xref: /freebsd/contrib/llvm-project/lld/ELF/Symbols.cpp (revision 04eeddc0aa8e0a417a16eaf9d7d095207f4a8623)
1 //===- Symbols.cpp --------------------------------------------------------===//
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 #include "Symbols.h"
10 #include "InputFiles.h"
11 #include "InputSection.h"
12 #include "OutputSections.h"
13 #include "SyntheticSections.h"
14 #include "Target.h"
15 #include "Writer.h"
16 #include "lld/Common/ErrorHandler.h"
17 #include "lld/Common/Strings.h"
18 #include "llvm/ADT/STLExtras.h"
19 #include "llvm/Support/FileSystem.h"
20 #include "llvm/Support/Path.h"
21 #include <cstring>
22 
23 using namespace llvm;
24 using namespace llvm::object;
25 using namespace llvm::ELF;
26 using namespace lld;
27 using namespace lld::elf;
28 
29 std::string lld::toString(const elf::Symbol &sym) {
30   StringRef name = sym.getName();
31   std::string ret = demangle(name, config->demangle);
32 
33   const char *suffix = sym.getVersionSuffix();
34   if (*suffix == '@')
35     ret += suffix;
36   return ret;
37 }
38 
39 std::string lld::toELFString(const Archive::Symbol &b) {
40   return demangle(b.getName(), config->demangle);
41 }
42 
43 Defined *ElfSym::bss;
44 Defined *ElfSym::etext1;
45 Defined *ElfSym::etext2;
46 Defined *ElfSym::edata1;
47 Defined *ElfSym::edata2;
48 Defined *ElfSym::end1;
49 Defined *ElfSym::end2;
50 Defined *ElfSym::globalOffsetTable;
51 Defined *ElfSym::mipsGp;
52 Defined *ElfSym::mipsGpDisp;
53 Defined *ElfSym::mipsLocalGp;
54 Defined *ElfSym::relaIpltStart;
55 Defined *ElfSym::relaIpltEnd;
56 Defined *ElfSym::riscvGlobalPointer;
57 Defined *ElfSym::tlsModuleBase;
58 DenseMap<const Symbol *, std::pair<const InputFile *, const InputFile *>>
59     elf::backwardReferences;
60 SmallVector<std::tuple<std::string, const InputFile *, const Symbol &>, 0>
61     elf::whyExtract;
62 SmallVector<SymbolAux, 0> elf::symAux;
63 
64 static uint64_t getSymVA(const Symbol &sym, int64_t addend) {
65   switch (sym.kind()) {
66   case Symbol::DefinedKind: {
67     auto &d = cast<Defined>(sym);
68     SectionBase *isec = d.section;
69 
70     // This is an absolute symbol.
71     if (!isec)
72       return d.value;
73 
74     assert(isec != &InputSection::discarded);
75 
76     uint64_t offset = d.value;
77 
78     // An object in an SHF_MERGE section might be referenced via a
79     // section symbol (as a hack for reducing the number of local
80     // symbols).
81     // Depending on the addend, the reference via a section symbol
82     // refers to a different object in the merge section.
83     // Since the objects in the merge section are not necessarily
84     // contiguous in the output, the addend can thus affect the final
85     // VA in a non-linear way.
86     // To make this work, we incorporate the addend into the section
87     // offset (and zero out the addend for later processing) so that
88     // we find the right object in the section.
89     if (d.isSection())
90       offset += addend;
91 
92     // In the typical case, this is actually very simple and boils
93     // down to adding together 3 numbers:
94     // 1. The address of the output section.
95     // 2. The offset of the input section within the output section.
96     // 3. The offset within the input section (this addition happens
97     //    inside InputSection::getOffset).
98     //
99     // If you understand the data structures involved with this next
100     // line (and how they get built), then you have a pretty good
101     // understanding of the linker.
102     uint64_t va = isec->getVA(offset);
103     if (d.isSection())
104       va -= addend;
105 
106     // MIPS relocatable files can mix regular and microMIPS code.
107     // Linker needs to distinguish such code. To do so microMIPS
108     // symbols has the `STO_MIPS_MICROMIPS` flag in the `st_other`
109     // field. Unfortunately, the `MIPS::relocate()` method has
110     // a symbol value only. To pass type of the symbol (regular/microMIPS)
111     // to that routine as well as other places where we write
112     // a symbol value as-is (.dynamic section, `Elf_Ehdr::e_entry`
113     // field etc) do the same trick as compiler uses to mark microMIPS
114     // for CPU - set the less-significant bit.
115     if (config->emachine == EM_MIPS && isMicroMips() &&
116         ((sym.stOther & STO_MIPS_MICROMIPS) || sym.needsCopy))
117       va |= 1;
118 
119     if (d.isTls() && !config->relocatable) {
120       // Use the address of the TLS segment's first section rather than the
121       // segment's address, because segment addresses aren't initialized until
122       // after sections are finalized. (e.g. Measuring the size of .rela.dyn
123       // for Android relocation packing requires knowing TLS symbol addresses
124       // during section finalization.)
125       if (!Out::tlsPhdr || !Out::tlsPhdr->firstSec)
126         fatal(toString(d.file) +
127               " has an STT_TLS symbol but doesn't have an SHF_TLS section");
128       return va - Out::tlsPhdr->firstSec->addr;
129     }
130     return va;
131   }
132   case Symbol::SharedKind:
133   case Symbol::UndefinedKind:
134     return 0;
135   case Symbol::LazyArchiveKind:
136   case Symbol::LazyObjectKind:
137     llvm_unreachable("lazy symbol reached writer");
138   case Symbol::CommonKind:
139     llvm_unreachable("common symbol reached writer");
140   case Symbol::PlaceholderKind:
141     llvm_unreachable("placeholder symbol reached writer");
142   }
143   llvm_unreachable("invalid symbol kind");
144 }
145 
146 uint64_t Symbol::getVA(int64_t addend) const {
147   return getSymVA(*this, addend) + addend;
148 }
149 
150 uint64_t Symbol::getGotVA() const {
151   if (gotInIgot)
152     return in.igotPlt->getVA() + getGotPltOffset();
153   return in.got->getVA() + getGotOffset();
154 }
155 
156 uint64_t Symbol::getGotOffset() const {
157   return getGotIdx() * target->gotEntrySize;
158 }
159 
160 uint64_t Symbol::getGotPltVA() const {
161   if (isInIplt)
162     return in.igotPlt->getVA() + getGotPltOffset();
163   return in.gotPlt->getVA() + getGotPltOffset();
164 }
165 
166 uint64_t Symbol::getGotPltOffset() const {
167   if (isInIplt)
168     return getPltIdx() * target->gotEntrySize;
169   return (getPltIdx() + target->gotPltHeaderEntriesNum) * target->gotEntrySize;
170 }
171 
172 uint64_t Symbol::getPltVA() const {
173   uint64_t outVA = isInIplt
174                        ? in.iplt->getVA() + getPltIdx() * target->ipltEntrySize
175                        : in.plt->getVA() + in.plt->headerSize +
176                              getPltIdx() * target->pltEntrySize;
177 
178   // While linking microMIPS code PLT code are always microMIPS
179   // code. Set the less-significant bit to track that fact.
180   // See detailed comment in the `getSymVA` function.
181   if (config->emachine == EM_MIPS && isMicroMips())
182     outVA |= 1;
183   return outVA;
184 }
185 
186 uint64_t Symbol::getSize() const {
187   if (const auto *dr = dyn_cast<Defined>(this))
188     return dr->size;
189   return cast<SharedSymbol>(this)->size;
190 }
191 
192 OutputSection *Symbol::getOutputSection() const {
193   if (auto *s = dyn_cast<Defined>(this)) {
194     if (auto *sec = s->section)
195       return sec->getOutputSection();
196     return nullptr;
197   }
198   return nullptr;
199 }
200 
201 // If a symbol name contains '@', the characters after that is
202 // a symbol version name. This function parses that.
203 void Symbol::parseSymbolVersion() {
204   // Return if localized by a local: pattern in a version script.
205   if (versionId == VER_NDX_LOCAL)
206     return;
207   StringRef s = getName();
208   size_t pos = s.find('@');
209   if (pos == StringRef::npos)
210     return;
211   StringRef verstr = s.substr(pos + 1);
212 
213   // Truncate the symbol name so that it doesn't include the version string.
214   nameSize = pos;
215 
216   if (verstr.empty())
217     return;
218 
219   // If this is not in this DSO, it is not a definition.
220   if (!isDefined())
221     return;
222 
223   // '@@' in a symbol name means the default version.
224   // It is usually the most recent one.
225   bool isDefault = (verstr[0] == '@');
226   if (isDefault)
227     verstr = verstr.substr(1);
228 
229   for (const VersionDefinition &ver : namedVersionDefs()) {
230     if (ver.name != verstr)
231       continue;
232 
233     if (isDefault)
234       versionId = ver.id;
235     else
236       versionId = ver.id | VERSYM_HIDDEN;
237     return;
238   }
239 
240   // It is an error if the specified version is not defined.
241   // Usually version script is not provided when linking executable,
242   // but we may still want to override a versioned symbol from DSO,
243   // so we do not report error in this case. We also do not error
244   // if the symbol has a local version as it won't be in the dynamic
245   // symbol table.
246   if (config->shared && versionId != VER_NDX_LOCAL)
247     error(toString(file) + ": symbol " + s + " has undefined version " +
248           verstr);
249 }
250 
251 void Symbol::extract() const {
252   if (auto *sym = dyn_cast<LazyArchive>(this)) {
253     cast<ArchiveFile>(sym->file)->extract(sym->sym);
254   } else if (file->lazy) {
255     file->lazy = false;
256     parseFile(file);
257   }
258 }
259 
260 MemoryBufferRef LazyArchive::getMemberBuffer() {
261   Archive::Child c =
262       CHECK(sym.getMember(),
263             "could not get the member for symbol " + toELFString(sym));
264 
265   return CHECK(c.getMemoryBufferRef(),
266                "could not get the buffer for the member defining symbol " +
267                    toELFString(sym));
268 }
269 
270 uint8_t Symbol::computeBinding() const {
271   if ((visibility != STV_DEFAULT && visibility != STV_PROTECTED) ||
272       versionId == VER_NDX_LOCAL)
273     return STB_LOCAL;
274   if (binding == STB_GNU_UNIQUE && !config->gnuUnique)
275     return STB_GLOBAL;
276   return binding;
277 }
278 
279 bool Symbol::includeInDynsym() const {
280   if (computeBinding() == STB_LOCAL)
281     return false;
282   if (!isDefined() && !isCommon())
283     // This should unconditionally return true, unfortunately glibc -static-pie
284     // expects undefined weak symbols not to exist in .dynsym, e.g.
285     // __pthread_mutex_lock reference in _dl_add_to_namespace_list,
286     // __pthread_initialize_minimal reference in csu/libc-start.c.
287     return !(isUndefWeak() && config->noDynamicLinker);
288 
289   return exportDynamic || inDynamicList;
290 }
291 
292 // Print out a log message for --trace-symbol.
293 void elf::printTraceSymbol(const Symbol *sym) {
294   std::string s;
295   if (sym->isUndefined())
296     s = ": reference to ";
297   else if (sym->isLazy())
298     s = ": lazy definition of ";
299   else if (sym->isShared())
300     s = ": shared definition of ";
301   else if (sym->isCommon())
302     s = ": common definition of ";
303   else
304     s = ": definition of ";
305 
306   message(toString(sym->file) + s + sym->getName());
307 }
308 
309 static void recordWhyExtract(const InputFile *reference,
310                              const InputFile &extracted, const Symbol &sym) {
311   whyExtract.emplace_back(toString(reference), &extracted, sym);
312 }
313 
314 void elf::maybeWarnUnorderableSymbol(const Symbol *sym) {
315   if (!config->warnSymbolOrdering)
316     return;
317 
318   // If UnresolvedPolicy::Ignore is used, no "undefined symbol" error/warning
319   // is emitted. It makes sense to not warn on undefined symbols.
320   //
321   // Note, ld.bfd --symbol-ordering-file= does not warn on undefined symbols,
322   // but we don't have to be compatible here.
323   if (sym->isUndefined() &&
324       config->unresolvedSymbols == UnresolvedPolicy::Ignore)
325     return;
326 
327   const InputFile *file = sym->file;
328   auto *d = dyn_cast<Defined>(sym);
329 
330   auto report = [&](StringRef s) { warn(toString(file) + s + sym->getName()); };
331 
332   if (sym->isUndefined())
333     report(": unable to order undefined symbol: ");
334   else if (sym->isShared())
335     report(": unable to order shared symbol: ");
336   else if (d && !d->section)
337     report(": unable to order absolute symbol: ");
338   else if (d && isa<OutputSection>(d->section))
339     report(": unable to order synthetic symbol: ");
340   else if (d && !d->section->isLive())
341     report(": unable to order discarded symbol: ");
342 }
343 
344 // Returns true if a symbol can be replaced at load-time by a symbol
345 // with the same name defined in other ELF executable or DSO.
346 bool elf::computeIsPreemptible(const Symbol &sym) {
347   assert(!sym.isLocal() || sym.isPlaceholder());
348 
349   // Only symbols with default visibility that appear in dynsym can be
350   // preempted. Symbols with protected visibility cannot be preempted.
351   if (!sym.includeInDynsym() || sym.visibility != STV_DEFAULT)
352     return false;
353 
354   // At this point copy relocations have not been created yet, so any
355   // symbol that is not defined locally is preemptible.
356   if (!sym.isDefined())
357     return true;
358 
359   if (!config->shared)
360     return false;
361 
362   // If -Bsymbolic or --dynamic-list is specified, or -Bsymbolic-functions is
363   // specified and the symbol is STT_FUNC, the symbol is preemptible iff it is
364   // in the dynamic list. -Bsymbolic-non-weak-functions is a non-weak subset of
365   // -Bsymbolic-functions.
366   if (config->symbolic ||
367       (config->bsymbolic == BsymbolicKind::Functions && sym.isFunc()) ||
368       (config->bsymbolic == BsymbolicKind::NonWeakFunctions && sym.isFunc() &&
369        sym.binding != STB_WEAK))
370     return sym.inDynamicList;
371   return true;
372 }
373 
374 void elf::reportBackrefs() {
375   for (auto &it : backwardReferences) {
376     const Symbol &sym = *it.first;
377     std::string to = toString(it.second.second);
378     // Some libraries have known problems and can cause noise. Filter them out
379     // with --warn-backrefs-exclude=. to may look like *.o or *.a(*.o).
380     bool exclude = false;
381     for (const llvm::GlobPattern &pat : config->warnBackrefsExclude)
382       if (pat.match(to)) {
383         exclude = true;
384         break;
385       }
386     if (!exclude)
387       warn("backward reference detected: " + sym.getName() + " in " +
388            toString(it.second.first) + " refers to " + to);
389   }
390 }
391 
392 static uint8_t getMinVisibility(uint8_t va, uint8_t vb) {
393   if (va == STV_DEFAULT)
394     return vb;
395   if (vb == STV_DEFAULT)
396     return va;
397   return std::min(va, vb);
398 }
399 
400 // Merge symbol properties.
401 //
402 // When we have many symbols of the same name, we choose one of them,
403 // and that's the result of symbol resolution. However, symbols that
404 // were not chosen still affect some symbol properties.
405 void Symbol::mergeProperties(const Symbol &other) {
406   if (other.exportDynamic)
407     exportDynamic = true;
408   if (other.isUsedInRegularObj)
409     isUsedInRegularObj = true;
410 
411   // DSO symbols do not affect visibility in the output.
412   if (!other.isShared())
413     visibility = getMinVisibility(visibility, other.visibility);
414 }
415 
416 void Symbol::resolve(const Symbol &other) {
417   mergeProperties(other);
418 
419   if (isPlaceholder()) {
420     replace(other);
421     return;
422   }
423 
424   switch (other.kind()) {
425   case Symbol::UndefinedKind:
426     resolveUndefined(cast<Undefined>(other));
427     break;
428   case Symbol::CommonKind:
429     resolveCommon(cast<CommonSymbol>(other));
430     break;
431   case Symbol::DefinedKind:
432     resolveDefined(cast<Defined>(other));
433     break;
434   case Symbol::LazyArchiveKind:
435     resolveLazy(cast<LazyArchive>(other));
436     break;
437   case Symbol::LazyObjectKind:
438     resolveLazy(cast<LazyObject>(other));
439     break;
440   case Symbol::SharedKind:
441     resolveShared(cast<SharedSymbol>(other));
442     break;
443   case Symbol::PlaceholderKind:
444     llvm_unreachable("bad symbol kind");
445   }
446 }
447 
448 void Symbol::resolveUndefined(const Undefined &other) {
449   // An undefined symbol with non default visibility must be satisfied
450   // in the same DSO.
451   //
452   // If this is a non-weak defined symbol in a discarded section, override the
453   // existing undefined symbol for better error message later.
454   if ((isShared() && other.visibility != STV_DEFAULT) ||
455       (isUndefined() && other.binding != STB_WEAK && other.discardedSecIdx)) {
456     replace(other);
457     return;
458   }
459 
460   if (traced)
461     printTraceSymbol(&other);
462 
463   if (isLazy()) {
464     // An undefined weak will not extract archive members. See comment on Lazy
465     // in Symbols.h for the details.
466     if (other.binding == STB_WEAK) {
467       binding = STB_WEAK;
468       type = other.type;
469       return;
470     }
471 
472     // Do extra check for --warn-backrefs.
473     //
474     // --warn-backrefs is an option to prevent an undefined reference from
475     // extracting an archive member written earlier in the command line. It can
476     // be used to keep compatibility with GNU linkers to some degree. I'll
477     // explain the feature and why you may find it useful in this comment.
478     //
479     // lld's symbol resolution semantics is more relaxed than traditional Unix
480     // linkers. For example,
481     //
482     //   ld.lld foo.a bar.o
483     //
484     // succeeds even if bar.o contains an undefined symbol that has to be
485     // resolved by some object file in foo.a. Traditional Unix linkers don't
486     // allow this kind of backward reference, as they visit each file only once
487     // from left to right in the command line while resolving all undefined
488     // symbols at the moment of visiting.
489     //
490     // In the above case, since there's no undefined symbol when a linker visits
491     // foo.a, no files are pulled out from foo.a, and because the linker forgets
492     // about foo.a after visiting, it can't resolve undefined symbols in bar.o
493     // that could have been resolved otherwise.
494     //
495     // That lld accepts more relaxed form means that (besides it'd make more
496     // sense) you can accidentally write a command line or a build file that
497     // works only with lld, even if you have a plan to distribute it to wider
498     // users who may be using GNU linkers. With --warn-backrefs, you can detect
499     // a library order that doesn't work with other Unix linkers.
500     //
501     // The option is also useful to detect cyclic dependencies between static
502     // archives. Again, lld accepts
503     //
504     //   ld.lld foo.a bar.a
505     //
506     // even if foo.a and bar.a depend on each other. With --warn-backrefs, it is
507     // handled as an error.
508     //
509     // Here is how the option works. We assign a group ID to each file. A file
510     // with a smaller group ID can pull out object files from an archive file
511     // with an equal or greater group ID. Otherwise, it is a reverse dependency
512     // and an error.
513     //
514     // A file outside --{start,end}-group gets a fresh ID when instantiated. All
515     // files within the same --{start,end}-group get the same group ID. E.g.
516     //
517     //   ld.lld A B --start-group C D --end-group E
518     //
519     // A forms group 0. B form group 1. C and D (including their member object
520     // files) form group 2. E forms group 3. I think that you can see how this
521     // group assignment rule simulates the traditional linker's semantics.
522     bool backref = config->warnBackrefs && other.file &&
523                    file->groupId < other.file->groupId;
524     extract();
525 
526     if (!config->whyExtract.empty())
527       recordWhyExtract(other.file, *file, *this);
528 
529     // We don't report backward references to weak symbols as they can be
530     // overridden later.
531     //
532     // A traditional linker does not error for -ldef1 -lref -ldef2 (linking
533     // sandwich), where def2 may or may not be the same as def1. We don't want
534     // to warn for this case, so dismiss the warning if we see a subsequent lazy
535     // definition. this->file needs to be saved because in the case of LTO it
536     // may be reset to nullptr or be replaced with a file named lto.tmp.
537     if (backref && !isWeak())
538       backwardReferences.try_emplace(this, std::make_pair(other.file, file));
539     return;
540   }
541 
542   // Undefined symbols in a SharedFile do not change the binding.
543   if (isa_and_nonnull<SharedFile>(other.file))
544     return;
545 
546   if (isUndefined() || isShared()) {
547     // The binding will be weak if there is at least one reference and all are
548     // weak. The binding has one opportunity to change to weak: if the first
549     // reference is weak.
550     if (other.binding != STB_WEAK || !referenced)
551       binding = other.binding;
552   }
553 }
554 
555 // Compare two symbols. Return 1 if the new symbol should win, -1 if
556 // the new symbol should lose, or 0 if there is a conflict.
557 int Symbol::compare(const Symbol *other) const {
558   assert(other->isDefined() || other->isCommon());
559 
560   if (!isDefined() && !isCommon())
561     return 1;
562 
563   // .symver foo,foo@@VER unfortunately creates two defined symbols: foo and
564   // foo@@VER. In GNU ld, if foo and foo@@VER are in the same file, foo is
565   // ignored. In our implementation, when this is foo, this->getName() may still
566   // contain @@, return 1 in this case as well.
567   if (file == other->file) {
568     if (other->getName().contains("@@"))
569       return 1;
570     if (getName().contains("@@"))
571       return -1;
572   }
573 
574   if (other->isWeak())
575     return -1;
576 
577   if (isWeak())
578     return 1;
579 
580   if (isCommon() && other->isCommon()) {
581     if (config->warnCommon)
582       warn("multiple common of " + getName());
583     return 0;
584   }
585 
586   if (isCommon()) {
587     if (config->warnCommon)
588       warn("common " + getName() + " is overridden");
589     return 1;
590   }
591 
592   if (other->isCommon()) {
593     if (config->warnCommon)
594       warn("common " + getName() + " is overridden");
595     return -1;
596   }
597 
598   auto *oldSym = cast<Defined>(this);
599   auto *newSym = cast<Defined>(other);
600 
601   if (isa_and_nonnull<BitcodeFile>(other->file))
602     return 0;
603 
604   if (!oldSym->section && !newSym->section && oldSym->value == newSym->value &&
605       newSym->binding == STB_GLOBAL)
606     return -1;
607 
608   return 0;
609 }
610 
611 static void reportDuplicate(Symbol *sym, InputFile *newFile,
612                             InputSectionBase *errSec, uint64_t errOffset) {
613   if (config->allowMultipleDefinition)
614     return;
615 
616   Defined *d = cast<Defined>(sym);
617   if (!d->section || !errSec) {
618     error("duplicate symbol: " + toString(*sym) + "\n>>> defined in " +
619           toString(sym->file) + "\n>>> defined in " + toString(newFile));
620     return;
621   }
622 
623   // Construct and print an error message in the form of:
624   //
625   //   ld.lld: error: duplicate symbol: foo
626   //   >>> defined at bar.c:30
627   //   >>>            bar.o (/home/alice/src/bar.o)
628   //   >>> defined at baz.c:563
629   //   >>>            baz.o in archive libbaz.a
630   auto *sec1 = cast<InputSectionBase>(d->section);
631   std::string src1 = sec1->getSrcMsg(*sym, d->value);
632   std::string obj1 = sec1->getObjMsg(d->value);
633   std::string src2 = errSec->getSrcMsg(*sym, errOffset);
634   std::string obj2 = errSec->getObjMsg(errOffset);
635 
636   std::string msg = "duplicate symbol: " + toString(*sym) + "\n>>> defined at ";
637   if (!src1.empty())
638     msg += src1 + "\n>>>            ";
639   msg += obj1 + "\n>>> defined at ";
640   if (!src2.empty())
641     msg += src2 + "\n>>>            ";
642   msg += obj2;
643   error(msg);
644 }
645 
646 void Symbol::resolveCommon(const CommonSymbol &other) {
647   int cmp = compare(&other);
648   if (cmp < 0)
649     return;
650 
651   if (cmp > 0) {
652     if (auto *s = dyn_cast<SharedSymbol>(this)) {
653       // Increase st_size if the shared symbol has a larger st_size. The shared
654       // symbol may be created from common symbols. The fact that some object
655       // files were linked into a shared object first should not change the
656       // regular rule that picks the largest st_size.
657       uint64_t size = s->size;
658       replace(other);
659       if (size > cast<CommonSymbol>(this)->size)
660         cast<CommonSymbol>(this)->size = size;
661     } else {
662       replace(other);
663     }
664     return;
665   }
666 
667   CommonSymbol *oldSym = cast<CommonSymbol>(this);
668 
669   oldSym->alignment = std::max(oldSym->alignment, other.alignment);
670   if (oldSym->size < other.size) {
671     oldSym->file = other.file;
672     oldSym->size = other.size;
673   }
674 }
675 
676 void Symbol::resolveDefined(const Defined &other) {
677   int cmp = compare(&other);
678   if (cmp > 0)
679     replace(other);
680   else if (cmp == 0)
681     reportDuplicate(this, other.file,
682                     dyn_cast_or_null<InputSectionBase>(other.section),
683                     other.value);
684 }
685 
686 template <class LazyT>
687 static void replaceCommon(Symbol &oldSym, const LazyT &newSym) {
688   backwardReferences.erase(&oldSym);
689   oldSym.replace(newSym);
690   newSym.extract();
691 }
692 
693 template <class LazyT> void Symbol::resolveLazy(const LazyT &other) {
694   // For common objects, we want to look for global or weak definitions that
695   // should be extracted as the canonical definition instead.
696   if (isCommon() && elf::config->fortranCommon) {
697     if (auto *laSym = dyn_cast<LazyArchive>(&other)) {
698       ArchiveFile *archive = cast<ArchiveFile>(laSym->file);
699       const Archive::Symbol &archiveSym = laSym->sym;
700       if (archive->shouldExtractForCommon(archiveSym)) {
701         replaceCommon(*this, other);
702         return;
703       }
704     } else if (auto *loSym = dyn_cast<LazyObject>(&other)) {
705       if (loSym->file->shouldExtractForCommon(loSym->getName())) {
706         replaceCommon(*this, other);
707         return;
708       }
709     }
710   }
711 
712   if (!isUndefined()) {
713     // See the comment in resolveUndefined().
714     if (isDefined())
715       backwardReferences.erase(this);
716     return;
717   }
718 
719   // An undefined weak will not extract archive members. See comment on Lazy in
720   // Symbols.h for the details.
721   if (isWeak()) {
722     uint8_t ty = type;
723     replace(other);
724     type = ty;
725     binding = STB_WEAK;
726     return;
727   }
728 
729   const InputFile *oldFile = file;
730   other.extract();
731   if (!config->whyExtract.empty())
732     recordWhyExtract(oldFile, *file, *this);
733 }
734 
735 void Symbol::resolveShared(const SharedSymbol &other) {
736   if (isCommon()) {
737     // See the comment in resolveCommon() above.
738     if (other.size > cast<CommonSymbol>(this)->size)
739       cast<CommonSymbol>(this)->size = other.size;
740     return;
741   }
742   if (visibility == STV_DEFAULT && (isUndefined() || isLazy())) {
743     // An undefined symbol with non default visibility must be satisfied
744     // in the same DSO.
745     uint8_t bind = binding;
746     replace(other);
747     binding = bind;
748   } else if (traced)
749     printTraceSymbol(&other);
750 }
751