xref: /llvm-project-15.0.7/lld/ELF/LTO.cpp (revision 3ddd210a)
1 //===- LTO.cpp ------------------------------------------------------------===//
2 //
3 //                             The LLVM Linker
4 //
5 // This file is distributed under the University of Illinois Open Source
6 // License. See LICENSE.TXT for details.
7 //
8 //===----------------------------------------------------------------------===//
9 
10 #include "LTO.h"
11 #include "Config.h"
12 #include "InputFiles.h"
13 #include "LinkerScript.h"
14 #include "SymbolTable.h"
15 #include "Symbols.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 using namespace lld;
46 using namespace lld::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       llvm::make_unique<raw_fd_ostream>(File, EC, sys::fs::OpenFlags::F_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(ModulePath,
63                                    Config->ThinLTOPrefixReplace.first,
64                                    Config->ThinLTOPrefixReplace.second);
65 }
66 
67 static lto::Config createConfig() {
68   lto::Config C;
69 
70   // LLD supports the new relocations.
71   C.Options = InitTargetOptionsFromCodeGenFlags();
72   C.Options.RelaxELFRelocations = true;
73 
74   // Always emit a section per function/datum with LTO.
75   C.Options.FunctionSections = true;
76   C.Options.DataSections = true;
77 
78   if (Config->Relocatable)
79     C.RelocModel = None;
80   else if (Config->Pic)
81     C.RelocModel = Reloc::PIC_;
82   else
83     C.RelocModel = Reloc::Static;
84 
85   C.CodeModel = GetCodeModelFromCMModel();
86   C.DisableVerify = Config->DisableVerify;
87   C.DiagHandler = diagnosticHandler;
88   C.OptLevel = Config->LTOO;
89   C.CPU = GetCPUStr();
90 
91   // Set up a custom pipeline if we've been asked to.
92   C.OptPipeline = Config->LTONewPmPasses;
93   C.AAPipeline = Config->LTOAAPipeline;
94 
95   // Set up optimization remarks if we've been asked to.
96   C.RemarksFilename = Config->OptRemarksFilename;
97   C.RemarksWithHotness = Config->OptRemarksWithHotness;
98 
99   C.SampleProfile = Config->LTOSampleProfile;
100   C.UseNewPM = Config->LTONewPassManager;
101   C.DebugPassManager = Config->LTODebugPassManager;
102 
103   if (Config->SaveTemps)
104     checkError(C.addSaveTemps(Config->OutputFile.str() + ".",
105                               /*UseInputModulePath*/ true));
106   return C;
107 }
108 
109 BitcodeCompiler::BitcodeCompiler() {
110   // Initialize LTOObj.
111   lto::ThinBackend Backend;
112 
113   if (Config->ThinLTOIndexOnly) {
114     StringRef Path = Config->ThinLTOIndexOnlyArg;
115     if (!Path.empty())
116       IndexFile = openFile(Path);
117 
118     auto OnIndexWrite = [&](const std::string &Identifier) {
119       ObjectToIndexFileState[Identifier] = true;
120     };
121 
122     Backend = lto::createWriteIndexesThinBackend(
123         Config->ThinLTOPrefixReplace.first, Config->ThinLTOPrefixReplace.second,
124         Config->ThinLTOEmitImportsFiles, IndexFile.get(), OnIndexWrite);
125   } else if (Config->ThinLTOJobs != -1U) {
126     Backend = lto::createInProcessThinBackend(Config->ThinLTOJobs);
127   }
128 
129   LTOObj = llvm::make_unique<lto::LTO>(createConfig(), Backend,
130                                        Config->LTOPartitions);
131 
132   // Initialize UsedStartStop.
133   for (Symbol *Sym : Symtab->getSymbols()) {
134     StringRef Name = Sym->getName();
135     for (StringRef Prefix : {"__start_", "__stop_"})
136       if (Name.startswith(Prefix))
137         UsedStartStop.insert(Name.substr(Prefix.size()));
138   }
139 }
140 
141 BitcodeCompiler::~BitcodeCompiler() = default;
142 
143 static void undefine(Symbol *S) {
144   replaceSymbol<Undefined>(S, nullptr, S->getName(), STB_GLOBAL, STV_DEFAULT,
145                            S->Type);
146 }
147 
148 void BitcodeCompiler::add(BitcodeFile &F) {
149   lto::InputFile &Obj = *F.Obj;
150   bool IsExec = !Config->Shared && !Config->Relocatable;
151 
152   if (Config->ThinLTOIndexOnly)
153     ObjectToIndexFileState.insert({Obj.getName(), false});
154 
155   ArrayRef<Symbol *> Syms = F.getSymbols();
156   ArrayRef<lto::InputFile::Symbol> ObjSyms = Obj.symbols();
157   std::vector<lto::SymbolResolution> Resols(Syms.size());
158 
159   // Provide a resolution to the LTO API for each symbol.
160   for (size_t I = 0, E = Syms.size(); I != E; ++I) {
161     Symbol *Sym = Syms[I];
162     const lto::InputFile::Symbol &ObjSym = ObjSyms[I];
163     lto::SymbolResolution &R = Resols[I];
164 
165     // Ideally we shouldn't check for SF_Undefined but currently IRObjectFile
166     // reports two symbols for module ASM defined. Without this check, lld
167     // flags an undefined in IR with a definition in ASM as prevailing.
168     // Once IRObjectFile is fixed to report only one symbol this hack can
169     // be removed.
170     R.Prevailing = !ObjSym.isUndefined() && Sym->File == &F;
171 
172     // We ask LTO to preserve following global symbols:
173     // 1) All symbols when doing relocatable link, so that them can be used
174     //    for doing final link.
175     // 2) Symbols that are used in regular objects.
176     // 3) C named sections if we have corresponding __start_/__stop_ symbol.
177     // 4) Symbols that are defined in bitcode files and used for dynamic linking.
178     R.VisibleToRegularObj = Config->Relocatable || Sym->IsUsedInRegularObj ||
179                             (R.Prevailing && Sym->includeInDynsym()) ||
180                             UsedStartStop.count(ObjSym.getSectionName());
181     const auto *DR = dyn_cast<Defined>(Sym);
182     R.FinalDefinitionInLinkageUnit =
183         (IsExec || Sym->Visibility != STV_DEFAULT) && DR &&
184         // Skip absolute symbols from ELF objects, otherwise PC-rel relocations
185         // will be generated by for them, triggering linker errors.
186         // Symbol section is always null for bitcode symbols, hence the check
187         // for isElf(). Skip linker script defined symbols as well: they have
188         // no File defined.
189         !(DR->Section == nullptr && (!Sym->File || Sym->File->isElf()));
190 
191     if (R.Prevailing)
192       undefine(Sym);
193 
194     // We tell LTO to not apply interprocedural optimization for wrapped
195     // (with --wrap) symbols because otherwise LTO would inline them while
196     // their values are still not final.
197     R.LinkerRedefined = !Sym->CanInline;
198   }
199   checkError(LTOObj->add(std::move(F.Obj), Resols));
200 }
201 
202 static void createEmptyIndex(StringRef ModulePath) {
203   std::string Path = replaceThinLTOSuffix(getThinLTOOutputFile(ModulePath));
204   if (Path.empty())
205     return;
206 
207   std::unique_ptr<raw_fd_ostream> OS = openFile(Path + ".thinlto.bc");
208   if (!OS)
209     return;
210 
211   ModuleSummaryIndex M(/*HaveGVs*/ false);
212   M.setSkipModuleByDistributedBackend();
213   WriteIndexToFile(M, *OS);
214 
215   if (Config->ThinLTOEmitImportsFiles)
216     openFile(Path + ".imports");
217 }
218 
219 // Merge all the bitcode files we have seen, codegen the result
220 // and return the resulting ObjectFile(s).
221 std::vector<InputFile *> BitcodeCompiler::compile() {
222   unsigned MaxTasks = LTOObj->getMaxTasks();
223   Buf.resize(MaxTasks);
224   Files.resize(MaxTasks);
225 
226   // The --thinlto-cache-dir option specifies the path to a directory in which
227   // to cache native object files for ThinLTO incremental builds. If a path was
228   // specified, configure LTO to use it as the cache directory.
229   lto::NativeObjectCache Cache;
230   if (!Config->ThinLTOCacheDir.empty())
231     Cache = check(
232         lto::localCache(Config->ThinLTOCacheDir,
233                         [&](size_t Task, std::unique_ptr<MemoryBuffer> MB) {
234                           Files[Task] = std::move(MB);
235                         }));
236 
237   checkError(LTOObj->run(
238       [&](size_t Task) {
239         return llvm::make_unique<lto::NativeObjectStream>(
240             llvm::make_unique<raw_svector_ostream>(Buf[Task]));
241       },
242       Cache));
243 
244   // Emit empty index files for non-indexed files
245   if (Config->ThinLTOIndexOnly) {
246     for (auto &Identifier : ObjectToIndexFileState)
247       if (!Identifier.getValue()) {
248         std::string Path = getThinLTOOutputFile(Identifier.getKey());
249         openFile(Path + ".thinlto.bc");
250 
251         if (Config->ThinLTOEmitImportsFiles)
252           openFile(Path + ".imports");
253       }
254   }
255 
256   // If LazyObjFile has not been added to link, emit empty index files.
257   // This is needed because this is what GNU gold plugin does and we have a
258   // distributed build system that depends on that behavior.
259   if (Config->ThinLTOIndexOnly) {
260     for (LazyObjFile *F : LazyObjFiles)
261       if (!F->AddedToLink && isBitcode(F->MB))
262         createEmptyIndex(F->getName());
263 
264     if (!Config->LTOObjPath.empty())
265       saveBuffer(Buf[0], Config->LTOObjPath);
266 
267     // ThinLTO with index only option is required to generate only the index
268     // files. After that, we exit from linker and ThinLTO backend runs in a
269     // distributed environment.
270     if (IndexFile)
271       IndexFile->close();
272     return {};
273   }
274 
275   if (!Config->ThinLTOCacheDir.empty())
276     pruneCache(Config->ThinLTOCacheDir, Config->ThinLTOCachePolicy);
277 
278   std::vector<InputFile *> Ret;
279   for (unsigned I = 0; I != MaxTasks; ++I) {
280     if (Buf[I].empty())
281       continue;
282     if (Config->SaveTemps) {
283       if (I == 0)
284         saveBuffer(Buf[I], Config->OutputFile + ".lto.o");
285       else
286         saveBuffer(Buf[I], Config->OutputFile + Twine(I) + ".lto.o");
287     }
288     InputFile *Obj = createObjectFile(MemoryBufferRef(Buf[I], "lto.tmp"));
289     Ret.push_back(Obj);
290   }
291 
292   for (std::unique_ptr<MemoryBuffer> &File : Files)
293     if (File)
294       Ret.push_back(createObjectFile(*File));
295   return Ret;
296 }
297