xref: /llvm-project/llvm/include/llvm/Object/IRSymtab.h (revision 09b231cb38755e1bd122dbab9c57c4847bf64204)
1 //===- IRSymtab.h - data definitions for IR symbol tables -------*- 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 data definitions and a reader and builder for a symbol
10 // table for LLVM IR. Its purpose is to allow linkers and other consumers of
11 // bitcode files to efficiently read the symbol table for symbol resolution
12 // purposes without needing to construct a module in memory.
13 //
14 // As with most object files the symbol table has two parts: the symbol table
15 // itself and a string table which is referenced by the symbol table.
16 //
17 // A symbol table corresponds to a single bitcode file, which may consist of
18 // multiple modules, so symbol tables may likewise contain symbols for multiple
19 // modules.
20 //
21 //===----------------------------------------------------------------------===//
22 
23 #ifndef LLVM_OBJECT_IRSYMTAB_H
24 #define LLVM_OBJECT_IRSYMTAB_H
25 
26 #include "llvm/ADT/ArrayRef.h"
27 #include "llvm/ADT/StringRef.h"
28 #include "llvm/ADT/iterator_range.h"
29 #include "llvm/IR/Comdat.h"
30 #include "llvm/IR/GlobalValue.h"
31 #include "llvm/Object/SymbolicFile.h"
32 #include "llvm/Support/Allocator.h"
33 #include "llvm/Support/Endian.h"
34 #include "llvm/Support/Error.h"
35 #include <cassert>
36 #include <cstdint>
37 #include <vector>
38 
39 namespace llvm {
40 
41 struct BitcodeFileContents;
42 class StringTableBuilder;
43 
44 namespace irsymtab {
45 
46 namespace storage {
47 
48 // The data structures in this namespace define the low-level serialization
49 // format. Clients that just want to read a symbol table should use the
50 // irsymtab::Reader class.
51 
52 using Word = support::ulittle32_t;
53 
54 /// A reference to a string in the string table.
55 struct Str {
56   Word Offset, Size;
57 
58   StringRef get(StringRef Strtab) const {
59     return {Strtab.data() + Offset, Size};
60   }
61 };
62 
63 /// A reference to a range of objects in the symbol table.
64 template <typename T> struct Range {
65   Word Offset, Size;
66 
67   ArrayRef<T> get(StringRef Symtab) const {
68     return {reinterpret_cast<const T *>(Symtab.data() + Offset), Size};
69   }
70 };
71 
72 /// Describes the range of a particular module's symbols within the symbol
73 /// table.
74 struct Module {
75   Word Begin, End;
76 
77   /// The index of the first Uncommon for this Module.
78   Word UncBegin;
79 };
80 
81 /// This is equivalent to an IR comdat.
82 struct Comdat {
83   Str Name;
84 
85   // llvm::Comdat::SelectionKind
86   Word SelectionKind;
87 };
88 
89 /// Contains the information needed by linkers for symbol resolution, as well as
90 /// by the LTO implementation itself.
91 struct Symbol {
92   /// The mangled symbol name.
93   Str Name;
94 
95   /// The unmangled symbol name, or the empty string if this is not an IR
96   /// symbol.
97   Str IRName;
98 
99   /// The index into Header::Comdats, or -1 if not a comdat member.
100   Word ComdatIndex;
101 
102   Word Flags;
103   enum FlagBits {
104     FB_visibility, // 2 bits
105     FB_has_uncommon = FB_visibility + 2,
106     FB_undefined,
107     FB_weak,
108     FB_common,
109     FB_indirect,
110     FB_used,
111     FB_tls,
112     FB_may_omit,
113     FB_global,
114     FB_format_specific,
115     FB_unnamed_addr,
116     FB_executable,
117   };
118 };
119 
120 /// This data structure contains rarely used symbol fields and is optionally
121 /// referenced by a Symbol.
122 struct Uncommon {
123   Word CommonSize, CommonAlign;
124 
125   /// COFF-specific: the name of the symbol that a weak external resolves to
126   /// if not defined.
127   Str COFFWeakExternFallbackName;
128 
129   /// Specified section name, if any.
130   Str SectionName;
131 };
132 
133 
134 struct Header {
135   /// Version number of the symtab format. This number should be incremented
136   /// when the format changes, but it does not need to be incremented if a
137   /// change to LLVM would cause it to create a different symbol table.
138   Word Version;
139   enum { kCurrentVersion = 3 };
140 
141   /// The producer's version string (LLVM_VERSION_STRING " " LLVM_REVISION).
142   /// Consumers should rebuild the symbol table from IR if the producer's
143   /// version does not match the consumer's version due to potential differences
144   /// in symbol table format, symbol enumeration order and so on.
145   Str Producer;
146 
147   Range<Module> Modules;
148   Range<Comdat> Comdats;
149   Range<Symbol> Symbols;
150   Range<Uncommon> Uncommons;
151 
152   Str TargetTriple, SourceFileName;
153 
154   /// COFF-specific: linker directives.
155   Str COFFLinkerOpts;
156 
157   /// Dependent Library Specifiers
158   Range<Str> DependentLibraries;
159 };
160 
161 } // end namespace storage
162 
163 /// Fills in Symtab and StrtabBuilder with a valid symbol and string table for
164 /// Mods.
165 Error build(ArrayRef<Module *> Mods, SmallVector<char, 0> &Symtab,
166             StringTableBuilder &StrtabBuilder, BumpPtrAllocator &Alloc);
167 
168 /// This represents a symbol that has been read from a storage::Symbol and
169 /// possibly a storage::Uncommon.
170 struct Symbol {
171   // Copied from storage::Symbol.
172   mutable StringRef Name;
173   StringRef IRName;
174   int ComdatIndex;
175   uint32_t Flags;
176 
177   // Copied from storage::Uncommon.
178   uint32_t CommonSize, CommonAlign;
179   StringRef COFFWeakExternFallbackName;
180   StringRef SectionName;
181 
182   /// Returns the mangled symbol name.
183   StringRef getName() const { return Name; }
184 
185   /// Returns the unmangled symbol name, or the empty string if this is not an
186   /// IR symbol.
187   StringRef getIRName() const { return IRName; }
188 
189   /// Returns the index into the comdat table (see Reader::getComdatTable()), or
190   /// -1 if not a comdat member.
191   int getComdatIndex() const { return ComdatIndex; }
192 
193   using S = storage::Symbol;
194 
195   GlobalValue::VisibilityTypes getVisibility() const {
196     return GlobalValue::VisibilityTypes((Flags >> S::FB_visibility) & 3);
197   }
198 
199   bool isUndefined() const { return (Flags >> S::FB_undefined) & 1; }
200   bool isWeak() const { return (Flags >> S::FB_weak) & 1; }
201   bool isCommon() const { return (Flags >> S::FB_common) & 1; }
202   bool isIndirect() const { return (Flags >> S::FB_indirect) & 1; }
203   bool isUsed() const { return (Flags >> S::FB_used) & 1; }
204   bool isTLS() const { return (Flags >> S::FB_tls) & 1; }
205 
206   bool canBeOmittedFromSymbolTable() const {
207     return (Flags >> S::FB_may_omit) & 1;
208   }
209 
210   bool isGlobal() const { return (Flags >> S::FB_global) & 1; }
211   bool isFormatSpecific() const { return (Flags >> S::FB_format_specific) & 1; }
212   bool isUnnamedAddr() const { return (Flags >> S::FB_unnamed_addr) & 1; }
213   bool isExecutable() const { return (Flags >> S::FB_executable) & 1; }
214 
215   uint64_t getCommonSize() const {
216     assert(isCommon());
217     return CommonSize;
218   }
219 
220   uint32_t getCommonAlignment() const {
221     assert(isCommon());
222     return CommonAlign;
223   }
224 
225   /// COFF-specific: for weak externals, returns the name of the symbol that is
226   /// used as a fallback if the weak external remains undefined.
227   StringRef getCOFFWeakExternalFallback() const {
228     assert(isWeak() && isIndirect());
229     return COFFWeakExternFallbackName;
230   }
231 
232   StringRef getSectionName() const { return SectionName; }
233 };
234 
235 /// This class can be used to read a Symtab and Strtab produced by
236 /// irsymtab::build.
237 class Reader {
238   StringRef Symtab, Strtab;
239 
240   ArrayRef<storage::Module> Modules;
241   ArrayRef<storage::Comdat> Comdats;
242   ArrayRef<storage::Symbol> Symbols;
243   ArrayRef<storage::Uncommon> Uncommons;
244   ArrayRef<storage::Str> DependentLibraries;
245 
246   StringRef str(storage::Str S) const { return S.get(Strtab); }
247 
248   template <typename T> ArrayRef<T> range(storage::Range<T> R) const {
249     return R.get(Symtab);
250   }
251 
252   const storage::Header &header() const {
253     return *reinterpret_cast<const storage::Header *>(Symtab.data());
254   }
255 
256 public:
257   class SymbolRef;
258 
259   Reader() = default;
260   Reader(StringRef Symtab, StringRef Strtab) : Symtab(Symtab), Strtab(Strtab) {
261     Modules = range(header().Modules);
262     Comdats = range(header().Comdats);
263     Symbols = range(header().Symbols);
264     Uncommons = range(header().Uncommons);
265     DependentLibraries = range(header().DependentLibraries);
266   }
267 
268   using symbol_range = iterator_range<object::content_iterator<SymbolRef>>;
269 
270   /// Returns the symbol table for the entire bitcode file.
271   /// The symbols enumerated by this method are ephemeral, but they can be
272   /// copied into an irsymtab::Symbol object.
273   symbol_range symbols() const;
274 
275   size_t getNumModules() const { return Modules.size(); }
276 
277   /// Returns a slice of the symbol table for the I'th module in the file.
278   /// The symbols enumerated by this method are ephemeral, but they can be
279   /// copied into an irsymtab::Symbol object.
280   symbol_range module_symbols(unsigned I) const;
281 
282   StringRef getTargetTriple() const { return str(header().TargetTriple); }
283 
284   /// Returns the source file path specified at compile time.
285   StringRef getSourceFileName() const { return str(header().SourceFileName); }
286 
287   /// Returns a table with all the comdats used by this file.
288   std::vector<std::pair<StringRef, llvm::Comdat::SelectionKind>>
289   getComdatTable() const {
290     std::vector<std::pair<StringRef, llvm::Comdat::SelectionKind>> ComdatTable;
291     ComdatTable.reserve(Comdats.size());
292     for (auto C : Comdats)
293       ComdatTable.push_back({str(C.Name), llvm::Comdat::SelectionKind(
294                                               uint32_t(C.SelectionKind))});
295     return ComdatTable;
296   }
297 
298   /// COFF-specific: returns linker options specified in the input file.
299   StringRef getCOFFLinkerOpts() const { return str(header().COFFLinkerOpts); }
300 
301   /// Returns dependent library specifiers
302   std::vector<StringRef> getDependentLibraries() const {
303     std::vector<StringRef> Specifiers;
304     Specifiers.reserve(DependentLibraries.size());
305     for (auto S : DependentLibraries) {
306       Specifiers.push_back(str(S));
307     }
308     return Specifiers;
309   }
310 };
311 
312 /// Ephemeral symbols produced by Reader::symbols() and
313 /// Reader::module_symbols().
314 class Reader::SymbolRef : public Symbol {
315   const storage::Symbol *SymI, *SymE;
316   const storage::Uncommon *UncI;
317   const Reader *R;
318 
319   void read() {
320     if (SymI == SymE)
321       return;
322 
323     Name = R->str(SymI->Name);
324     IRName = R->str(SymI->IRName);
325     ComdatIndex = SymI->ComdatIndex;
326     Flags = SymI->Flags;
327 
328     if (Flags & (1 << storage::Symbol::FB_has_uncommon)) {
329       CommonSize = UncI->CommonSize;
330       CommonAlign = UncI->CommonAlign;
331       COFFWeakExternFallbackName = R->str(UncI->COFFWeakExternFallbackName);
332       SectionName = R->str(UncI->SectionName);
333     } else
334       // Reset this field so it can be queried unconditionally for all symbols.
335       SectionName = "";
336   }
337 
338 public:
339   SymbolRef(const storage::Symbol *SymI, const storage::Symbol *SymE,
340             const storage::Uncommon *UncI, const Reader *R)
341       : SymI(SymI), SymE(SymE), UncI(UncI), R(R) {
342     read();
343   }
344 
345   void moveNext() {
346     ++SymI;
347     if (Flags & (1 << storage::Symbol::FB_has_uncommon))
348       ++UncI;
349     read();
350   }
351 
352   bool operator==(const SymbolRef &Other) const { return SymI == Other.SymI; }
353 };
354 
355 inline Reader::symbol_range Reader::symbols() const {
356   return {SymbolRef(Symbols.begin(), Symbols.end(), Uncommons.begin(), this),
357           SymbolRef(Symbols.end(), Symbols.end(), nullptr, this)};
358 }
359 
360 inline Reader::symbol_range Reader::module_symbols(unsigned I) const {
361   const storage::Module &M = Modules[I];
362   const storage::Symbol *MBegin = Symbols.begin() + M.Begin,
363                         *MEnd = Symbols.begin() + M.End;
364   return {SymbolRef(MBegin, MEnd, Uncommons.begin() + M.UncBegin, this),
365           SymbolRef(MEnd, MEnd, nullptr, this)};
366 }
367 
368 /// The contents of the irsymtab in a bitcode file. Any underlying data for the
369 /// irsymtab are owned by Symtab and Strtab.
370 struct FileContents {
371   SmallVector<char, 0> Symtab, Strtab;
372   Reader TheReader;
373 };
374 
375 /// Reads the contents of a bitcode file, creating its irsymtab if necessary.
376 Expected<FileContents> readBitcode(const BitcodeFileContents &BFC);
377 
378 } // end namespace irsymtab
379 } // end namespace llvm
380 
381 #endif // LLVM_OBJECT_IRSYMTAB_H
382