CGExpr.cpp 200 KB

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  1. //===--- CGExpr.cpp - Emit LLVM Code from Expressions ---------------------===//
  2. //
  3. // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
  4. // See https://llvm.org/LICENSE.txt for license information.
  5. // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
  6. //
  7. //===----------------------------------------------------------------------===//
  8. //
  9. // This contains code to emit Expr nodes as LLVM code.
  10. //
  11. //===----------------------------------------------------------------------===//
  12. #include "CGCXXABI.h"
  13. #include "CGCall.h"
  14. #include "CGCleanup.h"
  15. #include "CGDebugInfo.h"
  16. #include "CGObjCRuntime.h"
  17. #include "CGOpenMPRuntime.h"
  18. #include "CGRecordLayout.h"
  19. #include "CodeGenFunction.h"
  20. #include "CodeGenModule.h"
  21. #include "ConstantEmitter.h"
  22. #include "TargetInfo.h"
  23. #include "clang/AST/ASTContext.h"
  24. #include "clang/AST/Attr.h"
  25. #include "clang/AST/DeclObjC.h"
  26. #include "clang/AST/NSAPI.h"
  27. #include "clang/Basic/Builtins.h"
  28. #include "clang/Basic/CodeGenOptions.h"
  29. #include "llvm/ADT/Hashing.h"
  30. #include "llvm/ADT/StringExtras.h"
  31. #include "llvm/IR/DataLayout.h"
  32. #include "llvm/IR/Intrinsics.h"
  33. #include "llvm/IR/LLVMContext.h"
  34. #include "llvm/IR/MDBuilder.h"
  35. #include "llvm/Support/ConvertUTF.h"
  36. #include "llvm/Support/MathExtras.h"
  37. #include "llvm/Support/Path.h"
  38. #include "llvm/Transforms/Utils/SanitizerStats.h"
  39. #include <string>
  40. using namespace clang;
  41. using namespace CodeGen;
  42. //===--------------------------------------------------------------------===//
  43. // Miscellaneous Helper Methods
  44. //===--------------------------------------------------------------------===//
  45. llvm::Value *CodeGenFunction::EmitCastToVoidPtr(llvm::Value *value) {
  46. unsigned addressSpace =
  47. cast<llvm::PointerType>(value->getType())->getAddressSpace();
  48. llvm::PointerType *destType = Int8PtrTy;
  49. if (addressSpace)
  50. destType = llvm::Type::getInt8PtrTy(getLLVMContext(), addressSpace);
  51. if (value->getType() == destType) return value;
  52. return Builder.CreateBitCast(value, destType);
  53. }
  54. /// CreateTempAlloca - This creates a alloca and inserts it into the entry
  55. /// block.
  56. Address CodeGenFunction::CreateTempAllocaWithoutCast(llvm::Type *Ty,
  57. CharUnits Align,
  58. const Twine &Name,
  59. llvm::Value *ArraySize) {
  60. auto Alloca = CreateTempAlloca(Ty, Name, ArraySize);
  61. Alloca->setAlignment(Align.getAsAlign());
  62. return Address(Alloca, Align);
  63. }
  64. /// CreateTempAlloca - This creates a alloca and inserts it into the entry
  65. /// block. The alloca is casted to default address space if necessary.
  66. Address CodeGenFunction::CreateTempAlloca(llvm::Type *Ty, CharUnits Align,
  67. const Twine &Name,
  68. llvm::Value *ArraySize,
  69. Address *AllocaAddr) {
  70. auto Alloca = CreateTempAllocaWithoutCast(Ty, Align, Name, ArraySize);
  71. if (AllocaAddr)
  72. *AllocaAddr = Alloca;
  73. llvm::Value *V = Alloca.getPointer();
  74. // Alloca always returns a pointer in alloca address space, which may
  75. // be different from the type defined by the language. For example,
  76. // in C++ the auto variables are in the default address space. Therefore
  77. // cast alloca to the default address space when necessary.
  78. if (getASTAllocaAddressSpace() != LangAS::Default) {
  79. auto DestAddrSpace = getContext().getTargetAddressSpace(LangAS::Default);
  80. llvm::IRBuilderBase::InsertPointGuard IPG(Builder);
  81. // When ArraySize is nullptr, alloca is inserted at AllocaInsertPt,
  82. // otherwise alloca is inserted at the current insertion point of the
  83. // builder.
  84. if (!ArraySize)
  85. Builder.SetInsertPoint(AllocaInsertPt);
  86. V = getTargetHooks().performAddrSpaceCast(
  87. *this, V, getASTAllocaAddressSpace(), LangAS::Default,
  88. Ty->getPointerTo(DestAddrSpace), /*non-null*/ true);
  89. }
  90. return Address(V, Align);
  91. }
  92. /// CreateTempAlloca - This creates an alloca and inserts it into the entry
  93. /// block if \p ArraySize is nullptr, otherwise inserts it at the current
  94. /// insertion point of the builder.
  95. llvm::AllocaInst *CodeGenFunction::CreateTempAlloca(llvm::Type *Ty,
  96. const Twine &Name,
  97. llvm::Value *ArraySize) {
  98. if (ArraySize)
  99. return Builder.CreateAlloca(Ty, ArraySize, Name);
  100. return new llvm::AllocaInst(Ty, CGM.getDataLayout().getAllocaAddrSpace(),
  101. ArraySize, Name, AllocaInsertPt);
  102. }
  103. /// CreateDefaultAlignTempAlloca - This creates an alloca with the
  104. /// default alignment of the corresponding LLVM type, which is *not*
  105. /// guaranteed to be related in any way to the expected alignment of
  106. /// an AST type that might have been lowered to Ty.
  107. Address CodeGenFunction::CreateDefaultAlignTempAlloca(llvm::Type *Ty,
  108. const Twine &Name) {
  109. CharUnits Align =
  110. CharUnits::fromQuantity(CGM.getDataLayout().getABITypeAlignment(Ty));
  111. return CreateTempAlloca(Ty, Align, Name);
  112. }
  113. void CodeGenFunction::InitTempAlloca(Address Var, llvm::Value *Init) {
  114. assert(isa<llvm::AllocaInst>(Var.getPointer()));
  115. auto *Store = new llvm::StoreInst(Init, Var.getPointer());
  116. Store->setAlignment(Var.getAlignment().getAsAlign());
  117. llvm::BasicBlock *Block = AllocaInsertPt->getParent();
  118. Block->getInstList().insertAfter(AllocaInsertPt->getIterator(), Store);
  119. }
  120. Address CodeGenFunction::CreateIRTemp(QualType Ty, const Twine &Name) {
  121. CharUnits Align = getContext().getTypeAlignInChars(Ty);
  122. return CreateTempAlloca(ConvertType(Ty), Align, Name);
  123. }
  124. Address CodeGenFunction::CreateMemTemp(QualType Ty, const Twine &Name,
  125. Address *Alloca) {
  126. // FIXME: Should we prefer the preferred type alignment here?
  127. return CreateMemTemp(Ty, getContext().getTypeAlignInChars(Ty), Name, Alloca);
  128. }
  129. Address CodeGenFunction::CreateMemTemp(QualType Ty, CharUnits Align,
  130. const Twine &Name, Address *Alloca) {
  131. return CreateTempAlloca(ConvertTypeForMem(Ty), Align, Name,
  132. /*ArraySize=*/nullptr, Alloca);
  133. }
  134. Address CodeGenFunction::CreateMemTempWithoutCast(QualType Ty, CharUnits Align,
  135. const Twine &Name) {
  136. return CreateTempAllocaWithoutCast(ConvertTypeForMem(Ty), Align, Name);
  137. }
  138. Address CodeGenFunction::CreateMemTempWithoutCast(QualType Ty,
  139. const Twine &Name) {
  140. return CreateMemTempWithoutCast(Ty, getContext().getTypeAlignInChars(Ty),
  141. Name);
  142. }
  143. /// EvaluateExprAsBool - Perform the usual unary conversions on the specified
  144. /// expression and compare the result against zero, returning an Int1Ty value.
  145. llvm::Value *CodeGenFunction::EvaluateExprAsBool(const Expr *E) {
  146. PGO.setCurrentStmt(E);
  147. if (const MemberPointerType *MPT = E->getType()->getAs<MemberPointerType>()) {
  148. llvm::Value *MemPtr = EmitScalarExpr(E);
  149. return CGM.getCXXABI().EmitMemberPointerIsNotNull(*this, MemPtr, MPT);
  150. }
  151. QualType BoolTy = getContext().BoolTy;
  152. SourceLocation Loc = E->getExprLoc();
  153. if (!E->getType()->isAnyComplexType())
  154. return EmitScalarConversion(EmitScalarExpr(E), E->getType(), BoolTy, Loc);
  155. return EmitComplexToScalarConversion(EmitComplexExpr(E), E->getType(), BoolTy,
  156. Loc);
  157. }
  158. /// EmitIgnoredExpr - Emit code to compute the specified expression,
  159. /// ignoring the result.
  160. void CodeGenFunction::EmitIgnoredExpr(const Expr *E) {
  161. if (E->isRValue())
  162. return (void) EmitAnyExpr(E, AggValueSlot::ignored(), true);
  163. // Just emit it as an l-value and drop the result.
  164. EmitLValue(E);
  165. }
  166. /// EmitAnyExpr - Emit code to compute the specified expression which
  167. /// can have any type. The result is returned as an RValue struct.
  168. /// If this is an aggregate expression, AggSlot indicates where the
  169. /// result should be returned.
  170. RValue CodeGenFunction::EmitAnyExpr(const Expr *E,
  171. AggValueSlot aggSlot,
  172. bool ignoreResult) {
  173. switch (getEvaluationKind(E->getType())) {
  174. case TEK_Scalar:
  175. return RValue::get(EmitScalarExpr(E, ignoreResult));
  176. case TEK_Complex:
  177. return RValue::getComplex(EmitComplexExpr(E, ignoreResult, ignoreResult));
  178. case TEK_Aggregate:
  179. if (!ignoreResult && aggSlot.isIgnored())
  180. aggSlot = CreateAggTemp(E->getType(), "agg-temp");
  181. EmitAggExpr(E, aggSlot);
  182. return aggSlot.asRValue();
  183. }
  184. llvm_unreachable("bad evaluation kind");
  185. }
  186. /// EmitAnyExprToTemp - Similar to EmitAnyExpr(), however, the result will
  187. /// always be accessible even if no aggregate location is provided.
  188. RValue CodeGenFunction::EmitAnyExprToTemp(const Expr *E) {
  189. AggValueSlot AggSlot = AggValueSlot::ignored();
  190. if (hasAggregateEvaluationKind(E->getType()))
  191. AggSlot = CreateAggTemp(E->getType(), "agg.tmp");
  192. return EmitAnyExpr(E, AggSlot);
  193. }
  194. /// EmitAnyExprToMem - Evaluate an expression into a given memory
  195. /// location.
  196. void CodeGenFunction::EmitAnyExprToMem(const Expr *E,
  197. Address Location,
  198. Qualifiers Quals,
  199. bool IsInit) {
  200. // FIXME: This function should take an LValue as an argument.
  201. switch (getEvaluationKind(E->getType())) {
  202. case TEK_Complex:
  203. EmitComplexExprIntoLValue(E, MakeAddrLValue(Location, E->getType()),
  204. /*isInit*/ false);
  205. return;
  206. case TEK_Aggregate: {
  207. EmitAggExpr(E, AggValueSlot::forAddr(Location, Quals,
  208. AggValueSlot::IsDestructed_t(IsInit),
  209. AggValueSlot::DoesNotNeedGCBarriers,
  210. AggValueSlot::IsAliased_t(!IsInit),
  211. AggValueSlot::MayOverlap));
  212. return;
  213. }
  214. case TEK_Scalar: {
  215. RValue RV = RValue::get(EmitScalarExpr(E, /*Ignore*/ false));
  216. LValue LV = MakeAddrLValue(Location, E->getType());
  217. EmitStoreThroughLValue(RV, LV);
  218. return;
  219. }
  220. }
  221. llvm_unreachable("bad evaluation kind");
  222. }
  223. static void
  224. pushTemporaryCleanup(CodeGenFunction &CGF, const MaterializeTemporaryExpr *M,
  225. const Expr *E, Address ReferenceTemporary) {
  226. // Objective-C++ ARC:
  227. // If we are binding a reference to a temporary that has ownership, we
  228. // need to perform retain/release operations on the temporary.
  229. //
  230. // FIXME: This should be looking at E, not M.
  231. if (auto Lifetime = M->getType().getObjCLifetime()) {
  232. switch (Lifetime) {
  233. case Qualifiers::OCL_None:
  234. case Qualifiers::OCL_ExplicitNone:
  235. // Carry on to normal cleanup handling.
  236. break;
  237. case Qualifiers::OCL_Autoreleasing:
  238. // Nothing to do; cleaned up by an autorelease pool.
  239. return;
  240. case Qualifiers::OCL_Strong:
  241. case Qualifiers::OCL_Weak:
  242. switch (StorageDuration Duration = M->getStorageDuration()) {
  243. case SD_Static:
  244. // Note: we intentionally do not register a cleanup to release
  245. // the object on program termination.
  246. return;
  247. case SD_Thread:
  248. // FIXME: We should probably register a cleanup in this case.
  249. return;
  250. case SD_Automatic:
  251. case SD_FullExpression:
  252. CodeGenFunction::Destroyer *Destroy;
  253. CleanupKind CleanupKind;
  254. if (Lifetime == Qualifiers::OCL_Strong) {
  255. const ValueDecl *VD = M->getExtendingDecl();
  256. bool Precise =
  257. VD && isa<VarDecl>(VD) && VD->hasAttr<ObjCPreciseLifetimeAttr>();
  258. CleanupKind = CGF.getARCCleanupKind();
  259. Destroy = Precise ? &CodeGenFunction::destroyARCStrongPrecise
  260. : &CodeGenFunction::destroyARCStrongImprecise;
  261. } else {
  262. // __weak objects always get EH cleanups; otherwise, exceptions
  263. // could cause really nasty crashes instead of mere leaks.
  264. CleanupKind = NormalAndEHCleanup;
  265. Destroy = &CodeGenFunction::destroyARCWeak;
  266. }
  267. if (Duration == SD_FullExpression)
  268. CGF.pushDestroy(CleanupKind, ReferenceTemporary,
  269. M->getType(), *Destroy,
  270. CleanupKind & EHCleanup);
  271. else
  272. CGF.pushLifetimeExtendedDestroy(CleanupKind, ReferenceTemporary,
  273. M->getType(),
  274. *Destroy, CleanupKind & EHCleanup);
  275. return;
  276. case SD_Dynamic:
  277. llvm_unreachable("temporary cannot have dynamic storage duration");
  278. }
  279. llvm_unreachable("unknown storage duration");
  280. }
  281. }
  282. CXXDestructorDecl *ReferenceTemporaryDtor = nullptr;
  283. if (const RecordType *RT =
  284. E->getType()->getBaseElementTypeUnsafe()->getAs<RecordType>()) {
  285. // Get the destructor for the reference temporary.
  286. auto *ClassDecl = cast<CXXRecordDecl>(RT->getDecl());
  287. if (!ClassDecl->hasTrivialDestructor())
  288. ReferenceTemporaryDtor = ClassDecl->getDestructor();
  289. }
  290. if (!ReferenceTemporaryDtor)
  291. return;
  292. // Call the destructor for the temporary.
  293. switch (M->getStorageDuration()) {
  294. case SD_Static:
  295. case SD_Thread: {
  296. llvm::FunctionCallee CleanupFn;
  297. llvm::Constant *CleanupArg;
  298. if (E->getType()->isArrayType()) {
  299. CleanupFn = CodeGenFunction(CGF.CGM).generateDestroyHelper(
  300. ReferenceTemporary, E->getType(),
  301. CodeGenFunction::destroyCXXObject, CGF.getLangOpts().Exceptions,
  302. dyn_cast_or_null<VarDecl>(M->getExtendingDecl()));
  303. CleanupArg = llvm::Constant::getNullValue(CGF.Int8PtrTy);
  304. } else {
  305. CleanupFn = CGF.CGM.getAddrAndTypeOfCXXStructor(
  306. GlobalDecl(ReferenceTemporaryDtor, Dtor_Complete));
  307. CleanupArg = cast<llvm::Constant>(ReferenceTemporary.getPointer());
  308. }
  309. CGF.CGM.getCXXABI().registerGlobalDtor(
  310. CGF, *cast<VarDecl>(M->getExtendingDecl()), CleanupFn, CleanupArg);
  311. break;
  312. }
  313. case SD_FullExpression:
  314. CGF.pushDestroy(NormalAndEHCleanup, ReferenceTemporary, E->getType(),
  315. CodeGenFunction::destroyCXXObject,
  316. CGF.getLangOpts().Exceptions);
  317. break;
  318. case SD_Automatic:
  319. CGF.pushLifetimeExtendedDestroy(NormalAndEHCleanup,
  320. ReferenceTemporary, E->getType(),
  321. CodeGenFunction::destroyCXXObject,
  322. CGF.getLangOpts().Exceptions);
  323. break;
  324. case SD_Dynamic:
  325. llvm_unreachable("temporary cannot have dynamic storage duration");
  326. }
  327. }
  328. static Address createReferenceTemporary(CodeGenFunction &CGF,
  329. const MaterializeTemporaryExpr *M,
  330. const Expr *Inner,
  331. Address *Alloca = nullptr) {
  332. auto &TCG = CGF.getTargetHooks();
  333. switch (M->getStorageDuration()) {
  334. case SD_FullExpression:
  335. case SD_Automatic: {
  336. // If we have a constant temporary array or record try to promote it into a
  337. // constant global under the same rules a normal constant would've been
  338. // promoted. This is easier on the optimizer and generally emits fewer
  339. // instructions.
  340. QualType Ty = Inner->getType();
  341. if (CGF.CGM.getCodeGenOpts().MergeAllConstants &&
  342. (Ty->isArrayType() || Ty->isRecordType()) &&
  343. CGF.CGM.isTypeConstant(Ty, true))
  344. if (auto Init = ConstantEmitter(CGF).tryEmitAbstract(Inner, Ty)) {
  345. if (auto AddrSpace = CGF.getTarget().getConstantAddressSpace()) {
  346. auto AS = AddrSpace.getValue();
  347. auto *GV = new llvm::GlobalVariable(
  348. CGF.CGM.getModule(), Init->getType(), /*isConstant=*/true,
  349. llvm::GlobalValue::PrivateLinkage, Init, ".ref.tmp", nullptr,
  350. llvm::GlobalValue::NotThreadLocal,
  351. CGF.getContext().getTargetAddressSpace(AS));
  352. CharUnits alignment = CGF.getContext().getTypeAlignInChars(Ty);
  353. GV->setAlignment(alignment.getAsAlign());
  354. llvm::Constant *C = GV;
  355. if (AS != LangAS::Default)
  356. C = TCG.performAddrSpaceCast(
  357. CGF.CGM, GV, AS, LangAS::Default,
  358. GV->getValueType()->getPointerTo(
  359. CGF.getContext().getTargetAddressSpace(LangAS::Default)));
  360. // FIXME: Should we put the new global into a COMDAT?
  361. return Address(C, alignment);
  362. }
  363. }
  364. return CGF.CreateMemTemp(Ty, "ref.tmp", Alloca);
  365. }
  366. case SD_Thread:
  367. case SD_Static:
  368. return CGF.CGM.GetAddrOfGlobalTemporary(M, Inner);
  369. case SD_Dynamic:
  370. llvm_unreachable("temporary can't have dynamic storage duration");
  371. }
  372. llvm_unreachable("unknown storage duration");
  373. }
  374. LValue CodeGenFunction::
  375. EmitMaterializeTemporaryExpr(const MaterializeTemporaryExpr *M) {
  376. const Expr *E = M->GetTemporaryExpr();
  377. assert((!M->getExtendingDecl() || !isa<VarDecl>(M->getExtendingDecl()) ||
  378. !cast<VarDecl>(M->getExtendingDecl())->isARCPseudoStrong()) &&
  379. "Reference should never be pseudo-strong!");
  380. // FIXME: ideally this would use EmitAnyExprToMem, however, we cannot do so
  381. // as that will cause the lifetime adjustment to be lost for ARC
  382. auto ownership = M->getType().getObjCLifetime();
  383. if (ownership != Qualifiers::OCL_None &&
  384. ownership != Qualifiers::OCL_ExplicitNone) {
  385. Address Object = createReferenceTemporary(*this, M, E);
  386. if (auto *Var = dyn_cast<llvm::GlobalVariable>(Object.getPointer())) {
  387. Object = Address(llvm::ConstantExpr::getBitCast(Var,
  388. ConvertTypeForMem(E->getType())
  389. ->getPointerTo(Object.getAddressSpace())),
  390. Object.getAlignment());
  391. // createReferenceTemporary will promote the temporary to a global with a
  392. // constant initializer if it can. It can only do this to a value of
  393. // ARC-manageable type if the value is global and therefore "immune" to
  394. // ref-counting operations. Therefore we have no need to emit either a
  395. // dynamic initialization or a cleanup and we can just return the address
  396. // of the temporary.
  397. if (Var->hasInitializer())
  398. return MakeAddrLValue(Object, M->getType(), AlignmentSource::Decl);
  399. Var->setInitializer(CGM.EmitNullConstant(E->getType()));
  400. }
  401. LValue RefTempDst = MakeAddrLValue(Object, M->getType(),
  402. AlignmentSource::Decl);
  403. switch (getEvaluationKind(E->getType())) {
  404. default: llvm_unreachable("expected scalar or aggregate expression");
  405. case TEK_Scalar:
  406. EmitScalarInit(E, M->getExtendingDecl(), RefTempDst, false);
  407. break;
  408. case TEK_Aggregate: {
  409. EmitAggExpr(E, AggValueSlot::forAddr(Object,
  410. E->getType().getQualifiers(),
  411. AggValueSlot::IsDestructed,
  412. AggValueSlot::DoesNotNeedGCBarriers,
  413. AggValueSlot::IsNotAliased,
  414. AggValueSlot::DoesNotOverlap));
  415. break;
  416. }
  417. }
  418. pushTemporaryCleanup(*this, M, E, Object);
  419. return RefTempDst;
  420. }
  421. SmallVector<const Expr *, 2> CommaLHSs;
  422. SmallVector<SubobjectAdjustment, 2> Adjustments;
  423. E = E->skipRValueSubobjectAdjustments(CommaLHSs, Adjustments);
  424. for (const auto &Ignored : CommaLHSs)
  425. EmitIgnoredExpr(Ignored);
  426. if (const auto *opaque = dyn_cast<OpaqueValueExpr>(E)) {
  427. if (opaque->getType()->isRecordType()) {
  428. assert(Adjustments.empty());
  429. return EmitOpaqueValueLValue(opaque);
  430. }
  431. }
  432. // Create and initialize the reference temporary.
  433. Address Alloca = Address::invalid();
  434. Address Object = createReferenceTemporary(*this, M, E, &Alloca);
  435. if (auto *Var = dyn_cast<llvm::GlobalVariable>(
  436. Object.getPointer()->stripPointerCasts())) {
  437. Object = Address(llvm::ConstantExpr::getBitCast(
  438. cast<llvm::Constant>(Object.getPointer()),
  439. ConvertTypeForMem(E->getType())->getPointerTo()),
  440. Object.getAlignment());
  441. // If the temporary is a global and has a constant initializer or is a
  442. // constant temporary that we promoted to a global, we may have already
  443. // initialized it.
  444. if (!Var->hasInitializer()) {
  445. Var->setInitializer(CGM.EmitNullConstant(E->getType()));
  446. EmitAnyExprToMem(E, Object, Qualifiers(), /*IsInit*/true);
  447. }
  448. } else {
  449. switch (M->getStorageDuration()) {
  450. case SD_Automatic:
  451. if (auto *Size = EmitLifetimeStart(
  452. CGM.getDataLayout().getTypeAllocSize(Alloca.getElementType()),
  453. Alloca.getPointer())) {
  454. pushCleanupAfterFullExpr<CallLifetimeEnd>(NormalEHLifetimeMarker,
  455. Alloca, Size);
  456. }
  457. break;
  458. case SD_FullExpression: {
  459. if (!ShouldEmitLifetimeMarkers)
  460. break;
  461. // Avoid creating a conditional cleanup just to hold an llvm.lifetime.end
  462. // marker. Instead, start the lifetime of a conditional temporary earlier
  463. // so that it's unconditional. Don't do this with sanitizers which need
  464. // more precise lifetime marks.
  465. ConditionalEvaluation *OldConditional = nullptr;
  466. CGBuilderTy::InsertPoint OldIP;
  467. if (isInConditionalBranch() && !E->getType().isDestructedType() &&
  468. !SanOpts.has(SanitizerKind::HWAddress) &&
  469. !SanOpts.has(SanitizerKind::Memory) &&
  470. !CGM.getCodeGenOpts().SanitizeAddressUseAfterScope) {
  471. OldConditional = OutermostConditional;
  472. OutermostConditional = nullptr;
  473. OldIP = Builder.saveIP();
  474. llvm::BasicBlock *Block = OldConditional->getStartingBlock();
  475. Builder.restoreIP(CGBuilderTy::InsertPoint(
  476. Block, llvm::BasicBlock::iterator(Block->back())));
  477. }
  478. if (auto *Size = EmitLifetimeStart(
  479. CGM.getDataLayout().getTypeAllocSize(Alloca.getElementType()),
  480. Alloca.getPointer())) {
  481. pushFullExprCleanup<CallLifetimeEnd>(NormalEHLifetimeMarker, Alloca,
  482. Size);
  483. }
  484. if (OldConditional) {
  485. OutermostConditional = OldConditional;
  486. Builder.restoreIP(OldIP);
  487. }
  488. break;
  489. }
  490. default:
  491. break;
  492. }
  493. EmitAnyExprToMem(E, Object, Qualifiers(), /*IsInit*/true);
  494. }
  495. pushTemporaryCleanup(*this, M, E, Object);
  496. // Perform derived-to-base casts and/or field accesses, to get from the
  497. // temporary object we created (and, potentially, for which we extended
  498. // the lifetime) to the subobject we're binding the reference to.
  499. for (unsigned I = Adjustments.size(); I != 0; --I) {
  500. SubobjectAdjustment &Adjustment = Adjustments[I-1];
  501. switch (Adjustment.Kind) {
  502. case SubobjectAdjustment::DerivedToBaseAdjustment:
  503. Object =
  504. GetAddressOfBaseClass(Object, Adjustment.DerivedToBase.DerivedClass,
  505. Adjustment.DerivedToBase.BasePath->path_begin(),
  506. Adjustment.DerivedToBase.BasePath->path_end(),
  507. /*NullCheckValue=*/ false, E->getExprLoc());
  508. break;
  509. case SubobjectAdjustment::FieldAdjustment: {
  510. LValue LV = MakeAddrLValue(Object, E->getType(), AlignmentSource::Decl);
  511. LV = EmitLValueForField(LV, Adjustment.Field);
  512. assert(LV.isSimple() &&
  513. "materialized temporary field is not a simple lvalue");
  514. Object = LV.getAddress();
  515. break;
  516. }
  517. case SubobjectAdjustment::MemberPointerAdjustment: {
  518. llvm::Value *Ptr = EmitScalarExpr(Adjustment.Ptr.RHS);
  519. Object = EmitCXXMemberDataPointerAddress(E, Object, Ptr,
  520. Adjustment.Ptr.MPT);
  521. break;
  522. }
  523. }
  524. }
  525. return MakeAddrLValue(Object, M->getType(), AlignmentSource::Decl);
  526. }
  527. RValue
  528. CodeGenFunction::EmitReferenceBindingToExpr(const Expr *E) {
  529. // Emit the expression as an lvalue.
  530. LValue LV = EmitLValue(E);
  531. assert(LV.isSimple());
  532. llvm::Value *Value = LV.getPointer();
  533. if (sanitizePerformTypeCheck() && !E->getType()->isFunctionType()) {
  534. // C++11 [dcl.ref]p5 (as amended by core issue 453):
  535. // If a glvalue to which a reference is directly bound designates neither
  536. // an existing object or function of an appropriate type nor a region of
  537. // storage of suitable size and alignment to contain an object of the
  538. // reference's type, the behavior is undefined.
  539. QualType Ty = E->getType();
  540. EmitTypeCheck(TCK_ReferenceBinding, E->getExprLoc(), Value, Ty);
  541. }
  542. return RValue::get(Value);
  543. }
  544. /// getAccessedFieldNo - Given an encoded value and a result number, return the
  545. /// input field number being accessed.
  546. unsigned CodeGenFunction::getAccessedFieldNo(unsigned Idx,
  547. const llvm::Constant *Elts) {
  548. return cast<llvm::ConstantInt>(Elts->getAggregateElement(Idx))
  549. ->getZExtValue();
  550. }
  551. /// Emit the hash_16_bytes function from include/llvm/ADT/Hashing.h.
  552. static llvm::Value *emitHash16Bytes(CGBuilderTy &Builder, llvm::Value *Low,
  553. llvm::Value *High) {
  554. llvm::Value *KMul = Builder.getInt64(0x9ddfea08eb382d69ULL);
  555. llvm::Value *K47 = Builder.getInt64(47);
  556. llvm::Value *A0 = Builder.CreateMul(Builder.CreateXor(Low, High), KMul);
  557. llvm::Value *A1 = Builder.CreateXor(Builder.CreateLShr(A0, K47), A0);
  558. llvm::Value *B0 = Builder.CreateMul(Builder.CreateXor(High, A1), KMul);
  559. llvm::Value *B1 = Builder.CreateXor(Builder.CreateLShr(B0, K47), B0);
  560. return Builder.CreateMul(B1, KMul);
  561. }
  562. bool CodeGenFunction::isNullPointerAllowed(TypeCheckKind TCK) {
  563. return TCK == TCK_DowncastPointer || TCK == TCK_Upcast ||
  564. TCK == TCK_UpcastToVirtualBase || TCK == TCK_DynamicOperation;
  565. }
  566. bool CodeGenFunction::isVptrCheckRequired(TypeCheckKind TCK, QualType Ty) {
  567. CXXRecordDecl *RD = Ty->getAsCXXRecordDecl();
  568. return (RD && RD->hasDefinition() && RD->isDynamicClass()) &&
  569. (TCK == TCK_MemberAccess || TCK == TCK_MemberCall ||
  570. TCK == TCK_DowncastPointer || TCK == TCK_DowncastReference ||
  571. TCK == TCK_UpcastToVirtualBase || TCK == TCK_DynamicOperation);
  572. }
  573. bool CodeGenFunction::sanitizePerformTypeCheck() const {
  574. return SanOpts.has(SanitizerKind::Null) |
  575. SanOpts.has(SanitizerKind::Alignment) |
  576. SanOpts.has(SanitizerKind::ObjectSize) |
  577. SanOpts.has(SanitizerKind::Vptr);
  578. }
  579. void CodeGenFunction::EmitTypeCheck(TypeCheckKind TCK, SourceLocation Loc,
  580. llvm::Value *Ptr, QualType Ty,
  581. CharUnits Alignment,
  582. SanitizerSet SkippedChecks,
  583. llvm::Value *ArraySize) {
  584. if (!sanitizePerformTypeCheck())
  585. return;
  586. // Don't check pointers outside the default address space. The null check
  587. // isn't correct, the object-size check isn't supported by LLVM, and we can't
  588. // communicate the addresses to the runtime handler for the vptr check.
  589. if (Ptr->getType()->getPointerAddressSpace())
  590. return;
  591. // Don't check pointers to volatile data. The behavior here is implementation-
  592. // defined.
  593. if (Ty.isVolatileQualified())
  594. return;
  595. SanitizerScope SanScope(this);
  596. SmallVector<std::pair<llvm::Value *, SanitizerMask>, 3> Checks;
  597. llvm::BasicBlock *Done = nullptr;
  598. // Quickly determine whether we have a pointer to an alloca. It's possible
  599. // to skip null checks, and some alignment checks, for these pointers. This
  600. // can reduce compile-time significantly.
  601. auto PtrToAlloca = dyn_cast<llvm::AllocaInst>(Ptr->stripPointerCasts());
  602. llvm::Value *True = llvm::ConstantInt::getTrue(getLLVMContext());
  603. llvm::Value *IsNonNull = nullptr;
  604. bool IsGuaranteedNonNull =
  605. SkippedChecks.has(SanitizerKind::Null) || PtrToAlloca;
  606. bool AllowNullPointers = isNullPointerAllowed(TCK);
  607. if ((SanOpts.has(SanitizerKind::Null) || AllowNullPointers) &&
  608. !IsGuaranteedNonNull) {
  609. // The glvalue must not be an empty glvalue.
  610. IsNonNull = Builder.CreateIsNotNull(Ptr);
  611. // The IR builder can constant-fold the null check if the pointer points to
  612. // a constant.
  613. IsGuaranteedNonNull = IsNonNull == True;
  614. // Skip the null check if the pointer is known to be non-null.
  615. if (!IsGuaranteedNonNull) {
  616. if (AllowNullPointers) {
  617. // When performing pointer casts, it's OK if the value is null.
  618. // Skip the remaining checks in that case.
  619. Done = createBasicBlock("null");
  620. llvm::BasicBlock *Rest = createBasicBlock("not.null");
  621. Builder.CreateCondBr(IsNonNull, Rest, Done);
  622. EmitBlock(Rest);
  623. } else {
  624. Checks.push_back(std::make_pair(IsNonNull, SanitizerKind::Null));
  625. }
  626. }
  627. }
  628. if (SanOpts.has(SanitizerKind::ObjectSize) &&
  629. !SkippedChecks.has(SanitizerKind::ObjectSize) &&
  630. !Ty->isIncompleteType()) {
  631. uint64_t TySize = getContext().getTypeSizeInChars(Ty).getQuantity();
  632. llvm::Value *Size = llvm::ConstantInt::get(IntPtrTy, TySize);
  633. if (ArraySize)
  634. Size = Builder.CreateMul(Size, ArraySize);
  635. // Degenerate case: new X[0] does not need an objectsize check.
  636. llvm::Constant *ConstantSize = dyn_cast<llvm::Constant>(Size);
  637. if (!ConstantSize || !ConstantSize->isNullValue()) {
  638. // The glvalue must refer to a large enough storage region.
  639. // FIXME: If Address Sanitizer is enabled, insert dynamic instrumentation
  640. // to check this.
  641. // FIXME: Get object address space
  642. llvm::Type *Tys[2] = { IntPtrTy, Int8PtrTy };
  643. llvm::Function *F = CGM.getIntrinsic(llvm::Intrinsic::objectsize, Tys);
  644. llvm::Value *Min = Builder.getFalse();
  645. llvm::Value *NullIsUnknown = Builder.getFalse();
  646. llvm::Value *Dynamic = Builder.getFalse();
  647. llvm::Value *CastAddr = Builder.CreateBitCast(Ptr, Int8PtrTy);
  648. llvm::Value *LargeEnough = Builder.CreateICmpUGE(
  649. Builder.CreateCall(F, {CastAddr, Min, NullIsUnknown, Dynamic}), Size);
  650. Checks.push_back(std::make_pair(LargeEnough, SanitizerKind::ObjectSize));
  651. }
  652. }
  653. uint64_t AlignVal = 0;
  654. llvm::Value *PtrAsInt = nullptr;
  655. if (SanOpts.has(SanitizerKind::Alignment) &&
  656. !SkippedChecks.has(SanitizerKind::Alignment)) {
  657. AlignVal = Alignment.getQuantity();
  658. if (!Ty->isIncompleteType() && !AlignVal)
  659. AlignVal = getContext().getTypeAlignInChars(Ty).getQuantity();
  660. // The glvalue must be suitably aligned.
  661. if (AlignVal > 1 &&
  662. (!PtrToAlloca || PtrToAlloca->getAlignment() < AlignVal)) {
  663. PtrAsInt = Builder.CreatePtrToInt(Ptr, IntPtrTy);
  664. llvm::Value *Align = Builder.CreateAnd(
  665. PtrAsInt, llvm::ConstantInt::get(IntPtrTy, AlignVal - 1));
  666. llvm::Value *Aligned =
  667. Builder.CreateICmpEQ(Align, llvm::ConstantInt::get(IntPtrTy, 0));
  668. if (Aligned != True)
  669. Checks.push_back(std::make_pair(Aligned, SanitizerKind::Alignment));
  670. }
  671. }
  672. if (Checks.size() > 0) {
  673. // Make sure we're not losing information. Alignment needs to be a power of
  674. // 2
  675. assert(!AlignVal || (uint64_t)1 << llvm::Log2_64(AlignVal) == AlignVal);
  676. llvm::Constant *StaticData[] = {
  677. EmitCheckSourceLocation(Loc), EmitCheckTypeDescriptor(Ty),
  678. llvm::ConstantInt::get(Int8Ty, AlignVal ? llvm::Log2_64(AlignVal) : 1),
  679. llvm::ConstantInt::get(Int8Ty, TCK)};
  680. EmitCheck(Checks, SanitizerHandler::TypeMismatch, StaticData,
  681. PtrAsInt ? PtrAsInt : Ptr);
  682. }
  683. // If possible, check that the vptr indicates that there is a subobject of
  684. // type Ty at offset zero within this object.
  685. //
  686. // C++11 [basic.life]p5,6:
  687. // [For storage which does not refer to an object within its lifetime]
  688. // The program has undefined behavior if:
  689. // -- the [pointer or glvalue] is used to access a non-static data member
  690. // or call a non-static member function
  691. if (SanOpts.has(SanitizerKind::Vptr) &&
  692. !SkippedChecks.has(SanitizerKind::Vptr) && isVptrCheckRequired(TCK, Ty)) {
  693. // Ensure that the pointer is non-null before loading it. If there is no
  694. // compile-time guarantee, reuse the run-time null check or emit a new one.
  695. if (!IsGuaranteedNonNull) {
  696. if (!IsNonNull)
  697. IsNonNull = Builder.CreateIsNotNull(Ptr);
  698. if (!Done)
  699. Done = createBasicBlock("vptr.null");
  700. llvm::BasicBlock *VptrNotNull = createBasicBlock("vptr.not.null");
  701. Builder.CreateCondBr(IsNonNull, VptrNotNull, Done);
  702. EmitBlock(VptrNotNull);
  703. }
  704. // Compute a hash of the mangled name of the type.
  705. //
  706. // FIXME: This is not guaranteed to be deterministic! Move to a
  707. // fingerprinting mechanism once LLVM provides one. For the time
  708. // being the implementation happens to be deterministic.
  709. SmallString<64> MangledName;
  710. llvm::raw_svector_ostream Out(MangledName);
  711. CGM.getCXXABI().getMangleContext().mangleCXXRTTI(Ty.getUnqualifiedType(),
  712. Out);
  713. // Blacklist based on the mangled type.
  714. if (!CGM.getContext().getSanitizerBlacklist().isBlacklistedType(
  715. SanitizerKind::Vptr, Out.str())) {
  716. llvm::hash_code TypeHash = hash_value(Out.str());
  717. // Load the vptr, and compute hash_16_bytes(TypeHash, vptr).
  718. llvm::Value *Low = llvm::ConstantInt::get(Int64Ty, TypeHash);
  719. llvm::Type *VPtrTy = llvm::PointerType::get(IntPtrTy, 0);
  720. Address VPtrAddr(Builder.CreateBitCast(Ptr, VPtrTy), getPointerAlign());
  721. llvm::Value *VPtrVal = Builder.CreateLoad(VPtrAddr);
  722. llvm::Value *High = Builder.CreateZExt(VPtrVal, Int64Ty);
  723. llvm::Value *Hash = emitHash16Bytes(Builder, Low, High);
  724. Hash = Builder.CreateTrunc(Hash, IntPtrTy);
  725. // Look the hash up in our cache.
  726. const int CacheSize = 128;
  727. llvm::Type *HashTable = llvm::ArrayType::get(IntPtrTy, CacheSize);
  728. llvm::Value *Cache = CGM.CreateRuntimeVariable(HashTable,
  729. "__ubsan_vptr_type_cache");
  730. llvm::Value *Slot = Builder.CreateAnd(Hash,
  731. llvm::ConstantInt::get(IntPtrTy,
  732. CacheSize-1));
  733. llvm::Value *Indices[] = { Builder.getInt32(0), Slot };
  734. llvm::Value *CacheVal =
  735. Builder.CreateAlignedLoad(Builder.CreateInBoundsGEP(Cache, Indices),
  736. getPointerAlign());
  737. // If the hash isn't in the cache, call a runtime handler to perform the
  738. // hard work of checking whether the vptr is for an object of the right
  739. // type. This will either fill in the cache and return, or produce a
  740. // diagnostic.
  741. llvm::Value *EqualHash = Builder.CreateICmpEQ(CacheVal, Hash);
  742. llvm::Constant *StaticData[] = {
  743. EmitCheckSourceLocation(Loc),
  744. EmitCheckTypeDescriptor(Ty),
  745. CGM.GetAddrOfRTTIDescriptor(Ty.getUnqualifiedType()),
  746. llvm::ConstantInt::get(Int8Ty, TCK)
  747. };
  748. llvm::Value *DynamicData[] = { Ptr, Hash };
  749. EmitCheck(std::make_pair(EqualHash, SanitizerKind::Vptr),
  750. SanitizerHandler::DynamicTypeCacheMiss, StaticData,
  751. DynamicData);
  752. }
  753. }
  754. if (Done) {
  755. Builder.CreateBr(Done);
  756. EmitBlock(Done);
  757. }
  758. }
  759. /// Determine whether this expression refers to a flexible array member in a
  760. /// struct. We disable array bounds checks for such members.
  761. static bool isFlexibleArrayMemberExpr(const Expr *E) {
  762. // For compatibility with existing code, we treat arrays of length 0 or
  763. // 1 as flexible array members.
  764. const ArrayType *AT = E->getType()->castAsArrayTypeUnsafe();
  765. if (const auto *CAT = dyn_cast<ConstantArrayType>(AT)) {
  766. if (CAT->getSize().ugt(1))
  767. return false;
  768. } else if (!isa<IncompleteArrayType>(AT))
  769. return false;
  770. E = E->IgnoreParens();
  771. // A flexible array member must be the last member in the class.
  772. if (const auto *ME = dyn_cast<MemberExpr>(E)) {
  773. // FIXME: If the base type of the member expr is not FD->getParent(),
  774. // this should not be treated as a flexible array member access.
  775. if (const auto *FD = dyn_cast<FieldDecl>(ME->getMemberDecl())) {
  776. RecordDecl::field_iterator FI(
  777. DeclContext::decl_iterator(const_cast<FieldDecl *>(FD)));
  778. return ++FI == FD->getParent()->field_end();
  779. }
  780. } else if (const auto *IRE = dyn_cast<ObjCIvarRefExpr>(E)) {
  781. return IRE->getDecl()->getNextIvar() == nullptr;
  782. }
  783. return false;
  784. }
  785. llvm::Value *CodeGenFunction::LoadPassedObjectSize(const Expr *E,
  786. QualType EltTy) {
  787. ASTContext &C = getContext();
  788. uint64_t EltSize = C.getTypeSizeInChars(EltTy).getQuantity();
  789. if (!EltSize)
  790. return nullptr;
  791. auto *ArrayDeclRef = dyn_cast<DeclRefExpr>(E->IgnoreParenImpCasts());
  792. if (!ArrayDeclRef)
  793. return nullptr;
  794. auto *ParamDecl = dyn_cast<ParmVarDecl>(ArrayDeclRef->getDecl());
  795. if (!ParamDecl)
  796. return nullptr;
  797. auto *POSAttr = ParamDecl->getAttr<PassObjectSizeAttr>();
  798. if (!POSAttr)
  799. return nullptr;
  800. // Don't load the size if it's a lower bound.
  801. int POSType = POSAttr->getType();
  802. if (POSType != 0 && POSType != 1)
  803. return nullptr;
  804. // Find the implicit size parameter.
  805. auto PassedSizeIt = SizeArguments.find(ParamDecl);
  806. if (PassedSizeIt == SizeArguments.end())
  807. return nullptr;
  808. const ImplicitParamDecl *PassedSizeDecl = PassedSizeIt->second;
  809. assert(LocalDeclMap.count(PassedSizeDecl) && "Passed size not loadable");
  810. Address AddrOfSize = LocalDeclMap.find(PassedSizeDecl)->second;
  811. llvm::Value *SizeInBytes = EmitLoadOfScalar(AddrOfSize, /*Volatile=*/false,
  812. C.getSizeType(), E->getExprLoc());
  813. llvm::Value *SizeOfElement =
  814. llvm::ConstantInt::get(SizeInBytes->getType(), EltSize);
  815. return Builder.CreateUDiv(SizeInBytes, SizeOfElement);
  816. }
  817. /// If Base is known to point to the start of an array, return the length of
  818. /// that array. Return 0 if the length cannot be determined.
  819. static llvm::Value *getArrayIndexingBound(
  820. CodeGenFunction &CGF, const Expr *Base, QualType &IndexedType) {
  821. // For the vector indexing extension, the bound is the number of elements.
  822. if (const VectorType *VT = Base->getType()->getAs<VectorType>()) {
  823. IndexedType = Base->getType();
  824. return CGF.Builder.getInt32(VT->getNumElements());
  825. }
  826. Base = Base->IgnoreParens();
  827. if (const auto *CE = dyn_cast<CastExpr>(Base)) {
  828. if (CE->getCastKind() == CK_ArrayToPointerDecay &&
  829. !isFlexibleArrayMemberExpr(CE->getSubExpr())) {
  830. IndexedType = CE->getSubExpr()->getType();
  831. const ArrayType *AT = IndexedType->castAsArrayTypeUnsafe();
  832. if (const auto *CAT = dyn_cast<ConstantArrayType>(AT))
  833. return CGF.Builder.getInt(CAT->getSize());
  834. else if (const auto *VAT = dyn_cast<VariableArrayType>(AT))
  835. return CGF.getVLASize(VAT).NumElts;
  836. // Ignore pass_object_size here. It's not applicable on decayed pointers.
  837. }
  838. }
  839. QualType EltTy{Base->getType()->getPointeeOrArrayElementType(), 0};
  840. if (llvm::Value *POS = CGF.LoadPassedObjectSize(Base, EltTy)) {
  841. IndexedType = Base->getType();
  842. return POS;
  843. }
  844. return nullptr;
  845. }
  846. void CodeGenFunction::EmitBoundsCheck(const Expr *E, const Expr *Base,
  847. llvm::Value *Index, QualType IndexType,
  848. bool Accessed) {
  849. assert(SanOpts.has(SanitizerKind::ArrayBounds) &&
  850. "should not be called unless adding bounds checks");
  851. SanitizerScope SanScope(this);
  852. QualType IndexedType;
  853. llvm::Value *Bound = getArrayIndexingBound(*this, Base, IndexedType);
  854. if (!Bound)
  855. return;
  856. bool IndexSigned = IndexType->isSignedIntegerOrEnumerationType();
  857. llvm::Value *IndexVal = Builder.CreateIntCast(Index, SizeTy, IndexSigned);
  858. llvm::Value *BoundVal = Builder.CreateIntCast(Bound, SizeTy, false);
  859. llvm::Constant *StaticData[] = {
  860. EmitCheckSourceLocation(E->getExprLoc()),
  861. EmitCheckTypeDescriptor(IndexedType),
  862. EmitCheckTypeDescriptor(IndexType)
  863. };
  864. llvm::Value *Check = Accessed ? Builder.CreateICmpULT(IndexVal, BoundVal)
  865. : Builder.CreateICmpULE(IndexVal, BoundVal);
  866. EmitCheck(std::make_pair(Check, SanitizerKind::ArrayBounds),
  867. SanitizerHandler::OutOfBounds, StaticData, Index);
  868. }
  869. CodeGenFunction::ComplexPairTy CodeGenFunction::
  870. EmitComplexPrePostIncDec(const UnaryOperator *E, LValue LV,
  871. bool isInc, bool isPre) {
  872. ComplexPairTy InVal = EmitLoadOfComplex(LV, E->getExprLoc());
  873. llvm::Value *NextVal;
  874. if (isa<llvm::IntegerType>(InVal.first->getType())) {
  875. uint64_t AmountVal = isInc ? 1 : -1;
  876. NextVal = llvm::ConstantInt::get(InVal.first->getType(), AmountVal, true);
  877. // Add the inc/dec to the real part.
  878. NextVal = Builder.CreateAdd(InVal.first, NextVal, isInc ? "inc" : "dec");
  879. } else {
  880. QualType ElemTy = E->getType()->castAs<ComplexType>()->getElementType();
  881. llvm::APFloat FVal(getContext().getFloatTypeSemantics(ElemTy), 1);
  882. if (!isInc)
  883. FVal.changeSign();
  884. NextVal = llvm::ConstantFP::get(getLLVMContext(), FVal);
  885. // Add the inc/dec to the real part.
  886. NextVal = Builder.CreateFAdd(InVal.first, NextVal, isInc ? "inc" : "dec");
  887. }
  888. ComplexPairTy IncVal(NextVal, InVal.second);
  889. // Store the updated result through the lvalue.
  890. EmitStoreOfComplex(IncVal, LV, /*init*/ false);
  891. // If this is a postinc, return the value read from memory, otherwise use the
  892. // updated value.
  893. return isPre ? IncVal : InVal;
  894. }
  895. void CodeGenModule::EmitExplicitCastExprType(const ExplicitCastExpr *E,
  896. CodeGenFunction *CGF) {
  897. // Bind VLAs in the cast type.
  898. if (CGF && E->getType()->isVariablyModifiedType())
  899. CGF->EmitVariablyModifiedType(E->getType());
  900. if (CGDebugInfo *DI = getModuleDebugInfo())
  901. DI->EmitExplicitCastType(E->getType());
  902. }
  903. //===----------------------------------------------------------------------===//
  904. // LValue Expression Emission
  905. //===----------------------------------------------------------------------===//
  906. /// EmitPointerWithAlignment - Given an expression of pointer type, try to
  907. /// derive a more accurate bound on the alignment of the pointer.
  908. Address CodeGenFunction::EmitPointerWithAlignment(const Expr *E,
  909. LValueBaseInfo *BaseInfo,
  910. TBAAAccessInfo *TBAAInfo) {
  911. // We allow this with ObjC object pointers because of fragile ABIs.
  912. assert(E->getType()->isPointerType() ||
  913. E->getType()->isObjCObjectPointerType());
  914. E = E->IgnoreParens();
  915. // Casts:
  916. if (const CastExpr *CE = dyn_cast<CastExpr>(E)) {
  917. if (const auto *ECE = dyn_cast<ExplicitCastExpr>(CE))
  918. CGM.EmitExplicitCastExprType(ECE, this);
  919. switch (CE->getCastKind()) {
  920. // Non-converting casts (but not C's implicit conversion from void*).
  921. case CK_BitCast:
  922. case CK_NoOp:
  923. case CK_AddressSpaceConversion:
  924. if (auto PtrTy = CE->getSubExpr()->getType()->getAs<PointerType>()) {
  925. if (PtrTy->getPointeeType()->isVoidType())
  926. break;
  927. LValueBaseInfo InnerBaseInfo;
  928. TBAAAccessInfo InnerTBAAInfo;
  929. Address Addr = EmitPointerWithAlignment(CE->getSubExpr(),
  930. &InnerBaseInfo,
  931. &InnerTBAAInfo);
  932. if (BaseInfo) *BaseInfo = InnerBaseInfo;
  933. if (TBAAInfo) *TBAAInfo = InnerTBAAInfo;
  934. if (isa<ExplicitCastExpr>(CE)) {
  935. LValueBaseInfo TargetTypeBaseInfo;
  936. TBAAAccessInfo TargetTypeTBAAInfo;
  937. CharUnits Align = getNaturalPointeeTypeAlignment(E->getType(),
  938. &TargetTypeBaseInfo,
  939. &TargetTypeTBAAInfo);
  940. if (TBAAInfo)
  941. *TBAAInfo = CGM.mergeTBAAInfoForCast(*TBAAInfo,
  942. TargetTypeTBAAInfo);
  943. // If the source l-value is opaque, honor the alignment of the
  944. // casted-to type.
  945. if (InnerBaseInfo.getAlignmentSource() != AlignmentSource::Decl) {
  946. if (BaseInfo)
  947. BaseInfo->mergeForCast(TargetTypeBaseInfo);
  948. Addr = Address(Addr.getPointer(), Align);
  949. }
  950. }
  951. if (SanOpts.has(SanitizerKind::CFIUnrelatedCast) &&
  952. CE->getCastKind() == CK_BitCast) {
  953. if (auto PT = E->getType()->getAs<PointerType>())
  954. EmitVTablePtrCheckForCast(PT->getPointeeType(), Addr.getPointer(),
  955. /*MayBeNull=*/true,
  956. CodeGenFunction::CFITCK_UnrelatedCast,
  957. CE->getBeginLoc());
  958. }
  959. return CE->getCastKind() != CK_AddressSpaceConversion
  960. ? Builder.CreateBitCast(Addr, ConvertType(E->getType()))
  961. : Builder.CreateAddrSpaceCast(Addr,
  962. ConvertType(E->getType()));
  963. }
  964. break;
  965. // Array-to-pointer decay.
  966. case CK_ArrayToPointerDecay:
  967. return EmitArrayToPointerDecay(CE->getSubExpr(), BaseInfo, TBAAInfo);
  968. // Derived-to-base conversions.
  969. case CK_UncheckedDerivedToBase:
  970. case CK_DerivedToBase: {
  971. // TODO: Support accesses to members of base classes in TBAA. For now, we
  972. // conservatively pretend that the complete object is of the base class
  973. // type.
  974. if (TBAAInfo)
  975. *TBAAInfo = CGM.getTBAAAccessInfo(E->getType());
  976. Address Addr = EmitPointerWithAlignment(CE->getSubExpr(), BaseInfo);
  977. auto Derived = CE->getSubExpr()->getType()->getPointeeCXXRecordDecl();
  978. return GetAddressOfBaseClass(Addr, Derived,
  979. CE->path_begin(), CE->path_end(),
  980. ShouldNullCheckClassCastValue(CE),
  981. CE->getExprLoc());
  982. }
  983. // TODO: Is there any reason to treat base-to-derived conversions
  984. // specially?
  985. default:
  986. break;
  987. }
  988. }
  989. // Unary &.
  990. if (const UnaryOperator *UO = dyn_cast<UnaryOperator>(E)) {
  991. if (UO->getOpcode() == UO_AddrOf) {
  992. LValue LV = EmitLValue(UO->getSubExpr());
  993. if (BaseInfo) *BaseInfo = LV.getBaseInfo();
  994. if (TBAAInfo) *TBAAInfo = LV.getTBAAInfo();
  995. return LV.getAddress();
  996. }
  997. }
  998. // TODO: conditional operators, comma.
  999. // Otherwise, use the alignment of the type.
  1000. CharUnits Align = getNaturalPointeeTypeAlignment(E->getType(), BaseInfo,
  1001. TBAAInfo);
  1002. return Address(EmitScalarExpr(E), Align);
  1003. }
  1004. RValue CodeGenFunction::GetUndefRValue(QualType Ty) {
  1005. if (Ty->isVoidType())
  1006. return RValue::get(nullptr);
  1007. switch (getEvaluationKind(Ty)) {
  1008. case TEK_Complex: {
  1009. llvm::Type *EltTy =
  1010. ConvertType(Ty->castAs<ComplexType>()->getElementType());
  1011. llvm::Value *U = llvm::UndefValue::get(EltTy);
  1012. return RValue::getComplex(std::make_pair(U, U));
  1013. }
  1014. // If this is a use of an undefined aggregate type, the aggregate must have an
  1015. // identifiable address. Just because the contents of the value are undefined
  1016. // doesn't mean that the address can't be taken and compared.
  1017. case TEK_Aggregate: {
  1018. Address DestPtr = CreateMemTemp(Ty, "undef.agg.tmp");
  1019. return RValue::getAggregate(DestPtr);
  1020. }
  1021. case TEK_Scalar:
  1022. return RValue::get(llvm::UndefValue::get(ConvertType(Ty)));
  1023. }
  1024. llvm_unreachable("bad evaluation kind");
  1025. }
  1026. RValue CodeGenFunction::EmitUnsupportedRValue(const Expr *E,
  1027. const char *Name) {
  1028. ErrorUnsupported(E, Name);
  1029. return GetUndefRValue(E->getType());
  1030. }
  1031. LValue CodeGenFunction::EmitUnsupportedLValue(const Expr *E,
  1032. const char *Name) {
  1033. ErrorUnsupported(E, Name);
  1034. llvm::Type *Ty = llvm::PointerType::getUnqual(ConvertType(E->getType()));
  1035. return MakeAddrLValue(Address(llvm::UndefValue::get(Ty), CharUnits::One()),
  1036. E->getType());
  1037. }
  1038. bool CodeGenFunction::IsWrappedCXXThis(const Expr *Obj) {
  1039. const Expr *Base = Obj;
  1040. while (!isa<CXXThisExpr>(Base)) {
  1041. // The result of a dynamic_cast can be null.
  1042. if (isa<CXXDynamicCastExpr>(Base))
  1043. return false;
  1044. if (const auto *CE = dyn_cast<CastExpr>(Base)) {
  1045. Base = CE->getSubExpr();
  1046. } else if (const auto *PE = dyn_cast<ParenExpr>(Base)) {
  1047. Base = PE->getSubExpr();
  1048. } else if (const auto *UO = dyn_cast<UnaryOperator>(Base)) {
  1049. if (UO->getOpcode() == UO_Extension)
  1050. Base = UO->getSubExpr();
  1051. else
  1052. return false;
  1053. } else {
  1054. return false;
  1055. }
  1056. }
  1057. return true;
  1058. }
  1059. LValue CodeGenFunction::EmitCheckedLValue(const Expr *E, TypeCheckKind TCK) {
  1060. LValue LV;
  1061. if (SanOpts.has(SanitizerKind::ArrayBounds) && isa<ArraySubscriptExpr>(E))
  1062. LV = EmitArraySubscriptExpr(cast<ArraySubscriptExpr>(E), /*Accessed*/true);
  1063. else
  1064. LV = EmitLValue(E);
  1065. if (!isa<DeclRefExpr>(E) && !LV.isBitField() && LV.isSimple()) {
  1066. SanitizerSet SkippedChecks;
  1067. if (const auto *ME = dyn_cast<MemberExpr>(E)) {
  1068. bool IsBaseCXXThis = IsWrappedCXXThis(ME->getBase());
  1069. if (IsBaseCXXThis)
  1070. SkippedChecks.set(SanitizerKind::Alignment, true);
  1071. if (IsBaseCXXThis || isa<DeclRefExpr>(ME->getBase()))
  1072. SkippedChecks.set(SanitizerKind::Null, true);
  1073. }
  1074. EmitTypeCheck(TCK, E->getExprLoc(), LV.getPointer(),
  1075. E->getType(), LV.getAlignment(), SkippedChecks);
  1076. }
  1077. return LV;
  1078. }
  1079. /// EmitLValue - Emit code to compute a designator that specifies the location
  1080. /// of the expression.
  1081. ///
  1082. /// This can return one of two things: a simple address or a bitfield reference.
  1083. /// In either case, the LLVM Value* in the LValue structure is guaranteed to be
  1084. /// an LLVM pointer type.
  1085. ///
  1086. /// If this returns a bitfield reference, nothing about the pointee type of the
  1087. /// LLVM value is known: For example, it may not be a pointer to an integer.
  1088. ///
  1089. /// If this returns a normal address, and if the lvalue's C type is fixed size,
  1090. /// this method guarantees that the returned pointer type will point to an LLVM
  1091. /// type of the same size of the lvalue's type. If the lvalue has a variable
  1092. /// length type, this is not possible.
  1093. ///
  1094. LValue CodeGenFunction::EmitLValue(const Expr *E) {
  1095. ApplyDebugLocation DL(*this, E);
  1096. switch (E->getStmtClass()) {
  1097. default: return EmitUnsupportedLValue(E, "l-value expression");
  1098. case Expr::ObjCPropertyRefExprClass:
  1099. llvm_unreachable("cannot emit a property reference directly");
  1100. case Expr::ObjCSelectorExprClass:
  1101. return EmitObjCSelectorLValue(cast<ObjCSelectorExpr>(E));
  1102. case Expr::ObjCIsaExprClass:
  1103. return EmitObjCIsaExpr(cast<ObjCIsaExpr>(E));
  1104. case Expr::BinaryOperatorClass:
  1105. return EmitBinaryOperatorLValue(cast<BinaryOperator>(E));
  1106. case Expr::CompoundAssignOperatorClass: {
  1107. QualType Ty = E->getType();
  1108. if (const AtomicType *AT = Ty->getAs<AtomicType>())
  1109. Ty = AT->getValueType();
  1110. if (!Ty->isAnyComplexType())
  1111. return EmitCompoundAssignmentLValue(cast<CompoundAssignOperator>(E));
  1112. return EmitComplexCompoundAssignmentLValue(cast<CompoundAssignOperator>(E));
  1113. }
  1114. case Expr::CallExprClass:
  1115. case Expr::CXXMemberCallExprClass:
  1116. case Expr::CXXOperatorCallExprClass:
  1117. case Expr::UserDefinedLiteralClass:
  1118. return EmitCallExprLValue(cast<CallExpr>(E));
  1119. case Expr::CXXRewrittenBinaryOperatorClass:
  1120. return EmitLValue(cast<CXXRewrittenBinaryOperator>(E)->getSemanticForm());
  1121. case Expr::VAArgExprClass:
  1122. return EmitVAArgExprLValue(cast<VAArgExpr>(E));
  1123. case Expr::DeclRefExprClass:
  1124. return EmitDeclRefLValue(cast<DeclRefExpr>(E));
  1125. case Expr::ConstantExprClass:
  1126. return EmitLValue(cast<ConstantExpr>(E)->getSubExpr());
  1127. case Expr::ParenExprClass:
  1128. return EmitLValue(cast<ParenExpr>(E)->getSubExpr());
  1129. case Expr::GenericSelectionExprClass:
  1130. return EmitLValue(cast<GenericSelectionExpr>(E)->getResultExpr());
  1131. case Expr::PredefinedExprClass:
  1132. return EmitPredefinedLValue(cast<PredefinedExpr>(E));
  1133. case Expr::StringLiteralClass:
  1134. return EmitStringLiteralLValue(cast<StringLiteral>(E));
  1135. case Expr::ObjCEncodeExprClass:
  1136. return EmitObjCEncodeExprLValue(cast<ObjCEncodeExpr>(E));
  1137. case Expr::PseudoObjectExprClass:
  1138. return EmitPseudoObjectLValue(cast<PseudoObjectExpr>(E));
  1139. case Expr::InitListExprClass:
  1140. return EmitInitListLValue(cast<InitListExpr>(E));
  1141. case Expr::CXXTemporaryObjectExprClass:
  1142. case Expr::CXXConstructExprClass:
  1143. return EmitCXXConstructLValue(cast<CXXConstructExpr>(E));
  1144. case Expr::CXXBindTemporaryExprClass:
  1145. return EmitCXXBindTemporaryLValue(cast<CXXBindTemporaryExpr>(E));
  1146. case Expr::CXXUuidofExprClass:
  1147. return EmitCXXUuidofLValue(cast<CXXUuidofExpr>(E));
  1148. case Expr::LambdaExprClass:
  1149. return EmitAggExprToLValue(E);
  1150. case Expr::ExprWithCleanupsClass: {
  1151. const auto *cleanups = cast<ExprWithCleanups>(E);
  1152. enterFullExpression(cleanups);
  1153. RunCleanupsScope Scope(*this);
  1154. LValue LV = EmitLValue(cleanups->getSubExpr());
  1155. if (LV.isSimple()) {
  1156. // Defend against branches out of gnu statement expressions surrounded by
  1157. // cleanups.
  1158. llvm::Value *V = LV.getPointer();
  1159. Scope.ForceCleanup({&V});
  1160. return LValue::MakeAddr(Address(V, LV.getAlignment()), LV.getType(),
  1161. getContext(), LV.getBaseInfo(), LV.getTBAAInfo());
  1162. }
  1163. // FIXME: Is it possible to create an ExprWithCleanups that produces a
  1164. // bitfield lvalue or some other non-simple lvalue?
  1165. return LV;
  1166. }
  1167. case Expr::CXXDefaultArgExprClass: {
  1168. auto *DAE = cast<CXXDefaultArgExpr>(E);
  1169. CXXDefaultArgExprScope Scope(*this, DAE);
  1170. return EmitLValue(DAE->getExpr());
  1171. }
  1172. case Expr::CXXDefaultInitExprClass: {
  1173. auto *DIE = cast<CXXDefaultInitExpr>(E);
  1174. CXXDefaultInitExprScope Scope(*this, DIE);
  1175. return EmitLValue(DIE->getExpr());
  1176. }
  1177. case Expr::CXXTypeidExprClass:
  1178. return EmitCXXTypeidLValue(cast<CXXTypeidExpr>(E));
  1179. case Expr::ObjCMessageExprClass:
  1180. return EmitObjCMessageExprLValue(cast<ObjCMessageExpr>(E));
  1181. case Expr::ObjCIvarRefExprClass:
  1182. return EmitObjCIvarRefLValue(cast<ObjCIvarRefExpr>(E));
  1183. case Expr::StmtExprClass:
  1184. return EmitStmtExprLValue(cast<StmtExpr>(E));
  1185. case Expr::UnaryOperatorClass:
  1186. return EmitUnaryOpLValue(cast<UnaryOperator>(E));
  1187. case Expr::ArraySubscriptExprClass:
  1188. return EmitArraySubscriptExpr(cast<ArraySubscriptExpr>(E));
  1189. case Expr::OMPArraySectionExprClass:
  1190. return EmitOMPArraySectionExpr(cast<OMPArraySectionExpr>(E));
  1191. case Expr::ExtVectorElementExprClass:
  1192. return EmitExtVectorElementExpr(cast<ExtVectorElementExpr>(E));
  1193. case Expr::MemberExprClass:
  1194. return EmitMemberExpr(cast<MemberExpr>(E));
  1195. case Expr::CompoundLiteralExprClass:
  1196. return EmitCompoundLiteralLValue(cast<CompoundLiteralExpr>(E));
  1197. case Expr::ConditionalOperatorClass:
  1198. return EmitConditionalOperatorLValue(cast<ConditionalOperator>(E));
  1199. case Expr::BinaryConditionalOperatorClass:
  1200. return EmitConditionalOperatorLValue(cast<BinaryConditionalOperator>(E));
  1201. case Expr::ChooseExprClass:
  1202. return EmitLValue(cast<ChooseExpr>(E)->getChosenSubExpr());
  1203. case Expr::OpaqueValueExprClass:
  1204. return EmitOpaqueValueLValue(cast<OpaqueValueExpr>(E));
  1205. case Expr::SubstNonTypeTemplateParmExprClass:
  1206. return EmitLValue(cast<SubstNonTypeTemplateParmExpr>(E)->getReplacement());
  1207. case Expr::ImplicitCastExprClass:
  1208. case Expr::CStyleCastExprClass:
  1209. case Expr::CXXFunctionalCastExprClass:
  1210. case Expr::CXXStaticCastExprClass:
  1211. case Expr::CXXDynamicCastExprClass:
  1212. case Expr::CXXReinterpretCastExprClass:
  1213. case Expr::CXXConstCastExprClass:
  1214. case Expr::ObjCBridgedCastExprClass:
  1215. return EmitCastLValue(cast<CastExpr>(E));
  1216. case Expr::MaterializeTemporaryExprClass:
  1217. return EmitMaterializeTemporaryExpr(cast<MaterializeTemporaryExpr>(E));
  1218. case Expr::CoawaitExprClass:
  1219. return EmitCoawaitLValue(cast<CoawaitExpr>(E));
  1220. case Expr::CoyieldExprClass:
  1221. return EmitCoyieldLValue(cast<CoyieldExpr>(E));
  1222. }
  1223. }
  1224. /// Given an object of the given canonical type, can we safely copy a
  1225. /// value out of it based on its initializer?
  1226. static bool isConstantEmittableObjectType(QualType type) {
  1227. assert(type.isCanonical());
  1228. assert(!type->isReferenceType());
  1229. // Must be const-qualified but non-volatile.
  1230. Qualifiers qs = type.getLocalQualifiers();
  1231. if (!qs.hasConst() || qs.hasVolatile()) return false;
  1232. // Otherwise, all object types satisfy this except C++ classes with
  1233. // mutable subobjects or non-trivial copy/destroy behavior.
  1234. if (const auto *RT = dyn_cast<RecordType>(type))
  1235. if (const auto *RD = dyn_cast<CXXRecordDecl>(RT->getDecl()))
  1236. if (RD->hasMutableFields() || !RD->isTrivial())
  1237. return false;
  1238. return true;
  1239. }
  1240. /// Can we constant-emit a load of a reference to a variable of the
  1241. /// given type? This is different from predicates like
  1242. /// Decl::mightBeUsableInConstantExpressions because we do want it to apply
  1243. /// in situations that don't necessarily satisfy the language's rules
  1244. /// for this (e.g. C++'s ODR-use rules). For example, we want to able
  1245. /// to do this with const float variables even if those variables
  1246. /// aren't marked 'constexpr'.
  1247. enum ConstantEmissionKind {
  1248. CEK_None,
  1249. CEK_AsReferenceOnly,
  1250. CEK_AsValueOrReference,
  1251. CEK_AsValueOnly
  1252. };
  1253. static ConstantEmissionKind checkVarTypeForConstantEmission(QualType type) {
  1254. type = type.getCanonicalType();
  1255. if (const auto *ref = dyn_cast<ReferenceType>(type)) {
  1256. if (isConstantEmittableObjectType(ref->getPointeeType()))
  1257. return CEK_AsValueOrReference;
  1258. return CEK_AsReferenceOnly;
  1259. }
  1260. if (isConstantEmittableObjectType(type))
  1261. return CEK_AsValueOnly;
  1262. return CEK_None;
  1263. }
  1264. /// Try to emit a reference to the given value without producing it as
  1265. /// an l-value. This is just an optimization, but it avoids us needing
  1266. /// to emit global copies of variables if they're named without triggering
  1267. /// a formal use in a context where we can't emit a direct reference to them,
  1268. /// for instance if a block or lambda or a member of a local class uses a
  1269. /// const int variable or constexpr variable from an enclosing function.
  1270. CodeGenFunction::ConstantEmission
  1271. CodeGenFunction::tryEmitAsConstant(DeclRefExpr *refExpr) {
  1272. ValueDecl *value = refExpr->getDecl();
  1273. // The value needs to be an enum constant or a constant variable.
  1274. ConstantEmissionKind CEK;
  1275. if (isa<ParmVarDecl>(value)) {
  1276. CEK = CEK_None;
  1277. } else if (auto *var = dyn_cast<VarDecl>(value)) {
  1278. CEK = checkVarTypeForConstantEmission(var->getType());
  1279. } else if (isa<EnumConstantDecl>(value)) {
  1280. CEK = CEK_AsValueOnly;
  1281. } else {
  1282. CEK = CEK_None;
  1283. }
  1284. if (CEK == CEK_None) return ConstantEmission();
  1285. Expr::EvalResult result;
  1286. bool resultIsReference;
  1287. QualType resultType;
  1288. // It's best to evaluate all the way as an r-value if that's permitted.
  1289. if (CEK != CEK_AsReferenceOnly &&
  1290. refExpr->EvaluateAsRValue(result, getContext())) {
  1291. resultIsReference = false;
  1292. resultType = refExpr->getType();
  1293. // Otherwise, try to evaluate as an l-value.
  1294. } else if (CEK != CEK_AsValueOnly &&
  1295. refExpr->EvaluateAsLValue(result, getContext())) {
  1296. resultIsReference = true;
  1297. resultType = value->getType();
  1298. // Failure.
  1299. } else {
  1300. return ConstantEmission();
  1301. }
  1302. // In any case, if the initializer has side-effects, abandon ship.
  1303. if (result.HasSideEffects)
  1304. return ConstantEmission();
  1305. // Emit as a constant.
  1306. auto C = ConstantEmitter(*this).emitAbstract(refExpr->getLocation(),
  1307. result.Val, resultType);
  1308. // Make sure we emit a debug reference to the global variable.
  1309. // This should probably fire even for
  1310. if (isa<VarDecl>(value)) {
  1311. if (!getContext().DeclMustBeEmitted(cast<VarDecl>(value)))
  1312. EmitDeclRefExprDbgValue(refExpr, result.Val);
  1313. } else {
  1314. assert(isa<EnumConstantDecl>(value));
  1315. EmitDeclRefExprDbgValue(refExpr, result.Val);
  1316. }
  1317. // If we emitted a reference constant, we need to dereference that.
  1318. if (resultIsReference)
  1319. return ConstantEmission::forReference(C);
  1320. return ConstantEmission::forValue(C);
  1321. }
  1322. static DeclRefExpr *tryToConvertMemberExprToDeclRefExpr(CodeGenFunction &CGF,
  1323. const MemberExpr *ME) {
  1324. if (auto *VD = dyn_cast<VarDecl>(ME->getMemberDecl())) {
  1325. // Try to emit static variable member expressions as DREs.
  1326. return DeclRefExpr::Create(
  1327. CGF.getContext(), NestedNameSpecifierLoc(), SourceLocation(), VD,
  1328. /*RefersToEnclosingVariableOrCapture=*/false, ME->getExprLoc(),
  1329. ME->getType(), ME->getValueKind(), nullptr, nullptr, ME->isNonOdrUse());
  1330. }
  1331. return nullptr;
  1332. }
  1333. CodeGenFunction::ConstantEmission
  1334. CodeGenFunction::tryEmitAsConstant(const MemberExpr *ME) {
  1335. if (DeclRefExpr *DRE = tryToConvertMemberExprToDeclRefExpr(*this, ME))
  1336. return tryEmitAsConstant(DRE);
  1337. return ConstantEmission();
  1338. }
  1339. llvm::Value *CodeGenFunction::emitScalarConstant(
  1340. const CodeGenFunction::ConstantEmission &Constant, Expr *E) {
  1341. assert(Constant && "not a constant");
  1342. if (Constant.isReference())
  1343. return EmitLoadOfLValue(Constant.getReferenceLValue(*this, E),
  1344. E->getExprLoc())
  1345. .getScalarVal();
  1346. return Constant.getValue();
  1347. }
  1348. llvm::Value *CodeGenFunction::EmitLoadOfScalar(LValue lvalue,
  1349. SourceLocation Loc) {
  1350. return EmitLoadOfScalar(lvalue.getAddress(), lvalue.isVolatile(),
  1351. lvalue.getType(), Loc, lvalue.getBaseInfo(),
  1352. lvalue.getTBAAInfo(), lvalue.isNontemporal());
  1353. }
  1354. static bool hasBooleanRepresentation(QualType Ty) {
  1355. if (Ty->isBooleanType())
  1356. return true;
  1357. if (const EnumType *ET = Ty->getAs<EnumType>())
  1358. return ET->getDecl()->getIntegerType()->isBooleanType();
  1359. if (const AtomicType *AT = Ty->getAs<AtomicType>())
  1360. return hasBooleanRepresentation(AT->getValueType());
  1361. return false;
  1362. }
  1363. static bool getRangeForType(CodeGenFunction &CGF, QualType Ty,
  1364. llvm::APInt &Min, llvm::APInt &End,
  1365. bool StrictEnums, bool IsBool) {
  1366. const EnumType *ET = Ty->getAs<EnumType>();
  1367. bool IsRegularCPlusPlusEnum = CGF.getLangOpts().CPlusPlus && StrictEnums &&
  1368. ET && !ET->getDecl()->isFixed();
  1369. if (!IsBool && !IsRegularCPlusPlusEnum)
  1370. return false;
  1371. if (IsBool) {
  1372. Min = llvm::APInt(CGF.getContext().getTypeSize(Ty), 0);
  1373. End = llvm::APInt(CGF.getContext().getTypeSize(Ty), 2);
  1374. } else {
  1375. const EnumDecl *ED = ET->getDecl();
  1376. llvm::Type *LTy = CGF.ConvertTypeForMem(ED->getIntegerType());
  1377. unsigned Bitwidth = LTy->getScalarSizeInBits();
  1378. unsigned NumNegativeBits = ED->getNumNegativeBits();
  1379. unsigned NumPositiveBits = ED->getNumPositiveBits();
  1380. if (NumNegativeBits) {
  1381. unsigned NumBits = std::max(NumNegativeBits, NumPositiveBits + 1);
  1382. assert(NumBits <= Bitwidth);
  1383. End = llvm::APInt(Bitwidth, 1) << (NumBits - 1);
  1384. Min = -End;
  1385. } else {
  1386. assert(NumPositiveBits <= Bitwidth);
  1387. End = llvm::APInt(Bitwidth, 1) << NumPositiveBits;
  1388. Min = llvm::APInt(Bitwidth, 0);
  1389. }
  1390. }
  1391. return true;
  1392. }
  1393. llvm::MDNode *CodeGenFunction::getRangeForLoadFromType(QualType Ty) {
  1394. llvm::APInt Min, End;
  1395. if (!getRangeForType(*this, Ty, Min, End, CGM.getCodeGenOpts().StrictEnums,
  1396. hasBooleanRepresentation(Ty)))
  1397. return nullptr;
  1398. llvm::MDBuilder MDHelper(getLLVMContext());
  1399. return MDHelper.createRange(Min, End);
  1400. }
  1401. bool CodeGenFunction::EmitScalarRangeCheck(llvm::Value *Value, QualType Ty,
  1402. SourceLocation Loc) {
  1403. bool HasBoolCheck = SanOpts.has(SanitizerKind::Bool);
  1404. bool HasEnumCheck = SanOpts.has(SanitizerKind::Enum);
  1405. if (!HasBoolCheck && !HasEnumCheck)
  1406. return false;
  1407. bool IsBool = hasBooleanRepresentation(Ty) ||
  1408. NSAPI(CGM.getContext()).isObjCBOOLType(Ty);
  1409. bool NeedsBoolCheck = HasBoolCheck && IsBool;
  1410. bool NeedsEnumCheck = HasEnumCheck && Ty->getAs<EnumType>();
  1411. if (!NeedsBoolCheck && !NeedsEnumCheck)
  1412. return false;
  1413. // Single-bit booleans don't need to be checked. Special-case this to avoid
  1414. // a bit width mismatch when handling bitfield values. This is handled by
  1415. // EmitFromMemory for the non-bitfield case.
  1416. if (IsBool &&
  1417. cast<llvm::IntegerType>(Value->getType())->getBitWidth() == 1)
  1418. return false;
  1419. llvm::APInt Min, End;
  1420. if (!getRangeForType(*this, Ty, Min, End, /*StrictEnums=*/true, IsBool))
  1421. return true;
  1422. auto &Ctx = getLLVMContext();
  1423. SanitizerScope SanScope(this);
  1424. llvm::Value *Check;
  1425. --End;
  1426. if (!Min) {
  1427. Check = Builder.CreateICmpULE(Value, llvm::ConstantInt::get(Ctx, End));
  1428. } else {
  1429. llvm::Value *Upper =
  1430. Builder.CreateICmpSLE(Value, llvm::ConstantInt::get(Ctx, End));
  1431. llvm::Value *Lower =
  1432. Builder.CreateICmpSGE(Value, llvm::ConstantInt::get(Ctx, Min));
  1433. Check = Builder.CreateAnd(Upper, Lower);
  1434. }
  1435. llvm::Constant *StaticArgs[] = {EmitCheckSourceLocation(Loc),
  1436. EmitCheckTypeDescriptor(Ty)};
  1437. SanitizerMask Kind =
  1438. NeedsEnumCheck ? SanitizerKind::Enum : SanitizerKind::Bool;
  1439. EmitCheck(std::make_pair(Check, Kind), SanitizerHandler::LoadInvalidValue,
  1440. StaticArgs, EmitCheckValue(Value));
  1441. return true;
  1442. }
  1443. llvm::Value *CodeGenFunction::EmitLoadOfScalar(Address Addr, bool Volatile,
  1444. QualType Ty,
  1445. SourceLocation Loc,
  1446. LValueBaseInfo BaseInfo,
  1447. TBAAAccessInfo TBAAInfo,
  1448. bool isNontemporal) {
  1449. if (!CGM.getCodeGenOpts().PreserveVec3Type) {
  1450. // For better performance, handle vector loads differently.
  1451. if (Ty->isVectorType()) {
  1452. const llvm::Type *EltTy = Addr.getElementType();
  1453. const auto *VTy = cast<llvm::VectorType>(EltTy);
  1454. // Handle vectors of size 3 like size 4 for better performance.
  1455. if (VTy->getNumElements() == 3) {
  1456. // Bitcast to vec4 type.
  1457. llvm::VectorType *vec4Ty =
  1458. llvm::VectorType::get(VTy->getElementType(), 4);
  1459. Address Cast = Builder.CreateElementBitCast(Addr, vec4Ty, "castToVec4");
  1460. // Now load value.
  1461. llvm::Value *V = Builder.CreateLoad(Cast, Volatile, "loadVec4");
  1462. // Shuffle vector to get vec3.
  1463. V = Builder.CreateShuffleVector(V, llvm::UndefValue::get(vec4Ty),
  1464. {0, 1, 2}, "extractVec");
  1465. return EmitFromMemory(V, Ty);
  1466. }
  1467. }
  1468. }
  1469. // Atomic operations have to be done on integral types.
  1470. LValue AtomicLValue =
  1471. LValue::MakeAddr(Addr, Ty, getContext(), BaseInfo, TBAAInfo);
  1472. if (Ty->isAtomicType() || LValueIsSuitableForInlineAtomic(AtomicLValue)) {
  1473. return EmitAtomicLoad(AtomicLValue, Loc).getScalarVal();
  1474. }
  1475. llvm::LoadInst *Load = Builder.CreateLoad(Addr, Volatile);
  1476. if (isNontemporal) {
  1477. llvm::MDNode *Node = llvm::MDNode::get(
  1478. Load->getContext(), llvm::ConstantAsMetadata::get(Builder.getInt32(1)));
  1479. Load->setMetadata(CGM.getModule().getMDKindID("nontemporal"), Node);
  1480. }
  1481. CGM.DecorateInstructionWithTBAA(Load, TBAAInfo);
  1482. if (EmitScalarRangeCheck(Load, Ty, Loc)) {
  1483. // In order to prevent the optimizer from throwing away the check, don't
  1484. // attach range metadata to the load.
  1485. } else if (CGM.getCodeGenOpts().OptimizationLevel > 0)
  1486. if (llvm::MDNode *RangeInfo = getRangeForLoadFromType(Ty))
  1487. Load->setMetadata(llvm::LLVMContext::MD_range, RangeInfo);
  1488. return EmitFromMemory(Load, Ty);
  1489. }
  1490. llvm::Value *CodeGenFunction::EmitToMemory(llvm::Value *Value, QualType Ty) {
  1491. // Bool has a different representation in memory than in registers.
  1492. if (hasBooleanRepresentation(Ty)) {
  1493. // This should really always be an i1, but sometimes it's already
  1494. // an i8, and it's awkward to track those cases down.
  1495. if (Value->getType()->isIntegerTy(1))
  1496. return Builder.CreateZExt(Value, ConvertTypeForMem(Ty), "frombool");
  1497. assert(Value->getType()->isIntegerTy(getContext().getTypeSize(Ty)) &&
  1498. "wrong value rep of bool");
  1499. }
  1500. return Value;
  1501. }
  1502. llvm::Value *CodeGenFunction::EmitFromMemory(llvm::Value *Value, QualType Ty) {
  1503. // Bool has a different representation in memory than in registers.
  1504. if (hasBooleanRepresentation(Ty)) {
  1505. assert(Value->getType()->isIntegerTy(getContext().getTypeSize(Ty)) &&
  1506. "wrong value rep of bool");
  1507. return Builder.CreateTrunc(Value, Builder.getInt1Ty(), "tobool");
  1508. }
  1509. return Value;
  1510. }
  1511. void CodeGenFunction::EmitStoreOfScalar(llvm::Value *Value, Address Addr,
  1512. bool Volatile, QualType Ty,
  1513. LValueBaseInfo BaseInfo,
  1514. TBAAAccessInfo TBAAInfo,
  1515. bool isInit, bool isNontemporal) {
  1516. if (!CGM.getCodeGenOpts().PreserveVec3Type) {
  1517. // Handle vectors differently to get better performance.
  1518. if (Ty->isVectorType()) {
  1519. llvm::Type *SrcTy = Value->getType();
  1520. auto *VecTy = dyn_cast<llvm::VectorType>(SrcTy);
  1521. // Handle vec3 special.
  1522. if (VecTy && VecTy->getNumElements() == 3) {
  1523. // Our source is a vec3, do a shuffle vector to make it a vec4.
  1524. llvm::Constant *Mask[] = {Builder.getInt32(0), Builder.getInt32(1),
  1525. Builder.getInt32(2),
  1526. llvm::UndefValue::get(Builder.getInt32Ty())};
  1527. llvm::Value *MaskV = llvm::ConstantVector::get(Mask);
  1528. Value = Builder.CreateShuffleVector(Value, llvm::UndefValue::get(VecTy),
  1529. MaskV, "extractVec");
  1530. SrcTy = llvm::VectorType::get(VecTy->getElementType(), 4);
  1531. }
  1532. if (Addr.getElementType() != SrcTy) {
  1533. Addr = Builder.CreateElementBitCast(Addr, SrcTy, "storetmp");
  1534. }
  1535. }
  1536. }
  1537. Value = EmitToMemory(Value, Ty);
  1538. LValue AtomicLValue =
  1539. LValue::MakeAddr(Addr, Ty, getContext(), BaseInfo, TBAAInfo);
  1540. if (Ty->isAtomicType() ||
  1541. (!isInit && LValueIsSuitableForInlineAtomic(AtomicLValue))) {
  1542. EmitAtomicStore(RValue::get(Value), AtomicLValue, isInit);
  1543. return;
  1544. }
  1545. llvm::StoreInst *Store = Builder.CreateStore(Value, Addr, Volatile);
  1546. if (isNontemporal) {
  1547. llvm::MDNode *Node =
  1548. llvm::MDNode::get(Store->getContext(),
  1549. llvm::ConstantAsMetadata::get(Builder.getInt32(1)));
  1550. Store->setMetadata(CGM.getModule().getMDKindID("nontemporal"), Node);
  1551. }
  1552. CGM.DecorateInstructionWithTBAA(Store, TBAAInfo);
  1553. }
  1554. void CodeGenFunction::EmitStoreOfScalar(llvm::Value *value, LValue lvalue,
  1555. bool isInit) {
  1556. EmitStoreOfScalar(value, lvalue.getAddress(), lvalue.isVolatile(),
  1557. lvalue.getType(), lvalue.getBaseInfo(),
  1558. lvalue.getTBAAInfo(), isInit, lvalue.isNontemporal());
  1559. }
  1560. /// EmitLoadOfLValue - Given an expression that represents a value lvalue, this
  1561. /// method emits the address of the lvalue, then loads the result as an rvalue,
  1562. /// returning the rvalue.
  1563. RValue CodeGenFunction::EmitLoadOfLValue(LValue LV, SourceLocation Loc) {
  1564. if (LV.isObjCWeak()) {
  1565. // load of a __weak object.
  1566. Address AddrWeakObj = LV.getAddress();
  1567. return RValue::get(CGM.getObjCRuntime().EmitObjCWeakRead(*this,
  1568. AddrWeakObj));
  1569. }
  1570. if (LV.getQuals().getObjCLifetime() == Qualifiers::OCL_Weak) {
  1571. // In MRC mode, we do a load+autorelease.
  1572. if (!getLangOpts().ObjCAutoRefCount) {
  1573. return RValue::get(EmitARCLoadWeak(LV.getAddress()));
  1574. }
  1575. // In ARC mode, we load retained and then consume the value.
  1576. llvm::Value *Object = EmitARCLoadWeakRetained(LV.getAddress());
  1577. Object = EmitObjCConsumeObject(LV.getType(), Object);
  1578. return RValue::get(Object);
  1579. }
  1580. if (LV.isSimple()) {
  1581. assert(!LV.getType()->isFunctionType());
  1582. // Everything needs a load.
  1583. return RValue::get(EmitLoadOfScalar(LV, Loc));
  1584. }
  1585. if (LV.isVectorElt()) {
  1586. llvm::LoadInst *Load = Builder.CreateLoad(LV.getVectorAddress(),
  1587. LV.isVolatileQualified());
  1588. return RValue::get(Builder.CreateExtractElement(Load, LV.getVectorIdx(),
  1589. "vecext"));
  1590. }
  1591. // If this is a reference to a subset of the elements of a vector, either
  1592. // shuffle the input or extract/insert them as appropriate.
  1593. if (LV.isExtVectorElt())
  1594. return EmitLoadOfExtVectorElementLValue(LV);
  1595. // Global Register variables always invoke intrinsics
  1596. if (LV.isGlobalReg())
  1597. return EmitLoadOfGlobalRegLValue(LV);
  1598. assert(LV.isBitField() && "Unknown LValue type!");
  1599. return EmitLoadOfBitfieldLValue(LV, Loc);
  1600. }
  1601. RValue CodeGenFunction::EmitLoadOfBitfieldLValue(LValue LV,
  1602. SourceLocation Loc) {
  1603. const CGBitFieldInfo &Info = LV.getBitFieldInfo();
  1604. // Get the output type.
  1605. llvm::Type *ResLTy = ConvertType(LV.getType());
  1606. Address Ptr = LV.getBitFieldAddress();
  1607. llvm::Value *Val = Builder.CreateLoad(Ptr, LV.isVolatileQualified(), "bf.load");
  1608. if (Info.IsSigned) {
  1609. assert(static_cast<unsigned>(Info.Offset + Info.Size) <= Info.StorageSize);
  1610. unsigned HighBits = Info.StorageSize - Info.Offset - Info.Size;
  1611. if (HighBits)
  1612. Val = Builder.CreateShl(Val, HighBits, "bf.shl");
  1613. if (Info.Offset + HighBits)
  1614. Val = Builder.CreateAShr(Val, Info.Offset + HighBits, "bf.ashr");
  1615. } else {
  1616. if (Info.Offset)
  1617. Val = Builder.CreateLShr(Val, Info.Offset, "bf.lshr");
  1618. if (static_cast<unsigned>(Info.Offset) + Info.Size < Info.StorageSize)
  1619. Val = Builder.CreateAnd(Val, llvm::APInt::getLowBitsSet(Info.StorageSize,
  1620. Info.Size),
  1621. "bf.clear");
  1622. }
  1623. Val = Builder.CreateIntCast(Val, ResLTy, Info.IsSigned, "bf.cast");
  1624. EmitScalarRangeCheck(Val, LV.getType(), Loc);
  1625. return RValue::get(Val);
  1626. }
  1627. // If this is a reference to a subset of the elements of a vector, create an
  1628. // appropriate shufflevector.
  1629. RValue CodeGenFunction::EmitLoadOfExtVectorElementLValue(LValue LV) {
  1630. llvm::Value *Vec = Builder.CreateLoad(LV.getExtVectorAddress(),
  1631. LV.isVolatileQualified());
  1632. const llvm::Constant *Elts = LV.getExtVectorElts();
  1633. // If the result of the expression is a non-vector type, we must be extracting
  1634. // a single element. Just codegen as an extractelement.
  1635. const VectorType *ExprVT = LV.getType()->getAs<VectorType>();
  1636. if (!ExprVT) {
  1637. unsigned InIdx = getAccessedFieldNo(0, Elts);
  1638. llvm::Value *Elt = llvm::ConstantInt::get(SizeTy, InIdx);
  1639. return RValue::get(Builder.CreateExtractElement(Vec, Elt));
  1640. }
  1641. // Always use shuffle vector to try to retain the original program structure
  1642. unsigned NumResultElts = ExprVT->getNumElements();
  1643. SmallVector<llvm::Constant*, 4> Mask;
  1644. for (unsigned i = 0; i != NumResultElts; ++i)
  1645. Mask.push_back(Builder.getInt32(getAccessedFieldNo(i, Elts)));
  1646. llvm::Value *MaskV = llvm::ConstantVector::get(Mask);
  1647. Vec = Builder.CreateShuffleVector(Vec, llvm::UndefValue::get(Vec->getType()),
  1648. MaskV);
  1649. return RValue::get(Vec);
  1650. }
  1651. /// Generates lvalue for partial ext_vector access.
  1652. Address CodeGenFunction::EmitExtVectorElementLValue(LValue LV) {
  1653. Address VectorAddress = LV.getExtVectorAddress();
  1654. const VectorType *ExprVT = LV.getType()->getAs<VectorType>();
  1655. QualType EQT = ExprVT->getElementType();
  1656. llvm::Type *VectorElementTy = CGM.getTypes().ConvertType(EQT);
  1657. Address CastToPointerElement =
  1658. Builder.CreateElementBitCast(VectorAddress, VectorElementTy,
  1659. "conv.ptr.element");
  1660. const llvm::Constant *Elts = LV.getExtVectorElts();
  1661. unsigned ix = getAccessedFieldNo(0, Elts);
  1662. Address VectorBasePtrPlusIx =
  1663. Builder.CreateConstInBoundsGEP(CastToPointerElement, ix,
  1664. "vector.elt");
  1665. return VectorBasePtrPlusIx;
  1666. }
  1667. /// Load of global gamed gegisters are always calls to intrinsics.
  1668. RValue CodeGenFunction::EmitLoadOfGlobalRegLValue(LValue LV) {
  1669. assert((LV.getType()->isIntegerType() || LV.getType()->isPointerType()) &&
  1670. "Bad type for register variable");
  1671. llvm::MDNode *RegName = cast<llvm::MDNode>(
  1672. cast<llvm::MetadataAsValue>(LV.getGlobalReg())->getMetadata());
  1673. // We accept integer and pointer types only
  1674. llvm::Type *OrigTy = CGM.getTypes().ConvertType(LV.getType());
  1675. llvm::Type *Ty = OrigTy;
  1676. if (OrigTy->isPointerTy())
  1677. Ty = CGM.getTypes().getDataLayout().getIntPtrType(OrigTy);
  1678. llvm::Type *Types[] = { Ty };
  1679. llvm::Function *F = CGM.getIntrinsic(llvm::Intrinsic::read_register, Types);
  1680. llvm::Value *Call = Builder.CreateCall(
  1681. F, llvm::MetadataAsValue::get(Ty->getContext(), RegName));
  1682. if (OrigTy->isPointerTy())
  1683. Call = Builder.CreateIntToPtr(Call, OrigTy);
  1684. return RValue::get(Call);
  1685. }
  1686. /// EmitStoreThroughLValue - Store the specified rvalue into the specified
  1687. /// lvalue, where both are guaranteed to the have the same type, and that type
  1688. /// is 'Ty'.
  1689. void CodeGenFunction::EmitStoreThroughLValue(RValue Src, LValue Dst,
  1690. bool isInit) {
  1691. if (!Dst.isSimple()) {
  1692. if (Dst.isVectorElt()) {
  1693. // Read/modify/write the vector, inserting the new element.
  1694. llvm::Value *Vec = Builder.CreateLoad(Dst.getVectorAddress(),
  1695. Dst.isVolatileQualified());
  1696. Vec = Builder.CreateInsertElement(Vec, Src.getScalarVal(),
  1697. Dst.getVectorIdx(), "vecins");
  1698. Builder.CreateStore(Vec, Dst.getVectorAddress(),
  1699. Dst.isVolatileQualified());
  1700. return;
  1701. }
  1702. // If this is an update of extended vector elements, insert them as
  1703. // appropriate.
  1704. if (Dst.isExtVectorElt())
  1705. return EmitStoreThroughExtVectorComponentLValue(Src, Dst);
  1706. if (Dst.isGlobalReg())
  1707. return EmitStoreThroughGlobalRegLValue(Src, Dst);
  1708. assert(Dst.isBitField() && "Unknown LValue type");
  1709. return EmitStoreThroughBitfieldLValue(Src, Dst);
  1710. }
  1711. // There's special magic for assigning into an ARC-qualified l-value.
  1712. if (Qualifiers::ObjCLifetime Lifetime = Dst.getQuals().getObjCLifetime()) {
  1713. switch (Lifetime) {
  1714. case Qualifiers::OCL_None:
  1715. llvm_unreachable("present but none");
  1716. case Qualifiers::OCL_ExplicitNone:
  1717. // nothing special
  1718. break;
  1719. case Qualifiers::OCL_Strong:
  1720. if (isInit) {
  1721. Src = RValue::get(EmitARCRetain(Dst.getType(), Src.getScalarVal()));
  1722. break;
  1723. }
  1724. EmitARCStoreStrong(Dst, Src.getScalarVal(), /*ignore*/ true);
  1725. return;
  1726. case Qualifiers::OCL_Weak:
  1727. if (isInit)
  1728. // Initialize and then skip the primitive store.
  1729. EmitARCInitWeak(Dst.getAddress(), Src.getScalarVal());
  1730. else
  1731. EmitARCStoreWeak(Dst.getAddress(), Src.getScalarVal(), /*ignore*/ true);
  1732. return;
  1733. case Qualifiers::OCL_Autoreleasing:
  1734. Src = RValue::get(EmitObjCExtendObjectLifetime(Dst.getType(),
  1735. Src.getScalarVal()));
  1736. // fall into the normal path
  1737. break;
  1738. }
  1739. }
  1740. if (Dst.isObjCWeak() && !Dst.isNonGC()) {
  1741. // load of a __weak object.
  1742. Address LvalueDst = Dst.getAddress();
  1743. llvm::Value *src = Src.getScalarVal();
  1744. CGM.getObjCRuntime().EmitObjCWeakAssign(*this, src, LvalueDst);
  1745. return;
  1746. }
  1747. if (Dst.isObjCStrong() && !Dst.isNonGC()) {
  1748. // load of a __strong object.
  1749. Address LvalueDst = Dst.getAddress();
  1750. llvm::Value *src = Src.getScalarVal();
  1751. if (Dst.isObjCIvar()) {
  1752. assert(Dst.getBaseIvarExp() && "BaseIvarExp is NULL");
  1753. llvm::Type *ResultType = IntPtrTy;
  1754. Address dst = EmitPointerWithAlignment(Dst.getBaseIvarExp());
  1755. llvm::Value *RHS = dst.getPointer();
  1756. RHS = Builder.CreatePtrToInt(RHS, ResultType, "sub.ptr.rhs.cast");
  1757. llvm::Value *LHS =
  1758. Builder.CreatePtrToInt(LvalueDst.getPointer(), ResultType,
  1759. "sub.ptr.lhs.cast");
  1760. llvm::Value *BytesBetween = Builder.CreateSub(LHS, RHS, "ivar.offset");
  1761. CGM.getObjCRuntime().EmitObjCIvarAssign(*this, src, dst,
  1762. BytesBetween);
  1763. } else if (Dst.isGlobalObjCRef()) {
  1764. CGM.getObjCRuntime().EmitObjCGlobalAssign(*this, src, LvalueDst,
  1765. Dst.isThreadLocalRef());
  1766. }
  1767. else
  1768. CGM.getObjCRuntime().EmitObjCStrongCastAssign(*this, src, LvalueDst);
  1769. return;
  1770. }
  1771. assert(Src.isScalar() && "Can't emit an agg store with this method");
  1772. EmitStoreOfScalar(Src.getScalarVal(), Dst, isInit);
  1773. }
  1774. void CodeGenFunction::EmitStoreThroughBitfieldLValue(RValue Src, LValue Dst,
  1775. llvm::Value **Result) {
  1776. const CGBitFieldInfo &Info = Dst.getBitFieldInfo();
  1777. llvm::Type *ResLTy = ConvertTypeForMem(Dst.getType());
  1778. Address Ptr = Dst.getBitFieldAddress();
  1779. // Get the source value, truncated to the width of the bit-field.
  1780. llvm::Value *SrcVal = Src.getScalarVal();
  1781. // Cast the source to the storage type and shift it into place.
  1782. SrcVal = Builder.CreateIntCast(SrcVal, Ptr.getElementType(),
  1783. /*isSigned=*/false);
  1784. llvm::Value *MaskedVal = SrcVal;
  1785. // See if there are other bits in the bitfield's storage we'll need to load
  1786. // and mask together with source before storing.
  1787. if (Info.StorageSize != Info.Size) {
  1788. assert(Info.StorageSize > Info.Size && "Invalid bitfield size.");
  1789. llvm::Value *Val =
  1790. Builder.CreateLoad(Ptr, Dst.isVolatileQualified(), "bf.load");
  1791. // Mask the source value as needed.
  1792. if (!hasBooleanRepresentation(Dst.getType()))
  1793. SrcVal = Builder.CreateAnd(SrcVal,
  1794. llvm::APInt::getLowBitsSet(Info.StorageSize,
  1795. Info.Size),
  1796. "bf.value");
  1797. MaskedVal = SrcVal;
  1798. if (Info.Offset)
  1799. SrcVal = Builder.CreateShl(SrcVal, Info.Offset, "bf.shl");
  1800. // Mask out the original value.
  1801. Val = Builder.CreateAnd(Val,
  1802. ~llvm::APInt::getBitsSet(Info.StorageSize,
  1803. Info.Offset,
  1804. Info.Offset + Info.Size),
  1805. "bf.clear");
  1806. // Or together the unchanged values and the source value.
  1807. SrcVal = Builder.CreateOr(Val, SrcVal, "bf.set");
  1808. } else {
  1809. assert(Info.Offset == 0);
  1810. }
  1811. // Write the new value back out.
  1812. Builder.CreateStore(SrcVal, Ptr, Dst.isVolatileQualified());
  1813. // Return the new value of the bit-field, if requested.
  1814. if (Result) {
  1815. llvm::Value *ResultVal = MaskedVal;
  1816. // Sign extend the value if needed.
  1817. if (Info.IsSigned) {
  1818. assert(Info.Size <= Info.StorageSize);
  1819. unsigned HighBits = Info.StorageSize - Info.Size;
  1820. if (HighBits) {
  1821. ResultVal = Builder.CreateShl(ResultVal, HighBits, "bf.result.shl");
  1822. ResultVal = Builder.CreateAShr(ResultVal, HighBits, "bf.result.ashr");
  1823. }
  1824. }
  1825. ResultVal = Builder.CreateIntCast(ResultVal, ResLTy, Info.IsSigned,
  1826. "bf.result.cast");
  1827. *Result = EmitFromMemory(ResultVal, Dst.getType());
  1828. }
  1829. }
  1830. void CodeGenFunction::EmitStoreThroughExtVectorComponentLValue(RValue Src,
  1831. LValue Dst) {
  1832. // This access turns into a read/modify/write of the vector. Load the input
  1833. // value now.
  1834. llvm::Value *Vec = Builder.CreateLoad(Dst.getExtVectorAddress(),
  1835. Dst.isVolatileQualified());
  1836. const llvm::Constant *Elts = Dst.getExtVectorElts();
  1837. llvm::Value *SrcVal = Src.getScalarVal();
  1838. if (const VectorType *VTy = Dst.getType()->getAs<VectorType>()) {
  1839. unsigned NumSrcElts = VTy->getNumElements();
  1840. unsigned NumDstElts = Vec->getType()->getVectorNumElements();
  1841. if (NumDstElts == NumSrcElts) {
  1842. // Use shuffle vector is the src and destination are the same number of
  1843. // elements and restore the vector mask since it is on the side it will be
  1844. // stored.
  1845. SmallVector<llvm::Constant*, 4> Mask(NumDstElts);
  1846. for (unsigned i = 0; i != NumSrcElts; ++i)
  1847. Mask[getAccessedFieldNo(i, Elts)] = Builder.getInt32(i);
  1848. llvm::Value *MaskV = llvm::ConstantVector::get(Mask);
  1849. Vec = Builder.CreateShuffleVector(SrcVal,
  1850. llvm::UndefValue::get(Vec->getType()),
  1851. MaskV);
  1852. } else if (NumDstElts > NumSrcElts) {
  1853. // Extended the source vector to the same length and then shuffle it
  1854. // into the destination.
  1855. // FIXME: since we're shuffling with undef, can we just use the indices
  1856. // into that? This could be simpler.
  1857. SmallVector<llvm::Constant*, 4> ExtMask;
  1858. for (unsigned i = 0; i != NumSrcElts; ++i)
  1859. ExtMask.push_back(Builder.getInt32(i));
  1860. ExtMask.resize(NumDstElts, llvm::UndefValue::get(Int32Ty));
  1861. llvm::Value *ExtMaskV = llvm::ConstantVector::get(ExtMask);
  1862. llvm::Value *ExtSrcVal =
  1863. Builder.CreateShuffleVector(SrcVal,
  1864. llvm::UndefValue::get(SrcVal->getType()),
  1865. ExtMaskV);
  1866. // build identity
  1867. SmallVector<llvm::Constant*, 4> Mask;
  1868. for (unsigned i = 0; i != NumDstElts; ++i)
  1869. Mask.push_back(Builder.getInt32(i));
  1870. // When the vector size is odd and .odd or .hi is used, the last element
  1871. // of the Elts constant array will be one past the size of the vector.
  1872. // Ignore the last element here, if it is greater than the mask size.
  1873. if (getAccessedFieldNo(NumSrcElts - 1, Elts) == Mask.size())
  1874. NumSrcElts--;
  1875. // modify when what gets shuffled in
  1876. for (unsigned i = 0; i != NumSrcElts; ++i)
  1877. Mask[getAccessedFieldNo(i, Elts)] = Builder.getInt32(i+NumDstElts);
  1878. llvm::Value *MaskV = llvm::ConstantVector::get(Mask);
  1879. Vec = Builder.CreateShuffleVector(Vec, ExtSrcVal, MaskV);
  1880. } else {
  1881. // We should never shorten the vector
  1882. llvm_unreachable("unexpected shorten vector length");
  1883. }
  1884. } else {
  1885. // If the Src is a scalar (not a vector) it must be updating one element.
  1886. unsigned InIdx = getAccessedFieldNo(0, Elts);
  1887. llvm::Value *Elt = llvm::ConstantInt::get(SizeTy, InIdx);
  1888. Vec = Builder.CreateInsertElement(Vec, SrcVal, Elt);
  1889. }
  1890. Builder.CreateStore(Vec, Dst.getExtVectorAddress(),
  1891. Dst.isVolatileQualified());
  1892. }
  1893. /// Store of global named registers are always calls to intrinsics.
  1894. void CodeGenFunction::EmitStoreThroughGlobalRegLValue(RValue Src, LValue Dst) {
  1895. assert((Dst.getType()->isIntegerType() || Dst.getType()->isPointerType()) &&
  1896. "Bad type for register variable");
  1897. llvm::MDNode *RegName = cast<llvm::MDNode>(
  1898. cast<llvm::MetadataAsValue>(Dst.getGlobalReg())->getMetadata());
  1899. assert(RegName && "Register LValue is not metadata");
  1900. // We accept integer and pointer types only
  1901. llvm::Type *OrigTy = CGM.getTypes().ConvertType(Dst.getType());
  1902. llvm::Type *Ty = OrigTy;
  1903. if (OrigTy->isPointerTy())
  1904. Ty = CGM.getTypes().getDataLayout().getIntPtrType(OrigTy);
  1905. llvm::Type *Types[] = { Ty };
  1906. llvm::Function *F = CGM.getIntrinsic(llvm::Intrinsic::write_register, Types);
  1907. llvm::Value *Value = Src.getScalarVal();
  1908. if (OrigTy->isPointerTy())
  1909. Value = Builder.CreatePtrToInt(Value, Ty);
  1910. Builder.CreateCall(
  1911. F, {llvm::MetadataAsValue::get(Ty->getContext(), RegName), Value});
  1912. }
  1913. // setObjCGCLValueClass - sets class of the lvalue for the purpose of
  1914. // generating write-barries API. It is currently a global, ivar,
  1915. // or neither.
  1916. static void setObjCGCLValueClass(const ASTContext &Ctx, const Expr *E,
  1917. LValue &LV,
  1918. bool IsMemberAccess=false) {
  1919. if (Ctx.getLangOpts().getGC() == LangOptions::NonGC)
  1920. return;
  1921. if (isa<ObjCIvarRefExpr>(E)) {
  1922. QualType ExpTy = E->getType();
  1923. if (IsMemberAccess && ExpTy->isPointerType()) {
  1924. // If ivar is a structure pointer, assigning to field of
  1925. // this struct follows gcc's behavior and makes it a non-ivar
  1926. // writer-barrier conservatively.
  1927. ExpTy = ExpTy->castAs<PointerType>()->getPointeeType();
  1928. if (ExpTy->isRecordType()) {
  1929. LV.setObjCIvar(false);
  1930. return;
  1931. }
  1932. }
  1933. LV.setObjCIvar(true);
  1934. auto *Exp = cast<ObjCIvarRefExpr>(const_cast<Expr *>(E));
  1935. LV.setBaseIvarExp(Exp->getBase());
  1936. LV.setObjCArray(E->getType()->isArrayType());
  1937. return;
  1938. }
  1939. if (const auto *Exp = dyn_cast<DeclRefExpr>(E)) {
  1940. if (const auto *VD = dyn_cast<VarDecl>(Exp->getDecl())) {
  1941. if (VD->hasGlobalStorage()) {
  1942. LV.setGlobalObjCRef(true);
  1943. LV.setThreadLocalRef(VD->getTLSKind() != VarDecl::TLS_None);
  1944. }
  1945. }
  1946. LV.setObjCArray(E->getType()->isArrayType());
  1947. return;
  1948. }
  1949. if (const auto *Exp = dyn_cast<UnaryOperator>(E)) {
  1950. setObjCGCLValueClass(Ctx, Exp->getSubExpr(), LV, IsMemberAccess);
  1951. return;
  1952. }
  1953. if (const auto *Exp = dyn_cast<ParenExpr>(E)) {
  1954. setObjCGCLValueClass(Ctx, Exp->getSubExpr(), LV, IsMemberAccess);
  1955. if (LV.isObjCIvar()) {
  1956. // If cast is to a structure pointer, follow gcc's behavior and make it
  1957. // a non-ivar write-barrier.
  1958. QualType ExpTy = E->getType();
  1959. if (ExpTy->isPointerType())
  1960. ExpTy = ExpTy->castAs<PointerType>()->getPointeeType();
  1961. if (ExpTy->isRecordType())
  1962. LV.setObjCIvar(false);
  1963. }
  1964. return;
  1965. }
  1966. if (const auto *Exp = dyn_cast<GenericSelectionExpr>(E)) {
  1967. setObjCGCLValueClass(Ctx, Exp->getResultExpr(), LV);
  1968. return;
  1969. }
  1970. if (const auto *Exp = dyn_cast<ImplicitCastExpr>(E)) {
  1971. setObjCGCLValueClass(Ctx, Exp->getSubExpr(), LV, IsMemberAccess);
  1972. return;
  1973. }
  1974. if (const auto *Exp = dyn_cast<CStyleCastExpr>(E)) {
  1975. setObjCGCLValueClass(Ctx, Exp->getSubExpr(), LV, IsMemberAccess);
  1976. return;
  1977. }
  1978. if (const auto *Exp = dyn_cast<ObjCBridgedCastExpr>(E)) {
  1979. setObjCGCLValueClass(Ctx, Exp->getSubExpr(), LV, IsMemberAccess);
  1980. return;
  1981. }
  1982. if (const auto *Exp = dyn_cast<ArraySubscriptExpr>(E)) {
  1983. setObjCGCLValueClass(Ctx, Exp->getBase(), LV);
  1984. if (LV.isObjCIvar() && !LV.isObjCArray())
  1985. // Using array syntax to assigning to what an ivar points to is not
  1986. // same as assigning to the ivar itself. {id *Names;} Names[i] = 0;
  1987. LV.setObjCIvar(false);
  1988. else if (LV.isGlobalObjCRef() && !LV.isObjCArray())
  1989. // Using array syntax to assigning to what global points to is not
  1990. // same as assigning to the global itself. {id *G;} G[i] = 0;
  1991. LV.setGlobalObjCRef(false);
  1992. return;
  1993. }
  1994. if (const auto *Exp = dyn_cast<MemberExpr>(E)) {
  1995. setObjCGCLValueClass(Ctx, Exp->getBase(), LV, true);
  1996. // We don't know if member is an 'ivar', but this flag is looked at
  1997. // only in the context of LV.isObjCIvar().
  1998. LV.setObjCArray(E->getType()->isArrayType());
  1999. return;
  2000. }
  2001. }
  2002. static llvm::Value *
  2003. EmitBitCastOfLValueToProperType(CodeGenFunction &CGF,
  2004. llvm::Value *V, llvm::Type *IRType,
  2005. StringRef Name = StringRef()) {
  2006. unsigned AS = cast<llvm::PointerType>(V->getType())->getAddressSpace();
  2007. return CGF.Builder.CreateBitCast(V, IRType->getPointerTo(AS), Name);
  2008. }
  2009. static LValue EmitThreadPrivateVarDeclLValue(
  2010. CodeGenFunction &CGF, const VarDecl *VD, QualType T, Address Addr,
  2011. llvm::Type *RealVarTy, SourceLocation Loc) {
  2012. Addr = CGF.CGM.getOpenMPRuntime().getAddrOfThreadPrivate(CGF, VD, Addr, Loc);
  2013. Addr = CGF.Builder.CreateElementBitCast(Addr, RealVarTy);
  2014. return CGF.MakeAddrLValue(Addr, T, AlignmentSource::Decl);
  2015. }
  2016. static Address emitDeclTargetVarDeclLValue(CodeGenFunction &CGF,
  2017. const VarDecl *VD, QualType T) {
  2018. llvm::Optional<OMPDeclareTargetDeclAttr::MapTypeTy> Res =
  2019. OMPDeclareTargetDeclAttr::isDeclareTargetDeclaration(VD);
  2020. // Return an invalid address if variable is MT_To and unified
  2021. // memory is not enabled. For all other cases: MT_Link and
  2022. // MT_To with unified memory, return a valid address.
  2023. if (!Res || (*Res == OMPDeclareTargetDeclAttr::MT_To &&
  2024. !CGF.CGM.getOpenMPRuntime().hasRequiresUnifiedSharedMemory()))
  2025. return Address::invalid();
  2026. assert(((*Res == OMPDeclareTargetDeclAttr::MT_Link) ||
  2027. (*Res == OMPDeclareTargetDeclAttr::MT_To &&
  2028. CGF.CGM.getOpenMPRuntime().hasRequiresUnifiedSharedMemory())) &&
  2029. "Expected link clause OR to clause with unified memory enabled.");
  2030. QualType PtrTy = CGF.getContext().getPointerType(VD->getType());
  2031. Address Addr = CGF.CGM.getOpenMPRuntime().getAddrOfDeclareTargetVar(VD);
  2032. return CGF.EmitLoadOfPointer(Addr, PtrTy->castAs<PointerType>());
  2033. }
  2034. Address
  2035. CodeGenFunction::EmitLoadOfReference(LValue RefLVal,
  2036. LValueBaseInfo *PointeeBaseInfo,
  2037. TBAAAccessInfo *PointeeTBAAInfo) {
  2038. llvm::LoadInst *Load = Builder.CreateLoad(RefLVal.getAddress(),
  2039. RefLVal.isVolatile());
  2040. CGM.DecorateInstructionWithTBAA(Load, RefLVal.getTBAAInfo());
  2041. CharUnits Align = getNaturalTypeAlignment(RefLVal.getType()->getPointeeType(),
  2042. PointeeBaseInfo, PointeeTBAAInfo,
  2043. /* forPointeeType= */ true);
  2044. return Address(Load, Align);
  2045. }
  2046. LValue CodeGenFunction::EmitLoadOfReferenceLValue(LValue RefLVal) {
  2047. LValueBaseInfo PointeeBaseInfo;
  2048. TBAAAccessInfo PointeeTBAAInfo;
  2049. Address PointeeAddr = EmitLoadOfReference(RefLVal, &PointeeBaseInfo,
  2050. &PointeeTBAAInfo);
  2051. return MakeAddrLValue(PointeeAddr, RefLVal.getType()->getPointeeType(),
  2052. PointeeBaseInfo, PointeeTBAAInfo);
  2053. }
  2054. Address CodeGenFunction::EmitLoadOfPointer(Address Ptr,
  2055. const PointerType *PtrTy,
  2056. LValueBaseInfo *BaseInfo,
  2057. TBAAAccessInfo *TBAAInfo) {
  2058. llvm::Value *Addr = Builder.CreateLoad(Ptr);
  2059. return Address(Addr, getNaturalTypeAlignment(PtrTy->getPointeeType(),
  2060. BaseInfo, TBAAInfo,
  2061. /*forPointeeType=*/true));
  2062. }
  2063. LValue CodeGenFunction::EmitLoadOfPointerLValue(Address PtrAddr,
  2064. const PointerType *PtrTy) {
  2065. LValueBaseInfo BaseInfo;
  2066. TBAAAccessInfo TBAAInfo;
  2067. Address Addr = EmitLoadOfPointer(PtrAddr, PtrTy, &BaseInfo, &TBAAInfo);
  2068. return MakeAddrLValue(Addr, PtrTy->getPointeeType(), BaseInfo, TBAAInfo);
  2069. }
  2070. static LValue EmitGlobalVarDeclLValue(CodeGenFunction &CGF,
  2071. const Expr *E, const VarDecl *VD) {
  2072. QualType T = E->getType();
  2073. // If it's thread_local, emit a call to its wrapper function instead.
  2074. if (VD->getTLSKind() == VarDecl::TLS_Dynamic &&
  2075. CGF.CGM.getCXXABI().usesThreadWrapperFunction(VD))
  2076. return CGF.CGM.getCXXABI().EmitThreadLocalVarDeclLValue(CGF, VD, T);
  2077. // Check if the variable is marked as declare target with link clause in
  2078. // device codegen.
  2079. if (CGF.getLangOpts().OpenMPIsDevice) {
  2080. Address Addr = emitDeclTargetVarDeclLValue(CGF, VD, T);
  2081. if (Addr.isValid())
  2082. return CGF.MakeAddrLValue(Addr, T, AlignmentSource::Decl);
  2083. }
  2084. llvm::Value *V = CGF.CGM.GetAddrOfGlobalVar(VD);
  2085. llvm::Type *RealVarTy = CGF.getTypes().ConvertTypeForMem(VD->getType());
  2086. V = EmitBitCastOfLValueToProperType(CGF, V, RealVarTy);
  2087. CharUnits Alignment = CGF.getContext().getDeclAlign(VD);
  2088. Address Addr(V, Alignment);
  2089. // Emit reference to the private copy of the variable if it is an OpenMP
  2090. // threadprivate variable.
  2091. if (CGF.getLangOpts().OpenMP && !CGF.getLangOpts().OpenMPSimd &&
  2092. VD->hasAttr<OMPThreadPrivateDeclAttr>()) {
  2093. return EmitThreadPrivateVarDeclLValue(CGF, VD, T, Addr, RealVarTy,
  2094. E->getExprLoc());
  2095. }
  2096. LValue LV = VD->getType()->isReferenceType() ?
  2097. CGF.EmitLoadOfReferenceLValue(Addr, VD->getType(),
  2098. AlignmentSource::Decl) :
  2099. CGF.MakeAddrLValue(Addr, T, AlignmentSource::Decl);
  2100. setObjCGCLValueClass(CGF.getContext(), E, LV);
  2101. return LV;
  2102. }
  2103. static llvm::Constant *EmitFunctionDeclPointer(CodeGenModule &CGM,
  2104. const FunctionDecl *FD) {
  2105. if (FD->hasAttr<WeakRefAttr>()) {
  2106. ConstantAddress aliasee = CGM.GetWeakRefReference(FD);
  2107. return aliasee.getPointer();
  2108. }
  2109. llvm::Constant *V = CGM.GetAddrOfFunction(FD);
  2110. if (!FD->hasPrototype()) {
  2111. if (const FunctionProtoType *Proto =
  2112. FD->getType()->getAs<FunctionProtoType>()) {
  2113. // Ugly case: for a K&R-style definition, the type of the definition
  2114. // isn't the same as the type of a use. Correct for this with a
  2115. // bitcast.
  2116. QualType NoProtoType =
  2117. CGM.getContext().getFunctionNoProtoType(Proto->getReturnType());
  2118. NoProtoType = CGM.getContext().getPointerType(NoProtoType);
  2119. V = llvm::ConstantExpr::getBitCast(V,
  2120. CGM.getTypes().ConvertType(NoProtoType));
  2121. }
  2122. }
  2123. return V;
  2124. }
  2125. static LValue EmitFunctionDeclLValue(CodeGenFunction &CGF,
  2126. const Expr *E, const FunctionDecl *FD) {
  2127. llvm::Value *V = EmitFunctionDeclPointer(CGF.CGM, FD);
  2128. CharUnits Alignment = CGF.getContext().getDeclAlign(FD);
  2129. return CGF.MakeAddrLValue(V, E->getType(), Alignment,
  2130. AlignmentSource::Decl);
  2131. }
  2132. static LValue EmitCapturedFieldLValue(CodeGenFunction &CGF, const FieldDecl *FD,
  2133. llvm::Value *ThisValue) {
  2134. QualType TagType = CGF.getContext().getTagDeclType(FD->getParent());
  2135. LValue LV = CGF.MakeNaturalAlignAddrLValue(ThisValue, TagType);
  2136. return CGF.EmitLValueForField(LV, FD);
  2137. }
  2138. /// Named Registers are named metadata pointing to the register name
  2139. /// which will be read from/written to as an argument to the intrinsic
  2140. /// @llvm.read/write_register.
  2141. /// So far, only the name is being passed down, but other options such as
  2142. /// register type, allocation type or even optimization options could be
  2143. /// passed down via the metadata node.
  2144. static LValue EmitGlobalNamedRegister(const VarDecl *VD, CodeGenModule &CGM) {
  2145. SmallString<64> Name("llvm.named.register.");
  2146. AsmLabelAttr *Asm = VD->getAttr<AsmLabelAttr>();
  2147. assert(Asm->getLabel().size() < 64-Name.size() &&
  2148. "Register name too big");
  2149. Name.append(Asm->getLabel());
  2150. llvm::NamedMDNode *M =
  2151. CGM.getModule().getOrInsertNamedMetadata(Name);
  2152. if (M->getNumOperands() == 0) {
  2153. llvm::MDString *Str = llvm::MDString::get(CGM.getLLVMContext(),
  2154. Asm->getLabel());
  2155. llvm::Metadata *Ops[] = {Str};
  2156. M->addOperand(llvm::MDNode::get(CGM.getLLVMContext(), Ops));
  2157. }
  2158. CharUnits Alignment = CGM.getContext().getDeclAlign(VD);
  2159. llvm::Value *Ptr =
  2160. llvm::MetadataAsValue::get(CGM.getLLVMContext(), M->getOperand(0));
  2161. return LValue::MakeGlobalReg(Address(Ptr, Alignment), VD->getType());
  2162. }
  2163. /// Determine whether we can emit a reference to \p VD from the current
  2164. /// context, despite not necessarily having seen an odr-use of the variable in
  2165. /// this context.
  2166. static bool canEmitSpuriousReferenceToVariable(CodeGenFunction &CGF,
  2167. const DeclRefExpr *E,
  2168. const VarDecl *VD,
  2169. bool IsConstant) {
  2170. // For a variable declared in an enclosing scope, do not emit a spurious
  2171. // reference even if we have a capture, as that will emit an unwarranted
  2172. // reference to our capture state, and will likely generate worse code than
  2173. // emitting a local copy.
  2174. if (E->refersToEnclosingVariableOrCapture())
  2175. return false;
  2176. // For a local declaration declared in this function, we can always reference
  2177. // it even if we don't have an odr-use.
  2178. if (VD->hasLocalStorage()) {
  2179. return VD->getDeclContext() ==
  2180. dyn_cast_or_null<DeclContext>(CGF.CurCodeDecl);
  2181. }
  2182. // For a global declaration, we can emit a reference to it if we know
  2183. // for sure that we are able to emit a definition of it.
  2184. VD = VD->getDefinition(CGF.getContext());
  2185. if (!VD)
  2186. return false;
  2187. // Don't emit a spurious reference if it might be to a variable that only
  2188. // exists on a different device / target.
  2189. // FIXME: This is unnecessarily broad. Check whether this would actually be a
  2190. // cross-target reference.
  2191. if (CGF.getLangOpts().OpenMP || CGF.getLangOpts().CUDA ||
  2192. CGF.getLangOpts().OpenCL) {
  2193. return false;
  2194. }
  2195. // We can emit a spurious reference only if the linkage implies that we'll
  2196. // be emitting a non-interposable symbol that will be retained until link
  2197. // time.
  2198. switch (CGF.CGM.getLLVMLinkageVarDefinition(VD, IsConstant)) {
  2199. case llvm::GlobalValue::ExternalLinkage:
  2200. case llvm::GlobalValue::LinkOnceODRLinkage:
  2201. case llvm::GlobalValue::WeakODRLinkage:
  2202. case llvm::GlobalValue::InternalLinkage:
  2203. case llvm::GlobalValue::PrivateLinkage:
  2204. return true;
  2205. default:
  2206. return false;
  2207. }
  2208. }
  2209. LValue CodeGenFunction::EmitDeclRefLValue(const DeclRefExpr *E) {
  2210. const NamedDecl *ND = E->getDecl();
  2211. QualType T = E->getType();
  2212. assert(E->isNonOdrUse() != NOUR_Unevaluated &&
  2213. "should not emit an unevaluated operand");
  2214. if (const auto *VD = dyn_cast<VarDecl>(ND)) {
  2215. // Global Named registers access via intrinsics only
  2216. if (VD->getStorageClass() == SC_Register &&
  2217. VD->hasAttr<AsmLabelAttr>() && !VD->isLocalVarDecl())
  2218. return EmitGlobalNamedRegister(VD, CGM);
  2219. // If this DeclRefExpr does not constitute an odr-use of the variable,
  2220. // we're not permitted to emit a reference to it in general, and it might
  2221. // not be captured if capture would be necessary for a use. Emit the
  2222. // constant value directly instead.
  2223. if (E->isNonOdrUse() == NOUR_Constant &&
  2224. (VD->getType()->isReferenceType() ||
  2225. !canEmitSpuriousReferenceToVariable(*this, E, VD, true))) {
  2226. VD->getAnyInitializer(VD);
  2227. llvm::Constant *Val = ConstantEmitter(*this).emitAbstract(
  2228. E->getLocation(), *VD->evaluateValue(), VD->getType());
  2229. assert(Val && "failed to emit constant expression");
  2230. Address Addr = Address::invalid();
  2231. if (!VD->getType()->isReferenceType()) {
  2232. // Spill the constant value to a global.
  2233. Addr = CGM.createUnnamedGlobalFrom(*VD, Val,
  2234. getContext().getDeclAlign(VD));
  2235. llvm::Type *VarTy = getTypes().ConvertTypeForMem(VD->getType());
  2236. auto *PTy = llvm::PointerType::get(
  2237. VarTy, getContext().getTargetAddressSpace(VD->getType()));
  2238. if (PTy != Addr.getType())
  2239. Addr = Builder.CreatePointerBitCastOrAddrSpaceCast(Addr, PTy);
  2240. } else {
  2241. // Should we be using the alignment of the constant pointer we emitted?
  2242. CharUnits Alignment =
  2243. getNaturalTypeAlignment(E->getType(),
  2244. /* BaseInfo= */ nullptr,
  2245. /* TBAAInfo= */ nullptr,
  2246. /* forPointeeType= */ true);
  2247. Addr = Address(Val, Alignment);
  2248. }
  2249. return MakeAddrLValue(Addr, T, AlignmentSource::Decl);
  2250. }
  2251. // FIXME: Handle other kinds of non-odr-use DeclRefExprs.
  2252. // Check for captured variables.
  2253. if (E->refersToEnclosingVariableOrCapture()) {
  2254. VD = VD->getCanonicalDecl();
  2255. if (auto *FD = LambdaCaptureFields.lookup(VD))
  2256. return EmitCapturedFieldLValue(*this, FD, CXXABIThisValue);
  2257. else if (CapturedStmtInfo) {
  2258. auto I = LocalDeclMap.find(VD);
  2259. if (I != LocalDeclMap.end()) {
  2260. if (VD->getType()->isReferenceType())
  2261. return EmitLoadOfReferenceLValue(I->second, VD->getType(),
  2262. AlignmentSource::Decl);
  2263. return MakeAddrLValue(I->second, T);
  2264. }
  2265. LValue CapLVal =
  2266. EmitCapturedFieldLValue(*this, CapturedStmtInfo->lookup(VD),
  2267. CapturedStmtInfo->getContextValue());
  2268. return MakeAddrLValue(
  2269. Address(CapLVal.getPointer(), getContext().getDeclAlign(VD)),
  2270. CapLVal.getType(), LValueBaseInfo(AlignmentSource::Decl),
  2271. CapLVal.getTBAAInfo());
  2272. }
  2273. assert(isa<BlockDecl>(CurCodeDecl));
  2274. Address addr = GetAddrOfBlockDecl(VD);
  2275. return MakeAddrLValue(addr, T, AlignmentSource::Decl);
  2276. }
  2277. }
  2278. // FIXME: We should be able to assert this for FunctionDecls as well!
  2279. // FIXME: We should be able to assert this for all DeclRefExprs, not just
  2280. // those with a valid source location.
  2281. assert((ND->isUsed(false) || !isa<VarDecl>(ND) || E->isNonOdrUse() ||
  2282. !E->getLocation().isValid()) &&
  2283. "Should not use decl without marking it used!");
  2284. if (ND->hasAttr<WeakRefAttr>()) {
  2285. const auto *VD = cast<ValueDecl>(ND);
  2286. ConstantAddress Aliasee = CGM.GetWeakRefReference(VD);
  2287. return MakeAddrLValue(Aliasee, T, AlignmentSource::Decl);
  2288. }
  2289. if (const auto *VD = dyn_cast<VarDecl>(ND)) {
  2290. // Check if this is a global variable.
  2291. if (VD->hasLinkage() || VD->isStaticDataMember())
  2292. return EmitGlobalVarDeclLValue(*this, E, VD);
  2293. Address addr = Address::invalid();
  2294. // The variable should generally be present in the local decl map.
  2295. auto iter = LocalDeclMap.find(VD);
  2296. if (iter != LocalDeclMap.end()) {
  2297. addr = iter->second;
  2298. // Otherwise, it might be static local we haven't emitted yet for
  2299. // some reason; most likely, because it's in an outer function.
  2300. } else if (VD->isStaticLocal()) {
  2301. addr = Address(CGM.getOrCreateStaticVarDecl(
  2302. *VD, CGM.getLLVMLinkageVarDefinition(VD, /*IsConstant=*/false)),
  2303. getContext().getDeclAlign(VD));
  2304. // No other cases for now.
  2305. } else {
  2306. llvm_unreachable("DeclRefExpr for Decl not entered in LocalDeclMap?");
  2307. }
  2308. // Check for OpenMP threadprivate variables.
  2309. if (getLangOpts().OpenMP && !getLangOpts().OpenMPSimd &&
  2310. VD->hasAttr<OMPThreadPrivateDeclAttr>()) {
  2311. return EmitThreadPrivateVarDeclLValue(
  2312. *this, VD, T, addr, getTypes().ConvertTypeForMem(VD->getType()),
  2313. E->getExprLoc());
  2314. }
  2315. // Drill into block byref variables.
  2316. bool isBlockByref = VD->isEscapingByref();
  2317. if (isBlockByref) {
  2318. addr = emitBlockByrefAddress(addr, VD);
  2319. }
  2320. // Drill into reference types.
  2321. LValue LV = VD->getType()->isReferenceType() ?
  2322. EmitLoadOfReferenceLValue(addr, VD->getType(), AlignmentSource::Decl) :
  2323. MakeAddrLValue(addr, T, AlignmentSource::Decl);
  2324. bool isLocalStorage = VD->hasLocalStorage();
  2325. bool NonGCable = isLocalStorage &&
  2326. !VD->getType()->isReferenceType() &&
  2327. !isBlockByref;
  2328. if (NonGCable) {
  2329. LV.getQuals().removeObjCGCAttr();
  2330. LV.setNonGC(true);
  2331. }
  2332. bool isImpreciseLifetime =
  2333. (isLocalStorage && !VD->hasAttr<ObjCPreciseLifetimeAttr>());
  2334. if (isImpreciseLifetime)
  2335. LV.setARCPreciseLifetime(ARCImpreciseLifetime);
  2336. setObjCGCLValueClass(getContext(), E, LV);
  2337. return LV;
  2338. }
  2339. if (const auto *FD = dyn_cast<FunctionDecl>(ND))
  2340. return EmitFunctionDeclLValue(*this, E, FD);
  2341. // FIXME: While we're emitting a binding from an enclosing scope, all other
  2342. // DeclRefExprs we see should be implicitly treated as if they also refer to
  2343. // an enclosing scope.
  2344. if (const auto *BD = dyn_cast<BindingDecl>(ND))
  2345. return EmitLValue(BD->getBinding());
  2346. llvm_unreachable("Unhandled DeclRefExpr");
  2347. }
  2348. LValue CodeGenFunction::EmitUnaryOpLValue(const UnaryOperator *E) {
  2349. // __extension__ doesn't affect lvalue-ness.
  2350. if (E->getOpcode() == UO_Extension)
  2351. return EmitLValue(E->getSubExpr());
  2352. QualType ExprTy = getContext().getCanonicalType(E->getSubExpr()->getType());
  2353. switch (E->getOpcode()) {
  2354. default: llvm_unreachable("Unknown unary operator lvalue!");
  2355. case UO_Deref: {
  2356. QualType T = E->getSubExpr()->getType()->getPointeeType();
  2357. assert(!T.isNull() && "CodeGenFunction::EmitUnaryOpLValue: Illegal type");
  2358. LValueBaseInfo BaseInfo;
  2359. TBAAAccessInfo TBAAInfo;
  2360. Address Addr = EmitPointerWithAlignment(E->getSubExpr(), &BaseInfo,
  2361. &TBAAInfo);
  2362. LValue LV = MakeAddrLValue(Addr, T, BaseInfo, TBAAInfo);
  2363. LV.getQuals().setAddressSpace(ExprTy.getAddressSpace());
  2364. // We should not generate __weak write barrier on indirect reference
  2365. // of a pointer to object; as in void foo (__weak id *param); *param = 0;
  2366. // But, we continue to generate __strong write barrier on indirect write
  2367. // into a pointer to object.
  2368. if (getLangOpts().ObjC &&
  2369. getLangOpts().getGC() != LangOptions::NonGC &&
  2370. LV.isObjCWeak())
  2371. LV.setNonGC(!E->isOBJCGCCandidate(getContext()));
  2372. return LV;
  2373. }
  2374. case UO_Real:
  2375. case UO_Imag: {
  2376. LValue LV = EmitLValue(E->getSubExpr());
  2377. assert(LV.isSimple() && "real/imag on non-ordinary l-value");
  2378. // __real is valid on scalars. This is a faster way of testing that.
  2379. // __imag can only produce an rvalue on scalars.
  2380. if (E->getOpcode() == UO_Real &&
  2381. !LV.getAddress().getElementType()->isStructTy()) {
  2382. assert(E->getSubExpr()->getType()->isArithmeticType());
  2383. return LV;
  2384. }
  2385. QualType T = ExprTy->castAs<ComplexType>()->getElementType();
  2386. Address Component =
  2387. (E->getOpcode() == UO_Real
  2388. ? emitAddrOfRealComponent(LV.getAddress(), LV.getType())
  2389. : emitAddrOfImagComponent(LV.getAddress(), LV.getType()));
  2390. LValue ElemLV = MakeAddrLValue(Component, T, LV.getBaseInfo(),
  2391. CGM.getTBAAInfoForSubobject(LV, T));
  2392. ElemLV.getQuals().addQualifiers(LV.getQuals());
  2393. return ElemLV;
  2394. }
  2395. case UO_PreInc:
  2396. case UO_PreDec: {
  2397. LValue LV = EmitLValue(E->getSubExpr());
  2398. bool isInc = E->getOpcode() == UO_PreInc;
  2399. if (E->getType()->isAnyComplexType())
  2400. EmitComplexPrePostIncDec(E, LV, isInc, true/*isPre*/);
  2401. else
  2402. EmitScalarPrePostIncDec(E, LV, isInc, true/*isPre*/);
  2403. return LV;
  2404. }
  2405. }
  2406. }
  2407. LValue CodeGenFunction::EmitStringLiteralLValue(const StringLiteral *E) {
  2408. return MakeAddrLValue(CGM.GetAddrOfConstantStringFromLiteral(E),
  2409. E->getType(), AlignmentSource::Decl);
  2410. }
  2411. LValue CodeGenFunction::EmitObjCEncodeExprLValue(const ObjCEncodeExpr *E) {
  2412. return MakeAddrLValue(CGM.GetAddrOfConstantStringFromObjCEncode(E),
  2413. E->getType(), AlignmentSource::Decl);
  2414. }
  2415. LValue CodeGenFunction::EmitPredefinedLValue(const PredefinedExpr *E) {
  2416. auto SL = E->getFunctionName();
  2417. assert(SL != nullptr && "No StringLiteral name in PredefinedExpr");
  2418. StringRef FnName = CurFn->getName();
  2419. if (FnName.startswith("\01"))
  2420. FnName = FnName.substr(1);
  2421. StringRef NameItems[] = {
  2422. PredefinedExpr::getIdentKindName(E->getIdentKind()), FnName};
  2423. std::string GVName = llvm::join(NameItems, NameItems + 2, ".");
  2424. if (auto *BD = dyn_cast_or_null<BlockDecl>(CurCodeDecl)) {
  2425. std::string Name = SL->getString();
  2426. if (!Name.empty()) {
  2427. unsigned Discriminator =
  2428. CGM.getCXXABI().getMangleContext().getBlockId(BD, true);
  2429. if (Discriminator)
  2430. Name += "_" + Twine(Discriminator + 1).str();
  2431. auto C = CGM.GetAddrOfConstantCString(Name, GVName.c_str());
  2432. return MakeAddrLValue(C, E->getType(), AlignmentSource::Decl);
  2433. } else {
  2434. auto C = CGM.GetAddrOfConstantCString(FnName, GVName.c_str());
  2435. return MakeAddrLValue(C, E->getType(), AlignmentSource::Decl);
  2436. }
  2437. }
  2438. auto C = CGM.GetAddrOfConstantStringFromLiteral(SL, GVName);
  2439. return MakeAddrLValue(C, E->getType(), AlignmentSource::Decl);
  2440. }
  2441. /// Emit a type description suitable for use by a runtime sanitizer library. The
  2442. /// format of a type descriptor is
  2443. ///
  2444. /// \code
  2445. /// { i16 TypeKind, i16 TypeInfo }
  2446. /// \endcode
  2447. ///
  2448. /// followed by an array of i8 containing the type name. TypeKind is 0 for an
  2449. /// integer, 1 for a floating point value, and -1 for anything else.
  2450. llvm::Constant *CodeGenFunction::EmitCheckTypeDescriptor(QualType T) {
  2451. // Only emit each type's descriptor once.
  2452. if (llvm::Constant *C = CGM.getTypeDescriptorFromMap(T))
  2453. return C;
  2454. uint16_t TypeKind = -1;
  2455. uint16_t TypeInfo = 0;
  2456. if (T->isIntegerType()) {
  2457. TypeKind = 0;
  2458. TypeInfo = (llvm::Log2_32(getContext().getTypeSize(T)) << 1) |
  2459. (T->isSignedIntegerType() ? 1 : 0);
  2460. } else if (T->isFloatingType()) {
  2461. TypeKind = 1;
  2462. TypeInfo = getContext().getTypeSize(T);
  2463. }
  2464. // Format the type name as if for a diagnostic, including quotes and
  2465. // optionally an 'aka'.
  2466. SmallString<32> Buffer;
  2467. CGM.getDiags().ConvertArgToString(DiagnosticsEngine::ak_qualtype,
  2468. (intptr_t)T.getAsOpaquePtr(),
  2469. StringRef(), StringRef(), None, Buffer,
  2470. None);
  2471. llvm::Constant *Components[] = {
  2472. Builder.getInt16(TypeKind), Builder.getInt16(TypeInfo),
  2473. llvm::ConstantDataArray::getString(getLLVMContext(), Buffer)
  2474. };
  2475. llvm::Constant *Descriptor = llvm::ConstantStruct::getAnon(Components);
  2476. auto *GV = new llvm::GlobalVariable(
  2477. CGM.getModule(), Descriptor->getType(),
  2478. /*isConstant=*/true, llvm::GlobalVariable::PrivateLinkage, Descriptor);
  2479. GV->setUnnamedAddr(llvm::GlobalValue::UnnamedAddr::Global);
  2480. CGM.getSanitizerMetadata()->disableSanitizerForGlobal(GV);
  2481. // Remember the descriptor for this type.
  2482. CGM.setTypeDescriptorInMap(T, GV);
  2483. return GV;
  2484. }
  2485. llvm::Value *CodeGenFunction::EmitCheckValue(llvm::Value *V) {
  2486. llvm::Type *TargetTy = IntPtrTy;
  2487. if (V->getType() == TargetTy)
  2488. return V;
  2489. // Floating-point types which fit into intptr_t are bitcast to integers
  2490. // and then passed directly (after zero-extension, if necessary).
  2491. if (V->getType()->isFloatingPointTy()) {
  2492. unsigned Bits = V->getType()->getPrimitiveSizeInBits();
  2493. if (Bits <= TargetTy->getIntegerBitWidth())
  2494. V = Builder.CreateBitCast(V, llvm::Type::getIntNTy(getLLVMContext(),
  2495. Bits));
  2496. }
  2497. // Integers which fit in intptr_t are zero-extended and passed directly.
  2498. if (V->getType()->isIntegerTy() &&
  2499. V->getType()->getIntegerBitWidth() <= TargetTy->getIntegerBitWidth())
  2500. return Builder.CreateZExt(V, TargetTy);
  2501. // Pointers are passed directly, everything else is passed by address.
  2502. if (!V->getType()->isPointerTy()) {
  2503. Address Ptr = CreateDefaultAlignTempAlloca(V->getType());
  2504. Builder.CreateStore(V, Ptr);
  2505. V = Ptr.getPointer();
  2506. }
  2507. return Builder.CreatePtrToInt(V, TargetTy);
  2508. }
  2509. /// Emit a representation of a SourceLocation for passing to a handler
  2510. /// in a sanitizer runtime library. The format for this data is:
  2511. /// \code
  2512. /// struct SourceLocation {
  2513. /// const char *Filename;
  2514. /// int32_t Line, Column;
  2515. /// };
  2516. /// \endcode
  2517. /// For an invalid SourceLocation, the Filename pointer is null.
  2518. llvm::Constant *CodeGenFunction::EmitCheckSourceLocation(SourceLocation Loc) {
  2519. llvm::Constant *Filename;
  2520. int Line, Column;
  2521. PresumedLoc PLoc = getContext().getSourceManager().getPresumedLoc(Loc);
  2522. if (PLoc.isValid()) {
  2523. StringRef FilenameString = PLoc.getFilename();
  2524. int PathComponentsToStrip =
  2525. CGM.getCodeGenOpts().EmitCheckPathComponentsToStrip;
  2526. if (PathComponentsToStrip < 0) {
  2527. assert(PathComponentsToStrip != INT_MIN);
  2528. int PathComponentsToKeep = -PathComponentsToStrip;
  2529. auto I = llvm::sys::path::rbegin(FilenameString);
  2530. auto E = llvm::sys::path::rend(FilenameString);
  2531. while (I != E && --PathComponentsToKeep)
  2532. ++I;
  2533. FilenameString = FilenameString.substr(I - E);
  2534. } else if (PathComponentsToStrip > 0) {
  2535. auto I = llvm::sys::path::begin(FilenameString);
  2536. auto E = llvm::sys::path::end(FilenameString);
  2537. while (I != E && PathComponentsToStrip--)
  2538. ++I;
  2539. if (I != E)
  2540. FilenameString =
  2541. FilenameString.substr(I - llvm::sys::path::begin(FilenameString));
  2542. else
  2543. FilenameString = llvm::sys::path::filename(FilenameString);
  2544. }
  2545. auto FilenameGV = CGM.GetAddrOfConstantCString(FilenameString, ".src");
  2546. CGM.getSanitizerMetadata()->disableSanitizerForGlobal(
  2547. cast<llvm::GlobalVariable>(FilenameGV.getPointer()));
  2548. Filename = FilenameGV.getPointer();
  2549. Line = PLoc.getLine();
  2550. Column = PLoc.getColumn();
  2551. } else {
  2552. Filename = llvm::Constant::getNullValue(Int8PtrTy);
  2553. Line = Column = 0;
  2554. }
  2555. llvm::Constant *Data[] = {Filename, Builder.getInt32(Line),
  2556. Builder.getInt32(Column)};
  2557. return llvm::ConstantStruct::getAnon(Data);
  2558. }
  2559. namespace {
  2560. /// Specify under what conditions this check can be recovered
  2561. enum class CheckRecoverableKind {
  2562. /// Always terminate program execution if this check fails.
  2563. Unrecoverable,
  2564. /// Check supports recovering, runtime has both fatal (noreturn) and
  2565. /// non-fatal handlers for this check.
  2566. Recoverable,
  2567. /// Runtime conditionally aborts, always need to support recovery.
  2568. AlwaysRecoverable
  2569. };
  2570. }
  2571. static CheckRecoverableKind getRecoverableKind(SanitizerMask Kind) {
  2572. assert(Kind.countPopulation() == 1);
  2573. if (Kind == SanitizerKind::Function || Kind == SanitizerKind::Vptr)
  2574. return CheckRecoverableKind::AlwaysRecoverable;
  2575. else if (Kind == SanitizerKind::Return || Kind == SanitizerKind::Unreachable)
  2576. return CheckRecoverableKind::Unrecoverable;
  2577. else
  2578. return CheckRecoverableKind::Recoverable;
  2579. }
  2580. namespace {
  2581. struct SanitizerHandlerInfo {
  2582. char const *const Name;
  2583. unsigned Version;
  2584. };
  2585. }
  2586. const SanitizerHandlerInfo SanitizerHandlers[] = {
  2587. #define SANITIZER_CHECK(Enum, Name, Version) {#Name, Version},
  2588. LIST_SANITIZER_CHECKS
  2589. #undef SANITIZER_CHECK
  2590. };
  2591. static void emitCheckHandlerCall(CodeGenFunction &CGF,
  2592. llvm::FunctionType *FnType,
  2593. ArrayRef<llvm::Value *> FnArgs,
  2594. SanitizerHandler CheckHandler,
  2595. CheckRecoverableKind RecoverKind, bool IsFatal,
  2596. llvm::BasicBlock *ContBB) {
  2597. assert(IsFatal || RecoverKind != CheckRecoverableKind::Unrecoverable);
  2598. Optional<ApplyDebugLocation> DL;
  2599. if (!CGF.Builder.getCurrentDebugLocation()) {
  2600. // Ensure that the call has at least an artificial debug location.
  2601. DL.emplace(CGF, SourceLocation());
  2602. }
  2603. bool NeedsAbortSuffix =
  2604. IsFatal && RecoverKind != CheckRecoverableKind::Unrecoverable;
  2605. bool MinimalRuntime = CGF.CGM.getCodeGenOpts().SanitizeMinimalRuntime;
  2606. const SanitizerHandlerInfo &CheckInfo = SanitizerHandlers[CheckHandler];
  2607. const StringRef CheckName = CheckInfo.Name;
  2608. std::string FnName = "__ubsan_handle_" + CheckName.str();
  2609. if (CheckInfo.Version && !MinimalRuntime)
  2610. FnName += "_v" + llvm::utostr(CheckInfo.Version);
  2611. if (MinimalRuntime)
  2612. FnName += "_minimal";
  2613. if (NeedsAbortSuffix)
  2614. FnName += "_abort";
  2615. bool MayReturn =
  2616. !IsFatal || RecoverKind == CheckRecoverableKind::AlwaysRecoverable;
  2617. llvm::AttrBuilder B;
  2618. if (!MayReturn) {
  2619. B.addAttribute(llvm::Attribute::NoReturn)
  2620. .addAttribute(llvm::Attribute::NoUnwind);
  2621. }
  2622. B.addAttribute(llvm::Attribute::UWTable);
  2623. llvm::FunctionCallee Fn = CGF.CGM.CreateRuntimeFunction(
  2624. FnType, FnName,
  2625. llvm::AttributeList::get(CGF.getLLVMContext(),
  2626. llvm::AttributeList::FunctionIndex, B),
  2627. /*Local=*/true);
  2628. llvm::CallInst *HandlerCall = CGF.EmitNounwindRuntimeCall(Fn, FnArgs);
  2629. if (!MayReturn) {
  2630. HandlerCall->setDoesNotReturn();
  2631. CGF.Builder.CreateUnreachable();
  2632. } else {
  2633. CGF.Builder.CreateBr(ContBB);
  2634. }
  2635. }
  2636. void CodeGenFunction::EmitCheck(
  2637. ArrayRef<std::pair<llvm::Value *, SanitizerMask>> Checked,
  2638. SanitizerHandler CheckHandler, ArrayRef<llvm::Constant *> StaticArgs,
  2639. ArrayRef<llvm::Value *> DynamicArgs) {
  2640. assert(IsSanitizerScope);
  2641. assert(Checked.size() > 0);
  2642. assert(CheckHandler >= 0 &&
  2643. size_t(CheckHandler) < llvm::array_lengthof(SanitizerHandlers));
  2644. const StringRef CheckName = SanitizerHandlers[CheckHandler].Name;
  2645. llvm::Value *FatalCond = nullptr;
  2646. llvm::Value *RecoverableCond = nullptr;
  2647. llvm::Value *TrapCond = nullptr;
  2648. for (int i = 0, n = Checked.size(); i < n; ++i) {
  2649. llvm::Value *Check = Checked[i].first;
  2650. // -fsanitize-trap= overrides -fsanitize-recover=.
  2651. llvm::Value *&Cond =
  2652. CGM.getCodeGenOpts().SanitizeTrap.has(Checked[i].second)
  2653. ? TrapCond
  2654. : CGM.getCodeGenOpts().SanitizeRecover.has(Checked[i].second)
  2655. ? RecoverableCond
  2656. : FatalCond;
  2657. Cond = Cond ? Builder.CreateAnd(Cond, Check) : Check;
  2658. }
  2659. if (TrapCond)
  2660. EmitTrapCheck(TrapCond);
  2661. if (!FatalCond && !RecoverableCond)
  2662. return;
  2663. llvm::Value *JointCond;
  2664. if (FatalCond && RecoverableCond)
  2665. JointCond = Builder.CreateAnd(FatalCond, RecoverableCond);
  2666. else
  2667. JointCond = FatalCond ? FatalCond : RecoverableCond;
  2668. assert(JointCond);
  2669. CheckRecoverableKind RecoverKind = getRecoverableKind(Checked[0].second);
  2670. assert(SanOpts.has(Checked[0].second));
  2671. #ifndef NDEBUG
  2672. for (int i = 1, n = Checked.size(); i < n; ++i) {
  2673. assert(RecoverKind == getRecoverableKind(Checked[i].second) &&
  2674. "All recoverable kinds in a single check must be same!");
  2675. assert(SanOpts.has(Checked[i].second));
  2676. }
  2677. #endif
  2678. llvm::BasicBlock *Cont = createBasicBlock("cont");
  2679. llvm::BasicBlock *Handlers = createBasicBlock("handler." + CheckName);
  2680. llvm::Instruction *Branch = Builder.CreateCondBr(JointCond, Cont, Handlers);
  2681. // Give hint that we very much don't expect to execute the handler
  2682. // Value chosen to match UR_NONTAKEN_WEIGHT, see BranchProbabilityInfo.cpp
  2683. llvm::MDBuilder MDHelper(getLLVMContext());
  2684. llvm::MDNode *Node = MDHelper.createBranchWeights((1U << 20) - 1, 1);
  2685. Branch->setMetadata(llvm::LLVMContext::MD_prof, Node);
  2686. EmitBlock(Handlers);
  2687. // Handler functions take an i8* pointing to the (handler-specific) static
  2688. // information block, followed by a sequence of intptr_t arguments
  2689. // representing operand values.
  2690. SmallVector<llvm::Value *, 4> Args;
  2691. SmallVector<llvm::Type *, 4> ArgTypes;
  2692. if (!CGM.getCodeGenOpts().SanitizeMinimalRuntime) {
  2693. Args.reserve(DynamicArgs.size() + 1);
  2694. ArgTypes.reserve(DynamicArgs.size() + 1);
  2695. // Emit handler arguments and create handler function type.
  2696. if (!StaticArgs.empty()) {
  2697. llvm::Constant *Info = llvm::ConstantStruct::getAnon(StaticArgs);
  2698. auto *InfoPtr =
  2699. new llvm::GlobalVariable(CGM.getModule(), Info->getType(), false,
  2700. llvm::GlobalVariable::PrivateLinkage, Info);
  2701. InfoPtr->setUnnamedAddr(llvm::GlobalValue::UnnamedAddr::Global);
  2702. CGM.getSanitizerMetadata()->disableSanitizerForGlobal(InfoPtr);
  2703. Args.push_back(Builder.CreateBitCast(InfoPtr, Int8PtrTy));
  2704. ArgTypes.push_back(Int8PtrTy);
  2705. }
  2706. for (size_t i = 0, n = DynamicArgs.size(); i != n; ++i) {
  2707. Args.push_back(EmitCheckValue(DynamicArgs[i]));
  2708. ArgTypes.push_back(IntPtrTy);
  2709. }
  2710. }
  2711. llvm::FunctionType *FnType =
  2712. llvm::FunctionType::get(CGM.VoidTy, ArgTypes, false);
  2713. if (!FatalCond || !RecoverableCond) {
  2714. // Simple case: we need to generate a single handler call, either
  2715. // fatal, or non-fatal.
  2716. emitCheckHandlerCall(*this, FnType, Args, CheckHandler, RecoverKind,
  2717. (FatalCond != nullptr), Cont);
  2718. } else {
  2719. // Emit two handler calls: first one for set of unrecoverable checks,
  2720. // another one for recoverable.
  2721. llvm::BasicBlock *NonFatalHandlerBB =
  2722. createBasicBlock("non_fatal." + CheckName);
  2723. llvm::BasicBlock *FatalHandlerBB = createBasicBlock("fatal." + CheckName);
  2724. Builder.CreateCondBr(FatalCond, NonFatalHandlerBB, FatalHandlerBB);
  2725. EmitBlock(FatalHandlerBB);
  2726. emitCheckHandlerCall(*this, FnType, Args, CheckHandler, RecoverKind, true,
  2727. NonFatalHandlerBB);
  2728. EmitBlock(NonFatalHandlerBB);
  2729. emitCheckHandlerCall(*this, FnType, Args, CheckHandler, RecoverKind, false,
  2730. Cont);
  2731. }
  2732. EmitBlock(Cont);
  2733. }
  2734. void CodeGenFunction::EmitCfiSlowPathCheck(
  2735. SanitizerMask Kind, llvm::Value *Cond, llvm::ConstantInt *TypeId,
  2736. llvm::Value *Ptr, ArrayRef<llvm::Constant *> StaticArgs) {
  2737. llvm::BasicBlock *Cont = createBasicBlock("cfi.cont");
  2738. llvm::BasicBlock *CheckBB = createBasicBlock("cfi.slowpath");
  2739. llvm::BranchInst *BI = Builder.CreateCondBr(Cond, Cont, CheckBB);
  2740. llvm::MDBuilder MDHelper(getLLVMContext());
  2741. llvm::MDNode *Node = MDHelper.createBranchWeights((1U << 20) - 1, 1);
  2742. BI->setMetadata(llvm::LLVMContext::MD_prof, Node);
  2743. EmitBlock(CheckBB);
  2744. bool WithDiag = !CGM.getCodeGenOpts().SanitizeTrap.has(Kind);
  2745. llvm::CallInst *CheckCall;
  2746. llvm::FunctionCallee SlowPathFn;
  2747. if (WithDiag) {
  2748. llvm::Constant *Info = llvm::ConstantStruct::getAnon(StaticArgs);
  2749. auto *InfoPtr =
  2750. new llvm::GlobalVariable(CGM.getModule(), Info->getType(), false,
  2751. llvm::GlobalVariable::PrivateLinkage, Info);
  2752. InfoPtr->setUnnamedAddr(llvm::GlobalValue::UnnamedAddr::Global);
  2753. CGM.getSanitizerMetadata()->disableSanitizerForGlobal(InfoPtr);
  2754. SlowPathFn = CGM.getModule().getOrInsertFunction(
  2755. "__cfi_slowpath_diag",
  2756. llvm::FunctionType::get(VoidTy, {Int64Ty, Int8PtrTy, Int8PtrTy},
  2757. false));
  2758. CheckCall = Builder.CreateCall(
  2759. SlowPathFn, {TypeId, Ptr, Builder.CreateBitCast(InfoPtr, Int8PtrTy)});
  2760. } else {
  2761. SlowPathFn = CGM.getModule().getOrInsertFunction(
  2762. "__cfi_slowpath",
  2763. llvm::FunctionType::get(VoidTy, {Int64Ty, Int8PtrTy}, false));
  2764. CheckCall = Builder.CreateCall(SlowPathFn, {TypeId, Ptr});
  2765. }
  2766. CGM.setDSOLocal(
  2767. cast<llvm::GlobalValue>(SlowPathFn.getCallee()->stripPointerCasts()));
  2768. CheckCall->setDoesNotThrow();
  2769. EmitBlock(Cont);
  2770. }
  2771. // Emit a stub for __cfi_check function so that the linker knows about this
  2772. // symbol in LTO mode.
  2773. void CodeGenFunction::EmitCfiCheckStub() {
  2774. llvm::Module *M = &CGM.getModule();
  2775. auto &Ctx = M->getContext();
  2776. llvm::Function *F = llvm::Function::Create(
  2777. llvm::FunctionType::get(VoidTy, {Int64Ty, Int8PtrTy, Int8PtrTy}, false),
  2778. llvm::GlobalValue::WeakAnyLinkage, "__cfi_check", M);
  2779. CGM.setDSOLocal(F);
  2780. llvm::BasicBlock *BB = llvm::BasicBlock::Create(Ctx, "entry", F);
  2781. // FIXME: consider emitting an intrinsic call like
  2782. // call void @llvm.cfi_check(i64 %0, i8* %1, i8* %2)
  2783. // which can be lowered in CrossDSOCFI pass to the actual contents of
  2784. // __cfi_check. This would allow inlining of __cfi_check calls.
  2785. llvm::CallInst::Create(
  2786. llvm::Intrinsic::getDeclaration(M, llvm::Intrinsic::trap), "", BB);
  2787. llvm::ReturnInst::Create(Ctx, nullptr, BB);
  2788. }
  2789. // This function is basically a switch over the CFI failure kind, which is
  2790. // extracted from CFICheckFailData (1st function argument). Each case is either
  2791. // llvm.trap or a call to one of the two runtime handlers, based on
  2792. // -fsanitize-trap and -fsanitize-recover settings. Default case (invalid
  2793. // failure kind) traps, but this should really never happen. CFICheckFailData
  2794. // can be nullptr if the calling module has -fsanitize-trap behavior for this
  2795. // check kind; in this case __cfi_check_fail traps as well.
  2796. void CodeGenFunction::EmitCfiCheckFail() {
  2797. SanitizerScope SanScope(this);
  2798. FunctionArgList Args;
  2799. ImplicitParamDecl ArgData(getContext(), getContext().VoidPtrTy,
  2800. ImplicitParamDecl::Other);
  2801. ImplicitParamDecl ArgAddr(getContext(), getContext().VoidPtrTy,
  2802. ImplicitParamDecl::Other);
  2803. Args.push_back(&ArgData);
  2804. Args.push_back(&ArgAddr);
  2805. const CGFunctionInfo &FI =
  2806. CGM.getTypes().arrangeBuiltinFunctionDeclaration(getContext().VoidTy, Args);
  2807. llvm::Function *F = llvm::Function::Create(
  2808. llvm::FunctionType::get(VoidTy, {VoidPtrTy, VoidPtrTy}, false),
  2809. llvm::GlobalValue::WeakODRLinkage, "__cfi_check_fail", &CGM.getModule());
  2810. F->setVisibility(llvm::GlobalValue::HiddenVisibility);
  2811. StartFunction(GlobalDecl(), CGM.getContext().VoidTy, F, FI, Args,
  2812. SourceLocation());
  2813. // This function should not be affected by blacklist. This function does
  2814. // not have a source location, but "src:*" would still apply. Revert any
  2815. // changes to SanOpts made in StartFunction.
  2816. SanOpts = CGM.getLangOpts().Sanitize;
  2817. llvm::Value *Data =
  2818. EmitLoadOfScalar(GetAddrOfLocalVar(&ArgData), /*Volatile=*/false,
  2819. CGM.getContext().VoidPtrTy, ArgData.getLocation());
  2820. llvm::Value *Addr =
  2821. EmitLoadOfScalar(GetAddrOfLocalVar(&ArgAddr), /*Volatile=*/false,
  2822. CGM.getContext().VoidPtrTy, ArgAddr.getLocation());
  2823. // Data == nullptr means the calling module has trap behaviour for this check.
  2824. llvm::Value *DataIsNotNullPtr =
  2825. Builder.CreateICmpNE(Data, llvm::ConstantPointerNull::get(Int8PtrTy));
  2826. EmitTrapCheck(DataIsNotNullPtr);
  2827. llvm::StructType *SourceLocationTy =
  2828. llvm::StructType::get(VoidPtrTy, Int32Ty, Int32Ty);
  2829. llvm::StructType *CfiCheckFailDataTy =
  2830. llvm::StructType::get(Int8Ty, SourceLocationTy, VoidPtrTy);
  2831. llvm::Value *V = Builder.CreateConstGEP2_32(
  2832. CfiCheckFailDataTy,
  2833. Builder.CreatePointerCast(Data, CfiCheckFailDataTy->getPointerTo(0)), 0,
  2834. 0);
  2835. Address CheckKindAddr(V, getIntAlign());
  2836. llvm::Value *CheckKind = Builder.CreateLoad(CheckKindAddr);
  2837. llvm::Value *AllVtables = llvm::MetadataAsValue::get(
  2838. CGM.getLLVMContext(),
  2839. llvm::MDString::get(CGM.getLLVMContext(), "all-vtables"));
  2840. llvm::Value *ValidVtable = Builder.CreateZExt(
  2841. Builder.CreateCall(CGM.getIntrinsic(llvm::Intrinsic::type_test),
  2842. {Addr, AllVtables}),
  2843. IntPtrTy);
  2844. const std::pair<int, SanitizerMask> CheckKinds[] = {
  2845. {CFITCK_VCall, SanitizerKind::CFIVCall},
  2846. {CFITCK_NVCall, SanitizerKind::CFINVCall},
  2847. {CFITCK_DerivedCast, SanitizerKind::CFIDerivedCast},
  2848. {CFITCK_UnrelatedCast, SanitizerKind::CFIUnrelatedCast},
  2849. {CFITCK_ICall, SanitizerKind::CFIICall}};
  2850. SmallVector<std::pair<llvm::Value *, SanitizerMask>, 5> Checks;
  2851. for (auto CheckKindMaskPair : CheckKinds) {
  2852. int Kind = CheckKindMaskPair.first;
  2853. SanitizerMask Mask = CheckKindMaskPair.second;
  2854. llvm::Value *Cond =
  2855. Builder.CreateICmpNE(CheckKind, llvm::ConstantInt::get(Int8Ty, Kind));
  2856. if (CGM.getLangOpts().Sanitize.has(Mask))
  2857. EmitCheck(std::make_pair(Cond, Mask), SanitizerHandler::CFICheckFail, {},
  2858. {Data, Addr, ValidVtable});
  2859. else
  2860. EmitTrapCheck(Cond);
  2861. }
  2862. FinishFunction();
  2863. // The only reference to this function will be created during LTO link.
  2864. // Make sure it survives until then.
  2865. CGM.addUsedGlobal(F);
  2866. }
  2867. void CodeGenFunction::EmitUnreachable(SourceLocation Loc) {
  2868. if (SanOpts.has(SanitizerKind::Unreachable)) {
  2869. SanitizerScope SanScope(this);
  2870. EmitCheck(std::make_pair(static_cast<llvm::Value *>(Builder.getFalse()),
  2871. SanitizerKind::Unreachable),
  2872. SanitizerHandler::BuiltinUnreachable,
  2873. EmitCheckSourceLocation(Loc), None);
  2874. }
  2875. Builder.CreateUnreachable();
  2876. }
  2877. void CodeGenFunction::EmitTrapCheck(llvm::Value *Checked) {
  2878. llvm::BasicBlock *Cont = createBasicBlock("cont");
  2879. // If we're optimizing, collapse all calls to trap down to just one per
  2880. // function to save on code size.
  2881. if (!CGM.getCodeGenOpts().OptimizationLevel || !TrapBB) {
  2882. TrapBB = createBasicBlock("trap");
  2883. Builder.CreateCondBr(Checked, Cont, TrapBB);
  2884. EmitBlock(TrapBB);
  2885. llvm::CallInst *TrapCall = EmitTrapCall(llvm::Intrinsic::trap);
  2886. TrapCall->setDoesNotReturn();
  2887. TrapCall->setDoesNotThrow();
  2888. Builder.CreateUnreachable();
  2889. } else {
  2890. Builder.CreateCondBr(Checked, Cont, TrapBB);
  2891. }
  2892. EmitBlock(Cont);
  2893. }
  2894. llvm::CallInst *CodeGenFunction::EmitTrapCall(llvm::Intrinsic::ID IntrID) {
  2895. llvm::CallInst *TrapCall = Builder.CreateCall(CGM.getIntrinsic(IntrID));
  2896. if (!CGM.getCodeGenOpts().TrapFuncName.empty()) {
  2897. auto A = llvm::Attribute::get(getLLVMContext(), "trap-func-name",
  2898. CGM.getCodeGenOpts().TrapFuncName);
  2899. TrapCall->addAttribute(llvm::AttributeList::FunctionIndex, A);
  2900. }
  2901. return TrapCall;
  2902. }
  2903. Address CodeGenFunction::EmitArrayToPointerDecay(const Expr *E,
  2904. LValueBaseInfo *BaseInfo,
  2905. TBAAAccessInfo *TBAAInfo) {
  2906. assert(E->getType()->isArrayType() &&
  2907. "Array to pointer decay must have array source type!");
  2908. // Expressions of array type can't be bitfields or vector elements.
  2909. LValue LV = EmitLValue(E);
  2910. Address Addr = LV.getAddress();
  2911. // If the array type was an incomplete type, we need to make sure
  2912. // the decay ends up being the right type.
  2913. llvm::Type *NewTy = ConvertType(E->getType());
  2914. Addr = Builder.CreateElementBitCast(Addr, NewTy);
  2915. // Note that VLA pointers are always decayed, so we don't need to do
  2916. // anything here.
  2917. if (!E->getType()->isVariableArrayType()) {
  2918. assert(isa<llvm::ArrayType>(Addr.getElementType()) &&
  2919. "Expected pointer to array");
  2920. Addr = Builder.CreateConstArrayGEP(Addr, 0, "arraydecay");
  2921. }
  2922. // The result of this decay conversion points to an array element within the
  2923. // base lvalue. However, since TBAA currently does not support representing
  2924. // accesses to elements of member arrays, we conservatively represent accesses
  2925. // to the pointee object as if it had no any base lvalue specified.
  2926. // TODO: Support TBAA for member arrays.
  2927. QualType EltType = E->getType()->castAsArrayTypeUnsafe()->getElementType();
  2928. if (BaseInfo) *BaseInfo = LV.getBaseInfo();
  2929. if (TBAAInfo) *TBAAInfo = CGM.getTBAAAccessInfo(EltType);
  2930. return Builder.CreateElementBitCast(Addr, ConvertTypeForMem(EltType));
  2931. }
  2932. /// isSimpleArrayDecayOperand - If the specified expr is a simple decay from an
  2933. /// array to pointer, return the array subexpression.
  2934. static const Expr *isSimpleArrayDecayOperand(const Expr *E) {
  2935. // If this isn't just an array->pointer decay, bail out.
  2936. const auto *CE = dyn_cast<CastExpr>(E);
  2937. if (!CE || CE->getCastKind() != CK_ArrayToPointerDecay)
  2938. return nullptr;
  2939. // If this is a decay from variable width array, bail out.
  2940. const Expr *SubExpr = CE->getSubExpr();
  2941. if (SubExpr->getType()->isVariableArrayType())
  2942. return nullptr;
  2943. return SubExpr;
  2944. }
  2945. static llvm::Value *emitArraySubscriptGEP(CodeGenFunction &CGF,
  2946. llvm::Value *ptr,
  2947. ArrayRef<llvm::Value*> indices,
  2948. bool inbounds,
  2949. bool signedIndices,
  2950. SourceLocation loc,
  2951. const llvm::Twine &name = "arrayidx") {
  2952. if (inbounds) {
  2953. return CGF.EmitCheckedInBoundsGEP(ptr, indices, signedIndices,
  2954. CodeGenFunction::NotSubtraction, loc,
  2955. name);
  2956. } else {
  2957. return CGF.Builder.CreateGEP(ptr, indices, name);
  2958. }
  2959. }
  2960. static CharUnits getArrayElementAlign(CharUnits arrayAlign,
  2961. llvm::Value *idx,
  2962. CharUnits eltSize) {
  2963. // If we have a constant index, we can use the exact offset of the
  2964. // element we're accessing.
  2965. if (auto constantIdx = dyn_cast<llvm::ConstantInt>(idx)) {
  2966. CharUnits offset = constantIdx->getZExtValue() * eltSize;
  2967. return arrayAlign.alignmentAtOffset(offset);
  2968. // Otherwise, use the worst-case alignment for any element.
  2969. } else {
  2970. return arrayAlign.alignmentOfArrayElement(eltSize);
  2971. }
  2972. }
  2973. static QualType getFixedSizeElementType(const ASTContext &ctx,
  2974. const VariableArrayType *vla) {
  2975. QualType eltType;
  2976. do {
  2977. eltType = vla->getElementType();
  2978. } while ((vla = ctx.getAsVariableArrayType(eltType)));
  2979. return eltType;
  2980. }
  2981. static Address emitArraySubscriptGEP(CodeGenFunction &CGF, Address addr,
  2982. ArrayRef<llvm::Value *> indices,
  2983. QualType eltType, bool inbounds,
  2984. bool signedIndices, SourceLocation loc,
  2985. QualType *arrayType = nullptr,
  2986. const llvm::Twine &name = "arrayidx") {
  2987. // All the indices except that last must be zero.
  2988. #ifndef NDEBUG
  2989. for (auto idx : indices.drop_back())
  2990. assert(isa<llvm::ConstantInt>(idx) &&
  2991. cast<llvm::ConstantInt>(idx)->isZero());
  2992. #endif
  2993. // Determine the element size of the statically-sized base. This is
  2994. // the thing that the indices are expressed in terms of.
  2995. if (auto vla = CGF.getContext().getAsVariableArrayType(eltType)) {
  2996. eltType = getFixedSizeElementType(CGF.getContext(), vla);
  2997. }
  2998. // We can use that to compute the best alignment of the element.
  2999. CharUnits eltSize = CGF.getContext().getTypeSizeInChars(eltType);
  3000. CharUnits eltAlign =
  3001. getArrayElementAlign(addr.getAlignment(), indices.back(), eltSize);
  3002. llvm::Value *eltPtr;
  3003. auto LastIndex = dyn_cast<llvm::ConstantInt>(indices.back());
  3004. if (!CGF.IsInPreservedAIRegion || !LastIndex) {
  3005. eltPtr = emitArraySubscriptGEP(
  3006. CGF, addr.getPointer(), indices, inbounds, signedIndices,
  3007. loc, name);
  3008. } else {
  3009. // Remember the original array subscript for bpf target
  3010. unsigned idx = LastIndex->getZExtValue();
  3011. llvm::DIType *DbgInfo = nullptr;
  3012. if (arrayType)
  3013. DbgInfo = CGF.getDebugInfo()->getOrCreateStandaloneType(*arrayType, loc);
  3014. eltPtr = CGF.Builder.CreatePreserveArrayAccessIndex(addr.getPointer(),
  3015. indices.size() - 1,
  3016. idx, DbgInfo);
  3017. }
  3018. return Address(eltPtr, eltAlign);
  3019. }
  3020. LValue CodeGenFunction::EmitArraySubscriptExpr(const ArraySubscriptExpr *E,
  3021. bool Accessed) {
  3022. // The index must always be an integer, which is not an aggregate. Emit it
  3023. // in lexical order (this complexity is, sadly, required by C++17).
  3024. llvm::Value *IdxPre =
  3025. (E->getLHS() == E->getIdx()) ? EmitScalarExpr(E->getIdx()) : nullptr;
  3026. bool SignedIndices = false;
  3027. auto EmitIdxAfterBase = [&, IdxPre](bool Promote) -> llvm::Value * {
  3028. auto *Idx = IdxPre;
  3029. if (E->getLHS() != E->getIdx()) {
  3030. assert(E->getRHS() == E->getIdx() && "index was neither LHS nor RHS");
  3031. Idx = EmitScalarExpr(E->getIdx());
  3032. }
  3033. QualType IdxTy = E->getIdx()->getType();
  3034. bool IdxSigned = IdxTy->isSignedIntegerOrEnumerationType();
  3035. SignedIndices |= IdxSigned;
  3036. if (SanOpts.has(SanitizerKind::ArrayBounds))
  3037. EmitBoundsCheck(E, E->getBase(), Idx, IdxTy, Accessed);
  3038. // Extend or truncate the index type to 32 or 64-bits.
  3039. if (Promote && Idx->getType() != IntPtrTy)
  3040. Idx = Builder.CreateIntCast(Idx, IntPtrTy, IdxSigned, "idxprom");
  3041. return Idx;
  3042. };
  3043. IdxPre = nullptr;
  3044. // If the base is a vector type, then we are forming a vector element lvalue
  3045. // with this subscript.
  3046. if (E->getBase()->getType()->isVectorType() &&
  3047. !isa<ExtVectorElementExpr>(E->getBase())) {
  3048. // Emit the vector as an lvalue to get its address.
  3049. LValue LHS = EmitLValue(E->getBase());
  3050. auto *Idx = EmitIdxAfterBase(/*Promote*/false);
  3051. assert(LHS.isSimple() && "Can only subscript lvalue vectors here!");
  3052. return LValue::MakeVectorElt(LHS.getAddress(), Idx, E->getBase()->getType(),
  3053. LHS.getBaseInfo(), TBAAAccessInfo());
  3054. }
  3055. // All the other cases basically behave like simple offsetting.
  3056. // Handle the extvector case we ignored above.
  3057. if (isa<ExtVectorElementExpr>(E->getBase())) {
  3058. LValue LV = EmitLValue(E->getBase());
  3059. auto *Idx = EmitIdxAfterBase(/*Promote*/true);
  3060. Address Addr = EmitExtVectorElementLValue(LV);
  3061. QualType EltType = LV.getType()->castAs<VectorType>()->getElementType();
  3062. Addr = emitArraySubscriptGEP(*this, Addr, Idx, EltType, /*inbounds*/ true,
  3063. SignedIndices, E->getExprLoc());
  3064. return MakeAddrLValue(Addr, EltType, LV.getBaseInfo(),
  3065. CGM.getTBAAInfoForSubobject(LV, EltType));
  3066. }
  3067. LValueBaseInfo EltBaseInfo;
  3068. TBAAAccessInfo EltTBAAInfo;
  3069. Address Addr = Address::invalid();
  3070. if (const VariableArrayType *vla =
  3071. getContext().getAsVariableArrayType(E->getType())) {
  3072. // The base must be a pointer, which is not an aggregate. Emit
  3073. // it. It needs to be emitted first in case it's what captures
  3074. // the VLA bounds.
  3075. Addr = EmitPointerWithAlignment(E->getBase(), &EltBaseInfo, &EltTBAAInfo);
  3076. auto *Idx = EmitIdxAfterBase(/*Promote*/true);
  3077. // The element count here is the total number of non-VLA elements.
  3078. llvm::Value *numElements = getVLASize(vla).NumElts;
  3079. // Effectively, the multiply by the VLA size is part of the GEP.
  3080. // GEP indexes are signed, and scaling an index isn't permitted to
  3081. // signed-overflow, so we use the same semantics for our explicit
  3082. // multiply. We suppress this if overflow is not undefined behavior.
  3083. if (getLangOpts().isSignedOverflowDefined()) {
  3084. Idx = Builder.CreateMul(Idx, numElements);
  3085. } else {
  3086. Idx = Builder.CreateNSWMul(Idx, numElements);
  3087. }
  3088. Addr = emitArraySubscriptGEP(*this, Addr, Idx, vla->getElementType(),
  3089. !getLangOpts().isSignedOverflowDefined(),
  3090. SignedIndices, E->getExprLoc());
  3091. } else if (const ObjCObjectType *OIT = E->getType()->getAs<ObjCObjectType>()){
  3092. // Indexing over an interface, as in "NSString *P; P[4];"
  3093. // Emit the base pointer.
  3094. Addr = EmitPointerWithAlignment(E->getBase(), &EltBaseInfo, &EltTBAAInfo);
  3095. auto *Idx = EmitIdxAfterBase(/*Promote*/true);
  3096. CharUnits InterfaceSize = getContext().getTypeSizeInChars(OIT);
  3097. llvm::Value *InterfaceSizeVal =
  3098. llvm::ConstantInt::get(Idx->getType(), InterfaceSize.getQuantity());
  3099. llvm::Value *ScaledIdx = Builder.CreateMul(Idx, InterfaceSizeVal);
  3100. // We don't necessarily build correct LLVM struct types for ObjC
  3101. // interfaces, so we can't rely on GEP to do this scaling
  3102. // correctly, so we need to cast to i8*. FIXME: is this actually
  3103. // true? A lot of other things in the fragile ABI would break...
  3104. llvm::Type *OrigBaseTy = Addr.getType();
  3105. Addr = Builder.CreateElementBitCast(Addr, Int8Ty);
  3106. // Do the GEP.
  3107. CharUnits EltAlign =
  3108. getArrayElementAlign(Addr.getAlignment(), Idx, InterfaceSize);
  3109. llvm::Value *EltPtr =
  3110. emitArraySubscriptGEP(*this, Addr.getPointer(), ScaledIdx, false,
  3111. SignedIndices, E->getExprLoc());
  3112. Addr = Address(EltPtr, EltAlign);
  3113. // Cast back.
  3114. Addr = Builder.CreateBitCast(Addr, OrigBaseTy);
  3115. } else if (const Expr *Array = isSimpleArrayDecayOperand(E->getBase())) {
  3116. // If this is A[i] where A is an array, the frontend will have decayed the
  3117. // base to be a ArrayToPointerDecay implicit cast. While correct, it is
  3118. // inefficient at -O0 to emit a "gep A, 0, 0" when codegen'ing it, then a
  3119. // "gep x, i" here. Emit one "gep A, 0, i".
  3120. assert(Array->getType()->isArrayType() &&
  3121. "Array to pointer decay must have array source type!");
  3122. LValue ArrayLV;
  3123. // For simple multidimensional array indexing, set the 'accessed' flag for
  3124. // better bounds-checking of the base expression.
  3125. if (const auto *ASE = dyn_cast<ArraySubscriptExpr>(Array))
  3126. ArrayLV = EmitArraySubscriptExpr(ASE, /*Accessed*/ true);
  3127. else
  3128. ArrayLV = EmitLValue(Array);
  3129. auto *Idx = EmitIdxAfterBase(/*Promote*/true);
  3130. // Propagate the alignment from the array itself to the result.
  3131. QualType arrayType = Array->getType();
  3132. Addr = emitArraySubscriptGEP(
  3133. *this, ArrayLV.getAddress(), {CGM.getSize(CharUnits::Zero()), Idx},
  3134. E->getType(), !getLangOpts().isSignedOverflowDefined(), SignedIndices,
  3135. E->getExprLoc(), &arrayType);
  3136. EltBaseInfo = ArrayLV.getBaseInfo();
  3137. EltTBAAInfo = CGM.getTBAAInfoForSubobject(ArrayLV, E->getType());
  3138. } else {
  3139. // The base must be a pointer; emit it with an estimate of its alignment.
  3140. Addr = EmitPointerWithAlignment(E->getBase(), &EltBaseInfo, &EltTBAAInfo);
  3141. auto *Idx = EmitIdxAfterBase(/*Promote*/true);
  3142. QualType ptrType = E->getBase()->getType();
  3143. Addr = emitArraySubscriptGEP(*this, Addr, Idx, E->getType(),
  3144. !getLangOpts().isSignedOverflowDefined(),
  3145. SignedIndices, E->getExprLoc(), &ptrType);
  3146. }
  3147. LValue LV = MakeAddrLValue(Addr, E->getType(), EltBaseInfo, EltTBAAInfo);
  3148. if (getLangOpts().ObjC &&
  3149. getLangOpts().getGC() != LangOptions::NonGC) {
  3150. LV.setNonGC(!E->isOBJCGCCandidate(getContext()));
  3151. setObjCGCLValueClass(getContext(), E, LV);
  3152. }
  3153. return LV;
  3154. }
  3155. static Address emitOMPArraySectionBase(CodeGenFunction &CGF, const Expr *Base,
  3156. LValueBaseInfo &BaseInfo,
  3157. TBAAAccessInfo &TBAAInfo,
  3158. QualType BaseTy, QualType ElTy,
  3159. bool IsLowerBound) {
  3160. LValue BaseLVal;
  3161. if (auto *ASE = dyn_cast<OMPArraySectionExpr>(Base->IgnoreParenImpCasts())) {
  3162. BaseLVal = CGF.EmitOMPArraySectionExpr(ASE, IsLowerBound);
  3163. if (BaseTy->isArrayType()) {
  3164. Address Addr = BaseLVal.getAddress();
  3165. BaseInfo = BaseLVal.getBaseInfo();
  3166. // If the array type was an incomplete type, we need to make sure
  3167. // the decay ends up being the right type.
  3168. llvm::Type *NewTy = CGF.ConvertType(BaseTy);
  3169. Addr = CGF.Builder.CreateElementBitCast(Addr, NewTy);
  3170. // Note that VLA pointers are always decayed, so we don't need to do
  3171. // anything here.
  3172. if (!BaseTy->isVariableArrayType()) {
  3173. assert(isa<llvm::ArrayType>(Addr.getElementType()) &&
  3174. "Expected pointer to array");
  3175. Addr = CGF.Builder.CreateConstArrayGEP(Addr, 0, "arraydecay");
  3176. }
  3177. return CGF.Builder.CreateElementBitCast(Addr,
  3178. CGF.ConvertTypeForMem(ElTy));
  3179. }
  3180. LValueBaseInfo TypeBaseInfo;
  3181. TBAAAccessInfo TypeTBAAInfo;
  3182. CharUnits Align = CGF.getNaturalTypeAlignment(ElTy, &TypeBaseInfo,
  3183. &TypeTBAAInfo);
  3184. BaseInfo.mergeForCast(TypeBaseInfo);
  3185. TBAAInfo = CGF.CGM.mergeTBAAInfoForCast(TBAAInfo, TypeTBAAInfo);
  3186. return Address(CGF.Builder.CreateLoad(BaseLVal.getAddress()), Align);
  3187. }
  3188. return CGF.EmitPointerWithAlignment(Base, &BaseInfo, &TBAAInfo);
  3189. }
  3190. LValue CodeGenFunction::EmitOMPArraySectionExpr(const OMPArraySectionExpr *E,
  3191. bool IsLowerBound) {
  3192. QualType BaseTy = OMPArraySectionExpr::getBaseOriginalType(E->getBase());
  3193. QualType ResultExprTy;
  3194. if (auto *AT = getContext().getAsArrayType(BaseTy))
  3195. ResultExprTy = AT->getElementType();
  3196. else
  3197. ResultExprTy = BaseTy->getPointeeType();
  3198. llvm::Value *Idx = nullptr;
  3199. if (IsLowerBound || E->getColonLoc().isInvalid()) {
  3200. // Requesting lower bound or upper bound, but without provided length and
  3201. // without ':' symbol for the default length -> length = 1.
  3202. // Idx = LowerBound ?: 0;
  3203. if (auto *LowerBound = E->getLowerBound()) {
  3204. Idx = Builder.CreateIntCast(
  3205. EmitScalarExpr(LowerBound), IntPtrTy,
  3206. LowerBound->getType()->hasSignedIntegerRepresentation());
  3207. } else
  3208. Idx = llvm::ConstantInt::getNullValue(IntPtrTy);
  3209. } else {
  3210. // Try to emit length or lower bound as constant. If this is possible, 1
  3211. // is subtracted from constant length or lower bound. Otherwise, emit LLVM
  3212. // IR (LB + Len) - 1.
  3213. auto &C = CGM.getContext();
  3214. auto *Length = E->getLength();
  3215. llvm::APSInt ConstLength;
  3216. if (Length) {
  3217. // Idx = LowerBound + Length - 1;
  3218. if (Length->isIntegerConstantExpr(ConstLength, C)) {
  3219. ConstLength = ConstLength.zextOrTrunc(PointerWidthInBits);
  3220. Length = nullptr;
  3221. }
  3222. auto *LowerBound = E->getLowerBound();
  3223. llvm::APSInt ConstLowerBound(PointerWidthInBits, /*isUnsigned=*/false);
  3224. if (LowerBound && LowerBound->isIntegerConstantExpr(ConstLowerBound, C)) {
  3225. ConstLowerBound = ConstLowerBound.zextOrTrunc(PointerWidthInBits);
  3226. LowerBound = nullptr;
  3227. }
  3228. if (!Length)
  3229. --ConstLength;
  3230. else if (!LowerBound)
  3231. --ConstLowerBound;
  3232. if (Length || LowerBound) {
  3233. auto *LowerBoundVal =
  3234. LowerBound
  3235. ? Builder.CreateIntCast(
  3236. EmitScalarExpr(LowerBound), IntPtrTy,
  3237. LowerBound->getType()->hasSignedIntegerRepresentation())
  3238. : llvm::ConstantInt::get(IntPtrTy, ConstLowerBound);
  3239. auto *LengthVal =
  3240. Length
  3241. ? Builder.CreateIntCast(
  3242. EmitScalarExpr(Length), IntPtrTy,
  3243. Length->getType()->hasSignedIntegerRepresentation())
  3244. : llvm::ConstantInt::get(IntPtrTy, ConstLength);
  3245. Idx = Builder.CreateAdd(LowerBoundVal, LengthVal, "lb_add_len",
  3246. /*HasNUW=*/false,
  3247. !getLangOpts().isSignedOverflowDefined());
  3248. if (Length && LowerBound) {
  3249. Idx = Builder.CreateSub(
  3250. Idx, llvm::ConstantInt::get(IntPtrTy, /*V=*/1), "idx_sub_1",
  3251. /*HasNUW=*/false, !getLangOpts().isSignedOverflowDefined());
  3252. }
  3253. } else
  3254. Idx = llvm::ConstantInt::get(IntPtrTy, ConstLength + ConstLowerBound);
  3255. } else {
  3256. // Idx = ArraySize - 1;
  3257. QualType ArrayTy = BaseTy->isPointerType()
  3258. ? E->getBase()->IgnoreParenImpCasts()->getType()
  3259. : BaseTy;
  3260. if (auto *VAT = C.getAsVariableArrayType(ArrayTy)) {
  3261. Length = VAT->getSizeExpr();
  3262. if (Length->isIntegerConstantExpr(ConstLength, C))
  3263. Length = nullptr;
  3264. } else {
  3265. auto *CAT = C.getAsConstantArrayType(ArrayTy);
  3266. ConstLength = CAT->getSize();
  3267. }
  3268. if (Length) {
  3269. auto *LengthVal = Builder.CreateIntCast(
  3270. EmitScalarExpr(Length), IntPtrTy,
  3271. Length->getType()->hasSignedIntegerRepresentation());
  3272. Idx = Builder.CreateSub(
  3273. LengthVal, llvm::ConstantInt::get(IntPtrTy, /*V=*/1), "len_sub_1",
  3274. /*HasNUW=*/false, !getLangOpts().isSignedOverflowDefined());
  3275. } else {
  3276. ConstLength = ConstLength.zextOrTrunc(PointerWidthInBits);
  3277. --ConstLength;
  3278. Idx = llvm::ConstantInt::get(IntPtrTy, ConstLength);
  3279. }
  3280. }
  3281. }
  3282. assert(Idx);
  3283. Address EltPtr = Address::invalid();
  3284. LValueBaseInfo BaseInfo;
  3285. TBAAAccessInfo TBAAInfo;
  3286. if (auto *VLA = getContext().getAsVariableArrayType(ResultExprTy)) {
  3287. // The base must be a pointer, which is not an aggregate. Emit
  3288. // it. It needs to be emitted first in case it's what captures
  3289. // the VLA bounds.
  3290. Address Base =
  3291. emitOMPArraySectionBase(*this, E->getBase(), BaseInfo, TBAAInfo,
  3292. BaseTy, VLA->getElementType(), IsLowerBound);
  3293. // The element count here is the total number of non-VLA elements.
  3294. llvm::Value *NumElements = getVLASize(VLA).NumElts;
  3295. // Effectively, the multiply by the VLA size is part of the GEP.
  3296. // GEP indexes are signed, and scaling an index isn't permitted to
  3297. // signed-overflow, so we use the same semantics for our explicit
  3298. // multiply. We suppress this if overflow is not undefined behavior.
  3299. if (getLangOpts().isSignedOverflowDefined())
  3300. Idx = Builder.CreateMul(Idx, NumElements);
  3301. else
  3302. Idx = Builder.CreateNSWMul(Idx, NumElements);
  3303. EltPtr = emitArraySubscriptGEP(*this, Base, Idx, VLA->getElementType(),
  3304. !getLangOpts().isSignedOverflowDefined(),
  3305. /*signedIndices=*/false, E->getExprLoc());
  3306. } else if (const Expr *Array = isSimpleArrayDecayOperand(E->getBase())) {
  3307. // If this is A[i] where A is an array, the frontend will have decayed the
  3308. // base to be a ArrayToPointerDecay implicit cast. While correct, it is
  3309. // inefficient at -O0 to emit a "gep A, 0, 0" when codegen'ing it, then a
  3310. // "gep x, i" here. Emit one "gep A, 0, i".
  3311. assert(Array->getType()->isArrayType() &&
  3312. "Array to pointer decay must have array source type!");
  3313. LValue ArrayLV;
  3314. // For simple multidimensional array indexing, set the 'accessed' flag for
  3315. // better bounds-checking of the base expression.
  3316. if (const auto *ASE = dyn_cast<ArraySubscriptExpr>(Array))
  3317. ArrayLV = EmitArraySubscriptExpr(ASE, /*Accessed*/ true);
  3318. else
  3319. ArrayLV = EmitLValue(Array);
  3320. // Propagate the alignment from the array itself to the result.
  3321. EltPtr = emitArraySubscriptGEP(
  3322. *this, ArrayLV.getAddress(), {CGM.getSize(CharUnits::Zero()), Idx},
  3323. ResultExprTy, !getLangOpts().isSignedOverflowDefined(),
  3324. /*signedIndices=*/false, E->getExprLoc());
  3325. BaseInfo = ArrayLV.getBaseInfo();
  3326. TBAAInfo = CGM.getTBAAInfoForSubobject(ArrayLV, ResultExprTy);
  3327. } else {
  3328. Address Base = emitOMPArraySectionBase(*this, E->getBase(), BaseInfo,
  3329. TBAAInfo, BaseTy, ResultExprTy,
  3330. IsLowerBound);
  3331. EltPtr = emitArraySubscriptGEP(*this, Base, Idx, ResultExprTy,
  3332. !getLangOpts().isSignedOverflowDefined(),
  3333. /*signedIndices=*/false, E->getExprLoc());
  3334. }
  3335. return MakeAddrLValue(EltPtr, ResultExprTy, BaseInfo, TBAAInfo);
  3336. }
  3337. LValue CodeGenFunction::
  3338. EmitExtVectorElementExpr(const ExtVectorElementExpr *E) {
  3339. // Emit the base vector as an l-value.
  3340. LValue Base;
  3341. // ExtVectorElementExpr's base can either be a vector or pointer to vector.
  3342. if (E->isArrow()) {
  3343. // If it is a pointer to a vector, emit the address and form an lvalue with
  3344. // it.
  3345. LValueBaseInfo BaseInfo;
  3346. TBAAAccessInfo TBAAInfo;
  3347. Address Ptr = EmitPointerWithAlignment(E->getBase(), &BaseInfo, &TBAAInfo);
  3348. const PointerType *PT = E->getBase()->getType()->getAs<PointerType>();
  3349. Base = MakeAddrLValue(Ptr, PT->getPointeeType(), BaseInfo, TBAAInfo);
  3350. Base.getQuals().removeObjCGCAttr();
  3351. } else if (E->getBase()->isGLValue()) {
  3352. // Otherwise, if the base is an lvalue ( as in the case of foo.x.x),
  3353. // emit the base as an lvalue.
  3354. assert(E->getBase()->getType()->isVectorType());
  3355. Base = EmitLValue(E->getBase());
  3356. } else {
  3357. // Otherwise, the base is a normal rvalue (as in (V+V).x), emit it as such.
  3358. assert(E->getBase()->getType()->isVectorType() &&
  3359. "Result must be a vector");
  3360. llvm::Value *Vec = EmitScalarExpr(E->getBase());
  3361. // Store the vector to memory (because LValue wants an address).
  3362. Address VecMem = CreateMemTemp(E->getBase()->getType());
  3363. Builder.CreateStore(Vec, VecMem);
  3364. Base = MakeAddrLValue(VecMem, E->getBase()->getType(),
  3365. AlignmentSource::Decl);
  3366. }
  3367. QualType type =
  3368. E->getType().withCVRQualifiers(Base.getQuals().getCVRQualifiers());
  3369. // Encode the element access list into a vector of unsigned indices.
  3370. SmallVector<uint32_t, 4> Indices;
  3371. E->getEncodedElementAccess(Indices);
  3372. if (Base.isSimple()) {
  3373. llvm::Constant *CV =
  3374. llvm::ConstantDataVector::get(getLLVMContext(), Indices);
  3375. return LValue::MakeExtVectorElt(Base.getAddress(), CV, type,
  3376. Base.getBaseInfo(), TBAAAccessInfo());
  3377. }
  3378. assert(Base.isExtVectorElt() && "Can only subscript lvalue vec elts here!");
  3379. llvm::Constant *BaseElts = Base.getExtVectorElts();
  3380. SmallVector<llvm::Constant *, 4> CElts;
  3381. for (unsigned i = 0, e = Indices.size(); i != e; ++i)
  3382. CElts.push_back(BaseElts->getAggregateElement(Indices[i]));
  3383. llvm::Constant *CV = llvm::ConstantVector::get(CElts);
  3384. return LValue::MakeExtVectorElt(Base.getExtVectorAddress(), CV, type,
  3385. Base.getBaseInfo(), TBAAAccessInfo());
  3386. }
  3387. LValue CodeGenFunction::EmitMemberExpr(const MemberExpr *E) {
  3388. if (DeclRefExpr *DRE = tryToConvertMemberExprToDeclRefExpr(*this, E)) {
  3389. EmitIgnoredExpr(E->getBase());
  3390. return EmitDeclRefLValue(DRE);
  3391. }
  3392. Expr *BaseExpr = E->getBase();
  3393. // If this is s.x, emit s as an lvalue. If it is s->x, emit s as a scalar.
  3394. LValue BaseLV;
  3395. if (E->isArrow()) {
  3396. LValueBaseInfo BaseInfo;
  3397. TBAAAccessInfo TBAAInfo;
  3398. Address Addr = EmitPointerWithAlignment(BaseExpr, &BaseInfo, &TBAAInfo);
  3399. QualType PtrTy = BaseExpr->getType()->getPointeeType();
  3400. SanitizerSet SkippedChecks;
  3401. bool IsBaseCXXThis = IsWrappedCXXThis(BaseExpr);
  3402. if (IsBaseCXXThis)
  3403. SkippedChecks.set(SanitizerKind::Alignment, true);
  3404. if (IsBaseCXXThis || isa<DeclRefExpr>(BaseExpr))
  3405. SkippedChecks.set(SanitizerKind::Null, true);
  3406. EmitTypeCheck(TCK_MemberAccess, E->getExprLoc(), Addr.getPointer(), PtrTy,
  3407. /*Alignment=*/CharUnits::Zero(), SkippedChecks);
  3408. BaseLV = MakeAddrLValue(Addr, PtrTy, BaseInfo, TBAAInfo);
  3409. } else
  3410. BaseLV = EmitCheckedLValue(BaseExpr, TCK_MemberAccess);
  3411. NamedDecl *ND = E->getMemberDecl();
  3412. if (auto *Field = dyn_cast<FieldDecl>(ND)) {
  3413. LValue LV = EmitLValueForField(BaseLV, Field);
  3414. setObjCGCLValueClass(getContext(), E, LV);
  3415. return LV;
  3416. }
  3417. if (const auto *FD = dyn_cast<FunctionDecl>(ND))
  3418. return EmitFunctionDeclLValue(*this, E, FD);
  3419. llvm_unreachable("Unhandled member declaration!");
  3420. }
  3421. /// Given that we are currently emitting a lambda, emit an l-value for
  3422. /// one of its members.
  3423. LValue CodeGenFunction::EmitLValueForLambdaField(const FieldDecl *Field) {
  3424. assert(cast<CXXMethodDecl>(CurCodeDecl)->getParent()->isLambda());
  3425. assert(cast<CXXMethodDecl>(CurCodeDecl)->getParent() == Field->getParent());
  3426. QualType LambdaTagType =
  3427. getContext().getTagDeclType(Field->getParent());
  3428. LValue LambdaLV = MakeNaturalAlignAddrLValue(CXXABIThisValue, LambdaTagType);
  3429. return EmitLValueForField(LambdaLV, Field);
  3430. }
  3431. /// Get the field index in the debug info. The debug info structure/union
  3432. /// will ignore the unnamed bitfields.
  3433. unsigned CodeGenFunction::getDebugInfoFIndex(const RecordDecl *Rec,
  3434. unsigned FieldIndex) {
  3435. unsigned I = 0, Skipped = 0;
  3436. for (auto F : Rec->getDefinition()->fields()) {
  3437. if (I == FieldIndex)
  3438. break;
  3439. if (F->isUnnamedBitfield())
  3440. Skipped++;
  3441. I++;
  3442. }
  3443. return FieldIndex - Skipped;
  3444. }
  3445. /// Get the address of a zero-sized field within a record. The resulting
  3446. /// address doesn't necessarily have the right type.
  3447. static Address emitAddrOfZeroSizeField(CodeGenFunction &CGF, Address Base,
  3448. const FieldDecl *Field) {
  3449. CharUnits Offset = CGF.getContext().toCharUnitsFromBits(
  3450. CGF.getContext().getFieldOffset(Field));
  3451. if (Offset.isZero())
  3452. return Base;
  3453. Base = CGF.Builder.CreateElementBitCast(Base, CGF.Int8Ty);
  3454. return CGF.Builder.CreateConstInBoundsByteGEP(Base, Offset);
  3455. }
  3456. /// Drill down to the storage of a field without walking into
  3457. /// reference types.
  3458. ///
  3459. /// The resulting address doesn't necessarily have the right type.
  3460. static Address emitAddrOfFieldStorage(CodeGenFunction &CGF, Address base,
  3461. const FieldDecl *field) {
  3462. if (field->isZeroSize(CGF.getContext()))
  3463. return emitAddrOfZeroSizeField(CGF, base, field);
  3464. const RecordDecl *rec = field->getParent();
  3465. unsigned idx =
  3466. CGF.CGM.getTypes().getCGRecordLayout(rec).getLLVMFieldNo(field);
  3467. return CGF.Builder.CreateStructGEP(base, idx, field->getName());
  3468. }
  3469. static Address emitPreserveStructAccess(CodeGenFunction &CGF, Address base,
  3470. const FieldDecl *field) {
  3471. const RecordDecl *rec = field->getParent();
  3472. llvm::DIType *DbgInfo = CGF.getDebugInfo()->getOrCreateRecordType(
  3473. CGF.getContext().getRecordType(rec), rec->getLocation());
  3474. unsigned idx =
  3475. CGF.CGM.getTypes().getCGRecordLayout(rec).getLLVMFieldNo(field);
  3476. return CGF.Builder.CreatePreserveStructAccessIndex(
  3477. base, idx, CGF.getDebugInfoFIndex(rec, field->getFieldIndex()), DbgInfo);
  3478. }
  3479. static bool hasAnyVptr(const QualType Type, const ASTContext &Context) {
  3480. const auto *RD = Type.getTypePtr()->getAsCXXRecordDecl();
  3481. if (!RD)
  3482. return false;
  3483. if (RD->isDynamicClass())
  3484. return true;
  3485. for (const auto &Base : RD->bases())
  3486. if (hasAnyVptr(Base.getType(), Context))
  3487. return true;
  3488. for (const FieldDecl *Field : RD->fields())
  3489. if (hasAnyVptr(Field->getType(), Context))
  3490. return true;
  3491. return false;
  3492. }
  3493. LValue CodeGenFunction::EmitLValueForField(LValue base,
  3494. const FieldDecl *field) {
  3495. LValueBaseInfo BaseInfo = base.getBaseInfo();
  3496. if (field->isBitField()) {
  3497. const CGRecordLayout &RL =
  3498. CGM.getTypes().getCGRecordLayout(field->getParent());
  3499. const CGBitFieldInfo &Info = RL.getBitFieldInfo(field);
  3500. Address Addr = base.getAddress();
  3501. unsigned Idx = RL.getLLVMFieldNo(field);
  3502. if (!IsInPreservedAIRegion) {
  3503. if (Idx != 0)
  3504. // For structs, we GEP to the field that the record layout suggests.
  3505. Addr = Builder.CreateStructGEP(Addr, Idx, field->getName());
  3506. } else {
  3507. const RecordDecl *rec = field->getParent();
  3508. llvm::DIType *DbgInfo = getDebugInfo()->getOrCreateRecordType(
  3509. getContext().getRecordType(rec), rec->getLocation());
  3510. Addr = Builder.CreatePreserveStructAccessIndex(Addr, Idx,
  3511. getDebugInfoFIndex(rec, field->getFieldIndex()),
  3512. DbgInfo);
  3513. }
  3514. // Get the access type.
  3515. llvm::Type *FieldIntTy =
  3516. llvm::Type::getIntNTy(getLLVMContext(), Info.StorageSize);
  3517. if (Addr.getElementType() != FieldIntTy)
  3518. Addr = Builder.CreateElementBitCast(Addr, FieldIntTy);
  3519. QualType fieldType =
  3520. field->getType().withCVRQualifiers(base.getVRQualifiers());
  3521. // TODO: Support TBAA for bit fields.
  3522. LValueBaseInfo FieldBaseInfo(BaseInfo.getAlignmentSource());
  3523. return LValue::MakeBitfield(Addr, Info, fieldType, FieldBaseInfo,
  3524. TBAAAccessInfo());
  3525. }
  3526. // Fields of may-alias structures are may-alias themselves.
  3527. // FIXME: this should get propagated down through anonymous structs
  3528. // and unions.
  3529. QualType FieldType = field->getType();
  3530. const RecordDecl *rec = field->getParent();
  3531. AlignmentSource BaseAlignSource = BaseInfo.getAlignmentSource();
  3532. LValueBaseInfo FieldBaseInfo(getFieldAlignmentSource(BaseAlignSource));
  3533. TBAAAccessInfo FieldTBAAInfo;
  3534. if (base.getTBAAInfo().isMayAlias() ||
  3535. rec->hasAttr<MayAliasAttr>() || FieldType->isVectorType()) {
  3536. FieldTBAAInfo = TBAAAccessInfo::getMayAliasInfo();
  3537. } else if (rec->isUnion()) {
  3538. // TODO: Support TBAA for unions.
  3539. FieldTBAAInfo = TBAAAccessInfo::getMayAliasInfo();
  3540. } else {
  3541. // If no base type been assigned for the base access, then try to generate
  3542. // one for this base lvalue.
  3543. FieldTBAAInfo = base.getTBAAInfo();
  3544. if (!FieldTBAAInfo.BaseType) {
  3545. FieldTBAAInfo.BaseType = CGM.getTBAABaseTypeInfo(base.getType());
  3546. assert(!FieldTBAAInfo.Offset &&
  3547. "Nonzero offset for an access with no base type!");
  3548. }
  3549. // Adjust offset to be relative to the base type.
  3550. const ASTRecordLayout &Layout =
  3551. getContext().getASTRecordLayout(field->getParent());
  3552. unsigned CharWidth = getContext().getCharWidth();
  3553. if (FieldTBAAInfo.BaseType)
  3554. FieldTBAAInfo.Offset +=
  3555. Layout.getFieldOffset(field->getFieldIndex()) / CharWidth;
  3556. // Update the final access type and size.
  3557. FieldTBAAInfo.AccessType = CGM.getTBAATypeInfo(FieldType);
  3558. FieldTBAAInfo.Size =
  3559. getContext().getTypeSizeInChars(FieldType).getQuantity();
  3560. }
  3561. Address addr = base.getAddress();
  3562. if (auto *ClassDef = dyn_cast<CXXRecordDecl>(rec)) {
  3563. if (CGM.getCodeGenOpts().StrictVTablePointers &&
  3564. ClassDef->isDynamicClass()) {
  3565. // Getting to any field of dynamic object requires stripping dynamic
  3566. // information provided by invariant.group. This is because accessing
  3567. // fields may leak the real address of dynamic object, which could result
  3568. // in miscompilation when leaked pointer would be compared.
  3569. auto *stripped = Builder.CreateStripInvariantGroup(addr.getPointer());
  3570. addr = Address(stripped, addr.getAlignment());
  3571. }
  3572. }
  3573. unsigned RecordCVR = base.getVRQualifiers();
  3574. if (rec->isUnion()) {
  3575. // For unions, there is no pointer adjustment.
  3576. if (CGM.getCodeGenOpts().StrictVTablePointers &&
  3577. hasAnyVptr(FieldType, getContext()))
  3578. // Because unions can easily skip invariant.barriers, we need to add
  3579. // a barrier every time CXXRecord field with vptr is referenced.
  3580. addr = Address(Builder.CreateLaunderInvariantGroup(addr.getPointer()),
  3581. addr.getAlignment());
  3582. if (IsInPreservedAIRegion) {
  3583. // Remember the original union field index
  3584. llvm::DIType *DbgInfo = getDebugInfo()->getOrCreateRecordType(
  3585. getContext().getRecordType(rec), rec->getLocation());
  3586. addr = Address(
  3587. Builder.CreatePreserveUnionAccessIndex(
  3588. addr.getPointer(), getDebugInfoFIndex(rec, field->getFieldIndex()), DbgInfo),
  3589. addr.getAlignment());
  3590. }
  3591. if (FieldType->isReferenceType())
  3592. addr = Builder.CreateElementBitCast(
  3593. addr, CGM.getTypes().ConvertTypeForMem(FieldType), field->getName());
  3594. } else {
  3595. if (!IsInPreservedAIRegion)
  3596. // For structs, we GEP to the field that the record layout suggests.
  3597. addr = emitAddrOfFieldStorage(*this, addr, field);
  3598. else
  3599. // Remember the original struct field index
  3600. addr = emitPreserveStructAccess(*this, addr, field);
  3601. }
  3602. // If this is a reference field, load the reference right now.
  3603. if (FieldType->isReferenceType()) {
  3604. LValue RefLVal =
  3605. MakeAddrLValue(addr, FieldType, FieldBaseInfo, FieldTBAAInfo);
  3606. if (RecordCVR & Qualifiers::Volatile)
  3607. RefLVal.getQuals().addVolatile();
  3608. addr = EmitLoadOfReference(RefLVal, &FieldBaseInfo, &FieldTBAAInfo);
  3609. // Qualifiers on the struct don't apply to the referencee.
  3610. RecordCVR = 0;
  3611. FieldType = FieldType->getPointeeType();
  3612. }
  3613. // Make sure that the address is pointing to the right type. This is critical
  3614. // for both unions and structs. A union needs a bitcast, a struct element
  3615. // will need a bitcast if the LLVM type laid out doesn't match the desired
  3616. // type.
  3617. addr = Builder.CreateElementBitCast(
  3618. addr, CGM.getTypes().ConvertTypeForMem(FieldType), field->getName());
  3619. if (field->hasAttr<AnnotateAttr>())
  3620. addr = EmitFieldAnnotations(field, addr);
  3621. LValue LV = MakeAddrLValue(addr, FieldType, FieldBaseInfo, FieldTBAAInfo);
  3622. LV.getQuals().addCVRQualifiers(RecordCVR);
  3623. // __weak attribute on a field is ignored.
  3624. if (LV.getQuals().getObjCGCAttr() == Qualifiers::Weak)
  3625. LV.getQuals().removeObjCGCAttr();
  3626. return LV;
  3627. }
  3628. LValue
  3629. CodeGenFunction::EmitLValueForFieldInitialization(LValue Base,
  3630. const FieldDecl *Field) {
  3631. QualType FieldType = Field->getType();
  3632. if (!FieldType->isReferenceType())
  3633. return EmitLValueForField(Base, Field);
  3634. Address V = emitAddrOfFieldStorage(*this, Base.getAddress(), Field);
  3635. // Make sure that the address is pointing to the right type.
  3636. llvm::Type *llvmType = ConvertTypeForMem(FieldType);
  3637. V = Builder.CreateElementBitCast(V, llvmType, Field->getName());
  3638. // TODO: Generate TBAA information that describes this access as a structure
  3639. // member access and not just an access to an object of the field's type. This
  3640. // should be similar to what we do in EmitLValueForField().
  3641. LValueBaseInfo BaseInfo = Base.getBaseInfo();
  3642. AlignmentSource FieldAlignSource = BaseInfo.getAlignmentSource();
  3643. LValueBaseInfo FieldBaseInfo(getFieldAlignmentSource(FieldAlignSource));
  3644. return MakeAddrLValue(V, FieldType, FieldBaseInfo,
  3645. CGM.getTBAAInfoForSubobject(Base, FieldType));
  3646. }
  3647. LValue CodeGenFunction::EmitCompoundLiteralLValue(const CompoundLiteralExpr *E){
  3648. if (E->isFileScope()) {
  3649. ConstantAddress GlobalPtr = CGM.GetAddrOfConstantCompoundLiteral(E);
  3650. return MakeAddrLValue(GlobalPtr, E->getType(), AlignmentSource::Decl);
  3651. }
  3652. if (E->getType()->isVariablyModifiedType())
  3653. // make sure to emit the VLA size.
  3654. EmitVariablyModifiedType(E->getType());
  3655. Address DeclPtr = CreateMemTemp(E->getType(), ".compoundliteral");
  3656. const Expr *InitExpr = E->getInitializer();
  3657. LValue Result = MakeAddrLValue(DeclPtr, E->getType(), AlignmentSource::Decl);
  3658. EmitAnyExprToMem(InitExpr, DeclPtr, E->getType().getQualifiers(),
  3659. /*Init*/ true);
  3660. return Result;
  3661. }
  3662. LValue CodeGenFunction::EmitInitListLValue(const InitListExpr *E) {
  3663. if (!E->isGLValue())
  3664. // Initializing an aggregate temporary in C++11: T{...}.
  3665. return EmitAggExprToLValue(E);
  3666. // An lvalue initializer list must be initializing a reference.
  3667. assert(E->isTransparent() && "non-transparent glvalue init list");
  3668. return EmitLValue(E->getInit(0));
  3669. }
  3670. /// Emit the operand of a glvalue conditional operator. This is either a glvalue
  3671. /// or a (possibly-parenthesized) throw-expression. If this is a throw, no
  3672. /// LValue is returned and the current block has been terminated.
  3673. static Optional<LValue> EmitLValueOrThrowExpression(CodeGenFunction &CGF,
  3674. const Expr *Operand) {
  3675. if (auto *ThrowExpr = dyn_cast<CXXThrowExpr>(Operand->IgnoreParens())) {
  3676. CGF.EmitCXXThrowExpr(ThrowExpr, /*KeepInsertionPoint*/false);
  3677. return None;
  3678. }
  3679. return CGF.EmitLValue(Operand);
  3680. }
  3681. LValue CodeGenFunction::
  3682. EmitConditionalOperatorLValue(const AbstractConditionalOperator *expr) {
  3683. if (!expr->isGLValue()) {
  3684. // ?: here should be an aggregate.
  3685. assert(hasAggregateEvaluationKind(expr->getType()) &&
  3686. "Unexpected conditional operator!");
  3687. return EmitAggExprToLValue(expr);
  3688. }
  3689. OpaqueValueMapping binding(*this, expr);
  3690. const Expr *condExpr = expr->getCond();
  3691. bool CondExprBool;
  3692. if (ConstantFoldsToSimpleInteger(condExpr, CondExprBool)) {
  3693. const Expr *live = expr->getTrueExpr(), *dead = expr->getFalseExpr();
  3694. if (!CondExprBool) std::swap(live, dead);
  3695. if (!ContainsLabel(dead)) {
  3696. // If the true case is live, we need to track its region.
  3697. if (CondExprBool)
  3698. incrementProfileCounter(expr);
  3699. return EmitLValue(live);
  3700. }
  3701. }
  3702. llvm::BasicBlock *lhsBlock = createBasicBlock("cond.true");
  3703. llvm::BasicBlock *rhsBlock = createBasicBlock("cond.false");
  3704. llvm::BasicBlock *contBlock = createBasicBlock("cond.end");
  3705. ConditionalEvaluation eval(*this);
  3706. EmitBranchOnBoolExpr(condExpr, lhsBlock, rhsBlock, getProfileCount(expr));
  3707. // Any temporaries created here are conditional.
  3708. EmitBlock(lhsBlock);
  3709. incrementProfileCounter(expr);
  3710. eval.begin(*this);
  3711. Optional<LValue> lhs =
  3712. EmitLValueOrThrowExpression(*this, expr->getTrueExpr());
  3713. eval.end(*this);
  3714. if (lhs && !lhs->isSimple())
  3715. return EmitUnsupportedLValue(expr, "conditional operator");
  3716. lhsBlock = Builder.GetInsertBlock();
  3717. if (lhs)
  3718. Builder.CreateBr(contBlock);
  3719. // Any temporaries created here are conditional.
  3720. EmitBlock(rhsBlock);
  3721. eval.begin(*this);
  3722. Optional<LValue> rhs =
  3723. EmitLValueOrThrowExpression(*this, expr->getFalseExpr());
  3724. eval.end(*this);
  3725. if (rhs && !rhs->isSimple())
  3726. return EmitUnsupportedLValue(expr, "conditional operator");
  3727. rhsBlock = Builder.GetInsertBlock();
  3728. EmitBlock(contBlock);
  3729. if (lhs && rhs) {
  3730. llvm::PHINode *phi = Builder.CreatePHI(lhs->getPointer()->getType(),
  3731. 2, "cond-lvalue");
  3732. phi->addIncoming(lhs->getPointer(), lhsBlock);
  3733. phi->addIncoming(rhs->getPointer(), rhsBlock);
  3734. Address result(phi, std::min(lhs->getAlignment(), rhs->getAlignment()));
  3735. AlignmentSource alignSource =
  3736. std::max(lhs->getBaseInfo().getAlignmentSource(),
  3737. rhs->getBaseInfo().getAlignmentSource());
  3738. TBAAAccessInfo TBAAInfo = CGM.mergeTBAAInfoForConditionalOperator(
  3739. lhs->getTBAAInfo(), rhs->getTBAAInfo());
  3740. return MakeAddrLValue(result, expr->getType(), LValueBaseInfo(alignSource),
  3741. TBAAInfo);
  3742. } else {
  3743. assert((lhs || rhs) &&
  3744. "both operands of glvalue conditional are throw-expressions?");
  3745. return lhs ? *lhs : *rhs;
  3746. }
  3747. }
  3748. /// EmitCastLValue - Casts are never lvalues unless that cast is to a reference
  3749. /// type. If the cast is to a reference, we can have the usual lvalue result,
  3750. /// otherwise if a cast is needed by the code generator in an lvalue context,
  3751. /// then it must mean that we need the address of an aggregate in order to
  3752. /// access one of its members. This can happen for all the reasons that casts
  3753. /// are permitted with aggregate result, including noop aggregate casts, and
  3754. /// cast from scalar to union.
  3755. LValue CodeGenFunction::EmitCastLValue(const CastExpr *E) {
  3756. switch (E->getCastKind()) {
  3757. case CK_ToVoid:
  3758. case CK_BitCast:
  3759. case CK_LValueToRValueBitCast:
  3760. case CK_ArrayToPointerDecay:
  3761. case CK_FunctionToPointerDecay:
  3762. case CK_NullToMemberPointer:
  3763. case CK_NullToPointer:
  3764. case CK_IntegralToPointer:
  3765. case CK_PointerToIntegral:
  3766. case CK_PointerToBoolean:
  3767. case CK_VectorSplat:
  3768. case CK_IntegralCast:
  3769. case CK_BooleanToSignedIntegral:
  3770. case CK_IntegralToBoolean:
  3771. case CK_IntegralToFloating:
  3772. case CK_FloatingToIntegral:
  3773. case CK_FloatingToBoolean:
  3774. case CK_FloatingCast:
  3775. case CK_FloatingRealToComplex:
  3776. case CK_FloatingComplexToReal:
  3777. case CK_FloatingComplexToBoolean:
  3778. case CK_FloatingComplexCast:
  3779. case CK_FloatingComplexToIntegralComplex:
  3780. case CK_IntegralRealToComplex:
  3781. case CK_IntegralComplexToReal:
  3782. case CK_IntegralComplexToBoolean:
  3783. case CK_IntegralComplexCast:
  3784. case CK_IntegralComplexToFloatingComplex:
  3785. case CK_DerivedToBaseMemberPointer:
  3786. case CK_BaseToDerivedMemberPointer:
  3787. case CK_MemberPointerToBoolean:
  3788. case CK_ReinterpretMemberPointer:
  3789. case CK_AnyPointerToBlockPointerCast:
  3790. case CK_ARCProduceObject:
  3791. case CK_ARCConsumeObject:
  3792. case CK_ARCReclaimReturnedObject:
  3793. case CK_ARCExtendBlockObject:
  3794. case CK_CopyAndAutoreleaseBlockObject:
  3795. case CK_IntToOCLSampler:
  3796. case CK_FixedPointCast:
  3797. case CK_FixedPointToBoolean:
  3798. case CK_FixedPointToIntegral:
  3799. case CK_IntegralToFixedPoint:
  3800. return EmitUnsupportedLValue(E, "unexpected cast lvalue");
  3801. case CK_Dependent:
  3802. llvm_unreachable("dependent cast kind in IR gen!");
  3803. case CK_BuiltinFnToFnPtr:
  3804. llvm_unreachable("builtin functions are handled elsewhere");
  3805. // These are never l-values; just use the aggregate emission code.
  3806. case CK_NonAtomicToAtomic:
  3807. case CK_AtomicToNonAtomic:
  3808. return EmitAggExprToLValue(E);
  3809. case CK_Dynamic: {
  3810. LValue LV = EmitLValue(E->getSubExpr());
  3811. Address V = LV.getAddress();
  3812. const auto *DCE = cast<CXXDynamicCastExpr>(E);
  3813. return MakeNaturalAlignAddrLValue(EmitDynamicCast(V, DCE), E->getType());
  3814. }
  3815. case CK_ConstructorConversion:
  3816. case CK_UserDefinedConversion:
  3817. case CK_CPointerToObjCPointerCast:
  3818. case CK_BlockPointerToObjCPointerCast:
  3819. case CK_NoOp:
  3820. case CK_LValueToRValue:
  3821. return EmitLValue(E->getSubExpr());
  3822. case CK_UncheckedDerivedToBase:
  3823. case CK_DerivedToBase: {
  3824. const RecordType *DerivedClassTy =
  3825. E->getSubExpr()->getType()->getAs<RecordType>();
  3826. auto *DerivedClassDecl = cast<CXXRecordDecl>(DerivedClassTy->getDecl());
  3827. LValue LV = EmitLValue(E->getSubExpr());
  3828. Address This = LV.getAddress();
  3829. // Perform the derived-to-base conversion
  3830. Address Base = GetAddressOfBaseClass(
  3831. This, DerivedClassDecl, E->path_begin(), E->path_end(),
  3832. /*NullCheckValue=*/false, E->getExprLoc());
  3833. // TODO: Support accesses to members of base classes in TBAA. For now, we
  3834. // conservatively pretend that the complete object is of the base class
  3835. // type.
  3836. return MakeAddrLValue(Base, E->getType(), LV.getBaseInfo(),
  3837. CGM.getTBAAInfoForSubobject(LV, E->getType()));
  3838. }
  3839. case CK_ToUnion:
  3840. return EmitAggExprToLValue(E);
  3841. case CK_BaseToDerived: {
  3842. const RecordType *DerivedClassTy = E->getType()->getAs<RecordType>();
  3843. auto *DerivedClassDecl = cast<CXXRecordDecl>(DerivedClassTy->getDecl());
  3844. LValue LV = EmitLValue(E->getSubExpr());
  3845. // Perform the base-to-derived conversion
  3846. Address Derived =
  3847. GetAddressOfDerivedClass(LV.getAddress(), DerivedClassDecl,
  3848. E->path_begin(), E->path_end(),
  3849. /*NullCheckValue=*/false);
  3850. // C++11 [expr.static.cast]p2: Behavior is undefined if a downcast is
  3851. // performed and the object is not of the derived type.
  3852. if (sanitizePerformTypeCheck())
  3853. EmitTypeCheck(TCK_DowncastReference, E->getExprLoc(),
  3854. Derived.getPointer(), E->getType());
  3855. if (SanOpts.has(SanitizerKind::CFIDerivedCast))
  3856. EmitVTablePtrCheckForCast(E->getType(), Derived.getPointer(),
  3857. /*MayBeNull=*/false, CFITCK_DerivedCast,
  3858. E->getBeginLoc());
  3859. return MakeAddrLValue(Derived, E->getType(), LV.getBaseInfo(),
  3860. CGM.getTBAAInfoForSubobject(LV, E->getType()));
  3861. }
  3862. case CK_LValueBitCast: {
  3863. // This must be a reinterpret_cast (or c-style equivalent).
  3864. const auto *CE = cast<ExplicitCastExpr>(E);
  3865. CGM.EmitExplicitCastExprType(CE, this);
  3866. LValue LV = EmitLValue(E->getSubExpr());
  3867. Address V = Builder.CreateBitCast(LV.getAddress(),
  3868. ConvertType(CE->getTypeAsWritten()));
  3869. if (SanOpts.has(SanitizerKind::CFIUnrelatedCast))
  3870. EmitVTablePtrCheckForCast(E->getType(), V.getPointer(),
  3871. /*MayBeNull=*/false, CFITCK_UnrelatedCast,
  3872. E->getBeginLoc());
  3873. return MakeAddrLValue(V, E->getType(), LV.getBaseInfo(),
  3874. CGM.getTBAAInfoForSubobject(LV, E->getType()));
  3875. }
  3876. case CK_AddressSpaceConversion: {
  3877. LValue LV = EmitLValue(E->getSubExpr());
  3878. QualType DestTy = getContext().getPointerType(E->getType());
  3879. llvm::Value *V = getTargetHooks().performAddrSpaceCast(
  3880. *this, LV.getPointer(), E->getSubExpr()->getType().getAddressSpace(),
  3881. E->getType().getAddressSpace(), ConvertType(DestTy));
  3882. return MakeAddrLValue(Address(V, LV.getAddress().getAlignment()),
  3883. E->getType(), LV.getBaseInfo(), LV.getTBAAInfo());
  3884. }
  3885. case CK_ObjCObjectLValueCast: {
  3886. LValue LV = EmitLValue(E->getSubExpr());
  3887. Address V = Builder.CreateElementBitCast(LV.getAddress(),
  3888. ConvertType(E->getType()));
  3889. return MakeAddrLValue(V, E->getType(), LV.getBaseInfo(),
  3890. CGM.getTBAAInfoForSubobject(LV, E->getType()));
  3891. }
  3892. case CK_ZeroToOCLOpaqueType:
  3893. llvm_unreachable("NULL to OpenCL opaque type lvalue cast is not valid");
  3894. }
  3895. llvm_unreachable("Unhandled lvalue cast kind?");
  3896. }
  3897. LValue CodeGenFunction::EmitOpaqueValueLValue(const OpaqueValueExpr *e) {
  3898. assert(OpaqueValueMappingData::shouldBindAsLValue(e));
  3899. return getOrCreateOpaqueLValueMapping(e);
  3900. }
  3901. LValue
  3902. CodeGenFunction::getOrCreateOpaqueLValueMapping(const OpaqueValueExpr *e) {
  3903. assert(OpaqueValueMapping::shouldBindAsLValue(e));
  3904. llvm::DenseMap<const OpaqueValueExpr*,LValue>::iterator
  3905. it = OpaqueLValues.find(e);
  3906. if (it != OpaqueLValues.end())
  3907. return it->second;
  3908. assert(e->isUnique() && "LValue for a nonunique OVE hasn't been emitted");
  3909. return EmitLValue(e->getSourceExpr());
  3910. }
  3911. RValue
  3912. CodeGenFunction::getOrCreateOpaqueRValueMapping(const OpaqueValueExpr *e) {
  3913. assert(!OpaqueValueMapping::shouldBindAsLValue(e));
  3914. llvm::DenseMap<const OpaqueValueExpr*,RValue>::iterator
  3915. it = OpaqueRValues.find(e);
  3916. if (it != OpaqueRValues.end())
  3917. return it->second;
  3918. assert(e->isUnique() && "RValue for a nonunique OVE hasn't been emitted");
  3919. return EmitAnyExpr(e->getSourceExpr());
  3920. }
  3921. RValue CodeGenFunction::EmitRValueForField(LValue LV,
  3922. const FieldDecl *FD,
  3923. SourceLocation Loc) {
  3924. QualType FT = FD->getType();
  3925. LValue FieldLV = EmitLValueForField(LV, FD);
  3926. switch (getEvaluationKind(FT)) {
  3927. case TEK_Complex:
  3928. return RValue::getComplex(EmitLoadOfComplex(FieldLV, Loc));
  3929. case TEK_Aggregate:
  3930. return FieldLV.asAggregateRValue();
  3931. case TEK_Scalar:
  3932. // This routine is used to load fields one-by-one to perform a copy, so
  3933. // don't load reference fields.
  3934. if (FD->getType()->isReferenceType())
  3935. return RValue::get(FieldLV.getPointer());
  3936. return EmitLoadOfLValue(FieldLV, Loc);
  3937. }
  3938. llvm_unreachable("bad evaluation kind");
  3939. }
  3940. //===--------------------------------------------------------------------===//
  3941. // Expression Emission
  3942. //===--------------------------------------------------------------------===//
  3943. RValue CodeGenFunction::EmitCallExpr(const CallExpr *E,
  3944. ReturnValueSlot ReturnValue) {
  3945. // Builtins never have block type.
  3946. if (E->getCallee()->getType()->isBlockPointerType())
  3947. return EmitBlockCallExpr(E, ReturnValue);
  3948. if (const auto *CE = dyn_cast<CXXMemberCallExpr>(E))
  3949. return EmitCXXMemberCallExpr(CE, ReturnValue);
  3950. if (const auto *CE = dyn_cast<CUDAKernelCallExpr>(E))
  3951. return EmitCUDAKernelCallExpr(CE, ReturnValue);
  3952. if (const auto *CE = dyn_cast<CXXOperatorCallExpr>(E))
  3953. if (const CXXMethodDecl *MD =
  3954. dyn_cast_or_null<CXXMethodDecl>(CE->getCalleeDecl()))
  3955. return EmitCXXOperatorMemberCallExpr(CE, MD, ReturnValue);
  3956. CGCallee callee = EmitCallee(E->getCallee());
  3957. if (callee.isBuiltin()) {
  3958. return EmitBuiltinExpr(callee.getBuiltinDecl(), callee.getBuiltinID(),
  3959. E, ReturnValue);
  3960. }
  3961. if (callee.isPseudoDestructor()) {
  3962. return EmitCXXPseudoDestructorExpr(callee.getPseudoDestructorExpr());
  3963. }
  3964. return EmitCall(E->getCallee()->getType(), callee, E, ReturnValue);
  3965. }
  3966. /// Emit a CallExpr without considering whether it might be a subclass.
  3967. RValue CodeGenFunction::EmitSimpleCallExpr(const CallExpr *E,
  3968. ReturnValueSlot ReturnValue) {
  3969. CGCallee Callee = EmitCallee(E->getCallee());
  3970. return EmitCall(E->getCallee()->getType(), Callee, E, ReturnValue);
  3971. }
  3972. static CGCallee EmitDirectCallee(CodeGenFunction &CGF, const FunctionDecl *FD) {
  3973. if (auto builtinID = FD->getBuiltinID()) {
  3974. return CGCallee::forBuiltin(builtinID, FD);
  3975. }
  3976. llvm::Constant *calleePtr = EmitFunctionDeclPointer(CGF.CGM, FD);
  3977. return CGCallee::forDirect(calleePtr, GlobalDecl(FD));
  3978. }
  3979. CGCallee CodeGenFunction::EmitCallee(const Expr *E) {
  3980. E = E->IgnoreParens();
  3981. // Look through function-to-pointer decay.
  3982. if (auto ICE = dyn_cast<ImplicitCastExpr>(E)) {
  3983. if (ICE->getCastKind() == CK_FunctionToPointerDecay ||
  3984. ICE->getCastKind() == CK_BuiltinFnToFnPtr) {
  3985. return EmitCallee(ICE->getSubExpr());
  3986. }
  3987. // Resolve direct calls.
  3988. } else if (auto DRE = dyn_cast<DeclRefExpr>(E)) {
  3989. if (auto FD = dyn_cast<FunctionDecl>(DRE->getDecl())) {
  3990. return EmitDirectCallee(*this, FD);
  3991. }
  3992. } else if (auto ME = dyn_cast<MemberExpr>(E)) {
  3993. if (auto FD = dyn_cast<FunctionDecl>(ME->getMemberDecl())) {
  3994. EmitIgnoredExpr(ME->getBase());
  3995. return EmitDirectCallee(*this, FD);
  3996. }
  3997. // Look through template substitutions.
  3998. } else if (auto NTTP = dyn_cast<SubstNonTypeTemplateParmExpr>(E)) {
  3999. return EmitCallee(NTTP->getReplacement());
  4000. // Treat pseudo-destructor calls differently.
  4001. } else if (auto PDE = dyn_cast<CXXPseudoDestructorExpr>(E)) {
  4002. return CGCallee::forPseudoDestructor(PDE);
  4003. }
  4004. // Otherwise, we have an indirect reference.
  4005. llvm::Value *calleePtr;
  4006. QualType functionType;
  4007. if (auto ptrType = E->getType()->getAs<PointerType>()) {
  4008. calleePtr = EmitScalarExpr(E);
  4009. functionType = ptrType->getPointeeType();
  4010. } else {
  4011. functionType = E->getType();
  4012. calleePtr = EmitLValue(E).getPointer();
  4013. }
  4014. assert(functionType->isFunctionType());
  4015. GlobalDecl GD;
  4016. if (const auto *VD =
  4017. dyn_cast_or_null<VarDecl>(E->getReferencedDeclOfCallee()))
  4018. GD = GlobalDecl(VD);
  4019. CGCalleeInfo calleeInfo(functionType->getAs<FunctionProtoType>(), GD);
  4020. CGCallee callee(calleeInfo, calleePtr);
  4021. return callee;
  4022. }
  4023. LValue CodeGenFunction::EmitBinaryOperatorLValue(const BinaryOperator *E) {
  4024. // Comma expressions just emit their LHS then their RHS as an l-value.
  4025. if (E->getOpcode() == BO_Comma) {
  4026. EmitIgnoredExpr(E->getLHS());
  4027. EnsureInsertPoint();
  4028. return EmitLValue(E->getRHS());
  4029. }
  4030. if (E->getOpcode() == BO_PtrMemD ||
  4031. E->getOpcode() == BO_PtrMemI)
  4032. return EmitPointerToDataMemberBinaryExpr(E);
  4033. assert(E->getOpcode() == BO_Assign && "unexpected binary l-value");
  4034. // Note that in all of these cases, __block variables need the RHS
  4035. // evaluated first just in case the variable gets moved by the RHS.
  4036. switch (getEvaluationKind(E->getType())) {
  4037. case TEK_Scalar: {
  4038. switch (E->getLHS()->getType().getObjCLifetime()) {
  4039. case Qualifiers::OCL_Strong:
  4040. return EmitARCStoreStrong(E, /*ignored*/ false).first;
  4041. case Qualifiers::OCL_Autoreleasing:
  4042. return EmitARCStoreAutoreleasing(E).first;
  4043. // No reason to do any of these differently.
  4044. case Qualifiers::OCL_None:
  4045. case Qualifiers::OCL_ExplicitNone:
  4046. case Qualifiers::OCL_Weak:
  4047. break;
  4048. }
  4049. RValue RV = EmitAnyExpr(E->getRHS());
  4050. LValue LV = EmitCheckedLValue(E->getLHS(), TCK_Store);
  4051. if (RV.isScalar())
  4052. EmitNullabilityCheck(LV, RV.getScalarVal(), E->getExprLoc());
  4053. EmitStoreThroughLValue(RV, LV);
  4054. return LV;
  4055. }
  4056. case TEK_Complex:
  4057. return EmitComplexAssignmentLValue(E);
  4058. case TEK_Aggregate:
  4059. return EmitAggExprToLValue(E);
  4060. }
  4061. llvm_unreachable("bad evaluation kind");
  4062. }
  4063. LValue CodeGenFunction::EmitCallExprLValue(const CallExpr *E) {
  4064. RValue RV = EmitCallExpr(E);
  4065. if (!RV.isScalar())
  4066. return MakeAddrLValue(RV.getAggregateAddress(), E->getType(),
  4067. AlignmentSource::Decl);
  4068. assert(E->getCallReturnType(getContext())->isReferenceType() &&
  4069. "Can't have a scalar return unless the return type is a "
  4070. "reference type!");
  4071. return MakeNaturalAlignPointeeAddrLValue(RV.getScalarVal(), E->getType());
  4072. }
  4073. LValue CodeGenFunction::EmitVAArgExprLValue(const VAArgExpr *E) {
  4074. // FIXME: This shouldn't require another copy.
  4075. return EmitAggExprToLValue(E);
  4076. }
  4077. LValue CodeGenFunction::EmitCXXConstructLValue(const CXXConstructExpr *E) {
  4078. assert(E->getType()->getAsCXXRecordDecl()->hasTrivialDestructor()
  4079. && "binding l-value to type which needs a temporary");
  4080. AggValueSlot Slot = CreateAggTemp(E->getType());
  4081. EmitCXXConstructExpr(E, Slot);
  4082. return MakeAddrLValue(Slot.getAddress(), E->getType(), AlignmentSource::Decl);
  4083. }
  4084. LValue
  4085. CodeGenFunction::EmitCXXTypeidLValue(const CXXTypeidExpr *E) {
  4086. return MakeNaturalAlignAddrLValue(EmitCXXTypeidExpr(E), E->getType());
  4087. }
  4088. Address CodeGenFunction::EmitCXXUuidofExpr(const CXXUuidofExpr *E) {
  4089. return Builder.CreateElementBitCast(CGM.GetAddrOfUuidDescriptor(E),
  4090. ConvertType(E->getType()));
  4091. }
  4092. LValue CodeGenFunction::EmitCXXUuidofLValue(const CXXUuidofExpr *E) {
  4093. return MakeAddrLValue(EmitCXXUuidofExpr(E), E->getType(),
  4094. AlignmentSource::Decl);
  4095. }
  4096. LValue
  4097. CodeGenFunction::EmitCXXBindTemporaryLValue(const CXXBindTemporaryExpr *E) {
  4098. AggValueSlot Slot = CreateAggTemp(E->getType(), "temp.lvalue");
  4099. Slot.setExternallyDestructed();
  4100. EmitAggExpr(E->getSubExpr(), Slot);
  4101. EmitCXXTemporary(E->getTemporary(), E->getType(), Slot.getAddress());
  4102. return MakeAddrLValue(Slot.getAddress(), E->getType(), AlignmentSource::Decl);
  4103. }
  4104. LValue CodeGenFunction::EmitObjCMessageExprLValue(const ObjCMessageExpr *E) {
  4105. RValue RV = EmitObjCMessageExpr(E);
  4106. if (!RV.isScalar())
  4107. return MakeAddrLValue(RV.getAggregateAddress(), E->getType(),
  4108. AlignmentSource::Decl);
  4109. assert(E->getMethodDecl()->getReturnType()->isReferenceType() &&
  4110. "Can't have a scalar return unless the return type is a "
  4111. "reference type!");
  4112. return MakeNaturalAlignPointeeAddrLValue(RV.getScalarVal(), E->getType());
  4113. }
  4114. LValue CodeGenFunction::EmitObjCSelectorLValue(const ObjCSelectorExpr *E) {
  4115. Address V =
  4116. CGM.getObjCRuntime().GetAddrOfSelector(*this, E->getSelector());
  4117. return MakeAddrLValue(V, E->getType(), AlignmentSource::Decl);
  4118. }
  4119. llvm::Value *CodeGenFunction::EmitIvarOffset(const ObjCInterfaceDecl *Interface,
  4120. const ObjCIvarDecl *Ivar) {
  4121. return CGM.getObjCRuntime().EmitIvarOffset(*this, Interface, Ivar);
  4122. }
  4123. LValue CodeGenFunction::EmitLValueForIvar(QualType ObjectTy,
  4124. llvm::Value *BaseValue,
  4125. const ObjCIvarDecl *Ivar,
  4126. unsigned CVRQualifiers) {
  4127. return CGM.getObjCRuntime().EmitObjCValueForIvar(*this, ObjectTy, BaseValue,
  4128. Ivar, CVRQualifiers);
  4129. }
  4130. LValue CodeGenFunction::EmitObjCIvarRefLValue(const ObjCIvarRefExpr *E) {
  4131. // FIXME: A lot of the code below could be shared with EmitMemberExpr.
  4132. llvm::Value *BaseValue = nullptr;
  4133. const Expr *BaseExpr = E->getBase();
  4134. Qualifiers BaseQuals;
  4135. QualType ObjectTy;
  4136. if (E->isArrow()) {
  4137. BaseValue = EmitScalarExpr(BaseExpr);
  4138. ObjectTy = BaseExpr->getType()->getPointeeType();
  4139. BaseQuals = ObjectTy.getQualifiers();
  4140. } else {
  4141. LValue BaseLV = EmitLValue(BaseExpr);
  4142. BaseValue = BaseLV.getPointer();
  4143. ObjectTy = BaseExpr->getType();
  4144. BaseQuals = ObjectTy.getQualifiers();
  4145. }
  4146. LValue LV =
  4147. EmitLValueForIvar(ObjectTy, BaseValue, E->getDecl(),
  4148. BaseQuals.getCVRQualifiers());
  4149. setObjCGCLValueClass(getContext(), E, LV);
  4150. return LV;
  4151. }
  4152. LValue CodeGenFunction::EmitStmtExprLValue(const StmtExpr *E) {
  4153. // Can only get l-value for message expression returning aggregate type
  4154. RValue RV = EmitAnyExprToTemp(E);
  4155. return MakeAddrLValue(RV.getAggregateAddress(), E->getType(),
  4156. AlignmentSource::Decl);
  4157. }
  4158. RValue CodeGenFunction::EmitCall(QualType CalleeType, const CGCallee &OrigCallee,
  4159. const CallExpr *E, ReturnValueSlot ReturnValue,
  4160. llvm::Value *Chain) {
  4161. // Get the actual function type. The callee type will always be a pointer to
  4162. // function type or a block pointer type.
  4163. assert(CalleeType->isFunctionPointerType() &&
  4164. "Call must have function pointer type!");
  4165. const Decl *TargetDecl =
  4166. OrigCallee.getAbstractInfo().getCalleeDecl().getDecl();
  4167. CalleeType = getContext().getCanonicalType(CalleeType);
  4168. auto PointeeType = cast<PointerType>(CalleeType)->getPointeeType();
  4169. CGCallee Callee = OrigCallee;
  4170. if (getLangOpts().CPlusPlus && SanOpts.has(SanitizerKind::Function) &&
  4171. (!TargetDecl || !isa<FunctionDecl>(TargetDecl))) {
  4172. if (llvm::Constant *PrefixSig =
  4173. CGM.getTargetCodeGenInfo().getUBSanFunctionSignature(CGM)) {
  4174. SanitizerScope SanScope(this);
  4175. // Remove any (C++17) exception specifications, to allow calling e.g. a
  4176. // noexcept function through a non-noexcept pointer.
  4177. auto ProtoTy =
  4178. getContext().getFunctionTypeWithExceptionSpec(PointeeType, EST_None);
  4179. llvm::Constant *FTRTTIConst =
  4180. CGM.GetAddrOfRTTIDescriptor(ProtoTy, /*ForEH=*/true);
  4181. llvm::Type *PrefixStructTyElems[] = {PrefixSig->getType(), Int32Ty};
  4182. llvm::StructType *PrefixStructTy = llvm::StructType::get(
  4183. CGM.getLLVMContext(), PrefixStructTyElems, /*isPacked=*/true);
  4184. llvm::Value *CalleePtr = Callee.getFunctionPointer();
  4185. llvm::Value *CalleePrefixStruct = Builder.CreateBitCast(
  4186. CalleePtr, llvm::PointerType::getUnqual(PrefixStructTy));
  4187. llvm::Value *CalleeSigPtr =
  4188. Builder.CreateConstGEP2_32(PrefixStructTy, CalleePrefixStruct, 0, 0);
  4189. llvm::Value *CalleeSig =
  4190. Builder.CreateAlignedLoad(CalleeSigPtr, getIntAlign());
  4191. llvm::Value *CalleeSigMatch = Builder.CreateICmpEQ(CalleeSig, PrefixSig);
  4192. llvm::BasicBlock *Cont = createBasicBlock("cont");
  4193. llvm::BasicBlock *TypeCheck = createBasicBlock("typecheck");
  4194. Builder.CreateCondBr(CalleeSigMatch, TypeCheck, Cont);
  4195. EmitBlock(TypeCheck);
  4196. llvm::Value *CalleeRTTIPtr =
  4197. Builder.CreateConstGEP2_32(PrefixStructTy, CalleePrefixStruct, 0, 1);
  4198. llvm::Value *CalleeRTTIEncoded =
  4199. Builder.CreateAlignedLoad(CalleeRTTIPtr, getPointerAlign());
  4200. llvm::Value *CalleeRTTI =
  4201. DecodeAddrUsedInPrologue(CalleePtr, CalleeRTTIEncoded);
  4202. llvm::Value *CalleeRTTIMatch =
  4203. Builder.CreateICmpEQ(CalleeRTTI, FTRTTIConst);
  4204. llvm::Constant *StaticData[] = {EmitCheckSourceLocation(E->getBeginLoc()),
  4205. EmitCheckTypeDescriptor(CalleeType)};
  4206. EmitCheck(std::make_pair(CalleeRTTIMatch, SanitizerKind::Function),
  4207. SanitizerHandler::FunctionTypeMismatch, StaticData,
  4208. {CalleePtr, CalleeRTTI, FTRTTIConst});
  4209. Builder.CreateBr(Cont);
  4210. EmitBlock(Cont);
  4211. }
  4212. }
  4213. const auto *FnType = cast<FunctionType>(PointeeType);
  4214. // If we are checking indirect calls and this call is indirect, check that the
  4215. // function pointer is a member of the bit set for the function type.
  4216. if (SanOpts.has(SanitizerKind::CFIICall) &&
  4217. (!TargetDecl || !isa<FunctionDecl>(TargetDecl))) {
  4218. SanitizerScope SanScope(this);
  4219. EmitSanitizerStatReport(llvm::SanStat_CFI_ICall);
  4220. llvm::Metadata *MD;
  4221. if (CGM.getCodeGenOpts().SanitizeCfiICallGeneralizePointers)
  4222. MD = CGM.CreateMetadataIdentifierGeneralized(QualType(FnType, 0));
  4223. else
  4224. MD = CGM.CreateMetadataIdentifierForType(QualType(FnType, 0));
  4225. llvm::Value *TypeId = llvm::MetadataAsValue::get(getLLVMContext(), MD);
  4226. llvm::Value *CalleePtr = Callee.getFunctionPointer();
  4227. llvm::Value *CastedCallee = Builder.CreateBitCast(CalleePtr, Int8PtrTy);
  4228. llvm::Value *TypeTest = Builder.CreateCall(
  4229. CGM.getIntrinsic(llvm::Intrinsic::type_test), {CastedCallee, TypeId});
  4230. auto CrossDsoTypeId = CGM.CreateCrossDsoCfiTypeId(MD);
  4231. llvm::Constant *StaticData[] = {
  4232. llvm::ConstantInt::get(Int8Ty, CFITCK_ICall),
  4233. EmitCheckSourceLocation(E->getBeginLoc()),
  4234. EmitCheckTypeDescriptor(QualType(FnType, 0)),
  4235. };
  4236. if (CGM.getCodeGenOpts().SanitizeCfiCrossDso && CrossDsoTypeId) {
  4237. EmitCfiSlowPathCheck(SanitizerKind::CFIICall, TypeTest, CrossDsoTypeId,
  4238. CastedCallee, StaticData);
  4239. } else {
  4240. EmitCheck(std::make_pair(TypeTest, SanitizerKind::CFIICall),
  4241. SanitizerHandler::CFICheckFail, StaticData,
  4242. {CastedCallee, llvm::UndefValue::get(IntPtrTy)});
  4243. }
  4244. }
  4245. CallArgList Args;
  4246. if (Chain)
  4247. Args.add(RValue::get(Builder.CreateBitCast(Chain, CGM.VoidPtrTy)),
  4248. CGM.getContext().VoidPtrTy);
  4249. // C++17 requires that we evaluate arguments to a call using assignment syntax
  4250. // right-to-left, and that we evaluate arguments to certain other operators
  4251. // left-to-right. Note that we allow this to override the order dictated by
  4252. // the calling convention on the MS ABI, which means that parameter
  4253. // destruction order is not necessarily reverse construction order.
  4254. // FIXME: Revisit this based on C++ committee response to unimplementability.
  4255. EvaluationOrder Order = EvaluationOrder::Default;
  4256. if (auto *OCE = dyn_cast<CXXOperatorCallExpr>(E)) {
  4257. if (OCE->isAssignmentOp())
  4258. Order = EvaluationOrder::ForceRightToLeft;
  4259. else {
  4260. switch (OCE->getOperator()) {
  4261. case OO_LessLess:
  4262. case OO_GreaterGreater:
  4263. case OO_AmpAmp:
  4264. case OO_PipePipe:
  4265. case OO_Comma:
  4266. case OO_ArrowStar:
  4267. Order = EvaluationOrder::ForceLeftToRight;
  4268. break;
  4269. default:
  4270. break;
  4271. }
  4272. }
  4273. }
  4274. EmitCallArgs(Args, dyn_cast<FunctionProtoType>(FnType), E->arguments(),
  4275. E->getDirectCallee(), /*ParamsToSkip*/ 0, Order);
  4276. const CGFunctionInfo &FnInfo = CGM.getTypes().arrangeFreeFunctionCall(
  4277. Args, FnType, /*ChainCall=*/Chain);
  4278. // C99 6.5.2.2p6:
  4279. // If the expression that denotes the called function has a type
  4280. // that does not include a prototype, [the default argument
  4281. // promotions are performed]. If the number of arguments does not
  4282. // equal the number of parameters, the behavior is undefined. If
  4283. // the function is defined with a type that includes a prototype,
  4284. // and either the prototype ends with an ellipsis (, ...) or the
  4285. // types of the arguments after promotion are not compatible with
  4286. // the types of the parameters, the behavior is undefined. If the
  4287. // function is defined with a type that does not include a
  4288. // prototype, and the types of the arguments after promotion are
  4289. // not compatible with those of the parameters after promotion,
  4290. // the behavior is undefined [except in some trivial cases].
  4291. // That is, in the general case, we should assume that a call
  4292. // through an unprototyped function type works like a *non-variadic*
  4293. // call. The way we make this work is to cast to the exact type
  4294. // of the promoted arguments.
  4295. //
  4296. // Chain calls use this same code path to add the invisible chain parameter
  4297. // to the function type.
  4298. if (isa<FunctionNoProtoType>(FnType) || Chain) {
  4299. llvm::Type *CalleeTy = getTypes().GetFunctionType(FnInfo);
  4300. CalleeTy = CalleeTy->getPointerTo();
  4301. llvm::Value *CalleePtr = Callee.getFunctionPointer();
  4302. CalleePtr = Builder.CreateBitCast(CalleePtr, CalleeTy, "callee.knr.cast");
  4303. Callee.setFunctionPointer(CalleePtr);
  4304. }
  4305. llvm::CallBase *CallOrInvoke = nullptr;
  4306. RValue Call = EmitCall(FnInfo, Callee, ReturnValue, Args, &CallOrInvoke,
  4307. E->getExprLoc());
  4308. // Generate function declaration DISuprogram in order to be used
  4309. // in debug info about call sites.
  4310. if (CGDebugInfo *DI = getDebugInfo()) {
  4311. if (auto *CalleeDecl = dyn_cast_or_null<FunctionDecl>(TargetDecl))
  4312. DI->EmitFuncDeclForCallSite(CallOrInvoke, QualType(FnType, 0),
  4313. CalleeDecl);
  4314. }
  4315. return Call;
  4316. }
  4317. LValue CodeGenFunction::
  4318. EmitPointerToDataMemberBinaryExpr(const BinaryOperator *E) {
  4319. Address BaseAddr = Address::invalid();
  4320. if (E->getOpcode() == BO_PtrMemI) {
  4321. BaseAddr = EmitPointerWithAlignment(E->getLHS());
  4322. } else {
  4323. BaseAddr = EmitLValue(E->getLHS()).getAddress();
  4324. }
  4325. llvm::Value *OffsetV = EmitScalarExpr(E->getRHS());
  4326. const MemberPointerType *MPT
  4327. = E->getRHS()->getType()->getAs<MemberPointerType>();
  4328. LValueBaseInfo BaseInfo;
  4329. TBAAAccessInfo TBAAInfo;
  4330. Address MemberAddr =
  4331. EmitCXXMemberDataPointerAddress(E, BaseAddr, OffsetV, MPT, &BaseInfo,
  4332. &TBAAInfo);
  4333. return MakeAddrLValue(MemberAddr, MPT->getPointeeType(), BaseInfo, TBAAInfo);
  4334. }
  4335. /// Given the address of a temporary variable, produce an r-value of
  4336. /// its type.
  4337. RValue CodeGenFunction::convertTempToRValue(Address addr,
  4338. QualType type,
  4339. SourceLocation loc) {
  4340. LValue lvalue = MakeAddrLValue(addr, type, AlignmentSource::Decl);
  4341. switch (getEvaluationKind(type)) {
  4342. case TEK_Complex:
  4343. return RValue::getComplex(EmitLoadOfComplex(lvalue, loc));
  4344. case TEK_Aggregate:
  4345. return lvalue.asAggregateRValue();
  4346. case TEK_Scalar:
  4347. return RValue::get(EmitLoadOfScalar(lvalue, loc));
  4348. }
  4349. llvm_unreachable("bad evaluation kind");
  4350. }
  4351. void CodeGenFunction::SetFPAccuracy(llvm::Value *Val, float Accuracy) {
  4352. assert(Val->getType()->isFPOrFPVectorTy());
  4353. if (Accuracy == 0.0 || !isa<llvm::Instruction>(Val))
  4354. return;
  4355. llvm::MDBuilder MDHelper(getLLVMContext());
  4356. llvm::MDNode *Node = MDHelper.createFPMath(Accuracy);
  4357. cast<llvm::Instruction>(Val)->setMetadata(llvm::LLVMContext::MD_fpmath, Node);
  4358. }
  4359. namespace {
  4360. struct LValueOrRValue {
  4361. LValue LV;
  4362. RValue RV;
  4363. };
  4364. }
  4365. static LValueOrRValue emitPseudoObjectExpr(CodeGenFunction &CGF,
  4366. const PseudoObjectExpr *E,
  4367. bool forLValue,
  4368. AggValueSlot slot) {
  4369. SmallVector<CodeGenFunction::OpaqueValueMappingData, 4> opaques;
  4370. // Find the result expression, if any.
  4371. const Expr *resultExpr = E->getResultExpr();
  4372. LValueOrRValue result;
  4373. for (PseudoObjectExpr::const_semantics_iterator
  4374. i = E->semantics_begin(), e = E->semantics_end(); i != e; ++i) {
  4375. const Expr *semantic = *i;
  4376. // If this semantic expression is an opaque value, bind it
  4377. // to the result of its source expression.
  4378. if (const auto *ov = dyn_cast<OpaqueValueExpr>(semantic)) {
  4379. // Skip unique OVEs.
  4380. if (ov->isUnique()) {
  4381. assert(ov != resultExpr &&
  4382. "A unique OVE cannot be used as the result expression");
  4383. continue;
  4384. }
  4385. // If this is the result expression, we may need to evaluate
  4386. // directly into the slot.
  4387. typedef CodeGenFunction::OpaqueValueMappingData OVMA;
  4388. OVMA opaqueData;
  4389. if (ov == resultExpr && ov->isRValue() && !forLValue &&
  4390. CodeGenFunction::hasAggregateEvaluationKind(ov->getType())) {
  4391. CGF.EmitAggExpr(ov->getSourceExpr(), slot);
  4392. LValue LV = CGF.MakeAddrLValue(slot.getAddress(), ov->getType(),
  4393. AlignmentSource::Decl);
  4394. opaqueData = OVMA::bind(CGF, ov, LV);
  4395. result.RV = slot.asRValue();
  4396. // Otherwise, emit as normal.
  4397. } else {
  4398. opaqueData = OVMA::bind(CGF, ov, ov->getSourceExpr());
  4399. // If this is the result, also evaluate the result now.
  4400. if (ov == resultExpr) {
  4401. if (forLValue)
  4402. result.LV = CGF.EmitLValue(ov);
  4403. else
  4404. result.RV = CGF.EmitAnyExpr(ov, slot);
  4405. }
  4406. }
  4407. opaques.push_back(opaqueData);
  4408. // Otherwise, if the expression is the result, evaluate it
  4409. // and remember the result.
  4410. } else if (semantic == resultExpr) {
  4411. if (forLValue)
  4412. result.LV = CGF.EmitLValue(semantic);
  4413. else
  4414. result.RV = CGF.EmitAnyExpr(semantic, slot);
  4415. // Otherwise, evaluate the expression in an ignored context.
  4416. } else {
  4417. CGF.EmitIgnoredExpr(semantic);
  4418. }
  4419. }
  4420. // Unbind all the opaques now.
  4421. for (unsigned i = 0, e = opaques.size(); i != e; ++i)
  4422. opaques[i].unbind(CGF);
  4423. return result;
  4424. }
  4425. RValue CodeGenFunction::EmitPseudoObjectRValue(const PseudoObjectExpr *E,
  4426. AggValueSlot slot) {
  4427. return emitPseudoObjectExpr(*this, E, false, slot).RV;
  4428. }
  4429. LValue CodeGenFunction::EmitPseudoObjectLValue(const PseudoObjectExpr *E) {
  4430. return emitPseudoObjectExpr(*this, E, true, AggValueSlot::ignored()).LV;
  4431. }