1 //===- InputFiles.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 // This file contains functions to parse Mach-O object files. In this comment, 10 // we describe the Mach-O file structure and how we parse it. 11 // 12 // Mach-O is not very different from ELF or COFF. The notion of symbols, 13 // sections and relocations exists in Mach-O as it does in ELF and COFF. 14 // 15 // Perhaps the notion that is new to those who know ELF/COFF is "subsections". 16 // In ELF/COFF, sections are an atomic unit of data copied from input files to 17 // output files. When we merge or garbage-collect sections, we treat each 18 // section as an atomic unit. In Mach-O, that's not the case. Sections can 19 // consist of multiple subsections, and subsections are a unit of merging and 20 // garbage-collecting. Therefore, Mach-O's subsections are more similar to 21 // ELF/COFF's sections than Mach-O's sections are. 22 // 23 // A section can have multiple symbols. A symbol that does not have the 24 // N_ALT_ENTRY attribute indicates a beginning of a subsection. Therefore, by 25 // definition, a symbol is always present at the beginning of each subsection. A 26 // symbol with N_ALT_ENTRY attribute does not start a new subsection and can 27 // point to a middle of a subsection. 28 // 29 // The notion of subsections also affects how relocations are represented in 30 // Mach-O. All references within a section need to be explicitly represented as 31 // relocations if they refer to different subsections, because we obviously need 32 // to fix up addresses if subsections are laid out in an output file differently 33 // than they were in object files. To represent that, Mach-O relocations can 34 // refer to an unnamed location via its address. Scattered relocations (those 35 // with the R_SCATTERED bit set) always refer to unnamed locations. 36 // Non-scattered relocations refer to an unnamed location if r_extern is not set 37 // and r_symbolnum is zero. 38 // 39 // Without the above differences, I think you can use your knowledge about ELF 40 // and COFF for Mach-O. 41 // 42 //===----------------------------------------------------------------------===// 43 44 #include "InputFiles.h" 45 #include "Config.h" 46 #include "Driver.h" 47 #include "Dwarf.h" 48 #include "ExportTrie.h" 49 #include "InputSection.h" 50 #include "MachOStructs.h" 51 #include "ObjC.h" 52 #include "OutputSection.h" 53 #include "OutputSegment.h" 54 #include "SymbolTable.h" 55 #include "Symbols.h" 56 #include "SyntheticSections.h" 57 #include "Target.h" 58 59 #include "lld/Common/DWARF.h" 60 #include "lld/Common/ErrorHandler.h" 61 #include "lld/Common/Memory.h" 62 #include "lld/Common/Reproduce.h" 63 #include "llvm/ADT/iterator.h" 64 #include "llvm/BinaryFormat/MachO.h" 65 #include "llvm/LTO/LTO.h" 66 #include "llvm/Support/Endian.h" 67 #include "llvm/Support/MemoryBuffer.h" 68 #include "llvm/Support/Path.h" 69 #include "llvm/Support/TarWriter.h" 70 #include "llvm/TextAPI/Architecture.h" 71 #include "llvm/TextAPI/InterfaceFile.h" 72 73 using namespace llvm; 74 using namespace llvm::MachO; 75 using namespace llvm::support::endian; 76 using namespace llvm::sys; 77 using namespace lld; 78 using namespace lld::macho; 79 80 // Returns "<internal>", "foo.a(bar.o)", or "baz.o". 81 std::string lld::toString(const InputFile *f) { 82 if (!f) 83 return "<internal>"; 84 85 // Multiple dylibs can be defined in one .tbd file. 86 if (auto dylibFile = dyn_cast<DylibFile>(f)) 87 if (f->getName().endswith(".tbd")) 88 return (f->getName() + "(" + dylibFile->installName + ")").str(); 89 90 if (f->archiveName.empty()) 91 return std::string(f->getName()); 92 return (f->archiveName + "(" + path::filename(f->getName()) + ")").str(); 93 } 94 95 SetVector<InputFile *> macho::inputFiles; 96 std::unique_ptr<TarWriter> macho::tar; 97 int InputFile::idCount = 0; 98 99 static VersionTuple decodeVersion(uint32_t version) { 100 unsigned major = version >> 16; 101 unsigned minor = (version >> 8) & 0xffu; 102 unsigned subMinor = version & 0xffu; 103 return VersionTuple(major, minor, subMinor); 104 } 105 106 static std::vector<PlatformInfo> getPlatformInfos(const InputFile *input) { 107 if (!isa<ObjFile>(input) && !isa<DylibFile>(input)) 108 return {}; 109 110 const char *hdr = input->mb.getBufferStart(); 111 112 std::vector<PlatformInfo> platformInfos; 113 for (auto *cmd : findCommands<build_version_command>(hdr, LC_BUILD_VERSION)) { 114 PlatformInfo info; 115 info.target.Platform = static_cast<PlatformKind>(cmd->platform); 116 info.minimum = decodeVersion(cmd->minos); 117 platformInfos.emplace_back(std::move(info)); 118 } 119 for (auto *cmd : findCommands<version_min_command>( 120 hdr, LC_VERSION_MIN_MACOSX, LC_VERSION_MIN_IPHONEOS, 121 LC_VERSION_MIN_TVOS, LC_VERSION_MIN_WATCHOS)) { 122 PlatformInfo info; 123 switch (cmd->cmd) { 124 case LC_VERSION_MIN_MACOSX: 125 info.target.Platform = PlatformKind::macOS; 126 break; 127 case LC_VERSION_MIN_IPHONEOS: 128 info.target.Platform = PlatformKind::iOS; 129 break; 130 case LC_VERSION_MIN_TVOS: 131 info.target.Platform = PlatformKind::tvOS; 132 break; 133 case LC_VERSION_MIN_WATCHOS: 134 info.target.Platform = PlatformKind::watchOS; 135 break; 136 } 137 info.minimum = decodeVersion(cmd->version); 138 platformInfos.emplace_back(std::move(info)); 139 } 140 141 return platformInfos; 142 } 143 144 static PlatformKind removeSimulator(PlatformKind platform) { 145 // Mapping of platform to simulator and vice-versa. 146 static const std::map<PlatformKind, PlatformKind> platformMap = { 147 {PlatformKind::iOSSimulator, PlatformKind::iOS}, 148 {PlatformKind::tvOSSimulator, PlatformKind::tvOS}, 149 {PlatformKind::watchOSSimulator, PlatformKind::watchOS}}; 150 151 auto iter = platformMap.find(platform); 152 if (iter == platformMap.end()) 153 return platform; 154 return iter->second; 155 } 156 157 static bool checkCompatibility(const InputFile *input) { 158 std::vector<PlatformInfo> platformInfos = getPlatformInfos(input); 159 if (platformInfos.empty()) 160 return true; 161 162 auto it = find_if(platformInfos, [&](const PlatformInfo &info) { 163 return removeSimulator(info.target.Platform) == 164 removeSimulator(config->platform()); 165 }); 166 if (it == platformInfos.end()) { 167 std::string platformNames; 168 raw_string_ostream os(platformNames); 169 interleave( 170 platformInfos, os, 171 [&](const PlatformInfo &info) { 172 os << getPlatformName(info.target.Platform); 173 }, 174 "/"); 175 error(toString(input) + " has platform " + platformNames + 176 Twine(", which is different from target platform ") + 177 getPlatformName(config->platform())); 178 return false; 179 } 180 181 if (it->minimum <= config->platformInfo.minimum) 182 return true; 183 184 error(toString(input) + " has version " + it->minimum.getAsString() + 185 ", which is newer than target minimum of " + 186 config->platformInfo.minimum.getAsString()); 187 return false; 188 } 189 190 // Open a given file path and return it as a memory-mapped file. 191 Optional<MemoryBufferRef> macho::readFile(StringRef path) { 192 ErrorOr<std::unique_ptr<MemoryBuffer>> mbOrErr = MemoryBuffer::getFile(path); 193 if (std::error_code ec = mbOrErr.getError()) { 194 error("cannot open " + path + ": " + ec.message()); 195 return None; 196 } 197 198 std::unique_ptr<MemoryBuffer> &mb = *mbOrErr; 199 MemoryBufferRef mbref = mb->getMemBufferRef(); 200 make<std::unique_ptr<MemoryBuffer>>(std::move(mb)); // take mb ownership 201 202 // If this is a regular non-fat file, return it. 203 const char *buf = mbref.getBufferStart(); 204 const auto *hdr = reinterpret_cast<const fat_header *>(buf); 205 if (mbref.getBufferSize() < sizeof(uint32_t) || 206 read32be(&hdr->magic) != FAT_MAGIC) { 207 if (tar) 208 tar->append(relativeToRoot(path), mbref.getBuffer()); 209 return mbref; 210 } 211 212 // Object files and archive files may be fat files, which contain multiple 213 // real files for different CPU ISAs. Here, we search for a file that matches 214 // with the current link target and returns it as a MemoryBufferRef. 215 const auto *arch = reinterpret_cast<const fat_arch *>(buf + sizeof(*hdr)); 216 217 for (uint32_t i = 0, n = read32be(&hdr->nfat_arch); i < n; ++i) { 218 if (reinterpret_cast<const char *>(arch + i + 1) > 219 buf + mbref.getBufferSize()) { 220 error(path + ": fat_arch struct extends beyond end of file"); 221 return None; 222 } 223 224 if (read32be(&arch[i].cputype) != static_cast<uint32_t>(target->cpuType) || 225 read32be(&arch[i].cpusubtype) != target->cpuSubtype) 226 continue; 227 228 uint32_t offset = read32be(&arch[i].offset); 229 uint32_t size = read32be(&arch[i].size); 230 if (offset + size > mbref.getBufferSize()) 231 error(path + ": slice extends beyond end of file"); 232 if (tar) 233 tar->append(relativeToRoot(path), mbref.getBuffer()); 234 return MemoryBufferRef(StringRef(buf + offset, size), path.copy(bAlloc)); 235 } 236 237 error("unable to find matching architecture in " + path); 238 return None; 239 } 240 241 InputFile::InputFile(Kind kind, const InterfaceFile &interface) 242 : id(idCount++), fileKind(kind), name(saver.save(interface.getPath())) {} 243 244 template <class Section> 245 void ObjFile::parseSections(ArrayRef<Section> sections) { 246 subsections.reserve(sections.size()); 247 auto *buf = reinterpret_cast<const uint8_t *>(mb.getBufferStart()); 248 249 for (const Section &sec : sections) { 250 StringRef name = 251 StringRef(sec.sectname, strnlen(sec.sectname, sizeof(sec.sectname))); 252 StringRef segname = 253 StringRef(sec.segname, strnlen(sec.segname, sizeof(sec.segname))); 254 ArrayRef<uint8_t> data = {isZeroFill(sec.flags) ? nullptr 255 : buf + sec.offset, 256 static_cast<size_t>(sec.size)}; 257 if (sec.align >= 32) 258 error("alignment " + std::to_string(sec.align) + " of section " + name + 259 " is too large"); 260 uint32_t align = 1 << sec.align; 261 uint32_t flags = sec.flags; 262 263 if (config->dedupLiterals && 264 (sectionType(sec.flags) == S_CSTRING_LITERALS || 265 isWordLiteralSection(sec.flags))) { 266 if (sec.nreloc) 267 fatal(toString(this) + " contains relocations in " + sec.segname + "," + 268 sec.sectname + 269 ", so LLD cannot deduplicate literals. Try re-running without " 270 "--deduplicate-literals."); 271 272 InputSection *isec; 273 if (sectionType(sec.flags) == S_CSTRING_LITERALS) { 274 isec = 275 make<CStringInputSection>(segname, name, this, data, align, flags); 276 // FIXME: parallelize this? 277 cast<CStringInputSection>(isec)->splitIntoPieces(); 278 } else { 279 isec = make<WordLiteralInputSection>(segname, name, this, data, align, 280 flags); 281 } 282 subsections.push_back({{0, isec}}); 283 } else { 284 auto *isec = 285 make<ConcatInputSection>(segname, name, this, data, align, flags); 286 if (!(isDebugSection(isec->flags) && 287 isec->segname == segment_names::dwarf)) { 288 subsections.push_back({{0, isec}}); 289 } else { 290 // Instead of emitting DWARF sections, we emit STABS symbols to the 291 // object files that contain them. We filter them out early to avoid 292 // parsing their relocations unnecessarily. But we must still push an 293 // empty map to ensure the indices line up for the remaining sections. 294 subsections.push_back({}); 295 debugSections.push_back(isec); 296 } 297 } 298 } 299 } 300 301 // Find the subsection corresponding to the greatest section offset that is <= 302 // that of the given offset. 303 // 304 // offset: an offset relative to the start of the original InputSection (before 305 // any subsection splitting has occurred). It will be updated to represent the 306 // same location as an offset relative to the start of the containing 307 // subsection. 308 static InputSection *findContainingSubsection(SubsectionMap &map, 309 uint64_t *offset) { 310 auto it = std::prev(llvm::upper_bound( 311 map, *offset, [](uint64_t value, SubsectionEntry subsecEntry) { 312 return value < subsecEntry.offset; 313 })); 314 *offset -= it->offset; 315 return it->isec; 316 } 317 318 template <class Section> 319 static bool validateRelocationInfo(InputFile *file, const Section &sec, 320 relocation_info rel) { 321 const RelocAttrs &relocAttrs = target->getRelocAttrs(rel.r_type); 322 bool valid = true; 323 auto message = [relocAttrs, file, sec, rel, &valid](const Twine &diagnostic) { 324 valid = false; 325 return (relocAttrs.name + " relocation " + diagnostic + " at offset " + 326 std::to_string(rel.r_address) + " of " + sec.segname + "," + 327 sec.sectname + " in " + toString(file)) 328 .str(); 329 }; 330 331 if (!relocAttrs.hasAttr(RelocAttrBits::LOCAL) && !rel.r_extern) 332 error(message("must be extern")); 333 if (relocAttrs.hasAttr(RelocAttrBits::PCREL) != rel.r_pcrel) 334 error(message(Twine("must ") + (rel.r_pcrel ? "not " : "") + 335 "be PC-relative")); 336 if (isThreadLocalVariables(sec.flags) && 337 !relocAttrs.hasAttr(RelocAttrBits::UNSIGNED)) 338 error(message("not allowed in thread-local section, must be UNSIGNED")); 339 if (rel.r_length < 2 || rel.r_length > 3 || 340 !relocAttrs.hasAttr(static_cast<RelocAttrBits>(1 << rel.r_length))) { 341 static SmallVector<StringRef, 4> widths{"0", "4", "8", "4 or 8"}; 342 error(message("has width " + std::to_string(1 << rel.r_length) + 343 " bytes, but must be " + 344 widths[(static_cast<int>(relocAttrs.bits) >> 2) & 3] + 345 " bytes")); 346 } 347 return valid; 348 } 349 350 template <class Section> 351 void ObjFile::parseRelocations(ArrayRef<Section> sectionHeaders, 352 const Section &sec, SubsectionMap &subsecMap) { 353 auto *buf = reinterpret_cast<const uint8_t *>(mb.getBufferStart()); 354 ArrayRef<relocation_info> relInfos( 355 reinterpret_cast<const relocation_info *>(buf + sec.reloff), sec.nreloc); 356 357 for (size_t i = 0; i < relInfos.size(); i++) { 358 // Paired relocations serve as Mach-O's method for attaching a 359 // supplemental datum to a primary relocation record. ELF does not 360 // need them because the *_RELOC_RELA records contain the extra 361 // addend field, vs. *_RELOC_REL which omit the addend. 362 // 363 // The {X86_64,ARM64}_RELOC_SUBTRACTOR record holds the subtrahend, 364 // and the paired *_RELOC_UNSIGNED record holds the minuend. The 365 // datum for each is a symbolic address. The result is the offset 366 // between two addresses. 367 // 368 // The ARM64_RELOC_ADDEND record holds the addend, and the paired 369 // ARM64_RELOC_BRANCH26 or ARM64_RELOC_PAGE21/PAGEOFF12 holds the 370 // base symbolic address. 371 // 372 // Note: X86 does not use *_RELOC_ADDEND because it can embed an 373 // addend into the instruction stream. On X86, a relocatable address 374 // field always occupies an entire contiguous sequence of byte(s), 375 // so there is no need to merge opcode bits with address 376 // bits. Therefore, it's easy and convenient to store addends in the 377 // instruction-stream bytes that would otherwise contain zeroes. By 378 // contrast, RISC ISAs such as ARM64 mix opcode bits with with 379 // address bits so that bitwise arithmetic is necessary to extract 380 // and insert them. Storing addends in the instruction stream is 381 // possible, but inconvenient and more costly at link time. 382 383 int64_t pairedAddend = 0; 384 relocation_info relInfo = relInfos[i]; 385 if (target->hasAttr(relInfo.r_type, RelocAttrBits::ADDEND)) { 386 pairedAddend = SignExtend64<24>(relInfo.r_symbolnum); 387 relInfo = relInfos[++i]; 388 } 389 assert(i < relInfos.size()); 390 if (!validateRelocationInfo(this, sec, relInfo)) 391 continue; 392 if (relInfo.r_address & R_SCATTERED) 393 fatal("TODO: Scattered relocations not supported"); 394 395 bool isSubtrahend = 396 target->hasAttr(relInfo.r_type, RelocAttrBits::SUBTRAHEND); 397 int64_t embeddedAddend = target->getEmbeddedAddend(mb, sec.offset, relInfo); 398 assert(!(embeddedAddend && pairedAddend)); 399 int64_t totalAddend = pairedAddend + embeddedAddend; 400 Reloc r; 401 r.type = relInfo.r_type; 402 r.pcrel = relInfo.r_pcrel; 403 r.length = relInfo.r_length; 404 r.offset = relInfo.r_address; 405 if (relInfo.r_extern) { 406 r.referent = symbols[relInfo.r_symbolnum]; 407 r.addend = isSubtrahend ? 0 : totalAddend; 408 } else { 409 assert(!isSubtrahend); 410 const Section &referentSec = sectionHeaders[relInfo.r_symbolnum - 1]; 411 uint64_t referentOffset; 412 if (relInfo.r_pcrel) { 413 // The implicit addend for pcrel section relocations is the pcrel offset 414 // in terms of the addresses in the input file. Here we adjust it so 415 // that it describes the offset from the start of the referent section. 416 // FIXME This logic was written around x86_64 behavior -- ARM64 doesn't 417 // have pcrel section relocations. We may want to factor this out into 418 // the arch-specific .cpp file. 419 assert(target->hasAttr(r.type, RelocAttrBits::BYTE4)); 420 referentOffset = 421 sec.addr + relInfo.r_address + 4 + totalAddend - referentSec.addr; 422 } else { 423 // The addend for a non-pcrel relocation is its absolute address. 424 referentOffset = totalAddend - referentSec.addr; 425 } 426 SubsectionMap &referentSubsecMap = subsections[relInfo.r_symbolnum - 1]; 427 r.referent = findContainingSubsection(referentSubsecMap, &referentOffset); 428 r.addend = referentOffset; 429 } 430 431 InputSection *subsec = findContainingSubsection(subsecMap, &r.offset); 432 subsec->relocs.push_back(r); 433 434 if (isSubtrahend) { 435 relocation_info minuendInfo = relInfos[++i]; 436 // SUBTRACTOR relocations should always be followed by an UNSIGNED one 437 // attached to the same address. 438 assert(target->hasAttr(minuendInfo.r_type, RelocAttrBits::UNSIGNED) && 439 relInfo.r_address == minuendInfo.r_address); 440 Reloc p; 441 p.type = minuendInfo.r_type; 442 if (minuendInfo.r_extern) { 443 p.referent = symbols[minuendInfo.r_symbolnum]; 444 p.addend = totalAddend; 445 } else { 446 uint64_t referentOffset = 447 totalAddend - sectionHeaders[minuendInfo.r_symbolnum - 1].addr; 448 SubsectionMap &referentSubsecMap = 449 subsections[minuendInfo.r_symbolnum - 1]; 450 p.referent = 451 findContainingSubsection(referentSubsecMap, &referentOffset); 452 p.addend = referentOffset; 453 } 454 subsec->relocs.push_back(p); 455 } 456 } 457 } 458 459 template <class NList> 460 static macho::Symbol *createDefined(const NList &sym, StringRef name, 461 InputSection *isec, uint64_t value, 462 uint64_t size) { 463 // Symbol scope is determined by sym.n_type & (N_EXT | N_PEXT): 464 // N_EXT: Global symbols. These go in the symbol table during the link, 465 // and also in the export table of the output so that the dynamic 466 // linker sees them. 467 // N_EXT | N_PEXT: Linkage unit (think: dylib) scoped. These go in the 468 // symbol table during the link so that duplicates are 469 // either reported (for non-weak symbols) or merged 470 // (for weak symbols), but they do not go in the export 471 // table of the output. 472 // N_PEXT: Does not occur in input files in practice, 473 // a private extern must be external. 474 // 0: Translation-unit scoped. These are not in the symbol table during 475 // link, and not in the export table of the output either. 476 477 bool isWeakDefCanBeHidden = 478 (sym.n_desc & (N_WEAK_DEF | N_WEAK_REF)) == (N_WEAK_DEF | N_WEAK_REF); 479 480 if (sym.n_type & (N_EXT | N_PEXT)) { 481 assert((sym.n_type & N_EXT) && "invalid input"); 482 bool isPrivateExtern = sym.n_type & N_PEXT; 483 484 // lld's behavior for merging symbols is slightly different from ld64: 485 // ld64 picks the winning symbol based on several criteria (see 486 // pickBetweenRegularAtoms() in ld64's SymbolTable.cpp), while lld 487 // just merges metadata and keeps the contents of the first symbol 488 // with that name (see SymbolTable::addDefined). For: 489 // * inline function F in a TU built with -fvisibility-inlines-hidden 490 // * and inline function F in another TU built without that flag 491 // ld64 will pick the one from the file built without 492 // -fvisibility-inlines-hidden. 493 // lld will instead pick the one listed first on the link command line and 494 // give it visibility as if the function was built without 495 // -fvisibility-inlines-hidden. 496 // If both functions have the same contents, this will have the same 497 // behavior. If not, it won't, but the input had an ODR violation in 498 // that case. 499 // 500 // Similarly, merging a symbol 501 // that's isPrivateExtern and not isWeakDefCanBeHidden with one 502 // that's not isPrivateExtern but isWeakDefCanBeHidden technically 503 // should produce one 504 // that's not isPrivateExtern but isWeakDefCanBeHidden. That matters 505 // with ld64's semantics, because it means the non-private-extern 506 // definition will continue to take priority if more private extern 507 // definitions are encountered. With lld's semantics there's no observable 508 // difference between a symbol that's isWeakDefCanBeHidden or one that's 509 // privateExtern -- neither makes it into the dynamic symbol table. So just 510 // promote isWeakDefCanBeHidden to isPrivateExtern here. 511 if (isWeakDefCanBeHidden) 512 isPrivateExtern = true; 513 514 return symtab->addDefined( 515 name, isec->file, isec, value, size, sym.n_desc & N_WEAK_DEF, 516 isPrivateExtern, sym.n_desc & N_ARM_THUMB_DEF, 517 sym.n_desc & REFERENCED_DYNAMICALLY, sym.n_desc & N_NO_DEAD_STRIP); 518 } 519 520 assert(!isWeakDefCanBeHidden && 521 "weak_def_can_be_hidden on already-hidden symbol?"); 522 return make<Defined>( 523 name, isec->file, isec, value, size, sym.n_desc & N_WEAK_DEF, 524 /*isExternal=*/false, /*isPrivateExtern=*/false, 525 sym.n_desc & N_ARM_THUMB_DEF, sym.n_desc & REFERENCED_DYNAMICALLY, 526 sym.n_desc & N_NO_DEAD_STRIP); 527 } 528 529 // Absolute symbols are defined symbols that do not have an associated 530 // InputSection. They cannot be weak. 531 template <class NList> 532 static macho::Symbol *createAbsolute(const NList &sym, InputFile *file, 533 StringRef name) { 534 if (sym.n_type & (N_EXT | N_PEXT)) { 535 assert((sym.n_type & N_EXT) && "invalid input"); 536 return symtab->addDefined(name, file, nullptr, sym.n_value, /*size=*/0, 537 /*isWeakDef=*/false, sym.n_type & N_PEXT, 538 sym.n_desc & N_ARM_THUMB_DEF, 539 /*isReferencedDynamically=*/false, 540 sym.n_desc & N_NO_DEAD_STRIP); 541 } 542 return make<Defined>(name, file, nullptr, sym.n_value, /*size=*/0, 543 /*isWeakDef=*/false, 544 /*isExternal=*/false, /*isPrivateExtern=*/false, 545 sym.n_desc & N_ARM_THUMB_DEF, 546 /*isReferencedDynamically=*/false, 547 sym.n_desc & N_NO_DEAD_STRIP); 548 } 549 550 template <class NList> 551 macho::Symbol *ObjFile::parseNonSectionSymbol(const NList &sym, 552 StringRef name) { 553 uint8_t type = sym.n_type & N_TYPE; 554 switch (type) { 555 case N_UNDF: 556 return sym.n_value == 0 557 ? symtab->addUndefined(name, this, sym.n_desc & N_WEAK_REF) 558 : symtab->addCommon(name, this, sym.n_value, 559 1 << GET_COMM_ALIGN(sym.n_desc), 560 sym.n_type & N_PEXT); 561 case N_ABS: 562 return createAbsolute(sym, this, name); 563 case N_PBUD: 564 case N_INDR: 565 error("TODO: support symbols of type " + std::to_string(type)); 566 return nullptr; 567 case N_SECT: 568 llvm_unreachable( 569 "N_SECT symbols should not be passed to parseNonSectionSymbol"); 570 default: 571 llvm_unreachable("invalid symbol type"); 572 } 573 } 574 575 template <class LP> 576 void ObjFile::parseSymbols(ArrayRef<typename LP::section> sectionHeaders, 577 ArrayRef<typename LP::nlist> nList, 578 const char *strtab, bool subsectionsViaSymbols) { 579 using NList = typename LP::nlist; 580 581 // Groups indices of the symbols by the sections that contain them. 582 std::vector<std::vector<uint32_t>> symbolsBySection(subsections.size()); 583 symbols.resize(nList.size()); 584 for (uint32_t i = 0; i < nList.size(); ++i) { 585 const NList &sym = nList[i]; 586 StringRef name = strtab + sym.n_strx; 587 if ((sym.n_type & N_TYPE) == N_SECT) { 588 SubsectionMap &subsecMap = subsections[sym.n_sect - 1]; 589 // parseSections() may have chosen not to parse this section. 590 if (subsecMap.empty()) 591 continue; 592 symbolsBySection[sym.n_sect - 1].push_back(i); 593 } else { 594 symbols[i] = parseNonSectionSymbol(sym, name); 595 } 596 } 597 598 // Calculate symbol sizes and create subsections by splitting the sections 599 // along symbol boundaries. 600 for (size_t i = 0; i < subsections.size(); ++i) { 601 SubsectionMap &subsecMap = subsections[i]; 602 if (subsecMap.empty()) 603 continue; 604 605 std::vector<uint32_t> &symbolIndices = symbolsBySection[i]; 606 llvm::sort(symbolIndices, [&](uint32_t lhs, uint32_t rhs) { 607 return nList[lhs].n_value < nList[rhs].n_value; 608 }); 609 uint64_t sectionAddr = sectionHeaders[i].addr; 610 uint32_t sectionAlign = 1u << sectionHeaders[i].align; 611 612 // We populate subsecMap by repeatedly splitting the last (highest address) 613 // subsection. 614 SubsectionEntry subsecEntry = subsecMap.back(); 615 for (size_t j = 0; j < symbolIndices.size(); ++j) { 616 uint32_t symIndex = symbolIndices[j]; 617 const NList &sym = nList[symIndex]; 618 StringRef name = strtab + sym.n_strx; 619 InputSection *isec = subsecEntry.isec; 620 621 uint64_t subsecAddr = sectionAddr + subsecEntry.offset; 622 uint64_t symbolOffset = sym.n_value - subsecAddr; 623 uint64_t symbolSize = 624 j + 1 < symbolIndices.size() 625 ? nList[symbolIndices[j + 1]].n_value - sym.n_value 626 : isec->data.size() - symbolOffset; 627 // There are 4 cases where we do not need to create a new subsection: 628 // 1. If the input file does not use subsections-via-symbols. 629 // 2. Multiple symbols at the same address only induce one subsection. 630 // (The symbolOffset == 0 check covers both this case as well as 631 // the first loop iteration.) 632 // 3. Alternative entry points do not induce new subsections. 633 // 4. If we have a literal section (e.g. __cstring and __literal4). 634 if (!subsectionsViaSymbols || symbolOffset == 0 || 635 sym.n_desc & N_ALT_ENTRY || !isa<ConcatInputSection>(isec)) { 636 symbols[symIndex] = 637 createDefined(sym, name, isec, symbolOffset, symbolSize); 638 continue; 639 } 640 auto *concatIsec = cast<ConcatInputSection>(isec); 641 642 auto *nextIsec = make<ConcatInputSection>(*concatIsec); 643 nextIsec->data = isec->data.slice(symbolOffset); 644 nextIsec->numRefs = 0; 645 nextIsec->wasCoalesced = false; 646 isec->data = isec->data.slice(0, symbolOffset); 647 648 // By construction, the symbol will be at offset zero in the new 649 // subsection. 650 symbols[symIndex] = 651 createDefined(sym, name, nextIsec, /*value=*/0, symbolSize); 652 // TODO: ld64 appears to preserve the original alignment as well as each 653 // subsection's offset from the last aligned address. We should consider 654 // emulating that behavior. 655 nextIsec->align = MinAlign(sectionAlign, sym.n_value); 656 subsecMap.push_back({sym.n_value - sectionAddr, nextIsec}); 657 subsecEntry = subsecMap.back(); 658 } 659 } 660 } 661 662 OpaqueFile::OpaqueFile(MemoryBufferRef mb, StringRef segName, 663 StringRef sectName) 664 : InputFile(OpaqueKind, mb) { 665 ConcatInputSection *isec = 666 make<ConcatInputSection>(segName.take_front(16), sectName.take_front(16)); 667 isec->file = this; 668 const auto *buf = reinterpret_cast<const uint8_t *>(mb.getBufferStart()); 669 isec->data = {buf, mb.getBufferSize()}; 670 isec->live = true; 671 subsections.push_back({{0, isec}}); 672 } 673 674 ObjFile::ObjFile(MemoryBufferRef mb, uint32_t modTime, StringRef archiveName) 675 : InputFile(ObjKind, mb), modTime(modTime) { 676 this->archiveName = std::string(archiveName); 677 if (target->wordSize == 8) 678 parse<LP64>(); 679 else 680 parse<ILP32>(); 681 } 682 683 template <class LP> void ObjFile::parse() { 684 using Header = typename LP::mach_header; 685 using SegmentCommand = typename LP::segment_command; 686 using Section = typename LP::section; 687 using NList = typename LP::nlist; 688 689 auto *buf = reinterpret_cast<const uint8_t *>(mb.getBufferStart()); 690 auto *hdr = reinterpret_cast<const Header *>(mb.getBufferStart()); 691 692 Architecture arch = getArchitectureFromCpuType(hdr->cputype, hdr->cpusubtype); 693 if (arch != config->arch()) { 694 error(toString(this) + " has architecture " + getArchitectureName(arch) + 695 " which is incompatible with target architecture " + 696 getArchitectureName(config->arch())); 697 return; 698 } 699 700 if (!checkCompatibility(this)) 701 return; 702 703 if (const load_command *cmd = findCommand(hdr, LC_LINKER_OPTION)) { 704 auto *c = reinterpret_cast<const linker_option_command *>(cmd); 705 StringRef data{reinterpret_cast<const char *>(c + 1), 706 c->cmdsize - sizeof(linker_option_command)}; 707 parseLCLinkerOption(this, c->count, data); 708 } 709 710 ArrayRef<Section> sectionHeaders; 711 if (const load_command *cmd = findCommand(hdr, LP::segmentLCType)) { 712 auto *c = reinterpret_cast<const SegmentCommand *>(cmd); 713 sectionHeaders = 714 ArrayRef<Section>{reinterpret_cast<const Section *>(c + 1), c->nsects}; 715 parseSections(sectionHeaders); 716 } 717 718 // TODO: Error on missing LC_SYMTAB? 719 if (const load_command *cmd = findCommand(hdr, LC_SYMTAB)) { 720 auto *c = reinterpret_cast<const symtab_command *>(cmd); 721 ArrayRef<NList> nList(reinterpret_cast<const NList *>(buf + c->symoff), 722 c->nsyms); 723 const char *strtab = reinterpret_cast<const char *>(buf) + c->stroff; 724 bool subsectionsViaSymbols = hdr->flags & MH_SUBSECTIONS_VIA_SYMBOLS; 725 parseSymbols<LP>(sectionHeaders, nList, strtab, subsectionsViaSymbols); 726 } 727 728 // The relocations may refer to the symbols, so we parse them after we have 729 // parsed all the symbols. 730 for (size_t i = 0, n = subsections.size(); i < n; ++i) 731 if (!subsections[i].empty()) 732 parseRelocations(sectionHeaders, sectionHeaders[i], subsections[i]); 733 734 parseDebugInfo(); 735 } 736 737 void ObjFile::parseDebugInfo() { 738 std::unique_ptr<DwarfObject> dObj = DwarfObject::create(this); 739 if (!dObj) 740 return; 741 742 auto *ctx = make<DWARFContext>( 743 std::move(dObj), "", 744 [&](Error err) { 745 warn(toString(this) + ": " + toString(std::move(err))); 746 }, 747 [&](Error warning) { 748 warn(toString(this) + ": " + toString(std::move(warning))); 749 }); 750 751 // TODO: Since object files can contain a lot of DWARF info, we should verify 752 // that we are parsing just the info we need 753 const DWARFContext::compile_unit_range &units = ctx->compile_units(); 754 // FIXME: There can be more than one compile unit per object file. See 755 // PR48637. 756 auto it = units.begin(); 757 compileUnit = it->get(); 758 } 759 760 // The path can point to either a dylib or a .tbd file. 761 static DylibFile *loadDylib(StringRef path, DylibFile *umbrella) { 762 Optional<MemoryBufferRef> mbref = readFile(path); 763 if (!mbref) { 764 error("could not read dylib file at " + path); 765 return nullptr; 766 } 767 return loadDylib(*mbref, umbrella); 768 } 769 770 // TBD files are parsed into a series of TAPI documents (InterfaceFiles), with 771 // the first document storing child pointers to the rest of them. When we are 772 // processing a given TBD file, we store that top-level document in 773 // currentTopLevelTapi. When processing re-exports, we search its children for 774 // potentially matching documents in the same TBD file. Note that the children 775 // themselves don't point to further documents, i.e. this is a two-level tree. 776 // 777 // Re-exports can either refer to on-disk files, or to documents within .tbd 778 // files. 779 static DylibFile *findDylib(StringRef path, DylibFile *umbrella, 780 const InterfaceFile *currentTopLevelTapi) { 781 if (path::is_absolute(path, path::Style::posix)) 782 for (StringRef root : config->systemLibraryRoots) 783 if (Optional<std::string> dylibPath = 784 resolveDylibPath((root + path).str())) 785 return loadDylib(*dylibPath, umbrella); 786 787 // TODO: Handle -dylib_file 788 789 SmallString<128> newPath; 790 if (config->outputType == MH_EXECUTE && 791 path.consume_front("@executable_path/")) { 792 // ld64 allows overriding this with the undocumented flag -executable_path. 793 // lld doesn't currently implement that flag. 794 path::append(newPath, path::parent_path(config->outputFile), path); 795 path = newPath; 796 } else if (path.consume_front("@loader_path/")) { 797 fs::real_path(umbrella->getName(), newPath); 798 path::remove_filename(newPath); 799 path::append(newPath, path); 800 path = newPath; 801 } else if (path.startswith("@rpath/")) { 802 for (StringRef rpath : umbrella->rpaths) { 803 newPath.clear(); 804 if (rpath.consume_front("@loader_path/")) { 805 fs::real_path(umbrella->getName(), newPath); 806 path::remove_filename(newPath); 807 } 808 path::append(newPath, rpath, path.drop_front(strlen("@rpath/"))); 809 if (Optional<std::string> dylibPath = resolveDylibPath(newPath)) 810 return loadDylib(*dylibPath, umbrella); 811 } 812 } 813 814 if (currentTopLevelTapi) { 815 for (InterfaceFile &child : 816 make_pointee_range(currentTopLevelTapi->documents())) { 817 assert(child.documents().empty()); 818 if (path == child.getInstallName()) { 819 auto file = make<DylibFile>(child, umbrella); 820 file->parseReexports(child); 821 return file; 822 } 823 } 824 } 825 826 if (Optional<std::string> dylibPath = resolveDylibPath(path)) 827 return loadDylib(*dylibPath, umbrella); 828 829 return nullptr; 830 } 831 832 // If a re-exported dylib is public (lives in /usr/lib or 833 // /System/Library/Frameworks), then it is considered implicitly linked: we 834 // should bind to its symbols directly instead of via the re-exporting umbrella 835 // library. 836 static bool isImplicitlyLinked(StringRef path) { 837 if (!config->implicitDylibs) 838 return false; 839 840 if (path::parent_path(path) == "/usr/lib") 841 return true; 842 843 // Match /System/Library/Frameworks/$FOO.framework/**/$FOO 844 if (path.consume_front("/System/Library/Frameworks/")) { 845 StringRef frameworkName = path.take_until([](char c) { return c == '.'; }); 846 return path::filename(path) == frameworkName; 847 } 848 849 return false; 850 } 851 852 static void loadReexport(StringRef path, DylibFile *umbrella, 853 const InterfaceFile *currentTopLevelTapi) { 854 DylibFile *reexport = findDylib(path, umbrella, currentTopLevelTapi); 855 if (!reexport) 856 error("unable to locate re-export with install name " + path); 857 } 858 859 DylibFile::DylibFile(MemoryBufferRef mb, DylibFile *umbrella, 860 bool isBundleLoader) 861 : InputFile(DylibKind, mb), refState(RefState::Unreferenced), 862 isBundleLoader(isBundleLoader) { 863 assert(!isBundleLoader || !umbrella); 864 if (umbrella == nullptr) 865 umbrella = this; 866 this->umbrella = umbrella; 867 868 auto *buf = reinterpret_cast<const uint8_t *>(mb.getBufferStart()); 869 auto *hdr = reinterpret_cast<const mach_header *>(mb.getBufferStart()); 870 871 // Initialize installName. 872 if (const load_command *cmd = findCommand(hdr, LC_ID_DYLIB)) { 873 auto *c = reinterpret_cast<const dylib_command *>(cmd); 874 currentVersion = read32le(&c->dylib.current_version); 875 compatibilityVersion = read32le(&c->dylib.compatibility_version); 876 installName = 877 reinterpret_cast<const char *>(cmd) + read32le(&c->dylib.name); 878 } else if (!isBundleLoader) { 879 // macho_executable and macho_bundle don't have LC_ID_DYLIB, 880 // so it's OK. 881 error("dylib " + toString(this) + " missing LC_ID_DYLIB load command"); 882 return; 883 } 884 885 if (config->printEachFile) 886 message(toString(this)); 887 inputFiles.insert(this); 888 889 deadStrippable = hdr->flags & MH_DEAD_STRIPPABLE_DYLIB; 890 891 if (!checkCompatibility(this)) 892 return; 893 894 for (auto *cmd : findCommands<rpath_command>(hdr, LC_RPATH)) { 895 StringRef rpath{reinterpret_cast<const char *>(cmd) + cmd->path}; 896 rpaths.push_back(rpath); 897 } 898 899 // Initialize symbols. 900 exportingFile = isImplicitlyLinked(installName) ? this : this->umbrella; 901 if (const load_command *cmd = findCommand(hdr, LC_DYLD_INFO_ONLY)) { 902 auto *c = reinterpret_cast<const dyld_info_command *>(cmd); 903 parseTrie(buf + c->export_off, c->export_size, 904 [&](const Twine &name, uint64_t flags) { 905 StringRef savedName = saver.save(name); 906 if (handleLDSymbol(savedName)) 907 return; 908 bool isWeakDef = flags & EXPORT_SYMBOL_FLAGS_WEAK_DEFINITION; 909 bool isTlv = flags & EXPORT_SYMBOL_FLAGS_KIND_THREAD_LOCAL; 910 symbols.push_back(symtab->addDylib(savedName, exportingFile, 911 isWeakDef, isTlv)); 912 }); 913 } else { 914 error("LC_DYLD_INFO_ONLY not found in " + toString(this)); 915 return; 916 } 917 } 918 919 void DylibFile::parseLoadCommands(MemoryBufferRef mb) { 920 auto *hdr = reinterpret_cast<const mach_header *>(mb.getBufferStart()); 921 const uint8_t *p = reinterpret_cast<const uint8_t *>(mb.getBufferStart()) + 922 target->headerSize; 923 for (uint32_t i = 0, n = hdr->ncmds; i < n; ++i) { 924 auto *cmd = reinterpret_cast<const load_command *>(p); 925 p += cmd->cmdsize; 926 927 if (!(hdr->flags & MH_NO_REEXPORTED_DYLIBS) && 928 cmd->cmd == LC_REEXPORT_DYLIB) { 929 const auto *c = reinterpret_cast<const dylib_command *>(cmd); 930 StringRef reexportPath = 931 reinterpret_cast<const char *>(c) + read32le(&c->dylib.name); 932 loadReexport(reexportPath, exportingFile, nullptr); 933 } 934 935 // FIXME: What about LC_LOAD_UPWARD_DYLIB, LC_LAZY_LOAD_DYLIB, 936 // LC_LOAD_WEAK_DYLIB, LC_REEXPORT_DYLIB (..are reexports from dylibs with 937 // MH_NO_REEXPORTED_DYLIBS loaded for -flat_namespace)? 938 if (config->namespaceKind == NamespaceKind::flat && 939 cmd->cmd == LC_LOAD_DYLIB) { 940 const auto *c = reinterpret_cast<const dylib_command *>(cmd); 941 StringRef dylibPath = 942 reinterpret_cast<const char *>(c) + read32le(&c->dylib.name); 943 DylibFile *dylib = findDylib(dylibPath, umbrella, nullptr); 944 if (!dylib) 945 error(Twine("unable to locate library '") + dylibPath + 946 "' loaded from '" + toString(this) + "' for -flat_namespace"); 947 } 948 } 949 } 950 951 // Some versions of XCode ship with .tbd files that don't have the right 952 // platform settings. 953 static constexpr std::array<StringRef, 3> skipPlatformChecks{ 954 "/usr/lib/system/libsystem_kernel.dylib", 955 "/usr/lib/system/libsystem_platform.dylib", 956 "/usr/lib/system/libsystem_pthread.dylib"}; 957 958 DylibFile::DylibFile(const InterfaceFile &interface, DylibFile *umbrella, 959 bool isBundleLoader) 960 : InputFile(DylibKind, interface), refState(RefState::Unreferenced), 961 isBundleLoader(isBundleLoader) { 962 // FIXME: Add test for the missing TBD code path. 963 964 if (umbrella == nullptr) 965 umbrella = this; 966 this->umbrella = umbrella; 967 968 installName = saver.save(interface.getInstallName()); 969 compatibilityVersion = interface.getCompatibilityVersion().rawValue(); 970 currentVersion = interface.getCurrentVersion().rawValue(); 971 972 if (config->printEachFile) 973 message(toString(this)); 974 inputFiles.insert(this); 975 976 if (!is_contained(skipPlatformChecks, installName) && 977 !is_contained(interface.targets(), config->platformInfo.target)) { 978 error(toString(this) + " is incompatible with " + 979 std::string(config->platformInfo.target)); 980 return; 981 } 982 983 exportingFile = isImplicitlyLinked(installName) ? this : umbrella; 984 auto addSymbol = [&](const Twine &name) -> void { 985 symbols.push_back(symtab->addDylib(saver.save(name), exportingFile, 986 /*isWeakDef=*/false, 987 /*isTlv=*/false)); 988 }; 989 // TODO(compnerd) filter out symbols based on the target platform 990 // TODO: handle weak defs, thread locals 991 for (const auto *symbol : interface.symbols()) { 992 if (!symbol->getArchitectures().has(config->arch())) 993 continue; 994 995 if (handleLDSymbol(symbol->getName())) 996 continue; 997 998 switch (symbol->getKind()) { 999 case SymbolKind::GlobalSymbol: 1000 addSymbol(symbol->getName()); 1001 break; 1002 case SymbolKind::ObjectiveCClass: 1003 // XXX ld64 only creates these symbols when -ObjC is passed in. We may 1004 // want to emulate that. 1005 addSymbol(objc::klass + symbol->getName()); 1006 addSymbol(objc::metaclass + symbol->getName()); 1007 break; 1008 case SymbolKind::ObjectiveCClassEHType: 1009 addSymbol(objc::ehtype + symbol->getName()); 1010 break; 1011 case SymbolKind::ObjectiveCInstanceVariable: 1012 addSymbol(objc::ivar + symbol->getName()); 1013 break; 1014 } 1015 } 1016 } 1017 1018 void DylibFile::parseReexports(const InterfaceFile &interface) { 1019 const InterfaceFile *topLevel = 1020 interface.getParent() == nullptr ? &interface : interface.getParent(); 1021 for (InterfaceFileRef intfRef : interface.reexportedLibraries()) { 1022 InterfaceFile::const_target_range targets = intfRef.targets(); 1023 if (is_contained(skipPlatformChecks, intfRef.getInstallName()) || 1024 is_contained(targets, config->platformInfo.target)) 1025 loadReexport(intfRef.getInstallName(), exportingFile, topLevel); 1026 } 1027 } 1028 1029 // $ld$ symbols modify the properties/behavior of the library (e.g. its install 1030 // name, compatibility version or hide/add symbols) for specific target 1031 // versions. 1032 bool DylibFile::handleLDSymbol(StringRef originalName) { 1033 if (!originalName.startswith("$ld$")) 1034 return false; 1035 1036 StringRef action; 1037 StringRef name; 1038 std::tie(action, name) = originalName.drop_front(strlen("$ld$")).split('$'); 1039 if (action == "previous") 1040 handleLDPreviousSymbol(name, originalName); 1041 else if (action == "install_name") 1042 handleLDInstallNameSymbol(name, originalName); 1043 return true; 1044 } 1045 1046 void DylibFile::handleLDPreviousSymbol(StringRef name, StringRef originalName) { 1047 // originalName: $ld$ previous $ <installname> $ <compatversion> $ 1048 // <platformstr> $ <startversion> $ <endversion> $ <symbol-name> $ 1049 StringRef installName; 1050 StringRef compatVersion; 1051 StringRef platformStr; 1052 StringRef startVersion; 1053 StringRef endVersion; 1054 StringRef symbolName; 1055 StringRef rest; 1056 1057 std::tie(installName, name) = name.split('$'); 1058 std::tie(compatVersion, name) = name.split('$'); 1059 std::tie(platformStr, name) = name.split('$'); 1060 std::tie(startVersion, name) = name.split('$'); 1061 std::tie(endVersion, name) = name.split('$'); 1062 std::tie(symbolName, rest) = name.split('$'); 1063 // TODO: ld64 contains some logic for non-empty symbolName as well. 1064 if (!symbolName.empty()) 1065 return; 1066 unsigned platform; 1067 if (platformStr.getAsInteger(10, platform) || 1068 platform != static_cast<unsigned>(config->platform())) 1069 return; 1070 1071 VersionTuple start; 1072 if (start.tryParse(startVersion)) { 1073 warn("failed to parse start version, symbol '" + originalName + 1074 "' ignored"); 1075 return; 1076 } 1077 VersionTuple end; 1078 if (end.tryParse(endVersion)) { 1079 warn("failed to parse end version, symbol '" + originalName + "' ignored"); 1080 return; 1081 } 1082 if (config->platformInfo.minimum < start || 1083 config->platformInfo.minimum >= end) 1084 return; 1085 1086 this->installName = saver.save(installName); 1087 1088 if (!compatVersion.empty()) { 1089 VersionTuple cVersion; 1090 if (cVersion.tryParse(compatVersion)) { 1091 warn("failed to parse compatibility version, symbol '" + originalName + 1092 "' ignored"); 1093 return; 1094 } 1095 compatibilityVersion = encodeVersion(cVersion); 1096 } 1097 } 1098 1099 void DylibFile::handleLDInstallNameSymbol(StringRef name, 1100 StringRef originalName) { 1101 // originalName: $ld$ install_name $ os<version> $ install_name 1102 StringRef condition, installName; 1103 std::tie(condition, installName) = name.split('$'); 1104 VersionTuple version; 1105 if (!condition.consume_front("os") || version.tryParse(condition)) 1106 warn("failed to parse os version, symbol '" + originalName + "' ignored"); 1107 else if (version == config->platformInfo.minimum) 1108 this->installName = saver.save(installName); 1109 } 1110 1111 ArchiveFile::ArchiveFile(std::unique_ptr<object::Archive> &&f) 1112 : InputFile(ArchiveKind, f->getMemoryBufferRef()), file(std::move(f)) { 1113 for (const object::Archive::Symbol &sym : file->symbols()) 1114 symtab->addLazy(sym.getName(), this, sym); 1115 } 1116 1117 void ArchiveFile::fetch(const object::Archive::Symbol &sym) { 1118 object::Archive::Child c = 1119 CHECK(sym.getMember(), toString(this) + 1120 ": could not get the member for symbol " + 1121 toMachOString(sym)); 1122 1123 if (!seen.insert(c.getChildOffset()).second) 1124 return; 1125 1126 MemoryBufferRef mb = 1127 CHECK(c.getMemoryBufferRef(), 1128 toString(this) + 1129 ": could not get the buffer for the member defining symbol " + 1130 toMachOString(sym)); 1131 1132 if (tar && c.getParent()->isThin()) 1133 tar->append(relativeToRoot(CHECK(c.getFullName(), this)), mb.getBuffer()); 1134 1135 uint32_t modTime = toTimeT( 1136 CHECK(c.getLastModified(), toString(this) + 1137 ": could not get the modification time " 1138 "for the member defining symbol " + 1139 toMachOString(sym))); 1140 1141 // `sym` is owned by a LazySym, which will be replace<>()d by make<ObjFile> 1142 // and become invalid after that call. Copy it to the stack so we can refer 1143 // to it later. 1144 const object::Archive::Symbol symCopy = sym; 1145 1146 if (Optional<InputFile *> file = 1147 loadArchiveMember(mb, modTime, getName(), /*objCOnly=*/false)) { 1148 inputFiles.insert(*file); 1149 // ld64 doesn't demangle sym here even with -demangle. 1150 // Match that: intentionally don't call toMachOString(). 1151 printArchiveMemberLoad(symCopy.getName(), *file); 1152 } 1153 } 1154 1155 static macho::Symbol *createBitcodeSymbol(const lto::InputFile::Symbol &objSym, 1156 BitcodeFile &file) { 1157 StringRef name = saver.save(objSym.getName()); 1158 1159 // TODO: support weak references 1160 if (objSym.isUndefined()) 1161 return symtab->addUndefined(name, &file, /*isWeakRef=*/false); 1162 1163 assert(!objSym.isCommon() && "TODO: support common symbols in LTO"); 1164 1165 // TODO: Write a test demonstrating why computing isPrivateExtern before 1166 // LTO compilation is important. 1167 bool isPrivateExtern = false; 1168 switch (objSym.getVisibility()) { 1169 case GlobalValue::HiddenVisibility: 1170 isPrivateExtern = true; 1171 break; 1172 case GlobalValue::ProtectedVisibility: 1173 error(name + " has protected visibility, which is not supported by Mach-O"); 1174 break; 1175 case GlobalValue::DefaultVisibility: 1176 break; 1177 } 1178 1179 return symtab->addDefined(name, &file, /*isec=*/nullptr, /*value=*/0, 1180 /*size=*/0, objSym.isWeak(), isPrivateExtern, 1181 /*isThumb=*/false, 1182 /*isReferencedDynamically=*/false, 1183 /*noDeadStrip=*/false); 1184 } 1185 1186 BitcodeFile::BitcodeFile(MemoryBufferRef mbref) 1187 : InputFile(BitcodeKind, mbref) { 1188 obj = check(lto::InputFile::create(mbref)); 1189 1190 // Convert LTO Symbols to LLD Symbols in order to perform resolution. The 1191 // "winning" symbol will then be marked as Prevailing at LTO compilation 1192 // time. 1193 for (const lto::InputFile::Symbol &objSym : obj->symbols()) 1194 symbols.push_back(createBitcodeSymbol(objSym, *this)); 1195 } 1196 1197 template void ObjFile::parse<LP64>(); 1198