1 //=== RecordLayoutBuilder.cpp - Helper class for building record layouts ---==// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 10 #include "clang/AST/RecordLayout.h" 11 #include "clang/AST/ASTContext.h" 12 #include "clang/AST/Attr.h" 13 #include "clang/AST/CXXInheritance.h" 14 #include "clang/AST/Decl.h" 15 #include "clang/AST/DeclCXX.h" 16 #include "clang/AST/DeclObjC.h" 17 #include "clang/AST/Expr.h" 18 #include "clang/Basic/TargetInfo.h" 19 #include "clang/Sema/SemaDiagnostic.h" 20 #include "llvm/ADT/SmallSet.h" 21 #include "llvm/Support/CrashRecoveryContext.h" 22 #include "llvm/Support/Format.h" 23 #include "llvm/Support/MathExtras.h" 24 25 using namespace clang; 26 27 namespace { 28 29 /// BaseSubobjectInfo - Represents a single base subobject in a complete class. 30 /// For a class hierarchy like 31 /// 32 /// class A { }; 33 /// class B : A { }; 34 /// class C : A, B { }; 35 /// 36 /// The BaseSubobjectInfo graph for C will have three BaseSubobjectInfo 37 /// instances, one for B and two for A. 38 /// 39 /// If a base is virtual, it will only have one BaseSubobjectInfo allocated. 40 struct BaseSubobjectInfo { 41 /// Class - The class for this base info. 42 const CXXRecordDecl *Class; 43 44 /// IsVirtual - Whether the BaseInfo represents a virtual base or not. 45 bool IsVirtual; 46 47 /// Bases - Information about the base subobjects. 48 SmallVector<BaseSubobjectInfo*, 4> Bases; 49 50 /// PrimaryVirtualBaseInfo - Holds the base info for the primary virtual base 51 /// of this base info (if one exists). 52 BaseSubobjectInfo *PrimaryVirtualBaseInfo; 53 54 // FIXME: Document. 55 const BaseSubobjectInfo *Derived; 56 }; 57 58 /// EmptySubobjectMap - Keeps track of which empty subobjects exist at different 59 /// offsets while laying out a C++ class. 60 class EmptySubobjectMap { 61 const ASTContext &Context; 62 uint64_t CharWidth; 63 64 /// Class - The class whose empty entries we're keeping track of. 65 const CXXRecordDecl *Class; 66 67 /// EmptyClassOffsets - A map from offsets to empty record decls. 68 typedef SmallVector<const CXXRecordDecl *, 1> ClassVectorTy; 69 typedef llvm::DenseMap<CharUnits, ClassVectorTy> EmptyClassOffsetsMapTy; 70 EmptyClassOffsetsMapTy EmptyClassOffsets; 71 72 /// MaxEmptyClassOffset - The highest offset known to contain an empty 73 /// base subobject. 74 CharUnits MaxEmptyClassOffset; 75 76 /// ComputeEmptySubobjectSizes - Compute the size of the largest base or 77 /// member subobject that is empty. 78 void ComputeEmptySubobjectSizes(); 79 80 void AddSubobjectAtOffset(const CXXRecordDecl *RD, CharUnits Offset); 81 82 void UpdateEmptyBaseSubobjects(const BaseSubobjectInfo *Info, 83 CharUnits Offset, bool PlacingEmptyBase); 84 85 void UpdateEmptyFieldSubobjects(const CXXRecordDecl *RD, 86 const CXXRecordDecl *Class, 87 CharUnits Offset); 88 void UpdateEmptyFieldSubobjects(const FieldDecl *FD, CharUnits Offset); 89 90 /// AnyEmptySubobjectsBeyondOffset - Returns whether there are any empty 91 /// subobjects beyond the given offset. 92 bool AnyEmptySubobjectsBeyondOffset(CharUnits Offset) const { 93 return Offset <= MaxEmptyClassOffset; 94 } 95 96 CharUnits 97 getFieldOffset(const ASTRecordLayout &Layout, unsigned FieldNo) const { 98 uint64_t FieldOffset = Layout.getFieldOffset(FieldNo); 99 assert(FieldOffset % CharWidth == 0 && 100 "Field offset not at char boundary!"); 101 102 return Context.toCharUnitsFromBits(FieldOffset); 103 } 104 105 protected: 106 bool CanPlaceSubobjectAtOffset(const CXXRecordDecl *RD, 107 CharUnits Offset) const; 108 109 bool CanPlaceBaseSubobjectAtOffset(const BaseSubobjectInfo *Info, 110 CharUnits Offset); 111 112 bool CanPlaceFieldSubobjectAtOffset(const CXXRecordDecl *RD, 113 const CXXRecordDecl *Class, 114 CharUnits Offset) const; 115 bool CanPlaceFieldSubobjectAtOffset(const FieldDecl *FD, 116 CharUnits Offset) const; 117 118 public: 119 /// This holds the size of the largest empty subobject (either a base 120 /// or a member). Will be zero if the record being built doesn't contain 121 /// any empty classes. 122 CharUnits SizeOfLargestEmptySubobject; 123 124 EmptySubobjectMap(const ASTContext &Context, const CXXRecordDecl *Class) 125 : Context(Context), CharWidth(Context.getCharWidth()), Class(Class) { 126 ComputeEmptySubobjectSizes(); 127 } 128 129 /// CanPlaceBaseAtOffset - Return whether the given base class can be placed 130 /// at the given offset. 131 /// Returns false if placing the record will result in two components 132 /// (direct or indirect) of the same type having the same offset. 133 bool CanPlaceBaseAtOffset(const BaseSubobjectInfo *Info, 134 CharUnits Offset); 135 136 /// CanPlaceFieldAtOffset - Return whether a field can be placed at the given 137 /// offset. 138 bool CanPlaceFieldAtOffset(const FieldDecl *FD, CharUnits Offset); 139 }; 140 141 void EmptySubobjectMap::ComputeEmptySubobjectSizes() { 142 // Check the bases. 143 for (CXXRecordDecl::base_class_const_iterator I = Class->bases_begin(), 144 E = Class->bases_end(); I != E; ++I) { 145 const CXXRecordDecl *BaseDecl = 146 cast<CXXRecordDecl>(I->getType()->getAs<RecordType>()->getDecl()); 147 148 CharUnits EmptySize; 149 const ASTRecordLayout &Layout = Context.getASTRecordLayout(BaseDecl); 150 if (BaseDecl->isEmpty()) { 151 // If the class decl is empty, get its size. 152 EmptySize = Layout.getSize(); 153 } else { 154 // Otherwise, we get the largest empty subobject for the decl. 155 EmptySize = Layout.getSizeOfLargestEmptySubobject(); 156 } 157 158 if (EmptySize > SizeOfLargestEmptySubobject) 159 SizeOfLargestEmptySubobject = EmptySize; 160 } 161 162 // Check the fields. 163 for (CXXRecordDecl::field_iterator I = Class->field_begin(), 164 E = Class->field_end(); I != E; ++I) { 165 166 const RecordType *RT = 167 Context.getBaseElementType(I->getType())->getAs<RecordType>(); 168 169 // We only care about record types. 170 if (!RT) 171 continue; 172 173 CharUnits EmptySize; 174 const CXXRecordDecl *MemberDecl = cast<CXXRecordDecl>(RT->getDecl()); 175 const ASTRecordLayout &Layout = Context.getASTRecordLayout(MemberDecl); 176 if (MemberDecl->isEmpty()) { 177 // If the class decl is empty, get its size. 178 EmptySize = Layout.getSize(); 179 } else { 180 // Otherwise, we get the largest empty subobject for the decl. 181 EmptySize = Layout.getSizeOfLargestEmptySubobject(); 182 } 183 184 if (EmptySize > SizeOfLargestEmptySubobject) 185 SizeOfLargestEmptySubobject = EmptySize; 186 } 187 } 188 189 bool 190 EmptySubobjectMap::CanPlaceSubobjectAtOffset(const CXXRecordDecl *RD, 191 CharUnits Offset) const { 192 // We only need to check empty bases. 193 if (!RD->isEmpty()) 194 return true; 195 196 EmptyClassOffsetsMapTy::const_iterator I = EmptyClassOffsets.find(Offset); 197 if (I == EmptyClassOffsets.end()) 198 return true; 199 200 const ClassVectorTy& Classes = I->second; 201 if (std::find(Classes.begin(), Classes.end(), RD) == Classes.end()) 202 return true; 203 204 // There is already an empty class of the same type at this offset. 205 return false; 206 } 207 208 void EmptySubobjectMap::AddSubobjectAtOffset(const CXXRecordDecl *RD, 209 CharUnits Offset) { 210 // We only care about empty bases. 211 if (!RD->isEmpty()) 212 return; 213 214 // If we have empty structures inside a union, we can assign both 215 // the same offset. Just avoid pushing them twice in the list. 216 ClassVectorTy& Classes = EmptyClassOffsets[Offset]; 217 if (std::find(Classes.begin(), Classes.end(), RD) != Classes.end()) 218 return; 219 220 Classes.push_back(RD); 221 222 // Update the empty class offset. 223 if (Offset > MaxEmptyClassOffset) 224 MaxEmptyClassOffset = Offset; 225 } 226 227 bool 228 EmptySubobjectMap::CanPlaceBaseSubobjectAtOffset(const BaseSubobjectInfo *Info, 229 CharUnits Offset) { 230 // We don't have to keep looking past the maximum offset that's known to 231 // contain an empty class. 232 if (!AnyEmptySubobjectsBeyondOffset(Offset)) 233 return true; 234 235 if (!CanPlaceSubobjectAtOffset(Info->Class, Offset)) 236 return false; 237 238 // Traverse all non-virtual bases. 239 const ASTRecordLayout &Layout = Context.getASTRecordLayout(Info->Class); 240 for (unsigned I = 0, E = Info->Bases.size(); I != E; ++I) { 241 BaseSubobjectInfo* Base = Info->Bases[I]; 242 if (Base->IsVirtual) 243 continue; 244 245 CharUnits BaseOffset = Offset + Layout.getBaseClassOffset(Base->Class); 246 247 if (!CanPlaceBaseSubobjectAtOffset(Base, BaseOffset)) 248 return false; 249 } 250 251 if (Info->PrimaryVirtualBaseInfo) { 252 BaseSubobjectInfo *PrimaryVirtualBaseInfo = Info->PrimaryVirtualBaseInfo; 253 254 if (Info == PrimaryVirtualBaseInfo->Derived) { 255 if (!CanPlaceBaseSubobjectAtOffset(PrimaryVirtualBaseInfo, Offset)) 256 return false; 257 } 258 } 259 260 // Traverse all member variables. 261 unsigned FieldNo = 0; 262 for (CXXRecordDecl::field_iterator I = Info->Class->field_begin(), 263 E = Info->Class->field_end(); I != E; ++I, ++FieldNo) { 264 if (I->isBitField()) 265 continue; 266 267 CharUnits FieldOffset = Offset + getFieldOffset(Layout, FieldNo); 268 if (!CanPlaceFieldSubobjectAtOffset(*I, FieldOffset)) 269 return false; 270 } 271 272 return true; 273 } 274 275 void EmptySubobjectMap::UpdateEmptyBaseSubobjects(const BaseSubobjectInfo *Info, 276 CharUnits Offset, 277 bool PlacingEmptyBase) { 278 if (!PlacingEmptyBase && Offset >= SizeOfLargestEmptySubobject) { 279 // We know that the only empty subobjects that can conflict with empty 280 // subobject of non-empty bases, are empty bases that can be placed at 281 // offset zero. Because of this, we only need to keep track of empty base 282 // subobjects with offsets less than the size of the largest empty 283 // subobject for our class. 284 return; 285 } 286 287 AddSubobjectAtOffset(Info->Class, Offset); 288 289 // Traverse all non-virtual bases. 290 const ASTRecordLayout &Layout = Context.getASTRecordLayout(Info->Class); 291 for (unsigned I = 0, E = Info->Bases.size(); I != E; ++I) { 292 BaseSubobjectInfo* Base = Info->Bases[I]; 293 if (Base->IsVirtual) 294 continue; 295 296 CharUnits BaseOffset = Offset + Layout.getBaseClassOffset(Base->Class); 297 UpdateEmptyBaseSubobjects(Base, BaseOffset, PlacingEmptyBase); 298 } 299 300 if (Info->PrimaryVirtualBaseInfo) { 301 BaseSubobjectInfo *PrimaryVirtualBaseInfo = Info->PrimaryVirtualBaseInfo; 302 303 if (Info == PrimaryVirtualBaseInfo->Derived) 304 UpdateEmptyBaseSubobjects(PrimaryVirtualBaseInfo, Offset, 305 PlacingEmptyBase); 306 } 307 308 // Traverse all member variables. 309 unsigned FieldNo = 0; 310 for (CXXRecordDecl::field_iterator I = Info->Class->field_begin(), 311 E = Info->Class->field_end(); I != E; ++I, ++FieldNo) { 312 if (I->isBitField()) 313 continue; 314 315 CharUnits FieldOffset = Offset + getFieldOffset(Layout, FieldNo); 316 UpdateEmptyFieldSubobjects(*I, FieldOffset); 317 } 318 } 319 320 bool EmptySubobjectMap::CanPlaceBaseAtOffset(const BaseSubobjectInfo *Info, 321 CharUnits Offset) { 322 // If we know this class doesn't have any empty subobjects we don't need to 323 // bother checking. 324 if (SizeOfLargestEmptySubobject.isZero()) 325 return true; 326 327 if (!CanPlaceBaseSubobjectAtOffset(Info, Offset)) 328 return false; 329 330 // We are able to place the base at this offset. Make sure to update the 331 // empty base subobject map. 332 UpdateEmptyBaseSubobjects(Info, Offset, Info->Class->isEmpty()); 333 return true; 334 } 335 336 bool 337 EmptySubobjectMap::CanPlaceFieldSubobjectAtOffset(const CXXRecordDecl *RD, 338 const CXXRecordDecl *Class, 339 CharUnits Offset) const { 340 // We don't have to keep looking past the maximum offset that's known to 341 // contain an empty class. 342 if (!AnyEmptySubobjectsBeyondOffset(Offset)) 343 return true; 344 345 if (!CanPlaceSubobjectAtOffset(RD, Offset)) 346 return false; 347 348 const ASTRecordLayout &Layout = Context.getASTRecordLayout(RD); 349 350 // Traverse all non-virtual bases. 351 for (CXXRecordDecl::base_class_const_iterator I = RD->bases_begin(), 352 E = RD->bases_end(); I != E; ++I) { 353 if (I->isVirtual()) 354 continue; 355 356 const CXXRecordDecl *BaseDecl = 357 cast<CXXRecordDecl>(I->getType()->getAs<RecordType>()->getDecl()); 358 359 CharUnits BaseOffset = Offset + Layout.getBaseClassOffset(BaseDecl); 360 if (!CanPlaceFieldSubobjectAtOffset(BaseDecl, Class, BaseOffset)) 361 return false; 362 } 363 364 if (RD == Class) { 365 // This is the most derived class, traverse virtual bases as well. 366 for (CXXRecordDecl::base_class_const_iterator I = RD->vbases_begin(), 367 E = RD->vbases_end(); I != E; ++I) { 368 const CXXRecordDecl *VBaseDecl = 369 cast<CXXRecordDecl>(I->getType()->getAs<RecordType>()->getDecl()); 370 371 CharUnits VBaseOffset = Offset + Layout.getVBaseClassOffset(VBaseDecl); 372 if (!CanPlaceFieldSubobjectAtOffset(VBaseDecl, Class, VBaseOffset)) 373 return false; 374 } 375 } 376 377 // Traverse all member variables. 378 unsigned FieldNo = 0; 379 for (CXXRecordDecl::field_iterator I = RD->field_begin(), E = RD->field_end(); 380 I != E; ++I, ++FieldNo) { 381 if (I->isBitField()) 382 continue; 383 384 CharUnits FieldOffset = Offset + getFieldOffset(Layout, FieldNo); 385 386 if (!CanPlaceFieldSubobjectAtOffset(*I, FieldOffset)) 387 return false; 388 } 389 390 return true; 391 } 392 393 bool 394 EmptySubobjectMap::CanPlaceFieldSubobjectAtOffset(const FieldDecl *FD, 395 CharUnits Offset) const { 396 // We don't have to keep looking past the maximum offset that's known to 397 // contain an empty class. 398 if (!AnyEmptySubobjectsBeyondOffset(Offset)) 399 return true; 400 401 QualType T = FD->getType(); 402 if (const RecordType *RT = T->getAs<RecordType>()) { 403 const CXXRecordDecl *RD = cast<CXXRecordDecl>(RT->getDecl()); 404 return CanPlaceFieldSubobjectAtOffset(RD, RD, Offset); 405 } 406 407 // If we have an array type we need to look at every element. 408 if (const ConstantArrayType *AT = Context.getAsConstantArrayType(T)) { 409 QualType ElemTy = Context.getBaseElementType(AT); 410 const RecordType *RT = ElemTy->getAs<RecordType>(); 411 if (!RT) 412 return true; 413 414 const CXXRecordDecl *RD = cast<CXXRecordDecl>(RT->getDecl()); 415 const ASTRecordLayout &Layout = Context.getASTRecordLayout(RD); 416 417 uint64_t NumElements = Context.getConstantArrayElementCount(AT); 418 CharUnits ElementOffset = Offset; 419 for (uint64_t I = 0; I != NumElements; ++I) { 420 // We don't have to keep looking past the maximum offset that's known to 421 // contain an empty class. 422 if (!AnyEmptySubobjectsBeyondOffset(ElementOffset)) 423 return true; 424 425 if (!CanPlaceFieldSubobjectAtOffset(RD, RD, ElementOffset)) 426 return false; 427 428 ElementOffset += Layout.getSize(); 429 } 430 } 431 432 return true; 433 } 434 435 bool 436 EmptySubobjectMap::CanPlaceFieldAtOffset(const FieldDecl *FD, 437 CharUnits Offset) { 438 if (!CanPlaceFieldSubobjectAtOffset(FD, Offset)) 439 return false; 440 441 // We are able to place the member variable at this offset. 442 // Make sure to update the empty base subobject map. 443 UpdateEmptyFieldSubobjects(FD, Offset); 444 return true; 445 } 446 447 void EmptySubobjectMap::UpdateEmptyFieldSubobjects(const CXXRecordDecl *RD, 448 const CXXRecordDecl *Class, 449 CharUnits Offset) { 450 // We know that the only empty subobjects that can conflict with empty 451 // field subobjects are subobjects of empty bases that can be placed at offset 452 // zero. Because of this, we only need to keep track of empty field 453 // subobjects with offsets less than the size of the largest empty 454 // subobject for our class. 455 if (Offset >= SizeOfLargestEmptySubobject) 456 return; 457 458 AddSubobjectAtOffset(RD, Offset); 459 460 const ASTRecordLayout &Layout = Context.getASTRecordLayout(RD); 461 462 // Traverse all non-virtual bases. 463 for (CXXRecordDecl::base_class_const_iterator I = RD->bases_begin(), 464 E = RD->bases_end(); I != E; ++I) { 465 if (I->isVirtual()) 466 continue; 467 468 const CXXRecordDecl *BaseDecl = 469 cast<CXXRecordDecl>(I->getType()->getAs<RecordType>()->getDecl()); 470 471 CharUnits BaseOffset = Offset + Layout.getBaseClassOffset(BaseDecl); 472 UpdateEmptyFieldSubobjects(BaseDecl, Class, BaseOffset); 473 } 474 475 if (RD == Class) { 476 // This is the most derived class, traverse virtual bases as well. 477 for (CXXRecordDecl::base_class_const_iterator I = RD->vbases_begin(), 478 E = RD->vbases_end(); I != E; ++I) { 479 const CXXRecordDecl *VBaseDecl = 480 cast<CXXRecordDecl>(I->getType()->getAs<RecordType>()->getDecl()); 481 482 CharUnits VBaseOffset = Offset + Layout.getVBaseClassOffset(VBaseDecl); 483 UpdateEmptyFieldSubobjects(VBaseDecl, Class, VBaseOffset); 484 } 485 } 486 487 // Traverse all member variables. 488 unsigned FieldNo = 0; 489 for (CXXRecordDecl::field_iterator I = RD->field_begin(), E = RD->field_end(); 490 I != E; ++I, ++FieldNo) { 491 if (I->isBitField()) 492 continue; 493 494 CharUnits FieldOffset = Offset + getFieldOffset(Layout, FieldNo); 495 496 UpdateEmptyFieldSubobjects(*I, FieldOffset); 497 } 498 } 499 500 void EmptySubobjectMap::UpdateEmptyFieldSubobjects(const FieldDecl *FD, 501 CharUnits Offset) { 502 QualType T = FD->getType(); 503 if (const RecordType *RT = T->getAs<RecordType>()) { 504 const CXXRecordDecl *RD = cast<CXXRecordDecl>(RT->getDecl()); 505 UpdateEmptyFieldSubobjects(RD, RD, Offset); 506 return; 507 } 508 509 // If we have an array type we need to update every element. 510 if (const ConstantArrayType *AT = Context.getAsConstantArrayType(T)) { 511 QualType ElemTy = Context.getBaseElementType(AT); 512 const RecordType *RT = ElemTy->getAs<RecordType>(); 513 if (!RT) 514 return; 515 516 const CXXRecordDecl *RD = cast<CXXRecordDecl>(RT->getDecl()); 517 const ASTRecordLayout &Layout = Context.getASTRecordLayout(RD); 518 519 uint64_t NumElements = Context.getConstantArrayElementCount(AT); 520 CharUnits ElementOffset = Offset; 521 522 for (uint64_t I = 0; I != NumElements; ++I) { 523 // We know that the only empty subobjects that can conflict with empty 524 // field subobjects are subobjects of empty bases that can be placed at 525 // offset zero. Because of this, we only need to keep track of empty field 526 // subobjects with offsets less than the size of the largest empty 527 // subobject for our class. 528 if (ElementOffset >= SizeOfLargestEmptySubobject) 529 return; 530 531 UpdateEmptyFieldSubobjects(RD, RD, ElementOffset); 532 ElementOffset += Layout.getSize(); 533 } 534 } 535 } 536 537 typedef llvm::SmallPtrSet<const CXXRecordDecl*, 4> ClassSetTy; 538 539 class RecordLayoutBuilder { 540 protected: 541 // FIXME: Remove this and make the appropriate fields public. 542 friend class clang::ASTContext; 543 544 const ASTContext &Context; 545 546 EmptySubobjectMap *EmptySubobjects; 547 548 /// Size - The current size of the record layout. 549 uint64_t Size; 550 551 /// Alignment - The current alignment of the record layout. 552 CharUnits Alignment; 553 554 /// \brief The alignment if attribute packed is not used. 555 CharUnits UnpackedAlignment; 556 557 SmallVector<uint64_t, 16> FieldOffsets; 558 559 /// \brief Whether the external AST source has provided a layout for this 560 /// record. 561 unsigned ExternalLayout : 1; 562 563 /// \brief Whether we need to infer alignment, even when we have an 564 /// externally-provided layout. 565 unsigned InferAlignment : 1; 566 567 /// Packed - Whether the record is packed or not. 568 unsigned Packed : 1; 569 570 unsigned IsUnion : 1; 571 572 unsigned IsMac68kAlign : 1; 573 574 unsigned IsMsStruct : 1; 575 576 /// UnfilledBitsInLastUnit - If the last field laid out was a bitfield, 577 /// this contains the number of bits in the last unit that can be used for 578 /// an adjacent bitfield if necessary. The unit in question is usually 579 /// a byte, but larger units are used if IsMsStruct. 580 unsigned char UnfilledBitsInLastUnit; 581 /// LastBitfieldTypeSize - If IsMsStruct, represents the size of the type 582 /// of the previous field if it was a bitfield. 583 unsigned char LastBitfieldTypeSize; 584 585 /// MaxFieldAlignment - The maximum allowed field alignment. This is set by 586 /// #pragma pack. 587 CharUnits MaxFieldAlignment; 588 589 /// DataSize - The data size of the record being laid out. 590 uint64_t DataSize; 591 592 CharUnits NonVirtualSize; 593 CharUnits NonVirtualAlignment; 594 595 /// PrimaryBase - the primary base class (if one exists) of the class 596 /// we're laying out. 597 const CXXRecordDecl *PrimaryBase; 598 599 /// PrimaryBaseIsVirtual - Whether the primary base of the class we're laying 600 /// out is virtual. 601 bool PrimaryBaseIsVirtual; 602 603 /// HasOwnVFPtr - Whether the class provides its own vtable/vftbl 604 /// pointer, as opposed to inheriting one from a primary base class. 605 bool HasOwnVFPtr; 606 607 typedef llvm::DenseMap<const CXXRecordDecl *, CharUnits> BaseOffsetsMapTy; 608 609 /// Bases - base classes and their offsets in the record. 610 BaseOffsetsMapTy Bases; 611 612 // VBases - virtual base classes and their offsets in the record. 613 ASTRecordLayout::VBaseOffsetsMapTy VBases; 614 615 /// IndirectPrimaryBases - Virtual base classes, direct or indirect, that are 616 /// primary base classes for some other direct or indirect base class. 617 CXXIndirectPrimaryBaseSet IndirectPrimaryBases; 618 619 /// FirstNearlyEmptyVBase - The first nearly empty virtual base class in 620 /// inheritance graph order. Used for determining the primary base class. 621 const CXXRecordDecl *FirstNearlyEmptyVBase; 622 623 /// VisitedVirtualBases - A set of all the visited virtual bases, used to 624 /// avoid visiting virtual bases more than once. 625 llvm::SmallPtrSet<const CXXRecordDecl *, 4> VisitedVirtualBases; 626 627 /// \brief Externally-provided size. 628 uint64_t ExternalSize; 629 630 /// \brief Externally-provided alignment. 631 uint64_t ExternalAlign; 632 633 /// \brief Externally-provided field offsets. 634 llvm::DenseMap<const FieldDecl *, uint64_t> ExternalFieldOffsets; 635 636 /// \brief Externally-provided direct, non-virtual base offsets. 637 llvm::DenseMap<const CXXRecordDecl *, CharUnits> ExternalBaseOffsets; 638 639 /// \brief Externally-provided virtual base offsets. 640 llvm::DenseMap<const CXXRecordDecl *, CharUnits> ExternalVirtualBaseOffsets; 641 642 RecordLayoutBuilder(const ASTContext &Context, 643 EmptySubobjectMap *EmptySubobjects) 644 : Context(Context), EmptySubobjects(EmptySubobjects), Size(0), 645 Alignment(CharUnits::One()), UnpackedAlignment(CharUnits::One()), 646 ExternalLayout(false), InferAlignment(false), 647 Packed(false), IsUnion(false), IsMac68kAlign(false), IsMsStruct(false), 648 UnfilledBitsInLastUnit(0), LastBitfieldTypeSize(0), 649 MaxFieldAlignment(CharUnits::Zero()), 650 DataSize(0), NonVirtualSize(CharUnits::Zero()), 651 NonVirtualAlignment(CharUnits::One()), 652 PrimaryBase(0), PrimaryBaseIsVirtual(false), 653 HasOwnVFPtr(false), 654 FirstNearlyEmptyVBase(0) { } 655 656 /// Reset this RecordLayoutBuilder to a fresh state, using the given 657 /// alignment as the initial alignment. This is used for the 658 /// correct layout of vb-table pointers in MSVC. 659 void resetWithTargetAlignment(CharUnits TargetAlignment) { 660 const ASTContext &Context = this->Context; 661 EmptySubobjectMap *EmptySubobjects = this->EmptySubobjects; 662 this->~RecordLayoutBuilder(); 663 new (this) RecordLayoutBuilder(Context, EmptySubobjects); 664 Alignment = UnpackedAlignment = TargetAlignment; 665 } 666 667 void Layout(const RecordDecl *D); 668 void Layout(const CXXRecordDecl *D); 669 void Layout(const ObjCInterfaceDecl *D); 670 671 void LayoutFields(const RecordDecl *D); 672 void LayoutField(const FieldDecl *D); 673 void LayoutWideBitField(uint64_t FieldSize, uint64_t TypeSize, 674 bool FieldPacked, const FieldDecl *D); 675 void LayoutBitField(const FieldDecl *D); 676 677 TargetCXXABI getCXXABI() const { 678 return Context.getTargetInfo().getCXXABI(); 679 } 680 681 /// BaseSubobjectInfoAllocator - Allocator for BaseSubobjectInfo objects. 682 llvm::SpecificBumpPtrAllocator<BaseSubobjectInfo> BaseSubobjectInfoAllocator; 683 684 typedef llvm::DenseMap<const CXXRecordDecl *, BaseSubobjectInfo *> 685 BaseSubobjectInfoMapTy; 686 687 /// VirtualBaseInfo - Map from all the (direct or indirect) virtual bases 688 /// of the class we're laying out to their base subobject info. 689 BaseSubobjectInfoMapTy VirtualBaseInfo; 690 691 /// NonVirtualBaseInfo - Map from all the direct non-virtual bases of the 692 /// class we're laying out to their base subobject info. 693 BaseSubobjectInfoMapTy NonVirtualBaseInfo; 694 695 /// ComputeBaseSubobjectInfo - Compute the base subobject information for the 696 /// bases of the given class. 697 void ComputeBaseSubobjectInfo(const CXXRecordDecl *RD); 698 699 /// ComputeBaseSubobjectInfo - Compute the base subobject information for a 700 /// single class and all of its base classes. 701 BaseSubobjectInfo *ComputeBaseSubobjectInfo(const CXXRecordDecl *RD, 702 bool IsVirtual, 703 BaseSubobjectInfo *Derived); 704 705 /// DeterminePrimaryBase - Determine the primary base of the given class. 706 void DeterminePrimaryBase(const CXXRecordDecl *RD); 707 708 void SelectPrimaryVBase(const CXXRecordDecl *RD); 709 710 void EnsureVTablePointerAlignment(CharUnits UnpackedBaseAlign); 711 712 /// LayoutNonVirtualBases - Determines the primary base class (if any) and 713 /// lays it out. Will then proceed to lay out all non-virtual base clasess. 714 void LayoutNonVirtualBases(const CXXRecordDecl *RD); 715 716 /// LayoutNonVirtualBase - Lays out a single non-virtual base. 717 void LayoutNonVirtualBase(const BaseSubobjectInfo *Base); 718 719 void AddPrimaryVirtualBaseOffsets(const BaseSubobjectInfo *Info, 720 CharUnits Offset); 721 722 /// LayoutVirtualBases - Lays out all the virtual bases. 723 void LayoutVirtualBases(const CXXRecordDecl *RD, 724 const CXXRecordDecl *MostDerivedClass); 725 726 /// LayoutVirtualBase - Lays out a single virtual base. 727 void LayoutVirtualBase(const BaseSubobjectInfo *Base); 728 729 /// LayoutBase - Will lay out a base and return the offset where it was 730 /// placed, in chars. 731 CharUnits LayoutBase(const BaseSubobjectInfo *Base); 732 733 /// InitializeLayout - Initialize record layout for the given record decl. 734 void InitializeLayout(const Decl *D); 735 736 /// FinishLayout - Finalize record layout. Adjust record size based on the 737 /// alignment. 738 void FinishLayout(const NamedDecl *D); 739 740 void UpdateAlignment(CharUnits NewAlignment, CharUnits UnpackedNewAlignment); 741 void UpdateAlignment(CharUnits NewAlignment) { 742 UpdateAlignment(NewAlignment, NewAlignment); 743 } 744 745 /// \brief Retrieve the externally-supplied field offset for the given 746 /// field. 747 /// 748 /// \param Field The field whose offset is being queried. 749 /// \param ComputedOffset The offset that we've computed for this field. 750 uint64_t updateExternalFieldOffset(const FieldDecl *Field, 751 uint64_t ComputedOffset); 752 753 void CheckFieldPadding(uint64_t Offset, uint64_t UnpaddedOffset, 754 uint64_t UnpackedOffset, unsigned UnpackedAlign, 755 bool isPacked, const FieldDecl *D); 756 757 DiagnosticBuilder Diag(SourceLocation Loc, unsigned DiagID); 758 759 CharUnits getSize() const { 760 assert(Size % Context.getCharWidth() == 0); 761 return Context.toCharUnitsFromBits(Size); 762 } 763 uint64_t getSizeInBits() const { return Size; } 764 765 void setSize(CharUnits NewSize) { Size = Context.toBits(NewSize); } 766 void setSize(uint64_t NewSize) { Size = NewSize; } 767 768 CharUnits getAligment() const { return Alignment; } 769 770 CharUnits getDataSize() const { 771 assert(DataSize % Context.getCharWidth() == 0); 772 return Context.toCharUnitsFromBits(DataSize); 773 } 774 uint64_t getDataSizeInBits() const { return DataSize; } 775 776 void setDataSize(CharUnits NewSize) { DataSize = Context.toBits(NewSize); } 777 void setDataSize(uint64_t NewSize) { DataSize = NewSize; } 778 779 RecordLayoutBuilder(const RecordLayoutBuilder &) LLVM_DELETED_FUNCTION; 780 void operator=(const RecordLayoutBuilder &) LLVM_DELETED_FUNCTION; 781 }; 782 } // end anonymous namespace 783 784 void 785 RecordLayoutBuilder::SelectPrimaryVBase(const CXXRecordDecl *RD) { 786 for (CXXRecordDecl::base_class_const_iterator I = RD->bases_begin(), 787 E = RD->bases_end(); I != E; ++I) { 788 assert(!I->getType()->isDependentType() && 789 "Cannot layout class with dependent bases."); 790 791 const CXXRecordDecl *Base = 792 cast<CXXRecordDecl>(I->getType()->getAs<RecordType>()->getDecl()); 793 794 // Check if this is a nearly empty virtual base. 795 if (I->isVirtual() && Context.isNearlyEmpty(Base)) { 796 // If it's not an indirect primary base, then we've found our primary 797 // base. 798 if (!IndirectPrimaryBases.count(Base)) { 799 PrimaryBase = Base; 800 PrimaryBaseIsVirtual = true; 801 return; 802 } 803 804 // Is this the first nearly empty virtual base? 805 if (!FirstNearlyEmptyVBase) 806 FirstNearlyEmptyVBase = Base; 807 } 808 809 SelectPrimaryVBase(Base); 810 if (PrimaryBase) 811 return; 812 } 813 } 814 815 /// DeterminePrimaryBase - Determine the primary base of the given class. 816 void RecordLayoutBuilder::DeterminePrimaryBase(const CXXRecordDecl *RD) { 817 // If the class isn't dynamic, it won't have a primary base. 818 if (!RD->isDynamicClass()) 819 return; 820 821 // Compute all the primary virtual bases for all of our direct and 822 // indirect bases, and record all their primary virtual base classes. 823 RD->getIndirectPrimaryBases(IndirectPrimaryBases); 824 825 // If the record has a dynamic base class, attempt to choose a primary base 826 // class. It is the first (in direct base class order) non-virtual dynamic 827 // base class, if one exists. 828 for (CXXRecordDecl::base_class_const_iterator i = RD->bases_begin(), 829 e = RD->bases_end(); i != e; ++i) { 830 // Ignore virtual bases. 831 if (i->isVirtual()) 832 continue; 833 834 const CXXRecordDecl *Base = 835 cast<CXXRecordDecl>(i->getType()->getAs<RecordType>()->getDecl()); 836 837 if (Base->isDynamicClass()) { 838 // We found it. 839 PrimaryBase = Base; 840 PrimaryBaseIsVirtual = false; 841 return; 842 } 843 } 844 845 // Under the Itanium ABI, if there is no non-virtual primary base class, 846 // try to compute the primary virtual base. The primary virtual base is 847 // the first nearly empty virtual base that is not an indirect primary 848 // virtual base class, if one exists. 849 if (RD->getNumVBases() != 0) { 850 SelectPrimaryVBase(RD); 851 if (PrimaryBase) 852 return; 853 } 854 855 // Otherwise, it is the first indirect primary base class, if one exists. 856 if (FirstNearlyEmptyVBase) { 857 PrimaryBase = FirstNearlyEmptyVBase; 858 PrimaryBaseIsVirtual = true; 859 return; 860 } 861 862 assert(!PrimaryBase && "Should not get here with a primary base!"); 863 } 864 865 BaseSubobjectInfo * 866 RecordLayoutBuilder::ComputeBaseSubobjectInfo(const CXXRecordDecl *RD, 867 bool IsVirtual, 868 BaseSubobjectInfo *Derived) { 869 BaseSubobjectInfo *Info; 870 871 if (IsVirtual) { 872 // Check if we already have info about this virtual base. 873 BaseSubobjectInfo *&InfoSlot = VirtualBaseInfo[RD]; 874 if (InfoSlot) { 875 assert(InfoSlot->Class == RD && "Wrong class for virtual base info!"); 876 return InfoSlot; 877 } 878 879 // We don't, create it. 880 InfoSlot = new (BaseSubobjectInfoAllocator.Allocate()) BaseSubobjectInfo; 881 Info = InfoSlot; 882 } else { 883 Info = new (BaseSubobjectInfoAllocator.Allocate()) BaseSubobjectInfo; 884 } 885 886 Info->Class = RD; 887 Info->IsVirtual = IsVirtual; 888 Info->Derived = 0; 889 Info->PrimaryVirtualBaseInfo = 0; 890 891 const CXXRecordDecl *PrimaryVirtualBase = 0; 892 BaseSubobjectInfo *PrimaryVirtualBaseInfo = 0; 893 894 // Check if this base has a primary virtual base. 895 if (RD->getNumVBases()) { 896 const ASTRecordLayout &Layout = Context.getASTRecordLayout(RD); 897 if (Layout.isPrimaryBaseVirtual()) { 898 // This base does have a primary virtual base. 899 PrimaryVirtualBase = Layout.getPrimaryBase(); 900 assert(PrimaryVirtualBase && "Didn't have a primary virtual base!"); 901 902 // Now check if we have base subobject info about this primary base. 903 PrimaryVirtualBaseInfo = VirtualBaseInfo.lookup(PrimaryVirtualBase); 904 905 if (PrimaryVirtualBaseInfo) { 906 if (PrimaryVirtualBaseInfo->Derived) { 907 // We did have info about this primary base, and it turns out that it 908 // has already been claimed as a primary virtual base for another 909 // base. 910 PrimaryVirtualBase = 0; 911 } else { 912 // We can claim this base as our primary base. 913 Info->PrimaryVirtualBaseInfo = PrimaryVirtualBaseInfo; 914 PrimaryVirtualBaseInfo->Derived = Info; 915 } 916 } 917 } 918 } 919 920 // Now go through all direct bases. 921 for (CXXRecordDecl::base_class_const_iterator I = RD->bases_begin(), 922 E = RD->bases_end(); I != E; ++I) { 923 bool IsVirtual = I->isVirtual(); 924 925 const CXXRecordDecl *BaseDecl = 926 cast<CXXRecordDecl>(I->getType()->getAs<RecordType>()->getDecl()); 927 928 Info->Bases.push_back(ComputeBaseSubobjectInfo(BaseDecl, IsVirtual, Info)); 929 } 930 931 if (PrimaryVirtualBase && !PrimaryVirtualBaseInfo) { 932 // Traversing the bases must have created the base info for our primary 933 // virtual base. 934 PrimaryVirtualBaseInfo = VirtualBaseInfo.lookup(PrimaryVirtualBase); 935 assert(PrimaryVirtualBaseInfo && 936 "Did not create a primary virtual base!"); 937 938 // Claim the primary virtual base as our primary virtual base. 939 Info->PrimaryVirtualBaseInfo = PrimaryVirtualBaseInfo; 940 PrimaryVirtualBaseInfo->Derived = Info; 941 } 942 943 return Info; 944 } 945 946 void RecordLayoutBuilder::ComputeBaseSubobjectInfo(const CXXRecordDecl *RD) { 947 for (CXXRecordDecl::base_class_const_iterator I = RD->bases_begin(), 948 E = RD->bases_end(); I != E; ++I) { 949 bool IsVirtual = I->isVirtual(); 950 951 const CXXRecordDecl *BaseDecl = 952 cast<CXXRecordDecl>(I->getType()->getAs<RecordType>()->getDecl()); 953 954 // Compute the base subobject info for this base. 955 BaseSubobjectInfo *Info = ComputeBaseSubobjectInfo(BaseDecl, IsVirtual, 0); 956 957 if (IsVirtual) { 958 // ComputeBaseInfo has already added this base for us. 959 assert(VirtualBaseInfo.count(BaseDecl) && 960 "Did not add virtual base!"); 961 } else { 962 // Add the base info to the map of non-virtual bases. 963 assert(!NonVirtualBaseInfo.count(BaseDecl) && 964 "Non-virtual base already exists!"); 965 NonVirtualBaseInfo.insert(std::make_pair(BaseDecl, Info)); 966 } 967 } 968 } 969 970 void 971 RecordLayoutBuilder::EnsureVTablePointerAlignment(CharUnits UnpackedBaseAlign) { 972 CharUnits BaseAlign = (Packed) ? CharUnits::One() : UnpackedBaseAlign; 973 974 // The maximum field alignment overrides base align. 975 if (!MaxFieldAlignment.isZero()) { 976 BaseAlign = std::min(BaseAlign, MaxFieldAlignment); 977 UnpackedBaseAlign = std::min(UnpackedBaseAlign, MaxFieldAlignment); 978 } 979 980 // Round up the current record size to pointer alignment. 981 setSize(getSize().RoundUpToAlignment(BaseAlign)); 982 setDataSize(getSize()); 983 984 // Update the alignment. 985 UpdateAlignment(BaseAlign, UnpackedBaseAlign); 986 } 987 988 void 989 RecordLayoutBuilder::LayoutNonVirtualBases(const CXXRecordDecl *RD) { 990 // Then, determine the primary base class. 991 DeterminePrimaryBase(RD); 992 993 // Compute base subobject info. 994 ComputeBaseSubobjectInfo(RD); 995 996 // If we have a primary base class, lay it out. 997 if (PrimaryBase) { 998 if (PrimaryBaseIsVirtual) { 999 // If the primary virtual base was a primary virtual base of some other 1000 // base class we'll have to steal it. 1001 BaseSubobjectInfo *PrimaryBaseInfo = VirtualBaseInfo.lookup(PrimaryBase); 1002 PrimaryBaseInfo->Derived = 0; 1003 1004 // We have a virtual primary base, insert it as an indirect primary base. 1005 IndirectPrimaryBases.insert(PrimaryBase); 1006 1007 assert(!VisitedVirtualBases.count(PrimaryBase) && 1008 "vbase already visited!"); 1009 VisitedVirtualBases.insert(PrimaryBase); 1010 1011 LayoutVirtualBase(PrimaryBaseInfo); 1012 } else { 1013 BaseSubobjectInfo *PrimaryBaseInfo = 1014 NonVirtualBaseInfo.lookup(PrimaryBase); 1015 assert(PrimaryBaseInfo && 1016 "Did not find base info for non-virtual primary base!"); 1017 1018 LayoutNonVirtualBase(PrimaryBaseInfo); 1019 } 1020 1021 // If this class needs a vtable/vf-table and didn't get one from a 1022 // primary base, add it in now. 1023 } else if (RD->isDynamicClass()) { 1024 assert(DataSize == 0 && "Vtable pointer must be at offset zero!"); 1025 CharUnits PtrWidth = 1026 Context.toCharUnitsFromBits(Context.getTargetInfo().getPointerWidth(0)); 1027 CharUnits PtrAlign = 1028 Context.toCharUnitsFromBits(Context.getTargetInfo().getPointerAlign(0)); 1029 EnsureVTablePointerAlignment(PtrAlign); 1030 HasOwnVFPtr = true; 1031 setSize(getSize() + PtrWidth); 1032 setDataSize(getSize()); 1033 } 1034 1035 // Now lay out the non-virtual bases. 1036 for (CXXRecordDecl::base_class_const_iterator I = RD->bases_begin(), 1037 E = RD->bases_end(); I != E; ++I) { 1038 1039 // Ignore virtual bases. 1040 if (I->isVirtual()) 1041 continue; 1042 1043 const CXXRecordDecl *BaseDecl = I->getType()->getAsCXXRecordDecl(); 1044 1045 // Skip the primary base, because we've already laid it out. The 1046 // !PrimaryBaseIsVirtual check is required because we might have a 1047 // non-virtual base of the same type as a primary virtual base. 1048 if (BaseDecl == PrimaryBase && !PrimaryBaseIsVirtual) 1049 continue; 1050 1051 // Lay out the base. 1052 BaseSubobjectInfo *BaseInfo = NonVirtualBaseInfo.lookup(BaseDecl); 1053 assert(BaseInfo && "Did not find base info for non-virtual base!"); 1054 1055 LayoutNonVirtualBase(BaseInfo); 1056 } 1057 } 1058 1059 void RecordLayoutBuilder::LayoutNonVirtualBase(const BaseSubobjectInfo *Base) { 1060 // Layout the base. 1061 CharUnits Offset = LayoutBase(Base); 1062 1063 // Add its base class offset. 1064 assert(!Bases.count(Base->Class) && "base offset already exists!"); 1065 Bases.insert(std::make_pair(Base->Class, Offset)); 1066 1067 AddPrimaryVirtualBaseOffsets(Base, Offset); 1068 } 1069 1070 void 1071 RecordLayoutBuilder::AddPrimaryVirtualBaseOffsets(const BaseSubobjectInfo *Info, 1072 CharUnits Offset) { 1073 // This base isn't interesting, it has no virtual bases. 1074 if (!Info->Class->getNumVBases()) 1075 return; 1076 1077 // First, check if we have a virtual primary base to add offsets for. 1078 if (Info->PrimaryVirtualBaseInfo) { 1079 assert(Info->PrimaryVirtualBaseInfo->IsVirtual && 1080 "Primary virtual base is not virtual!"); 1081 if (Info->PrimaryVirtualBaseInfo->Derived == Info) { 1082 // Add the offset. 1083 assert(!VBases.count(Info->PrimaryVirtualBaseInfo->Class) && 1084 "primary vbase offset already exists!"); 1085 VBases.insert(std::make_pair(Info->PrimaryVirtualBaseInfo->Class, 1086 ASTRecordLayout::VBaseInfo(Offset, false))); 1087 1088 // Traverse the primary virtual base. 1089 AddPrimaryVirtualBaseOffsets(Info->PrimaryVirtualBaseInfo, Offset); 1090 } 1091 } 1092 1093 // Now go through all direct non-virtual bases. 1094 const ASTRecordLayout &Layout = Context.getASTRecordLayout(Info->Class); 1095 for (unsigned I = 0, E = Info->Bases.size(); I != E; ++I) { 1096 const BaseSubobjectInfo *Base = Info->Bases[I]; 1097 if (Base->IsVirtual) 1098 continue; 1099 1100 CharUnits BaseOffset = Offset + Layout.getBaseClassOffset(Base->Class); 1101 AddPrimaryVirtualBaseOffsets(Base, BaseOffset); 1102 } 1103 } 1104 1105 void 1106 RecordLayoutBuilder::LayoutVirtualBases(const CXXRecordDecl *RD, 1107 const CXXRecordDecl *MostDerivedClass) { 1108 const CXXRecordDecl *PrimaryBase; 1109 bool PrimaryBaseIsVirtual; 1110 1111 if (MostDerivedClass == RD) { 1112 PrimaryBase = this->PrimaryBase; 1113 PrimaryBaseIsVirtual = this->PrimaryBaseIsVirtual; 1114 } else { 1115 const ASTRecordLayout &Layout = Context.getASTRecordLayout(RD); 1116 PrimaryBase = Layout.getPrimaryBase(); 1117 PrimaryBaseIsVirtual = Layout.isPrimaryBaseVirtual(); 1118 } 1119 1120 for (CXXRecordDecl::base_class_const_iterator I = RD->bases_begin(), 1121 E = RD->bases_end(); I != E; ++I) { 1122 assert(!I->getType()->isDependentType() && 1123 "Cannot layout class with dependent bases."); 1124 1125 const CXXRecordDecl *BaseDecl = I->getType()->getAsCXXRecordDecl(); 1126 1127 if (I->isVirtual()) { 1128 if (PrimaryBase != BaseDecl || !PrimaryBaseIsVirtual) { 1129 bool IndirectPrimaryBase = IndirectPrimaryBases.count(BaseDecl); 1130 1131 // Only lay out the virtual base if it's not an indirect primary base. 1132 if (!IndirectPrimaryBase) { 1133 // Only visit virtual bases once. 1134 if (!VisitedVirtualBases.insert(BaseDecl)) 1135 continue; 1136 1137 const BaseSubobjectInfo *BaseInfo = VirtualBaseInfo.lookup(BaseDecl); 1138 assert(BaseInfo && "Did not find virtual base info!"); 1139 LayoutVirtualBase(BaseInfo); 1140 } 1141 } 1142 } 1143 1144 if (!BaseDecl->getNumVBases()) { 1145 // This base isn't interesting since it doesn't have any virtual bases. 1146 continue; 1147 } 1148 1149 LayoutVirtualBases(BaseDecl, MostDerivedClass); 1150 } 1151 } 1152 1153 void RecordLayoutBuilder::LayoutVirtualBase(const BaseSubobjectInfo *Base) { 1154 assert(!Base->Derived && "Trying to lay out a primary virtual base!"); 1155 1156 // Layout the base. 1157 CharUnits Offset = LayoutBase(Base); 1158 1159 // Add its base class offset. 1160 assert(!VBases.count(Base->Class) && "vbase offset already exists!"); 1161 VBases.insert(std::make_pair(Base->Class, 1162 ASTRecordLayout::VBaseInfo(Offset, false))); 1163 1164 AddPrimaryVirtualBaseOffsets(Base, Offset); 1165 } 1166 1167 CharUnits RecordLayoutBuilder::LayoutBase(const BaseSubobjectInfo *Base) { 1168 const ASTRecordLayout &Layout = Context.getASTRecordLayout(Base->Class); 1169 1170 1171 CharUnits Offset; 1172 1173 // Query the external layout to see if it provides an offset. 1174 bool HasExternalLayout = false; 1175 if (ExternalLayout) { 1176 llvm::DenseMap<const CXXRecordDecl *, CharUnits>::iterator Known; 1177 if (Base->IsVirtual) { 1178 Known = ExternalVirtualBaseOffsets.find(Base->Class); 1179 if (Known != ExternalVirtualBaseOffsets.end()) { 1180 Offset = Known->second; 1181 HasExternalLayout = true; 1182 } 1183 } else { 1184 Known = ExternalBaseOffsets.find(Base->Class); 1185 if (Known != ExternalBaseOffsets.end()) { 1186 Offset = Known->second; 1187 HasExternalLayout = true; 1188 } 1189 } 1190 } 1191 1192 CharUnits UnpackedBaseAlign = Layout.getNonVirtualAlignment(); 1193 CharUnits BaseAlign = (Packed) ? CharUnits::One() : UnpackedBaseAlign; 1194 1195 // If we have an empty base class, try to place it at offset 0. 1196 if (Base->Class->isEmpty() && 1197 (!HasExternalLayout || Offset == CharUnits::Zero()) && 1198 EmptySubobjects->CanPlaceBaseAtOffset(Base, CharUnits::Zero())) { 1199 setSize(std::max(getSize(), Layout.getSize())); 1200 UpdateAlignment(BaseAlign, UnpackedBaseAlign); 1201 1202 return CharUnits::Zero(); 1203 } 1204 1205 // The maximum field alignment overrides base align. 1206 if (!MaxFieldAlignment.isZero()) { 1207 BaseAlign = std::min(BaseAlign, MaxFieldAlignment); 1208 UnpackedBaseAlign = std::min(UnpackedBaseAlign, MaxFieldAlignment); 1209 } 1210 1211 if (!HasExternalLayout) { 1212 // Round up the current record size to the base's alignment boundary. 1213 Offset = getDataSize().RoundUpToAlignment(BaseAlign); 1214 1215 // Try to place the base. 1216 while (!EmptySubobjects->CanPlaceBaseAtOffset(Base, Offset)) 1217 Offset += BaseAlign; 1218 } else { 1219 bool Allowed = EmptySubobjects->CanPlaceBaseAtOffset(Base, Offset); 1220 (void)Allowed; 1221 assert(Allowed && "Base subobject externally placed at overlapping offset"); 1222 1223 if (InferAlignment && Offset < getDataSize().RoundUpToAlignment(BaseAlign)){ 1224 // The externally-supplied base offset is before the base offset we 1225 // computed. Assume that the structure is packed. 1226 Alignment = CharUnits::One(); 1227 InferAlignment = false; 1228 } 1229 } 1230 1231 if (!Base->Class->isEmpty()) { 1232 // Update the data size. 1233 setDataSize(Offset + Layout.getNonVirtualSize()); 1234 1235 setSize(std::max(getSize(), getDataSize())); 1236 } else 1237 setSize(std::max(getSize(), Offset + Layout.getSize())); 1238 1239 // Remember max struct/class alignment. 1240 UpdateAlignment(BaseAlign, UnpackedBaseAlign); 1241 1242 return Offset; 1243 } 1244 1245 void RecordLayoutBuilder::InitializeLayout(const Decl *D) { 1246 if (const RecordDecl *RD = dyn_cast<RecordDecl>(D)) { 1247 IsUnion = RD->isUnion(); 1248 IsMsStruct = RD->isMsStruct(Context); 1249 } 1250 1251 Packed = D->hasAttr<PackedAttr>(); 1252 1253 // Honor the default struct packing maximum alignment flag. 1254 if (unsigned DefaultMaxFieldAlignment = Context.getLangOpts().PackStruct) { 1255 MaxFieldAlignment = CharUnits::fromQuantity(DefaultMaxFieldAlignment); 1256 } 1257 1258 // mac68k alignment supersedes maximum field alignment and attribute aligned, 1259 // and forces all structures to have 2-byte alignment. The IBM docs on it 1260 // allude to additional (more complicated) semantics, especially with regard 1261 // to bit-fields, but gcc appears not to follow that. 1262 if (D->hasAttr<AlignMac68kAttr>()) { 1263 IsMac68kAlign = true; 1264 MaxFieldAlignment = CharUnits::fromQuantity(2); 1265 Alignment = CharUnits::fromQuantity(2); 1266 } else { 1267 if (const MaxFieldAlignmentAttr *MFAA = D->getAttr<MaxFieldAlignmentAttr>()) 1268 MaxFieldAlignment = Context.toCharUnitsFromBits(MFAA->getAlignment()); 1269 1270 if (unsigned MaxAlign = D->getMaxAlignment()) 1271 UpdateAlignment(Context.toCharUnitsFromBits(MaxAlign)); 1272 } 1273 1274 // If there is an external AST source, ask it for the various offsets. 1275 if (const RecordDecl *RD = dyn_cast<RecordDecl>(D)) 1276 if (ExternalASTSource *External = Context.getExternalSource()) { 1277 ExternalLayout = External->layoutRecordType(RD, 1278 ExternalSize, 1279 ExternalAlign, 1280 ExternalFieldOffsets, 1281 ExternalBaseOffsets, 1282 ExternalVirtualBaseOffsets); 1283 1284 // Update based on external alignment. 1285 if (ExternalLayout) { 1286 if (ExternalAlign > 0) { 1287 Alignment = Context.toCharUnitsFromBits(ExternalAlign); 1288 } else { 1289 // The external source didn't have alignment information; infer it. 1290 InferAlignment = true; 1291 } 1292 } 1293 } 1294 } 1295 1296 void RecordLayoutBuilder::Layout(const RecordDecl *D) { 1297 InitializeLayout(D); 1298 LayoutFields(D); 1299 1300 // Finally, round the size of the total struct up to the alignment of the 1301 // struct itself. 1302 FinishLayout(D); 1303 } 1304 1305 void RecordLayoutBuilder::Layout(const CXXRecordDecl *RD) { 1306 InitializeLayout(RD); 1307 1308 // Lay out the vtable and the non-virtual bases. 1309 LayoutNonVirtualBases(RD); 1310 1311 LayoutFields(RD); 1312 1313 NonVirtualSize = Context.toCharUnitsFromBits( 1314 llvm::RoundUpToAlignment(getSizeInBits(), 1315 Context.getTargetInfo().getCharAlign())); 1316 NonVirtualAlignment = Alignment; 1317 1318 // Lay out the virtual bases and add the primary virtual base offsets. 1319 LayoutVirtualBases(RD, RD); 1320 1321 // Finally, round the size of the total struct up to the alignment 1322 // of the struct itself. 1323 FinishLayout(RD); 1324 1325 #ifndef NDEBUG 1326 // Check that we have base offsets for all bases. 1327 for (CXXRecordDecl::base_class_const_iterator I = RD->bases_begin(), 1328 E = RD->bases_end(); I != E; ++I) { 1329 if (I->isVirtual()) 1330 continue; 1331 1332 const CXXRecordDecl *BaseDecl = 1333 cast<CXXRecordDecl>(I->getType()->getAs<RecordType>()->getDecl()); 1334 1335 assert(Bases.count(BaseDecl) && "Did not find base offset!"); 1336 } 1337 1338 // And all virtual bases. 1339 for (CXXRecordDecl::base_class_const_iterator I = RD->vbases_begin(), 1340 E = RD->vbases_end(); I != E; ++I) { 1341 const CXXRecordDecl *BaseDecl = 1342 cast<CXXRecordDecl>(I->getType()->getAs<RecordType>()->getDecl()); 1343 1344 assert(VBases.count(BaseDecl) && "Did not find base offset!"); 1345 } 1346 #endif 1347 } 1348 1349 void RecordLayoutBuilder::Layout(const ObjCInterfaceDecl *D) { 1350 if (ObjCInterfaceDecl *SD = D->getSuperClass()) { 1351 const ASTRecordLayout &SL = Context.getASTObjCInterfaceLayout(SD); 1352 1353 UpdateAlignment(SL.getAlignment()); 1354 1355 // We start laying out ivars not at the end of the superclass 1356 // structure, but at the next byte following the last field. 1357 setSize(SL.getDataSize()); 1358 setDataSize(getSize()); 1359 } 1360 1361 InitializeLayout(D); 1362 // Layout each ivar sequentially. 1363 for (const ObjCIvarDecl *IVD = D->all_declared_ivar_begin(); IVD; 1364 IVD = IVD->getNextIvar()) 1365 LayoutField(IVD); 1366 1367 // Finally, round the size of the total struct up to the alignment of the 1368 // struct itself. 1369 FinishLayout(D); 1370 } 1371 1372 void RecordLayoutBuilder::LayoutFields(const RecordDecl *D) { 1373 // Layout each field, for now, just sequentially, respecting alignment. In 1374 // the future, this will need to be tweakable by targets. 1375 for (RecordDecl::field_iterator Field = D->field_begin(), 1376 FieldEnd = D->field_end(); Field != FieldEnd; ++Field) 1377 LayoutField(*Field); 1378 } 1379 1380 void RecordLayoutBuilder::LayoutWideBitField(uint64_t FieldSize, 1381 uint64_t TypeSize, 1382 bool FieldPacked, 1383 const FieldDecl *D) { 1384 assert(Context.getLangOpts().CPlusPlus && 1385 "Can only have wide bit-fields in C++!"); 1386 1387 // Itanium C++ ABI 2.4: 1388 // If sizeof(T)*8 < n, let T' be the largest integral POD type with 1389 // sizeof(T')*8 <= n. 1390 1391 QualType IntegralPODTypes[] = { 1392 Context.UnsignedCharTy, Context.UnsignedShortTy, Context.UnsignedIntTy, 1393 Context.UnsignedLongTy, Context.UnsignedLongLongTy 1394 }; 1395 1396 QualType Type; 1397 for (unsigned I = 0, E = llvm::array_lengthof(IntegralPODTypes); 1398 I != E; ++I) { 1399 uint64_t Size = Context.getTypeSize(IntegralPODTypes[I]); 1400 1401 if (Size > FieldSize) 1402 break; 1403 1404 Type = IntegralPODTypes[I]; 1405 } 1406 assert(!Type.isNull() && "Did not find a type!"); 1407 1408 CharUnits TypeAlign = Context.getTypeAlignInChars(Type); 1409 1410 // We're not going to use any of the unfilled bits in the last byte. 1411 UnfilledBitsInLastUnit = 0; 1412 LastBitfieldTypeSize = 0; 1413 1414 uint64_t FieldOffset; 1415 uint64_t UnpaddedFieldOffset = getDataSizeInBits() - UnfilledBitsInLastUnit; 1416 1417 if (IsUnion) { 1418 setDataSize(std::max(getDataSizeInBits(), FieldSize)); 1419 FieldOffset = 0; 1420 } else { 1421 // The bitfield is allocated starting at the next offset aligned 1422 // appropriately for T', with length n bits. 1423 FieldOffset = llvm::RoundUpToAlignment(getDataSizeInBits(), 1424 Context.toBits(TypeAlign)); 1425 1426 uint64_t NewSizeInBits = FieldOffset + FieldSize; 1427 1428 setDataSize(llvm::RoundUpToAlignment(NewSizeInBits, 1429 Context.getTargetInfo().getCharAlign())); 1430 UnfilledBitsInLastUnit = getDataSizeInBits() - NewSizeInBits; 1431 } 1432 1433 // Place this field at the current location. 1434 FieldOffsets.push_back(FieldOffset); 1435 1436 CheckFieldPadding(FieldOffset, UnpaddedFieldOffset, FieldOffset, 1437 Context.toBits(TypeAlign), FieldPacked, D); 1438 1439 // Update the size. 1440 setSize(std::max(getSizeInBits(), getDataSizeInBits())); 1441 1442 // Remember max struct/class alignment. 1443 UpdateAlignment(TypeAlign); 1444 } 1445 1446 void RecordLayoutBuilder::LayoutBitField(const FieldDecl *D) { 1447 bool FieldPacked = Packed || D->hasAttr<PackedAttr>(); 1448 uint64_t FieldSize = D->getBitWidthValue(Context); 1449 std::pair<uint64_t, unsigned> FieldInfo = Context.getTypeInfo(D->getType()); 1450 uint64_t TypeSize = FieldInfo.first; 1451 unsigned FieldAlign = FieldInfo.second; 1452 1453 // UnfilledBitsInLastUnit is the difference between the end of the 1454 // last allocated bitfield (i.e. the first bit offset available for 1455 // bitfields) and the end of the current data size in bits (i.e. the 1456 // first bit offset available for non-bitfields). The current data 1457 // size in bits is always a multiple of the char size; additionally, 1458 // for ms_struct records it's also a multiple of the 1459 // LastBitfieldTypeSize (if set). 1460 1461 // The struct-layout algorithm is dictated by the platform ABI, 1462 // which in principle could use almost any rules it likes. In 1463 // practice, UNIXy targets tend to inherit the algorithm described 1464 // in the System V generic ABI. The basic bitfield layout rule in 1465 // System V is to place bitfields at the next available bit offset 1466 // where the entire bitfield would fit in an aligned storage unit of 1467 // the declared type; it's okay if an earlier or later non-bitfield 1468 // is allocated in the same storage unit. However, some targets 1469 // (those that !useBitFieldTypeAlignment(), e.g. ARM APCS) don't 1470 // require this storage unit to be aligned, and therefore always put 1471 // the bitfield at the next available bit offset. 1472 1473 // ms_struct basically requests a complete replacement of the 1474 // platform ABI's struct-layout algorithm, with the high-level goal 1475 // of duplicating MSVC's layout. For non-bitfields, this follows 1476 // the the standard algorithm. The basic bitfield layout rule is to 1477 // allocate an entire unit of the bitfield's declared type 1478 // (e.g. 'unsigned long'), then parcel it up among successive 1479 // bitfields whose declared types have the same size, making a new 1480 // unit as soon as the last can no longer store the whole value. 1481 // Since it completely replaces the platform ABI's algorithm, 1482 // settings like !useBitFieldTypeAlignment() do not apply. 1483 1484 // A zero-width bitfield forces the use of a new storage unit for 1485 // later bitfields. In general, this occurs by rounding up the 1486 // current size of the struct as if the algorithm were about to 1487 // place a non-bitfield of the field's formal type. Usually this 1488 // does not change the alignment of the struct itself, but it does 1489 // on some targets (those that useZeroLengthBitfieldAlignment(), 1490 // e.g. ARM). In ms_struct layout, zero-width bitfields are 1491 // ignored unless they follow a non-zero-width bitfield. 1492 1493 // A field alignment restriction (e.g. from #pragma pack) or 1494 // specification (e.g. from __attribute__((aligned))) changes the 1495 // formal alignment of the field. For System V, this alters the 1496 // required alignment of the notional storage unit that must contain 1497 // the bitfield. For ms_struct, this only affects the placement of 1498 // new storage units. In both cases, the effect of #pragma pack is 1499 // ignored on zero-width bitfields. 1500 1501 // On System V, a packed field (e.g. from #pragma pack or 1502 // __attribute__((packed))) always uses the next available bit 1503 // offset. 1504 1505 1506 // First, some simple bookkeeping to perform for ms_struct structs. 1507 if (IsMsStruct) { 1508 // The field alignment for integer types is always the size. 1509 FieldAlign = TypeSize; 1510 1511 // If the previous field was not a bitfield, or was a bitfield 1512 // with a different storage unit size, we're done with that 1513 // storage unit. 1514 if (LastBitfieldTypeSize != TypeSize) { 1515 // Also, ignore zero-length bitfields after non-bitfields. 1516 if (!LastBitfieldTypeSize && !FieldSize) 1517 FieldAlign = 1; 1518 1519 UnfilledBitsInLastUnit = 0; 1520 LastBitfieldTypeSize = 0; 1521 } 1522 } 1523 1524 // If the field is wider than its declared type, it follows 1525 // different rules in all cases. 1526 if (FieldSize > TypeSize) { 1527 LayoutWideBitField(FieldSize, TypeSize, FieldPacked, D); 1528 return; 1529 } 1530 1531 // Compute the next available bit offset. 1532 uint64_t FieldOffset = 1533 IsUnion ? 0 : (getDataSizeInBits() - UnfilledBitsInLastUnit); 1534 1535 // Handle targets that don't honor bitfield type alignment. 1536 if (!IsMsStruct && !Context.getTargetInfo().useBitFieldTypeAlignment()) { 1537 // Some such targets do honor it on zero-width bitfields. 1538 if (FieldSize == 0 && 1539 Context.getTargetInfo().useZeroLengthBitfieldAlignment()) { 1540 // The alignment to round up to is the max of the field's natural 1541 // alignment and a target-specific fixed value (sometimes zero). 1542 unsigned ZeroLengthBitfieldBoundary = 1543 Context.getTargetInfo().getZeroLengthBitfieldBoundary(); 1544 FieldAlign = std::max(FieldAlign, ZeroLengthBitfieldBoundary); 1545 1546 // If that doesn't apply, just ignore the field alignment. 1547 } else { 1548 FieldAlign = 1; 1549 } 1550 } 1551 1552 // Remember the alignment we would have used if the field were not packed. 1553 unsigned UnpackedFieldAlign = FieldAlign; 1554 1555 // Ignore the field alignment if the field is packed unless it has zero-size. 1556 if (!IsMsStruct && FieldPacked && FieldSize != 0) 1557 FieldAlign = 1; 1558 1559 // But, if there's an 'aligned' attribute on the field, honor that. 1560 if (unsigned ExplicitFieldAlign = D->getMaxAlignment()) { 1561 FieldAlign = std::max(FieldAlign, ExplicitFieldAlign); 1562 UnpackedFieldAlign = std::max(UnpackedFieldAlign, ExplicitFieldAlign); 1563 } 1564 1565 // But, if there's a #pragma pack in play, that takes precedent over 1566 // even the 'aligned' attribute, for non-zero-width bitfields. 1567 if (!MaxFieldAlignment.isZero() && FieldSize) { 1568 unsigned MaxFieldAlignmentInBits = Context.toBits(MaxFieldAlignment); 1569 FieldAlign = std::min(FieldAlign, MaxFieldAlignmentInBits); 1570 UnpackedFieldAlign = std::min(UnpackedFieldAlign, MaxFieldAlignmentInBits); 1571 } 1572 1573 // For purposes of diagnostics, we're going to simultaneously 1574 // compute the field offsets that we would have used if we weren't 1575 // adding any alignment padding or if the field weren't packed. 1576 uint64_t UnpaddedFieldOffset = FieldOffset; 1577 uint64_t UnpackedFieldOffset = FieldOffset; 1578 1579 // Check if we need to add padding to fit the bitfield within an 1580 // allocation unit with the right size and alignment. The rules are 1581 // somewhat different here for ms_struct structs. 1582 if (IsMsStruct) { 1583 // If it's not a zero-width bitfield, and we can fit the bitfield 1584 // into the active storage unit (and we haven't already decided to 1585 // start a new storage unit), just do so, regardless of any other 1586 // other consideration. Otherwise, round up to the right alignment. 1587 if (FieldSize == 0 || FieldSize > UnfilledBitsInLastUnit) { 1588 FieldOffset = llvm::RoundUpToAlignment(FieldOffset, FieldAlign); 1589 UnpackedFieldOffset = llvm::RoundUpToAlignment(UnpackedFieldOffset, 1590 UnpackedFieldAlign); 1591 UnfilledBitsInLastUnit = 0; 1592 } 1593 1594 } else { 1595 // #pragma pack, with any value, suppresses the insertion of padding. 1596 bool AllowPadding = MaxFieldAlignment.isZero(); 1597 1598 // Compute the real offset. 1599 if (FieldSize == 0 || 1600 (AllowPadding && 1601 (FieldOffset & (FieldAlign-1)) + FieldSize > TypeSize)) { 1602 FieldOffset = llvm::RoundUpToAlignment(FieldOffset, FieldAlign); 1603 } 1604 1605 // Repeat the computation for diagnostic purposes. 1606 if (FieldSize == 0 || 1607 (AllowPadding && 1608 (UnpackedFieldOffset & (UnpackedFieldAlign-1)) + FieldSize > TypeSize)) 1609 UnpackedFieldOffset = llvm::RoundUpToAlignment(UnpackedFieldOffset, 1610 UnpackedFieldAlign); 1611 } 1612 1613 // If we're using external layout, give the external layout a chance 1614 // to override this information. 1615 if (ExternalLayout) 1616 FieldOffset = updateExternalFieldOffset(D, FieldOffset); 1617 1618 // Okay, place the bitfield at the calculated offset. 1619 FieldOffsets.push_back(FieldOffset); 1620 1621 // Bookkeeping: 1622 1623 // Anonymous members don't affect the overall record alignment, 1624 // except on targets where they do. 1625 if (!IsMsStruct && 1626 !Context.getTargetInfo().useZeroLengthBitfieldAlignment() && 1627 !D->getIdentifier()) 1628 FieldAlign = UnpackedFieldAlign = 1; 1629 1630 // Diagnose differences in layout due to padding or packing. 1631 if (!ExternalLayout) 1632 CheckFieldPadding(FieldOffset, UnpaddedFieldOffset, UnpackedFieldOffset, 1633 UnpackedFieldAlign, FieldPacked, D); 1634 1635 // Update DataSize to include the last byte containing (part of) the bitfield. 1636 1637 // For unions, this is just a max operation, as usual. 1638 if (IsUnion) { 1639 // FIXME: I think FieldSize should be TypeSize here. 1640 setDataSize(std::max(getDataSizeInBits(), FieldSize)); 1641 1642 // For non-zero-width bitfields in ms_struct structs, allocate a new 1643 // storage unit if necessary. 1644 } else if (IsMsStruct && FieldSize) { 1645 // We should have cleared UnfilledBitsInLastUnit in every case 1646 // where we changed storage units. 1647 if (!UnfilledBitsInLastUnit) { 1648 setDataSize(FieldOffset + TypeSize); 1649 UnfilledBitsInLastUnit = TypeSize; 1650 } 1651 UnfilledBitsInLastUnit -= FieldSize; 1652 LastBitfieldTypeSize = TypeSize; 1653 1654 // Otherwise, bump the data size up to include the bitfield, 1655 // including padding up to char alignment, and then remember how 1656 // bits we didn't use. 1657 } else { 1658 uint64_t NewSizeInBits = FieldOffset + FieldSize; 1659 uint64_t CharAlignment = Context.getTargetInfo().getCharAlign(); 1660 setDataSize(llvm::RoundUpToAlignment(NewSizeInBits, CharAlignment)); 1661 UnfilledBitsInLastUnit = getDataSizeInBits() - NewSizeInBits; 1662 1663 // The only time we can get here for an ms_struct is if this is a 1664 // zero-width bitfield, which doesn't count as anything for the 1665 // purposes of unfilled bits. 1666 LastBitfieldTypeSize = 0; 1667 } 1668 1669 // Update the size. 1670 setSize(std::max(getSizeInBits(), getDataSizeInBits())); 1671 1672 // Remember max struct/class alignment. 1673 UpdateAlignment(Context.toCharUnitsFromBits(FieldAlign), 1674 Context.toCharUnitsFromBits(UnpackedFieldAlign)); 1675 } 1676 1677 void RecordLayoutBuilder::LayoutField(const FieldDecl *D) { 1678 if (D->isBitField()) { 1679 LayoutBitField(D); 1680 return; 1681 } 1682 1683 uint64_t UnpaddedFieldOffset = getDataSizeInBits() - UnfilledBitsInLastUnit; 1684 1685 // Reset the unfilled bits. 1686 UnfilledBitsInLastUnit = 0; 1687 LastBitfieldTypeSize = 0; 1688 1689 bool FieldPacked = Packed || D->hasAttr<PackedAttr>(); 1690 CharUnits FieldOffset = 1691 IsUnion ? CharUnits::Zero() : getDataSize(); 1692 CharUnits FieldSize; 1693 CharUnits FieldAlign; 1694 1695 if (D->getType()->isIncompleteArrayType()) { 1696 // This is a flexible array member; we can't directly 1697 // query getTypeInfo about these, so we figure it out here. 1698 // Flexible array members don't have any size, but they 1699 // have to be aligned appropriately for their element type. 1700 FieldSize = CharUnits::Zero(); 1701 const ArrayType* ATy = Context.getAsArrayType(D->getType()); 1702 FieldAlign = Context.getTypeAlignInChars(ATy->getElementType()); 1703 } else if (const ReferenceType *RT = D->getType()->getAs<ReferenceType>()) { 1704 unsigned AS = RT->getPointeeType().getAddressSpace(); 1705 FieldSize = 1706 Context.toCharUnitsFromBits(Context.getTargetInfo().getPointerWidth(AS)); 1707 FieldAlign = 1708 Context.toCharUnitsFromBits(Context.getTargetInfo().getPointerAlign(AS)); 1709 } else { 1710 std::pair<CharUnits, CharUnits> FieldInfo = 1711 Context.getTypeInfoInChars(D->getType()); 1712 FieldSize = FieldInfo.first; 1713 FieldAlign = FieldInfo.second; 1714 1715 if (IsMsStruct) { 1716 // If MS bitfield layout is required, figure out what type is being 1717 // laid out and align the field to the width of that type. 1718 1719 // Resolve all typedefs down to their base type and round up the field 1720 // alignment if necessary. 1721 QualType T = Context.getBaseElementType(D->getType()); 1722 if (const BuiltinType *BTy = T->getAs<BuiltinType>()) { 1723 CharUnits TypeSize = Context.getTypeSizeInChars(BTy); 1724 if (TypeSize > FieldAlign) 1725 FieldAlign = TypeSize; 1726 } 1727 } 1728 } 1729 1730 // The align if the field is not packed. This is to check if the attribute 1731 // was unnecessary (-Wpacked). 1732 CharUnits UnpackedFieldAlign = FieldAlign; 1733 CharUnits UnpackedFieldOffset = FieldOffset; 1734 1735 if (FieldPacked) 1736 FieldAlign = CharUnits::One(); 1737 CharUnits MaxAlignmentInChars = 1738 Context.toCharUnitsFromBits(D->getMaxAlignment()); 1739 FieldAlign = std::max(FieldAlign, MaxAlignmentInChars); 1740 UnpackedFieldAlign = std::max(UnpackedFieldAlign, MaxAlignmentInChars); 1741 1742 // The maximum field alignment overrides the aligned attribute. 1743 if (!MaxFieldAlignment.isZero()) { 1744 FieldAlign = std::min(FieldAlign, MaxFieldAlignment); 1745 UnpackedFieldAlign = std::min(UnpackedFieldAlign, MaxFieldAlignment); 1746 } 1747 1748 // Round up the current record size to the field's alignment boundary. 1749 FieldOffset = FieldOffset.RoundUpToAlignment(FieldAlign); 1750 UnpackedFieldOffset = 1751 UnpackedFieldOffset.RoundUpToAlignment(UnpackedFieldAlign); 1752 1753 if (ExternalLayout) { 1754 FieldOffset = Context.toCharUnitsFromBits( 1755 updateExternalFieldOffset(D, Context.toBits(FieldOffset))); 1756 1757 if (!IsUnion && EmptySubobjects) { 1758 // Record the fact that we're placing a field at this offset. 1759 bool Allowed = EmptySubobjects->CanPlaceFieldAtOffset(D, FieldOffset); 1760 (void)Allowed; 1761 assert(Allowed && "Externally-placed field cannot be placed here"); 1762 } 1763 } else { 1764 if (!IsUnion && EmptySubobjects) { 1765 // Check if we can place the field at this offset. 1766 while (!EmptySubobjects->CanPlaceFieldAtOffset(D, FieldOffset)) { 1767 // We couldn't place the field at the offset. Try again at a new offset. 1768 FieldOffset += FieldAlign; 1769 } 1770 } 1771 } 1772 1773 // Place this field at the current location. 1774 FieldOffsets.push_back(Context.toBits(FieldOffset)); 1775 1776 if (!ExternalLayout) 1777 CheckFieldPadding(Context.toBits(FieldOffset), UnpaddedFieldOffset, 1778 Context.toBits(UnpackedFieldOffset), 1779 Context.toBits(UnpackedFieldAlign), FieldPacked, D); 1780 1781 // Reserve space for this field. 1782 uint64_t FieldSizeInBits = Context.toBits(FieldSize); 1783 if (IsUnion) 1784 setDataSize(std::max(getDataSizeInBits(), FieldSizeInBits)); 1785 else 1786 setDataSize(FieldOffset + FieldSize); 1787 1788 // Update the size. 1789 setSize(std::max(getSizeInBits(), getDataSizeInBits())); 1790 1791 // Remember max struct/class alignment. 1792 UpdateAlignment(FieldAlign, UnpackedFieldAlign); 1793 } 1794 1795 void RecordLayoutBuilder::FinishLayout(const NamedDecl *D) { 1796 // In C++, records cannot be of size 0. 1797 if (Context.getLangOpts().CPlusPlus && getSizeInBits() == 0) { 1798 if (const CXXRecordDecl *RD = dyn_cast<CXXRecordDecl>(D)) { 1799 // Compatibility with gcc requires a class (pod or non-pod) 1800 // which is not empty but of size 0; such as having fields of 1801 // array of zero-length, remains of Size 0 1802 if (RD->isEmpty()) 1803 setSize(CharUnits::One()); 1804 } 1805 else 1806 setSize(CharUnits::One()); 1807 } 1808 1809 // Finally, round the size of the record up to the alignment of the 1810 // record itself. 1811 uint64_t UnpaddedSize = getSizeInBits() - UnfilledBitsInLastUnit; 1812 uint64_t UnpackedSizeInBits = 1813 llvm::RoundUpToAlignment(getSizeInBits(), 1814 Context.toBits(UnpackedAlignment)); 1815 CharUnits UnpackedSize = Context.toCharUnitsFromBits(UnpackedSizeInBits); 1816 uint64_t RoundedSize 1817 = llvm::RoundUpToAlignment(getSizeInBits(), Context.toBits(Alignment)); 1818 1819 if (ExternalLayout) { 1820 // If we're inferring alignment, and the external size is smaller than 1821 // our size after we've rounded up to alignment, conservatively set the 1822 // alignment to 1. 1823 if (InferAlignment && ExternalSize < RoundedSize) { 1824 Alignment = CharUnits::One(); 1825 InferAlignment = false; 1826 } 1827 setSize(ExternalSize); 1828 return; 1829 } 1830 1831 // Set the size to the final size. 1832 setSize(RoundedSize); 1833 1834 unsigned CharBitNum = Context.getTargetInfo().getCharWidth(); 1835 if (const RecordDecl *RD = dyn_cast<RecordDecl>(D)) { 1836 // Warn if padding was introduced to the struct/class/union. 1837 if (getSizeInBits() > UnpaddedSize) { 1838 unsigned PadSize = getSizeInBits() - UnpaddedSize; 1839 bool InBits = true; 1840 if (PadSize % CharBitNum == 0) { 1841 PadSize = PadSize / CharBitNum; 1842 InBits = false; 1843 } 1844 Diag(RD->getLocation(), diag::warn_padded_struct_size) 1845 << Context.getTypeDeclType(RD) 1846 << PadSize 1847 << (InBits ? 1 : 0) /*(byte|bit)*/ << (PadSize > 1); // plural or not 1848 } 1849 1850 // Warn if we packed it unnecessarily. If the alignment is 1 byte don't 1851 // bother since there won't be alignment issues. 1852 if (Packed && UnpackedAlignment > CharUnits::One() && 1853 getSize() == UnpackedSize) 1854 Diag(D->getLocation(), diag::warn_unnecessary_packed) 1855 << Context.getTypeDeclType(RD); 1856 } 1857 } 1858 1859 void RecordLayoutBuilder::UpdateAlignment(CharUnits NewAlignment, 1860 CharUnits UnpackedNewAlignment) { 1861 // The alignment is not modified when using 'mac68k' alignment or when 1862 // we have an externally-supplied layout that also provides overall alignment. 1863 if (IsMac68kAlign || (ExternalLayout && !InferAlignment)) 1864 return; 1865 1866 if (NewAlignment > Alignment) { 1867 assert(llvm::isPowerOf2_32(NewAlignment.getQuantity() && 1868 "Alignment not a power of 2")); 1869 Alignment = NewAlignment; 1870 } 1871 1872 if (UnpackedNewAlignment > UnpackedAlignment) { 1873 assert(llvm::isPowerOf2_32(UnpackedNewAlignment.getQuantity() && 1874 "Alignment not a power of 2")); 1875 UnpackedAlignment = UnpackedNewAlignment; 1876 } 1877 } 1878 1879 uint64_t 1880 RecordLayoutBuilder::updateExternalFieldOffset(const FieldDecl *Field, 1881 uint64_t ComputedOffset) { 1882 assert(ExternalFieldOffsets.find(Field) != ExternalFieldOffsets.end() && 1883 "Field does not have an external offset"); 1884 1885 uint64_t ExternalFieldOffset = ExternalFieldOffsets[Field]; 1886 1887 if (InferAlignment && ExternalFieldOffset < ComputedOffset) { 1888 // The externally-supplied field offset is before the field offset we 1889 // computed. Assume that the structure is packed. 1890 Alignment = CharUnits::One(); 1891 InferAlignment = false; 1892 } 1893 1894 // Use the externally-supplied field offset. 1895 return ExternalFieldOffset; 1896 } 1897 1898 /// \brief Get diagnostic %select index for tag kind for 1899 /// field padding diagnostic message. 1900 /// WARNING: Indexes apply to particular diagnostics only! 1901 /// 1902 /// \returns diagnostic %select index. 1903 static unsigned getPaddingDiagFromTagKind(TagTypeKind Tag) { 1904 switch (Tag) { 1905 case TTK_Struct: return 0; 1906 case TTK_Interface: return 1; 1907 case TTK_Class: return 2; 1908 default: llvm_unreachable("Invalid tag kind for field padding diagnostic!"); 1909 } 1910 } 1911 1912 void RecordLayoutBuilder::CheckFieldPadding(uint64_t Offset, 1913 uint64_t UnpaddedOffset, 1914 uint64_t UnpackedOffset, 1915 unsigned UnpackedAlign, 1916 bool isPacked, 1917 const FieldDecl *D) { 1918 // We let objc ivars without warning, objc interfaces generally are not used 1919 // for padding tricks. 1920 if (isa<ObjCIvarDecl>(D)) 1921 return; 1922 1923 // Don't warn about structs created without a SourceLocation. This can 1924 // be done by clients of the AST, such as codegen. 1925 if (D->getLocation().isInvalid()) 1926 return; 1927 1928 unsigned CharBitNum = Context.getTargetInfo().getCharWidth(); 1929 1930 // Warn if padding was introduced to the struct/class. 1931 if (!IsUnion && Offset > UnpaddedOffset) { 1932 unsigned PadSize = Offset - UnpaddedOffset; 1933 bool InBits = true; 1934 if (PadSize % CharBitNum == 0) { 1935 PadSize = PadSize / CharBitNum; 1936 InBits = false; 1937 } 1938 if (D->getIdentifier()) 1939 Diag(D->getLocation(), diag::warn_padded_struct_field) 1940 << getPaddingDiagFromTagKind(D->getParent()->getTagKind()) 1941 << Context.getTypeDeclType(D->getParent()) 1942 << PadSize 1943 << (InBits ? 1 : 0) /*(byte|bit)*/ << (PadSize > 1) // plural or not 1944 << D->getIdentifier(); 1945 else 1946 Diag(D->getLocation(), diag::warn_padded_struct_anon_field) 1947 << getPaddingDiagFromTagKind(D->getParent()->getTagKind()) 1948 << Context.getTypeDeclType(D->getParent()) 1949 << PadSize 1950 << (InBits ? 1 : 0) /*(byte|bit)*/ << (PadSize > 1); // plural or not 1951 } 1952 1953 // Warn if we packed it unnecessarily. If the alignment is 1 byte don't 1954 // bother since there won't be alignment issues. 1955 if (isPacked && UnpackedAlign > CharBitNum && Offset == UnpackedOffset) 1956 Diag(D->getLocation(), diag::warn_unnecessary_packed) 1957 << D->getIdentifier(); 1958 } 1959 1960 static const CXXMethodDecl *computeKeyFunction(ASTContext &Context, 1961 const CXXRecordDecl *RD) { 1962 // If a class isn't polymorphic it doesn't have a key function. 1963 if (!RD->isPolymorphic()) 1964 return 0; 1965 1966 // A class that is not externally visible doesn't have a key function. (Or 1967 // at least, there's no point to assigning a key function to such a class; 1968 // this doesn't affect the ABI.) 1969 if (!RD->isExternallyVisible()) 1970 return 0; 1971 1972 // Template instantiations don't have key functions,see Itanium C++ ABI 5.2.6. 1973 // Same behavior as GCC. 1974 TemplateSpecializationKind TSK = RD->getTemplateSpecializationKind(); 1975 if (TSK == TSK_ImplicitInstantiation || 1976 TSK == TSK_ExplicitInstantiationDefinition) 1977 return 0; 1978 1979 bool allowInlineFunctions = 1980 Context.getTargetInfo().getCXXABI().canKeyFunctionBeInline(); 1981 1982 for (CXXRecordDecl::method_iterator I = RD->method_begin(), 1983 E = RD->method_end(); I != E; ++I) { 1984 const CXXMethodDecl *MD = *I; 1985 1986 if (!MD->isVirtual()) 1987 continue; 1988 1989 if (MD->isPure()) 1990 continue; 1991 1992 // Ignore implicit member functions, they are always marked as inline, but 1993 // they don't have a body until they're defined. 1994 if (MD->isImplicit()) 1995 continue; 1996 1997 if (MD->isInlineSpecified()) 1998 continue; 1999 2000 if (MD->hasInlineBody()) 2001 continue; 2002 2003 // Ignore inline deleted or defaulted functions. 2004 if (!MD->isUserProvided()) 2005 continue; 2006 2007 // In certain ABIs, ignore functions with out-of-line inline definitions. 2008 if (!allowInlineFunctions) { 2009 const FunctionDecl *Def; 2010 if (MD->hasBody(Def) && Def->isInlineSpecified()) 2011 continue; 2012 } 2013 2014 // We found it. 2015 return MD; 2016 } 2017 2018 return 0; 2019 } 2020 2021 DiagnosticBuilder 2022 RecordLayoutBuilder::Diag(SourceLocation Loc, unsigned DiagID) { 2023 return Context.getDiagnostics().Report(Loc, DiagID); 2024 } 2025 2026 /// Does the target C++ ABI require us to skip over the tail-padding 2027 /// of the given class (considering it as a base class) when allocating 2028 /// objects? 2029 static bool mustSkipTailPadding(TargetCXXABI ABI, const CXXRecordDecl *RD) { 2030 switch (ABI.getTailPaddingUseRules()) { 2031 case TargetCXXABI::AlwaysUseTailPadding: 2032 return false; 2033 2034 case TargetCXXABI::UseTailPaddingUnlessPOD03: 2035 // FIXME: To the extent that this is meant to cover the Itanium ABI 2036 // rules, we should implement the restrictions about over-sized 2037 // bitfields: 2038 // 2039 // http://mentorembedded.github.com/cxx-abi/abi.html#POD : 2040 // In general, a type is considered a POD for the purposes of 2041 // layout if it is a POD type (in the sense of ISO C++ 2042 // [basic.types]). However, a POD-struct or POD-union (in the 2043 // sense of ISO C++ [class]) with a bitfield member whose 2044 // declared width is wider than the declared type of the 2045 // bitfield is not a POD for the purpose of layout. Similarly, 2046 // an array type is not a POD for the purpose of layout if the 2047 // element type of the array is not a POD for the purpose of 2048 // layout. 2049 // 2050 // Where references to the ISO C++ are made in this paragraph, 2051 // the Technical Corrigendum 1 version of the standard is 2052 // intended. 2053 return RD->isPOD(); 2054 2055 case TargetCXXABI::UseTailPaddingUnlessPOD11: 2056 // This is equivalent to RD->getTypeForDecl().isCXX11PODType(), 2057 // but with a lot of abstraction penalty stripped off. This does 2058 // assume that these properties are set correctly even in C++98 2059 // mode; fortunately, that is true because we want to assign 2060 // consistently semantics to the type-traits intrinsics (or at 2061 // least as many of them as possible). 2062 return RD->isTrivial() && RD->isStandardLayout(); 2063 } 2064 2065 llvm_unreachable("bad tail-padding use kind"); 2066 } 2067 2068 static bool isMsLayout(const RecordDecl* D) { 2069 return D->getASTContext().getTargetInfo().getCXXABI().isMicrosoft(); 2070 } 2071 2072 // This section contains an implementation of struct layout that is, up to the 2073 // included tests, compatible with cl.exe (2012). The layout produced is 2074 // significantly different than those produced by the Itanium ABI. Here we note 2075 // the most important differences. 2076 // 2077 // * The alignment of bitfields in unions is ignored when computing the 2078 // alignment of the union. 2079 // * The existence of zero-width bitfield that occurs after anything other than 2080 // a non-zero length bitfield is ignored. 2081 // * The Itanium equivalent vtable pointers are split into a vfptr (virtual 2082 // function pointer) and a vbptr (virtual base pointer). They can each be 2083 // shared with a, non-virtual bases. These bases need not be the same. vfptrs 2084 // always occur at offset 0. vbptrs can occur at an 2085 // arbitrary offset and are placed after non-virtual bases but before fields. 2086 // * Virtual bases sometimes require a 'vtordisp' field that is laid out before 2087 // the virtual base and is used in conjunction with virtual overrides during 2088 // construction and destruction. 2089 // * vfptrs are allocated in a block of memory equal to the alignment of the 2090 // fields and non-virtual bases at offset 0 in 32 bit mode and in a pointer 2091 // sized block of memory in 64 bit mode. 2092 // * vbptrs are allocated in a block of memory equal to the alignment of the 2093 // fields and non-virtual bases. This block is at a potentially unaligned 2094 // offset. If the allocation slot is unaligned and the alignment is less than 2095 // or equal to the pointer size, additional space is allocated so that the 2096 // pointer can be aligned properly. This causes very strange effects on the 2097 // placement of objects after the allocated block. (see the code). 2098 // * vtordisps are allocated in a block of memory with size and alignment equal 2099 // to the alignment of the completed structure (before applying __declspec( 2100 // align())). The vtordisp always occur at the end of the allocation block, 2101 // immediately prior to the virtual base. 2102 // * The last zero sized non-virtual base is allocated after the placement of 2103 // vbptr if one exists and can be placed at the end of the struct, potentially 2104 // aliasing either the first member or another struct allocated after this 2105 // one. 2106 // * The last zero size virtual base may be placed at the end of the struct. 2107 // and can potentially alias a zero sized type in the next struct. 2108 // * If the last field is a non-zero length bitfield, all virtual bases will 2109 // have extra padding added before them for no obvious reason. The padding 2110 // has the same number of bits as the type of the bitfield. 2111 // * When laying out empty non-virtual bases, an extra byte of padding is added 2112 // if the non-virtual base before the empty non-virtual base has a vbptr. 2113 // * The ABI attempts to avoid aliasing of zero sized bases by adding padding 2114 // between bases or vbases with specific properties. The criteria for 2115 // additional padding between two bases is that the first base is zero sized 2116 // or has a zero sized subobject and the second base is zero sized or leads 2117 // with a zero sized base (sharing of vfptrs can reorder the layout of the 2118 // so the leading base is not always the first one declared). The padding 2119 // added for bases is 1 byte. The padding added for vbases depends on the 2120 // alignment of the object but is at least 4 bytes (in both 32 and 64 bit 2121 // modes). 2122 // * There is no concept of non-virtual alignment or any distinction between 2123 // data size and non-virtual size. 2124 // * __declspec(align) on bitfields has the effect of changing the bitfield's 2125 // alignment instead of its required alignment. This has implications on how 2126 // it interacts with pragam pack. 2127 2128 namespace { 2129 struct MicrosoftRecordLayoutBuilder { 2130 struct ElementInfo { 2131 CharUnits Size; 2132 CharUnits Alignment; 2133 }; 2134 typedef llvm::DenseMap<const CXXRecordDecl *, CharUnits> BaseOffsetsMapTy; 2135 MicrosoftRecordLayoutBuilder(const ASTContext &Context) : Context(Context) {} 2136 private: 2137 MicrosoftRecordLayoutBuilder(const MicrosoftRecordLayoutBuilder &) 2138 LLVM_DELETED_FUNCTION; 2139 void operator=(const MicrosoftRecordLayoutBuilder &) LLVM_DELETED_FUNCTION; 2140 public: 2141 void layout(const RecordDecl *RD); 2142 void cxxLayout(const CXXRecordDecl *RD); 2143 /// \brief Initializes size and alignment and honors some flags. 2144 void initializeLayout(const RecordDecl *RD); 2145 /// \brief Initialized C++ layout, compute alignment and virtual alignment and 2146 /// existence of vfptrs and vbptrs. Alignment is needed before the vfptr is 2147 /// laid out. 2148 void initializeCXXLayout(const CXXRecordDecl *RD); 2149 void layoutNonVirtualBases(const CXXRecordDecl *RD); 2150 void layoutNonVirtualBase(const CXXRecordDecl *BaseDecl, 2151 const ASTRecordLayout &BaseLayout, 2152 const ASTRecordLayout *&PreviousBaseLayout); 2153 void injectVFPtr(const CXXRecordDecl *RD); 2154 void injectVBPtr(const CXXRecordDecl *RD); 2155 void injectVPtrs(const CXXRecordDecl *RD); 2156 /// \brief Lays out the fields of the record. Also rounds size up to 2157 /// alignment. 2158 void layoutFields(const RecordDecl *RD); 2159 void layoutField(const FieldDecl *FD); 2160 void layoutBitField(const FieldDecl *FD); 2161 /// \brief Lays out a single zero-width bit-field in the record and handles 2162 /// special cases associated with zero-width bit-fields. 2163 void layoutZeroWidthBitField(const FieldDecl *FD); 2164 void layoutVirtualBases(const CXXRecordDecl *RD); 2165 void finalizeLayout(const RecordDecl *RD); 2166 /// \brief Gets the size and alignment of a base taking pragma pack and 2167 /// __declspec(align) into account. 2168 ElementInfo getAdjustedElementInfo(const ASTRecordLayout &Layout); 2169 /// \brief Gets the size and alignment of a field taking pragma pack and 2170 /// __declspec(align) into account. It also updates RequiredAlignment as a 2171 /// side effect because it is most convenient to do so here. 2172 ElementInfo getAdjustedElementInfo(const FieldDecl *FD); 2173 /// \brief Places a field at an offset in CharUnits. 2174 void placeFieldAtOffset(CharUnits FieldOffset) { 2175 FieldOffsets.push_back(Context.toBits(FieldOffset)); 2176 } 2177 /// \brief Places a bitfield at a bit offset. 2178 void placeFieldAtBitOffset(uint64_t FieldOffset) { 2179 FieldOffsets.push_back(FieldOffset); 2180 } 2181 /// \brief Compute the set of virtual bases for which vtordisps are required. 2182 llvm::SmallPtrSet<const CXXRecordDecl *, 2> 2183 computeVtorDispSet(const CXXRecordDecl *RD); 2184 const ASTContext &Context; 2185 /// \brief The size of the record being laid out. 2186 CharUnits Size; 2187 /// \brief The data alignment of the record layout. 2188 CharUnits DataSize; 2189 /// \brief The current alignment of the record layout. 2190 CharUnits Alignment; 2191 /// \brief The maximum allowed field alignment. This is set by #pragma pack. 2192 CharUnits MaxFieldAlignment; 2193 /// \brief The alignment that this record must obey. This is imposed by 2194 /// __declspec(align()) on the record itself or one of its fields or bases. 2195 CharUnits RequiredAlignment; 2196 /// \brief The size of the allocation of the currently active bitfield. 2197 /// This value isn't meaningful unless LastFieldIsNonZeroWidthBitfield 2198 /// is true. 2199 CharUnits CurrentBitfieldSize; 2200 /// \brief Offset to the virtual base table pointer (if one exists). 2201 CharUnits VBPtrOffset; 2202 /// \brief The size and alignment info of a pointer. 2203 ElementInfo PointerInfo; 2204 /// \brief The primary base class (if one exists). 2205 const CXXRecordDecl *PrimaryBase; 2206 /// \brief The class we share our vb-pointer with. 2207 const CXXRecordDecl *SharedVBPtrBase; 2208 /// \brief The collection of field offsets. 2209 SmallVector<uint64_t, 16> FieldOffsets; 2210 /// \brief Base classes and their offsets in the record. 2211 BaseOffsetsMapTy Bases; 2212 /// \brief virtual base classes and their offsets in the record. 2213 ASTRecordLayout::VBaseOffsetsMapTy VBases; 2214 /// \brief The number of remaining bits in our last bitfield allocation. 2215 /// This value isn't meaningful unless LastFieldIsNonZeroWidthBitfield is 2216 /// true. 2217 unsigned RemainingBitsInField; 2218 bool IsUnion : 1; 2219 /// \brief True if the last field laid out was a bitfield and was not 0 2220 /// width. 2221 bool LastFieldIsNonZeroWidthBitfield : 1; 2222 /// \brief True if the class has its own vftable pointer. 2223 bool HasOwnVFPtr : 1; 2224 /// \brief True if the class has a vbtable pointer. 2225 bool HasVBPtr : 1; 2226 /// \brief Lets us know if we're in 64-bit mode 2227 bool Is64BitMode : 1; 2228 /// \brief True if this class contains a zero sized member or base or a base 2229 /// with a zero sized member or base. Only used for MS-ABI. 2230 bool HasZeroSizedSubObject : 1; 2231 /// \brief True if this class is zero sized or first base is zero sized or 2232 /// has this property. Only used for MS-ABI. 2233 bool LeadsWithZeroSizedBase : 1; 2234 }; 2235 } // namespace 2236 2237 MicrosoftRecordLayoutBuilder::ElementInfo 2238 MicrosoftRecordLayoutBuilder::getAdjustedElementInfo( 2239 const ASTRecordLayout &Layout) { 2240 ElementInfo Info; 2241 Info.Alignment = Layout.getAlignment(); 2242 // Respect pragma pack. 2243 if (!MaxFieldAlignment.isZero()) 2244 Info.Alignment = std::min(Info.Alignment, MaxFieldAlignment); 2245 // Track zero-sized subobjects here where it's already available. 2246 if (Layout.hasZeroSizedSubObject()) 2247 HasZeroSizedSubObject = true; 2248 // Respect required alignment, this is necessary because we may have adjusted 2249 // the alignment in the case of pragam pack. Note that the required alignment 2250 // doesn't actually apply to the struct alignment at this point. 2251 Alignment = std::max(Alignment, Info.Alignment); 2252 Info.Alignment = std::max(Info.Alignment, Layout.getRequiredAlignment()); 2253 Info.Size = Layout.getDataSize(); 2254 return Info; 2255 } 2256 2257 MicrosoftRecordLayoutBuilder::ElementInfo 2258 MicrosoftRecordLayoutBuilder::getAdjustedElementInfo( 2259 const FieldDecl *FD) { 2260 ElementInfo Info; 2261 // Respect align attributes. 2262 CharUnits FieldRequiredAlignment = 2263 Context.toCharUnitsFromBits(FD->getMaxAlignment()); 2264 // Respect attributes applied to subobjects of the field. 2265 if (const RecordType *RT = 2266 FD->getType()->getBaseElementTypeUnsafe()->getAs<RecordType>()) { 2267 const ASTRecordLayout &Layout = Context.getASTRecordLayout(RT->getDecl()); 2268 // Get the element info for a layout, respecting pack. 2269 Info = getAdjustedElementInfo(Layout); 2270 // Nomally getAdjustedElementInfo returns the non-virtual size, which is 2271 // correct for bases but not for fields. 2272 Info.Size = Context.getTypeInfoInChars(FD->getType()).first; 2273 // Capture required alignment as a side-effect. 2274 RequiredAlignment = std::max(RequiredAlignment, 2275 Layout.getRequiredAlignment()); 2276 } 2277 else { 2278 llvm::tie(Info.Size, Info.Alignment) = 2279 Context.getTypeInfoInChars(FD->getType()); 2280 if (FD->isBitField() && FD->getMaxAlignment() != 0) 2281 Info.Alignment = std::max(Info.Alignment, FieldRequiredAlignment); 2282 // Respect pragma pack. 2283 if (!MaxFieldAlignment.isZero()) 2284 Info.Alignment = std::min(Info.Alignment, MaxFieldAlignment); 2285 } 2286 // Respect packed field attribute. 2287 if (FD->hasAttr<PackedAttr>()) 2288 Info.Alignment = CharUnits::One(); 2289 // Take required alignment into account. __declspec(align) on bitfields 2290 // impacts the alignment rather than the required alignment. 2291 if (!FD->isBitField()) { 2292 Info.Alignment = std::max(Info.Alignment, FieldRequiredAlignment); 2293 // Capture required alignment as a side-effect. 2294 RequiredAlignment = std::max(RequiredAlignment, FieldRequiredAlignment); 2295 } 2296 // TODO: Add a Sema warning that MS ignores bitfield alignment in unions. 2297 if (!(FD->isBitField() && IsUnion)) { 2298 Alignment = std::max(Alignment, Info.Alignment); 2299 if (!MaxFieldAlignment.isZero()) 2300 Alignment = std::min(Alignment, MaxFieldAlignment); 2301 } 2302 return Info; 2303 } 2304 2305 void MicrosoftRecordLayoutBuilder::layout(const RecordDecl *RD) { 2306 initializeLayout(RD); 2307 layoutFields(RD); 2308 DataSize = Size = Size.RoundUpToAlignment(Alignment); 2309 RequiredAlignment = std::max( 2310 RequiredAlignment, Context.toCharUnitsFromBits(RD->getMaxAlignment())); 2311 finalizeLayout(RD); 2312 } 2313 2314 void MicrosoftRecordLayoutBuilder::cxxLayout(const CXXRecordDecl *RD) { 2315 initializeLayout(RD); 2316 initializeCXXLayout(RD); 2317 layoutNonVirtualBases(RD); 2318 layoutFields(RD); 2319 injectVPtrs(RD); 2320 DataSize = Size = Size.RoundUpToAlignment(Alignment); 2321 RequiredAlignment = std::max( 2322 RequiredAlignment, Context.toCharUnitsFromBits(RD->getMaxAlignment())); 2323 layoutVirtualBases(RD); 2324 finalizeLayout(RD); 2325 } 2326 2327 void MicrosoftRecordLayoutBuilder::initializeLayout(const RecordDecl *RD) { 2328 IsUnion = RD->isUnion(); 2329 Is64BitMode = Context.getTargetInfo().getPointerWidth(0) == 64; 2330 Size = CharUnits::Zero(); 2331 Alignment = CharUnits::One(); 2332 // In 64-bit mode we always perform an alignment step after laying out vbases. 2333 // In 32-bit mode we do not. The check to see if we need to perform alignment 2334 // checks the RequiredAlignment field and performs alignment if it isn't 0. 2335 RequiredAlignment = Is64BitMode ? CharUnits::One() : CharUnits::Zero(); 2336 // Compute the maximum field alignment. 2337 MaxFieldAlignment = CharUnits::Zero(); 2338 // Honor the default struct packing maximum alignment flag. 2339 if (unsigned DefaultMaxFieldAlignment = Context.getLangOpts().PackStruct) 2340 MaxFieldAlignment = CharUnits::fromQuantity(DefaultMaxFieldAlignment); 2341 // Honor the packing attribute. The MS-ABI ignores pragma pack if its larger 2342 // than the pointer size. 2343 if (const MaxFieldAlignmentAttr *MFAA = RD->getAttr<MaxFieldAlignmentAttr>()){ 2344 unsigned PackedAlignment = MFAA->getAlignment(); 2345 if (PackedAlignment <= Context.getTargetInfo().getPointerWidth(0)) 2346 MaxFieldAlignment = Context.toCharUnitsFromBits(PackedAlignment); 2347 } 2348 // Packed attribute forces max field alignment to be 1. 2349 if (RD->hasAttr<PackedAttr>()) 2350 MaxFieldAlignment = CharUnits::One(); 2351 } 2352 2353 void 2354 MicrosoftRecordLayoutBuilder::initializeCXXLayout(const CXXRecordDecl *RD) { 2355 HasZeroSizedSubObject = false; 2356 LeadsWithZeroSizedBase = false; 2357 HasOwnVFPtr = false; 2358 HasVBPtr = false; 2359 PrimaryBase = 0; 2360 SharedVBPtrBase = 0; 2361 // Calculate pointer size and alignment. These are used for vfptr and vbprt 2362 // injection. 2363 PointerInfo.Size = 2364 Context.toCharUnitsFromBits(Context.getTargetInfo().getPointerWidth(0)); 2365 PointerInfo.Alignment = PointerInfo.Size; 2366 // Respect pragma pack. 2367 if (!MaxFieldAlignment.isZero()) 2368 PointerInfo.Alignment = std::min(PointerInfo.Alignment, MaxFieldAlignment); 2369 } 2370 2371 void 2372 MicrosoftRecordLayoutBuilder::layoutNonVirtualBases(const CXXRecordDecl *RD) { 2373 // The MS-ABI lays out all bases that contain leading vfptrs before it lays 2374 // out any bases that do not contain vfptrs. We implement this as two passes 2375 // over the bases. This approach guarantees that the primary base is laid out 2376 // first. We use these passes to calculate some additional aggregated 2377 // information about the bases, such as reqruied alignment and the presence of 2378 // zero sized members. 2379 const ASTRecordLayout* PreviousBaseLayout = 0; 2380 // Iterate through the bases and lay out the non-virtual ones. 2381 for (CXXRecordDecl::base_class_const_iterator i = RD->bases_begin(), 2382 e = RD->bases_end(); 2383 i != e; ++i) { 2384 const CXXRecordDecl *BaseDecl = i->getType()->getAsCXXRecordDecl(); 2385 const ASTRecordLayout &BaseLayout = Context.getASTRecordLayout(BaseDecl); 2386 // Mark and skip virtual bases. 2387 if (i->isVirtual()) { 2388 HasVBPtr = true; 2389 continue; 2390 } 2391 // Track RequiredAlignment for all bases in this pass. 2392 RequiredAlignment = std::max(RequiredAlignment, 2393 BaseLayout.getRequiredAlignment()); 2394 // Check fo a base to share a VBPtr with. 2395 if (!SharedVBPtrBase && BaseLayout.hasVBPtr()) { 2396 SharedVBPtrBase = BaseDecl; 2397 HasVBPtr = true; 2398 } 2399 // Only lay out bases with extendable VFPtrs on the first pass. 2400 if (!BaseLayout.hasExtendableVFPtr()) 2401 continue; 2402 // If we don't have a primary base, this one qualifies. 2403 if (!PrimaryBase) { 2404 PrimaryBase = BaseDecl; 2405 LeadsWithZeroSizedBase = BaseLayout.leadsWithZeroSizedBase(); 2406 } 2407 // Lay out the base. 2408 layoutNonVirtualBase(BaseDecl, BaseLayout, PreviousBaseLayout); 2409 } 2410 // Figure out if we need a fresh VFPtr for this class. 2411 if (!PrimaryBase && RD->isDynamicClass()) 2412 for (CXXRecordDecl::method_iterator i = RD->method_begin(), 2413 e = RD->method_end(); 2414 !HasOwnVFPtr && i != e; ++i) 2415 HasOwnVFPtr = i->isVirtual() && i->size_overridden_methods() == 0; 2416 // If we don't have a primary base then we have a leading object that could 2417 // itself lead with a zero-sized object, something we track. 2418 bool CheckLeadingLayout = !PrimaryBase; 2419 // Iterate through the bases and lay out the non-virtual ones. 2420 for (CXXRecordDecl::base_class_const_iterator i = RD->bases_begin(), 2421 e = RD->bases_end(); 2422 i != e; ++i) { 2423 if (i->isVirtual()) 2424 continue; 2425 const CXXRecordDecl *BaseDecl = i->getType()->getAsCXXRecordDecl(); 2426 const ASTRecordLayout &BaseLayout = Context.getASTRecordLayout(BaseDecl); 2427 // Only lay out bases without extendable VFPtrs on the second pass. 2428 if (BaseLayout.hasExtendableVFPtr()) 2429 continue; 2430 // If this is the first layout, check to see if it leads with a zero sized 2431 // object. If it does, so do we. 2432 if (CheckLeadingLayout) { 2433 CheckLeadingLayout = false; 2434 LeadsWithZeroSizedBase = BaseLayout.leadsWithZeroSizedBase(); 2435 } 2436 // Lay out the base. 2437 layoutNonVirtualBase(BaseDecl, BaseLayout, PreviousBaseLayout); 2438 } 2439 // Set our VBPtroffset if we know it at this point. 2440 if (!HasVBPtr) 2441 VBPtrOffset = CharUnits::fromQuantity(-1); 2442 else if (SharedVBPtrBase) { 2443 const ASTRecordLayout &Layout = Context.getASTRecordLayout(SharedVBPtrBase); 2444 VBPtrOffset = Bases[SharedVBPtrBase] + Layout.getVBPtrOffset(); 2445 } 2446 } 2447 2448 void MicrosoftRecordLayoutBuilder::layoutNonVirtualBase( 2449 const CXXRecordDecl *BaseDecl, 2450 const ASTRecordLayout &BaseLayout, 2451 const ASTRecordLayout *&PreviousBaseLayout) { 2452 // Insert padding between two bases if the left first one is zero sized or 2453 // contains a zero sized subobject and the right is zero sized or one leads 2454 // with a zero sized base. 2455 if (PreviousBaseLayout && PreviousBaseLayout->hasZeroSizedSubObject() && 2456 BaseLayout.leadsWithZeroSizedBase()) 2457 Size++; 2458 ElementInfo Info = getAdjustedElementInfo(BaseLayout); 2459 CharUnits BaseOffset = Size.RoundUpToAlignment(Info.Alignment); 2460 Bases.insert(std::make_pair(BaseDecl, BaseOffset)); 2461 Size = BaseOffset + BaseLayout.getDataSize(); 2462 PreviousBaseLayout = &BaseLayout; 2463 VBPtrOffset = Size; 2464 } 2465 2466 void MicrosoftRecordLayoutBuilder::layoutFields(const RecordDecl *RD) { 2467 LastFieldIsNonZeroWidthBitfield = false; 2468 for (RecordDecl::field_iterator Field = RD->field_begin(), 2469 FieldEnd = RD->field_end(); 2470 Field != FieldEnd; ++Field) 2471 layoutField(*Field); 2472 } 2473 2474 void MicrosoftRecordLayoutBuilder::layoutField(const FieldDecl *FD) { 2475 if (FD->isBitField()) { 2476 layoutBitField(FD); 2477 return; 2478 } 2479 LastFieldIsNonZeroWidthBitfield = false; 2480 ElementInfo Info = getAdjustedElementInfo(FD); 2481 if (IsUnion) { 2482 placeFieldAtOffset(CharUnits::Zero()); 2483 Size = std::max(Size, Info.Size); 2484 } else { 2485 CharUnits FieldOffset = Size.RoundUpToAlignment(Info.Alignment); 2486 placeFieldAtOffset(FieldOffset); 2487 Size = FieldOffset + Info.Size; 2488 } 2489 } 2490 2491 void MicrosoftRecordLayoutBuilder::layoutBitField(const FieldDecl *FD) { 2492 unsigned Width = FD->getBitWidthValue(Context); 2493 if (Width == 0) { 2494 layoutZeroWidthBitField(FD); 2495 return; 2496 } 2497 ElementInfo Info = getAdjustedElementInfo(FD); 2498 // Clamp the bitfield to a containable size for the sake of being able 2499 // to lay them out. Sema will throw an error. 2500 if (Width > Context.toBits(Info.Size)) 2501 Width = Context.toBits(Info.Size); 2502 // Check to see if this bitfield fits into an existing allocation. Note: 2503 // MSVC refuses to pack bitfields of formal types with different sizes 2504 // into the same allocation. 2505 if (!IsUnion && LastFieldIsNonZeroWidthBitfield && 2506 CurrentBitfieldSize == Info.Size && Width <= RemainingBitsInField) { 2507 placeFieldAtBitOffset(Context.toBits(Size) - RemainingBitsInField); 2508 RemainingBitsInField -= Width; 2509 return; 2510 } 2511 LastFieldIsNonZeroWidthBitfield = true; 2512 CurrentBitfieldSize = Info.Size; 2513 if (IsUnion) { 2514 placeFieldAtOffset(CharUnits::Zero()); 2515 Size = std::max(Size, Info.Size); 2516 } else { 2517 // Allocate a new block of memory and place the bitfield in it. 2518 CharUnits FieldOffset = Size.RoundUpToAlignment(Info.Alignment); 2519 placeFieldAtOffset(FieldOffset); 2520 Size = FieldOffset + Info.Size; 2521 RemainingBitsInField = Context.toBits(Info.Size) - Width; 2522 } 2523 } 2524 2525 void 2526 MicrosoftRecordLayoutBuilder::layoutZeroWidthBitField(const FieldDecl *FD) { 2527 // Zero-width bitfields are ignored unless they follow a non-zero-width 2528 // bitfield. 2529 if (!LastFieldIsNonZeroWidthBitfield) { 2530 placeFieldAtOffset(IsUnion ? CharUnits::Zero() : Size); 2531 // TODO: Add a Sema warning that MS ignores alignment for zero 2532 // sized bitfields that occur after zero-size bitfields or non-bitfields. 2533 return; 2534 } 2535 LastFieldIsNonZeroWidthBitfield = false; 2536 ElementInfo Info = getAdjustedElementInfo(FD); 2537 if (IsUnion) { 2538 placeFieldAtOffset(CharUnits::Zero()); 2539 Size = std::max(Size, Info.Size); 2540 } else { 2541 // Round up the current record size to the field's alignment boundary. 2542 CharUnits FieldOffset = Size.RoundUpToAlignment(Info.Alignment); 2543 placeFieldAtOffset(FieldOffset); 2544 Size = FieldOffset; 2545 } 2546 } 2547 2548 void MicrosoftRecordLayoutBuilder::injectVBPtr(const CXXRecordDecl *RD) { 2549 if (!HasVBPtr || SharedVBPtrBase) 2550 return; 2551 // Inject the VBPointer at the injection site. 2552 CharUnits InjectionSite = VBPtrOffset; 2553 // But before we do, make sure it's properly aligned. 2554 VBPtrOffset = VBPtrOffset.RoundUpToAlignment(PointerInfo.Alignment); 2555 // Determine where the first field should be laid out after the vbptr. 2556 CharUnits FieldStart = VBPtrOffset + PointerInfo.Size; 2557 // Make sure that the amount we push the fields back by is a multiple of the 2558 // alignment. 2559 CharUnits Offset = (FieldStart - InjectionSite).RoundUpToAlignment( 2560 std::max(RequiredAlignment, Alignment)); 2561 // Increase the size of the object and push back all fields by the offset 2562 // amount. 2563 Size += Offset; 2564 for (SmallVector<uint64_t, 16>::iterator i = FieldOffsets.begin(), 2565 e = FieldOffsets.end(); 2566 i != e; ++i) 2567 *i += Context.toBits(Offset); 2568 for (BaseOffsetsMapTy::iterator i = Bases.begin(), e = Bases.end(); 2569 i != e; ++i) 2570 if (i->second >= InjectionSite) 2571 i->second += Offset; 2572 // The presence of a vbptr suppresses zero sized objects that are not in 2573 // virtual bases. 2574 HasZeroSizedSubObject = false; 2575 } 2576 2577 void MicrosoftRecordLayoutBuilder::injectVFPtr(const CXXRecordDecl *RD) { 2578 if (!HasOwnVFPtr) 2579 return; 2580 // Make sure that the amount we push the struct back by is a multiple of the 2581 // alignment. 2582 CharUnits Offset = PointerInfo.Size.RoundUpToAlignment( 2583 std::max(RequiredAlignment, Alignment)); 2584 // Increase the size of the object and push back all fields, the vbptr and all 2585 // bases by the offset amount. 2586 Size += Offset; 2587 for (SmallVectorImpl<uint64_t>::iterator i = FieldOffsets.begin(), 2588 e = FieldOffsets.end(); 2589 i != e; ++i) 2590 *i += Context.toBits(Offset); 2591 if (HasVBPtr) 2592 VBPtrOffset += Offset; 2593 for (BaseOffsetsMapTy::iterator i = Bases.begin(), e = Bases.end(); 2594 i != e; ++i) 2595 i->second += Offset; 2596 } 2597 2598 void MicrosoftRecordLayoutBuilder::injectVPtrs(const CXXRecordDecl *RD) { 2599 if (!(HasOwnVFPtr || (HasVBPtr && !SharedVBPtrBase))) 2600 return; 2601 if (!Is64BitMode || RequiredAlignment <= CharUnits::fromQuantity(8)) { 2602 // Note that the VBPtr is injected first. It depends on the alignment of 2603 // the object *before* the alignment is updated by inserting a pointer into 2604 // the record. 2605 injectVBPtr(RD); 2606 injectVFPtr(RD); 2607 Alignment = std::max(Alignment, PointerInfo.Alignment); 2608 return; 2609 } 2610 // In 64-bit mode, structs with RequiredAlignment greater than 8 get special 2611 // layout rules. Likely this is to avoid excessive padding intruced around 2612 // the vfptrs and vbptrs. The special rules involve re-laying out the struct 2613 // and inserting the vfptr and vbptr as if they were fields/bases. 2614 FieldOffsets.clear(); 2615 Bases.clear(); 2616 Size = CharUnits::Zero(); 2617 Alignment = std::max(Alignment, PointerInfo.Alignment); 2618 if (HasOwnVFPtr) 2619 Size = PointerInfo.Size; 2620 layoutNonVirtualBases(RD); 2621 if (HasVBPtr && !SharedVBPtrBase) { 2622 const CXXRecordDecl *PenultBaseDecl = 0; 2623 const CXXRecordDecl *LastBaseDecl = 0; 2624 // Iterate through the bases and find the last two non-virtual bases. 2625 for (CXXRecordDecl::base_class_const_iterator i = RD->bases_begin(), 2626 e = RD->bases_end(); 2627 i != e; ++i) { 2628 if (i->isVirtual()) 2629 continue; 2630 const CXXRecordDecl *BaseDecl = i->getType()->getAsCXXRecordDecl(); 2631 if (!LastBaseDecl || Bases[BaseDecl] > Bases[LastBaseDecl]) { 2632 PenultBaseDecl = LastBaseDecl; 2633 LastBaseDecl = BaseDecl; 2634 } 2635 } 2636 const ASTRecordLayout *PenultBaseLayout = PenultBaseDecl ? 2637 &Context.getASTRecordLayout(PenultBaseDecl) : 0; 2638 const ASTRecordLayout *LastBaseLayout = LastBaseDecl ? 2639 &Context.getASTRecordLayout(LastBaseDecl) : 0; 2640 // Calculate the vbptr offset. The rule is different than in the general 2641 // case layout. Particularly, if the last two non-virtual bases are both 2642 // zero sized, the site of the vbptr is *before* the padding that occurs 2643 // between the two zero sized bases and the vbptr potentially aliases with 2644 // the first of these two bases. We have no understanding of why this is 2645 // different from the general case layout but it may have to do with lazy 2646 // placement of zero sized bases. 2647 VBPtrOffset = Size; 2648 if (LastBaseLayout && LastBaseLayout->getDataSize().isZero()) { 2649 VBPtrOffset = Bases[LastBaseDecl]; 2650 if (PenultBaseLayout && PenultBaseLayout->getDataSize().isZero()) 2651 VBPtrOffset = Bases[PenultBaseDecl]; 2652 } 2653 // Once we've located a spot for the vbptr, place it. 2654 VBPtrOffset = VBPtrOffset.RoundUpToAlignment(PointerInfo.Alignment); 2655 Size = VBPtrOffset + PointerInfo.Size; 2656 if (LastBaseLayout && LastBaseLayout->getDataSize().isZero()) { 2657 // Add the padding between zero sized bases after the vbptr. 2658 if (PenultBaseLayout && PenultBaseLayout->getDataSize().isZero()) 2659 Size += CharUnits::One(); 2660 Size = Size.RoundUpToAlignment(LastBaseLayout->getRequiredAlignment()); 2661 Bases[LastBaseDecl] = Size; 2662 } 2663 } 2664 layoutFields(RD); 2665 // The presence of a vbptr suppresses zero sized objects that are not in 2666 // virtual bases. 2667 HasZeroSizedSubObject = false; 2668 } 2669 2670 void MicrosoftRecordLayoutBuilder::layoutVirtualBases(const CXXRecordDecl *RD) { 2671 if (!HasVBPtr) 2672 return; 2673 // Vtordisps are always 4 bytes (even in 64-bit mode) 2674 CharUnits VtorDispSize = CharUnits::fromQuantity(4); 2675 CharUnits VtorDispAlignment = VtorDispSize; 2676 // vtordisps respect pragma pack. 2677 if (!MaxFieldAlignment.isZero()) 2678 VtorDispAlignment = std::min(VtorDispAlignment, MaxFieldAlignment); 2679 // The alignment of the vtordisp is at least the required alignment of the 2680 // entire record. This requirement may be present to support vtordisp 2681 // injection. 2682 for (CXXRecordDecl::base_class_const_iterator i = RD->vbases_begin(), 2683 e = RD->vbases_end(); 2684 i != e; ++i) { 2685 const CXXRecordDecl *BaseDecl = i->getType()->getAsCXXRecordDecl(); 2686 const ASTRecordLayout &BaseLayout = Context.getASTRecordLayout(BaseDecl); 2687 RequiredAlignment = 2688 std::max(RequiredAlignment, BaseLayout.getRequiredAlignment()); 2689 } 2690 VtorDispAlignment = std::max(VtorDispAlignment, RequiredAlignment); 2691 // Compute the vtordisp set. 2692 llvm::SmallPtrSet<const CXXRecordDecl *, 2> HasVtordispSet = 2693 computeVtorDispSet(RD); 2694 // Iterate through the virtual bases and lay them out. 2695 const ASTRecordLayout* PreviousBaseLayout = 0; 2696 for (CXXRecordDecl::base_class_const_iterator i = RD->vbases_begin(), 2697 e = RD->vbases_end(); 2698 i != e; ++i) { 2699 const CXXRecordDecl *BaseDecl = i->getType()->getAsCXXRecordDecl(); 2700 const ASTRecordLayout &BaseLayout = Context.getASTRecordLayout(BaseDecl); 2701 bool HasVtordisp = HasVtordispSet.count(BaseDecl); 2702 // If the last field we laid out was a non-zero length bitfield then add 2703 // some extra padding for no obvious reason. 2704 if (LastFieldIsNonZeroWidthBitfield) 2705 Size += CurrentBitfieldSize; 2706 // Insert padding between two bases if the left first one is zero sized or 2707 // contains a zero sized subobject and the right is zero sized or one leads 2708 // with a zero sized base. The padding between virtual bases is 4 2709 // bytes (in both 32 and 64 bits modes) and always involves rounding up to 2710 // the required alignment, we don't know why. 2711 if (PreviousBaseLayout && PreviousBaseLayout->hasZeroSizedSubObject() && 2712 BaseLayout.leadsWithZeroSizedBase()) 2713 Size = Size.RoundUpToAlignment(VtorDispAlignment) + VtorDispSize; 2714 // Insert the vtordisp. 2715 if (HasVtordisp) 2716 Size = Size.RoundUpToAlignment(VtorDispAlignment) + VtorDispSize; 2717 // Insert the virtual base. 2718 ElementInfo Info = getAdjustedElementInfo(BaseLayout); 2719 CharUnits BaseOffset = Size.RoundUpToAlignment(Info.Alignment); 2720 VBases.insert(std::make_pair(BaseDecl, 2721 ASTRecordLayout::VBaseInfo(BaseOffset, HasVtordisp))); 2722 Size = BaseOffset + BaseLayout.getDataSize(); 2723 PreviousBaseLayout = &BaseLayout; 2724 } 2725 } 2726 2727 void MicrosoftRecordLayoutBuilder::finalizeLayout(const RecordDecl *RD) { 2728 // Respect required alignment. Note that in 32-bit mode Required alignment 2729 // may be 0 nad cause size not to be updated. 2730 if (!RequiredAlignment.isZero()) { 2731 Alignment = std::max(Alignment, RequiredAlignment); 2732 Size = Size.RoundUpToAlignment(Alignment); 2733 } 2734 // Zero-sized structures have size equal to their alignment. 2735 if (Size.isZero()) { 2736 HasZeroSizedSubObject = true; 2737 LeadsWithZeroSizedBase = true; 2738 Size = Alignment; 2739 } 2740 } 2741 2742 static bool 2743 RequiresVtordisp(const llvm::SmallPtrSet<const CXXRecordDecl *, 2> &HasVtordisp, 2744 const CXXRecordDecl *RD) { 2745 if (HasVtordisp.count(RD)) 2746 return true; 2747 // If any of a virtual bases non-virtual bases (recursively) requires a 2748 // vtordisp than so does this virtual base. 2749 for (CXXRecordDecl::base_class_const_iterator i = RD->bases_begin(), 2750 e = RD->bases_end(); 2751 i != e; ++i) 2752 if (!i->isVirtual() && 2753 RequiresVtordisp( 2754 HasVtordisp, 2755 cast<CXXRecordDecl>(i->getType()->getAs<RecordType>()->getDecl()))) 2756 return true; 2757 return false; 2758 } 2759 2760 llvm::SmallPtrSet<const CXXRecordDecl *, 2> 2761 MicrosoftRecordLayoutBuilder::computeVtorDispSet(const CXXRecordDecl *RD) { 2762 llvm::SmallPtrSet<const CXXRecordDecl *, 2> HasVtordispSet; 2763 2764 // /vd0 or #pragma vtordisp(0): Never use vtordisps when used as a vbase. 2765 if (RD->getMSVtorDispMode() == MSVtorDispAttr::Never) 2766 return HasVtordispSet; 2767 2768 // /vd2 or #pragma vtordisp(2): Always use vtordisps for virtual bases with 2769 // vftables. 2770 if (RD->getMSVtorDispMode() == MSVtorDispAttr::ForVFTable) { 2771 for (CXXRecordDecl::base_class_const_iterator I = RD->vbases_begin(), 2772 E = RD->vbases_end(); 2773 I != E; ++I) { 2774 const CXXRecordDecl *BaseDecl = I->getType()->getAsCXXRecordDecl(); 2775 const ASTRecordLayout &Layout = Context.getASTRecordLayout(BaseDecl); 2776 if (Layout.hasExtendableVFPtr()) 2777 HasVtordispSet.insert(BaseDecl); 2778 } 2779 return HasVtordispSet; 2780 } 2781 2782 // /vd1 or #pragma vtordisp(1): Try to guess based on whether we think it's 2783 // possible for a partially constructed object with virtual base overrides to 2784 // escape a non-trivial constructor. 2785 assert(RD->getMSVtorDispMode() == MSVtorDispAttr::ForVBaseOverride); 2786 2787 // If any of our bases need a vtordisp for this type, so do we. Check our 2788 // direct bases for vtordisp requirements. 2789 for (CXXRecordDecl::base_class_const_iterator i = RD->bases_begin(), 2790 e = RD->bases_end(); 2791 i != e; ++i) { 2792 const CXXRecordDecl *BaseDecl = 2793 cast<CXXRecordDecl>(i->getType()->getAs<RecordType>()->getDecl()); 2794 const ASTRecordLayout &Layout = Context.getASTRecordLayout(BaseDecl); 2795 for (ASTRecordLayout::VBaseOffsetsMapTy::const_iterator 2796 bi = Layout.getVBaseOffsetsMap().begin(), 2797 be = Layout.getVBaseOffsetsMap().end(); 2798 bi != be; ++bi) 2799 if (bi->second.hasVtorDisp()) 2800 HasVtordispSet.insert(bi->first); 2801 } 2802 // If we define a constructor or destructor and override a function that is 2803 // defined in a virtual base's vtable, that virtual bases need a vtordisp. 2804 // Here we collect a list of classes with vtables for which our virtual bases 2805 // actually live. The virtual bases with this property will require 2806 // vtordisps. In addition, virtual bases that contain non-virtual bases that 2807 // define functions we override also require vtordisps, this case is checked 2808 // explicitly below. 2809 if (RD->hasUserDeclaredConstructor() || RD->hasUserDeclaredDestructor()) { 2810 llvm::SmallPtrSet<const CXXMethodDecl *, 8> Work; 2811 // Seed the working set with our non-destructor virtual methods. 2812 for (CXXRecordDecl::method_iterator i = RD->method_begin(), 2813 e = RD->method_end(); 2814 i != e; ++i) 2815 if ((*i)->isVirtual() && !isa<CXXDestructorDecl>(*i)) 2816 Work.insert(*i); 2817 while (!Work.empty()) { 2818 const CXXMethodDecl *MD = *Work.begin(); 2819 CXXMethodDecl::method_iterator i = MD->begin_overridden_methods(), 2820 e = MD->end_overridden_methods(); 2821 if (i == e) 2822 // If a virtual method has no-overrides it lives in its parent's vtable. 2823 HasVtordispSet.insert(MD->getParent()); 2824 else 2825 Work.insert(i, e); 2826 // We've finished processing this element, remove it from the working set. 2827 Work.erase(MD); 2828 } 2829 } 2830 // Re-check all of our vbases for vtordisp requirements (in case their 2831 // non-virtual bases have vtordisp requirements). 2832 for (CXXRecordDecl::base_class_const_iterator i = RD->vbases_begin(), 2833 e = RD->vbases_end(); 2834 i != e; ++i) { 2835 const CXXRecordDecl *BaseDecl = i->getType()->getAsCXXRecordDecl(); 2836 if (!HasVtordispSet.count(BaseDecl) && 2837 RequiresVtordisp(HasVtordispSet, BaseDecl)) 2838 HasVtordispSet.insert(BaseDecl); 2839 } 2840 return HasVtordispSet; 2841 } 2842 2843 /// \brief Get or compute information about the layout of the specified record 2844 /// (struct/union/class), which indicates its size and field position 2845 /// information. 2846 const ASTRecordLayout * 2847 ASTContext::BuildMicrosoftASTRecordLayout(const RecordDecl *D) const { 2848 MicrosoftRecordLayoutBuilder Builder(*this); 2849 if (const CXXRecordDecl *RD = dyn_cast<CXXRecordDecl>(D)) { 2850 Builder.cxxLayout(RD); 2851 return new (*this) ASTRecordLayout( 2852 *this, Builder.Size, Builder.Alignment, Builder.RequiredAlignment, 2853 Builder.HasOwnVFPtr, 2854 Builder.HasOwnVFPtr || Builder.PrimaryBase, 2855 Builder.VBPtrOffset, Builder.DataSize, Builder.FieldOffsets.data(), 2856 Builder.FieldOffsets.size(), Builder.DataSize, 2857 Builder.Alignment, CharUnits::Zero(), Builder.PrimaryBase, 2858 false, Builder.SharedVBPtrBase, 2859 Builder.HasZeroSizedSubObject, Builder.LeadsWithZeroSizedBase, 2860 Builder.Bases, Builder.VBases); 2861 } else { 2862 Builder.layout(D); 2863 return new (*this) ASTRecordLayout( 2864 *this, Builder.Size, Builder.Alignment, Builder.RequiredAlignment, 2865 Builder.Size, Builder.FieldOffsets.data(), Builder.FieldOffsets.size()); 2866 } 2867 } 2868 2869 /// getASTRecordLayout - Get or compute information about the layout of the 2870 /// specified record (struct/union/class), which indicates its size and field 2871 /// position information. 2872 const ASTRecordLayout & 2873 ASTContext::getASTRecordLayout(const RecordDecl *D) const { 2874 // These asserts test different things. A record has a definition 2875 // as soon as we begin to parse the definition. That definition is 2876 // not a complete definition (which is what isDefinition() tests) 2877 // until we *finish* parsing the definition. 2878 2879 if (D->hasExternalLexicalStorage() && !D->getDefinition()) 2880 getExternalSource()->CompleteType(const_cast<RecordDecl*>(D)); 2881 2882 D = D->getDefinition(); 2883 assert(D && "Cannot get layout of forward declarations!"); 2884 assert(!D->isInvalidDecl() && "Cannot get layout of invalid decl!"); 2885 assert(D->isCompleteDefinition() && "Cannot layout type before complete!"); 2886 2887 // Look up this layout, if already laid out, return what we have. 2888 // Note that we can't save a reference to the entry because this function 2889 // is recursive. 2890 const ASTRecordLayout *Entry = ASTRecordLayouts[D]; 2891 if (Entry) return *Entry; 2892 2893 const ASTRecordLayout *NewEntry = 0; 2894 2895 if (isMsLayout(D) && !D->getASTContext().getExternalSource()) { 2896 NewEntry = BuildMicrosoftASTRecordLayout(D); 2897 } else if (const CXXRecordDecl *RD = dyn_cast<CXXRecordDecl>(D)) { 2898 EmptySubobjectMap EmptySubobjects(*this, RD); 2899 RecordLayoutBuilder Builder(*this, &EmptySubobjects); 2900 Builder.Layout(RD); 2901 2902 // In certain situations, we are allowed to lay out objects in the 2903 // tail-padding of base classes. This is ABI-dependent. 2904 // FIXME: this should be stored in the record layout. 2905 bool skipTailPadding = 2906 mustSkipTailPadding(getTargetInfo().getCXXABI(), cast<CXXRecordDecl>(D)); 2907 2908 // FIXME: This should be done in FinalizeLayout. 2909 CharUnits DataSize = 2910 skipTailPadding ? Builder.getSize() : Builder.getDataSize(); 2911 CharUnits NonVirtualSize = 2912 skipTailPadding ? DataSize : Builder.NonVirtualSize; 2913 NewEntry = 2914 new (*this) ASTRecordLayout(*this, Builder.getSize(), 2915 Builder.Alignment, 2916 /*RequiredAlignment : used by MS-ABI)*/ 2917 Builder.Alignment, 2918 Builder.HasOwnVFPtr, 2919 RD->isDynamicClass(), 2920 CharUnits::fromQuantity(-1), 2921 DataSize, 2922 Builder.FieldOffsets.data(), 2923 Builder.FieldOffsets.size(), 2924 NonVirtualSize, 2925 Builder.NonVirtualAlignment, 2926 EmptySubobjects.SizeOfLargestEmptySubobject, 2927 Builder.PrimaryBase, 2928 Builder.PrimaryBaseIsVirtual, 2929 0, false, false, 2930 Builder.Bases, Builder.VBases); 2931 } else { 2932 RecordLayoutBuilder Builder(*this, /*EmptySubobjects=*/0); 2933 Builder.Layout(D); 2934 2935 NewEntry = 2936 new (*this) ASTRecordLayout(*this, Builder.getSize(), 2937 Builder.Alignment, 2938 /*RequiredAlignment : used by MS-ABI)*/ 2939 Builder.Alignment, 2940 Builder.getSize(), 2941 Builder.FieldOffsets.data(), 2942 Builder.FieldOffsets.size()); 2943 } 2944 2945 ASTRecordLayouts[D] = NewEntry; 2946 2947 if (getLangOpts().DumpRecordLayouts) { 2948 llvm::outs() << "\n*** Dumping AST Record Layout\n"; 2949 DumpRecordLayout(D, llvm::outs(), getLangOpts().DumpRecordLayoutsSimple); 2950 } 2951 2952 return *NewEntry; 2953 } 2954 2955 const CXXMethodDecl *ASTContext::getCurrentKeyFunction(const CXXRecordDecl *RD) { 2956 if (!getTargetInfo().getCXXABI().hasKeyFunctions()) 2957 return 0; 2958 2959 assert(RD->getDefinition() && "Cannot get key function for forward decl!"); 2960 RD = cast<CXXRecordDecl>(RD->getDefinition()); 2961 2962 LazyDeclPtr &Entry = KeyFunctions[RD]; 2963 if (!Entry) 2964 Entry = const_cast<CXXMethodDecl*>(computeKeyFunction(*this, RD)); 2965 2966 return cast_or_null<CXXMethodDecl>(Entry.get(getExternalSource())); 2967 } 2968 2969 void ASTContext::setNonKeyFunction(const CXXMethodDecl *Method) { 2970 assert(Method == Method->getFirstDecl() && 2971 "not working with method declaration from class definition"); 2972 2973 // Look up the cache entry. Since we're working with the first 2974 // declaration, its parent must be the class definition, which is 2975 // the correct key for the KeyFunctions hash. 2976 llvm::DenseMap<const CXXRecordDecl*, LazyDeclPtr>::iterator 2977 I = KeyFunctions.find(Method->getParent()); 2978 2979 // If it's not cached, there's nothing to do. 2980 if (I == KeyFunctions.end()) return; 2981 2982 // If it is cached, check whether it's the target method, and if so, 2983 // remove it from the cache. 2984 if (I->second.get(getExternalSource()) == Method) { 2985 // FIXME: remember that we did this for module / chained PCH state? 2986 KeyFunctions.erase(I); 2987 } 2988 } 2989 2990 static uint64_t getFieldOffset(const ASTContext &C, const FieldDecl *FD) { 2991 const ASTRecordLayout &Layout = C.getASTRecordLayout(FD->getParent()); 2992 return Layout.getFieldOffset(FD->getFieldIndex()); 2993 } 2994 2995 uint64_t ASTContext::getFieldOffset(const ValueDecl *VD) const { 2996 uint64_t OffsetInBits; 2997 if (const FieldDecl *FD = dyn_cast<FieldDecl>(VD)) { 2998 OffsetInBits = ::getFieldOffset(*this, FD); 2999 } else { 3000 const IndirectFieldDecl *IFD = cast<IndirectFieldDecl>(VD); 3001 3002 OffsetInBits = 0; 3003 for (IndirectFieldDecl::chain_iterator CI = IFD->chain_begin(), 3004 CE = IFD->chain_end(); 3005 CI != CE; ++CI) 3006 OffsetInBits += ::getFieldOffset(*this, cast<FieldDecl>(*CI)); 3007 } 3008 3009 return OffsetInBits; 3010 } 3011 3012 /// getObjCLayout - Get or compute information about the layout of the 3013 /// given interface. 3014 /// 3015 /// \param Impl - If given, also include the layout of the interface's 3016 /// implementation. This may differ by including synthesized ivars. 3017 const ASTRecordLayout & 3018 ASTContext::getObjCLayout(const ObjCInterfaceDecl *D, 3019 const ObjCImplementationDecl *Impl) const { 3020 // Retrieve the definition 3021 if (D->hasExternalLexicalStorage() && !D->getDefinition()) 3022 getExternalSource()->CompleteType(const_cast<ObjCInterfaceDecl*>(D)); 3023 D = D->getDefinition(); 3024 assert(D && D->isThisDeclarationADefinition() && "Invalid interface decl!"); 3025 3026 // Look up this layout, if already laid out, return what we have. 3027 const ObjCContainerDecl *Key = 3028 Impl ? (const ObjCContainerDecl*) Impl : (const ObjCContainerDecl*) D; 3029 if (const ASTRecordLayout *Entry = ObjCLayouts[Key]) 3030 return *Entry; 3031 3032 // Add in synthesized ivar count if laying out an implementation. 3033 if (Impl) { 3034 unsigned SynthCount = CountNonClassIvars(D); 3035 // If there aren't any sythesized ivars then reuse the interface 3036 // entry. Note we can't cache this because we simply free all 3037 // entries later; however we shouldn't look up implementations 3038 // frequently. 3039 if (SynthCount == 0) 3040 return getObjCLayout(D, 0); 3041 } 3042 3043 RecordLayoutBuilder Builder(*this, /*EmptySubobjects=*/0); 3044 Builder.Layout(D); 3045 3046 const ASTRecordLayout *NewEntry = 3047 new (*this) ASTRecordLayout(*this, Builder.getSize(), 3048 Builder.Alignment, 3049 /*RequiredAlignment : used by MS-ABI)*/ 3050 Builder.Alignment, 3051 Builder.getDataSize(), 3052 Builder.FieldOffsets.data(), 3053 Builder.FieldOffsets.size()); 3054 3055 ObjCLayouts[Key] = NewEntry; 3056 3057 return *NewEntry; 3058 } 3059 3060 static void PrintOffset(raw_ostream &OS, 3061 CharUnits Offset, unsigned IndentLevel) { 3062 OS << llvm::format("%4" PRId64 " | ", (int64_t)Offset.getQuantity()); 3063 OS.indent(IndentLevel * 2); 3064 } 3065 3066 static void PrintIndentNoOffset(raw_ostream &OS, unsigned IndentLevel) { 3067 OS << " | "; 3068 OS.indent(IndentLevel * 2); 3069 } 3070 3071 static void DumpCXXRecordLayout(raw_ostream &OS, 3072 const CXXRecordDecl *RD, const ASTContext &C, 3073 CharUnits Offset, 3074 unsigned IndentLevel, 3075 const char* Description, 3076 bool IncludeVirtualBases) { 3077 const ASTRecordLayout &Layout = C.getASTRecordLayout(RD); 3078 3079 PrintOffset(OS, Offset, IndentLevel); 3080 OS << C.getTypeDeclType(const_cast<CXXRecordDecl *>(RD)).getAsString(); 3081 if (Description) 3082 OS << ' ' << Description; 3083 if (RD->isEmpty()) 3084 OS << " (empty)"; 3085 OS << '\n'; 3086 3087 IndentLevel++; 3088 3089 const CXXRecordDecl *PrimaryBase = Layout.getPrimaryBase(); 3090 bool HasOwnVFPtr = Layout.hasOwnVFPtr(); 3091 bool HasOwnVBPtr = Layout.hasOwnVBPtr(); 3092 3093 // Vtable pointer. 3094 if (RD->isDynamicClass() && !PrimaryBase && !isMsLayout(RD)) { 3095 PrintOffset(OS, Offset, IndentLevel); 3096 OS << '(' << *RD << " vtable pointer)\n"; 3097 } else if (HasOwnVFPtr) { 3098 PrintOffset(OS, Offset, IndentLevel); 3099 // vfptr (for Microsoft C++ ABI) 3100 OS << '(' << *RD << " vftable pointer)\n"; 3101 } 3102 3103 // Dump (non-virtual) bases 3104 for (CXXRecordDecl::base_class_const_iterator I = RD->bases_begin(), 3105 E = RD->bases_end(); I != E; ++I) { 3106 assert(!I->getType()->isDependentType() && 3107 "Cannot layout class with dependent bases."); 3108 if (I->isVirtual()) 3109 continue; 3110 3111 const CXXRecordDecl *Base = 3112 cast<CXXRecordDecl>(I->getType()->getAs<RecordType>()->getDecl()); 3113 3114 CharUnits BaseOffset = Offset + Layout.getBaseClassOffset(Base); 3115 3116 DumpCXXRecordLayout(OS, Base, C, BaseOffset, IndentLevel, 3117 Base == PrimaryBase ? "(primary base)" : "(base)", 3118 /*IncludeVirtualBases=*/false); 3119 } 3120 3121 // vbptr (for Microsoft C++ ABI) 3122 if (HasOwnVBPtr) { 3123 PrintOffset(OS, Offset + Layout.getVBPtrOffset(), IndentLevel); 3124 OS << '(' << *RD << " vbtable pointer)\n"; 3125 } 3126 3127 // Dump fields. 3128 uint64_t FieldNo = 0; 3129 for (CXXRecordDecl::field_iterator I = RD->field_begin(), 3130 E = RD->field_end(); I != E; ++I, ++FieldNo) { 3131 const FieldDecl &Field = **I; 3132 CharUnits FieldOffset = Offset + 3133 C.toCharUnitsFromBits(Layout.getFieldOffset(FieldNo)); 3134 3135 if (const RecordType *RT = Field.getType()->getAs<RecordType>()) { 3136 if (const CXXRecordDecl *D = dyn_cast<CXXRecordDecl>(RT->getDecl())) { 3137 DumpCXXRecordLayout(OS, D, C, FieldOffset, IndentLevel, 3138 Field.getName().data(), 3139 /*IncludeVirtualBases=*/true); 3140 continue; 3141 } 3142 } 3143 3144 PrintOffset(OS, FieldOffset, IndentLevel); 3145 OS << Field.getType().getAsString() << ' ' << Field << '\n'; 3146 } 3147 3148 if (!IncludeVirtualBases) 3149 return; 3150 3151 // Dump virtual bases. 3152 const ASTRecordLayout::VBaseOffsetsMapTy &vtordisps = 3153 Layout.getVBaseOffsetsMap(); 3154 for (CXXRecordDecl::base_class_const_iterator I = RD->vbases_begin(), 3155 E = RD->vbases_end(); I != E; ++I) { 3156 assert(I->isVirtual() && "Found non-virtual class!"); 3157 const CXXRecordDecl *VBase = 3158 cast<CXXRecordDecl>(I->getType()->getAs<RecordType>()->getDecl()); 3159 3160 CharUnits VBaseOffset = Offset + Layout.getVBaseClassOffset(VBase); 3161 3162 if (vtordisps.find(VBase)->second.hasVtorDisp()) { 3163 PrintOffset(OS, VBaseOffset - CharUnits::fromQuantity(4), IndentLevel); 3164 OS << "(vtordisp for vbase " << *VBase << ")\n"; 3165 } 3166 3167 DumpCXXRecordLayout(OS, VBase, C, VBaseOffset, IndentLevel, 3168 VBase == PrimaryBase ? 3169 "(primary virtual base)" : "(virtual base)", 3170 /*IncludeVirtualBases=*/false); 3171 } 3172 3173 PrintIndentNoOffset(OS, IndentLevel - 1); 3174 OS << "[sizeof=" << Layout.getSize().getQuantity(); 3175 if (!isMsLayout(RD)) 3176 OS << ", dsize=" << Layout.getDataSize().getQuantity(); 3177 OS << ", align=" << Layout.getAlignment().getQuantity() << '\n'; 3178 3179 PrintIndentNoOffset(OS, IndentLevel - 1); 3180 OS << " nvsize=" << Layout.getNonVirtualSize().getQuantity(); 3181 OS << ", nvalign=" << Layout.getNonVirtualAlignment().getQuantity() << "]\n"; 3182 OS << '\n'; 3183 } 3184 3185 void ASTContext::DumpRecordLayout(const RecordDecl *RD, 3186 raw_ostream &OS, 3187 bool Simple) const { 3188 const ASTRecordLayout &Info = getASTRecordLayout(RD); 3189 3190 if (const CXXRecordDecl *CXXRD = dyn_cast<CXXRecordDecl>(RD)) 3191 if (!Simple) 3192 return DumpCXXRecordLayout(OS, CXXRD, *this, CharUnits(), 0, 0, 3193 /*IncludeVirtualBases=*/true); 3194 3195 OS << "Type: " << getTypeDeclType(RD).getAsString() << "\n"; 3196 if (!Simple) { 3197 OS << "Record: "; 3198 RD->dump(); 3199 } 3200 OS << "\nLayout: "; 3201 OS << "<ASTRecordLayout\n"; 3202 OS << " Size:" << toBits(Info.getSize()) << "\n"; 3203 if (!isMsLayout(RD)) 3204 OS << " DataSize:" << toBits(Info.getDataSize()) << "\n"; 3205 OS << " Alignment:" << toBits(Info.getAlignment()) << "\n"; 3206 OS << " FieldOffsets: ["; 3207 for (unsigned i = 0, e = Info.getFieldCount(); i != e; ++i) { 3208 if (i) OS << ", "; 3209 OS << Info.getFieldOffset(i); 3210 } 3211 OS << "]>\n"; 3212 } 3213