1 //===- MergeFunctions.cpp - Merge identical functions ---------------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // This pass looks for equivalent functions that are mergable and folds them. 10 // 11 // Order relation is defined on set of functions. It was made through 12 // special function comparison procedure that returns 13 // 0 when functions are equal, 14 // -1 when Left function is less than right function, and 15 // 1 for opposite case. We need total-ordering, so we need to maintain 16 // four properties on the functions set: 17 // a <= a (reflexivity) 18 // if a <= b and b <= a then a = b (antisymmetry) 19 // if a <= b and b <= c then a <= c (transitivity). 20 // for all a and b: a <= b or b <= a (totality). 21 // 22 // Comparison iterates through each instruction in each basic block. 23 // Functions are kept on binary tree. For each new function F we perform 24 // lookup in binary tree. 25 // In practice it works the following way: 26 // -- We define Function* container class with custom "operator<" (FunctionPtr). 27 // -- "FunctionPtr" instances are stored in std::set collection, so every 28 // std::set::insert operation will give you result in log(N) time. 29 // 30 // As an optimization, a hash of the function structure is calculated first, and 31 // two functions are only compared if they have the same hash. This hash is 32 // cheap to compute, and has the property that if function F == G according to 33 // the comparison function, then hash(F) == hash(G). This consistency property 34 // is critical to ensuring all possible merging opportunities are exploited. 35 // Collisions in the hash affect the speed of the pass but not the correctness 36 // or determinism of the resulting transformation. 37 // 38 // When a match is found the functions are folded. If both functions are 39 // overridable, we move the functionality into a new internal function and 40 // leave two overridable thunks to it. 41 // 42 //===----------------------------------------------------------------------===// 43 // 44 // Future work: 45 // 46 // * virtual functions. 47 // 48 // Many functions have their address taken by the virtual function table for 49 // the object they belong to. However, as long as it's only used for a lookup 50 // and call, this is irrelevant, and we'd like to fold such functions. 51 // 52 // * be smarter about bitcasts. 53 // 54 // In order to fold functions, we will sometimes add either bitcast instructions 55 // or bitcast constant expressions. Unfortunately, this can confound further 56 // analysis since the two functions differ where one has a bitcast and the 57 // other doesn't. We should learn to look through bitcasts. 58 // 59 // * Compare complex types with pointer types inside. 60 // * Compare cross-reference cases. 61 // * Compare complex expressions. 62 // 63 // All the three issues above could be described as ability to prove that 64 // fA == fB == fC == fE == fF == fG in example below: 65 // 66 // void fA() { 67 // fB(); 68 // } 69 // void fB() { 70 // fA(); 71 // } 72 // 73 // void fE() { 74 // fF(); 75 // } 76 // void fF() { 77 // fG(); 78 // } 79 // void fG() { 80 // fE(); 81 // } 82 // 83 // Simplest cross-reference case (fA <--> fB) was implemented in previous 84 // versions of MergeFunctions, though it presented only in two function pairs 85 // in test-suite (that counts >50k functions) 86 // Though possibility to detect complex cross-referencing (e.g.: A->B->C->D->A) 87 // could cover much more cases. 88 // 89 //===----------------------------------------------------------------------===// 90 91 #include "llvm/Transforms/IPO/MergeFunctions.h" 92 #include "llvm/ADT/ArrayRef.h" 93 #include "llvm/ADT/SmallVector.h" 94 #include "llvm/ADT/Statistic.h" 95 #include "llvm/IR/Argument.h" 96 #include "llvm/IR/BasicBlock.h" 97 #include "llvm/IR/DebugInfoMetadata.h" 98 #include "llvm/IR/DebugLoc.h" 99 #include "llvm/IR/DerivedTypes.h" 100 #include "llvm/IR/Function.h" 101 #include "llvm/IR/GlobalValue.h" 102 #include "llvm/IR/IRBuilder.h" 103 #include "llvm/IR/InstrTypes.h" 104 #include "llvm/IR/Instruction.h" 105 #include "llvm/IR/Instructions.h" 106 #include "llvm/IR/IntrinsicInst.h" 107 #include "llvm/IR/Module.h" 108 #include "llvm/IR/StructuralHash.h" 109 #include "llvm/IR/Type.h" 110 #include "llvm/IR/Use.h" 111 #include "llvm/IR/User.h" 112 #include "llvm/IR/Value.h" 113 #include "llvm/IR/ValueHandle.h" 114 #include "llvm/Support/Casting.h" 115 #include "llvm/Support/CommandLine.h" 116 #include "llvm/Support/Debug.h" 117 #include "llvm/Support/raw_ostream.h" 118 #include "llvm/Transforms/IPO.h" 119 #include "llvm/Transforms/Utils/FunctionComparator.h" 120 #include "llvm/Transforms/Utils/ModuleUtils.h" 121 #include <algorithm> 122 #include <cassert> 123 #include <iterator> 124 #include <set> 125 #include <utility> 126 #include <vector> 127 128 using namespace llvm; 129 130 #define DEBUG_TYPE "mergefunc" 131 132 STATISTIC(NumFunctionsMerged, "Number of functions merged"); 133 STATISTIC(NumThunksWritten, "Number of thunks generated"); 134 STATISTIC(NumAliasesWritten, "Number of aliases generated"); 135 STATISTIC(NumDoubleWeak, "Number of new functions created"); 136 137 static cl::opt<unsigned> NumFunctionsForVerificationCheck( 138 "mergefunc-verify", 139 cl::desc("How many functions in a module could be used for " 140 "MergeFunctions to pass a basic correctness check. " 141 "'0' disables this check. Works only with '-debug' key."), 142 cl::init(0), cl::Hidden); 143 144 // Under option -mergefunc-preserve-debug-info we: 145 // - Do not create a new function for a thunk. 146 // - Retain the debug info for a thunk's parameters (and associated 147 // instructions for the debug info) from the entry block. 148 // Note: -debug will display the algorithm at work. 149 // - Create debug-info for the call (to the shared implementation) made by 150 // a thunk and its return value. 151 // - Erase the rest of the function, retaining the (minimally sized) entry 152 // block to create a thunk. 153 // - Preserve a thunk's call site to point to the thunk even when both occur 154 // within the same translation unit, to aid debugability. Note that this 155 // behaviour differs from the underlying -mergefunc implementation which 156 // modifies the thunk's call site to point to the shared implementation 157 // when both occur within the same translation unit. 158 static cl::opt<bool> 159 MergeFunctionsPDI("mergefunc-preserve-debug-info", cl::Hidden, 160 cl::init(false), 161 cl::desc("Preserve debug info in thunk when mergefunc " 162 "transformations are made.")); 163 164 static cl::opt<bool> 165 MergeFunctionsAliases("mergefunc-use-aliases", cl::Hidden, 166 cl::init(false), 167 cl::desc("Allow mergefunc to create aliases")); 168 169 namespace { 170 171 class FunctionNode { 172 mutable AssertingVH<Function> F; 173 stable_hash Hash; 174 175 public: 176 // Note the hash is recalculated potentially multiple times, but it is cheap. 177 FunctionNode(Function *F) : F(F), Hash(StructuralHash(*F)) {} 178 179 Function *getFunc() const { return F; } 180 stable_hash getHash() const { return Hash; } 181 182 /// Replace the reference to the function F by the function G, assuming their 183 /// implementations are equal. 184 void replaceBy(Function *G) const { 185 F = G; 186 } 187 }; 188 189 /// MergeFunctions finds functions which will generate identical machine code, 190 /// by considering all pointer types to be equivalent. Once identified, 191 /// MergeFunctions will fold them by replacing a call to one to a call to a 192 /// bitcast of the other. 193 class MergeFunctions { 194 public: 195 MergeFunctions() : FnTree(FunctionNodeCmp(&GlobalNumbers)) { 196 } 197 198 template <typename FuncContainer> bool run(FuncContainer &Functions); 199 DenseMap<Function *, Function *> runOnFunctions(ArrayRef<Function *> F); 200 201 SmallPtrSet<GlobalValue *, 4> &getUsed(); 202 203 private: 204 // The function comparison operator is provided here so that FunctionNodes do 205 // not need to become larger with another pointer. 206 class FunctionNodeCmp { 207 GlobalNumberState* GlobalNumbers; 208 209 public: 210 FunctionNodeCmp(GlobalNumberState* GN) : GlobalNumbers(GN) {} 211 212 bool operator()(const FunctionNode &LHS, const FunctionNode &RHS) const { 213 // Order first by hashes, then full function comparison. 214 if (LHS.getHash() != RHS.getHash()) 215 return LHS.getHash() < RHS.getHash(); 216 FunctionComparator FCmp(LHS.getFunc(), RHS.getFunc(), GlobalNumbers); 217 return FCmp.compare() < 0; 218 } 219 }; 220 using FnTreeType = std::set<FunctionNode, FunctionNodeCmp>; 221 222 GlobalNumberState GlobalNumbers; 223 224 /// A work queue of functions that may have been modified and should be 225 /// analyzed again. 226 std::vector<WeakTrackingVH> Deferred; 227 228 /// Set of values marked as used in llvm.used and llvm.compiler.used. 229 SmallPtrSet<GlobalValue *, 4> Used; 230 231 #ifndef NDEBUG 232 /// Checks the rules of order relation introduced among functions set. 233 /// Returns true, if check has been passed, and false if failed. 234 bool doFunctionalCheck(std::vector<WeakTrackingVH> &Worklist); 235 #endif 236 237 /// Insert a ComparableFunction into the FnTree, or merge it away if it's 238 /// equal to one that's already present. 239 bool insert(Function *NewFunction); 240 241 /// Remove a Function from the FnTree and queue it up for a second sweep of 242 /// analysis. 243 void remove(Function *F); 244 245 /// Find the functions that use this Value and remove them from FnTree and 246 /// queue the functions. 247 void removeUsers(Value *V); 248 249 /// Replace all direct calls of Old with calls of New. Will bitcast New if 250 /// necessary to make types match. 251 void replaceDirectCallers(Function *Old, Function *New); 252 253 /// Merge two equivalent functions. Upon completion, G may be deleted, or may 254 /// be converted into a thunk. In either case, it should never be visited 255 /// again. 256 void mergeTwoFunctions(Function *F, Function *G); 257 258 /// Fill PDIUnrelatedWL with instructions from the entry block that are 259 /// unrelated to parameter related debug info. 260 /// \param PDVRUnrelatedWL The equivalent non-intrinsic debug records. 261 void 262 filterInstsUnrelatedToPDI(BasicBlock *GEntryBlock, 263 std::vector<Instruction *> &PDIUnrelatedWL, 264 std::vector<DbgVariableRecord *> &PDVRUnrelatedWL); 265 266 /// Erase the rest of the CFG (i.e. barring the entry block). 267 void eraseTail(Function *G); 268 269 /// Erase the instructions in PDIUnrelatedWL as they are unrelated to the 270 /// parameter debug info, from the entry block. 271 /// \param PDVRUnrelatedWL contains the equivalent set of non-instruction 272 /// debug-info records. 273 void 274 eraseInstsUnrelatedToPDI(std::vector<Instruction *> &PDIUnrelatedWL, 275 std::vector<DbgVariableRecord *> &PDVRUnrelatedWL); 276 277 /// Replace G with a simple tail call to bitcast(F). Also (unless 278 /// MergeFunctionsPDI holds) replace direct uses of G with bitcast(F), 279 /// delete G. 280 void writeThunk(Function *F, Function *G); 281 282 // Replace G with an alias to F (deleting function G) 283 void writeAlias(Function *F, Function *G); 284 285 // If needed, replace G with an alias to F if possible, or a thunk to F if 286 // profitable. Returns false if neither is the case. If \p G is not needed 287 // (i.e. it is discardable and not used), \p G is removed directly. 288 bool writeThunkOrAliasIfNeeded(Function *F, Function *G); 289 290 /// Replace function F with function G in the function tree. 291 void replaceFunctionInTree(const FunctionNode &FN, Function *G); 292 293 /// The set of all distinct functions. Use the insert() and remove() methods 294 /// to modify it. The map allows efficient lookup and deferring of Functions. 295 FnTreeType FnTree; 296 297 // Map functions to the iterators of the FunctionNode which contains them 298 // in the FnTree. This must be updated carefully whenever the FnTree is 299 // modified, i.e. in insert(), remove(), and replaceFunctionInTree(), to avoid 300 // dangling iterators into FnTree. The invariant that preserves this is that 301 // there is exactly one mapping F -> FN for each FunctionNode FN in FnTree. 302 DenseMap<AssertingVH<Function>, FnTreeType::iterator> FNodesInTree; 303 304 /// Deleted-New functions mapping 305 DenseMap<Function *, Function *> DelToNewMap; 306 }; 307 } // end anonymous namespace 308 309 PreservedAnalyses MergeFunctionsPass::run(Module &M, 310 ModuleAnalysisManager &AM) { 311 if (!MergeFunctionsPass::runOnModule(M)) 312 return PreservedAnalyses::all(); 313 return PreservedAnalyses::none(); 314 } 315 316 SmallPtrSet<GlobalValue *, 4> &MergeFunctions::getUsed() { return Used; } 317 318 bool MergeFunctionsPass::runOnModule(Module &M) { 319 MergeFunctions MF; 320 SmallVector<GlobalValue *, 4> UsedV; 321 collectUsedGlobalVariables(M, UsedV, /*CompilerUsed=*/false); 322 collectUsedGlobalVariables(M, UsedV, /*CompilerUsed=*/true); 323 MF.getUsed().insert_range(UsedV); 324 return MF.run(M); 325 } 326 327 DenseMap<Function *, Function *> 328 MergeFunctionsPass::runOnFunctions(ArrayRef<Function *> F) { 329 MergeFunctions MF; 330 return MF.runOnFunctions(F); 331 } 332 333 #ifndef NDEBUG 334 bool MergeFunctions::doFunctionalCheck(std::vector<WeakTrackingVH> &Worklist) { 335 if (const unsigned Max = NumFunctionsForVerificationCheck) { 336 unsigned TripleNumber = 0; 337 bool Valid = true; 338 339 dbgs() << "MERGEFUNC-VERIFY: Started for first " << Max << " functions.\n"; 340 341 unsigned i = 0; 342 for (std::vector<WeakTrackingVH>::iterator I = Worklist.begin(), 343 E = Worklist.end(); 344 I != E && i < Max; ++I, ++i) { 345 unsigned j = i; 346 for (std::vector<WeakTrackingVH>::iterator J = I; J != E && j < Max; 347 ++J, ++j) { 348 Function *F1 = cast<Function>(*I); 349 Function *F2 = cast<Function>(*J); 350 int Res1 = FunctionComparator(F1, F2, &GlobalNumbers).compare(); 351 int Res2 = FunctionComparator(F2, F1, &GlobalNumbers).compare(); 352 353 // If F1 <= F2, then F2 >= F1, otherwise report failure. 354 if (Res1 != -Res2) { 355 dbgs() << "MERGEFUNC-VERIFY: Non-symmetric; triple: " << TripleNumber 356 << "\n"; 357 dbgs() << *F1 << '\n' << *F2 << '\n'; 358 Valid = false; 359 } 360 361 if (Res1 == 0) 362 continue; 363 364 unsigned k = j; 365 for (std::vector<WeakTrackingVH>::iterator K = J; K != E && k < Max; 366 ++k, ++K, ++TripleNumber) { 367 if (K == J) 368 continue; 369 370 Function *F3 = cast<Function>(*K); 371 int Res3 = FunctionComparator(F1, F3, &GlobalNumbers).compare(); 372 int Res4 = FunctionComparator(F2, F3, &GlobalNumbers).compare(); 373 374 bool Transitive = true; 375 376 if (Res1 != 0 && Res1 == Res4) { 377 // F1 > F2, F2 > F3 => F1 > F3 378 Transitive = Res3 == Res1; 379 } else if (Res3 != 0 && Res3 == -Res4) { 380 // F1 > F3, F3 > F2 => F1 > F2 381 Transitive = Res3 == Res1; 382 } else if (Res4 != 0 && -Res3 == Res4) { 383 // F2 > F3, F3 > F1 => F2 > F1 384 Transitive = Res4 == -Res1; 385 } 386 387 if (!Transitive) { 388 dbgs() << "MERGEFUNC-VERIFY: Non-transitive; triple: " 389 << TripleNumber << "\n"; 390 dbgs() << "Res1, Res3, Res4: " << Res1 << ", " << Res3 << ", " 391 << Res4 << "\n"; 392 dbgs() << *F1 << '\n' << *F2 << '\n' << *F3 << '\n'; 393 Valid = false; 394 } 395 } 396 } 397 } 398 399 dbgs() << "MERGEFUNC-VERIFY: " << (Valid ? "Passed." : "Failed.") << "\n"; 400 return Valid; 401 } 402 return true; 403 } 404 #endif 405 406 /// Check whether \p F has an intrinsic which references 407 /// distinct metadata as an operand. The most common 408 /// instance of this would be CFI checks for function-local types. 409 static bool hasDistinctMetadataIntrinsic(const Function &F) { 410 for (const BasicBlock &BB : F) { 411 for (const Instruction &I : BB.instructionsWithoutDebug()) { 412 if (!isa<IntrinsicInst>(&I)) 413 continue; 414 415 for (Value *Op : I.operands()) { 416 auto *MDL = dyn_cast<MetadataAsValue>(Op); 417 if (!MDL) 418 continue; 419 if (MDNode *N = dyn_cast<MDNode>(MDL->getMetadata())) 420 if (N->isDistinct()) 421 return true; 422 } 423 } 424 } 425 return false; 426 } 427 428 /// Check whether \p F is eligible for function merging. 429 static bool isEligibleForMerging(Function &F) { 430 return !F.isDeclaration() && !F.hasAvailableExternallyLinkage() && 431 !hasDistinctMetadataIntrinsic(F); 432 } 433 434 inline Function *asPtr(Function *Fn) { return Fn; } 435 inline Function *asPtr(Function &Fn) { return &Fn; } 436 437 template <typename FuncContainer> bool MergeFunctions::run(FuncContainer &M) { 438 bool Changed = false; 439 440 // All functions in the module, ordered by hash. Functions with a unique 441 // hash value are easily eliminated. 442 std::vector<std::pair<stable_hash, Function *>> HashedFuncs; 443 for (auto &Func : M) { 444 Function *FuncPtr = asPtr(Func); 445 if (isEligibleForMerging(*FuncPtr)) { 446 HashedFuncs.push_back({StructuralHash(*FuncPtr), FuncPtr}); 447 } 448 } 449 450 llvm::stable_sort(HashedFuncs, less_first()); 451 452 auto S = HashedFuncs.begin(); 453 for (auto I = HashedFuncs.begin(), IE = HashedFuncs.end(); I != IE; ++I) { 454 // If the hash value matches the previous value or the next one, we must 455 // consider merging it. Otherwise it is dropped and never considered again. 456 if ((I != S && std::prev(I)->first == I->first) || 457 (std::next(I) != IE && std::next(I)->first == I->first)) { 458 Deferred.push_back(WeakTrackingVH(I->second)); 459 } 460 } 461 462 do { 463 std::vector<WeakTrackingVH> Worklist; 464 Deferred.swap(Worklist); 465 466 LLVM_DEBUG(doFunctionalCheck(Worklist)); 467 468 LLVM_DEBUG(dbgs() << "size of module: " << M.size() << '\n'); 469 LLVM_DEBUG(dbgs() << "size of worklist: " << Worklist.size() << '\n'); 470 471 // Insert functions and merge them. 472 for (WeakTrackingVH &I : Worklist) { 473 if (!I) 474 continue; 475 Function *F = cast<Function>(I); 476 if (!F->isDeclaration() && !F->hasAvailableExternallyLinkage()) { 477 Changed |= insert(F); 478 } 479 } 480 LLVM_DEBUG(dbgs() << "size of FnTree: " << FnTree.size() << '\n'); 481 } while (!Deferred.empty()); 482 483 FnTree.clear(); 484 FNodesInTree.clear(); 485 GlobalNumbers.clear(); 486 Used.clear(); 487 488 return Changed; 489 } 490 491 DenseMap<Function *, Function *> 492 MergeFunctions::runOnFunctions(ArrayRef<Function *> F) { 493 [[maybe_unused]] bool MergeResult = this->run(F); 494 assert(MergeResult == !DelToNewMap.empty()); 495 return this->DelToNewMap; 496 } 497 498 // Replace direct callers of Old with New. 499 void MergeFunctions::replaceDirectCallers(Function *Old, Function *New) { 500 for (Use &U : make_early_inc_range(Old->uses())) { 501 CallBase *CB = dyn_cast<CallBase>(U.getUser()); 502 if (CB && CB->isCallee(&U)) { 503 // Do not copy attributes from the called function to the call-site. 504 // Function comparison ensures that the attributes are the same up to 505 // type congruences in byval(), in which case we need to keep the byval 506 // type of the call-site, not the callee function. 507 remove(CB->getFunction()); 508 U.set(New); 509 } 510 } 511 } 512 513 // Erase the instructions in PDIUnrelatedWL as they are unrelated to the 514 // parameter debug info, from the entry block. 515 void MergeFunctions::eraseInstsUnrelatedToPDI( 516 std::vector<Instruction *> &PDIUnrelatedWL, 517 std::vector<DbgVariableRecord *> &PDVRUnrelatedWL) { 518 LLVM_DEBUG( 519 dbgs() << " Erasing instructions (in reverse order of appearance in " 520 "entry block) unrelated to parameter debug info from entry " 521 "block: {\n"); 522 while (!PDIUnrelatedWL.empty()) { 523 Instruction *I = PDIUnrelatedWL.back(); 524 LLVM_DEBUG(dbgs() << " Deleting Instruction: "); 525 LLVM_DEBUG(I->print(dbgs())); 526 LLVM_DEBUG(dbgs() << "\n"); 527 I->eraseFromParent(); 528 PDIUnrelatedWL.pop_back(); 529 } 530 531 while (!PDVRUnrelatedWL.empty()) { 532 DbgVariableRecord *DVR = PDVRUnrelatedWL.back(); 533 LLVM_DEBUG(dbgs() << " Deleting DbgVariableRecord "); 534 LLVM_DEBUG(DVR->print(dbgs())); 535 LLVM_DEBUG(dbgs() << "\n"); 536 DVR->eraseFromParent(); 537 PDVRUnrelatedWL.pop_back(); 538 } 539 540 LLVM_DEBUG(dbgs() << " } // Done erasing instructions unrelated to parameter " 541 "debug info from entry block. \n"); 542 } 543 544 // Reduce G to its entry block. 545 void MergeFunctions::eraseTail(Function *G) { 546 std::vector<BasicBlock *> WorklistBB; 547 for (BasicBlock &BB : drop_begin(*G)) { 548 BB.dropAllReferences(); 549 WorklistBB.push_back(&BB); 550 } 551 while (!WorklistBB.empty()) { 552 BasicBlock *BB = WorklistBB.back(); 553 BB->eraseFromParent(); 554 WorklistBB.pop_back(); 555 } 556 } 557 558 // We are interested in the following instructions from the entry block as being 559 // related to parameter debug info: 560 // - @llvm.dbg.declare 561 // - stores from the incoming parameters to locations on the stack-frame 562 // - allocas that create these locations on the stack-frame 563 // - @llvm.dbg.value 564 // - the entry block's terminator 565 // The rest are unrelated to debug info for the parameters; fill up 566 // PDIUnrelatedWL with such instructions. 567 void MergeFunctions::filterInstsUnrelatedToPDI( 568 BasicBlock *GEntryBlock, std::vector<Instruction *> &PDIUnrelatedWL, 569 std::vector<DbgVariableRecord *> &PDVRUnrelatedWL) { 570 std::set<Instruction *> PDIRelated; 571 std::set<DbgVariableRecord *> PDVRRelated; 572 573 // Work out whether a dbg.value intrinsic or an equivalent DbgVariableRecord 574 // is a parameter to be preserved. 575 auto ExamineDbgValue = [](auto *DbgVal, auto &Container) { 576 LLVM_DEBUG(dbgs() << " Deciding: "); 577 LLVM_DEBUG(DbgVal->print(dbgs())); 578 LLVM_DEBUG(dbgs() << "\n"); 579 DILocalVariable *DILocVar = DbgVal->getVariable(); 580 if (DILocVar->isParameter()) { 581 LLVM_DEBUG(dbgs() << " Include (parameter): "); 582 LLVM_DEBUG(DbgVal->print(dbgs())); 583 LLVM_DEBUG(dbgs() << "\n"); 584 Container.insert(DbgVal); 585 } else { 586 LLVM_DEBUG(dbgs() << " Delete (!parameter): "); 587 LLVM_DEBUG(DbgVal->print(dbgs())); 588 LLVM_DEBUG(dbgs() << "\n"); 589 } 590 }; 591 592 auto ExamineDbgDeclare = [&PDIRelated](auto *DbgDecl, auto &Container) { 593 LLVM_DEBUG(dbgs() << " Deciding: "); 594 LLVM_DEBUG(DbgDecl->print(dbgs())); 595 LLVM_DEBUG(dbgs() << "\n"); 596 DILocalVariable *DILocVar = DbgDecl->getVariable(); 597 if (DILocVar->isParameter()) { 598 LLVM_DEBUG(dbgs() << " Parameter: "); 599 LLVM_DEBUG(DILocVar->print(dbgs())); 600 AllocaInst *AI = dyn_cast_or_null<AllocaInst>(DbgDecl->getAddress()); 601 if (AI) { 602 LLVM_DEBUG(dbgs() << " Processing alloca users: "); 603 LLVM_DEBUG(dbgs() << "\n"); 604 for (User *U : AI->users()) { 605 if (StoreInst *SI = dyn_cast<StoreInst>(U)) { 606 if (Value *Arg = SI->getValueOperand()) { 607 if (isa<Argument>(Arg)) { 608 LLVM_DEBUG(dbgs() << " Include: "); 609 LLVM_DEBUG(AI->print(dbgs())); 610 LLVM_DEBUG(dbgs() << "\n"); 611 PDIRelated.insert(AI); 612 LLVM_DEBUG(dbgs() << " Include (parameter): "); 613 LLVM_DEBUG(SI->print(dbgs())); 614 LLVM_DEBUG(dbgs() << "\n"); 615 PDIRelated.insert(SI); 616 LLVM_DEBUG(dbgs() << " Include: "); 617 LLVM_DEBUG(DbgDecl->print(dbgs())); 618 LLVM_DEBUG(dbgs() << "\n"); 619 Container.insert(DbgDecl); 620 } else { 621 LLVM_DEBUG(dbgs() << " Delete (!parameter): "); 622 LLVM_DEBUG(SI->print(dbgs())); 623 LLVM_DEBUG(dbgs() << "\n"); 624 } 625 } 626 } else { 627 LLVM_DEBUG(dbgs() << " Defer: "); 628 LLVM_DEBUG(U->print(dbgs())); 629 LLVM_DEBUG(dbgs() << "\n"); 630 } 631 } 632 } else { 633 LLVM_DEBUG(dbgs() << " Delete (alloca NULL): "); 634 LLVM_DEBUG(DbgDecl->print(dbgs())); 635 LLVM_DEBUG(dbgs() << "\n"); 636 } 637 } else { 638 LLVM_DEBUG(dbgs() << " Delete (!parameter): "); 639 LLVM_DEBUG(DbgDecl->print(dbgs())); 640 LLVM_DEBUG(dbgs() << "\n"); 641 } 642 }; 643 644 for (BasicBlock::iterator BI = GEntryBlock->begin(), BIE = GEntryBlock->end(); 645 BI != BIE; ++BI) { 646 // Examine DbgVariableRecords as they happen "before" the instruction. Are 647 // they connected to parameters? 648 for (DbgVariableRecord &DVR : filterDbgVars(BI->getDbgRecordRange())) { 649 if (DVR.isDbgValue() || DVR.isDbgAssign()) { 650 ExamineDbgValue(&DVR, PDVRRelated); 651 } else { 652 assert(DVR.isDbgDeclare()); 653 ExamineDbgDeclare(&DVR, PDVRRelated); 654 } 655 } 656 657 if (auto *DVI = dyn_cast<DbgValueInst>(&*BI)) { 658 ExamineDbgValue(DVI, PDIRelated); 659 } else if (auto *DDI = dyn_cast<DbgDeclareInst>(&*BI)) { 660 ExamineDbgDeclare(DDI, PDIRelated); 661 } else if (BI->isTerminator() && &*BI == GEntryBlock->getTerminator()) { 662 LLVM_DEBUG(dbgs() << " Will Include Terminator: "); 663 LLVM_DEBUG(BI->print(dbgs())); 664 LLVM_DEBUG(dbgs() << "\n"); 665 PDIRelated.insert(&*BI); 666 } else { 667 LLVM_DEBUG(dbgs() << " Defer: "); 668 LLVM_DEBUG(BI->print(dbgs())); 669 LLVM_DEBUG(dbgs() << "\n"); 670 } 671 } 672 LLVM_DEBUG( 673 dbgs() 674 << " Report parameter debug info related/related instructions: {\n"); 675 676 auto IsPDIRelated = [](auto *Rec, auto &Container, auto &UnrelatedCont) { 677 if (Container.find(Rec) == Container.end()) { 678 LLVM_DEBUG(dbgs() << " !PDIRelated: "); 679 LLVM_DEBUG(Rec->print(dbgs())); 680 LLVM_DEBUG(dbgs() << "\n"); 681 UnrelatedCont.push_back(Rec); 682 } else { 683 LLVM_DEBUG(dbgs() << " PDIRelated: "); 684 LLVM_DEBUG(Rec->print(dbgs())); 685 LLVM_DEBUG(dbgs() << "\n"); 686 } 687 }; 688 689 // Collect the set of unrelated instructions and debug records. 690 for (Instruction &I : *GEntryBlock) { 691 for (DbgVariableRecord &DVR : filterDbgVars(I.getDbgRecordRange())) 692 IsPDIRelated(&DVR, PDVRRelated, PDVRUnrelatedWL); 693 IsPDIRelated(&I, PDIRelated, PDIUnrelatedWL); 694 } 695 LLVM_DEBUG(dbgs() << " }\n"); 696 } 697 698 /// Whether this function may be replaced by a forwarding thunk. 699 static bool canCreateThunkFor(Function *F) { 700 if (F->isVarArg()) 701 return false; 702 703 // Don't merge tiny functions using a thunk, since it can just end up 704 // making the function larger. 705 if (F->size() == 1) { 706 if (F->front().sizeWithoutDebug() < 2) { 707 LLVM_DEBUG(dbgs() << "canCreateThunkFor: " << F->getName() 708 << " is too small to bother creating a thunk for\n"); 709 return false; 710 } 711 } 712 return true; 713 } 714 715 /// Copy all metadata of a specific kind from one function to another. 716 static void copyMetadataIfPresent(Function *From, Function *To, 717 StringRef Kind) { 718 SmallVector<MDNode *, 4> MDs; 719 From->getMetadata(Kind, MDs); 720 for (MDNode *MD : MDs) 721 To->addMetadata(Kind, *MD); 722 } 723 724 // Replace G with a simple tail call to bitcast(F). Also (unless 725 // MergeFunctionsPDI holds) replace direct uses of G with bitcast(F), 726 // delete G. Under MergeFunctionsPDI, we use G itself for creating 727 // the thunk as we preserve the debug info (and associated instructions) 728 // from G's entry block pertaining to G's incoming arguments which are 729 // passed on as corresponding arguments in the call that G makes to F. 730 // For better debugability, under MergeFunctionsPDI, we do not modify G's 731 // call sites to point to F even when within the same translation unit. 732 void MergeFunctions::writeThunk(Function *F, Function *G) { 733 BasicBlock *GEntryBlock = nullptr; 734 std::vector<Instruction *> PDIUnrelatedWL; 735 std::vector<DbgVariableRecord *> PDVRUnrelatedWL; 736 BasicBlock *BB = nullptr; 737 Function *NewG = nullptr; 738 if (MergeFunctionsPDI) { 739 LLVM_DEBUG(dbgs() << "writeThunk: (MergeFunctionsPDI) Do not create a new " 740 "function as thunk; retain original: " 741 << G->getName() << "()\n"); 742 GEntryBlock = &G->getEntryBlock(); 743 LLVM_DEBUG( 744 dbgs() << "writeThunk: (MergeFunctionsPDI) filter parameter related " 745 "debug info for " 746 << G->getName() << "() {\n"); 747 filterInstsUnrelatedToPDI(GEntryBlock, PDIUnrelatedWL, PDVRUnrelatedWL); 748 GEntryBlock->getTerminator()->eraseFromParent(); 749 BB = GEntryBlock; 750 } else { 751 NewG = Function::Create(G->getFunctionType(), G->getLinkage(), 752 G->getAddressSpace(), "", G->getParent()); 753 NewG->setComdat(G->getComdat()); 754 BB = BasicBlock::Create(F->getContext(), "", NewG); 755 } 756 757 IRBuilder<> Builder(BB); 758 Function *H = MergeFunctionsPDI ? G : NewG; 759 SmallVector<Value *, 16> Args; 760 unsigned i = 0; 761 FunctionType *FFTy = F->getFunctionType(); 762 for (Argument &AI : H->args()) { 763 Args.push_back(Builder.CreateAggregateCast(&AI, FFTy->getParamType(i))); 764 ++i; 765 } 766 767 CallInst *CI = Builder.CreateCall(F, Args); 768 ReturnInst *RI = nullptr; 769 bool isSwiftTailCall = F->getCallingConv() == CallingConv::SwiftTail && 770 G->getCallingConv() == CallingConv::SwiftTail; 771 CI->setTailCallKind(isSwiftTailCall ? CallInst::TCK_MustTail 772 : CallInst::TCK_Tail); 773 CI->setCallingConv(F->getCallingConv()); 774 CI->setAttributes(F->getAttributes()); 775 if (H->getReturnType()->isVoidTy()) { 776 RI = Builder.CreateRetVoid(); 777 } else { 778 RI = Builder.CreateRet(Builder.CreateAggregateCast(CI, H->getReturnType())); 779 } 780 781 if (MergeFunctionsPDI) { 782 DISubprogram *DIS = G->getSubprogram(); 783 if (DIS) { 784 DebugLoc CIDbgLoc = 785 DILocation::get(DIS->getContext(), DIS->getScopeLine(), 0, DIS); 786 DebugLoc RIDbgLoc = 787 DILocation::get(DIS->getContext(), DIS->getScopeLine(), 0, DIS); 788 CI->setDebugLoc(CIDbgLoc); 789 RI->setDebugLoc(RIDbgLoc); 790 } else { 791 LLVM_DEBUG( 792 dbgs() << "writeThunk: (MergeFunctionsPDI) No DISubprogram for " 793 << G->getName() << "()\n"); 794 } 795 eraseTail(G); 796 eraseInstsUnrelatedToPDI(PDIUnrelatedWL, PDVRUnrelatedWL); 797 LLVM_DEBUG( 798 dbgs() << "} // End of parameter related debug info filtering for: " 799 << G->getName() << "()\n"); 800 } else { 801 NewG->copyAttributesFrom(G); 802 NewG->takeName(G); 803 // Ensure CFI type metadata is propagated to the new function. 804 copyMetadataIfPresent(G, NewG, "type"); 805 copyMetadataIfPresent(G, NewG, "kcfi_type"); 806 removeUsers(G); 807 G->replaceAllUsesWith(NewG); 808 G->eraseFromParent(); 809 } 810 811 LLVM_DEBUG(dbgs() << "writeThunk: " << H->getName() << '\n'); 812 ++NumThunksWritten; 813 } 814 815 // Whether this function may be replaced by an alias 816 static bool canCreateAliasFor(Function *F) { 817 if (!MergeFunctionsAliases || !F->hasGlobalUnnamedAddr()) 818 return false; 819 820 // We should only see linkages supported by aliases here 821 assert(F->hasLocalLinkage() || F->hasExternalLinkage() 822 || F->hasWeakLinkage() || F->hasLinkOnceLinkage()); 823 return true; 824 } 825 826 // Replace G with an alias to F (deleting function G) 827 void MergeFunctions::writeAlias(Function *F, Function *G) { 828 PointerType *PtrType = G->getType(); 829 auto *GA = GlobalAlias::create(G->getValueType(), PtrType->getAddressSpace(), 830 G->getLinkage(), "", F, G->getParent()); 831 832 const MaybeAlign FAlign = F->getAlign(); 833 const MaybeAlign GAlign = G->getAlign(); 834 if (FAlign || GAlign) 835 F->setAlignment(std::max(FAlign.valueOrOne(), GAlign.valueOrOne())); 836 else 837 F->setAlignment(std::nullopt); 838 GA->takeName(G); 839 GA->setVisibility(G->getVisibility()); 840 GA->setUnnamedAddr(GlobalValue::UnnamedAddr::Global); 841 842 removeUsers(G); 843 G->replaceAllUsesWith(GA); 844 G->eraseFromParent(); 845 846 LLVM_DEBUG(dbgs() << "writeAlias: " << GA->getName() << '\n'); 847 ++NumAliasesWritten; 848 } 849 850 // If needed, replace G with an alias to F if possible, or a thunk to F if 851 // profitable. Returns false if neither is the case. If \p G is not needed (i.e. 852 // it is discardable and unused), \p G is removed directly. 853 bool MergeFunctions::writeThunkOrAliasIfNeeded(Function *F, Function *G) { 854 if (G->isDiscardableIfUnused() && G->use_empty() && !MergeFunctionsPDI) { 855 G->eraseFromParent(); 856 return true; 857 } 858 if (canCreateAliasFor(G)) { 859 writeAlias(F, G); 860 return true; 861 } 862 if (canCreateThunkFor(F)) { 863 writeThunk(F, G); 864 return true; 865 } 866 return false; 867 } 868 869 /// Returns true if \p F is either weak_odr or linkonce_odr. 870 static bool isODR(const Function *F) { 871 return F->hasWeakODRLinkage() || F->hasLinkOnceODRLinkage(); 872 } 873 874 // Merge two equivalent functions. Upon completion, Function G is deleted. 875 void MergeFunctions::mergeTwoFunctions(Function *F, Function *G) { 876 877 // Create a new thunk that both F and G can call, if F cannot call G directly. 878 // That is the case if F is either interposable or if G is either weak_odr or 879 // linkonce_odr. 880 if (F->isInterposable() || (isODR(F) && isODR(G))) { 881 assert((!isODR(G) || isODR(F)) && 882 "if G is ODR, F must also be ODR due to ordering"); 883 884 // Both writeThunkOrAliasIfNeeded() calls below must succeed, either because 885 // we can create aliases for G and NewF, or because a thunk for F is 886 // profitable. F here has the same signature as NewF below, so that's what 887 // we check. 888 if (!canCreateThunkFor(F) && 889 (!canCreateAliasFor(F) || !canCreateAliasFor(G))) 890 return; 891 892 // Make them both thunks to the same internal function. 893 Function *NewF = Function::Create(F->getFunctionType(), F->getLinkage(), 894 F->getAddressSpace(), "", F->getParent()); 895 NewF->copyAttributesFrom(F); 896 NewF->takeName(F); 897 NewF->setComdat(F->getComdat()); 898 F->setComdat(nullptr); 899 // Ensure CFI type metadata is propagated to the new function. 900 copyMetadataIfPresent(F, NewF, "type"); 901 copyMetadataIfPresent(F, NewF, "kcfi_type"); 902 removeUsers(F); 903 F->replaceAllUsesWith(NewF); 904 905 // If G or NewF are (weak|linkonce)_odr, update all callers to call the 906 // thunk. 907 if (isODR(G)) 908 replaceDirectCallers(G, F); 909 if (isODR(F)) 910 replaceDirectCallers(NewF, F); 911 912 // We collect alignment before writeThunkOrAliasIfNeeded that overwrites 913 // NewF and G's content. 914 const MaybeAlign NewFAlign = NewF->getAlign(); 915 const MaybeAlign GAlign = G->getAlign(); 916 917 writeThunkOrAliasIfNeeded(F, G); 918 writeThunkOrAliasIfNeeded(F, NewF); 919 920 if (NewFAlign || GAlign) 921 F->setAlignment(std::max(NewFAlign.valueOrOne(), GAlign.valueOrOne())); 922 else 923 F->setAlignment(std::nullopt); 924 F->setLinkage(GlobalValue::PrivateLinkage); 925 ++NumDoubleWeak; 926 ++NumFunctionsMerged; 927 } else { 928 // For better debugability, under MergeFunctionsPDI, we do not modify G's 929 // call sites to point to F even when within the same translation unit. 930 if (!G->isInterposable() && !MergeFunctionsPDI) { 931 // Functions referred to by llvm.used/llvm.compiler.used are special: 932 // there are uses of the symbol name that are not visible to LLVM, 933 // usually from inline asm. 934 if (G->hasGlobalUnnamedAddr() && !Used.contains(G)) { 935 // G might have been a key in our GlobalNumberState, and it's illegal 936 // to replace a key in ValueMap<GlobalValue *> with a non-global. 937 GlobalNumbers.erase(G); 938 // If G's address is not significant, replace it entirely. 939 removeUsers(G); 940 G->replaceAllUsesWith(F); 941 } else { 942 // Redirect direct callers of G to F. (See note on MergeFunctionsPDI 943 // above). 944 replaceDirectCallers(G, F); 945 } 946 } 947 948 // If G was internal then we may have replaced all uses of G with F. If so, 949 // stop here and delete G. There's no need for a thunk. (See note on 950 // MergeFunctionsPDI above). 951 if (G->isDiscardableIfUnused() && G->use_empty() && !MergeFunctionsPDI) { 952 G->eraseFromParent(); 953 ++NumFunctionsMerged; 954 return; 955 } 956 957 if (writeThunkOrAliasIfNeeded(F, G)) { 958 ++NumFunctionsMerged; 959 } 960 } 961 } 962 963 /// Replace function F by function G. 964 void MergeFunctions::replaceFunctionInTree(const FunctionNode &FN, 965 Function *G) { 966 Function *F = FN.getFunc(); 967 assert(FunctionComparator(F, G, &GlobalNumbers).compare() == 0 && 968 "The two functions must be equal"); 969 970 auto I = FNodesInTree.find(F); 971 assert(I != FNodesInTree.end() && "F should be in FNodesInTree"); 972 assert(FNodesInTree.count(G) == 0 && "FNodesInTree should not contain G"); 973 974 FnTreeType::iterator IterToFNInFnTree = I->second; 975 assert(&(*IterToFNInFnTree) == &FN && "F should map to FN in FNodesInTree."); 976 // Remove F -> FN and insert G -> FN 977 FNodesInTree.erase(I); 978 FNodesInTree.insert({G, IterToFNInFnTree}); 979 // Replace F with G in FN, which is stored inside the FnTree. 980 FN.replaceBy(G); 981 } 982 983 // Ordering for functions that are equal under FunctionComparator 984 static bool isFuncOrderCorrect(const Function *F, const Function *G) { 985 if (isODR(F) != isODR(G)) { 986 // ODR functions before non-ODR functions. A ODR function can call a non-ODR 987 // function if it is not interposable, but not the other way around. 988 return isODR(G); 989 } 990 991 if (F->isInterposable() != G->isInterposable()) { 992 // Strong before weak, because the weak function may call the strong 993 // one, but not the other way around. 994 return !F->isInterposable(); 995 } 996 997 if (F->hasLocalLinkage() != G->hasLocalLinkage()) { 998 // External before local, because we definitely have to keep the external 999 // function, but may be able to drop the local one. 1000 return !F->hasLocalLinkage(); 1001 } 1002 1003 // Impose a total order (by name) on the replacement of functions. This is 1004 // important when operating on more than one module independently to prevent 1005 // cycles of thunks calling each other when the modules are linked together. 1006 return F->getName() <= G->getName(); 1007 } 1008 1009 // Insert a ComparableFunction into the FnTree, or merge it away if equal to one 1010 // that was already inserted. 1011 bool MergeFunctions::insert(Function *NewFunction) { 1012 std::pair<FnTreeType::iterator, bool> Result = 1013 FnTree.insert(FunctionNode(NewFunction)); 1014 1015 if (Result.second) { 1016 assert(FNodesInTree.count(NewFunction) == 0); 1017 FNodesInTree.insert({NewFunction, Result.first}); 1018 LLVM_DEBUG(dbgs() << "Inserting as unique: " << NewFunction->getName() 1019 << '\n'); 1020 return false; 1021 } 1022 1023 const FunctionNode &OldF = *Result.first; 1024 1025 if (!isFuncOrderCorrect(OldF.getFunc(), NewFunction)) { 1026 // Swap the two functions. 1027 Function *F = OldF.getFunc(); 1028 replaceFunctionInTree(*Result.first, NewFunction); 1029 NewFunction = F; 1030 assert(OldF.getFunc() != F && "Must have swapped the functions."); 1031 } 1032 1033 LLVM_DEBUG(dbgs() << " " << OldF.getFunc()->getName() 1034 << " == " << NewFunction->getName() << '\n'); 1035 1036 Function *DeleteF = NewFunction; 1037 mergeTwoFunctions(OldF.getFunc(), DeleteF); 1038 this->DelToNewMap.insert({DeleteF, OldF.getFunc()}); 1039 return true; 1040 } 1041 1042 // Remove a function from FnTree. If it was already in FnTree, add 1043 // it to Deferred so that we'll look at it in the next round. 1044 void MergeFunctions::remove(Function *F) { 1045 auto I = FNodesInTree.find(F); 1046 if (I != FNodesInTree.end()) { 1047 LLVM_DEBUG(dbgs() << "Deferred " << F->getName() << ".\n"); 1048 FnTree.erase(I->second); 1049 // I->second has been invalidated, remove it from the FNodesInTree map to 1050 // preserve the invariant. 1051 FNodesInTree.erase(I); 1052 Deferred.emplace_back(F); 1053 } 1054 } 1055 1056 // For each instruction used by the value, remove() the function that contains 1057 // the instruction. This should happen right before a call to RAUW. 1058 void MergeFunctions::removeUsers(Value *V) { 1059 for (User *U : V->users()) 1060 if (auto *I = dyn_cast<Instruction>(U)) 1061 remove(I->getFunction()); 1062 } 1063