1 //===--- CGExprScalar.cpp - Emit LLVM Code for Scalar Exprs ---------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This contains code to emit Expr nodes with scalar LLVM types as LLVM code. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "CodeGenFunction.h" 15 #include "CGCleanup.h" 16 #include "CGCXXABI.h" 17 #include "CGDebugInfo.h" 18 #include "CGObjCRuntime.h" 19 #include "CodeGenModule.h" 20 #include "TargetInfo.h" 21 #include "clang/AST/ASTContext.h" 22 #include "clang/AST/DeclObjC.h" 23 #include "clang/AST/Expr.h" 24 #include "clang/AST/RecordLayout.h" 25 #include "clang/AST/StmtVisitor.h" 26 #include "clang/Basic/TargetInfo.h" 27 #include "clang/Frontend/CodeGenOptions.h" 28 #include "llvm/ADT/Optional.h" 29 #include "llvm/IR/CFG.h" 30 #include "llvm/IR/Constants.h" 31 #include "llvm/IR/DataLayout.h" 32 #include "llvm/IR/Function.h" 33 #include "llvm/IR/GetElementPtrTypeIterator.h" 34 #include "llvm/IR/GlobalVariable.h" 35 #include "llvm/IR/Intrinsics.h" 36 #include "llvm/IR/Module.h" 37 #include <cstdarg> 38 39 using namespace clang; 40 using namespace CodeGen; 41 using llvm::Value; 42 43 //===----------------------------------------------------------------------===// 44 // Scalar Expression Emitter 45 //===----------------------------------------------------------------------===// 46 47 namespace { 48 49 /// Determine whether the given binary operation may overflow. 50 /// Sets \p Result to the value of the operation for BO_Add, BO_Sub, BO_Mul, 51 /// and signed BO_{Div,Rem}. For these opcodes, and for unsigned BO_{Div,Rem}, 52 /// the returned overflow check is precise. The returned value is 'true' for 53 /// all other opcodes, to be conservative. 54 bool mayHaveIntegerOverflow(llvm::ConstantInt *LHS, llvm::ConstantInt *RHS, 55 BinaryOperator::Opcode Opcode, bool Signed, 56 llvm::APInt &Result) { 57 // Assume overflow is possible, unless we can prove otherwise. 58 bool Overflow = true; 59 const auto &LHSAP = LHS->getValue(); 60 const auto &RHSAP = RHS->getValue(); 61 if (Opcode == BO_Add) { 62 if (Signed) 63 Result = LHSAP.sadd_ov(RHSAP, Overflow); 64 else 65 Result = LHSAP.uadd_ov(RHSAP, Overflow); 66 } else if (Opcode == BO_Sub) { 67 if (Signed) 68 Result = LHSAP.ssub_ov(RHSAP, Overflow); 69 else 70 Result = LHSAP.usub_ov(RHSAP, Overflow); 71 } else if (Opcode == BO_Mul) { 72 if (Signed) 73 Result = LHSAP.smul_ov(RHSAP, Overflow); 74 else 75 Result = LHSAP.umul_ov(RHSAP, Overflow); 76 } else if (Opcode == BO_Div || Opcode == BO_Rem) { 77 if (Signed && !RHS->isZero()) 78 Result = LHSAP.sdiv_ov(RHSAP, Overflow); 79 else 80 return false; 81 } 82 return Overflow; 83 } 84 85 struct BinOpInfo { 86 Value *LHS; 87 Value *RHS; 88 QualType Ty; // Computation Type. 89 BinaryOperator::Opcode Opcode; // Opcode of BinOp to perform 90 FPOptions FPFeatures; 91 const Expr *E; // Entire expr, for error unsupported. May not be binop. 92 93 /// Check if the binop can result in integer overflow. 94 bool mayHaveIntegerOverflow() const { 95 // Without constant input, we can't rule out overflow. 96 auto *LHSCI = dyn_cast<llvm::ConstantInt>(LHS); 97 auto *RHSCI = dyn_cast<llvm::ConstantInt>(RHS); 98 if (!LHSCI || !RHSCI) 99 return true; 100 101 llvm::APInt Result; 102 return ::mayHaveIntegerOverflow( 103 LHSCI, RHSCI, Opcode, Ty->hasSignedIntegerRepresentation(), Result); 104 } 105 106 /// Check if the binop computes a division or a remainder. 107 bool isDivremOp() const { 108 return Opcode == BO_Div || Opcode == BO_Rem || Opcode == BO_DivAssign || 109 Opcode == BO_RemAssign; 110 } 111 112 /// Check if the binop can result in an integer division by zero. 113 bool mayHaveIntegerDivisionByZero() const { 114 if (isDivremOp()) 115 if (auto *CI = dyn_cast<llvm::ConstantInt>(RHS)) 116 return CI->isZero(); 117 return true; 118 } 119 120 /// Check if the binop can result in a float division by zero. 121 bool mayHaveFloatDivisionByZero() const { 122 if (isDivremOp()) 123 if (auto *CFP = dyn_cast<llvm::ConstantFP>(RHS)) 124 return CFP->isZero(); 125 return true; 126 } 127 }; 128 129 static bool MustVisitNullValue(const Expr *E) { 130 // If a null pointer expression's type is the C++0x nullptr_t, then 131 // it's not necessarily a simple constant and it must be evaluated 132 // for its potential side effects. 133 return E->getType()->isNullPtrType(); 134 } 135 136 /// If \p E is a widened promoted integer, get its base (unpromoted) type. 137 static llvm::Optional<QualType> getUnwidenedIntegerType(const ASTContext &Ctx, 138 const Expr *E) { 139 const Expr *Base = E->IgnoreImpCasts(); 140 if (E == Base) 141 return llvm::None; 142 143 QualType BaseTy = Base->getType(); 144 if (!BaseTy->isPromotableIntegerType() || 145 Ctx.getTypeSize(BaseTy) >= Ctx.getTypeSize(E->getType())) 146 return llvm::None; 147 148 return BaseTy; 149 } 150 151 /// Check if \p E is a widened promoted integer. 152 static bool IsWidenedIntegerOp(const ASTContext &Ctx, const Expr *E) { 153 return getUnwidenedIntegerType(Ctx, E).hasValue(); 154 } 155 156 /// Check if we can skip the overflow check for \p Op. 157 static bool CanElideOverflowCheck(const ASTContext &Ctx, const BinOpInfo &Op) { 158 assert((isa<UnaryOperator>(Op.E) || isa<BinaryOperator>(Op.E)) && 159 "Expected a unary or binary operator"); 160 161 // If the binop has constant inputs and we can prove there is no overflow, 162 // we can elide the overflow check. 163 if (!Op.mayHaveIntegerOverflow()) 164 return true; 165 166 // If a unary op has a widened operand, the op cannot overflow. 167 if (const auto *UO = dyn_cast<UnaryOperator>(Op.E)) 168 return !UO->canOverflow(); 169 170 // We usually don't need overflow checks for binops with widened operands. 171 // Multiplication with promoted unsigned operands is a special case. 172 const auto *BO = cast<BinaryOperator>(Op.E); 173 auto OptionalLHSTy = getUnwidenedIntegerType(Ctx, BO->getLHS()); 174 if (!OptionalLHSTy) 175 return false; 176 177 auto OptionalRHSTy = getUnwidenedIntegerType(Ctx, BO->getRHS()); 178 if (!OptionalRHSTy) 179 return false; 180 181 QualType LHSTy = *OptionalLHSTy; 182 QualType RHSTy = *OptionalRHSTy; 183 184 // This is the simple case: binops without unsigned multiplication, and with 185 // widened operands. No overflow check is needed here. 186 if ((Op.Opcode != BO_Mul && Op.Opcode != BO_MulAssign) || 187 !LHSTy->isUnsignedIntegerType() || !RHSTy->isUnsignedIntegerType()) 188 return true; 189 190 // For unsigned multiplication the overflow check can be elided if either one 191 // of the unpromoted types are less than half the size of the promoted type. 192 unsigned PromotedSize = Ctx.getTypeSize(Op.E->getType()); 193 return (2 * Ctx.getTypeSize(LHSTy)) < PromotedSize || 194 (2 * Ctx.getTypeSize(RHSTy)) < PromotedSize; 195 } 196 197 /// Update the FastMathFlags of LLVM IR from the FPOptions in LangOptions. 198 static void updateFastMathFlags(llvm::FastMathFlags &FMF, 199 FPOptions FPFeatures) { 200 FMF.setAllowContract(FPFeatures.allowFPContractAcrossStatement()); 201 } 202 203 /// Propagate fast-math flags from \p Op to the instruction in \p V. 204 static Value *propagateFMFlags(Value *V, const BinOpInfo &Op) { 205 if (auto *I = dyn_cast<llvm::Instruction>(V)) { 206 llvm::FastMathFlags FMF = I->getFastMathFlags(); 207 updateFastMathFlags(FMF, Op.FPFeatures); 208 I->setFastMathFlags(FMF); 209 } 210 return V; 211 } 212 213 class ScalarExprEmitter 214 : public StmtVisitor<ScalarExprEmitter, Value*> { 215 CodeGenFunction &CGF; 216 CGBuilderTy &Builder; 217 bool IgnoreResultAssign; 218 llvm::LLVMContext &VMContext; 219 public: 220 221 ScalarExprEmitter(CodeGenFunction &cgf, bool ira=false) 222 : CGF(cgf), Builder(CGF.Builder), IgnoreResultAssign(ira), 223 VMContext(cgf.getLLVMContext()) { 224 } 225 226 //===--------------------------------------------------------------------===// 227 // Utilities 228 //===--------------------------------------------------------------------===// 229 230 bool TestAndClearIgnoreResultAssign() { 231 bool I = IgnoreResultAssign; 232 IgnoreResultAssign = false; 233 return I; 234 } 235 236 llvm::Type *ConvertType(QualType T) { return CGF.ConvertType(T); } 237 LValue EmitLValue(const Expr *E) { return CGF.EmitLValue(E); } 238 LValue EmitCheckedLValue(const Expr *E, CodeGenFunction::TypeCheckKind TCK) { 239 return CGF.EmitCheckedLValue(E, TCK); 240 } 241 242 void EmitBinOpCheck(ArrayRef<std::pair<Value *, SanitizerMask>> Checks, 243 const BinOpInfo &Info); 244 245 Value *EmitLoadOfLValue(LValue LV, SourceLocation Loc) { 246 return CGF.EmitLoadOfLValue(LV, Loc).getScalarVal(); 247 } 248 249 void EmitLValueAlignmentAssumption(const Expr *E, Value *V) { 250 const AlignValueAttr *AVAttr = nullptr; 251 if (const auto *DRE = dyn_cast<DeclRefExpr>(E)) { 252 const ValueDecl *VD = DRE->getDecl(); 253 254 if (VD->getType()->isReferenceType()) { 255 if (const auto *TTy = 256 dyn_cast<TypedefType>(VD->getType().getNonReferenceType())) 257 AVAttr = TTy->getDecl()->getAttr<AlignValueAttr>(); 258 } else { 259 // Assumptions for function parameters are emitted at the start of the 260 // function, so there is no need to repeat that here. 261 if (isa<ParmVarDecl>(VD)) 262 return; 263 264 AVAttr = VD->getAttr<AlignValueAttr>(); 265 } 266 } 267 268 if (!AVAttr) 269 if (const auto *TTy = 270 dyn_cast<TypedefType>(E->getType())) 271 AVAttr = TTy->getDecl()->getAttr<AlignValueAttr>(); 272 273 if (!AVAttr) 274 return; 275 276 Value *AlignmentValue = CGF.EmitScalarExpr(AVAttr->getAlignment()); 277 llvm::ConstantInt *AlignmentCI = cast<llvm::ConstantInt>(AlignmentValue); 278 CGF.EmitAlignmentAssumption(V, AlignmentCI->getZExtValue()); 279 } 280 281 /// EmitLoadOfLValue - Given an expression with complex type that represents a 282 /// value l-value, this method emits the address of the l-value, then loads 283 /// and returns the result. 284 Value *EmitLoadOfLValue(const Expr *E) { 285 Value *V = EmitLoadOfLValue(EmitCheckedLValue(E, CodeGenFunction::TCK_Load), 286 E->getExprLoc()); 287 288 EmitLValueAlignmentAssumption(E, V); 289 return V; 290 } 291 292 /// EmitConversionToBool - Convert the specified expression value to a 293 /// boolean (i1) truth value. This is equivalent to "Val != 0". 294 Value *EmitConversionToBool(Value *Src, QualType DstTy); 295 296 /// Emit a check that a conversion to or from a floating-point type does not 297 /// overflow. 298 void EmitFloatConversionCheck(Value *OrigSrc, QualType OrigSrcType, 299 Value *Src, QualType SrcType, QualType DstType, 300 llvm::Type *DstTy, SourceLocation Loc); 301 302 /// Known implicit conversion check kinds. 303 /// Keep in sync with the enum of the same name in ubsan_handlers.h 304 enum ImplicitConversionCheckKind : unsigned char { 305 ICCK_IntegerTruncation = 0, // Legacy, was only used by clang 7. 306 ICCK_UnsignedIntegerTruncation = 1, 307 ICCK_SignedIntegerTruncation = 2, 308 }; 309 310 /// Emit a check that an [implicit] truncation of an integer does not 311 /// discard any bits. It is not UB, so we use the value after truncation. 312 void EmitIntegerTruncationCheck(Value *Src, QualType SrcType, Value *Dst, 313 QualType DstType, SourceLocation Loc); 314 315 /// Emit a conversion from the specified type to the specified destination 316 /// type, both of which are LLVM scalar types. 317 struct ScalarConversionOpts { 318 bool TreatBooleanAsSigned; 319 bool EmitImplicitIntegerTruncationChecks; 320 321 ScalarConversionOpts() 322 : TreatBooleanAsSigned(false), 323 EmitImplicitIntegerTruncationChecks(false) {} 324 }; 325 Value * 326 EmitScalarConversion(Value *Src, QualType SrcTy, QualType DstTy, 327 SourceLocation Loc, 328 ScalarConversionOpts Opts = ScalarConversionOpts()); 329 330 /// Emit a conversion from the specified complex type to the specified 331 /// destination type, where the destination type is an LLVM scalar type. 332 Value *EmitComplexToScalarConversion(CodeGenFunction::ComplexPairTy Src, 333 QualType SrcTy, QualType DstTy, 334 SourceLocation Loc); 335 336 /// EmitNullValue - Emit a value that corresponds to null for the given type. 337 Value *EmitNullValue(QualType Ty); 338 339 /// EmitFloatToBoolConversion - Perform an FP to boolean conversion. 340 Value *EmitFloatToBoolConversion(Value *V) { 341 // Compare against 0.0 for fp scalars. 342 llvm::Value *Zero = llvm::Constant::getNullValue(V->getType()); 343 return Builder.CreateFCmpUNE(V, Zero, "tobool"); 344 } 345 346 /// EmitPointerToBoolConversion - Perform a pointer to boolean conversion. 347 Value *EmitPointerToBoolConversion(Value *V, QualType QT) { 348 Value *Zero = CGF.CGM.getNullPointer(cast<llvm::PointerType>(V->getType()), QT); 349 350 return Builder.CreateICmpNE(V, Zero, "tobool"); 351 } 352 353 Value *EmitIntToBoolConversion(Value *V) { 354 // Because of the type rules of C, we often end up computing a 355 // logical value, then zero extending it to int, then wanting it 356 // as a logical value again. Optimize this common case. 357 if (llvm::ZExtInst *ZI = dyn_cast<llvm::ZExtInst>(V)) { 358 if (ZI->getOperand(0)->getType() == Builder.getInt1Ty()) { 359 Value *Result = ZI->getOperand(0); 360 // If there aren't any more uses, zap the instruction to save space. 361 // Note that there can be more uses, for example if this 362 // is the result of an assignment. 363 if (ZI->use_empty()) 364 ZI->eraseFromParent(); 365 return Result; 366 } 367 } 368 369 return Builder.CreateIsNotNull(V, "tobool"); 370 } 371 372 //===--------------------------------------------------------------------===// 373 // Visitor Methods 374 //===--------------------------------------------------------------------===// 375 376 Value *Visit(Expr *E) { 377 ApplyDebugLocation DL(CGF, E); 378 return StmtVisitor<ScalarExprEmitter, Value*>::Visit(E); 379 } 380 381 Value *VisitStmt(Stmt *S) { 382 S->dump(CGF.getContext().getSourceManager()); 383 llvm_unreachable("Stmt can't have complex result type!"); 384 } 385 Value *VisitExpr(Expr *S); 386 387 Value *VisitParenExpr(ParenExpr *PE) { 388 return Visit(PE->getSubExpr()); 389 } 390 Value *VisitSubstNonTypeTemplateParmExpr(SubstNonTypeTemplateParmExpr *E) { 391 return Visit(E->getReplacement()); 392 } 393 Value *VisitGenericSelectionExpr(GenericSelectionExpr *GE) { 394 return Visit(GE->getResultExpr()); 395 } 396 Value *VisitCoawaitExpr(CoawaitExpr *S) { 397 return CGF.EmitCoawaitExpr(*S).getScalarVal(); 398 } 399 Value *VisitCoyieldExpr(CoyieldExpr *S) { 400 return CGF.EmitCoyieldExpr(*S).getScalarVal(); 401 } 402 Value *VisitUnaryCoawait(const UnaryOperator *E) { 403 return Visit(E->getSubExpr()); 404 } 405 406 // Leaves. 407 Value *VisitIntegerLiteral(const IntegerLiteral *E) { 408 return Builder.getInt(E->getValue()); 409 } 410 Value *VisitFixedPointLiteral(const FixedPointLiteral *E) { 411 return Builder.getInt(E->getValue()); 412 } 413 Value *VisitFloatingLiteral(const FloatingLiteral *E) { 414 return llvm::ConstantFP::get(VMContext, E->getValue()); 415 } 416 Value *VisitCharacterLiteral(const CharacterLiteral *E) { 417 return llvm::ConstantInt::get(ConvertType(E->getType()), E->getValue()); 418 } 419 Value *VisitObjCBoolLiteralExpr(const ObjCBoolLiteralExpr *E) { 420 return llvm::ConstantInt::get(ConvertType(E->getType()), E->getValue()); 421 } 422 Value *VisitCXXBoolLiteralExpr(const CXXBoolLiteralExpr *E) { 423 return llvm::ConstantInt::get(ConvertType(E->getType()), E->getValue()); 424 } 425 Value *VisitCXXScalarValueInitExpr(const CXXScalarValueInitExpr *E) { 426 return EmitNullValue(E->getType()); 427 } 428 Value *VisitGNUNullExpr(const GNUNullExpr *E) { 429 return EmitNullValue(E->getType()); 430 } 431 Value *VisitOffsetOfExpr(OffsetOfExpr *E); 432 Value *VisitUnaryExprOrTypeTraitExpr(const UnaryExprOrTypeTraitExpr *E); 433 Value *VisitAddrLabelExpr(const AddrLabelExpr *E) { 434 llvm::Value *V = CGF.GetAddrOfLabel(E->getLabel()); 435 return Builder.CreateBitCast(V, ConvertType(E->getType())); 436 } 437 438 Value *VisitSizeOfPackExpr(SizeOfPackExpr *E) { 439 return llvm::ConstantInt::get(ConvertType(E->getType()),E->getPackLength()); 440 } 441 442 Value *VisitPseudoObjectExpr(PseudoObjectExpr *E) { 443 return CGF.EmitPseudoObjectRValue(E).getScalarVal(); 444 } 445 446 Value *VisitOpaqueValueExpr(OpaqueValueExpr *E) { 447 if (E->isGLValue()) 448 return EmitLoadOfLValue(CGF.getOrCreateOpaqueLValueMapping(E), 449 E->getExprLoc()); 450 451 // Otherwise, assume the mapping is the scalar directly. 452 return CGF.getOrCreateOpaqueRValueMapping(E).getScalarVal(); 453 } 454 455 Value *emitConstant(const CodeGenFunction::ConstantEmission &Constant, 456 Expr *E) { 457 assert(Constant && "not a constant"); 458 if (Constant.isReference()) 459 return EmitLoadOfLValue(Constant.getReferenceLValue(CGF, E), 460 E->getExprLoc()); 461 return Constant.getValue(); 462 } 463 464 // l-values. 465 Value *VisitDeclRefExpr(DeclRefExpr *E) { 466 if (CodeGenFunction::ConstantEmission Constant = CGF.tryEmitAsConstant(E)) 467 return emitConstant(Constant, E); 468 return EmitLoadOfLValue(E); 469 } 470 471 Value *VisitObjCSelectorExpr(ObjCSelectorExpr *E) { 472 return CGF.EmitObjCSelectorExpr(E); 473 } 474 Value *VisitObjCProtocolExpr(ObjCProtocolExpr *E) { 475 return CGF.EmitObjCProtocolExpr(E); 476 } 477 Value *VisitObjCIvarRefExpr(ObjCIvarRefExpr *E) { 478 return EmitLoadOfLValue(E); 479 } 480 Value *VisitObjCMessageExpr(ObjCMessageExpr *E) { 481 if (E->getMethodDecl() && 482 E->getMethodDecl()->getReturnType()->isReferenceType()) 483 return EmitLoadOfLValue(E); 484 return CGF.EmitObjCMessageExpr(E).getScalarVal(); 485 } 486 487 Value *VisitObjCIsaExpr(ObjCIsaExpr *E) { 488 LValue LV = CGF.EmitObjCIsaExpr(E); 489 Value *V = CGF.EmitLoadOfLValue(LV, E->getExprLoc()).getScalarVal(); 490 return V; 491 } 492 493 Value *VisitObjCAvailabilityCheckExpr(ObjCAvailabilityCheckExpr *E) { 494 VersionTuple Version = E->getVersion(); 495 496 // If we're checking for a platform older than our minimum deployment 497 // target, we can fold the check away. 498 if (Version <= CGF.CGM.getTarget().getPlatformMinVersion()) 499 return llvm::ConstantInt::get(Builder.getInt1Ty(), 1); 500 501 Optional<unsigned> Min = Version.getMinor(), SMin = Version.getSubminor(); 502 llvm::Value *Args[] = { 503 llvm::ConstantInt::get(CGF.CGM.Int32Ty, Version.getMajor()), 504 llvm::ConstantInt::get(CGF.CGM.Int32Ty, Min ? *Min : 0), 505 llvm::ConstantInt::get(CGF.CGM.Int32Ty, SMin ? *SMin : 0), 506 }; 507 508 return CGF.EmitBuiltinAvailable(Args); 509 } 510 511 Value *VisitArraySubscriptExpr(ArraySubscriptExpr *E); 512 Value *VisitShuffleVectorExpr(ShuffleVectorExpr *E); 513 Value *VisitConvertVectorExpr(ConvertVectorExpr *E); 514 Value *VisitMemberExpr(MemberExpr *E); 515 Value *VisitExtVectorElementExpr(Expr *E) { return EmitLoadOfLValue(E); } 516 Value *VisitCompoundLiteralExpr(CompoundLiteralExpr *E) { 517 return EmitLoadOfLValue(E); 518 } 519 520 Value *VisitInitListExpr(InitListExpr *E); 521 522 Value *VisitArrayInitIndexExpr(ArrayInitIndexExpr *E) { 523 assert(CGF.getArrayInitIndex() && 524 "ArrayInitIndexExpr not inside an ArrayInitLoopExpr?"); 525 return CGF.getArrayInitIndex(); 526 } 527 528 Value *VisitImplicitValueInitExpr(const ImplicitValueInitExpr *E) { 529 return EmitNullValue(E->getType()); 530 } 531 Value *VisitExplicitCastExpr(ExplicitCastExpr *E) { 532 CGF.CGM.EmitExplicitCastExprType(E, &CGF); 533 return VisitCastExpr(E); 534 } 535 Value *VisitCastExpr(CastExpr *E); 536 537 Value *VisitCallExpr(const CallExpr *E) { 538 if (E->getCallReturnType(CGF.getContext())->isReferenceType()) 539 return EmitLoadOfLValue(E); 540 541 Value *V = CGF.EmitCallExpr(E).getScalarVal(); 542 543 EmitLValueAlignmentAssumption(E, V); 544 return V; 545 } 546 547 Value *VisitStmtExpr(const StmtExpr *E); 548 549 // Unary Operators. 550 Value *VisitUnaryPostDec(const UnaryOperator *E) { 551 LValue LV = EmitLValue(E->getSubExpr()); 552 return EmitScalarPrePostIncDec(E, LV, false, false); 553 } 554 Value *VisitUnaryPostInc(const UnaryOperator *E) { 555 LValue LV = EmitLValue(E->getSubExpr()); 556 return EmitScalarPrePostIncDec(E, LV, true, false); 557 } 558 Value *VisitUnaryPreDec(const UnaryOperator *E) { 559 LValue LV = EmitLValue(E->getSubExpr()); 560 return EmitScalarPrePostIncDec(E, LV, false, true); 561 } 562 Value *VisitUnaryPreInc(const UnaryOperator *E) { 563 LValue LV = EmitLValue(E->getSubExpr()); 564 return EmitScalarPrePostIncDec(E, LV, true, true); 565 } 566 567 llvm::Value *EmitIncDecConsiderOverflowBehavior(const UnaryOperator *E, 568 llvm::Value *InVal, 569 bool IsInc); 570 571 llvm::Value *EmitScalarPrePostIncDec(const UnaryOperator *E, LValue LV, 572 bool isInc, bool isPre); 573 574 575 Value *VisitUnaryAddrOf(const UnaryOperator *E) { 576 if (isa<MemberPointerType>(E->getType())) // never sugared 577 return CGF.CGM.getMemberPointerConstant(E); 578 579 return EmitLValue(E->getSubExpr()).getPointer(); 580 } 581 Value *VisitUnaryDeref(const UnaryOperator *E) { 582 if (E->getType()->isVoidType()) 583 return Visit(E->getSubExpr()); // the actual value should be unused 584 return EmitLoadOfLValue(E); 585 } 586 Value *VisitUnaryPlus(const UnaryOperator *E) { 587 // This differs from gcc, though, most likely due to a bug in gcc. 588 TestAndClearIgnoreResultAssign(); 589 return Visit(E->getSubExpr()); 590 } 591 Value *VisitUnaryMinus (const UnaryOperator *E); 592 Value *VisitUnaryNot (const UnaryOperator *E); 593 Value *VisitUnaryLNot (const UnaryOperator *E); 594 Value *VisitUnaryReal (const UnaryOperator *E); 595 Value *VisitUnaryImag (const UnaryOperator *E); 596 Value *VisitUnaryExtension(const UnaryOperator *E) { 597 return Visit(E->getSubExpr()); 598 } 599 600 // C++ 601 Value *VisitMaterializeTemporaryExpr(const MaterializeTemporaryExpr *E) { 602 return EmitLoadOfLValue(E); 603 } 604 605 Value *VisitCXXDefaultArgExpr(CXXDefaultArgExpr *DAE) { 606 return Visit(DAE->getExpr()); 607 } 608 Value *VisitCXXDefaultInitExpr(CXXDefaultInitExpr *DIE) { 609 CodeGenFunction::CXXDefaultInitExprScope Scope(CGF); 610 return Visit(DIE->getExpr()); 611 } 612 Value *VisitCXXThisExpr(CXXThisExpr *TE) { 613 return CGF.LoadCXXThis(); 614 } 615 616 Value *VisitExprWithCleanups(ExprWithCleanups *E); 617 Value *VisitCXXNewExpr(const CXXNewExpr *E) { 618 return CGF.EmitCXXNewExpr(E); 619 } 620 Value *VisitCXXDeleteExpr(const CXXDeleteExpr *E) { 621 CGF.EmitCXXDeleteExpr(E); 622 return nullptr; 623 } 624 625 Value *VisitTypeTraitExpr(const TypeTraitExpr *E) { 626 return llvm::ConstantInt::get(ConvertType(E->getType()), E->getValue()); 627 } 628 629 Value *VisitArrayTypeTraitExpr(const ArrayTypeTraitExpr *E) { 630 return llvm::ConstantInt::get(Builder.getInt32Ty(), E->getValue()); 631 } 632 633 Value *VisitExpressionTraitExpr(const ExpressionTraitExpr *E) { 634 return llvm::ConstantInt::get(Builder.getInt1Ty(), E->getValue()); 635 } 636 637 Value *VisitCXXPseudoDestructorExpr(const CXXPseudoDestructorExpr *E) { 638 // C++ [expr.pseudo]p1: 639 // The result shall only be used as the operand for the function call 640 // operator (), and the result of such a call has type void. The only 641 // effect is the evaluation of the postfix-expression before the dot or 642 // arrow. 643 CGF.EmitScalarExpr(E->getBase()); 644 return nullptr; 645 } 646 647 Value *VisitCXXNullPtrLiteralExpr(const CXXNullPtrLiteralExpr *E) { 648 return EmitNullValue(E->getType()); 649 } 650 651 Value *VisitCXXThrowExpr(const CXXThrowExpr *E) { 652 CGF.EmitCXXThrowExpr(E); 653 return nullptr; 654 } 655 656 Value *VisitCXXNoexceptExpr(const CXXNoexceptExpr *E) { 657 return Builder.getInt1(E->getValue()); 658 } 659 660 // Binary Operators. 661 Value *EmitMul(const BinOpInfo &Ops) { 662 if (Ops.Ty->isSignedIntegerOrEnumerationType()) { 663 switch (CGF.getLangOpts().getSignedOverflowBehavior()) { 664 case LangOptions::SOB_Defined: 665 return Builder.CreateMul(Ops.LHS, Ops.RHS, "mul"); 666 case LangOptions::SOB_Undefined: 667 if (!CGF.SanOpts.has(SanitizerKind::SignedIntegerOverflow)) 668 return Builder.CreateNSWMul(Ops.LHS, Ops.RHS, "mul"); 669 // Fall through. 670 case LangOptions::SOB_Trapping: 671 if (CanElideOverflowCheck(CGF.getContext(), Ops)) 672 return Builder.CreateNSWMul(Ops.LHS, Ops.RHS, "mul"); 673 return EmitOverflowCheckedBinOp(Ops); 674 } 675 } 676 677 if (Ops.Ty->isUnsignedIntegerType() && 678 CGF.SanOpts.has(SanitizerKind::UnsignedIntegerOverflow) && 679 !CanElideOverflowCheck(CGF.getContext(), Ops)) 680 return EmitOverflowCheckedBinOp(Ops); 681 682 if (Ops.LHS->getType()->isFPOrFPVectorTy()) { 683 Value *V = Builder.CreateFMul(Ops.LHS, Ops.RHS, "mul"); 684 return propagateFMFlags(V, Ops); 685 } 686 return Builder.CreateMul(Ops.LHS, Ops.RHS, "mul"); 687 } 688 /// Create a binary op that checks for overflow. 689 /// Currently only supports +, - and *. 690 Value *EmitOverflowCheckedBinOp(const BinOpInfo &Ops); 691 692 // Check for undefined division and modulus behaviors. 693 void EmitUndefinedBehaviorIntegerDivAndRemCheck(const BinOpInfo &Ops, 694 llvm::Value *Zero,bool isDiv); 695 // Common helper for getting how wide LHS of shift is. 696 static Value *GetWidthMinusOneValue(Value* LHS,Value* RHS); 697 Value *EmitDiv(const BinOpInfo &Ops); 698 Value *EmitRem(const BinOpInfo &Ops); 699 Value *EmitAdd(const BinOpInfo &Ops); 700 Value *EmitSub(const BinOpInfo &Ops); 701 Value *EmitShl(const BinOpInfo &Ops); 702 Value *EmitShr(const BinOpInfo &Ops); 703 Value *EmitAnd(const BinOpInfo &Ops) { 704 return Builder.CreateAnd(Ops.LHS, Ops.RHS, "and"); 705 } 706 Value *EmitXor(const BinOpInfo &Ops) { 707 return Builder.CreateXor(Ops.LHS, Ops.RHS, "xor"); 708 } 709 Value *EmitOr (const BinOpInfo &Ops) { 710 return Builder.CreateOr(Ops.LHS, Ops.RHS, "or"); 711 } 712 713 BinOpInfo EmitBinOps(const BinaryOperator *E); 714 LValue EmitCompoundAssignLValue(const CompoundAssignOperator *E, 715 Value *(ScalarExprEmitter::*F)(const BinOpInfo &), 716 Value *&Result); 717 718 Value *EmitCompoundAssign(const CompoundAssignOperator *E, 719 Value *(ScalarExprEmitter::*F)(const BinOpInfo &)); 720 721 // Binary operators and binary compound assignment operators. 722 #define HANDLEBINOP(OP) \ 723 Value *VisitBin ## OP(const BinaryOperator *E) { \ 724 return Emit ## OP(EmitBinOps(E)); \ 725 } \ 726 Value *VisitBin ## OP ## Assign(const CompoundAssignOperator *E) { \ 727 return EmitCompoundAssign(E, &ScalarExprEmitter::Emit ## OP); \ 728 } 729 HANDLEBINOP(Mul) 730 HANDLEBINOP(Div) 731 HANDLEBINOP(Rem) 732 HANDLEBINOP(Add) 733 HANDLEBINOP(Sub) 734 HANDLEBINOP(Shl) 735 HANDLEBINOP(Shr) 736 HANDLEBINOP(And) 737 HANDLEBINOP(Xor) 738 HANDLEBINOP(Or) 739 #undef HANDLEBINOP 740 741 // Comparisons. 742 Value *EmitCompare(const BinaryOperator *E, llvm::CmpInst::Predicate UICmpOpc, 743 llvm::CmpInst::Predicate SICmpOpc, 744 llvm::CmpInst::Predicate FCmpOpc); 745 #define VISITCOMP(CODE, UI, SI, FP) \ 746 Value *VisitBin##CODE(const BinaryOperator *E) { \ 747 return EmitCompare(E, llvm::ICmpInst::UI, llvm::ICmpInst::SI, \ 748 llvm::FCmpInst::FP); } 749 VISITCOMP(LT, ICMP_ULT, ICMP_SLT, FCMP_OLT) 750 VISITCOMP(GT, ICMP_UGT, ICMP_SGT, FCMP_OGT) 751 VISITCOMP(LE, ICMP_ULE, ICMP_SLE, FCMP_OLE) 752 VISITCOMP(GE, ICMP_UGE, ICMP_SGE, FCMP_OGE) 753 VISITCOMP(EQ, ICMP_EQ , ICMP_EQ , FCMP_OEQ) 754 VISITCOMP(NE, ICMP_NE , ICMP_NE , FCMP_UNE) 755 #undef VISITCOMP 756 757 Value *VisitBinAssign (const BinaryOperator *E); 758 759 Value *VisitBinLAnd (const BinaryOperator *E); 760 Value *VisitBinLOr (const BinaryOperator *E); 761 Value *VisitBinComma (const BinaryOperator *E); 762 763 Value *VisitBinPtrMemD(const Expr *E) { return EmitLoadOfLValue(E); } 764 Value *VisitBinPtrMemI(const Expr *E) { return EmitLoadOfLValue(E); } 765 766 // Other Operators. 767 Value *VisitBlockExpr(const BlockExpr *BE); 768 Value *VisitAbstractConditionalOperator(const AbstractConditionalOperator *); 769 Value *VisitChooseExpr(ChooseExpr *CE); 770 Value *VisitVAArgExpr(VAArgExpr *VE); 771 Value *VisitObjCStringLiteral(const ObjCStringLiteral *E) { 772 return CGF.EmitObjCStringLiteral(E); 773 } 774 Value *VisitObjCBoxedExpr(ObjCBoxedExpr *E) { 775 return CGF.EmitObjCBoxedExpr(E); 776 } 777 Value *VisitObjCArrayLiteral(ObjCArrayLiteral *E) { 778 return CGF.EmitObjCArrayLiteral(E); 779 } 780 Value *VisitObjCDictionaryLiteral(ObjCDictionaryLiteral *E) { 781 return CGF.EmitObjCDictionaryLiteral(E); 782 } 783 Value *VisitAsTypeExpr(AsTypeExpr *CE); 784 Value *VisitAtomicExpr(AtomicExpr *AE); 785 }; 786 } // end anonymous namespace. 787 788 //===----------------------------------------------------------------------===// 789 // Utilities 790 //===----------------------------------------------------------------------===// 791 792 /// EmitConversionToBool - Convert the specified expression value to a 793 /// boolean (i1) truth value. This is equivalent to "Val != 0". 794 Value *ScalarExprEmitter::EmitConversionToBool(Value *Src, QualType SrcType) { 795 assert(SrcType.isCanonical() && "EmitScalarConversion strips typedefs"); 796 797 if (SrcType->isRealFloatingType()) 798 return EmitFloatToBoolConversion(Src); 799 800 if (const MemberPointerType *MPT = dyn_cast<MemberPointerType>(SrcType)) 801 return CGF.CGM.getCXXABI().EmitMemberPointerIsNotNull(CGF, Src, MPT); 802 803 assert((SrcType->isIntegerType() || isa<llvm::PointerType>(Src->getType())) && 804 "Unknown scalar type to convert"); 805 806 if (isa<llvm::IntegerType>(Src->getType())) 807 return EmitIntToBoolConversion(Src); 808 809 assert(isa<llvm::PointerType>(Src->getType())); 810 return EmitPointerToBoolConversion(Src, SrcType); 811 } 812 813 void ScalarExprEmitter::EmitFloatConversionCheck( 814 Value *OrigSrc, QualType OrigSrcType, Value *Src, QualType SrcType, 815 QualType DstType, llvm::Type *DstTy, SourceLocation Loc) { 816 CodeGenFunction::SanitizerScope SanScope(&CGF); 817 using llvm::APFloat; 818 using llvm::APSInt; 819 820 llvm::Type *SrcTy = Src->getType(); 821 822 llvm::Value *Check = nullptr; 823 if (llvm::IntegerType *IntTy = dyn_cast<llvm::IntegerType>(SrcTy)) { 824 // Integer to floating-point. This can fail for unsigned short -> __half 825 // or unsigned __int128 -> float. 826 assert(DstType->isFloatingType()); 827 bool SrcIsUnsigned = OrigSrcType->isUnsignedIntegerOrEnumerationType(); 828 829 APFloat LargestFloat = 830 APFloat::getLargest(CGF.getContext().getFloatTypeSemantics(DstType)); 831 APSInt LargestInt(IntTy->getBitWidth(), SrcIsUnsigned); 832 833 bool IsExact; 834 if (LargestFloat.convertToInteger(LargestInt, APFloat::rmTowardZero, 835 &IsExact) != APFloat::opOK) 836 // The range of representable values of this floating point type includes 837 // all values of this integer type. Don't need an overflow check. 838 return; 839 840 llvm::Value *Max = llvm::ConstantInt::get(VMContext, LargestInt); 841 if (SrcIsUnsigned) 842 Check = Builder.CreateICmpULE(Src, Max); 843 else { 844 llvm::Value *Min = llvm::ConstantInt::get(VMContext, -LargestInt); 845 llvm::Value *GE = Builder.CreateICmpSGE(Src, Min); 846 llvm::Value *LE = Builder.CreateICmpSLE(Src, Max); 847 Check = Builder.CreateAnd(GE, LE); 848 } 849 } else { 850 const llvm::fltSemantics &SrcSema = 851 CGF.getContext().getFloatTypeSemantics(OrigSrcType); 852 if (isa<llvm::IntegerType>(DstTy)) { 853 // Floating-point to integer. This has undefined behavior if the source is 854 // +-Inf, NaN, or doesn't fit into the destination type (after truncation 855 // to an integer). 856 unsigned Width = CGF.getContext().getIntWidth(DstType); 857 bool Unsigned = DstType->isUnsignedIntegerOrEnumerationType(); 858 859 APSInt Min = APSInt::getMinValue(Width, Unsigned); 860 APFloat MinSrc(SrcSema, APFloat::uninitialized); 861 if (MinSrc.convertFromAPInt(Min, !Unsigned, APFloat::rmTowardZero) & 862 APFloat::opOverflow) 863 // Don't need an overflow check for lower bound. Just check for 864 // -Inf/NaN. 865 MinSrc = APFloat::getInf(SrcSema, true); 866 else 867 // Find the largest value which is too small to represent (before 868 // truncation toward zero). 869 MinSrc.subtract(APFloat(SrcSema, 1), APFloat::rmTowardNegative); 870 871 APSInt Max = APSInt::getMaxValue(Width, Unsigned); 872 APFloat MaxSrc(SrcSema, APFloat::uninitialized); 873 if (MaxSrc.convertFromAPInt(Max, !Unsigned, APFloat::rmTowardZero) & 874 APFloat::opOverflow) 875 // Don't need an overflow check for upper bound. Just check for 876 // +Inf/NaN. 877 MaxSrc = APFloat::getInf(SrcSema, false); 878 else 879 // Find the smallest value which is too large to represent (before 880 // truncation toward zero). 881 MaxSrc.add(APFloat(SrcSema, 1), APFloat::rmTowardPositive); 882 883 // If we're converting from __half, convert the range to float to match 884 // the type of src. 885 if (OrigSrcType->isHalfType()) { 886 const llvm::fltSemantics &Sema = 887 CGF.getContext().getFloatTypeSemantics(SrcType); 888 bool IsInexact; 889 MinSrc.convert(Sema, APFloat::rmTowardZero, &IsInexact); 890 MaxSrc.convert(Sema, APFloat::rmTowardZero, &IsInexact); 891 } 892 893 llvm::Value *GE = 894 Builder.CreateFCmpOGT(Src, llvm::ConstantFP::get(VMContext, MinSrc)); 895 llvm::Value *LE = 896 Builder.CreateFCmpOLT(Src, llvm::ConstantFP::get(VMContext, MaxSrc)); 897 Check = Builder.CreateAnd(GE, LE); 898 } else { 899 // FIXME: Maybe split this sanitizer out from float-cast-overflow. 900 // 901 // Floating-point to floating-point. This has undefined behavior if the 902 // source is not in the range of representable values of the destination 903 // type. The C and C++ standards are spectacularly unclear here. We 904 // diagnose finite out-of-range conversions, but allow infinities and NaNs 905 // to convert to the corresponding value in the smaller type. 906 // 907 // C11 Annex F gives all such conversions defined behavior for IEC 60559 908 // conforming implementations. Unfortunately, LLVM's fptrunc instruction 909 // does not. 910 911 // Converting from a lower rank to a higher rank can never have 912 // undefined behavior, since higher-rank types must have a superset 913 // of values of lower-rank types. 914 if (CGF.getContext().getFloatingTypeOrder(OrigSrcType, DstType) != 1) 915 return; 916 917 assert(!OrigSrcType->isHalfType() && 918 "should not check conversion from __half, it has the lowest rank"); 919 920 const llvm::fltSemantics &DstSema = 921 CGF.getContext().getFloatTypeSemantics(DstType); 922 APFloat MinBad = APFloat::getLargest(DstSema, false); 923 APFloat MaxBad = APFloat::getInf(DstSema, false); 924 925 bool IsInexact; 926 MinBad.convert(SrcSema, APFloat::rmTowardZero, &IsInexact); 927 MaxBad.convert(SrcSema, APFloat::rmTowardZero, &IsInexact); 928 929 Value *AbsSrc = CGF.EmitNounwindRuntimeCall( 930 CGF.CGM.getIntrinsic(llvm::Intrinsic::fabs, Src->getType()), Src); 931 llvm::Value *GE = 932 Builder.CreateFCmpOGT(AbsSrc, llvm::ConstantFP::get(VMContext, MinBad)); 933 llvm::Value *LE = 934 Builder.CreateFCmpOLT(AbsSrc, llvm::ConstantFP::get(VMContext, MaxBad)); 935 Check = Builder.CreateNot(Builder.CreateAnd(GE, LE)); 936 } 937 } 938 939 llvm::Constant *StaticArgs[] = {CGF.EmitCheckSourceLocation(Loc), 940 CGF.EmitCheckTypeDescriptor(OrigSrcType), 941 CGF.EmitCheckTypeDescriptor(DstType)}; 942 CGF.EmitCheck(std::make_pair(Check, SanitizerKind::FloatCastOverflow), 943 SanitizerHandler::FloatCastOverflow, StaticArgs, OrigSrc); 944 } 945 946 void ScalarExprEmitter::EmitIntegerTruncationCheck(Value *Src, QualType SrcType, 947 Value *Dst, QualType DstType, 948 SourceLocation Loc) { 949 if (!CGF.SanOpts.hasOneOf(SanitizerKind::ImplicitIntegerTruncation)) 950 return; 951 952 llvm::Type *SrcTy = Src->getType(); 953 llvm::Type *DstTy = Dst->getType(); 954 955 // We only care about int->int conversions here. 956 // We ignore conversions to/from pointer and/or bool. 957 if (!(SrcType->isIntegerType() && DstType->isIntegerType())) 958 return; 959 960 assert(isa<llvm::IntegerType>(SrcTy) && isa<llvm::IntegerType>(DstTy) && 961 "clang integer type lowered to non-integer llvm type"); 962 963 unsigned SrcBits = SrcTy->getScalarSizeInBits(); 964 unsigned DstBits = DstTy->getScalarSizeInBits(); 965 // This must be truncation. Else we do not care. 966 if (SrcBits <= DstBits) 967 return; 968 969 assert(!DstType->isBooleanType() && "we should not get here with booleans."); 970 971 bool SrcSigned = SrcType->isSignedIntegerOrEnumerationType(); 972 bool DstSigned = DstType->isSignedIntegerOrEnumerationType(); 973 974 // If both (src and dst) types are unsigned, then it's an unsigned truncation. 975 // Else, it is a signed truncation. 976 ImplicitConversionCheckKind Kind; 977 SanitizerMask Mask; 978 if (!SrcSigned && !DstSigned) { 979 Kind = ICCK_UnsignedIntegerTruncation; 980 Mask = SanitizerKind::ImplicitUnsignedIntegerTruncation; 981 } else { 982 Kind = ICCK_SignedIntegerTruncation; 983 Mask = SanitizerKind::ImplicitSignedIntegerTruncation; 984 } 985 986 // Do we care about this type of truncation? 987 if (!CGF.SanOpts.has(Mask)) 988 return; 989 990 CodeGenFunction::SanitizerScope SanScope(&CGF); 991 992 llvm::Value *Check = nullptr; 993 994 // 1. Extend the truncated value back to the same width as the Src. 995 Check = Builder.CreateIntCast(Dst, SrcTy, DstSigned, "anyext"); 996 // 2. Equality-compare with the original source value 997 Check = Builder.CreateICmpEQ(Check, Src, "truncheck"); 998 // If the comparison result is 'i1 false', then the truncation was lossy. 999 1000 llvm::Constant *StaticArgs[] = { 1001 CGF.EmitCheckSourceLocation(Loc), CGF.EmitCheckTypeDescriptor(SrcType), 1002 CGF.EmitCheckTypeDescriptor(DstType), 1003 llvm::ConstantInt::get(Builder.getInt8Ty(), Kind)}; 1004 CGF.EmitCheck(std::make_pair(Check, Mask), 1005 SanitizerHandler::ImplicitConversion, StaticArgs, {Src, Dst}); 1006 } 1007 1008 /// Emit a conversion from the specified type to the specified destination type, 1009 /// both of which are LLVM scalar types. 1010 Value *ScalarExprEmitter::EmitScalarConversion(Value *Src, QualType SrcType, 1011 QualType DstType, 1012 SourceLocation Loc, 1013 ScalarConversionOpts Opts) { 1014 QualType NoncanonicalSrcType = SrcType; 1015 QualType NoncanonicalDstType = DstType; 1016 1017 SrcType = CGF.getContext().getCanonicalType(SrcType); 1018 DstType = CGF.getContext().getCanonicalType(DstType); 1019 if (SrcType == DstType) return Src; 1020 1021 if (DstType->isVoidType()) return nullptr; 1022 1023 llvm::Value *OrigSrc = Src; 1024 QualType OrigSrcType = SrcType; 1025 llvm::Type *SrcTy = Src->getType(); 1026 1027 // Handle conversions to bool first, they are special: comparisons against 0. 1028 if (DstType->isBooleanType()) 1029 return EmitConversionToBool(Src, SrcType); 1030 1031 llvm::Type *DstTy = ConvertType(DstType); 1032 1033 // Cast from half through float if half isn't a native type. 1034 if (SrcType->isHalfType() && !CGF.getContext().getLangOpts().NativeHalfType) { 1035 // Cast to FP using the intrinsic if the half type itself isn't supported. 1036 if (DstTy->isFloatingPointTy()) { 1037 if (CGF.getContext().getTargetInfo().useFP16ConversionIntrinsics()) 1038 return Builder.CreateCall( 1039 CGF.CGM.getIntrinsic(llvm::Intrinsic::convert_from_fp16, DstTy), 1040 Src); 1041 } else { 1042 // Cast to other types through float, using either the intrinsic or FPExt, 1043 // depending on whether the half type itself is supported 1044 // (as opposed to operations on half, available with NativeHalfType). 1045 if (CGF.getContext().getTargetInfo().useFP16ConversionIntrinsics()) { 1046 Src = Builder.CreateCall( 1047 CGF.CGM.getIntrinsic(llvm::Intrinsic::convert_from_fp16, 1048 CGF.CGM.FloatTy), 1049 Src); 1050 } else { 1051 Src = Builder.CreateFPExt(Src, CGF.CGM.FloatTy, "conv"); 1052 } 1053 SrcType = CGF.getContext().FloatTy; 1054 SrcTy = CGF.FloatTy; 1055 } 1056 } 1057 1058 // Ignore conversions like int -> uint. 1059 if (SrcTy == DstTy) 1060 return Src; 1061 1062 // Handle pointer conversions next: pointers can only be converted to/from 1063 // other pointers and integers. Check for pointer types in terms of LLVM, as 1064 // some native types (like Obj-C id) may map to a pointer type. 1065 if (auto DstPT = dyn_cast<llvm::PointerType>(DstTy)) { 1066 // The source value may be an integer, or a pointer. 1067 if (isa<llvm::PointerType>(SrcTy)) 1068 return Builder.CreateBitCast(Src, DstTy, "conv"); 1069 1070 assert(SrcType->isIntegerType() && "Not ptr->ptr or int->ptr conversion?"); 1071 // First, convert to the correct width so that we control the kind of 1072 // extension. 1073 llvm::Type *MiddleTy = CGF.CGM.getDataLayout().getIntPtrType(DstPT); 1074 bool InputSigned = SrcType->isSignedIntegerOrEnumerationType(); 1075 llvm::Value* IntResult = 1076 Builder.CreateIntCast(Src, MiddleTy, InputSigned, "conv"); 1077 // Then, cast to pointer. 1078 return Builder.CreateIntToPtr(IntResult, DstTy, "conv"); 1079 } 1080 1081 if (isa<llvm::PointerType>(SrcTy)) { 1082 // Must be an ptr to int cast. 1083 assert(isa<llvm::IntegerType>(DstTy) && "not ptr->int?"); 1084 return Builder.CreatePtrToInt(Src, DstTy, "conv"); 1085 } 1086 1087 // A scalar can be splatted to an extended vector of the same element type 1088 if (DstType->isExtVectorType() && !SrcType->isVectorType()) { 1089 // Sema should add casts to make sure that the source expression's type is 1090 // the same as the vector's element type (sans qualifiers) 1091 assert(DstType->castAs<ExtVectorType>()->getElementType().getTypePtr() == 1092 SrcType.getTypePtr() && 1093 "Splatted expr doesn't match with vector element type?"); 1094 1095 // Splat the element across to all elements 1096 unsigned NumElements = DstTy->getVectorNumElements(); 1097 return Builder.CreateVectorSplat(NumElements, Src, "splat"); 1098 } 1099 1100 if (isa<llvm::VectorType>(SrcTy) || isa<llvm::VectorType>(DstTy)) { 1101 // Allow bitcast from vector to integer/fp of the same size. 1102 unsigned SrcSize = SrcTy->getPrimitiveSizeInBits(); 1103 unsigned DstSize = DstTy->getPrimitiveSizeInBits(); 1104 if (SrcSize == DstSize) 1105 return Builder.CreateBitCast(Src, DstTy, "conv"); 1106 1107 // Conversions between vectors of different sizes are not allowed except 1108 // when vectors of half are involved. Operations on storage-only half 1109 // vectors require promoting half vector operands to float vectors and 1110 // truncating the result, which is either an int or float vector, to a 1111 // short or half vector. 1112 1113 // Source and destination are both expected to be vectors. 1114 llvm::Type *SrcElementTy = SrcTy->getVectorElementType(); 1115 llvm::Type *DstElementTy = DstTy->getVectorElementType(); 1116 (void)DstElementTy; 1117 1118 assert(((SrcElementTy->isIntegerTy() && 1119 DstElementTy->isIntegerTy()) || 1120 (SrcElementTy->isFloatingPointTy() && 1121 DstElementTy->isFloatingPointTy())) && 1122 "unexpected conversion between a floating-point vector and an " 1123 "integer vector"); 1124 1125 // Truncate an i32 vector to an i16 vector. 1126 if (SrcElementTy->isIntegerTy()) 1127 return Builder.CreateIntCast(Src, DstTy, false, "conv"); 1128 1129 // Truncate a float vector to a half vector. 1130 if (SrcSize > DstSize) 1131 return Builder.CreateFPTrunc(Src, DstTy, "conv"); 1132 1133 // Promote a half vector to a float vector. 1134 return Builder.CreateFPExt(Src, DstTy, "conv"); 1135 } 1136 1137 // Finally, we have the arithmetic types: real int/float. 1138 Value *Res = nullptr; 1139 llvm::Type *ResTy = DstTy; 1140 1141 // An overflowing conversion has undefined behavior if either the source type 1142 // or the destination type is a floating-point type. 1143 if (CGF.SanOpts.has(SanitizerKind::FloatCastOverflow) && 1144 (OrigSrcType->isFloatingType() || DstType->isFloatingType())) 1145 EmitFloatConversionCheck(OrigSrc, OrigSrcType, Src, SrcType, DstType, DstTy, 1146 Loc); 1147 1148 // Cast to half through float if half isn't a native type. 1149 if (DstType->isHalfType() && !CGF.getContext().getLangOpts().NativeHalfType) { 1150 // Make sure we cast in a single step if from another FP type. 1151 if (SrcTy->isFloatingPointTy()) { 1152 // Use the intrinsic if the half type itself isn't supported 1153 // (as opposed to operations on half, available with NativeHalfType). 1154 if (CGF.getContext().getTargetInfo().useFP16ConversionIntrinsics()) 1155 return Builder.CreateCall( 1156 CGF.CGM.getIntrinsic(llvm::Intrinsic::convert_to_fp16, SrcTy), Src); 1157 // If the half type is supported, just use an fptrunc. 1158 return Builder.CreateFPTrunc(Src, DstTy); 1159 } 1160 DstTy = CGF.FloatTy; 1161 } 1162 1163 if (isa<llvm::IntegerType>(SrcTy)) { 1164 bool InputSigned = SrcType->isSignedIntegerOrEnumerationType(); 1165 if (SrcType->isBooleanType() && Opts.TreatBooleanAsSigned) { 1166 InputSigned = true; 1167 } 1168 if (isa<llvm::IntegerType>(DstTy)) 1169 Res = Builder.CreateIntCast(Src, DstTy, InputSigned, "conv"); 1170 else if (InputSigned) 1171 Res = Builder.CreateSIToFP(Src, DstTy, "conv"); 1172 else 1173 Res = Builder.CreateUIToFP(Src, DstTy, "conv"); 1174 } else if (isa<llvm::IntegerType>(DstTy)) { 1175 assert(SrcTy->isFloatingPointTy() && "Unknown real conversion"); 1176 if (DstType->isSignedIntegerOrEnumerationType()) 1177 Res = Builder.CreateFPToSI(Src, DstTy, "conv"); 1178 else 1179 Res = Builder.CreateFPToUI(Src, DstTy, "conv"); 1180 } else { 1181 assert(SrcTy->isFloatingPointTy() && DstTy->isFloatingPointTy() && 1182 "Unknown real conversion"); 1183 if (DstTy->getTypeID() < SrcTy->getTypeID()) 1184 Res = Builder.CreateFPTrunc(Src, DstTy, "conv"); 1185 else 1186 Res = Builder.CreateFPExt(Src, DstTy, "conv"); 1187 } 1188 1189 if (DstTy != ResTy) { 1190 if (CGF.getContext().getTargetInfo().useFP16ConversionIntrinsics()) { 1191 assert(ResTy->isIntegerTy(16) && "Only half FP requires extra conversion"); 1192 Res = Builder.CreateCall( 1193 CGF.CGM.getIntrinsic(llvm::Intrinsic::convert_to_fp16, CGF.CGM.FloatTy), 1194 Res); 1195 } else { 1196 Res = Builder.CreateFPTrunc(Res, ResTy, "conv"); 1197 } 1198 } 1199 1200 if (Opts.EmitImplicitIntegerTruncationChecks) 1201 EmitIntegerTruncationCheck(Src, NoncanonicalSrcType, Res, 1202 NoncanonicalDstType, Loc); 1203 1204 return Res; 1205 } 1206 1207 /// Emit a conversion from the specified complex type to the specified 1208 /// destination type, where the destination type is an LLVM scalar type. 1209 Value *ScalarExprEmitter::EmitComplexToScalarConversion( 1210 CodeGenFunction::ComplexPairTy Src, QualType SrcTy, QualType DstTy, 1211 SourceLocation Loc) { 1212 // Get the source element type. 1213 SrcTy = SrcTy->castAs<ComplexType>()->getElementType(); 1214 1215 // Handle conversions to bool first, they are special: comparisons against 0. 1216 if (DstTy->isBooleanType()) { 1217 // Complex != 0 -> (Real != 0) | (Imag != 0) 1218 Src.first = EmitScalarConversion(Src.first, SrcTy, DstTy, Loc); 1219 Src.second = EmitScalarConversion(Src.second, SrcTy, DstTy, Loc); 1220 return Builder.CreateOr(Src.first, Src.second, "tobool"); 1221 } 1222 1223 // C99 6.3.1.7p2: "When a value of complex type is converted to a real type, 1224 // the imaginary part of the complex value is discarded and the value of the 1225 // real part is converted according to the conversion rules for the 1226 // corresponding real type. 1227 return EmitScalarConversion(Src.first, SrcTy, DstTy, Loc); 1228 } 1229 1230 Value *ScalarExprEmitter::EmitNullValue(QualType Ty) { 1231 return CGF.EmitFromMemory(CGF.CGM.EmitNullConstant(Ty), Ty); 1232 } 1233 1234 /// Emit a sanitization check for the given "binary" operation (which 1235 /// might actually be a unary increment which has been lowered to a binary 1236 /// operation). The check passes if all values in \p Checks (which are \c i1), 1237 /// are \c true. 1238 void ScalarExprEmitter::EmitBinOpCheck( 1239 ArrayRef<std::pair<Value *, SanitizerMask>> Checks, const BinOpInfo &Info) { 1240 assert(CGF.IsSanitizerScope); 1241 SanitizerHandler Check; 1242 SmallVector<llvm::Constant *, 4> StaticData; 1243 SmallVector<llvm::Value *, 2> DynamicData; 1244 1245 BinaryOperatorKind Opcode = Info.Opcode; 1246 if (BinaryOperator::isCompoundAssignmentOp(Opcode)) 1247 Opcode = BinaryOperator::getOpForCompoundAssignment(Opcode); 1248 1249 StaticData.push_back(CGF.EmitCheckSourceLocation(Info.E->getExprLoc())); 1250 const UnaryOperator *UO = dyn_cast<UnaryOperator>(Info.E); 1251 if (UO && UO->getOpcode() == UO_Minus) { 1252 Check = SanitizerHandler::NegateOverflow; 1253 StaticData.push_back(CGF.EmitCheckTypeDescriptor(UO->getType())); 1254 DynamicData.push_back(Info.RHS); 1255 } else { 1256 if (BinaryOperator::isShiftOp(Opcode)) { 1257 // Shift LHS negative or too large, or RHS out of bounds. 1258 Check = SanitizerHandler::ShiftOutOfBounds; 1259 const BinaryOperator *BO = cast<BinaryOperator>(Info.E); 1260 StaticData.push_back( 1261 CGF.EmitCheckTypeDescriptor(BO->getLHS()->getType())); 1262 StaticData.push_back( 1263 CGF.EmitCheckTypeDescriptor(BO->getRHS()->getType())); 1264 } else if (Opcode == BO_Div || Opcode == BO_Rem) { 1265 // Divide or modulo by zero, or signed overflow (eg INT_MAX / -1). 1266 Check = SanitizerHandler::DivremOverflow; 1267 StaticData.push_back(CGF.EmitCheckTypeDescriptor(Info.Ty)); 1268 } else { 1269 // Arithmetic overflow (+, -, *). 1270 switch (Opcode) { 1271 case BO_Add: Check = SanitizerHandler::AddOverflow; break; 1272 case BO_Sub: Check = SanitizerHandler::SubOverflow; break; 1273 case BO_Mul: Check = SanitizerHandler::MulOverflow; break; 1274 default: llvm_unreachable("unexpected opcode for bin op check"); 1275 } 1276 StaticData.push_back(CGF.EmitCheckTypeDescriptor(Info.Ty)); 1277 } 1278 DynamicData.push_back(Info.LHS); 1279 DynamicData.push_back(Info.RHS); 1280 } 1281 1282 CGF.EmitCheck(Checks, Check, StaticData, DynamicData); 1283 } 1284 1285 //===----------------------------------------------------------------------===// 1286 // Visitor Methods 1287 //===----------------------------------------------------------------------===// 1288 1289 Value *ScalarExprEmitter::VisitExpr(Expr *E) { 1290 CGF.ErrorUnsupported(E, "scalar expression"); 1291 if (E->getType()->isVoidType()) 1292 return nullptr; 1293 return llvm::UndefValue::get(CGF.ConvertType(E->getType())); 1294 } 1295 1296 Value *ScalarExprEmitter::VisitShuffleVectorExpr(ShuffleVectorExpr *E) { 1297 // Vector Mask Case 1298 if (E->getNumSubExprs() == 2) { 1299 Value *LHS = CGF.EmitScalarExpr(E->getExpr(0)); 1300 Value *RHS = CGF.EmitScalarExpr(E->getExpr(1)); 1301 Value *Mask; 1302 1303 llvm::VectorType *LTy = cast<llvm::VectorType>(LHS->getType()); 1304 unsigned LHSElts = LTy->getNumElements(); 1305 1306 Mask = RHS; 1307 1308 llvm::VectorType *MTy = cast<llvm::VectorType>(Mask->getType()); 1309 1310 // Mask off the high bits of each shuffle index. 1311 Value *MaskBits = 1312 llvm::ConstantInt::get(MTy, llvm::NextPowerOf2(LHSElts - 1) - 1); 1313 Mask = Builder.CreateAnd(Mask, MaskBits, "mask"); 1314 1315 // newv = undef 1316 // mask = mask & maskbits 1317 // for each elt 1318 // n = extract mask i 1319 // x = extract val n 1320 // newv = insert newv, x, i 1321 llvm::VectorType *RTy = llvm::VectorType::get(LTy->getElementType(), 1322 MTy->getNumElements()); 1323 Value* NewV = llvm::UndefValue::get(RTy); 1324 for (unsigned i = 0, e = MTy->getNumElements(); i != e; ++i) { 1325 Value *IIndx = llvm::ConstantInt::get(CGF.SizeTy, i); 1326 Value *Indx = Builder.CreateExtractElement(Mask, IIndx, "shuf_idx"); 1327 1328 Value *VExt = Builder.CreateExtractElement(LHS, Indx, "shuf_elt"); 1329 NewV = Builder.CreateInsertElement(NewV, VExt, IIndx, "shuf_ins"); 1330 } 1331 return NewV; 1332 } 1333 1334 Value* V1 = CGF.EmitScalarExpr(E->getExpr(0)); 1335 Value* V2 = CGF.EmitScalarExpr(E->getExpr(1)); 1336 1337 SmallVector<llvm::Constant*, 32> indices; 1338 for (unsigned i = 2; i < E->getNumSubExprs(); ++i) { 1339 llvm::APSInt Idx = E->getShuffleMaskIdx(CGF.getContext(), i-2); 1340 // Check for -1 and output it as undef in the IR. 1341 if (Idx.isSigned() && Idx.isAllOnesValue()) 1342 indices.push_back(llvm::UndefValue::get(CGF.Int32Ty)); 1343 else 1344 indices.push_back(Builder.getInt32(Idx.getZExtValue())); 1345 } 1346 1347 Value *SV = llvm::ConstantVector::get(indices); 1348 return Builder.CreateShuffleVector(V1, V2, SV, "shuffle"); 1349 } 1350 1351 Value *ScalarExprEmitter::VisitConvertVectorExpr(ConvertVectorExpr *E) { 1352 QualType SrcType = E->getSrcExpr()->getType(), 1353 DstType = E->getType(); 1354 1355 Value *Src = CGF.EmitScalarExpr(E->getSrcExpr()); 1356 1357 SrcType = CGF.getContext().getCanonicalType(SrcType); 1358 DstType = CGF.getContext().getCanonicalType(DstType); 1359 if (SrcType == DstType) return Src; 1360 1361 assert(SrcType->isVectorType() && 1362 "ConvertVector source type must be a vector"); 1363 assert(DstType->isVectorType() && 1364 "ConvertVector destination type must be a vector"); 1365 1366 llvm::Type *SrcTy = Src->getType(); 1367 llvm::Type *DstTy = ConvertType(DstType); 1368 1369 // Ignore conversions like int -> uint. 1370 if (SrcTy == DstTy) 1371 return Src; 1372 1373 QualType SrcEltType = SrcType->getAs<VectorType>()->getElementType(), 1374 DstEltType = DstType->getAs<VectorType>()->getElementType(); 1375 1376 assert(SrcTy->isVectorTy() && 1377 "ConvertVector source IR type must be a vector"); 1378 assert(DstTy->isVectorTy() && 1379 "ConvertVector destination IR type must be a vector"); 1380 1381 llvm::Type *SrcEltTy = SrcTy->getVectorElementType(), 1382 *DstEltTy = DstTy->getVectorElementType(); 1383 1384 if (DstEltType->isBooleanType()) { 1385 assert((SrcEltTy->isFloatingPointTy() || 1386 isa<llvm::IntegerType>(SrcEltTy)) && "Unknown boolean conversion"); 1387 1388 llvm::Value *Zero = llvm::Constant::getNullValue(SrcTy); 1389 if (SrcEltTy->isFloatingPointTy()) { 1390 return Builder.CreateFCmpUNE(Src, Zero, "tobool"); 1391 } else { 1392 return Builder.CreateICmpNE(Src, Zero, "tobool"); 1393 } 1394 } 1395 1396 // We have the arithmetic types: real int/float. 1397 Value *Res = nullptr; 1398 1399 if (isa<llvm::IntegerType>(SrcEltTy)) { 1400 bool InputSigned = SrcEltType->isSignedIntegerOrEnumerationType(); 1401 if (isa<llvm::IntegerType>(DstEltTy)) 1402 Res = Builder.CreateIntCast(Src, DstTy, InputSigned, "conv"); 1403 else if (InputSigned) 1404 Res = Builder.CreateSIToFP(Src, DstTy, "conv"); 1405 else 1406 Res = Builder.CreateUIToFP(Src, DstTy, "conv"); 1407 } else if (isa<llvm::IntegerType>(DstEltTy)) { 1408 assert(SrcEltTy->isFloatingPointTy() && "Unknown real conversion"); 1409 if (DstEltType->isSignedIntegerOrEnumerationType()) 1410 Res = Builder.CreateFPToSI(Src, DstTy, "conv"); 1411 else 1412 Res = Builder.CreateFPToUI(Src, DstTy, "conv"); 1413 } else { 1414 assert(SrcEltTy->isFloatingPointTy() && DstEltTy->isFloatingPointTy() && 1415 "Unknown real conversion"); 1416 if (DstEltTy->getTypeID() < SrcEltTy->getTypeID()) 1417 Res = Builder.CreateFPTrunc(Src, DstTy, "conv"); 1418 else 1419 Res = Builder.CreateFPExt(Src, DstTy, "conv"); 1420 } 1421 1422 return Res; 1423 } 1424 1425 Value *ScalarExprEmitter::VisitMemberExpr(MemberExpr *E) { 1426 if (CodeGenFunction::ConstantEmission Constant = CGF.tryEmitAsConstant(E)) { 1427 CGF.EmitIgnoredExpr(E->getBase()); 1428 return emitConstant(Constant, E); 1429 } else { 1430 llvm::APSInt Value; 1431 if (E->EvaluateAsInt(Value, CGF.getContext(), Expr::SE_AllowSideEffects)) { 1432 CGF.EmitIgnoredExpr(E->getBase()); 1433 return Builder.getInt(Value); 1434 } 1435 } 1436 1437 return EmitLoadOfLValue(E); 1438 } 1439 1440 Value *ScalarExprEmitter::VisitArraySubscriptExpr(ArraySubscriptExpr *E) { 1441 TestAndClearIgnoreResultAssign(); 1442 1443 // Emit subscript expressions in rvalue context's. For most cases, this just 1444 // loads the lvalue formed by the subscript expr. However, we have to be 1445 // careful, because the base of a vector subscript is occasionally an rvalue, 1446 // so we can't get it as an lvalue. 1447 if (!E->getBase()->getType()->isVectorType()) 1448 return EmitLoadOfLValue(E); 1449 1450 // Handle the vector case. The base must be a vector, the index must be an 1451 // integer value. 1452 Value *Base = Visit(E->getBase()); 1453 Value *Idx = Visit(E->getIdx()); 1454 QualType IdxTy = E->getIdx()->getType(); 1455 1456 if (CGF.SanOpts.has(SanitizerKind::ArrayBounds)) 1457 CGF.EmitBoundsCheck(E, E->getBase(), Idx, IdxTy, /*Accessed*/true); 1458 1459 return Builder.CreateExtractElement(Base, Idx, "vecext"); 1460 } 1461 1462 static llvm::Constant *getMaskElt(llvm::ShuffleVectorInst *SVI, unsigned Idx, 1463 unsigned Off, llvm::Type *I32Ty) { 1464 int MV = SVI->getMaskValue(Idx); 1465 if (MV == -1) 1466 return llvm::UndefValue::get(I32Ty); 1467 return llvm::ConstantInt::get(I32Ty, Off+MV); 1468 } 1469 1470 static llvm::Constant *getAsInt32(llvm::ConstantInt *C, llvm::Type *I32Ty) { 1471 if (C->getBitWidth() != 32) { 1472 assert(llvm::ConstantInt::isValueValidForType(I32Ty, 1473 C->getZExtValue()) && 1474 "Index operand too large for shufflevector mask!"); 1475 return llvm::ConstantInt::get(I32Ty, C->getZExtValue()); 1476 } 1477 return C; 1478 } 1479 1480 Value *ScalarExprEmitter::VisitInitListExpr(InitListExpr *E) { 1481 bool Ignore = TestAndClearIgnoreResultAssign(); 1482 (void)Ignore; 1483 assert (Ignore == false && "init list ignored"); 1484 unsigned NumInitElements = E->getNumInits(); 1485 1486 if (E->hadArrayRangeDesignator()) 1487 CGF.ErrorUnsupported(E, "GNU array range designator extension"); 1488 1489 llvm::VectorType *VType = 1490 dyn_cast<llvm::VectorType>(ConvertType(E->getType())); 1491 1492 if (!VType) { 1493 if (NumInitElements == 0) { 1494 // C++11 value-initialization for the scalar. 1495 return EmitNullValue(E->getType()); 1496 } 1497 // We have a scalar in braces. Just use the first element. 1498 return Visit(E->getInit(0)); 1499 } 1500 1501 unsigned ResElts = VType->getNumElements(); 1502 1503 // Loop over initializers collecting the Value for each, and remembering 1504 // whether the source was swizzle (ExtVectorElementExpr). This will allow 1505 // us to fold the shuffle for the swizzle into the shuffle for the vector 1506 // initializer, since LLVM optimizers generally do not want to touch 1507 // shuffles. 1508 unsigned CurIdx = 0; 1509 bool VIsUndefShuffle = false; 1510 llvm::Value *V = llvm::UndefValue::get(VType); 1511 for (unsigned i = 0; i != NumInitElements; ++i) { 1512 Expr *IE = E->getInit(i); 1513 Value *Init = Visit(IE); 1514 SmallVector<llvm::Constant*, 16> Args; 1515 1516 llvm::VectorType *VVT = dyn_cast<llvm::VectorType>(Init->getType()); 1517 1518 // Handle scalar elements. If the scalar initializer is actually one 1519 // element of a different vector of the same width, use shuffle instead of 1520 // extract+insert. 1521 if (!VVT) { 1522 if (isa<ExtVectorElementExpr>(IE)) { 1523 llvm::ExtractElementInst *EI = cast<llvm::ExtractElementInst>(Init); 1524 1525 if (EI->getVectorOperandType()->getNumElements() == ResElts) { 1526 llvm::ConstantInt *C = cast<llvm::ConstantInt>(EI->getIndexOperand()); 1527 Value *LHS = nullptr, *RHS = nullptr; 1528 if (CurIdx == 0) { 1529 // insert into undef -> shuffle (src, undef) 1530 // shufflemask must use an i32 1531 Args.push_back(getAsInt32(C, CGF.Int32Ty)); 1532 Args.resize(ResElts, llvm::UndefValue::get(CGF.Int32Ty)); 1533 1534 LHS = EI->getVectorOperand(); 1535 RHS = V; 1536 VIsUndefShuffle = true; 1537 } else if (VIsUndefShuffle) { 1538 // insert into undefshuffle && size match -> shuffle (v, src) 1539 llvm::ShuffleVectorInst *SVV = cast<llvm::ShuffleVectorInst>(V); 1540 for (unsigned j = 0; j != CurIdx; ++j) 1541 Args.push_back(getMaskElt(SVV, j, 0, CGF.Int32Ty)); 1542 Args.push_back(Builder.getInt32(ResElts + C->getZExtValue())); 1543 Args.resize(ResElts, llvm::UndefValue::get(CGF.Int32Ty)); 1544 1545 LHS = cast<llvm::ShuffleVectorInst>(V)->getOperand(0); 1546 RHS = EI->getVectorOperand(); 1547 VIsUndefShuffle = false; 1548 } 1549 if (!Args.empty()) { 1550 llvm::Constant *Mask = llvm::ConstantVector::get(Args); 1551 V = Builder.CreateShuffleVector(LHS, RHS, Mask); 1552 ++CurIdx; 1553 continue; 1554 } 1555 } 1556 } 1557 V = Builder.CreateInsertElement(V, Init, Builder.getInt32(CurIdx), 1558 "vecinit"); 1559 VIsUndefShuffle = false; 1560 ++CurIdx; 1561 continue; 1562 } 1563 1564 unsigned InitElts = VVT->getNumElements(); 1565 1566 // If the initializer is an ExtVecEltExpr (a swizzle), and the swizzle's 1567 // input is the same width as the vector being constructed, generate an 1568 // optimized shuffle of the swizzle input into the result. 1569 unsigned Offset = (CurIdx == 0) ? 0 : ResElts; 1570 if (isa<ExtVectorElementExpr>(IE)) { 1571 llvm::ShuffleVectorInst *SVI = cast<llvm::ShuffleVectorInst>(Init); 1572 Value *SVOp = SVI->getOperand(0); 1573 llvm::VectorType *OpTy = cast<llvm::VectorType>(SVOp->getType()); 1574 1575 if (OpTy->getNumElements() == ResElts) { 1576 for (unsigned j = 0; j != CurIdx; ++j) { 1577 // If the current vector initializer is a shuffle with undef, merge 1578 // this shuffle directly into it. 1579 if (VIsUndefShuffle) { 1580 Args.push_back(getMaskElt(cast<llvm::ShuffleVectorInst>(V), j, 0, 1581 CGF.Int32Ty)); 1582 } else { 1583 Args.push_back(Builder.getInt32(j)); 1584 } 1585 } 1586 for (unsigned j = 0, je = InitElts; j != je; ++j) 1587 Args.push_back(getMaskElt(SVI, j, Offset, CGF.Int32Ty)); 1588 Args.resize(ResElts, llvm::UndefValue::get(CGF.Int32Ty)); 1589 1590 if (VIsUndefShuffle) 1591 V = cast<llvm::ShuffleVectorInst>(V)->getOperand(0); 1592 1593 Init = SVOp; 1594 } 1595 } 1596 1597 // Extend init to result vector length, and then shuffle its contribution 1598 // to the vector initializer into V. 1599 if (Args.empty()) { 1600 for (unsigned j = 0; j != InitElts; ++j) 1601 Args.push_back(Builder.getInt32(j)); 1602 Args.resize(ResElts, llvm::UndefValue::get(CGF.Int32Ty)); 1603 llvm::Constant *Mask = llvm::ConstantVector::get(Args); 1604 Init = Builder.CreateShuffleVector(Init, llvm::UndefValue::get(VVT), 1605 Mask, "vext"); 1606 1607 Args.clear(); 1608 for (unsigned j = 0; j != CurIdx; ++j) 1609 Args.push_back(Builder.getInt32(j)); 1610 for (unsigned j = 0; j != InitElts; ++j) 1611 Args.push_back(Builder.getInt32(j+Offset)); 1612 Args.resize(ResElts, llvm::UndefValue::get(CGF.Int32Ty)); 1613 } 1614 1615 // If V is undef, make sure it ends up on the RHS of the shuffle to aid 1616 // merging subsequent shuffles into this one. 1617 if (CurIdx == 0) 1618 std::swap(V, Init); 1619 llvm::Constant *Mask = llvm::ConstantVector::get(Args); 1620 V = Builder.CreateShuffleVector(V, Init, Mask, "vecinit"); 1621 VIsUndefShuffle = isa<llvm::UndefValue>(Init); 1622 CurIdx += InitElts; 1623 } 1624 1625 // FIXME: evaluate codegen vs. shuffling against constant null vector. 1626 // Emit remaining default initializers. 1627 llvm::Type *EltTy = VType->getElementType(); 1628 1629 // Emit remaining default initializers 1630 for (/* Do not initialize i*/; CurIdx < ResElts; ++CurIdx) { 1631 Value *Idx = Builder.getInt32(CurIdx); 1632 llvm::Value *Init = llvm::Constant::getNullValue(EltTy); 1633 V = Builder.CreateInsertElement(V, Init, Idx, "vecinit"); 1634 } 1635 return V; 1636 } 1637 1638 bool CodeGenFunction::ShouldNullCheckClassCastValue(const CastExpr *CE) { 1639 const Expr *E = CE->getSubExpr(); 1640 1641 if (CE->getCastKind() == CK_UncheckedDerivedToBase) 1642 return false; 1643 1644 if (isa<CXXThisExpr>(E->IgnoreParens())) { 1645 // We always assume that 'this' is never null. 1646 return false; 1647 } 1648 1649 if (const ImplicitCastExpr *ICE = dyn_cast<ImplicitCastExpr>(CE)) { 1650 // And that glvalue casts are never null. 1651 if (ICE->getValueKind() != VK_RValue) 1652 return false; 1653 } 1654 1655 return true; 1656 } 1657 1658 // VisitCastExpr - Emit code for an explicit or implicit cast. Implicit casts 1659 // have to handle a more broad range of conversions than explicit casts, as they 1660 // handle things like function to ptr-to-function decay etc. 1661 Value *ScalarExprEmitter::VisitCastExpr(CastExpr *CE) { 1662 Expr *E = CE->getSubExpr(); 1663 QualType DestTy = CE->getType(); 1664 CastKind Kind = CE->getCastKind(); 1665 1666 // These cases are generally not written to ignore the result of 1667 // evaluating their sub-expressions, so we clear this now. 1668 bool Ignored = TestAndClearIgnoreResultAssign(); 1669 1670 // Since almost all cast kinds apply to scalars, this switch doesn't have 1671 // a default case, so the compiler will warn on a missing case. The cases 1672 // are in the same order as in the CastKind enum. 1673 switch (Kind) { 1674 case CK_Dependent: llvm_unreachable("dependent cast kind in IR gen!"); 1675 case CK_BuiltinFnToFnPtr: 1676 llvm_unreachable("builtin functions are handled elsewhere"); 1677 1678 case CK_LValueBitCast: 1679 case CK_ObjCObjectLValueCast: { 1680 Address Addr = EmitLValue(E).getAddress(); 1681 Addr = Builder.CreateElementBitCast(Addr, CGF.ConvertTypeForMem(DestTy)); 1682 LValue LV = CGF.MakeAddrLValue(Addr, DestTy); 1683 return EmitLoadOfLValue(LV, CE->getExprLoc()); 1684 } 1685 1686 case CK_CPointerToObjCPointerCast: 1687 case CK_BlockPointerToObjCPointerCast: 1688 case CK_AnyPointerToBlockPointerCast: 1689 case CK_BitCast: { 1690 Value *Src = Visit(const_cast<Expr*>(E)); 1691 llvm::Type *SrcTy = Src->getType(); 1692 llvm::Type *DstTy = ConvertType(DestTy); 1693 if (SrcTy->isPtrOrPtrVectorTy() && DstTy->isPtrOrPtrVectorTy() && 1694 SrcTy->getPointerAddressSpace() != DstTy->getPointerAddressSpace()) { 1695 llvm_unreachable("wrong cast for pointers in different address spaces" 1696 "(must be an address space cast)!"); 1697 } 1698 1699 if (CGF.SanOpts.has(SanitizerKind::CFIUnrelatedCast)) { 1700 if (auto PT = DestTy->getAs<PointerType>()) 1701 CGF.EmitVTablePtrCheckForCast(PT->getPointeeType(), Src, 1702 /*MayBeNull=*/true, 1703 CodeGenFunction::CFITCK_UnrelatedCast, 1704 CE->getBeginLoc()); 1705 } 1706 1707 if (CGF.CGM.getCodeGenOpts().StrictVTablePointers) { 1708 const QualType SrcType = E->getType(); 1709 1710 if (SrcType.mayBeNotDynamicClass() && DestTy.mayBeDynamicClass()) { 1711 // Casting to pointer that could carry dynamic information (provided by 1712 // invariant.group) requires launder. 1713 Src = Builder.CreateLaunderInvariantGroup(Src); 1714 } else if (SrcType.mayBeDynamicClass() && DestTy.mayBeNotDynamicClass()) { 1715 // Casting to pointer that does not carry dynamic information (provided 1716 // by invariant.group) requires stripping it. Note that we don't do it 1717 // if the source could not be dynamic type and destination could be 1718 // dynamic because dynamic information is already laundered. It is 1719 // because launder(strip(src)) == launder(src), so there is no need to 1720 // add extra strip before launder. 1721 Src = Builder.CreateStripInvariantGroup(Src); 1722 } 1723 } 1724 1725 return Builder.CreateBitCast(Src, DstTy); 1726 } 1727 case CK_AddressSpaceConversion: { 1728 Expr::EvalResult Result; 1729 if (E->EvaluateAsRValue(Result, CGF.getContext()) && 1730 Result.Val.isNullPointer()) { 1731 // If E has side effect, it is emitted even if its final result is a 1732 // null pointer. In that case, a DCE pass should be able to 1733 // eliminate the useless instructions emitted during translating E. 1734 if (Result.HasSideEffects) 1735 Visit(E); 1736 return CGF.CGM.getNullPointer(cast<llvm::PointerType>( 1737 ConvertType(DestTy)), DestTy); 1738 } 1739 // Since target may map different address spaces in AST to the same address 1740 // space, an address space conversion may end up as a bitcast. 1741 return CGF.CGM.getTargetCodeGenInfo().performAddrSpaceCast( 1742 CGF, Visit(E), E->getType()->getPointeeType().getAddressSpace(), 1743 DestTy->getPointeeType().getAddressSpace(), ConvertType(DestTy)); 1744 } 1745 case CK_AtomicToNonAtomic: 1746 case CK_NonAtomicToAtomic: 1747 case CK_NoOp: 1748 case CK_UserDefinedConversion: 1749 return Visit(const_cast<Expr*>(E)); 1750 1751 case CK_BaseToDerived: { 1752 const CXXRecordDecl *DerivedClassDecl = DestTy->getPointeeCXXRecordDecl(); 1753 assert(DerivedClassDecl && "BaseToDerived arg isn't a C++ object pointer!"); 1754 1755 Address Base = CGF.EmitPointerWithAlignment(E); 1756 Address Derived = 1757 CGF.GetAddressOfDerivedClass(Base, DerivedClassDecl, 1758 CE->path_begin(), CE->path_end(), 1759 CGF.ShouldNullCheckClassCastValue(CE)); 1760 1761 // C++11 [expr.static.cast]p11: Behavior is undefined if a downcast is 1762 // performed and the object is not of the derived type. 1763 if (CGF.sanitizePerformTypeCheck()) 1764 CGF.EmitTypeCheck(CodeGenFunction::TCK_DowncastPointer, CE->getExprLoc(), 1765 Derived.getPointer(), DestTy->getPointeeType()); 1766 1767 if (CGF.SanOpts.has(SanitizerKind::CFIDerivedCast)) 1768 CGF.EmitVTablePtrCheckForCast( 1769 DestTy->getPointeeType(), Derived.getPointer(), 1770 /*MayBeNull=*/true, CodeGenFunction::CFITCK_DerivedCast, 1771 CE->getBeginLoc()); 1772 1773 return Derived.getPointer(); 1774 } 1775 case CK_UncheckedDerivedToBase: 1776 case CK_DerivedToBase: { 1777 // The EmitPointerWithAlignment path does this fine; just discard 1778 // the alignment. 1779 return CGF.EmitPointerWithAlignment(CE).getPointer(); 1780 } 1781 1782 case CK_Dynamic: { 1783 Address V = CGF.EmitPointerWithAlignment(E); 1784 const CXXDynamicCastExpr *DCE = cast<CXXDynamicCastExpr>(CE); 1785 return CGF.EmitDynamicCast(V, DCE); 1786 } 1787 1788 case CK_ArrayToPointerDecay: 1789 return CGF.EmitArrayToPointerDecay(E).getPointer(); 1790 case CK_FunctionToPointerDecay: 1791 return EmitLValue(E).getPointer(); 1792 1793 case CK_NullToPointer: 1794 if (MustVisitNullValue(E)) 1795 (void) Visit(E); 1796 1797 return CGF.CGM.getNullPointer(cast<llvm::PointerType>(ConvertType(DestTy)), 1798 DestTy); 1799 1800 case CK_NullToMemberPointer: { 1801 if (MustVisitNullValue(E)) 1802 (void) Visit(E); 1803 1804 const MemberPointerType *MPT = CE->getType()->getAs<MemberPointerType>(); 1805 return CGF.CGM.getCXXABI().EmitNullMemberPointer(MPT); 1806 } 1807 1808 case CK_ReinterpretMemberPointer: 1809 case CK_BaseToDerivedMemberPointer: 1810 case CK_DerivedToBaseMemberPointer: { 1811 Value *Src = Visit(E); 1812 1813 // Note that the AST doesn't distinguish between checked and 1814 // unchecked member pointer conversions, so we always have to 1815 // implement checked conversions here. This is inefficient when 1816 // actual control flow may be required in order to perform the 1817 // check, which it is for data member pointers (but not member 1818 // function pointers on Itanium and ARM). 1819 return CGF.CGM.getCXXABI().EmitMemberPointerConversion(CGF, CE, Src); 1820 } 1821 1822 case CK_ARCProduceObject: 1823 return CGF.EmitARCRetainScalarExpr(E); 1824 case CK_ARCConsumeObject: 1825 return CGF.EmitObjCConsumeObject(E->getType(), Visit(E)); 1826 case CK_ARCReclaimReturnedObject: 1827 return CGF.EmitARCReclaimReturnedObject(E, /*allowUnsafe*/ Ignored); 1828 case CK_ARCExtendBlockObject: 1829 return CGF.EmitARCExtendBlockObject(E); 1830 1831 case CK_CopyAndAutoreleaseBlockObject: 1832 return CGF.EmitBlockCopyAndAutorelease(Visit(E), E->getType()); 1833 1834 case CK_FloatingRealToComplex: 1835 case CK_FloatingComplexCast: 1836 case CK_IntegralRealToComplex: 1837 case CK_IntegralComplexCast: 1838 case CK_IntegralComplexToFloatingComplex: 1839 case CK_FloatingComplexToIntegralComplex: 1840 case CK_ConstructorConversion: 1841 case CK_ToUnion: 1842 llvm_unreachable("scalar cast to non-scalar value"); 1843 1844 case CK_LValueToRValue: 1845 assert(CGF.getContext().hasSameUnqualifiedType(E->getType(), DestTy)); 1846 assert(E->isGLValue() && "lvalue-to-rvalue applied to r-value!"); 1847 return Visit(const_cast<Expr*>(E)); 1848 1849 case CK_IntegralToPointer: { 1850 Value *Src = Visit(const_cast<Expr*>(E)); 1851 1852 // First, convert to the correct width so that we control the kind of 1853 // extension. 1854 auto DestLLVMTy = ConvertType(DestTy); 1855 llvm::Type *MiddleTy = CGF.CGM.getDataLayout().getIntPtrType(DestLLVMTy); 1856 bool InputSigned = E->getType()->isSignedIntegerOrEnumerationType(); 1857 llvm::Value* IntResult = 1858 Builder.CreateIntCast(Src, MiddleTy, InputSigned, "conv"); 1859 1860 auto *IntToPtr = Builder.CreateIntToPtr(IntResult, DestLLVMTy); 1861 1862 if (CGF.CGM.getCodeGenOpts().StrictVTablePointers) { 1863 // Going from integer to pointer that could be dynamic requires reloading 1864 // dynamic information from invariant.group. 1865 if (DestTy.mayBeDynamicClass()) 1866 IntToPtr = Builder.CreateLaunderInvariantGroup(IntToPtr); 1867 } 1868 return IntToPtr; 1869 } 1870 case CK_PointerToIntegral: { 1871 assert(!DestTy->isBooleanType() && "bool should use PointerToBool"); 1872 auto *PtrExpr = Visit(E); 1873 1874 if (CGF.CGM.getCodeGenOpts().StrictVTablePointers) { 1875 const QualType SrcType = E->getType(); 1876 1877 // Casting to integer requires stripping dynamic information as it does 1878 // not carries it. 1879 if (SrcType.mayBeDynamicClass()) 1880 PtrExpr = Builder.CreateStripInvariantGroup(PtrExpr); 1881 } 1882 1883 return Builder.CreatePtrToInt(PtrExpr, ConvertType(DestTy)); 1884 } 1885 case CK_ToVoid: { 1886 CGF.EmitIgnoredExpr(E); 1887 return nullptr; 1888 } 1889 case CK_VectorSplat: { 1890 llvm::Type *DstTy = ConvertType(DestTy); 1891 Value *Elt = Visit(const_cast<Expr*>(E)); 1892 // Splat the element across to all elements 1893 unsigned NumElements = DstTy->getVectorNumElements(); 1894 return Builder.CreateVectorSplat(NumElements, Elt, "splat"); 1895 } 1896 1897 case CK_IntegralCast: { 1898 ScalarConversionOpts Opts; 1899 if (CGF.SanOpts.hasOneOf(SanitizerKind::ImplicitIntegerTruncation)) { 1900 if (auto *ICE = dyn_cast<ImplicitCastExpr>(CE)) 1901 Opts.EmitImplicitIntegerTruncationChecks = !ICE->isPartOfExplicitCast(); 1902 } 1903 return EmitScalarConversion(Visit(E), E->getType(), DestTy, 1904 CE->getExprLoc(), Opts); 1905 } 1906 case CK_IntegralToFloating: 1907 case CK_FloatingToIntegral: 1908 case CK_FloatingCast: 1909 return EmitScalarConversion(Visit(E), E->getType(), DestTy, 1910 CE->getExprLoc()); 1911 case CK_BooleanToSignedIntegral: { 1912 ScalarConversionOpts Opts; 1913 Opts.TreatBooleanAsSigned = true; 1914 return EmitScalarConversion(Visit(E), E->getType(), DestTy, 1915 CE->getExprLoc(), Opts); 1916 } 1917 case CK_IntegralToBoolean: 1918 return EmitIntToBoolConversion(Visit(E)); 1919 case CK_PointerToBoolean: 1920 return EmitPointerToBoolConversion(Visit(E), E->getType()); 1921 case CK_FloatingToBoolean: 1922 return EmitFloatToBoolConversion(Visit(E)); 1923 case CK_MemberPointerToBoolean: { 1924 llvm::Value *MemPtr = Visit(E); 1925 const MemberPointerType *MPT = E->getType()->getAs<MemberPointerType>(); 1926 return CGF.CGM.getCXXABI().EmitMemberPointerIsNotNull(CGF, MemPtr, MPT); 1927 } 1928 1929 case CK_FloatingComplexToReal: 1930 case CK_IntegralComplexToReal: 1931 return CGF.EmitComplexExpr(E, false, true).first; 1932 1933 case CK_FloatingComplexToBoolean: 1934 case CK_IntegralComplexToBoolean: { 1935 CodeGenFunction::ComplexPairTy V = CGF.EmitComplexExpr(E); 1936 1937 // TODO: kill this function off, inline appropriate case here 1938 return EmitComplexToScalarConversion(V, E->getType(), DestTy, 1939 CE->getExprLoc()); 1940 } 1941 1942 case CK_ZeroToOCLEvent: { 1943 assert(DestTy->isEventT() && "CK_ZeroToOCLEvent cast on non-event type"); 1944 return llvm::Constant::getNullValue(ConvertType(DestTy)); 1945 } 1946 1947 case CK_ZeroToOCLQueue: { 1948 assert(DestTy->isQueueT() && "CK_ZeroToOCLQueue cast on non queue_t type"); 1949 return llvm::Constant::getNullValue(ConvertType(DestTy)); 1950 } 1951 1952 case CK_IntToOCLSampler: 1953 return CGF.CGM.createOpenCLIntToSamplerConversion(E, CGF); 1954 1955 } // end of switch 1956 1957 llvm_unreachable("unknown scalar cast"); 1958 } 1959 1960 Value *ScalarExprEmitter::VisitStmtExpr(const StmtExpr *E) { 1961 CodeGenFunction::StmtExprEvaluation eval(CGF); 1962 Address RetAlloca = CGF.EmitCompoundStmt(*E->getSubStmt(), 1963 !E->getType()->isVoidType()); 1964 if (!RetAlloca.isValid()) 1965 return nullptr; 1966 return CGF.EmitLoadOfScalar(CGF.MakeAddrLValue(RetAlloca, E->getType()), 1967 E->getExprLoc()); 1968 } 1969 1970 Value *ScalarExprEmitter::VisitExprWithCleanups(ExprWithCleanups *E) { 1971 CGF.enterFullExpression(E); 1972 CodeGenFunction::RunCleanupsScope Scope(CGF); 1973 Value *V = Visit(E->getSubExpr()); 1974 // Defend against dominance problems caused by jumps out of expression 1975 // evaluation through the shared cleanup block. 1976 Scope.ForceCleanup({&V}); 1977 return V; 1978 } 1979 1980 //===----------------------------------------------------------------------===// 1981 // Unary Operators 1982 //===----------------------------------------------------------------------===// 1983 1984 static BinOpInfo createBinOpInfoFromIncDec(const UnaryOperator *E, 1985 llvm::Value *InVal, bool IsInc) { 1986 BinOpInfo BinOp; 1987 BinOp.LHS = InVal; 1988 BinOp.RHS = llvm::ConstantInt::get(InVal->getType(), 1, false); 1989 BinOp.Ty = E->getType(); 1990 BinOp.Opcode = IsInc ? BO_Add : BO_Sub; 1991 // FIXME: once UnaryOperator carries FPFeatures, copy it here. 1992 BinOp.E = E; 1993 return BinOp; 1994 } 1995 1996 llvm::Value *ScalarExprEmitter::EmitIncDecConsiderOverflowBehavior( 1997 const UnaryOperator *E, llvm::Value *InVal, bool IsInc) { 1998 llvm::Value *Amount = 1999 llvm::ConstantInt::get(InVal->getType(), IsInc ? 1 : -1, true); 2000 StringRef Name = IsInc ? "inc" : "dec"; 2001 switch (CGF.getLangOpts().getSignedOverflowBehavior()) { 2002 case LangOptions::SOB_Defined: 2003 return Builder.CreateAdd(InVal, Amount, Name); 2004 case LangOptions::SOB_Undefined: 2005 if (!CGF.SanOpts.has(SanitizerKind::SignedIntegerOverflow)) 2006 return Builder.CreateNSWAdd(InVal, Amount, Name); 2007 // Fall through. 2008 case LangOptions::SOB_Trapping: 2009 if (!E->canOverflow()) 2010 return Builder.CreateNSWAdd(InVal, Amount, Name); 2011 return EmitOverflowCheckedBinOp(createBinOpInfoFromIncDec(E, InVal, IsInc)); 2012 } 2013 llvm_unreachable("Unknown SignedOverflowBehaviorTy"); 2014 } 2015 2016 llvm::Value * 2017 ScalarExprEmitter::EmitScalarPrePostIncDec(const UnaryOperator *E, LValue LV, 2018 bool isInc, bool isPre) { 2019 2020 QualType type = E->getSubExpr()->getType(); 2021 llvm::PHINode *atomicPHI = nullptr; 2022 llvm::Value *value; 2023 llvm::Value *input; 2024 2025 int amount = (isInc ? 1 : -1); 2026 bool isSubtraction = !isInc; 2027 2028 if (const AtomicType *atomicTy = type->getAs<AtomicType>()) { 2029 type = atomicTy->getValueType(); 2030 if (isInc && type->isBooleanType()) { 2031 llvm::Value *True = CGF.EmitToMemory(Builder.getTrue(), type); 2032 if (isPre) { 2033 Builder.CreateStore(True, LV.getAddress(), LV.isVolatileQualified()) 2034 ->setAtomic(llvm::AtomicOrdering::SequentiallyConsistent); 2035 return Builder.getTrue(); 2036 } 2037 // For atomic bool increment, we just store true and return it for 2038 // preincrement, do an atomic swap with true for postincrement 2039 return Builder.CreateAtomicRMW( 2040 llvm::AtomicRMWInst::Xchg, LV.getPointer(), True, 2041 llvm::AtomicOrdering::SequentiallyConsistent); 2042 } 2043 // Special case for atomic increment / decrement on integers, emit 2044 // atomicrmw instructions. We skip this if we want to be doing overflow 2045 // checking, and fall into the slow path with the atomic cmpxchg loop. 2046 if (!type->isBooleanType() && type->isIntegerType() && 2047 !(type->isUnsignedIntegerType() && 2048 CGF.SanOpts.has(SanitizerKind::UnsignedIntegerOverflow)) && 2049 CGF.getLangOpts().getSignedOverflowBehavior() != 2050 LangOptions::SOB_Trapping) { 2051 llvm::AtomicRMWInst::BinOp aop = isInc ? llvm::AtomicRMWInst::Add : 2052 llvm::AtomicRMWInst::Sub; 2053 llvm::Instruction::BinaryOps op = isInc ? llvm::Instruction::Add : 2054 llvm::Instruction::Sub; 2055 llvm::Value *amt = CGF.EmitToMemory( 2056 llvm::ConstantInt::get(ConvertType(type), 1, true), type); 2057 llvm::Value *old = Builder.CreateAtomicRMW(aop, 2058 LV.getPointer(), amt, llvm::AtomicOrdering::SequentiallyConsistent); 2059 return isPre ? Builder.CreateBinOp(op, old, amt) : old; 2060 } 2061 value = EmitLoadOfLValue(LV, E->getExprLoc()); 2062 input = value; 2063 // For every other atomic operation, we need to emit a load-op-cmpxchg loop 2064 llvm::BasicBlock *startBB = Builder.GetInsertBlock(); 2065 llvm::BasicBlock *opBB = CGF.createBasicBlock("atomic_op", CGF.CurFn); 2066 value = CGF.EmitToMemory(value, type); 2067 Builder.CreateBr(opBB); 2068 Builder.SetInsertPoint(opBB); 2069 atomicPHI = Builder.CreatePHI(value->getType(), 2); 2070 atomicPHI->addIncoming(value, startBB); 2071 value = atomicPHI; 2072 } else { 2073 value = EmitLoadOfLValue(LV, E->getExprLoc()); 2074 input = value; 2075 } 2076 2077 // Special case of integer increment that we have to check first: bool++. 2078 // Due to promotion rules, we get: 2079 // bool++ -> bool = bool + 1 2080 // -> bool = (int)bool + 1 2081 // -> bool = ((int)bool + 1 != 0) 2082 // An interesting aspect of this is that increment is always true. 2083 // Decrement does not have this property. 2084 if (isInc && type->isBooleanType()) { 2085 value = Builder.getTrue(); 2086 2087 // Most common case by far: integer increment. 2088 } else if (type->isIntegerType()) { 2089 // Note that signed integer inc/dec with width less than int can't 2090 // overflow because of promotion rules; we're just eliding a few steps here. 2091 if (E->canOverflow() && type->isSignedIntegerOrEnumerationType()) { 2092 value = EmitIncDecConsiderOverflowBehavior(E, value, isInc); 2093 } else if (E->canOverflow() && type->isUnsignedIntegerType() && 2094 CGF.SanOpts.has(SanitizerKind::UnsignedIntegerOverflow)) { 2095 value = 2096 EmitOverflowCheckedBinOp(createBinOpInfoFromIncDec(E, value, isInc)); 2097 } else { 2098 llvm::Value *amt = llvm::ConstantInt::get(value->getType(), amount, true); 2099 value = Builder.CreateAdd(value, amt, isInc ? "inc" : "dec"); 2100 } 2101 2102 // Next most common: pointer increment. 2103 } else if (const PointerType *ptr = type->getAs<PointerType>()) { 2104 QualType type = ptr->getPointeeType(); 2105 2106 // VLA types don't have constant size. 2107 if (const VariableArrayType *vla 2108 = CGF.getContext().getAsVariableArrayType(type)) { 2109 llvm::Value *numElts = CGF.getVLASize(vla).NumElts; 2110 if (!isInc) numElts = Builder.CreateNSWNeg(numElts, "vla.negsize"); 2111 if (CGF.getLangOpts().isSignedOverflowDefined()) 2112 value = Builder.CreateGEP(value, numElts, "vla.inc"); 2113 else 2114 value = CGF.EmitCheckedInBoundsGEP( 2115 value, numElts, /*SignedIndices=*/false, isSubtraction, 2116 E->getExprLoc(), "vla.inc"); 2117 2118 // Arithmetic on function pointers (!) is just +-1. 2119 } else if (type->isFunctionType()) { 2120 llvm::Value *amt = Builder.getInt32(amount); 2121 2122 value = CGF.EmitCastToVoidPtr(value); 2123 if (CGF.getLangOpts().isSignedOverflowDefined()) 2124 value = Builder.CreateGEP(value, amt, "incdec.funcptr"); 2125 else 2126 value = CGF.EmitCheckedInBoundsGEP(value, amt, /*SignedIndices=*/false, 2127 isSubtraction, E->getExprLoc(), 2128 "incdec.funcptr"); 2129 value = Builder.CreateBitCast(value, input->getType()); 2130 2131 // For everything else, we can just do a simple increment. 2132 } else { 2133 llvm::Value *amt = Builder.getInt32(amount); 2134 if (CGF.getLangOpts().isSignedOverflowDefined()) 2135 value = Builder.CreateGEP(value, amt, "incdec.ptr"); 2136 else 2137 value = CGF.EmitCheckedInBoundsGEP(value, amt, /*SignedIndices=*/false, 2138 isSubtraction, E->getExprLoc(), 2139 "incdec.ptr"); 2140 } 2141 2142 // Vector increment/decrement. 2143 } else if (type->isVectorType()) { 2144 if (type->hasIntegerRepresentation()) { 2145 llvm::Value *amt = llvm::ConstantInt::get(value->getType(), amount); 2146 2147 value = Builder.CreateAdd(value, amt, isInc ? "inc" : "dec"); 2148 } else { 2149 value = Builder.CreateFAdd( 2150 value, 2151 llvm::ConstantFP::get(value->getType(), amount), 2152 isInc ? "inc" : "dec"); 2153 } 2154 2155 // Floating point. 2156 } else if (type->isRealFloatingType()) { 2157 // Add the inc/dec to the real part. 2158 llvm::Value *amt; 2159 2160 if (type->isHalfType() && !CGF.getContext().getLangOpts().NativeHalfType) { 2161 // Another special case: half FP increment should be done via float 2162 if (CGF.getContext().getTargetInfo().useFP16ConversionIntrinsics()) { 2163 value = Builder.CreateCall( 2164 CGF.CGM.getIntrinsic(llvm::Intrinsic::convert_from_fp16, 2165 CGF.CGM.FloatTy), 2166 input, "incdec.conv"); 2167 } else { 2168 value = Builder.CreateFPExt(input, CGF.CGM.FloatTy, "incdec.conv"); 2169 } 2170 } 2171 2172 if (value->getType()->isFloatTy()) 2173 amt = llvm::ConstantFP::get(VMContext, 2174 llvm::APFloat(static_cast<float>(amount))); 2175 else if (value->getType()->isDoubleTy()) 2176 amt = llvm::ConstantFP::get(VMContext, 2177 llvm::APFloat(static_cast<double>(amount))); 2178 else { 2179 // Remaining types are Half, LongDouble or __float128. Convert from float. 2180 llvm::APFloat F(static_cast<float>(amount)); 2181 bool ignored; 2182 const llvm::fltSemantics *FS; 2183 // Don't use getFloatTypeSemantics because Half isn't 2184 // necessarily represented using the "half" LLVM type. 2185 if (value->getType()->isFP128Ty()) 2186 FS = &CGF.getTarget().getFloat128Format(); 2187 else if (value->getType()->isHalfTy()) 2188 FS = &CGF.getTarget().getHalfFormat(); 2189 else 2190 FS = &CGF.getTarget().getLongDoubleFormat(); 2191 F.convert(*FS, llvm::APFloat::rmTowardZero, &ignored); 2192 amt = llvm::ConstantFP::get(VMContext, F); 2193 } 2194 value = Builder.CreateFAdd(value, amt, isInc ? "inc" : "dec"); 2195 2196 if (type->isHalfType() && !CGF.getContext().getLangOpts().NativeHalfType) { 2197 if (CGF.getContext().getTargetInfo().useFP16ConversionIntrinsics()) { 2198 value = Builder.CreateCall( 2199 CGF.CGM.getIntrinsic(llvm::Intrinsic::convert_to_fp16, 2200 CGF.CGM.FloatTy), 2201 value, "incdec.conv"); 2202 } else { 2203 value = Builder.CreateFPTrunc(value, input->getType(), "incdec.conv"); 2204 } 2205 } 2206 2207 // Objective-C pointer types. 2208 } else { 2209 const ObjCObjectPointerType *OPT = type->castAs<ObjCObjectPointerType>(); 2210 value = CGF.EmitCastToVoidPtr(value); 2211 2212 CharUnits size = CGF.getContext().getTypeSizeInChars(OPT->getObjectType()); 2213 if (!isInc) size = -size; 2214 llvm::Value *sizeValue = 2215 llvm::ConstantInt::get(CGF.SizeTy, size.getQuantity()); 2216 2217 if (CGF.getLangOpts().isSignedOverflowDefined()) 2218 value = Builder.CreateGEP(value, sizeValue, "incdec.objptr"); 2219 else 2220 value = CGF.EmitCheckedInBoundsGEP(value, sizeValue, 2221 /*SignedIndices=*/false, isSubtraction, 2222 E->getExprLoc(), "incdec.objptr"); 2223 value = Builder.CreateBitCast(value, input->getType()); 2224 } 2225 2226 if (atomicPHI) { 2227 llvm::BasicBlock *opBB = Builder.GetInsertBlock(); 2228 llvm::BasicBlock *contBB = CGF.createBasicBlock("atomic_cont", CGF.CurFn); 2229 auto Pair = CGF.EmitAtomicCompareExchange( 2230 LV, RValue::get(atomicPHI), RValue::get(value), E->getExprLoc()); 2231 llvm::Value *old = CGF.EmitToMemory(Pair.first.getScalarVal(), type); 2232 llvm::Value *success = Pair.second; 2233 atomicPHI->addIncoming(old, opBB); 2234 Builder.CreateCondBr(success, contBB, opBB); 2235 Builder.SetInsertPoint(contBB); 2236 return isPre ? value : input; 2237 } 2238 2239 // Store the updated result through the lvalue. 2240 if (LV.isBitField()) 2241 CGF.EmitStoreThroughBitfieldLValue(RValue::get(value), LV, &value); 2242 else 2243 CGF.EmitStoreThroughLValue(RValue::get(value), LV); 2244 2245 // If this is a postinc, return the value read from memory, otherwise use the 2246 // updated value. 2247 return isPre ? value : input; 2248 } 2249 2250 2251 2252 Value *ScalarExprEmitter::VisitUnaryMinus(const UnaryOperator *E) { 2253 TestAndClearIgnoreResultAssign(); 2254 // Emit unary minus with EmitSub so we handle overflow cases etc. 2255 BinOpInfo BinOp; 2256 BinOp.RHS = Visit(E->getSubExpr()); 2257 2258 if (BinOp.RHS->getType()->isFPOrFPVectorTy()) 2259 BinOp.LHS = llvm::ConstantFP::getZeroValueForNegation(BinOp.RHS->getType()); 2260 else 2261 BinOp.LHS = llvm::Constant::getNullValue(BinOp.RHS->getType()); 2262 BinOp.Ty = E->getType(); 2263 BinOp.Opcode = BO_Sub; 2264 // FIXME: once UnaryOperator carries FPFeatures, copy it here. 2265 BinOp.E = E; 2266 return EmitSub(BinOp); 2267 } 2268 2269 Value *ScalarExprEmitter::VisitUnaryNot(const UnaryOperator *E) { 2270 TestAndClearIgnoreResultAssign(); 2271 Value *Op = Visit(E->getSubExpr()); 2272 return Builder.CreateNot(Op, "neg"); 2273 } 2274 2275 Value *ScalarExprEmitter::VisitUnaryLNot(const UnaryOperator *E) { 2276 // Perform vector logical not on comparison with zero vector. 2277 if (E->getType()->isExtVectorType()) { 2278 Value *Oper = Visit(E->getSubExpr()); 2279 Value *Zero = llvm::Constant::getNullValue(Oper->getType()); 2280 Value *Result; 2281 if (Oper->getType()->isFPOrFPVectorTy()) 2282 Result = Builder.CreateFCmp(llvm::CmpInst::FCMP_OEQ, Oper, Zero, "cmp"); 2283 else 2284 Result = Builder.CreateICmp(llvm::CmpInst::ICMP_EQ, Oper, Zero, "cmp"); 2285 return Builder.CreateSExt(Result, ConvertType(E->getType()), "sext"); 2286 } 2287 2288 // Compare operand to zero. 2289 Value *BoolVal = CGF.EvaluateExprAsBool(E->getSubExpr()); 2290 2291 // Invert value. 2292 // TODO: Could dynamically modify easy computations here. For example, if 2293 // the operand is an icmp ne, turn into icmp eq. 2294 BoolVal = Builder.CreateNot(BoolVal, "lnot"); 2295 2296 // ZExt result to the expr type. 2297 return Builder.CreateZExt(BoolVal, ConvertType(E->getType()), "lnot.ext"); 2298 } 2299 2300 Value *ScalarExprEmitter::VisitOffsetOfExpr(OffsetOfExpr *E) { 2301 // Try folding the offsetof to a constant. 2302 llvm::APSInt Value; 2303 if (E->EvaluateAsInt(Value, CGF.getContext())) 2304 return Builder.getInt(Value); 2305 2306 // Loop over the components of the offsetof to compute the value. 2307 unsigned n = E->getNumComponents(); 2308 llvm::Type* ResultType = ConvertType(E->getType()); 2309 llvm::Value* Result = llvm::Constant::getNullValue(ResultType); 2310 QualType CurrentType = E->getTypeSourceInfo()->getType(); 2311 for (unsigned i = 0; i != n; ++i) { 2312 OffsetOfNode ON = E->getComponent(i); 2313 llvm::Value *Offset = nullptr; 2314 switch (ON.getKind()) { 2315 case OffsetOfNode::Array: { 2316 // Compute the index 2317 Expr *IdxExpr = E->getIndexExpr(ON.getArrayExprIndex()); 2318 llvm::Value* Idx = CGF.EmitScalarExpr(IdxExpr); 2319 bool IdxSigned = IdxExpr->getType()->isSignedIntegerOrEnumerationType(); 2320 Idx = Builder.CreateIntCast(Idx, ResultType, IdxSigned, "conv"); 2321 2322 // Save the element type 2323 CurrentType = 2324 CGF.getContext().getAsArrayType(CurrentType)->getElementType(); 2325 2326 // Compute the element size 2327 llvm::Value* ElemSize = llvm::ConstantInt::get(ResultType, 2328 CGF.getContext().getTypeSizeInChars(CurrentType).getQuantity()); 2329 2330 // Multiply out to compute the result 2331 Offset = Builder.CreateMul(Idx, ElemSize); 2332 break; 2333 } 2334 2335 case OffsetOfNode::Field: { 2336 FieldDecl *MemberDecl = ON.getField(); 2337 RecordDecl *RD = CurrentType->getAs<RecordType>()->getDecl(); 2338 const ASTRecordLayout &RL = CGF.getContext().getASTRecordLayout(RD); 2339 2340 // Compute the index of the field in its parent. 2341 unsigned i = 0; 2342 // FIXME: It would be nice if we didn't have to loop here! 2343 for (RecordDecl::field_iterator Field = RD->field_begin(), 2344 FieldEnd = RD->field_end(); 2345 Field != FieldEnd; ++Field, ++i) { 2346 if (*Field == MemberDecl) 2347 break; 2348 } 2349 assert(i < RL.getFieldCount() && "offsetof field in wrong type"); 2350 2351 // Compute the offset to the field 2352 int64_t OffsetInt = RL.getFieldOffset(i) / 2353 CGF.getContext().getCharWidth(); 2354 Offset = llvm::ConstantInt::get(ResultType, OffsetInt); 2355 2356 // Save the element type. 2357 CurrentType = MemberDecl->getType(); 2358 break; 2359 } 2360 2361 case OffsetOfNode::Identifier: 2362 llvm_unreachable("dependent __builtin_offsetof"); 2363 2364 case OffsetOfNode::Base: { 2365 if (ON.getBase()->isVirtual()) { 2366 CGF.ErrorUnsupported(E, "virtual base in offsetof"); 2367 continue; 2368 } 2369 2370 RecordDecl *RD = CurrentType->getAs<RecordType>()->getDecl(); 2371 const ASTRecordLayout &RL = CGF.getContext().getASTRecordLayout(RD); 2372 2373 // Save the element type. 2374 CurrentType = ON.getBase()->getType(); 2375 2376 // Compute the offset to the base. 2377 const RecordType *BaseRT = CurrentType->getAs<RecordType>(); 2378 CXXRecordDecl *BaseRD = cast<CXXRecordDecl>(BaseRT->getDecl()); 2379 CharUnits OffsetInt = RL.getBaseClassOffset(BaseRD); 2380 Offset = llvm::ConstantInt::get(ResultType, OffsetInt.getQuantity()); 2381 break; 2382 } 2383 } 2384 Result = Builder.CreateAdd(Result, Offset); 2385 } 2386 return Result; 2387 } 2388 2389 /// VisitUnaryExprOrTypeTraitExpr - Return the size or alignment of the type of 2390 /// argument of the sizeof expression as an integer. 2391 Value * 2392 ScalarExprEmitter::VisitUnaryExprOrTypeTraitExpr( 2393 const UnaryExprOrTypeTraitExpr *E) { 2394 QualType TypeToSize = E->getTypeOfArgument(); 2395 if (E->getKind() == UETT_SizeOf) { 2396 if (const VariableArrayType *VAT = 2397 CGF.getContext().getAsVariableArrayType(TypeToSize)) { 2398 if (E->isArgumentType()) { 2399 // sizeof(type) - make sure to emit the VLA size. 2400 CGF.EmitVariablyModifiedType(TypeToSize); 2401 } else { 2402 // C99 6.5.3.4p2: If the argument is an expression of type 2403 // VLA, it is evaluated. 2404 CGF.EmitIgnoredExpr(E->getArgumentExpr()); 2405 } 2406 2407 auto VlaSize = CGF.getVLASize(VAT); 2408 llvm::Value *size = VlaSize.NumElts; 2409 2410 // Scale the number of non-VLA elements by the non-VLA element size. 2411 CharUnits eltSize = CGF.getContext().getTypeSizeInChars(VlaSize.Type); 2412 if (!eltSize.isOne()) 2413 size = CGF.Builder.CreateNUWMul(CGF.CGM.getSize(eltSize), size); 2414 2415 return size; 2416 } 2417 } else if (E->getKind() == UETT_OpenMPRequiredSimdAlign) { 2418 auto Alignment = 2419 CGF.getContext() 2420 .toCharUnitsFromBits(CGF.getContext().getOpenMPDefaultSimdAlign( 2421 E->getTypeOfArgument()->getPointeeType())) 2422 .getQuantity(); 2423 return llvm::ConstantInt::get(CGF.SizeTy, Alignment); 2424 } 2425 2426 // If this isn't sizeof(vla), the result must be constant; use the constant 2427 // folding logic so we don't have to duplicate it here. 2428 return Builder.getInt(E->EvaluateKnownConstInt(CGF.getContext())); 2429 } 2430 2431 Value *ScalarExprEmitter::VisitUnaryReal(const UnaryOperator *E) { 2432 Expr *Op = E->getSubExpr(); 2433 if (Op->getType()->isAnyComplexType()) { 2434 // If it's an l-value, load through the appropriate subobject l-value. 2435 // Note that we have to ask E because Op might be an l-value that 2436 // this won't work for, e.g. an Obj-C property. 2437 if (E->isGLValue()) 2438 return CGF.EmitLoadOfLValue(CGF.EmitLValue(E), 2439 E->getExprLoc()).getScalarVal(); 2440 2441 // Otherwise, calculate and project. 2442 return CGF.EmitComplexExpr(Op, false, true).first; 2443 } 2444 2445 return Visit(Op); 2446 } 2447 2448 Value *ScalarExprEmitter::VisitUnaryImag(const UnaryOperator *E) { 2449 Expr *Op = E->getSubExpr(); 2450 if (Op->getType()->isAnyComplexType()) { 2451 // If it's an l-value, load through the appropriate subobject l-value. 2452 // Note that we have to ask E because Op might be an l-value that 2453 // this won't work for, e.g. an Obj-C property. 2454 if (Op->isGLValue()) 2455 return CGF.EmitLoadOfLValue(CGF.EmitLValue(E), 2456 E->getExprLoc()).getScalarVal(); 2457 2458 // Otherwise, calculate and project. 2459 return CGF.EmitComplexExpr(Op, true, false).second; 2460 } 2461 2462 // __imag on a scalar returns zero. Emit the subexpr to ensure side 2463 // effects are evaluated, but not the actual value. 2464 if (Op->isGLValue()) 2465 CGF.EmitLValue(Op); 2466 else 2467 CGF.EmitScalarExpr(Op, true); 2468 return llvm::Constant::getNullValue(ConvertType(E->getType())); 2469 } 2470 2471 //===----------------------------------------------------------------------===// 2472 // Binary Operators 2473 //===----------------------------------------------------------------------===// 2474 2475 BinOpInfo ScalarExprEmitter::EmitBinOps(const BinaryOperator *E) { 2476 TestAndClearIgnoreResultAssign(); 2477 BinOpInfo Result; 2478 Result.LHS = Visit(E->getLHS()); 2479 Result.RHS = Visit(E->getRHS()); 2480 Result.Ty = E->getType(); 2481 Result.Opcode = E->getOpcode(); 2482 Result.FPFeatures = E->getFPFeatures(); 2483 Result.E = E; 2484 return Result; 2485 } 2486 2487 LValue ScalarExprEmitter::EmitCompoundAssignLValue( 2488 const CompoundAssignOperator *E, 2489 Value *(ScalarExprEmitter::*Func)(const BinOpInfo &), 2490 Value *&Result) { 2491 QualType LHSTy = E->getLHS()->getType(); 2492 BinOpInfo OpInfo; 2493 2494 if (E->getComputationResultType()->isAnyComplexType()) 2495 return CGF.EmitScalarCompoundAssignWithComplex(E, Result); 2496 2497 // Emit the RHS first. __block variables need to have the rhs evaluated 2498 // first, plus this should improve codegen a little. 2499 OpInfo.RHS = Visit(E->getRHS()); 2500 OpInfo.Ty = E->getComputationResultType(); 2501 OpInfo.Opcode = E->getOpcode(); 2502 OpInfo.FPFeatures = E->getFPFeatures(); 2503 OpInfo.E = E; 2504 // Load/convert the LHS. 2505 LValue LHSLV = EmitCheckedLValue(E->getLHS(), CodeGenFunction::TCK_Store); 2506 2507 llvm::PHINode *atomicPHI = nullptr; 2508 if (const AtomicType *atomicTy = LHSTy->getAs<AtomicType>()) { 2509 QualType type = atomicTy->getValueType(); 2510 if (!type->isBooleanType() && type->isIntegerType() && 2511 !(type->isUnsignedIntegerType() && 2512 CGF.SanOpts.has(SanitizerKind::UnsignedIntegerOverflow)) && 2513 CGF.getLangOpts().getSignedOverflowBehavior() != 2514 LangOptions::SOB_Trapping) { 2515 llvm::AtomicRMWInst::BinOp aop = llvm::AtomicRMWInst::BAD_BINOP; 2516 switch (OpInfo.Opcode) { 2517 // We don't have atomicrmw operands for *, %, /, <<, >> 2518 case BO_MulAssign: case BO_DivAssign: 2519 case BO_RemAssign: 2520 case BO_ShlAssign: 2521 case BO_ShrAssign: 2522 break; 2523 case BO_AddAssign: 2524 aop = llvm::AtomicRMWInst::Add; 2525 break; 2526 case BO_SubAssign: 2527 aop = llvm::AtomicRMWInst::Sub; 2528 break; 2529 case BO_AndAssign: 2530 aop = llvm::AtomicRMWInst::And; 2531 break; 2532 case BO_XorAssign: 2533 aop = llvm::AtomicRMWInst::Xor; 2534 break; 2535 case BO_OrAssign: 2536 aop = llvm::AtomicRMWInst::Or; 2537 break; 2538 default: 2539 llvm_unreachable("Invalid compound assignment type"); 2540 } 2541 if (aop != llvm::AtomicRMWInst::BAD_BINOP) { 2542 llvm::Value *amt = CGF.EmitToMemory( 2543 EmitScalarConversion(OpInfo.RHS, E->getRHS()->getType(), LHSTy, 2544 E->getExprLoc()), 2545 LHSTy); 2546 Builder.CreateAtomicRMW(aop, LHSLV.getPointer(), amt, 2547 llvm::AtomicOrdering::SequentiallyConsistent); 2548 return LHSLV; 2549 } 2550 } 2551 // FIXME: For floating point types, we should be saving and restoring the 2552 // floating point environment in the loop. 2553 llvm::BasicBlock *startBB = Builder.GetInsertBlock(); 2554 llvm::BasicBlock *opBB = CGF.createBasicBlock("atomic_op", CGF.CurFn); 2555 OpInfo.LHS = EmitLoadOfLValue(LHSLV, E->getExprLoc()); 2556 OpInfo.LHS = CGF.EmitToMemory(OpInfo.LHS, type); 2557 Builder.CreateBr(opBB); 2558 Builder.SetInsertPoint(opBB); 2559 atomicPHI = Builder.CreatePHI(OpInfo.LHS->getType(), 2); 2560 atomicPHI->addIncoming(OpInfo.LHS, startBB); 2561 OpInfo.LHS = atomicPHI; 2562 } 2563 else 2564 OpInfo.LHS = EmitLoadOfLValue(LHSLV, E->getExprLoc()); 2565 2566 SourceLocation Loc = E->getExprLoc(); 2567 OpInfo.LHS = 2568 EmitScalarConversion(OpInfo.LHS, LHSTy, E->getComputationLHSType(), Loc); 2569 2570 // Expand the binary operator. 2571 Result = (this->*Func)(OpInfo); 2572 2573 // Convert the result back to the LHS type. 2574 Result = 2575 EmitScalarConversion(Result, E->getComputationResultType(), LHSTy, Loc); 2576 2577 if (atomicPHI) { 2578 llvm::BasicBlock *opBB = Builder.GetInsertBlock(); 2579 llvm::BasicBlock *contBB = CGF.createBasicBlock("atomic_cont", CGF.CurFn); 2580 auto Pair = CGF.EmitAtomicCompareExchange( 2581 LHSLV, RValue::get(atomicPHI), RValue::get(Result), E->getExprLoc()); 2582 llvm::Value *old = CGF.EmitToMemory(Pair.first.getScalarVal(), LHSTy); 2583 llvm::Value *success = Pair.second; 2584 atomicPHI->addIncoming(old, opBB); 2585 Builder.CreateCondBr(success, contBB, opBB); 2586 Builder.SetInsertPoint(contBB); 2587 return LHSLV; 2588 } 2589 2590 // Store the result value into the LHS lvalue. Bit-fields are handled 2591 // specially because the result is altered by the store, i.e., [C99 6.5.16p1] 2592 // 'An assignment expression has the value of the left operand after the 2593 // assignment...'. 2594 if (LHSLV.isBitField()) 2595 CGF.EmitStoreThroughBitfieldLValue(RValue::get(Result), LHSLV, &Result); 2596 else 2597 CGF.EmitStoreThroughLValue(RValue::get(Result), LHSLV); 2598 2599 return LHSLV; 2600 } 2601 2602 Value *ScalarExprEmitter::EmitCompoundAssign(const CompoundAssignOperator *E, 2603 Value *(ScalarExprEmitter::*Func)(const BinOpInfo &)) { 2604 bool Ignore = TestAndClearIgnoreResultAssign(); 2605 Value *RHS; 2606 LValue LHS = EmitCompoundAssignLValue(E, Func, RHS); 2607 2608 // If the result is clearly ignored, return now. 2609 if (Ignore) 2610 return nullptr; 2611 2612 // The result of an assignment in C is the assigned r-value. 2613 if (!CGF.getLangOpts().CPlusPlus) 2614 return RHS; 2615 2616 // If the lvalue is non-volatile, return the computed value of the assignment. 2617 if (!LHS.isVolatileQualified()) 2618 return RHS; 2619 2620 // Otherwise, reload the value. 2621 return EmitLoadOfLValue(LHS, E->getExprLoc()); 2622 } 2623 2624 void ScalarExprEmitter::EmitUndefinedBehaviorIntegerDivAndRemCheck( 2625 const BinOpInfo &Ops, llvm::Value *Zero, bool isDiv) { 2626 SmallVector<std::pair<llvm::Value *, SanitizerMask>, 2> Checks; 2627 2628 if (CGF.SanOpts.has(SanitizerKind::IntegerDivideByZero)) { 2629 Checks.push_back(std::make_pair(Builder.CreateICmpNE(Ops.RHS, Zero), 2630 SanitizerKind::IntegerDivideByZero)); 2631 } 2632 2633 const auto *BO = cast<BinaryOperator>(Ops.E); 2634 if (CGF.SanOpts.has(SanitizerKind::SignedIntegerOverflow) && 2635 Ops.Ty->hasSignedIntegerRepresentation() && 2636 !IsWidenedIntegerOp(CGF.getContext(), BO->getLHS()) && 2637 Ops.mayHaveIntegerOverflow()) { 2638 llvm::IntegerType *Ty = cast<llvm::IntegerType>(Zero->getType()); 2639 2640 llvm::Value *IntMin = 2641 Builder.getInt(llvm::APInt::getSignedMinValue(Ty->getBitWidth())); 2642 llvm::Value *NegOne = llvm::ConstantInt::get(Ty, -1ULL); 2643 2644 llvm::Value *LHSCmp = Builder.CreateICmpNE(Ops.LHS, IntMin); 2645 llvm::Value *RHSCmp = Builder.CreateICmpNE(Ops.RHS, NegOne); 2646 llvm::Value *NotOverflow = Builder.CreateOr(LHSCmp, RHSCmp, "or"); 2647 Checks.push_back( 2648 std::make_pair(NotOverflow, SanitizerKind::SignedIntegerOverflow)); 2649 } 2650 2651 if (Checks.size() > 0) 2652 EmitBinOpCheck(Checks, Ops); 2653 } 2654 2655 Value *ScalarExprEmitter::EmitDiv(const BinOpInfo &Ops) { 2656 { 2657 CodeGenFunction::SanitizerScope SanScope(&CGF); 2658 if ((CGF.SanOpts.has(SanitizerKind::IntegerDivideByZero) || 2659 CGF.SanOpts.has(SanitizerKind::SignedIntegerOverflow)) && 2660 Ops.Ty->isIntegerType() && 2661 (Ops.mayHaveIntegerDivisionByZero() || Ops.mayHaveIntegerOverflow())) { 2662 llvm::Value *Zero = llvm::Constant::getNullValue(ConvertType(Ops.Ty)); 2663 EmitUndefinedBehaviorIntegerDivAndRemCheck(Ops, Zero, true); 2664 } else if (CGF.SanOpts.has(SanitizerKind::FloatDivideByZero) && 2665 Ops.Ty->isRealFloatingType() && 2666 Ops.mayHaveFloatDivisionByZero()) { 2667 llvm::Value *Zero = llvm::Constant::getNullValue(ConvertType(Ops.Ty)); 2668 llvm::Value *NonZero = Builder.CreateFCmpUNE(Ops.RHS, Zero); 2669 EmitBinOpCheck(std::make_pair(NonZero, SanitizerKind::FloatDivideByZero), 2670 Ops); 2671 } 2672 } 2673 2674 if (Ops.LHS->getType()->isFPOrFPVectorTy()) { 2675 llvm::Value *Val = Builder.CreateFDiv(Ops.LHS, Ops.RHS, "div"); 2676 if (CGF.getLangOpts().OpenCL && 2677 !CGF.CGM.getCodeGenOpts().CorrectlyRoundedDivSqrt) { 2678 // OpenCL v1.1 s7.4: minimum accuracy of single precision / is 2.5ulp 2679 // OpenCL v1.2 s5.6.4.2: The -cl-fp32-correctly-rounded-divide-sqrt 2680 // build option allows an application to specify that single precision 2681 // floating-point divide (x/y and 1/x) and sqrt used in the program 2682 // source are correctly rounded. 2683 llvm::Type *ValTy = Val->getType(); 2684 if (ValTy->isFloatTy() || 2685 (isa<llvm::VectorType>(ValTy) && 2686 cast<llvm::VectorType>(ValTy)->getElementType()->isFloatTy())) 2687 CGF.SetFPAccuracy(Val, 2.5); 2688 } 2689 return Val; 2690 } 2691 else if (Ops.Ty->hasUnsignedIntegerRepresentation()) 2692 return Builder.CreateUDiv(Ops.LHS, Ops.RHS, "div"); 2693 else 2694 return Builder.CreateSDiv(Ops.LHS, Ops.RHS, "div"); 2695 } 2696 2697 Value *ScalarExprEmitter::EmitRem(const BinOpInfo &Ops) { 2698 // Rem in C can't be a floating point type: C99 6.5.5p2. 2699 if ((CGF.SanOpts.has(SanitizerKind::IntegerDivideByZero) || 2700 CGF.SanOpts.has(SanitizerKind::SignedIntegerOverflow)) && 2701 Ops.Ty->isIntegerType() && 2702 (Ops.mayHaveIntegerDivisionByZero() || Ops.mayHaveIntegerOverflow())) { 2703 CodeGenFunction::SanitizerScope SanScope(&CGF); 2704 llvm::Value *Zero = llvm::Constant::getNullValue(ConvertType(Ops.Ty)); 2705 EmitUndefinedBehaviorIntegerDivAndRemCheck(Ops, Zero, false); 2706 } 2707 2708 if (Ops.Ty->hasUnsignedIntegerRepresentation()) 2709 return Builder.CreateURem(Ops.LHS, Ops.RHS, "rem"); 2710 else 2711 return Builder.CreateSRem(Ops.LHS, Ops.RHS, "rem"); 2712 } 2713 2714 Value *ScalarExprEmitter::EmitOverflowCheckedBinOp(const BinOpInfo &Ops) { 2715 unsigned IID; 2716 unsigned OpID = 0; 2717 2718 bool isSigned = Ops.Ty->isSignedIntegerOrEnumerationType(); 2719 switch (Ops.Opcode) { 2720 case BO_Add: 2721 case BO_AddAssign: 2722 OpID = 1; 2723 IID = isSigned ? llvm::Intrinsic::sadd_with_overflow : 2724 llvm::Intrinsic::uadd_with_overflow; 2725 break; 2726 case BO_Sub: 2727 case BO_SubAssign: 2728 OpID = 2; 2729 IID = isSigned ? llvm::Intrinsic::ssub_with_overflow : 2730 llvm::Intrinsic::usub_with_overflow; 2731 break; 2732 case BO_Mul: 2733 case BO_MulAssign: 2734 OpID = 3; 2735 IID = isSigned ? llvm::Intrinsic::smul_with_overflow : 2736 llvm::Intrinsic::umul_with_overflow; 2737 break; 2738 default: 2739 llvm_unreachable("Unsupported operation for overflow detection"); 2740 } 2741 OpID <<= 1; 2742 if (isSigned) 2743 OpID |= 1; 2744 2745 CodeGenFunction::SanitizerScope SanScope(&CGF); 2746 llvm::Type *opTy = CGF.CGM.getTypes().ConvertType(Ops.Ty); 2747 2748 llvm::Function *intrinsic = CGF.CGM.getIntrinsic(IID, opTy); 2749 2750 Value *resultAndOverflow = Builder.CreateCall(intrinsic, {Ops.LHS, Ops.RHS}); 2751 Value *result = Builder.CreateExtractValue(resultAndOverflow, 0); 2752 Value *overflow = Builder.CreateExtractValue(resultAndOverflow, 1); 2753 2754 // Handle overflow with llvm.trap if no custom handler has been specified. 2755 const std::string *handlerName = 2756 &CGF.getLangOpts().OverflowHandler; 2757 if (handlerName->empty()) { 2758 // If the signed-integer-overflow sanitizer is enabled, emit a call to its 2759 // runtime. Otherwise, this is a -ftrapv check, so just emit a trap. 2760 if (!isSigned || CGF.SanOpts.has(SanitizerKind::SignedIntegerOverflow)) { 2761 llvm::Value *NotOverflow = Builder.CreateNot(overflow); 2762 SanitizerMask Kind = isSigned ? SanitizerKind::SignedIntegerOverflow 2763 : SanitizerKind::UnsignedIntegerOverflow; 2764 EmitBinOpCheck(std::make_pair(NotOverflow, Kind), Ops); 2765 } else 2766 CGF.EmitTrapCheck(Builder.CreateNot(overflow)); 2767 return result; 2768 } 2769 2770 // Branch in case of overflow. 2771 llvm::BasicBlock *initialBB = Builder.GetInsertBlock(); 2772 llvm::BasicBlock *continueBB = 2773 CGF.createBasicBlock("nooverflow", CGF.CurFn, initialBB->getNextNode()); 2774 llvm::BasicBlock *overflowBB = CGF.createBasicBlock("overflow", CGF.CurFn); 2775 2776 Builder.CreateCondBr(overflow, overflowBB, continueBB); 2777 2778 // If an overflow handler is set, then we want to call it and then use its 2779 // result, if it returns. 2780 Builder.SetInsertPoint(overflowBB); 2781 2782 // Get the overflow handler. 2783 llvm::Type *Int8Ty = CGF.Int8Ty; 2784 llvm::Type *argTypes[] = { CGF.Int64Ty, CGF.Int64Ty, Int8Ty, Int8Ty }; 2785 llvm::FunctionType *handlerTy = 2786 llvm::FunctionType::get(CGF.Int64Ty, argTypes, true); 2787 llvm::Value *handler = CGF.CGM.CreateRuntimeFunction(handlerTy, *handlerName); 2788 2789 // Sign extend the args to 64-bit, so that we can use the same handler for 2790 // all types of overflow. 2791 llvm::Value *lhs = Builder.CreateSExt(Ops.LHS, CGF.Int64Ty); 2792 llvm::Value *rhs = Builder.CreateSExt(Ops.RHS, CGF.Int64Ty); 2793 2794 // Call the handler with the two arguments, the operation, and the size of 2795 // the result. 2796 llvm::Value *handlerArgs[] = { 2797 lhs, 2798 rhs, 2799 Builder.getInt8(OpID), 2800 Builder.getInt8(cast<llvm::IntegerType>(opTy)->getBitWidth()) 2801 }; 2802 llvm::Value *handlerResult = 2803 CGF.EmitNounwindRuntimeCall(handler, handlerArgs); 2804 2805 // Truncate the result back to the desired size. 2806 handlerResult = Builder.CreateTrunc(handlerResult, opTy); 2807 Builder.CreateBr(continueBB); 2808 2809 Builder.SetInsertPoint(continueBB); 2810 llvm::PHINode *phi = Builder.CreatePHI(opTy, 2); 2811 phi->addIncoming(result, initialBB); 2812 phi->addIncoming(handlerResult, overflowBB); 2813 2814 return phi; 2815 } 2816 2817 /// Emit pointer + index arithmetic. 2818 static Value *emitPointerArithmetic(CodeGenFunction &CGF, 2819 const BinOpInfo &op, 2820 bool isSubtraction) { 2821 // Must have binary (not unary) expr here. Unary pointer 2822 // increment/decrement doesn't use this path. 2823 const BinaryOperator *expr = cast<BinaryOperator>(op.E); 2824 2825 Value *pointer = op.LHS; 2826 Expr *pointerOperand = expr->getLHS(); 2827 Value *index = op.RHS; 2828 Expr *indexOperand = expr->getRHS(); 2829 2830 // In a subtraction, the LHS is always the pointer. 2831 if (!isSubtraction && !pointer->getType()->isPointerTy()) { 2832 std::swap(pointer, index); 2833 std::swap(pointerOperand, indexOperand); 2834 } 2835 2836 bool isSigned = indexOperand->getType()->isSignedIntegerOrEnumerationType(); 2837 2838 unsigned width = cast<llvm::IntegerType>(index->getType())->getBitWidth(); 2839 auto &DL = CGF.CGM.getDataLayout(); 2840 auto PtrTy = cast<llvm::PointerType>(pointer->getType()); 2841 2842 // Some versions of glibc and gcc use idioms (particularly in their malloc 2843 // routines) that add a pointer-sized integer (known to be a pointer value) 2844 // to a null pointer in order to cast the value back to an integer or as 2845 // part of a pointer alignment algorithm. This is undefined behavior, but 2846 // we'd like to be able to compile programs that use it. 2847 // 2848 // Normally, we'd generate a GEP with a null-pointer base here in response 2849 // to that code, but it's also UB to dereference a pointer created that 2850 // way. Instead (as an acknowledged hack to tolerate the idiom) we will 2851 // generate a direct cast of the integer value to a pointer. 2852 // 2853 // The idiom (p = nullptr + N) is not met if any of the following are true: 2854 // 2855 // The operation is subtraction. 2856 // The index is not pointer-sized. 2857 // The pointer type is not byte-sized. 2858 // 2859 if (BinaryOperator::isNullPointerArithmeticExtension(CGF.getContext(), 2860 op.Opcode, 2861 expr->getLHS(), 2862 expr->getRHS())) 2863 return CGF.Builder.CreateIntToPtr(index, pointer->getType()); 2864 2865 if (width != DL.getTypeSizeInBits(PtrTy)) { 2866 // Zero-extend or sign-extend the pointer value according to 2867 // whether the index is signed or not. 2868 index = CGF.Builder.CreateIntCast(index, DL.getIntPtrType(PtrTy), isSigned, 2869 "idx.ext"); 2870 } 2871 2872 // If this is subtraction, negate the index. 2873 if (isSubtraction) 2874 index = CGF.Builder.CreateNeg(index, "idx.neg"); 2875 2876 if (CGF.SanOpts.has(SanitizerKind::ArrayBounds)) 2877 CGF.EmitBoundsCheck(op.E, pointerOperand, index, indexOperand->getType(), 2878 /*Accessed*/ false); 2879 2880 const PointerType *pointerType 2881 = pointerOperand->getType()->getAs<PointerType>(); 2882 if (!pointerType) { 2883 QualType objectType = pointerOperand->getType() 2884 ->castAs<ObjCObjectPointerType>() 2885 ->getPointeeType(); 2886 llvm::Value *objectSize 2887 = CGF.CGM.getSize(CGF.getContext().getTypeSizeInChars(objectType)); 2888 2889 index = CGF.Builder.CreateMul(index, objectSize); 2890 2891 Value *result = CGF.Builder.CreateBitCast(pointer, CGF.VoidPtrTy); 2892 result = CGF.Builder.CreateGEP(result, index, "add.ptr"); 2893 return CGF.Builder.CreateBitCast(result, pointer->getType()); 2894 } 2895 2896 QualType elementType = pointerType->getPointeeType(); 2897 if (const VariableArrayType *vla 2898 = CGF.getContext().getAsVariableArrayType(elementType)) { 2899 // The element count here is the total number of non-VLA elements. 2900 llvm::Value *numElements = CGF.getVLASize(vla).NumElts; 2901 2902 // Effectively, the multiply by the VLA size is part of the GEP. 2903 // GEP indexes are signed, and scaling an index isn't permitted to 2904 // signed-overflow, so we use the same semantics for our explicit 2905 // multiply. We suppress this if overflow is not undefined behavior. 2906 if (CGF.getLangOpts().isSignedOverflowDefined()) { 2907 index = CGF.Builder.CreateMul(index, numElements, "vla.index"); 2908 pointer = CGF.Builder.CreateGEP(pointer, index, "add.ptr"); 2909 } else { 2910 index = CGF.Builder.CreateNSWMul(index, numElements, "vla.index"); 2911 pointer = 2912 CGF.EmitCheckedInBoundsGEP(pointer, index, isSigned, isSubtraction, 2913 op.E->getExprLoc(), "add.ptr"); 2914 } 2915 return pointer; 2916 } 2917 2918 // Explicitly handle GNU void* and function pointer arithmetic extensions. The 2919 // GNU void* casts amount to no-ops since our void* type is i8*, but this is 2920 // future proof. 2921 if (elementType->isVoidType() || elementType->isFunctionType()) { 2922 Value *result = CGF.Builder.CreateBitCast(pointer, CGF.VoidPtrTy); 2923 result = CGF.Builder.CreateGEP(result, index, "add.ptr"); 2924 return CGF.Builder.CreateBitCast(result, pointer->getType()); 2925 } 2926 2927 if (CGF.getLangOpts().isSignedOverflowDefined()) 2928 return CGF.Builder.CreateGEP(pointer, index, "add.ptr"); 2929 2930 return CGF.EmitCheckedInBoundsGEP(pointer, index, isSigned, isSubtraction, 2931 op.E->getExprLoc(), "add.ptr"); 2932 } 2933 2934 // Construct an fmuladd intrinsic to represent a fused mul-add of MulOp and 2935 // Addend. Use negMul and negAdd to negate the first operand of the Mul or 2936 // the add operand respectively. This allows fmuladd to represent a*b-c, or 2937 // c-a*b. Patterns in LLVM should catch the negated forms and translate them to 2938 // efficient operations. 2939 static Value* buildFMulAdd(llvm::BinaryOperator *MulOp, Value *Addend, 2940 const CodeGenFunction &CGF, CGBuilderTy &Builder, 2941 bool negMul, bool negAdd) { 2942 assert(!(negMul && negAdd) && "Only one of negMul and negAdd should be set."); 2943 2944 Value *MulOp0 = MulOp->getOperand(0); 2945 Value *MulOp1 = MulOp->getOperand(1); 2946 if (negMul) { 2947 MulOp0 = 2948 Builder.CreateFSub( 2949 llvm::ConstantFP::getZeroValueForNegation(MulOp0->getType()), MulOp0, 2950 "neg"); 2951 } else if (negAdd) { 2952 Addend = 2953 Builder.CreateFSub( 2954 llvm::ConstantFP::getZeroValueForNegation(Addend->getType()), Addend, 2955 "neg"); 2956 } 2957 2958 Value *FMulAdd = Builder.CreateCall( 2959 CGF.CGM.getIntrinsic(llvm::Intrinsic::fmuladd, Addend->getType()), 2960 {MulOp0, MulOp1, Addend}); 2961 MulOp->eraseFromParent(); 2962 2963 return FMulAdd; 2964 } 2965 2966 // Check whether it would be legal to emit an fmuladd intrinsic call to 2967 // represent op and if so, build the fmuladd. 2968 // 2969 // Checks that (a) the operation is fusable, and (b) -ffp-contract=on. 2970 // Does NOT check the type of the operation - it's assumed that this function 2971 // will be called from contexts where it's known that the type is contractable. 2972 static Value* tryEmitFMulAdd(const BinOpInfo &op, 2973 const CodeGenFunction &CGF, CGBuilderTy &Builder, 2974 bool isSub=false) { 2975 2976 assert((op.Opcode == BO_Add || op.Opcode == BO_AddAssign || 2977 op.Opcode == BO_Sub || op.Opcode == BO_SubAssign) && 2978 "Only fadd/fsub can be the root of an fmuladd."); 2979 2980 // Check whether this op is marked as fusable. 2981 if (!op.FPFeatures.allowFPContractWithinStatement()) 2982 return nullptr; 2983 2984 // We have a potentially fusable op. Look for a mul on one of the operands. 2985 // Also, make sure that the mul result isn't used directly. In that case, 2986 // there's no point creating a muladd operation. 2987 if (auto *LHSBinOp = dyn_cast<llvm::BinaryOperator>(op.LHS)) { 2988 if (LHSBinOp->getOpcode() == llvm::Instruction::FMul && 2989 LHSBinOp->use_empty()) 2990 return buildFMulAdd(LHSBinOp, op.RHS, CGF, Builder, false, isSub); 2991 } 2992 if (auto *RHSBinOp = dyn_cast<llvm::BinaryOperator>(op.RHS)) { 2993 if (RHSBinOp->getOpcode() == llvm::Instruction::FMul && 2994 RHSBinOp->use_empty()) 2995 return buildFMulAdd(RHSBinOp, op.LHS, CGF, Builder, isSub, false); 2996 } 2997 2998 return nullptr; 2999 } 3000 3001 Value *ScalarExprEmitter::EmitAdd(const BinOpInfo &op) { 3002 if (op.LHS->getType()->isPointerTy() || 3003 op.RHS->getType()->isPointerTy()) 3004 return emitPointerArithmetic(CGF, op, CodeGenFunction::NotSubtraction); 3005 3006 if (op.Ty->isSignedIntegerOrEnumerationType()) { 3007 switch (CGF.getLangOpts().getSignedOverflowBehavior()) { 3008 case LangOptions::SOB_Defined: 3009 return Builder.CreateAdd(op.LHS, op.RHS, "add"); 3010 case LangOptions::SOB_Undefined: 3011 if (!CGF.SanOpts.has(SanitizerKind::SignedIntegerOverflow)) 3012 return Builder.CreateNSWAdd(op.LHS, op.RHS, "add"); 3013 // Fall through. 3014 case LangOptions::SOB_Trapping: 3015 if (CanElideOverflowCheck(CGF.getContext(), op)) 3016 return Builder.CreateNSWAdd(op.LHS, op.RHS, "add"); 3017 return EmitOverflowCheckedBinOp(op); 3018 } 3019 } 3020 3021 if (op.Ty->isUnsignedIntegerType() && 3022 CGF.SanOpts.has(SanitizerKind::UnsignedIntegerOverflow) && 3023 !CanElideOverflowCheck(CGF.getContext(), op)) 3024 return EmitOverflowCheckedBinOp(op); 3025 3026 if (op.LHS->getType()->isFPOrFPVectorTy()) { 3027 // Try to form an fmuladd. 3028 if (Value *FMulAdd = tryEmitFMulAdd(op, CGF, Builder)) 3029 return FMulAdd; 3030 3031 Value *V = Builder.CreateFAdd(op.LHS, op.RHS, "add"); 3032 return propagateFMFlags(V, op); 3033 } 3034 3035 return Builder.CreateAdd(op.LHS, op.RHS, "add"); 3036 } 3037 3038 Value *ScalarExprEmitter::EmitSub(const BinOpInfo &op) { 3039 // The LHS is always a pointer if either side is. 3040 if (!op.LHS->getType()->isPointerTy()) { 3041 if (op.Ty->isSignedIntegerOrEnumerationType()) { 3042 switch (CGF.getLangOpts().getSignedOverflowBehavior()) { 3043 case LangOptions::SOB_Defined: 3044 return Builder.CreateSub(op.LHS, op.RHS, "sub"); 3045 case LangOptions::SOB_Undefined: 3046 if (!CGF.SanOpts.has(SanitizerKind::SignedIntegerOverflow)) 3047 return Builder.CreateNSWSub(op.LHS, op.RHS, "sub"); 3048 // Fall through. 3049 case LangOptions::SOB_Trapping: 3050 if (CanElideOverflowCheck(CGF.getContext(), op)) 3051 return Builder.CreateNSWSub(op.LHS, op.RHS, "sub"); 3052 return EmitOverflowCheckedBinOp(op); 3053 } 3054 } 3055 3056 if (op.Ty->isUnsignedIntegerType() && 3057 CGF.SanOpts.has(SanitizerKind::UnsignedIntegerOverflow) && 3058 !CanElideOverflowCheck(CGF.getContext(), op)) 3059 return EmitOverflowCheckedBinOp(op); 3060 3061 if (op.LHS->getType()->isFPOrFPVectorTy()) { 3062 // Try to form an fmuladd. 3063 if (Value *FMulAdd = tryEmitFMulAdd(op, CGF, Builder, true)) 3064 return FMulAdd; 3065 Value *V = Builder.CreateFSub(op.LHS, op.RHS, "sub"); 3066 return propagateFMFlags(V, op); 3067 } 3068 3069 return Builder.CreateSub(op.LHS, op.RHS, "sub"); 3070 } 3071 3072 // If the RHS is not a pointer, then we have normal pointer 3073 // arithmetic. 3074 if (!op.RHS->getType()->isPointerTy()) 3075 return emitPointerArithmetic(CGF, op, CodeGenFunction::IsSubtraction); 3076 3077 // Otherwise, this is a pointer subtraction. 3078 3079 // Do the raw subtraction part. 3080 llvm::Value *LHS 3081 = Builder.CreatePtrToInt(op.LHS, CGF.PtrDiffTy, "sub.ptr.lhs.cast"); 3082 llvm::Value *RHS 3083 = Builder.CreatePtrToInt(op.RHS, CGF.PtrDiffTy, "sub.ptr.rhs.cast"); 3084 Value *diffInChars = Builder.CreateSub(LHS, RHS, "sub.ptr.sub"); 3085 3086 // Okay, figure out the element size. 3087 const BinaryOperator *expr = cast<BinaryOperator>(op.E); 3088 QualType elementType = expr->getLHS()->getType()->getPointeeType(); 3089 3090 llvm::Value *divisor = nullptr; 3091 3092 // For a variable-length array, this is going to be non-constant. 3093 if (const VariableArrayType *vla 3094 = CGF.getContext().getAsVariableArrayType(elementType)) { 3095 auto VlaSize = CGF.getVLASize(vla); 3096 elementType = VlaSize.Type; 3097 divisor = VlaSize.NumElts; 3098 3099 // Scale the number of non-VLA elements by the non-VLA element size. 3100 CharUnits eltSize = CGF.getContext().getTypeSizeInChars(elementType); 3101 if (!eltSize.isOne()) 3102 divisor = CGF.Builder.CreateNUWMul(CGF.CGM.getSize(eltSize), divisor); 3103 3104 // For everything elese, we can just compute it, safe in the 3105 // assumption that Sema won't let anything through that we can't 3106 // safely compute the size of. 3107 } else { 3108 CharUnits elementSize; 3109 // Handle GCC extension for pointer arithmetic on void* and 3110 // function pointer types. 3111 if (elementType->isVoidType() || elementType->isFunctionType()) 3112 elementSize = CharUnits::One(); 3113 else 3114 elementSize = CGF.getContext().getTypeSizeInChars(elementType); 3115 3116 // Don't even emit the divide for element size of 1. 3117 if (elementSize.isOne()) 3118 return diffInChars; 3119 3120 divisor = CGF.CGM.getSize(elementSize); 3121 } 3122 3123 // Otherwise, do a full sdiv. This uses the "exact" form of sdiv, since 3124 // pointer difference in C is only defined in the case where both operands 3125 // are pointing to elements of an array. 3126 return Builder.CreateExactSDiv(diffInChars, divisor, "sub.ptr.div"); 3127 } 3128 3129 Value *ScalarExprEmitter::GetWidthMinusOneValue(Value* LHS,Value* RHS) { 3130 llvm::IntegerType *Ty; 3131 if (llvm::VectorType *VT = dyn_cast<llvm::VectorType>(LHS->getType())) 3132 Ty = cast<llvm::IntegerType>(VT->getElementType()); 3133 else 3134 Ty = cast<llvm::IntegerType>(LHS->getType()); 3135 return llvm::ConstantInt::get(RHS->getType(), Ty->getBitWidth() - 1); 3136 } 3137 3138 Value *ScalarExprEmitter::EmitShl(const BinOpInfo &Ops) { 3139 // LLVM requires the LHS and RHS to be the same type: promote or truncate the 3140 // RHS to the same size as the LHS. 3141 Value *RHS = Ops.RHS; 3142 if (Ops.LHS->getType() != RHS->getType()) 3143 RHS = Builder.CreateIntCast(RHS, Ops.LHS->getType(), false, "sh_prom"); 3144 3145 bool SanitizeBase = CGF.SanOpts.has(SanitizerKind::ShiftBase) && 3146 Ops.Ty->hasSignedIntegerRepresentation() && 3147 !CGF.getLangOpts().isSignedOverflowDefined(); 3148 bool SanitizeExponent = CGF.SanOpts.has(SanitizerKind::ShiftExponent); 3149 // OpenCL 6.3j: shift values are effectively % word size of LHS. 3150 if (CGF.getLangOpts().OpenCL) 3151 RHS = 3152 Builder.CreateAnd(RHS, GetWidthMinusOneValue(Ops.LHS, RHS), "shl.mask"); 3153 else if ((SanitizeBase || SanitizeExponent) && 3154 isa<llvm::IntegerType>(Ops.LHS->getType())) { 3155 CodeGenFunction::SanitizerScope SanScope(&CGF); 3156 SmallVector<std::pair<Value *, SanitizerMask>, 2> Checks; 3157 llvm::Value *WidthMinusOne = GetWidthMinusOneValue(Ops.LHS, Ops.RHS); 3158 llvm::Value *ValidExponent = Builder.CreateICmpULE(Ops.RHS, WidthMinusOne); 3159 3160 if (SanitizeExponent) { 3161 Checks.push_back( 3162 std::make_pair(ValidExponent, SanitizerKind::ShiftExponent)); 3163 } 3164 3165 if (SanitizeBase) { 3166 // Check whether we are shifting any non-zero bits off the top of the 3167 // integer. We only emit this check if exponent is valid - otherwise 3168 // instructions below will have undefined behavior themselves. 3169 llvm::BasicBlock *Orig = Builder.GetInsertBlock(); 3170 llvm::BasicBlock *Cont = CGF.createBasicBlock("cont"); 3171 llvm::BasicBlock *CheckShiftBase = CGF.createBasicBlock("check"); 3172 Builder.CreateCondBr(ValidExponent, CheckShiftBase, Cont); 3173 llvm::Value *PromotedWidthMinusOne = 3174 (RHS == Ops.RHS) ? WidthMinusOne 3175 : GetWidthMinusOneValue(Ops.LHS, RHS); 3176 CGF.EmitBlock(CheckShiftBase); 3177 llvm::Value *BitsShiftedOff = Builder.CreateLShr( 3178 Ops.LHS, Builder.CreateSub(PromotedWidthMinusOne, RHS, "shl.zeros", 3179 /*NUW*/ true, /*NSW*/ true), 3180 "shl.check"); 3181 if (CGF.getLangOpts().CPlusPlus) { 3182 // In C99, we are not permitted to shift a 1 bit into the sign bit. 3183 // Under C++11's rules, shifting a 1 bit into the sign bit is 3184 // OK, but shifting a 1 bit out of it is not. (C89 and C++03 don't 3185 // define signed left shifts, so we use the C99 and C++11 rules there). 3186 llvm::Value *One = llvm::ConstantInt::get(BitsShiftedOff->getType(), 1); 3187 BitsShiftedOff = Builder.CreateLShr(BitsShiftedOff, One); 3188 } 3189 llvm::Value *Zero = llvm::ConstantInt::get(BitsShiftedOff->getType(), 0); 3190 llvm::Value *ValidBase = Builder.CreateICmpEQ(BitsShiftedOff, Zero); 3191 CGF.EmitBlock(Cont); 3192 llvm::PHINode *BaseCheck = Builder.CreatePHI(ValidBase->getType(), 2); 3193 BaseCheck->addIncoming(Builder.getTrue(), Orig); 3194 BaseCheck->addIncoming(ValidBase, CheckShiftBase); 3195 Checks.push_back(std::make_pair(BaseCheck, SanitizerKind::ShiftBase)); 3196 } 3197 3198 assert(!Checks.empty()); 3199 EmitBinOpCheck(Checks, Ops); 3200 } 3201 3202 return Builder.CreateShl(Ops.LHS, RHS, "shl"); 3203 } 3204 3205 Value *ScalarExprEmitter::EmitShr(const BinOpInfo &Ops) { 3206 // LLVM requires the LHS and RHS to be the same type: promote or truncate the 3207 // RHS to the same size as the LHS. 3208 Value *RHS = Ops.RHS; 3209 if (Ops.LHS->getType() != RHS->getType()) 3210 RHS = Builder.CreateIntCast(RHS, Ops.LHS->getType(), false, "sh_prom"); 3211 3212 // OpenCL 6.3j: shift values are effectively % word size of LHS. 3213 if (CGF.getLangOpts().OpenCL) 3214 RHS = 3215 Builder.CreateAnd(RHS, GetWidthMinusOneValue(Ops.LHS, RHS), "shr.mask"); 3216 else if (CGF.SanOpts.has(SanitizerKind::ShiftExponent) && 3217 isa<llvm::IntegerType>(Ops.LHS->getType())) { 3218 CodeGenFunction::SanitizerScope SanScope(&CGF); 3219 llvm::Value *Valid = 3220 Builder.CreateICmpULE(RHS, GetWidthMinusOneValue(Ops.LHS, RHS)); 3221 EmitBinOpCheck(std::make_pair(Valid, SanitizerKind::ShiftExponent), Ops); 3222 } 3223 3224 if (Ops.Ty->hasUnsignedIntegerRepresentation()) 3225 return Builder.CreateLShr(Ops.LHS, RHS, "shr"); 3226 return Builder.CreateAShr(Ops.LHS, RHS, "shr"); 3227 } 3228 3229 enum IntrinsicType { VCMPEQ, VCMPGT }; 3230 // return corresponding comparison intrinsic for given vector type 3231 static llvm::Intrinsic::ID GetIntrinsic(IntrinsicType IT, 3232 BuiltinType::Kind ElemKind) { 3233 switch (ElemKind) { 3234 default: llvm_unreachable("unexpected element type"); 3235 case BuiltinType::Char_U: 3236 case BuiltinType::UChar: 3237 return (IT == VCMPEQ) ? llvm::Intrinsic::ppc_altivec_vcmpequb_p : 3238 llvm::Intrinsic::ppc_altivec_vcmpgtub_p; 3239 case BuiltinType::Char_S: 3240 case BuiltinType::SChar: 3241 return (IT == VCMPEQ) ? llvm::Intrinsic::ppc_altivec_vcmpequb_p : 3242 llvm::Intrinsic::ppc_altivec_vcmpgtsb_p; 3243 case BuiltinType::UShort: 3244 return (IT == VCMPEQ) ? llvm::Intrinsic::ppc_altivec_vcmpequh_p : 3245 llvm::Intrinsic::ppc_altivec_vcmpgtuh_p; 3246 case BuiltinType::Short: 3247 return (IT == VCMPEQ) ? llvm::Intrinsic::ppc_altivec_vcmpequh_p : 3248 llvm::Intrinsic::ppc_altivec_vcmpgtsh_p; 3249 case BuiltinType::UInt: 3250 return (IT == VCMPEQ) ? llvm::Intrinsic::ppc_altivec_vcmpequw_p : 3251 llvm::Intrinsic::ppc_altivec_vcmpgtuw_p; 3252 case BuiltinType::Int: 3253 return (IT == VCMPEQ) ? llvm::Intrinsic::ppc_altivec_vcmpequw_p : 3254 llvm::Intrinsic::ppc_altivec_vcmpgtsw_p; 3255 case BuiltinType::ULong: 3256 case BuiltinType::ULongLong: 3257 return (IT == VCMPEQ) ? llvm::Intrinsic::ppc_altivec_vcmpequd_p : 3258 llvm::Intrinsic::ppc_altivec_vcmpgtud_p; 3259 case BuiltinType::Long: 3260 case BuiltinType::LongLong: 3261 return (IT == VCMPEQ) ? llvm::Intrinsic::ppc_altivec_vcmpequd_p : 3262 llvm::Intrinsic::ppc_altivec_vcmpgtsd_p; 3263 case BuiltinType::Float: 3264 return (IT == VCMPEQ) ? llvm::Intrinsic::ppc_altivec_vcmpeqfp_p : 3265 llvm::Intrinsic::ppc_altivec_vcmpgtfp_p; 3266 case BuiltinType::Double: 3267 return (IT == VCMPEQ) ? llvm::Intrinsic::ppc_vsx_xvcmpeqdp_p : 3268 llvm::Intrinsic::ppc_vsx_xvcmpgtdp_p; 3269 } 3270 } 3271 3272 Value *ScalarExprEmitter::EmitCompare(const BinaryOperator *E, 3273 llvm::CmpInst::Predicate UICmpOpc, 3274 llvm::CmpInst::Predicate SICmpOpc, 3275 llvm::CmpInst::Predicate FCmpOpc) { 3276 TestAndClearIgnoreResultAssign(); 3277 Value *Result; 3278 QualType LHSTy = E->getLHS()->getType(); 3279 QualType RHSTy = E->getRHS()->getType(); 3280 if (const MemberPointerType *MPT = LHSTy->getAs<MemberPointerType>()) { 3281 assert(E->getOpcode() == BO_EQ || 3282 E->getOpcode() == BO_NE); 3283 Value *LHS = CGF.EmitScalarExpr(E->getLHS()); 3284 Value *RHS = CGF.EmitScalarExpr(E->getRHS()); 3285 Result = CGF.CGM.getCXXABI().EmitMemberPointerComparison( 3286 CGF, LHS, RHS, MPT, E->getOpcode() == BO_NE); 3287 } else if (!LHSTy->isAnyComplexType() && !RHSTy->isAnyComplexType()) { 3288 Value *LHS = Visit(E->getLHS()); 3289 Value *RHS = Visit(E->getRHS()); 3290 3291 // If AltiVec, the comparison results in a numeric type, so we use 3292 // intrinsics comparing vectors and giving 0 or 1 as a result 3293 if (LHSTy->isVectorType() && !E->getType()->isVectorType()) { 3294 // constants for mapping CR6 register bits to predicate result 3295 enum { CR6_EQ=0, CR6_EQ_REV, CR6_LT, CR6_LT_REV } CR6; 3296 3297 llvm::Intrinsic::ID ID = llvm::Intrinsic::not_intrinsic; 3298 3299 // in several cases vector arguments order will be reversed 3300 Value *FirstVecArg = LHS, 3301 *SecondVecArg = RHS; 3302 3303 QualType ElTy = LHSTy->getAs<VectorType>()->getElementType(); 3304 const BuiltinType *BTy = ElTy->getAs<BuiltinType>(); 3305 BuiltinType::Kind ElementKind = BTy->getKind(); 3306 3307 switch(E->getOpcode()) { 3308 default: llvm_unreachable("is not a comparison operation"); 3309 case BO_EQ: 3310 CR6 = CR6_LT; 3311 ID = GetIntrinsic(VCMPEQ, ElementKind); 3312 break; 3313 case BO_NE: 3314 CR6 = CR6_EQ; 3315 ID = GetIntrinsic(VCMPEQ, ElementKind); 3316 break; 3317 case BO_LT: 3318 CR6 = CR6_LT; 3319 ID = GetIntrinsic(VCMPGT, ElementKind); 3320 std::swap(FirstVecArg, SecondVecArg); 3321 break; 3322 case BO_GT: 3323 CR6 = CR6_LT; 3324 ID = GetIntrinsic(VCMPGT, ElementKind); 3325 break; 3326 case BO_LE: 3327 if (ElementKind == BuiltinType::Float) { 3328 CR6 = CR6_LT; 3329 ID = llvm::Intrinsic::ppc_altivec_vcmpgefp_p; 3330 std::swap(FirstVecArg, SecondVecArg); 3331 } 3332 else { 3333 CR6 = CR6_EQ; 3334 ID = GetIntrinsic(VCMPGT, ElementKind); 3335 } 3336 break; 3337 case BO_GE: 3338 if (ElementKind == BuiltinType::Float) { 3339 CR6 = CR6_LT; 3340 ID = llvm::Intrinsic::ppc_altivec_vcmpgefp_p; 3341 } 3342 else { 3343 CR6 = CR6_EQ; 3344 ID = GetIntrinsic(VCMPGT, ElementKind); 3345 std::swap(FirstVecArg, SecondVecArg); 3346 } 3347 break; 3348 } 3349 3350 Value *CR6Param = Builder.getInt32(CR6); 3351 llvm::Function *F = CGF.CGM.getIntrinsic(ID); 3352 Result = Builder.CreateCall(F, {CR6Param, FirstVecArg, SecondVecArg}); 3353 3354 // The result type of intrinsic may not be same as E->getType(). 3355 // If E->getType() is not BoolTy, EmitScalarConversion will do the 3356 // conversion work. If E->getType() is BoolTy, EmitScalarConversion will 3357 // do nothing, if ResultTy is not i1 at the same time, it will cause 3358 // crash later. 3359 llvm::IntegerType *ResultTy = cast<llvm::IntegerType>(Result->getType()); 3360 if (ResultTy->getBitWidth() > 1 && 3361 E->getType() == CGF.getContext().BoolTy) 3362 Result = Builder.CreateTrunc(Result, Builder.getInt1Ty()); 3363 return EmitScalarConversion(Result, CGF.getContext().BoolTy, E->getType(), 3364 E->getExprLoc()); 3365 } 3366 3367 if (LHS->getType()->isFPOrFPVectorTy()) { 3368 Result = Builder.CreateFCmp(FCmpOpc, LHS, RHS, "cmp"); 3369 } else if (LHSTy->hasSignedIntegerRepresentation()) { 3370 Result = Builder.CreateICmp(SICmpOpc, LHS, RHS, "cmp"); 3371 } else { 3372 // Unsigned integers and pointers. 3373 3374 if (CGF.CGM.getCodeGenOpts().StrictVTablePointers && 3375 !isa<llvm::ConstantPointerNull>(LHS) && 3376 !isa<llvm::ConstantPointerNull>(RHS)) { 3377 3378 // Dynamic information is required to be stripped for comparisons, 3379 // because it could leak the dynamic information. Based on comparisons 3380 // of pointers to dynamic objects, the optimizer can replace one pointer 3381 // with another, which might be incorrect in presence of invariant 3382 // groups. Comparison with null is safe because null does not carry any 3383 // dynamic information. 3384 if (LHSTy.mayBeDynamicClass()) 3385 LHS = Builder.CreateStripInvariantGroup(LHS); 3386 if (RHSTy.mayBeDynamicClass()) 3387 RHS = Builder.CreateStripInvariantGroup(RHS); 3388 } 3389 3390 Result = Builder.CreateICmp(UICmpOpc, LHS, RHS, "cmp"); 3391 } 3392 3393 // If this is a vector comparison, sign extend the result to the appropriate 3394 // vector integer type and return it (don't convert to bool). 3395 if (LHSTy->isVectorType()) 3396 return Builder.CreateSExt(Result, ConvertType(E->getType()), "sext"); 3397 3398 } else { 3399 // Complex Comparison: can only be an equality comparison. 3400 CodeGenFunction::ComplexPairTy LHS, RHS; 3401 QualType CETy; 3402 if (auto *CTy = LHSTy->getAs<ComplexType>()) { 3403 LHS = CGF.EmitComplexExpr(E->getLHS()); 3404 CETy = CTy->getElementType(); 3405 } else { 3406 LHS.first = Visit(E->getLHS()); 3407 LHS.second = llvm::Constant::getNullValue(LHS.first->getType()); 3408 CETy = LHSTy; 3409 } 3410 if (auto *CTy = RHSTy->getAs<ComplexType>()) { 3411 RHS = CGF.EmitComplexExpr(E->getRHS()); 3412 assert(CGF.getContext().hasSameUnqualifiedType(CETy, 3413 CTy->getElementType()) && 3414 "The element types must always match."); 3415 (void)CTy; 3416 } else { 3417 RHS.first = Visit(E->getRHS()); 3418 RHS.second = llvm::Constant::getNullValue(RHS.first->getType()); 3419 assert(CGF.getContext().hasSameUnqualifiedType(CETy, RHSTy) && 3420 "The element types must always match."); 3421 } 3422 3423 Value *ResultR, *ResultI; 3424 if (CETy->isRealFloatingType()) { 3425 ResultR = Builder.CreateFCmp(FCmpOpc, LHS.first, RHS.first, "cmp.r"); 3426 ResultI = Builder.CreateFCmp(FCmpOpc, LHS.second, RHS.second, "cmp.i"); 3427 } else { 3428 // Complex comparisons can only be equality comparisons. As such, signed 3429 // and unsigned opcodes are the same. 3430 ResultR = Builder.CreateICmp(UICmpOpc, LHS.first, RHS.first, "cmp.r"); 3431 ResultI = Builder.CreateICmp(UICmpOpc, LHS.second, RHS.second, "cmp.i"); 3432 } 3433 3434 if (E->getOpcode() == BO_EQ) { 3435 Result = Builder.CreateAnd(ResultR, ResultI, "and.ri"); 3436 } else { 3437 assert(E->getOpcode() == BO_NE && 3438 "Complex comparison other than == or != ?"); 3439 Result = Builder.CreateOr(ResultR, ResultI, "or.ri"); 3440 } 3441 } 3442 3443 return EmitScalarConversion(Result, CGF.getContext().BoolTy, E->getType(), 3444 E->getExprLoc()); 3445 } 3446 3447 Value *ScalarExprEmitter::VisitBinAssign(const BinaryOperator *E) { 3448 bool Ignore = TestAndClearIgnoreResultAssign(); 3449 3450 Value *RHS; 3451 LValue LHS; 3452 3453 switch (E->getLHS()->getType().getObjCLifetime()) { 3454 case Qualifiers::OCL_Strong: 3455 std::tie(LHS, RHS) = CGF.EmitARCStoreStrong(E, Ignore); 3456 break; 3457 3458 case Qualifiers::OCL_Autoreleasing: 3459 std::tie(LHS, RHS) = CGF.EmitARCStoreAutoreleasing(E); 3460 break; 3461 3462 case Qualifiers::OCL_ExplicitNone: 3463 std::tie(LHS, RHS) = CGF.EmitARCStoreUnsafeUnretained(E, Ignore); 3464 break; 3465 3466 case Qualifiers::OCL_Weak: 3467 RHS = Visit(E->getRHS()); 3468 LHS = EmitCheckedLValue(E->getLHS(), CodeGenFunction::TCK_Store); 3469 RHS = CGF.EmitARCStoreWeak(LHS.getAddress(), RHS, Ignore); 3470 break; 3471 3472 case Qualifiers::OCL_None: 3473 // __block variables need to have the rhs evaluated first, plus 3474 // this should improve codegen just a little. 3475 RHS = Visit(E->getRHS()); 3476 LHS = EmitCheckedLValue(E->getLHS(), CodeGenFunction::TCK_Store); 3477 3478 // Store the value into the LHS. Bit-fields are handled specially 3479 // because the result is altered by the store, i.e., [C99 6.5.16p1] 3480 // 'An assignment expression has the value of the left operand after 3481 // the assignment...'. 3482 if (LHS.isBitField()) { 3483 CGF.EmitStoreThroughBitfieldLValue(RValue::get(RHS), LHS, &RHS); 3484 } else { 3485 CGF.EmitNullabilityCheck(LHS, RHS, E->getExprLoc()); 3486 CGF.EmitStoreThroughLValue(RValue::get(RHS), LHS); 3487 } 3488 } 3489 3490 // If the result is clearly ignored, return now. 3491 if (Ignore) 3492 return nullptr; 3493 3494 // The result of an assignment in C is the assigned r-value. 3495 if (!CGF.getLangOpts().CPlusPlus) 3496 return RHS; 3497 3498 // If the lvalue is non-volatile, return the computed value of the assignment. 3499 if (!LHS.isVolatileQualified()) 3500 return RHS; 3501 3502 // Otherwise, reload the value. 3503 return EmitLoadOfLValue(LHS, E->getExprLoc()); 3504 } 3505 3506 Value *ScalarExprEmitter::VisitBinLAnd(const BinaryOperator *E) { 3507 // Perform vector logical and on comparisons with zero vectors. 3508 if (E->getType()->isVectorType()) { 3509 CGF.incrementProfileCounter(E); 3510 3511 Value *LHS = Visit(E->getLHS()); 3512 Value *RHS = Visit(E->getRHS()); 3513 Value *Zero = llvm::ConstantAggregateZero::get(LHS->getType()); 3514 if (LHS->getType()->isFPOrFPVectorTy()) { 3515 LHS = Builder.CreateFCmp(llvm::CmpInst::FCMP_UNE, LHS, Zero, "cmp"); 3516 RHS = Builder.CreateFCmp(llvm::CmpInst::FCMP_UNE, RHS, Zero, "cmp"); 3517 } else { 3518 LHS = Builder.CreateICmp(llvm::CmpInst::ICMP_NE, LHS, Zero, "cmp"); 3519 RHS = Builder.CreateICmp(llvm::CmpInst::ICMP_NE, RHS, Zero, "cmp"); 3520 } 3521 Value *And = Builder.CreateAnd(LHS, RHS); 3522 return Builder.CreateSExt(And, ConvertType(E->getType()), "sext"); 3523 } 3524 3525 llvm::Type *ResTy = ConvertType(E->getType()); 3526 3527 // If we have 0 && RHS, see if we can elide RHS, if so, just return 0. 3528 // If we have 1 && X, just emit X without inserting the control flow. 3529 bool LHSCondVal; 3530 if (CGF.ConstantFoldsToSimpleInteger(E->getLHS(), LHSCondVal)) { 3531 if (LHSCondVal) { // If we have 1 && X, just emit X. 3532 CGF.incrementProfileCounter(E); 3533 3534 Value *RHSCond = CGF.EvaluateExprAsBool(E->getRHS()); 3535 // ZExt result to int or bool. 3536 return Builder.CreateZExtOrBitCast(RHSCond, ResTy, "land.ext"); 3537 } 3538 3539 // 0 && RHS: If it is safe, just elide the RHS, and return 0/false. 3540 if (!CGF.ContainsLabel(E->getRHS())) 3541 return llvm::Constant::getNullValue(ResTy); 3542 } 3543 3544 llvm::BasicBlock *ContBlock = CGF.createBasicBlock("land.end"); 3545 llvm::BasicBlock *RHSBlock = CGF.createBasicBlock("land.rhs"); 3546 3547 CodeGenFunction::ConditionalEvaluation eval(CGF); 3548 3549 // Branch on the LHS first. If it is false, go to the failure (cont) block. 3550 CGF.EmitBranchOnBoolExpr(E->getLHS(), RHSBlock, ContBlock, 3551 CGF.getProfileCount(E->getRHS())); 3552 3553 // Any edges into the ContBlock are now from an (indeterminate number of) 3554 // edges from this first condition. All of these values will be false. Start 3555 // setting up the PHI node in the Cont Block for this. 3556 llvm::PHINode *PN = llvm::PHINode::Create(llvm::Type::getInt1Ty(VMContext), 2, 3557 "", ContBlock); 3558 for (llvm::pred_iterator PI = pred_begin(ContBlock), PE = pred_end(ContBlock); 3559 PI != PE; ++PI) 3560 PN->addIncoming(llvm::ConstantInt::getFalse(VMContext), *PI); 3561 3562 eval.begin(CGF); 3563 CGF.EmitBlock(RHSBlock); 3564 CGF.incrementProfileCounter(E); 3565 Value *RHSCond = CGF.EvaluateExprAsBool(E->getRHS()); 3566 eval.end(CGF); 3567 3568 // Reaquire the RHS block, as there may be subblocks inserted. 3569 RHSBlock = Builder.GetInsertBlock(); 3570 3571 // Emit an unconditional branch from this block to ContBlock. 3572 { 3573 // There is no need to emit line number for unconditional branch. 3574 auto NL = ApplyDebugLocation::CreateEmpty(CGF); 3575 CGF.EmitBlock(ContBlock); 3576 } 3577 // Insert an entry into the phi node for the edge with the value of RHSCond. 3578 PN->addIncoming(RHSCond, RHSBlock); 3579 3580 // Artificial location to preserve the scope information 3581 { 3582 auto NL = ApplyDebugLocation::CreateArtificial(CGF); 3583 PN->setDebugLoc(Builder.getCurrentDebugLocation()); 3584 } 3585 3586 // ZExt result to int. 3587 return Builder.CreateZExtOrBitCast(PN, ResTy, "land.ext"); 3588 } 3589 3590 Value *ScalarExprEmitter::VisitBinLOr(const BinaryOperator *E) { 3591 // Perform vector logical or on comparisons with zero vectors. 3592 if (E->getType()->isVectorType()) { 3593 CGF.incrementProfileCounter(E); 3594 3595 Value *LHS = Visit(E->getLHS()); 3596 Value *RHS = Visit(E->getRHS()); 3597 Value *Zero = llvm::ConstantAggregateZero::get(LHS->getType()); 3598 if (LHS->getType()->isFPOrFPVectorTy()) { 3599 LHS = Builder.CreateFCmp(llvm::CmpInst::FCMP_UNE, LHS, Zero, "cmp"); 3600 RHS = Builder.CreateFCmp(llvm::CmpInst::FCMP_UNE, RHS, Zero, "cmp"); 3601 } else { 3602 LHS = Builder.CreateICmp(llvm::CmpInst::ICMP_NE, LHS, Zero, "cmp"); 3603 RHS = Builder.CreateICmp(llvm::CmpInst::ICMP_NE, RHS, Zero, "cmp"); 3604 } 3605 Value *Or = Builder.CreateOr(LHS, RHS); 3606 return Builder.CreateSExt(Or, ConvertType(E->getType()), "sext"); 3607 } 3608 3609 llvm::Type *ResTy = ConvertType(E->getType()); 3610 3611 // If we have 1 || RHS, see if we can elide RHS, if so, just return 1. 3612 // If we have 0 || X, just emit X without inserting the control flow. 3613 bool LHSCondVal; 3614 if (CGF.ConstantFoldsToSimpleInteger(E->getLHS(), LHSCondVal)) { 3615 if (!LHSCondVal) { // If we have 0 || X, just emit X. 3616 CGF.incrementProfileCounter(E); 3617 3618 Value *RHSCond = CGF.EvaluateExprAsBool(E->getRHS()); 3619 // ZExt result to int or bool. 3620 return Builder.CreateZExtOrBitCast(RHSCond, ResTy, "lor.ext"); 3621 } 3622 3623 // 1 || RHS: If it is safe, just elide the RHS, and return 1/true. 3624 if (!CGF.ContainsLabel(E->getRHS())) 3625 return llvm::ConstantInt::get(ResTy, 1); 3626 } 3627 3628 llvm::BasicBlock *ContBlock = CGF.createBasicBlock("lor.end"); 3629 llvm::BasicBlock *RHSBlock = CGF.createBasicBlock("lor.rhs"); 3630 3631 CodeGenFunction::ConditionalEvaluation eval(CGF); 3632 3633 // Branch on the LHS first. If it is true, go to the success (cont) block. 3634 CGF.EmitBranchOnBoolExpr(E->getLHS(), ContBlock, RHSBlock, 3635 CGF.getCurrentProfileCount() - 3636 CGF.getProfileCount(E->getRHS())); 3637 3638 // Any edges into the ContBlock are now from an (indeterminate number of) 3639 // edges from this first condition. All of these values will be true. Start 3640 // setting up the PHI node in the Cont Block for this. 3641 llvm::PHINode *PN = llvm::PHINode::Create(llvm::Type::getInt1Ty(VMContext), 2, 3642 "", ContBlock); 3643 for (llvm::pred_iterator PI = pred_begin(ContBlock), PE = pred_end(ContBlock); 3644 PI != PE; ++PI) 3645 PN->addIncoming(llvm::ConstantInt::getTrue(VMContext), *PI); 3646 3647 eval.begin(CGF); 3648 3649 // Emit the RHS condition as a bool value. 3650 CGF.EmitBlock(RHSBlock); 3651 CGF.incrementProfileCounter(E); 3652 Value *RHSCond = CGF.EvaluateExprAsBool(E->getRHS()); 3653 3654 eval.end(CGF); 3655 3656 // Reaquire the RHS block, as there may be subblocks inserted. 3657 RHSBlock = Builder.GetInsertBlock(); 3658 3659 // Emit an unconditional branch from this block to ContBlock. Insert an entry 3660 // into the phi node for the edge with the value of RHSCond. 3661 CGF.EmitBlock(ContBlock); 3662 PN->addIncoming(RHSCond, RHSBlock); 3663 3664 // ZExt result to int. 3665 return Builder.CreateZExtOrBitCast(PN, ResTy, "lor.ext"); 3666 } 3667 3668 Value *ScalarExprEmitter::VisitBinComma(const BinaryOperator *E) { 3669 CGF.EmitIgnoredExpr(E->getLHS()); 3670 CGF.EnsureInsertPoint(); 3671 return Visit(E->getRHS()); 3672 } 3673 3674 //===----------------------------------------------------------------------===// 3675 // Other Operators 3676 //===----------------------------------------------------------------------===// 3677 3678 /// isCheapEnoughToEvaluateUnconditionally - Return true if the specified 3679 /// expression is cheap enough and side-effect-free enough to evaluate 3680 /// unconditionally instead of conditionally. This is used to convert control 3681 /// flow into selects in some cases. 3682 static bool isCheapEnoughToEvaluateUnconditionally(const Expr *E, 3683 CodeGenFunction &CGF) { 3684 // Anything that is an integer or floating point constant is fine. 3685 return E->IgnoreParens()->isEvaluatable(CGF.getContext()); 3686 3687 // Even non-volatile automatic variables can't be evaluated unconditionally. 3688 // Referencing a thread_local may cause non-trivial initialization work to 3689 // occur. If we're inside a lambda and one of the variables is from the scope 3690 // outside the lambda, that function may have returned already. Reading its 3691 // locals is a bad idea. Also, these reads may introduce races there didn't 3692 // exist in the source-level program. 3693 } 3694 3695 3696 Value *ScalarExprEmitter:: 3697 VisitAbstractConditionalOperator(const AbstractConditionalOperator *E) { 3698 TestAndClearIgnoreResultAssign(); 3699 3700 // Bind the common expression if necessary. 3701 CodeGenFunction::OpaqueValueMapping binding(CGF, E); 3702 3703 Expr *condExpr = E->getCond(); 3704 Expr *lhsExpr = E->getTrueExpr(); 3705 Expr *rhsExpr = E->getFalseExpr(); 3706 3707 // If the condition constant folds and can be elided, try to avoid emitting 3708 // the condition and the dead arm. 3709 bool CondExprBool; 3710 if (CGF.ConstantFoldsToSimpleInteger(condExpr, CondExprBool)) { 3711 Expr *live = lhsExpr, *dead = rhsExpr; 3712 if (!CondExprBool) std::swap(live, dead); 3713 3714 // If the dead side doesn't have labels we need, just emit the Live part. 3715 if (!CGF.ContainsLabel(dead)) { 3716 if (CondExprBool) 3717 CGF.incrementProfileCounter(E); 3718 Value *Result = Visit(live); 3719 3720 // If the live part is a throw expression, it acts like it has a void 3721 // type, so evaluating it returns a null Value*. However, a conditional 3722 // with non-void type must return a non-null Value*. 3723 if (!Result && !E->getType()->isVoidType()) 3724 Result = llvm::UndefValue::get(CGF.ConvertType(E->getType())); 3725 3726 return Result; 3727 } 3728 } 3729 3730 // OpenCL: If the condition is a vector, we can treat this condition like 3731 // the select function. 3732 if (CGF.getLangOpts().OpenCL 3733 && condExpr->getType()->isVectorType()) { 3734 CGF.incrementProfileCounter(E); 3735 3736 llvm::Value *CondV = CGF.EmitScalarExpr(condExpr); 3737 llvm::Value *LHS = Visit(lhsExpr); 3738 llvm::Value *RHS = Visit(rhsExpr); 3739 3740 llvm::Type *condType = ConvertType(condExpr->getType()); 3741 llvm::VectorType *vecTy = cast<llvm::VectorType>(condType); 3742 3743 unsigned numElem = vecTy->getNumElements(); 3744 llvm::Type *elemType = vecTy->getElementType(); 3745 3746 llvm::Value *zeroVec = llvm::Constant::getNullValue(vecTy); 3747 llvm::Value *TestMSB = Builder.CreateICmpSLT(CondV, zeroVec); 3748 llvm::Value *tmp = Builder.CreateSExt(TestMSB, 3749 llvm::VectorType::get(elemType, 3750 numElem), 3751 "sext"); 3752 llvm::Value *tmp2 = Builder.CreateNot(tmp); 3753 3754 // Cast float to int to perform ANDs if necessary. 3755 llvm::Value *RHSTmp = RHS; 3756 llvm::Value *LHSTmp = LHS; 3757 bool wasCast = false; 3758 llvm::VectorType *rhsVTy = cast<llvm::VectorType>(RHS->getType()); 3759 if (rhsVTy->getElementType()->isFloatingPointTy()) { 3760 RHSTmp = Builder.CreateBitCast(RHS, tmp2->getType()); 3761 LHSTmp = Builder.CreateBitCast(LHS, tmp->getType()); 3762 wasCast = true; 3763 } 3764 3765 llvm::Value *tmp3 = Builder.CreateAnd(RHSTmp, tmp2); 3766 llvm::Value *tmp4 = Builder.CreateAnd(LHSTmp, tmp); 3767 llvm::Value *tmp5 = Builder.CreateOr(tmp3, tmp4, "cond"); 3768 if (wasCast) 3769 tmp5 = Builder.CreateBitCast(tmp5, RHS->getType()); 3770 3771 return tmp5; 3772 } 3773 3774 // If this is a really simple expression (like x ? 4 : 5), emit this as a 3775 // select instead of as control flow. We can only do this if it is cheap and 3776 // safe to evaluate the LHS and RHS unconditionally. 3777 if (isCheapEnoughToEvaluateUnconditionally(lhsExpr, CGF) && 3778 isCheapEnoughToEvaluateUnconditionally(rhsExpr, CGF)) { 3779 llvm::Value *CondV = CGF.EvaluateExprAsBool(condExpr); 3780 llvm::Value *StepV = Builder.CreateZExtOrBitCast(CondV, CGF.Int64Ty); 3781 3782 CGF.incrementProfileCounter(E, StepV); 3783 3784 llvm::Value *LHS = Visit(lhsExpr); 3785 llvm::Value *RHS = Visit(rhsExpr); 3786 if (!LHS) { 3787 // If the conditional has void type, make sure we return a null Value*. 3788 assert(!RHS && "LHS and RHS types must match"); 3789 return nullptr; 3790 } 3791 return Builder.CreateSelect(CondV, LHS, RHS, "cond"); 3792 } 3793 3794 llvm::BasicBlock *LHSBlock = CGF.createBasicBlock("cond.true"); 3795 llvm::BasicBlock *RHSBlock = CGF.createBasicBlock("cond.false"); 3796 llvm::BasicBlock *ContBlock = CGF.createBasicBlock("cond.end"); 3797 3798 CodeGenFunction::ConditionalEvaluation eval(CGF); 3799 CGF.EmitBranchOnBoolExpr(condExpr, LHSBlock, RHSBlock, 3800 CGF.getProfileCount(lhsExpr)); 3801 3802 CGF.EmitBlock(LHSBlock); 3803 CGF.incrementProfileCounter(E); 3804 eval.begin(CGF); 3805 Value *LHS = Visit(lhsExpr); 3806 eval.end(CGF); 3807 3808 LHSBlock = Builder.GetInsertBlock(); 3809 Builder.CreateBr(ContBlock); 3810 3811 CGF.EmitBlock(RHSBlock); 3812 eval.begin(CGF); 3813 Value *RHS = Visit(rhsExpr); 3814 eval.end(CGF); 3815 3816 RHSBlock = Builder.GetInsertBlock(); 3817 CGF.EmitBlock(ContBlock); 3818 3819 // If the LHS or RHS is a throw expression, it will be legitimately null. 3820 if (!LHS) 3821 return RHS; 3822 if (!RHS) 3823 return LHS; 3824 3825 // Create a PHI node for the real part. 3826 llvm::PHINode *PN = Builder.CreatePHI(LHS->getType(), 2, "cond"); 3827 PN->addIncoming(LHS, LHSBlock); 3828 PN->addIncoming(RHS, RHSBlock); 3829 return PN; 3830 } 3831 3832 Value *ScalarExprEmitter::VisitChooseExpr(ChooseExpr *E) { 3833 return Visit(E->getChosenSubExpr()); 3834 } 3835 3836 Value *ScalarExprEmitter::VisitVAArgExpr(VAArgExpr *VE) { 3837 QualType Ty = VE->getType(); 3838 3839 if (Ty->isVariablyModifiedType()) 3840 CGF.EmitVariablyModifiedType(Ty); 3841 3842 Address ArgValue = Address::invalid(); 3843 Address ArgPtr = CGF.EmitVAArg(VE, ArgValue); 3844 3845 llvm::Type *ArgTy = ConvertType(VE->getType()); 3846 3847 // If EmitVAArg fails, emit an error. 3848 if (!ArgPtr.isValid()) { 3849 CGF.ErrorUnsupported(VE, "va_arg expression"); 3850 return llvm::UndefValue::get(ArgTy); 3851 } 3852 3853 // FIXME Volatility. 3854 llvm::Value *Val = Builder.CreateLoad(ArgPtr); 3855 3856 // If EmitVAArg promoted the type, we must truncate it. 3857 if (ArgTy != Val->getType()) { 3858 if (ArgTy->isPointerTy() && !Val->getType()->isPointerTy()) 3859 Val = Builder.CreateIntToPtr(Val, ArgTy); 3860 else 3861 Val = Builder.CreateTrunc(Val, ArgTy); 3862 } 3863 3864 return Val; 3865 } 3866 3867 Value *ScalarExprEmitter::VisitBlockExpr(const BlockExpr *block) { 3868 return CGF.EmitBlockLiteral(block); 3869 } 3870 3871 // Convert a vec3 to vec4, or vice versa. 3872 static Value *ConvertVec3AndVec4(CGBuilderTy &Builder, CodeGenFunction &CGF, 3873 Value *Src, unsigned NumElementsDst) { 3874 llvm::Value *UnV = llvm::UndefValue::get(Src->getType()); 3875 SmallVector<llvm::Constant*, 4> Args; 3876 Args.push_back(Builder.getInt32(0)); 3877 Args.push_back(Builder.getInt32(1)); 3878 Args.push_back(Builder.getInt32(2)); 3879 if (NumElementsDst == 4) 3880 Args.push_back(llvm::UndefValue::get(CGF.Int32Ty)); 3881 llvm::Constant *Mask = llvm::ConstantVector::get(Args); 3882 return Builder.CreateShuffleVector(Src, UnV, Mask); 3883 } 3884 3885 // Create cast instructions for converting LLVM value \p Src to LLVM type \p 3886 // DstTy. \p Src has the same size as \p DstTy. Both are single value types 3887 // but could be scalar or vectors of different lengths, and either can be 3888 // pointer. 3889 // There are 4 cases: 3890 // 1. non-pointer -> non-pointer : needs 1 bitcast 3891 // 2. pointer -> pointer : needs 1 bitcast or addrspacecast 3892 // 3. pointer -> non-pointer 3893 // a) pointer -> intptr_t : needs 1 ptrtoint 3894 // b) pointer -> non-intptr_t : needs 1 ptrtoint then 1 bitcast 3895 // 4. non-pointer -> pointer 3896 // a) intptr_t -> pointer : needs 1 inttoptr 3897 // b) non-intptr_t -> pointer : needs 1 bitcast then 1 inttoptr 3898 // Note: for cases 3b and 4b two casts are required since LLVM casts do not 3899 // allow casting directly between pointer types and non-integer non-pointer 3900 // types. 3901 static Value *createCastsForTypeOfSameSize(CGBuilderTy &Builder, 3902 const llvm::DataLayout &DL, 3903 Value *Src, llvm::Type *DstTy, 3904 StringRef Name = "") { 3905 auto SrcTy = Src->getType(); 3906 3907 // Case 1. 3908 if (!SrcTy->isPointerTy() && !DstTy->isPointerTy()) 3909 return Builder.CreateBitCast(Src, DstTy, Name); 3910 3911 // Case 2. 3912 if (SrcTy->isPointerTy() && DstTy->isPointerTy()) 3913 return Builder.CreatePointerBitCastOrAddrSpaceCast(Src, DstTy, Name); 3914 3915 // Case 3. 3916 if (SrcTy->isPointerTy() && !DstTy->isPointerTy()) { 3917 // Case 3b. 3918 if (!DstTy->isIntegerTy()) 3919 Src = Builder.CreatePtrToInt(Src, DL.getIntPtrType(SrcTy)); 3920 // Cases 3a and 3b. 3921 return Builder.CreateBitOrPointerCast(Src, DstTy, Name); 3922 } 3923 3924 // Case 4b. 3925 if (!SrcTy->isIntegerTy()) 3926 Src = Builder.CreateBitCast(Src, DL.getIntPtrType(DstTy)); 3927 // Cases 4a and 4b. 3928 return Builder.CreateIntToPtr(Src, DstTy, Name); 3929 } 3930 3931 Value *ScalarExprEmitter::VisitAsTypeExpr(AsTypeExpr *E) { 3932 Value *Src = CGF.EmitScalarExpr(E->getSrcExpr()); 3933 llvm::Type *DstTy = ConvertType(E->getType()); 3934 3935 llvm::Type *SrcTy = Src->getType(); 3936 unsigned NumElementsSrc = isa<llvm::VectorType>(SrcTy) ? 3937 cast<llvm::VectorType>(SrcTy)->getNumElements() : 0; 3938 unsigned NumElementsDst = isa<llvm::VectorType>(DstTy) ? 3939 cast<llvm::VectorType>(DstTy)->getNumElements() : 0; 3940 3941 // Going from vec3 to non-vec3 is a special case and requires a shuffle 3942 // vector to get a vec4, then a bitcast if the target type is different. 3943 if (NumElementsSrc == 3 && NumElementsDst != 3) { 3944 Src = ConvertVec3AndVec4(Builder, CGF, Src, 4); 3945 3946 if (!CGF.CGM.getCodeGenOpts().PreserveVec3Type) { 3947 Src = createCastsForTypeOfSameSize(Builder, CGF.CGM.getDataLayout(), Src, 3948 DstTy); 3949 } 3950 3951 Src->setName("astype"); 3952 return Src; 3953 } 3954 3955 // Going from non-vec3 to vec3 is a special case and requires a bitcast 3956 // to vec4 if the original type is not vec4, then a shuffle vector to 3957 // get a vec3. 3958 if (NumElementsSrc != 3 && NumElementsDst == 3) { 3959 if (!CGF.CGM.getCodeGenOpts().PreserveVec3Type) { 3960 auto Vec4Ty = llvm::VectorType::get(DstTy->getVectorElementType(), 4); 3961 Src = createCastsForTypeOfSameSize(Builder, CGF.CGM.getDataLayout(), Src, 3962 Vec4Ty); 3963 } 3964 3965 Src = ConvertVec3AndVec4(Builder, CGF, Src, 3); 3966 Src->setName("astype"); 3967 return Src; 3968 } 3969 3970 return Src = createCastsForTypeOfSameSize(Builder, CGF.CGM.getDataLayout(), 3971 Src, DstTy, "astype"); 3972 } 3973 3974 Value *ScalarExprEmitter::VisitAtomicExpr(AtomicExpr *E) { 3975 return CGF.EmitAtomicExpr(E).getScalarVal(); 3976 } 3977 3978 //===----------------------------------------------------------------------===// 3979 // Entry Point into this File 3980 //===----------------------------------------------------------------------===// 3981 3982 /// Emit the computation of the specified expression of scalar type, ignoring 3983 /// the result. 3984 Value *CodeGenFunction::EmitScalarExpr(const Expr *E, bool IgnoreResultAssign) { 3985 assert(E && hasScalarEvaluationKind(E->getType()) && 3986 "Invalid scalar expression to emit"); 3987 3988 return ScalarExprEmitter(*this, IgnoreResultAssign) 3989 .Visit(const_cast<Expr *>(E)); 3990 } 3991 3992 /// Emit a conversion from the specified type to the specified destination type, 3993 /// both of which are LLVM scalar types. 3994 Value *CodeGenFunction::EmitScalarConversion(Value *Src, QualType SrcTy, 3995 QualType DstTy, 3996 SourceLocation Loc) { 3997 assert(hasScalarEvaluationKind(SrcTy) && hasScalarEvaluationKind(DstTy) && 3998 "Invalid scalar expression to emit"); 3999 return ScalarExprEmitter(*this).EmitScalarConversion(Src, SrcTy, DstTy, Loc); 4000 } 4001 4002 /// Emit a conversion from the specified complex type to the specified 4003 /// destination type, where the destination type is an LLVM scalar type. 4004 Value *CodeGenFunction::EmitComplexToScalarConversion(ComplexPairTy Src, 4005 QualType SrcTy, 4006 QualType DstTy, 4007 SourceLocation Loc) { 4008 assert(SrcTy->isAnyComplexType() && hasScalarEvaluationKind(DstTy) && 4009 "Invalid complex -> scalar conversion"); 4010 return ScalarExprEmitter(*this) 4011 .EmitComplexToScalarConversion(Src, SrcTy, DstTy, Loc); 4012 } 4013 4014 4015 llvm::Value *CodeGenFunction:: 4016 EmitScalarPrePostIncDec(const UnaryOperator *E, LValue LV, 4017 bool isInc, bool isPre) { 4018 return ScalarExprEmitter(*this).EmitScalarPrePostIncDec(E, LV, isInc, isPre); 4019 } 4020 4021 LValue CodeGenFunction::EmitObjCIsaExpr(const ObjCIsaExpr *E) { 4022 // object->isa or (*object).isa 4023 // Generate code as for: *(Class*)object 4024 4025 Expr *BaseExpr = E->getBase(); 4026 Address Addr = Address::invalid(); 4027 if (BaseExpr->isRValue()) { 4028 Addr = Address(EmitScalarExpr(BaseExpr), getPointerAlign()); 4029 } else { 4030 Addr = EmitLValue(BaseExpr).getAddress(); 4031 } 4032 4033 // Cast the address to Class*. 4034 Addr = Builder.CreateElementBitCast(Addr, ConvertType(E->getType())); 4035 return MakeAddrLValue(Addr, E->getType()); 4036 } 4037 4038 4039 LValue CodeGenFunction::EmitCompoundAssignmentLValue( 4040 const CompoundAssignOperator *E) { 4041 ScalarExprEmitter Scalar(*this); 4042 Value *Result = nullptr; 4043 switch (E->getOpcode()) { 4044 #define COMPOUND_OP(Op) \ 4045 case BO_##Op##Assign: \ 4046 return Scalar.EmitCompoundAssignLValue(E, &ScalarExprEmitter::Emit##Op, \ 4047 Result) 4048 COMPOUND_OP(Mul); 4049 COMPOUND_OP(Div); 4050 COMPOUND_OP(Rem); 4051 COMPOUND_OP(Add); 4052 COMPOUND_OP(Sub); 4053 COMPOUND_OP(Shl); 4054 COMPOUND_OP(Shr); 4055 COMPOUND_OP(And); 4056 COMPOUND_OP(Xor); 4057 COMPOUND_OP(Or); 4058 #undef COMPOUND_OP 4059 4060 case BO_PtrMemD: 4061 case BO_PtrMemI: 4062 case BO_Mul: 4063 case BO_Div: 4064 case BO_Rem: 4065 case BO_Add: 4066 case BO_Sub: 4067 case BO_Shl: 4068 case BO_Shr: 4069 case BO_LT: 4070 case BO_GT: 4071 case BO_LE: 4072 case BO_GE: 4073 case BO_EQ: 4074 case BO_NE: 4075 case BO_Cmp: 4076 case BO_And: 4077 case BO_Xor: 4078 case BO_Or: 4079 case BO_LAnd: 4080 case BO_LOr: 4081 case BO_Assign: 4082 case BO_Comma: 4083 llvm_unreachable("Not valid compound assignment operators"); 4084 } 4085 4086 llvm_unreachable("Unhandled compound assignment operator"); 4087 } 4088 4089 Value *CodeGenFunction::EmitCheckedInBoundsGEP(Value *Ptr, 4090 ArrayRef<Value *> IdxList, 4091 bool SignedIndices, 4092 bool IsSubtraction, 4093 SourceLocation Loc, 4094 const Twine &Name) { 4095 Value *GEPVal = Builder.CreateInBoundsGEP(Ptr, IdxList, Name); 4096 4097 // If the pointer overflow sanitizer isn't enabled, do nothing. 4098 if (!SanOpts.has(SanitizerKind::PointerOverflow)) 4099 return GEPVal; 4100 4101 // If the GEP has already been reduced to a constant, leave it be. 4102 if (isa<llvm::Constant>(GEPVal)) 4103 return GEPVal; 4104 4105 // Only check for overflows in the default address space. 4106 if (GEPVal->getType()->getPointerAddressSpace()) 4107 return GEPVal; 4108 4109 auto *GEP = cast<llvm::GEPOperator>(GEPVal); 4110 assert(GEP->isInBounds() && "Expected inbounds GEP"); 4111 4112 SanitizerScope SanScope(this); 4113 auto &VMContext = getLLVMContext(); 4114 const auto &DL = CGM.getDataLayout(); 4115 auto *IntPtrTy = DL.getIntPtrType(GEP->getPointerOperandType()); 4116 4117 // Grab references to the signed add/mul overflow intrinsics for intptr_t. 4118 auto *Zero = llvm::ConstantInt::getNullValue(IntPtrTy); 4119 auto *SAddIntrinsic = 4120 CGM.getIntrinsic(llvm::Intrinsic::sadd_with_overflow, IntPtrTy); 4121 auto *SMulIntrinsic = 4122 CGM.getIntrinsic(llvm::Intrinsic::smul_with_overflow, IntPtrTy); 4123 4124 // The total (signed) byte offset for the GEP. 4125 llvm::Value *TotalOffset = nullptr; 4126 // The offset overflow flag - true if the total offset overflows. 4127 llvm::Value *OffsetOverflows = Builder.getFalse(); 4128 4129 /// Return the result of the given binary operation. 4130 auto eval = [&](BinaryOperator::Opcode Opcode, llvm::Value *LHS, 4131 llvm::Value *RHS) -> llvm::Value * { 4132 assert((Opcode == BO_Add || Opcode == BO_Mul) && "Can't eval binop"); 4133 4134 // If the operands are constants, return a constant result. 4135 if (auto *LHSCI = dyn_cast<llvm::ConstantInt>(LHS)) { 4136 if (auto *RHSCI = dyn_cast<llvm::ConstantInt>(RHS)) { 4137 llvm::APInt N; 4138 bool HasOverflow = mayHaveIntegerOverflow(LHSCI, RHSCI, Opcode, 4139 /*Signed=*/true, N); 4140 if (HasOverflow) 4141 OffsetOverflows = Builder.getTrue(); 4142 return llvm::ConstantInt::get(VMContext, N); 4143 } 4144 } 4145 4146 // Otherwise, compute the result with checked arithmetic. 4147 auto *ResultAndOverflow = Builder.CreateCall( 4148 (Opcode == BO_Add) ? SAddIntrinsic : SMulIntrinsic, {LHS, RHS}); 4149 OffsetOverflows = Builder.CreateOr( 4150 Builder.CreateExtractValue(ResultAndOverflow, 1), OffsetOverflows); 4151 return Builder.CreateExtractValue(ResultAndOverflow, 0); 4152 }; 4153 4154 // Determine the total byte offset by looking at each GEP operand. 4155 for (auto GTI = llvm::gep_type_begin(GEP), GTE = llvm::gep_type_end(GEP); 4156 GTI != GTE; ++GTI) { 4157 llvm::Value *LocalOffset; 4158 auto *Index = GTI.getOperand(); 4159 // Compute the local offset contributed by this indexing step: 4160 if (auto *STy = GTI.getStructTypeOrNull()) { 4161 // For struct indexing, the local offset is the byte position of the 4162 // specified field. 4163 unsigned FieldNo = cast<llvm::ConstantInt>(Index)->getZExtValue(); 4164 LocalOffset = llvm::ConstantInt::get( 4165 IntPtrTy, DL.getStructLayout(STy)->getElementOffset(FieldNo)); 4166 } else { 4167 // Otherwise this is array-like indexing. The local offset is the index 4168 // multiplied by the element size. 4169 auto *ElementSize = llvm::ConstantInt::get( 4170 IntPtrTy, DL.getTypeAllocSize(GTI.getIndexedType())); 4171 auto *IndexS = Builder.CreateIntCast(Index, IntPtrTy, /*isSigned=*/true); 4172 LocalOffset = eval(BO_Mul, ElementSize, IndexS); 4173 } 4174 4175 // If this is the first offset, set it as the total offset. Otherwise, add 4176 // the local offset into the running total. 4177 if (!TotalOffset || TotalOffset == Zero) 4178 TotalOffset = LocalOffset; 4179 else 4180 TotalOffset = eval(BO_Add, TotalOffset, LocalOffset); 4181 } 4182 4183 // Common case: if the total offset is zero, don't emit a check. 4184 if (TotalOffset == Zero) 4185 return GEPVal; 4186 4187 // Now that we've computed the total offset, add it to the base pointer (with 4188 // wrapping semantics). 4189 auto *IntPtr = Builder.CreatePtrToInt(GEP->getPointerOperand(), IntPtrTy); 4190 auto *ComputedGEP = Builder.CreateAdd(IntPtr, TotalOffset); 4191 4192 // The GEP is valid if: 4193 // 1) The total offset doesn't overflow, and 4194 // 2) The sign of the difference between the computed address and the base 4195 // pointer matches the sign of the total offset. 4196 llvm::Value *ValidGEP; 4197 auto *NoOffsetOverflow = Builder.CreateNot(OffsetOverflows); 4198 if (SignedIndices) { 4199 auto *PosOrZeroValid = Builder.CreateICmpUGE(ComputedGEP, IntPtr); 4200 auto *PosOrZeroOffset = Builder.CreateICmpSGE(TotalOffset, Zero); 4201 llvm::Value *NegValid = Builder.CreateICmpULT(ComputedGEP, IntPtr); 4202 ValidGEP = Builder.CreateAnd( 4203 Builder.CreateSelect(PosOrZeroOffset, PosOrZeroValid, NegValid), 4204 NoOffsetOverflow); 4205 } else if (!SignedIndices && !IsSubtraction) { 4206 auto *PosOrZeroValid = Builder.CreateICmpUGE(ComputedGEP, IntPtr); 4207 ValidGEP = Builder.CreateAnd(PosOrZeroValid, NoOffsetOverflow); 4208 } else { 4209 auto *NegOrZeroValid = Builder.CreateICmpULE(ComputedGEP, IntPtr); 4210 ValidGEP = Builder.CreateAnd(NegOrZeroValid, NoOffsetOverflow); 4211 } 4212 4213 llvm::Constant *StaticArgs[] = {EmitCheckSourceLocation(Loc)}; 4214 // Pass the computed GEP to the runtime to avoid emitting poisoned arguments. 4215 llvm::Value *DynamicArgs[] = {IntPtr, ComputedGEP}; 4216 EmitCheck(std::make_pair(ValidGEP, SanitizerKind::PointerOverflow), 4217 SanitizerHandler::PointerOverflow, StaticArgs, DynamicArgs); 4218 4219 return GEPVal; 4220 } 4221