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