1 //===-ThinLTOCodeGenerator.cpp - LLVM Link Time Optimizer -----------------===//
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 file implements the Thin Link Time Optimization library. This library is
10 // intended to be used by linker to optimize code at link time.
11 //
12 //===----------------------------------------------------------------------===//
13 
14 #include "llvm/LTO/legacy/ThinLTOCodeGenerator.h"
15 
16 #include "llvm/ADT/Statistic.h"
17 #include "llvm/ADT/StringExtras.h"
18 #include "llvm/Analysis/ModuleSummaryAnalysis.h"
19 #include "llvm/Analysis/ProfileSummaryInfo.h"
20 #include "llvm/Analysis/TargetLibraryInfo.h"
21 #include "llvm/Analysis/TargetTransformInfo.h"
22 #include "llvm/Bitcode/BitcodeReader.h"
23 #include "llvm/Bitcode/BitcodeWriter.h"
24 #include "llvm/Bitcode/BitcodeWriterPass.h"
25 #include "llvm/Config/llvm-config.h"
26 #include "llvm/IR/DebugInfo.h"
27 #include "llvm/IR/DiagnosticPrinter.h"
28 #include "llvm/IR/LLVMContext.h"
29 #include "llvm/IR/LegacyPassManager.h"
30 #include "llvm/IR/Mangler.h"
31 #include "llvm/IR/PassTimingInfo.h"
32 #include "llvm/IR/RemarkStreamer.h"
33 #include "llvm/IR/Verifier.h"
34 #include "llvm/IRReader/IRReader.h"
35 #include "llvm/LTO/LTO.h"
36 #include "llvm/LTO/SummaryBasedOptimizations.h"
37 #include "llvm/MC/SubtargetFeature.h"
38 #include "llvm/Object/IRObjectFile.h"
39 #include "llvm/Support/CachePruning.h"
40 #include "llvm/Support/Debug.h"
41 #include "llvm/Support/Error.h"
42 #include "llvm/Support/Path.h"
43 #include "llvm/Support/SHA1.h"
44 #include "llvm/Support/SmallVectorMemoryBuffer.h"
45 #include "llvm/Support/TargetRegistry.h"
46 #include "llvm/Support/ThreadPool.h"
47 #include "llvm/Support/Threading.h"
48 #include "llvm/Support/ToolOutputFile.h"
49 #include "llvm/Support/VCSRevision.h"
50 #include "llvm/Target/TargetMachine.h"
51 #include "llvm/Transforms/IPO.h"
52 #include "llvm/Transforms/IPO/FunctionImport.h"
53 #include "llvm/Transforms/IPO/Internalize.h"
54 #include "llvm/Transforms/IPO/PassManagerBuilder.h"
55 #include "llvm/Transforms/ObjCARC.h"
56 #include "llvm/Transforms/Utils/FunctionImportUtils.h"
57 
58 #include <numeric>
59 
60 #if !defined(_MSC_VER) && !defined(__MINGW32__)
61 #include <unistd.h>
62 #else
63 #include <io.h>
64 #endif
65 
66 using namespace llvm;
67 
68 #define DEBUG_TYPE "thinlto"
69 
70 namespace llvm {
71 // Flags -discard-value-names, defined in LTOCodeGenerator.cpp
72 extern cl::opt<bool> LTODiscardValueNames;
73 extern cl::opt<std::string> RemarksFilename;
74 extern cl::opt<std::string> RemarksPasses;
75 extern cl::opt<bool> RemarksWithHotness;
76 extern cl::opt<std::string> RemarksFormat;
77 }
78 
79 namespace {
80 
81 static cl::opt<int>
82     ThreadCount("threads", cl::init(llvm::heavyweight_hardware_concurrency()));
83 
84 // Simple helper to save temporary files for debug.
85 static void saveTempBitcode(const Module &TheModule, StringRef TempDir,
86                             unsigned count, StringRef Suffix) {
87   if (TempDir.empty())
88     return;
89   // User asked to save temps, let dump the bitcode file after import.
90   std::string SaveTempPath = (TempDir + llvm::Twine(count) + Suffix).str();
91   std::error_code EC;
92   raw_fd_ostream OS(SaveTempPath, EC, sys::fs::F_None);
93   if (EC)
94     report_fatal_error(Twine("Failed to open ") + SaveTempPath +
95                        " to save optimized bitcode\n");
96   WriteBitcodeToFile(TheModule, OS, /* ShouldPreserveUseListOrder */ true);
97 }
98 
99 static const GlobalValueSummary *
100 getFirstDefinitionForLinker(const GlobalValueSummaryList &GVSummaryList) {
101   // If there is any strong definition anywhere, get it.
102   auto StrongDefForLinker = llvm::find_if(
103       GVSummaryList, [](const std::unique_ptr<GlobalValueSummary> &Summary) {
104         auto Linkage = Summary->linkage();
105         return !GlobalValue::isAvailableExternallyLinkage(Linkage) &&
106                !GlobalValue::isWeakForLinker(Linkage);
107       });
108   if (StrongDefForLinker != GVSummaryList.end())
109     return StrongDefForLinker->get();
110   // Get the first *linker visible* definition for this global in the summary
111   // list.
112   auto FirstDefForLinker = llvm::find_if(
113       GVSummaryList, [](const std::unique_ptr<GlobalValueSummary> &Summary) {
114         auto Linkage = Summary->linkage();
115         return !GlobalValue::isAvailableExternallyLinkage(Linkage);
116       });
117   // Extern templates can be emitted as available_externally.
118   if (FirstDefForLinker == GVSummaryList.end())
119     return nullptr;
120   return FirstDefForLinker->get();
121 }
122 
123 // Populate map of GUID to the prevailing copy for any multiply defined
124 // symbols. Currently assume first copy is prevailing, or any strong
125 // definition. Can be refined with Linker information in the future.
126 static void computePrevailingCopies(
127     const ModuleSummaryIndex &Index,
128     DenseMap<GlobalValue::GUID, const GlobalValueSummary *> &PrevailingCopy) {
129   auto HasMultipleCopies = [&](const GlobalValueSummaryList &GVSummaryList) {
130     return GVSummaryList.size() > 1;
131   };
132 
133   for (auto &I : Index) {
134     if (HasMultipleCopies(I.second.SummaryList))
135       PrevailingCopy[I.first] =
136           getFirstDefinitionForLinker(I.second.SummaryList);
137   }
138 }
139 
140 static StringMap<lto::InputFile *>
141 generateModuleMap(std::vector<std::unique_ptr<lto::InputFile>> &Modules) {
142   StringMap<lto::InputFile *> ModuleMap;
143   for (auto &M : Modules) {
144     assert(ModuleMap.find(M->getName()) == ModuleMap.end() &&
145            "Expect unique Buffer Identifier");
146     ModuleMap[M->getName()] = M.get();
147   }
148   return ModuleMap;
149 }
150 
151 static void promoteModule(Module &TheModule, const ModuleSummaryIndex &Index) {
152   if (renameModuleForThinLTO(TheModule, Index))
153     report_fatal_error("renameModuleForThinLTO failed");
154 }
155 
156 namespace {
157 class ThinLTODiagnosticInfo : public DiagnosticInfo {
158   const Twine &Msg;
159 public:
160   ThinLTODiagnosticInfo(const Twine &DiagMsg,
161                         DiagnosticSeverity Severity = DS_Error)
162       : DiagnosticInfo(DK_Linker, Severity), Msg(DiagMsg) {}
163   void print(DiagnosticPrinter &DP) const override { DP << Msg; }
164 };
165 }
166 
167 /// Verify the module and strip broken debug info.
168 static void verifyLoadedModule(Module &TheModule) {
169   bool BrokenDebugInfo = false;
170   if (verifyModule(TheModule, &dbgs(), &BrokenDebugInfo))
171     report_fatal_error("Broken module found, compilation aborted!");
172   if (BrokenDebugInfo) {
173     TheModule.getContext().diagnose(ThinLTODiagnosticInfo(
174         "Invalid debug info found, debug info will be stripped", DS_Warning));
175     StripDebugInfo(TheModule);
176   }
177 }
178 
179 static std::unique_ptr<Module> loadModuleFromInput(lto::InputFile *Input,
180                                                    LLVMContext &Context,
181                                                    bool Lazy,
182                                                    bool IsImporting) {
183   auto &Mod = Input->getSingleBitcodeModule();
184   SMDiagnostic Err;
185   Expected<std::unique_ptr<Module>> ModuleOrErr =
186       Lazy ? Mod.getLazyModule(Context,
187                                /* ShouldLazyLoadMetadata */ true, IsImporting)
188            : Mod.parseModule(Context);
189   if (!ModuleOrErr) {
190     handleAllErrors(ModuleOrErr.takeError(), [&](ErrorInfoBase &EIB) {
191       SMDiagnostic Err = SMDiagnostic(Mod.getModuleIdentifier(),
192                                       SourceMgr::DK_Error, EIB.message());
193       Err.print("ThinLTO", errs());
194     });
195     report_fatal_error("Can't load module, abort.");
196   }
197   if (!Lazy)
198     verifyLoadedModule(*ModuleOrErr.get());
199   return std::move(*ModuleOrErr);
200 }
201 
202 static void
203 crossImportIntoModule(Module &TheModule, const ModuleSummaryIndex &Index,
204                       StringMap<lto::InputFile*> &ModuleMap,
205                       const FunctionImporter::ImportMapTy &ImportList) {
206   auto Loader = [&](StringRef Identifier) {
207     auto &Input = ModuleMap[Identifier];
208     return loadModuleFromInput(Input, TheModule.getContext(),
209                                /*Lazy=*/true, /*IsImporting*/ true);
210   };
211 
212   FunctionImporter Importer(Index, Loader);
213   Expected<bool> Result = Importer.importFunctions(TheModule, ImportList);
214   if (!Result) {
215     handleAllErrors(Result.takeError(), [&](ErrorInfoBase &EIB) {
216       SMDiagnostic Err = SMDiagnostic(TheModule.getModuleIdentifier(),
217                                       SourceMgr::DK_Error, EIB.message());
218       Err.print("ThinLTO", errs());
219     });
220     report_fatal_error("importFunctions failed");
221   }
222   // Verify again after cross-importing.
223   verifyLoadedModule(TheModule);
224 }
225 
226 static void optimizeModule(Module &TheModule, TargetMachine &TM,
227                            unsigned OptLevel, bool Freestanding) {
228   // Populate the PassManager
229   PassManagerBuilder PMB;
230   PMB.LibraryInfo = new TargetLibraryInfoImpl(TM.getTargetTriple());
231   if (Freestanding)
232     PMB.LibraryInfo->disableAllFunctions();
233   PMB.Inliner = createFunctionInliningPass();
234   // FIXME: should get it from the bitcode?
235   PMB.OptLevel = OptLevel;
236   PMB.LoopVectorize = true;
237   PMB.SLPVectorize = true;
238   // Already did this in verifyLoadedModule().
239   PMB.VerifyInput = false;
240   PMB.VerifyOutput = false;
241 
242   legacy::PassManager PM;
243 
244   // Add the TTI (required to inform the vectorizer about register size for
245   // instance)
246   PM.add(createTargetTransformInfoWrapperPass(TM.getTargetIRAnalysis()));
247 
248   // Add optimizations
249   PMB.populateThinLTOPassManager(PM);
250 
251   PM.run(TheModule);
252 }
253 
254 static void
255 addUsedSymbolToPreservedGUID(const lto::InputFile &File,
256                              DenseSet<GlobalValue::GUID> &PreservedGUID) {
257   for (const auto &Sym : File.symbols()) {
258     if (Sym.isUsed())
259       PreservedGUID.insert(GlobalValue::getGUID(Sym.getIRName()));
260   }
261 }
262 
263 // Convert the PreservedSymbols map from "Name" based to "GUID" based.
264 static DenseSet<GlobalValue::GUID>
265 computeGUIDPreservedSymbols(const StringSet<> &PreservedSymbols,
266                             const Triple &TheTriple) {
267   DenseSet<GlobalValue::GUID> GUIDPreservedSymbols(PreservedSymbols.size());
268   for (auto &Entry : PreservedSymbols) {
269     StringRef Name = Entry.first();
270     if (TheTriple.isOSBinFormatMachO() && Name.size() > 0 && Name[0] == '_')
271       Name = Name.drop_front();
272     GUIDPreservedSymbols.insert(GlobalValue::getGUID(Name));
273   }
274   return GUIDPreservedSymbols;
275 }
276 
277 std::unique_ptr<MemoryBuffer> codegenModule(Module &TheModule,
278                                             TargetMachine &TM) {
279   SmallVector<char, 128> OutputBuffer;
280 
281   // CodeGen
282   {
283     raw_svector_ostream OS(OutputBuffer);
284     legacy::PassManager PM;
285 
286     // If the bitcode files contain ARC code and were compiled with optimization,
287     // the ObjCARCContractPass must be run, so do it unconditionally here.
288     PM.add(createObjCARCContractPass());
289 
290     // Setup the codegen now.
291     if (TM.addPassesToEmitFile(PM, OS, nullptr, TargetMachine::CGFT_ObjectFile,
292                                /* DisableVerify */ true))
293       report_fatal_error("Failed to setup codegen");
294 
295     // Run codegen now. resulting binary is in OutputBuffer.
296     PM.run(TheModule);
297   }
298   return make_unique<SmallVectorMemoryBuffer>(std::move(OutputBuffer));
299 }
300 
301 /// Manage caching for a single Module.
302 class ModuleCacheEntry {
303   SmallString<128> EntryPath;
304 
305 public:
306   // Create a cache entry. This compute a unique hash for the Module considering
307   // the current list of export/import, and offer an interface to query to
308   // access the content in the cache.
309   ModuleCacheEntry(
310       StringRef CachePath, const ModuleSummaryIndex &Index, StringRef ModuleID,
311       const FunctionImporter::ImportMapTy &ImportList,
312       const FunctionImporter::ExportSetTy &ExportList,
313       const std::map<GlobalValue::GUID, GlobalValue::LinkageTypes> &ResolvedODR,
314       const GVSummaryMapTy &DefinedGVSummaries, unsigned OptLevel,
315       bool Freestanding, const TargetMachineBuilder &TMBuilder) {
316     if (CachePath.empty())
317       return;
318 
319     if (!Index.modulePaths().count(ModuleID))
320       // The module does not have an entry, it can't have a hash at all
321       return;
322 
323     if (all_of(Index.getModuleHash(ModuleID),
324                [](uint32_t V) { return V == 0; }))
325       // No hash entry, no caching!
326       return;
327 
328     llvm::lto::Config Conf;
329     Conf.OptLevel = OptLevel;
330     Conf.Options = TMBuilder.Options;
331     Conf.CPU = TMBuilder.MCpu;
332     Conf.MAttrs.push_back(TMBuilder.MAttr);
333     Conf.RelocModel = TMBuilder.RelocModel;
334     Conf.CGOptLevel = TMBuilder.CGOptLevel;
335     Conf.Freestanding = Freestanding;
336     SmallString<40> Key;
337     computeLTOCacheKey(Key, Conf, Index, ModuleID, ImportList, ExportList,
338                        ResolvedODR, DefinedGVSummaries);
339 
340     // This choice of file name allows the cache to be pruned (see pruneCache()
341     // in include/llvm/Support/CachePruning.h).
342     sys::path::append(EntryPath, CachePath, "llvmcache-" + Key);
343   }
344 
345   // Access the path to this entry in the cache.
346   StringRef getEntryPath() { return EntryPath; }
347 
348   // Try loading the buffer for this cache entry.
349   ErrorOr<std::unique_ptr<MemoryBuffer>> tryLoadingBuffer() {
350     if (EntryPath.empty())
351       return std::error_code();
352     int FD;
353     SmallString<64> ResultPath;
354     std::error_code EC = sys::fs::openFileForRead(
355         Twine(EntryPath), FD, sys::fs::OF_UpdateAtime, &ResultPath);
356     if (EC)
357       return EC;
358     ErrorOr<std::unique_ptr<MemoryBuffer>> MBOrErr =
359         MemoryBuffer::getOpenFile(FD, EntryPath,
360                                   /*FileSize*/ -1,
361                                   /*RequiresNullTerminator*/ false);
362     close(FD);
363     return MBOrErr;
364   }
365 
366   // Cache the Produced object file
367   void write(const MemoryBuffer &OutputBuffer) {
368     if (EntryPath.empty())
369       return;
370 
371     // Write to a temporary to avoid race condition
372     SmallString<128> TempFilename;
373     SmallString<128> CachePath(EntryPath);
374     int TempFD;
375     llvm::sys::path::remove_filename(CachePath);
376     sys::path::append(TempFilename, CachePath, "Thin-%%%%%%.tmp.o");
377     std::error_code EC =
378       sys::fs::createUniqueFile(TempFilename, TempFD, TempFilename);
379     if (EC) {
380       errs() << "Error: " << EC.message() << "\n";
381       report_fatal_error("ThinLTO: Can't get a temporary file");
382     }
383     {
384       raw_fd_ostream OS(TempFD, /* ShouldClose */ true);
385       OS << OutputBuffer.getBuffer();
386     }
387     // Rename temp file to final destination; rename is atomic
388     EC = sys::fs::rename(TempFilename, EntryPath);
389     if (EC)
390       sys::fs::remove(TempFilename);
391   }
392 };
393 
394 static std::unique_ptr<MemoryBuffer>
395 ProcessThinLTOModule(Module &TheModule, ModuleSummaryIndex &Index,
396                      StringMap<lto::InputFile *> &ModuleMap, TargetMachine &TM,
397                      const FunctionImporter::ImportMapTy &ImportList,
398                      const FunctionImporter::ExportSetTy &ExportList,
399                      const DenseSet<GlobalValue::GUID> &GUIDPreservedSymbols,
400                      const GVSummaryMapTy &DefinedGlobals,
401                      const ThinLTOCodeGenerator::CachingOptions &CacheOptions,
402                      bool DisableCodeGen, StringRef SaveTempsDir,
403                      bool Freestanding, unsigned OptLevel, unsigned count) {
404 
405   // "Benchmark"-like optimization: single-source case
406   bool SingleModule = (ModuleMap.size() == 1);
407 
408   if (!SingleModule) {
409     promoteModule(TheModule, Index);
410 
411     // Apply summary-based prevailing-symbol resolution decisions.
412     thinLTOResolvePrevailingInModule(TheModule, DefinedGlobals);
413 
414     // Save temps: after promotion.
415     saveTempBitcode(TheModule, SaveTempsDir, count, ".1.promoted.bc");
416   }
417 
418   // Be friendly and don't nuke totally the module when the client didn't
419   // supply anything to preserve.
420   if (!ExportList.empty() || !GUIDPreservedSymbols.empty()) {
421     // Apply summary-based internalization decisions.
422     thinLTOInternalizeModule(TheModule, DefinedGlobals);
423   }
424 
425   // Save internalized bitcode
426   saveTempBitcode(TheModule, SaveTempsDir, count, ".2.internalized.bc");
427 
428   if (!SingleModule) {
429     crossImportIntoModule(TheModule, Index, ModuleMap, ImportList);
430 
431     // Save temps: after cross-module import.
432     saveTempBitcode(TheModule, SaveTempsDir, count, ".3.imported.bc");
433   }
434 
435   optimizeModule(TheModule, TM, OptLevel, Freestanding);
436 
437   saveTempBitcode(TheModule, SaveTempsDir, count, ".4.opt.bc");
438 
439   if (DisableCodeGen) {
440     // Configured to stop before CodeGen, serialize the bitcode and return.
441     SmallVector<char, 128> OutputBuffer;
442     {
443       raw_svector_ostream OS(OutputBuffer);
444       ProfileSummaryInfo PSI(TheModule);
445       auto Index = buildModuleSummaryIndex(TheModule, nullptr, &PSI);
446       WriteBitcodeToFile(TheModule, OS, true, &Index);
447     }
448     return make_unique<SmallVectorMemoryBuffer>(std::move(OutputBuffer));
449   }
450 
451   return codegenModule(TheModule, TM);
452 }
453 
454 /// Resolve prevailing symbols. Record resolutions in the \p ResolvedODR map
455 /// for caching, and in the \p Index for application during the ThinLTO
456 /// backends. This is needed for correctness for exported symbols (ensure
457 /// at least one copy kept) and a compile-time optimization (to drop duplicate
458 /// copies when possible).
459 static void resolvePrevailingInIndex(
460     ModuleSummaryIndex &Index,
461     StringMap<std::map<GlobalValue::GUID, GlobalValue::LinkageTypes>>
462         &ResolvedODR,
463     const DenseSet<GlobalValue::GUID> &GUIDPreservedSymbols) {
464 
465   DenseMap<GlobalValue::GUID, const GlobalValueSummary *> PrevailingCopy;
466   computePrevailingCopies(Index, PrevailingCopy);
467 
468   auto isPrevailing = [&](GlobalValue::GUID GUID, const GlobalValueSummary *S) {
469     const auto &Prevailing = PrevailingCopy.find(GUID);
470     // Not in map means that there was only one copy, which must be prevailing.
471     if (Prevailing == PrevailingCopy.end())
472       return true;
473     return Prevailing->second == S;
474   };
475 
476   auto recordNewLinkage = [&](StringRef ModuleIdentifier,
477                               GlobalValue::GUID GUID,
478                               GlobalValue::LinkageTypes NewLinkage) {
479     ResolvedODR[ModuleIdentifier][GUID] = NewLinkage;
480   };
481 
482   thinLTOResolvePrevailingInIndex(Index, isPrevailing, recordNewLinkage,
483                                   GUIDPreservedSymbols);
484 }
485 
486 // Initialize the TargetMachine builder for a given Triple
487 static void initTMBuilder(TargetMachineBuilder &TMBuilder,
488                           const Triple &TheTriple) {
489   // Set a default CPU for Darwin triples (copied from LTOCodeGenerator).
490   // FIXME this looks pretty terrible...
491   if (TMBuilder.MCpu.empty() && TheTriple.isOSDarwin()) {
492     if (TheTriple.getArch() == llvm::Triple::x86_64)
493       TMBuilder.MCpu = "core2";
494     else if (TheTriple.getArch() == llvm::Triple::x86)
495       TMBuilder.MCpu = "yonah";
496     else if (TheTriple.getArch() == llvm::Triple::aarch64)
497       TMBuilder.MCpu = "cyclone";
498   }
499   TMBuilder.TheTriple = std::move(TheTriple);
500 }
501 
502 } // end anonymous namespace
503 
504 void ThinLTOCodeGenerator::addModule(StringRef Identifier, StringRef Data) {
505   MemoryBufferRef Buffer(Data, Identifier);
506 
507   auto InputOrError = lto::InputFile::create(Buffer);
508   if (!InputOrError)
509     report_fatal_error("ThinLTO cannot create input file: " +
510                        toString(InputOrError.takeError()));
511 
512   auto TripleStr = (*InputOrError)->getTargetTriple();
513   Triple TheTriple(TripleStr);
514 
515   if (Modules.empty())
516     initTMBuilder(TMBuilder, Triple(TheTriple));
517   else if (TMBuilder.TheTriple != TheTriple) {
518     if (!TMBuilder.TheTriple.isCompatibleWith(TheTriple))
519       report_fatal_error("ThinLTO modules with incompatible triples not "
520                          "supported");
521     initTMBuilder(TMBuilder, Triple(TMBuilder.TheTriple.merge(TheTriple)));
522   }
523 
524   Modules.emplace_back(std::move(*InputOrError));
525 }
526 
527 void ThinLTOCodeGenerator::preserveSymbol(StringRef Name) {
528   PreservedSymbols.insert(Name);
529 }
530 
531 void ThinLTOCodeGenerator::crossReferenceSymbol(StringRef Name) {
532   // FIXME: At the moment, we don't take advantage of this extra information,
533   // we're conservatively considering cross-references as preserved.
534   //  CrossReferencedSymbols.insert(Name);
535   PreservedSymbols.insert(Name);
536 }
537 
538 // TargetMachine factory
539 std::unique_ptr<TargetMachine> TargetMachineBuilder::create() const {
540   std::string ErrMsg;
541   const Target *TheTarget =
542       TargetRegistry::lookupTarget(TheTriple.str(), ErrMsg);
543   if (!TheTarget) {
544     report_fatal_error("Can't load target for this Triple: " + ErrMsg);
545   }
546 
547   // Use MAttr as the default set of features.
548   SubtargetFeatures Features(MAttr);
549   Features.getDefaultSubtargetFeatures(TheTriple);
550   std::string FeatureStr = Features.getString();
551 
552   return std::unique_ptr<TargetMachine>(
553       TheTarget->createTargetMachine(TheTriple.str(), MCpu, FeatureStr, Options,
554                                      RelocModel, None, CGOptLevel));
555 }
556 
557 /**
558  * Produce the combined summary index from all the bitcode files:
559  * "thin-link".
560  */
561 std::unique_ptr<ModuleSummaryIndex> ThinLTOCodeGenerator::linkCombinedIndex() {
562   std::unique_ptr<ModuleSummaryIndex> CombinedIndex =
563       llvm::make_unique<ModuleSummaryIndex>(/*HaveGVs=*/false);
564   uint64_t NextModuleId = 0;
565   for (auto &Mod : Modules) {
566     auto &M = Mod->getSingleBitcodeModule();
567     if (Error Err =
568             M.readSummary(*CombinedIndex, Mod->getName(), NextModuleId++)) {
569       // FIXME diagnose
570       logAllUnhandledErrors(
571           std::move(Err), errs(),
572           "error: can't create module summary index for buffer: ");
573       return nullptr;
574     }
575   }
576   return CombinedIndex;
577 }
578 
579 static void internalizeAndPromoteInIndex(
580     const StringMap<FunctionImporter::ExportSetTy> &ExportLists,
581     const DenseSet<GlobalValue::GUID> &GUIDPreservedSymbols,
582     ModuleSummaryIndex &Index) {
583   auto isExported = [&](StringRef ModuleIdentifier, GlobalValue::GUID GUID) {
584     const auto &ExportList = ExportLists.find(ModuleIdentifier);
585     return (ExportList != ExportLists.end() &&
586             ExportList->second.count(GUID)) ||
587            GUIDPreservedSymbols.count(GUID);
588   };
589 
590   thinLTOInternalizeAndPromoteInIndex(Index, isExported);
591 }
592 
593 static void computeDeadSymbolsInIndex(
594     ModuleSummaryIndex &Index,
595     const DenseSet<GlobalValue::GUID> &GUIDPreservedSymbols) {
596   // We have no symbols resolution available. And can't do any better now in the
597   // case where the prevailing symbol is in a native object. It can be refined
598   // with linker information in the future.
599   auto isPrevailing = [&](GlobalValue::GUID G) {
600     return PrevailingType::Unknown;
601   };
602   computeDeadSymbolsWithConstProp(Index, GUIDPreservedSymbols, isPrevailing,
603                                   /* ImportEnabled = */ true);
604 }
605 
606 /**
607  * Perform promotion and renaming of exported internal functions.
608  * Index is updated to reflect linkage changes from weak resolution.
609  */
610 void ThinLTOCodeGenerator::promote(Module &TheModule, ModuleSummaryIndex &Index,
611                                    const lto::InputFile &File) {
612   auto ModuleCount = Index.modulePaths().size();
613   auto ModuleIdentifier = TheModule.getModuleIdentifier();
614 
615   // Collect for each module the list of function it defines (GUID -> Summary).
616   StringMap<GVSummaryMapTy> ModuleToDefinedGVSummaries;
617   Index.collectDefinedGVSummariesPerModule(ModuleToDefinedGVSummaries);
618 
619   // Convert the preserved symbols set from string to GUID
620   auto GUIDPreservedSymbols = computeGUIDPreservedSymbols(
621       PreservedSymbols, Triple(TheModule.getTargetTriple()));
622 
623   // Add used symbol to the preserved symbols.
624   addUsedSymbolToPreservedGUID(File, GUIDPreservedSymbols);
625 
626   // Compute "dead" symbols, we don't want to import/export these!
627   computeDeadSymbolsInIndex(Index, GUIDPreservedSymbols);
628 
629   // Generate import/export list
630   StringMap<FunctionImporter::ImportMapTy> ImportLists(ModuleCount);
631   StringMap<FunctionImporter::ExportSetTy> ExportLists(ModuleCount);
632   ComputeCrossModuleImport(Index, ModuleToDefinedGVSummaries, ImportLists,
633                            ExportLists);
634 
635   // Resolve prevailing symbols
636   StringMap<std::map<GlobalValue::GUID, GlobalValue::LinkageTypes>> ResolvedODR;
637   resolvePrevailingInIndex(Index, ResolvedODR, GUIDPreservedSymbols);
638 
639   thinLTOResolvePrevailingInModule(
640       TheModule, ModuleToDefinedGVSummaries[ModuleIdentifier]);
641 
642   // Promote the exported values in the index, so that they are promoted
643   // in the module.
644   internalizeAndPromoteInIndex(ExportLists, GUIDPreservedSymbols, Index);
645 
646   promoteModule(TheModule, Index);
647 }
648 
649 /**
650  * Perform cross-module importing for the module identified by ModuleIdentifier.
651  */
652 void ThinLTOCodeGenerator::crossModuleImport(Module &TheModule,
653                                              ModuleSummaryIndex &Index,
654                                              const lto::InputFile &File) {
655   auto ModuleMap = generateModuleMap(Modules);
656   auto ModuleCount = Index.modulePaths().size();
657 
658   // Collect for each module the list of function it defines (GUID -> Summary).
659   StringMap<GVSummaryMapTy> ModuleToDefinedGVSummaries(ModuleCount);
660   Index.collectDefinedGVSummariesPerModule(ModuleToDefinedGVSummaries);
661 
662   // Convert the preserved symbols set from string to GUID
663   auto GUIDPreservedSymbols = computeGUIDPreservedSymbols(
664       PreservedSymbols, Triple(TheModule.getTargetTriple()));
665 
666   addUsedSymbolToPreservedGUID(File, GUIDPreservedSymbols);
667 
668   // Compute "dead" symbols, we don't want to import/export these!
669   computeDeadSymbolsInIndex(Index, GUIDPreservedSymbols);
670 
671   // Generate import/export list
672   StringMap<FunctionImporter::ImportMapTy> ImportLists(ModuleCount);
673   StringMap<FunctionImporter::ExportSetTy> ExportLists(ModuleCount);
674   ComputeCrossModuleImport(Index, ModuleToDefinedGVSummaries, ImportLists,
675                            ExportLists);
676   auto &ImportList = ImportLists[TheModule.getModuleIdentifier()];
677 
678   crossImportIntoModule(TheModule, Index, ModuleMap, ImportList);
679 }
680 
681 /**
682  * Compute the list of summaries needed for importing into module.
683  */
684 void ThinLTOCodeGenerator::gatherImportedSummariesForModule(
685     Module &TheModule, ModuleSummaryIndex &Index,
686     std::map<std::string, GVSummaryMapTy> &ModuleToSummariesForIndex,
687     const lto::InputFile &File) {
688   auto ModuleCount = Index.modulePaths().size();
689   auto ModuleIdentifier = TheModule.getModuleIdentifier();
690 
691   // Collect for each module the list of function it defines (GUID -> Summary).
692   StringMap<GVSummaryMapTy> ModuleToDefinedGVSummaries(ModuleCount);
693   Index.collectDefinedGVSummariesPerModule(ModuleToDefinedGVSummaries);
694 
695   // Convert the preserved symbols set from string to GUID
696   auto GUIDPreservedSymbols = computeGUIDPreservedSymbols(
697       PreservedSymbols, Triple(TheModule.getTargetTriple()));
698 
699   addUsedSymbolToPreservedGUID(File, GUIDPreservedSymbols);
700 
701   // Compute "dead" symbols, we don't want to import/export these!
702   computeDeadSymbolsInIndex(Index, GUIDPreservedSymbols);
703 
704   // Generate import/export list
705   StringMap<FunctionImporter::ImportMapTy> ImportLists(ModuleCount);
706   StringMap<FunctionImporter::ExportSetTy> ExportLists(ModuleCount);
707   ComputeCrossModuleImport(Index, ModuleToDefinedGVSummaries, ImportLists,
708                            ExportLists);
709 
710   llvm::gatherImportedSummariesForModule(
711       ModuleIdentifier, ModuleToDefinedGVSummaries,
712       ImportLists[ModuleIdentifier], ModuleToSummariesForIndex);
713 }
714 
715 /**
716  * Emit the list of files needed for importing into module.
717  */
718 void ThinLTOCodeGenerator::emitImports(Module &TheModule, StringRef OutputName,
719                                        ModuleSummaryIndex &Index,
720                                        const lto::InputFile &File) {
721   auto ModuleCount = Index.modulePaths().size();
722   auto ModuleIdentifier = TheModule.getModuleIdentifier();
723 
724   // Collect for each module the list of function it defines (GUID -> Summary).
725   StringMap<GVSummaryMapTy> ModuleToDefinedGVSummaries(ModuleCount);
726   Index.collectDefinedGVSummariesPerModule(ModuleToDefinedGVSummaries);
727 
728   // Convert the preserved symbols set from string to GUID
729   auto GUIDPreservedSymbols = computeGUIDPreservedSymbols(
730       PreservedSymbols, Triple(TheModule.getTargetTriple()));
731 
732   addUsedSymbolToPreservedGUID(File, GUIDPreservedSymbols);
733 
734   // Compute "dead" symbols, we don't want to import/export these!
735   computeDeadSymbolsInIndex(Index, GUIDPreservedSymbols);
736 
737   // Generate import/export list
738   StringMap<FunctionImporter::ImportMapTy> ImportLists(ModuleCount);
739   StringMap<FunctionImporter::ExportSetTy> ExportLists(ModuleCount);
740   ComputeCrossModuleImport(Index, ModuleToDefinedGVSummaries, ImportLists,
741                            ExportLists);
742 
743   std::map<std::string, GVSummaryMapTy> ModuleToSummariesForIndex;
744   llvm::gatherImportedSummariesForModule(
745       ModuleIdentifier, ModuleToDefinedGVSummaries,
746       ImportLists[ModuleIdentifier], ModuleToSummariesForIndex);
747 
748   std::error_code EC;
749   if ((EC = EmitImportsFiles(ModuleIdentifier, OutputName,
750                              ModuleToSummariesForIndex)))
751     report_fatal_error(Twine("Failed to open ") + OutputName +
752                        " to save imports lists\n");
753 }
754 
755 /**
756  * Perform internalization. Runs promote and internalization together.
757  * Index is updated to reflect linkage changes.
758  */
759 void ThinLTOCodeGenerator::internalize(Module &TheModule,
760                                        ModuleSummaryIndex &Index,
761                                        const lto::InputFile &File) {
762   initTMBuilder(TMBuilder, Triple(TheModule.getTargetTriple()));
763   auto ModuleCount = Index.modulePaths().size();
764   auto ModuleIdentifier = TheModule.getModuleIdentifier();
765 
766   // Convert the preserved symbols set from string to GUID
767   auto GUIDPreservedSymbols =
768       computeGUIDPreservedSymbols(PreservedSymbols, TMBuilder.TheTriple);
769 
770   addUsedSymbolToPreservedGUID(File, GUIDPreservedSymbols);
771 
772   // Collect for each module the list of function it defines (GUID -> Summary).
773   StringMap<GVSummaryMapTy> ModuleToDefinedGVSummaries(ModuleCount);
774   Index.collectDefinedGVSummariesPerModule(ModuleToDefinedGVSummaries);
775 
776   // Compute "dead" symbols, we don't want to import/export these!
777   computeDeadSymbolsInIndex(Index, GUIDPreservedSymbols);
778 
779   // Generate import/export list
780   StringMap<FunctionImporter::ImportMapTy> ImportLists(ModuleCount);
781   StringMap<FunctionImporter::ExportSetTy> ExportLists(ModuleCount);
782   ComputeCrossModuleImport(Index, ModuleToDefinedGVSummaries, ImportLists,
783                            ExportLists);
784   auto &ExportList = ExportLists[ModuleIdentifier];
785 
786   // Be friendly and don't nuke totally the module when the client didn't
787   // supply anything to preserve.
788   if (ExportList.empty() && GUIDPreservedSymbols.empty())
789     return;
790 
791   // Resolve prevailing symbols
792   StringMap<std::map<GlobalValue::GUID, GlobalValue::LinkageTypes>> ResolvedODR;
793   resolvePrevailingInIndex(Index, ResolvedODR, GUIDPreservedSymbols);
794 
795   // Promote the exported values in the index, so that they are promoted
796   // in the module.
797   internalizeAndPromoteInIndex(ExportLists, GUIDPreservedSymbols, Index);
798 
799   promoteModule(TheModule, Index);
800 
801   // Internalization
802   thinLTOResolvePrevailingInModule(
803       TheModule, ModuleToDefinedGVSummaries[ModuleIdentifier]);
804 
805   thinLTOInternalizeModule(TheModule,
806                            ModuleToDefinedGVSummaries[ModuleIdentifier]);
807 }
808 
809 /**
810  * Perform post-importing ThinLTO optimizations.
811  */
812 void ThinLTOCodeGenerator::optimize(Module &TheModule) {
813   initTMBuilder(TMBuilder, Triple(TheModule.getTargetTriple()));
814 
815   // Optimize now
816   optimizeModule(TheModule, *TMBuilder.create(), OptLevel, Freestanding);
817 }
818 
819 /// Write out the generated object file, either from CacheEntryPath or from
820 /// OutputBuffer, preferring hard-link when possible.
821 /// Returns the path to the generated file in SavedObjectsDirectoryPath.
822 std::string
823 ThinLTOCodeGenerator::writeGeneratedObject(int count, StringRef CacheEntryPath,
824                                            const MemoryBuffer &OutputBuffer) {
825   auto ArchName = TMBuilder.TheTriple.getArchName();
826   SmallString<128> OutputPath(SavedObjectsDirectoryPath);
827   llvm::sys::path::append(OutputPath,
828                           Twine(count) + "." + ArchName + ".thinlto.o");
829   OutputPath.c_str(); // Ensure the string is null terminated.
830   if (sys::fs::exists(OutputPath))
831     sys::fs::remove(OutputPath);
832 
833   // We don't return a memory buffer to the linker, just a list of files.
834   if (!CacheEntryPath.empty()) {
835     // Cache is enabled, hard-link the entry (or copy if hard-link fails).
836     auto Err = sys::fs::create_hard_link(CacheEntryPath, OutputPath);
837     if (!Err)
838       return OutputPath.str();
839     // Hard linking failed, try to copy.
840     Err = sys::fs::copy_file(CacheEntryPath, OutputPath);
841     if (!Err)
842       return OutputPath.str();
843     // Copy failed (could be because the CacheEntry was removed from the cache
844     // in the meantime by another process), fall back and try to write down the
845     // buffer to the output.
846     errs() << "error: can't link or copy from cached entry '" << CacheEntryPath
847            << "' to '" << OutputPath << "'\n";
848   }
849   // No cache entry, just write out the buffer.
850   std::error_code Err;
851   raw_fd_ostream OS(OutputPath, Err, sys::fs::F_None);
852   if (Err)
853     report_fatal_error("Can't open output '" + OutputPath + "'\n");
854   OS << OutputBuffer.getBuffer();
855   return OutputPath.str();
856 }
857 
858 // Main entry point for the ThinLTO processing
859 void ThinLTOCodeGenerator::run() {
860   // Prepare the resulting object vector
861   assert(ProducedBinaries.empty() && "The generator should not be reused");
862   if (SavedObjectsDirectoryPath.empty())
863     ProducedBinaries.resize(Modules.size());
864   else {
865     sys::fs::create_directories(SavedObjectsDirectoryPath);
866     bool IsDir;
867     sys::fs::is_directory(SavedObjectsDirectoryPath, IsDir);
868     if (!IsDir)
869       report_fatal_error("Unexistent dir: '" + SavedObjectsDirectoryPath + "'");
870     ProducedBinaryFiles.resize(Modules.size());
871   }
872 
873   if (CodeGenOnly) {
874     // Perform only parallel codegen and return.
875     ThreadPool Pool;
876     int count = 0;
877     for (auto &Mod : Modules) {
878       Pool.async([&](int count) {
879         LLVMContext Context;
880         Context.setDiscardValueNames(LTODiscardValueNames);
881 
882         // Parse module now
883         auto TheModule = loadModuleFromInput(Mod.get(), Context, false,
884                                              /*IsImporting*/ false);
885 
886         // CodeGen
887         auto OutputBuffer = codegenModule(*TheModule, *TMBuilder.create());
888         if (SavedObjectsDirectoryPath.empty())
889           ProducedBinaries[count] = std::move(OutputBuffer);
890         else
891           ProducedBinaryFiles[count] =
892               writeGeneratedObject(count, "", *OutputBuffer);
893       }, count++);
894     }
895 
896     return;
897   }
898 
899   // Sequential linking phase
900   auto Index = linkCombinedIndex();
901 
902   // Save temps: index.
903   if (!SaveTempsDir.empty()) {
904     auto SaveTempPath = SaveTempsDir + "index.bc";
905     std::error_code EC;
906     raw_fd_ostream OS(SaveTempPath, EC, sys::fs::F_None);
907     if (EC)
908       report_fatal_error(Twine("Failed to open ") + SaveTempPath +
909                          " to save optimized bitcode\n");
910     WriteIndexToFile(*Index, OS);
911   }
912 
913 
914   // Prepare the module map.
915   auto ModuleMap = generateModuleMap(Modules);
916   auto ModuleCount = Modules.size();
917 
918   // Collect for each module the list of function it defines (GUID -> Summary).
919   StringMap<GVSummaryMapTy> ModuleToDefinedGVSummaries(ModuleCount);
920   Index->collectDefinedGVSummariesPerModule(ModuleToDefinedGVSummaries);
921 
922   // Convert the preserved symbols set from string to GUID, this is needed for
923   // computing the caching hash and the internalization.
924   auto GUIDPreservedSymbols =
925       computeGUIDPreservedSymbols(PreservedSymbols, TMBuilder.TheTriple);
926 
927   // Add used symbol from inputs to the preserved symbols.
928   for (const auto &M : Modules)
929     addUsedSymbolToPreservedGUID(*M, GUIDPreservedSymbols);
930 
931   // Compute "dead" symbols, we don't want to import/export these!
932   computeDeadSymbolsInIndex(*Index, GUIDPreservedSymbols);
933 
934   // Synthesize entry counts for functions in the combined index.
935   computeSyntheticCounts(*Index);
936 
937   // Collect the import/export lists for all modules from the call-graph in the
938   // combined index.
939   StringMap<FunctionImporter::ImportMapTy> ImportLists(ModuleCount);
940   StringMap<FunctionImporter::ExportSetTy> ExportLists(ModuleCount);
941   ComputeCrossModuleImport(*Index, ModuleToDefinedGVSummaries, ImportLists,
942                            ExportLists);
943 
944   // We use a std::map here to be able to have a defined ordering when
945   // producing a hash for the cache entry.
946   // FIXME: we should be able to compute the caching hash for the entry based
947   // on the index, and nuke this map.
948   StringMap<std::map<GlobalValue::GUID, GlobalValue::LinkageTypes>> ResolvedODR;
949 
950   // Resolve prevailing symbols, this has to be computed early because it
951   // impacts the caching.
952   resolvePrevailingInIndex(*Index, ResolvedODR, GUIDPreservedSymbols);
953 
954   // Use global summary-based analysis to identify symbols that can be
955   // internalized (because they aren't exported or preserved as per callback).
956   // Changes are made in the index, consumed in the ThinLTO backends.
957   internalizeAndPromoteInIndex(ExportLists, GUIDPreservedSymbols, *Index);
958 
959   // Make sure that every module has an entry in the ExportLists, ImportList,
960   // GVSummary and ResolvedODR maps to enable threaded access to these maps
961   // below.
962   for (auto &Module : Modules) {
963     auto ModuleIdentifier = Module->getName();
964     ExportLists[ModuleIdentifier];
965     ImportLists[ModuleIdentifier];
966     ResolvedODR[ModuleIdentifier];
967     ModuleToDefinedGVSummaries[ModuleIdentifier];
968   }
969 
970   // Compute the ordering we will process the inputs: the rough heuristic here
971   // is to sort them per size so that the largest module get schedule as soon as
972   // possible. This is purely a compile-time optimization.
973   std::vector<int> ModulesOrdering;
974   ModulesOrdering.resize(Modules.size());
975   std::iota(ModulesOrdering.begin(), ModulesOrdering.end(), 0);
976   llvm::sort(ModulesOrdering, [&](int LeftIndex, int RightIndex) {
977     auto LSize =
978         Modules[LeftIndex]->getSingleBitcodeModule().getBuffer().size();
979     auto RSize =
980         Modules[RightIndex]->getSingleBitcodeModule().getBuffer().size();
981     return LSize > RSize;
982   });
983 
984   // Parallel optimizer + codegen
985   {
986     ThreadPool Pool(ThreadCount);
987     for (auto IndexCount : ModulesOrdering) {
988       auto &Mod = Modules[IndexCount];
989       Pool.async([&](int count) {
990         auto ModuleIdentifier = Mod->getName();
991         auto &ExportList = ExportLists[ModuleIdentifier];
992 
993         auto &DefinedGVSummaries = ModuleToDefinedGVSummaries[ModuleIdentifier];
994 
995         // The module may be cached, this helps handling it.
996         ModuleCacheEntry CacheEntry(CacheOptions.Path, *Index, ModuleIdentifier,
997                                     ImportLists[ModuleIdentifier], ExportList,
998                                     ResolvedODR[ModuleIdentifier],
999                                     DefinedGVSummaries, OptLevel, Freestanding,
1000                                     TMBuilder);
1001         auto CacheEntryPath = CacheEntry.getEntryPath();
1002 
1003         {
1004           auto ErrOrBuffer = CacheEntry.tryLoadingBuffer();
1005           LLVM_DEBUG(dbgs() << "Cache " << (ErrOrBuffer ? "hit" : "miss")
1006                             << " '" << CacheEntryPath << "' for buffer "
1007                             << count << " " << ModuleIdentifier << "\n");
1008 
1009           if (ErrOrBuffer) {
1010             // Cache Hit!
1011             if (SavedObjectsDirectoryPath.empty())
1012               ProducedBinaries[count] = std::move(ErrOrBuffer.get());
1013             else
1014               ProducedBinaryFiles[count] = writeGeneratedObject(
1015                   count, CacheEntryPath, *ErrOrBuffer.get());
1016             return;
1017           }
1018         }
1019 
1020         LLVMContext Context;
1021         Context.setDiscardValueNames(LTODiscardValueNames);
1022         Context.enableDebugTypeODRUniquing();
1023         auto DiagFileOrErr = lto::setupOptimizationRemarks(
1024             Context, RemarksFilename, RemarksPasses, RemarksFormat,
1025             RemarksWithHotness, count);
1026         if (!DiagFileOrErr) {
1027           errs() << "Error: " << toString(DiagFileOrErr.takeError()) << "\n";
1028           report_fatal_error("ThinLTO: Can't get an output file for the "
1029                              "remarks");
1030         }
1031 
1032         // Parse module now
1033         auto TheModule = loadModuleFromInput(Mod.get(), Context, false,
1034                                              /*IsImporting*/ false);
1035 
1036         // Save temps: original file.
1037         saveTempBitcode(*TheModule, SaveTempsDir, count, ".0.original.bc");
1038 
1039         auto &ImportList = ImportLists[ModuleIdentifier];
1040         // Run the main process now, and generates a binary
1041         auto OutputBuffer = ProcessThinLTOModule(
1042             *TheModule, *Index, ModuleMap, *TMBuilder.create(), ImportList,
1043             ExportList, GUIDPreservedSymbols,
1044             ModuleToDefinedGVSummaries[ModuleIdentifier], CacheOptions,
1045             DisableCodeGen, SaveTempsDir, Freestanding, OptLevel, count);
1046 
1047         // Commit to the cache (if enabled)
1048         CacheEntry.write(*OutputBuffer);
1049 
1050         if (SavedObjectsDirectoryPath.empty()) {
1051           // We need to generated a memory buffer for the linker.
1052           if (!CacheEntryPath.empty()) {
1053             // When cache is enabled, reload from the cache if possible.
1054             // Releasing the buffer from the heap and reloading it from the
1055             // cache file with mmap helps us to lower memory pressure.
1056             // The freed memory can be used for the next input file.
1057             // The final binary link will read from the VFS cache (hopefully!)
1058             // or from disk (if the memory pressure was too high).
1059             auto ReloadedBufferOrErr = CacheEntry.tryLoadingBuffer();
1060             if (auto EC = ReloadedBufferOrErr.getError()) {
1061               // On error, keep the preexisting buffer and print a diagnostic.
1062               errs() << "error: can't reload cached file '" << CacheEntryPath
1063                      << "': " << EC.message() << "\n";
1064             } else {
1065               OutputBuffer = std::move(*ReloadedBufferOrErr);
1066             }
1067           }
1068           ProducedBinaries[count] = std::move(OutputBuffer);
1069           return;
1070         }
1071         ProducedBinaryFiles[count] = writeGeneratedObject(
1072             count, CacheEntryPath, *OutputBuffer);
1073       }, IndexCount);
1074     }
1075   }
1076 
1077   pruneCache(CacheOptions.Path, CacheOptions.Policy);
1078 
1079   // If statistics were requested, print them out now.
1080   if (llvm::AreStatisticsEnabled())
1081     llvm::PrintStatistics();
1082   reportAndResetTimings();
1083 }
1084