1 //===- ThinLTOBitcodeWriter.cpp - Bitcode writing pass for ThinLTO --------===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 
9 #include "llvm/Transforms/IPO/ThinLTOBitcodeWriter.h"
10 #include "llvm/Analysis/BasicAliasAnalysis.h"
11 #include "llvm/Analysis/ModuleSummaryAnalysis.h"
12 #include "llvm/Analysis/ProfileSummaryInfo.h"
13 #include "llvm/Analysis/TypeMetadataUtils.h"
14 #include "llvm/Bitcode/BitcodeWriter.h"
15 #include "llvm/IR/Constants.h"
16 #include "llvm/IR/DebugInfo.h"
17 #include "llvm/IR/Intrinsics.h"
18 #include "llvm/IR/Module.h"
19 #include "llvm/IR/PassManager.h"
20 #include "llvm/Object/ModuleSymbolTable.h"
21 #include "llvm/Pass.h"
22 #include "llvm/Support/ScopedPrinter.h"
23 #include "llvm/Support/raw_ostream.h"
24 #include "llvm/Transforms/IPO.h"
25 #include "llvm/Transforms/IPO/FunctionAttrs.h"
26 #include "llvm/Transforms/IPO/FunctionImport.h"
27 #include "llvm/Transforms/Utils/Cloning.h"
28 #include "llvm/Transforms/Utils/ModuleUtils.h"
29 using namespace llvm;
30 
31 namespace {
32 
33 // Promote each local-linkage entity defined by ExportM and used by ImportM by
34 // changing visibility and appending the given ModuleId.
35 void promoteInternals(Module &ExportM, Module &ImportM, StringRef ModuleId,
36                       SetVector<GlobalValue *> &PromoteExtra) {
37   DenseMap<const Comdat *, Comdat *> RenamedComdats;
38   for (auto &ExportGV : ExportM.global_values()) {
39     if (!ExportGV.hasLocalLinkage())
40       continue;
41 
42     auto Name = ExportGV.getName();
43     GlobalValue *ImportGV = nullptr;
44     if (!PromoteExtra.count(&ExportGV)) {
45       ImportGV = ImportM.getNamedValue(Name);
46       if (!ImportGV)
47         continue;
48       ImportGV->removeDeadConstantUsers();
49       if (ImportGV->use_empty()) {
50         ImportGV->eraseFromParent();
51         continue;
52       }
53     }
54 
55     std::string NewName = (Name + ModuleId).str();
56 
57     if (const auto *C = ExportGV.getComdat())
58       if (C->getName() == Name)
59         RenamedComdats.try_emplace(C, ExportM.getOrInsertComdat(NewName));
60 
61     ExportGV.setName(NewName);
62     ExportGV.setLinkage(GlobalValue::ExternalLinkage);
63     ExportGV.setVisibility(GlobalValue::HiddenVisibility);
64 
65     if (ImportGV) {
66       ImportGV->setName(NewName);
67       ImportGV->setVisibility(GlobalValue::HiddenVisibility);
68     }
69   }
70 
71   if (!RenamedComdats.empty())
72     for (auto &GO : ExportM.global_objects())
73       if (auto *C = GO.getComdat()) {
74         auto Replacement = RenamedComdats.find(C);
75         if (Replacement != RenamedComdats.end())
76           GO.setComdat(Replacement->second);
77       }
78 }
79 
80 // Promote all internal (i.e. distinct) type ids used by the module by replacing
81 // them with external type ids formed using the module id.
82 //
83 // Note that this needs to be done before we clone the module because each clone
84 // will receive its own set of distinct metadata nodes.
85 void promoteTypeIds(Module &M, StringRef ModuleId) {
86   DenseMap<Metadata *, Metadata *> LocalToGlobal;
87   auto ExternalizeTypeId = [&](CallInst *CI, unsigned ArgNo) {
88     Metadata *MD =
89         cast<MetadataAsValue>(CI->getArgOperand(ArgNo))->getMetadata();
90 
91     if (isa<MDNode>(MD) && cast<MDNode>(MD)->isDistinct()) {
92       Metadata *&GlobalMD = LocalToGlobal[MD];
93       if (!GlobalMD) {
94         std::string NewName = (Twine(LocalToGlobal.size()) + ModuleId).str();
95         GlobalMD = MDString::get(M.getContext(), NewName);
96       }
97 
98       CI->setArgOperand(ArgNo,
99                         MetadataAsValue::get(M.getContext(), GlobalMD));
100     }
101   };
102 
103   if (Function *TypeTestFunc =
104           M.getFunction(Intrinsic::getName(Intrinsic::type_test))) {
105     for (const Use &U : TypeTestFunc->uses()) {
106       auto CI = cast<CallInst>(U.getUser());
107       ExternalizeTypeId(CI, 1);
108     }
109   }
110 
111   if (Function *TypeCheckedLoadFunc =
112           M.getFunction(Intrinsic::getName(Intrinsic::type_checked_load))) {
113     for (const Use &U : TypeCheckedLoadFunc->uses()) {
114       auto CI = cast<CallInst>(U.getUser());
115       ExternalizeTypeId(CI, 2);
116     }
117   }
118 
119   for (GlobalObject &GO : M.global_objects()) {
120     SmallVector<MDNode *, 1> MDs;
121     GO.getMetadata(LLVMContext::MD_type, MDs);
122 
123     GO.eraseMetadata(LLVMContext::MD_type);
124     for (auto MD : MDs) {
125       auto I = LocalToGlobal.find(MD->getOperand(1));
126       if (I == LocalToGlobal.end()) {
127         GO.addMetadata(LLVMContext::MD_type, *MD);
128         continue;
129       }
130       GO.addMetadata(
131           LLVMContext::MD_type,
132           *MDNode::get(M.getContext(), {MD->getOperand(0), I->second}));
133     }
134   }
135 }
136 
137 // Drop unused globals, and drop type information from function declarations.
138 // FIXME: If we made functions typeless then there would be no need to do this.
139 void simplifyExternals(Module &M) {
140   FunctionType *EmptyFT =
141       FunctionType::get(Type::getVoidTy(M.getContext()), false);
142 
143   for (auto I = M.begin(), E = M.end(); I != E;) {
144     Function &F = *I++;
145     if (F.isDeclaration() && F.use_empty()) {
146       F.eraseFromParent();
147       continue;
148     }
149 
150     if (!F.isDeclaration() || F.getFunctionType() == EmptyFT ||
151         // Changing the type of an intrinsic may invalidate the IR.
152         F.getName().startswith("llvm."))
153       continue;
154 
155     Function *NewF =
156         Function::Create(EmptyFT, GlobalValue::ExternalLinkage,
157                          F.getAddressSpace(), "", &M);
158     NewF->setVisibility(F.getVisibility());
159     NewF->takeName(&F);
160     F.replaceAllUsesWith(ConstantExpr::getBitCast(NewF, F.getType()));
161     F.eraseFromParent();
162   }
163 
164   for (auto I = M.global_begin(), E = M.global_end(); I != E;) {
165     GlobalVariable &GV = *I++;
166     if (GV.isDeclaration() && GV.use_empty()) {
167       GV.eraseFromParent();
168       continue;
169     }
170   }
171 }
172 
173 static void
174 filterModule(Module *M,
175              function_ref<bool(const GlobalValue *)> ShouldKeepDefinition) {
176   std::vector<GlobalValue *> V;
177   for (GlobalValue &GV : M->global_values())
178     if (!ShouldKeepDefinition(&GV))
179       V.push_back(&GV);
180 
181   for (GlobalValue *GV : V)
182     if (!convertToDeclaration(*GV))
183       GV->eraseFromParent();
184 }
185 
186 void forEachVirtualFunction(Constant *C, function_ref<void(Function *)> Fn) {
187   if (auto *F = dyn_cast<Function>(C))
188     return Fn(F);
189   if (isa<GlobalValue>(C))
190     return;
191   for (Value *Op : C->operands())
192     forEachVirtualFunction(cast<Constant>(Op), Fn);
193 }
194 
195 // If it's possible to split M into regular and thin LTO parts, do so and write
196 // a multi-module bitcode file with the two parts to OS. Otherwise, write only a
197 // regular LTO bitcode file to OS.
198 void splitAndWriteThinLTOBitcode(
199     raw_ostream &OS, raw_ostream *ThinLinkOS,
200     function_ref<AAResults &(Function &)> AARGetter, Module &M) {
201   std::string ModuleId = getUniqueModuleId(&M);
202   if (ModuleId.empty()) {
203     // We couldn't generate a module ID for this module, write it out as a
204     // regular LTO module with an index for summary-based dead stripping.
205     ProfileSummaryInfo PSI(M);
206     M.addModuleFlag(Module::Error, "ThinLTO", uint32_t(0));
207     ModuleSummaryIndex Index = buildModuleSummaryIndex(M, nullptr, &PSI);
208     WriteBitcodeToFile(M, OS, /*ShouldPreserveUseListOrder=*/false, &Index);
209 
210     if (ThinLinkOS)
211       // We don't have a ThinLTO part, but still write the module to the
212       // ThinLinkOS if requested so that the expected output file is produced.
213       WriteBitcodeToFile(M, *ThinLinkOS, /*ShouldPreserveUseListOrder=*/false,
214                          &Index);
215 
216     return;
217   }
218 
219   promoteTypeIds(M, ModuleId);
220 
221   // Returns whether a global has attached type metadata. Such globals may
222   // participate in CFI or whole-program devirtualization, so they need to
223   // appear in the merged module instead of the thin LTO module.
224   auto HasTypeMetadata = [](const GlobalObject *GO) {
225     return GO->hasMetadata(LLVMContext::MD_type);
226   };
227 
228   // Collect the set of virtual functions that are eligible for virtual constant
229   // propagation. Each eligible function must not access memory, must return
230   // an integer of width <=64 bits, must take at least one argument, must not
231   // use its first argument (assumed to be "this") and all arguments other than
232   // the first one must be of <=64 bit integer type.
233   //
234   // Note that we test whether this copy of the function is readnone, rather
235   // than testing function attributes, which must hold for any copy of the
236   // function, even a less optimized version substituted at link time. This is
237   // sound because the virtual constant propagation optimizations effectively
238   // inline all implementations of the virtual function into each call site,
239   // rather than using function attributes to perform local optimization.
240   DenseSet<const Function *> EligibleVirtualFns;
241   // If any member of a comdat lives in MergedM, put all members of that
242   // comdat in MergedM to keep the comdat together.
243   DenseSet<const Comdat *> MergedMComdats;
244   for (GlobalVariable &GV : M.globals())
245     if (HasTypeMetadata(&GV)) {
246       if (const auto *C = GV.getComdat())
247         MergedMComdats.insert(C);
248       forEachVirtualFunction(GV.getInitializer(), [&](Function *F) {
249         auto *RT = dyn_cast<IntegerType>(F->getReturnType());
250         if (!RT || RT->getBitWidth() > 64 || F->arg_empty() ||
251             !F->arg_begin()->use_empty())
252           return;
253         for (auto &Arg : make_range(std::next(F->arg_begin()), F->arg_end())) {
254           auto *ArgT = dyn_cast<IntegerType>(Arg.getType());
255           if (!ArgT || ArgT->getBitWidth() > 64)
256             return;
257         }
258         if (!F->isDeclaration() &&
259             computeFunctionBodyMemoryAccess(*F, AARGetter(*F)) == MAK_ReadNone)
260           EligibleVirtualFns.insert(F);
261       });
262     }
263 
264   ValueToValueMapTy VMap;
265   std::unique_ptr<Module> MergedM(
266       CloneModule(M, VMap, [&](const GlobalValue *GV) -> bool {
267         if (const auto *C = GV->getComdat())
268           if (MergedMComdats.count(C))
269             return true;
270         if (auto *F = dyn_cast<Function>(GV))
271           return EligibleVirtualFns.count(F);
272         if (auto *GVar = dyn_cast_or_null<GlobalVariable>(GV->getBaseObject()))
273           return HasTypeMetadata(GVar);
274         return false;
275       }));
276   StripDebugInfo(*MergedM);
277   MergedM->setModuleInlineAsm("");
278 
279   for (Function &F : *MergedM)
280     if (!F.isDeclaration()) {
281       // Reset the linkage of all functions eligible for virtual constant
282       // propagation. The canonical definitions live in the thin LTO module so
283       // that they can be imported.
284       F.setLinkage(GlobalValue::AvailableExternallyLinkage);
285       F.setComdat(nullptr);
286     }
287 
288   SetVector<GlobalValue *> CfiFunctions;
289   for (auto &F : M)
290     if ((!F.hasLocalLinkage() || F.hasAddressTaken()) && HasTypeMetadata(&F))
291       CfiFunctions.insert(&F);
292 
293   // Remove all globals with type metadata, globals with comdats that live in
294   // MergedM, and aliases pointing to such globals from the thin LTO module.
295   filterModule(&M, [&](const GlobalValue *GV) {
296     if (auto *GVar = dyn_cast_or_null<GlobalVariable>(GV->getBaseObject()))
297       if (HasTypeMetadata(GVar))
298         return false;
299     if (const auto *C = GV->getComdat())
300       if (MergedMComdats.count(C))
301         return false;
302     return true;
303   });
304 
305   promoteInternals(*MergedM, M, ModuleId, CfiFunctions);
306   promoteInternals(M, *MergedM, ModuleId, CfiFunctions);
307 
308   auto &Ctx = MergedM->getContext();
309   SmallVector<MDNode *, 8> CfiFunctionMDs;
310   for (auto V : CfiFunctions) {
311     Function &F = *cast<Function>(V);
312     SmallVector<MDNode *, 2> Types;
313     F.getMetadata(LLVMContext::MD_type, Types);
314 
315     SmallVector<Metadata *, 4> Elts;
316     Elts.push_back(MDString::get(Ctx, F.getName()));
317     CfiFunctionLinkage Linkage;
318     if (!F.isDeclarationForLinker())
319       Linkage = CFL_Definition;
320     else if (F.isWeakForLinker())
321       Linkage = CFL_WeakDeclaration;
322     else
323       Linkage = CFL_Declaration;
324     Elts.push_back(ConstantAsMetadata::get(
325         llvm::ConstantInt::get(Type::getInt8Ty(Ctx), Linkage)));
326     for (auto Type : Types)
327       Elts.push_back(Type);
328     CfiFunctionMDs.push_back(MDTuple::get(Ctx, Elts));
329   }
330 
331   if(!CfiFunctionMDs.empty()) {
332     NamedMDNode *NMD = MergedM->getOrInsertNamedMetadata("cfi.functions");
333     for (auto MD : CfiFunctionMDs)
334       NMD->addOperand(MD);
335   }
336 
337   SmallVector<MDNode *, 8> FunctionAliases;
338   for (auto &A : M.aliases()) {
339     if (!isa<Function>(A.getAliasee()))
340       continue;
341 
342     auto *F = cast<Function>(A.getAliasee());
343 
344     Metadata *Elts[] = {
345         MDString::get(Ctx, A.getName()),
346         MDString::get(Ctx, F->getName()),
347         ConstantAsMetadata::get(
348             ConstantInt::get(Type::getInt8Ty(Ctx), A.getVisibility())),
349         ConstantAsMetadata::get(
350             ConstantInt::get(Type::getInt8Ty(Ctx), A.isWeakForLinker())),
351     };
352 
353     FunctionAliases.push_back(MDTuple::get(Ctx, Elts));
354   }
355 
356   if (!FunctionAliases.empty()) {
357     NamedMDNode *NMD = MergedM->getOrInsertNamedMetadata("aliases");
358     for (auto MD : FunctionAliases)
359       NMD->addOperand(MD);
360   }
361 
362   SmallVector<MDNode *, 8> Symvers;
363   ModuleSymbolTable::CollectAsmSymvers(M, [&](StringRef Name, StringRef Alias) {
364     Function *F = M.getFunction(Name);
365     if (!F || F->use_empty())
366       return;
367 
368     Symvers.push_back(MDTuple::get(
369         Ctx, {MDString::get(Ctx, Name), MDString::get(Ctx, Alias)}));
370   });
371 
372   if (!Symvers.empty()) {
373     NamedMDNode *NMD = MergedM->getOrInsertNamedMetadata("symvers");
374     for (auto MD : Symvers)
375       NMD->addOperand(MD);
376   }
377 
378   simplifyExternals(*MergedM);
379 
380   // FIXME: Try to re-use BSI and PFI from the original module here.
381   ProfileSummaryInfo PSI(M);
382   ModuleSummaryIndex Index = buildModuleSummaryIndex(M, nullptr, &PSI);
383 
384   // Mark the merged module as requiring full LTO. We still want an index for
385   // it though, so that it can participate in summary-based dead stripping.
386   MergedM->addModuleFlag(Module::Error, "ThinLTO", uint32_t(0));
387   ModuleSummaryIndex MergedMIndex =
388       buildModuleSummaryIndex(*MergedM, nullptr, &PSI);
389 
390   SmallVector<char, 0> Buffer;
391 
392   BitcodeWriter W(Buffer);
393   // Save the module hash produced for the full bitcode, which will
394   // be used in the backends, and use that in the minimized bitcode
395   // produced for the full link.
396   ModuleHash ModHash = {{0}};
397   W.writeModule(M, /*ShouldPreserveUseListOrder=*/false, &Index,
398                 /*GenerateHash=*/true, &ModHash);
399   W.writeModule(*MergedM, /*ShouldPreserveUseListOrder=*/false, &MergedMIndex);
400   W.writeSymtab();
401   W.writeStrtab();
402   OS << Buffer;
403 
404   // If a minimized bitcode module was requested for the thin link, only
405   // the information that is needed by thin link will be written in the
406   // given OS (the merged module will be written as usual).
407   if (ThinLinkOS) {
408     Buffer.clear();
409     BitcodeWriter W2(Buffer);
410     StripDebugInfo(M);
411     W2.writeThinLinkBitcode(M, Index, ModHash);
412     W2.writeModule(*MergedM, /*ShouldPreserveUseListOrder=*/false,
413                    &MergedMIndex);
414     W2.writeSymtab();
415     W2.writeStrtab();
416     *ThinLinkOS << Buffer;
417   }
418 }
419 
420 // Returns whether this module needs to be split because splitting is
421 // enabled and it uses type metadata.
422 bool requiresSplit(Module &M) {
423   // First check if the LTO Unit splitting has been enabled.
424   bool EnableSplitLTOUnit = false;
425   if (auto *MD = mdconst::extract_or_null<ConstantInt>(
426           M.getModuleFlag("EnableSplitLTOUnit")))
427     EnableSplitLTOUnit = MD->getZExtValue();
428   if (!EnableSplitLTOUnit)
429     return false;
430 
431   // Module only needs to be split if it contains type metadata.
432   for (auto &GO : M.global_objects()) {
433     if (GO.hasMetadata(LLVMContext::MD_type))
434       return true;
435   }
436 
437   return false;
438 }
439 
440 void writeThinLTOBitcode(raw_ostream &OS, raw_ostream *ThinLinkOS,
441                          function_ref<AAResults &(Function &)> AARGetter,
442                          Module &M, const ModuleSummaryIndex *Index) {
443   // Split module if splitting is enabled and it contains any type metadata.
444   if (requiresSplit(M))
445     return splitAndWriteThinLTOBitcode(OS, ThinLinkOS, AARGetter, M);
446 
447   // Otherwise we can just write it out as a regular module.
448 
449   // Save the module hash produced for the full bitcode, which will
450   // be used in the backends, and use that in the minimized bitcode
451   // produced for the full link.
452   ModuleHash ModHash = {{0}};
453   WriteBitcodeToFile(M, OS, /*ShouldPreserveUseListOrder=*/false, Index,
454                      /*GenerateHash=*/true, &ModHash);
455   // If a minimized bitcode module was requested for the thin link, only
456   // the information that is needed by thin link will be written in the
457   // given OS.
458   if (ThinLinkOS && Index)
459     WriteThinLinkBitcodeToFile(M, *ThinLinkOS, *Index, ModHash);
460 }
461 
462 class WriteThinLTOBitcode : public ModulePass {
463   raw_ostream &OS; // raw_ostream to print on
464   // The output stream on which to emit a minimized module for use
465   // just in the thin link, if requested.
466   raw_ostream *ThinLinkOS;
467 
468 public:
469   static char ID; // Pass identification, replacement for typeid
470   WriteThinLTOBitcode() : ModulePass(ID), OS(dbgs()), ThinLinkOS(nullptr) {
471     initializeWriteThinLTOBitcodePass(*PassRegistry::getPassRegistry());
472   }
473 
474   explicit WriteThinLTOBitcode(raw_ostream &o, raw_ostream *ThinLinkOS)
475       : ModulePass(ID), OS(o), ThinLinkOS(ThinLinkOS) {
476     initializeWriteThinLTOBitcodePass(*PassRegistry::getPassRegistry());
477   }
478 
479   StringRef getPassName() const override { return "ThinLTO Bitcode Writer"; }
480 
481   bool runOnModule(Module &M) override {
482     const ModuleSummaryIndex *Index =
483         &(getAnalysis<ModuleSummaryIndexWrapperPass>().getIndex());
484     writeThinLTOBitcode(OS, ThinLinkOS, LegacyAARGetter(*this), M, Index);
485     return true;
486   }
487   void getAnalysisUsage(AnalysisUsage &AU) const override {
488     AU.setPreservesAll();
489     AU.addRequired<AssumptionCacheTracker>();
490     AU.addRequired<ModuleSummaryIndexWrapperPass>();
491     AU.addRequired<TargetLibraryInfoWrapperPass>();
492   }
493 };
494 } // anonymous namespace
495 
496 char WriteThinLTOBitcode::ID = 0;
497 INITIALIZE_PASS_BEGIN(WriteThinLTOBitcode, "write-thinlto-bitcode",
498                       "Write ThinLTO Bitcode", false, true)
499 INITIALIZE_PASS_DEPENDENCY(AssumptionCacheTracker)
500 INITIALIZE_PASS_DEPENDENCY(ModuleSummaryIndexWrapperPass)
501 INITIALIZE_PASS_DEPENDENCY(TargetLibraryInfoWrapperPass)
502 INITIALIZE_PASS_END(WriteThinLTOBitcode, "write-thinlto-bitcode",
503                     "Write ThinLTO Bitcode", false, true)
504 
505 ModulePass *llvm::createWriteThinLTOBitcodePass(raw_ostream &Str,
506                                                 raw_ostream *ThinLinkOS) {
507   return new WriteThinLTOBitcode(Str, ThinLinkOS);
508 }
509 
510 PreservedAnalyses
511 llvm::ThinLTOBitcodeWriterPass::run(Module &M, ModuleAnalysisManager &AM) {
512   FunctionAnalysisManager &FAM =
513       AM.getResult<FunctionAnalysisManagerModuleProxy>(M).getManager();
514   writeThinLTOBitcode(OS, ThinLinkOS,
515                       [&FAM](Function &F) -> AAResults & {
516                         return FAM.getResult<AAManager>(F);
517                       },
518                       M, &AM.getResult<ModuleSummaryIndexAnalysis>(M));
519   return PreservedAnalyses::all();
520 }
521