1 //===- LTO.cpp ------------------------------------------------------------===// 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 #include "LTO.h" 10 #include "Config.h" 11 #include "InputFiles.h" 12 #include "LinkerScript.h" 13 #include "SymbolTable.h" 14 #include "Symbols.h" 15 #include "lld/Common/Args.h" 16 #include "lld/Common/ErrorHandler.h" 17 #include "lld/Common/TargetOptionsCommandFlags.h" 18 #include "llvm/ADT/STLExtras.h" 19 #include "llvm/ADT/SmallString.h" 20 #include "llvm/ADT/StringRef.h" 21 #include "llvm/ADT/Twine.h" 22 #include "llvm/BinaryFormat/ELF.h" 23 #include "llvm/Bitcode/BitcodeReader.h" 24 #include "llvm/Bitcode/BitcodeWriter.h" 25 #include "llvm/IR/DiagnosticPrinter.h" 26 #include "llvm/LTO/Caching.h" 27 #include "llvm/LTO/Config.h" 28 #include "llvm/LTO/LTO.h" 29 #include "llvm/Object/SymbolicFile.h" 30 #include "llvm/Support/CodeGen.h" 31 #include "llvm/Support/Error.h" 32 #include "llvm/Support/FileSystem.h" 33 #include "llvm/Support/MemoryBuffer.h" 34 #include <algorithm> 35 #include <cstddef> 36 #include <memory> 37 #include <string> 38 #include <system_error> 39 #include <vector> 40 41 using namespace llvm; 42 using namespace llvm::object; 43 using namespace llvm::ELF; 44 45 namespace lld { 46 namespace elf { 47 48 // Creates an empty file to store a list of object files for final 49 // linking of distributed ThinLTO. 50 static std::unique_ptr<raw_fd_ostream> openFile(StringRef file) { 51 std::error_code ec; 52 auto ret = 53 std::make_unique<raw_fd_ostream>(file, ec, sys::fs::OpenFlags::OF_None); 54 if (ec) { 55 error("cannot open " + file + ": " + ec.message()); 56 return nullptr; 57 } 58 return ret; 59 } 60 61 static std::string getThinLTOOutputFile(StringRef modulePath) { 62 return lto::getThinLTOOutputFile( 63 std::string(modulePath), std::string(config->thinLTOPrefixReplace.first), 64 std::string(config->thinLTOPrefixReplace.second)); 65 } 66 67 static lto::Config createConfig() { 68 lto::Config c; 69 70 // LLD supports the new relocations and address-significance tables. 71 c.Options = initTargetOptionsFromCodeGenFlags(); 72 c.Options.RelaxELFRelocations = true; 73 c.Options.EmitAddrsig = true; 74 75 // Always emit a section per function/datum with LTO. 76 c.Options.FunctionSections = true; 77 c.Options.DataSections = true; 78 79 if (auto relocModel = getRelocModelFromCMModel()) 80 c.RelocModel = *relocModel; 81 else if (config->relocatable) 82 c.RelocModel = None; 83 else if (config->isPic) 84 c.RelocModel = Reloc::PIC_; 85 else 86 c.RelocModel = Reloc::Static; 87 88 c.CodeModel = getCodeModelFromCMModel(); 89 c.DisableVerify = config->disableVerify; 90 c.DiagHandler = diagnosticHandler; 91 c.OptLevel = config->ltoo; 92 c.CPU = getCPUStr(); 93 c.MAttrs = getMAttrs(); 94 c.CGOptLevel = args::getCGOptLevel(config->ltoo); 95 96 c.PTO.LoopVectorization = c.OptLevel > 1; 97 c.PTO.SLPVectorization = c.OptLevel > 1; 98 99 // Set up a custom pipeline if we've been asked to. 100 c.OptPipeline = std::string(config->ltoNewPmPasses); 101 c.AAPipeline = std::string(config->ltoAAPipeline); 102 103 // Set up optimization remarks if we've been asked to. 104 c.RemarksFilename = std::string(config->optRemarksFilename); 105 c.RemarksPasses = std::string(config->optRemarksPasses); 106 c.RemarksWithHotness = config->optRemarksWithHotness; 107 c.RemarksFormat = std::string(config->optRemarksFormat); 108 109 c.SampleProfile = std::string(config->ltoSampleProfile); 110 c.UseNewPM = config->ltoNewPassManager; 111 c.DebugPassManager = config->ltoDebugPassManager; 112 c.DwoDir = std::string(config->dwoDir); 113 114 c.HasWholeProgramVisibility = config->ltoWholeProgramVisibility; 115 116 c.CSIRProfile = std::string(config->ltoCSProfileFile); 117 c.RunCSIRInstr = config->ltoCSProfileGenerate; 118 119 if (config->emitLLVM) { 120 c.PostInternalizeModuleHook = [](size_t task, const Module &m) { 121 if (std::unique_ptr<raw_fd_ostream> os = openFile(config->outputFile)) 122 WriteBitcodeToFile(m, *os, false); 123 return false; 124 }; 125 } 126 127 if (config->saveTemps) 128 checkError(c.addSaveTemps(config->outputFile.str() + ".", 129 /*UseInputModulePath*/ true)); 130 return c; 131 } 132 133 BitcodeCompiler::BitcodeCompiler() { 134 // Initialize indexFile. 135 if (!config->thinLTOIndexOnlyArg.empty()) 136 indexFile = openFile(config->thinLTOIndexOnlyArg); 137 138 // Initialize ltoObj. 139 lto::ThinBackend backend; 140 if (config->thinLTOIndexOnly) { 141 auto onIndexWrite = [&](StringRef s) { thinIndices.erase(s); }; 142 backend = lto::createWriteIndexesThinBackend( 143 std::string(config->thinLTOPrefixReplace.first), 144 std::string(config->thinLTOPrefixReplace.second), 145 config->thinLTOEmitImportsFiles, indexFile.get(), onIndexWrite); 146 } else if (config->thinLTOJobs != -1U) { 147 backend = lto::createInProcessThinBackend(config->thinLTOJobs); 148 } 149 150 ltoObj = std::make_unique<lto::LTO>(createConfig(), backend, 151 config->ltoPartitions); 152 153 // Initialize usedStartStop. 154 for (Symbol *sym : symtab->symbols()) { 155 StringRef s = sym->getName(); 156 for (StringRef prefix : {"__start_", "__stop_"}) 157 if (s.startswith(prefix)) 158 usedStartStop.insert(s.substr(prefix.size())); 159 } 160 } 161 162 BitcodeCompiler::~BitcodeCompiler() = default; 163 164 void BitcodeCompiler::add(BitcodeFile &f) { 165 lto::InputFile &obj = *f.obj; 166 bool isExec = !config->shared && !config->relocatable; 167 168 if (config->thinLTOIndexOnly) 169 thinIndices.insert(obj.getName()); 170 171 ArrayRef<Symbol *> syms = f.getSymbols(); 172 ArrayRef<lto::InputFile::Symbol> objSyms = obj.symbols(); 173 std::vector<lto::SymbolResolution> resols(syms.size()); 174 175 // Provide a resolution to the LTO API for each symbol. 176 for (size_t i = 0, e = syms.size(); i != e; ++i) { 177 Symbol *sym = syms[i]; 178 const lto::InputFile::Symbol &objSym = objSyms[i]; 179 lto::SymbolResolution &r = resols[i]; 180 181 // Ideally we shouldn't check for SF_Undefined but currently IRObjectFile 182 // reports two symbols for module ASM defined. Without this check, lld 183 // flags an undefined in IR with a definition in ASM as prevailing. 184 // Once IRObjectFile is fixed to report only one symbol this hack can 185 // be removed. 186 r.Prevailing = !objSym.isUndefined() && sym->file == &f; 187 188 // We ask LTO to preserve following global symbols: 189 // 1) All symbols when doing relocatable link, so that them can be used 190 // for doing final link. 191 // 2) Symbols that are used in regular objects. 192 // 3) C named sections if we have corresponding __start_/__stop_ symbol. 193 // 4) Symbols that are defined in bitcode files and used for dynamic linking. 194 r.VisibleToRegularObj = config->relocatable || sym->isUsedInRegularObj || 195 (r.Prevailing && sym->includeInDynsym()) || 196 usedStartStop.count(objSym.getSectionName()); 197 const auto *dr = dyn_cast<Defined>(sym); 198 r.FinalDefinitionInLinkageUnit = 199 (isExec || sym->visibility != STV_DEFAULT) && dr && 200 // Skip absolute symbols from ELF objects, otherwise PC-rel relocations 201 // will be generated by for them, triggering linker errors. 202 // Symbol section is always null for bitcode symbols, hence the check 203 // for isElf(). Skip linker script defined symbols as well: they have 204 // no File defined. 205 !(dr->section == nullptr && (!sym->file || sym->file->isElf())); 206 207 if (r.Prevailing) 208 sym->replace(Undefined{nullptr, sym->getName(), STB_GLOBAL, STV_DEFAULT, 209 sym->type}); 210 211 // We tell LTO to not apply interprocedural optimization for wrapped 212 // (with --wrap) symbols because otherwise LTO would inline them while 213 // their values are still not final. 214 r.LinkerRedefined = !sym->canInline; 215 } 216 checkError(ltoObj->add(std::move(f.obj), resols)); 217 } 218 219 // If LazyObjFile has not been added to link, emit empty index files. 220 // This is needed because this is what GNU gold plugin does and we have a 221 // distributed build system that depends on that behavior. 222 static void thinLTOCreateEmptyIndexFiles() { 223 for (LazyObjFile *f : lazyObjFiles) { 224 if (!isBitcode(f->mb)) 225 continue; 226 std::string path = replaceThinLTOSuffix(getThinLTOOutputFile(f->getName())); 227 std::unique_ptr<raw_fd_ostream> os = openFile(path + ".thinlto.bc"); 228 if (!os) 229 continue; 230 231 ModuleSummaryIndex m(/*HaveGVs*/ false); 232 m.setSkipModuleByDistributedBackend(); 233 WriteIndexToFile(m, *os); 234 if (config->thinLTOEmitImportsFiles) 235 openFile(path + ".imports"); 236 } 237 } 238 239 // Merge all the bitcode files we have seen, codegen the result 240 // and return the resulting ObjectFile(s). 241 std::vector<InputFile *> BitcodeCompiler::compile() { 242 unsigned maxTasks = ltoObj->getMaxTasks(); 243 buf.resize(maxTasks); 244 files.resize(maxTasks); 245 246 // The --thinlto-cache-dir option specifies the path to a directory in which 247 // to cache native object files for ThinLTO incremental builds. If a path was 248 // specified, configure LTO to use it as the cache directory. 249 lto::NativeObjectCache cache; 250 if (!config->thinLTOCacheDir.empty()) 251 cache = check( 252 lto::localCache(config->thinLTOCacheDir, 253 [&](size_t task, std::unique_ptr<MemoryBuffer> mb) { 254 files[task] = std::move(mb); 255 })); 256 257 if (!bitcodeFiles.empty()) 258 checkError(ltoObj->run( 259 [&](size_t task) { 260 return std::make_unique<lto::NativeObjectStream>( 261 std::make_unique<raw_svector_ostream>(buf[task])); 262 }, 263 cache)); 264 265 // Emit empty index files for non-indexed files 266 for (StringRef s : thinIndices) { 267 std::string path = getThinLTOOutputFile(s); 268 openFile(path + ".thinlto.bc"); 269 if (config->thinLTOEmitImportsFiles) 270 openFile(path + ".imports"); 271 } 272 273 if (config->thinLTOIndexOnly) { 274 thinLTOCreateEmptyIndexFiles(); 275 276 if (!config->ltoObjPath.empty()) 277 saveBuffer(buf[0], config->ltoObjPath); 278 279 // ThinLTO with index only option is required to generate only the index 280 // files. After that, we exit from linker and ThinLTO backend runs in a 281 // distributed environment. 282 if (indexFile) 283 indexFile->close(); 284 return {}; 285 } 286 287 if (!config->thinLTOCacheDir.empty()) 288 pruneCache(config->thinLTOCacheDir, config->thinLTOCachePolicy); 289 290 if (!config->ltoObjPath.empty()) { 291 saveBuffer(buf[0], config->ltoObjPath); 292 for (unsigned i = 1; i != maxTasks; ++i) 293 saveBuffer(buf[i], config->ltoObjPath + Twine(i)); 294 } 295 296 if (config->saveTemps) { 297 saveBuffer(buf[0], config->outputFile + ".lto.o"); 298 for (unsigned i = 1; i != maxTasks; ++i) 299 saveBuffer(buf[i], config->outputFile + Twine(i) + ".lto.o"); 300 } 301 302 std::vector<InputFile *> ret; 303 for (unsigned i = 0; i != maxTasks; ++i) 304 if (!buf[i].empty()) 305 ret.push_back(createObjectFile(MemoryBufferRef(buf[i], "lto.tmp"))); 306 307 for (std::unique_ptr<MemoryBuffer> &file : files) 308 if (file) 309 ret.push_back(createObjectFile(*file)); 310 return ret; 311 } 312 313 } // namespace elf 314 } // namespace lld 315