1 //===- MCSymbol.h - Machine Code Symbols ------------------------*- 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 // This file contains the declaration of the MCSymbol class. 10 // 11 //===----------------------------------------------------------------------===// 12 13 #ifndef LLVM_MC_MCSYMBOL_H 14 #define LLVM_MC_MCSYMBOL_H 15 16 #include "llvm/ADT/StringMapEntry.h" 17 #include "llvm/ADT/StringRef.h" 18 #include "llvm/MC/MCExpr.h" 19 #include "llvm/MC/MCFragment.h" 20 #include "llvm/MC/MCSymbolTableEntry.h" 21 #include "llvm/Support/ErrorHandling.h" 22 #include "llvm/Support/MathExtras.h" 23 #include <cassert> 24 #include <cstddef> 25 #include <cstdint> 26 27 namespace llvm { 28 29 class MCAsmInfo; 30 class MCContext; 31 class MCSection; 32 class raw_ostream; 33 34 /// MCSymbol - Instances of this class represent a symbol name in the MC file, 35 /// and MCSymbols are created and uniqued by the MCContext class. MCSymbols 36 /// should only be constructed with valid names for the object file. 37 /// 38 /// If the symbol is defined/emitted into the current translation unit, the 39 /// Section member is set to indicate what section it lives in. Otherwise, if 40 /// it is a reference to an external entity, it has a null section. 41 class MCSymbol { 42 protected: 43 /// The kind of the symbol. If it is any value other than unset then this 44 /// class is actually one of the appropriate subclasses of MCSymbol. 45 enum SymbolKind { 46 SymbolKindUnset, 47 SymbolKindCOFF, 48 SymbolKindELF, 49 SymbolKindGOFF, 50 SymbolKindMachO, 51 SymbolKindWasm, 52 SymbolKindXCOFF, 53 }; 54 55 /// A symbol can contain an Offset, or Value, or be Common, but never more 56 /// than one of these. 57 enum Contents : uint8_t { 58 SymContentsUnset, 59 SymContentsOffset, 60 SymContentsVariable, 61 SymContentsCommon, 62 SymContentsTargetCommon, // Index stores the section index 63 }; 64 65 // Special sentinel value for the absolute pseudo fragment. 66 static MCFragment *AbsolutePseudoFragment; 67 68 /// If a symbol has a Fragment, the section is implied, so we only need 69 /// one pointer. 70 /// The special AbsolutePseudoFragment value is for absolute symbols. 71 /// If this is a variable symbol, this caches the variable value's fragment. 72 /// FIXME: We might be able to simplify this by having the asm streamer create 73 /// dummy fragments. 74 /// If this is a section, then it gives the symbol is defined in. This is null 75 /// for undefined symbols. 76 /// 77 /// If this is a fragment, then it gives the fragment this symbol's value is 78 /// relative to, if any. 79 mutable MCFragment *Fragment = nullptr; 80 81 /// True if this symbol is named. A named symbol will have a pointer to the 82 /// name allocated in the bytes immediately prior to the MCSymbol. 83 unsigned HasName : 1; 84 85 /// IsTemporary - True if this is an assembler temporary label, which 86 /// typically does not survive in the .o file's symbol table. Usually 87 /// "Lfoo" or ".foo". 88 unsigned IsTemporary : 1; 89 90 /// True if this symbol can be redefined. 91 unsigned IsRedefinable : 1; 92 93 /// IsUsed - True if this symbol has been used. 94 mutable unsigned IsUsed : 1; 95 96 mutable unsigned IsRegistered : 1; 97 98 /// True if this symbol is visible outside this translation unit. Note: ELF 99 /// uses binding instead of this bit. 100 mutable unsigned IsExternal : 1; 101 102 /// Mach-O specific: This symbol is private extern. 103 mutable unsigned IsPrivateExtern : 1; 104 105 /// This symbol is weak external. 106 mutable unsigned IsWeakExternal : 1; 107 108 /// LLVM RTTI discriminator. This is actually a SymbolKind enumerator, but is 109 /// unsigned to avoid sign extension and achieve better bitpacking with MSVC. 110 unsigned Kind : 3; 111 112 /// True if we have created a relocation that uses this symbol. 113 mutable unsigned IsUsedInReloc : 1; 114 115 /// This is actually a Contents enumerator, but is unsigned to avoid sign 116 /// extension and achieve better bitpacking with MSVC. 117 unsigned SymbolContents : 3; 118 119 /// The alignment of the symbol if it is 'common'. 120 /// 121 /// Internally, this is stored as log2(align) + 1. 122 /// We reserve 5 bits to encode this value which allows the following values 123 /// 0b00000 -> unset 124 /// 0b00001 -> 1ULL << 0 = 1 125 /// 0b00010 -> 1ULL << 1 = 2 126 /// 0b00011 -> 1ULL << 2 = 4 127 /// ... 128 /// 0b11111 -> 1ULL << 30 = 1 GiB 129 enum : unsigned { NumCommonAlignmentBits = 5 }; 130 unsigned CommonAlignLog2 : NumCommonAlignmentBits; 131 132 /// The Flags field is used by object file implementations to store 133 /// additional per symbol information which is not easily classified. 134 enum : unsigned { NumFlagsBits = 16 }; 135 mutable uint32_t Flags : NumFlagsBits; 136 137 /// Index field, for use by the object file implementation. 138 mutable uint32_t Index = 0; 139 140 union { 141 /// The offset to apply to the fragment address to form this symbol's value. 142 uint64_t Offset; 143 144 /// The size of the symbol, if it is 'common'. 145 uint64_t CommonSize; 146 147 /// If non-null, the value for a variable symbol. 148 const MCExpr *Value; 149 }; 150 151 // MCContext creates and uniques these. 152 friend class MCExpr; 153 friend class MCContext; 154 155 /// The name for a symbol. 156 /// MCSymbol contains a uint64_t so is probably aligned to 8. On a 32-bit 157 /// system, the name is a pointer so isn't going to satisfy the 8 byte 158 /// alignment of uint64_t. Account for that here. 159 using NameEntryStorageTy = union { 160 const MCSymbolTableEntry *NameEntry; 161 uint64_t AlignmentPadding; 162 }; 163 MCSymbol(SymbolKind Kind,const MCSymbolTableEntry * Name,bool isTemporary)164 MCSymbol(SymbolKind Kind, const MCSymbolTableEntry *Name, bool isTemporary) 165 : IsTemporary(isTemporary), IsRedefinable(false), IsUsed(false), 166 IsRegistered(false), IsExternal(false), IsPrivateExtern(false), 167 IsWeakExternal(false), Kind(Kind), IsUsedInReloc(false), 168 SymbolContents(SymContentsUnset), CommonAlignLog2(0), Flags(0) { 169 Offset = 0; 170 HasName = !!Name; 171 if (Name) 172 getNameEntryPtr() = Name; 173 } 174 175 // Provide custom new/delete as we will only allocate space for a name 176 // if we need one. 177 void *operator new(size_t s, const MCSymbolTableEntry *Name, MCContext &Ctx); 178 179 private: 180 void operator delete(void *); 181 /// Placement delete - required by std, but never called. delete(void *,unsigned)182 void operator delete(void*, unsigned) { 183 llvm_unreachable("Constructor throws?"); 184 } 185 /// Placement delete - required by std, but never called. delete(void *,unsigned,bool)186 void operator delete(void*, unsigned, bool) { 187 llvm_unreachable("Constructor throws?"); 188 } 189 190 /// Get a reference to the name field. Requires that we have a name getNameEntryPtr()191 const MCSymbolTableEntry *&getNameEntryPtr() { 192 assert(HasName && "Name is required"); 193 NameEntryStorageTy *Name = reinterpret_cast<NameEntryStorageTy *>(this); 194 return (*(Name - 1)).NameEntry; 195 } getNameEntryPtr()196 const MCSymbolTableEntry *&getNameEntryPtr() const { 197 return const_cast<MCSymbol*>(this)->getNameEntryPtr(); 198 } 199 200 public: 201 MCSymbol(const MCSymbol &) = delete; 202 MCSymbol &operator=(const MCSymbol &) = delete; 203 204 /// getName - Get the symbol name. getName()205 StringRef getName() const { 206 if (!HasName) 207 return StringRef(); 208 209 return getNameEntryPtr()->first(); 210 } 211 isRegistered()212 bool isRegistered() const { return IsRegistered; } setIsRegistered(bool Value)213 void setIsRegistered(bool Value) const { IsRegistered = Value; } 214 setUsedInReloc()215 void setUsedInReloc() const { IsUsedInReloc = true; } isUsedInReloc()216 bool isUsedInReloc() const { return IsUsedInReloc; } 217 218 /// \name Accessors 219 /// @{ 220 221 /// isTemporary - Check if this is an assembler temporary symbol. isTemporary()222 bool isTemporary() const { return IsTemporary; } 223 224 /// isUsed - Check if this is used. isUsed()225 bool isUsed() const { return IsUsed; } 226 227 /// Check if this symbol is redefinable. isRedefinable()228 bool isRedefinable() const { return IsRedefinable; } 229 /// Mark this symbol as redefinable. setRedefinable(bool Value)230 void setRedefinable(bool Value) { IsRedefinable = Value; } 231 /// Prepare this symbol to be redefined. redefineIfPossible()232 void redefineIfPossible() { 233 if (IsRedefinable) { 234 if (SymbolContents == SymContentsVariable) { 235 Value = nullptr; 236 SymbolContents = SymContentsUnset; 237 } 238 setUndefined(); 239 IsRedefinable = false; 240 } 241 } 242 243 /// @} 244 /// \name Associated Sections 245 /// @{ 246 247 /// isDefined - Check if this symbol is defined (i.e., it has an address). 248 /// 249 /// Defined symbols are either absolute or in some section. isDefined()250 bool isDefined() const { return !isUndefined(); } 251 252 /// isInSection - Check if this symbol is defined in some section (i.e., it 253 /// is defined but not absolute). isInSection()254 bool isInSection() const { 255 return isDefined() && !isAbsolute(); 256 } 257 258 /// isUndefined - Check if this symbol undefined (i.e., implicitly defined). 259 bool isUndefined(bool SetUsed = true) const { 260 return getFragment(SetUsed) == nullptr; 261 } 262 263 /// isAbsolute - Check if this is an absolute symbol. isAbsolute()264 bool isAbsolute() const { 265 return getFragment() == AbsolutePseudoFragment; 266 } 267 268 /// Get the section associated with a defined, non-absolute symbol. getSection()269 MCSection &getSection() const { 270 assert(isInSection() && "Invalid accessor!"); 271 return *getFragment()->getParent(); 272 } 273 274 /// Mark the symbol as defined in the fragment \p F. setFragment(MCFragment * F)275 void setFragment(MCFragment *F) const { 276 assert(!isVariable() && "Cannot set fragment of variable"); 277 Fragment = F; 278 } 279 280 /// Mark the symbol as undefined. setUndefined()281 void setUndefined() { Fragment = nullptr; } 282 isELF()283 bool isELF() const { return Kind == SymbolKindELF; } 284 isCOFF()285 bool isCOFF() const { return Kind == SymbolKindCOFF; } 286 isGOFF()287 bool isGOFF() const { return Kind == SymbolKindGOFF; } 288 isMachO()289 bool isMachO() const { return Kind == SymbolKindMachO; } 290 isWasm()291 bool isWasm() const { return Kind == SymbolKindWasm; } 292 isXCOFF()293 bool isXCOFF() const { return Kind == SymbolKindXCOFF; } 294 295 /// @} 296 /// \name Variable Symbols 297 /// @{ 298 299 /// isVariable - Check if this is a variable symbol. isVariable()300 bool isVariable() const { 301 return SymbolContents == SymContentsVariable; 302 } 303 304 /// getVariableValue - Get the value for variable symbols. 305 const MCExpr *getVariableValue(bool SetUsed = true) const { 306 assert(isVariable() && "Invalid accessor!"); 307 IsUsed |= SetUsed; 308 return Value; 309 } 310 311 void setVariableValue(const MCExpr *Value); 312 313 /// @} 314 315 /// Get the (implementation defined) index. getIndex()316 uint32_t getIndex() const { 317 return Index; 318 } 319 320 /// Set the (implementation defined) index. setIndex(uint32_t Value)321 void setIndex(uint32_t Value) const { 322 Index = Value; 323 } 324 isUnset()325 bool isUnset() const { return SymbolContents == SymContentsUnset; } 326 getOffset()327 uint64_t getOffset() const { 328 assert((SymbolContents == SymContentsUnset || 329 SymbolContents == SymContentsOffset) && 330 "Cannot get offset for a common/variable symbol"); 331 return Offset; 332 } setOffset(uint64_t Value)333 void setOffset(uint64_t Value) { 334 assert((SymbolContents == SymContentsUnset || 335 SymbolContents == SymContentsOffset) && 336 "Cannot set offset for a common/variable symbol"); 337 Offset = Value; 338 SymbolContents = SymContentsOffset; 339 } 340 341 /// Return the size of a 'common' symbol. getCommonSize()342 uint64_t getCommonSize() const { 343 assert(isCommon() && "Not a 'common' symbol!"); 344 return CommonSize; 345 } 346 347 /// Mark this symbol as being 'common'. 348 /// 349 /// \param Size - The size of the symbol. 350 /// \param Alignment - The alignment of the symbol. 351 /// \param Target - Is the symbol a target-specific common-like symbol. 352 void setCommon(uint64_t Size, Align Alignment, bool Target = false) { 353 assert(getOffset() == 0); 354 CommonSize = Size; 355 SymbolContents = Target ? SymContentsTargetCommon : SymContentsCommon; 356 357 unsigned Log2Align = encode(Alignment); 358 assert(Log2Align < (1U << NumCommonAlignmentBits) && 359 "Out of range alignment"); 360 CommonAlignLog2 = Log2Align; 361 } 362 363 /// Return the alignment of a 'common' symbol. getCommonAlignment()364 MaybeAlign getCommonAlignment() const { 365 assert(isCommon() && "Not a 'common' symbol!"); 366 return decodeMaybeAlign(CommonAlignLog2); 367 } 368 369 /// Declare this symbol as being 'common'. 370 /// 371 /// \param Size - The size of the symbol. 372 /// \param Alignment - The alignment of the symbol. 373 /// \param Target - Is the symbol a target-specific common-like symbol. 374 /// \return True if symbol was already declared as a different type 375 bool declareCommon(uint64_t Size, Align Alignment, bool Target = false) { 376 assert(isCommon() || getOffset() == 0); 377 if(isCommon()) { 378 if (CommonSize != Size || getCommonAlignment() != Alignment || 379 isTargetCommon() != Target) 380 return true; 381 } else 382 setCommon(Size, Alignment, Target); 383 return false; 384 } 385 386 /// Is this a 'common' symbol. isCommon()387 bool isCommon() const { 388 return SymbolContents == SymContentsCommon || 389 SymbolContents == SymContentsTargetCommon; 390 } 391 392 /// Is this a target-specific common-like symbol. isTargetCommon()393 bool isTargetCommon() const { 394 return SymbolContents == SymContentsTargetCommon; 395 } 396 397 MCFragment *getFragment(bool SetUsed = true) const { 398 if (Fragment || !isVariable() || isWeakExternal()) 399 return Fragment; 400 // If the symbol is a non-weak alias, get information about 401 // the aliasee. (Don't try to resolve weak aliases.) 402 Fragment = getVariableValue(SetUsed)->findAssociatedFragment(); 403 return Fragment; 404 } 405 406 // For ELF, use MCSymbolELF::setBinding instead. isExternal()407 bool isExternal() const { return IsExternal; } setExternal(bool Value)408 void setExternal(bool Value) const { IsExternal = Value; } 409 410 // COFF-specific isWeakExternal()411 bool isWeakExternal() const { return IsWeakExternal; } 412 413 /// print - Print the value to the stream \p OS. 414 void print(raw_ostream &OS, const MCAsmInfo *MAI) const; 415 416 /// dump - Print the value to stderr. 417 void dump() const; 418 419 protected: 420 /// Get the (implementation defined) symbol flags. getFlags()421 uint32_t getFlags() const { return Flags; } 422 423 /// Set the (implementation defined) symbol flags. setFlags(uint32_t Value)424 void setFlags(uint32_t Value) const { 425 assert(Value < (1U << NumFlagsBits) && "Out of range flags"); 426 Flags = Value; 427 } 428 429 /// Modify the flags via a mask modifyFlags(uint32_t Value,uint32_t Mask)430 void modifyFlags(uint32_t Value, uint32_t Mask) const { 431 assert(Value < (1U << NumFlagsBits) && "Out of range flags"); 432 Flags = (Flags & ~Mask) | Value; 433 } 434 }; 435 436 inline raw_ostream &operator<<(raw_ostream &OS, const MCSymbol &Sym) { 437 Sym.print(OS, nullptr); 438 return OS; 439 } 440 441 } // end namespace llvm 442 443 #endif // LLVM_MC_MCSYMBOL_H 444