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