1 //===-- GlobalDCE.cpp - DCE unreachable internal 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 transform is designed to eliminate unreachable internal globals from the 10 // program. It uses an aggressive algorithm, searching out globals that are 11 // known to be alive. After it finds all of the globals which are needed, it 12 // deletes whatever is left over. This allows it to delete recursive chunks of 13 // the program which are unreachable. 14 // 15 //===----------------------------------------------------------------------===// 16 17 #include "llvm/Transforms/IPO/GlobalDCE.h" 18 #include "llvm/ADT/SmallPtrSet.h" 19 #include "llvm/ADT/Statistic.h" 20 #include "llvm/Analysis/TypeMetadataUtils.h" 21 #include "llvm/IR/Instructions.h" 22 #include "llvm/IR/IntrinsicInst.h" 23 #include "llvm/IR/Module.h" 24 #include "llvm/Support/CommandLine.h" 25 #include "llvm/Transforms/IPO.h" 26 #include "llvm/Transforms/Utils/CtorUtils.h" 27 #include "llvm/Transforms/Utils/GlobalStatus.h" 28 29 using namespace llvm; 30 31 #define DEBUG_TYPE "globaldce" 32 33 static cl::opt<bool> 34 ClEnableVFE("enable-vfe", cl::Hidden, cl::init(true), 35 cl::desc("Enable virtual function elimination")); 36 37 STATISTIC(NumAliases , "Number of global aliases removed"); 38 STATISTIC(NumFunctions, "Number of functions removed"); 39 STATISTIC(NumIFuncs, "Number of indirect functions removed"); 40 STATISTIC(NumVariables, "Number of global variables removed"); 41 STATISTIC(NumVFuncs, "Number of virtual functions removed"); 42 43 /// Returns true if F is effectively empty. 44 static bool isEmptyFunction(Function *F) { 45 // Skip external functions. 46 if (F->isDeclaration()) 47 return false; 48 BasicBlock &Entry = F->getEntryBlock(); 49 for (auto &I : Entry) { 50 if (I.isDebugOrPseudoInst()) 51 continue; 52 if (auto *RI = dyn_cast<ReturnInst>(&I)) 53 return !RI->getReturnValue(); 54 break; 55 } 56 return false; 57 } 58 59 /// Compute the set of GlobalValue that depends from V. 60 /// The recursion stops as soon as a GlobalValue is met. 61 void GlobalDCEPass::ComputeDependencies(Value *V, 62 SmallPtrSetImpl<GlobalValue *> &Deps) { 63 if (auto *I = dyn_cast<Instruction>(V)) { 64 Function *Parent = I->getParent()->getParent(); 65 Deps.insert(Parent); 66 } else if (auto *GV = dyn_cast<GlobalValue>(V)) { 67 Deps.insert(GV); 68 } else if (auto *CE = dyn_cast<Constant>(V)) { 69 // Avoid walking the whole tree of a big ConstantExprs multiple times. 70 auto [Where, Inserted] = ConstantDependenciesCache.try_emplace(CE); 71 SmallPtrSetImpl<GlobalValue *> &LocalDeps = Where->second; 72 if (Inserted) { 73 for (User *CEUser : CE->users()) 74 ComputeDependencies(CEUser, LocalDeps); 75 } 76 Deps.insert_range(LocalDeps); 77 } 78 } 79 80 void GlobalDCEPass::UpdateGVDependencies(GlobalValue &GV) { 81 SmallPtrSet<GlobalValue *, 8> Deps; 82 for (User *User : GV.users()) 83 ComputeDependencies(User, Deps); 84 Deps.erase(&GV); // Remove self-reference. 85 for (GlobalValue *GVU : Deps) { 86 // If this is a dep from a vtable to a virtual function, and we have 87 // complete information about all virtual call sites which could call 88 // though this vtable, then skip it, because the call site information will 89 // be more precise. 90 if (VFESafeVTables.count(GVU) && isa<Function>(&GV)) { 91 LLVM_DEBUG(dbgs() << "Ignoring dep " << GVU->getName() << " -> " 92 << GV.getName() << "\n"); 93 continue; 94 } 95 GVDependencies[GVU].insert(&GV); 96 } 97 } 98 99 /// Mark Global value as Live 100 void GlobalDCEPass::MarkLive(GlobalValue &GV, 101 SmallVectorImpl<GlobalValue *> *Updates) { 102 auto const Ret = AliveGlobals.insert(&GV); 103 if (!Ret.second) 104 return; 105 106 if (Updates) 107 Updates->push_back(&GV); 108 if (Comdat *C = GV.getComdat()) { 109 for (auto &&CM : make_range(ComdatMembers.equal_range(C))) { 110 MarkLive(*CM.second, Updates); // Recursion depth is only two because only 111 // globals in the same comdat are visited. 112 } 113 } 114 } 115 116 void GlobalDCEPass::ScanVTables(Module &M) { 117 SmallVector<MDNode *, 2> Types; 118 LLVM_DEBUG(dbgs() << "Building type info -> vtable map\n"); 119 120 for (GlobalVariable &GV : M.globals()) { 121 Types.clear(); 122 GV.getMetadata(LLVMContext::MD_type, Types); 123 if (GV.isDeclaration() || Types.empty()) 124 continue; 125 126 // Use the typeid metadata on the vtable to build a mapping from typeids to 127 // the list of (GV, offset) pairs which are the possible vtables for that 128 // typeid. 129 for (MDNode *Type : Types) { 130 Metadata *TypeID = Type->getOperand(1).get(); 131 132 uint64_t Offset = 133 cast<ConstantInt>( 134 cast<ConstantAsMetadata>(Type->getOperand(0))->getValue()) 135 ->getZExtValue(); 136 137 TypeIdMap[TypeID].insert(std::make_pair(&GV, Offset)); 138 } 139 140 // If the type corresponding to the vtable is private to this translation 141 // unit, we know that we can see all virtual functions which might use it, 142 // so VFE is safe. 143 if (auto GO = dyn_cast<GlobalObject>(&GV)) { 144 GlobalObject::VCallVisibility TypeVis = GO->getVCallVisibility(); 145 if (TypeVis == GlobalObject::VCallVisibilityTranslationUnit || 146 (InLTOPostLink && 147 TypeVis == GlobalObject::VCallVisibilityLinkageUnit)) { 148 LLVM_DEBUG(dbgs() << GV.getName() << " is safe for VFE\n"); 149 VFESafeVTables.insert(&GV); 150 } 151 } 152 } 153 } 154 155 void GlobalDCEPass::ScanVTableLoad(Function *Caller, Metadata *TypeId, 156 uint64_t CallOffset) { 157 for (const auto &VTableInfo : TypeIdMap[TypeId]) { 158 GlobalVariable *VTable = VTableInfo.first; 159 uint64_t VTableOffset = VTableInfo.second; 160 161 Constant *Ptr = 162 getPointerAtOffset(VTable->getInitializer(), VTableOffset + CallOffset, 163 *Caller->getParent(), VTable); 164 if (!Ptr) { 165 LLVM_DEBUG(dbgs() << "can't find pointer in vtable!\n"); 166 VFESafeVTables.erase(VTable); 167 continue; 168 } 169 170 auto Callee = dyn_cast<Function>(Ptr->stripPointerCasts()); 171 if (!Callee) { 172 LLVM_DEBUG(dbgs() << "vtable entry is not function pointer!\n"); 173 VFESafeVTables.erase(VTable); 174 continue; 175 } 176 177 LLVM_DEBUG(dbgs() << "vfunc dep " << Caller->getName() << " -> " 178 << Callee->getName() << "\n"); 179 GVDependencies[Caller].insert(Callee); 180 } 181 } 182 183 void GlobalDCEPass::ScanTypeCheckedLoadIntrinsics(Module &M) { 184 LLVM_DEBUG(dbgs() << "Scanning type.checked.load intrinsics\n"); 185 Function *TypeCheckedLoadFunc = 186 Intrinsic::getDeclarationIfExists(&M, Intrinsic::type_checked_load); 187 Function *TypeCheckedLoadRelativeFunc = Intrinsic::getDeclarationIfExists( 188 &M, Intrinsic::type_checked_load_relative); 189 190 auto scan = [&](Function *CheckedLoadFunc) { 191 if (!CheckedLoadFunc) 192 return; 193 194 for (auto *U : CheckedLoadFunc->users()) { 195 auto CI = dyn_cast<CallInst>(U); 196 if (!CI) 197 continue; 198 199 auto *Offset = dyn_cast<ConstantInt>(CI->getArgOperand(1)); 200 Value *TypeIdValue = CI->getArgOperand(2); 201 auto *TypeId = cast<MetadataAsValue>(TypeIdValue)->getMetadata(); 202 203 if (Offset) { 204 ScanVTableLoad(CI->getFunction(), TypeId, Offset->getZExtValue()); 205 } else { 206 // type.checked.load with a non-constant offset, so assume every entry 207 // in every matching vtable is used. 208 for (const auto &VTableInfo : TypeIdMap[TypeId]) { 209 VFESafeVTables.erase(VTableInfo.first); 210 } 211 } 212 } 213 }; 214 215 scan(TypeCheckedLoadFunc); 216 scan(TypeCheckedLoadRelativeFunc); 217 } 218 219 void GlobalDCEPass::AddVirtualFunctionDependencies(Module &M) { 220 if (!ClEnableVFE) 221 return; 222 223 // If the Virtual Function Elim module flag is present and set to zero, then 224 // the vcall_visibility metadata was inserted for another optimization (WPD) 225 // and we may not have type checked loads on all accesses to the vtable. 226 // Don't attempt VFE in that case. 227 auto *Val = mdconst::dyn_extract_or_null<ConstantInt>( 228 M.getModuleFlag("Virtual Function Elim")); 229 if (!Val || Val->isZero()) 230 return; 231 232 ScanVTables(M); 233 234 if (VFESafeVTables.empty()) 235 return; 236 237 ScanTypeCheckedLoadIntrinsics(M); 238 239 LLVM_DEBUG( 240 dbgs() << "VFE safe vtables:\n"; 241 for (auto *VTable : VFESafeVTables) 242 dbgs() << " " << VTable->getName() << "\n"; 243 ); 244 } 245 246 PreservedAnalyses GlobalDCEPass::run(Module &M, ModuleAnalysisManager &MAM) { 247 bool Changed = false; 248 249 // The algorithm first computes the set L of global variables that are 250 // trivially live. Then it walks the initialization of these variables to 251 // compute the globals used to initialize them, which effectively builds a 252 // directed graph where nodes are global variables, and an edge from A to B 253 // means B is used to initialize A. Finally, it propagates the liveness 254 // information through the graph starting from the nodes in L. Nodes note 255 // marked as alive are discarded. 256 257 // Remove empty functions from the global ctors list. 258 Changed |= optimizeGlobalCtorsList( 259 M, [](uint32_t, Function *F) { return isEmptyFunction(F); }); 260 261 // Collect the set of members for each comdat. 262 for (Function &F : M) 263 if (Comdat *C = F.getComdat()) 264 ComdatMembers.insert(std::make_pair(C, &F)); 265 for (GlobalVariable &GV : M.globals()) 266 if (Comdat *C = GV.getComdat()) 267 ComdatMembers.insert(std::make_pair(C, &GV)); 268 for (GlobalAlias &GA : M.aliases()) 269 if (Comdat *C = GA.getComdat()) 270 ComdatMembers.insert(std::make_pair(C, &GA)); 271 272 // Add dependencies between virtual call sites and the virtual functions they 273 // might call, if we have that information. 274 AddVirtualFunctionDependencies(M); 275 276 // Loop over the module, adding globals which are obviously necessary. 277 for (GlobalObject &GO : M.global_objects()) { 278 GO.removeDeadConstantUsers(); 279 // Functions with external linkage are needed if they have a body. 280 // Externally visible & appending globals are needed, if they have an 281 // initializer. 282 if (!GO.isDeclaration()) 283 if (!GO.isDiscardableIfUnused()) 284 MarkLive(GO); 285 286 UpdateGVDependencies(GO); 287 } 288 289 // Compute direct dependencies of aliases. 290 for (GlobalAlias &GA : M.aliases()) { 291 GA.removeDeadConstantUsers(); 292 // Externally visible aliases are needed. 293 if (!GA.isDiscardableIfUnused()) 294 MarkLive(GA); 295 296 UpdateGVDependencies(GA); 297 } 298 299 // Compute direct dependencies of ifuncs. 300 for (GlobalIFunc &GIF : M.ifuncs()) { 301 GIF.removeDeadConstantUsers(); 302 // Externally visible ifuncs are needed. 303 if (!GIF.isDiscardableIfUnused()) 304 MarkLive(GIF); 305 306 UpdateGVDependencies(GIF); 307 } 308 309 // Propagate liveness from collected Global Values through the computed 310 // dependencies. 311 SmallVector<GlobalValue *, 8> NewLiveGVs{AliveGlobals.begin(), 312 AliveGlobals.end()}; 313 while (!NewLiveGVs.empty()) { 314 GlobalValue *LGV = NewLiveGVs.pop_back_val(); 315 for (auto *GVD : GVDependencies[LGV]) 316 MarkLive(*GVD, &NewLiveGVs); 317 } 318 319 // Now that all globals which are needed are in the AliveGlobals set, we loop 320 // through the program, deleting those which are not alive. 321 // 322 323 // The first pass is to drop initializers of global variables which are dead. 324 std::vector<GlobalVariable *> DeadGlobalVars; // Keep track of dead globals 325 for (GlobalVariable &GV : M.globals()) 326 if (!AliveGlobals.count(&GV)) { 327 DeadGlobalVars.push_back(&GV); // Keep track of dead globals 328 if (GV.hasInitializer()) { 329 Constant *Init = GV.getInitializer(); 330 GV.setInitializer(nullptr); 331 if (isSafeToDestroyConstant(Init)) 332 Init->destroyConstant(); 333 } 334 } 335 336 // The second pass drops the bodies of functions which are dead... 337 std::vector<Function *> DeadFunctions; 338 for (Function &F : M) 339 if (!AliveGlobals.count(&F)) { 340 DeadFunctions.push_back(&F); // Keep track of dead globals 341 if (!F.isDeclaration()) 342 F.deleteBody(); 343 } 344 345 // The third pass drops targets of aliases which are dead... 346 std::vector<GlobalAlias*> DeadAliases; 347 for (GlobalAlias &GA : M.aliases()) 348 if (!AliveGlobals.count(&GA)) { 349 DeadAliases.push_back(&GA); 350 GA.setAliasee(nullptr); 351 } 352 353 // The fourth pass drops targets of ifuncs which are dead... 354 std::vector<GlobalIFunc*> DeadIFuncs; 355 for (GlobalIFunc &GIF : M.ifuncs()) 356 if (!AliveGlobals.count(&GIF)) { 357 DeadIFuncs.push_back(&GIF); 358 GIF.setResolver(nullptr); 359 } 360 361 // Now that all interferences have been dropped, delete the actual objects 362 // themselves. 363 auto EraseUnusedGlobalValue = [&](GlobalValue *GV) { 364 GV->removeDeadConstantUsers(); 365 GV->eraseFromParent(); 366 Changed = true; 367 }; 368 369 NumFunctions += DeadFunctions.size(); 370 for (Function *F : DeadFunctions) { 371 if (!F->use_empty()) { 372 // Virtual functions might still be referenced by one or more vtables, 373 // but if we've proven them to be unused then it's safe to replace the 374 // virtual function pointers with null, allowing us to remove the 375 // function itself. 376 ++NumVFuncs; 377 378 // Detect vfuncs that are referenced as "relative pointers" which are used 379 // in Swift vtables, i.e. entries in the form of: 380 // 381 // i32 trunc (i64 sub (i64 ptrtoint @f, i64 ptrtoint ...)) to i32) 382 // 383 // In this case, replace the whole "sub" expression with constant 0 to 384 // avoid leaving a weird sub(0, symbol) expression behind. 385 replaceRelativePointerUsersWithZero(F); 386 387 F->replaceNonMetadataUsesWith(ConstantPointerNull::get(F->getType())); 388 } 389 EraseUnusedGlobalValue(F); 390 } 391 392 NumVariables += DeadGlobalVars.size(); 393 for (GlobalVariable *GV : DeadGlobalVars) 394 EraseUnusedGlobalValue(GV); 395 396 NumAliases += DeadAliases.size(); 397 for (GlobalAlias *GA : DeadAliases) 398 EraseUnusedGlobalValue(GA); 399 400 NumIFuncs += DeadIFuncs.size(); 401 for (GlobalIFunc *GIF : DeadIFuncs) 402 EraseUnusedGlobalValue(GIF); 403 404 // Make sure that all memory is released 405 AliveGlobals.clear(); 406 ConstantDependenciesCache.clear(); 407 GVDependencies.clear(); 408 ComdatMembers.clear(); 409 TypeIdMap.clear(); 410 VFESafeVTables.clear(); 411 412 if (Changed) 413 return PreservedAnalyses::none(); 414 return PreservedAnalyses::all(); 415 } 416 417 void GlobalDCEPass::printPipeline( 418 raw_ostream &OS, function_ref<StringRef(StringRef)> MapClassName2PassName) { 419 static_cast<PassInfoMixin<GlobalDCEPass> *>(this)->printPipeline( 420 OS, MapClassName2PassName); 421 if (InLTOPostLink) 422 OS << "<vfe-linkage-unit-visibility>"; 423 } 424