1 //===- MCAssembler.h - Object File Generation -------------------*- C++ -*-===// 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 #ifndef LLVM_MC_MCASSEMBLER_H 10 #define LLVM_MC_MCASSEMBLER_H 11 12 #include "llvm/ADT/ArrayRef.h" 13 #include "llvm/ADT/STLExtras.h" 14 #include "llvm/ADT/SmallPtrSet.h" 15 #include "llvm/ADT/StringRef.h" 16 #include "llvm/ADT/iterator.h" 17 #include "llvm/ADT/iterator_range.h" 18 #include "llvm/BinaryFormat/MachO.h" 19 #include "llvm/MC/MCDirectives.h" 20 #include "llvm/MC/MCDwarf.h" 21 #include "llvm/MC/MCFixup.h" 22 #include "llvm/MC/MCFragment.h" 23 #include "llvm/MC/MCLinkerOptimizationHint.h" 24 #include "llvm/MC/MCSymbol.h" 25 #include "llvm/Support/VersionTuple.h" 26 #include <cassert> 27 #include <cstddef> 28 #include <cstdint> 29 #include <string> 30 #include <utility> 31 #include <vector> 32 33 namespace llvm { 34 35 class MCAsmBackend; 36 class MCAsmLayout; 37 class MCContext; 38 class MCCodeEmitter; 39 class MCFragment; 40 class MCObjectWriter; 41 class MCSection; 42 class MCValue; 43 44 // FIXME: This really doesn't belong here. See comments below. 45 struct IndirectSymbolData { 46 MCSymbol *Symbol; 47 MCSection *Section; 48 }; 49 50 // FIXME: Ditto this. Purely so the Streamer and the ObjectWriter can talk 51 // to one another. 52 struct DataRegionData { 53 // This enum should be kept in sync w/ the mach-o definition in 54 // llvm/Object/MachOFormat.h. 55 enum KindTy { Data = 1, JumpTable8, JumpTable16, JumpTable32 } Kind; 56 MCSymbol *Start; 57 MCSymbol *End; 58 }; 59 60 class MCAssembler { 61 friend class MCAsmLayout; 62 63 public: 64 using SectionListType = std::vector<MCSection *>; 65 using SymbolDataListType = std::vector<const MCSymbol *>; 66 67 using const_iterator = pointee_iterator<SectionListType::const_iterator>; 68 using iterator = pointee_iterator<SectionListType::iterator>; 69 70 using const_symbol_iterator = 71 pointee_iterator<SymbolDataListType::const_iterator>; 72 using symbol_iterator = pointee_iterator<SymbolDataListType::iterator>; 73 74 using symbol_range = iterator_range<symbol_iterator>; 75 using const_symbol_range = iterator_range<const_symbol_iterator>; 76 77 using const_indirect_symbol_iterator = 78 std::vector<IndirectSymbolData>::const_iterator; 79 using indirect_symbol_iterator = std::vector<IndirectSymbolData>::iterator; 80 81 using const_data_region_iterator = 82 std::vector<DataRegionData>::const_iterator; 83 using data_region_iterator = std::vector<DataRegionData>::iterator; 84 85 /// MachO specific deployment target version info. 86 // A Major version of 0 indicates that no version information was supplied 87 // and so the corresponding load command should not be emitted. 88 using VersionInfoType = struct { 89 bool EmitBuildVersion; 90 union { 91 MCVersionMinType Type; ///< Used when EmitBuildVersion==false. 92 MachO::PlatformType Platform; ///< Used when EmitBuildVersion==true. 93 } TypeOrPlatform; 94 unsigned Major; 95 unsigned Minor; 96 unsigned Update; 97 /// An optional version of the SDK that was used to build the source. 98 VersionTuple SDKVersion; 99 }; 100 101 private: 102 MCContext &Context; 103 104 std::unique_ptr<MCAsmBackend> Backend; 105 106 std::unique_ptr<MCCodeEmitter> Emitter; 107 108 std::unique_ptr<MCObjectWriter> Writer; 109 110 SectionListType Sections; 111 112 SymbolDataListType Symbols; 113 114 std::vector<IndirectSymbolData> IndirectSymbols; 115 116 std::vector<DataRegionData> DataRegions; 117 118 /// The list of linker options to propagate into the object file. 119 std::vector<std::vector<std::string>> LinkerOptions; 120 121 /// List of declared file names 122 std::vector<std::string> FileNames; 123 124 MCDwarfLineTableParams LTParams; 125 126 /// The set of function symbols for which a .thumb_func directive has 127 /// been seen. 128 // 129 // FIXME: We really would like this in target specific code rather than 130 // here. Maybe when the relocation stuff moves to target specific, 131 // this can go with it? The streamer would need some target specific 132 // refactoring too. 133 mutable SmallPtrSet<const MCSymbol *, 32> ThumbFuncs; 134 135 /// The bundle alignment size currently set in the assembler. 136 /// 137 /// By default it's 0, which means bundling is disabled. 138 unsigned BundleAlignSize; 139 140 bool RelaxAll : 1; 141 bool SubsectionsViaSymbols : 1; 142 bool IncrementalLinkerCompatible : 1; 143 144 /// ELF specific e_header flags 145 // It would be good if there were an MCELFAssembler class to hold this. 146 // ELF header flags are used both by the integrated and standalone assemblers. 147 // Access to the flags is necessary in cases where assembler directives affect 148 // which flags to be set. 149 unsigned ELFHeaderEFlags; 150 151 /// Used to communicate Linker Optimization Hint information between 152 /// the Streamer and the .o writer 153 MCLOHContainer LOHContainer; 154 155 VersionInfoType VersionInfo; 156 157 /// Evaluate a fixup to a relocatable expression and the value which should be 158 /// placed into the fixup. 159 /// 160 /// \param Layout The layout to use for evaluation. 161 /// \param Fixup The fixup to evaluate. 162 /// \param DF The fragment the fixup is inside. 163 /// \param Target [out] On return, the relocatable expression the fixup 164 /// evaluates to. 165 /// \param Value [out] On return, the value of the fixup as currently laid 166 /// out. 167 /// \param WasForced [out] On return, the value in the fixup is set to the 168 /// correct value if WasForced is true, even if evaluateFixup returns false. 169 /// \return Whether the fixup value was fully resolved. This is true if the 170 /// \p Value result is fixed, otherwise the value may change due to 171 /// relocation. 172 bool evaluateFixup(const MCAsmLayout &Layout, const MCFixup &Fixup, 173 const MCFragment *DF, MCValue &Target, 174 uint64_t &Value, bool &WasForced) const; 175 176 /// Check whether a fixup can be satisfied, or whether it needs to be relaxed 177 /// (increased in size, in order to hold its value correctly). 178 bool fixupNeedsRelaxation(const MCFixup &Fixup, const MCRelaxableFragment *DF, 179 const MCAsmLayout &Layout) const; 180 181 /// Check whether the given fragment needs relaxation. 182 bool fragmentNeedsRelaxation(const MCRelaxableFragment *IF, 183 const MCAsmLayout &Layout) const; 184 185 /// Perform one layout iteration and return true if any offsets 186 /// were adjusted. 187 bool layoutOnce(MCAsmLayout &Layout); 188 189 /// Perform one layout iteration of the given section and return true 190 /// if any offsets were adjusted. 191 bool layoutSectionOnce(MCAsmLayout &Layout, MCSection &Sec); 192 193 bool relaxInstruction(MCAsmLayout &Layout, MCRelaxableFragment &IF); 194 bool relaxLEB(MCAsmLayout &Layout, MCLEBFragment &IF); 195 bool relaxBoundaryAlign(MCAsmLayout &Layout, MCBoundaryAlignFragment &BF); 196 bool relaxDwarfLineAddr(MCAsmLayout &Layout, MCDwarfLineAddrFragment &DF); 197 bool relaxDwarfCallFrameFragment(MCAsmLayout &Layout, 198 MCDwarfCallFrameFragment &DF); 199 bool relaxCVInlineLineTable(MCAsmLayout &Layout, 200 MCCVInlineLineTableFragment &DF); 201 bool relaxCVDefRange(MCAsmLayout &Layout, MCCVDefRangeFragment &DF); 202 203 /// finishLayout - Finalize a layout, including fragment lowering. 204 void finishLayout(MCAsmLayout &Layout); 205 206 std::tuple<MCValue, uint64_t, bool> 207 handleFixup(const MCAsmLayout &Layout, MCFragment &F, const MCFixup &Fixup); 208 209 public: 210 std::vector<std::pair<StringRef, const MCSymbol *>> Symvers; 211 212 /// Construct a new assembler instance. 213 // 214 // FIXME: How are we going to parameterize this? Two obvious options are stay 215 // concrete and require clients to pass in a target like object. The other 216 // option is to make this abstract, and have targets provide concrete 217 // implementations as we do with AsmParser. 218 MCAssembler(MCContext &Context, std::unique_ptr<MCAsmBackend> Backend, 219 std::unique_ptr<MCCodeEmitter> Emitter, 220 std::unique_ptr<MCObjectWriter> Writer); 221 MCAssembler(const MCAssembler &) = delete; 222 MCAssembler &operator=(const MCAssembler &) = delete; 223 ~MCAssembler(); 224 225 /// Compute the effective fragment size assuming it is laid out at the given 226 /// \p SectionAddress and \p FragmentOffset. 227 uint64_t computeFragmentSize(const MCAsmLayout &Layout, 228 const MCFragment &F) const; 229 230 /// Find the symbol which defines the atom containing the given symbol, or 231 /// null if there is no such symbol. 232 const MCSymbol *getAtom(const MCSymbol &S) const; 233 234 /// Check whether a particular symbol is visible to the linker and is required 235 /// in the symbol table, or whether it can be discarded by the assembler. This 236 /// also effects whether the assembler treats the label as potentially 237 /// defining a separate atom. 238 bool isSymbolLinkerVisible(const MCSymbol &SD) const; 239 240 /// Emit the section contents to \p OS. 241 void writeSectionData(raw_ostream &OS, const MCSection *Section, 242 const MCAsmLayout &Layout) const; 243 244 /// Check whether a given symbol has been flagged with .thumb_func. 245 bool isThumbFunc(const MCSymbol *Func) const; 246 247 /// Flag a function symbol as the target of a .thumb_func directive. setIsThumbFunc(const MCSymbol * Func)248 void setIsThumbFunc(const MCSymbol *Func) { ThumbFuncs.insert(Func); } 249 250 /// ELF e_header flags getELFHeaderEFlags()251 unsigned getELFHeaderEFlags() const { return ELFHeaderEFlags; } setELFHeaderEFlags(unsigned Flags)252 void setELFHeaderEFlags(unsigned Flags) { ELFHeaderEFlags = Flags; } 253 254 /// MachO deployment target version information. getVersionInfo()255 const VersionInfoType &getVersionInfo() const { return VersionInfo; } 256 void setVersionMin(MCVersionMinType Type, unsigned Major, unsigned Minor, 257 unsigned Update, 258 VersionTuple SDKVersion = VersionTuple()) { 259 VersionInfo.EmitBuildVersion = false; 260 VersionInfo.TypeOrPlatform.Type = Type; 261 VersionInfo.Major = Major; 262 VersionInfo.Minor = Minor; 263 VersionInfo.Update = Update; 264 VersionInfo.SDKVersion = SDKVersion; 265 } 266 void setBuildVersion(MachO::PlatformType Platform, unsigned Major, 267 unsigned Minor, unsigned Update, 268 VersionTuple SDKVersion = VersionTuple()) { 269 VersionInfo.EmitBuildVersion = true; 270 VersionInfo.TypeOrPlatform.Platform = Platform; 271 VersionInfo.Major = Major; 272 VersionInfo.Minor = Minor; 273 VersionInfo.Update = Update; 274 VersionInfo.SDKVersion = SDKVersion; 275 } 276 277 /// Reuse an assembler instance 278 /// 279 void reset(); 280 getContext()281 MCContext &getContext() const { return Context; } 282 getBackendPtr()283 MCAsmBackend *getBackendPtr() const { return Backend.get(); } 284 getEmitterPtr()285 MCCodeEmitter *getEmitterPtr() const { return Emitter.get(); } 286 getWriterPtr()287 MCObjectWriter *getWriterPtr() const { return Writer.get(); } 288 getBackend()289 MCAsmBackend &getBackend() const { return *Backend; } 290 getEmitter()291 MCCodeEmitter &getEmitter() const { return *Emitter; } 292 getWriter()293 MCObjectWriter &getWriter() const { return *Writer; } 294 getDWARFLinetableParams()295 MCDwarfLineTableParams getDWARFLinetableParams() const { return LTParams; } setDWARFLinetableParams(MCDwarfLineTableParams P)296 void setDWARFLinetableParams(MCDwarfLineTableParams P) { LTParams = P; } 297 298 /// Finish - Do final processing and write the object to the output stream. 299 /// \p Writer is used for custom object writer (as the MCJIT does), 300 /// if not specified it is automatically created from backend. 301 void Finish(); 302 303 // Layout all section and prepare them for emission. 304 void layout(MCAsmLayout &Layout); 305 306 // FIXME: This does not belong here. getSubsectionsViaSymbols()307 bool getSubsectionsViaSymbols() const { return SubsectionsViaSymbols; } setSubsectionsViaSymbols(bool Value)308 void setSubsectionsViaSymbols(bool Value) { SubsectionsViaSymbols = Value; } 309 isIncrementalLinkerCompatible()310 bool isIncrementalLinkerCompatible() const { 311 return IncrementalLinkerCompatible; 312 } setIncrementalLinkerCompatible(bool Value)313 void setIncrementalLinkerCompatible(bool Value) { 314 IncrementalLinkerCompatible = Value; 315 } 316 getRelaxAll()317 bool getRelaxAll() const { return RelaxAll; } setRelaxAll(bool Value)318 void setRelaxAll(bool Value) { RelaxAll = Value; } 319 isBundlingEnabled()320 bool isBundlingEnabled() const { return BundleAlignSize != 0; } 321 getBundleAlignSize()322 unsigned getBundleAlignSize() const { return BundleAlignSize; } 323 setBundleAlignSize(unsigned Size)324 void setBundleAlignSize(unsigned Size) { 325 assert((Size == 0 || !(Size & (Size - 1))) && 326 "Expect a power-of-two bundle align size"); 327 BundleAlignSize = Size; 328 } 329 330 /// \name Section List Access 331 /// @{ 332 begin()333 iterator begin() { return Sections.begin(); } begin()334 const_iterator begin() const { return Sections.begin(); } 335 end()336 iterator end() { return Sections.end(); } end()337 const_iterator end() const { return Sections.end(); } 338 size()339 size_t size() const { return Sections.size(); } 340 341 /// @} 342 /// \name Symbol List Access 343 /// @{ symbol_begin()344 symbol_iterator symbol_begin() { return Symbols.begin(); } symbol_begin()345 const_symbol_iterator symbol_begin() const { return Symbols.begin(); } 346 symbol_end()347 symbol_iterator symbol_end() { return Symbols.end(); } symbol_end()348 const_symbol_iterator symbol_end() const { return Symbols.end(); } 349 symbols()350 symbol_range symbols() { return make_range(symbol_begin(), symbol_end()); } symbols()351 const_symbol_range symbols() const { 352 return make_range(symbol_begin(), symbol_end()); 353 } 354 symbol_size()355 size_t symbol_size() const { return Symbols.size(); } 356 357 /// @} 358 /// \name Indirect Symbol List Access 359 /// @{ 360 361 // FIXME: This is a total hack, this should not be here. Once things are 362 // factored so that the streamer has direct access to the .o writer, it can 363 // disappear. getIndirectSymbols()364 std::vector<IndirectSymbolData> &getIndirectSymbols() { 365 return IndirectSymbols; 366 } 367 indirect_symbol_begin()368 indirect_symbol_iterator indirect_symbol_begin() { 369 return IndirectSymbols.begin(); 370 } indirect_symbol_begin()371 const_indirect_symbol_iterator indirect_symbol_begin() const { 372 return IndirectSymbols.begin(); 373 } 374 indirect_symbol_end()375 indirect_symbol_iterator indirect_symbol_end() { 376 return IndirectSymbols.end(); 377 } indirect_symbol_end()378 const_indirect_symbol_iterator indirect_symbol_end() const { 379 return IndirectSymbols.end(); 380 } 381 indirect_symbol_size()382 size_t indirect_symbol_size() const { return IndirectSymbols.size(); } 383 384 /// @} 385 /// \name Linker Option List Access 386 /// @{ 387 getLinkerOptions()388 std::vector<std::vector<std::string>> &getLinkerOptions() { 389 return LinkerOptions; 390 } 391 392 /// @} 393 /// \name Data Region List Access 394 /// @{ 395 396 // FIXME: This is a total hack, this should not be here. Once things are 397 // factored so that the streamer has direct access to the .o writer, it can 398 // disappear. getDataRegions()399 std::vector<DataRegionData> &getDataRegions() { return DataRegions; } 400 data_region_begin()401 data_region_iterator data_region_begin() { return DataRegions.begin(); } data_region_begin()402 const_data_region_iterator data_region_begin() const { 403 return DataRegions.begin(); 404 } 405 data_region_end()406 data_region_iterator data_region_end() { return DataRegions.end(); } data_region_end()407 const_data_region_iterator data_region_end() const { 408 return DataRegions.end(); 409 } 410 data_region_size()411 size_t data_region_size() const { return DataRegions.size(); } 412 413 /// @} 414 /// \name Data Region List Access 415 /// @{ 416 417 // FIXME: This is a total hack, this should not be here. Once things are 418 // factored so that the streamer has direct access to the .o writer, it can 419 // disappear. getLOHContainer()420 MCLOHContainer &getLOHContainer() { return LOHContainer; } getLOHContainer()421 const MCLOHContainer &getLOHContainer() const { 422 return const_cast<MCAssembler *>(this)->getLOHContainer(); 423 } 424 425 struct CGProfileEntry { 426 const MCSymbolRefExpr *From; 427 const MCSymbolRefExpr *To; 428 uint64_t Count; 429 }; 430 std::vector<CGProfileEntry> CGProfile; 431 /// @} 432 /// \name Backend Data Access 433 /// @{ 434 435 bool registerSection(MCSection &Section); 436 437 void registerSymbol(const MCSymbol &Symbol, bool *Created = nullptr); 438 getFileNames()439 ArrayRef<std::string> getFileNames() { return FileNames; } 440 addFileName(StringRef FileName)441 void addFileName(StringRef FileName) { 442 if (!is_contained(FileNames, FileName)) 443 FileNames.push_back(FileName); 444 } 445 446 /// Write the necessary bundle padding to \p OS. 447 /// Expects a fragment \p F containing instructions and its size \p FSize. 448 void writeFragmentPadding(raw_ostream &OS, const MCEncodedFragment &F, 449 uint64_t FSize) const; 450 451 /// @} 452 453 void dump() const; 454 }; 455 456 /// Compute the amount of padding required before the fragment \p F to 457 /// obey bundling restrictions, where \p FOffset is the fragment's offset in 458 /// its section and \p FSize is the fragment's size. 459 uint64_t computeBundlePadding(const MCAssembler &Assembler, 460 const MCEncodedFragment *F, uint64_t FOffset, 461 uint64_t FSize); 462 463 } // end namespace llvm 464 465 #endif // LLVM_MC_MCASSEMBLER_H 466