1 //===--- CGBlocks.cpp - Emit LLVM Code for declarations ---------*- C++ -*-===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This contains code to emit blocks. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "CGBlocks.h" 15 #include "CGDebugInfo.h" 16 #include "CGObjCRuntime.h" 17 #include "CodeGenFunction.h" 18 #include "CodeGenModule.h" 19 #include "clang/AST/DeclObjC.h" 20 #include "llvm/ADT/SmallSet.h" 21 #include "llvm/IR/CallSite.h" 22 #include "llvm/IR/DataLayout.h" 23 #include "llvm/IR/Module.h" 24 #include <algorithm> 25 #include <cstdio> 26 27 using namespace clang; 28 using namespace CodeGen; 29 30 CGBlockInfo::CGBlockInfo(const BlockDecl *block, StringRef name) 31 : Name(name), CXXThisIndex(0), CanBeGlobal(false), NeedsCopyDispose(false), 32 HasCXXObject(false), UsesStret(false), HasCapturedVariableLayout(false), 33 LocalAddress(Address::invalid()), StructureType(nullptr), Block(block), 34 DominatingIP(nullptr) { 35 36 // Skip asm prefix, if any. 'name' is usually taken directly from 37 // the mangled name of the enclosing function. 38 if (!name.empty() && name[0] == '\01') 39 name = name.substr(1); 40 } 41 42 // Anchor the vtable to this translation unit. 43 BlockByrefHelpers::~BlockByrefHelpers() {} 44 45 /// Build the given block as a global block. 46 static llvm::Constant *buildGlobalBlock(CodeGenModule &CGM, 47 const CGBlockInfo &blockInfo, 48 llvm::Constant *blockFn); 49 50 /// Build the helper function to copy a block. 51 static llvm::Constant *buildCopyHelper(CodeGenModule &CGM, 52 const CGBlockInfo &blockInfo) { 53 return CodeGenFunction(CGM).GenerateCopyHelperFunction(blockInfo); 54 } 55 56 /// Build the helper function to dispose of a block. 57 static llvm::Constant *buildDisposeHelper(CodeGenModule &CGM, 58 const CGBlockInfo &blockInfo) { 59 return CodeGenFunction(CGM).GenerateDestroyHelperFunction(blockInfo); 60 } 61 62 /// buildBlockDescriptor - Build the block descriptor meta-data for a block. 63 /// buildBlockDescriptor is accessed from 5th field of the Block_literal 64 /// meta-data and contains stationary information about the block literal. 65 /// Its definition will have 4 (or optinally 6) words. 66 /// \code 67 /// struct Block_descriptor { 68 /// unsigned long reserved; 69 /// unsigned long size; // size of Block_literal metadata in bytes. 70 /// void *copy_func_helper_decl; // optional copy helper. 71 /// void *destroy_func_decl; // optioanl destructor helper. 72 /// void *block_method_encoding_address; // @encode for block literal signature. 73 /// void *block_layout_info; // encoding of captured block variables. 74 /// }; 75 /// \endcode 76 static llvm::Constant *buildBlockDescriptor(CodeGenModule &CGM, 77 const CGBlockInfo &blockInfo) { 78 ASTContext &C = CGM.getContext(); 79 80 llvm::Type *ulong = CGM.getTypes().ConvertType(C.UnsignedLongTy); 81 llvm::Type *i8p = nullptr; 82 if (CGM.getLangOpts().OpenCL) 83 i8p = 84 llvm::Type::getInt8PtrTy( 85 CGM.getLLVMContext(), C.getTargetAddressSpace(LangAS::opencl_constant)); 86 else 87 i8p = CGM.getTypes().ConvertType(C.VoidPtrTy); 88 89 SmallVector<llvm::Constant*, 6> elements; 90 91 // reserved 92 elements.push_back(llvm::ConstantInt::get(ulong, 0)); 93 94 // Size 95 // FIXME: What is the right way to say this doesn't fit? We should give 96 // a user diagnostic in that case. Better fix would be to change the 97 // API to size_t. 98 elements.push_back(llvm::ConstantInt::get(ulong, 99 blockInfo.BlockSize.getQuantity())); 100 101 // Optional copy/dispose helpers. 102 if (blockInfo.NeedsCopyDispose) { 103 // copy_func_helper_decl 104 elements.push_back(buildCopyHelper(CGM, blockInfo)); 105 106 // destroy_func_decl 107 elements.push_back(buildDisposeHelper(CGM, blockInfo)); 108 } 109 110 // Signature. Mandatory ObjC-style method descriptor @encode sequence. 111 std::string typeAtEncoding = 112 CGM.getContext().getObjCEncodingForBlock(blockInfo.getBlockExpr()); 113 elements.push_back(llvm::ConstantExpr::getBitCast( 114 CGM.GetAddrOfConstantCString(typeAtEncoding).getPointer(), i8p)); 115 116 // GC layout. 117 if (C.getLangOpts().ObjC1) { 118 if (CGM.getLangOpts().getGC() != LangOptions::NonGC) 119 elements.push_back(CGM.getObjCRuntime().BuildGCBlockLayout(CGM, blockInfo)); 120 else 121 elements.push_back(CGM.getObjCRuntime().BuildRCBlockLayout(CGM, blockInfo)); 122 } 123 else 124 elements.push_back(llvm::Constant::getNullValue(i8p)); 125 126 llvm::Constant *init = llvm::ConstantStruct::getAnon(elements); 127 128 llvm::GlobalVariable *global = 129 new llvm::GlobalVariable(CGM.getModule(), init->getType(), true, 130 llvm::GlobalValue::InternalLinkage, 131 init, "__block_descriptor_tmp"); 132 133 return llvm::ConstantExpr::getBitCast(global, CGM.getBlockDescriptorType()); 134 } 135 136 /* 137 Purely notional variadic template describing the layout of a block. 138 139 template <class _ResultType, class... _ParamTypes, class... _CaptureTypes> 140 struct Block_literal { 141 /// Initialized to one of: 142 /// extern void *_NSConcreteStackBlock[]; 143 /// extern void *_NSConcreteGlobalBlock[]; 144 /// 145 /// In theory, we could start one off malloc'ed by setting 146 /// BLOCK_NEEDS_FREE, giving it a refcount of 1, and using 147 /// this isa: 148 /// extern void *_NSConcreteMallocBlock[]; 149 struct objc_class *isa; 150 151 /// These are the flags (with corresponding bit number) that the 152 /// compiler is actually supposed to know about. 153 /// 25. BLOCK_HAS_COPY_DISPOSE - indicates that the block 154 /// descriptor provides copy and dispose helper functions 155 /// 26. BLOCK_HAS_CXX_OBJ - indicates that there's a captured 156 /// object with a nontrivial destructor or copy constructor 157 /// 28. BLOCK_IS_GLOBAL - indicates that the block is allocated 158 /// as global memory 159 /// 29. BLOCK_USE_STRET - indicates that the block function 160 /// uses stret, which objc_msgSend needs to know about 161 /// 30. BLOCK_HAS_SIGNATURE - indicates that the block has an 162 /// @encoded signature string 163 /// And we're not supposed to manipulate these: 164 /// 24. BLOCK_NEEDS_FREE - indicates that the block has been moved 165 /// to malloc'ed memory 166 /// 27. BLOCK_IS_GC - indicates that the block has been moved to 167 /// to GC-allocated memory 168 /// Additionally, the bottom 16 bits are a reference count which 169 /// should be zero on the stack. 170 int flags; 171 172 /// Reserved; should be zero-initialized. 173 int reserved; 174 175 /// Function pointer generated from block literal. 176 _ResultType (*invoke)(Block_literal *, _ParamTypes...); 177 178 /// Block description metadata generated from block literal. 179 struct Block_descriptor *block_descriptor; 180 181 /// Captured values follow. 182 _CapturesTypes captures...; 183 }; 184 */ 185 186 /// The number of fields in a block header. 187 const unsigned BlockHeaderSize = 5; 188 189 namespace { 190 /// A chunk of data that we actually have to capture in the block. 191 struct BlockLayoutChunk { 192 CharUnits Alignment; 193 CharUnits Size; 194 Qualifiers::ObjCLifetime Lifetime; 195 const BlockDecl::Capture *Capture; // null for 'this' 196 llvm::Type *Type; 197 198 BlockLayoutChunk(CharUnits align, CharUnits size, 199 Qualifiers::ObjCLifetime lifetime, 200 const BlockDecl::Capture *capture, 201 llvm::Type *type) 202 : Alignment(align), Size(size), Lifetime(lifetime), 203 Capture(capture), Type(type) {} 204 205 /// Tell the block info that this chunk has the given field index. 206 void setIndex(CGBlockInfo &info, unsigned index, CharUnits offset) { 207 if (!Capture) { 208 info.CXXThisIndex = index; 209 info.CXXThisOffset = offset; 210 } else { 211 info.Captures.insert({Capture->getVariable(), 212 CGBlockInfo::Capture::makeIndex(index, offset)}); 213 } 214 } 215 }; 216 217 /// Order by 1) all __strong together 2) next, all byfref together 3) next, 218 /// all __weak together. Preserve descending alignment in all situations. 219 bool operator<(const BlockLayoutChunk &left, const BlockLayoutChunk &right) { 220 if (left.Alignment != right.Alignment) 221 return left.Alignment > right.Alignment; 222 223 auto getPrefOrder = [](const BlockLayoutChunk &chunk) { 224 if (chunk.Capture && chunk.Capture->isByRef()) 225 return 1; 226 if (chunk.Lifetime == Qualifiers::OCL_Strong) 227 return 0; 228 if (chunk.Lifetime == Qualifiers::OCL_Weak) 229 return 2; 230 return 3; 231 }; 232 233 return getPrefOrder(left) < getPrefOrder(right); 234 } 235 } // end anonymous namespace 236 237 /// Determines if the given type is safe for constant capture in C++. 238 static bool isSafeForCXXConstantCapture(QualType type) { 239 const RecordType *recordType = 240 type->getBaseElementTypeUnsafe()->getAs<RecordType>(); 241 242 // Only records can be unsafe. 243 if (!recordType) return true; 244 245 const auto *record = cast<CXXRecordDecl>(recordType->getDecl()); 246 247 // Maintain semantics for classes with non-trivial dtors or copy ctors. 248 if (!record->hasTrivialDestructor()) return false; 249 if (record->hasNonTrivialCopyConstructor()) return false; 250 251 // Otherwise, we just have to make sure there aren't any mutable 252 // fields that might have changed since initialization. 253 return !record->hasMutableFields(); 254 } 255 256 /// It is illegal to modify a const object after initialization. 257 /// Therefore, if a const object has a constant initializer, we don't 258 /// actually need to keep storage for it in the block; we'll just 259 /// rematerialize it at the start of the block function. This is 260 /// acceptable because we make no promises about address stability of 261 /// captured variables. 262 static llvm::Constant *tryCaptureAsConstant(CodeGenModule &CGM, 263 CodeGenFunction *CGF, 264 const VarDecl *var) { 265 QualType type = var->getType(); 266 267 // We can only do this if the variable is const. 268 if (!type.isConstQualified()) return nullptr; 269 270 // Furthermore, in C++ we have to worry about mutable fields: 271 // C++ [dcl.type.cv]p4: 272 // Except that any class member declared mutable can be 273 // modified, any attempt to modify a const object during its 274 // lifetime results in undefined behavior. 275 if (CGM.getLangOpts().CPlusPlus && !isSafeForCXXConstantCapture(type)) 276 return nullptr; 277 278 // If the variable doesn't have any initializer (shouldn't this be 279 // invalid?), it's not clear what we should do. Maybe capture as 280 // zero? 281 const Expr *init = var->getInit(); 282 if (!init) return nullptr; 283 284 return CGM.EmitConstantInit(*var, CGF); 285 } 286 287 /// Get the low bit of a nonzero character count. This is the 288 /// alignment of the nth byte if the 0th byte is universally aligned. 289 static CharUnits getLowBit(CharUnits v) { 290 return CharUnits::fromQuantity(v.getQuantity() & (~v.getQuantity() + 1)); 291 } 292 293 static void initializeForBlockHeader(CodeGenModule &CGM, CGBlockInfo &info, 294 SmallVectorImpl<llvm::Type*> &elementTypes) { 295 // The header is basically 'struct { void *; int; int; void *; void *; }'. 296 // Assert that that struct is packed. 297 assert(CGM.getIntSize() <= CGM.getPointerSize()); 298 assert(CGM.getIntAlign() <= CGM.getPointerAlign()); 299 assert((2 * CGM.getIntSize()).isMultipleOf(CGM.getPointerAlign())); 300 301 info.BlockAlign = CGM.getPointerAlign(); 302 info.BlockSize = 3 * CGM.getPointerSize() + 2 * CGM.getIntSize(); 303 304 assert(elementTypes.empty()); 305 elementTypes.push_back(CGM.VoidPtrTy); 306 elementTypes.push_back(CGM.IntTy); 307 elementTypes.push_back(CGM.IntTy); 308 elementTypes.push_back(CGM.VoidPtrTy); 309 elementTypes.push_back(CGM.getBlockDescriptorType()); 310 311 assert(elementTypes.size() == BlockHeaderSize); 312 } 313 314 /// Compute the layout of the given block. Attempts to lay the block 315 /// out with minimal space requirements. 316 static void computeBlockInfo(CodeGenModule &CGM, CodeGenFunction *CGF, 317 CGBlockInfo &info) { 318 ASTContext &C = CGM.getContext(); 319 const BlockDecl *block = info.getBlockDecl(); 320 321 SmallVector<llvm::Type*, 8> elementTypes; 322 initializeForBlockHeader(CGM, info, elementTypes); 323 324 if (!block->hasCaptures()) { 325 info.StructureType = 326 llvm::StructType::get(CGM.getLLVMContext(), elementTypes, true); 327 info.CanBeGlobal = true; 328 return; 329 } 330 else if (C.getLangOpts().ObjC1 && 331 CGM.getLangOpts().getGC() == LangOptions::NonGC) 332 info.HasCapturedVariableLayout = true; 333 334 // Collect the layout chunks. 335 SmallVector<BlockLayoutChunk, 16> layout; 336 layout.reserve(block->capturesCXXThis() + 337 (block->capture_end() - block->capture_begin())); 338 339 CharUnits maxFieldAlign; 340 341 // First, 'this'. 342 if (block->capturesCXXThis()) { 343 assert(CGF && CGF->CurFuncDecl && isa<CXXMethodDecl>(CGF->CurFuncDecl) && 344 "Can't capture 'this' outside a method"); 345 QualType thisType = cast<CXXMethodDecl>(CGF->CurFuncDecl)->getThisType(C); 346 347 // Theoretically, this could be in a different address space, so 348 // don't assume standard pointer size/align. 349 llvm::Type *llvmType = CGM.getTypes().ConvertType(thisType); 350 std::pair<CharUnits,CharUnits> tinfo 351 = CGM.getContext().getTypeInfoInChars(thisType); 352 maxFieldAlign = std::max(maxFieldAlign, tinfo.second); 353 354 layout.push_back(BlockLayoutChunk(tinfo.second, tinfo.first, 355 Qualifiers::OCL_None, 356 nullptr, llvmType)); 357 } 358 359 // Next, all the block captures. 360 for (const auto &CI : block->captures()) { 361 const VarDecl *variable = CI.getVariable(); 362 363 if (CI.isByRef()) { 364 // We have to copy/dispose of the __block reference. 365 info.NeedsCopyDispose = true; 366 367 // Just use void* instead of a pointer to the byref type. 368 CharUnits align = CGM.getPointerAlign(); 369 maxFieldAlign = std::max(maxFieldAlign, align); 370 371 layout.push_back(BlockLayoutChunk(align, CGM.getPointerSize(), 372 Qualifiers::OCL_None, &CI, 373 CGM.VoidPtrTy)); 374 continue; 375 } 376 377 // Otherwise, build a layout chunk with the size and alignment of 378 // the declaration. 379 if (llvm::Constant *constant = tryCaptureAsConstant(CGM, CGF, variable)) { 380 info.Captures[variable] = CGBlockInfo::Capture::makeConstant(constant); 381 continue; 382 } 383 384 // If we have a lifetime qualifier, honor it for capture purposes. 385 // That includes *not* copying it if it's __unsafe_unretained. 386 Qualifiers::ObjCLifetime lifetime = 387 variable->getType().getObjCLifetime(); 388 if (lifetime) { 389 switch (lifetime) { 390 case Qualifiers::OCL_None: llvm_unreachable("impossible"); 391 case Qualifiers::OCL_ExplicitNone: 392 case Qualifiers::OCL_Autoreleasing: 393 break; 394 395 case Qualifiers::OCL_Strong: 396 case Qualifiers::OCL_Weak: 397 info.NeedsCopyDispose = true; 398 } 399 400 // Block pointers require copy/dispose. So do Objective-C pointers. 401 } else if (variable->getType()->isObjCRetainableType()) { 402 info.NeedsCopyDispose = true; 403 // used for mrr below. 404 lifetime = Qualifiers::OCL_Strong; 405 406 // So do types that require non-trivial copy construction. 407 } else if (CI.hasCopyExpr()) { 408 info.NeedsCopyDispose = true; 409 info.HasCXXObject = true; 410 411 // And so do types with destructors. 412 } else if (CGM.getLangOpts().CPlusPlus) { 413 if (const CXXRecordDecl *record = 414 variable->getType()->getAsCXXRecordDecl()) { 415 if (!record->hasTrivialDestructor()) { 416 info.HasCXXObject = true; 417 info.NeedsCopyDispose = true; 418 } 419 } 420 } 421 422 QualType VT = variable->getType(); 423 CharUnits size = C.getTypeSizeInChars(VT); 424 CharUnits align = C.getDeclAlign(variable); 425 426 maxFieldAlign = std::max(maxFieldAlign, align); 427 428 llvm::Type *llvmType = 429 CGM.getTypes().ConvertTypeForMem(VT); 430 431 layout.push_back(BlockLayoutChunk(align, size, lifetime, &CI, llvmType)); 432 } 433 434 // If that was everything, we're done here. 435 if (layout.empty()) { 436 info.StructureType = 437 llvm::StructType::get(CGM.getLLVMContext(), elementTypes, true); 438 info.CanBeGlobal = true; 439 return; 440 } 441 442 // Sort the layout by alignment. We have to use a stable sort here 443 // to get reproducible results. There should probably be an 444 // llvm::array_pod_stable_sort. 445 std::stable_sort(layout.begin(), layout.end()); 446 447 // Needed for blocks layout info. 448 info.BlockHeaderForcedGapOffset = info.BlockSize; 449 info.BlockHeaderForcedGapSize = CharUnits::Zero(); 450 451 CharUnits &blockSize = info.BlockSize; 452 info.BlockAlign = std::max(maxFieldAlign, info.BlockAlign); 453 454 // Assuming that the first byte in the header is maximally aligned, 455 // get the alignment of the first byte following the header. 456 CharUnits endAlign = getLowBit(blockSize); 457 458 // If the end of the header isn't satisfactorily aligned for the 459 // maximum thing, look for things that are okay with the header-end 460 // alignment, and keep appending them until we get something that's 461 // aligned right. This algorithm is only guaranteed optimal if 462 // that condition is satisfied at some point; otherwise we can get 463 // things like: 464 // header // next byte has alignment 4 465 // something_with_size_5; // next byte has alignment 1 466 // something_with_alignment_8; 467 // which has 7 bytes of padding, as opposed to the naive solution 468 // which might have less (?). 469 if (endAlign < maxFieldAlign) { 470 SmallVectorImpl<BlockLayoutChunk>::iterator 471 li = layout.begin() + 1, le = layout.end(); 472 473 // Look for something that the header end is already 474 // satisfactorily aligned for. 475 for (; li != le && endAlign < li->Alignment; ++li) 476 ; 477 478 // If we found something that's naturally aligned for the end of 479 // the header, keep adding things... 480 if (li != le) { 481 SmallVectorImpl<BlockLayoutChunk>::iterator first = li; 482 for (; li != le; ++li) { 483 assert(endAlign >= li->Alignment); 484 485 li->setIndex(info, elementTypes.size(), blockSize); 486 elementTypes.push_back(li->Type); 487 blockSize += li->Size; 488 endAlign = getLowBit(blockSize); 489 490 // ...until we get to the alignment of the maximum field. 491 if (endAlign >= maxFieldAlign) { 492 break; 493 } 494 } 495 // Don't re-append everything we just appended. 496 layout.erase(first, li); 497 } 498 } 499 500 assert(endAlign == getLowBit(blockSize)); 501 502 // At this point, we just have to add padding if the end align still 503 // isn't aligned right. 504 if (endAlign < maxFieldAlign) { 505 CharUnits newBlockSize = blockSize.RoundUpToAlignment(maxFieldAlign); 506 CharUnits padding = newBlockSize - blockSize; 507 508 // If we haven't yet added any fields, remember that there was an 509 // initial gap; this need to go into the block layout bit map. 510 if (blockSize == info.BlockHeaderForcedGapOffset) { 511 info.BlockHeaderForcedGapSize = padding; 512 } 513 514 elementTypes.push_back(llvm::ArrayType::get(CGM.Int8Ty, 515 padding.getQuantity())); 516 blockSize = newBlockSize; 517 endAlign = getLowBit(blockSize); // might be > maxFieldAlign 518 } 519 520 assert(endAlign >= maxFieldAlign); 521 assert(endAlign == getLowBit(blockSize)); 522 // Slam everything else on now. This works because they have 523 // strictly decreasing alignment and we expect that size is always a 524 // multiple of alignment. 525 for (SmallVectorImpl<BlockLayoutChunk>::iterator 526 li = layout.begin(), le = layout.end(); li != le; ++li) { 527 if (endAlign < li->Alignment) { 528 // size may not be multiple of alignment. This can only happen with 529 // an over-aligned variable. We will be adding a padding field to 530 // make the size be multiple of alignment. 531 CharUnits padding = li->Alignment - endAlign; 532 elementTypes.push_back(llvm::ArrayType::get(CGM.Int8Ty, 533 padding.getQuantity())); 534 blockSize += padding; 535 endAlign = getLowBit(blockSize); 536 } 537 assert(endAlign >= li->Alignment); 538 li->setIndex(info, elementTypes.size(), blockSize); 539 elementTypes.push_back(li->Type); 540 blockSize += li->Size; 541 endAlign = getLowBit(blockSize); 542 } 543 544 info.StructureType = 545 llvm::StructType::get(CGM.getLLVMContext(), elementTypes, true); 546 } 547 548 /// Enter the scope of a block. This should be run at the entrance to 549 /// a full-expression so that the block's cleanups are pushed at the 550 /// right place in the stack. 551 static void enterBlockScope(CodeGenFunction &CGF, BlockDecl *block) { 552 assert(CGF.HaveInsertPoint()); 553 554 // Allocate the block info and place it at the head of the list. 555 CGBlockInfo &blockInfo = 556 *new CGBlockInfo(block, CGF.CurFn->getName()); 557 blockInfo.NextBlockInfo = CGF.FirstBlockInfo; 558 CGF.FirstBlockInfo = &blockInfo; 559 560 // Compute information about the layout, etc., of this block, 561 // pushing cleanups as necessary. 562 computeBlockInfo(CGF.CGM, &CGF, blockInfo); 563 564 // Nothing else to do if it can be global. 565 if (blockInfo.CanBeGlobal) return; 566 567 // Make the allocation for the block. 568 blockInfo.LocalAddress = CGF.CreateTempAlloca(blockInfo.StructureType, 569 blockInfo.BlockAlign, "block"); 570 571 // If there are cleanups to emit, enter them (but inactive). 572 if (!blockInfo.NeedsCopyDispose) return; 573 574 // Walk through the captures (in order) and find the ones not 575 // captured by constant. 576 for (const auto &CI : block->captures()) { 577 // Ignore __block captures; there's nothing special in the 578 // on-stack block that we need to do for them. 579 if (CI.isByRef()) continue; 580 581 // Ignore variables that are constant-captured. 582 const VarDecl *variable = CI.getVariable(); 583 CGBlockInfo::Capture &capture = blockInfo.getCapture(variable); 584 if (capture.isConstant()) continue; 585 586 // Ignore objects that aren't destructed. 587 QualType::DestructionKind dtorKind = 588 variable->getType().isDestructedType(); 589 if (dtorKind == QualType::DK_none) continue; 590 591 CodeGenFunction::Destroyer *destroyer; 592 593 // Block captures count as local values and have imprecise semantics. 594 // They also can't be arrays, so need to worry about that. 595 if (dtorKind == QualType::DK_objc_strong_lifetime) { 596 destroyer = CodeGenFunction::destroyARCStrongImprecise; 597 } else { 598 destroyer = CGF.getDestroyer(dtorKind); 599 } 600 601 // GEP down to the address. 602 Address addr = CGF.Builder.CreateStructGEP(blockInfo.LocalAddress, 603 capture.getIndex(), 604 capture.getOffset()); 605 606 // We can use that GEP as the dominating IP. 607 if (!blockInfo.DominatingIP) 608 blockInfo.DominatingIP = cast<llvm::Instruction>(addr.getPointer()); 609 610 CleanupKind cleanupKind = InactiveNormalCleanup; 611 bool useArrayEHCleanup = CGF.needsEHCleanup(dtorKind); 612 if (useArrayEHCleanup) 613 cleanupKind = InactiveNormalAndEHCleanup; 614 615 CGF.pushDestroy(cleanupKind, addr, variable->getType(), 616 destroyer, useArrayEHCleanup); 617 618 // Remember where that cleanup was. 619 capture.setCleanup(CGF.EHStack.stable_begin()); 620 } 621 } 622 623 /// Enter a full-expression with a non-trivial number of objects to 624 /// clean up. This is in this file because, at the moment, the only 625 /// kind of cleanup object is a BlockDecl*. 626 void CodeGenFunction::enterNonTrivialFullExpression(const ExprWithCleanups *E) { 627 assert(E->getNumObjects() != 0); 628 ArrayRef<ExprWithCleanups::CleanupObject> cleanups = E->getObjects(); 629 for (ArrayRef<ExprWithCleanups::CleanupObject>::iterator 630 i = cleanups.begin(), e = cleanups.end(); i != e; ++i) { 631 enterBlockScope(*this, *i); 632 } 633 } 634 635 /// Find the layout for the given block in a linked list and remove it. 636 static CGBlockInfo *findAndRemoveBlockInfo(CGBlockInfo **head, 637 const BlockDecl *block) { 638 while (true) { 639 assert(head && *head); 640 CGBlockInfo *cur = *head; 641 642 // If this is the block we're looking for, splice it out of the list. 643 if (cur->getBlockDecl() == block) { 644 *head = cur->NextBlockInfo; 645 return cur; 646 } 647 648 head = &cur->NextBlockInfo; 649 } 650 } 651 652 /// Destroy a chain of block layouts. 653 void CodeGenFunction::destroyBlockInfos(CGBlockInfo *head) { 654 assert(head && "destroying an empty chain"); 655 do { 656 CGBlockInfo *cur = head; 657 head = cur->NextBlockInfo; 658 delete cur; 659 } while (head != nullptr); 660 } 661 662 /// Emit a block literal expression in the current function. 663 llvm::Value *CodeGenFunction::EmitBlockLiteral(const BlockExpr *blockExpr) { 664 // If the block has no captures, we won't have a pre-computed 665 // layout for it. 666 if (!blockExpr->getBlockDecl()->hasCaptures()) { 667 CGBlockInfo blockInfo(blockExpr->getBlockDecl(), CurFn->getName()); 668 computeBlockInfo(CGM, this, blockInfo); 669 blockInfo.BlockExpression = blockExpr; 670 return EmitBlockLiteral(blockInfo); 671 } 672 673 // Find the block info for this block and take ownership of it. 674 std::unique_ptr<CGBlockInfo> blockInfo; 675 blockInfo.reset(findAndRemoveBlockInfo(&FirstBlockInfo, 676 blockExpr->getBlockDecl())); 677 678 blockInfo->BlockExpression = blockExpr; 679 return EmitBlockLiteral(*blockInfo); 680 } 681 682 llvm::Value *CodeGenFunction::EmitBlockLiteral(const CGBlockInfo &blockInfo) { 683 // Using the computed layout, generate the actual block function. 684 bool isLambdaConv = blockInfo.getBlockDecl()->isConversionFromLambda(); 685 llvm::Constant *blockFn 686 = CodeGenFunction(CGM, true).GenerateBlockFunction(CurGD, blockInfo, 687 LocalDeclMap, 688 isLambdaConv); 689 blockFn = llvm::ConstantExpr::getBitCast(blockFn, VoidPtrTy); 690 691 // If there is nothing to capture, we can emit this as a global block. 692 if (blockInfo.CanBeGlobal) 693 return buildGlobalBlock(CGM, blockInfo, blockFn); 694 695 // Otherwise, we have to emit this as a local block. 696 697 llvm::Constant *isa = CGM.getNSConcreteStackBlock(); 698 isa = llvm::ConstantExpr::getBitCast(isa, VoidPtrTy); 699 700 // Build the block descriptor. 701 llvm::Constant *descriptor = buildBlockDescriptor(CGM, blockInfo); 702 703 Address blockAddr = blockInfo.LocalAddress; 704 assert(blockAddr.isValid() && "block has no address!"); 705 706 // Compute the initial on-stack block flags. 707 BlockFlags flags = BLOCK_HAS_SIGNATURE; 708 if (blockInfo.HasCapturedVariableLayout) flags |= BLOCK_HAS_EXTENDED_LAYOUT; 709 if (blockInfo.NeedsCopyDispose) flags |= BLOCK_HAS_COPY_DISPOSE; 710 if (blockInfo.HasCXXObject) flags |= BLOCK_HAS_CXX_OBJ; 711 if (blockInfo.UsesStret) flags |= BLOCK_USE_STRET; 712 713 auto projectField = 714 [&](unsigned index, CharUnits offset, const Twine &name) -> Address { 715 return Builder.CreateStructGEP(blockAddr, index, offset, name); 716 }; 717 auto storeField = 718 [&](llvm::Value *value, unsigned index, CharUnits offset, 719 const Twine &name) { 720 Builder.CreateStore(value, projectField(index, offset, name)); 721 }; 722 723 // Initialize the block header. 724 { 725 // We assume all the header fields are densely packed. 726 unsigned index = 0; 727 CharUnits offset; 728 auto addHeaderField = 729 [&](llvm::Value *value, CharUnits size, const Twine &name) { 730 storeField(value, index, offset, name); 731 offset += size; 732 index++; 733 }; 734 735 addHeaderField(isa, getPointerSize(), "block.isa"); 736 addHeaderField(llvm::ConstantInt::get(IntTy, flags.getBitMask()), 737 getIntSize(), "block.flags"); 738 addHeaderField(llvm::ConstantInt::get(IntTy, 0), 739 getIntSize(), "block.reserved"); 740 addHeaderField(blockFn, getPointerSize(), "block.invoke"); 741 addHeaderField(descriptor, getPointerSize(), "block.descriptor"); 742 } 743 744 // Finally, capture all the values into the block. 745 const BlockDecl *blockDecl = blockInfo.getBlockDecl(); 746 747 // First, 'this'. 748 if (blockDecl->capturesCXXThis()) { 749 Address addr = projectField(blockInfo.CXXThisIndex, blockInfo.CXXThisOffset, 750 "block.captured-this.addr"); 751 Builder.CreateStore(LoadCXXThis(), addr); 752 } 753 754 // Next, captured variables. 755 for (const auto &CI : blockDecl->captures()) { 756 const VarDecl *variable = CI.getVariable(); 757 const CGBlockInfo::Capture &capture = blockInfo.getCapture(variable); 758 759 // Ignore constant captures. 760 if (capture.isConstant()) continue; 761 762 QualType type = variable->getType(); 763 764 // This will be a [[type]]*, except that a byref entry will just be 765 // an i8**. 766 Address blockField = 767 projectField(capture.getIndex(), capture.getOffset(), "block.captured"); 768 769 // Compute the address of the thing we're going to move into the 770 // block literal. 771 Address src = Address::invalid(); 772 if (BlockInfo && CI.isNested()) { 773 // We need to use the capture from the enclosing block. 774 const CGBlockInfo::Capture &enclosingCapture = 775 BlockInfo->getCapture(variable); 776 777 // This is a [[type]]*, except that a byref entry wil just be an i8**. 778 src = Builder.CreateStructGEP(LoadBlockStruct(), 779 enclosingCapture.getIndex(), 780 enclosingCapture.getOffset(), 781 "block.capture.addr"); 782 } else if (blockDecl->isConversionFromLambda()) { 783 // The lambda capture in a lambda's conversion-to-block-pointer is 784 // special; we'll simply emit it directly. 785 src = Address::invalid(); 786 } else { 787 // Just look it up in the locals map, which will give us back a 788 // [[type]]*. If that doesn't work, do the more elaborate DRE 789 // emission. 790 auto it = LocalDeclMap.find(variable); 791 if (it != LocalDeclMap.end()) { 792 src = it->second; 793 } else { 794 DeclRefExpr declRef( 795 const_cast<VarDecl *>(variable), 796 /*RefersToEnclosingVariableOrCapture*/ CI.isNested(), type, 797 VK_LValue, SourceLocation()); 798 src = EmitDeclRefLValue(&declRef).getAddress(); 799 } 800 } 801 802 // For byrefs, we just write the pointer to the byref struct into 803 // the block field. There's no need to chase the forwarding 804 // pointer at this point, since we're building something that will 805 // live a shorter life than the stack byref anyway. 806 if (CI.isByRef()) { 807 // Get a void* that points to the byref struct. 808 llvm::Value *byrefPointer; 809 if (CI.isNested()) 810 byrefPointer = Builder.CreateLoad(src, "byref.capture"); 811 else 812 byrefPointer = Builder.CreateBitCast(src.getPointer(), VoidPtrTy); 813 814 // Write that void* into the capture field. 815 Builder.CreateStore(byrefPointer, blockField); 816 817 // If we have a copy constructor, evaluate that into the block field. 818 } else if (const Expr *copyExpr = CI.getCopyExpr()) { 819 if (blockDecl->isConversionFromLambda()) { 820 // If we have a lambda conversion, emit the expression 821 // directly into the block instead. 822 AggValueSlot Slot = 823 AggValueSlot::forAddr(blockField, Qualifiers(), 824 AggValueSlot::IsDestructed, 825 AggValueSlot::DoesNotNeedGCBarriers, 826 AggValueSlot::IsNotAliased); 827 EmitAggExpr(copyExpr, Slot); 828 } else { 829 EmitSynthesizedCXXCopyCtor(blockField, src, copyExpr); 830 } 831 832 // If it's a reference variable, copy the reference into the block field. 833 } else if (type->isReferenceType()) { 834 llvm::Value *ref = Builder.CreateLoad(src, "ref.val"); 835 Builder.CreateStore(ref, blockField); 836 837 // If this is an ARC __strong block-pointer variable, don't do a 838 // block copy. 839 // 840 // TODO: this can be generalized into the normal initialization logic: 841 // we should never need to do a block-copy when initializing a local 842 // variable, because the local variable's lifetime should be strictly 843 // contained within the stack block's. 844 } else if (type.getObjCLifetime() == Qualifiers::OCL_Strong && 845 type->isBlockPointerType()) { 846 // Load the block and do a simple retain. 847 llvm::Value *value = Builder.CreateLoad(src, "block.captured_block"); 848 value = EmitARCRetainNonBlock(value); 849 850 // Do a primitive store to the block field. 851 Builder.CreateStore(value, blockField); 852 853 // Otherwise, fake up a POD copy into the block field. 854 } else { 855 // Fake up a new variable so that EmitScalarInit doesn't think 856 // we're referring to the variable in its own initializer. 857 ImplicitParamDecl blockFieldPseudoVar(getContext(), /*DC*/ nullptr, 858 SourceLocation(), /*name*/ nullptr, 859 type); 860 861 // We use one of these or the other depending on whether the 862 // reference is nested. 863 DeclRefExpr declRef(const_cast<VarDecl *>(variable), 864 /*RefersToEnclosingVariableOrCapture*/ CI.isNested(), 865 type, VK_LValue, SourceLocation()); 866 867 ImplicitCastExpr l2r(ImplicitCastExpr::OnStack, type, CK_LValueToRValue, 868 &declRef, VK_RValue); 869 // FIXME: Pass a specific location for the expr init so that the store is 870 // attributed to a reasonable location - otherwise it may be attributed to 871 // locations of subexpressions in the initialization. 872 EmitExprAsInit(&l2r, &blockFieldPseudoVar, 873 MakeAddrLValue(blockField, type, AlignmentSource::Decl), 874 /*captured by init*/ false); 875 } 876 877 // Activate the cleanup if layout pushed one. 878 if (!CI.isByRef()) { 879 EHScopeStack::stable_iterator cleanup = capture.getCleanup(); 880 if (cleanup.isValid()) 881 ActivateCleanupBlock(cleanup, blockInfo.DominatingIP); 882 } 883 } 884 885 // Cast to the converted block-pointer type, which happens (somewhat 886 // unfortunately) to be a pointer to function type. 887 llvm::Value *result = 888 Builder.CreateBitCast(blockAddr.getPointer(), 889 ConvertType(blockInfo.getBlockExpr()->getType())); 890 891 return result; 892 } 893 894 895 llvm::Type *CodeGenModule::getBlockDescriptorType() { 896 if (BlockDescriptorType) 897 return BlockDescriptorType; 898 899 llvm::Type *UnsignedLongTy = 900 getTypes().ConvertType(getContext().UnsignedLongTy); 901 902 // struct __block_descriptor { 903 // unsigned long reserved; 904 // unsigned long block_size; 905 // 906 // // later, the following will be added 907 // 908 // struct { 909 // void (*copyHelper)(); 910 // void (*copyHelper)(); 911 // } helpers; // !!! optional 912 // 913 // const char *signature; // the block signature 914 // const char *layout; // reserved 915 // }; 916 BlockDescriptorType = 917 llvm::StructType::create("struct.__block_descriptor", 918 UnsignedLongTy, UnsignedLongTy, nullptr); 919 920 // Now form a pointer to that. 921 BlockDescriptorType = llvm::PointerType::getUnqual(BlockDescriptorType); 922 return BlockDescriptorType; 923 } 924 925 llvm::Type *CodeGenModule::getGenericBlockLiteralType() { 926 if (GenericBlockLiteralType) 927 return GenericBlockLiteralType; 928 929 llvm::Type *BlockDescPtrTy = getBlockDescriptorType(); 930 931 // struct __block_literal_generic { 932 // void *__isa; 933 // int __flags; 934 // int __reserved; 935 // void (*__invoke)(void *); 936 // struct __block_descriptor *__descriptor; 937 // }; 938 GenericBlockLiteralType = 939 llvm::StructType::create("struct.__block_literal_generic", 940 VoidPtrTy, IntTy, IntTy, VoidPtrTy, 941 BlockDescPtrTy, nullptr); 942 943 return GenericBlockLiteralType; 944 } 945 946 RValue CodeGenFunction::EmitBlockCallExpr(const CallExpr *E, 947 ReturnValueSlot ReturnValue) { 948 const BlockPointerType *BPT = 949 E->getCallee()->getType()->getAs<BlockPointerType>(); 950 951 llvm::Value *Callee = EmitScalarExpr(E->getCallee()); 952 953 // Get a pointer to the generic block literal. 954 llvm::Type *BlockLiteralTy = 955 llvm::PointerType::getUnqual(CGM.getGenericBlockLiteralType()); 956 957 // Bitcast the callee to a block literal. 958 llvm::Value *BlockLiteral = 959 Builder.CreateBitCast(Callee, BlockLiteralTy, "block.literal"); 960 961 // Get the function pointer from the literal. 962 llvm::Value *FuncPtr = 963 Builder.CreateStructGEP(CGM.getGenericBlockLiteralType(), BlockLiteral, 3); 964 965 BlockLiteral = Builder.CreateBitCast(BlockLiteral, VoidPtrTy); 966 967 // Add the block literal. 968 CallArgList Args; 969 Args.add(RValue::get(BlockLiteral), getContext().VoidPtrTy); 970 971 QualType FnType = BPT->getPointeeType(); 972 973 // And the rest of the arguments. 974 EmitCallArgs(Args, FnType->getAs<FunctionProtoType>(), E->arguments()); 975 976 // Load the function. 977 llvm::Value *Func = Builder.CreateAlignedLoad(FuncPtr, getPointerAlign()); 978 979 const FunctionType *FuncTy = FnType->castAs<FunctionType>(); 980 const CGFunctionInfo &FnInfo = 981 CGM.getTypes().arrangeBlockFunctionCall(Args, FuncTy); 982 983 // Cast the function pointer to the right type. 984 llvm::Type *BlockFTy = CGM.getTypes().GetFunctionType(FnInfo); 985 986 llvm::Type *BlockFTyPtr = llvm::PointerType::getUnqual(BlockFTy); 987 Func = Builder.CreateBitCast(Func, BlockFTyPtr); 988 989 // And call the block. 990 return EmitCall(FnInfo, Func, ReturnValue, Args); 991 } 992 993 Address CodeGenFunction::GetAddrOfBlockDecl(const VarDecl *variable, 994 bool isByRef) { 995 assert(BlockInfo && "evaluating block ref without block information?"); 996 const CGBlockInfo::Capture &capture = BlockInfo->getCapture(variable); 997 998 // Handle constant captures. 999 if (capture.isConstant()) return LocalDeclMap.find(variable)->second; 1000 1001 Address addr = 1002 Builder.CreateStructGEP(LoadBlockStruct(), capture.getIndex(), 1003 capture.getOffset(), "block.capture.addr"); 1004 1005 if (isByRef) { 1006 // addr should be a void** right now. Load, then cast the result 1007 // to byref*. 1008 1009 auto &byrefInfo = getBlockByrefInfo(variable); 1010 addr = Address(Builder.CreateLoad(addr), byrefInfo.ByrefAlignment); 1011 1012 auto byrefPointerType = llvm::PointerType::get(byrefInfo.Type, 0); 1013 addr = Builder.CreateBitCast(addr, byrefPointerType, "byref.addr"); 1014 1015 addr = emitBlockByrefAddress(addr, byrefInfo, /*follow*/ true, 1016 variable->getName()); 1017 } 1018 1019 if (auto refType = variable->getType()->getAs<ReferenceType>()) { 1020 addr = EmitLoadOfReference(addr, refType); 1021 } 1022 1023 return addr; 1024 } 1025 1026 llvm::Constant * 1027 CodeGenModule::GetAddrOfGlobalBlock(const BlockExpr *blockExpr, 1028 const char *name) { 1029 CGBlockInfo blockInfo(blockExpr->getBlockDecl(), name); 1030 blockInfo.BlockExpression = blockExpr; 1031 1032 // Compute information about the layout, etc., of this block. 1033 computeBlockInfo(*this, nullptr, blockInfo); 1034 1035 // Using that metadata, generate the actual block function. 1036 llvm::Constant *blockFn; 1037 { 1038 CodeGenFunction::DeclMapTy LocalDeclMap; 1039 blockFn = CodeGenFunction(*this).GenerateBlockFunction(GlobalDecl(), 1040 blockInfo, 1041 LocalDeclMap, 1042 false); 1043 } 1044 blockFn = llvm::ConstantExpr::getBitCast(blockFn, VoidPtrTy); 1045 1046 return buildGlobalBlock(*this, blockInfo, blockFn); 1047 } 1048 1049 static llvm::Constant *buildGlobalBlock(CodeGenModule &CGM, 1050 const CGBlockInfo &blockInfo, 1051 llvm::Constant *blockFn) { 1052 assert(blockInfo.CanBeGlobal); 1053 1054 // Generate the constants for the block literal initializer. 1055 llvm::Constant *fields[BlockHeaderSize]; 1056 1057 // isa 1058 fields[0] = CGM.getNSConcreteGlobalBlock(); 1059 1060 // __flags 1061 BlockFlags flags = BLOCK_IS_GLOBAL | BLOCK_HAS_SIGNATURE; 1062 if (blockInfo.UsesStret) flags |= BLOCK_USE_STRET; 1063 1064 fields[1] = llvm::ConstantInt::get(CGM.IntTy, flags.getBitMask()); 1065 1066 // Reserved 1067 fields[2] = llvm::Constant::getNullValue(CGM.IntTy); 1068 1069 // Function 1070 fields[3] = blockFn; 1071 1072 // Descriptor 1073 fields[4] = buildBlockDescriptor(CGM, blockInfo); 1074 1075 llvm::Constant *init = llvm::ConstantStruct::getAnon(fields); 1076 1077 llvm::GlobalVariable *literal = 1078 new llvm::GlobalVariable(CGM.getModule(), 1079 init->getType(), 1080 /*constant*/ true, 1081 llvm::GlobalVariable::InternalLinkage, 1082 init, 1083 "__block_literal_global"); 1084 literal->setAlignment(blockInfo.BlockAlign.getQuantity()); 1085 1086 // Return a constant of the appropriately-casted type. 1087 llvm::Type *requiredType = 1088 CGM.getTypes().ConvertType(blockInfo.getBlockExpr()->getType()); 1089 return llvm::ConstantExpr::getBitCast(literal, requiredType); 1090 } 1091 1092 void CodeGenFunction::setBlockContextParameter(const ImplicitParamDecl *D, 1093 unsigned argNum, 1094 llvm::Value *arg) { 1095 assert(BlockInfo && "not emitting prologue of block invocation function?!"); 1096 1097 llvm::Value *localAddr = nullptr; 1098 if (CGM.getCodeGenOpts().OptimizationLevel == 0) { 1099 // Allocate a stack slot to let the debug info survive the RA. 1100 Address alloc = CreateMemTemp(D->getType(), D->getName() + ".addr"); 1101 Builder.CreateStore(arg, alloc); 1102 localAddr = Builder.CreateLoad(alloc); 1103 } 1104 1105 if (CGDebugInfo *DI = getDebugInfo()) { 1106 if (CGM.getCodeGenOpts().getDebugInfo() 1107 >= CodeGenOptions::LimitedDebugInfo) { 1108 DI->setLocation(D->getLocation()); 1109 DI->EmitDeclareOfBlockLiteralArgVariable(*BlockInfo, arg, argNum, 1110 localAddr, Builder); 1111 } 1112 } 1113 1114 SourceLocation StartLoc = BlockInfo->getBlockExpr()->getBody()->getLocStart(); 1115 ApplyDebugLocation Scope(*this, StartLoc); 1116 1117 // Instead of messing around with LocalDeclMap, just set the value 1118 // directly as BlockPointer. 1119 BlockPointer = Builder.CreateBitCast(arg, 1120 BlockInfo->StructureType->getPointerTo(), 1121 "block"); 1122 } 1123 1124 Address CodeGenFunction::LoadBlockStruct() { 1125 assert(BlockInfo && "not in a block invocation function!"); 1126 assert(BlockPointer && "no block pointer set!"); 1127 return Address(BlockPointer, BlockInfo->BlockAlign); 1128 } 1129 1130 llvm::Function * 1131 CodeGenFunction::GenerateBlockFunction(GlobalDecl GD, 1132 const CGBlockInfo &blockInfo, 1133 const DeclMapTy &ldm, 1134 bool IsLambdaConversionToBlock) { 1135 const BlockDecl *blockDecl = blockInfo.getBlockDecl(); 1136 1137 CurGD = GD; 1138 1139 CurEHLocation = blockInfo.getBlockExpr()->getLocEnd(); 1140 1141 BlockInfo = &blockInfo; 1142 1143 // Arrange for local static and local extern declarations to appear 1144 // to be local to this function as well, in case they're directly 1145 // referenced in a block. 1146 for (DeclMapTy::const_iterator i = ldm.begin(), e = ldm.end(); i != e; ++i) { 1147 const auto *var = dyn_cast<VarDecl>(i->first); 1148 if (var && !var->hasLocalStorage()) 1149 setAddrOfLocalVar(var, i->second); 1150 } 1151 1152 // Begin building the function declaration. 1153 1154 // Build the argument list. 1155 FunctionArgList args; 1156 1157 // The first argument is the block pointer. Just take it as a void* 1158 // and cast it later. 1159 QualType selfTy = getContext().VoidPtrTy; 1160 IdentifierInfo *II = &CGM.getContext().Idents.get(".block_descriptor"); 1161 1162 ImplicitParamDecl selfDecl(getContext(), const_cast<BlockDecl*>(blockDecl), 1163 SourceLocation(), II, selfTy); 1164 args.push_back(&selfDecl); 1165 1166 // Now add the rest of the parameters. 1167 args.append(blockDecl->param_begin(), blockDecl->param_end()); 1168 1169 // Create the function declaration. 1170 const FunctionProtoType *fnType = blockInfo.getBlockExpr()->getFunctionType(); 1171 const CGFunctionInfo &fnInfo = CGM.getTypes().arrangeFreeFunctionDeclaration( 1172 fnType->getReturnType(), args, fnType->getExtInfo(), 1173 fnType->isVariadic()); 1174 if (CGM.ReturnSlotInterferesWithArgs(fnInfo)) 1175 blockInfo.UsesStret = true; 1176 1177 llvm::FunctionType *fnLLVMType = CGM.getTypes().GetFunctionType(fnInfo); 1178 1179 StringRef name = CGM.getBlockMangledName(GD, blockDecl); 1180 llvm::Function *fn = llvm::Function::Create( 1181 fnLLVMType, llvm::GlobalValue::InternalLinkage, name, &CGM.getModule()); 1182 CGM.SetInternalFunctionAttributes(blockDecl, fn, fnInfo); 1183 1184 // Begin generating the function. 1185 StartFunction(blockDecl, fnType->getReturnType(), fn, fnInfo, args, 1186 blockDecl->getLocation(), 1187 blockInfo.getBlockExpr()->getBody()->getLocStart()); 1188 1189 // Okay. Undo some of what StartFunction did. 1190 1191 // At -O0 we generate an explicit alloca for the BlockPointer, so the RA 1192 // won't delete the dbg.declare intrinsics for captured variables. 1193 llvm::Value *BlockPointerDbgLoc = BlockPointer; 1194 if (CGM.getCodeGenOpts().OptimizationLevel == 0) { 1195 // Allocate a stack slot for it, so we can point the debugger to it 1196 Address Alloca = CreateTempAlloca(BlockPointer->getType(), 1197 getPointerAlign(), 1198 "block.addr"); 1199 // Set the DebugLocation to empty, so the store is recognized as a 1200 // frame setup instruction by llvm::DwarfDebug::beginFunction(). 1201 auto NL = ApplyDebugLocation::CreateEmpty(*this); 1202 Builder.CreateStore(BlockPointer, Alloca); 1203 BlockPointerDbgLoc = Alloca.getPointer(); 1204 } 1205 1206 // If we have a C++ 'this' reference, go ahead and force it into 1207 // existence now. 1208 if (blockDecl->capturesCXXThis()) { 1209 Address addr = 1210 Builder.CreateStructGEP(LoadBlockStruct(), blockInfo.CXXThisIndex, 1211 blockInfo.CXXThisOffset, "block.captured-this"); 1212 CXXThisValue = Builder.CreateLoad(addr, "this"); 1213 } 1214 1215 // Also force all the constant captures. 1216 for (const auto &CI : blockDecl->captures()) { 1217 const VarDecl *variable = CI.getVariable(); 1218 const CGBlockInfo::Capture &capture = blockInfo.getCapture(variable); 1219 if (!capture.isConstant()) continue; 1220 1221 CharUnits align = getContext().getDeclAlign(variable); 1222 Address alloca = 1223 CreateMemTemp(variable->getType(), align, "block.captured-const"); 1224 1225 Builder.CreateStore(capture.getConstant(), alloca); 1226 1227 setAddrOfLocalVar(variable, alloca); 1228 } 1229 1230 // Save a spot to insert the debug information for all the DeclRefExprs. 1231 llvm::BasicBlock *entry = Builder.GetInsertBlock(); 1232 llvm::BasicBlock::iterator entry_ptr = Builder.GetInsertPoint(); 1233 --entry_ptr; 1234 1235 if (IsLambdaConversionToBlock) 1236 EmitLambdaBlockInvokeBody(); 1237 else { 1238 PGO.assignRegionCounters(blockDecl, fn); 1239 incrementProfileCounter(blockDecl->getBody()); 1240 EmitStmt(blockDecl->getBody()); 1241 } 1242 1243 // Remember where we were... 1244 llvm::BasicBlock *resume = Builder.GetInsertBlock(); 1245 1246 // Go back to the entry. 1247 ++entry_ptr; 1248 Builder.SetInsertPoint(entry, entry_ptr); 1249 1250 // Emit debug information for all the DeclRefExprs. 1251 // FIXME: also for 'this' 1252 if (CGDebugInfo *DI = getDebugInfo()) { 1253 for (const auto &CI : blockDecl->captures()) { 1254 const VarDecl *variable = CI.getVariable(); 1255 DI->EmitLocation(Builder, variable->getLocation()); 1256 1257 if (CGM.getCodeGenOpts().getDebugInfo() 1258 >= CodeGenOptions::LimitedDebugInfo) { 1259 const CGBlockInfo::Capture &capture = blockInfo.getCapture(variable); 1260 if (capture.isConstant()) { 1261 auto addr = LocalDeclMap.find(variable)->second; 1262 DI->EmitDeclareOfAutoVariable(variable, addr.getPointer(), 1263 Builder); 1264 continue; 1265 } 1266 1267 DI->EmitDeclareOfBlockDeclRefVariable(variable, BlockPointerDbgLoc, 1268 Builder, blockInfo, 1269 entry_ptr == entry->end() 1270 ? nullptr : entry_ptr); 1271 } 1272 } 1273 // Recover location if it was changed in the above loop. 1274 DI->EmitLocation(Builder, 1275 cast<CompoundStmt>(blockDecl->getBody())->getRBracLoc()); 1276 } 1277 1278 // And resume where we left off. 1279 if (resume == nullptr) 1280 Builder.ClearInsertionPoint(); 1281 else 1282 Builder.SetInsertPoint(resume); 1283 1284 FinishFunction(cast<CompoundStmt>(blockDecl->getBody())->getRBracLoc()); 1285 1286 return fn; 1287 } 1288 1289 /* 1290 notes.push_back(HelperInfo()); 1291 HelperInfo ¬e = notes.back(); 1292 note.index = capture.getIndex(); 1293 note.RequiresCopying = (ci->hasCopyExpr() || BlockRequiresCopying(type)); 1294 note.cxxbar_import = ci->getCopyExpr(); 1295 1296 if (ci->isByRef()) { 1297 note.flag = BLOCK_FIELD_IS_BYREF; 1298 if (type.isObjCGCWeak()) 1299 note.flag |= BLOCK_FIELD_IS_WEAK; 1300 } else if (type->isBlockPointerType()) { 1301 note.flag = BLOCK_FIELD_IS_BLOCK; 1302 } else { 1303 note.flag = BLOCK_FIELD_IS_OBJECT; 1304 } 1305 */ 1306 1307 /// Generate the copy-helper function for a block closure object: 1308 /// static void block_copy_helper(block_t *dst, block_t *src); 1309 /// The runtime will have previously initialized 'dst' by doing a 1310 /// bit-copy of 'src'. 1311 /// 1312 /// Note that this copies an entire block closure object to the heap; 1313 /// it should not be confused with a 'byref copy helper', which moves 1314 /// the contents of an individual __block variable to the heap. 1315 llvm::Constant * 1316 CodeGenFunction::GenerateCopyHelperFunction(const CGBlockInfo &blockInfo) { 1317 ASTContext &C = getContext(); 1318 1319 FunctionArgList args; 1320 ImplicitParamDecl dstDecl(getContext(), nullptr, SourceLocation(), nullptr, 1321 C.VoidPtrTy); 1322 args.push_back(&dstDecl); 1323 ImplicitParamDecl srcDecl(getContext(), nullptr, SourceLocation(), nullptr, 1324 C.VoidPtrTy); 1325 args.push_back(&srcDecl); 1326 1327 const CGFunctionInfo &FI = CGM.getTypes().arrangeFreeFunctionDeclaration( 1328 C.VoidTy, args, FunctionType::ExtInfo(), /*variadic=*/false); 1329 1330 // FIXME: it would be nice if these were mergeable with things with 1331 // identical semantics. 1332 llvm::FunctionType *LTy = CGM.getTypes().GetFunctionType(FI); 1333 1334 llvm::Function *Fn = 1335 llvm::Function::Create(LTy, llvm::GlobalValue::InternalLinkage, 1336 "__copy_helper_block_", &CGM.getModule()); 1337 1338 IdentifierInfo *II 1339 = &CGM.getContext().Idents.get("__copy_helper_block_"); 1340 1341 FunctionDecl *FD = FunctionDecl::Create(C, 1342 C.getTranslationUnitDecl(), 1343 SourceLocation(), 1344 SourceLocation(), II, C.VoidTy, 1345 nullptr, SC_Static, 1346 false, 1347 false); 1348 1349 CGM.SetInternalFunctionAttributes(nullptr, Fn, FI); 1350 1351 auto NL = ApplyDebugLocation::CreateEmpty(*this); 1352 StartFunction(FD, C.VoidTy, Fn, FI, args); 1353 // Create a scope with an artificial location for the body of this function. 1354 auto AL = ApplyDebugLocation::CreateArtificial(*this); 1355 llvm::Type *structPtrTy = blockInfo.StructureType->getPointerTo(); 1356 1357 Address src = GetAddrOfLocalVar(&srcDecl); 1358 src = Address(Builder.CreateLoad(src), blockInfo.BlockAlign); 1359 src = Builder.CreateBitCast(src, structPtrTy, "block.source"); 1360 1361 Address dst = GetAddrOfLocalVar(&dstDecl); 1362 dst = Address(Builder.CreateLoad(dst), blockInfo.BlockAlign); 1363 dst = Builder.CreateBitCast(dst, structPtrTy, "block.dest"); 1364 1365 const BlockDecl *blockDecl = blockInfo.getBlockDecl(); 1366 1367 for (const auto &CI : blockDecl->captures()) { 1368 const VarDecl *variable = CI.getVariable(); 1369 QualType type = variable->getType(); 1370 1371 const CGBlockInfo::Capture &capture = blockInfo.getCapture(variable); 1372 if (capture.isConstant()) continue; 1373 1374 const Expr *copyExpr = CI.getCopyExpr(); 1375 BlockFieldFlags flags; 1376 1377 bool useARCWeakCopy = false; 1378 bool useARCStrongCopy = false; 1379 1380 if (copyExpr) { 1381 assert(!CI.isByRef()); 1382 // don't bother computing flags 1383 1384 } else if (CI.isByRef()) { 1385 flags = BLOCK_FIELD_IS_BYREF; 1386 if (type.isObjCGCWeak()) 1387 flags |= BLOCK_FIELD_IS_WEAK; 1388 1389 } else if (type->isObjCRetainableType()) { 1390 flags = BLOCK_FIELD_IS_OBJECT; 1391 bool isBlockPointer = type->isBlockPointerType(); 1392 if (isBlockPointer) 1393 flags = BLOCK_FIELD_IS_BLOCK; 1394 1395 // Special rules for ARC captures: 1396 Qualifiers qs = type.getQualifiers(); 1397 1398 // We need to register __weak direct captures with the runtime. 1399 if (qs.getObjCLifetime() == Qualifiers::OCL_Weak) { 1400 useARCWeakCopy = true; 1401 1402 // We need to retain the copied value for __strong direct captures. 1403 } else if (qs.getObjCLifetime() == Qualifiers::OCL_Strong) { 1404 // If it's a block pointer, we have to copy the block and 1405 // assign that to the destination pointer, so we might as 1406 // well use _Block_object_assign. Otherwise we can avoid that. 1407 if (!isBlockPointer) 1408 useARCStrongCopy = true; 1409 1410 // Non-ARC captures of retainable pointers are strong and 1411 // therefore require a call to _Block_object_assign. 1412 } else if (!qs.getObjCLifetime() && !getLangOpts().ObjCAutoRefCount) { 1413 // fall through 1414 1415 // Otherwise the memcpy is fine. 1416 } else { 1417 continue; 1418 } 1419 1420 // For all other types, the memcpy is fine. 1421 } else { 1422 continue; 1423 } 1424 1425 unsigned index = capture.getIndex(); 1426 Address srcField = Builder.CreateStructGEP(src, index, capture.getOffset()); 1427 Address dstField = Builder.CreateStructGEP(dst, index, capture.getOffset()); 1428 1429 // If there's an explicit copy expression, we do that. 1430 if (copyExpr) { 1431 EmitSynthesizedCXXCopyCtor(dstField, srcField, copyExpr); 1432 } else if (useARCWeakCopy) { 1433 EmitARCCopyWeak(dstField, srcField); 1434 } else { 1435 llvm::Value *srcValue = Builder.CreateLoad(srcField, "blockcopy.src"); 1436 if (useARCStrongCopy) { 1437 // At -O0, store null into the destination field (so that the 1438 // storeStrong doesn't over-release) and then call storeStrong. 1439 // This is a workaround to not having an initStrong call. 1440 if (CGM.getCodeGenOpts().OptimizationLevel == 0) { 1441 auto *ty = cast<llvm::PointerType>(srcValue->getType()); 1442 llvm::Value *null = llvm::ConstantPointerNull::get(ty); 1443 Builder.CreateStore(null, dstField); 1444 EmitARCStoreStrongCall(dstField, srcValue, true); 1445 1446 // With optimization enabled, take advantage of the fact that 1447 // the blocks runtime guarantees a memcpy of the block data, and 1448 // just emit a retain of the src field. 1449 } else { 1450 EmitARCRetainNonBlock(srcValue); 1451 1452 // We don't need this anymore, so kill it. It's not quite 1453 // worth the annoyance to avoid creating it in the first place. 1454 cast<llvm::Instruction>(dstField.getPointer())->eraseFromParent(); 1455 } 1456 } else { 1457 srcValue = Builder.CreateBitCast(srcValue, VoidPtrTy); 1458 llvm::Value *dstAddr = 1459 Builder.CreateBitCast(dstField.getPointer(), VoidPtrTy); 1460 llvm::Value *args[] = { 1461 dstAddr, srcValue, llvm::ConstantInt::get(Int32Ty, flags.getBitMask()) 1462 }; 1463 1464 bool copyCanThrow = false; 1465 if (CI.isByRef() && variable->getType()->getAsCXXRecordDecl()) { 1466 const Expr *copyExpr = 1467 CGM.getContext().getBlockVarCopyInits(variable); 1468 if (copyExpr) { 1469 copyCanThrow = true; // FIXME: reuse the noexcept logic 1470 } 1471 } 1472 1473 if (copyCanThrow) { 1474 EmitRuntimeCallOrInvoke(CGM.getBlockObjectAssign(), args); 1475 } else { 1476 EmitNounwindRuntimeCall(CGM.getBlockObjectAssign(), args); 1477 } 1478 } 1479 } 1480 } 1481 1482 FinishFunction(); 1483 1484 return llvm::ConstantExpr::getBitCast(Fn, VoidPtrTy); 1485 } 1486 1487 /// Generate the destroy-helper function for a block closure object: 1488 /// static void block_destroy_helper(block_t *theBlock); 1489 /// 1490 /// Note that this destroys a heap-allocated block closure object; 1491 /// it should not be confused with a 'byref destroy helper', which 1492 /// destroys the heap-allocated contents of an individual __block 1493 /// variable. 1494 llvm::Constant * 1495 CodeGenFunction::GenerateDestroyHelperFunction(const CGBlockInfo &blockInfo) { 1496 ASTContext &C = getContext(); 1497 1498 FunctionArgList args; 1499 ImplicitParamDecl srcDecl(getContext(), nullptr, SourceLocation(), nullptr, 1500 C.VoidPtrTy); 1501 args.push_back(&srcDecl); 1502 1503 const CGFunctionInfo &FI = CGM.getTypes().arrangeFreeFunctionDeclaration( 1504 C.VoidTy, args, FunctionType::ExtInfo(), /*variadic=*/false); 1505 1506 // FIXME: We'd like to put these into a mergable by content, with 1507 // internal linkage. 1508 llvm::FunctionType *LTy = CGM.getTypes().GetFunctionType(FI); 1509 1510 llvm::Function *Fn = 1511 llvm::Function::Create(LTy, llvm::GlobalValue::InternalLinkage, 1512 "__destroy_helper_block_", &CGM.getModule()); 1513 1514 IdentifierInfo *II 1515 = &CGM.getContext().Idents.get("__destroy_helper_block_"); 1516 1517 FunctionDecl *FD = FunctionDecl::Create(C, C.getTranslationUnitDecl(), 1518 SourceLocation(), 1519 SourceLocation(), II, C.VoidTy, 1520 nullptr, SC_Static, 1521 false, false); 1522 1523 CGM.SetInternalFunctionAttributes(nullptr, Fn, FI); 1524 1525 // Create a scope with an artificial location for the body of this function. 1526 auto NL = ApplyDebugLocation::CreateEmpty(*this); 1527 StartFunction(FD, C.VoidTy, Fn, FI, args); 1528 auto AL = ApplyDebugLocation::CreateArtificial(*this); 1529 1530 llvm::Type *structPtrTy = blockInfo.StructureType->getPointerTo(); 1531 1532 Address src = GetAddrOfLocalVar(&srcDecl); 1533 src = Address(Builder.CreateLoad(src), blockInfo.BlockAlign); 1534 src = Builder.CreateBitCast(src, structPtrTy, "block"); 1535 1536 const BlockDecl *blockDecl = blockInfo.getBlockDecl(); 1537 1538 CodeGenFunction::RunCleanupsScope cleanups(*this); 1539 1540 for (const auto &CI : blockDecl->captures()) { 1541 const VarDecl *variable = CI.getVariable(); 1542 QualType type = variable->getType(); 1543 1544 const CGBlockInfo::Capture &capture = blockInfo.getCapture(variable); 1545 if (capture.isConstant()) continue; 1546 1547 BlockFieldFlags flags; 1548 const CXXDestructorDecl *dtor = nullptr; 1549 1550 bool useARCWeakDestroy = false; 1551 bool useARCStrongDestroy = false; 1552 1553 if (CI.isByRef()) { 1554 flags = BLOCK_FIELD_IS_BYREF; 1555 if (type.isObjCGCWeak()) 1556 flags |= BLOCK_FIELD_IS_WEAK; 1557 } else if (const CXXRecordDecl *record = type->getAsCXXRecordDecl()) { 1558 if (record->hasTrivialDestructor()) 1559 continue; 1560 dtor = record->getDestructor(); 1561 } else if (type->isObjCRetainableType()) { 1562 flags = BLOCK_FIELD_IS_OBJECT; 1563 if (type->isBlockPointerType()) 1564 flags = BLOCK_FIELD_IS_BLOCK; 1565 1566 // Special rules for ARC captures. 1567 Qualifiers qs = type.getQualifiers(); 1568 1569 // Use objc_storeStrong for __strong direct captures; the 1570 // dynamic tools really like it when we do this. 1571 if (qs.getObjCLifetime() == Qualifiers::OCL_Strong) { 1572 useARCStrongDestroy = true; 1573 1574 // Support __weak direct captures. 1575 } else if (qs.getObjCLifetime() == Qualifiers::OCL_Weak) { 1576 useARCWeakDestroy = true; 1577 1578 // Non-ARC captures are strong, and we need to use _Block_object_dispose. 1579 } else if (!qs.hasObjCLifetime() && !getLangOpts().ObjCAutoRefCount) { 1580 // fall through 1581 1582 // Otherwise, we have nothing to do. 1583 } else { 1584 continue; 1585 } 1586 } else { 1587 continue; 1588 } 1589 1590 Address srcField = 1591 Builder.CreateStructGEP(src, capture.getIndex(), capture.getOffset()); 1592 1593 // If there's an explicit copy expression, we do that. 1594 if (dtor) { 1595 PushDestructorCleanup(dtor, srcField); 1596 1597 // If this is a __weak capture, emit the release directly. 1598 } else if (useARCWeakDestroy) { 1599 EmitARCDestroyWeak(srcField); 1600 1601 // Destroy strong objects with a call if requested. 1602 } else if (useARCStrongDestroy) { 1603 EmitARCDestroyStrong(srcField, ARCImpreciseLifetime); 1604 1605 // Otherwise we call _Block_object_dispose. It wouldn't be too 1606 // hard to just emit this as a cleanup if we wanted to make sure 1607 // that things were done in reverse. 1608 } else { 1609 llvm::Value *value = Builder.CreateLoad(srcField); 1610 value = Builder.CreateBitCast(value, VoidPtrTy); 1611 BuildBlockRelease(value, flags); 1612 } 1613 } 1614 1615 cleanups.ForceCleanup(); 1616 1617 FinishFunction(); 1618 1619 return llvm::ConstantExpr::getBitCast(Fn, VoidPtrTy); 1620 } 1621 1622 namespace { 1623 1624 /// Emits the copy/dispose helper functions for a __block object of id type. 1625 class ObjectByrefHelpers final : public BlockByrefHelpers { 1626 BlockFieldFlags Flags; 1627 1628 public: 1629 ObjectByrefHelpers(CharUnits alignment, BlockFieldFlags flags) 1630 : BlockByrefHelpers(alignment), Flags(flags) {} 1631 1632 void emitCopy(CodeGenFunction &CGF, Address destField, 1633 Address srcField) override { 1634 destField = CGF.Builder.CreateBitCast(destField, CGF.VoidPtrTy); 1635 1636 srcField = CGF.Builder.CreateBitCast(srcField, CGF.VoidPtrPtrTy); 1637 llvm::Value *srcValue = CGF.Builder.CreateLoad(srcField); 1638 1639 unsigned flags = (Flags | BLOCK_BYREF_CALLER).getBitMask(); 1640 1641 llvm::Value *flagsVal = llvm::ConstantInt::get(CGF.Int32Ty, flags); 1642 llvm::Value *fn = CGF.CGM.getBlockObjectAssign(); 1643 1644 llvm::Value *args[] = { destField.getPointer(), srcValue, flagsVal }; 1645 CGF.EmitNounwindRuntimeCall(fn, args); 1646 } 1647 1648 void emitDispose(CodeGenFunction &CGF, Address field) override { 1649 field = CGF.Builder.CreateBitCast(field, CGF.Int8PtrTy->getPointerTo(0)); 1650 llvm::Value *value = CGF.Builder.CreateLoad(field); 1651 1652 CGF.BuildBlockRelease(value, Flags | BLOCK_BYREF_CALLER); 1653 } 1654 1655 void profileImpl(llvm::FoldingSetNodeID &id) const override { 1656 id.AddInteger(Flags.getBitMask()); 1657 } 1658 }; 1659 1660 /// Emits the copy/dispose helpers for an ARC __block __weak variable. 1661 class ARCWeakByrefHelpers final : public BlockByrefHelpers { 1662 public: 1663 ARCWeakByrefHelpers(CharUnits alignment) : BlockByrefHelpers(alignment) {} 1664 1665 void emitCopy(CodeGenFunction &CGF, Address destField, 1666 Address srcField) override { 1667 CGF.EmitARCMoveWeak(destField, srcField); 1668 } 1669 1670 void emitDispose(CodeGenFunction &CGF, Address field) override { 1671 CGF.EmitARCDestroyWeak(field); 1672 } 1673 1674 void profileImpl(llvm::FoldingSetNodeID &id) const override { 1675 // 0 is distinguishable from all pointers and byref flags 1676 id.AddInteger(0); 1677 } 1678 }; 1679 1680 /// Emits the copy/dispose helpers for an ARC __block __strong variable 1681 /// that's not of block-pointer type. 1682 class ARCStrongByrefHelpers final : public BlockByrefHelpers { 1683 public: 1684 ARCStrongByrefHelpers(CharUnits alignment) : BlockByrefHelpers(alignment) {} 1685 1686 void emitCopy(CodeGenFunction &CGF, Address destField, 1687 Address srcField) override { 1688 // Do a "move" by copying the value and then zeroing out the old 1689 // variable. 1690 1691 llvm::Value *value = CGF.Builder.CreateLoad(srcField); 1692 1693 llvm::Value *null = 1694 llvm::ConstantPointerNull::get(cast<llvm::PointerType>(value->getType())); 1695 1696 if (CGF.CGM.getCodeGenOpts().OptimizationLevel == 0) { 1697 CGF.Builder.CreateStore(null, destField); 1698 CGF.EmitARCStoreStrongCall(destField, value, /*ignored*/ true); 1699 CGF.EmitARCStoreStrongCall(srcField, null, /*ignored*/ true); 1700 return; 1701 } 1702 CGF.Builder.CreateStore(value, destField); 1703 CGF.Builder.CreateStore(null, srcField); 1704 } 1705 1706 void emitDispose(CodeGenFunction &CGF, Address field) override { 1707 CGF.EmitARCDestroyStrong(field, ARCImpreciseLifetime); 1708 } 1709 1710 void profileImpl(llvm::FoldingSetNodeID &id) const override { 1711 // 1 is distinguishable from all pointers and byref flags 1712 id.AddInteger(1); 1713 } 1714 }; 1715 1716 /// Emits the copy/dispose helpers for an ARC __block __strong 1717 /// variable that's of block-pointer type. 1718 class ARCStrongBlockByrefHelpers final : public BlockByrefHelpers { 1719 public: 1720 ARCStrongBlockByrefHelpers(CharUnits alignment) 1721 : BlockByrefHelpers(alignment) {} 1722 1723 void emitCopy(CodeGenFunction &CGF, Address destField, 1724 Address srcField) override { 1725 // Do the copy with objc_retainBlock; that's all that 1726 // _Block_object_assign would do anyway, and we'd have to pass the 1727 // right arguments to make sure it doesn't get no-op'ed. 1728 llvm::Value *oldValue = CGF.Builder.CreateLoad(srcField); 1729 llvm::Value *copy = CGF.EmitARCRetainBlock(oldValue, /*mandatory*/ true); 1730 CGF.Builder.CreateStore(copy, destField); 1731 } 1732 1733 void emitDispose(CodeGenFunction &CGF, Address field) override { 1734 CGF.EmitARCDestroyStrong(field, ARCImpreciseLifetime); 1735 } 1736 1737 void profileImpl(llvm::FoldingSetNodeID &id) const override { 1738 // 2 is distinguishable from all pointers and byref flags 1739 id.AddInteger(2); 1740 } 1741 }; 1742 1743 /// Emits the copy/dispose helpers for a __block variable with a 1744 /// nontrivial copy constructor or destructor. 1745 class CXXByrefHelpers final : public BlockByrefHelpers { 1746 QualType VarType; 1747 const Expr *CopyExpr; 1748 1749 public: 1750 CXXByrefHelpers(CharUnits alignment, QualType type, 1751 const Expr *copyExpr) 1752 : BlockByrefHelpers(alignment), VarType(type), CopyExpr(copyExpr) {} 1753 1754 bool needsCopy() const override { return CopyExpr != nullptr; } 1755 void emitCopy(CodeGenFunction &CGF, Address destField, 1756 Address srcField) override { 1757 if (!CopyExpr) return; 1758 CGF.EmitSynthesizedCXXCopyCtor(destField, srcField, CopyExpr); 1759 } 1760 1761 void emitDispose(CodeGenFunction &CGF, Address field) override { 1762 EHScopeStack::stable_iterator cleanupDepth = CGF.EHStack.stable_begin(); 1763 CGF.PushDestructorCleanup(VarType, field); 1764 CGF.PopCleanupBlocks(cleanupDepth); 1765 } 1766 1767 void profileImpl(llvm::FoldingSetNodeID &id) const override { 1768 id.AddPointer(VarType.getCanonicalType().getAsOpaquePtr()); 1769 } 1770 }; 1771 } // end anonymous namespace 1772 1773 static llvm::Constant * 1774 generateByrefCopyHelper(CodeGenFunction &CGF, const BlockByrefInfo &byrefInfo, 1775 BlockByrefHelpers &generator) { 1776 ASTContext &Context = CGF.getContext(); 1777 1778 QualType R = Context.VoidTy; 1779 1780 FunctionArgList args; 1781 ImplicitParamDecl dst(CGF.getContext(), nullptr, SourceLocation(), nullptr, 1782 Context.VoidPtrTy); 1783 args.push_back(&dst); 1784 1785 ImplicitParamDecl src(CGF.getContext(), nullptr, SourceLocation(), nullptr, 1786 Context.VoidPtrTy); 1787 args.push_back(&src); 1788 1789 const CGFunctionInfo &FI = CGF.CGM.getTypes().arrangeFreeFunctionDeclaration( 1790 R, args, FunctionType::ExtInfo(), /*variadic=*/false); 1791 1792 llvm::FunctionType *LTy = CGF.CGM.getTypes().GetFunctionType(FI); 1793 1794 // FIXME: We'd like to put these into a mergable by content, with 1795 // internal linkage. 1796 llvm::Function *Fn = 1797 llvm::Function::Create(LTy, llvm::GlobalValue::InternalLinkage, 1798 "__Block_byref_object_copy_", &CGF.CGM.getModule()); 1799 1800 IdentifierInfo *II 1801 = &Context.Idents.get("__Block_byref_object_copy_"); 1802 1803 FunctionDecl *FD = FunctionDecl::Create(Context, 1804 Context.getTranslationUnitDecl(), 1805 SourceLocation(), 1806 SourceLocation(), II, R, nullptr, 1807 SC_Static, 1808 false, false); 1809 1810 CGF.CGM.SetInternalFunctionAttributes(nullptr, Fn, FI); 1811 1812 CGF.StartFunction(FD, R, Fn, FI, args); 1813 1814 if (generator.needsCopy()) { 1815 llvm::Type *byrefPtrType = byrefInfo.Type->getPointerTo(0); 1816 1817 // dst->x 1818 Address destField = CGF.GetAddrOfLocalVar(&dst); 1819 destField = Address(CGF.Builder.CreateLoad(destField), 1820 byrefInfo.ByrefAlignment); 1821 destField = CGF.Builder.CreateBitCast(destField, byrefPtrType); 1822 destField = CGF.emitBlockByrefAddress(destField, byrefInfo, false, 1823 "dest-object"); 1824 1825 // src->x 1826 Address srcField = CGF.GetAddrOfLocalVar(&src); 1827 srcField = Address(CGF.Builder.CreateLoad(srcField), 1828 byrefInfo.ByrefAlignment); 1829 srcField = CGF.Builder.CreateBitCast(srcField, byrefPtrType); 1830 srcField = CGF.emitBlockByrefAddress(srcField, byrefInfo, false, 1831 "src-object"); 1832 1833 generator.emitCopy(CGF, destField, srcField); 1834 } 1835 1836 CGF.FinishFunction(); 1837 1838 return llvm::ConstantExpr::getBitCast(Fn, CGF.Int8PtrTy); 1839 } 1840 1841 /// Build the copy helper for a __block variable. 1842 static llvm::Constant *buildByrefCopyHelper(CodeGenModule &CGM, 1843 const BlockByrefInfo &byrefInfo, 1844 BlockByrefHelpers &generator) { 1845 CodeGenFunction CGF(CGM); 1846 return generateByrefCopyHelper(CGF, byrefInfo, generator); 1847 } 1848 1849 /// Generate code for a __block variable's dispose helper. 1850 static llvm::Constant * 1851 generateByrefDisposeHelper(CodeGenFunction &CGF, 1852 const BlockByrefInfo &byrefInfo, 1853 BlockByrefHelpers &generator) { 1854 ASTContext &Context = CGF.getContext(); 1855 QualType R = Context.VoidTy; 1856 1857 FunctionArgList args; 1858 ImplicitParamDecl src(CGF.getContext(), nullptr, SourceLocation(), nullptr, 1859 Context.VoidPtrTy); 1860 args.push_back(&src); 1861 1862 const CGFunctionInfo &FI = CGF.CGM.getTypes().arrangeFreeFunctionDeclaration( 1863 R, args, FunctionType::ExtInfo(), /*variadic=*/false); 1864 1865 llvm::FunctionType *LTy = CGF.CGM.getTypes().GetFunctionType(FI); 1866 1867 // FIXME: We'd like to put these into a mergable by content, with 1868 // internal linkage. 1869 llvm::Function *Fn = 1870 llvm::Function::Create(LTy, llvm::GlobalValue::InternalLinkage, 1871 "__Block_byref_object_dispose_", 1872 &CGF.CGM.getModule()); 1873 1874 IdentifierInfo *II 1875 = &Context.Idents.get("__Block_byref_object_dispose_"); 1876 1877 FunctionDecl *FD = FunctionDecl::Create(Context, 1878 Context.getTranslationUnitDecl(), 1879 SourceLocation(), 1880 SourceLocation(), II, R, nullptr, 1881 SC_Static, 1882 false, false); 1883 1884 CGF.CGM.SetInternalFunctionAttributes(nullptr, Fn, FI); 1885 1886 CGF.StartFunction(FD, R, Fn, FI, args); 1887 1888 if (generator.needsDispose()) { 1889 Address addr = CGF.GetAddrOfLocalVar(&src); 1890 addr = Address(CGF.Builder.CreateLoad(addr), byrefInfo.ByrefAlignment); 1891 auto byrefPtrType = byrefInfo.Type->getPointerTo(0); 1892 addr = CGF.Builder.CreateBitCast(addr, byrefPtrType); 1893 addr = CGF.emitBlockByrefAddress(addr, byrefInfo, false, "object"); 1894 1895 generator.emitDispose(CGF, addr); 1896 } 1897 1898 CGF.FinishFunction(); 1899 1900 return llvm::ConstantExpr::getBitCast(Fn, CGF.Int8PtrTy); 1901 } 1902 1903 /// Build the dispose helper for a __block variable. 1904 static llvm::Constant *buildByrefDisposeHelper(CodeGenModule &CGM, 1905 const BlockByrefInfo &byrefInfo, 1906 BlockByrefHelpers &generator) { 1907 CodeGenFunction CGF(CGM); 1908 return generateByrefDisposeHelper(CGF, byrefInfo, generator); 1909 } 1910 1911 /// Lazily build the copy and dispose helpers for a __block variable 1912 /// with the given information. 1913 template <class T> 1914 static T *buildByrefHelpers(CodeGenModule &CGM, const BlockByrefInfo &byrefInfo, 1915 T &&generator) { 1916 llvm::FoldingSetNodeID id; 1917 generator.Profile(id); 1918 1919 void *insertPos; 1920 BlockByrefHelpers *node 1921 = CGM.ByrefHelpersCache.FindNodeOrInsertPos(id, insertPos); 1922 if (node) return static_cast<T*>(node); 1923 1924 generator.CopyHelper = buildByrefCopyHelper(CGM, byrefInfo, generator); 1925 generator.DisposeHelper = buildByrefDisposeHelper(CGM, byrefInfo, generator); 1926 1927 T *copy = new (CGM.getContext()) T(std::move(generator)); 1928 CGM.ByrefHelpersCache.InsertNode(copy, insertPos); 1929 return copy; 1930 } 1931 1932 /// Build the copy and dispose helpers for the given __block variable 1933 /// emission. Places the helpers in the global cache. Returns null 1934 /// if no helpers are required. 1935 BlockByrefHelpers * 1936 CodeGenFunction::buildByrefHelpers(llvm::StructType &byrefType, 1937 const AutoVarEmission &emission) { 1938 const VarDecl &var = *emission.Variable; 1939 QualType type = var.getType(); 1940 1941 auto &byrefInfo = getBlockByrefInfo(&var); 1942 1943 // The alignment we care about for the purposes of uniquing byref 1944 // helpers is the alignment of the actual byref value field. 1945 CharUnits valueAlignment = 1946 byrefInfo.ByrefAlignment.alignmentAtOffset(byrefInfo.FieldOffset); 1947 1948 if (const CXXRecordDecl *record = type->getAsCXXRecordDecl()) { 1949 const Expr *copyExpr = CGM.getContext().getBlockVarCopyInits(&var); 1950 if (!copyExpr && record->hasTrivialDestructor()) return nullptr; 1951 1952 return ::buildByrefHelpers( 1953 CGM, byrefInfo, CXXByrefHelpers(valueAlignment, type, copyExpr)); 1954 } 1955 1956 // Otherwise, if we don't have a retainable type, there's nothing to do. 1957 // that the runtime does extra copies. 1958 if (!type->isObjCRetainableType()) return nullptr; 1959 1960 Qualifiers qs = type.getQualifiers(); 1961 1962 // If we have lifetime, that dominates. 1963 if (Qualifiers::ObjCLifetime lifetime = qs.getObjCLifetime()) { 1964 switch (lifetime) { 1965 case Qualifiers::OCL_None: llvm_unreachable("impossible"); 1966 1967 // These are just bits as far as the runtime is concerned. 1968 case Qualifiers::OCL_ExplicitNone: 1969 case Qualifiers::OCL_Autoreleasing: 1970 return nullptr; 1971 1972 // Tell the runtime that this is ARC __weak, called by the 1973 // byref routines. 1974 case Qualifiers::OCL_Weak: 1975 return ::buildByrefHelpers(CGM, byrefInfo, 1976 ARCWeakByrefHelpers(valueAlignment)); 1977 1978 // ARC __strong __block variables need to be retained. 1979 case Qualifiers::OCL_Strong: 1980 // Block pointers need to be copied, and there's no direct 1981 // transfer possible. 1982 if (type->isBlockPointerType()) { 1983 return ::buildByrefHelpers(CGM, byrefInfo, 1984 ARCStrongBlockByrefHelpers(valueAlignment)); 1985 1986 // Otherwise, we transfer ownership of the retain from the stack 1987 // to the heap. 1988 } else { 1989 return ::buildByrefHelpers(CGM, byrefInfo, 1990 ARCStrongByrefHelpers(valueAlignment)); 1991 } 1992 } 1993 llvm_unreachable("fell out of lifetime switch!"); 1994 } 1995 1996 BlockFieldFlags flags; 1997 if (type->isBlockPointerType()) { 1998 flags |= BLOCK_FIELD_IS_BLOCK; 1999 } else if (CGM.getContext().isObjCNSObjectType(type) || 2000 type->isObjCObjectPointerType()) { 2001 flags |= BLOCK_FIELD_IS_OBJECT; 2002 } else { 2003 return nullptr; 2004 } 2005 2006 if (type.isObjCGCWeak()) 2007 flags |= BLOCK_FIELD_IS_WEAK; 2008 2009 return ::buildByrefHelpers(CGM, byrefInfo, 2010 ObjectByrefHelpers(valueAlignment, flags)); 2011 } 2012 2013 Address CodeGenFunction::emitBlockByrefAddress(Address baseAddr, 2014 const VarDecl *var, 2015 bool followForward) { 2016 auto &info = getBlockByrefInfo(var); 2017 return emitBlockByrefAddress(baseAddr, info, followForward, var->getName()); 2018 } 2019 2020 Address CodeGenFunction::emitBlockByrefAddress(Address baseAddr, 2021 const BlockByrefInfo &info, 2022 bool followForward, 2023 const llvm::Twine &name) { 2024 // Chase the forwarding address if requested. 2025 if (followForward) { 2026 Address forwardingAddr = 2027 Builder.CreateStructGEP(baseAddr, 1, getPointerSize(), "forwarding"); 2028 baseAddr = Address(Builder.CreateLoad(forwardingAddr), info.ByrefAlignment); 2029 } 2030 2031 return Builder.CreateStructGEP(baseAddr, info.FieldIndex, 2032 info.FieldOffset, name); 2033 } 2034 2035 /// BuildByrefInfo - This routine changes a __block variable declared as T x 2036 /// into: 2037 /// 2038 /// struct { 2039 /// void *__isa; 2040 /// void *__forwarding; 2041 /// int32_t __flags; 2042 /// int32_t __size; 2043 /// void *__copy_helper; // only if needed 2044 /// void *__destroy_helper; // only if needed 2045 /// void *__byref_variable_layout;// only if needed 2046 /// char padding[X]; // only if needed 2047 /// T x; 2048 /// } x 2049 /// 2050 const BlockByrefInfo &CodeGenFunction::getBlockByrefInfo(const VarDecl *D) { 2051 auto it = BlockByrefInfos.find(D); 2052 if (it != BlockByrefInfos.end()) 2053 return it->second; 2054 2055 llvm::StructType *byrefType = 2056 llvm::StructType::create(getLLVMContext(), 2057 "struct.__block_byref_" + D->getNameAsString()); 2058 2059 QualType Ty = D->getType(); 2060 2061 CharUnits size; 2062 SmallVector<llvm::Type *, 8> types; 2063 2064 // void *__isa; 2065 types.push_back(Int8PtrTy); 2066 size += getPointerSize(); 2067 2068 // void *__forwarding; 2069 types.push_back(llvm::PointerType::getUnqual(byrefType)); 2070 size += getPointerSize(); 2071 2072 // int32_t __flags; 2073 types.push_back(Int32Ty); 2074 size += CharUnits::fromQuantity(4); 2075 2076 // int32_t __size; 2077 types.push_back(Int32Ty); 2078 size += CharUnits::fromQuantity(4); 2079 2080 // Note that this must match *exactly* the logic in buildByrefHelpers. 2081 bool hasCopyAndDispose = getContext().BlockRequiresCopying(Ty, D); 2082 if (hasCopyAndDispose) { 2083 /// void *__copy_helper; 2084 types.push_back(Int8PtrTy); 2085 size += getPointerSize(); 2086 2087 /// void *__destroy_helper; 2088 types.push_back(Int8PtrTy); 2089 size += getPointerSize(); 2090 } 2091 2092 bool HasByrefExtendedLayout = false; 2093 Qualifiers::ObjCLifetime Lifetime; 2094 if (getContext().getByrefLifetime(Ty, Lifetime, HasByrefExtendedLayout) && 2095 HasByrefExtendedLayout) { 2096 /// void *__byref_variable_layout; 2097 types.push_back(Int8PtrTy); 2098 size += CharUnits::fromQuantity(PointerSizeInBytes); 2099 } 2100 2101 // T x; 2102 llvm::Type *varTy = ConvertTypeForMem(Ty); 2103 2104 bool packed = false; 2105 CharUnits varAlign = getContext().getDeclAlign(D); 2106 CharUnits varOffset = size.RoundUpToAlignment(varAlign); 2107 2108 // We may have to insert padding. 2109 if (varOffset != size) { 2110 llvm::Type *paddingTy = 2111 llvm::ArrayType::get(Int8Ty, (varOffset - size).getQuantity()); 2112 2113 types.push_back(paddingTy); 2114 size = varOffset; 2115 2116 // Conversely, we might have to prevent LLVM from inserting padding. 2117 } else if (CGM.getDataLayout().getABITypeAlignment(varTy) 2118 > varAlign.getQuantity()) { 2119 packed = true; 2120 } 2121 types.push_back(varTy); 2122 2123 byrefType->setBody(types, packed); 2124 2125 BlockByrefInfo info; 2126 info.Type = byrefType; 2127 info.FieldIndex = types.size() - 1; 2128 info.FieldOffset = varOffset; 2129 info.ByrefAlignment = std::max(varAlign, getPointerAlign()); 2130 2131 auto pair = BlockByrefInfos.insert({D, info}); 2132 assert(pair.second && "info was inserted recursively?"); 2133 return pair.first->second; 2134 } 2135 2136 /// Initialize the structural components of a __block variable, i.e. 2137 /// everything but the actual object. 2138 void CodeGenFunction::emitByrefStructureInit(const AutoVarEmission &emission) { 2139 // Find the address of the local. 2140 Address addr = emission.Addr; 2141 2142 // That's an alloca of the byref structure type. 2143 llvm::StructType *byrefType = cast<llvm::StructType>( 2144 cast<llvm::PointerType>(addr.getPointer()->getType())->getElementType()); 2145 2146 unsigned nextHeaderIndex = 0; 2147 CharUnits nextHeaderOffset; 2148 auto storeHeaderField = [&](llvm::Value *value, CharUnits fieldSize, 2149 const Twine &name) { 2150 auto fieldAddr = Builder.CreateStructGEP(addr, nextHeaderIndex, 2151 nextHeaderOffset, name); 2152 Builder.CreateStore(value, fieldAddr); 2153 2154 nextHeaderIndex++; 2155 nextHeaderOffset += fieldSize; 2156 }; 2157 2158 // Build the byref helpers if necessary. This is null if we don't need any. 2159 BlockByrefHelpers *helpers = buildByrefHelpers(*byrefType, emission); 2160 2161 const VarDecl &D = *emission.Variable; 2162 QualType type = D.getType(); 2163 2164 bool HasByrefExtendedLayout; 2165 Qualifiers::ObjCLifetime ByrefLifetime; 2166 bool ByRefHasLifetime = 2167 getContext().getByrefLifetime(type, ByrefLifetime, HasByrefExtendedLayout); 2168 2169 llvm::Value *V; 2170 2171 // Initialize the 'isa', which is just 0 or 1. 2172 int isa = 0; 2173 if (type.isObjCGCWeak()) 2174 isa = 1; 2175 V = Builder.CreateIntToPtr(Builder.getInt32(isa), Int8PtrTy, "isa"); 2176 storeHeaderField(V, getPointerSize(), "byref.isa"); 2177 2178 // Store the address of the variable into its own forwarding pointer. 2179 storeHeaderField(addr.getPointer(), getPointerSize(), "byref.forwarding"); 2180 2181 // Blocks ABI: 2182 // c) the flags field is set to either 0 if no helper functions are 2183 // needed or BLOCK_BYREF_HAS_COPY_DISPOSE if they are, 2184 BlockFlags flags; 2185 if (helpers) flags |= BLOCK_BYREF_HAS_COPY_DISPOSE; 2186 if (ByRefHasLifetime) { 2187 if (HasByrefExtendedLayout) flags |= BLOCK_BYREF_LAYOUT_EXTENDED; 2188 else switch (ByrefLifetime) { 2189 case Qualifiers::OCL_Strong: 2190 flags |= BLOCK_BYREF_LAYOUT_STRONG; 2191 break; 2192 case Qualifiers::OCL_Weak: 2193 flags |= BLOCK_BYREF_LAYOUT_WEAK; 2194 break; 2195 case Qualifiers::OCL_ExplicitNone: 2196 flags |= BLOCK_BYREF_LAYOUT_UNRETAINED; 2197 break; 2198 case Qualifiers::OCL_None: 2199 if (!type->isObjCObjectPointerType() && !type->isBlockPointerType()) 2200 flags |= BLOCK_BYREF_LAYOUT_NON_OBJECT; 2201 break; 2202 default: 2203 break; 2204 } 2205 if (CGM.getLangOpts().ObjCGCBitmapPrint) { 2206 printf("\n Inline flag for BYREF variable layout (%d):", flags.getBitMask()); 2207 if (flags & BLOCK_BYREF_HAS_COPY_DISPOSE) 2208 printf(" BLOCK_BYREF_HAS_COPY_DISPOSE"); 2209 if (flags & BLOCK_BYREF_LAYOUT_MASK) { 2210 BlockFlags ThisFlag(flags.getBitMask() & BLOCK_BYREF_LAYOUT_MASK); 2211 if (ThisFlag == BLOCK_BYREF_LAYOUT_EXTENDED) 2212 printf(" BLOCK_BYREF_LAYOUT_EXTENDED"); 2213 if (ThisFlag == BLOCK_BYREF_LAYOUT_STRONG) 2214 printf(" BLOCK_BYREF_LAYOUT_STRONG"); 2215 if (ThisFlag == BLOCK_BYREF_LAYOUT_WEAK) 2216 printf(" BLOCK_BYREF_LAYOUT_WEAK"); 2217 if (ThisFlag == BLOCK_BYREF_LAYOUT_UNRETAINED) 2218 printf(" BLOCK_BYREF_LAYOUT_UNRETAINED"); 2219 if (ThisFlag == BLOCK_BYREF_LAYOUT_NON_OBJECT) 2220 printf(" BLOCK_BYREF_LAYOUT_NON_OBJECT"); 2221 } 2222 printf("\n"); 2223 } 2224 } 2225 storeHeaderField(llvm::ConstantInt::get(IntTy, flags.getBitMask()), 2226 getIntSize(), "byref.flags"); 2227 2228 CharUnits byrefSize = CGM.GetTargetTypeStoreSize(byrefType); 2229 V = llvm::ConstantInt::get(IntTy, byrefSize.getQuantity()); 2230 storeHeaderField(V, getIntSize(), "byref.size"); 2231 2232 if (helpers) { 2233 storeHeaderField(helpers->CopyHelper, getPointerSize(), 2234 "byref.copyHelper"); 2235 storeHeaderField(helpers->DisposeHelper, getPointerSize(), 2236 "byref.disposeHelper"); 2237 } 2238 2239 if (ByRefHasLifetime && HasByrefExtendedLayout) { 2240 auto layoutInfo = CGM.getObjCRuntime().BuildByrefLayout(CGM, type); 2241 storeHeaderField(layoutInfo, getPointerSize(), "byref.layout"); 2242 } 2243 } 2244 2245 void CodeGenFunction::BuildBlockRelease(llvm::Value *V, BlockFieldFlags flags) { 2246 llvm::Value *F = CGM.getBlockObjectDispose(); 2247 llvm::Value *args[] = { 2248 Builder.CreateBitCast(V, Int8PtrTy), 2249 llvm::ConstantInt::get(Int32Ty, flags.getBitMask()) 2250 }; 2251 EmitNounwindRuntimeCall(F, args); // FIXME: throwing destructors? 2252 } 2253 2254 namespace { 2255 /// Release a __block variable. 2256 struct CallBlockRelease final : EHScopeStack::Cleanup { 2257 llvm::Value *Addr; 2258 CallBlockRelease(llvm::Value *Addr) : Addr(Addr) {} 2259 2260 void Emit(CodeGenFunction &CGF, Flags flags) override { 2261 // Should we be passing FIELD_IS_WEAK here? 2262 CGF.BuildBlockRelease(Addr, BLOCK_FIELD_IS_BYREF); 2263 } 2264 }; 2265 } // end anonymous namespace 2266 2267 /// Enter a cleanup to destroy a __block variable. Note that this 2268 /// cleanup should be a no-op if the variable hasn't left the stack 2269 /// yet; if a cleanup is required for the variable itself, that needs 2270 /// to be done externally. 2271 void CodeGenFunction::enterByrefCleanup(const AutoVarEmission &emission) { 2272 // We don't enter this cleanup if we're in pure-GC mode. 2273 if (CGM.getLangOpts().getGC() == LangOptions::GCOnly) 2274 return; 2275 2276 EHStack.pushCleanup<CallBlockRelease>(NormalAndEHCleanup, 2277 emission.Addr.getPointer()); 2278 } 2279 2280 /// Adjust the declaration of something from the blocks API. 2281 static void configureBlocksRuntimeObject(CodeGenModule &CGM, 2282 llvm::Constant *C) { 2283 if (!CGM.getLangOpts().BlocksRuntimeOptional) return; 2284 2285 auto *GV = cast<llvm::GlobalValue>(C->stripPointerCasts()); 2286 if (GV->isDeclaration() && GV->hasExternalLinkage()) 2287 GV->setLinkage(llvm::GlobalValue::ExternalWeakLinkage); 2288 } 2289 2290 llvm::Constant *CodeGenModule::getBlockObjectDispose() { 2291 if (BlockObjectDispose) 2292 return BlockObjectDispose; 2293 2294 llvm::Type *args[] = { Int8PtrTy, Int32Ty }; 2295 llvm::FunctionType *fty 2296 = llvm::FunctionType::get(VoidTy, args, false); 2297 BlockObjectDispose = CreateRuntimeFunction(fty, "_Block_object_dispose"); 2298 configureBlocksRuntimeObject(*this, BlockObjectDispose); 2299 return BlockObjectDispose; 2300 } 2301 2302 llvm::Constant *CodeGenModule::getBlockObjectAssign() { 2303 if (BlockObjectAssign) 2304 return BlockObjectAssign; 2305 2306 llvm::Type *args[] = { Int8PtrTy, Int8PtrTy, Int32Ty }; 2307 llvm::FunctionType *fty 2308 = llvm::FunctionType::get(VoidTy, args, false); 2309 BlockObjectAssign = CreateRuntimeFunction(fty, "_Block_object_assign"); 2310 configureBlocksRuntimeObject(*this, BlockObjectAssign); 2311 return BlockObjectAssign; 2312 } 2313 2314 llvm::Constant *CodeGenModule::getNSConcreteGlobalBlock() { 2315 if (NSConcreteGlobalBlock) 2316 return NSConcreteGlobalBlock; 2317 2318 NSConcreteGlobalBlock = GetOrCreateLLVMGlobal("_NSConcreteGlobalBlock", 2319 Int8PtrTy->getPointerTo(), 2320 nullptr); 2321 configureBlocksRuntimeObject(*this, NSConcreteGlobalBlock); 2322 return NSConcreteGlobalBlock; 2323 } 2324 2325 llvm::Constant *CodeGenModule::getNSConcreteStackBlock() { 2326 if (NSConcreteStackBlock) 2327 return NSConcreteStackBlock; 2328 2329 NSConcreteStackBlock = GetOrCreateLLVMGlobal("_NSConcreteStackBlock", 2330 Int8PtrTy->getPointerTo(), 2331 nullptr); 2332 configureBlocksRuntimeObject(*this, NSConcreteStackBlock); 2333 return NSConcreteStackBlock; 2334 } 2335