1 //===- CoroSplit.cpp - Converts a coroutine into a state machine ----------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // This pass builds the coroutine frame and outlines resume and destroy parts 9 // of the coroutine into separate functions. 10 // 11 // We present a coroutine to an LLVM as an ordinary function with suspension 12 // points marked up with intrinsics. We let the optimizer party on the coroutine 13 // as a single function for as long as possible. Shortly before the coroutine is 14 // eligible to be inlined into its callers, we split up the coroutine into parts 15 // corresponding to an initial, resume and destroy invocations of the coroutine, 16 // add them to the current SCC and restart the IPO pipeline to optimize the 17 // coroutine subfunctions we extracted before proceeding to the caller of the 18 // coroutine. 19 //===----------------------------------------------------------------------===// 20 21 #include "llvm/Transforms/Coroutines/CoroSplit.h" 22 #include "CoroInstr.h" 23 #include "CoroInternal.h" 24 #include "llvm/ADT/DenseMap.h" 25 #include "llvm/ADT/PriorityWorklist.h" 26 #include "llvm/ADT/SmallPtrSet.h" 27 #include "llvm/ADT/SmallVector.h" 28 #include "llvm/ADT/StringRef.h" 29 #include "llvm/ADT/Twine.h" 30 #include "llvm/Analysis/CFG.h" 31 #include "llvm/Analysis/CallGraph.h" 32 #include "llvm/Analysis/CallGraphSCCPass.h" 33 #include "llvm/Analysis/ConstantFolding.h" 34 #include "llvm/Analysis/LazyCallGraph.h" 35 #include "llvm/BinaryFormat/Dwarf.h" 36 #include "llvm/IR/Argument.h" 37 #include "llvm/IR/Attributes.h" 38 #include "llvm/IR/BasicBlock.h" 39 #include "llvm/IR/CFG.h" 40 #include "llvm/IR/CallingConv.h" 41 #include "llvm/IR/Constants.h" 42 #include "llvm/IR/DataLayout.h" 43 #include "llvm/IR/DerivedTypes.h" 44 #include "llvm/IR/Dominators.h" 45 #include "llvm/IR/Function.h" 46 #include "llvm/IR/GlobalValue.h" 47 #include "llvm/IR/GlobalVariable.h" 48 #include "llvm/IR/IRBuilder.h" 49 #include "llvm/IR/InstIterator.h" 50 #include "llvm/IR/InstrTypes.h" 51 #include "llvm/IR/Instruction.h" 52 #include "llvm/IR/Instructions.h" 53 #include "llvm/IR/IntrinsicInst.h" 54 #include "llvm/IR/LLVMContext.h" 55 #include "llvm/IR/LegacyPassManager.h" 56 #include "llvm/IR/Module.h" 57 #include "llvm/IR/Type.h" 58 #include "llvm/IR/Value.h" 59 #include "llvm/IR/Verifier.h" 60 #include "llvm/InitializePasses.h" 61 #include "llvm/Pass.h" 62 #include "llvm/Support/Casting.h" 63 #include "llvm/Support/Debug.h" 64 #include "llvm/Support/PrettyStackTrace.h" 65 #include "llvm/Support/raw_ostream.h" 66 #include "llvm/Transforms/Scalar.h" 67 #include "llvm/Transforms/Utils/BasicBlockUtils.h" 68 #include "llvm/Transforms/Utils/CallGraphUpdater.h" 69 #include "llvm/Transforms/Utils/Cloning.h" 70 #include "llvm/Transforms/Utils/Local.h" 71 #include "llvm/Transforms/Utils/ValueMapper.h" 72 #include <cassert> 73 #include <cstddef> 74 #include <cstdint> 75 #include <initializer_list> 76 #include <iterator> 77 78 using namespace llvm; 79 80 #define DEBUG_TYPE "coro-split" 81 82 namespace { 83 84 /// A little helper class for building 85 class CoroCloner { 86 public: 87 enum class Kind { 88 /// The shared resume function for a switch lowering. 89 SwitchResume, 90 91 /// The shared unwind function for a switch lowering. 92 SwitchUnwind, 93 94 /// The shared cleanup function for a switch lowering. 95 SwitchCleanup, 96 97 /// An individual continuation function. 98 Continuation, 99 100 /// An async resume function. 101 Async, 102 }; 103 104 private: 105 Function &OrigF; 106 Function *NewF; 107 const Twine &Suffix; 108 coro::Shape &Shape; 109 Kind FKind; 110 ValueToValueMapTy VMap; 111 IRBuilder<> Builder; 112 Value *NewFramePtr = nullptr; 113 114 /// The active suspend instruction; meaningful only for continuation and async 115 /// ABIs. 116 AnyCoroSuspendInst *ActiveSuspend = nullptr; 117 118 public: 119 /// Create a cloner for a switch lowering. 120 CoroCloner(Function &OrigF, const Twine &Suffix, coro::Shape &Shape, 121 Kind FKind) 122 : OrigF(OrigF), NewF(nullptr), Suffix(Suffix), Shape(Shape), 123 FKind(FKind), Builder(OrigF.getContext()) { 124 assert(Shape.ABI == coro::ABI::Switch); 125 } 126 127 /// Create a cloner for a continuation lowering. 128 CoroCloner(Function &OrigF, const Twine &Suffix, coro::Shape &Shape, 129 Function *NewF, AnyCoroSuspendInst *ActiveSuspend) 130 : OrigF(OrigF), NewF(NewF), Suffix(Suffix), Shape(Shape), 131 FKind(Shape.ABI == coro::ABI::Async ? Kind::Async : Kind::Continuation), 132 Builder(OrigF.getContext()), ActiveSuspend(ActiveSuspend) { 133 assert(Shape.ABI == coro::ABI::Retcon || 134 Shape.ABI == coro::ABI::RetconOnce || Shape.ABI == coro::ABI::Async); 135 assert(NewF && "need existing function for continuation"); 136 assert(ActiveSuspend && "need active suspend point for continuation"); 137 } 138 139 Function *getFunction() const { 140 assert(NewF != nullptr && "declaration not yet set"); 141 return NewF; 142 } 143 144 void create(); 145 146 private: 147 bool isSwitchDestroyFunction() { 148 switch (FKind) { 149 case Kind::Async: 150 case Kind::Continuation: 151 case Kind::SwitchResume: 152 return false; 153 case Kind::SwitchUnwind: 154 case Kind::SwitchCleanup: 155 return true; 156 } 157 llvm_unreachable("Unknown CoroCloner::Kind enum"); 158 } 159 160 void replaceEntryBlock(); 161 Value *deriveNewFramePointer(); 162 void replaceRetconOrAsyncSuspendUses(); 163 void replaceCoroSuspends(); 164 void replaceCoroEnds(); 165 void replaceSwiftErrorOps(); 166 void salvageDebugInfo(); 167 void handleFinalSuspend(); 168 }; 169 170 } // end anonymous namespace 171 172 static void maybeFreeRetconStorage(IRBuilder<> &Builder, 173 const coro::Shape &Shape, Value *FramePtr, 174 CallGraph *CG) { 175 assert(Shape.ABI == coro::ABI::Retcon || 176 Shape.ABI == coro::ABI::RetconOnce); 177 if (Shape.RetconLowering.IsFrameInlineInStorage) 178 return; 179 180 Shape.emitDealloc(Builder, FramePtr, CG); 181 } 182 183 /// Replace an llvm.coro.end.async. 184 /// Will inline the must tail call function call if there is one. 185 /// \returns true if cleanup of the coro.end block is needed, false otherwise. 186 static bool replaceCoroEndAsync(AnyCoroEndInst *End) { 187 IRBuilder<> Builder(End); 188 189 auto *EndAsync = dyn_cast<CoroAsyncEndInst>(End); 190 if (!EndAsync) { 191 Builder.CreateRetVoid(); 192 return true /*needs cleanup of coro.end block*/; 193 } 194 195 auto *MustTailCallFunc = EndAsync->getMustTailCallFunction(); 196 if (!MustTailCallFunc) { 197 Builder.CreateRetVoid(); 198 return true /*needs cleanup of coro.end block*/; 199 } 200 201 // Move the must tail call from the predecessor block into the end block. 202 auto *CoroEndBlock = End->getParent(); 203 auto *MustTailCallFuncBlock = CoroEndBlock->getSinglePredecessor(); 204 assert(MustTailCallFuncBlock && "Must have a single predecessor block"); 205 auto It = MustTailCallFuncBlock->getTerminator()->getIterator(); 206 auto *MustTailCall = cast<CallInst>(&*std::prev(It)); 207 CoroEndBlock->getInstList().splice( 208 End->getIterator(), MustTailCallFuncBlock->getInstList(), MustTailCall); 209 210 // Insert the return instruction. 211 Builder.SetInsertPoint(End); 212 Builder.CreateRetVoid(); 213 InlineFunctionInfo FnInfo; 214 215 // Remove the rest of the block, by splitting it into an unreachable block. 216 auto *BB = End->getParent(); 217 BB->splitBasicBlock(End); 218 BB->getTerminator()->eraseFromParent(); 219 220 auto InlineRes = InlineFunction(*MustTailCall, FnInfo); 221 assert(InlineRes.isSuccess() && "Expected inlining to succeed"); 222 (void)InlineRes; 223 224 // We have cleaned up the coro.end block above. 225 return false; 226 } 227 228 /// Replace a non-unwind call to llvm.coro.end. 229 static void replaceFallthroughCoroEnd(AnyCoroEndInst *End, 230 const coro::Shape &Shape, Value *FramePtr, 231 bool InResume, CallGraph *CG) { 232 // Start inserting right before the coro.end. 233 IRBuilder<> Builder(End); 234 235 // Create the return instruction. 236 switch (Shape.ABI) { 237 // The cloned functions in switch-lowering always return void. 238 case coro::ABI::Switch: 239 // coro.end doesn't immediately end the coroutine in the main function 240 // in this lowering, because we need to deallocate the coroutine. 241 if (!InResume) 242 return; 243 Builder.CreateRetVoid(); 244 break; 245 246 // In async lowering this returns. 247 case coro::ABI::Async: { 248 bool CoroEndBlockNeedsCleanup = replaceCoroEndAsync(End); 249 if (!CoroEndBlockNeedsCleanup) 250 return; 251 break; 252 } 253 254 // In unique continuation lowering, the continuations always return void. 255 // But we may have implicitly allocated storage. 256 case coro::ABI::RetconOnce: 257 maybeFreeRetconStorage(Builder, Shape, FramePtr, CG); 258 Builder.CreateRetVoid(); 259 break; 260 261 // In non-unique continuation lowering, we signal completion by returning 262 // a null continuation. 263 case coro::ABI::Retcon: { 264 maybeFreeRetconStorage(Builder, Shape, FramePtr, CG); 265 auto RetTy = Shape.getResumeFunctionType()->getReturnType(); 266 auto RetStructTy = dyn_cast<StructType>(RetTy); 267 PointerType *ContinuationTy = 268 cast<PointerType>(RetStructTy ? RetStructTy->getElementType(0) : RetTy); 269 270 Value *ReturnValue = ConstantPointerNull::get(ContinuationTy); 271 if (RetStructTy) { 272 ReturnValue = Builder.CreateInsertValue(UndefValue::get(RetStructTy), 273 ReturnValue, 0); 274 } 275 Builder.CreateRet(ReturnValue); 276 break; 277 } 278 } 279 280 // Remove the rest of the block, by splitting it into an unreachable block. 281 auto *BB = End->getParent(); 282 BB->splitBasicBlock(End); 283 BB->getTerminator()->eraseFromParent(); 284 } 285 286 // Mark a coroutine as done, which implies that the coroutine is finished and 287 // never get resumed. 288 // 289 // In resume-switched ABI, the done state is represented by storing zero in 290 // ResumeFnAddr. 291 // 292 // NOTE: We couldn't omit the argument `FramePtr`. It is necessary because the 293 // pointer to the frame in splitted function is not stored in `Shape`. 294 static void markCoroutineAsDone(IRBuilder<> &Builder, const coro::Shape &Shape, 295 Value *FramePtr) { 296 assert( 297 Shape.ABI == coro::ABI::Switch && 298 "markCoroutineAsDone is only supported for Switch-Resumed ABI for now."); 299 auto *GepIndex = Builder.CreateStructGEP( 300 Shape.FrameTy, FramePtr, coro::Shape::SwitchFieldIndex::Resume, 301 "ResumeFn.addr"); 302 auto *NullPtr = ConstantPointerNull::get(cast<PointerType>( 303 Shape.FrameTy->getTypeAtIndex(coro::Shape::SwitchFieldIndex::Resume))); 304 Builder.CreateStore(NullPtr, GepIndex); 305 } 306 307 /// Replace an unwind call to llvm.coro.end. 308 static void replaceUnwindCoroEnd(AnyCoroEndInst *End, const coro::Shape &Shape, 309 Value *FramePtr, bool InResume, 310 CallGraph *CG) { 311 IRBuilder<> Builder(End); 312 313 switch (Shape.ABI) { 314 // In switch-lowering, this does nothing in the main function. 315 case coro::ABI::Switch: { 316 // In C++'s specification, the coroutine should be marked as done 317 // if promise.unhandled_exception() throws. The frontend will 318 // call coro.end(true) along this path. 319 // 320 // FIXME: We should refactor this once there is other language 321 // which uses Switch-Resumed style other than C++. 322 markCoroutineAsDone(Builder, Shape, FramePtr); 323 if (!InResume) 324 return; 325 break; 326 } 327 // In async lowering this does nothing. 328 case coro::ABI::Async: 329 break; 330 // In continuation-lowering, this frees the continuation storage. 331 case coro::ABI::Retcon: 332 case coro::ABI::RetconOnce: 333 maybeFreeRetconStorage(Builder, Shape, FramePtr, CG); 334 break; 335 } 336 337 // If coro.end has an associated bundle, add cleanupret instruction. 338 if (auto Bundle = End->getOperandBundle(LLVMContext::OB_funclet)) { 339 auto *FromPad = cast<CleanupPadInst>(Bundle->Inputs[0]); 340 auto *CleanupRet = Builder.CreateCleanupRet(FromPad, nullptr); 341 End->getParent()->splitBasicBlock(End); 342 CleanupRet->getParent()->getTerminator()->eraseFromParent(); 343 } 344 } 345 346 static void replaceCoroEnd(AnyCoroEndInst *End, const coro::Shape &Shape, 347 Value *FramePtr, bool InResume, CallGraph *CG) { 348 if (End->isUnwind()) 349 replaceUnwindCoroEnd(End, Shape, FramePtr, InResume, CG); 350 else 351 replaceFallthroughCoroEnd(End, Shape, FramePtr, InResume, CG); 352 353 auto &Context = End->getContext(); 354 End->replaceAllUsesWith(InResume ? ConstantInt::getTrue(Context) 355 : ConstantInt::getFalse(Context)); 356 End->eraseFromParent(); 357 } 358 359 // Create an entry block for a resume function with a switch that will jump to 360 // suspend points. 361 static void createResumeEntryBlock(Function &F, coro::Shape &Shape) { 362 assert(Shape.ABI == coro::ABI::Switch); 363 LLVMContext &C = F.getContext(); 364 365 // resume.entry: 366 // %index.addr = getelementptr inbounds %f.Frame, %f.Frame* %FramePtr, i32 0, 367 // i32 2 368 // % index = load i32, i32* %index.addr 369 // switch i32 %index, label %unreachable [ 370 // i32 0, label %resume.0 371 // i32 1, label %resume.1 372 // ... 373 // ] 374 375 auto *NewEntry = BasicBlock::Create(C, "resume.entry", &F); 376 auto *UnreachBB = BasicBlock::Create(C, "unreachable", &F); 377 378 IRBuilder<> Builder(NewEntry); 379 auto *FramePtr = Shape.FramePtr; 380 auto *FrameTy = Shape.FrameTy; 381 auto *GepIndex = Builder.CreateStructGEP( 382 FrameTy, FramePtr, Shape.getSwitchIndexField(), "index.addr"); 383 auto *Index = Builder.CreateLoad(Shape.getIndexType(), GepIndex, "index"); 384 auto *Switch = 385 Builder.CreateSwitch(Index, UnreachBB, Shape.CoroSuspends.size()); 386 Shape.SwitchLowering.ResumeSwitch = Switch; 387 388 size_t SuspendIndex = 0; 389 for (auto *AnyS : Shape.CoroSuspends) { 390 auto *S = cast<CoroSuspendInst>(AnyS); 391 ConstantInt *IndexVal = Shape.getIndex(SuspendIndex); 392 393 // Replace CoroSave with a store to Index: 394 // %index.addr = getelementptr %f.frame... (index field number) 395 // store i32 0, i32* %index.addr1 396 auto *Save = S->getCoroSave(); 397 Builder.SetInsertPoint(Save); 398 if (S->isFinal()) { 399 // The coroutine should be marked done if it reaches the final suspend 400 // point. 401 markCoroutineAsDone(Builder, Shape, FramePtr); 402 } else { 403 auto *GepIndex = Builder.CreateStructGEP( 404 FrameTy, FramePtr, Shape.getSwitchIndexField(), "index.addr"); 405 Builder.CreateStore(IndexVal, GepIndex); 406 } 407 Save->replaceAllUsesWith(ConstantTokenNone::get(C)); 408 Save->eraseFromParent(); 409 410 // Split block before and after coro.suspend and add a jump from an entry 411 // switch: 412 // 413 // whateverBB: 414 // whatever 415 // %0 = call i8 @llvm.coro.suspend(token none, i1 false) 416 // switch i8 %0, label %suspend[i8 0, label %resume 417 // i8 1, label %cleanup] 418 // becomes: 419 // 420 // whateverBB: 421 // whatever 422 // br label %resume.0.landing 423 // 424 // resume.0: ; <--- jump from the switch in the resume.entry 425 // %0 = tail call i8 @llvm.coro.suspend(token none, i1 false) 426 // br label %resume.0.landing 427 // 428 // resume.0.landing: 429 // %1 = phi i8[-1, %whateverBB], [%0, %resume.0] 430 // switch i8 % 1, label %suspend [i8 0, label %resume 431 // i8 1, label %cleanup] 432 433 auto *SuspendBB = S->getParent(); 434 auto *ResumeBB = 435 SuspendBB->splitBasicBlock(S, "resume." + Twine(SuspendIndex)); 436 auto *LandingBB = ResumeBB->splitBasicBlock( 437 S->getNextNode(), ResumeBB->getName() + Twine(".landing")); 438 Switch->addCase(IndexVal, ResumeBB); 439 440 cast<BranchInst>(SuspendBB->getTerminator())->setSuccessor(0, LandingBB); 441 auto *PN = PHINode::Create(Builder.getInt8Ty(), 2, "", &LandingBB->front()); 442 S->replaceAllUsesWith(PN); 443 PN->addIncoming(Builder.getInt8(-1), SuspendBB); 444 PN->addIncoming(S, ResumeBB); 445 446 ++SuspendIndex; 447 } 448 449 Builder.SetInsertPoint(UnreachBB); 450 Builder.CreateUnreachable(); 451 452 Shape.SwitchLowering.ResumeEntryBlock = NewEntry; 453 } 454 455 456 // Rewrite final suspend point handling. We do not use suspend index to 457 // represent the final suspend point. Instead we zero-out ResumeFnAddr in the 458 // coroutine frame, since it is undefined behavior to resume a coroutine 459 // suspended at the final suspend point. Thus, in the resume function, we can 460 // simply remove the last case (when coro::Shape is built, the final suspend 461 // point (if present) is always the last element of CoroSuspends array). 462 // In the destroy function, we add a code sequence to check if ResumeFnAddress 463 // is Null, and if so, jump to the appropriate label to handle cleanup from the 464 // final suspend point. 465 void CoroCloner::handleFinalSuspend() { 466 assert(Shape.ABI == coro::ABI::Switch && 467 Shape.SwitchLowering.HasFinalSuspend); 468 auto *Switch = cast<SwitchInst>(VMap[Shape.SwitchLowering.ResumeSwitch]); 469 auto FinalCaseIt = std::prev(Switch->case_end()); 470 BasicBlock *ResumeBB = FinalCaseIt->getCaseSuccessor(); 471 Switch->removeCase(FinalCaseIt); 472 if (isSwitchDestroyFunction()) { 473 BasicBlock *OldSwitchBB = Switch->getParent(); 474 auto *NewSwitchBB = OldSwitchBB->splitBasicBlock(Switch, "Switch"); 475 Builder.SetInsertPoint(OldSwitchBB->getTerminator()); 476 auto *GepIndex = Builder.CreateStructGEP(Shape.FrameTy, NewFramePtr, 477 coro::Shape::SwitchFieldIndex::Resume, 478 "ResumeFn.addr"); 479 auto *Load = Builder.CreateLoad(Shape.getSwitchResumePointerType(), 480 GepIndex); 481 auto *Cond = Builder.CreateIsNull(Load); 482 Builder.CreateCondBr(Cond, ResumeBB, NewSwitchBB); 483 OldSwitchBB->getTerminator()->eraseFromParent(); 484 } 485 } 486 487 static FunctionType * 488 getFunctionTypeFromAsyncSuspend(AnyCoroSuspendInst *Suspend) { 489 auto *AsyncSuspend = cast<CoroSuspendAsyncInst>(Suspend); 490 auto *StructTy = cast<StructType>(AsyncSuspend->getType()); 491 auto &Context = Suspend->getParent()->getParent()->getContext(); 492 auto *VoidTy = Type::getVoidTy(Context); 493 return FunctionType::get(VoidTy, StructTy->elements(), false); 494 } 495 496 static Function *createCloneDeclaration(Function &OrigF, coro::Shape &Shape, 497 const Twine &Suffix, 498 Module::iterator InsertBefore, 499 AnyCoroSuspendInst *ActiveSuspend) { 500 Module *M = OrigF.getParent(); 501 auto *FnTy = (Shape.ABI != coro::ABI::Async) 502 ? Shape.getResumeFunctionType() 503 : getFunctionTypeFromAsyncSuspend(ActiveSuspend); 504 505 Function *NewF = 506 Function::Create(FnTy, GlobalValue::LinkageTypes::InternalLinkage, 507 OrigF.getName() + Suffix); 508 if (Shape.ABI != coro::ABI::Async) 509 NewF->addParamAttr(0, Attribute::NonNull); 510 511 // For the async lowering ABI we can't guarantee that the context argument is 512 // not access via a different pointer not based on the argument. 513 if (Shape.ABI != coro::ABI::Async) 514 NewF->addParamAttr(0, Attribute::NoAlias); 515 516 M->getFunctionList().insert(InsertBefore, NewF); 517 518 return NewF; 519 } 520 521 /// Replace uses of the active llvm.coro.suspend.retcon/async call with the 522 /// arguments to the continuation function. 523 /// 524 /// This assumes that the builder has a meaningful insertion point. 525 void CoroCloner::replaceRetconOrAsyncSuspendUses() { 526 assert(Shape.ABI == coro::ABI::Retcon || Shape.ABI == coro::ABI::RetconOnce || 527 Shape.ABI == coro::ABI::Async); 528 529 auto NewS = VMap[ActiveSuspend]; 530 if (NewS->use_empty()) return; 531 532 // Copy out all the continuation arguments after the buffer pointer into 533 // an easily-indexed data structure for convenience. 534 SmallVector<Value*, 8> Args; 535 // The async ABI includes all arguments -- including the first argument. 536 bool IsAsyncABI = Shape.ABI == coro::ABI::Async; 537 for (auto I = IsAsyncABI ? NewF->arg_begin() : std::next(NewF->arg_begin()), 538 E = NewF->arg_end(); 539 I != E; ++I) 540 Args.push_back(&*I); 541 542 // If the suspend returns a single scalar value, we can just do a simple 543 // replacement. 544 if (!isa<StructType>(NewS->getType())) { 545 assert(Args.size() == 1); 546 NewS->replaceAllUsesWith(Args.front()); 547 return; 548 } 549 550 // Try to peephole extracts of an aggregate return. 551 for (Use &U : llvm::make_early_inc_range(NewS->uses())) { 552 auto *EVI = dyn_cast<ExtractValueInst>(U.getUser()); 553 if (!EVI || EVI->getNumIndices() != 1) 554 continue; 555 556 EVI->replaceAllUsesWith(Args[EVI->getIndices().front()]); 557 EVI->eraseFromParent(); 558 } 559 560 // If we have no remaining uses, we're done. 561 if (NewS->use_empty()) return; 562 563 // Otherwise, we need to create an aggregate. 564 Value *Agg = UndefValue::get(NewS->getType()); 565 for (size_t I = 0, E = Args.size(); I != E; ++I) 566 Agg = Builder.CreateInsertValue(Agg, Args[I], I); 567 568 NewS->replaceAllUsesWith(Agg); 569 } 570 571 void CoroCloner::replaceCoroSuspends() { 572 Value *SuspendResult; 573 574 switch (Shape.ABI) { 575 // In switch lowering, replace coro.suspend with the appropriate value 576 // for the type of function we're extracting. 577 // Replacing coro.suspend with (0) will result in control flow proceeding to 578 // a resume label associated with a suspend point, replacing it with (1) will 579 // result in control flow proceeding to a cleanup label associated with this 580 // suspend point. 581 case coro::ABI::Switch: 582 SuspendResult = Builder.getInt8(isSwitchDestroyFunction() ? 1 : 0); 583 break; 584 585 // In async lowering there are no uses of the result. 586 case coro::ABI::Async: 587 return; 588 589 // In returned-continuation lowering, the arguments from earlier 590 // continuations are theoretically arbitrary, and they should have been 591 // spilled. 592 case coro::ABI::RetconOnce: 593 case coro::ABI::Retcon: 594 return; 595 } 596 597 for (AnyCoroSuspendInst *CS : Shape.CoroSuspends) { 598 // The active suspend was handled earlier. 599 if (CS == ActiveSuspend) continue; 600 601 auto *MappedCS = cast<AnyCoroSuspendInst>(VMap[CS]); 602 MappedCS->replaceAllUsesWith(SuspendResult); 603 MappedCS->eraseFromParent(); 604 } 605 } 606 607 void CoroCloner::replaceCoroEnds() { 608 for (AnyCoroEndInst *CE : Shape.CoroEnds) { 609 // We use a null call graph because there's no call graph node for 610 // the cloned function yet. We'll just be rebuilding that later. 611 auto *NewCE = cast<AnyCoroEndInst>(VMap[CE]); 612 replaceCoroEnd(NewCE, Shape, NewFramePtr, /*in resume*/ true, nullptr); 613 } 614 } 615 616 static void replaceSwiftErrorOps(Function &F, coro::Shape &Shape, 617 ValueToValueMapTy *VMap) { 618 if (Shape.ABI == coro::ABI::Async && Shape.CoroSuspends.empty()) 619 return; 620 Value *CachedSlot = nullptr; 621 auto getSwiftErrorSlot = [&](Type *ValueTy) -> Value * { 622 if (CachedSlot) { 623 assert(cast<PointerType>(CachedSlot->getType()) 624 ->isOpaqueOrPointeeTypeMatches(ValueTy) && 625 "multiple swifterror slots in function with different types"); 626 return CachedSlot; 627 } 628 629 // Check if the function has a swifterror argument. 630 for (auto &Arg : F.args()) { 631 if (Arg.isSwiftError()) { 632 CachedSlot = &Arg; 633 assert(cast<PointerType>(Arg.getType()) 634 ->isOpaqueOrPointeeTypeMatches(ValueTy) && 635 "swifterror argument does not have expected type"); 636 return &Arg; 637 } 638 } 639 640 // Create a swifterror alloca. 641 IRBuilder<> Builder(F.getEntryBlock().getFirstNonPHIOrDbg()); 642 auto Alloca = Builder.CreateAlloca(ValueTy); 643 Alloca->setSwiftError(true); 644 645 CachedSlot = Alloca; 646 return Alloca; 647 }; 648 649 for (CallInst *Op : Shape.SwiftErrorOps) { 650 auto MappedOp = VMap ? cast<CallInst>((*VMap)[Op]) : Op; 651 IRBuilder<> Builder(MappedOp); 652 653 // If there are no arguments, this is a 'get' operation. 654 Value *MappedResult; 655 if (Op->arg_empty()) { 656 auto ValueTy = Op->getType(); 657 auto Slot = getSwiftErrorSlot(ValueTy); 658 MappedResult = Builder.CreateLoad(ValueTy, Slot); 659 } else { 660 assert(Op->arg_size() == 1); 661 auto Value = MappedOp->getArgOperand(0); 662 auto ValueTy = Value->getType(); 663 auto Slot = getSwiftErrorSlot(ValueTy); 664 Builder.CreateStore(Value, Slot); 665 MappedResult = Slot; 666 } 667 668 MappedOp->replaceAllUsesWith(MappedResult); 669 MappedOp->eraseFromParent(); 670 } 671 672 // If we're updating the original function, we've invalidated SwiftErrorOps. 673 if (VMap == nullptr) { 674 Shape.SwiftErrorOps.clear(); 675 } 676 } 677 678 void CoroCloner::replaceSwiftErrorOps() { 679 ::replaceSwiftErrorOps(*NewF, Shape, &VMap); 680 } 681 682 void CoroCloner::salvageDebugInfo() { 683 SmallVector<DbgVariableIntrinsic *, 8> Worklist; 684 SmallDenseMap<llvm::Value *, llvm::AllocaInst *, 4> DbgPtrAllocaCache; 685 for (auto &BB : *NewF) 686 for (auto &I : BB) 687 if (auto *DVI = dyn_cast<DbgVariableIntrinsic>(&I)) 688 Worklist.push_back(DVI); 689 for (DbgVariableIntrinsic *DVI : Worklist) 690 coro::salvageDebugInfo(DbgPtrAllocaCache, DVI, Shape.OptimizeFrame); 691 692 // Remove all salvaged dbg.declare intrinsics that became 693 // either unreachable or stale due to the CoroSplit transformation. 694 DominatorTree DomTree(*NewF); 695 auto IsUnreachableBlock = [&](BasicBlock *BB) { 696 return !isPotentiallyReachable(&NewF->getEntryBlock(), BB, nullptr, 697 &DomTree); 698 }; 699 for (DbgVariableIntrinsic *DVI : Worklist) { 700 if (IsUnreachableBlock(DVI->getParent())) 701 DVI->eraseFromParent(); 702 else if (isa_and_nonnull<AllocaInst>(DVI->getVariableLocationOp(0))) { 703 // Count all non-debuginfo uses in reachable blocks. 704 unsigned Uses = 0; 705 for (auto *User : DVI->getVariableLocationOp(0)->users()) 706 if (auto *I = dyn_cast<Instruction>(User)) 707 if (!isa<AllocaInst>(I) && !IsUnreachableBlock(I->getParent())) 708 ++Uses; 709 if (!Uses) 710 DVI->eraseFromParent(); 711 } 712 } 713 } 714 715 void CoroCloner::replaceEntryBlock() { 716 // In the original function, the AllocaSpillBlock is a block immediately 717 // following the allocation of the frame object which defines GEPs for 718 // all the allocas that have been moved into the frame, and it ends by 719 // branching to the original beginning of the coroutine. Make this 720 // the entry block of the cloned function. 721 auto *Entry = cast<BasicBlock>(VMap[Shape.AllocaSpillBlock]); 722 auto *OldEntry = &NewF->getEntryBlock(); 723 Entry->setName("entry" + Suffix); 724 Entry->moveBefore(OldEntry); 725 Entry->getTerminator()->eraseFromParent(); 726 727 // Clear all predecessors of the new entry block. There should be 728 // exactly one predecessor, which we created when splitting out 729 // AllocaSpillBlock to begin with. 730 assert(Entry->hasOneUse()); 731 auto BranchToEntry = cast<BranchInst>(Entry->user_back()); 732 assert(BranchToEntry->isUnconditional()); 733 Builder.SetInsertPoint(BranchToEntry); 734 Builder.CreateUnreachable(); 735 BranchToEntry->eraseFromParent(); 736 737 // Branch from the entry to the appropriate place. 738 Builder.SetInsertPoint(Entry); 739 switch (Shape.ABI) { 740 case coro::ABI::Switch: { 741 // In switch-lowering, we built a resume-entry block in the original 742 // function. Make the entry block branch to this. 743 auto *SwitchBB = 744 cast<BasicBlock>(VMap[Shape.SwitchLowering.ResumeEntryBlock]); 745 Builder.CreateBr(SwitchBB); 746 break; 747 } 748 case coro::ABI::Async: 749 case coro::ABI::Retcon: 750 case coro::ABI::RetconOnce: { 751 // In continuation ABIs, we want to branch to immediately after the 752 // active suspend point. Earlier phases will have put the suspend in its 753 // own basic block, so just thread our jump directly to its successor. 754 assert((Shape.ABI == coro::ABI::Async && 755 isa<CoroSuspendAsyncInst>(ActiveSuspend)) || 756 ((Shape.ABI == coro::ABI::Retcon || 757 Shape.ABI == coro::ABI::RetconOnce) && 758 isa<CoroSuspendRetconInst>(ActiveSuspend))); 759 auto *MappedCS = cast<AnyCoroSuspendInst>(VMap[ActiveSuspend]); 760 auto Branch = cast<BranchInst>(MappedCS->getNextNode()); 761 assert(Branch->isUnconditional()); 762 Builder.CreateBr(Branch->getSuccessor(0)); 763 break; 764 } 765 } 766 767 // Any static alloca that's still being used but not reachable from the new 768 // entry needs to be moved to the new entry. 769 Function *F = OldEntry->getParent(); 770 DominatorTree DT{*F}; 771 for (Instruction &I : llvm::make_early_inc_range(instructions(F))) { 772 auto *Alloca = dyn_cast<AllocaInst>(&I); 773 if (!Alloca || I.use_empty()) 774 continue; 775 if (DT.isReachableFromEntry(I.getParent()) || 776 !isa<ConstantInt>(Alloca->getArraySize())) 777 continue; 778 I.moveBefore(*Entry, Entry->getFirstInsertionPt()); 779 } 780 } 781 782 /// Derive the value of the new frame pointer. 783 Value *CoroCloner::deriveNewFramePointer() { 784 // Builder should be inserting to the front of the new entry block. 785 786 switch (Shape.ABI) { 787 // In switch-lowering, the argument is the frame pointer. 788 case coro::ABI::Switch: 789 return &*NewF->arg_begin(); 790 // In async-lowering, one of the arguments is an async context as determined 791 // by the `llvm.coro.id.async` intrinsic. We can retrieve the async context of 792 // the resume function from the async context projection function associated 793 // with the active suspend. The frame is located as a tail to the async 794 // context header. 795 case coro::ABI::Async: { 796 auto *ActiveAsyncSuspend = cast<CoroSuspendAsyncInst>(ActiveSuspend); 797 auto ContextIdx = ActiveAsyncSuspend->getStorageArgumentIndex() & 0xff; 798 auto *CalleeContext = NewF->getArg(ContextIdx); 799 auto *FramePtrTy = Shape.FrameTy->getPointerTo(); 800 auto *ProjectionFunc = 801 ActiveAsyncSuspend->getAsyncContextProjectionFunction(); 802 auto DbgLoc = 803 cast<CoroSuspendAsyncInst>(VMap[ActiveSuspend])->getDebugLoc(); 804 // Calling i8* (i8*) 805 auto *CallerContext = Builder.CreateCall(ProjectionFunc->getFunctionType(), 806 ProjectionFunc, CalleeContext); 807 CallerContext->setCallingConv(ProjectionFunc->getCallingConv()); 808 CallerContext->setDebugLoc(DbgLoc); 809 // The frame is located after the async_context header. 810 auto &Context = Builder.getContext(); 811 auto *FramePtrAddr = Builder.CreateConstInBoundsGEP1_32( 812 Type::getInt8Ty(Context), CallerContext, 813 Shape.AsyncLowering.FrameOffset, "async.ctx.frameptr"); 814 // Inline the projection function. 815 InlineFunctionInfo InlineInfo; 816 auto InlineRes = InlineFunction(*CallerContext, InlineInfo); 817 assert(InlineRes.isSuccess()); 818 (void)InlineRes; 819 return Builder.CreateBitCast(FramePtrAddr, FramePtrTy); 820 } 821 // In continuation-lowering, the argument is the opaque storage. 822 case coro::ABI::Retcon: 823 case coro::ABI::RetconOnce: { 824 Argument *NewStorage = &*NewF->arg_begin(); 825 auto FramePtrTy = Shape.FrameTy->getPointerTo(); 826 827 // If the storage is inline, just bitcast to the storage to the frame type. 828 if (Shape.RetconLowering.IsFrameInlineInStorage) 829 return Builder.CreateBitCast(NewStorage, FramePtrTy); 830 831 // Otherwise, load the real frame from the opaque storage. 832 auto FramePtrPtr = 833 Builder.CreateBitCast(NewStorage, FramePtrTy->getPointerTo()); 834 return Builder.CreateLoad(FramePtrTy, FramePtrPtr); 835 } 836 } 837 llvm_unreachable("bad ABI"); 838 } 839 840 static void addFramePointerAttrs(AttributeList &Attrs, LLVMContext &Context, 841 unsigned ParamIndex, 842 uint64_t Size, Align Alignment) { 843 AttrBuilder ParamAttrs(Context); 844 ParamAttrs.addAttribute(Attribute::NonNull); 845 ParamAttrs.addAttribute(Attribute::NoAlias); 846 ParamAttrs.addAlignmentAttr(Alignment); 847 ParamAttrs.addDereferenceableAttr(Size); 848 Attrs = Attrs.addParamAttributes(Context, ParamIndex, ParamAttrs); 849 } 850 851 static void addAsyncContextAttrs(AttributeList &Attrs, LLVMContext &Context, 852 unsigned ParamIndex) { 853 AttrBuilder ParamAttrs(Context); 854 ParamAttrs.addAttribute(Attribute::SwiftAsync); 855 Attrs = Attrs.addParamAttributes(Context, ParamIndex, ParamAttrs); 856 } 857 858 static void addSwiftSelfAttrs(AttributeList &Attrs, LLVMContext &Context, 859 unsigned ParamIndex) { 860 AttrBuilder ParamAttrs(Context); 861 ParamAttrs.addAttribute(Attribute::SwiftSelf); 862 Attrs = Attrs.addParamAttributes(Context, ParamIndex, ParamAttrs); 863 } 864 865 /// Clone the body of the original function into a resume function of 866 /// some sort. 867 void CoroCloner::create() { 868 // Create the new function if we don't already have one. 869 if (!NewF) { 870 NewF = createCloneDeclaration(OrigF, Shape, Suffix, 871 OrigF.getParent()->end(), ActiveSuspend); 872 } 873 874 // Replace all args with dummy instructions. If an argument is the old frame 875 // pointer, the dummy will be replaced by the new frame pointer once it is 876 // computed below. Uses of all other arguments should have already been 877 // rewritten by buildCoroutineFrame() to use loads/stores on the coroutine 878 // frame. 879 SmallVector<Instruction *> DummyArgs; 880 for (Argument &A : OrigF.args()) { 881 DummyArgs.push_back(new FreezeInst(UndefValue::get(A.getType()))); 882 VMap[&A] = DummyArgs.back(); 883 } 884 885 SmallVector<ReturnInst *, 4> Returns; 886 887 // Ignore attempts to change certain attributes of the function. 888 // TODO: maybe there should be a way to suppress this during cloning? 889 auto savedVisibility = NewF->getVisibility(); 890 auto savedUnnamedAddr = NewF->getUnnamedAddr(); 891 auto savedDLLStorageClass = NewF->getDLLStorageClass(); 892 893 // NewF's linkage (which CloneFunctionInto does *not* change) might not 894 // be compatible with the visibility of OrigF (which it *does* change), 895 // so protect against that. 896 auto savedLinkage = NewF->getLinkage(); 897 NewF->setLinkage(llvm::GlobalValue::ExternalLinkage); 898 899 CloneFunctionInto(NewF, &OrigF, VMap, 900 CloneFunctionChangeType::LocalChangesOnly, Returns); 901 902 auto &Context = NewF->getContext(); 903 904 // For async functions / continuations, adjust the scope line of the 905 // clone to the line number of the suspend point. However, only 906 // adjust the scope line when the files are the same. This ensures 907 // line number and file name belong together. The scope line is 908 // associated with all pre-prologue instructions. This avoids a jump 909 // in the linetable from the function declaration to the suspend point. 910 if (DISubprogram *SP = NewF->getSubprogram()) { 911 assert(SP != OrigF.getSubprogram() && SP->isDistinct()); 912 if (ActiveSuspend) 913 if (auto DL = ActiveSuspend->getDebugLoc()) 914 if (SP->getFile() == DL->getFile()) 915 SP->setScopeLine(DL->getLine()); 916 // Update the linkage name to reflect the modified symbol name. It 917 // is necessary to update the linkage name in Swift, since the 918 // mangling changes for resume functions. It might also be the 919 // right thing to do in C++, but due to a limitation in LLVM's 920 // AsmPrinter we can only do this if the function doesn't have an 921 // abstract specification, since the DWARF backend expects the 922 // abstract specification to contain the linkage name and asserts 923 // that they are identical. 924 if (!SP->getDeclaration() && SP->getUnit() && 925 SP->getUnit()->getSourceLanguage() == dwarf::DW_LANG_Swift) 926 SP->replaceLinkageName(MDString::get(Context, NewF->getName())); 927 } 928 929 NewF->setLinkage(savedLinkage); 930 NewF->setVisibility(savedVisibility); 931 NewF->setUnnamedAddr(savedUnnamedAddr); 932 NewF->setDLLStorageClass(savedDLLStorageClass); 933 934 // Replace the attributes of the new function: 935 auto OrigAttrs = NewF->getAttributes(); 936 auto NewAttrs = AttributeList(); 937 938 switch (Shape.ABI) { 939 case coro::ABI::Switch: 940 // Bootstrap attributes by copying function attributes from the 941 // original function. This should include optimization settings and so on. 942 NewAttrs = NewAttrs.addFnAttributes( 943 Context, AttrBuilder(Context, OrigAttrs.getFnAttrs())); 944 945 addFramePointerAttrs(NewAttrs, Context, 0, 946 Shape.FrameSize, Shape.FrameAlign); 947 break; 948 case coro::ABI::Async: { 949 auto *ActiveAsyncSuspend = cast<CoroSuspendAsyncInst>(ActiveSuspend); 950 if (OrigF.hasParamAttribute(Shape.AsyncLowering.ContextArgNo, 951 Attribute::SwiftAsync)) { 952 uint32_t ArgAttributeIndices = 953 ActiveAsyncSuspend->getStorageArgumentIndex(); 954 auto ContextArgIndex = ArgAttributeIndices & 0xff; 955 addAsyncContextAttrs(NewAttrs, Context, ContextArgIndex); 956 957 // `swiftasync` must preceed `swiftself` so 0 is not a valid index for 958 // `swiftself`. 959 auto SwiftSelfIndex = ArgAttributeIndices >> 8; 960 if (SwiftSelfIndex) 961 addSwiftSelfAttrs(NewAttrs, Context, SwiftSelfIndex); 962 } 963 964 // Transfer the original function's attributes. 965 auto FnAttrs = OrigF.getAttributes().getFnAttrs(); 966 NewAttrs = NewAttrs.addFnAttributes(Context, AttrBuilder(Context, FnAttrs)); 967 break; 968 } 969 case coro::ABI::Retcon: 970 case coro::ABI::RetconOnce: 971 // If we have a continuation prototype, just use its attributes, 972 // full-stop. 973 NewAttrs = Shape.RetconLowering.ResumePrototype->getAttributes(); 974 975 addFramePointerAttrs(NewAttrs, Context, 0, 976 Shape.getRetconCoroId()->getStorageSize(), 977 Shape.getRetconCoroId()->getStorageAlignment()); 978 break; 979 } 980 981 switch (Shape.ABI) { 982 // In these ABIs, the cloned functions always return 'void', and the 983 // existing return sites are meaningless. Note that for unique 984 // continuations, this includes the returns associated with suspends; 985 // this is fine because we can't suspend twice. 986 case coro::ABI::Switch: 987 case coro::ABI::RetconOnce: 988 // Remove old returns. 989 for (ReturnInst *Return : Returns) 990 changeToUnreachable(Return); 991 break; 992 993 // With multi-suspend continuations, we'll already have eliminated the 994 // original returns and inserted returns before all the suspend points, 995 // so we want to leave any returns in place. 996 case coro::ABI::Retcon: 997 break; 998 // Async lowering will insert musttail call functions at all suspend points 999 // followed by a return. 1000 // Don't change returns to unreachable because that will trip up the verifier. 1001 // These returns should be unreachable from the clone. 1002 case coro::ABI::Async: 1003 break; 1004 } 1005 1006 NewF->setAttributes(NewAttrs); 1007 NewF->setCallingConv(Shape.getResumeFunctionCC()); 1008 1009 // Set up the new entry block. 1010 replaceEntryBlock(); 1011 1012 Builder.SetInsertPoint(&NewF->getEntryBlock().front()); 1013 NewFramePtr = deriveNewFramePointer(); 1014 1015 // Remap frame pointer. 1016 Value *OldFramePtr = VMap[Shape.FramePtr]; 1017 NewFramePtr->takeName(OldFramePtr); 1018 OldFramePtr->replaceAllUsesWith(NewFramePtr); 1019 1020 // Remap vFrame pointer. 1021 auto *NewVFrame = Builder.CreateBitCast( 1022 NewFramePtr, Type::getInt8PtrTy(Builder.getContext()), "vFrame"); 1023 Value *OldVFrame = cast<Value>(VMap[Shape.CoroBegin]); 1024 if (OldVFrame != NewVFrame) 1025 OldVFrame->replaceAllUsesWith(NewVFrame); 1026 1027 // All uses of the arguments should have been resolved by this point, 1028 // so we can safely remove the dummy values. 1029 for (Instruction *DummyArg : DummyArgs) { 1030 DummyArg->replaceAllUsesWith(UndefValue::get(DummyArg->getType())); 1031 DummyArg->deleteValue(); 1032 } 1033 1034 switch (Shape.ABI) { 1035 case coro::ABI::Switch: 1036 // Rewrite final suspend handling as it is not done via switch (allows to 1037 // remove final case from the switch, since it is undefined behavior to 1038 // resume the coroutine suspended at the final suspend point. 1039 if (Shape.SwitchLowering.HasFinalSuspend) 1040 handleFinalSuspend(); 1041 break; 1042 case coro::ABI::Async: 1043 case coro::ABI::Retcon: 1044 case coro::ABI::RetconOnce: 1045 // Replace uses of the active suspend with the corresponding 1046 // continuation-function arguments. 1047 assert(ActiveSuspend != nullptr && 1048 "no active suspend when lowering a continuation-style coroutine"); 1049 replaceRetconOrAsyncSuspendUses(); 1050 break; 1051 } 1052 1053 // Handle suspends. 1054 replaceCoroSuspends(); 1055 1056 // Handle swifterror. 1057 replaceSwiftErrorOps(); 1058 1059 // Remove coro.end intrinsics. 1060 replaceCoroEnds(); 1061 1062 // Salvage debug info that points into the coroutine frame. 1063 salvageDebugInfo(); 1064 1065 // Eliminate coro.free from the clones, replacing it with 'null' in cleanup, 1066 // to suppress deallocation code. 1067 if (Shape.ABI == coro::ABI::Switch) 1068 coro::replaceCoroFree(cast<CoroIdInst>(VMap[Shape.CoroBegin->getId()]), 1069 /*Elide=*/ FKind == CoroCloner::Kind::SwitchCleanup); 1070 } 1071 1072 // Create a resume clone by cloning the body of the original function, setting 1073 // new entry block and replacing coro.suspend an appropriate value to force 1074 // resume or cleanup pass for every suspend point. 1075 static Function *createClone(Function &F, const Twine &Suffix, 1076 coro::Shape &Shape, CoroCloner::Kind FKind) { 1077 CoroCloner Cloner(F, Suffix, Shape, FKind); 1078 Cloner.create(); 1079 return Cloner.getFunction(); 1080 } 1081 1082 static void updateAsyncFuncPointerContextSize(coro::Shape &Shape) { 1083 assert(Shape.ABI == coro::ABI::Async); 1084 1085 auto *FuncPtrStruct = cast<ConstantStruct>( 1086 Shape.AsyncLowering.AsyncFuncPointer->getInitializer()); 1087 auto *OrigRelativeFunOffset = FuncPtrStruct->getOperand(0); 1088 auto *OrigContextSize = FuncPtrStruct->getOperand(1); 1089 auto *NewContextSize = ConstantInt::get(OrigContextSize->getType(), 1090 Shape.AsyncLowering.ContextSize); 1091 auto *NewFuncPtrStruct = ConstantStruct::get( 1092 FuncPtrStruct->getType(), OrigRelativeFunOffset, NewContextSize); 1093 1094 Shape.AsyncLowering.AsyncFuncPointer->setInitializer(NewFuncPtrStruct); 1095 } 1096 1097 static void replaceFrameSizeAndAlignment(coro::Shape &Shape) { 1098 if (Shape.ABI == coro::ABI::Async) 1099 updateAsyncFuncPointerContextSize(Shape); 1100 1101 for (CoroAlignInst *CA : Shape.CoroAligns) { 1102 CA->replaceAllUsesWith( 1103 ConstantInt::get(CA->getType(), Shape.FrameAlign.value())); 1104 CA->eraseFromParent(); 1105 } 1106 1107 if (Shape.CoroSizes.empty()) 1108 return; 1109 1110 // In the same function all coro.sizes should have the same result type. 1111 auto *SizeIntrin = Shape.CoroSizes.back(); 1112 Module *M = SizeIntrin->getModule(); 1113 const DataLayout &DL = M->getDataLayout(); 1114 auto Size = DL.getTypeAllocSize(Shape.FrameTy); 1115 auto *SizeConstant = ConstantInt::get(SizeIntrin->getType(), Size); 1116 1117 for (CoroSizeInst *CS : Shape.CoroSizes) { 1118 CS->replaceAllUsesWith(SizeConstant); 1119 CS->eraseFromParent(); 1120 } 1121 } 1122 1123 // Create a global constant array containing pointers to functions provided and 1124 // set Info parameter of CoroBegin to point at this constant. Example: 1125 // 1126 // @f.resumers = internal constant [2 x void(%f.frame*)*] 1127 // [void(%f.frame*)* @f.resume, void(%f.frame*)* @f.destroy] 1128 // define void @f() { 1129 // ... 1130 // call i8* @llvm.coro.begin(i8* null, i32 0, i8* null, 1131 // i8* bitcast([2 x void(%f.frame*)*] * @f.resumers to i8*)) 1132 // 1133 // Assumes that all the functions have the same signature. 1134 static void setCoroInfo(Function &F, coro::Shape &Shape, 1135 ArrayRef<Function *> Fns) { 1136 // This only works under the switch-lowering ABI because coro elision 1137 // only works on the switch-lowering ABI. 1138 assert(Shape.ABI == coro::ABI::Switch); 1139 1140 SmallVector<Constant *, 4> Args(Fns.begin(), Fns.end()); 1141 assert(!Args.empty()); 1142 Function *Part = *Fns.begin(); 1143 Module *M = Part->getParent(); 1144 auto *ArrTy = ArrayType::get(Part->getType(), Args.size()); 1145 1146 auto *ConstVal = ConstantArray::get(ArrTy, Args); 1147 auto *GV = new GlobalVariable(*M, ConstVal->getType(), /*isConstant=*/true, 1148 GlobalVariable::PrivateLinkage, ConstVal, 1149 F.getName() + Twine(".resumers")); 1150 1151 // Update coro.begin instruction to refer to this constant. 1152 LLVMContext &C = F.getContext(); 1153 auto *BC = ConstantExpr::getPointerCast(GV, Type::getInt8PtrTy(C)); 1154 Shape.getSwitchCoroId()->setInfo(BC); 1155 } 1156 1157 // Store addresses of Resume/Destroy/Cleanup functions in the coroutine frame. 1158 static void updateCoroFrame(coro::Shape &Shape, Function *ResumeFn, 1159 Function *DestroyFn, Function *CleanupFn) { 1160 assert(Shape.ABI == coro::ABI::Switch); 1161 1162 IRBuilder<> Builder(Shape.getInsertPtAfterFramePtr()); 1163 1164 auto *ResumeAddr = Builder.CreateStructGEP( 1165 Shape.FrameTy, Shape.FramePtr, coro::Shape::SwitchFieldIndex::Resume, 1166 "resume.addr"); 1167 Builder.CreateStore(ResumeFn, ResumeAddr); 1168 1169 Value *DestroyOrCleanupFn = DestroyFn; 1170 1171 CoroIdInst *CoroId = Shape.getSwitchCoroId(); 1172 if (CoroAllocInst *CA = CoroId->getCoroAlloc()) { 1173 // If there is a CoroAlloc and it returns false (meaning we elide the 1174 // allocation, use CleanupFn instead of DestroyFn). 1175 DestroyOrCleanupFn = Builder.CreateSelect(CA, DestroyFn, CleanupFn); 1176 } 1177 1178 auto *DestroyAddr = Builder.CreateStructGEP( 1179 Shape.FrameTy, Shape.FramePtr, coro::Shape::SwitchFieldIndex::Destroy, 1180 "destroy.addr"); 1181 Builder.CreateStore(DestroyOrCleanupFn, DestroyAddr); 1182 } 1183 1184 static void postSplitCleanup(Function &F) { 1185 removeUnreachableBlocks(F); 1186 1187 #ifndef NDEBUG 1188 // For now, we do a mandatory verification step because we don't 1189 // entirely trust this pass. Note that we don't want to add a verifier 1190 // pass to FPM below because it will also verify all the global data. 1191 if (verifyFunction(F, &errs())) 1192 report_fatal_error("Broken function"); 1193 #endif 1194 } 1195 1196 // Assuming we arrived at the block NewBlock from Prev instruction, store 1197 // PHI's incoming values in the ResolvedValues map. 1198 static void 1199 scanPHIsAndUpdateValueMap(Instruction *Prev, BasicBlock *NewBlock, 1200 DenseMap<Value *, Value *> &ResolvedValues) { 1201 auto *PrevBB = Prev->getParent(); 1202 for (PHINode &PN : NewBlock->phis()) { 1203 auto V = PN.getIncomingValueForBlock(PrevBB); 1204 // See if we already resolved it. 1205 auto VI = ResolvedValues.find(V); 1206 if (VI != ResolvedValues.end()) 1207 V = VI->second; 1208 // Remember the value. 1209 ResolvedValues[&PN] = V; 1210 } 1211 } 1212 1213 // Replace a sequence of branches leading to a ret, with a clone of a ret 1214 // instruction. Suspend instruction represented by a switch, track the PHI 1215 // values and select the correct case successor when possible. 1216 static bool simplifyTerminatorLeadingToRet(Instruction *InitialInst) { 1217 DenseMap<Value *, Value *> ResolvedValues; 1218 BasicBlock *UnconditionalSucc = nullptr; 1219 assert(InitialInst->getModule()); 1220 const DataLayout &DL = InitialInst->getModule()->getDataLayout(); 1221 1222 auto GetFirstValidInstruction = [](Instruction *I) { 1223 while (I) { 1224 // BitCastInst wouldn't generate actual code so that we could skip it. 1225 if (isa<BitCastInst>(I) || I->isDebugOrPseudoInst() || 1226 I->isLifetimeStartOrEnd()) 1227 I = I->getNextNode(); 1228 else if (isInstructionTriviallyDead(I)) 1229 // Duing we are in the middle of the transformation, we need to erase 1230 // the dead instruction manually. 1231 I = &*I->eraseFromParent(); 1232 else 1233 break; 1234 } 1235 return I; 1236 }; 1237 1238 auto TryResolveConstant = [&ResolvedValues](Value *V) { 1239 auto It = ResolvedValues.find(V); 1240 if (It != ResolvedValues.end()) 1241 V = It->second; 1242 return dyn_cast<ConstantInt>(V); 1243 }; 1244 1245 Instruction *I = InitialInst; 1246 while (I->isTerminator() || isa<CmpInst>(I)) { 1247 if (isa<ReturnInst>(I)) { 1248 if (I != InitialInst) { 1249 // If InitialInst is an unconditional branch, 1250 // remove PHI values that come from basic block of InitialInst 1251 if (UnconditionalSucc) 1252 UnconditionalSucc->removePredecessor(InitialInst->getParent(), true); 1253 ReplaceInstWithInst(InitialInst, I->clone()); 1254 } 1255 return true; 1256 } 1257 if (auto *BR = dyn_cast<BranchInst>(I)) { 1258 if (BR->isUnconditional()) { 1259 BasicBlock *Succ = BR->getSuccessor(0); 1260 if (I == InitialInst) 1261 UnconditionalSucc = Succ; 1262 scanPHIsAndUpdateValueMap(I, Succ, ResolvedValues); 1263 I = GetFirstValidInstruction(Succ->getFirstNonPHIOrDbgOrLifetime()); 1264 continue; 1265 } 1266 1267 BasicBlock *BB = BR->getParent(); 1268 // Handle the case the condition of the conditional branch is constant. 1269 // e.g., 1270 // 1271 // br i1 false, label %cleanup, label %CoroEnd 1272 // 1273 // It is possible during the transformation. We could continue the 1274 // simplifying in this case. 1275 if (ConstantFoldTerminator(BB, /*DeleteDeadConditions=*/true)) { 1276 // Handle this branch in next iteration. 1277 I = BB->getTerminator(); 1278 continue; 1279 } 1280 } else if (auto *CondCmp = dyn_cast<CmpInst>(I)) { 1281 // If the case number of suspended switch instruction is reduced to 1282 // 1, then it is simplified to CmpInst in llvm::ConstantFoldTerminator. 1283 auto *BR = dyn_cast<BranchInst>( 1284 GetFirstValidInstruction(CondCmp->getNextNode())); 1285 if (!BR || !BR->isConditional() || CondCmp != BR->getCondition()) 1286 return false; 1287 1288 // And the comparsion looks like : %cond = icmp eq i8 %V, constant. 1289 // So we try to resolve constant for the first operand only since the 1290 // second operand should be literal constant by design. 1291 ConstantInt *Cond0 = TryResolveConstant(CondCmp->getOperand(0)); 1292 auto *Cond1 = dyn_cast<ConstantInt>(CondCmp->getOperand(1)); 1293 if (!Cond0 || !Cond1) 1294 return false; 1295 1296 // Both operands of the CmpInst are Constant. So that we could evaluate 1297 // it immediately to get the destination. 1298 auto *ConstResult = 1299 dyn_cast_or_null<ConstantInt>(ConstantFoldCompareInstOperands( 1300 CondCmp->getPredicate(), Cond0, Cond1, DL)); 1301 if (!ConstResult) 1302 return false; 1303 1304 CondCmp->replaceAllUsesWith(ConstResult); 1305 CondCmp->eraseFromParent(); 1306 1307 // Handle this branch in next iteration. 1308 I = BR; 1309 continue; 1310 } else if (auto *SI = dyn_cast<SwitchInst>(I)) { 1311 ConstantInt *Cond = TryResolveConstant(SI->getCondition()); 1312 if (!Cond) 1313 return false; 1314 1315 BasicBlock *BB = SI->findCaseValue(Cond)->getCaseSuccessor(); 1316 scanPHIsAndUpdateValueMap(I, BB, ResolvedValues); 1317 I = GetFirstValidInstruction(BB->getFirstNonPHIOrDbgOrLifetime()); 1318 continue; 1319 } 1320 1321 return false; 1322 } 1323 return false; 1324 } 1325 1326 // Check whether CI obeys the rules of musttail attribute. 1327 static bool shouldBeMustTail(const CallInst &CI, const Function &F) { 1328 if (CI.isInlineAsm()) 1329 return false; 1330 1331 // Match prototypes and calling conventions of resume function. 1332 FunctionType *CalleeTy = CI.getFunctionType(); 1333 if (!CalleeTy->getReturnType()->isVoidTy() || (CalleeTy->getNumParams() != 1)) 1334 return false; 1335 1336 Type *CalleeParmTy = CalleeTy->getParamType(0); 1337 if (!CalleeParmTy->isPointerTy() || 1338 (CalleeParmTy->getPointerAddressSpace() != 0)) 1339 return false; 1340 1341 if (CI.getCallingConv() != F.getCallingConv()) 1342 return false; 1343 1344 // CI should not has any ABI-impacting function attributes. 1345 static const Attribute::AttrKind ABIAttrs[] = { 1346 Attribute::StructRet, Attribute::ByVal, Attribute::InAlloca, 1347 Attribute::Preallocated, Attribute::InReg, Attribute::Returned, 1348 Attribute::SwiftSelf, Attribute::SwiftError}; 1349 AttributeList Attrs = CI.getAttributes(); 1350 for (auto AK : ABIAttrs) 1351 if (Attrs.hasParamAttr(0, AK)) 1352 return false; 1353 1354 return true; 1355 } 1356 1357 // Add musttail to any resume instructions that is immediately followed by a 1358 // suspend (i.e. ret). We do this even in -O0 to support guaranteed tail call 1359 // for symmetrical coroutine control transfer (C++ Coroutines TS extension). 1360 // This transformation is done only in the resume part of the coroutine that has 1361 // identical signature and calling convention as the coro.resume call. 1362 static void addMustTailToCoroResumes(Function &F) { 1363 bool changed = false; 1364 1365 // Collect potential resume instructions. 1366 SmallVector<CallInst *, 4> Resumes; 1367 for (auto &I : instructions(F)) 1368 if (auto *Call = dyn_cast<CallInst>(&I)) 1369 if (shouldBeMustTail(*Call, F)) 1370 Resumes.push_back(Call); 1371 1372 // Set musttail on those that are followed by a ret instruction. 1373 for (CallInst *Call : Resumes) 1374 if (simplifyTerminatorLeadingToRet(Call->getNextNode())) { 1375 Call->setTailCallKind(CallInst::TCK_MustTail); 1376 changed = true; 1377 } 1378 1379 if (changed) 1380 removeUnreachableBlocks(F); 1381 } 1382 1383 // Coroutine has no suspend points. Remove heap allocation for the coroutine 1384 // frame if possible. 1385 static void handleNoSuspendCoroutine(coro::Shape &Shape) { 1386 auto *CoroBegin = Shape.CoroBegin; 1387 auto *CoroId = CoroBegin->getId(); 1388 auto *AllocInst = CoroId->getCoroAlloc(); 1389 switch (Shape.ABI) { 1390 case coro::ABI::Switch: { 1391 auto SwitchId = cast<CoroIdInst>(CoroId); 1392 coro::replaceCoroFree(SwitchId, /*Elide=*/AllocInst != nullptr); 1393 if (AllocInst) { 1394 IRBuilder<> Builder(AllocInst); 1395 auto *Frame = Builder.CreateAlloca(Shape.FrameTy); 1396 Frame->setAlignment(Shape.FrameAlign); 1397 auto *VFrame = Builder.CreateBitCast(Frame, Builder.getInt8PtrTy()); 1398 AllocInst->replaceAllUsesWith(Builder.getFalse()); 1399 AllocInst->eraseFromParent(); 1400 CoroBegin->replaceAllUsesWith(VFrame); 1401 } else { 1402 CoroBegin->replaceAllUsesWith(CoroBegin->getMem()); 1403 } 1404 1405 break; 1406 } 1407 case coro::ABI::Async: 1408 case coro::ABI::Retcon: 1409 case coro::ABI::RetconOnce: 1410 CoroBegin->replaceAllUsesWith(UndefValue::get(CoroBegin->getType())); 1411 break; 1412 } 1413 1414 CoroBegin->eraseFromParent(); 1415 } 1416 1417 // SimplifySuspendPoint needs to check that there is no calls between 1418 // coro_save and coro_suspend, since any of the calls may potentially resume 1419 // the coroutine and if that is the case we cannot eliminate the suspend point. 1420 static bool hasCallsInBlockBetween(Instruction *From, Instruction *To) { 1421 for (Instruction *I = From; I != To; I = I->getNextNode()) { 1422 // Assume that no intrinsic can resume the coroutine. 1423 if (isa<IntrinsicInst>(I)) 1424 continue; 1425 1426 if (isa<CallBase>(I)) 1427 return true; 1428 } 1429 return false; 1430 } 1431 1432 static bool hasCallsInBlocksBetween(BasicBlock *SaveBB, BasicBlock *ResDesBB) { 1433 SmallPtrSet<BasicBlock *, 8> Set; 1434 SmallVector<BasicBlock *, 8> Worklist; 1435 1436 Set.insert(SaveBB); 1437 Worklist.push_back(ResDesBB); 1438 1439 // Accumulate all blocks between SaveBB and ResDesBB. Because CoroSaveIntr 1440 // returns a token consumed by suspend instruction, all blocks in between 1441 // will have to eventually hit SaveBB when going backwards from ResDesBB. 1442 while (!Worklist.empty()) { 1443 auto *BB = Worklist.pop_back_val(); 1444 Set.insert(BB); 1445 for (auto *Pred : predecessors(BB)) 1446 if (!Set.contains(Pred)) 1447 Worklist.push_back(Pred); 1448 } 1449 1450 // SaveBB and ResDesBB are checked separately in hasCallsBetween. 1451 Set.erase(SaveBB); 1452 Set.erase(ResDesBB); 1453 1454 for (auto *BB : Set) 1455 if (hasCallsInBlockBetween(BB->getFirstNonPHI(), nullptr)) 1456 return true; 1457 1458 return false; 1459 } 1460 1461 static bool hasCallsBetween(Instruction *Save, Instruction *ResumeOrDestroy) { 1462 auto *SaveBB = Save->getParent(); 1463 auto *ResumeOrDestroyBB = ResumeOrDestroy->getParent(); 1464 1465 if (SaveBB == ResumeOrDestroyBB) 1466 return hasCallsInBlockBetween(Save->getNextNode(), ResumeOrDestroy); 1467 1468 // Any calls from Save to the end of the block? 1469 if (hasCallsInBlockBetween(Save->getNextNode(), nullptr)) 1470 return true; 1471 1472 // Any calls from begging of the block up to ResumeOrDestroy? 1473 if (hasCallsInBlockBetween(ResumeOrDestroyBB->getFirstNonPHI(), 1474 ResumeOrDestroy)) 1475 return true; 1476 1477 // Any calls in all of the blocks between SaveBB and ResumeOrDestroyBB? 1478 if (hasCallsInBlocksBetween(SaveBB, ResumeOrDestroyBB)) 1479 return true; 1480 1481 return false; 1482 } 1483 1484 // If a SuspendIntrin is preceded by Resume or Destroy, we can eliminate the 1485 // suspend point and replace it with nornal control flow. 1486 static bool simplifySuspendPoint(CoroSuspendInst *Suspend, 1487 CoroBeginInst *CoroBegin) { 1488 Instruction *Prev = Suspend->getPrevNode(); 1489 if (!Prev) { 1490 auto *Pred = Suspend->getParent()->getSinglePredecessor(); 1491 if (!Pred) 1492 return false; 1493 Prev = Pred->getTerminator(); 1494 } 1495 1496 CallBase *CB = dyn_cast<CallBase>(Prev); 1497 if (!CB) 1498 return false; 1499 1500 auto *Callee = CB->getCalledOperand()->stripPointerCasts(); 1501 1502 // See if the callsite is for resumption or destruction of the coroutine. 1503 auto *SubFn = dyn_cast<CoroSubFnInst>(Callee); 1504 if (!SubFn) 1505 return false; 1506 1507 // Does not refer to the current coroutine, we cannot do anything with it. 1508 if (SubFn->getFrame() != CoroBegin) 1509 return false; 1510 1511 // See if the transformation is safe. Specifically, see if there are any 1512 // calls in between Save and CallInstr. They can potenitally resume the 1513 // coroutine rendering this optimization unsafe. 1514 auto *Save = Suspend->getCoroSave(); 1515 if (hasCallsBetween(Save, CB)) 1516 return false; 1517 1518 // Replace llvm.coro.suspend with the value that results in resumption over 1519 // the resume or cleanup path. 1520 Suspend->replaceAllUsesWith(SubFn->getRawIndex()); 1521 Suspend->eraseFromParent(); 1522 Save->eraseFromParent(); 1523 1524 // No longer need a call to coro.resume or coro.destroy. 1525 if (auto *Invoke = dyn_cast<InvokeInst>(CB)) { 1526 BranchInst::Create(Invoke->getNormalDest(), Invoke); 1527 } 1528 1529 // Grab the CalledValue from CB before erasing the CallInstr. 1530 auto *CalledValue = CB->getCalledOperand(); 1531 CB->eraseFromParent(); 1532 1533 // If no more users remove it. Usually it is a bitcast of SubFn. 1534 if (CalledValue != SubFn && CalledValue->user_empty()) 1535 if (auto *I = dyn_cast<Instruction>(CalledValue)) 1536 I->eraseFromParent(); 1537 1538 // Now we are good to remove SubFn. 1539 if (SubFn->user_empty()) 1540 SubFn->eraseFromParent(); 1541 1542 return true; 1543 } 1544 1545 // Remove suspend points that are simplified. 1546 static void simplifySuspendPoints(coro::Shape &Shape) { 1547 // Currently, the only simplification we do is switch-lowering-specific. 1548 if (Shape.ABI != coro::ABI::Switch) 1549 return; 1550 1551 auto &S = Shape.CoroSuspends; 1552 size_t I = 0, N = S.size(); 1553 if (N == 0) 1554 return; 1555 while (true) { 1556 auto SI = cast<CoroSuspendInst>(S[I]); 1557 // Leave final.suspend to handleFinalSuspend since it is undefined behavior 1558 // to resume a coroutine suspended at the final suspend point. 1559 if (!SI->isFinal() && simplifySuspendPoint(SI, Shape.CoroBegin)) { 1560 if (--N == I) 1561 break; 1562 std::swap(S[I], S[N]); 1563 continue; 1564 } 1565 if (++I == N) 1566 break; 1567 } 1568 S.resize(N); 1569 } 1570 1571 static void splitSwitchCoroutine(Function &F, coro::Shape &Shape, 1572 SmallVectorImpl<Function *> &Clones) { 1573 assert(Shape.ABI == coro::ABI::Switch); 1574 1575 createResumeEntryBlock(F, Shape); 1576 auto ResumeClone = createClone(F, ".resume", Shape, 1577 CoroCloner::Kind::SwitchResume); 1578 auto DestroyClone = createClone(F, ".destroy", Shape, 1579 CoroCloner::Kind::SwitchUnwind); 1580 auto CleanupClone = createClone(F, ".cleanup", Shape, 1581 CoroCloner::Kind::SwitchCleanup); 1582 1583 postSplitCleanup(*ResumeClone); 1584 postSplitCleanup(*DestroyClone); 1585 postSplitCleanup(*CleanupClone); 1586 1587 addMustTailToCoroResumes(*ResumeClone); 1588 1589 // Store addresses resume/destroy/cleanup functions in the coroutine frame. 1590 updateCoroFrame(Shape, ResumeClone, DestroyClone, CleanupClone); 1591 1592 assert(Clones.empty()); 1593 Clones.push_back(ResumeClone); 1594 Clones.push_back(DestroyClone); 1595 Clones.push_back(CleanupClone); 1596 1597 // Create a constant array referring to resume/destroy/clone functions pointed 1598 // by the last argument of @llvm.coro.info, so that CoroElide pass can 1599 // determined correct function to call. 1600 setCoroInfo(F, Shape, Clones); 1601 } 1602 1603 static void replaceAsyncResumeFunction(CoroSuspendAsyncInst *Suspend, 1604 Value *Continuation) { 1605 auto *ResumeIntrinsic = Suspend->getResumeFunction(); 1606 auto &Context = Suspend->getParent()->getParent()->getContext(); 1607 auto *Int8PtrTy = Type::getInt8PtrTy(Context); 1608 1609 IRBuilder<> Builder(ResumeIntrinsic); 1610 auto *Val = Builder.CreateBitOrPointerCast(Continuation, Int8PtrTy); 1611 ResumeIntrinsic->replaceAllUsesWith(Val); 1612 ResumeIntrinsic->eraseFromParent(); 1613 Suspend->setOperand(CoroSuspendAsyncInst::ResumeFunctionArg, 1614 UndefValue::get(Int8PtrTy)); 1615 } 1616 1617 /// Coerce the arguments in \p FnArgs according to \p FnTy in \p CallArgs. 1618 static void coerceArguments(IRBuilder<> &Builder, FunctionType *FnTy, 1619 ArrayRef<Value *> FnArgs, 1620 SmallVectorImpl<Value *> &CallArgs) { 1621 size_t ArgIdx = 0; 1622 for (auto paramTy : FnTy->params()) { 1623 assert(ArgIdx < FnArgs.size()); 1624 if (paramTy != FnArgs[ArgIdx]->getType()) 1625 CallArgs.push_back( 1626 Builder.CreateBitOrPointerCast(FnArgs[ArgIdx], paramTy)); 1627 else 1628 CallArgs.push_back(FnArgs[ArgIdx]); 1629 ++ArgIdx; 1630 } 1631 } 1632 1633 CallInst *coro::createMustTailCall(DebugLoc Loc, Function *MustTailCallFn, 1634 ArrayRef<Value *> Arguments, 1635 IRBuilder<> &Builder) { 1636 auto *FnTy = MustTailCallFn->getFunctionType(); 1637 // Coerce the arguments, llvm optimizations seem to ignore the types in 1638 // vaarg functions and throws away casts in optimized mode. 1639 SmallVector<Value *, 8> CallArgs; 1640 coerceArguments(Builder, FnTy, Arguments, CallArgs); 1641 1642 auto *TailCall = Builder.CreateCall(FnTy, MustTailCallFn, CallArgs); 1643 TailCall->setTailCallKind(CallInst::TCK_MustTail); 1644 TailCall->setDebugLoc(Loc); 1645 TailCall->setCallingConv(MustTailCallFn->getCallingConv()); 1646 return TailCall; 1647 } 1648 1649 static void splitAsyncCoroutine(Function &F, coro::Shape &Shape, 1650 SmallVectorImpl<Function *> &Clones) { 1651 assert(Shape.ABI == coro::ABI::Async); 1652 assert(Clones.empty()); 1653 // Reset various things that the optimizer might have decided it 1654 // "knows" about the coroutine function due to not seeing a return. 1655 F.removeFnAttr(Attribute::NoReturn); 1656 F.removeRetAttr(Attribute::NoAlias); 1657 F.removeRetAttr(Attribute::NonNull); 1658 1659 auto &Context = F.getContext(); 1660 auto *Int8PtrTy = Type::getInt8PtrTy(Context); 1661 1662 auto *Id = cast<CoroIdAsyncInst>(Shape.CoroBegin->getId()); 1663 IRBuilder<> Builder(Id); 1664 1665 auto *FramePtr = Id->getStorage(); 1666 FramePtr = Builder.CreateBitOrPointerCast(FramePtr, Int8PtrTy); 1667 FramePtr = Builder.CreateConstInBoundsGEP1_32( 1668 Type::getInt8Ty(Context), FramePtr, Shape.AsyncLowering.FrameOffset, 1669 "async.ctx.frameptr"); 1670 1671 // Map all uses of llvm.coro.begin to the allocated frame pointer. 1672 { 1673 // Make sure we don't invalidate Shape.FramePtr. 1674 TrackingVH<Value> Handle(Shape.FramePtr); 1675 Shape.CoroBegin->replaceAllUsesWith(FramePtr); 1676 Shape.FramePtr = Handle.getValPtr(); 1677 } 1678 1679 // Create all the functions in order after the main function. 1680 auto NextF = std::next(F.getIterator()); 1681 1682 // Create a continuation function for each of the suspend points. 1683 Clones.reserve(Shape.CoroSuspends.size()); 1684 for (size_t Idx = 0, End = Shape.CoroSuspends.size(); Idx != End; ++Idx) { 1685 auto *Suspend = cast<CoroSuspendAsyncInst>(Shape.CoroSuspends[Idx]); 1686 1687 // Create the clone declaration. 1688 auto ResumeNameSuffix = ".resume."; 1689 auto ProjectionFunctionName = 1690 Suspend->getAsyncContextProjectionFunction()->getName(); 1691 bool UseSwiftMangling = false; 1692 if (ProjectionFunctionName.equals("__swift_async_resume_project_context")) { 1693 ResumeNameSuffix = "TQ"; 1694 UseSwiftMangling = true; 1695 } else if (ProjectionFunctionName.equals( 1696 "__swift_async_resume_get_context")) { 1697 ResumeNameSuffix = "TY"; 1698 UseSwiftMangling = true; 1699 } 1700 auto *Continuation = createCloneDeclaration( 1701 F, Shape, 1702 UseSwiftMangling ? ResumeNameSuffix + Twine(Idx) + "_" 1703 : ResumeNameSuffix + Twine(Idx), 1704 NextF, Suspend); 1705 Clones.push_back(Continuation); 1706 1707 // Insert a branch to a new return block immediately before the suspend 1708 // point. 1709 auto *SuspendBB = Suspend->getParent(); 1710 auto *NewSuspendBB = SuspendBB->splitBasicBlock(Suspend); 1711 auto *Branch = cast<BranchInst>(SuspendBB->getTerminator()); 1712 1713 // Place it before the first suspend. 1714 auto *ReturnBB = 1715 BasicBlock::Create(F.getContext(), "coro.return", &F, NewSuspendBB); 1716 Branch->setSuccessor(0, ReturnBB); 1717 1718 IRBuilder<> Builder(ReturnBB); 1719 1720 // Insert the call to the tail call function and inline it. 1721 auto *Fn = Suspend->getMustTailCallFunction(); 1722 SmallVector<Value *, 8> Args(Suspend->args()); 1723 auto FnArgs = ArrayRef<Value *>(Args).drop_front( 1724 CoroSuspendAsyncInst::MustTailCallFuncArg + 1); 1725 auto *TailCall = 1726 coro::createMustTailCall(Suspend->getDebugLoc(), Fn, FnArgs, Builder); 1727 Builder.CreateRetVoid(); 1728 InlineFunctionInfo FnInfo; 1729 auto InlineRes = InlineFunction(*TailCall, FnInfo); 1730 assert(InlineRes.isSuccess() && "Expected inlining to succeed"); 1731 (void)InlineRes; 1732 1733 // Replace the lvm.coro.async.resume intrisic call. 1734 replaceAsyncResumeFunction(Suspend, Continuation); 1735 } 1736 1737 assert(Clones.size() == Shape.CoroSuspends.size()); 1738 for (size_t Idx = 0, End = Shape.CoroSuspends.size(); Idx != End; ++Idx) { 1739 auto *Suspend = Shape.CoroSuspends[Idx]; 1740 auto *Clone = Clones[Idx]; 1741 1742 CoroCloner(F, "resume." + Twine(Idx), Shape, Clone, Suspend).create(); 1743 } 1744 } 1745 1746 static void splitRetconCoroutine(Function &F, coro::Shape &Shape, 1747 SmallVectorImpl<Function *> &Clones) { 1748 assert(Shape.ABI == coro::ABI::Retcon || 1749 Shape.ABI == coro::ABI::RetconOnce); 1750 assert(Clones.empty()); 1751 1752 // Reset various things that the optimizer might have decided it 1753 // "knows" about the coroutine function due to not seeing a return. 1754 F.removeFnAttr(Attribute::NoReturn); 1755 F.removeRetAttr(Attribute::NoAlias); 1756 F.removeRetAttr(Attribute::NonNull); 1757 1758 // Allocate the frame. 1759 auto *Id = cast<AnyCoroIdRetconInst>(Shape.CoroBegin->getId()); 1760 Value *RawFramePtr; 1761 if (Shape.RetconLowering.IsFrameInlineInStorage) { 1762 RawFramePtr = Id->getStorage(); 1763 } else { 1764 IRBuilder<> Builder(Id); 1765 1766 // Determine the size of the frame. 1767 const DataLayout &DL = F.getParent()->getDataLayout(); 1768 auto Size = DL.getTypeAllocSize(Shape.FrameTy); 1769 1770 // Allocate. We don't need to update the call graph node because we're 1771 // going to recompute it from scratch after splitting. 1772 // FIXME: pass the required alignment 1773 RawFramePtr = Shape.emitAlloc(Builder, Builder.getInt64(Size), nullptr); 1774 RawFramePtr = 1775 Builder.CreateBitCast(RawFramePtr, Shape.CoroBegin->getType()); 1776 1777 // Stash the allocated frame pointer in the continuation storage. 1778 auto Dest = Builder.CreateBitCast(Id->getStorage(), 1779 RawFramePtr->getType()->getPointerTo()); 1780 Builder.CreateStore(RawFramePtr, Dest); 1781 } 1782 1783 // Map all uses of llvm.coro.begin to the allocated frame pointer. 1784 { 1785 // Make sure we don't invalidate Shape.FramePtr. 1786 TrackingVH<Value> Handle(Shape.FramePtr); 1787 Shape.CoroBegin->replaceAllUsesWith(RawFramePtr); 1788 Shape.FramePtr = Handle.getValPtr(); 1789 } 1790 1791 // Create a unique return block. 1792 BasicBlock *ReturnBB = nullptr; 1793 SmallVector<PHINode *, 4> ReturnPHIs; 1794 1795 // Create all the functions in order after the main function. 1796 auto NextF = std::next(F.getIterator()); 1797 1798 // Create a continuation function for each of the suspend points. 1799 Clones.reserve(Shape.CoroSuspends.size()); 1800 for (size_t i = 0, e = Shape.CoroSuspends.size(); i != e; ++i) { 1801 auto Suspend = cast<CoroSuspendRetconInst>(Shape.CoroSuspends[i]); 1802 1803 // Create the clone declaration. 1804 auto Continuation = 1805 createCloneDeclaration(F, Shape, ".resume." + Twine(i), NextF, nullptr); 1806 Clones.push_back(Continuation); 1807 1808 // Insert a branch to the unified return block immediately before 1809 // the suspend point. 1810 auto SuspendBB = Suspend->getParent(); 1811 auto NewSuspendBB = SuspendBB->splitBasicBlock(Suspend); 1812 auto Branch = cast<BranchInst>(SuspendBB->getTerminator()); 1813 1814 // Create the unified return block. 1815 if (!ReturnBB) { 1816 // Place it before the first suspend. 1817 ReturnBB = BasicBlock::Create(F.getContext(), "coro.return", &F, 1818 NewSuspendBB); 1819 Shape.RetconLowering.ReturnBlock = ReturnBB; 1820 1821 IRBuilder<> Builder(ReturnBB); 1822 1823 // Create PHIs for all the return values. 1824 assert(ReturnPHIs.empty()); 1825 1826 // First, the continuation. 1827 ReturnPHIs.push_back(Builder.CreatePHI(Continuation->getType(), 1828 Shape.CoroSuspends.size())); 1829 1830 // Next, all the directly-yielded values. 1831 for (auto ResultTy : Shape.getRetconResultTypes()) 1832 ReturnPHIs.push_back(Builder.CreatePHI(ResultTy, 1833 Shape.CoroSuspends.size())); 1834 1835 // Build the return value. 1836 auto RetTy = F.getReturnType(); 1837 1838 // Cast the continuation value if necessary. 1839 // We can't rely on the types matching up because that type would 1840 // have to be infinite. 1841 auto CastedContinuationTy = 1842 (ReturnPHIs.size() == 1 ? RetTy : RetTy->getStructElementType(0)); 1843 auto *CastedContinuation = 1844 Builder.CreateBitCast(ReturnPHIs[0], CastedContinuationTy); 1845 1846 Value *RetV; 1847 if (ReturnPHIs.size() == 1) { 1848 RetV = CastedContinuation; 1849 } else { 1850 RetV = UndefValue::get(RetTy); 1851 RetV = Builder.CreateInsertValue(RetV, CastedContinuation, 0); 1852 for (size_t I = 1, E = ReturnPHIs.size(); I != E; ++I) 1853 RetV = Builder.CreateInsertValue(RetV, ReturnPHIs[I], I); 1854 } 1855 1856 Builder.CreateRet(RetV); 1857 } 1858 1859 // Branch to the return block. 1860 Branch->setSuccessor(0, ReturnBB); 1861 ReturnPHIs[0]->addIncoming(Continuation, SuspendBB); 1862 size_t NextPHIIndex = 1; 1863 for (auto &VUse : Suspend->value_operands()) 1864 ReturnPHIs[NextPHIIndex++]->addIncoming(&*VUse, SuspendBB); 1865 assert(NextPHIIndex == ReturnPHIs.size()); 1866 } 1867 1868 assert(Clones.size() == Shape.CoroSuspends.size()); 1869 for (size_t i = 0, e = Shape.CoroSuspends.size(); i != e; ++i) { 1870 auto Suspend = Shape.CoroSuspends[i]; 1871 auto Clone = Clones[i]; 1872 1873 CoroCloner(F, "resume." + Twine(i), Shape, Clone, Suspend).create(); 1874 } 1875 } 1876 1877 namespace { 1878 class PrettyStackTraceFunction : public PrettyStackTraceEntry { 1879 Function &F; 1880 public: 1881 PrettyStackTraceFunction(Function &F) : F(F) {} 1882 void print(raw_ostream &OS) const override { 1883 OS << "While splitting coroutine "; 1884 F.printAsOperand(OS, /*print type*/ false, F.getParent()); 1885 OS << "\n"; 1886 } 1887 }; 1888 } 1889 1890 static coro::Shape splitCoroutine(Function &F, 1891 SmallVectorImpl<Function *> &Clones, 1892 bool OptimizeFrame) { 1893 PrettyStackTraceFunction prettyStackTrace(F); 1894 1895 // The suspend-crossing algorithm in buildCoroutineFrame get tripped 1896 // up by uses in unreachable blocks, so remove them as a first pass. 1897 removeUnreachableBlocks(F); 1898 1899 coro::Shape Shape(F, OptimizeFrame); 1900 if (!Shape.CoroBegin) 1901 return Shape; 1902 1903 simplifySuspendPoints(Shape); 1904 buildCoroutineFrame(F, Shape); 1905 replaceFrameSizeAndAlignment(Shape); 1906 1907 // If there are no suspend points, no split required, just remove 1908 // the allocation and deallocation blocks, they are not needed. 1909 if (Shape.CoroSuspends.empty()) { 1910 handleNoSuspendCoroutine(Shape); 1911 } else { 1912 switch (Shape.ABI) { 1913 case coro::ABI::Switch: 1914 splitSwitchCoroutine(F, Shape, Clones); 1915 break; 1916 case coro::ABI::Async: 1917 splitAsyncCoroutine(F, Shape, Clones); 1918 break; 1919 case coro::ABI::Retcon: 1920 case coro::ABI::RetconOnce: 1921 splitRetconCoroutine(F, Shape, Clones); 1922 break; 1923 } 1924 } 1925 1926 // Replace all the swifterror operations in the original function. 1927 // This invalidates SwiftErrorOps in the Shape. 1928 replaceSwiftErrorOps(F, Shape, nullptr); 1929 1930 // Finally, salvage the llvm.dbg.{declare,addr} in our original function that 1931 // point into the coroutine frame. We only do this for the current function 1932 // since the Cloner salvaged debug info for us in the new coroutine funclets. 1933 SmallVector<DbgVariableIntrinsic *, 8> Worklist; 1934 SmallDenseMap<llvm::Value *, llvm::AllocaInst *, 4> DbgPtrAllocaCache; 1935 for (auto &BB : F) { 1936 for (auto &I : BB) { 1937 if (auto *DDI = dyn_cast<DbgDeclareInst>(&I)) { 1938 Worklist.push_back(DDI); 1939 continue; 1940 } 1941 if (auto *DDI = dyn_cast<DbgAddrIntrinsic>(&I)) { 1942 Worklist.push_back(DDI); 1943 continue; 1944 } 1945 } 1946 } 1947 for (auto *DDI : Worklist) 1948 coro::salvageDebugInfo(DbgPtrAllocaCache, DDI, Shape.OptimizeFrame); 1949 1950 return Shape; 1951 } 1952 1953 static void updateCallGraphAfterCoroutineSplit( 1954 LazyCallGraph::Node &N, const coro::Shape &Shape, 1955 const SmallVectorImpl<Function *> &Clones, LazyCallGraph::SCC &C, 1956 LazyCallGraph &CG, CGSCCAnalysisManager &AM, CGSCCUpdateResult &UR, 1957 FunctionAnalysisManager &FAM) { 1958 if (!Shape.CoroBegin) 1959 return; 1960 1961 for (llvm::AnyCoroEndInst *End : Shape.CoroEnds) { 1962 auto &Context = End->getContext(); 1963 End->replaceAllUsesWith(ConstantInt::getFalse(Context)); 1964 End->eraseFromParent(); 1965 } 1966 1967 if (!Clones.empty()) { 1968 switch (Shape.ABI) { 1969 case coro::ABI::Switch: 1970 // Each clone in the Switch lowering is independent of the other clones. 1971 // Let the LazyCallGraph know about each one separately. 1972 for (Function *Clone : Clones) 1973 CG.addSplitFunction(N.getFunction(), *Clone); 1974 break; 1975 case coro::ABI::Async: 1976 case coro::ABI::Retcon: 1977 case coro::ABI::RetconOnce: 1978 // Each clone in the Async/Retcon lowering references of the other clones. 1979 // Let the LazyCallGraph know about all of them at once. 1980 if (!Clones.empty()) 1981 CG.addSplitRefRecursiveFunctions(N.getFunction(), Clones); 1982 break; 1983 } 1984 1985 // Let the CGSCC infra handle the changes to the original function. 1986 updateCGAndAnalysisManagerForCGSCCPass(CG, C, N, AM, UR, FAM); 1987 } 1988 1989 // Do some cleanup and let the CGSCC infra see if we've cleaned up any edges 1990 // to the split functions. 1991 postSplitCleanup(N.getFunction()); 1992 updateCGAndAnalysisManagerForFunctionPass(CG, C, N, AM, UR, FAM); 1993 } 1994 1995 /// Replace a call to llvm.coro.prepare.retcon. 1996 static void replacePrepare(CallInst *Prepare, LazyCallGraph &CG, 1997 LazyCallGraph::SCC &C) { 1998 auto CastFn = Prepare->getArgOperand(0); // as an i8* 1999 auto Fn = CastFn->stripPointerCasts(); // as its original type 2000 2001 // Attempt to peephole this pattern: 2002 // %0 = bitcast [[TYPE]] @some_function to i8* 2003 // %1 = call @llvm.coro.prepare.retcon(i8* %0) 2004 // %2 = bitcast %1 to [[TYPE]] 2005 // ==> 2006 // %2 = @some_function 2007 for (Use &U : llvm::make_early_inc_range(Prepare->uses())) { 2008 // Look for bitcasts back to the original function type. 2009 auto *Cast = dyn_cast<BitCastInst>(U.getUser()); 2010 if (!Cast || Cast->getType() != Fn->getType()) 2011 continue; 2012 2013 // Replace and remove the cast. 2014 Cast->replaceAllUsesWith(Fn); 2015 Cast->eraseFromParent(); 2016 } 2017 2018 // Replace any remaining uses with the function as an i8*. 2019 // This can never directly be a callee, so we don't need to update CG. 2020 Prepare->replaceAllUsesWith(CastFn); 2021 Prepare->eraseFromParent(); 2022 2023 // Kill dead bitcasts. 2024 while (auto *Cast = dyn_cast<BitCastInst>(CastFn)) { 2025 if (!Cast->use_empty()) 2026 break; 2027 CastFn = Cast->getOperand(0); 2028 Cast->eraseFromParent(); 2029 } 2030 } 2031 2032 static bool replaceAllPrepares(Function *PrepareFn, LazyCallGraph &CG, 2033 LazyCallGraph::SCC &C) { 2034 bool Changed = false; 2035 for (Use &P : llvm::make_early_inc_range(PrepareFn->uses())) { 2036 // Intrinsics can only be used in calls. 2037 auto *Prepare = cast<CallInst>(P.getUser()); 2038 replacePrepare(Prepare, CG, C); 2039 Changed = true; 2040 } 2041 2042 return Changed; 2043 } 2044 2045 static void addPrepareFunction(const Module &M, 2046 SmallVectorImpl<Function *> &Fns, 2047 StringRef Name) { 2048 auto *PrepareFn = M.getFunction(Name); 2049 if (PrepareFn && !PrepareFn->use_empty()) 2050 Fns.push_back(PrepareFn); 2051 } 2052 2053 PreservedAnalyses CoroSplitPass::run(LazyCallGraph::SCC &C, 2054 CGSCCAnalysisManager &AM, 2055 LazyCallGraph &CG, CGSCCUpdateResult &UR) { 2056 // NB: One invariant of a valid LazyCallGraph::SCC is that it must contain a 2057 // non-zero number of nodes, so we assume that here and grab the first 2058 // node's function's module. 2059 Module &M = *C.begin()->getFunction().getParent(); 2060 auto &FAM = 2061 AM.getResult<FunctionAnalysisManagerCGSCCProxy>(C, CG).getManager(); 2062 2063 // Check for uses of llvm.coro.prepare.retcon/async. 2064 SmallVector<Function *, 2> PrepareFns; 2065 addPrepareFunction(M, PrepareFns, "llvm.coro.prepare.retcon"); 2066 addPrepareFunction(M, PrepareFns, "llvm.coro.prepare.async"); 2067 2068 // Find coroutines for processing. 2069 SmallVector<LazyCallGraph::Node *> Coroutines; 2070 for (LazyCallGraph::Node &N : C) 2071 if (N.getFunction().hasFnAttribute(CORO_PRESPLIT_ATTR)) 2072 Coroutines.push_back(&N); 2073 2074 if (Coroutines.empty() && PrepareFns.empty()) 2075 return PreservedAnalyses::all(); 2076 2077 if (Coroutines.empty()) { 2078 for (auto *PrepareFn : PrepareFns) { 2079 replaceAllPrepares(PrepareFn, CG, C); 2080 } 2081 } 2082 2083 // Split all the coroutines. 2084 for (LazyCallGraph::Node *N : Coroutines) { 2085 Function &F = N->getFunction(); 2086 LLVM_DEBUG(dbgs() << "CoroSplit: Processing coroutine '" << F.getName() 2087 << "\n"); 2088 F.removeFnAttr(CORO_PRESPLIT_ATTR); 2089 2090 SmallVector<Function *, 4> Clones; 2091 const coro::Shape Shape = splitCoroutine(F, Clones, OptimizeFrame); 2092 updateCallGraphAfterCoroutineSplit(*N, Shape, Clones, C, CG, AM, UR, FAM); 2093 2094 if (!Shape.CoroSuspends.empty()) { 2095 // Run the CGSCC pipeline on the original and newly split functions. 2096 UR.CWorklist.insert(&C); 2097 for (Function *Clone : Clones) 2098 UR.CWorklist.insert(CG.lookupSCC(CG.get(*Clone))); 2099 } 2100 } 2101 2102 if (!PrepareFns.empty()) { 2103 for (auto *PrepareFn : PrepareFns) { 2104 replaceAllPrepares(PrepareFn, CG, C); 2105 } 2106 } 2107 2108 return PreservedAnalyses::none(); 2109 } 2110