1 //===- IRSymtab.cpp - implementation of IR symbol tables ------------------===// 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 #include "llvm/Object/IRSymtab.h" 11 #include "llvm/ADT/ArrayRef.h" 12 #include "llvm/ADT/DenseMap.h" 13 #include "llvm/ADT/SmallPtrSet.h" 14 #include "llvm/ADT/SmallString.h" 15 #include "llvm/ADT/SmallVector.h" 16 #include "llvm/ADT/StringRef.h" 17 #include "llvm/ADT/Triple.h" 18 #include "llvm/Analysis/ObjectUtils.h" 19 #include "llvm/IR/Comdat.h" 20 #include "llvm/IR/DataLayout.h" 21 #include "llvm/IR/GlobalAlias.h" 22 #include "llvm/IR/GlobalObject.h" 23 #include "llvm/IR/Mangler.h" 24 #include "llvm/IR/Metadata.h" 25 #include "llvm/IR/Module.h" 26 #include "llvm/Bitcode/BitcodeReader.h" 27 #include "llvm/MC/StringTableBuilder.h" 28 #include "llvm/Object/IRObjectFile.h" 29 #include "llvm/Object/ModuleSymbolTable.h" 30 #include "llvm/Object/SymbolicFile.h" 31 #include "llvm/Support/Allocator.h" 32 #include "llvm/Support/Casting.h" 33 #include "llvm/Support/Error.h" 34 #include "llvm/Support/StringSaver.h" 35 #include "llvm/Support/VCSRevision.h" 36 #include "llvm/Support/raw_ostream.h" 37 #include <cassert> 38 #include <string> 39 #include <utility> 40 #include <vector> 41 42 using namespace llvm; 43 using namespace irsymtab; 44 45 namespace { 46 47 const char *getExpectedProducerName() { 48 static char DefaultName[] = LLVM_VERSION_STRING 49 #ifdef LLVM_REVISION 50 " " LLVM_REVISION 51 #endif 52 ; 53 // Allows for testing of the irsymtab writer and upgrade mechanism. This 54 // environment variable should not be set by users. 55 if (char *OverrideName = getenv("LLVM_OVERRIDE_PRODUCER")) 56 return OverrideName; 57 return DefaultName; 58 } 59 60 const char *kExpectedProducerName = getExpectedProducerName(); 61 62 /// Stores the temporary state that is required to build an IR symbol table. 63 struct Builder { 64 SmallVector<char, 0> &Symtab; 65 StringTableBuilder &StrtabBuilder; 66 StringSaver Saver; 67 68 // This ctor initializes a StringSaver using the passed in BumpPtrAllocator. 69 // The StringTableBuilder does not create a copy of any strings added to it, 70 // so this provides somewhere to store any strings that we create. 71 Builder(SmallVector<char, 0> &Symtab, StringTableBuilder &StrtabBuilder, 72 BumpPtrAllocator &Alloc) 73 : Symtab(Symtab), StrtabBuilder(StrtabBuilder), Saver(Alloc) {} 74 75 DenseMap<const Comdat *, unsigned> ComdatMap; 76 Mangler Mang; 77 Triple TT; 78 79 std::vector<storage::Comdat> Comdats; 80 std::vector<storage::Module> Mods; 81 std::vector<storage::Symbol> Syms; 82 std::vector<storage::Uncommon> Uncommons; 83 84 std::string COFFLinkerOpts; 85 raw_string_ostream COFFLinkerOptsOS{COFFLinkerOpts}; 86 87 void setStr(storage::Str &S, StringRef Value) { 88 S.Offset = StrtabBuilder.add(Value); 89 S.Size = Value.size(); 90 } 91 92 template <typename T> 93 void writeRange(storage::Range<T> &R, const std::vector<T> &Objs) { 94 R.Offset = Symtab.size(); 95 R.Size = Objs.size(); 96 Symtab.insert(Symtab.end(), reinterpret_cast<const char *>(Objs.data()), 97 reinterpret_cast<const char *>(Objs.data() + Objs.size())); 98 } 99 100 Error addModule(Module *M); 101 Error addSymbol(const ModuleSymbolTable &Msymtab, 102 const SmallPtrSet<GlobalValue *, 8> &Used, 103 ModuleSymbolTable::Symbol Sym); 104 105 Error build(ArrayRef<Module *> Mods); 106 }; 107 108 Error Builder::addModule(Module *M) { 109 if (M->getDataLayoutStr().empty()) 110 return make_error<StringError>("input module has no datalayout", 111 inconvertibleErrorCode()); 112 113 SmallPtrSet<GlobalValue *, 8> Used; 114 collectUsedGlobalVariables(*M, Used, /*CompilerUsed*/ false); 115 116 ModuleSymbolTable Msymtab; 117 Msymtab.addModule(M); 118 119 storage::Module Mod; 120 Mod.Begin = Syms.size(); 121 Mod.End = Syms.size() + Msymtab.symbols().size(); 122 Mod.UncBegin = Uncommons.size(); 123 Mods.push_back(Mod); 124 125 if (TT.isOSBinFormatCOFF()) { 126 if (auto E = M->materializeMetadata()) 127 return E; 128 if (NamedMDNode *LinkerOptions = 129 M->getNamedMetadata("llvm.linker.options")) { 130 for (MDNode *MDOptions : LinkerOptions->operands()) 131 for (const MDOperand &MDOption : cast<MDNode>(MDOptions)->operands()) 132 COFFLinkerOptsOS << " " << cast<MDString>(MDOption)->getString(); 133 } 134 } 135 136 for (ModuleSymbolTable::Symbol Msym : Msymtab.symbols()) 137 if (Error Err = addSymbol(Msymtab, Used, Msym)) 138 return Err; 139 140 return Error::success(); 141 } 142 143 Error Builder::addSymbol(const ModuleSymbolTable &Msymtab, 144 const SmallPtrSet<GlobalValue *, 8> &Used, 145 ModuleSymbolTable::Symbol Msym) { 146 Syms.emplace_back(); 147 storage::Symbol &Sym = Syms.back(); 148 Sym = {}; 149 150 storage::Uncommon *Unc = nullptr; 151 auto Uncommon = [&]() -> storage::Uncommon & { 152 if (Unc) 153 return *Unc; 154 Sym.Flags |= 1 << storage::Symbol::FB_has_uncommon; 155 Uncommons.emplace_back(); 156 Unc = &Uncommons.back(); 157 *Unc = {}; 158 setStr(Unc->COFFWeakExternFallbackName, ""); 159 return *Unc; 160 }; 161 162 SmallString<64> Name; 163 { 164 raw_svector_ostream OS(Name); 165 Msymtab.printSymbolName(OS, Msym); 166 } 167 setStr(Sym.Name, Saver.save(StringRef(Name))); 168 169 auto Flags = Msymtab.getSymbolFlags(Msym); 170 if (Flags & object::BasicSymbolRef::SF_Undefined) 171 Sym.Flags |= 1 << storage::Symbol::FB_undefined; 172 if (Flags & object::BasicSymbolRef::SF_Weak) 173 Sym.Flags |= 1 << storage::Symbol::FB_weak; 174 if (Flags & object::BasicSymbolRef::SF_Common) 175 Sym.Flags |= 1 << storage::Symbol::FB_common; 176 if (Flags & object::BasicSymbolRef::SF_Indirect) 177 Sym.Flags |= 1 << storage::Symbol::FB_indirect; 178 if (Flags & object::BasicSymbolRef::SF_Global) 179 Sym.Flags |= 1 << storage::Symbol::FB_global; 180 if (Flags & object::BasicSymbolRef::SF_FormatSpecific) 181 Sym.Flags |= 1 << storage::Symbol::FB_format_specific; 182 if (Flags & object::BasicSymbolRef::SF_Executable) 183 Sym.Flags |= 1 << storage::Symbol::FB_executable; 184 185 Sym.ComdatIndex = -1; 186 auto *GV = Msym.dyn_cast<GlobalValue *>(); 187 if (!GV) { 188 // Undefined module asm symbols act as GC roots and are implicitly used. 189 if (Flags & object::BasicSymbolRef::SF_Undefined) 190 Sym.Flags |= 1 << storage::Symbol::FB_used; 191 setStr(Sym.IRName, ""); 192 return Error::success(); 193 } 194 195 setStr(Sym.IRName, GV->getName()); 196 197 if (Used.count(GV)) 198 Sym.Flags |= 1 << storage::Symbol::FB_used; 199 if (GV->isThreadLocal()) 200 Sym.Flags |= 1 << storage::Symbol::FB_tls; 201 if (GV->hasGlobalUnnamedAddr()) 202 Sym.Flags |= 1 << storage::Symbol::FB_unnamed_addr; 203 if (canBeOmittedFromSymbolTable(GV)) 204 Sym.Flags |= 1 << storage::Symbol::FB_may_omit; 205 Sym.Flags |= unsigned(GV->getVisibility()) << storage::Symbol::FB_visibility; 206 207 if (Flags & object::BasicSymbolRef::SF_Common) { 208 Uncommon().CommonSize = GV->getParent()->getDataLayout().getTypeAllocSize( 209 GV->getType()->getElementType()); 210 Uncommon().CommonAlign = GV->getAlignment(); 211 } 212 213 const GlobalObject *Base = GV->getBaseObject(); 214 if (!Base) 215 return make_error<StringError>("Unable to determine comdat of alias!", 216 inconvertibleErrorCode()); 217 if (const Comdat *C = Base->getComdat()) { 218 auto P = ComdatMap.insert(std::make_pair(C, Comdats.size())); 219 Sym.ComdatIndex = P.first->second; 220 221 if (P.second) { 222 storage::Comdat Comdat; 223 setStr(Comdat.Name, C->getName()); 224 Comdats.push_back(Comdat); 225 } 226 } 227 228 if (TT.isOSBinFormatCOFF()) { 229 emitLinkerFlagsForGlobalCOFF(COFFLinkerOptsOS, GV, TT, Mang); 230 231 if ((Flags & object::BasicSymbolRef::SF_Weak) && 232 (Flags & object::BasicSymbolRef::SF_Indirect)) { 233 std::string FallbackName; 234 raw_string_ostream OS(FallbackName); 235 Msymtab.printSymbolName( 236 OS, cast<GlobalValue>( 237 cast<GlobalAlias>(GV)->getAliasee()->stripPointerCasts())); 238 OS.flush(); 239 setStr(Uncommon().COFFWeakExternFallbackName, Saver.save(FallbackName)); 240 } 241 } 242 243 return Error::success(); 244 } 245 246 Error Builder::build(ArrayRef<Module *> IRMods) { 247 storage::Header Hdr; 248 249 assert(!IRMods.empty()); 250 Hdr.Version = storage::Header::kCurrentVersion; 251 setStr(Hdr.Producer, kExpectedProducerName); 252 setStr(Hdr.TargetTriple, IRMods[0]->getTargetTriple()); 253 setStr(Hdr.SourceFileName, IRMods[0]->getSourceFileName()); 254 TT = Triple(IRMods[0]->getTargetTriple()); 255 256 for (auto *M : IRMods) 257 if (Error Err = addModule(M)) 258 return Err; 259 260 COFFLinkerOptsOS.flush(); 261 setStr(Hdr.COFFLinkerOpts, Saver.save(COFFLinkerOpts)); 262 263 // We are about to fill in the header's range fields, so reserve space for it 264 // and copy it in afterwards. 265 Symtab.resize(sizeof(storage::Header)); 266 writeRange(Hdr.Modules, Mods); 267 writeRange(Hdr.Comdats, Comdats); 268 writeRange(Hdr.Symbols, Syms); 269 writeRange(Hdr.Uncommons, Uncommons); 270 271 *reinterpret_cast<storage::Header *>(Symtab.data()) = Hdr; 272 return Error::success(); 273 } 274 275 } // end anonymous namespace 276 277 Error irsymtab::build(ArrayRef<Module *> Mods, SmallVector<char, 0> &Symtab, 278 StringTableBuilder &StrtabBuilder, 279 BumpPtrAllocator &Alloc) { 280 return Builder(Symtab, StrtabBuilder, Alloc).build(Mods); 281 } 282 283 // Upgrade a vector of bitcode modules created by an old version of LLVM by 284 // creating an irsymtab for them in the current format. 285 static Expected<FileContents> upgrade(ArrayRef<BitcodeModule> BMs) { 286 FileContents FC; 287 288 LLVMContext Ctx; 289 std::vector<Module *> Mods; 290 std::vector<std::unique_ptr<Module>> OwnedMods; 291 for (auto BM : BMs) { 292 Expected<std::unique_ptr<Module>> MOrErr = 293 BM.getLazyModule(Ctx, /*ShouldLazyLoadMetadata*/ true, 294 /*IsImporting*/ false); 295 if (!MOrErr) 296 return MOrErr.takeError(); 297 298 Mods.push_back(MOrErr->get()); 299 OwnedMods.push_back(std::move(*MOrErr)); 300 } 301 302 StringTableBuilder StrtabBuilder(StringTableBuilder::RAW); 303 BumpPtrAllocator Alloc; 304 if (Error E = build(Mods, FC.Symtab, StrtabBuilder, Alloc)) 305 return std::move(E); 306 307 StrtabBuilder.finalizeInOrder(); 308 FC.Strtab.resize(StrtabBuilder.getSize()); 309 StrtabBuilder.write((uint8_t *)FC.Strtab.data()); 310 311 FC.TheReader = {{FC.Symtab.data(), FC.Symtab.size()}, 312 {FC.Strtab.data(), FC.Strtab.size()}}; 313 return std::move(FC); 314 } 315 316 Expected<FileContents> irsymtab::readBitcode(const BitcodeFileContents &BFC) { 317 if (BFC.Mods.empty()) 318 return make_error<StringError>("Bitcode file does not contain any modules", 319 inconvertibleErrorCode()); 320 321 if (BFC.StrtabForSymtab.empty() || 322 BFC.Symtab.size() < sizeof(storage::Header)) 323 return upgrade(BFC.Mods); 324 325 // We cannot use the regular reader to read the version and producer, because 326 // it will expect the header to be in the current format. The only thing we 327 // can rely on is that the version and producer will be present as the first 328 // struct elements. 329 auto *Hdr = reinterpret_cast<const storage::Header *>(BFC.Symtab.data()); 330 unsigned Version = Hdr->Version; 331 StringRef Producer = Hdr->Producer.get(BFC.StrtabForSymtab); 332 if (Version != storage::Header::kCurrentVersion || 333 Producer != kExpectedProducerName) 334 return upgrade(BFC.Mods); 335 336 FileContents FC; 337 FC.TheReader = {{BFC.Symtab.data(), BFC.Symtab.size()}, 338 {BFC.StrtabForSymtab.data(), BFC.StrtabForSymtab.size()}}; 339 340 // Finally, make sure that the number of modules in the symbol table matches 341 // the number of modules in the bitcode file. If they differ, it may mean that 342 // the bitcode file was created by binary concatenation, so we need to create 343 // a new symbol table from scratch. 344 if (FC.TheReader.getNumModules() != BFC.Mods.size()) 345 return upgrade(std::move(BFC.Mods)); 346 347 return std::move(FC); 348 } 349