1 //===- LinkerScript.cpp ---------------------------------------------------===//
2 //
3 //                             The LLVM Linker
4 //
5 // This file is distributed under the University of Illinois Open Source
6 // License. See LICENSE.TXT for details.
7 //
8 //===----------------------------------------------------------------------===//
9 //
10 // This file contains the parser/evaluator of the linker script.
11 //
12 //===----------------------------------------------------------------------===//
13 
14 #include "LinkerScript.h"
15 #include "Config.h"
16 #include "Driver.h"
17 #include "InputSection.h"
18 #include "Memory.h"
19 #include "OutputSections.h"
20 #include "ScriptParser.h"
21 #include "Strings.h"
22 #include "SymbolTable.h"
23 #include "Symbols.h"
24 #include "SyntheticSections.h"
25 #include "Target.h"
26 #include "Writer.h"
27 #include "llvm/ADT/STLExtras.h"
28 #include "llvm/ADT/SmallString.h"
29 #include "llvm/ADT/StringRef.h"
30 #include "llvm/ADT/StringSwitch.h"
31 #include "llvm/Support/Casting.h"
32 #include "llvm/Support/ELF.h"
33 #include "llvm/Support/Endian.h"
34 #include "llvm/Support/ErrorHandling.h"
35 #include "llvm/Support/FileSystem.h"
36 #include "llvm/Support/MathExtras.h"
37 #include "llvm/Support/Path.h"
38 #include <algorithm>
39 #include <cassert>
40 #include <cstddef>
41 #include <cstdint>
42 #include <iterator>
43 #include <limits>
44 #include <memory>
45 #include <string>
46 #include <tuple>
47 #include <vector>
48 
49 using namespace llvm;
50 using namespace llvm::ELF;
51 using namespace llvm::object;
52 using namespace llvm::support::endian;
53 using namespace lld;
54 using namespace lld::elf;
55 
56 LinkerScriptBase *elf::ScriptBase;
57 ScriptConfiguration *elf::ScriptConfig;
58 
59 template <class ELFT> static SymbolBody *addRegular(SymbolAssignment *Cmd) {
60   uint8_t Visibility = Cmd->Hidden ? STV_HIDDEN : STV_DEFAULT;
61   Symbol *Sym = Symtab<ELFT>::X->addUndefined(
62       Cmd->Name, /*IsLocal=*/false, STB_GLOBAL, Visibility,
63       /*Type*/ 0,
64       /*CanOmitFromDynSym*/ false, /*File*/ nullptr);
65 
66   replaceBody<DefinedRegular<ELFT>>(Sym, Cmd->Name, /*IsLocal=*/false,
67                                     Visibility, STT_NOTYPE, 0, 0, nullptr,
68                                     nullptr);
69   return Sym->body();
70 }
71 
72 template <class ELFT> static SymbolBody *addSynthetic(SymbolAssignment *Cmd) {
73   uint8_t Visibility = Cmd->Hidden ? STV_HIDDEN : STV_DEFAULT;
74   const OutputSectionBase *Sec =
75       ScriptConfig->HasSections ? nullptr : Cmd->Expression.Section();
76   Symbol *Sym = Symtab<ELFT>::X->addUndefined(
77       Cmd->Name, /*IsLocal=*/false, STB_GLOBAL, Visibility,
78       /*Type*/ 0,
79       /*CanOmitFromDynSym*/ false, /*File*/ nullptr);
80 
81   replaceBody<DefinedSynthetic>(Sym, Cmd->Name, 0, Sec);
82   return Sym->body();
83 }
84 
85 static bool isUnderSysroot(StringRef Path) {
86   if (Config->Sysroot == "")
87     return false;
88   for (; !Path.empty(); Path = sys::path::parent_path(Path))
89     if (sys::fs::equivalent(Config->Sysroot, Path))
90       return true;
91   return false;
92 }
93 
94 template <class ELFT> static void assignSymbol(SymbolAssignment *Cmd) {
95   // If there are sections, then let the value be assigned later in
96   // `assignAddresses`.
97   if (ScriptConfig->HasSections)
98     return;
99 
100   uint64_t Value = Cmd->Expression(0);
101   if (Cmd->Expression.IsAbsolute()) {
102     cast<DefinedRegular<ELFT>>(Cmd->Sym)->Value = Value;
103   } else {
104     const OutputSectionBase *Sec = Cmd->Expression.Section();
105     if (Sec)
106       cast<DefinedSynthetic>(Cmd->Sym)->Value = Value - Sec->Addr;
107   }
108 }
109 
110 template <class ELFT> static void addSymbol(SymbolAssignment *Cmd) {
111   if (Cmd->Name == ".")
112     return;
113 
114   // If a symbol was in PROVIDE(), we need to define it only when
115   // it is a referenced undefined symbol.
116   SymbolBody *B = Symtab<ELFT>::X->find(Cmd->Name);
117   if (Cmd->Provide && (!B || B->isDefined()))
118     return;
119 
120   // Otherwise, create a new symbol if one does not exist or an
121   // undefined one does exist.
122   if (Cmd->Expression.IsAbsolute())
123     Cmd->Sym = addRegular<ELFT>(Cmd);
124   else
125     Cmd->Sym = addSynthetic<ELFT>(Cmd);
126   assignSymbol<ELFT>(Cmd);
127 }
128 
129 bool SymbolAssignment::classof(const BaseCommand *C) {
130   return C->Kind == AssignmentKind;
131 }
132 
133 bool OutputSectionCommand::classof(const BaseCommand *C) {
134   return C->Kind == OutputSectionKind;
135 }
136 
137 bool InputSectionDescription::classof(const BaseCommand *C) {
138   return C->Kind == InputSectionKind;
139 }
140 
141 bool AssertCommand::classof(const BaseCommand *C) {
142   return C->Kind == AssertKind;
143 }
144 
145 bool BytesDataCommand::classof(const BaseCommand *C) {
146   return C->Kind == BytesDataKind;
147 }
148 
149 template <class ELFT> LinkerScript<ELFT>::LinkerScript() = default;
150 template <class ELFT> LinkerScript<ELFT>::~LinkerScript() = default;
151 
152 template <class ELFT> static StringRef basename(InputSectionBase<ELFT> *S) {
153   if (S->getFile())
154     return sys::path::filename(S->getFile()->getName());
155   return "";
156 }
157 
158 template <class ELFT>
159 bool LinkerScript<ELFT>::shouldKeep(InputSectionBase<ELFT> *S) {
160   for (InputSectionDescription *ID : Opt.KeptSections)
161     if (ID->FilePat.match(basename(S)))
162       for (SectionPattern &P : ID->SectionPatterns)
163         if (P.SectionPat.match(S->Name))
164           return true;
165   return false;
166 }
167 
168 static bool comparePriority(InputSectionData *A, InputSectionData *B) {
169   return getPriority(A->Name) < getPriority(B->Name);
170 }
171 
172 static bool compareName(InputSectionData *A, InputSectionData *B) {
173   return A->Name < B->Name;
174 }
175 
176 static bool compareAlignment(InputSectionData *A, InputSectionData *B) {
177   // ">" is not a mistake. Larger alignments are placed before smaller
178   // alignments in order to reduce the amount of padding necessary.
179   // This is compatible with GNU.
180   return A->Alignment > B->Alignment;
181 }
182 
183 static std::function<bool(InputSectionData *, InputSectionData *)>
184 getComparator(SortSectionPolicy K) {
185   switch (K) {
186   case SortSectionPolicy::Alignment:
187     return compareAlignment;
188   case SortSectionPolicy::Name:
189     return compareName;
190   case SortSectionPolicy::Priority:
191     return comparePriority;
192   default:
193     llvm_unreachable("unknown sort policy");
194   }
195 }
196 
197 template <class ELFT>
198 static bool matchConstraints(ArrayRef<InputSectionBase<ELFT> *> Sections,
199                              ConstraintKind Kind) {
200   if (Kind == ConstraintKind::NoConstraint)
201     return true;
202   bool IsRW = llvm::any_of(Sections, [=](InputSectionData *Sec2) {
203     auto *Sec = static_cast<InputSectionBase<ELFT> *>(Sec2);
204     return Sec->Flags & SHF_WRITE;
205   });
206   return (IsRW && Kind == ConstraintKind::ReadWrite) ||
207          (!IsRW && Kind == ConstraintKind::ReadOnly);
208 }
209 
210 static void sortSections(InputSectionData **Begin, InputSectionData **End,
211                          SortSectionPolicy K) {
212   if (K != SortSectionPolicy::Default && K != SortSectionPolicy::None)
213     std::stable_sort(Begin, End, getComparator(K));
214 }
215 
216 // Compute and remember which sections the InputSectionDescription matches.
217 template <class ELFT>
218 void LinkerScript<ELFT>::computeInputSections(InputSectionDescription *I) {
219   // Collects all sections that satisfy constraints of I
220   // and attach them to I.
221   for (SectionPattern &Pat : I->SectionPatterns) {
222     size_t SizeBefore = I->Sections.size();
223 
224     for (InputSectionBase<ELFT> *S : Symtab<ELFT>::X->Sections) {
225       if (!S->Live || S->Assigned)
226         continue;
227 
228       StringRef Filename = basename(S);
229       if (!I->FilePat.match(Filename) || Pat.ExcludedFilePat.match(Filename))
230         continue;
231       if (!Pat.SectionPat.match(S->Name))
232         continue;
233       I->Sections.push_back(S);
234       S->Assigned = true;
235     }
236 
237     // Sort sections as instructed by SORT-family commands and --sort-section
238     // option. Because SORT-family commands can be nested at most two depth
239     // (e.g. SORT_BY_NAME(SORT_BY_ALIGNMENT(.text.*))) and because the command
240     // line option is respected even if a SORT command is given, the exact
241     // behavior we have here is a bit complicated. Here are the rules.
242     //
243     // 1. If two SORT commands are given, --sort-section is ignored.
244     // 2. If one SORT command is given, and if it is not SORT_NONE,
245     //    --sort-section is handled as an inner SORT command.
246     // 3. If one SORT command is given, and if it is SORT_NONE, don't sort.
247     // 4. If no SORT command is given, sort according to --sort-section.
248     InputSectionData **Begin = I->Sections.data() + SizeBefore;
249     InputSectionData **End = I->Sections.data() + I->Sections.size();
250     if (Pat.SortOuter != SortSectionPolicy::None) {
251       if (Pat.SortInner == SortSectionPolicy::Default)
252         sortSections(Begin, End, Config->SortSection);
253       else
254         sortSections(Begin, End, Pat.SortInner);
255       sortSections(Begin, End, Pat.SortOuter);
256     }
257   }
258 }
259 
260 template <class ELFT>
261 void LinkerScript<ELFT>::discard(ArrayRef<InputSectionBase<ELFT> *> V) {
262   for (InputSectionBase<ELFT> *S : V) {
263     S->Live = false;
264     reportDiscarded(S);
265   }
266 }
267 
268 template <class ELFT>
269 std::vector<InputSectionBase<ELFT> *>
270 LinkerScript<ELFT>::createInputSectionList(OutputSectionCommand &OutCmd) {
271   std::vector<InputSectionBase<ELFT> *> Ret;
272 
273   for (const std::unique_ptr<BaseCommand> &Base : OutCmd.Commands) {
274     auto *Cmd = dyn_cast<InputSectionDescription>(Base.get());
275     if (!Cmd)
276       continue;
277     computeInputSections(Cmd);
278     for (InputSectionData *S : Cmd->Sections)
279       Ret.push_back(static_cast<InputSectionBase<ELFT> *>(S));
280   }
281 
282   return Ret;
283 }
284 
285 template <class ELFT>
286 void LinkerScript<ELFT>::addSection(OutputSectionFactory<ELFT> &Factory,
287                                     InputSectionBase<ELFT> *Sec,
288                                     StringRef Name) {
289   OutputSectionBase *OutSec;
290   bool IsNew;
291   std::tie(OutSec, IsNew) = Factory.create(Sec, Name);
292   if (IsNew)
293     OutputSections->push_back(OutSec);
294   OutSec->addSection(Sec);
295 }
296 
297 template <class ELFT>
298 void LinkerScript<ELFT>::processCommands(OutputSectionFactory<ELFT> &Factory) {
299   for (unsigned I = 0; I < Opt.Commands.size(); ++I) {
300     auto Iter = Opt.Commands.begin() + I;
301     const std::unique_ptr<BaseCommand> &Base1 = *Iter;
302 
303     // Handle symbol assignments outside of any output section.
304     if (auto *Cmd = dyn_cast<SymbolAssignment>(Base1.get())) {
305       addSymbol<ELFT>(Cmd);
306       continue;
307     }
308 
309     if (auto *Cmd = dyn_cast<AssertCommand>(Base1.get())) {
310       // If we don't have SECTIONS then output sections have already been
311       // created by Writer<ELFT>. The LinkerScript<ELFT>::assignAddresses
312       // will not be called, so ASSERT should be evaluated now.
313       if (!Opt.HasSections)
314         Cmd->Expression(0);
315       continue;
316     }
317 
318     if (auto *Cmd = dyn_cast<OutputSectionCommand>(Base1.get())) {
319       std::vector<InputSectionBase<ELFT> *> V = createInputSectionList(*Cmd);
320 
321       // The output section name `/DISCARD/' is special.
322       // Any input section assigned to it is discarded.
323       if (Cmd->Name == "/DISCARD/") {
324         discard(V);
325         continue;
326       }
327 
328       // This is for ONLY_IF_RO and ONLY_IF_RW. An output section directive
329       // ".foo : ONLY_IF_R[OW] { ... }" is handled only if all member input
330       // sections satisfy a given constraint. If not, a directive is handled
331       // as if it wasn't present from the beginning.
332       //
333       // Because we'll iterate over Commands many more times, the easiest
334       // way to "make it as if it wasn't present" is to just remove it.
335       if (!matchConstraints<ELFT>(V, Cmd->Constraint)) {
336         for (InputSectionBase<ELFT> *S : V)
337           S->Assigned = false;
338         Opt.Commands.erase(Iter);
339         --I;
340         continue;
341       }
342 
343       // A directive may contain symbol definitions like this:
344       // ".foo : { ...; bar = .; }". Handle them.
345       for (const std::unique_ptr<BaseCommand> &Base : Cmd->Commands)
346         if (auto *OutCmd = dyn_cast<SymbolAssignment>(Base.get()))
347           addSymbol<ELFT>(OutCmd);
348 
349       // Handle subalign (e.g. ".foo : SUBALIGN(32) { ... }"). If subalign
350       // is given, input sections are aligned to that value, whether the
351       // given value is larger or smaller than the original section alignment.
352       if (Cmd->SubalignExpr) {
353         uint32_t Subalign = Cmd->SubalignExpr(0);
354         for (InputSectionBase<ELFT> *S : V)
355           S->Alignment = Subalign;
356       }
357 
358       // Add input sections to an output section.
359       for (InputSectionBase<ELFT> *S : V)
360         addSection(Factory, S, Cmd->Name);
361     }
362   }
363 }
364 
365 // Add sections that didn't match any sections command.
366 template <class ELFT>
367 void LinkerScript<ELFT>::addOrphanSections(
368     OutputSectionFactory<ELFT> &Factory) {
369   for (InputSectionBase<ELFT> *S : Symtab<ELFT>::X->Sections)
370     if (S->Live && !S->OutSec)
371       addSection(Factory, S, getOutputSectionName(S->Name));
372 }
373 
374 // Sets value of a section-defined symbol. Two kinds of
375 // symbols are processed: synthetic symbols, whose value
376 // is an offset from beginning of section and regular
377 // symbols whose value is absolute.
378 template <class ELFT>
379 static void assignSectionSymbol(SymbolAssignment *Cmd,
380                                 typename ELFT::uint Value) {
381   if (!Cmd->Sym)
382     return;
383 
384   if (auto *Body = dyn_cast<DefinedSynthetic>(Cmd->Sym)) {
385     Body->Section = Cmd->Expression.Section();
386     Body->Value = Cmd->Expression(Value) - Body->Section->Addr;
387     return;
388   }
389   auto *Body = cast<DefinedRegular<ELFT>>(Cmd->Sym);
390   Body->Value = Cmd->Expression(Value);
391 }
392 
393 template <class ELFT> static bool isTbss(OutputSectionBase *Sec) {
394   return (Sec->Flags & SHF_TLS) && Sec->Type == SHT_NOBITS;
395 }
396 
397 template <class ELFT> void LinkerScript<ELFT>::output(InputSection<ELFT> *S) {
398   if (!AlreadyOutputIS.insert(S).second)
399     return;
400   bool IsTbss = isTbss<ELFT>(CurOutSec);
401 
402   uintX_t Pos = IsTbss ? Dot + ThreadBssOffset : Dot;
403   Pos = alignTo(Pos, S->Alignment);
404   S->OutSecOff = Pos - CurOutSec->Addr;
405   Pos += S->getSize();
406 
407   // Update output section size after adding each section. This is so that
408   // SIZEOF works correctly in the case below:
409   // .foo { *(.aaa) a = SIZEOF(.foo); *(.bbb) }
410   CurOutSec->Size = Pos - CurOutSec->Addr;
411 
412   if (IsTbss)
413     ThreadBssOffset = Pos - Dot;
414   else
415     Dot = Pos;
416 }
417 
418 template <class ELFT> void LinkerScript<ELFT>::flush() {
419   if (!CurOutSec || !AlreadyOutputOS.insert(CurOutSec).second)
420     return;
421   if (auto *OutSec = dyn_cast<OutputSection<ELFT>>(CurOutSec)) {
422     for (InputSection<ELFT> *I : OutSec->Sections)
423       output(I);
424   } else {
425     Dot += CurOutSec->Size;
426   }
427 }
428 
429 template <class ELFT>
430 void LinkerScript<ELFT>::switchTo(OutputSectionBase *Sec) {
431   if (CurOutSec == Sec)
432     return;
433   if (AlreadyOutputOS.count(Sec))
434     return;
435 
436   flush();
437   CurOutSec = Sec;
438 
439   Dot = alignTo(Dot, CurOutSec->Addralign);
440   CurOutSec->Addr = isTbss<ELFT>(CurOutSec) ? Dot + ThreadBssOffset : Dot;
441 
442   // If neither AT nor AT> is specified for an allocatable section, the linker
443   // will set the LMA such that the difference between VMA and LMA for the
444   // section is the same as the preceding output section in the same region
445   // https://sourceware.org/binutils/docs-2.20/ld/Output-Section-LMA.html
446   CurOutSec->setLMAOffset(LMAOffset);
447 }
448 
449 template <class ELFT> void LinkerScript<ELFT>::process(BaseCommand &Base) {
450   // This handles the assignments to symbol or to a location counter (.)
451   if (auto *AssignCmd = dyn_cast<SymbolAssignment>(&Base)) {
452     if (AssignCmd->Name == ".") {
453       // Update to location counter means update to section size.
454       uintX_t Val = AssignCmd->Expression(Dot);
455       if (Val < Dot)
456         error("unable to move location counter backward for: " +
457               CurOutSec->Name);
458       Dot = Val;
459       CurOutSec->Size = Dot - CurOutSec->Addr;
460       return;
461     }
462     assignSectionSymbol<ELFT>(AssignCmd, Dot);
463     return;
464   }
465 
466   // Handle BYTE(), SHORT(), LONG(), or QUAD().
467   if (auto *DataCmd = dyn_cast<BytesDataCommand>(&Base)) {
468     DataCmd->Offset = Dot - CurOutSec->Addr;
469     Dot += DataCmd->Size;
470     CurOutSec->Size = Dot - CurOutSec->Addr;
471     return;
472   }
473 
474   if (auto *AssertCmd = dyn_cast<AssertCommand>(&Base)) {
475     AssertCmd->Expression(Dot);
476     return;
477   }
478 
479   // It handles single input section description command,
480   // calculates and assigns the offsets for each section and also
481   // updates the output section size.
482   auto &ICmd = cast<InputSectionDescription>(Base);
483   for (InputSectionData *ID : ICmd.Sections) {
484     // We tentatively added all synthetic sections at the beginning and removed
485     // empty ones afterwards (because there is no way to know whether they were
486     // going be empty or not other than actually running linker scripts.)
487     // We need to ignore remains of empty sections.
488     if (auto *Sec = dyn_cast<SyntheticSection<ELFT>>(ID))
489       if (Sec->empty())
490         continue;
491 
492     auto *IB = static_cast<InputSectionBase<ELFT> *>(ID);
493     switchTo(IB->OutSec);
494     if (auto *I = dyn_cast<InputSection<ELFT>>(IB))
495       output(I);
496     else
497       flush();
498   }
499 }
500 
501 template <class ELFT>
502 static std::vector<OutputSectionBase *>
503 findSections(StringRef Name, const std::vector<OutputSectionBase *> &Sections) {
504   std::vector<OutputSectionBase *> Ret;
505   for (OutputSectionBase *Sec : Sections)
506     if (Sec->getName() == Name)
507       Ret.push_back(Sec);
508   return Ret;
509 }
510 
511 // This function assigns offsets to input sections and an output section
512 // for a single sections command (e.g. ".text { *(.text); }").
513 template <class ELFT>
514 void LinkerScript<ELFT>::assignOffsets(OutputSectionCommand *Cmd) {
515   if (Cmd->LMAExpr)
516     LMAOffset = Cmd->LMAExpr(Dot) - Dot;
517   std::vector<OutputSectionBase *> Sections =
518       findSections<ELFT>(Cmd->Name, *OutputSections);
519   if (Sections.empty())
520     return;
521   switchTo(Sections[0]);
522 
523   // Find the last section output location. We will output orphan sections
524   // there so that end symbols point to the correct location.
525   auto E = std::find_if(Cmd->Commands.rbegin(), Cmd->Commands.rend(),
526                         [](const std::unique_ptr<BaseCommand> &Cmd) {
527                           return !isa<SymbolAssignment>(*Cmd);
528                         })
529                .base();
530   for (auto I = Cmd->Commands.begin(); I != E; ++I)
531     process(**I);
532   for (OutputSectionBase *Base : Sections)
533     switchTo(Base);
534   flush();
535   std::for_each(E, Cmd->Commands.end(),
536                 [this](std::unique_ptr<BaseCommand> &B) { process(*B.get()); });
537 }
538 
539 template <class ELFT> void LinkerScript<ELFT>::removeEmptyCommands() {
540   // It is common practice to use very generic linker scripts. So for any
541   // given run some of the output sections in the script will be empty.
542   // We could create corresponding empty output sections, but that would
543   // clutter the output.
544   // We instead remove trivially empty sections. The bfd linker seems even
545   // more aggressive at removing them.
546   auto Pos = std::remove_if(
547       Opt.Commands.begin(), Opt.Commands.end(),
548       [&](const std::unique_ptr<BaseCommand> &Base) {
549         if (auto *Cmd = dyn_cast<OutputSectionCommand>(Base.get()))
550           return findSections<ELFT>(Cmd->Name, *OutputSections).empty();
551         return false;
552       });
553   Opt.Commands.erase(Pos, Opt.Commands.end());
554 }
555 
556 static bool isAllSectionDescription(const OutputSectionCommand &Cmd) {
557   for (const std::unique_ptr<BaseCommand> &I : Cmd.Commands)
558     if (!isa<InputSectionDescription>(*I))
559       return false;
560   return true;
561 }
562 
563 template <class ELFT> void LinkerScript<ELFT>::adjustSectionsBeforeSorting() {
564   // If the output section contains only symbol assignments, create a
565   // corresponding output section. The bfd linker seems to only create them if
566   // '.' is assigned to, but creating these section should not have any bad
567   // consequeces and gives us a section to put the symbol in.
568   uintX_t Flags = SHF_ALLOC;
569   uint32_t Type = SHT_NOBITS;
570   for (const std::unique_ptr<BaseCommand> &Base : Opt.Commands) {
571     auto *Cmd = dyn_cast<OutputSectionCommand>(Base.get());
572     if (!Cmd)
573       continue;
574     std::vector<OutputSectionBase *> Secs =
575         findSections<ELFT>(Cmd->Name, *OutputSections);
576     if (!Secs.empty()) {
577       Flags = Secs[0]->Flags;
578       Type = Secs[0]->Type;
579       continue;
580     }
581 
582     if (isAllSectionDescription(*Cmd))
583       continue;
584 
585     auto *OutSec = make<OutputSection<ELFT>>(Cmd->Name, Type, Flags);
586     OutputSections->push_back(OutSec);
587   }
588 }
589 
590 template <class ELFT> void LinkerScript<ELFT>::adjustSectionsAfterSorting() {
591   placeOrphanSections();
592 
593   // If output section command doesn't specify any segments,
594   // and we haven't previously assigned any section to segment,
595   // then we simply assign section to the very first load segment.
596   // Below is an example of such linker script:
597   // PHDRS { seg PT_LOAD; }
598   // SECTIONS { .aaa : { *(.aaa) } }
599   std::vector<StringRef> DefPhdrs;
600   auto FirstPtLoad =
601       std::find_if(Opt.PhdrsCommands.begin(), Opt.PhdrsCommands.end(),
602                    [](const PhdrsCommand &Cmd) { return Cmd.Type == PT_LOAD; });
603   if (FirstPtLoad != Opt.PhdrsCommands.end())
604     DefPhdrs.push_back(FirstPtLoad->Name);
605 
606   // Walk the commands and propagate the program headers to commands that don't
607   // explicitly specify them.
608   for (const std::unique_ptr<BaseCommand> &Base : Opt.Commands) {
609     auto *Cmd = dyn_cast<OutputSectionCommand>(Base.get());
610     if (!Cmd)
611       continue;
612     if (Cmd->Phdrs.empty())
613       Cmd->Phdrs = DefPhdrs;
614     else
615       DefPhdrs = Cmd->Phdrs;
616   }
617 
618   removeEmptyCommands();
619 }
620 
621 // When placing orphan sections, we want to place them after symbol assignments
622 // so that an orphan after
623 //   begin_foo = .;
624 //   foo : { *(foo) }
625 //   end_foo = .;
626 // doesn't break the intended meaning of the begin/end symbols.
627 // We don't want to go over sections since Writer<ELFT>::sortSections is the
628 // one in charge of deciding the order of the sections.
629 // We don't want to go over alignments, since doing so in
630 //  rx_sec : { *(rx_sec) }
631 //  . = ALIGN(0x1000);
632 //  /* The RW PT_LOAD starts here*/
633 //  rw_sec : { *(rw_sec) }
634 // would mean that the RW PT_LOAD would become unaligned.
635 static bool shouldSkip(const BaseCommand &Cmd) {
636   if (isa<OutputSectionCommand>(Cmd))
637     return false;
638   const auto *Assign = dyn_cast<SymbolAssignment>(&Cmd);
639   if (!Assign)
640     return true;
641   return Assign->Name != ".";
642 }
643 
644 // Orphan sections are sections present in the input files which are not
645 // explicitly placed into the output file by the linker script. This just
646 // places them in the order already decided in OutputSections.
647 template <class ELFT> void LinkerScript<ELFT>::placeOrphanSections() {
648   // The OutputSections are already in the correct order.
649   // This loops creates or moves commands as needed so that they are in the
650   // correct order.
651   int CmdIndex = 0;
652 
653   // As a horrible special case, skip the first . assignment if it is before any
654   // section. We do this because it is common to set a load address by starting
655   // the script with ". = 0xabcd" and the expectation is that every section is
656   // after that.
657   auto FirstSectionOrDotAssignment =
658       std::find_if(Opt.Commands.begin(), Opt.Commands.end(),
659                    [](const std::unique_ptr<BaseCommand> &Cmd) {
660                      if (isa<OutputSectionCommand>(*Cmd))
661                        return true;
662                      const auto *Assign = dyn_cast<SymbolAssignment>(Cmd.get());
663                      if (!Assign)
664                        return false;
665                      return Assign->Name == ".";
666                    });
667   if (FirstSectionOrDotAssignment != Opt.Commands.end()) {
668     CmdIndex = FirstSectionOrDotAssignment - Opt.Commands.begin();
669     if (isa<SymbolAssignment>(**FirstSectionOrDotAssignment))
670       ++CmdIndex;
671   }
672 
673   for (OutputSectionBase *Sec : *OutputSections) {
674     StringRef Name = Sec->getName();
675 
676     // Find the last spot where we can insert a command and still get the
677     // correct result.
678     auto CmdIter = Opt.Commands.begin() + CmdIndex;
679     auto E = Opt.Commands.end();
680     while (CmdIter != E && shouldSkip(**CmdIter)) {
681       ++CmdIter;
682       ++CmdIndex;
683     }
684 
685     auto Pos =
686         std::find_if(CmdIter, E, [&](const std::unique_ptr<BaseCommand> &Base) {
687           auto *Cmd = dyn_cast<OutputSectionCommand>(Base.get());
688           return Cmd && Cmd->Name == Name;
689         });
690     if (Pos == E) {
691       Opt.Commands.insert(CmdIter,
692                           llvm::make_unique<OutputSectionCommand>(Name));
693       ++CmdIndex;
694       continue;
695     }
696 
697     // Continue from where we found it.
698     CmdIndex = (Pos - Opt.Commands.begin()) + 1;
699   }
700 }
701 
702 template <class ELFT>
703 void LinkerScript<ELFT>::assignAddresses(std::vector<PhdrEntry> &Phdrs) {
704   // Assign addresses as instructed by linker script SECTIONS sub-commands.
705   Dot = 0;
706 
707   for (const std::unique_ptr<BaseCommand> &Base : Opt.Commands) {
708     if (auto *Cmd = dyn_cast<SymbolAssignment>(Base.get())) {
709       if (Cmd->Name == ".") {
710         Dot = Cmd->Expression(Dot);
711       } else if (Cmd->Sym) {
712         assignSectionSymbol<ELFT>(Cmd, Dot);
713       }
714       continue;
715     }
716 
717     if (auto *Cmd = dyn_cast<AssertCommand>(Base.get())) {
718       Cmd->Expression(Dot);
719       continue;
720     }
721 
722     auto *Cmd = cast<OutputSectionCommand>(Base.get());
723     if (Cmd->AddrExpr)
724       Dot = Cmd->AddrExpr(Dot);
725     assignOffsets(Cmd);
726   }
727 
728   uintX_t MinVA = std::numeric_limits<uintX_t>::max();
729   for (OutputSectionBase *Sec : *OutputSections) {
730     if (Sec->Flags & SHF_ALLOC)
731       MinVA = std::min<uint64_t>(MinVA, Sec->Addr);
732     else
733       Sec->Addr = 0;
734   }
735 
736   allocateHeaders<ELFT>(Phdrs, *OutputSections, MinVA);
737 }
738 
739 // Creates program headers as instructed by PHDRS linker script command.
740 template <class ELFT> std::vector<PhdrEntry> LinkerScript<ELFT>::createPhdrs() {
741   std::vector<PhdrEntry> Ret;
742 
743   // Process PHDRS and FILEHDR keywords because they are not
744   // real output sections and cannot be added in the following loop.
745   for (const PhdrsCommand &Cmd : Opt.PhdrsCommands) {
746     Ret.emplace_back(Cmd.Type, Cmd.Flags == UINT_MAX ? PF_R : Cmd.Flags);
747     PhdrEntry &Phdr = Ret.back();
748 
749     if (Cmd.HasFilehdr)
750       Phdr.add(Out<ELFT>::ElfHeader);
751     if (Cmd.HasPhdrs)
752       Phdr.add(Out<ELFT>::ProgramHeaders);
753 
754     if (Cmd.LMAExpr) {
755       Phdr.p_paddr = Cmd.LMAExpr(0);
756       Phdr.HasLMA = true;
757     }
758   }
759 
760   // Add output sections to program headers.
761   for (OutputSectionBase *Sec : *OutputSections) {
762     if (!(Sec->Flags & SHF_ALLOC))
763       break;
764 
765     // Assign headers specified by linker script
766     for (size_t Id : getPhdrIndices(Sec->getName())) {
767       Ret[Id].add(Sec);
768       if (Opt.PhdrsCommands[Id].Flags == UINT_MAX)
769         Ret[Id].p_flags |= Sec->getPhdrFlags();
770     }
771   }
772   return Ret;
773 }
774 
775 template <class ELFT> bool LinkerScript<ELFT>::ignoreInterpSection() {
776   // Ignore .interp section in case we have PHDRS specification
777   // and PT_INTERP isn't listed.
778   return !Opt.PhdrsCommands.empty() &&
779          llvm::find_if(Opt.PhdrsCommands, [](const PhdrsCommand &Cmd) {
780            return Cmd.Type == PT_INTERP;
781          }) == Opt.PhdrsCommands.end();
782 }
783 
784 template <class ELFT> uint32_t LinkerScript<ELFT>::getFiller(StringRef Name) {
785   for (const std::unique_ptr<BaseCommand> &Base : Opt.Commands)
786     if (auto *Cmd = dyn_cast<OutputSectionCommand>(Base.get()))
787       if (Cmd->Name == Name)
788         return Cmd->Filler;
789   return 0;
790 }
791 
792 template <class ELFT>
793 static void writeInt(uint8_t *Buf, uint64_t Data, uint64_t Size) {
794   const endianness E = ELFT::TargetEndianness;
795 
796   switch (Size) {
797   case 1:
798     *Buf = (uint8_t)Data;
799     break;
800   case 2:
801     write16<E>(Buf, Data);
802     break;
803   case 4:
804     write32<E>(Buf, Data);
805     break;
806   case 8:
807     write64<E>(Buf, Data);
808     break;
809   default:
810     llvm_unreachable("unsupported Size argument");
811   }
812 }
813 
814 template <class ELFT>
815 void LinkerScript<ELFT>::writeDataBytes(StringRef Name, uint8_t *Buf) {
816   int I = getSectionIndex(Name);
817   if (I == INT_MAX)
818     return;
819 
820   auto *Cmd = dyn_cast<OutputSectionCommand>(Opt.Commands[I].get());
821   for (const std::unique_ptr<BaseCommand> &Base : Cmd->Commands)
822     if (auto *Data = dyn_cast<BytesDataCommand>(Base.get()))
823       writeInt<ELFT>(Buf + Data->Offset, Data->Expression(0), Data->Size);
824 }
825 
826 template <class ELFT> bool LinkerScript<ELFT>::hasLMA(StringRef Name) {
827   for (const std::unique_ptr<BaseCommand> &Base : Opt.Commands)
828     if (auto *Cmd = dyn_cast<OutputSectionCommand>(Base.get()))
829       if (Cmd->LMAExpr && Cmd->Name == Name)
830         return true;
831   return false;
832 }
833 
834 // Returns the index of the given section name in linker script
835 // SECTIONS commands. Sections are laid out as the same order as they
836 // were in the script. If a given name did not appear in the script,
837 // it returns INT_MAX, so that it will be laid out at end of file.
838 template <class ELFT> int LinkerScript<ELFT>::getSectionIndex(StringRef Name) {
839   for (int I = 0, E = Opt.Commands.size(); I != E; ++I)
840     if (auto *Cmd = dyn_cast<OutputSectionCommand>(Opt.Commands[I].get()))
841       if (Cmd->Name == Name)
842         return I;
843   return INT_MAX;
844 }
845 
846 template <class ELFT> bool LinkerScript<ELFT>::hasPhdrsCommands() {
847   return !Opt.PhdrsCommands.empty();
848 }
849 
850 template <class ELFT>
851 const OutputSectionBase *LinkerScript<ELFT>::getOutputSection(const Twine &Loc,
852                                                               StringRef Name) {
853   static OutputSectionBase FakeSec("", 0, 0);
854 
855   for (OutputSectionBase *Sec : *OutputSections)
856     if (Sec->getName() == Name)
857       return Sec;
858 
859   error(Loc + ": undefined section " + Name);
860   return &FakeSec;
861 }
862 
863 // This function is essentially the same as getOutputSection(Name)->Size,
864 // but it won't print out an error message if a given section is not found.
865 //
866 // Linker script does not create an output section if its content is empty.
867 // We want to allow SIZEOF(.foo) where .foo is a section which happened to
868 // be empty. That is why this function is different from getOutputSection().
869 template <class ELFT>
870 uint64_t LinkerScript<ELFT>::getOutputSectionSize(StringRef Name) {
871   for (OutputSectionBase *Sec : *OutputSections)
872     if (Sec->getName() == Name)
873       return Sec->Size;
874   return 0;
875 }
876 
877 template <class ELFT> uint64_t LinkerScript<ELFT>::getHeaderSize() {
878   return elf::getHeaderSize<ELFT>();
879 }
880 
881 template <class ELFT>
882 uint64_t LinkerScript<ELFT>::getSymbolValue(const Twine &Loc, StringRef S) {
883   if (SymbolBody *B = Symtab<ELFT>::X->find(S))
884     return B->getVA<ELFT>();
885   error(Loc + ": symbol not found: " + S);
886   return 0;
887 }
888 
889 template <class ELFT> bool LinkerScript<ELFT>::isDefined(StringRef S) {
890   return Symtab<ELFT>::X->find(S) != nullptr;
891 }
892 
893 template <class ELFT> bool LinkerScript<ELFT>::isAbsolute(StringRef S) {
894   SymbolBody *Sym = Symtab<ELFT>::X->find(S);
895   auto *DR = dyn_cast_or_null<DefinedRegular<ELFT>>(Sym);
896   return DR && !DR->Section;
897 }
898 
899 // Gets section symbol belongs to. Symbol "." doesn't belong to any
900 // specific section but isn't absolute at the same time, so we try
901 // to find suitable section for it as well.
902 template <class ELFT>
903 const OutputSectionBase *LinkerScript<ELFT>::getSymbolSection(StringRef S) {
904   SymbolBody *Sym = Symtab<ELFT>::X->find(S);
905   if (!Sym) {
906     if (OutputSections->empty())
907       return nullptr;
908     return CurOutSec ? CurOutSec : (*OutputSections)[0];
909   }
910 
911   return SymbolTableSection<ELFT>::getOutputSection(Sym);
912 }
913 
914 // Returns indices of ELF headers containing specific section, identified
915 // by Name. Each index is a zero based number of ELF header listed within
916 // PHDRS {} script block.
917 template <class ELFT>
918 std::vector<size_t> LinkerScript<ELFT>::getPhdrIndices(StringRef SectionName) {
919   for (const std::unique_ptr<BaseCommand> &Base : Opt.Commands) {
920     auto *Cmd = dyn_cast<OutputSectionCommand>(Base.get());
921     if (!Cmd || Cmd->Name != SectionName)
922       continue;
923 
924     std::vector<size_t> Ret;
925     for (StringRef PhdrName : Cmd->Phdrs)
926       Ret.push_back(getPhdrIndex(Cmd->Location, PhdrName));
927     return Ret;
928   }
929   return {};
930 }
931 
932 template <class ELFT>
933 size_t LinkerScript<ELFT>::getPhdrIndex(const Twine &Loc, StringRef PhdrName) {
934   size_t I = 0;
935   for (PhdrsCommand &Cmd : Opt.PhdrsCommands) {
936     if (Cmd.Name == PhdrName)
937       return I;
938     ++I;
939   }
940   error(Loc + ": section header '" + PhdrName + "' is not listed in PHDRS");
941   return 0;
942 }
943 
944 class elf::ScriptParser final : public ScriptParserBase {
945   typedef void (ScriptParser::*Handler)();
946 
947 public:
948   ScriptParser(MemoryBufferRef MB)
949       : ScriptParserBase(MB),
950         IsUnderSysroot(isUnderSysroot(MB.getBufferIdentifier())) {}
951 
952   void readLinkerScript();
953   void readVersionScript();
954   void readDynamicList();
955 
956 private:
957   void addFile(StringRef Path);
958 
959   void readAsNeeded();
960   void readEntry();
961   void readExtern();
962   void readGroup();
963   void readInclude();
964   void readOutput();
965   void readOutputArch();
966   void readOutputFormat();
967   void readPhdrs();
968   void readSearchDir();
969   void readSections();
970   void readVersion();
971   void readVersionScriptCommand();
972 
973   SymbolAssignment *readAssignment(StringRef Name);
974   BytesDataCommand *readBytesDataCommand(StringRef Tok);
975   uint32_t readFill();
976   OutputSectionCommand *readOutputSectionDescription(StringRef OutSec);
977   uint32_t readOutputSectionFiller(StringRef Tok);
978   std::vector<StringRef> readOutputSectionPhdrs();
979   InputSectionDescription *readInputSectionDescription(StringRef Tok);
980   StringMatcher readFilePatterns();
981   std::vector<SectionPattern> readInputSectionsList();
982   InputSectionDescription *readInputSectionRules(StringRef FilePattern);
983   unsigned readPhdrType();
984   SortSectionPolicy readSortKind();
985   SymbolAssignment *readProvideHidden(bool Provide, bool Hidden);
986   SymbolAssignment *readProvideOrAssignment(StringRef Tok);
987   void readSort();
988   Expr readAssert();
989 
990   Expr readExpr();
991   Expr readExpr1(Expr Lhs, int MinPrec);
992   StringRef readParenLiteral();
993   Expr readPrimary();
994   Expr readTernary(Expr Cond);
995   Expr readParenExpr();
996 
997   // For parsing version script.
998   std::vector<SymbolVersion> readVersionExtern();
999   void readAnonymousDeclaration();
1000   void readVersionDeclaration(StringRef VerStr);
1001   std::vector<SymbolVersion> readSymbols();
1002   void readLocals();
1003 
1004   ScriptConfiguration &Opt = *ScriptConfig;
1005   bool IsUnderSysroot;
1006 };
1007 
1008 void ScriptParser::readDynamicList() {
1009   expect("{");
1010   readAnonymousDeclaration();
1011   if (!atEOF())
1012     setError("EOF expected, but got " + next());
1013 }
1014 
1015 void ScriptParser::readVersionScript() {
1016   readVersionScriptCommand();
1017   if (!atEOF())
1018     setError("EOF expected, but got " + next());
1019 }
1020 
1021 void ScriptParser::readVersionScriptCommand() {
1022   if (consume("{")) {
1023     readAnonymousDeclaration();
1024     return;
1025   }
1026 
1027   while (!atEOF() && !Error && peek() != "}") {
1028     StringRef VerStr = next();
1029     if (VerStr == "{") {
1030       setError("anonymous version definition is used in "
1031                "combination with other version definitions");
1032       return;
1033     }
1034     expect("{");
1035     readVersionDeclaration(VerStr);
1036   }
1037 }
1038 
1039 void ScriptParser::readVersion() {
1040   expect("{");
1041   readVersionScriptCommand();
1042   expect("}");
1043 }
1044 
1045 void ScriptParser::readLinkerScript() {
1046   while (!atEOF()) {
1047     StringRef Tok = next();
1048     if (Tok == ";")
1049       continue;
1050 
1051     if (Tok == "ASSERT") {
1052       Opt.Commands.emplace_back(new AssertCommand(readAssert()));
1053     } else if (Tok == "ENTRY") {
1054       readEntry();
1055     } else if (Tok == "EXTERN") {
1056       readExtern();
1057     } else if (Tok == "GROUP" || Tok == "INPUT") {
1058       readGroup();
1059     } else if (Tok == "INCLUDE") {
1060       readInclude();
1061     } else if (Tok == "OUTPUT") {
1062       readOutput();
1063     } else if (Tok == "OUTPUT_ARCH") {
1064       readOutputArch();
1065     } else if (Tok == "OUTPUT_FORMAT") {
1066       readOutputFormat();
1067     } else if (Tok == "PHDRS") {
1068       readPhdrs();
1069     } else if (Tok == "SEARCH_DIR") {
1070       readSearchDir();
1071     } else if (Tok == "SECTIONS") {
1072       readSections();
1073     } else if (Tok == "VERSION") {
1074       readVersion();
1075     } else if (SymbolAssignment *Cmd = readProvideOrAssignment(Tok)) {
1076       Opt.Commands.emplace_back(Cmd);
1077     } else {
1078       setError("unknown directive: " + Tok);
1079     }
1080   }
1081 }
1082 
1083 void ScriptParser::addFile(StringRef S) {
1084   if (IsUnderSysroot && S.startswith("/")) {
1085     SmallString<128> PathData;
1086     StringRef Path = (Config->Sysroot + S).toStringRef(PathData);
1087     if (sys::fs::exists(Path)) {
1088       Driver->addFile(Saver.save(Path));
1089       return;
1090     }
1091   }
1092 
1093   if (sys::path::is_absolute(S)) {
1094     Driver->addFile(S);
1095   } else if (S.startswith("=")) {
1096     if (Config->Sysroot.empty())
1097       Driver->addFile(S.substr(1));
1098     else
1099       Driver->addFile(Saver.save(Config->Sysroot + "/" + S.substr(1)));
1100   } else if (S.startswith("-l")) {
1101     Driver->addLibrary(S.substr(2));
1102   } else if (sys::fs::exists(S)) {
1103     Driver->addFile(S);
1104   } else {
1105     if (Optional<std::string> Path = findFromSearchPaths(S))
1106       Driver->addFile(Saver.save(*Path));
1107     else
1108       setError("unable to find " + S);
1109   }
1110 }
1111 
1112 void ScriptParser::readAsNeeded() {
1113   expect("(");
1114   bool Orig = Config->AsNeeded;
1115   Config->AsNeeded = true;
1116   while (!Error && !consume(")"))
1117     addFile(unquote(next()));
1118   Config->AsNeeded = Orig;
1119 }
1120 
1121 void ScriptParser::readEntry() {
1122   // -e <symbol> takes predecence over ENTRY(<symbol>).
1123   expect("(");
1124   StringRef Tok = next();
1125   if (Config->Entry.empty())
1126     Config->Entry = Tok;
1127   expect(")");
1128 }
1129 
1130 void ScriptParser::readExtern() {
1131   expect("(");
1132   while (!Error && !consume(")"))
1133     Config->Undefined.push_back(next());
1134 }
1135 
1136 void ScriptParser::readGroup() {
1137   expect("(");
1138   while (!Error && !consume(")")) {
1139     StringRef Tok = next();
1140     if (Tok == "AS_NEEDED")
1141       readAsNeeded();
1142     else
1143       addFile(unquote(Tok));
1144   }
1145 }
1146 
1147 void ScriptParser::readInclude() {
1148   StringRef Tok = unquote(next());
1149 
1150   // https://sourceware.org/binutils/docs/ld/File-Commands.html:
1151   // The file will be searched for in the current directory, and in any
1152   // directory specified with the -L option.
1153   if (sys::fs::exists(Tok)) {
1154     if (Optional<MemoryBufferRef> MB = readFile(Tok))
1155       tokenize(*MB);
1156     return;
1157   }
1158   if (Optional<std::string> Path = findFromSearchPaths(Tok)) {
1159     if (Optional<MemoryBufferRef> MB = readFile(*Path))
1160       tokenize(*MB);
1161     return;
1162   }
1163   setError("cannot open " + Tok);
1164 }
1165 
1166 void ScriptParser::readOutput() {
1167   // -o <file> takes predecence over OUTPUT(<file>).
1168   expect("(");
1169   StringRef Tok = next();
1170   if (Config->OutputFile.empty())
1171     Config->OutputFile = unquote(Tok);
1172   expect(")");
1173 }
1174 
1175 void ScriptParser::readOutputArch() {
1176   // Error checking only for now.
1177   expect("(");
1178   skip();
1179   expect(")");
1180 }
1181 
1182 void ScriptParser::readOutputFormat() {
1183   // Error checking only for now.
1184   expect("(");
1185   skip();
1186   StringRef Tok = next();
1187   if (Tok == ")")
1188     return;
1189   if (Tok != ",") {
1190     setError("unexpected token: " + Tok);
1191     return;
1192   }
1193   skip();
1194   expect(",");
1195   skip();
1196   expect(")");
1197 }
1198 
1199 void ScriptParser::readPhdrs() {
1200   expect("{");
1201   while (!Error && !consume("}")) {
1202     StringRef Tok = next();
1203     Opt.PhdrsCommands.push_back(
1204         {Tok, PT_NULL, false, false, UINT_MAX, nullptr});
1205     PhdrsCommand &PhdrCmd = Opt.PhdrsCommands.back();
1206 
1207     PhdrCmd.Type = readPhdrType();
1208     do {
1209       Tok = next();
1210       if (Tok == ";")
1211         break;
1212       if (Tok == "FILEHDR")
1213         PhdrCmd.HasFilehdr = true;
1214       else if (Tok == "PHDRS")
1215         PhdrCmd.HasPhdrs = true;
1216       else if (Tok == "AT")
1217         PhdrCmd.LMAExpr = readParenExpr();
1218       else if (Tok == "FLAGS") {
1219         expect("(");
1220         // Passing 0 for the value of dot is a bit of a hack. It means that
1221         // we accept expressions like ".|1".
1222         PhdrCmd.Flags = readExpr()(0);
1223         expect(")");
1224       } else
1225         setError("unexpected header attribute: " + Tok);
1226     } while (!Error);
1227   }
1228 }
1229 
1230 void ScriptParser::readSearchDir() {
1231   expect("(");
1232   StringRef Tok = next();
1233   if (!Config->Nostdlib)
1234     Config->SearchPaths.push_back(unquote(Tok));
1235   expect(")");
1236 }
1237 
1238 void ScriptParser::readSections() {
1239   Opt.HasSections = true;
1240   // -no-rosegment is used to avoid placing read only non-executable sections in
1241   // their own segment. We do the same if SECTIONS command is present in linker
1242   // script. See comment for computeFlags().
1243   Config->SingleRoRx = true;
1244 
1245   expect("{");
1246   while (!Error && !consume("}")) {
1247     StringRef Tok = next();
1248     BaseCommand *Cmd = readProvideOrAssignment(Tok);
1249     if (!Cmd) {
1250       if (Tok == "ASSERT")
1251         Cmd = new AssertCommand(readAssert());
1252       else
1253         Cmd = readOutputSectionDescription(Tok);
1254     }
1255     Opt.Commands.emplace_back(Cmd);
1256   }
1257 }
1258 
1259 static int precedence(StringRef Op) {
1260   return StringSwitch<int>(Op)
1261       .Cases("*", "/", 5)
1262       .Cases("+", "-", 4)
1263       .Cases("<<", ">>", 3)
1264       .Cases("<", "<=", ">", ">=", "==", "!=", 2)
1265       .Cases("&", "|", 1)
1266       .Default(-1);
1267 }
1268 
1269 StringMatcher ScriptParser::readFilePatterns() {
1270   std::vector<StringRef> V;
1271   while (!Error && !consume(")"))
1272     V.push_back(next());
1273   return StringMatcher(V);
1274 }
1275 
1276 SortSectionPolicy ScriptParser::readSortKind() {
1277   if (consume("SORT") || consume("SORT_BY_NAME"))
1278     return SortSectionPolicy::Name;
1279   if (consume("SORT_BY_ALIGNMENT"))
1280     return SortSectionPolicy::Alignment;
1281   if (consume("SORT_BY_INIT_PRIORITY"))
1282     return SortSectionPolicy::Priority;
1283   if (consume("SORT_NONE"))
1284     return SortSectionPolicy::None;
1285   return SortSectionPolicy::Default;
1286 }
1287 
1288 // Method reads a list of sequence of excluded files and section globs given in
1289 // a following form: ((EXCLUDE_FILE(file_pattern+))? section_pattern+)+
1290 // Example: *(.foo.1 EXCLUDE_FILE (*a.o) .foo.2 EXCLUDE_FILE (*b.o) .foo.3)
1291 // The semantics of that is next:
1292 // * Include .foo.1 from every file.
1293 // * Include .foo.2 from every file but a.o
1294 // * Include .foo.3 from every file but b.o
1295 std::vector<SectionPattern> ScriptParser::readInputSectionsList() {
1296   std::vector<SectionPattern> Ret;
1297   while (!Error && peek() != ")") {
1298     StringMatcher ExcludeFilePat;
1299     if (consume("EXCLUDE_FILE")) {
1300       expect("(");
1301       ExcludeFilePat = readFilePatterns();
1302     }
1303 
1304     std::vector<StringRef> V;
1305     while (!Error && peek() != ")" && peek() != "EXCLUDE_FILE")
1306       V.push_back(next());
1307 
1308     if (!V.empty())
1309       Ret.push_back({std::move(ExcludeFilePat), StringMatcher(V)});
1310     else
1311       setError("section pattern is expected");
1312   }
1313   return Ret;
1314 }
1315 
1316 // Reads contents of "SECTIONS" directive. That directive contains a
1317 // list of glob patterns for input sections. The grammar is as follows.
1318 //
1319 // <patterns> ::= <section-list>
1320 //              | <sort> "(" <section-list> ")"
1321 //              | <sort> "(" <sort> "(" <section-list> ")" ")"
1322 //
1323 // <sort>     ::= "SORT" | "SORT_BY_NAME" | "SORT_BY_ALIGNMENT"
1324 //              | "SORT_BY_INIT_PRIORITY" | "SORT_NONE"
1325 //
1326 // <section-list> is parsed by readInputSectionsList().
1327 InputSectionDescription *
1328 ScriptParser::readInputSectionRules(StringRef FilePattern) {
1329   auto *Cmd = new InputSectionDescription(FilePattern);
1330   expect("(");
1331   while (!Error && !consume(")")) {
1332     SortSectionPolicy Outer = readSortKind();
1333     SortSectionPolicy Inner = SortSectionPolicy::Default;
1334     std::vector<SectionPattern> V;
1335     if (Outer != SortSectionPolicy::Default) {
1336       expect("(");
1337       Inner = readSortKind();
1338       if (Inner != SortSectionPolicy::Default) {
1339         expect("(");
1340         V = readInputSectionsList();
1341         expect(")");
1342       } else {
1343         V = readInputSectionsList();
1344       }
1345       expect(")");
1346     } else {
1347       V = readInputSectionsList();
1348     }
1349 
1350     for (SectionPattern &Pat : V) {
1351       Pat.SortInner = Inner;
1352       Pat.SortOuter = Outer;
1353     }
1354 
1355     std::move(V.begin(), V.end(), std::back_inserter(Cmd->SectionPatterns));
1356   }
1357   return Cmd;
1358 }
1359 
1360 InputSectionDescription *
1361 ScriptParser::readInputSectionDescription(StringRef Tok) {
1362   // Input section wildcard can be surrounded by KEEP.
1363   // https://sourceware.org/binutils/docs/ld/Input-Section-Keep.html#Input-Section-Keep
1364   if (Tok == "KEEP") {
1365     expect("(");
1366     StringRef FilePattern = next();
1367     InputSectionDescription *Cmd = readInputSectionRules(FilePattern);
1368     expect(")");
1369     Opt.KeptSections.push_back(Cmd);
1370     return Cmd;
1371   }
1372   return readInputSectionRules(Tok);
1373 }
1374 
1375 void ScriptParser::readSort() {
1376   expect("(");
1377   expect("CONSTRUCTORS");
1378   expect(")");
1379 }
1380 
1381 Expr ScriptParser::readAssert() {
1382   expect("(");
1383   Expr E = readExpr();
1384   expect(",");
1385   StringRef Msg = unquote(next());
1386   expect(")");
1387   return [=](uint64_t Dot) {
1388     uint64_t V = E(Dot);
1389     if (!V)
1390       error(Msg);
1391     return V;
1392   };
1393 }
1394 
1395 // Reads a FILL(expr) command. We handle the FILL command as an
1396 // alias for =fillexp section attribute, which is different from
1397 // what GNU linkers do.
1398 // https://sourceware.org/binutils/docs/ld/Output-Section-Data.html
1399 uint32_t ScriptParser::readFill() {
1400   expect("(");
1401   uint32_t V = readOutputSectionFiller(next());
1402   expect(")");
1403   expect(";");
1404   return V;
1405 }
1406 
1407 OutputSectionCommand *
1408 ScriptParser::readOutputSectionDescription(StringRef OutSec) {
1409   OutputSectionCommand *Cmd = new OutputSectionCommand(OutSec);
1410   Cmd->Location = getCurrentLocation();
1411 
1412   // Read an address expression.
1413   // https://sourceware.org/binutils/docs/ld/Output-Section-Address.html#Output-Section-Address
1414   if (peek() != ":")
1415     Cmd->AddrExpr = readExpr();
1416 
1417   expect(":");
1418 
1419   if (consume("AT"))
1420     Cmd->LMAExpr = readParenExpr();
1421   if (consume("ALIGN"))
1422     Cmd->AlignExpr = readParenExpr();
1423   if (consume("SUBALIGN"))
1424     Cmd->SubalignExpr = readParenExpr();
1425 
1426   // Parse constraints.
1427   if (consume("ONLY_IF_RO"))
1428     Cmd->Constraint = ConstraintKind::ReadOnly;
1429   if (consume("ONLY_IF_RW"))
1430     Cmd->Constraint = ConstraintKind::ReadWrite;
1431   expect("{");
1432 
1433   while (!Error && !consume("}")) {
1434     StringRef Tok = next();
1435     if (SymbolAssignment *Assignment = readProvideOrAssignment(Tok)) {
1436       Cmd->Commands.emplace_back(Assignment);
1437     } else if (BytesDataCommand *Data = readBytesDataCommand(Tok)) {
1438       Cmd->Commands.emplace_back(Data);
1439     } else if (Tok == "ASSERT") {
1440       Cmd->Commands.emplace_back(new AssertCommand(readAssert()));
1441       expect(";");
1442     } else if (Tok == "FILL") {
1443       Cmd->Filler = readFill();
1444     } else if (Tok == "SORT") {
1445       readSort();
1446     } else if (peek() == "(") {
1447       Cmd->Commands.emplace_back(readInputSectionDescription(Tok));
1448     } else {
1449       setError("unknown command " + Tok);
1450     }
1451   }
1452   Cmd->Phdrs = readOutputSectionPhdrs();
1453 
1454   if (consume("="))
1455     Cmd->Filler = readOutputSectionFiller(next());
1456   else if (peek().startswith("="))
1457     Cmd->Filler = readOutputSectionFiller(next().drop_front());
1458 
1459   // Consume optional comma following output section command.
1460   consume(",");
1461 
1462   return Cmd;
1463 }
1464 
1465 // Read "=<number>" where <number> is an octal/decimal/hexadecimal number.
1466 // https://sourceware.org/binutils/docs/ld/Output-Section-Fill.html
1467 //
1468 // ld.gold is not fully compatible with ld.bfd. ld.bfd handles
1469 // hexstrings as blobs of arbitrary sizes, while ld.gold handles them
1470 // as 32-bit big-endian values. We will do the same as ld.gold does
1471 // because it's simpler than what ld.bfd does.
1472 uint32_t ScriptParser::readOutputSectionFiller(StringRef Tok) {
1473   uint32_t V;
1474   if (!Tok.getAsInteger(0, V))
1475     return V;
1476   setError("invalid filler expression: " + Tok);
1477   return 0;
1478 }
1479 
1480 SymbolAssignment *ScriptParser::readProvideHidden(bool Provide, bool Hidden) {
1481   expect("(");
1482   SymbolAssignment *Cmd = readAssignment(next());
1483   Cmd->Provide = Provide;
1484   Cmd->Hidden = Hidden;
1485   expect(")");
1486   expect(";");
1487   return Cmd;
1488 }
1489 
1490 SymbolAssignment *ScriptParser::readProvideOrAssignment(StringRef Tok) {
1491   SymbolAssignment *Cmd = nullptr;
1492   if (peek() == "=" || peek() == "+=") {
1493     Cmd = readAssignment(Tok);
1494     expect(";");
1495   } else if (Tok == "PROVIDE") {
1496     Cmd = readProvideHidden(true, false);
1497   } else if (Tok == "HIDDEN") {
1498     Cmd = readProvideHidden(false, true);
1499   } else if (Tok == "PROVIDE_HIDDEN") {
1500     Cmd = readProvideHidden(true, true);
1501   }
1502   return Cmd;
1503 }
1504 
1505 static uint64_t getSymbolValue(const Twine &Loc, StringRef S, uint64_t Dot) {
1506   if (S == ".")
1507     return Dot;
1508   return ScriptBase->getSymbolValue(Loc, S);
1509 }
1510 
1511 static bool isAbsolute(StringRef S) {
1512   if (S == ".")
1513     return false;
1514   return ScriptBase->isAbsolute(S);
1515 }
1516 
1517 SymbolAssignment *ScriptParser::readAssignment(StringRef Name) {
1518   StringRef Op = next();
1519   Expr E;
1520   assert(Op == "=" || Op == "+=");
1521   if (consume("ABSOLUTE")) {
1522     // The RHS may be something like "ABSOLUTE(.) & 0xff".
1523     // Call readExpr1 to read the whole expression.
1524     E = readExpr1(readParenExpr(), 0);
1525     E.IsAbsolute = [] { return true; };
1526   } else {
1527     E = readExpr();
1528   }
1529   if (Op == "+=") {
1530     std::string Loc = getCurrentLocation();
1531     E = [=](uint64_t Dot) {
1532       return getSymbolValue(Loc, Name, Dot) + E(Dot);
1533     };
1534   }
1535   return new SymbolAssignment(Name, E);
1536 }
1537 
1538 // This is an operator-precedence parser to parse a linker
1539 // script expression.
1540 Expr ScriptParser::readExpr() { return readExpr1(readPrimary(), 0); }
1541 
1542 static Expr combine(StringRef Op, Expr L, Expr R) {
1543   if (Op == "*")
1544     return [=](uint64_t Dot) { return L(Dot) * R(Dot); };
1545   if (Op == "/") {
1546     return [=](uint64_t Dot) -> uint64_t {
1547       uint64_t RHS = R(Dot);
1548       if (RHS == 0) {
1549         error("division by zero");
1550         return 0;
1551       }
1552       return L(Dot) / RHS;
1553     };
1554   }
1555   if (Op == "+")
1556     return {[=](uint64_t Dot) { return L(Dot) + R(Dot); },
1557             [=] { return L.IsAbsolute() && R.IsAbsolute(); },
1558             [=] {
1559               const OutputSectionBase *S = L.Section();
1560               return S ? S : R.Section();
1561             }};
1562   if (Op == "-")
1563     return [=](uint64_t Dot) { return L(Dot) - R(Dot); };
1564   if (Op == "<<")
1565     return [=](uint64_t Dot) { return L(Dot) << R(Dot); };
1566   if (Op == ">>")
1567     return [=](uint64_t Dot) { return L(Dot) >> R(Dot); };
1568   if (Op == "<")
1569     return [=](uint64_t Dot) { return L(Dot) < R(Dot); };
1570   if (Op == ">")
1571     return [=](uint64_t Dot) { return L(Dot) > R(Dot); };
1572   if (Op == ">=")
1573     return [=](uint64_t Dot) { return L(Dot) >= R(Dot); };
1574   if (Op == "<=")
1575     return [=](uint64_t Dot) { return L(Dot) <= R(Dot); };
1576   if (Op == "==")
1577     return [=](uint64_t Dot) { return L(Dot) == R(Dot); };
1578   if (Op == "!=")
1579     return [=](uint64_t Dot) { return L(Dot) != R(Dot); };
1580   if (Op == "&")
1581     return [=](uint64_t Dot) { return L(Dot) & R(Dot); };
1582   if (Op == "|")
1583     return [=](uint64_t Dot) { return L(Dot) | R(Dot); };
1584   llvm_unreachable("invalid operator");
1585 }
1586 
1587 // This is a part of the operator-precedence parser. This function
1588 // assumes that the remaining token stream starts with an operator.
1589 Expr ScriptParser::readExpr1(Expr Lhs, int MinPrec) {
1590   while (!atEOF() && !Error) {
1591     // Read an operator and an expression.
1592     if (consume("?"))
1593       return readTernary(Lhs);
1594     StringRef Op1 = peek();
1595     if (precedence(Op1) < MinPrec)
1596       break;
1597     skip();
1598     Expr Rhs = readPrimary();
1599 
1600     // Evaluate the remaining part of the expression first if the
1601     // next operator has greater precedence than the previous one.
1602     // For example, if we have read "+" and "3", and if the next
1603     // operator is "*", then we'll evaluate 3 * ... part first.
1604     while (!atEOF()) {
1605       StringRef Op2 = peek();
1606       if (precedence(Op2) <= precedence(Op1))
1607         break;
1608       Rhs = readExpr1(Rhs, precedence(Op2));
1609     }
1610 
1611     Lhs = combine(Op1, Lhs, Rhs);
1612   }
1613   return Lhs;
1614 }
1615 
1616 uint64_t static getConstant(StringRef S) {
1617   if (S == "COMMONPAGESIZE")
1618     return Target->PageSize;
1619   if (S == "MAXPAGESIZE")
1620     return Config->MaxPageSize;
1621   error("unknown constant: " + S);
1622   return 0;
1623 }
1624 
1625 // Parses Tok as an integer. Returns true if successful.
1626 // It recognizes hexadecimal (prefixed with "0x" or suffixed with "H")
1627 // and decimal numbers. Decimal numbers may have "K" (kilo) or
1628 // "M" (mega) prefixes.
1629 static bool readInteger(StringRef Tok, uint64_t &Result) {
1630   // Negative number
1631   if (Tok.startswith("-")) {
1632     if (!readInteger(Tok.substr(1), Result))
1633       return false;
1634     Result = -Result;
1635     return true;
1636   }
1637 
1638   // Hexadecimal
1639   if (Tok.startswith_lower("0x"))
1640     return !Tok.substr(2).getAsInteger(16, Result);
1641   if (Tok.endswith_lower("H"))
1642     return !Tok.drop_back().getAsInteger(16, Result);
1643 
1644   // Decimal
1645   int Suffix = 1;
1646   if (Tok.endswith_lower("K")) {
1647     Suffix = 1024;
1648     Tok = Tok.drop_back();
1649   } else if (Tok.endswith_lower("M")) {
1650     Suffix = 1024 * 1024;
1651     Tok = Tok.drop_back();
1652   }
1653   if (Tok.getAsInteger(10, Result))
1654     return false;
1655   Result *= Suffix;
1656   return true;
1657 }
1658 
1659 BytesDataCommand *ScriptParser::readBytesDataCommand(StringRef Tok) {
1660   int Size = StringSwitch<unsigned>(Tok)
1661                  .Case("BYTE", 1)
1662                  .Case("SHORT", 2)
1663                  .Case("LONG", 4)
1664                  .Case("QUAD", 8)
1665                  .Default(-1);
1666   if (Size == -1)
1667     return nullptr;
1668 
1669   return new BytesDataCommand(readParenExpr(), Size);
1670 }
1671 
1672 StringRef ScriptParser::readParenLiteral() {
1673   expect("(");
1674   StringRef Tok = next();
1675   expect(")");
1676   return Tok;
1677 }
1678 
1679 Expr ScriptParser::readPrimary() {
1680   if (peek() == "(")
1681     return readParenExpr();
1682 
1683   StringRef Tok = next();
1684   std::string Location = getCurrentLocation();
1685 
1686   if (Tok == "~") {
1687     Expr E = readPrimary();
1688     return [=](uint64_t Dot) { return ~E(Dot); };
1689   }
1690   if (Tok == "-") {
1691     Expr E = readPrimary();
1692     return [=](uint64_t Dot) { return -E(Dot); };
1693   }
1694 
1695   // Built-in functions are parsed here.
1696   // https://sourceware.org/binutils/docs/ld/Builtin-Functions.html.
1697   if (Tok == "ADDR") {
1698     StringRef Name = readParenLiteral();
1699     return {[=](uint64_t Dot) {
1700               return ScriptBase->getOutputSection(Location, Name)->Addr;
1701             },
1702             [=] { return false; },
1703             [=] { return ScriptBase->getOutputSection(Location, Name); }};
1704   }
1705   if (Tok == "LOADADDR") {
1706     StringRef Name = readParenLiteral();
1707     return [=](uint64_t Dot) {
1708       return ScriptBase->getOutputSection(Location, Name)->getLMA();
1709     };
1710   }
1711   if (Tok == "ASSERT")
1712     return readAssert();
1713   if (Tok == "ALIGN") {
1714     expect("(");
1715     Expr E = readExpr();
1716     if (consume(",")) {
1717       Expr E2 = readExpr();
1718       expect(")");
1719       return [=](uint64_t Dot) { return alignTo(E(Dot), E2(Dot)); };
1720     }
1721     expect(")");
1722     return [=](uint64_t Dot) { return alignTo(Dot, E(Dot)); };
1723   }
1724   if (Tok == "CONSTANT") {
1725     StringRef Name = readParenLiteral();
1726     return [=](uint64_t Dot) { return getConstant(Name); };
1727   }
1728   if (Tok == "DEFINED") {
1729     StringRef Name = readParenLiteral();
1730     return [=](uint64_t Dot) { return ScriptBase->isDefined(Name) ? 1 : 0; };
1731   }
1732   if (Tok == "SEGMENT_START") {
1733     expect("(");
1734     skip();
1735     expect(",");
1736     Expr E = readExpr();
1737     expect(")");
1738     return [=](uint64_t Dot) { return E(Dot); };
1739   }
1740   if (Tok == "DATA_SEGMENT_ALIGN") {
1741     expect("(");
1742     Expr E = readExpr();
1743     expect(",");
1744     readExpr();
1745     expect(")");
1746     return [=](uint64_t Dot) { return alignTo(Dot, E(Dot)); };
1747   }
1748   if (Tok == "DATA_SEGMENT_END") {
1749     expect("(");
1750     expect(".");
1751     expect(")");
1752     return [](uint64_t Dot) { return Dot; };
1753   }
1754   // GNU linkers implements more complicated logic to handle
1755   // DATA_SEGMENT_RELRO_END. We instead ignore the arguments and just align to
1756   // the next page boundary for simplicity.
1757   if (Tok == "DATA_SEGMENT_RELRO_END") {
1758     expect("(");
1759     readExpr();
1760     expect(",");
1761     readExpr();
1762     expect(")");
1763     return [](uint64_t Dot) { return alignTo(Dot, Target->PageSize); };
1764   }
1765   if (Tok == "SIZEOF") {
1766     StringRef Name = readParenLiteral();
1767     return [=](uint64_t Dot) { return ScriptBase->getOutputSectionSize(Name); };
1768   }
1769   if (Tok == "ALIGNOF") {
1770     StringRef Name = readParenLiteral();
1771     return [=](uint64_t Dot) {
1772       return ScriptBase->getOutputSection(Location, Name)->Addralign;
1773     };
1774   }
1775   if (Tok == "SIZEOF_HEADERS")
1776     return [=](uint64_t Dot) { return ScriptBase->getHeaderSize(); };
1777 
1778   // Tok is a literal number.
1779   uint64_t V;
1780   if (readInteger(Tok, V))
1781     return [=](uint64_t Dot) { return V; };
1782 
1783   // Tok is a symbol name.
1784   if (Tok != "." && !isValidCIdentifier(Tok))
1785     setError("malformed number: " + Tok);
1786   return {[=](uint64_t Dot) { return getSymbolValue(Location, Tok, Dot); },
1787           [=] { return isAbsolute(Tok); },
1788           [=] { return ScriptBase->getSymbolSection(Tok); }};
1789 }
1790 
1791 Expr ScriptParser::readTernary(Expr Cond) {
1792   Expr L = readExpr();
1793   expect(":");
1794   Expr R = readExpr();
1795   return [=](uint64_t Dot) { return Cond(Dot) ? L(Dot) : R(Dot); };
1796 }
1797 
1798 Expr ScriptParser::readParenExpr() {
1799   expect("(");
1800   Expr E = readExpr();
1801   expect(")");
1802   return E;
1803 }
1804 
1805 std::vector<StringRef> ScriptParser::readOutputSectionPhdrs() {
1806   std::vector<StringRef> Phdrs;
1807   while (!Error && peek().startswith(":")) {
1808     StringRef Tok = next();
1809     Phdrs.push_back((Tok.size() == 1) ? next() : Tok.substr(1));
1810   }
1811   return Phdrs;
1812 }
1813 
1814 // Read a program header type name. The next token must be a
1815 // name of a program header type or a constant (e.g. "0x3").
1816 unsigned ScriptParser::readPhdrType() {
1817   StringRef Tok = next();
1818   uint64_t Val;
1819   if (readInteger(Tok, Val))
1820     return Val;
1821 
1822   unsigned Ret = StringSwitch<unsigned>(Tok)
1823                      .Case("PT_NULL", PT_NULL)
1824                      .Case("PT_LOAD", PT_LOAD)
1825                      .Case("PT_DYNAMIC", PT_DYNAMIC)
1826                      .Case("PT_INTERP", PT_INTERP)
1827                      .Case("PT_NOTE", PT_NOTE)
1828                      .Case("PT_SHLIB", PT_SHLIB)
1829                      .Case("PT_PHDR", PT_PHDR)
1830                      .Case("PT_TLS", PT_TLS)
1831                      .Case("PT_GNU_EH_FRAME", PT_GNU_EH_FRAME)
1832                      .Case("PT_GNU_STACK", PT_GNU_STACK)
1833                      .Case("PT_GNU_RELRO", PT_GNU_RELRO)
1834                      .Case("PT_OPENBSD_RANDOMIZE", PT_OPENBSD_RANDOMIZE)
1835                      .Case("PT_OPENBSD_WXNEEDED", PT_OPENBSD_WXNEEDED)
1836                      .Case("PT_OPENBSD_BOOTDATA", PT_OPENBSD_BOOTDATA)
1837                      .Default(-1);
1838 
1839   if (Ret == (unsigned)-1) {
1840     setError("invalid program header type: " + Tok);
1841     return PT_NULL;
1842   }
1843   return Ret;
1844 }
1845 
1846 // Reads a list of symbols, e.g. "{ global: foo; bar; local: *; };".
1847 void ScriptParser::readAnonymousDeclaration() {
1848   // Read global symbols first. "global:" is default, so if there's
1849   // no label, we assume global symbols.
1850   if (consume("global:") || peek() != "local:")
1851     Config->VersionScriptGlobals = readSymbols();
1852 
1853   readLocals();
1854   expect("}");
1855   expect(";");
1856 }
1857 
1858 void ScriptParser::readLocals() {
1859   if (!consume("local:"))
1860     return;
1861   std::vector<SymbolVersion> Locals = readSymbols();
1862   for (SymbolVersion V : Locals) {
1863     if (V.Name == "*") {
1864       Config->DefaultSymbolVersion = VER_NDX_LOCAL;
1865       continue;
1866     }
1867     Config->VersionScriptLocals.push_back(V);
1868   }
1869 }
1870 
1871 // Reads a list of symbols, e.g. "VerStr { global: foo; bar; local: *; };".
1872 void ScriptParser::readVersionDeclaration(StringRef VerStr) {
1873   // Identifiers start at 2 because 0 and 1 are reserved
1874   // for VER_NDX_LOCAL and VER_NDX_GLOBAL constants.
1875   uint16_t VersionId = Config->VersionDefinitions.size() + 2;
1876   Config->VersionDefinitions.push_back({VerStr, VersionId});
1877 
1878   // Read global symbols.
1879   if (consume("global:") || peek() != "local:")
1880     Config->VersionDefinitions.back().Globals = readSymbols();
1881 
1882   readLocals();
1883   expect("}");
1884 
1885   // Each version may have a parent version. For example, "Ver2"
1886   // defined as "Ver2 { global: foo; local: *; } Ver1;" has "Ver1"
1887   // as a parent. This version hierarchy is, probably against your
1888   // instinct, purely for hint; the runtime doesn't care about it
1889   // at all. In LLD, we simply ignore it.
1890   if (peek() != ";")
1891     skip();
1892   expect(";");
1893 }
1894 
1895 // Reads a list of symbols for a versions cript.
1896 std::vector<SymbolVersion> ScriptParser::readSymbols() {
1897   std::vector<SymbolVersion> Ret;
1898   for (;;) {
1899     if (consume("extern")) {
1900       for (SymbolVersion V : readVersionExtern())
1901         Ret.push_back(V);
1902       continue;
1903     }
1904 
1905     if (peek() == "}" || peek() == "local:" || Error)
1906       break;
1907     StringRef Tok = next();
1908     Ret.push_back({unquote(Tok), false, hasWildcard(Tok)});
1909     expect(";");
1910   }
1911   return Ret;
1912 }
1913 
1914 // Reads an "extern C++" directive, e.g.,
1915 // "extern "C++" { ns::*; "f(int, double)"; };"
1916 std::vector<SymbolVersion> ScriptParser::readVersionExtern() {
1917   StringRef Tok = next();
1918   bool IsCXX = Tok == "\"C++\"";
1919   if (!IsCXX && Tok != "\"C\"")
1920     setError("Unknown language");
1921   expect("{");
1922 
1923   std::vector<SymbolVersion> Ret;
1924   while (!Error && peek() != "}") {
1925     StringRef Tok = next();
1926     bool HasWildcard = !Tok.startswith("\"") && hasWildcard(Tok);
1927     Ret.push_back({unquote(Tok), IsCXX, HasWildcard});
1928     expect(";");
1929   }
1930 
1931   expect("}");
1932   expect(";");
1933   return Ret;
1934 }
1935 
1936 void elf::readLinkerScript(MemoryBufferRef MB) {
1937   ScriptParser(MB).readLinkerScript();
1938 }
1939 
1940 void elf::readVersionScript(MemoryBufferRef MB) {
1941   ScriptParser(MB).readVersionScript();
1942 }
1943 
1944 void elf::readDynamicList(MemoryBufferRef MB) {
1945   ScriptParser(MB).readDynamicList();
1946 }
1947 
1948 template class elf::LinkerScript<ELF32LE>;
1949 template class elf::LinkerScript<ELF32BE>;
1950 template class elf::LinkerScript<ELF64LE>;
1951 template class elf::LinkerScript<ELF64BE>;
1952