1 //===-LTOBackend.cpp - LLVM Link Time Optimizer Backend -------------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This file implements the "backend" phase of LTO, i.e. it performs 11 // optimization and code generation on a loaded module. It is generally used 12 // internally by the LTO class but can also be used independently, for example 13 // to implement a standalone ThinLTO backend. 14 // 15 //===----------------------------------------------------------------------===// 16 17 #include "llvm/LTO/LTOBackend.h" 18 #include "llvm/Analysis/AliasAnalysis.h" 19 #include "llvm/Analysis/CGSCCPassManager.h" 20 #include "llvm/Analysis/LoopPassManager.h" 21 #include "llvm/Analysis/TargetLibraryInfo.h" 22 #include "llvm/Analysis/TargetTransformInfo.h" 23 #include "llvm/Bitcode/ReaderWriter.h" 24 #include "llvm/IR/LegacyPassManager.h" 25 #include "llvm/IR/PassManager.h" 26 #include "llvm/IR/Verifier.h" 27 #include "llvm/LTO/LTO.h" 28 #include "llvm/LTO/legacy/UpdateCompilerUsed.h" 29 #include "llvm/MC/SubtargetFeature.h" 30 #include "llvm/Passes/PassBuilder.h" 31 #include "llvm/Support/Error.h" 32 #include "llvm/Support/FileSystem.h" 33 #include "llvm/Support/TargetRegistry.h" 34 #include "llvm/Support/ThreadPool.h" 35 #include "llvm/Target/TargetMachine.h" 36 #include "llvm/Transforms/IPO.h" 37 #include "llvm/Transforms/IPO/PassManagerBuilder.h" 38 #include "llvm/Transforms/Utils/FunctionImportUtils.h" 39 #include "llvm/Transforms/Utils/SplitModule.h" 40 41 using namespace llvm; 42 using namespace lto; 43 44 LLVM_ATTRIBUTE_NORETURN void reportOpenError(StringRef Path, Twine Msg) { 45 errs() << "failed to open " << Path << ": " << Msg << '\n'; 46 errs().flush(); 47 exit(1); 48 } 49 50 Error Config::addSaveTemps(std::string OutputFileName, 51 bool UseInputModulePath) { 52 ShouldDiscardValueNames = false; 53 54 std::error_code EC; 55 ResolutionFile = llvm::make_unique<raw_fd_ostream>( 56 OutputFileName + "resolution.txt", EC, sys::fs::OpenFlags::F_Text); 57 if (EC) 58 return errorCodeToError(EC); 59 60 auto setHook = [&](std::string PathSuffix, ModuleHookFn &Hook) { 61 // Keep track of the hook provided by the linker, which also needs to run. 62 ModuleHookFn LinkerHook = Hook; 63 Hook = [=](unsigned Task, const Module &M) { 64 // If the linker's hook returned false, we need to pass that result 65 // through. 66 if (LinkerHook && !LinkerHook(Task, M)) 67 return false; 68 69 std::string PathPrefix; 70 // If this is the combined module (not a ThinLTO backend compile) or the 71 // user hasn't requested using the input module's path, emit to a file 72 // named from the provided OutputFileName with the Task ID appended. 73 if (M.getModuleIdentifier() == "ld-temp.o" || !UseInputModulePath) { 74 PathPrefix = OutputFileName + utostr(Task); 75 } else 76 PathPrefix = M.getModuleIdentifier(); 77 std::string Path = PathPrefix + "." + PathSuffix + ".bc"; 78 std::error_code EC; 79 raw_fd_ostream OS(Path, EC, sys::fs::OpenFlags::F_None); 80 // Because -save-temps is a debugging feature, we report the error 81 // directly and exit. 82 if (EC) 83 reportOpenError(Path, EC.message()); 84 WriteBitcodeToFile(&M, OS, /*ShouldPreserveUseListOrder=*/false); 85 return true; 86 }; 87 }; 88 89 setHook("0.preopt", PreOptModuleHook); 90 setHook("1.promote", PostPromoteModuleHook); 91 setHook("2.internalize", PostInternalizeModuleHook); 92 setHook("3.import", PostImportModuleHook); 93 setHook("4.opt", PostOptModuleHook); 94 setHook("5.precodegen", PreCodeGenModuleHook); 95 96 CombinedIndexHook = [=](const ModuleSummaryIndex &Index) { 97 std::string Path = OutputFileName + "index.bc"; 98 std::error_code EC; 99 raw_fd_ostream OS(Path, EC, sys::fs::OpenFlags::F_None); 100 // Because -save-temps is a debugging feature, we report the error 101 // directly and exit. 102 if (EC) 103 reportOpenError(Path, EC.message()); 104 WriteIndexToFile(Index, OS); 105 return true; 106 }; 107 108 return Error(); 109 } 110 111 namespace { 112 113 std::unique_ptr<TargetMachine> 114 createTargetMachine(Config &Conf, StringRef TheTriple, 115 const Target *TheTarget) { 116 SubtargetFeatures Features; 117 Features.getDefaultSubtargetFeatures(Triple(TheTriple)); 118 for (const std::string &A : Conf.MAttrs) 119 Features.AddFeature(A); 120 121 return std::unique_ptr<TargetMachine>(TheTarget->createTargetMachine( 122 TheTriple, Conf.CPU, Features.getString(), Conf.Options, Conf.RelocModel, 123 Conf.CodeModel, Conf.CGOptLevel)); 124 } 125 126 static void runNewPMCustomPasses(Module &Mod, TargetMachine *TM, 127 std::string PipelineDesc, 128 std::string AAPipelineDesc, 129 bool DisableVerify) { 130 PassBuilder PB(TM); 131 AAManager AA; 132 133 // Parse a custom AA pipeline if asked to. 134 if (!AAPipelineDesc.empty()) 135 if (!PB.parseAAPipeline(AA, AAPipelineDesc)) 136 report_fatal_error("unable to parse AA pipeline description: " + 137 AAPipelineDesc); 138 139 LoopAnalysisManager LAM; 140 FunctionAnalysisManager FAM; 141 CGSCCAnalysisManager CGAM; 142 ModuleAnalysisManager MAM; 143 144 // Register the AA manager first so that our version is the one used. 145 FAM.registerPass([&] { return std::move(AA); }); 146 147 // Register all the basic analyses with the managers. 148 PB.registerModuleAnalyses(MAM); 149 PB.registerCGSCCAnalyses(CGAM); 150 PB.registerFunctionAnalyses(FAM); 151 PB.registerLoopAnalyses(LAM); 152 PB.crossRegisterProxies(LAM, FAM, CGAM, MAM); 153 154 ModulePassManager MPM; 155 156 // Always verify the input. 157 MPM.addPass(VerifierPass()); 158 159 // Now, add all the passes we've been requested to. 160 if (!PB.parsePassPipeline(MPM, PipelineDesc)) 161 report_fatal_error("unable to parse pass pipeline description: " + 162 PipelineDesc); 163 164 if (!DisableVerify) 165 MPM.addPass(VerifierPass()); 166 MPM.run(Mod, MAM); 167 } 168 169 static void runOldPMPasses(Config &Conf, Module &Mod, TargetMachine *TM, 170 bool IsThinLto) { 171 legacy::PassManager passes; 172 passes.add(createTargetTransformInfoWrapperPass(TM->getTargetIRAnalysis())); 173 174 PassManagerBuilder PMB; 175 PMB.LibraryInfo = new TargetLibraryInfoImpl(Triple(TM->getTargetTriple())); 176 PMB.Inliner = createFunctionInliningPass(); 177 // Unconditionally verify input since it is not verified before this 178 // point and has unknown origin. 179 PMB.VerifyInput = true; 180 PMB.VerifyOutput = !Conf.DisableVerify; 181 PMB.LoopVectorize = true; 182 PMB.SLPVectorize = true; 183 PMB.OptLevel = Conf.OptLevel; 184 if (IsThinLto) 185 PMB.populateThinLTOPassManager(passes); 186 else 187 PMB.populateLTOPassManager(passes); 188 passes.run(Mod); 189 } 190 191 bool opt(Config &Conf, TargetMachine *TM, unsigned Task, Module &Mod, 192 bool IsThinLto) { 193 Mod.setDataLayout(TM->createDataLayout()); 194 if (Conf.OptPipeline.empty()) 195 runOldPMPasses(Conf, Mod, TM, IsThinLto); 196 else 197 runNewPMCustomPasses(Mod, TM, Conf.OptPipeline, Conf.AAPipeline, 198 Conf.DisableVerify); 199 return !Conf.PostOptModuleHook || Conf.PostOptModuleHook(Task, Mod); 200 } 201 202 void codegen(Config &Conf, TargetMachine *TM, AddStreamFn AddStream, 203 unsigned Task, Module &Mod) { 204 if (Conf.PreCodeGenModuleHook && !Conf.PreCodeGenModuleHook(Task, Mod)) 205 return; 206 207 auto Stream = AddStream(Task); 208 legacy::PassManager CodeGenPasses; 209 if (TM->addPassesToEmitFile(CodeGenPasses, *Stream->OS, 210 TargetMachine::CGFT_ObjectFile)) 211 report_fatal_error("Failed to setup codegen"); 212 CodeGenPasses.run(Mod); 213 } 214 215 void splitCodeGen(Config &C, TargetMachine *TM, AddStreamFn AddStream, 216 unsigned ParallelCodeGenParallelismLevel, 217 std::unique_ptr<Module> Mod) { 218 ThreadPool CodegenThreadPool(ParallelCodeGenParallelismLevel); 219 unsigned ThreadCount = 0; 220 const Target *T = &TM->getTarget(); 221 222 SplitModule( 223 std::move(Mod), ParallelCodeGenParallelismLevel, 224 [&](std::unique_ptr<Module> MPart) { 225 // We want to clone the module in a new context to multi-thread the 226 // codegen. We do it by serializing partition modules to bitcode 227 // (while still on the main thread, in order to avoid data races) and 228 // spinning up new threads which deserialize the partitions into 229 // separate contexts. 230 // FIXME: Provide a more direct way to do this in LLVM. 231 SmallString<0> BC; 232 raw_svector_ostream BCOS(BC); 233 WriteBitcodeToFile(MPart.get(), BCOS); 234 235 // Enqueue the task 236 CodegenThreadPool.async( 237 [&](const SmallString<0> &BC, unsigned ThreadId) { 238 LTOLLVMContext Ctx(C); 239 ErrorOr<std::unique_ptr<Module>> MOrErr = parseBitcodeFile( 240 MemoryBufferRef(StringRef(BC.data(), BC.size()), "ld-temp.o"), 241 Ctx); 242 if (!MOrErr) 243 report_fatal_error("Failed to read bitcode"); 244 std::unique_ptr<Module> MPartInCtx = std::move(MOrErr.get()); 245 246 std::unique_ptr<TargetMachine> TM = 247 createTargetMachine(C, MPartInCtx->getTargetTriple(), T); 248 249 codegen(C, TM.get(), AddStream, ThreadId, *MPartInCtx); 250 }, 251 // Pass BC using std::move to ensure that it get moved rather than 252 // copied into the thread's context. 253 std::move(BC), ThreadCount++); 254 }, 255 false); 256 257 // Because the inner lambda (which runs in a worker thread) captures our local 258 // variables, we need to wait for the worker threads to terminate before we 259 // can leave the function scope. 260 CodegenThreadPool.wait(); 261 } 262 263 Expected<const Target *> initAndLookupTarget(Config &C, Module &Mod) { 264 if (!C.OverrideTriple.empty()) 265 Mod.setTargetTriple(C.OverrideTriple); 266 else if (Mod.getTargetTriple().empty()) 267 Mod.setTargetTriple(C.DefaultTriple); 268 269 std::string Msg; 270 const Target *T = TargetRegistry::lookupTarget(Mod.getTargetTriple(), Msg); 271 if (!T) 272 return make_error<StringError>(Msg, inconvertibleErrorCode()); 273 return T; 274 } 275 276 } 277 278 static void handleAsmUndefinedRefs(Module &Mod, TargetMachine &TM) { 279 // Collect the list of undefined symbols used in asm and update 280 // llvm.compiler.used to prevent optimization to drop these from the output. 281 StringSet<> AsmUndefinedRefs; 282 object::IRObjectFile::CollectAsmUndefinedRefs( 283 Triple(Mod.getTargetTriple()), Mod.getModuleInlineAsm(), 284 [&AsmUndefinedRefs](StringRef Name, object::BasicSymbolRef::Flags Flags) { 285 if (Flags & object::BasicSymbolRef::SF_Undefined) 286 AsmUndefinedRefs.insert(Name); 287 }); 288 updateCompilerUsed(Mod, TM, AsmUndefinedRefs); 289 } 290 291 Error lto::backend(Config &C, AddStreamFn AddStream, 292 unsigned ParallelCodeGenParallelismLevel, 293 std::unique_ptr<Module> Mod) { 294 Expected<const Target *> TOrErr = initAndLookupTarget(C, *Mod); 295 if (!TOrErr) 296 return TOrErr.takeError(); 297 298 std::unique_ptr<TargetMachine> TM = 299 createTargetMachine(C, Mod->getTargetTriple(), *TOrErr); 300 301 handleAsmUndefinedRefs(*Mod, *TM); 302 303 if (!C.CodeGenOnly) 304 if (!opt(C, TM.get(), 0, *Mod, /*IsThinLto=*/false)) 305 return Error(); 306 307 if (ParallelCodeGenParallelismLevel == 1) { 308 codegen(C, TM.get(), AddStream, 0, *Mod); 309 } else { 310 splitCodeGen(C, TM.get(), AddStream, ParallelCodeGenParallelismLevel, 311 std::move(Mod)); 312 } 313 return Error(); 314 } 315 316 Error lto::thinBackend(Config &Conf, unsigned Task, AddStreamFn AddStream, 317 Module &Mod, ModuleSummaryIndex &CombinedIndex, 318 const FunctionImporter::ImportMapTy &ImportList, 319 const GVSummaryMapTy &DefinedGlobals, 320 MapVector<StringRef, MemoryBufferRef> &ModuleMap) { 321 Expected<const Target *> TOrErr = initAndLookupTarget(Conf, Mod); 322 if (!TOrErr) 323 return TOrErr.takeError(); 324 325 std::unique_ptr<TargetMachine> TM = 326 createTargetMachine(Conf, Mod.getTargetTriple(), *TOrErr); 327 328 handleAsmUndefinedRefs(Mod, *TM); 329 330 if (Conf.CodeGenOnly) { 331 codegen(Conf, TM.get(), AddStream, Task, Mod); 332 return Error(); 333 } 334 335 if (Conf.PreOptModuleHook && !Conf.PreOptModuleHook(Task, Mod)) 336 return Error(); 337 338 renameModuleForThinLTO(Mod, CombinedIndex); 339 340 thinLTOResolveWeakForLinkerModule(Mod, DefinedGlobals); 341 342 if (Conf.PostPromoteModuleHook && !Conf.PostPromoteModuleHook(Task, Mod)) 343 return Error(); 344 345 if (!DefinedGlobals.empty()) 346 thinLTOInternalizeModule(Mod, DefinedGlobals); 347 348 if (Conf.PostInternalizeModuleHook && 349 !Conf.PostInternalizeModuleHook(Task, Mod)) 350 return Error(); 351 352 auto ModuleLoader = [&](StringRef Identifier) { 353 assert(Mod.getContext().isODRUniquingDebugTypes() && 354 "ODR Type uniquing should be enabled on the context"); 355 return std::move(getLazyBitcodeModule(MemoryBuffer::getMemBuffer( 356 ModuleMap[Identifier], false), 357 Mod.getContext(), 358 /*ShouldLazyLoadMetadata=*/true) 359 .get()); 360 }; 361 362 FunctionImporter Importer(CombinedIndex, ModuleLoader); 363 Importer.importFunctions(Mod, ImportList); 364 365 if (Conf.PostImportModuleHook && !Conf.PostImportModuleHook(Task, Mod)) 366 return Error(); 367 368 if (!opt(Conf, TM.get(), Task, Mod, /*IsThinLto=*/true)) 369 return Error(); 370 371 codegen(Conf, TM.get(), AddStream, Task, Mod); 372 return Error(); 373 } 374