emitConstBool(E->getValue(), E); 3108 } 3109 3110 template <class Emitter> 3111 bool Compiler<Emitter>::VisitCXXConstructExpr(const CXXConstructExpr *E) { 3112 QualType T = E->getType(); 3113 assert(!classify(T)); 3114 3115 if (T->isRecordType()) { 3116 const CXXConstructorDecl *Ctor = E->getConstructor(); 3117 3118 // Trivial copy/move constructor. Avoid copy. 3119 if (Ctor->isDefaulted() && Ctor->isCopyOrMoveConstructor() && 3120 Ctor->isTrivial() && 3121 E->getArg(0)->isTemporaryObject(Ctx.getASTContext(), 3122 T->getAsCXXRecordDecl())) 3123 return this->visitInitializer(E->getArg(0)); 3124 3125 // If we're discarding a construct expression, we still need 3126 // to allocate a variable and call the constructor and destructor. 3127 if (DiscardResult) { 3128 if (Ctor->isTrivial()) 3129 return true; 3130 assert(!Initializing); 3131 std::optional<unsigned> LocalIndex = allocateLocal(E); 3132 3133 if (!LocalIndex) 3134 return false; 3135 3136 if (!this->emitGetPtrLocal(*LocalIndex, E)) 3137 return false; 3138 } 3139 3140 // Zero initialization. 3141 if (E->requiresZeroInitialization()) { 3142 const Record *R = getRecord(E->getType()); 3143 3144 if (!this->visitZeroRecordInitializer(R, E)) 3145 return false; 3146 3147 // If the constructor is trivial anyway, we're done. 3148 if (Ctor->isTrivial()) 3149 return true; 3150 } 3151 3152 const Function *Func = getFunction(Ctor); 3153 3154 if (!Func) 3155 return false; 3156 3157 assert(Func->hasThisPointer()); 3158 assert(!Func->hasRVO()); 3159 3160 // The This pointer is already on the stack because this is an initializer, 3161 // but we need to dup() so the call() below has its own copy. 3162 if (!this->emitDupPtr(E)) 3163 return false; 3164 3165 // Constructor arguments. 3166 for (const auto *Arg : E->arguments()) { 3167 if (!this->visit(Arg)) 3168 return false; 3169 } 3170 3171 if (Func->isVariadic()) { 3172 uint32_t VarArgSize = 0; 3173 unsigned NumParams = Func->getNumWrittenParams(); 3174 for (unsigned I = NumParams, N = E->getNumArgs(); I != N; ++I) { 3175 VarArgSize += 3176 align(primSize(classify(E->getArg(I)->getType()).value_or(PT_Ptr))); 3177 } 3178 if (!this->emitCallVar(Func, VarArgSize, E)) 3179 return false; 3180 } else { 3181 if (!this->emitCall(Func, 0, E)) { 3182 // When discarding, we don't need the result anyway, so clean up 3183 // the instance dup we did earlier in case surrounding code wants 3184 // to keep evaluating. 3185 if (DiscardResult) 3186 (void)this->emitPopPtr(E); 3187 return false; 3188 } 3189 } 3190 3191 if (DiscardResult) 3192 return this->emitPopPtr(E); 3193 return this->emitFinishInit(E); 3194 } 3195 3196 if (T->isArrayType()) { 3197 const ConstantArrayType *CAT = 3198 Ctx.getASTContext().getAsConstantArrayType(E->getType()); 3199 if (!CAT) 3200 return false; 3201 3202 size_t NumElems = CAT->getZExtSize(); 3203 const Function *Func = getFunction(E->getConstructor()); 3204 if (!Func) 3205 return false; 3206 3207 // FIXME(perf): We're calling the constructor once per array element here, 3208 // in the old intepreter we had a special-case for trivial constructors. 3209 for (size_t I = 0; I != NumElems; ++I) { 3210 if (!this->emitConstUint64(I, E)) 3211 return false; 3212 if (!this->emitArrayElemPtrUint64(E)) 3213 return false; 3214 3215 // Constructor arguments. 3216 for (const auto *Arg : E->arguments()) { 3217 if (!this->visit(Arg)) 3218 return false; 3219 } 3220 3221 if (!this->emitCall(Func, 0, E)) 3222 return false; 3223 } 3224 return true; 3225 } 3226 3227 return false; 3228 } 3229 3230 template <class Emitter> 3231 bool Compiler<Emitter>::VisitSourceLocExpr(const SourceLocExpr *E) { 3232 if (DiscardResult) 3233 return true; 3234 3235 const APValue Val = 3236 E->EvaluateInContext(Ctx.getASTContext(), SourceLocDefaultExpr); 3237 3238 // Things like __builtin_LINE(). 3239 if (E->getType()->isIntegerType()) { 3240 assert(Val.isInt()); 3241 const APSInt &I = Val.getInt(); 3242 return this->emitConst(I, E); 3243 } 3244 // Otherwise, the APValue is an LValue, with only one element. 3245 // Theoretically, we don't need the APValue at all of course. 3246 assert(E->getType()->isPointerType()); 3247 assert(Val.isLValue()); 3248 const APValue::LValueBase &Base = Val.getLValueBase(); 3249 if (const Expr *LValueExpr = Base.dyn_cast<const Expr *>()) 3250 return this->visit(LValueExpr); 3251 3252 // Otherwise, we have a decl (which is the case for 3253 // __builtin_source_location). 3254 assert(Base.is<const ValueDecl *>()); 3255 assert(Val.getLValuePath().size() == 0); 3256 const auto *BaseDecl = Base.dyn_cast<const ValueDecl *>(); 3257 assert(BaseDecl); 3258 3259 auto *UGCD = cast<UnnamedGlobalConstantDecl>(BaseDecl); 3260 3261 std::optional<unsigned> GlobalIndex = P.getOrCreateGlobal(UGCD); 3262 if (!GlobalIndex) 3263 return false; 3264 3265 if (!this->emitGetPtrGlobal(*GlobalIndex, E)) 3266 return false; 3267 3268 const Record *R = getRecord(E->getType()); 3269 const APValue &V = UGCD->getValue(); 3270 for (unsigned I = 0, N = R->getNumFields(); I != N; ++I) { 3271 const Record::Field *F = R->getField(I); 3272 const APValue &FieldValue = V.getStructField(I); 3273 3274 PrimType FieldT = classifyPrim(F->Decl->getType()); 3275 3276 if (!this->visitAPValue(FieldValue, FieldT, E)) 3277 return false; 3278 if (!this->emitInitField(FieldT, F->Offset, E)) 3279 return false; 3280 } 3281 3282 // Leave the pointer to the global on the stack. 3283 return true; 3284 } 3285 3286 template <class Emitter> 3287 bool Compiler<Emitter>::VisitOffsetOfExpr(const OffsetOfExpr *E) { 3288 unsigned N = E->getNumComponents(); 3289 if (N == 0) 3290 return false; 3291 3292 for (unsigned I = 0; I != N; ++I) { 3293 const OffsetOfNode &Node = E->getComponent(I); 3294 if (Node.getKind() == OffsetOfNode::Array) { 3295 const Expr *ArrayIndexExpr = E->getIndexExpr(Node.getArrayExprIndex()); 3296 PrimType IndexT = classifyPrim(ArrayIndexExpr->getType()); 3297 3298 if (DiscardResult) { 3299 if (!this->discard(ArrayIndexExpr)) 3300 return false; 3301 continue; 3302 } 3303 3304 if (!this->visit(ArrayIndexExpr)) 3305 return false; 3306 // Cast to Sint64. 3307 if (IndexT != PT_Sint64) { 3308 if (!this->emitCast(IndexT, PT_Sint64, E)) 3309 return false; 3310 } 3311 } 3312 } 3313 3314 if (DiscardResult) 3315 return true; 3316 3317 PrimType T = classifyPrim(E->getType()); 3318 return this->emitOffsetOf(T, E, E); 3319 } 3320 3321 template <class Emitter> 3322 bool Compiler<Emitter>::VisitCXXScalarValueInitExpr( 3323 const CXXScalarValueInitExpr *E) { 3324 QualType Ty = E->getType(); 3325 3326 if (DiscardResult || Ty->isVoidType()) 3327 return true; 3328 3329 if (std::optional<PrimType> T = classify(Ty)) 3330 return this->visitZeroInitializer(*T, Ty, E); 3331 3332 if (const auto *CT = Ty->getAs<ComplexType>()) { 3333 if (!Initializing) { 3334 std::optional<unsigned> LocalIndex = allocateLocal(E); 3335 if (!LocalIndex) 3336 return false; 3337 if (!this->emitGetPtrLocal(*LocalIndex, E)) 3338 return false; 3339 } 3340 3341 // Initialize both fields to 0. 3342 QualType ElemQT = CT->getElementType(); 3343 PrimType ElemT = classifyPrim(ElemQT); 3344 3345 for (unsigned I = 0; I != 2; ++I) { 3346 if (!this->visitZeroInitializer(ElemT, ElemQT, E)) 3347 return false; 3348 if (!this->emitInitElem(ElemT, I, E)) 3349 return false; 3350 } 3351 return true; 3352 } 3353 3354 if (const auto *VT = Ty->getAs<VectorType>()) { 3355 // FIXME: Code duplication with the _Complex case above. 3356 if (!Initializing) { 3357 std::optional<unsigned> LocalIndex = allocateLocal(E); 3358 if (!LocalIndex) 3359 return false; 3360 if (!this->emitGetPtrLocal(*LocalIndex, E)) 3361 return false; 3362 } 3363 3364 // Initialize all fields to 0. 3365 QualType ElemQT = VT->getElementType(); 3366 PrimType ElemT = classifyPrim(ElemQT); 3367 3368 for (unsigned I = 0, N = VT->getNumElements(); I != N; ++I) { 3369 if (!this->visitZeroInitializer(ElemT, ElemQT, E)) 3370 return false; 3371 if (!this->emitInitElem(ElemT, I, E)) 3372 return false; 3373 } 3374 return true; 3375 } 3376 3377 return false; 3378 } 3379 3380 template <class Emitter> 3381 bool Compiler<Emitter>::VisitSizeOfPackExpr(const SizeOfPackExpr *E) { 3382 return this->emitConst(E->getPackLength(), E); 3383 } 3384 3385 template <class Emitter> 3386 bool Compiler<Emitter>::VisitGenericSelectionExpr( 3387 const GenericSelectionExpr *E) { 3388 return this->delegate(E->getResultExpr()); 3389 } 3390 3391 template <class Emitter> 3392 bool Compiler<Emitter>::VisitChooseExpr(const ChooseExpr *E) { 3393 return this->delegate(E->getChosenSubExpr()); 3394 } 3395 3396 template <class Emitter> 3397 bool Compiler<Emitter>::VisitObjCBoolLiteralExpr(const ObjCBoolLiteralExpr *E) { 3398 if (DiscardResult) 3399 return true; 3400 3401 return this->emitConst(E->getValue(), E); 3402 } 3403 3404 template <class Emitter> 3405 bool Compiler<Emitter>::VisitCXXInheritedCtorInitExpr( 3406 const CXXInheritedCtorInitExpr *E) { 3407 const CXXConstructorDecl *Ctor = E->getConstructor(); 3408 assert(!Ctor->isTrivial() && 3409 "Trivial CXXInheritedCtorInitExpr, implement. (possible?)"); 3410 const Function *F = this->getFunction(Ctor); 3411 assert(F); 3412 assert(!F->hasRVO()); 3413 assert(F->hasThisPointer()); 3414 3415 if (!this->emitDupPtr(SourceInfo{})) 3416 return false; 3417 3418 // Forward all arguments of the current function (which should be a 3419 // constructor itself) to the inherited ctor. 3420 // This is necessary because the calling code has pushed the pointer 3421 // of the correct base for us already, but the arguments need 3422 // to come after. 3423 unsigned Offset = align(primSize(PT_Ptr)); // instance pointer. 3424 for (const ParmVarDecl *PD : Ctor->parameters()) { 3425 PrimType PT = this->classify(PD->getType()).value_or(PT_Ptr); 3426 3427 if (!this->emitGetParam(PT, Offset, E)) 3428 return false; 3429 Offset += align(primSize(PT)); 3430 } 3431 3432 return this->emitCall(F, 0, E); 3433 } 3434 3435 // FIXME: This function has become rather unwieldy, especially 3436 // the part where we initialize an array allocation of dynamic size. 3437 template <class Emitter> 3438 bool Compiler<Emitter>::VisitCXXNewExpr(const CXXNewExpr *E) { 3439 assert(classifyPrim(E->getType()) == PT_Ptr); 3440 const Expr *Init = E->getInitializer(); 3441 QualType ElementType = E->getAllocatedType(); 3442 std::optional<PrimType> ElemT = classify(ElementType); 3443 unsigned PlacementArgs = E->getNumPlacementArgs(); 3444 const FunctionDecl *OperatorNew = E->getOperatorNew(); 3445 const Expr *PlacementDest = nullptr; 3446 bool IsNoThrow = false; 3447 3448 if (PlacementArgs != 0) { 3449 // FIXME: There is no restriction on this, but it's not clear that any 3450 // other form makes any sense. We get here for cases such as: 3451 // 3452 // new (std::align_val_t{N}) X(int) 3453 // 3454 // (which should presumably be valid only if N is a multiple of 3455 // alignof(int), and in any case can't be deallocated unless N is 3456 // alignof(X) and X has new-extended alignment). 3457 if (PlacementArgs == 1) { 3458 const Expr *Arg1 = E->getPlacementArg(0); 3459 if (OperatorNew->isReservedGlobalPlacementOperator()) { 3460 if (!this->emitCheckPlacementNew(E, E)) 3461 return false; 3462 PlacementDest = Arg1; 3463 } else if ( 3464 Arg1->getType()->isNothrowT() && 3465 OperatorNew 3466 ->isUsableAsGlobalAllocationFunctionInConstantEvaluation()) { 3467 if (!this->discard(Arg1)) 3468 return false; 3469 IsNoThrow = true; 3470 } else { 3471 // Any other placement list is invalid. This includes a user-declared 3472 // allocation function taking std::nothrow_t, e.g. by value. 3473 return this->emitInvalidNewDeleteExpr(E, E); 3474 } 3475 } else { 3476 // Always invalid. 3477 return this->emitInvalid(E); 3478 } 3479 } else if (!OperatorNew 3480 ->isUsableAsGlobalAllocationFunctionInConstantEvaluation()) 3481 return this->emitInvalidNewDeleteExpr(E, E); 3482 3483 const Descriptor *Desc; 3484 if (!PlacementDest) { 3485 if (ElemT) { 3486 if (E->isArray()) 3487 Desc = nullptr; // We're not going to use it in this case. 3488 else 3489 Desc = P.createDescriptor(E, *ElemT, /*SourceTy=*/nullptr, 3490 Descriptor::InlineDescMD); 3491 } else { 3492 Desc = P.createDescriptor( 3493 E, ElementType.getTypePtr(), 3494 E->isArray() ? std::nullopt : Descriptor::InlineDescMD, 3495 /*IsConst=*/false, /*IsTemporary=*/false, /*IsMutable=*/false, 3496 /*IsVolatile=*/false, Init); 3497 } 3498 } 3499 3500 if (E->isArray()) { 3501 std::optional<const Expr *> ArraySizeExpr = E->getArraySize(); 3502 if (!ArraySizeExpr) 3503 return false; 3504 3505 const Expr *Stripped = *ArraySizeExpr; 3506 for (; auto *ICE = dyn_cast<ImplicitCastExpr>(Stripped); 3507 Stripped = ICE->getSubExpr()) 3508 if (ICE->getCastKind() != CK_NoOp && 3509 ICE->getCastKind() != CK_IntegralCast) 3510 break; 3511 3512 PrimType SizeT = classifyPrim(Stripped->getType()); 3513 3514 // Save evaluated array size to a variable. 3515 unsigned ArrayLen = 3516 allocateLocalPrimitive(Stripped, SizeT, /*IsConst=*/false); 3517 if (!this->visit(Stripped)) 3518 return false; 3519 if (!this->emitSetLocal(SizeT, ArrayLen, E)) 3520 return false; 3521 3522 if (PlacementDest) { 3523 if (!this->visit(PlacementDest)) 3524 return false; 3525 if (!this->emitStartLifetime(E)) 3526 return false; 3527 if (!this->emitGetLocal(SizeT, ArrayLen, E)) 3528 return false; 3529 if (!this->emitCheckNewTypeMismatchArray(SizeT, E, E)) 3530 return false; 3531 } else { 3532 if (!this->emitGetLocal(SizeT, ArrayLen, E)) 3533 return false; 3534 3535 if (ElemT) { 3536 // N primitive elements. 3537 if (!this->emitAllocN(SizeT, *ElemT, E, IsNoThrow, E)) 3538 return false; 3539 } else { 3540 // N Composite elements. 3541 if (!this->emitAllocCN(SizeT, Desc, IsNoThrow, E)) 3542 return false; 3543 } 3544 } 3545 3546 if (Init) { 3547 QualType InitType = Init->getType(); 3548 size_t StaticInitElems = 0; 3549 const Expr *DynamicInit = nullptr; 3550 if (const ConstantArrayType *CAT = 3551 Ctx.getASTContext().getAsConstantArrayType(InitType)) { 3552 StaticInitElems = CAT->getZExtSize(); 3553 if (!this->visitInitializer(Init)) 3554 return false; 3555 3556 if (const auto *ILE = dyn_cast<InitListExpr>(Init); 3557 ILE && ILE->hasArrayFiller()) 3558 DynamicInit = ILE->getArrayFiller(); 3559 } 3560 3561 // The initializer initializes a certain number of elements, S. 3562 // However, the complete number of elements, N, might be larger than that. 3563 // In this case, we need to get an initializer for the remaining elements. 3564 // There are to cases: 3565 // 1) For the form 'new Struct[n];', the initializer is a 3566 // CXXConstructExpr and its type is an IncompleteArrayType. 3567 // 2) For the form 'new Struct[n]{1,2,3}', the initializer is an 3568 // InitListExpr and the initializer for the remaining elements 3569 // is the array filler. 3570 3571 if (DynamicInit || InitType->isIncompleteArrayType()) { 3572 const Function *CtorFunc = nullptr; 3573 if (const auto *CE = dyn_cast<CXXConstructExpr>(Init)) { 3574 CtorFunc = getFunction(CE->getConstructor()); 3575 if (!CtorFunc) 3576 return false; 3577 } else if (!DynamicInit) 3578 DynamicInit = Init; 3579 3580 LabelTy EndLabel = this->getLabel(); 3581 LabelTy StartLabel = this->getLabel(); 3582 3583 // In the nothrow case, the alloc above might have returned nullptr. 3584 // Don't call any constructors that case. 3585 if (IsNoThrow) { 3586 if (!this->emitDupPtr(E)) 3587 return false; 3588 if (!this->emitNullPtr(0, nullptr, E)) 3589 return false; 3590 if (!this->emitEQPtr(E)) 3591 return false; 3592 if (!this->jumpTrue(EndLabel)) 3593 return false; 3594 } 3595 3596 // Create loop variables. 3597 unsigned Iter = 3598 allocateLocalPrimitive(Stripped, SizeT, /*IsConst=*/false); 3599 if (!this->emitConst(StaticInitElems, SizeT, E)) 3600 return false; 3601 if (!this->emitSetLocal(SizeT, Iter, E)) 3602 return false; 3603 3604 this->fallthrough(StartLabel); 3605 this->emitLabel(StartLabel); 3606 // Condition. Iter < ArrayLen? 3607 if (!this->emitGetLocal(SizeT, Iter, E)) 3608 return false; 3609 if (!this->emitGetLocal(SizeT, ArrayLen, E)) 3610 return false; 3611 if (!this->emitLT(SizeT, E)) 3612 return false; 3613 if (!this->jumpFalse(EndLabel)) 3614 return false; 3615 3616 // Pointer to the allocated array is already on the stack. 3617 if (!this->emitGetLocal(SizeT, Iter, E)) 3618 return false; 3619 if (!this->emitArrayElemPtr(SizeT, E)) 3620 return false; 3621 3622 if (isa_and_nonnull<ImplicitValueInitExpr>(DynamicInit) && 3623 DynamicInit->getType()->isArrayType()) { 3624 QualType ElemType = 3625 DynamicInit->getType()->getAsArrayTypeUnsafe()->getElementType(); 3626 PrimType InitT = classifyPrim(ElemType); 3627 if (!this->visitZeroInitializer(InitT, ElemType, E)) 3628 return false; 3629 if (!this->emitStorePop(InitT, E)) 3630 return false; 3631 } else if (DynamicInit) { 3632 if (std::optional<PrimType> InitT = classify(DynamicInit)) { 3633 if (!this->visit(DynamicInit)) 3634 return false; 3635 if (!this->emitStorePop(*InitT, E)) 3636 return false; 3637 } else { 3638 if (!this->visitInitializer(DynamicInit)) 3639 return false; 3640 if (!this->emitPopPtr(E)) 3641 return false; 3642 } 3643 } else { 3644 assert(CtorFunc); 3645 if (!this->emitCall(CtorFunc, 0, E)) 3646 return false; 3647 } 3648 3649 // ++Iter; 3650 if (!this->emitGetPtrLocal(Iter, E)) 3651 return false; 3652 if (!this->emitIncPop(SizeT, false, E)) 3653 return false; 3654 3655 if (!this->jump(StartLabel)) 3656 return false; 3657 3658 this->fallthrough(EndLabel); 3659 this->emitLabel(EndLabel); 3660 } 3661 } 3662 } else { // Non-array. 3663 if (PlacementDest) { 3664 if (!this->visit(PlacementDest)) 3665 return false; 3666 if (!this->emitStartLifetime(E)) 3667 return false; 3668 if (!this->emitCheckNewTypeMismatch(E, E)) 3669 return false; 3670 } else { 3671 // Allocate just one element. 3672 if (!this->emitAlloc(Desc, E)) 3673 return false; 3674 } 3675 3676 if (Init) { 3677 if (ElemT) { 3678 if (!this->visit(Init)) 3679 return false; 3680 3681 if (!this->emitInit(*ElemT, E)) 3682 return false; 3683 } else { 3684 // Composite. 3685 if (!this->visitInitializer(Init)) 3686 return false; 3687 } 3688 } 3689 } 3690 3691 if (DiscardResult) 3692 return this->emitPopPtr(E); 3693 3694 return true; 3695 } 3696 3697 template <class Emitter> 3698 bool Compiler<Emitter>::VisitCXXDeleteExpr(const CXXDeleteExpr *E) { 3699 const Expr *Arg = E->getArgument(); 3700 3701 const FunctionDecl *OperatorDelete = E->getOperatorDelete(); 3702 3703 if (!OperatorDelete->isUsableAsGlobalAllocationFunctionInConstantEvaluation()) 3704 return this->emitInvalidNewDeleteExpr(E, E); 3705 3706 // Arg must be an lvalue. 3707 if (!this->visit(Arg)) 3708 return false; 3709 3710 return this->emitFree(E->isArrayForm(), E->isGlobalDelete(), E); 3711 } 3712 3713 template <class Emitter> 3714 bool Compiler<Emitter>::VisitBlockExpr(const BlockExpr *E) { 3715 if (DiscardResult) 3716 return true; 3717 3718 const Function *Func = nullptr; 3719 if (auto F = Ctx.getOrCreateObjCBlock(E)) 3720 Func = F; 3721 3722 if (!Func) 3723 return false; 3724 return this->emitGetFnPtr(Func, E); 3725 } 3726 3727 template <class Emitter> 3728 bool Compiler<Emitter>::VisitCXXTypeidExpr(const CXXTypeidExpr *E) { 3729 const Type *TypeInfoType = E->getType().getTypePtr(); 3730 3731 auto canonType = [](const Type *T) { 3732 return T->getCanonicalTypeUnqualified().getTypePtr(); 3733 }; 3734 3735 if (!E->isPotentiallyEvaluated()) { 3736 if (DiscardResult) 3737 return true; 3738 3739 if (E->isTypeOperand()) 3740 return this->emitGetTypeid( 3741 canonType(E->getTypeOperand(Ctx.getASTContext()).getTypePtr()), 3742 TypeInfoType, E); 3743 3744 return this->emitGetTypeid( 3745 canonType(E->getExprOperand()->getType().getTypePtr()), TypeInfoType, 3746 E); 3747 } 3748 3749 // Otherwise, we need to evaluate the expression operand. 3750 assert(E->getExprOperand()); 3751 assert(E->getExprOperand()->isLValue()); 3752 3753 if (!Ctx.getLangOpts().CPlusPlus20 && !this->emitDiagTypeid(E)) 3754 return false; 3755 3756 if (!this->visit(E->getExprOperand())) 3757 return false; 3758 3759 if (!this->emitGetTypeidPtr(TypeInfoType, E)) 3760 return false; 3761 if (DiscardResult) 3762 return this->emitPopPtr(E); 3763 return true; 3764 } 3765 3766 template <class Emitter> 3767 bool Compiler<Emitter>::VisitExpressionTraitExpr(const ExpressionTraitExpr *E) { 3768 assert(Ctx.getLangOpts().CPlusPlus); 3769 return this->emitConstBool(E->getValue(), E); 3770 } 3771 3772 template <class Emitter> 3773 bool Compiler<Emitter>::VisitCXXUuidofExpr(const CXXUuidofExpr *E) { 3774 if (DiscardResult) 3775 return true; 3776 assert(!Initializing); 3777 3778 const MSGuidDecl *GuidDecl = E->getGuidDecl(); 3779 const RecordDecl *RD = GuidDecl->getType()->getAsRecordDecl(); 3780 assert(RD); 3781 // If the definiton of the result type is incomplete, just return a dummy. 3782 // If (and when) that is read from, we will fail, but not now. 3783 if (!RD->isCompleteDefinition()) 3784 return this->emitDummyPtr(GuidDecl, E); 3785 3786 std::optional<unsigned> GlobalIndex = P.getOrCreateGlobal(GuidDecl); 3787 if (!GlobalIndex) 3788 return false; 3789 if (!this->emitGetPtrGlobal(*GlobalIndex, E)) 3790 return false; 3791 3792 assert(this->getRecord(E->getType())); 3793 3794 const APValue &V = GuidDecl->getAsAPValue(); 3795 if (V.getKind() == APValue::None) 3796 return true; 3797 3798 assert(V.isStruct()); 3799 assert(V.getStructNumBases() == 0); 3800 if (!this->visitAPValueInitializer(V, E, E->getType())) 3801 return false; 3802 3803 return this->emitFinishInit(E); 3804 } 3805 3806 template <class Emitter> 3807 bool Compiler<Emitter>::VisitRequiresExpr(const RequiresExpr *E) { 3808 assert(classifyPrim(E->getType()) == PT_Bool); 3809 if (DiscardResult) 3810 return true; 3811 return this->emitConstBool(E->isSatisfied(), E); 3812 } 3813 3814 template <class Emitter> 3815 bool Compiler<Emitter>::VisitConceptSpecializationExpr( 3816 const ConceptSpecializationExpr *E) { 3817 assert(classifyPrim(E->getType()) == PT_Bool); 3818 if (DiscardResult) 3819 return true; 3820 return this->emitConstBool(E->isSatisfied(), E); 3821 } 3822 3823 template <class Emitter> 3824 bool Compiler<Emitter>::VisitCXXRewrittenBinaryOperator( 3825 const CXXRewrittenBinaryOperator *E) { 3826 return this->delegate(E->getSemanticForm()); 3827 } 3828 3829 template <class Emitter> 3830 bool Compiler<Emitter>::VisitPseudoObjectExpr(const PseudoObjectExpr *E) { 3831 3832 for (const Expr *SemE : E->semantics()) { 3833 if (auto *OVE = dyn_cast<OpaqueValueExpr>(SemE)) { 3834 if (SemE == E->getResultExpr()) 3835 return false; 3836 3837 if (OVE->isUnique()) 3838 continue; 3839 3840 if (!this->discard(OVE)) 3841 return false; 3842 } else if (SemE == E->getResultExpr()) { 3843 if (!this->delegate(SemE)) 3844 return false; 3845 } else { 3846 if (!this->discard(SemE)) 3847 return false; 3848 } 3849 } 3850 return true; 3851 } 3852 3853 template <class Emitter> 3854 bool Compiler<Emitter>::VisitPackIndexingExpr(const PackIndexingExpr *E) { 3855 return this->delegate(E->getSelectedExpr()); 3856 } 3857 3858 template <class Emitter> 3859 bool Compiler<Emitter>::VisitRecoveryExpr(const RecoveryExpr *E) { 3860 return this->emitError(E); 3861 } 3862 3863 template <class Emitter> 3864 bool Compiler<Emitter>::VisitAddrLabelExpr(const AddrLabelExpr *E) { 3865 assert(E->getType()->isVoidPointerType()); 3866 3867 unsigned Offset = 3868 allocateLocalPrimitive(E->getLabel(), PT_Ptr, /*IsConst=*/true); 3869 3870 return this->emitGetLocal(PT_Ptr, Offset, E); 3871 } 3872 3873 template <class Emitter> 3874 bool Compiler<Emitter>::VisitConvertVectorExpr(const ConvertVectorExpr *E) { 3875 assert(Initializing); 3876 const auto *VT = E->getType()->castAs<VectorType>(); 3877 QualType ElemType = VT->getElementType(); 3878 PrimType ElemT = classifyPrim(ElemType); 3879 const Expr *Src = E->getSrcExpr(); 3880 QualType SrcType = Src->getType(); 3881 PrimType SrcElemT = classifyVectorElementType(SrcType); 3882 3883 unsigned SrcOffset = 3884 this->allocateLocalPrimitive(Src, PT_Ptr, /*IsConst=*/true); 3885 if (!this->visit(Src)) 3886 return false; 3887 if (!this->emitSetLocal(PT_Ptr, SrcOffset, E)) 3888 return false; 3889 3890 for (unsigned I = 0; I != VT->getNumElements(); ++I) { 3891 if (!this->emitGetLocal(PT_Ptr, SrcOffset, E)) 3892 return false; 3893 if (!this->emitArrayElemPop(SrcElemT, I, E)) 3894 return false; 3895 3896 // Cast to the desired result element type. 3897 if (SrcElemT != ElemT) { 3898 if (!this->emitPrimCast(SrcElemT, ElemT, ElemType, E)) 3899 return false; 3900 } else if (ElemType->isFloatingType() && SrcType != ElemType) { 3901 const auto *TargetSemantics = &Ctx.getFloatSemantics(ElemType); 3902 if (!this->emitCastFP(TargetSemantics, getRoundingMode(E), E)) 3903 return false; 3904 } 3905 if (!this->emitInitElem(ElemT, I, E)) 3906 return false; 3907 } 3908 3909 return true; 3910 } 3911 3912 template <class Emitter> 3913 bool Compiler<Emitter>::VisitShuffleVectorExpr(const ShuffleVectorExpr *E) { 3914 assert(Initializing); 3915 assert(E->getNumSubExprs() > 2); 3916 3917 const Expr *Vecs[] = {E->getExpr(0), E->getExpr(1)}; 3918 const VectorType *VT = Vecs[0]->getType()->castAs<VectorType>(); 3919 PrimType ElemT = classifyPrim(VT->getElementType()); 3920 unsigned NumInputElems = VT->getNumElements(); 3921 unsigned NumOutputElems = E->getNumSubExprs() - 2; 3922 assert(NumOutputElems > 0); 3923 3924 // Save both input vectors to a local variable. 3925 unsigned VectorOffsets[2]; 3926 for (unsigned I = 0; I != 2; ++I) { 3927 VectorOffsets[I] = 3928 this->allocateLocalPrimitive(Vecs[I], PT_Ptr, /*IsConst=*/true); 3929 if (!this->visit(Vecs[I])) 3930 return false; 3931 if (!this->emitSetLocal(PT_Ptr, VectorOffsets[I], E)) 3932 return false; 3933 } 3934 for (unsigned I = 0; I != NumOutputElems; ++I) { 3935 APSInt ShuffleIndex = E->getShuffleMaskIdx(I); 3936 assert(ShuffleIndex >= -1); 3937 if (ShuffleIndex == -1) 3938 return this->emitInvalidShuffleVectorIndex(I, E); 3939 3940 assert(ShuffleIndex < (NumInputElems * 2)); 3941 if (!this->emitGetLocal(PT_Ptr, 3942 VectorOffsets[ShuffleIndex >= NumInputElems], E)) 3943 return false; 3944 unsigned InputVectorIndex = ShuffleIndex.getZExtValue() % NumInputElems; 3945 if (!this->emitArrayElemPop(ElemT, InputVectorIndex, E)) 3946 return false; 3947 3948 if (!this->emitInitElem(ElemT, I, E)) 3949 return false; 3950 } 3951 3952 return true; 3953 } 3954 3955 template <class Emitter> 3956 bool Compiler<Emitter>::VisitExtVectorElementExpr( 3957 const ExtVectorElementExpr *E) { 3958 const Expr *Base = E->getBase(); 3959 assert( 3960 Base->getType()->isVectorType() || 3961 Base->getType()->getAs<PointerType>()->getPointeeType()->isVectorType()); 3962 3963 SmallVector<uint32_t, 4> Indices; 3964 E->getEncodedElementAccess(Indices); 3965 3966 if (Indices.size() == 1) { 3967 if (!this->visit(Base)) 3968 return false; 3969 3970 if (E->isGLValue()) { 3971 if (!this->emitConstUint32(Indices[0], E)) 3972 return false; 3973 return this->emitArrayElemPtrPop(PT_Uint32, E); 3974 } 3975 // Else, also load the value. 3976 return this->emitArrayElemPop(classifyPrim(E->getType()), Indices[0], E); 3977 } 3978 3979 // Create a local variable for the base. 3980 unsigned BaseOffset = allocateLocalPrimitive(Base, PT_Ptr, /*IsConst=*/true); 3981 if (!this->visit(Base)) 3982 return false; 3983 if (!this->emitSetLocal(PT_Ptr, BaseOffset, E)) 3984 return false; 3985 3986 // Now the vector variable for the return value. 3987 if (!Initializing) { 3988 std::optional<unsigned> ResultIndex; 3989 ResultIndex = allocateLocal(E); 3990 if (!ResultIndex) 3991 return false; 3992 if (!this->emitGetPtrLocal(*ResultIndex, E)) 3993 return false; 3994 } 3995 3996 assert(Indices.size() == E->getType()->getAs<VectorType>()->getNumElements()); 3997 3998 PrimType ElemT = 3999 classifyPrim(E->getType()->getAs<VectorType>()->getElementType()); 4000 uint32_t DstIndex = 0; 4001 for (uint32_t I : Indices) { 4002 if (!this->emitGetLocal(PT_Ptr, BaseOffset, E)) 4003 return false; 4004 if (!this->emitArrayElemPop(ElemT, I, E)) 4005 return false; 4006 if (!this->emitInitElem(ElemT, DstIndex, E)) 4007 return false; 4008 ++DstIndex; 4009 } 4010 4011 // Leave the result pointer on the stack. 4012 assert(!DiscardResult); 4013 return true; 4014 } 4015 4016 template <class Emitter> 4017 bool Compiler<Emitter>::VisitObjCBoxedExpr(const ObjCBoxedExpr *E) { 4018 const Expr *SubExpr = E->getSubExpr(); 4019 if (!E->isExpressibleAsConstantInitializer()) 4020 return this->discard(SubExpr) && this->emitInvalid(E); 4021 4022 if (DiscardResult) 4023 return true; 4024 4025 assert(classifyPrim(E) == PT_Ptr); 4026 return this->emitDummyPtr(E, E); 4027 } 4028 4029 template <class Emitter> 4030 bool Compiler<Emitter>::VisitCXXStdInitializerListExpr( 4031 const CXXStdInitializerListExpr *E) { 4032 const Expr *SubExpr = E->getSubExpr(); 4033 const ConstantArrayType *ArrayType = 4034 Ctx.getASTContext().getAsConstantArrayType(SubExpr->getType()); 4035 const Record *R = getRecord(E->getType()); 4036 assert(Initializing); 4037 assert(SubExpr->isGLValue()); 4038 4039 if (!this->visit(SubExpr)) 4040 return false; 4041 if (!this->emitConstUint8(0, E)) 4042 return false; 4043 if (!this->emitArrayElemPtrPopUint8(E)) 4044 return false; 4045 if (!this->emitInitFieldPtr(R->getField(0u)->Offset, E)) 4046 return false; 4047 4048 PrimType SecondFieldT = classifyPrim(R->getField(1u)->Decl->getType()); 4049 if (isIntegralType(SecondFieldT)) { 4050 if (!this->emitConst(static_cast<APSInt>(ArrayType->getSize()), 4051 SecondFieldT, E)) 4052 return false; 4053 return this->emitInitField(SecondFieldT, R->getField(1u)->Offset, E); 4054 } 4055 assert(SecondFieldT == PT_Ptr); 4056 4057 if (!this->emitGetFieldPtr(R->getField(0u)->Offset, E)) 4058 return false; 4059 if (!this->emitExpandPtr(E)) 4060 return false; 4061 if (!this->emitConst(static_cast<APSInt>(ArrayType->getSize()), PT_Uint64, E)) 4062 return false; 4063 if (!this->emitArrayElemPtrPop(PT_Uint64, E)) 4064 return false; 4065 return this->emitInitFieldPtr(R->getField(1u)->Offset, E); 4066 } 4067 4068 template <class Emitter> 4069 bool Compiler<Emitter>::VisitStmtExpr(const StmtExpr *E) { 4070 BlockScope<Emitter> BS(this); 4071 StmtExprScope<Emitter> SS(this); 4072 4073 const CompoundStmt *CS = E->getSubStmt(); 4074 const Stmt *Result = CS->getStmtExprResult(); 4075 for (const Stmt *S : CS->body()) { 4076 if (S != Result) { 4077 if (!this->visitStmt(S)) 4078 return false; 4079 continue; 4080 } 4081 4082 assert(S == Result); 4083 if (const Expr *ResultExpr = dyn_cast<Expr>(S)) 4084 return this->delegate(ResultExpr); 4085 return this->emitUnsupported(E); 4086 } 4087 4088 return BS.destroyLocals(); 4089 } 4090 4091 template <class Emitter> bool Compiler<Emitter>::discard(const Expr *E) { 4092 OptionScope<Emitter> Scope(this, /*NewDiscardResult=*/true, 4093 /*NewInitializing=*/false); 4094 return this->Visit(E); 4095 } 4096 4097 template <class Emitter> bool Compiler<Emitter>::delegate(const Expr *E) { 4098 // We're basically doing: 4099 // OptionScope<Emitter> Scope(this, DicardResult, Initializing); 4100 // but that's unnecessary of course. 4101 return this->Visit(E); 4102 } 4103 4104 template <class Emitter> bool Compiler<Emitter>::visit(const Expr *E) { 4105 if (E->getType().isNull()) 4106 return false; 4107 4108 if (E->getType()->isVoidType()) 4109 return this->discard(E); 4110 4111 // Create local variable to hold the return value. 4112 if (!E->isGLValue() && !E->getType()->isAnyComplexType() && 4113 !classify(E->getType())) { 4114 std::optional<unsigned> LocalIndex = allocateLocal(E); 4115 if (!LocalIndex) 4116 return false; 4117 4118 if (!this->emitGetPtrLocal(*LocalIndex, E)) 4119 return false; 4120 InitLinkScope<Emitter> ILS(this, InitLink::Temp(*LocalIndex)); 4121 return this->visitInitializer(E); 4122 } 4123 4124 // Otherwise,we have a primitive return value, produce the value directly 4125 // and push it on the stack. 4126 OptionScope<Emitter> Scope(this, /*NewDiscardResult=*/false, 4127 /*NewInitializing=*/false); 4128 return this->Visit(E); 4129 } 4130 4131 template <class Emitter> 4132 bool Compiler<Emitter>::visitInitializer(const Expr *E) { 4133 assert(!classify(E->getType())); 4134 4135 OptionScope<Emitter> Scope(this, /*NewDiscardResult=*/false, 4136 /*NewInitializing=*/true); 4137 return this->Visit(E); 4138 } 4139 4140 template <class Emitter> bool Compiler<Emitter>::visitBool(const Expr *E) { 4141 std::optional<PrimType> T = classify(E->getType()); 4142 if (!T) { 4143 // Convert complex values to bool. 4144 if (E->getType()->isAnyComplexType()) { 4145 if (!this->visit(E)) 4146 return false; 4147 return this->emitComplexBoolCast(E); 4148 } 4149 return false; 4150 } 4151 4152 if (!this->visit(E)) 4153 return false; 4154 4155 if (T == PT_Bool) 4156 return true; 4157 4158 // Convert pointers to bool. 4159 if (T == PT_Ptr) 4160 return this->emitIsNonNullPtr(E); 4161 4162 // Or Floats. 4163 if (T == PT_Float) 4164 return this->emitCastFloatingIntegralBool(getFPOptions(E), E); 4165 4166 // Or anything else we can. 4167 return this->emitCast(*T, PT_Bool, E); 4168 } 4169 4170 template <class Emitter> 4171 bool Compiler<Emitter>::visitZeroInitializer(PrimType T, QualType QT, 4172 const Expr *E) { 4173 if (const auto *AT = QT->getAs<AtomicType>()) 4174 QT = AT->getValueType(); 4175 4176 switch (T) { 4177 case PT_Bool: 4178 return this->emitZeroBool(E); 4179 case PT_Sint8: 4180 return this->emitZeroSint8(E); 4181 case PT_Uint8: 4182 return this->emitZeroUint8(E); 4183 case PT_Sint16: 4184 return this->emitZeroSint16(E); 4185 case PT_Uint16: 4186 return this->emitZeroUint16(E); 4187 case PT_Sint32: 4188 return this->emitZeroSint32(E); 4189 case PT_Uint32: 4190 return this->emitZeroUint32(E); 4191 case PT_Sint64: 4192 return this->emitZeroSint64(E); 4193 case PT_Uint64: 4194 return this->emitZeroUint64(E); 4195 case PT_IntAP: 4196 return this->emitZeroIntAP(Ctx.getBitWidth(QT), E); 4197 case PT_IntAPS: 4198 return this->emitZeroIntAPS(Ctx.getBitWidth(QT), E); 4199 case PT_Ptr: 4200 return this->emitNullPtr(Ctx.getASTContext().getTargetNullPointerValue(QT), 4201 nullptr, E); 4202 case PT_MemberPtr: 4203 return this->emitNullMemberPtr(0, nullptr, E); 4204 case PT_Float: { 4205 APFloat F = APFloat::getZero(Ctx.getFloatSemantics(QT)); 4206 return this->emitFloat(F, E); 4207 } 4208 case PT_FixedPoint: { 4209 auto Sem = Ctx.getASTContext().getFixedPointSemantics(E->getType()); 4210 return this->emitConstFixedPoint(FixedPoint::zero(Sem), E); 4211 } 4212 } 4213 llvm_unreachable("unknown primitive type"); 4214 } 4215 4216 template <class Emitter> 4217 bool Compiler<Emitter>::visitZeroRecordInitializer(const Record *R, 4218 const Expr *E) { 4219 assert(E); 4220 assert(R); 4221 // Fields 4222 for (const Record::Field &Field : R->fields()) { 4223 if (Field.isUnnamedBitField()) 4224 continue; 4225 4226 const Descriptor *D = Field.Desc; 4227 if (D->isPrimitive()) { 4228 QualType QT = D->getType(); 4229 PrimType T = classifyPrim(D->getType()); 4230 if (!this->visitZeroInitializer(T, QT, E)) 4231 return false; 4232 if (!this->emitInitField(T, Field.Offset, E)) 4233 return false; 4234 if (R->isUnion()) 4235 break; 4236 continue; 4237 } 4238 4239 if (!this->emitGetPtrField(Field.Offset, E)) 4240 return false; 4241 4242 if (D->isPrimitiveArray()) { 4243 QualType ET = D->getElemQualType(); 4244 PrimType T = classifyPrim(ET); 4245 for (uint32_t I = 0, N = D->getNumElems(); I != N; ++I) { 4246 if (!this->visitZeroInitializer(T, ET, E)) 4247 return false; 4248 if (!this->emitInitElem(T, I, E)) 4249 return false; 4250 } 4251 } else if (D->isCompositeArray()) { 4252 // Can't be a vector or complex field. 4253 if (!this->visitZeroArrayInitializer(D->getType(), E)) 4254 return false; 4255 } else if (D->isRecord()) { 4256 if (!this->visitZeroRecordInitializer(D->ElemRecord, E)) 4257 return false; 4258 } else 4259 return false; 4260 4261 if (!this->emitFinishInitPop(E)) 4262 return false; 4263 4264 // C++11 [dcl.init]p5: If T is a (possibly cv-qualified) union type, the 4265 // object's first non-static named data member is zero-initialized 4266 if (R->isUnion()) 4267 break; 4268 } 4269 4270 for (const Record::Base &B : R->bases()) { 4271 if (!this->emitGetPtrBase(B.Offset, E)) 4272 return false; 4273 if (!this->visitZeroRecordInitializer(B.R, E)) 4274 return false; 4275 if (!this->emitFinishInitPop(E)) 4276 return false; 4277 } 4278 4279 // FIXME: Virtual bases. 4280 4281 return true; 4282 } 4283 4284 template <class Emitter> 4285 bool Compiler<Emitter>::visitZeroArrayInitializer(QualType T, const Expr *E) { 4286 assert(T->isArrayType() || T->isAnyComplexType() || T->isVectorType()); 4287 const ArrayType *AT = T->getAsArrayTypeUnsafe(); 4288 QualType ElemType = AT->getElementType(); 4289 size_t NumElems = cast<ConstantArrayType>(AT)->getZExtSize(); 4290 4291 if (std::optional<PrimType> ElemT = classify(ElemType)) { 4292 for (size_t I = 0; I != NumElems; ++I) { 4293 if (!this->visitZeroInitializer(*ElemT, ElemType, E)) 4294 return false; 4295 if (!this->emitInitElem(*ElemT, I, E)) 4296 return false; 4297 } 4298 return true; 4299 } else if (ElemType->isRecordType()) { 4300 const Record *R = getRecord(ElemType); 4301 4302 for (size_t I = 0; I != NumElems; ++I) { 4303 if (!this->emitConstUint32(I, E)) 4304 return false; 4305 if (!this->emitArrayElemPtr(PT_Uint32, E)) 4306 return false; 4307 if (!this->visitZeroRecordInitializer(R, E)) 4308 return false; 4309 if (!this->emitPopPtr(E)) 4310 return false; 4311 } 4312 return true; 4313 } else if (ElemType->isArrayType()) { 4314 for (size_t I = 0; I != NumElems; ++I) { 4315 if (!this->emitConstUint32(I, E)) 4316 return false; 4317 if (!this->emitArrayElemPtr(PT_Uint32, E)) 4318 return false; 4319 if (!this->visitZeroArrayInitializer(ElemType, E)) 4320 return false; 4321 if (!this->emitPopPtr(E)) 4322 return false; 4323 } 4324 return true; 4325 } 4326 4327 return false; 4328 } 4329 4330 template <class Emitter> 4331 template <typename T> 4332 bool Compiler<Emitter>::emitConst(T Value, PrimType Ty, const Expr *E) { 4333 switch (Ty) { 4334 case PT_Sint8: 4335 return this->emitConstSint8(Value, E); 4336 case PT_Uint8: 4337 return this->emitConstUint8(Value, E); 4338 case PT_Sint16: 4339 return this->emitConstSint16(Value, E); 4340 case PT_Uint16: 4341 return this->emitConstUint16(Value, E); 4342 case PT_Sint32: 4343 return this->emitConstSint32(Value, E); 4344 case PT_Uint32: 4345 return this->emitConstUint32(Value, E); 4346 case PT_Sint64: 4347 return this->emitConstSint64(Value, E); 4348 case PT_Uint64: 4349 return this->emitConstUint64(Value, E); 4350 case PT_Bool: 4351 return this->emitConstBool(Value, E); 4352 case PT_Ptr: 4353 case PT_MemberPtr: 4354 case PT_Float: 4355 case PT_IntAP: 4356 case PT_IntAPS: 4357 case PT_FixedPoint: 4358 llvm_unreachable("Invalid integral type"); 4359 break; 4360 } 4361 llvm_unreachable("unknown primitive type"); 4362 } 4363 4364 template <class Emitter> 4365 template <typename T> 4366 bool Compiler<Emitter>::emitConst(T Value, const Expr *E) { 4367 return this->emitConst(Value, classifyPrim(E->getType()), E); 4368 } 4369 4370 template <class Emitter> 4371 bool Compiler<Emitter>::emitConst(const APSInt &Value, PrimType Ty, 4372 const Expr *E) { 4373 if (Ty == PT_IntAPS) 4374 return this->emitConstIntAPS(Value, E); 4375 if (Ty == PT_IntAP) 4376 return this->emitConstIntAP(Value, E); 4377 4378 if (Value.isSigned()) 4379 return this->emitConst(Value.getSExtValue(), Ty, E); 4380 return this->emitConst(Value.getZExtValue(), Ty, E); 4381 } 4382 4383 template <class Emitter> 4384 bool Compiler<Emitter>::emitConst(const APSInt &Value, const Expr *E) { 4385 return this->emitConst(Value, classifyPrim(E->getType()), E); 4386 } 4387 4388 template <class Emitter> 4389 unsigned Compiler<Emitter>::allocateLocalPrimitive( 4390 DeclTy &&Src, PrimType Ty, bool IsConst, const ValueDecl *ExtendingDecl, 4391 ScopeKind SC, bool IsConstexprUnknown) { 4392 // Make sure we don't accidentally register the same decl twice. 4393 if (const auto *VD = 4394 dyn_cast_if_present<ValueDecl>(Src.dyn_cast<const Decl *>())) { 4395 assert(!P.getGlobal(VD)); 4396 assert(!Locals.contains(VD)); 4397 (void)VD; 4398 } 4399 4400 // FIXME: There are cases where Src.is<Expr*>() is wrong, e.g. 4401 // (int){12} in C. Consider using Expr::isTemporaryObject() instead 4402 // or isa<MaterializeTemporaryExpr>(). 4403 Descriptor *D = P.createDescriptor(Src, Ty, nullptr, Descriptor::InlineDescMD, 4404 IsConst, isa<const Expr *>(Src)); 4405 D->IsConstexprUnknown = IsConstexprUnknown; 4406 Scope::Local Local = this->createLocal(D); 4407 if (auto *VD = dyn_cast_if_present<ValueDecl>(Src.dyn_cast<const Decl *>())) 4408 Locals.insert({VD, Local}); 4409 if (ExtendingDecl) 4410 VarScope->addExtended(Local, ExtendingDecl); 4411 else 4412 VarScope->addForScopeKind(Local, SC); 4413 return Local.Offset; 4414 } 4415 4416 template <class Emitter> 4417 std::optional<unsigned> 4418 Compiler<Emitter>::allocateLocal(DeclTy &&Src, QualType Ty, 4419 const ValueDecl *ExtendingDecl, ScopeKind SC, 4420 bool IsConstexprUnknown) { 4421 // Make sure we don't accidentally register the same decl twice. 4422 if ([[maybe_unused]] const auto *VD = 4423 dyn_cast_if_present<ValueDecl>(Src.dyn_cast<const Decl *>())) { 4424 assert(!P.getGlobal(VD)); 4425 assert(!Locals.contains(VD)); 4426 } 4427 4428 const ValueDecl *Key = nullptr; 4429 const Expr *Init = nullptr; 4430 bool IsTemporary = false; 4431 if (auto *VD = dyn_cast_if_present<ValueDecl>(Src.dyn_cast<const Decl *>())) { 4432 Key = VD; 4433 Ty = VD->getType(); 4434 4435 if (const auto *VarD = dyn_cast<VarDecl>(VD)) 4436 Init = VarD->getInit(); 4437 } 4438 if (auto *E = Src.dyn_cast<const Expr *>()) { 4439 IsTemporary = true; 4440 if (Ty.isNull()) 4441 Ty = E->getType(); 4442 } 4443 4444 Descriptor *D = P.createDescriptor( 4445 Src, Ty.getTypePtr(), Descriptor::InlineDescMD, Ty.isConstQualified(), 4446 IsTemporary, /*IsMutable=*/false, /*IsVolatile=*/false, Init); 4447 if (!D) 4448 return std::nullopt; 4449 D->IsConstexprUnknown = IsConstexprUnknown; 4450 4451 Scope::Local Local = this->createLocal(D); 4452 if (Key) 4453 Locals.insert({Key, Local}); 4454 if (ExtendingDecl) 4455 VarScope->addExtended(Local, ExtendingDecl); 4456 else 4457 VarScope->addForScopeKind(Local, SC); 4458 return Local.Offset; 4459 } 4460 4461 template <class Emitter> 4462 std::optional<unsigned> Compiler<Emitter>::allocateTemporary(const Expr *E) { 4463 QualType Ty = E->getType(); 4464 assert(!Ty->isRecordType()); 4465 4466 Descriptor *D = P.createDescriptor( 4467 E, Ty.getTypePtr(), Descriptor::InlineDescMD, Ty.isConstQualified(), 4468 /*IsTemporary=*/true); 4469 4470 if (!D) 4471 return std::nullopt; 4472 4473 Scope::Local Local = this->createLocal(D); 4474 VariableScope<Emitter> *S = VarScope; 4475 assert(S); 4476 // Attach to topmost scope. 4477 while (S->getParent()) 4478 S = S->getParent(); 4479 assert(S && !S->getParent()); 4480 S->addLocal(Local); 4481 return Local.Offset; 4482 } 4483 4484 template <class Emitter> 4485 const RecordType *Compiler<Emitter>::getRecordTy(QualType Ty) { 4486 if (const PointerType *PT = dyn_cast<PointerType>(Ty)) 4487 return PT->getPointeeType()->getAs<RecordType>(); 4488 return Ty->getAs<RecordType>(); 4489 } 4490 4491 template <class Emitter> Record *Compiler<Emitter>::getRecord(QualType Ty) { 4492 if (const auto *RecordTy = getRecordTy(Ty)) 4493 return getRecord(RecordTy->getDecl()); 4494 return nullptr; 4495 } 4496 4497 template <class Emitter> 4498 Record *Compiler<Emitter>::getRecord(const RecordDecl *RD) { 4499 return P.getOrCreateRecord(RD); 4500 } 4501 4502 template <class Emitter> 4503 const Function *Compiler<Emitter>::getFunction(const FunctionDecl *FD) { 4504 return Ctx.getOrCreateFunction(FD); 4505 } 4506 4507 template <class Emitter> 4508 bool Compiler<Emitter>::visitExpr(const Expr *E, bool DestroyToplevelScope) { 4509 LocalScope<Emitter> RootScope(this); 4510 4511 // If we won't destroy the toplevel scope, check for memory leaks first. 4512 if (!DestroyToplevelScope) { 4513 if (!this->emitCheckAllocations(E)) 4514 return false; 4515 } 4516 4517 auto maybeDestroyLocals = [&]() -> bool { 4518 if (DestroyToplevelScope) 4519 return RootScope.destroyLocals() && this->emitCheckAllocations(E); 4520 return this->emitCheckAllocations(E); 4521 }; 4522 4523 // Void expressions. 4524 if (E->getType()->isVoidType()) { 4525 if (!visit(E)) 4526 return false; 4527 return this->emitRetVoid(E) && maybeDestroyLocals(); 4528 } 4529 4530 // Expressions with a primitive return type. 4531 if (std::optional<PrimType> T = classify(E)) { 4532 if (!visit(E)) 4533 return false; 4534 4535 return this->emitRet(*T, E) && maybeDestroyLocals(); 4536 } 4537 4538 // Expressions with a composite return type. 4539 // For us, that means everything we don't 4540 // have a PrimType for. 4541 if (std::optional<unsigned> LocalOffset = this->allocateLocal(E)) { 4542 InitLinkScope<Emitter> ILS(this, InitLink::Temp(*LocalOffset)); 4543 if (!this->emitGetPtrLocal(*LocalOffset, E)) 4544 return false; 4545 4546 if (!visitInitializer(E)) 4547 return false; 4548 4549 if (!this->emitFinishInit(E)) 4550 return false; 4551 // We are destroying the locals AFTER the Ret op. 4552 // The Ret op needs to copy the (alive) values, but the 4553 // destructors may still turn the entire expression invalid. 4554 return this->emitRetValue(E) && maybeDestroyLocals(); 4555 } 4556 4557 return maybeDestroyLocals() && this->emitCheckAllocations(E) && false; 4558 } 4559 4560 template <class Emitter> 4561 VarCreationState Compiler<Emitter>::visitDecl(const VarDecl *VD, 4562 bool IsConstexprUnknown) { 4563 4564 auto R = this->visitVarDecl(VD, /*Toplevel=*/true, IsConstexprUnknown); 4565 4566 if (R.notCreated()) 4567 return R; 4568 4569 if (R) 4570 return true; 4571 4572 if (!R && Context::shouldBeGloballyIndexed(VD)) { 4573 if (auto GlobalIndex = P.getGlobal(VD)) { 4574 Block *GlobalBlock = P.getGlobal(*GlobalIndex); 4575 GlobalInlineDescriptor &GD = 4576 *reinterpret_cast<GlobalInlineDescriptor *>(GlobalBlock->rawData()); 4577 4578 GD.InitState = GlobalInitState::InitializerFailed; 4579 GlobalBlock->invokeDtor(); 4580 } 4581 } 4582 4583 return R; 4584 } 4585 4586 /// Toplevel visitDeclAndReturn(). 4587 /// We get here from evaluateAsInitializer(). 4588 /// We need to evaluate the initializer and return its value. 4589 template <class Emitter> 4590 bool Compiler<Emitter>::visitDeclAndReturn(const VarDecl *VD, 4591 bool ConstantContext) { 4592 4593 // We only create variables if we're evaluating in a constant context. 4594 // Otherwise, just evaluate the initializer and return it. 4595 if (!ConstantContext) { 4596 DeclScope<Emitter> LS(this, VD); 4597 const Expr *Init = VD->getInit(); 4598 if (!this->visit(Init)) 4599 return false; 4600 return this->emitRet(classify(Init).value_or(PT_Ptr), VD) && 4601 LS.destroyLocals() && this->emitCheckAllocations(VD); 4602 } 4603 4604 LocalScope<Emitter> VDScope(this, VD); 4605 if (!this->visitVarDecl(VD, /*Toplevel=*/true)) 4606 return false; 4607 4608 std::optional<PrimType> VarT = classify(VD->getType()); 4609 if (Context::shouldBeGloballyIndexed(VD)) { 4610 auto GlobalIndex = P.getGlobal(VD); 4611 assert(GlobalIndex); // visitVarDecl() didn't return false. 4612 if (VarT) { 4613 if (!this->emitGetGlobalUnchecked(*VarT, *GlobalIndex, VD)) 4614 return false; 4615 } else { 4616 if (!this->emitGetPtrGlobal(*GlobalIndex, VD)) 4617 return false; 4618 } 4619 } else { 4620 auto Local = Locals.find(VD); 4621 assert(Local != Locals.end()); // Same here. 4622 if (VarT) { 4623 if (!this->emitGetLocal(*VarT, Local->second.Offset, VD)) 4624 return false; 4625 } else { 4626 if (!this->emitGetPtrLocal(Local->second.Offset, VD)) 4627 return false; 4628 } 4629 } 4630 4631 // Return the value. 4632 if (!this->emitRet(VarT.value_or(PT_Ptr), VD)) { 4633 // If the Ret above failed and this is a global variable, mark it as 4634 // uninitialized, even everything else succeeded. 4635 if (Context::shouldBeGloballyIndexed(VD)) { 4636 auto GlobalIndex = P.getGlobal(VD); 4637 assert(GlobalIndex); 4638 Block *GlobalBlock = P.getGlobal(*GlobalIndex); 4639 GlobalInlineDescriptor &GD = 4640 *reinterpret_cast<GlobalInlineDescriptor *>(GlobalBlock->rawData()); 4641 4642 GD.InitState = GlobalInitState::InitializerFailed; 4643 GlobalBlock->invokeDtor(); 4644 } 4645 return false; 4646 } 4647 4648 return VDScope.destroyLocals() && this->emitCheckAllocations(VD); 4649 } 4650 4651 template <class Emitter> 4652 VarCreationState Compiler<Emitter>::visitVarDecl(const VarDecl *VD, 4653 bool Toplevel, 4654 bool IsConstexprUnknown) { 4655 // We don't know what to do with these, so just return false. 4656 if (VD->getType().isNull()) 4657 return false; 4658 4659 // This case is EvalEmitter-only. If we won't create any instructions for the 4660 // initializer anyway, don't bother creating the variable in the first place. 4661 if (!this->isActive()) 4662 return VarCreationState::NotCreated(); 4663 4664 const Expr *Init = VD->getInit(); 4665 std::optional<PrimType> VarT = classify(VD->getType()); 4666 4667 if (Init && Init->isValueDependent()) 4668 return false; 4669 4670 if (Context::shouldBeGloballyIndexed(VD)) { 4671 auto checkDecl = [&]() -> bool { 4672 bool NeedsOp = !Toplevel && VD->isLocalVarDecl() && VD->isStaticLocal(); 4673 return !NeedsOp || this->emitCheckDecl(VD, VD); 4674 }; 4675 4676 auto initGlobal = [&](unsigned GlobalIndex) -> bool { 4677 assert(Init); 4678 4679 if (VarT) { 4680 if (!this->visit(Init)) 4681 return checkDecl() && false; 4682 4683 return checkDecl() && this->emitInitGlobal(*VarT, GlobalIndex, VD); 4684 } 4685 4686 if (!checkDecl()) 4687 return false; 4688 4689 if (!this->emitGetPtrGlobal(GlobalIndex, Init)) 4690 return false; 4691 4692 if (!visitInitializer(Init)) 4693 return false; 4694 4695 return this->emitFinishInitGlobal(Init); 4696 }; 4697 4698 DeclScope<Emitter> LocalScope(this, VD); 4699 4700 // We've already seen and initialized this global. 4701 if (std::optional<unsigned> GlobalIndex = P.getGlobal(VD)) { 4702 if (P.getPtrGlobal(*GlobalIndex).isInitialized()) 4703 return checkDecl(); 4704 4705 // The previous attempt at initialization might've been unsuccessful, 4706 // so let's try this one. 4707 return Init && checkDecl() && initGlobal(*GlobalIndex); 4708 } 4709 4710 std::optional<unsigned> GlobalIndex = P.createGlobal(VD, Init); 4711 4712 if (!GlobalIndex) 4713 return false; 4714 4715 return !Init || (checkDecl() && initGlobal(*GlobalIndex)); 4716 } 4717 // Local variables. 4718 InitLinkScope<Emitter> ILS(this, InitLink::Decl(VD)); 4719 4720 if (VarT) { 4721 unsigned Offset = this->allocateLocalPrimitive( 4722 VD, *VarT, VD->getType().isConstQualified(), nullptr, ScopeKind::Block, 4723 IsConstexprUnknown); 4724 if (Init) { 4725 // If this is a toplevel declaration, create a scope for the 4726 // initializer. 4727 if (Toplevel) { 4728 LocalScope<Emitter> Scope(this); 4729 if (!this->visit(Init)) 4730 return false; 4731 return this->emitSetLocal(*VarT, Offset, VD) && Scope.destroyLocals(); 4732 } else { 4733 if (!this->visit(Init)) 4734 return false; 4735 return this->emitSetLocal(*VarT, Offset, VD); 4736 } 4737 } 4738 } else { 4739 if (std::optional<unsigned> Offset = this->allocateLocal( 4740 VD, VD->getType(), nullptr, ScopeKind::Block, IsConstexprUnknown)) { 4741 if (!Init) 4742 return true; 4743 4744 if (!this->emitGetPtrLocal(*Offset, Init)) 4745 return false; 4746 4747 if (!visitInitializer(Init)) 4748 return false; 4749 4750 return this->emitFinishInitPop(Init); 4751 } 4752 return false; 4753 } 4754 return true; 4755 } 4756 4757 template <class Emitter> 4758 bool Compiler<Emitter>::visitAPValue(const APValue &Val, PrimType ValType, 4759 const Expr *E) { 4760 assert(!DiscardResult); 4761 if (Val.isInt()) 4762 return this->emitConst(Val.getInt(), ValType, E); 4763 else if (Val.isFloat()) { 4764 APFloat F = Val.getFloat(); 4765 return this->emitFloat(F, E); 4766 } 4767 4768 if (Val.isLValue()) { 4769 if (Val.isNullPointer()) 4770 return this->emitNull(ValType, 0, nullptr, E); 4771 APValue::LValueBase Base = Val.getLValueBase(); 4772 if (const Expr *BaseExpr = Base.dyn_cast<const Expr *>()) 4773 return this->visit(BaseExpr); 4774 else if (const auto *VD = Base.dyn_cast<const ValueDecl *>()) { 4775 return this->visitDeclRef(VD, E); 4776 } 4777 } else if (Val.isMemberPointer()) { 4778 if (const ValueDecl *MemberDecl = Val.getMemberPointerDecl()) 4779 return this->emitGetMemberPtr(MemberDecl, E); 4780 return this->emitNullMemberPtr(0, nullptr, E); 4781 } 4782 4783 return false; 4784 } 4785 4786 template <class Emitter> 4787 bool Compiler<Emitter>::visitAPValueInitializer(const APValue &Val, 4788 const Expr *E, QualType T) { 4789 if (Val.isStruct()) { 4790 const Record *R = this->getRecord(T); 4791 assert(R); 4792 for (unsigned I = 0, N = Val.getStructNumFields(); I != N; ++I) { 4793 const APValue &F = Val.getStructField(I); 4794 const Record::Field *RF = R->getField(I); 4795 QualType FieldType = RF->Decl->getType(); 4796 4797 if (std::optional<PrimType> PT = classify(FieldType)) { 4798 if (!this->visitAPValue(F, *PT, E)) 4799 return false; 4800 if (!this->emitInitField(*PT, RF->Offset, E)) 4801 return false; 4802 } else { 4803 if (!this->emitGetPtrField(RF->Offset, E)) 4804 return false; 4805 if (!this->visitAPValueInitializer(F, E, FieldType)) 4806 return false; 4807 if (!this->emitPopPtr(E)) 4808 return false; 4809 } 4810 } 4811 return true; 4812 } else if (Val.isUnion()) { 4813 const FieldDecl *UnionField = Val.getUnionField(); 4814 const Record *R = this->getRecord(UnionField->getParent()); 4815 assert(R); 4816 const APValue &F = Val.getUnionValue(); 4817 const Record::Field *RF = R->getField(UnionField); 4818 PrimType T = classifyPrim(RF->Decl->getType()); 4819 if (!this->visitAPValue(F, T, E)) 4820 return false; 4821 return this->emitInitField(T, RF->Offset, E); 4822 } else if (Val.isArray()) { 4823 const auto *ArrType = T->getAsArrayTypeUnsafe(); 4824 QualType ElemType = ArrType->getElementType(); 4825 for (unsigned A = 0, AN = Val.getArraySize(); A != AN; ++A) { 4826 const APValue &Elem = Val.getArrayInitializedElt(A); 4827 if (std::optional<PrimType> ElemT = classify(ElemType)) { 4828 if (!this->visitAPValue(Elem, *ElemT, E)) 4829 return false; 4830 if (!this->emitInitElem(*ElemT, A, E)) 4831 return false; 4832 } else { 4833 if (!this->emitConstUint32(A, E)) 4834 return false; 4835 if (!this->emitArrayElemPtrUint32(E)) 4836 return false; 4837 if (!this->visitAPValueInitializer(Elem, E, ElemType)) 4838 return false; 4839 if (!this->emitPopPtr(E)) 4840 return false; 4841 } 4842 } 4843 return true; 4844 } 4845 // TODO: Other types. 4846 4847 return false; 4848 } 4849 4850 template <class Emitter> 4851 bool Compiler<Emitter>::VisitBuiltinCallExpr(const CallExpr *E, 4852 unsigned BuiltinID) { 4853 4854 if (BuiltinID == Builtin::BI__builtin_constant_p) { 4855 // Void argument is always invalid and harder to handle later. 4856 if (E->getArg(0)->getType()->isVoidType()) { 4857 if (DiscardResult) 4858 return true; 4859 return this->emitConst(0, E); 4860 } 4861 4862 if (!this->emitStartSpeculation(E)) 4863 return false; 4864 LabelTy EndLabel = this->getLabel(); 4865 if (!this->speculate(E, EndLabel)) 4866 return false; 4867 this->fallthrough(EndLabel); 4868 if (!this->emitEndSpeculation(E)) 4869 return false; 4870 if (DiscardResult) 4871 return this->emitPop(classifyPrim(E), E); 4872 return true; 4873 } 4874 4875 // For these, we're expected to ultimately return an APValue pointing 4876 // to the CallExpr. This is needed to get the correct codegen. 4877 if (BuiltinID == Builtin::BI__builtin___CFStringMakeConstantString || 4878 BuiltinID == Builtin::BI__builtin___NSStringMakeConstantString || 4879 BuiltinID == Builtin::BI__builtin_ptrauth_sign_constant || 4880 BuiltinID == Builtin::BI__builtin_function_start) { 4881 if (DiscardResult) 4882 return true; 4883 return this->emitDummyPtr(E, E); 4884 } 4885 4886 QualType ReturnType = E->getType(); 4887 std::optional<PrimType> ReturnT = classify(E); 4888 4889 // Non-primitive return type. Prepare storage. 4890 if (!Initializing && !ReturnT && !ReturnType->isVoidType()) { 4891 std::optional<unsigned> LocalIndex = allocateLocal(E); 4892 if (!LocalIndex) 4893 return false; 4894 if (!this->emitGetPtrLocal(*LocalIndex, E)) 4895 return false; 4896 } 4897 4898 if (!Context::isUnevaluatedBuiltin(BuiltinID)) { 4899 // Put arguments on the stack. 4900 for (const auto *Arg : E->arguments()) { 4901 if (!this->visit(Arg)) 4902 return false; 4903 } 4904 } 4905 4906 if (!this->emitCallBI(E, BuiltinID, E)) 4907 return false; 4908 4909 if (DiscardResult && !ReturnType->isVoidType()) { 4910 assert(ReturnT); 4911 return this->emitPop(*ReturnT, E); 4912 } 4913 4914 return true; 4915 } 4916 4917 static const Expr *stripDerivedToBaseCasts(const Expr *E) { 4918 if (const auto *PE = dyn_cast<ParenExpr>(E)) 4919 return stripDerivedToBaseCasts(PE->getSubExpr()); 4920 4921 if (const auto *CE = dyn_cast<CastExpr>(E); 4922 CE && 4923 (CE->getCastKind() == CK_DerivedToBase || CE->getCastKind() == CK_NoOp)) 4924 return stripDerivedToBaseCasts(CE->getSubExpr()); 4925 4926 return E; 4927 } 4928 4929 template <class Emitter> 4930 bool Compiler<Emitter>::VisitCallExpr(const CallExpr *E) { 4931 const FunctionDecl *FuncDecl = E->getDirectCallee(); 4932 4933 if (FuncDecl) { 4934 if (unsigned BuiltinID = FuncDecl->getBuiltinID()) 4935 return VisitBuiltinCallExpr(E, BuiltinID); 4936 4937 // Calls to replaceable operator new/operator delete. 4938 if (FuncDecl->isUsableAsGlobalAllocationFunctionInConstantEvaluation()) { 4939 if (FuncDecl->getDeclName().isAnyOperatorNew()) { 4940 return VisitBuiltinCallExpr(E, Builtin::BI__builtin_operator_new); 4941 } else { 4942 assert(FuncDecl->getDeclName().getCXXOverloadedOperator() == OO_Delete); 4943 return VisitBuiltinCallExpr(E, Builtin::BI__builtin_operator_delete); 4944 } 4945 } 4946 4947 // Explicit calls to trivial destructors 4948 if (const auto *DD = dyn_cast<CXXDestructorDecl>(FuncDecl); 4949 DD && DD->isTrivial()) { 4950 const auto *MemberCall = cast<CXXMemberCallExpr>(E); 4951 if (!this->visit(MemberCall->getImplicitObjectArgument())) 4952 return false; 4953 return this->emitCheckDestruction(E) && this->emitEndLifetime(E) && 4954 this->emitPopPtr(E); 4955 } 4956 } 4957 4958 BlockScope<Emitter> CallScope(this, ScopeKind::Call); 4959 4960 QualType ReturnType = E->getCallReturnType(Ctx.getASTContext()); 4961 std::optional<PrimType> T = classify(ReturnType); 4962 bool HasRVO = !ReturnType->isVoidType() && !T; 4963 4964 if (HasRVO) { 4965 if (DiscardResult) { 4966 // If we need to discard the return value but the function returns its 4967 // value via an RVO pointer, we need to create one such pointer just 4968 // for this call. 4969 if (std::optional<unsigned> LocalIndex = allocateLocal(E)) { 4970 if (!this->emitGetPtrLocal(*LocalIndex, E)) 4971 return false; 4972 } 4973 } else { 4974 // We need the result. Prepare a pointer to return or 4975 // dup the current one. 4976 if (!Initializing) { 4977 if (std::optional<unsigned> LocalIndex = allocateLocal(E)) { 4978 if (!this->emitGetPtrLocal(*LocalIndex, E)) 4979 return false; 4980 } 4981 } 4982 if (!this->emitDupPtr(E)) 4983 return false; 4984 } 4985 } 4986 4987 SmallVector<const Expr *, 8> Args(ArrayRef(E->getArgs(), E->getNumArgs())); 4988 4989 bool IsAssignmentOperatorCall = false; 4990 if (const auto *OCE = dyn_cast<CXXOperatorCallExpr>(E); 4991 OCE && OCE->isAssignmentOp()) { 4992 // Just like with regular assignments, we need to special-case assignment 4993 // operators here and evaluate the RHS (the second arg) before the LHS (the 4994 // first arg). We fix this by using a Flip op later. 4995 assert(Args.size() == 2); 4996 IsAssignmentOperatorCall = true; 4997 std::reverse(Args.begin(), Args.end()); 4998 } 4999 // Calling a static operator will still 5000 // pass the instance, but we don't need it. 5001 // Discard it here. 5002 if (isa<CXXOperatorCallExpr>(E)) { 5003 if (const auto *MD = dyn_cast_if_present<CXXMethodDecl>(FuncDecl); 5004 MD && MD->isStatic()) { 5005 if (!this->discard(E->getArg(0))) 5006 return false; 5007 // Drop first arg. 5008 Args.erase(Args.begin()); 5009 } 5010 } 5011 5012 bool Devirtualized = false; 5013 std::optional<unsigned> CalleeOffset; 5014 // Add the (optional, implicit) This pointer. 5015 if (const auto *MC = dyn_cast<CXXMemberCallExpr>(E)) { 5016 if (!FuncDecl && classifyPrim(E->getCallee()) == PT_MemberPtr) { 5017 // If we end up creating a CallPtr op for this, we need the base of the 5018 // member pointer as the instance pointer, and later extract the function 5019 // decl as the function pointer. 5020 const Expr *Callee = E->getCallee(); 5021 CalleeOffset = 5022 this->allocateLocalPrimitive(Callee, PT_MemberPtr, /*IsConst=*/true); 5023 if (!this->visit(Callee)) 5024 return false; 5025 if (!this->emitSetLocal(PT_MemberPtr, *CalleeOffset, E)) 5026 return false; 5027 if (!this->emitGetLocal(PT_MemberPtr, *CalleeOffset, E)) 5028 return false; 5029 if (!this->emitGetMemberPtrBase(E)) 5030 return false; 5031 } else { 5032 const auto *InstancePtr = MC->getImplicitObjectArgument(); 5033 if (isa_and_nonnull<CXXDestructorDecl>(CompilingFunction) || 5034 isa_and_nonnull<CXXConstructorDecl>(CompilingFunction)) { 5035 const auto *Stripped = stripDerivedToBaseCasts(InstancePtr); 5036 if (isa<CXXThisExpr>(Stripped)) { 5037 FuncDecl = 5038 cast<CXXMethodDecl>(FuncDecl)->getCorrespondingMethodInClass( 5039 Stripped->getType()->getPointeeType()->getAsCXXRecordDecl()); 5040 Devirtualized = true; 5041 if (!this->visit(Stripped)) 5042 return false; 5043 } else { 5044 if (!this->visit(InstancePtr)) 5045 return false; 5046 } 5047 } else { 5048 if (!this->visit(InstancePtr)) 5049 return false; 5050 } 5051 } 5052 } else if (const auto *PD = 5053 dyn_cast<CXXPseudoDestructorExpr>(E->getCallee())) { 5054 if (!this->emitCheckPseudoDtor(E)) 5055 return false; 5056 const Expr *Base = PD->getBase(); 5057 if (!Base->isGLValue()) 5058 return this->discard(Base); 5059 if (!this->visit(Base)) 5060 return false; 5061 return this->emitEndLifetimePop(E); 5062 } else if (!FuncDecl) { 5063 const Expr *Callee = E->getCallee(); 5064 CalleeOffset = 5065 this->allocateLocalPrimitive(Callee, PT_Ptr, /*IsConst=*/true); 5066 if (!this->visit(Callee)) 5067 return false; 5068 if (!this->emitSetLocal(PT_Ptr, *CalleeOffset, E)) 5069 return false; 5070 } 5071 5072 if (!this->visitCallArgs(Args, FuncDecl)) 5073 return false; 5074 5075 // Undo the argument reversal we did earlier. 5076 if (IsAssignmentOperatorCall) { 5077 assert(Args.size() == 2); 5078 PrimType Arg1T = classify(Args[0]).value_or(PT_Ptr); 5079 PrimType Arg2T = classify(Args[1]).value_or(PT_Ptr); 5080 if (!this->emitFlip(Arg2T, Arg1T, E)) 5081 return false; 5082 } 5083 5084 if (FuncDecl) { 5085 const Function *Func = getFunction(FuncDecl); 5086 if (!Func) 5087 return false; 5088 assert(HasRVO == Func->hasRVO()); 5089 5090 bool HasQualifier = false; 5091 if (const auto *ME = dyn_cast<MemberExpr>(E->getCallee())) 5092 HasQualifier = ME->hasQualifier(); 5093 5094 bool IsVirtual = false; 5095 if (const auto *MD = dyn_cast<CXXMethodDecl>(FuncDecl)) 5096 IsVirtual = !Devirtualized && MD->isVirtual(); 5097 5098 // In any case call the function. The return value will end up on the stack 5099 // and if the function has RVO, we already have the pointer on the stack to 5100 // write the result into. 5101 if (IsVirtual && !HasQualifier) { 5102 uint32_t VarArgSize = 0; 5103 unsigned NumParams = 5104 Func->getNumWrittenParams() + isa<CXXOperatorCallExpr>(E); 5105 for (unsigned I = NumParams, N = E->getNumArgs(); I != N; ++I) 5106 VarArgSize += align(primSize(classify(E->getArg(I)).value_or(PT_Ptr))); 5107 5108 if (!this->emitCallVirt(Func, VarArgSize, E)) 5109 return false; 5110 } else if (Func->isVariadic()) { 5111 uint32_t VarArgSize = 0; 5112 unsigned NumParams = 5113 Func->getNumWrittenParams() + isa<CXXOperatorCallExpr>(E); 5114 for (unsigned I = NumParams, N = E->getNumArgs(); I != N; ++I) 5115 VarArgSize += align(primSize(classify(E->getArg(I)).value_or(PT_Ptr))); 5116 if (!this->emitCallVar(Func, VarArgSize, E)) 5117 return false; 5118 } else { 5119 if (!this->emitCall(Func, 0, E)) 5120 return false; 5121 } 5122 } else { 5123 // Indirect call. Visit the callee, which will leave a FunctionPointer on 5124 // the stack. Cleanup of the returned value if necessary will be done after 5125 // the function call completed. 5126 5127 // Sum the size of all args from the call expr. 5128 uint32_t ArgSize = 0; 5129 for (unsigned I = 0, N = E->getNumArgs(); I != N; ++I) 5130 ArgSize += align(primSize(classify(E->getArg(I)).value_or(PT_Ptr))); 5131 5132 // Get the callee, either from a member pointer or function pointer saved in 5133 // CalleeOffset. 5134 if (isa<CXXMemberCallExpr>(E) && CalleeOffset) { 5135 if (!this->emitGetLocal(PT_MemberPtr, *CalleeOffset, E)) 5136 return false; 5137 if (!this->emitGetMemberPtrDecl(E)) 5138 return false; 5139 } else { 5140 if (!this->emitGetLocal(PT_Ptr, *CalleeOffset, E)) 5141 return false; 5142 } 5143 if (!this->emitCallPtr(ArgSize, E, E)) 5144 return false; 5145 } 5146 5147 // Cleanup for discarded return values. 5148 if (DiscardResult && !ReturnType->isVoidType() && T) 5149 return this->emitPop(*T, E) && CallScope.destroyLocals(); 5150 5151 return CallScope.destroyLocals(); 5152 } 5153 5154 template <class Emitter> 5155 bool Compiler<Emitter>::VisitCXXDefaultInitExpr(const CXXDefaultInitExpr *E) { 5156 SourceLocScope<Emitter> SLS(this, E); 5157 5158 return this->delegate(E->getExpr()); 5159 } 5160 5161 template <class Emitter> 5162 bool Compiler<Emitter>::VisitCXXDefaultArgExpr(const CXXDefaultArgExpr *E) { 5163 SourceLocScope<Emitter> SLS(this, E); 5164 5165 return this->delegate(E->getExpr()); 5166 } 5167 5168 template <class Emitter> 5169 bool Compiler<Emitter>::VisitCXXBoolLiteralExpr(const CXXBoolLiteralExpr *E) { 5170 if (DiscardResult) 5171 return true; 5172 5173 return this->emitConstBool(E->getValue(), E); 5174 } 5175 5176 template <class Emitter> 5177 bool Compiler<Emitter>::VisitCXXNullPtrLiteralExpr( 5178 const CXXNullPtrLiteralExpr *E) { 5179 if (DiscardResult) 5180 return true; 5181 5182 uint64_t Val = Ctx.getASTContext().getTargetNullPointerValue(E->getType()); 5183 return this->emitNullPtr(Val, nullptr, E); 5184 } 5185 5186 template <class Emitter> 5187 bool Compiler<Emitter>::VisitGNUNullExpr(const GNUNullExpr *E) { 5188 if (DiscardResult) 5189 return true; 5190 5191 assert(E->getType()->isIntegerType()); 5192 5193 PrimType T = classifyPrim(E->getType()); 5194 return this->emitZero(T, E); 5195 } 5196 5197 template <class Emitter> 5198 bool Compiler<Emitter>::VisitCXXThisExpr(const CXXThisExpr *E) { 5199 if (DiscardResult) 5200 return true; 5201 5202 if (this->LambdaThisCapture.Offset > 0) { 5203 if (this->LambdaThisCapture.IsPtr) 5204 return this->emitGetThisFieldPtr(this->LambdaThisCapture.Offset, E); 5205 return this->emitGetPtrThisField(this->LambdaThisCapture.Offset, E); 5206 } 5207 5208 // In some circumstances, the 'this' pointer does not actually refer to the 5209 // instance pointer of the current function frame, but e.g. to the declaration 5210 // currently being initialized. Here we emit the necessary instruction(s) for 5211 // this scenario. 5212 if (!InitStackActive) 5213 return this->emitThis(E); 5214 5215 if (!InitStack.empty()) { 5216 // If our init stack is, for example: 5217 // 0 Stack: 3 (decl) 5218 // 1 Stack: 6 (init list) 5219 // 2 Stack: 1 (field) 5220 // 3 Stack: 6 (init list) 5221 // 4 Stack: 1 (field) 5222 // 5223 // We want to find the LAST element in it that's an init list, 5224 // which is marked with the K_InitList marker. The index right 5225 // before that points to an init list. We need to find the 5226 // elements before the K_InitList element that point to a base 5227 // (e.g. a decl or This), optionally followed by field, elem, etc. 5228 // In the example above, we want to emit elements [0..2]. 5229 unsigned StartIndex = 0; 5230 unsigned EndIndex = 0; 5231 // Find the init list. 5232 for (StartIndex = InitStack.size() - 1; StartIndex > 0; --StartIndex) { 5233 if (InitStack[StartIndex].Kind == InitLink::K_InitList || 5234 InitStack[StartIndex].Kind == InitLink::K_This) { 5235 EndIndex = StartIndex; 5236 --StartIndex; 5237 break; 5238 } 5239 } 5240 5241 // Walk backwards to find the base. 5242 for (; StartIndex > 0; --StartIndex) { 5243 if (InitStack[StartIndex].Kind == InitLink::K_InitList) 5244 continue; 5245 5246 if (InitStack[StartIndex].Kind != InitLink::K_Field && 5247 InitStack[StartIndex].Kind != InitLink::K_Elem) 5248 break; 5249 } 5250 5251 // Emit the instructions. 5252 for (unsigned I = StartIndex; I != EndIndex; ++I) { 5253 if (InitStack[I].Kind == InitLink::K_InitList) 5254 continue; 5255 if (!InitStack[I].template emit<Emitter>(this, E)) 5256 return false; 5257 } 5258 return true; 5259 } 5260 return this->emitThis(E); 5261 } 5262 5263 template <class Emitter> bool Compiler<Emitter>::visitStmt(const Stmt *S) { 5264 switch (S->getStmtClass()) { 5265 case Stmt::CompoundStmtClass: 5266 return visitCompoundStmt(cast<CompoundStmt>(S)); 5267 case Stmt::DeclStmtClass: 5268 return visitDeclStmt(cast<DeclStmt>(S), /*EvaluateConditionDecl=*/true); 5269 case Stmt::ReturnStmtClass: 5270 return visitReturnStmt(cast<ReturnStmt>(S)); 5271 case Stmt::IfStmtClass: 5272 return visitIfStmt(cast<IfStmt>(S)); 5273 case Stmt::WhileStmtClass: 5274 return visitWhileStmt(cast<WhileStmt>(S)); 5275 case Stmt::DoStmtClass: 5276 return visitDoStmt(cast<DoStmt>(S)); 5277 case Stmt::ForStmtClass: 5278 return visitForStmt(cast<ForStmt>(S)); 5279 case Stmt::CXXForRangeStmtClass: 5280 return visitCXXForRangeStmt(cast<CXXForRangeStmt>(S)); 5281 case Stmt::BreakStmtClass: 5282 return visitBreakStmt(cast<BreakStmt>(S)); 5283 case Stmt::ContinueStmtClass: 5284 return visitContinueStmt(cast<ContinueStmt>(S)); 5285 case Stmt::SwitchStmtClass: 5286 return visitSwitchStmt(cast<SwitchStmt>(S)); 5287 case Stmt::CaseStmtClass: 5288 return visitCaseStmt(cast<CaseStmt>(S)); 5289 case Stmt::DefaultStmtClass: 5290 return visitDefaultStmt(cast<DefaultStmt>(S)); 5291 case Stmt::AttributedStmtClass: 5292 return visitAttributedStmt(cast<AttributedStmt>(S)); 5293 case Stmt::CXXTryStmtClass: 5294 return visitCXXTryStmt(cast<CXXTryStmt>(S)); 5295 case Stmt::NullStmtClass: 5296 return true; 5297 // Always invalid statements. 5298 case Stmt::GCCAsmStmtClass: 5299 case Stmt::MSAsmStmtClass: 5300 case Stmt::GotoStmtClass: 5301 return this->emitInvalid(S); 5302 case Stmt::LabelStmtClass: 5303 return this->visitStmt(cast<LabelStmt>(S)->getSubStmt()); 5304 default: { 5305 if (const auto *E = dyn_cast<Expr>(S)) 5306 return this->discard(E); 5307 return false; 5308 } 5309 } 5310 } 5311 5312 template <class Emitter> 5313 bool Compiler<Emitter>::visitCompoundStmt(const CompoundStmt *S) { 5314 BlockScope<Emitter> Scope(this); 5315 for (const auto *InnerStmt : S->body()) 5316 if (!visitStmt(InnerStmt)) 5317 return false; 5318 return Scope.destroyLocals(); 5319 } 5320 5321 template <class Emitter> 5322 bool Compiler<Emitter>::maybeEmitDeferredVarInit(const VarDecl *VD) { 5323 if (auto *DD = dyn_cast_if_present<DecompositionDecl>(VD)) { 5324 for (auto *BD : DD->flat_bindings()) 5325 if (auto *KD = BD->getHoldingVar(); KD && !this->visitVarDecl(KD)) 5326 return false; 5327 } 5328 return true; 5329 } 5330 5331 template <class Emitter> 5332 bool Compiler<Emitter>::visitDeclStmt(const DeclStmt *DS, 5333 bool EvaluateConditionDecl) { 5334 for (const auto *D : DS->decls()) { 5335 if (isa<StaticAssertDecl, TagDecl, TypedefNameDecl, BaseUsingDecl, 5336 FunctionDecl, NamespaceAliasDecl, UsingDirectiveDecl>(D)) 5337 continue; 5338 5339 const auto *VD = dyn_cast<VarDecl>(D); 5340 if (!VD) 5341 return false; 5342 if (!this->visitVarDecl(VD)) 5343 return false; 5344 5345 // Register decomposition decl holding vars. 5346 if (EvaluateConditionDecl && !this->maybeEmitDeferredVarInit(VD)) 5347 return false; 5348 } 5349 5350 return true; 5351 } 5352 5353 template <class Emitter> 5354 bool Compiler<Emitter>::visitReturnStmt(const ReturnStmt *RS) { 5355 if (this->InStmtExpr) 5356 return this->emitUnsupported(RS); 5357 5358 if (const Expr *RE = RS->getRetValue()) { 5359 LocalScope<Emitter> RetScope(this); 5360 if (ReturnType) { 5361 // Primitive types are simply returned. 5362 if (!this->visit(RE)) 5363 return false; 5364 this->emitCleanup(); 5365 return this->emitRet(*ReturnType, RS); 5366 } else if (RE->getType()->isVoidType()) { 5367 if (!this->visit(RE)) 5368 return false; 5369 } else { 5370 InitLinkScope<Emitter> ILS(this, InitLink::RVO()); 5371 // RVO - construct the value in the return location. 5372 if (!this->emitRVOPtr(RE)) 5373 return false; 5374 if (!this->visitInitializer(RE)) 5375 return false; 5376 if (!this->emitPopPtr(RE)) 5377 return false; 5378 5379 this->emitCleanup(); 5380 return this->emitRetVoid(RS); 5381 } 5382 } 5383 5384 // Void return. 5385 this->emitCleanup(); 5386 return this->emitRetVoid(RS); 5387 } 5388 5389 template <class Emitter> bool Compiler<Emitter>::visitIfStmt(const IfStmt *IS) { 5390 auto visitChildStmt = [&](const Stmt *S) -> bool { 5391 LocalScope<Emitter> SScope(this); 5392 if (!visitStmt(S)) 5393 return false; 5394 return SScope.destroyLocals(); 5395 }; 5396 if (auto *CondInit = IS->getInit()) 5397 if (!visitStmt(CondInit)) 5398 return false; 5399 5400 if (const DeclStmt *CondDecl = IS->getConditionVariableDeclStmt()) 5401 if (!visitDeclStmt(CondDecl)) 5402 return false; 5403 5404 // Save ourselves compiling some code and the jumps, etc. if the condition is 5405 // stataically known to be either true or false. We could look at more cases 5406 // here, but I think all the ones that actually happen are using a 5407 // ConstantExpr. 5408 if (std::optional<bool> BoolValue = getBoolValue(IS->getCond())) { 5409 if (*BoolValue) 5410 return visitChildStmt(IS->getThen()); 5411 else if (const Stmt *Else = IS->getElse()) 5412 return visitChildStmt(Else); 5413 return true; 5414 } 5415 5416 // Otherwise, compile the condition. 5417 if (IS->isNonNegatedConsteval()) { 5418 if (!this->emitIsConstantContext(IS)) 5419 return false; 5420 } else if (IS->isNegatedConsteval()) { 5421 if (!this->emitIsConstantContext(IS)) 5422 return false; 5423 if (!this->emitInv(IS)) 5424 return false; 5425 } else { 5426 if (!this->visitBool(IS->getCond())) 5427 return false; 5428 } 5429 5430 if (!this->maybeEmitDeferredVarInit(IS->getConditionVariable())) 5431 return false; 5432 5433 if (const Stmt *Else = IS->getElse()) { 5434 LabelTy LabelElse = this->getLabel(); 5435 LabelTy LabelEnd = this->getLabel(); 5436 if (!this->jumpFalse(LabelElse)) 5437 return false; 5438 if (!visitChildStmt(IS->getThen())) 5439 return false; 5440 if (!this->jump(LabelEnd)) 5441 return false; 5442 this->emitLabel(LabelElse); 5443 if (!visitChildStmt(Else)) 5444 return false; 5445 this->emitLabel(LabelEnd); 5446 } else { 5447 LabelTy LabelEnd = this->getLabel(); 5448 if (!this->jumpFalse(LabelEnd)) 5449 return false; 5450 if (!visitChildStmt(IS->getThen())) 5451 return false; 5452 this->emitLabel(LabelEnd); 5453 } 5454 5455 return true; 5456 } 5457 5458 template <class Emitter> 5459 bool Compiler<Emitter>::visitWhileStmt(const WhileStmt *S) { 5460 const Expr *Cond = S->getCond(); 5461 const Stmt *Body = S->getBody(); 5462 5463 LabelTy CondLabel = this->getLabel(); // Label before the condition. 5464 LabelTy EndLabel = this->getLabel(); // Label after the loop. 5465 LoopScope<Emitter> LS(this, EndLabel, CondLabel); 5466 5467 this->fallthrough(CondLabel); 5468 this->emitLabel(CondLabel); 5469 5470 { 5471 LocalScope<Emitter> CondScope(this); 5472 if (const DeclStmt *CondDecl = S->getConditionVariableDeclStmt()) 5473 if (!visitDeclStmt(CondDecl)) 5474 return false; 5475 5476 if (!this->visitBool(Cond)) 5477 return false; 5478 5479 if (!this->maybeEmitDeferredVarInit(S->getConditionVariable())) 5480 return false; 5481 5482 if (!this->jumpFalse(EndLabel)) 5483 return false; 5484 5485 if (!this->visitStmt(Body)) 5486 return false; 5487 5488 if (!CondScope.destroyLocals()) 5489 return false; 5490 } 5491 if (!this->jump(CondLabel)) 5492 return false; 5493 this->fallthrough(EndLabel); 5494 this->emitLabel(EndLabel); 5495 5496 return true; 5497 } 5498 5499 template <class Emitter> bool Compiler<Emitter>::visitDoStmt(const DoStmt *S) { 5500 const Expr *Cond = S->getCond(); 5501 const Stmt *Body = S->getBody(); 5502 5503 LabelTy StartLabel = this->getLabel(); 5504 LabelTy EndLabel = this->getLabel(); 5505 LabelTy CondLabel = this->getLabel(); 5506 LoopScope<Emitter> LS(this, EndLabel, CondLabel); 5507 5508 this->fallthrough(StartLabel); 5509 this->emitLabel(StartLabel); 5510 5511 { 5512 LocalScope<Emitter> CondScope(this); 5513 if (!this->visitStmt(Body)) 5514 return false; 5515 this->fallthrough(CondLabel); 5516 this->emitLabel(CondLabel); 5517 if (!this->visitBool(Cond)) 5518 return false; 5519 5520 if (!CondScope.destroyLocals()) 5521 return false; 5522 } 5523 if (!this->jumpTrue(StartLabel)) 5524 return false; 5525 5526 this->fallthrough(EndLabel); 5527 this->emitLabel(EndLabel); 5528 return true; 5529 } 5530 5531 template <class Emitter> 5532 bool Compiler<Emitter>::visitForStmt(const ForStmt *S) { 5533 // for (Init; Cond; Inc) { Body } 5534 const Stmt *Init = S->getInit(); 5535 const Expr *Cond = S->getCond(); 5536 const Expr *Inc = S->getInc(); 5537 const Stmt *Body = S->getBody(); 5538 5539 LabelTy EndLabel = this->getLabel(); 5540 LabelTy CondLabel = this->getLabel(); 5541 LabelTy IncLabel = this->getLabel(); 5542 LoopScope<Emitter> LS(this, EndLabel, IncLabel); 5543 5544 if (Init && !this->visitStmt(Init)) 5545 return false; 5546 5547 this->fallthrough(CondLabel); 5548 this->emitLabel(CondLabel); 5549 5550 // Start of loop body. 5551 LocalScope<Emitter> CondScope(this); 5552 if (const DeclStmt *CondDecl = S->getConditionVariableDeclStmt()) 5553 if (!visitDeclStmt(CondDecl)) 5554 return false; 5555 5556 if (Cond) { 5557 if (!this->visitBool(Cond)) 5558 return false; 5559 if (!this->jumpFalse(EndLabel)) 5560 return false; 5561 } 5562 if (!this->maybeEmitDeferredVarInit(S->getConditionVariable())) 5563 return false; 5564 5565 if (Body && !this->visitStmt(Body)) 5566 return false; 5567 5568 this->fallthrough(IncLabel); 5569 this->emitLabel(IncLabel); 5570 if (Inc && !this->discard(Inc)) 5571 return false; 5572 5573 if (!CondScope.destroyLocals()) 5574 return false; 5575 if (!this->jump(CondLabel)) 5576 return false; 5577 // End of loop body. 5578 5579 this->emitLabel(EndLabel); 5580 // If we jumped out of the loop above, we still need to clean up the condition 5581 // scope. 5582 return CondScope.destroyLocals(); 5583 } 5584 5585 template <class Emitter> 5586 bool Compiler<Emitter>::visitCXXForRangeStmt(const CXXForRangeStmt *S) { 5587 const Stmt *Init = S->getInit(); 5588 const Expr *Cond = S->getCond(); 5589 const Expr *Inc = S->getInc(); 5590 const Stmt *Body = S->getBody(); 5591 const Stmt *BeginStmt = S->getBeginStmt(); 5592 const Stmt *RangeStmt = S->getRangeStmt(); 5593 const Stmt *EndStmt = S->getEndStmt(); 5594 5595 LabelTy EndLabel = this->getLabel(); 5596 LabelTy CondLabel = this->getLabel(); 5597 LabelTy IncLabel = this->getLabel(); 5598 LoopScope<Emitter> LS(this, EndLabel, IncLabel); 5599 5600 // Emit declarations needed in the loop. 5601 if (Init && !this->visitStmt(Init)) 5602 return false; 5603 if (!this->visitStmt(RangeStmt)) 5604 return false; 5605 if (!this->visitStmt(BeginStmt)) 5606 return false; 5607 if (!this->visitStmt(EndStmt)) 5608 return false; 5609 5610 // Now the condition as well as the loop variable assignment. 5611 this->fallthrough(CondLabel); 5612 this->emitLabel(CondLabel); 5613 if (!this->visitBool(Cond)) 5614 return false; 5615 if (!this->jumpFalse(EndLabel)) 5616 return false; 5617 5618 if (!this->visitDeclStmt(S->getLoopVarStmt(), /*EvaluateConditionDecl=*/true)) 5619 return false; 5620 5621 // Body. 5622 { 5623 if (!this->visitStmt(Body)) 5624 return false; 5625 5626 this->fallthrough(IncLabel); 5627 this->emitLabel(IncLabel); 5628 if (!this->discard(Inc)) 5629 return false; 5630 } 5631 5632 if (!this->jump(CondLabel)) 5633 return false; 5634 5635 this->fallthrough(EndLabel); 5636 this->emitLabel(EndLabel); 5637 return true; 5638 } 5639 5640 template <class Emitter> 5641 bool Compiler<Emitter>::visitBreakStmt(const BreakStmt *S) { 5642 if (!BreakLabel) 5643 return false; 5644 5645 for (VariableScope<Emitter> *C = VarScope; C != BreakVarScope; 5646 C = C->getParent()) 5647 C->emitDestruction(); 5648 return this->jump(*BreakLabel); 5649 } 5650 5651 template <class Emitter> 5652 bool Compiler<Emitter>::visitContinueStmt(const ContinueStmt *S) { 5653 if (!ContinueLabel) 5654 return false; 5655 5656 for (VariableScope<Emitter> *C = VarScope; 5657 C && C->getParent() != ContinueVarScope; C = C->getParent()) 5658 C->emitDestruction(); 5659 return this->jump(*ContinueLabel); 5660 } 5661 5662 template <class Emitter> 5663 bool Compiler<Emitter>::visitSwitchStmt(const SwitchStmt *S) { 5664 const Expr *Cond = S->getCond(); 5665 if (Cond->containsErrors()) 5666 return false; 5667 5668 PrimType CondT = this->classifyPrim(Cond->getType()); 5669 LocalScope<Emitter> LS(this); 5670 5671 LabelTy EndLabel = this->getLabel(); 5672 OptLabelTy DefaultLabel = std::nullopt; 5673 unsigned CondVar = 5674 this->allocateLocalPrimitive(Cond, CondT, /*IsConst=*/true); 5675 5676 if (const auto *CondInit = S->getInit()) 5677 if (!visitStmt(CondInit)) 5678 return false; 5679 5680 if (const DeclStmt *CondDecl = S->getConditionVariableDeclStmt()) 5681 if (!visitDeclStmt(CondDecl)) 5682 return false; 5683 5684 // Initialize condition variable. 5685 if (!this->visit(Cond)) 5686 return false; 5687 if (!this->emitSetLocal(CondT, CondVar, S)) 5688 return false; 5689 5690 if (!this->maybeEmitDeferredVarInit(S->getConditionVariable())) 5691 return false; 5692 5693 CaseMap CaseLabels; 5694 // Create labels and comparison ops for all case statements. 5695 for (const SwitchCase *SC = S->getSwitchCaseList(); SC; 5696 SC = SC->getNextSwitchCase()) { 5697 if (const auto *CS = dyn_cast<CaseStmt>(SC)) { 5698 // FIXME: Implement ranges. 5699 if (CS->caseStmtIsGNURange()) 5700 return false; 5701 CaseLabels[SC] = this->getLabel(); 5702 5703 const Expr *Value = CS->getLHS(); 5704 PrimType ValueT = this->classifyPrim(Value->getType()); 5705 5706 // Compare the case statement's value to the switch condition. 5707 if (!this->emitGetLocal(CondT, CondVar, CS)) 5708 return false; 5709 if (!this->visit(Value)) 5710 return false; 5711 5712 // Compare and jump to the case label. 5713 if (!this->emitEQ(ValueT, S)) 5714 return false; 5715 if (!this->jumpTrue(CaseLabels[CS])) 5716 return false; 5717 } else { 5718 assert(!DefaultLabel); 5719 DefaultLabel = this->getLabel(); 5720 } 5721 } 5722 5723 // If none of the conditions above were true, fall through to the default 5724 // statement or jump after the switch statement. 5725 if (DefaultLabel) { 5726 if (!this->jump(*DefaultLabel)) 5727 return false; 5728 } else { 5729 if (!this->jump(EndLabel)) 5730 return false; 5731 } 5732 5733 SwitchScope<Emitter> SS(this, std::move(CaseLabels), EndLabel, DefaultLabel); 5734 if (!this->visitStmt(S->getBody())) 5735 return false; 5736 this->emitLabel(EndLabel); 5737 5738 return LS.destroyLocals(); 5739 } 5740 5741 template <class Emitter> 5742 bool Compiler<Emitter>::visitCaseStmt(const CaseStmt *S) { 5743 this->emitLabel(CaseLabels[S]); 5744 return this->visitStmt(S->getSubStmt()); 5745 } 5746 5747 template <class Emitter> 5748 bool Compiler<Emitter>::visitDefaultStmt(const DefaultStmt *S) { 5749 this->emitLabel(*DefaultLabel); 5750 return this->visitStmt(S->getSubStmt()); 5751 } 5752 5753 template <class Emitter> 5754 bool Compiler<Emitter>::visitAttributedStmt(const AttributedStmt *S) { 5755 if (this->Ctx.getLangOpts().CXXAssumptions && 5756 !this->Ctx.getLangOpts().MSVCCompat) { 5757 for (const Attr *A : S->getAttrs()) { 5758 auto *AA = dyn_cast<CXXAssumeAttr>(A); 5759 if (!AA) 5760 continue; 5761 5762 assert(isa<NullStmt>(S->getSubStmt())); 5763 5764 const Expr *Assumption = AA->getAssumption(); 5765 if (Assumption->isValueDependent()) 5766 return false; 5767 5768 if (Assumption->HasSideEffects(this->Ctx.getASTContext())) 5769 continue; 5770 5771 // Evaluate assumption. 5772 if (!this->visitBool(Assumption)) 5773 return false; 5774 5775 if (!this->emitAssume(Assumption)) 5776 return false; 5777 } 5778 } 5779 5780 // Ignore other attributes. 5781 return this->visitStmt(S->getSubStmt()); 5782 } 5783 5784 template <class Emitter> 5785 bool Compiler<Emitter>::visitCXXTryStmt(const CXXTryStmt *S) { 5786 // Ignore all handlers. 5787 return this->visitStmt(S->getTryBlock()); 5788 } 5789 5790 template <class Emitter> 5791 bool Compiler<Emitter>::emitLambdaStaticInvokerBody(const CXXMethodDecl *MD) { 5792 assert(MD->isLambdaStaticInvoker()); 5793 assert(MD->hasBody()); 5794 assert(cast<CompoundStmt>(MD->getBody())->body_empty()); 5795 5796 const CXXRecordDecl *ClosureClass = MD->getParent(); 5797 const CXXMethodDecl *LambdaCallOp = ClosureClass->getLambdaCallOperator(); 5798 assert(ClosureClass->captures_begin() == ClosureClass->captures_end()); 5799 const Function *Func = this->getFunction(LambdaCallOp); 5800 if (!Func) 5801 return false; 5802 assert(Func->hasThisPointer()); 5803 assert(Func->getNumParams() == (MD->getNumParams() + 1 + Func->hasRVO())); 5804 5805 if (Func->hasRVO()) { 5806 if (!this->emitRVOPtr(MD)) 5807 return false; 5808 } 5809 5810 // The lambda call operator needs an instance pointer, but we don't have 5811 // one here, and we don't need one either because the lambda cannot have 5812 // any captures, as verified above. Emit a null pointer. This is then 5813 // special-cased when interpreting to not emit any misleading diagnostics. 5814 if (!this->emitNullPtr(0, nullptr, MD)) 5815 return false; 5816 5817 // Forward all arguments from the static invoker to the lambda call operator. 5818 for (const ParmVarDecl *PVD : MD->parameters()) { 5819 auto It = this->Params.find(PVD); 5820 assert(It != this->Params.end()); 5821 5822 // We do the lvalue-to-rvalue conversion manually here, so no need 5823 // to care about references. 5824 PrimType ParamType = this->classify(PVD->getType()).value_or(PT_Ptr); 5825 if (!this->emitGetParam(ParamType, It->second.Offset, MD)) 5826 return false; 5827 } 5828 5829 if (!this->emitCall(Func, 0, LambdaCallOp)) 5830 return false; 5831 5832 this->emitCleanup(); 5833 if (ReturnType) 5834 return this->emitRet(*ReturnType, MD); 5835 5836 // Nothing to do, since we emitted the RVO pointer above. 5837 return this->emitRetVoid(MD); 5838 } 5839 5840 template <class Emitter> 5841 bool Compiler<Emitter>::checkLiteralType(const Expr *E) { 5842 if (Ctx.getLangOpts().CPlusPlus23) 5843 return true; 5844 5845 if (!E->isPRValue() || E->getType()->isLiteralType(Ctx.getASTContext())) 5846 return true; 5847 5848 return this->emitCheckLiteralType(E->getType().getTypePtr(), E); 5849 } 5850 5851 template <class Emitter> 5852 bool Compiler<Emitter>::compileConstructor(const CXXConstructorDecl *Ctor) { 5853 assert(!ReturnType); 5854 5855 auto emitFieldInitializer = [&](const Record::Field *F, unsigned FieldOffset, 5856 const Expr *InitExpr) -> bool { 5857 // We don't know what to do with these, so just return false. 5858 if (InitExpr->getType().isNull()) 5859 return false; 5860 5861 if (std::optional<PrimType> T = this->classify(InitExpr)) { 5862 if (!this->visit(InitExpr)) 5863 return false; 5864 5865 if (F->isBitField()) 5866 return this->emitInitThisBitField(*T, F, FieldOffset, InitExpr); 5867 return this->emitInitThisField(*T, FieldOffset, InitExpr); 5868 } 5869 // Non-primitive case. Get a pointer to the field-to-initialize 5870 // on the stack and call visitInitialzer() for it. 5871 InitLinkScope<Emitter> FieldScope(this, InitLink::Field(F->Offset)); 5872 if (!this->emitGetPtrThisField(FieldOffset, InitExpr)) 5873 return false; 5874 5875 if (!this->visitInitializer(InitExpr)) 5876 return false; 5877 5878 return this->emitFinishInitPop(InitExpr); 5879 }; 5880 5881 const RecordDecl *RD = Ctor->getParent(); 5882 const Record *R = this->getRecord(RD); 5883 if (!R) 5884 return false; 5885 5886 if (R->isUnion() && Ctor->isCopyOrMoveConstructor()) { 5887 if (R->getNumFields() == 0) 5888 return this->emitRetVoid(Ctor); 5889 // union copy and move ctors are special. 5890 assert(cast<CompoundStmt>(Ctor->getBody())->body_empty()); 5891 if (!this->emitThis(Ctor)) 5892 return false; 5893 5894 auto PVD = Ctor->getParamDecl(0); 5895 ParamOffset PO = this->Params[PVD]; // Must exist. 5896 5897 if (!this->emitGetParam(PT_Ptr, PO.Offset, Ctor)) 5898 return false; 5899 5900 return this->emitMemcpy(Ctor) && this->emitPopPtr(Ctor) && 5901 this->emitRetVoid(Ctor); 5902 } 5903 5904 InitLinkScope<Emitter> InitScope(this, InitLink::This()); 5905 for (const auto *Init : Ctor->inits()) { 5906 // Scope needed for the initializers. 5907 BlockScope<Emitter> Scope(this); 5908 5909 const Expr *InitExpr = Init->getInit(); 5910 if (const FieldDecl *Member = Init->getMember()) { 5911 const Record::Field *F = R->getField(Member); 5912 5913 if (!emitFieldInitializer(F, F->Offset, InitExpr)) 5914 return false; 5915 } else if (const Type *Base = Init->getBaseClass()) { 5916 const auto *BaseDecl = Base->getAsCXXRecordDecl(); 5917 assert(BaseDecl); 5918 5919 if (Init->isBaseVirtual()) { 5920 assert(R->getVirtualBase(BaseDecl)); 5921 if (!this->emitGetPtrThisVirtBase(BaseDecl, InitExpr)) 5922 return false; 5923 5924 } else { 5925 // Base class initializer. 5926 // Get This Base and call initializer on it. 5927 const Record::Base *B = R->getBase(BaseDecl); 5928 assert(B); 5929 if (!this->emitGetPtrThisBase(B->Offset, InitExpr)) 5930 return false; 5931 } 5932 5933 if (!this->visitInitializer(InitExpr)) 5934 return false; 5935 if (!this->emitFinishInitPop(InitExpr)) 5936 return false; 5937 } else if (const IndirectFieldDecl *IFD = Init->getIndirectMember()) { 5938 assert(IFD->getChainingSize() >= 2); 5939 5940 unsigned NestedFieldOffset = 0; 5941 const Record::Field *NestedField = nullptr; 5942 for (const NamedDecl *ND : IFD->chain()) { 5943 const auto *FD = cast<FieldDecl>(ND); 5944 const Record *FieldRecord = this->P.getOrCreateRecord(FD->getParent()); 5945 assert(FieldRecord); 5946 5947 NestedField = FieldRecord->getField(FD); 5948 assert(NestedField); 5949 5950 NestedFieldOffset += NestedField->Offset; 5951 } 5952 assert(NestedField); 5953 5954 if (!emitFieldInitializer(NestedField, NestedFieldOffset, InitExpr)) 5955 return false; 5956 5957 // Mark all chain links as initialized. 5958 unsigned InitFieldOffset = 0; 5959 for (const NamedDecl *ND : IFD->chain().drop_back()) { 5960 const auto *FD = cast<FieldDecl>(ND); 5961 const Record *FieldRecord = this->P.getOrCreateRecord(FD->getParent()); 5962 assert(FieldRecord); 5963 NestedField = FieldRecord->getField(FD); 5964 InitFieldOffset += NestedField->Offset; 5965 assert(NestedField); 5966 if (!this->emitGetPtrThisField(InitFieldOffset, InitExpr)) 5967 return false; 5968 if (!this->emitFinishInitPop(InitExpr)) 5969 return false; 5970 } 5971 5972 } else { 5973 assert(Init->isDelegatingInitializer()); 5974 if (!this->emitThis(InitExpr)) 5975 return false; 5976 if (!this->visitInitializer(Init->getInit())) 5977 return false; 5978 if (!this->emitPopPtr(InitExpr)) 5979 return false; 5980 } 5981 5982 if (!Scope.destroyLocals()) 5983 return false; 5984 } 5985 5986 if (const auto *Body = Ctor->getBody()) 5987 if (!visitStmt(Body)) 5988 return false; 5989 5990 return this->emitRetVoid(SourceInfo{}); 5991 } 5992 5993 template <class Emitter> 5994 bool Compiler<Emitter>::compileDestructor(const CXXDestructorDecl *Dtor) { 5995 const RecordDecl *RD = Dtor->getParent(); 5996 const Record *R = this->getRecord(RD); 5997 if (!R) 5998 return false; 5999 6000 if (!Dtor->isTrivial() && Dtor->getBody()) { 6001 if (!this->visitStmt(Dtor->getBody())) 6002 return false; 6003 } 6004 6005 if (!this->emitThis(Dtor)) 6006 return false; 6007 6008 if (!this->emitCheckDestruction(Dtor)) 6009 return false; 6010 6011 assert(R); 6012 if (!R->isUnion()) { 6013 // First, destroy all fields. 6014 for (const Record::Field &Field : llvm::reverse(R->fields())) { 6015 const Descriptor *D = Field.Desc; 6016 if (!D->isPrimitive() && !D->isPrimitiveArray()) { 6017 if (!this->emitGetPtrField(Field.Offset, SourceInfo{})) 6018 return false; 6019 if (!this->emitDestruction(D, SourceInfo{})) 6020 return false; 6021 if (!this->emitPopPtr(SourceInfo{})) 6022 return false; 6023 } 6024 } 6025 } 6026 6027 for (const Record::Base &Base : llvm::reverse(R->bases())) { 6028 if (Base.R->isAnonymousUnion()) 6029 continue; 6030 6031 if (!this->emitGetPtrBase(Base.Offset, SourceInfo{})) 6032 return false; 6033 if (!this->emitRecordDestruction(Base.R, {})) 6034 return false; 6035 if (!this->emitPopPtr(SourceInfo{})) 6036 return false; 6037 } 6038 6039 // FIXME: Virtual bases. 6040 return this->emitPopPtr(Dtor) && this->emitRetVoid(Dtor); 6041 } 6042 6043 template <class Emitter> 6044 bool Compiler<Emitter>::compileUnionAssignmentOperator( 6045 const CXXMethodDecl *MD) { 6046 if (!this->emitThis(MD)) 6047 return false; 6048 6049 auto PVD = MD->getParamDecl(0); 6050 ParamOffset PO = this->Params[PVD]; // Must exist. 6051 6052 if (!this->emitGetParam(PT_Ptr, PO.Offset, MD)) 6053 return false; 6054 6055 return this->emitMemcpy(MD) && this->emitRet(PT_Ptr, MD); 6056 } 6057 6058 template <class Emitter> 6059 bool Compiler<Emitter>::visitFunc(const FunctionDecl *F) { 6060 // Classify the return type. 6061 ReturnType = this->classify(F->getReturnType()); 6062 6063 this->CompilingFunction = F; 6064 6065 if (const auto *Ctor = dyn_cast<CXXConstructorDecl>(F)) 6066 return this->compileConstructor(Ctor); 6067 if (const auto *Dtor = dyn_cast<CXXDestructorDecl>(F)) 6068 return this->compileDestructor(Dtor); 6069 6070 // Emit custom code if this is a lambda static invoker. 6071 if (const auto *MD = dyn_cast<CXXMethodDecl>(F)) { 6072 const RecordDecl *RD = MD->getParent(); 6073 6074 if (RD->isUnion() && 6075 (MD->isCopyAssignmentOperator() || MD->isMoveAssignmentOperator())) 6076 return this->compileUnionAssignmentOperator(MD); 6077 6078 if (MD->isLambdaStaticInvoker()) 6079 return this->emitLambdaStaticInvokerBody(MD); 6080 } 6081 6082 // Regular functions. 6083 if (const auto *Body = F->getBody()) 6084 if (!visitStmt(Body)) 6085 return false; 6086 6087 // Emit a guard return to protect against a code path missing one. 6088 if (F->getReturnType()->isVoidType()) 6089 return this->emitRetVoid(SourceInfo{}); 6090 return this->emitNoRet(SourceInfo{}); 6091 } 6092 6093 template <class Emitter> 6094 bool Compiler<Emitter>::VisitUnaryOperator(const UnaryOperator *E) { 6095 const Expr *SubExpr = E->getSubExpr(); 6096 if (SubExpr->getType()->isAnyComplexType()) 6097 return this->VisitComplexUnaryOperator(E); 6098 if (SubExpr->getType()->isVectorType()) 6099 return this->VisitVectorUnaryOperator(E); 6100 if (SubExpr->getType()->isFixedPointType()) 6101 return this->VisitFixedPointUnaryOperator(E); 6102 std::optional<PrimType> T = classify(SubExpr->getType()); 6103 6104 switch (E->getOpcode()) { 6105 case UO_PostInc: { // x++ 6106 if (!Ctx.getLangOpts().CPlusPlus14) 6107 return this->emitInvalid(E); 6108 if (!T) 6109 return this->emitError(E); 6110 6111 if (!this->visit(SubExpr)) 6112 return false; 6113 6114 if (T == PT_Ptr) { 6115 if (!this->emitIncPtr(E)) 6116 return false; 6117 6118 return DiscardResult ? this->emitPopPtr(E) : true; 6119 } 6120 6121 if (T == PT_Float) { 6122 return DiscardResult ? this->emitIncfPop(getFPOptions(E), E) 6123 : this->emitIncf(getFPOptions(E), E); 6124 } 6125 6126 return DiscardResult ? this->emitIncPop(*T, E->canOverflow(), E) 6127 : this->emitInc(*T, E->canOverflow(), E); 6128 } 6129 case UO_PostDec: { // x-- 6130 if (!Ctx.getLangOpts().CPlusPlus14) 6131 return this->emitInvalid(E); 6132 if (!T) 6133 return this->emitError(E); 6134 6135 if (!this->visit(SubExpr)) 6136 return false; 6137 6138 if (T == PT_Ptr) { 6139 if (!this->emitDecPtr(E)) 6140 return false; 6141 6142 return DiscardResult ? this->emitPopPtr(E) : true; 6143 } 6144 6145 if (T == PT_Float) { 6146 return DiscardResult ? this->emitDecfPop(getFPOptions(E), E) 6147 : this->emitDecf(getFPOptions(E), E); 6148 } 6149 6150 return DiscardResult ? this->emitDecPop(*T, E->canOverflow(), E) 6151 : this->emitDec(*T, E->canOverflow(), E); 6152 } 6153 case UO_PreInc: { // ++x 6154 if (!Ctx.getLangOpts().CPlusPlus14) 6155 return this->emitInvalid(E); 6156 if (!T) 6157 return this->emitError(E); 6158 6159 if (!this->visit(SubExpr)) 6160 return false; 6161 6162 if (T == PT_Ptr) { 6163 if (!this->emitLoadPtr(E)) 6164 return false; 6165 if (!this->emitConstUint8(1, E)) 6166 return false; 6167 if (!this->emitAddOffsetUint8(E)) 6168 return false; 6169 return DiscardResult ? this->emitStorePopPtr(E) : this->emitStorePtr(E); 6170 } 6171 6172 // Post-inc and pre-inc are the same if the value is to be discarded. 6173 if (DiscardResult) { 6174 if (T == PT_Float) 6175 return this->emitIncfPop(getFPOptions(E), E); 6176 return this->emitIncPop(*T, E->canOverflow(), E); 6177 } 6178 6179 if (T == PT_Float) { 6180 const auto &TargetSemantics = Ctx.getFloatSemantics(E->getType()); 6181 if (!this->emitLoadFloat(E)) 6182 return false; 6183 APFloat F(TargetSemantics, 1); 6184 if (!this->emitFloat(F, E)) 6185 return false; 6186 6187 if (!this->emitAddf(getFPOptions(E), E)) 6188 return false; 6189 if (!this->emitStoreFloat(E)) 6190 return false; 6191 } else { 6192 assert(isIntegralType(*T)); 6193 if (!this->emitPreInc(*T, E->canOverflow(), E)) 6194 return false; 6195 } 6196 return E->isGLValue() || this->emitLoadPop(*T, E); 6197 } 6198 case UO_PreDec: { // --x 6199 if (!Ctx.getLangOpts().CPlusPlus14) 6200 return this->emitInvalid(E); 6201 if (!T) 6202 return this->emitError(E); 6203 6204 if (!this->visit(SubExpr)) 6205 return false; 6206 6207 if (T == PT_Ptr) { 6208 if (!this->emitLoadPtr(E)) 6209 return false; 6210 if (!this->emitConstUint8(1, E)) 6211 return false; 6212 if (!this->emitSubOffsetUint8(E)) 6213 return false; 6214 return DiscardResult ? this->emitStorePopPtr(E) : this->emitStorePtr(E); 6215 } 6216 6217 // Post-dec and pre-dec are the same if the value is to be discarded. 6218 if (DiscardResult) { 6219 if (T == PT_Float) 6220 return this->emitDecfPop(getFPOptions(E), E); 6221 return this->emitDecPop(*T, E->canOverflow(), E); 6222 } 6223 6224 if (T == PT_Float) { 6225 const auto &TargetSemantics = Ctx.getFloatSemantics(E->getType()); 6226 if (!this->emitLoadFloat(E)) 6227 return false; 6228 APFloat F(TargetSemantics, 1); 6229 if (!this->emitFloat(F, E)) 6230 return false; 6231 6232 if (!this->emitSubf(getFPOptions(E), E)) 6233 return false; 6234 if (!this->emitStoreFloat(E)) 6235 return false; 6236 } else { 6237 assert(isIntegralType(*T)); 6238 if (!this->emitPreDec(*T, E->canOverflow(), E)) 6239 return false; 6240 } 6241 return E->isGLValue() || this->emitLoadPop(*T, E); 6242 } 6243 case UO_LNot: // !x 6244 if (!T) 6245 return this->emitError(E); 6246 6247 if (DiscardResult) 6248 return this->discard(SubExpr); 6249 6250 if (!this->visitBool(SubExpr)) 6251 return false; 6252 6253 if (!this->emitInv(E)) 6254 return false; 6255 6256 if (PrimType ET = classifyPrim(E->getType()); ET != PT_Bool) 6257 return this->emitCast(PT_Bool, ET, E); 6258 return true; 6259 case UO_Minus: // -x 6260 if (!T) 6261 return this->emitError(E); 6262 6263 if (!this->visit(SubExpr)) 6264 return false; 6265 return DiscardResult ? this->emitPop(*T, E) : this->emitNeg(*T, E); 6266 case UO_Plus: // +x 6267 if (!T) 6268 return this->emitError(E); 6269 6270 if (!this->visit(SubExpr)) // noop 6271 return false; 6272 return DiscardResult ? this->emitPop(*T, E) : true; 6273 case UO_AddrOf: // &x 6274 if (E->getType()->isMemberPointerType()) { 6275 // C++11 [expr.unary.op]p3 has very strict rules on how the address of a 6276 // member can be formed. 6277 return this->emitGetMemberPtr(cast<DeclRefExpr>(SubExpr)->getDecl(), E); 6278 } 6279 // We should already have a pointer when we get here. 6280 return this->delegate(SubExpr); 6281 case UO_Deref: // *x 6282 if (DiscardResult) 6283 return this->discard(SubExpr); 6284 6285 if (!this->visit(SubExpr)) 6286 return false; 6287 6288 if (classifyPrim(SubExpr) == PT_Ptr) 6289 return this->emitNarrowPtr(E); 6290 return true; 6291 6292 case UO_Not: // ~x 6293 if (!T) 6294 return this->emitError(E); 6295 6296 if (!this->visit(SubExpr)) 6297 return false; 6298 return DiscardResult ? this->emitPop(*T, E) : this->emitComp(*T, E); 6299 case UO_Real: // __real x 6300 assert(T); 6301 return this->delegate(SubExpr); 6302 case UO_Imag: { // __imag x 6303 assert(T); 6304 if (!this->discard(SubExpr)) 6305 return false; 6306 return this->visitZeroInitializer(*T, SubExpr->getType(), SubExpr); 6307 } 6308 case UO_Extension: 6309 return this->delegate(SubExpr); 6310 case UO_Coawait: 6311 assert(false && "Unhandled opcode"); 6312 } 6313 6314 return false; 6315 } 6316 6317 template <class Emitter> 6318 bool Compiler<Emitter>::VisitComplexUnaryOperator(const UnaryOperator *E) { 6319 const Expr *SubExpr = E->getSubExpr(); 6320 assert(SubExpr->getType()->isAnyComplexType()); 6321 6322 if (DiscardResult) 6323 return this->discard(SubExpr); 6324 6325 std::optional<PrimType> ResT = classify(E); 6326 auto prepareResult = [=]() -> bool { 6327 if (!ResT && !Initializing) { 6328 std::optional<unsigned> LocalIndex = allocateLocal(SubExpr); 6329 if (!LocalIndex) 6330 return false; 6331 return this->emitGetPtrLocal(*LocalIndex, E); 6332 } 6333 6334 return true; 6335 }; 6336 6337 // The offset of the temporary, if we created one. 6338 unsigned SubExprOffset = ~0u; 6339 auto createTemp = [=, &SubExprOffset]() -> bool { 6340 SubExprOffset = 6341 this->allocateLocalPrimitive(SubExpr, PT_Ptr, /*IsConst=*/true); 6342 if (!this->visit(SubExpr)) 6343 return false; 6344 return this->emitSetLocal(PT_Ptr, SubExprOffset, E); 6345 }; 6346 6347 PrimType ElemT = classifyComplexElementType(SubExpr->getType()); 6348 auto getElem = [=](unsigned Offset, unsigned Index) -> bool { 6349 if (!this->emitGetLocal(PT_Ptr, Offset, E)) 6350 return false; 6351 return this->emitArrayElemPop(ElemT, Index, E); 6352 }; 6353 6354 switch (E->getOpcode()) { 6355 case UO_Minus: 6356 if (!prepareResult()) 6357 return false; 6358 if (!createTemp()) 6359 return false; 6360 for (unsigned I = 0; I != 2; ++I) { 6361 if (!getElem(SubExprOffset, I)) 6362 return false; 6363 if (!this->emitNeg(ElemT, E)) 6364 return false; 6365 if (!this->emitInitElem(ElemT, I, E)) 6366 return false; 6367 } 6368 break; 6369 6370 case UO_Plus: // +x 6371 case UO_AddrOf: // &x 6372 case UO_Deref: // *x 6373 return this->delegate(SubExpr); 6374 6375 case UO_LNot: 6376 if (!this->visit(SubExpr)) 6377 return false; 6378 if (!this->emitComplexBoolCast(SubExpr)) 6379 return false; 6380 if (!this->emitInv(E)) 6381 return false; 6382 if (PrimType ET = classifyPrim(E->getType()); ET != PT_Bool) 6383 return this->emitCast(PT_Bool, ET, E); 6384 return true; 6385 6386 case UO_Real: 6387 return this->emitComplexReal(SubExpr); 6388 6389 case UO_Imag: 6390 if (!this->visit(SubExpr)) 6391 return false; 6392 6393 if (SubExpr->isLValue()) { 6394 if (!this->emitConstUint8(1, E)) 6395 return false; 6396 return this->emitArrayElemPtrPopUint8(E); 6397 } 6398 6399 // Since our _Complex implementation does not map to a primitive type, 6400 // we sometimes have to do the lvalue-to-rvalue conversion here manually. 6401 return this->emitArrayElemPop(classifyPrim(E->getType()), 1, E); 6402 6403 case UO_Not: // ~x 6404 if (!this->visit(SubExpr)) 6405 return false; 6406 // Negate the imaginary component. 6407 if (!this->emitArrayElem(ElemT, 1, E)) 6408 return false; 6409 if (!this->emitNeg(ElemT, E)) 6410 return false; 6411 if (!this->emitInitElem(ElemT, 1, E)) 6412 return false; 6413 return DiscardResult ? this->emitPopPtr(E) : true; 6414 6415 case UO_Extension: 6416 return this->delegate(SubExpr); 6417 6418 default: 6419 return this->emitInvalid(E); 6420 } 6421 6422 return true; 6423 } 6424 6425 template <class Emitter> 6426 bool Compiler<Emitter>::VisitVectorUnaryOperator(const UnaryOperator *E) { 6427 const Expr *SubExpr = E->getSubExpr(); 6428 assert(SubExpr->getType()->isVectorType()); 6429 6430 if (DiscardResult) 6431 return this->discard(SubExpr); 6432 6433 auto UnaryOp = E->getOpcode(); 6434 if (UnaryOp == UO_Extension) 6435 return this->delegate(SubExpr); 6436 6437 if (UnaryOp != UO_Plus && UnaryOp != UO_Minus && UnaryOp != UO_LNot && 6438 UnaryOp != UO_Not && UnaryOp != UO_AddrOf) 6439 return this->emitInvalid(E); 6440 6441 // Nothing to do here. 6442 if (UnaryOp == UO_Plus || UnaryOp == UO_AddrOf) 6443 return this->delegate(SubExpr); 6444 6445 if (!Initializing) { 6446 std::optional<unsigned> LocalIndex = allocateLocal(SubExpr); 6447 if (!LocalIndex) 6448 return false; 6449 if (!this->emitGetPtrLocal(*LocalIndex, E)) 6450 return false; 6451 } 6452 6453 // The offset of the temporary, if we created one. 6454 unsigned SubExprOffset = 6455 this->allocateLocalPrimitive(SubExpr, PT_Ptr, /*IsConst=*/true); 6456 if (!this->visit(SubExpr)) 6457 return false; 6458 if (!this->emitSetLocal(PT_Ptr, SubExprOffset, E)) 6459 return false; 6460 6461 const auto *VecTy = SubExpr->getType()->getAs<VectorType>(); 6462 PrimType ElemT = classifyVectorElementType(SubExpr->getType()); 6463 auto getElem = [=](unsigned Offset, unsigned Index) -> bool { 6464 if (!this->emitGetLocal(PT_Ptr, Offset, E)) 6465 return false; 6466 return this->emitArrayElemPop(ElemT, Index, E); 6467 }; 6468 6469 switch (UnaryOp) { 6470 case UO_Minus: 6471 for (unsigned I = 0; I != VecTy->getNumElements(); ++I) { 6472 if (!getElem(SubExprOffset, I)) 6473 return false; 6474 if (!this->emitNeg(ElemT, E)) 6475 return false; 6476 if (!this->emitInitElem(ElemT, I, E)) 6477 return false; 6478 } 6479 break; 6480 case UO_LNot: { // !x 6481 // In C++, the logic operators !, &&, || are available for vectors. !v is 6482 // equivalent to v == 0. 6483 // 6484 // The result of the comparison is a vector of the same width and number of 6485 // elements as the comparison operands with a signed integral element type. 6486 // 6487 // https://gcc.gnu.org/onlinedocs/gcc/Vector-Extensions.html 6488 QualType ResultVecTy = E->getType(); 6489 PrimType ResultVecElemT = 6490 classifyPrim(ResultVecTy->getAs<VectorType>()->getElementType()); 6491 for (unsigned I = 0; I != VecTy->getNumElements(); ++I) { 6492 if (!getElem(SubExprOffset, I)) 6493 return false; 6494 // operator ! on vectors returns -1 for 'truth', so negate it. 6495 if (!this->emitPrimCast(ElemT, PT_Bool, Ctx.getASTContext().BoolTy, E)) 6496 return false; 6497 if (!this->emitInv(E)) 6498 return false; 6499 if (!this->emitPrimCast(PT_Bool, ElemT, VecTy->getElementType(), E)) 6500 return false; 6501 if (!this->emitNeg(ElemT, E)) 6502 return false; 6503 if (ElemT != ResultVecElemT && 6504 !this->emitPrimCast(ElemT, ResultVecElemT, ResultVecTy, E)) 6505 return false; 6506 if (!this->emitInitElem(ResultVecElemT, I, E)) 6507 return false; 6508 } 6509 break; 6510 } 6511 case UO_Not: // ~x 6512 for (unsigned I = 0; I != VecTy->getNumElements(); ++I) { 6513 if (!getElem(SubExprOffset, I)) 6514 return false; 6515 if (ElemT == PT_Bool) { 6516 if (!this->emitInv(E)) 6517 return false; 6518 } else { 6519 if (!this->emitComp(ElemT, E)) 6520 return false; 6521 } 6522 if (!this->emitInitElem(ElemT, I, E)) 6523 return false; 6524 } 6525 break; 6526 default: 6527 llvm_unreachable("Unsupported unary operators should be handled up front"); 6528 } 6529 return true; 6530 } 6531 6532 template <class Emitter> 6533 bool Compiler<Emitter>::visitDeclRef(const ValueDecl *D, const Expr *E) { 6534 if (DiscardResult) 6535 return true; 6536 6537 if (const auto *ECD = dyn_cast<EnumConstantDecl>(D)) 6538 return this->emitConst(ECD->getInitVal(), E); 6539 if (const auto *FuncDecl = dyn_cast<FunctionDecl>(D)) { 6540 const Function *F = getFunction(FuncDecl); 6541 return F && this->emitGetFnPtr(F, E); 6542 } 6543 if (const auto *TPOD = dyn_cast<TemplateParamObjectDecl>(D)) { 6544 if (std::optional<unsigned> Index = P.getOrCreateGlobal(D)) { 6545 if (!this->emitGetPtrGlobal(*Index, E)) 6546 return false; 6547 if (std::optional<PrimType> T = classify(E->getType())) { 6548 if (!this->visitAPValue(TPOD->getValue(), *T, E)) 6549 return false; 6550 return this->emitInitGlobal(*T, *Index, E); 6551 } 6552 return this->visitAPValueInitializer(TPOD->getValue(), E, 6553 TPOD->getType()); 6554 } 6555 return false; 6556 } 6557 6558 // References are implemented via pointers, so when we see a DeclRefExpr 6559 // pointing to a reference, we need to get its value directly (i.e. the 6560 // pointer to the actual value) instead of a pointer to the pointer to the 6561 // value. 6562 bool IsReference = D->getType()->isReferenceType(); 6563 6564 // Local variables. 6565 if (auto It = Locals.find(D); It != Locals.end()) { 6566 const unsigned Offset = It->second.Offset; 6567 if (IsReference) 6568 return this->emitGetLocal(classifyPrim(E), Offset, E); 6569 return this->emitGetPtrLocal(Offset, E); 6570 } 6571 // Global variables. 6572 if (auto GlobalIndex = P.getGlobal(D)) { 6573 if (IsReference) { 6574 if (!Ctx.getLangOpts().CPlusPlus11) 6575 return this->emitGetGlobal(classifyPrim(E), *GlobalIndex, E); 6576 return this->emitGetGlobalUnchecked(classifyPrim(E), *GlobalIndex, E); 6577 } 6578 6579 return this->emitGetPtrGlobal(*GlobalIndex, E); 6580 } 6581 // Function parameters. 6582 if (const auto *PVD = dyn_cast<ParmVarDecl>(D)) { 6583 if (auto It = this->Params.find(PVD); It != this->Params.end()) { 6584 if (IsReference || !It->second.IsPtr) 6585 return this->emitGetParam(classifyPrim(E), It->second.Offset, E); 6586 6587 return this->emitGetPtrParam(It->second.Offset, E); 6588 } 6589 } 6590 6591 // In case we need to re-visit a declaration. 6592 auto revisit = [&](const VarDecl *VD) -> bool { 6593 if (!this->emitPushCC(VD->hasConstantInitialization(), E)) 6594 return false; 6595 auto VarState = this->visitDecl(VD, /*IsConstexprUnknown=*/true); 6596 6597 if (!this->emitPopCC(E)) 6598 return false; 6599 6600 if (VarState.notCreated()) 6601 return true; 6602 if (!VarState) 6603 return false; 6604 // Retry. 6605 return this->visitDeclRef(D, E); 6606 }; 6607 6608 // Lambda captures. 6609 if (auto It = this->LambdaCaptures.find(D); 6610 It != this->LambdaCaptures.end()) { 6611 auto [Offset, IsPtr] = It->second; 6612 6613 if (IsPtr) 6614 return this->emitGetThisFieldPtr(Offset, E); 6615 return this->emitGetPtrThisField(Offset, E); 6616 } 6617 6618 if (const auto *DRE = dyn_cast<DeclRefExpr>(E); 6619 DRE && DRE->refersToEnclosingVariableOrCapture()) { 6620 if (const auto *VD = dyn_cast<VarDecl>(D); VD && VD->isInitCapture()) 6621 return revisit(VD); 6622 } 6623 6624 if (const auto *BD = dyn_cast<BindingDecl>(D)) 6625 return this->visit(BD->getBinding()); 6626 6627 // Avoid infinite recursion. 6628 if (D == InitializingDecl) 6629 return this->emitDummyPtr(D, E); 6630 6631 // Try to lazily visit (or emit dummy pointers for) declarations 6632 // we haven't seen yet. 6633 // For C. 6634 if (!Ctx.getLangOpts().CPlusPlus) { 6635 if (const auto *VD = dyn_cast<VarDecl>(D); 6636 VD && VD->getAnyInitializer() && 6637 VD->getType().isConstant(Ctx.getASTContext()) && !VD->isWeak()) 6638 return revisit(VD); 6639 return this->emitDummyPtr(D, E); 6640 } 6641 6642 // ... and C++. 6643 const auto *VD = dyn_cast<VarDecl>(D); 6644 if (!VD) 6645 return this->emitDummyPtr(D, E); 6646 6647 const auto typeShouldBeVisited = [&](QualType T) -> bool { 6648 if (T.isConstant(Ctx.getASTContext())) 6649 return true; 6650 return T->isReferenceType(); 6651 }; 6652 6653 if ((VD->hasGlobalStorage() || VD->isStaticDataMember()) && 6654 typeShouldBeVisited(VD->getType())) { 6655 if (const Expr *Init = VD->getAnyInitializer(); 6656 Init && !Init->isValueDependent()) { 6657 // Whether or not the evaluation is successul doesn't really matter 6658 // here -- we will create a global variable in any case, and that 6659 // will have the state of initializer evaluation attached. 6660 APValue V; 6661 SmallVector<PartialDiagnosticAt> Notes; 6662 (void)Init->EvaluateAsInitializer(V, Ctx.getASTContext(), VD, Notes, 6663 true); 6664 return this->visitDeclRef(D, E); 6665 } 6666 return revisit(VD); 6667 } 6668 6669 // FIXME: The evaluateValue() check here is a little ridiculous, since 6670 // it will ultimately call into Context::evaluateAsInitializer(). In 6671 // other words, we're evaluating the initializer, just to know if we can 6672 // evaluate the initializer. 6673 if (VD->isLocalVarDecl() && typeShouldBeVisited(VD->getType()) && 6674 VD->getInit() && !VD->getInit()->isValueDependent()) { 6675 6676 if (VD->evaluateValue()) 6677 return revisit(VD); 6678 6679 if (!IsReference) 6680 return this->emitDummyPtr(D, E); 6681 6682 return this->emitInvalidDeclRef(cast<DeclRefExpr>(E), 6683 /*InitializerFailed=*/true, E); 6684 } 6685 6686 return this->emitDummyPtr(D, E); 6687 } 6688 6689 template <class Emitter> 6690 bool Compiler<Emitter>::VisitDeclRefExpr(const DeclRefExpr *E) { 6691 const auto *D = E->getDecl(); 6692 return this->visitDeclRef(D, E); 6693 } 6694 6695 template <class Emitter> void Compiler<Emitter>::emitCleanup() { 6696 for (VariableScope<Emitter> *C = VarScope; C; C = C->getParent()) 6697 C->emitDestruction(); 6698 } 6699 6700 template <class Emitter> 6701 unsigned Compiler<Emitter>::collectBaseOffset(const QualType BaseType, 6702 const QualType DerivedType) { 6703 const auto extractRecordDecl = [](QualType Ty) -> const CXXRecordDecl * { 6704 if (const auto *R = Ty->getPointeeCXXRecordDecl()) 6705 return R; 6706 return Ty->getAsCXXRecordDecl(); 6707 }; 6708 const CXXRecordDecl *BaseDecl = extractRecordDecl(BaseType); 6709 const CXXRecordDecl *DerivedDecl = extractRecordDecl(DerivedType); 6710 6711 return Ctx.collectBaseOffset(BaseDecl, DerivedDecl); 6712 } 6713 6714 /// Emit casts from a PrimType to another PrimType. 6715 template <class Emitter> 6716 bool Compiler<Emitter>::emitPrimCast(PrimType FromT, PrimType ToT, 6717 QualType ToQT, const Expr *E) { 6718 6719 if (FromT == PT_Float) { 6720 // Floating to floating. 6721 if (ToT == PT_Float) { 6722 const llvm::fltSemantics *ToSem = &Ctx.getFloatSemantics(ToQT); 6723 return this->emitCastFP(ToSem, getRoundingMode(E), E); 6724 } 6725 6726 if (ToT == PT_IntAP) 6727 return this->emitCastFloatingIntegralAP(Ctx.getBitWidth(ToQT), 6728 getFPOptions(E), E); 6729 if (ToT == PT_IntAPS) 6730 return this->emitCastFloatingIntegralAPS(Ctx.getBitWidth(ToQT), 6731 getFPOptions(E), E); 6732 6733 // Float to integral. 6734 if (isIntegralType(ToT) || ToT == PT_Bool) 6735 return this->emitCastFloatingIntegral(ToT, getFPOptions(E), E); 6736 } 6737 6738 if (isIntegralType(FromT) || FromT == PT_Bool) { 6739 if (ToT == PT_IntAP) 6740 return this->emitCastAP(FromT, Ctx.getBitWidth(ToQT), E); 6741 if (ToT == PT_IntAPS) 6742 return this->emitCastAPS(FromT, Ctx.getBitWidth(ToQT), E); 6743 6744 // Integral to integral. 6745 if (isIntegralType(ToT) || ToT == PT_Bool) 6746 return FromT != ToT ? this->emitCast(FromT, ToT, E) : true; 6747 6748 if (ToT == PT_Float) { 6749 // Integral to floating. 6750 const llvm::fltSemantics *ToSem = &Ctx.getFloatSemantics(ToQT); 6751 return this->emitCastIntegralFloating(FromT, ToSem, getFPOptions(E), E); 6752 } 6753 } 6754 6755 return false; 6756 } 6757 6758 /// Emits __real(SubExpr) 6759 template <class Emitter> 6760 bool Compiler<Emitter>::emitComplexReal(const Expr *SubExpr) { 6761 assert(SubExpr->getType()->isAnyComplexType()); 6762 6763 if (DiscardResult) 6764 return this->discard(SubExpr); 6765 6766 if (!this->visit(SubExpr)) 6767 return false; 6768 if (SubExpr->isLValue()) { 6769 if (!this->emitConstUint8(0, SubExpr)) 6770 return false; 6771 return this->emitArrayElemPtrPopUint8(SubExpr); 6772 } 6773 6774 // Rvalue, load the actual element. 6775 return this->emitArrayElemPop(classifyComplexElementType(SubExpr->getType()), 6776 0, SubExpr); 6777 } 6778 6779 template <class Emitter> 6780 bool Compiler<Emitter>::emitComplexBoolCast(const Expr *E) { 6781 assert(!DiscardResult); 6782 PrimType ElemT = classifyComplexElementType(E->getType()); 6783 // We emit the expression (__real(E) != 0 || __imag(E) != 0) 6784 // for us, that means (bool)E[0] || (bool)E[1] 6785 if (!this->emitArrayElem(ElemT, 0, E)) 6786 return false; 6787 if (ElemT == PT_Float) { 6788 if (!this->emitCastFloatingIntegral(PT_Bool, getFPOptions(E), E)) 6789 return false; 6790 } else { 6791 if (!this->emitCast(ElemT, PT_Bool, E)) 6792 return false; 6793 } 6794 6795 // We now have the bool value of E[0] on the stack. 6796 LabelTy LabelTrue = this->getLabel(); 6797 if (!this->jumpTrue(LabelTrue)) 6798 return false; 6799 6800 if (!this->emitArrayElemPop(ElemT, 1, E)) 6801 return false; 6802 if (ElemT == PT_Float) { 6803 if (!this->emitCastFloatingIntegral(PT_Bool, getFPOptions(E), E)) 6804 return false; 6805 } else { 6806 if (!this->emitCast(ElemT, PT_Bool, E)) 6807 return false; 6808 } 6809 // Leave the boolean value of E[1] on the stack. 6810 LabelTy EndLabel = this->getLabel(); 6811 this->jump(EndLabel); 6812 6813 this->emitLabel(LabelTrue); 6814 if (!this->emitPopPtr(E)) 6815 return false; 6816 if (!this->emitConstBool(true, E)) 6817 return false; 6818 6819 this->fallthrough(EndLabel); 6820 this->emitLabel(EndLabel); 6821 6822 return true; 6823 } 6824 6825 template <class Emitter> 6826 bool Compiler<Emitter>::emitComplexComparison(const Expr *LHS, const Expr *RHS, 6827 const BinaryOperator *E) { 6828 assert(E->isComparisonOp()); 6829 assert(!Initializing); 6830 assert(!DiscardResult); 6831 6832 PrimType ElemT; 6833 bool LHSIsComplex; 6834 unsigned LHSOffset; 6835 if (LHS->getType()->isAnyComplexType()) { 6836 LHSIsComplex = true; 6837 ElemT = classifyComplexElementType(LHS->getType()); 6838 LHSOffset = allocateLocalPrimitive(LHS, PT_Ptr, /*IsConst=*/true); 6839 if (!this->visit(LHS)) 6840 return false; 6841 if (!this->emitSetLocal(PT_Ptr, LHSOffset, E)) 6842 return false; 6843 } else { 6844 LHSIsComplex = false; 6845 PrimType LHST = classifyPrim(LHS->getType()); 6846 LHSOffset = this->allocateLocalPrimitive(LHS, LHST, /*IsConst=*/true); 6847 if (!this->visit(LHS)) 6848 return false; 6849 if (!this->emitSetLocal(LHST, LHSOffset, E)) 6850 return false; 6851 } 6852 6853 bool RHSIsComplex; 6854 unsigned RHSOffset; 6855 if (RHS->getType()->isAnyComplexType()) { 6856 RHSIsComplex = true; 6857 ElemT = classifyComplexElementType(RHS->getType()); 6858 RHSOffset = allocateLocalPrimitive(RHS, PT_Ptr, /*IsConst=*/true); 6859 if (!this->visit(RHS)) 6860 return false; 6861 if (!this->emitSetLocal(PT_Ptr, RHSOffset, E)) 6862 return false; 6863 } else { 6864 RHSIsComplex = false; 6865 PrimType RHST = classifyPrim(RHS->getType()); 6866 RHSOffset = this->allocateLocalPrimitive(RHS, RHST, /*IsConst=*/true); 6867 if (!this->visit(RHS)) 6868 return false; 6869 if (!this->emitSetLocal(RHST, RHSOffset, E)) 6870 return false; 6871 } 6872 6873 auto getElem = [&](unsigned LocalOffset, unsigned Index, 6874 bool IsComplex) -> bool { 6875 if (IsComplex) { 6876 if (!this->emitGetLocal(PT_Ptr, LocalOffset, E)) 6877 return false; 6878 return this->emitArrayElemPop(ElemT, Index, E); 6879 } 6880 return this->emitGetLocal(ElemT, LocalOffset, E); 6881 }; 6882 6883 for (unsigned I = 0; I != 2; ++I) { 6884 // Get both values. 6885 if (!getElem(LHSOffset, I, LHSIsComplex)) 6886 return false; 6887 if (!getElem(RHSOffset, I, RHSIsComplex)) 6888 return false; 6889 // And compare them. 6890 if (!this->emitEQ(ElemT, E)) 6891 return false; 6892 6893 if (!this->emitCastBoolUint8(E)) 6894 return false; 6895 } 6896 6897 // We now have two bool values on the stack. Compare those. 6898 if (!this->emitAddUint8(E)) 6899 return false; 6900 if (!this->emitConstUint8(2, E)) 6901 return false; 6902 6903 if (E->getOpcode() == BO_EQ) { 6904 if (!this->emitEQUint8(E)) 6905 return false; 6906 } else if (E->getOpcode() == BO_NE) { 6907 if (!this->emitNEUint8(E)) 6908 return false; 6909 } else 6910 return false; 6911 6912 // In C, this returns an int. 6913 if (PrimType ResT = classifyPrim(E->getType()); ResT != PT_Bool) 6914 return this->emitCast(PT_Bool, ResT, E); 6915 return true; 6916 } 6917 6918 /// When calling this, we have a pointer of the local-to-destroy 6919 /// on the stack. 6920 /// Emit destruction of record types (or arrays of record types). 6921 template <class Emitter> 6922 bool Compiler<Emitter>::emitRecordDestruction(const Record *R, SourceInfo Loc) { 6923 assert(R); 6924 assert(!R->isAnonymousUnion()); 6925 const CXXDestructorDecl *Dtor = R->getDestructor(); 6926 if (!Dtor || Dtor->isTrivial()) 6927 return true; 6928 6929 assert(Dtor); 6930 const Function *DtorFunc = getFunction(Dtor); 6931 if (!DtorFunc) 6932 return false; 6933 assert(DtorFunc->hasThisPointer()); 6934 assert(DtorFunc->getNumParams() == 1); 6935 if (!this->emitDupPtr(Loc)) 6936 return false; 6937 return this->emitCall(DtorFunc, 0, Loc); 6938 } 6939 /// When calling this, we have a pointer of the local-to-destroy 6940 /// on the stack. 6941 /// Emit destruction of record types (or arrays of record types). 6942 template <class Emitter> 6943 bool Compiler<Emitter>::emitDestruction(const Descriptor *Desc, 6944 SourceInfo Loc) { 6945 assert(Desc); 6946 assert(!Desc->isPrimitive()); 6947 assert(!Desc->isPrimitiveArray()); 6948 6949 // Can happen if the decl is invalid. 6950 if (Desc->isDummy()) 6951 return true; 6952 6953 // Arrays. 6954 if (Desc->isArray()) { 6955 const Descriptor *ElemDesc = Desc->ElemDesc; 6956 assert(ElemDesc); 6957 6958 // Don't need to do anything for these. 6959 if (ElemDesc->isPrimitiveArray()) 6960 return true; 6961 6962 // If this is an array of record types, check if we need 6963 // to call the element destructors at all. If not, try 6964 // to save the work. 6965 if (const Record *ElemRecord = ElemDesc->ElemRecord) { 6966 if (const CXXDestructorDecl *Dtor = ElemRecord->getDestructor(); 6967 !Dtor || Dtor->isTrivial()) 6968 return true; 6969 } 6970 6971 if (unsigned N = Desc->getNumElems()) { 6972 for (ssize_t I = N - 1; I >= 0; --I) { 6973 if (!this->emitConstUint64(I, Loc)) 6974 return false; 6975 if (!this->emitArrayElemPtrUint64(Loc)) 6976 return false; 6977 if (!this->emitDestruction(ElemDesc, Loc)) 6978 return false; 6979 if (!this->emitPopPtr(Loc)) 6980 return false; 6981 } 6982 } 6983 return true; 6984 } 6985 6986 assert(Desc->ElemRecord); 6987 if (Desc->ElemRecord->isAnonymousUnion()) 6988 return true; 6989 6990 return this->emitRecordDestruction(Desc->ElemRecord, Loc); 6991 } 6992 6993 /// Create a dummy pointer for the given decl (or expr) and 6994 /// push a pointer to it on the stack. 6995 template <class Emitter> 6996 bool Compiler<Emitter>::emitDummyPtr(const DeclTy &D, const Expr *E) { 6997 assert(!DiscardResult && "Should've been checked before"); 6998 6999 unsigned DummyID = P.getOrCreateDummy(D); 7000 7001 if (!this->emitGetPtrGlobal(DummyID, E)) 7002 return false; 7003 if (E->getType()->isVoidType()) 7004 return true; 7005 7006 // Convert the dummy pointer to another pointer type if we have to. 7007 if (PrimType PT = classifyPrim(E); PT != PT_Ptr) { 7008 if (isPtrType(PT)) 7009 return this->emitDecayPtr(PT_Ptr, PT, E); 7010 return false; 7011 } 7012 return true; 7013 } 7014 7015 template <class Emitter> 7016 bool Compiler<Emitter>::emitFloat(const APFloat &F, const Expr *E) { 7017 assert(!DiscardResult && "Should've been checked before"); 7018 7019 if (Floating::singleWord(F.getSemantics())) 7020 return this->emitConstFloat(Floating(F), E); 7021 7022 APInt I = F.bitcastToAPInt(); 7023 return this->emitConstFloat( 7024 Floating(const_cast<uint64_t *>(I.getRawData()), 7025 llvm::APFloatBase::SemanticsToEnum(F.getSemantics())), 7026 E); 7027 } 7028 7029 // This function is constexpr if and only if To, From, and the types of 7030 // all subobjects of To and From are types T such that... 7031 // (3.1) - is_union_v<T> is false; 7032 // (3.2) - is_pointer_v<T> is false; 7033 // (3.3) - is_member_pointer_v<T> is false; 7034 // (3.4) - is_volatile_v<T> is false; and 7035 // (3.5) - T has no non-static data members of reference type 7036 template <class Emitter> 7037 bool Compiler<Emitter>::emitBuiltinBitCast(const CastExpr *E) { 7038 const Expr *SubExpr = E->getSubExpr(); 7039 QualType FromType = SubExpr->getType(); 7040 QualType ToType = E->getType(); 7041 std::optional<PrimType> ToT = classify(ToType); 7042 7043 assert(!ToType->isReferenceType()); 7044 7045 // Prepare storage for the result in case we discard. 7046 if (DiscardResult && !Initializing && !ToT) { 7047 std::optional<unsigned> LocalIndex = allocateLocal(E); 7048 if (!LocalIndex) 7049 return false; 7050 if (!this->emitGetPtrLocal(*LocalIndex, E)) 7051 return false; 7052 } 7053 7054 // Get a pointer to the value-to-cast on the stack. 7055 // For CK_LValueToRValueBitCast, this is always an lvalue and 7056 // we later assume it to be one (i.e. a PT_Ptr). However, 7057 // we call this function for other utility methods where 7058 // a bitcast might be useful, so convert it to a PT_Ptr in that case. 7059 if (SubExpr->isGLValue() || FromType->isVectorType()) { 7060 if (!this->visit(SubExpr)) 7061 return false; 7062 } else if (std::optional<PrimType> FromT = classify(SubExpr)) { 7063 unsigned TempOffset = 7064 allocateLocalPrimitive(SubExpr, *FromT, /*IsConst=*/true); 7065 if (!this->visit(SubExpr)) 7066 return false; 7067 if (!this->emitSetLocal(*FromT, TempOffset, E)) 7068 return false; 7069 if (!this->emitGetPtrLocal(TempOffset, E)) 7070 return false; 7071 } else { 7072 return false; 7073 } 7074 7075 if (!ToT) { 7076 if (!this->emitBitCast(E)) 7077 return false; 7078 return DiscardResult ? this->emitPopPtr(E) : true; 7079 } 7080 assert(ToT); 7081 7082 const llvm::fltSemantics *TargetSemantics = nullptr; 7083 if (ToT == PT_Float) 7084 TargetSemantics = &Ctx.getFloatSemantics(ToType); 7085 7086 // Conversion to a primitive type. FromType can be another 7087 // primitive type, or a record/array. 7088 bool ToTypeIsUChar = (ToType->isSpecificBuiltinType(BuiltinType::UChar) || 7089 ToType->isSpecificBuiltinType(BuiltinType::Char_U)); 7090 uint32_t ResultBitWidth = std::max(Ctx.getBitWidth(ToType), 8u); 7091 7092 if (!this->emitBitCastPrim(*ToT, ToTypeIsUChar || ToType->isStdByteType(), 7093 ResultBitWidth, TargetSemantics, E)) 7094 return false; 7095 7096 if (DiscardResult) 7097 return this->emitPop(*ToT, E); 7098 7099 return true; 7100 } 7101 7102 namespace clang { 7103 namespace interp { 7104 7105 template class Compiler<ByteCodeEmitter>; 7106 template class Compiler<EvalEmitter>; 7107 7108 } // namespace interp 7109 } // namespace clang 7110