xref: /llvm-project-15.0.7/llvm/lib/LTO/LTO.cpp (revision dcc8fc9e)
1 //===-LTO.cpp - LLVM Link Time Optimizer ----------------------------------===//
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 functions and classes used to support LTO.
11 //
12 //===----------------------------------------------------------------------===//
13 
14 #include "llvm/LTO/LTO.h"
15 #include "llvm/ADT/Statistic.h"
16 #include "llvm/Analysis/TargetLibraryInfo.h"
17 #include "llvm/Analysis/TargetTransformInfo.h"
18 #include "llvm/Bitcode/BitcodeReader.h"
19 #include "llvm/Bitcode/BitcodeWriter.h"
20 #include "llvm/CodeGen/Analysis.h"
21 #include "llvm/Config/llvm-config.h"
22 #include "llvm/IR/AutoUpgrade.h"
23 #include "llvm/IR/DiagnosticPrinter.h"
24 #include "llvm/IR/LegacyPassManager.h"
25 #include "llvm/IR/Mangler.h"
26 #include "llvm/IR/Metadata.h"
27 #include "llvm/LTO/LTOBackend.h"
28 #include "llvm/LTO/SummaryBasedOptimizations.h"
29 #include "llvm/Linker/IRMover.h"
30 #include "llvm/Object/IRObjectFile.h"
31 #include "llvm/Support/Error.h"
32 #include "llvm/Support/ManagedStatic.h"
33 #include "llvm/Support/MemoryBuffer.h"
34 #include "llvm/Support/Path.h"
35 #include "llvm/Support/SHA1.h"
36 #include "llvm/Support/SourceMgr.h"
37 #include "llvm/Support/TargetRegistry.h"
38 #include "llvm/Support/ThreadPool.h"
39 #include "llvm/Support/Threading.h"
40 #include "llvm/Support/VCSRevision.h"
41 #include "llvm/Support/raw_ostream.h"
42 #include "llvm/Target/TargetMachine.h"
43 #include "llvm/Target/TargetOptions.h"
44 #include "llvm/Transforms/IPO.h"
45 #include "llvm/Transforms/IPO/PassManagerBuilder.h"
46 #include "llvm/Transforms/Utils/FunctionImportUtils.h"
47 #include "llvm/Transforms/Utils/SplitModule.h"
48 
49 #include <set>
50 
51 using namespace llvm;
52 using namespace lto;
53 using namespace object;
54 
55 #define DEBUG_TYPE "lto"
56 
57 static cl::opt<bool>
58     DumpThinCGSCCs("dump-thin-cg-sccs", cl::init(false), cl::Hidden,
59                    cl::desc("Dump the SCCs in the ThinLTO index's callgraph"));
60 
61 /// Enable global value internalization in LTO.
62 cl::opt<bool> EnableLTOInternalization(
63     "enable-lto-internalization", cl::init(true), cl::Hidden,
64     cl::desc("Enable global value internalization in LTO"));
65 
66 // Computes a unique hash for the Module considering the current list of
67 // export/import and other global analysis results.
68 // The hash is produced in \p Key.
69 void llvm::computeLTOCacheKey(
70     SmallString<40> &Key, const Config &Conf, const ModuleSummaryIndex &Index,
71     StringRef ModuleID, const FunctionImporter::ImportMapTy &ImportList,
72     const FunctionImporter::ExportSetTy &ExportList,
73     const std::map<GlobalValue::GUID, GlobalValue::LinkageTypes> &ResolvedODR,
74     const GVSummaryMapTy &DefinedGlobals,
75     const std::set<GlobalValue::GUID> &CfiFunctionDefs,
76     const std::set<GlobalValue::GUID> &CfiFunctionDecls) {
77   // Compute the unique hash for this entry.
78   // This is based on the current compiler version, the module itself, the
79   // export list, the hash for every single module in the import list, the
80   // list of ResolvedODR for the module, and the list of preserved symbols.
81   SHA1 Hasher;
82 
83   // Start with the compiler revision
84   Hasher.update(LLVM_VERSION_STRING);
85 #ifdef LLVM_REVISION
86   Hasher.update(LLVM_REVISION);
87 #endif
88 
89   // Include the parts of the LTO configuration that affect code generation.
90   auto AddString = [&](StringRef Str) {
91     Hasher.update(Str);
92     Hasher.update(ArrayRef<uint8_t>{0});
93   };
94   auto AddUnsigned = [&](unsigned I) {
95     uint8_t Data[4];
96     Data[0] = I;
97     Data[1] = I >> 8;
98     Data[2] = I >> 16;
99     Data[3] = I >> 24;
100     Hasher.update(ArrayRef<uint8_t>{Data, 4});
101   };
102   auto AddUint64 = [&](uint64_t I) {
103     uint8_t Data[8];
104     Data[0] = I;
105     Data[1] = I >> 8;
106     Data[2] = I >> 16;
107     Data[3] = I >> 24;
108     Data[4] = I >> 32;
109     Data[5] = I >> 40;
110     Data[6] = I >> 48;
111     Data[7] = I >> 56;
112     Hasher.update(ArrayRef<uint8_t>{Data, 8});
113   };
114   AddString(Conf.CPU);
115   // FIXME: Hash more of Options. For now all clients initialize Options from
116   // command-line flags (which is unsupported in production), but may set
117   // RelaxELFRelocations. The clang driver can also pass FunctionSections,
118   // DataSections and DebuggerTuning via command line flags.
119   AddUnsigned(Conf.Options.RelaxELFRelocations);
120   AddUnsigned(Conf.Options.FunctionSections);
121   AddUnsigned(Conf.Options.DataSections);
122   AddUnsigned((unsigned)Conf.Options.DebuggerTuning);
123   for (auto &A : Conf.MAttrs)
124     AddString(A);
125   if (Conf.RelocModel)
126     AddUnsigned(*Conf.RelocModel);
127   else
128     AddUnsigned(-1);
129   if (Conf.CodeModel)
130     AddUnsigned(*Conf.CodeModel);
131   else
132     AddUnsigned(-1);
133   AddUnsigned(Conf.CGOptLevel);
134   AddUnsigned(Conf.CGFileType);
135   AddUnsigned(Conf.OptLevel);
136   AddUnsigned(Conf.UseNewPM);
137   AddUnsigned(Conf.Freestanding);
138   AddString(Conf.OptPipeline);
139   AddString(Conf.AAPipeline);
140   AddString(Conf.OverrideTriple);
141   AddString(Conf.DefaultTriple);
142   AddString(Conf.DwoDir);
143 
144   // Include the hash for the current module
145   auto ModHash = Index.getModuleHash(ModuleID);
146   Hasher.update(ArrayRef<uint8_t>((uint8_t *)&ModHash[0], sizeof(ModHash)));
147   for (auto F : ExportList)
148     // The export list can impact the internalization, be conservative here
149     Hasher.update(ArrayRef<uint8_t>((uint8_t *)&F, sizeof(F)));
150 
151   // Include the hash for every module we import functions from. The set of
152   // imported symbols for each module may affect code generation and is
153   // sensitive to link order, so include that as well.
154   for (auto &Entry : ImportList) {
155     auto ModHash = Index.getModuleHash(Entry.first());
156     Hasher.update(ArrayRef<uint8_t>((uint8_t *)&ModHash[0], sizeof(ModHash)));
157 
158     AddUint64(Entry.second.size());
159     for (auto &Fn : Entry.second)
160       AddUint64(Fn);
161   }
162 
163   // Include the hash for the resolved ODR.
164   for (auto &Entry : ResolvedODR) {
165     Hasher.update(ArrayRef<uint8_t>((const uint8_t *)&Entry.first,
166                                     sizeof(GlobalValue::GUID)));
167     Hasher.update(ArrayRef<uint8_t>((const uint8_t *)&Entry.second,
168                                     sizeof(GlobalValue::LinkageTypes)));
169   }
170 
171   // Members of CfiFunctionDefs and CfiFunctionDecls that are referenced or
172   // defined in this module.
173   std::set<GlobalValue::GUID> UsedCfiDefs;
174   std::set<GlobalValue::GUID> UsedCfiDecls;
175 
176   // Typeids used in this module.
177   std::set<GlobalValue::GUID> UsedTypeIds;
178 
179   auto AddUsedCfiGlobal = [&](GlobalValue::GUID ValueGUID) {
180     if (CfiFunctionDefs.count(ValueGUID))
181       UsedCfiDefs.insert(ValueGUID);
182     if (CfiFunctionDecls.count(ValueGUID))
183       UsedCfiDecls.insert(ValueGUID);
184   };
185 
186   auto AddUsedThings = [&](GlobalValueSummary *GS) {
187     if (!GS) return;
188     AddUnsigned(GS->isLive());
189     for (const ValueInfo &VI : GS->refs()) {
190       AddUnsigned(VI.isDSOLocal());
191       AddUsedCfiGlobal(VI.getGUID());
192     }
193     if (auto *GVS = dyn_cast<GlobalVarSummary>(GS))
194       AddUnsigned(GVS->isReadOnly());
195     if (auto *FS = dyn_cast<FunctionSummary>(GS)) {
196       for (auto &TT : FS->type_tests())
197         UsedTypeIds.insert(TT);
198       for (auto &TT : FS->type_test_assume_vcalls())
199         UsedTypeIds.insert(TT.GUID);
200       for (auto &TT : FS->type_checked_load_vcalls())
201         UsedTypeIds.insert(TT.GUID);
202       for (auto &TT : FS->type_test_assume_const_vcalls())
203         UsedTypeIds.insert(TT.VFunc.GUID);
204       for (auto &TT : FS->type_checked_load_const_vcalls())
205         UsedTypeIds.insert(TT.VFunc.GUID);
206       for (auto &ET : FS->calls()) {
207         AddUnsigned(ET.first.isDSOLocal());
208         AddUsedCfiGlobal(ET.first.getGUID());
209       }
210     }
211   };
212 
213   // Include the hash for the linkage type to reflect internalization and weak
214   // resolution, and collect any used type identifier resolutions.
215   for (auto &GS : DefinedGlobals) {
216     GlobalValue::LinkageTypes Linkage = GS.second->linkage();
217     Hasher.update(
218         ArrayRef<uint8_t>((const uint8_t *)&Linkage, sizeof(Linkage)));
219     AddUsedCfiGlobal(GS.first);
220     AddUsedThings(GS.second);
221   }
222 
223   // Imported functions may introduce new uses of type identifier resolutions,
224   // so we need to collect their used resolutions as well.
225   for (auto &ImpM : ImportList)
226     for (auto &ImpF : ImpM.second) {
227       GlobalValueSummary *S = Index.findSummaryInModule(ImpF, ImpM.first());
228       AddUsedThings(S);
229       // If this is an alias, we also care about any types/etc. that the aliasee
230       // may reference.
231       if (auto *AS = dyn_cast_or_null<AliasSummary>(S))
232         AddUsedThings(AS->getBaseObject());
233     }
234 
235   auto AddTypeIdSummary = [&](StringRef TId, const TypeIdSummary &S) {
236     AddString(TId);
237 
238     AddUnsigned(S.TTRes.TheKind);
239     AddUnsigned(S.TTRes.SizeM1BitWidth);
240 
241     AddUint64(S.TTRes.AlignLog2);
242     AddUint64(S.TTRes.SizeM1);
243     AddUint64(S.TTRes.BitMask);
244     AddUint64(S.TTRes.InlineBits);
245 
246     AddUint64(S.WPDRes.size());
247     for (auto &WPD : S.WPDRes) {
248       AddUnsigned(WPD.first);
249       AddUnsigned(WPD.second.TheKind);
250       AddString(WPD.second.SingleImplName);
251 
252       AddUint64(WPD.second.ResByArg.size());
253       for (auto &ByArg : WPD.second.ResByArg) {
254         AddUint64(ByArg.first.size());
255         for (uint64_t Arg : ByArg.first)
256           AddUint64(Arg);
257         AddUnsigned(ByArg.second.TheKind);
258         AddUint64(ByArg.second.Info);
259         AddUnsigned(ByArg.second.Byte);
260         AddUnsigned(ByArg.second.Bit);
261       }
262     }
263   };
264 
265   // Include the hash for all type identifiers used by this module.
266   for (GlobalValue::GUID TId : UsedTypeIds) {
267     auto TidIter = Index.typeIds().equal_range(TId);
268     for (auto It = TidIter.first; It != TidIter.second; ++It)
269       AddTypeIdSummary(It->second.first, It->second.second);
270   }
271 
272   AddUnsigned(UsedCfiDefs.size());
273   for (auto &V : UsedCfiDefs)
274     AddUint64(V);
275 
276   AddUnsigned(UsedCfiDecls.size());
277   for (auto &V : UsedCfiDecls)
278     AddUint64(V);
279 
280   if (!Conf.SampleProfile.empty()) {
281     auto FileOrErr = MemoryBuffer::getFile(Conf.SampleProfile);
282     if (FileOrErr) {
283       Hasher.update(FileOrErr.get()->getBuffer());
284 
285       if (!Conf.ProfileRemapping.empty()) {
286         FileOrErr = MemoryBuffer::getFile(Conf.ProfileRemapping);
287         if (FileOrErr)
288           Hasher.update(FileOrErr.get()->getBuffer());
289       }
290     }
291   }
292 
293   Key = toHex(Hasher.result());
294 }
295 
296 static void thinLTOResolvePrevailingGUID(
297     GlobalValueSummaryList &GVSummaryList, GlobalValue::GUID GUID,
298     DenseSet<GlobalValueSummary *> &GlobalInvolvedWithAlias,
299     function_ref<bool(GlobalValue::GUID, const GlobalValueSummary *)>
300         isPrevailing,
301     function_ref<void(StringRef, GlobalValue::GUID, GlobalValue::LinkageTypes)>
302         recordNewLinkage) {
303   for (auto &S : GVSummaryList) {
304     GlobalValue::LinkageTypes OriginalLinkage = S->linkage();
305     // Ignore local and appending linkage values since the linker
306     // doesn't resolve them.
307     if (GlobalValue::isLocalLinkage(OriginalLinkage) ||
308         GlobalValue::isAppendingLinkage(S->linkage()))
309       continue;
310     // We need to emit only one of these. The prevailing module will keep it,
311     // but turned into a weak, while the others will drop it when possible.
312     // This is both a compile-time optimization and a correctness
313     // transformation. This is necessary for correctness when we have exported
314     // a reference - we need to convert the linkonce to weak to
315     // ensure a copy is kept to satisfy the exported reference.
316     // FIXME: We may want to split the compile time and correctness
317     // aspects into separate routines.
318     if (isPrevailing(GUID, S.get())) {
319       if (GlobalValue::isLinkOnceLinkage(OriginalLinkage))
320         S->setLinkage(GlobalValue::getWeakLinkage(
321             GlobalValue::isLinkOnceODRLinkage(OriginalLinkage)));
322     }
323     // Alias and aliasee can't be turned into available_externally.
324     else if (!isa<AliasSummary>(S.get()) &&
325              !GlobalInvolvedWithAlias.count(S.get()))
326       S->setLinkage(GlobalValue::AvailableExternallyLinkage);
327     if (S->linkage() != OriginalLinkage)
328       recordNewLinkage(S->modulePath(), GUID, S->linkage());
329   }
330 }
331 
332 /// Resolve linkage for prevailing symbols in the \p Index.
333 //
334 // We'd like to drop these functions if they are no longer referenced in the
335 // current module. However there is a chance that another module is still
336 // referencing them because of the import. We make sure we always emit at least
337 // one copy.
338 void llvm::thinLTOResolvePrevailingInIndex(
339     ModuleSummaryIndex &Index,
340     function_ref<bool(GlobalValue::GUID, const GlobalValueSummary *)>
341         isPrevailing,
342     function_ref<void(StringRef, GlobalValue::GUID, GlobalValue::LinkageTypes)>
343         recordNewLinkage) {
344   // We won't optimize the globals that are referenced by an alias for now
345   // Ideally we should turn the alias into a global and duplicate the definition
346   // when needed.
347   DenseSet<GlobalValueSummary *> GlobalInvolvedWithAlias;
348   for (auto &I : Index)
349     for (auto &S : I.second.SummaryList)
350       if (auto AS = dyn_cast<AliasSummary>(S.get()))
351         GlobalInvolvedWithAlias.insert(&AS->getAliasee());
352 
353   for (auto &I : Index)
354     thinLTOResolvePrevailingGUID(I.second.SummaryList, I.first,
355                                  GlobalInvolvedWithAlias, isPrevailing,
356                                  recordNewLinkage);
357 }
358 
359 static void thinLTOInternalizeAndPromoteGUID(
360     GlobalValueSummaryList &GVSummaryList, GlobalValue::GUID GUID,
361     function_ref<bool(StringRef, GlobalValue::GUID)> isExported) {
362   for (auto &S : GVSummaryList) {
363     if (isExported(S->modulePath(), GUID)) {
364       if (GlobalValue::isLocalLinkage(S->linkage()))
365         S->setLinkage(GlobalValue::ExternalLinkage);
366     } else if (EnableLTOInternalization &&
367                // Ignore local and appending linkage values since the linker
368                // doesn't resolve them.
369                !GlobalValue::isLocalLinkage(S->linkage()) &&
370                S->linkage() != GlobalValue::AppendingLinkage &&
371                // We can't internalize available_externally globals because this
372                // can break function pointer equality.
373                S->linkage() != GlobalValue::AvailableExternallyLinkage)
374       S->setLinkage(GlobalValue::InternalLinkage);
375   }
376 }
377 
378 // Update the linkages in the given \p Index to mark exported values
379 // as external and non-exported values as internal.
380 void llvm::thinLTOInternalizeAndPromoteInIndex(
381     ModuleSummaryIndex &Index,
382     function_ref<bool(StringRef, GlobalValue::GUID)> isExported) {
383   for (auto &I : Index)
384     thinLTOInternalizeAndPromoteGUID(I.second.SummaryList, I.first, isExported);
385 }
386 
387 // Requires a destructor for std::vector<InputModule>.
388 InputFile::~InputFile() = default;
389 
390 Expected<std::unique_ptr<InputFile>> InputFile::create(MemoryBufferRef Object) {
391   std::unique_ptr<InputFile> File(new InputFile);
392 
393   Expected<IRSymtabFile> FOrErr = readIRSymtab(Object);
394   if (!FOrErr)
395     return FOrErr.takeError();
396 
397   File->TargetTriple = FOrErr->TheReader.getTargetTriple();
398   File->SourceFileName = FOrErr->TheReader.getSourceFileName();
399   File->COFFLinkerOpts = FOrErr->TheReader.getCOFFLinkerOpts();
400   File->ComdatTable = FOrErr->TheReader.getComdatTable();
401 
402   for (unsigned I = 0; I != FOrErr->Mods.size(); ++I) {
403     size_t Begin = File->Symbols.size();
404     for (const irsymtab::Reader::SymbolRef &Sym :
405          FOrErr->TheReader.module_symbols(I))
406       // Skip symbols that are irrelevant to LTO. Note that this condition needs
407       // to match the one in Skip() in LTO::addRegularLTO().
408       if (Sym.isGlobal() && !Sym.isFormatSpecific())
409         File->Symbols.push_back(Sym);
410     File->ModuleSymIndices.push_back({Begin, File->Symbols.size()});
411   }
412 
413   File->Mods = FOrErr->Mods;
414   File->Strtab = std::move(FOrErr->Strtab);
415   return std::move(File);
416 }
417 
418 StringRef InputFile::getName() const {
419   return Mods[0].getModuleIdentifier();
420 }
421 
422 LTO::RegularLTOState::RegularLTOState(unsigned ParallelCodeGenParallelismLevel,
423                                       Config &Conf)
424     : ParallelCodeGenParallelismLevel(ParallelCodeGenParallelismLevel),
425       Ctx(Conf), CombinedModule(llvm::make_unique<Module>("ld-temp.o", Ctx)),
426       Mover(llvm::make_unique<IRMover>(*CombinedModule)) {}
427 
428 LTO::ThinLTOState::ThinLTOState(ThinBackend Backend)
429     : Backend(Backend), CombinedIndex(/*HaveGVs*/ false) {
430   if (!Backend)
431     this->Backend =
432         createInProcessThinBackend(llvm::heavyweight_hardware_concurrency());
433 }
434 
435 LTO::LTO(Config Conf, ThinBackend Backend,
436          unsigned ParallelCodeGenParallelismLevel)
437     : Conf(std::move(Conf)),
438       RegularLTO(ParallelCodeGenParallelismLevel, this->Conf),
439       ThinLTO(std::move(Backend)) {}
440 
441 // Requires a destructor for MapVector<BitcodeModule>.
442 LTO::~LTO() = default;
443 
444 // Add the symbols in the given module to the GlobalResolutions map, and resolve
445 // their partitions.
446 void LTO::addModuleToGlobalRes(ArrayRef<InputFile::Symbol> Syms,
447                                ArrayRef<SymbolResolution> Res,
448                                unsigned Partition, bool InSummary) {
449   auto *ResI = Res.begin();
450   auto *ResE = Res.end();
451   (void)ResE;
452   for (const InputFile::Symbol &Sym : Syms) {
453     assert(ResI != ResE);
454     SymbolResolution Res = *ResI++;
455 
456     StringRef Name = Sym.getName();
457     Triple TT(RegularLTO.CombinedModule->getTargetTriple());
458     // Strip the __imp_ prefix from COFF dllimport symbols (similar to the
459     // way they are handled by lld), otherwise we can end up with two
460     // global resolutions (one with and one for a copy of the symbol without).
461     if (TT.isOSBinFormatCOFF() && Name.startswith("__imp_"))
462       Name = Name.substr(strlen("__imp_"));
463     auto &GlobalRes = GlobalResolutions[Name];
464     GlobalRes.UnnamedAddr &= Sym.isUnnamedAddr();
465     if (Res.Prevailing) {
466       assert(!GlobalRes.Prevailing &&
467              "Multiple prevailing defs are not allowed");
468       GlobalRes.Prevailing = true;
469       GlobalRes.IRName = Sym.getIRName();
470     } else if (!GlobalRes.Prevailing && GlobalRes.IRName.empty()) {
471       // Sometimes it can be two copies of symbol in a module and prevailing
472       // symbol can have no IR name. That might happen if symbol is defined in
473       // module level inline asm block. In case we have multiple modules with
474       // the same symbol we want to use IR name of the prevailing symbol.
475       // Otherwise, if we haven't seen a prevailing symbol, set the name so that
476       // we can later use it to check if there is any prevailing copy in IR.
477       GlobalRes.IRName = Sym.getIRName();
478     }
479 
480     // Set the partition to external if we know it is re-defined by the linker
481     // with -defsym or -wrap options, used elsewhere, e.g. it is visible to a
482     // regular object, is referenced from llvm.compiler_used, or was already
483     // recorded as being referenced from a different partition.
484     if (Res.LinkerRedefined || Res.VisibleToRegularObj || Sym.isUsed() ||
485         (GlobalRes.Partition != GlobalResolution::Unknown &&
486          GlobalRes.Partition != Partition)) {
487       GlobalRes.Partition = GlobalResolution::External;
488     } else
489       // First recorded reference, save the current partition.
490       GlobalRes.Partition = Partition;
491 
492     // Flag as visible outside of summary if visible from a regular object or
493     // from a module that does not have a summary.
494     GlobalRes.VisibleOutsideSummary |=
495         (Res.VisibleToRegularObj || Sym.isUsed() || !InSummary);
496   }
497 }
498 
499 static void writeToResolutionFile(raw_ostream &OS, InputFile *Input,
500                                   ArrayRef<SymbolResolution> Res) {
501   StringRef Path = Input->getName();
502   OS << Path << '\n';
503   auto ResI = Res.begin();
504   for (const InputFile::Symbol &Sym : Input->symbols()) {
505     assert(ResI != Res.end());
506     SymbolResolution Res = *ResI++;
507 
508     OS << "-r=" << Path << ',' << Sym.getName() << ',';
509     if (Res.Prevailing)
510       OS << 'p';
511     if (Res.FinalDefinitionInLinkageUnit)
512       OS << 'l';
513     if (Res.VisibleToRegularObj)
514       OS << 'x';
515     if (Res.LinkerRedefined)
516       OS << 'r';
517     OS << '\n';
518   }
519   OS.flush();
520   assert(ResI == Res.end());
521 }
522 
523 Error LTO::add(std::unique_ptr<InputFile> Input,
524                ArrayRef<SymbolResolution> Res) {
525   assert(!CalledGetMaxTasks);
526 
527   if (Conf.ResolutionFile)
528     writeToResolutionFile(*Conf.ResolutionFile, Input.get(), Res);
529 
530   if (RegularLTO.CombinedModule->getTargetTriple().empty())
531     RegularLTO.CombinedModule->setTargetTriple(Input->getTargetTriple());
532 
533   const SymbolResolution *ResI = Res.begin();
534   for (unsigned I = 0; I != Input->Mods.size(); ++I)
535     if (Error Err = addModule(*Input, I, ResI, Res.end()))
536       return Err;
537 
538   assert(ResI == Res.end());
539   return Error::success();
540 }
541 
542 Error LTO::addModule(InputFile &Input, unsigned ModI,
543                      const SymbolResolution *&ResI,
544                      const SymbolResolution *ResE) {
545   Expected<BitcodeLTOInfo> LTOInfo = Input.Mods[ModI].getLTOInfo();
546   if (!LTOInfo)
547     return LTOInfo.takeError();
548 
549   BitcodeModule BM = Input.Mods[ModI];
550   auto ModSyms = Input.module_symbols(ModI);
551   addModuleToGlobalRes(ModSyms, {ResI, ResE},
552                        LTOInfo->IsThinLTO ? ThinLTO.ModuleMap.size() + 1 : 0,
553                        LTOInfo->HasSummary);
554 
555   if (LTOInfo->IsThinLTO)
556     return addThinLTO(BM, ModSyms, ResI, ResE);
557 
558   Expected<RegularLTOState::AddedModule> ModOrErr =
559       addRegularLTO(BM, ModSyms, ResI, ResE);
560   if (!ModOrErr)
561     return ModOrErr.takeError();
562 
563   if (!LTOInfo->HasSummary)
564     return linkRegularLTO(std::move(*ModOrErr), /*LivenessFromIndex=*/false);
565 
566   // Regular LTO module summaries are added to a dummy module that represents
567   // the combined regular LTO module.
568   if (Error Err = BM.readSummary(ThinLTO.CombinedIndex, "", -1ull))
569     return Err;
570   RegularLTO.ModsWithSummaries.push_back(std::move(*ModOrErr));
571   return Error::success();
572 }
573 
574 // Checks whether the given global value is in a non-prevailing comdat
575 // (comdat containing values the linker indicated were not prevailing,
576 // which we then dropped to available_externally), and if so, removes
577 // it from the comdat. This is called for all global values to ensure the
578 // comdat is empty rather than leaving an incomplete comdat. It is needed for
579 // regular LTO modules, in case we are in a mixed-LTO mode (both regular
580 // and thin LTO modules) compilation. Since the regular LTO module will be
581 // linked first in the final native link, we want to make sure the linker
582 // doesn't select any of these incomplete comdats that would be left
583 // in the regular LTO module without this cleanup.
584 static void
585 handleNonPrevailingComdat(GlobalValue &GV,
586                           std::set<const Comdat *> &NonPrevailingComdats) {
587   Comdat *C = GV.getComdat();
588   if (!C)
589     return;
590 
591   if (!NonPrevailingComdats.count(C))
592     return;
593 
594   // Additionally need to drop externally visible global values from the comdat
595   // to available_externally, so that there aren't multiply defined linker
596   // errors.
597   if (!GV.hasLocalLinkage())
598     GV.setLinkage(GlobalValue::AvailableExternallyLinkage);
599 
600   if (auto GO = dyn_cast<GlobalObject>(&GV))
601     GO->setComdat(nullptr);
602 }
603 
604 // Add a regular LTO object to the link.
605 // The resulting module needs to be linked into the combined LTO module with
606 // linkRegularLTO.
607 Expected<LTO::RegularLTOState::AddedModule>
608 LTO::addRegularLTO(BitcodeModule BM, ArrayRef<InputFile::Symbol> Syms,
609                    const SymbolResolution *&ResI,
610                    const SymbolResolution *ResE) {
611   RegularLTOState::AddedModule Mod;
612   Expected<std::unique_ptr<Module>> MOrErr =
613       BM.getLazyModule(RegularLTO.Ctx, /*ShouldLazyLoadMetadata*/ true,
614                        /*IsImporting*/ false);
615   if (!MOrErr)
616     return MOrErr.takeError();
617   Module &M = **MOrErr;
618   Mod.M = std::move(*MOrErr);
619 
620   if (Error Err = M.materializeMetadata())
621     return std::move(Err);
622   UpgradeDebugInfo(M);
623 
624   ModuleSymbolTable SymTab;
625   SymTab.addModule(&M);
626 
627   for (GlobalVariable &GV : M.globals())
628     if (GV.hasAppendingLinkage())
629       Mod.Keep.push_back(&GV);
630 
631   DenseSet<GlobalObject *> AliasedGlobals;
632   for (auto &GA : M.aliases())
633     if (GlobalObject *GO = GA.getBaseObject())
634       AliasedGlobals.insert(GO);
635 
636   // In this function we need IR GlobalValues matching the symbols in Syms
637   // (which is not backed by a module), so we need to enumerate them in the same
638   // order. The symbol enumeration order of a ModuleSymbolTable intentionally
639   // matches the order of an irsymtab, but when we read the irsymtab in
640   // InputFile::create we omit some symbols that are irrelevant to LTO. The
641   // Skip() function skips the same symbols from the module as InputFile does
642   // from the symbol table.
643   auto MsymI = SymTab.symbols().begin(), MsymE = SymTab.symbols().end();
644   auto Skip = [&]() {
645     while (MsymI != MsymE) {
646       auto Flags = SymTab.getSymbolFlags(*MsymI);
647       if ((Flags & object::BasicSymbolRef::SF_Global) &&
648           !(Flags & object::BasicSymbolRef::SF_FormatSpecific))
649         return;
650       ++MsymI;
651     }
652   };
653   Skip();
654 
655   std::set<const Comdat *> NonPrevailingComdats;
656   for (const InputFile::Symbol &Sym : Syms) {
657     assert(ResI != ResE);
658     SymbolResolution Res = *ResI++;
659 
660     assert(MsymI != MsymE);
661     ModuleSymbolTable::Symbol Msym = *MsymI++;
662     Skip();
663 
664     if (GlobalValue *GV = Msym.dyn_cast<GlobalValue *>()) {
665       if (Res.Prevailing) {
666         if (Sym.isUndefined())
667           continue;
668         Mod.Keep.push_back(GV);
669         // For symbols re-defined with linker -wrap and -defsym options,
670         // set the linkage to weak to inhibit IPO. The linkage will be
671         // restored by the linker.
672         if (Res.LinkerRedefined)
673           GV->setLinkage(GlobalValue::WeakAnyLinkage);
674 
675         GlobalValue::LinkageTypes OriginalLinkage = GV->getLinkage();
676         if (GlobalValue::isLinkOnceLinkage(OriginalLinkage))
677           GV->setLinkage(GlobalValue::getWeakLinkage(
678               GlobalValue::isLinkOnceODRLinkage(OriginalLinkage)));
679       } else if (isa<GlobalObject>(GV) &&
680                  (GV->hasLinkOnceODRLinkage() || GV->hasWeakODRLinkage() ||
681                   GV->hasAvailableExternallyLinkage()) &&
682                  !AliasedGlobals.count(cast<GlobalObject>(GV))) {
683         // Any of the above three types of linkage indicates that the
684         // chosen prevailing symbol will have the same semantics as this copy of
685         // the symbol, so we may be able to link it with available_externally
686         // linkage. We will decide later whether to do that when we link this
687         // module (in linkRegularLTO), based on whether it is undefined.
688         Mod.Keep.push_back(GV);
689         GV->setLinkage(GlobalValue::AvailableExternallyLinkage);
690         if (GV->hasComdat())
691           NonPrevailingComdats.insert(GV->getComdat());
692         cast<GlobalObject>(GV)->setComdat(nullptr);
693       }
694 
695       // Set the 'local' flag based on the linker resolution for this symbol.
696       if (Res.FinalDefinitionInLinkageUnit) {
697         GV->setDSOLocal(true);
698         if (GV->hasDLLImportStorageClass())
699           GV->setDLLStorageClass(GlobalValue::DLLStorageClassTypes::
700                                  DefaultStorageClass);
701       }
702     }
703     // Common resolution: collect the maximum size/alignment over all commons.
704     // We also record if we see an instance of a common as prevailing, so that
705     // if none is prevailing we can ignore it later.
706     if (Sym.isCommon()) {
707       // FIXME: We should figure out what to do about commons defined by asm.
708       // For now they aren't reported correctly by ModuleSymbolTable.
709       auto &CommonRes = RegularLTO.Commons[Sym.getIRName()];
710       CommonRes.Size = std::max(CommonRes.Size, Sym.getCommonSize());
711       CommonRes.Align = std::max(CommonRes.Align, Sym.getCommonAlignment());
712       CommonRes.Prevailing |= Res.Prevailing;
713     }
714 
715   }
716   if (!M.getComdatSymbolTable().empty())
717     for (GlobalValue &GV : M.global_values())
718       handleNonPrevailingComdat(GV, NonPrevailingComdats);
719   assert(MsymI == MsymE);
720   return std::move(Mod);
721 }
722 
723 Error LTO::linkRegularLTO(RegularLTOState::AddedModule Mod,
724                           bool LivenessFromIndex) {
725   std::vector<GlobalValue *> Keep;
726   for (GlobalValue *GV : Mod.Keep) {
727     if (LivenessFromIndex && !ThinLTO.CombinedIndex.isGUIDLive(GV->getGUID()))
728       continue;
729 
730     if (!GV->hasAvailableExternallyLinkage()) {
731       Keep.push_back(GV);
732       continue;
733     }
734 
735     // Only link available_externally definitions if we don't already have a
736     // definition.
737     GlobalValue *CombinedGV =
738         RegularLTO.CombinedModule->getNamedValue(GV->getName());
739     if (CombinedGV && !CombinedGV->isDeclaration())
740       continue;
741 
742     Keep.push_back(GV);
743   }
744 
745   return RegularLTO.Mover->move(std::move(Mod.M), Keep,
746                                 [](GlobalValue &, IRMover::ValueAdder) {},
747                                 /* IsPerformingImport */ false);
748 }
749 
750 // Add a ThinLTO module to the link.
751 Error LTO::addThinLTO(BitcodeModule BM, ArrayRef<InputFile::Symbol> Syms,
752                       const SymbolResolution *&ResI,
753                       const SymbolResolution *ResE) {
754   if (Error Err =
755           BM.readSummary(ThinLTO.CombinedIndex, BM.getModuleIdentifier(),
756                          ThinLTO.ModuleMap.size()))
757     return Err;
758 
759   for (const InputFile::Symbol &Sym : Syms) {
760     assert(ResI != ResE);
761     SymbolResolution Res = *ResI++;
762 
763     if (!Sym.getIRName().empty()) {
764       auto GUID = GlobalValue::getGUID(GlobalValue::getGlobalIdentifier(
765           Sym.getIRName(), GlobalValue::ExternalLinkage, ""));
766       if (Res.Prevailing) {
767         ThinLTO.PrevailingModuleForGUID[GUID] = BM.getModuleIdentifier();
768 
769         // For linker redefined symbols (via --wrap or --defsym) we want to
770         // switch the linkage to `weak` to prevent IPOs from happening.
771         // Find the summary in the module for this very GV and record the new
772         // linkage so that we can switch it when we import the GV.
773         if (Res.LinkerRedefined)
774           if (auto S = ThinLTO.CombinedIndex.findSummaryInModule(
775                   GUID, BM.getModuleIdentifier()))
776             S->setLinkage(GlobalValue::WeakAnyLinkage);
777       }
778 
779       // If the linker resolved the symbol to a local definition then mark it
780       // as local in the summary for the module we are adding.
781       if (Res.FinalDefinitionInLinkageUnit) {
782         if (auto S = ThinLTO.CombinedIndex.findSummaryInModule(
783                 GUID, BM.getModuleIdentifier())) {
784           S->setDSOLocal(true);
785         }
786       }
787     }
788   }
789 
790   if (!ThinLTO.ModuleMap.insert({BM.getModuleIdentifier(), BM}).second)
791     return make_error<StringError>(
792         "Expected at most one ThinLTO module per bitcode file",
793         inconvertibleErrorCode());
794 
795   return Error::success();
796 }
797 
798 unsigned LTO::getMaxTasks() const {
799   CalledGetMaxTasks = true;
800   return RegularLTO.ParallelCodeGenParallelismLevel + ThinLTO.ModuleMap.size();
801 }
802 
803 Error LTO::run(AddStreamFn AddStream, NativeObjectCache Cache) {
804   // Compute "dead" symbols, we don't want to import/export these!
805   DenseSet<GlobalValue::GUID> GUIDPreservedSymbols;
806   DenseMap<GlobalValue::GUID, PrevailingType> GUIDPrevailingResolutions;
807   for (auto &Res : GlobalResolutions) {
808     // Normally resolution have IR name of symbol. We can do nothing here
809     // otherwise. See comments in GlobalResolution struct for more details.
810     if (Res.second.IRName.empty())
811       continue;
812 
813     GlobalValue::GUID GUID = GlobalValue::getGUID(
814         GlobalValue::dropLLVMManglingEscape(Res.second.IRName));
815 
816     if (Res.second.VisibleOutsideSummary && Res.second.Prevailing)
817       GUIDPreservedSymbols.insert(GlobalValue::getGUID(
818           GlobalValue::dropLLVMManglingEscape(Res.second.IRName)));
819 
820     GUIDPrevailingResolutions[GUID] =
821         Res.second.Prevailing ? PrevailingType::Yes : PrevailingType::No;
822   }
823 
824   auto isPrevailing = [&](GlobalValue::GUID G) {
825     auto It = GUIDPrevailingResolutions.find(G);
826     if (It == GUIDPrevailingResolutions.end())
827       return PrevailingType::Unknown;
828     return It->second;
829   };
830   computeDeadSymbolsWithConstProp(ThinLTO.CombinedIndex, GUIDPreservedSymbols,
831                                   isPrevailing, Conf.OptLevel > 0);
832 
833   // Setup output file to emit statistics.
834   std::unique_ptr<ToolOutputFile> StatsFile = nullptr;
835   if (!Conf.StatsFile.empty()) {
836     EnableStatistics(false);
837     std::error_code EC;
838     StatsFile =
839         llvm::make_unique<ToolOutputFile>(Conf.StatsFile, EC, sys::fs::F_None);
840     if (EC)
841       return errorCodeToError(EC);
842     StatsFile->keep();
843   }
844 
845   Error Result = runRegularLTO(AddStream);
846   if (!Result)
847     Result = runThinLTO(AddStream, Cache);
848 
849   if (StatsFile)
850     PrintStatisticsJSON(StatsFile->os());
851 
852   return Result;
853 }
854 
855 Error LTO::runRegularLTO(AddStreamFn AddStream) {
856   for (auto &M : RegularLTO.ModsWithSummaries)
857     if (Error Err = linkRegularLTO(std::move(M),
858                                    /*LivenessFromIndex=*/true))
859       return Err;
860 
861   // Make sure commons have the right size/alignment: we kept the largest from
862   // all the prevailing when adding the inputs, and we apply it here.
863   const DataLayout &DL = RegularLTO.CombinedModule->getDataLayout();
864   for (auto &I : RegularLTO.Commons) {
865     if (!I.second.Prevailing)
866       // Don't do anything if no instance of this common was prevailing.
867       continue;
868     GlobalVariable *OldGV = RegularLTO.CombinedModule->getNamedGlobal(I.first);
869     if (OldGV && DL.getTypeAllocSize(OldGV->getValueType()) == I.second.Size) {
870       // Don't create a new global if the type is already correct, just make
871       // sure the alignment is correct.
872       OldGV->setAlignment(I.second.Align);
873       continue;
874     }
875     ArrayType *Ty =
876         ArrayType::get(Type::getInt8Ty(RegularLTO.Ctx), I.second.Size);
877     auto *GV = new GlobalVariable(*RegularLTO.CombinedModule, Ty, false,
878                                   GlobalValue::CommonLinkage,
879                                   ConstantAggregateZero::get(Ty), "");
880     GV->setAlignment(I.second.Align);
881     if (OldGV) {
882       OldGV->replaceAllUsesWith(ConstantExpr::getBitCast(GV, OldGV->getType()));
883       GV->takeName(OldGV);
884       OldGV->eraseFromParent();
885     } else {
886       GV->setName(I.first);
887     }
888   }
889 
890   if (Conf.PreOptModuleHook &&
891       !Conf.PreOptModuleHook(0, *RegularLTO.CombinedModule))
892     return Error::success();
893 
894   if (!Conf.CodeGenOnly) {
895     for (const auto &R : GlobalResolutions) {
896       if (!R.second.isPrevailingIRSymbol())
897         continue;
898       if (R.second.Partition != 0 &&
899           R.second.Partition != GlobalResolution::External)
900         continue;
901 
902       GlobalValue *GV =
903           RegularLTO.CombinedModule->getNamedValue(R.second.IRName);
904       // Ignore symbols defined in other partitions.
905       // Also skip declarations, which are not allowed to have internal linkage.
906       if (!GV || GV->hasLocalLinkage() || GV->isDeclaration())
907         continue;
908       GV->setUnnamedAddr(R.second.UnnamedAddr ? GlobalValue::UnnamedAddr::Global
909                                               : GlobalValue::UnnamedAddr::None);
910       if (EnableLTOInternalization && R.second.Partition == 0)
911         GV->setLinkage(GlobalValue::InternalLinkage);
912     }
913 
914     if (Conf.PostInternalizeModuleHook &&
915         !Conf.PostInternalizeModuleHook(0, *RegularLTO.CombinedModule))
916       return Error::success();
917   }
918   return backend(Conf, AddStream, RegularLTO.ParallelCodeGenParallelismLevel,
919                  std::move(RegularLTO.CombinedModule), ThinLTO.CombinedIndex);
920 }
921 
922 /// This class defines the interface to the ThinLTO backend.
923 class lto::ThinBackendProc {
924 protected:
925   Config &Conf;
926   ModuleSummaryIndex &CombinedIndex;
927   const StringMap<GVSummaryMapTy> &ModuleToDefinedGVSummaries;
928 
929 public:
930   ThinBackendProc(Config &Conf, ModuleSummaryIndex &CombinedIndex,
931                   const StringMap<GVSummaryMapTy> &ModuleToDefinedGVSummaries)
932       : Conf(Conf), CombinedIndex(CombinedIndex),
933         ModuleToDefinedGVSummaries(ModuleToDefinedGVSummaries) {}
934 
935   virtual ~ThinBackendProc() {}
936   virtual Error start(
937       unsigned Task, BitcodeModule BM,
938       const FunctionImporter::ImportMapTy &ImportList,
939       const FunctionImporter::ExportSetTy &ExportList,
940       const std::map<GlobalValue::GUID, GlobalValue::LinkageTypes> &ResolvedODR,
941       MapVector<StringRef, BitcodeModule> &ModuleMap) = 0;
942   virtual Error wait() = 0;
943 };
944 
945 namespace {
946 class InProcessThinBackend : public ThinBackendProc {
947   ThreadPool BackendThreadPool;
948   AddStreamFn AddStream;
949   NativeObjectCache Cache;
950   std::set<GlobalValue::GUID> CfiFunctionDefs;
951   std::set<GlobalValue::GUID> CfiFunctionDecls;
952 
953   Optional<Error> Err;
954   std::mutex ErrMu;
955 
956 public:
957   InProcessThinBackend(
958       Config &Conf, ModuleSummaryIndex &CombinedIndex,
959       unsigned ThinLTOParallelismLevel,
960       const StringMap<GVSummaryMapTy> &ModuleToDefinedGVSummaries,
961       AddStreamFn AddStream, NativeObjectCache Cache)
962       : ThinBackendProc(Conf, CombinedIndex, ModuleToDefinedGVSummaries),
963         BackendThreadPool(ThinLTOParallelismLevel),
964         AddStream(std::move(AddStream)), Cache(std::move(Cache)) {
965     for (auto &Name : CombinedIndex.cfiFunctionDefs())
966       CfiFunctionDefs.insert(
967           GlobalValue::getGUID(GlobalValue::dropLLVMManglingEscape(Name)));
968     for (auto &Name : CombinedIndex.cfiFunctionDecls())
969       CfiFunctionDecls.insert(
970           GlobalValue::getGUID(GlobalValue::dropLLVMManglingEscape(Name)));
971   }
972 
973   Error runThinLTOBackendThread(
974       AddStreamFn AddStream, NativeObjectCache Cache, unsigned Task,
975       BitcodeModule BM, ModuleSummaryIndex &CombinedIndex,
976       const FunctionImporter::ImportMapTy &ImportList,
977       const FunctionImporter::ExportSetTy &ExportList,
978       const std::map<GlobalValue::GUID, GlobalValue::LinkageTypes> &ResolvedODR,
979       const GVSummaryMapTy &DefinedGlobals,
980       MapVector<StringRef, BitcodeModule> &ModuleMap) {
981     auto RunThinBackend = [&](AddStreamFn AddStream) {
982       LTOLLVMContext BackendContext(Conf);
983       Expected<std::unique_ptr<Module>> MOrErr = BM.parseModule(BackendContext);
984       if (!MOrErr)
985         return MOrErr.takeError();
986 
987       return thinBackend(Conf, Task, AddStream, **MOrErr, CombinedIndex,
988                          ImportList, DefinedGlobals, ModuleMap);
989     };
990 
991     auto ModuleID = BM.getModuleIdentifier();
992 
993     if (!Cache || !CombinedIndex.modulePaths().count(ModuleID) ||
994         all_of(CombinedIndex.getModuleHash(ModuleID),
995                [](uint32_t V) { return V == 0; }))
996       // Cache disabled or no entry for this module in the combined index or
997       // no module hash.
998       return RunThinBackend(AddStream);
999 
1000     SmallString<40> Key;
1001     // The module may be cached, this helps handling it.
1002     computeLTOCacheKey(Key, Conf, CombinedIndex, ModuleID, ImportList,
1003                        ExportList, ResolvedODR, DefinedGlobals, CfiFunctionDefs,
1004                        CfiFunctionDecls);
1005     if (AddStreamFn CacheAddStream = Cache(Task, Key))
1006       return RunThinBackend(CacheAddStream);
1007 
1008     return Error::success();
1009   }
1010 
1011   Error start(
1012       unsigned Task, BitcodeModule BM,
1013       const FunctionImporter::ImportMapTy &ImportList,
1014       const FunctionImporter::ExportSetTy &ExportList,
1015       const std::map<GlobalValue::GUID, GlobalValue::LinkageTypes> &ResolvedODR,
1016       MapVector<StringRef, BitcodeModule> &ModuleMap) override {
1017     StringRef ModulePath = BM.getModuleIdentifier();
1018     assert(ModuleToDefinedGVSummaries.count(ModulePath));
1019     const GVSummaryMapTy &DefinedGlobals =
1020         ModuleToDefinedGVSummaries.find(ModulePath)->second;
1021     BackendThreadPool.async(
1022         [=](BitcodeModule BM, ModuleSummaryIndex &CombinedIndex,
1023             const FunctionImporter::ImportMapTy &ImportList,
1024             const FunctionImporter::ExportSetTy &ExportList,
1025             const std::map<GlobalValue::GUID, GlobalValue::LinkageTypes>
1026                 &ResolvedODR,
1027             const GVSummaryMapTy &DefinedGlobals,
1028             MapVector<StringRef, BitcodeModule> &ModuleMap) {
1029           Error E = runThinLTOBackendThread(
1030               AddStream, Cache, Task, BM, CombinedIndex, ImportList, ExportList,
1031               ResolvedODR, DefinedGlobals, ModuleMap);
1032           if (E) {
1033             std::unique_lock<std::mutex> L(ErrMu);
1034             if (Err)
1035               Err = joinErrors(std::move(*Err), std::move(E));
1036             else
1037               Err = std::move(E);
1038           }
1039         },
1040         BM, std::ref(CombinedIndex), std::ref(ImportList), std::ref(ExportList),
1041         std::ref(ResolvedODR), std::ref(DefinedGlobals), std::ref(ModuleMap));
1042     return Error::success();
1043   }
1044 
1045   Error wait() override {
1046     BackendThreadPool.wait();
1047     if (Err)
1048       return std::move(*Err);
1049     else
1050       return Error::success();
1051   }
1052 };
1053 } // end anonymous namespace
1054 
1055 ThinBackend lto::createInProcessThinBackend(unsigned ParallelismLevel) {
1056   return [=](Config &Conf, ModuleSummaryIndex &CombinedIndex,
1057              const StringMap<GVSummaryMapTy> &ModuleToDefinedGVSummaries,
1058              AddStreamFn AddStream, NativeObjectCache Cache) {
1059     return llvm::make_unique<InProcessThinBackend>(
1060         Conf, CombinedIndex, ParallelismLevel, ModuleToDefinedGVSummaries,
1061         AddStream, Cache);
1062   };
1063 }
1064 
1065 // Given the original \p Path to an output file, replace any path
1066 // prefix matching \p OldPrefix with \p NewPrefix. Also, create the
1067 // resulting directory if it does not yet exist.
1068 std::string lto::getThinLTOOutputFile(const std::string &Path,
1069                                       const std::string &OldPrefix,
1070                                       const std::string &NewPrefix) {
1071   if (OldPrefix.empty() && NewPrefix.empty())
1072     return Path;
1073   SmallString<128> NewPath(Path);
1074   llvm::sys::path::replace_path_prefix(NewPath, OldPrefix, NewPrefix);
1075   StringRef ParentPath = llvm::sys::path::parent_path(NewPath.str());
1076   if (!ParentPath.empty()) {
1077     // Make sure the new directory exists, creating it if necessary.
1078     if (std::error_code EC = llvm::sys::fs::create_directories(ParentPath))
1079       llvm::errs() << "warning: could not create directory '" << ParentPath
1080                    << "': " << EC.message() << '\n';
1081   }
1082   return NewPath.str();
1083 }
1084 
1085 namespace {
1086 class WriteIndexesThinBackend : public ThinBackendProc {
1087   std::string OldPrefix, NewPrefix;
1088   bool ShouldEmitImportsFiles;
1089   raw_fd_ostream *LinkedObjectsFile;
1090   lto::IndexWriteCallback OnWrite;
1091 
1092 public:
1093   WriteIndexesThinBackend(
1094       Config &Conf, ModuleSummaryIndex &CombinedIndex,
1095       const StringMap<GVSummaryMapTy> &ModuleToDefinedGVSummaries,
1096       std::string OldPrefix, std::string NewPrefix, bool ShouldEmitImportsFiles,
1097       raw_fd_ostream *LinkedObjectsFile, lto::IndexWriteCallback OnWrite)
1098       : ThinBackendProc(Conf, CombinedIndex, ModuleToDefinedGVSummaries),
1099         OldPrefix(OldPrefix), NewPrefix(NewPrefix),
1100         ShouldEmitImportsFiles(ShouldEmitImportsFiles),
1101         LinkedObjectsFile(LinkedObjectsFile), OnWrite(OnWrite) {}
1102 
1103   Error start(
1104       unsigned Task, BitcodeModule BM,
1105       const FunctionImporter::ImportMapTy &ImportList,
1106       const FunctionImporter::ExportSetTy &ExportList,
1107       const std::map<GlobalValue::GUID, GlobalValue::LinkageTypes> &ResolvedODR,
1108       MapVector<StringRef, BitcodeModule> &ModuleMap) override {
1109     StringRef ModulePath = BM.getModuleIdentifier();
1110     std::string NewModulePath =
1111         getThinLTOOutputFile(ModulePath, OldPrefix, NewPrefix);
1112 
1113     if (LinkedObjectsFile)
1114       *LinkedObjectsFile << NewModulePath << '\n';
1115 
1116     std::map<std::string, GVSummaryMapTy> ModuleToSummariesForIndex;
1117     gatherImportedSummariesForModule(ModulePath, ModuleToDefinedGVSummaries,
1118                                      ImportList, ModuleToSummariesForIndex);
1119 
1120     std::error_code EC;
1121     raw_fd_ostream OS(NewModulePath + ".thinlto.bc", EC,
1122                       sys::fs::OpenFlags::F_None);
1123     if (EC)
1124       return errorCodeToError(EC);
1125     WriteIndexToFile(CombinedIndex, OS, &ModuleToSummariesForIndex);
1126 
1127     if (ShouldEmitImportsFiles) {
1128       EC = EmitImportsFiles(ModulePath, NewModulePath + ".imports",
1129                             ModuleToSummariesForIndex);
1130       if (EC)
1131         return errorCodeToError(EC);
1132     }
1133 
1134     if (OnWrite)
1135       OnWrite(ModulePath);
1136     return Error::success();
1137   }
1138 
1139   Error wait() override { return Error::success(); }
1140 };
1141 } // end anonymous namespace
1142 
1143 ThinBackend lto::createWriteIndexesThinBackend(
1144     std::string OldPrefix, std::string NewPrefix, bool ShouldEmitImportsFiles,
1145     raw_fd_ostream *LinkedObjectsFile, IndexWriteCallback OnWrite) {
1146   return [=](Config &Conf, ModuleSummaryIndex &CombinedIndex,
1147              const StringMap<GVSummaryMapTy> &ModuleToDefinedGVSummaries,
1148              AddStreamFn AddStream, NativeObjectCache Cache) {
1149     return llvm::make_unique<WriteIndexesThinBackend>(
1150         Conf, CombinedIndex, ModuleToDefinedGVSummaries, OldPrefix, NewPrefix,
1151         ShouldEmitImportsFiles, LinkedObjectsFile, OnWrite);
1152   };
1153 }
1154 
1155 Error LTO::runThinLTO(AddStreamFn AddStream, NativeObjectCache Cache) {
1156   if (ThinLTO.ModuleMap.empty())
1157     return Error::success();
1158 
1159   if (Conf.CombinedIndexHook && !Conf.CombinedIndexHook(ThinLTO.CombinedIndex))
1160     return Error::success();
1161 
1162   // Collect for each module the list of function it defines (GUID ->
1163   // Summary).
1164   StringMap<GVSummaryMapTy>
1165       ModuleToDefinedGVSummaries(ThinLTO.ModuleMap.size());
1166   ThinLTO.CombinedIndex.collectDefinedGVSummariesPerModule(
1167       ModuleToDefinedGVSummaries);
1168   // Create entries for any modules that didn't have any GV summaries
1169   // (either they didn't have any GVs to start with, or we suppressed
1170   // generation of the summaries because they e.g. had inline assembly
1171   // uses that couldn't be promoted/renamed on export). This is so
1172   // InProcessThinBackend::start can still launch a backend thread, which
1173   // is passed the map of summaries for the module, without any special
1174   // handling for this case.
1175   for (auto &Mod : ThinLTO.ModuleMap)
1176     if (!ModuleToDefinedGVSummaries.count(Mod.first))
1177       ModuleToDefinedGVSummaries.try_emplace(Mod.first);
1178 
1179   // Synthesize entry counts for functions in the CombinedIndex.
1180   computeSyntheticCounts(ThinLTO.CombinedIndex);
1181 
1182   StringMap<FunctionImporter::ImportMapTy> ImportLists(
1183       ThinLTO.ModuleMap.size());
1184   StringMap<FunctionImporter::ExportSetTy> ExportLists(
1185       ThinLTO.ModuleMap.size());
1186   StringMap<std::map<GlobalValue::GUID, GlobalValue::LinkageTypes>> ResolvedODR;
1187 
1188   if (DumpThinCGSCCs)
1189     ThinLTO.CombinedIndex.dumpSCCs(outs());
1190 
1191   if (Conf.OptLevel > 0)
1192     ComputeCrossModuleImport(ThinLTO.CombinedIndex, ModuleToDefinedGVSummaries,
1193                              ImportLists, ExportLists);
1194 
1195   // Figure out which symbols need to be internalized. This also needs to happen
1196   // at -O0 because summary-based DCE is implemented using internalization, and
1197   // we must apply DCE consistently with the full LTO module in order to avoid
1198   // undefined references during the final link.
1199   std::set<GlobalValue::GUID> ExportedGUIDs;
1200   for (auto &Res : GlobalResolutions) {
1201     // If the symbol does not have external references or it is not prevailing,
1202     // then not need to mark it as exported from a ThinLTO partition.
1203     if (Res.second.Partition != GlobalResolution::External ||
1204         !Res.second.isPrevailingIRSymbol())
1205       continue;
1206     auto GUID = GlobalValue::getGUID(
1207         GlobalValue::dropLLVMManglingEscape(Res.second.IRName));
1208     // Mark exported unless index-based analysis determined it to be dead.
1209     if (ThinLTO.CombinedIndex.isGUIDLive(GUID))
1210       ExportedGUIDs.insert(GUID);
1211   }
1212 
1213   // Any functions referenced by the jump table in the regular LTO object must
1214   // be exported.
1215   for (auto &Def : ThinLTO.CombinedIndex.cfiFunctionDefs())
1216     ExportedGUIDs.insert(
1217         GlobalValue::getGUID(GlobalValue::dropLLVMManglingEscape(Def)));
1218 
1219   auto isExported = [&](StringRef ModuleIdentifier, GlobalValue::GUID GUID) {
1220     const auto &ExportList = ExportLists.find(ModuleIdentifier);
1221     return (ExportList != ExportLists.end() &&
1222             ExportList->second.count(GUID)) ||
1223            ExportedGUIDs.count(GUID);
1224   };
1225   thinLTOInternalizeAndPromoteInIndex(ThinLTO.CombinedIndex, isExported);
1226 
1227   auto isPrevailing = [&](GlobalValue::GUID GUID,
1228                           const GlobalValueSummary *S) {
1229     return ThinLTO.PrevailingModuleForGUID[GUID] == S->modulePath();
1230   };
1231   auto recordNewLinkage = [&](StringRef ModuleIdentifier,
1232                               GlobalValue::GUID GUID,
1233                               GlobalValue::LinkageTypes NewLinkage) {
1234     ResolvedODR[ModuleIdentifier][GUID] = NewLinkage;
1235   };
1236   thinLTOResolvePrevailingInIndex(ThinLTO.CombinedIndex, isPrevailing,
1237                                   recordNewLinkage);
1238 
1239   std::unique_ptr<ThinBackendProc> BackendProc =
1240       ThinLTO.Backend(Conf, ThinLTO.CombinedIndex, ModuleToDefinedGVSummaries,
1241                       AddStream, Cache);
1242 
1243   // Tasks 0 through ParallelCodeGenParallelismLevel-1 are reserved for combined
1244   // module and parallel code generation partitions.
1245   unsigned Task = RegularLTO.ParallelCodeGenParallelismLevel;
1246   for (auto &Mod : ThinLTO.ModuleMap) {
1247     if (Error E = BackendProc->start(Task, Mod.second, ImportLists[Mod.first],
1248                                      ExportLists[Mod.first],
1249                                      ResolvedODR[Mod.first], ThinLTO.ModuleMap))
1250       return E;
1251     ++Task;
1252   }
1253 
1254   return BackendProc->wait();
1255 }
1256 
1257 Expected<std::unique_ptr<ToolOutputFile>>
1258 lto::setupOptimizationRemarks(LLVMContext &Context,
1259                               StringRef LTORemarksFilename,
1260                               bool LTOPassRemarksWithHotness, int Count) {
1261   if (LTOPassRemarksWithHotness)
1262     Context.setDiagnosticsHotnessRequested(true);
1263   if (LTORemarksFilename.empty())
1264     return nullptr;
1265 
1266   std::string Filename = LTORemarksFilename;
1267   if (Count != -1)
1268     Filename += ".thin." + llvm::utostr(Count) + ".yaml";
1269 
1270   std::error_code EC;
1271   auto DiagnosticFile =
1272       llvm::make_unique<ToolOutputFile>(Filename, EC, sys::fs::F_None);
1273   if (EC)
1274     return errorCodeToError(EC);
1275   Context.setDiagnosticsOutputFile(
1276       llvm::make_unique<yaml::Output>(DiagnosticFile->os()));
1277   DiagnosticFile->keep();
1278   return std::move(DiagnosticFile);
1279 }
1280