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