1 //===- Driver.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 // The driver drives the entire linking process. It is responsible for 10 // parsing command line options and doing whatever it is instructed to do. 11 // 12 // One notable thing in the LLD's driver when compared to other linkers is 13 // that the LLD's driver is agnostic on the host operating system. 14 // Other linkers usually have implicit default values (such as a dynamic 15 // linker path or library paths) for each host OS. 16 // 17 // I don't think implicit default values are useful because they are 18 // usually explicitly specified by the compiler driver. They can even 19 // be harmful when you are doing cross-linking. Therefore, in LLD, we 20 // simply trust the compiler driver to pass all required options and 21 // don't try to make effort on our side. 22 // 23 //===----------------------------------------------------------------------===// 24 25 #include "Driver.h" 26 #include "Config.h" 27 #include "ICF.h" 28 #include "InputFiles.h" 29 #include "InputSection.h" 30 #include "LinkerScript.h" 31 #include "MarkLive.h" 32 #include "OutputSections.h" 33 #include "ScriptParser.h" 34 #include "SymbolTable.h" 35 #include "Symbols.h" 36 #include "SyntheticSections.h" 37 #include "Target.h" 38 #include "Writer.h" 39 #include "lld/Common/Args.h" 40 #include "lld/Common/Driver.h" 41 #include "lld/Common/ErrorHandler.h" 42 #include "lld/Common/Filesystem.h" 43 #include "lld/Common/Memory.h" 44 #include "lld/Common/Strings.h" 45 #include "lld/Common/TargetOptionsCommandFlags.h" 46 #include "lld/Common/Threads.h" 47 #include "lld/Common/Version.h" 48 #include "llvm/ADT/SetVector.h" 49 #include "llvm/ADT/StringExtras.h" 50 #include "llvm/ADT/StringSwitch.h" 51 #include "llvm/LTO/LTO.h" 52 #include "llvm/Support/CommandLine.h" 53 #include "llvm/Support/Compression.h" 54 #include "llvm/Support/GlobPattern.h" 55 #include "llvm/Support/LEB128.h" 56 #include "llvm/Support/Path.h" 57 #include "llvm/Support/TarWriter.h" 58 #include "llvm/Support/TargetSelect.h" 59 #include "llvm/Support/raw_ostream.h" 60 #include <cstdlib> 61 #include <utility> 62 63 using namespace llvm; 64 using namespace llvm::ELF; 65 using namespace llvm::object; 66 using namespace llvm::sys; 67 using namespace llvm::support; 68 69 namespace lld { 70 namespace elf { 71 72 Configuration *config; 73 LinkerDriver *driver; 74 75 static void setConfigs(opt::InputArgList &args); 76 static void readConfigs(opt::InputArgList &args); 77 78 bool link(ArrayRef<const char *> args, bool canExitEarly, raw_ostream &stdoutOS, 79 raw_ostream &stderrOS) { 80 lld::stdoutOS = &stdoutOS; 81 lld::stderrOS = &stderrOS; 82 83 errorHandler().logName = args::getFilenameWithoutExe(args[0]); 84 errorHandler().errorLimitExceededMsg = 85 "too many errors emitted, stopping now (use " 86 "-error-limit=0 to see all errors)"; 87 errorHandler().exitEarly = canExitEarly; 88 stderrOS.enable_colors(stderrOS.has_colors()); 89 90 inputSections.clear(); 91 outputSections.clear(); 92 binaryFiles.clear(); 93 bitcodeFiles.clear(); 94 objectFiles.clear(); 95 sharedFiles.clear(); 96 97 config = make<Configuration>(); 98 driver = make<LinkerDriver>(); 99 script = make<LinkerScript>(); 100 symtab = make<SymbolTable>(); 101 102 tar = nullptr; 103 memset(&in, 0, sizeof(in)); 104 105 partitions = {Partition()}; 106 107 SharedFile::vernauxNum = 0; 108 109 config->progName = args[0]; 110 111 driver->main(args); 112 113 // Exit immediately if we don't need to return to the caller. 114 // This saves time because the overhead of calling destructors 115 // for all globally-allocated objects is not negligible. 116 if (canExitEarly) 117 exitLld(errorCount() ? 1 : 0); 118 119 freeArena(); 120 return !errorCount(); 121 } 122 123 // Parses a linker -m option. 124 static std::tuple<ELFKind, uint16_t, uint8_t> parseEmulation(StringRef emul) { 125 uint8_t osabi = 0; 126 StringRef s = emul; 127 if (s.endswith("_fbsd")) { 128 s = s.drop_back(5); 129 osabi = ELFOSABI_FREEBSD; 130 } 131 132 std::pair<ELFKind, uint16_t> ret = 133 StringSwitch<std::pair<ELFKind, uint16_t>>(s) 134 .Cases("aarch64elf", "aarch64linux", "aarch64_elf64_le_vec", 135 {ELF64LEKind, EM_AARCH64}) 136 .Cases("armelf", "armelf_linux_eabi", {ELF32LEKind, EM_ARM}) 137 .Case("elf32_x86_64", {ELF32LEKind, EM_X86_64}) 138 .Cases("elf32btsmip", "elf32btsmipn32", {ELF32BEKind, EM_MIPS}) 139 .Cases("elf32ltsmip", "elf32ltsmipn32", {ELF32LEKind, EM_MIPS}) 140 .Case("elf32lriscv", {ELF32LEKind, EM_RISCV}) 141 .Cases("elf32ppc", "elf32ppclinux", {ELF32BEKind, EM_PPC}) 142 .Case("elf64btsmip", {ELF64BEKind, EM_MIPS}) 143 .Case("elf64ltsmip", {ELF64LEKind, EM_MIPS}) 144 .Case("elf64lriscv", {ELF64LEKind, EM_RISCV}) 145 .Case("elf64ppc", {ELF64BEKind, EM_PPC64}) 146 .Case("elf64lppc", {ELF64LEKind, EM_PPC64}) 147 .Cases("elf_amd64", "elf_x86_64", {ELF64LEKind, EM_X86_64}) 148 .Case("elf_i386", {ELF32LEKind, EM_386}) 149 .Case("elf_iamcu", {ELF32LEKind, EM_IAMCU}) 150 .Default({ELFNoneKind, EM_NONE}); 151 152 if (ret.first == ELFNoneKind) 153 error("unknown emulation: " + emul); 154 return std::make_tuple(ret.first, ret.second, osabi); 155 } 156 157 // Returns slices of MB by parsing MB as an archive file. 158 // Each slice consists of a member file in the archive. 159 std::vector<std::pair<MemoryBufferRef, uint64_t>> static getArchiveMembers( 160 MemoryBufferRef mb) { 161 std::unique_ptr<Archive> file = 162 CHECK(Archive::create(mb), 163 mb.getBufferIdentifier() + ": failed to parse archive"); 164 165 std::vector<std::pair<MemoryBufferRef, uint64_t>> v; 166 Error err = Error::success(); 167 bool addToTar = file->isThin() && tar; 168 for (const Archive::Child &c : file->children(err)) { 169 MemoryBufferRef mbref = 170 CHECK(c.getMemoryBufferRef(), 171 mb.getBufferIdentifier() + 172 ": could not get the buffer for a child of the archive"); 173 if (addToTar) 174 tar->append(relativeToRoot(check(c.getFullName())), mbref.getBuffer()); 175 v.push_back(std::make_pair(mbref, c.getChildOffset())); 176 } 177 if (err) 178 fatal(mb.getBufferIdentifier() + ": Archive::children failed: " + 179 toString(std::move(err))); 180 181 // Take ownership of memory buffers created for members of thin archives. 182 for (std::unique_ptr<MemoryBuffer> &mb : file->takeThinBuffers()) 183 make<std::unique_ptr<MemoryBuffer>>(std::move(mb)); 184 185 return v; 186 } 187 188 // Opens a file and create a file object. Path has to be resolved already. 189 void LinkerDriver::addFile(StringRef path, bool withLOption) { 190 using namespace sys::fs; 191 192 Optional<MemoryBufferRef> buffer = readFile(path); 193 if (!buffer.hasValue()) 194 return; 195 MemoryBufferRef mbref = *buffer; 196 197 if (config->formatBinary) { 198 files.push_back(make<BinaryFile>(mbref)); 199 return; 200 } 201 202 switch (identify_magic(mbref.getBuffer())) { 203 case file_magic::unknown: 204 readLinkerScript(mbref); 205 return; 206 case file_magic::archive: { 207 // Handle -whole-archive. 208 if (inWholeArchive) { 209 for (const auto &p : getArchiveMembers(mbref)) 210 files.push_back(createObjectFile(p.first, path, p.second)); 211 return; 212 } 213 214 std::unique_ptr<Archive> file = 215 CHECK(Archive::create(mbref), path + ": failed to parse archive"); 216 217 // If an archive file has no symbol table, it is likely that a user 218 // is attempting LTO and using a default ar command that doesn't 219 // understand the LLVM bitcode file. It is a pretty common error, so 220 // we'll handle it as if it had a symbol table. 221 if (!file->isEmpty() && !file->hasSymbolTable()) { 222 // Check if all members are bitcode files. If not, ignore, which is the 223 // default action without the LTO hack described above. 224 for (const std::pair<MemoryBufferRef, uint64_t> &p : 225 getArchiveMembers(mbref)) 226 if (identify_magic(p.first.getBuffer()) != file_magic::bitcode) { 227 error(path + ": archive has no index; run ranlib to add one"); 228 return; 229 } 230 231 for (const std::pair<MemoryBufferRef, uint64_t> &p : 232 getArchiveMembers(mbref)) 233 files.push_back(make<LazyObjFile>(p.first, path, p.second)); 234 return; 235 } 236 237 // Handle the regular case. 238 files.push_back(make<ArchiveFile>(std::move(file))); 239 return; 240 } 241 case file_magic::elf_shared_object: 242 if (config->isStatic || config->relocatable) { 243 error("attempted static link of dynamic object " + path); 244 return; 245 } 246 247 // DSOs usually have DT_SONAME tags in their ELF headers, and the 248 // sonames are used to identify DSOs. But if they are missing, 249 // they are identified by filenames. We don't know whether the new 250 // file has a DT_SONAME or not because we haven't parsed it yet. 251 // Here, we set the default soname for the file because we might 252 // need it later. 253 // 254 // If a file was specified by -lfoo, the directory part is not 255 // significant, as a user did not specify it. This behavior is 256 // compatible with GNU. 257 files.push_back( 258 make<SharedFile>(mbref, withLOption ? path::filename(path) : path)); 259 return; 260 case file_magic::bitcode: 261 case file_magic::elf_relocatable: 262 if (inLib) 263 files.push_back(make<LazyObjFile>(mbref, "", 0)); 264 else 265 files.push_back(createObjectFile(mbref)); 266 break; 267 default: 268 error(path + ": unknown file type"); 269 } 270 } 271 272 // Add a given library by searching it from input search paths. 273 void LinkerDriver::addLibrary(StringRef name) { 274 if (Optional<std::string> path = searchLibrary(name)) 275 addFile(*path, /*withLOption=*/true); 276 else 277 error("unable to find library -l" + name); 278 } 279 280 // This function is called on startup. We need this for LTO since 281 // LTO calls LLVM functions to compile bitcode files to native code. 282 // Technically this can be delayed until we read bitcode files, but 283 // we don't bother to do lazily because the initialization is fast. 284 static void initLLVM() { 285 InitializeAllTargets(); 286 InitializeAllTargetMCs(); 287 InitializeAllAsmPrinters(); 288 InitializeAllAsmParsers(); 289 } 290 291 // Some command line options or some combinations of them are not allowed. 292 // This function checks for such errors. 293 static void checkOptions() { 294 // The MIPS ABI as of 2016 does not support the GNU-style symbol lookup 295 // table which is a relatively new feature. 296 if (config->emachine == EM_MIPS && config->gnuHash) 297 error("the .gnu.hash section is not compatible with the MIPS target"); 298 299 if (config->fixCortexA53Errata843419 && config->emachine != EM_AARCH64) 300 error("--fix-cortex-a53-843419 is only supported on AArch64 targets"); 301 302 if (config->fixCortexA8 && config->emachine != EM_ARM) 303 error("--fix-cortex-a8 is only supported on ARM targets"); 304 305 if (config->tocOptimize && config->emachine != EM_PPC64) 306 error("--toc-optimize is only supported on the PowerPC64 target"); 307 308 if (config->pie && config->shared) 309 error("-shared and -pie may not be used together"); 310 311 if (!config->shared && !config->filterList.empty()) 312 error("-F may not be used without -shared"); 313 314 if (!config->shared && !config->auxiliaryList.empty()) 315 error("-f may not be used without -shared"); 316 317 if (!config->relocatable && !config->defineCommon) 318 error("-no-define-common not supported in non relocatable output"); 319 320 if (config->strip == StripPolicy::All && config->emitRelocs) 321 error("--strip-all and --emit-relocs may not be used together"); 322 323 if (config->zText && config->zIfuncNoplt) 324 error("-z text and -z ifunc-noplt may not be used together"); 325 326 if (config->relocatable) { 327 if (config->shared) 328 error("-r and -shared may not be used together"); 329 if (config->gcSections) 330 error("-r and --gc-sections may not be used together"); 331 if (config->gdbIndex) 332 error("-r and --gdb-index may not be used together"); 333 if (config->icf != ICFLevel::None) 334 error("-r and --icf may not be used together"); 335 if (config->pie) 336 error("-r and -pie may not be used together"); 337 if (config->exportDynamic) 338 error("-r and --export-dynamic may not be used together"); 339 } 340 341 if (config->executeOnly) { 342 if (config->emachine != EM_AARCH64) 343 error("-execute-only is only supported on AArch64 targets"); 344 345 if (config->singleRoRx && !script->hasSectionsCommand) 346 error("-execute-only and -no-rosegment cannot be used together"); 347 } 348 349 if (config->zRetpolineplt && config->zForceIbt) 350 error("-z force-ibt may not be used with -z retpolineplt"); 351 352 if (config->emachine != EM_AARCH64) { 353 if (config->pacPlt) 354 error("-z pac-plt only supported on AArch64"); 355 if (config->forceBTI) 356 error("-z force-bti only supported on AArch64"); 357 } 358 } 359 360 static const char *getReproduceOption(opt::InputArgList &args) { 361 if (auto *arg = args.getLastArg(OPT_reproduce)) 362 return arg->getValue(); 363 return getenv("LLD_REPRODUCE"); 364 } 365 366 static bool hasZOption(opt::InputArgList &args, StringRef key) { 367 for (auto *arg : args.filtered(OPT_z)) 368 if (key == arg->getValue()) 369 return true; 370 return false; 371 } 372 373 static bool getZFlag(opt::InputArgList &args, StringRef k1, StringRef k2, 374 bool Default) { 375 for (auto *arg : args.filtered_reverse(OPT_z)) { 376 if (k1 == arg->getValue()) 377 return true; 378 if (k2 == arg->getValue()) 379 return false; 380 } 381 return Default; 382 } 383 384 static SeparateSegmentKind getZSeparate(opt::InputArgList &args) { 385 for (auto *arg : args.filtered_reverse(OPT_z)) { 386 StringRef v = arg->getValue(); 387 if (v == "noseparate-code") 388 return SeparateSegmentKind::None; 389 if (v == "separate-code") 390 return SeparateSegmentKind::Code; 391 if (v == "separate-loadable-segments") 392 return SeparateSegmentKind::Loadable; 393 } 394 return SeparateSegmentKind::None; 395 } 396 397 static GnuStackKind getZGnuStack(opt::InputArgList &args) { 398 for (auto *arg : args.filtered_reverse(OPT_z)) { 399 if (StringRef("execstack") == arg->getValue()) 400 return GnuStackKind::Exec; 401 if (StringRef("noexecstack") == arg->getValue()) 402 return GnuStackKind::NoExec; 403 if (StringRef("nognustack") == arg->getValue()) 404 return GnuStackKind::None; 405 } 406 407 return GnuStackKind::NoExec; 408 } 409 410 static bool isKnownZFlag(StringRef s) { 411 return s == "combreloc" || s == "copyreloc" || s == "defs" || 412 s == "execstack" || s == "force-bti" || s == "force-ibt" || 413 s == "global" || s == "hazardplt" || s == "ifunc-noplt" || 414 s == "initfirst" || s == "interpose" || 415 s == "keep-text-section-prefix" || s == "lazy" || s == "muldefs" || 416 s == "separate-code" || s == "separate-loadable-segments" || 417 s == "nocombreloc" || s == "nocopyreloc" || s == "nodefaultlib" || 418 s == "nodelete" || s == "nodlopen" || s == "noexecstack" || 419 s == "nognustack" || s == "nokeep-text-section-prefix" || 420 s == "norelro" || s == "noseparate-code" || s == "notext" || 421 s == "now" || s == "origin" || s == "pac-plt" || s == "relro" || 422 s == "retpolineplt" || s == "rodynamic" || s == "shstk" || 423 s == "text" || s == "undefs" || s == "wxneeded" || 424 s.startswith("common-page-size=") || s.startswith("max-page-size=") || 425 s.startswith("stack-size="); 426 } 427 428 // Report an error for an unknown -z option. 429 static void checkZOptions(opt::InputArgList &args) { 430 for (auto *arg : args.filtered(OPT_z)) 431 if (!isKnownZFlag(arg->getValue())) 432 error("unknown -z value: " + StringRef(arg->getValue())); 433 } 434 435 void LinkerDriver::main(ArrayRef<const char *> argsArr) { 436 ELFOptTable parser; 437 opt::InputArgList args = parser.parse(argsArr.slice(1)); 438 439 // Interpret this flag early because error() depends on them. 440 errorHandler().errorLimit = args::getInteger(args, OPT_error_limit, 20); 441 checkZOptions(args); 442 443 // Handle -help 444 if (args.hasArg(OPT_help)) { 445 printHelp(); 446 return; 447 } 448 449 // Handle -v or -version. 450 // 451 // A note about "compatible with GNU linkers" message: this is a hack for 452 // scripts generated by GNU Libtool 2.4.6 (released in February 2014 and 453 // still the newest version in March 2017) or earlier to recognize LLD as 454 // a GNU compatible linker. As long as an output for the -v option 455 // contains "GNU" or "with BFD", they recognize us as GNU-compatible. 456 // 457 // This is somewhat ugly hack, but in reality, we had no choice other 458 // than doing this. Considering the very long release cycle of Libtool, 459 // it is not easy to improve it to recognize LLD as a GNU compatible 460 // linker in a timely manner. Even if we can make it, there are still a 461 // lot of "configure" scripts out there that are generated by old version 462 // of Libtool. We cannot convince every software developer to migrate to 463 // the latest version and re-generate scripts. So we have this hack. 464 if (args.hasArg(OPT_v) || args.hasArg(OPT_version)) 465 message(getLLDVersion() + " (compatible with GNU linkers)"); 466 467 if (const char *path = getReproduceOption(args)) { 468 // Note that --reproduce is a debug option so you can ignore it 469 // if you are trying to understand the whole picture of the code. 470 Expected<std::unique_ptr<TarWriter>> errOrWriter = 471 TarWriter::create(path, path::stem(path)); 472 if (errOrWriter) { 473 tar = std::move(*errOrWriter); 474 tar->append("response.txt", createResponseFile(args)); 475 tar->append("version.txt", getLLDVersion() + "\n"); 476 } else { 477 error("--reproduce: " + toString(errOrWriter.takeError())); 478 } 479 } 480 481 readConfigs(args); 482 483 // The behavior of -v or --version is a bit strange, but this is 484 // needed for compatibility with GNU linkers. 485 if (args.hasArg(OPT_v) && !args.hasArg(OPT_INPUT)) 486 return; 487 if (args.hasArg(OPT_version)) 488 return; 489 490 initLLVM(); 491 createFiles(args); 492 if (errorCount()) 493 return; 494 495 inferMachineType(); 496 setConfigs(args); 497 checkOptions(); 498 if (errorCount()) 499 return; 500 501 // The Target instance handles target-specific stuff, such as applying 502 // relocations or writing a PLT section. It also contains target-dependent 503 // values such as a default image base address. 504 target = getTarget(); 505 506 switch (config->ekind) { 507 case ELF32LEKind: 508 link<ELF32LE>(args); 509 return; 510 case ELF32BEKind: 511 link<ELF32BE>(args); 512 return; 513 case ELF64LEKind: 514 link<ELF64LE>(args); 515 return; 516 case ELF64BEKind: 517 link<ELF64BE>(args); 518 return; 519 default: 520 llvm_unreachable("unknown Config->EKind"); 521 } 522 } 523 524 static std::string getRpath(opt::InputArgList &args) { 525 std::vector<StringRef> v = args::getStrings(args, OPT_rpath); 526 return llvm::join(v.begin(), v.end(), ":"); 527 } 528 529 // Determines what we should do if there are remaining unresolved 530 // symbols after the name resolution. 531 static UnresolvedPolicy getUnresolvedSymbolPolicy(opt::InputArgList &args) { 532 UnresolvedPolicy errorOrWarn = args.hasFlag(OPT_error_unresolved_symbols, 533 OPT_warn_unresolved_symbols, true) 534 ? UnresolvedPolicy::ReportError 535 : UnresolvedPolicy::Warn; 536 537 // Process the last of -unresolved-symbols, -no-undefined or -z defs. 538 for (auto *arg : llvm::reverse(args)) { 539 switch (arg->getOption().getID()) { 540 case OPT_unresolved_symbols: { 541 StringRef s = arg->getValue(); 542 if (s == "ignore-all" || s == "ignore-in-object-files") 543 return UnresolvedPolicy::Ignore; 544 if (s == "ignore-in-shared-libs" || s == "report-all") 545 return errorOrWarn; 546 error("unknown --unresolved-symbols value: " + s); 547 continue; 548 } 549 case OPT_no_undefined: 550 return errorOrWarn; 551 case OPT_z: 552 if (StringRef(arg->getValue()) == "defs") 553 return errorOrWarn; 554 if (StringRef(arg->getValue()) == "undefs") 555 return UnresolvedPolicy::Ignore; 556 continue; 557 } 558 } 559 560 // -shared implies -unresolved-symbols=ignore-all because missing 561 // symbols are likely to be resolved at runtime using other DSOs. 562 if (config->shared) 563 return UnresolvedPolicy::Ignore; 564 return errorOrWarn; 565 } 566 567 static Target2Policy getTarget2(opt::InputArgList &args) { 568 StringRef s = args.getLastArgValue(OPT_target2, "got-rel"); 569 if (s == "rel") 570 return Target2Policy::Rel; 571 if (s == "abs") 572 return Target2Policy::Abs; 573 if (s == "got-rel") 574 return Target2Policy::GotRel; 575 error("unknown --target2 option: " + s); 576 return Target2Policy::GotRel; 577 } 578 579 static bool isOutputFormatBinary(opt::InputArgList &args) { 580 StringRef s = args.getLastArgValue(OPT_oformat, "elf"); 581 if (s == "binary") 582 return true; 583 if (!s.startswith("elf")) 584 error("unknown --oformat value: " + s); 585 return false; 586 } 587 588 static DiscardPolicy getDiscard(opt::InputArgList &args) { 589 if (args.hasArg(OPT_relocatable)) 590 return DiscardPolicy::None; 591 592 auto *arg = 593 args.getLastArg(OPT_discard_all, OPT_discard_locals, OPT_discard_none); 594 if (!arg) 595 return DiscardPolicy::Default; 596 if (arg->getOption().getID() == OPT_discard_all) 597 return DiscardPolicy::All; 598 if (arg->getOption().getID() == OPT_discard_locals) 599 return DiscardPolicy::Locals; 600 return DiscardPolicy::None; 601 } 602 603 static StringRef getDynamicLinker(opt::InputArgList &args) { 604 auto *arg = args.getLastArg(OPT_dynamic_linker, OPT_no_dynamic_linker); 605 if (!arg || arg->getOption().getID() == OPT_no_dynamic_linker) 606 return ""; 607 return arg->getValue(); 608 } 609 610 static ICFLevel getICF(opt::InputArgList &args) { 611 auto *arg = args.getLastArg(OPT_icf_none, OPT_icf_safe, OPT_icf_all); 612 if (!arg || arg->getOption().getID() == OPT_icf_none) 613 return ICFLevel::None; 614 if (arg->getOption().getID() == OPT_icf_safe) 615 return ICFLevel::Safe; 616 return ICFLevel::All; 617 } 618 619 static StripPolicy getStrip(opt::InputArgList &args) { 620 if (args.hasArg(OPT_relocatable)) 621 return StripPolicy::None; 622 623 auto *arg = args.getLastArg(OPT_strip_all, OPT_strip_debug); 624 if (!arg) 625 return StripPolicy::None; 626 if (arg->getOption().getID() == OPT_strip_all) 627 return StripPolicy::All; 628 return StripPolicy::Debug; 629 } 630 631 static uint64_t parseSectionAddress(StringRef s, opt::InputArgList &args, 632 const opt::Arg &arg) { 633 uint64_t va = 0; 634 if (s.startswith("0x")) 635 s = s.drop_front(2); 636 if (!to_integer(s, va, 16)) 637 error("invalid argument: " + arg.getAsString(args)); 638 return va; 639 } 640 641 static StringMap<uint64_t> getSectionStartMap(opt::InputArgList &args) { 642 StringMap<uint64_t> ret; 643 for (auto *arg : args.filtered(OPT_section_start)) { 644 StringRef name; 645 StringRef addr; 646 std::tie(name, addr) = StringRef(arg->getValue()).split('='); 647 ret[name] = parseSectionAddress(addr, args, *arg); 648 } 649 650 if (auto *arg = args.getLastArg(OPT_Ttext)) 651 ret[".text"] = parseSectionAddress(arg->getValue(), args, *arg); 652 if (auto *arg = args.getLastArg(OPT_Tdata)) 653 ret[".data"] = parseSectionAddress(arg->getValue(), args, *arg); 654 if (auto *arg = args.getLastArg(OPT_Tbss)) 655 ret[".bss"] = parseSectionAddress(arg->getValue(), args, *arg); 656 return ret; 657 } 658 659 static SortSectionPolicy getSortSection(opt::InputArgList &args) { 660 StringRef s = args.getLastArgValue(OPT_sort_section); 661 if (s == "alignment") 662 return SortSectionPolicy::Alignment; 663 if (s == "name") 664 return SortSectionPolicy::Name; 665 if (!s.empty()) 666 error("unknown --sort-section rule: " + s); 667 return SortSectionPolicy::Default; 668 } 669 670 static OrphanHandlingPolicy getOrphanHandling(opt::InputArgList &args) { 671 StringRef s = args.getLastArgValue(OPT_orphan_handling, "place"); 672 if (s == "warn") 673 return OrphanHandlingPolicy::Warn; 674 if (s == "error") 675 return OrphanHandlingPolicy::Error; 676 if (s != "place") 677 error("unknown --orphan-handling mode: " + s); 678 return OrphanHandlingPolicy::Place; 679 } 680 681 // Parse --build-id or --build-id=<style>. We handle "tree" as a 682 // synonym for "sha1" because all our hash functions including 683 // -build-id=sha1 are actually tree hashes for performance reasons. 684 static std::pair<BuildIdKind, std::vector<uint8_t>> 685 getBuildId(opt::InputArgList &args) { 686 auto *arg = args.getLastArg(OPT_build_id, OPT_build_id_eq); 687 if (!arg) 688 return {BuildIdKind::None, {}}; 689 690 if (arg->getOption().getID() == OPT_build_id) 691 return {BuildIdKind::Fast, {}}; 692 693 StringRef s = arg->getValue(); 694 if (s == "fast") 695 return {BuildIdKind::Fast, {}}; 696 if (s == "md5") 697 return {BuildIdKind::Md5, {}}; 698 if (s == "sha1" || s == "tree") 699 return {BuildIdKind::Sha1, {}}; 700 if (s == "uuid") 701 return {BuildIdKind::Uuid, {}}; 702 if (s.startswith("0x")) 703 return {BuildIdKind::Hexstring, parseHex(s.substr(2))}; 704 705 if (s != "none") 706 error("unknown --build-id style: " + s); 707 return {BuildIdKind::None, {}}; 708 } 709 710 static std::pair<bool, bool> getPackDynRelocs(opt::InputArgList &args) { 711 StringRef s = args.getLastArgValue(OPT_pack_dyn_relocs, "none"); 712 if (s == "android") 713 return {true, false}; 714 if (s == "relr") 715 return {false, true}; 716 if (s == "android+relr") 717 return {true, true}; 718 719 if (s != "none") 720 error("unknown -pack-dyn-relocs format: " + s); 721 return {false, false}; 722 } 723 724 static void readCallGraph(MemoryBufferRef mb) { 725 // Build a map from symbol name to section 726 DenseMap<StringRef, Symbol *> map; 727 for (InputFile *file : objectFiles) 728 for (Symbol *sym : file->getSymbols()) 729 map[sym->getName()] = sym; 730 731 auto findSection = [&](StringRef name) -> InputSectionBase * { 732 Symbol *sym = map.lookup(name); 733 if (!sym) { 734 if (config->warnSymbolOrdering) 735 warn(mb.getBufferIdentifier() + ": no such symbol: " + name); 736 return nullptr; 737 } 738 maybeWarnUnorderableSymbol(sym); 739 740 if (Defined *dr = dyn_cast_or_null<Defined>(sym)) 741 return dyn_cast_or_null<InputSectionBase>(dr->section); 742 return nullptr; 743 }; 744 745 for (StringRef line : args::getLines(mb)) { 746 SmallVector<StringRef, 3> fields; 747 line.split(fields, ' '); 748 uint64_t count; 749 750 if (fields.size() != 3 || !to_integer(fields[2], count)) { 751 error(mb.getBufferIdentifier() + ": parse error"); 752 return; 753 } 754 755 if (InputSectionBase *from = findSection(fields[0])) 756 if (InputSectionBase *to = findSection(fields[1])) 757 config->callGraphProfile[std::make_pair(from, to)] += count; 758 } 759 } 760 761 template <class ELFT> static void readCallGraphsFromObjectFiles() { 762 for (auto file : objectFiles) { 763 auto *obj = cast<ObjFile<ELFT>>(file); 764 765 for (const Elf_CGProfile_Impl<ELFT> &cgpe : obj->cgProfile) { 766 auto *fromSym = dyn_cast<Defined>(&obj->getSymbol(cgpe.cgp_from)); 767 auto *toSym = dyn_cast<Defined>(&obj->getSymbol(cgpe.cgp_to)); 768 if (!fromSym || !toSym) 769 continue; 770 771 auto *from = dyn_cast_or_null<InputSectionBase>(fromSym->section); 772 auto *to = dyn_cast_or_null<InputSectionBase>(toSym->section); 773 if (from && to) 774 config->callGraphProfile[{from, to}] += cgpe.cgp_weight; 775 } 776 } 777 } 778 779 static bool getCompressDebugSections(opt::InputArgList &args) { 780 StringRef s = args.getLastArgValue(OPT_compress_debug_sections, "none"); 781 if (s == "none") 782 return false; 783 if (s != "zlib") 784 error("unknown --compress-debug-sections value: " + s); 785 if (!zlib::isAvailable()) 786 error("--compress-debug-sections: zlib is not available"); 787 return true; 788 } 789 790 static StringRef getAliasSpelling(opt::Arg *arg) { 791 if (const opt::Arg *alias = arg->getAlias()) 792 return alias->getSpelling(); 793 return arg->getSpelling(); 794 } 795 796 static std::pair<StringRef, StringRef> getOldNewOptions(opt::InputArgList &args, 797 unsigned id) { 798 auto *arg = args.getLastArg(id); 799 if (!arg) 800 return {"", ""}; 801 802 StringRef s = arg->getValue(); 803 std::pair<StringRef, StringRef> ret = s.split(';'); 804 if (ret.second.empty()) 805 error(getAliasSpelling(arg) + " expects 'old;new' format, but got " + s); 806 return ret; 807 } 808 809 // Parse the symbol ordering file and warn for any duplicate entries. 810 static std::vector<StringRef> getSymbolOrderingFile(MemoryBufferRef mb) { 811 SetVector<StringRef> names; 812 for (StringRef s : args::getLines(mb)) 813 if (!names.insert(s) && config->warnSymbolOrdering) 814 warn(mb.getBufferIdentifier() + ": duplicate ordered symbol: " + s); 815 816 return names.takeVector(); 817 } 818 819 static void parseClangOption(StringRef opt, const Twine &msg) { 820 std::string err; 821 raw_string_ostream os(err); 822 823 const char *argv[] = {config->progName.data(), opt.data()}; 824 if (cl::ParseCommandLineOptions(2, argv, "", &os)) 825 return; 826 os.flush(); 827 error(msg + ": " + StringRef(err).trim()); 828 } 829 830 // Initializes Config members by the command line options. 831 static void readConfigs(opt::InputArgList &args) { 832 errorHandler().verbose = args.hasArg(OPT_verbose); 833 errorHandler().fatalWarnings = 834 args.hasFlag(OPT_fatal_warnings, OPT_no_fatal_warnings, false); 835 errorHandler().vsDiagnostics = 836 args.hasArg(OPT_visual_studio_diagnostics_format, false); 837 threadsEnabled = args.hasFlag(OPT_threads, OPT_no_threads, true); 838 839 config->allowMultipleDefinition = 840 args.hasFlag(OPT_allow_multiple_definition, 841 OPT_no_allow_multiple_definition, false) || 842 hasZOption(args, "muldefs"); 843 config->allowShlibUndefined = 844 args.hasFlag(OPT_allow_shlib_undefined, OPT_no_allow_shlib_undefined, 845 args.hasArg(OPT_shared)); 846 config->auxiliaryList = args::getStrings(args, OPT_auxiliary); 847 config->bsymbolic = args.hasArg(OPT_Bsymbolic); 848 config->bsymbolicFunctions = args.hasArg(OPT_Bsymbolic_functions); 849 config->checkSections = 850 args.hasFlag(OPT_check_sections, OPT_no_check_sections, true); 851 config->chroot = args.getLastArgValue(OPT_chroot); 852 config->compressDebugSections = getCompressDebugSections(args); 853 config->cref = args.hasFlag(OPT_cref, OPT_no_cref, false); 854 config->defineCommon = args.hasFlag(OPT_define_common, OPT_no_define_common, 855 !args.hasArg(OPT_relocatable)); 856 config->demangle = args.hasFlag(OPT_demangle, OPT_no_demangle, true); 857 config->dependentLibraries = args.hasFlag(OPT_dependent_libraries, OPT_no_dependent_libraries, true); 858 config->disableVerify = args.hasArg(OPT_disable_verify); 859 config->discard = getDiscard(args); 860 config->dwoDir = args.getLastArgValue(OPT_plugin_opt_dwo_dir_eq); 861 config->dynamicLinker = getDynamicLinker(args); 862 config->ehFrameHdr = 863 args.hasFlag(OPT_eh_frame_hdr, OPT_no_eh_frame_hdr, false); 864 config->emitLLVM = args.hasArg(OPT_plugin_opt_emit_llvm, false); 865 config->emitRelocs = args.hasArg(OPT_emit_relocs); 866 config->callGraphProfileSort = args.hasFlag( 867 OPT_call_graph_profile_sort, OPT_no_call_graph_profile_sort, true); 868 config->enableNewDtags = 869 args.hasFlag(OPT_enable_new_dtags, OPT_disable_new_dtags, true); 870 config->entry = args.getLastArgValue(OPT_entry); 871 config->executeOnly = 872 args.hasFlag(OPT_execute_only, OPT_no_execute_only, false); 873 config->exportDynamic = 874 args.hasFlag(OPT_export_dynamic, OPT_no_export_dynamic, false); 875 config->filterList = args::getStrings(args, OPT_filter); 876 config->fini = args.getLastArgValue(OPT_fini, "_fini"); 877 config->fixCortexA53Errata843419 = args.hasArg(OPT_fix_cortex_a53_843419); 878 config->fixCortexA8 = args.hasArg(OPT_fix_cortex_a8); 879 config->forceBTI = hasZOption(args, "force-bti"); 880 config->gcSections = args.hasFlag(OPT_gc_sections, OPT_no_gc_sections, false); 881 config->gnuUnique = args.hasFlag(OPT_gnu_unique, OPT_no_gnu_unique, true); 882 config->gdbIndex = args.hasFlag(OPT_gdb_index, OPT_no_gdb_index, false); 883 config->icf = getICF(args); 884 config->ignoreDataAddressEquality = 885 args.hasArg(OPT_ignore_data_address_equality); 886 config->ignoreFunctionAddressEquality = 887 args.hasArg(OPT_ignore_function_address_equality); 888 config->init = args.getLastArgValue(OPT_init, "_init"); 889 config->ltoAAPipeline = args.getLastArgValue(OPT_lto_aa_pipeline); 890 config->ltoCSProfileGenerate = args.hasArg(OPT_lto_cs_profile_generate); 891 config->ltoCSProfileFile = args.getLastArgValue(OPT_lto_cs_profile_file); 892 config->ltoDebugPassManager = args.hasArg(OPT_lto_debug_pass_manager); 893 config->ltoNewPassManager = args.hasArg(OPT_lto_new_pass_manager); 894 config->ltoNewPmPasses = args.getLastArgValue(OPT_lto_newpm_passes); 895 config->ltoo = args::getInteger(args, OPT_lto_O, 2); 896 config->ltoObjPath = args.getLastArgValue(OPT_lto_obj_path_eq); 897 config->ltoPartitions = args::getInteger(args, OPT_lto_partitions, 1); 898 config->ltoSampleProfile = args.getLastArgValue(OPT_lto_sample_profile); 899 config->mapFile = args.getLastArgValue(OPT_Map); 900 config->mipsGotSize = args::getInteger(args, OPT_mips_got_size, 0xfff0); 901 config->mergeArmExidx = 902 args.hasFlag(OPT_merge_exidx_entries, OPT_no_merge_exidx_entries, true); 903 config->mmapOutputFile = 904 args.hasFlag(OPT_mmap_output_file, OPT_no_mmap_output_file, true); 905 config->nmagic = args.hasFlag(OPT_nmagic, OPT_no_nmagic, false); 906 config->noinhibitExec = args.hasArg(OPT_noinhibit_exec); 907 config->nostdlib = args.hasArg(OPT_nostdlib); 908 config->oFormatBinary = isOutputFormatBinary(args); 909 config->omagic = args.hasFlag(OPT_omagic, OPT_no_omagic, false); 910 config->optRemarksFilename = args.getLastArgValue(OPT_opt_remarks_filename); 911 config->optRemarksPasses = args.getLastArgValue(OPT_opt_remarks_passes); 912 config->optRemarksWithHotness = args.hasArg(OPT_opt_remarks_with_hotness); 913 config->optRemarksFormat = args.getLastArgValue(OPT_opt_remarks_format); 914 config->optimize = args::getInteger(args, OPT_O, 1); 915 config->orphanHandling = getOrphanHandling(args); 916 config->outputFile = args.getLastArgValue(OPT_o); 917 config->pacPlt = hasZOption(args, "pac-plt"); 918 config->pie = args.hasFlag(OPT_pie, OPT_no_pie, false); 919 config->printIcfSections = 920 args.hasFlag(OPT_print_icf_sections, OPT_no_print_icf_sections, false); 921 config->printGcSections = 922 args.hasFlag(OPT_print_gc_sections, OPT_no_print_gc_sections, false); 923 config->printSymbolOrder = 924 args.getLastArgValue(OPT_print_symbol_order); 925 config->rpath = getRpath(args); 926 config->relocatable = args.hasArg(OPT_relocatable); 927 config->saveTemps = args.hasArg(OPT_save_temps); 928 config->searchPaths = args::getStrings(args, OPT_library_path); 929 config->sectionStartMap = getSectionStartMap(args); 930 config->shared = args.hasArg(OPT_shared); 931 config->singleRoRx = args.hasArg(OPT_no_rosegment); 932 config->soName = args.getLastArgValue(OPT_soname); 933 config->sortSection = getSortSection(args); 934 config->splitStackAdjustSize = args::getInteger(args, OPT_split_stack_adjust_size, 16384); 935 config->strip = getStrip(args); 936 config->sysroot = args.getLastArgValue(OPT_sysroot); 937 config->target1Rel = args.hasFlag(OPT_target1_rel, OPT_target1_abs, false); 938 config->target2 = getTarget2(args); 939 config->thinLTOCacheDir = args.getLastArgValue(OPT_thinlto_cache_dir); 940 config->thinLTOCachePolicy = CHECK( 941 parseCachePruningPolicy(args.getLastArgValue(OPT_thinlto_cache_policy)), 942 "--thinlto-cache-policy: invalid cache policy"); 943 config->thinLTOEmitImportsFiles = args.hasArg(OPT_thinlto_emit_imports_files); 944 config->thinLTOIndexOnly = args.hasArg(OPT_thinlto_index_only) || 945 args.hasArg(OPT_thinlto_index_only_eq); 946 config->thinLTOIndexOnlyArg = args.getLastArgValue(OPT_thinlto_index_only_eq); 947 config->thinLTOJobs = args::getInteger(args, OPT_thinlto_jobs, -1u); 948 config->thinLTOObjectSuffixReplace = 949 getOldNewOptions(args, OPT_thinlto_object_suffix_replace_eq); 950 config->thinLTOPrefixReplace = 951 getOldNewOptions(args, OPT_thinlto_prefix_replace_eq); 952 config->trace = args.hasArg(OPT_trace); 953 config->undefined = args::getStrings(args, OPT_undefined); 954 config->undefinedVersion = 955 args.hasFlag(OPT_undefined_version, OPT_no_undefined_version, true); 956 config->useAndroidRelrTags = args.hasFlag( 957 OPT_use_android_relr_tags, OPT_no_use_android_relr_tags, false); 958 config->unresolvedSymbols = getUnresolvedSymbolPolicy(args); 959 config->warnBackrefs = 960 args.hasFlag(OPT_warn_backrefs, OPT_no_warn_backrefs, false); 961 config->warnCommon = args.hasFlag(OPT_warn_common, OPT_no_warn_common, false); 962 config->warnIfuncTextrel = 963 args.hasFlag(OPT_warn_ifunc_textrel, OPT_no_warn_ifunc_textrel, false); 964 config->warnSymbolOrdering = 965 args.hasFlag(OPT_warn_symbol_ordering, OPT_no_warn_symbol_ordering, true); 966 config->zCombreloc = getZFlag(args, "combreloc", "nocombreloc", true); 967 config->zCopyreloc = getZFlag(args, "copyreloc", "nocopyreloc", true); 968 config->zForceIbt = hasZOption(args, "force-ibt"); 969 config->zGlobal = hasZOption(args, "global"); 970 config->zGnustack = getZGnuStack(args); 971 config->zHazardplt = hasZOption(args, "hazardplt"); 972 config->zIfuncNoplt = hasZOption(args, "ifunc-noplt"); 973 config->zInitfirst = hasZOption(args, "initfirst"); 974 config->zInterpose = hasZOption(args, "interpose"); 975 config->zKeepTextSectionPrefix = getZFlag( 976 args, "keep-text-section-prefix", "nokeep-text-section-prefix", false); 977 config->zNodefaultlib = hasZOption(args, "nodefaultlib"); 978 config->zNodelete = hasZOption(args, "nodelete"); 979 config->zNodlopen = hasZOption(args, "nodlopen"); 980 config->zNow = getZFlag(args, "now", "lazy", false); 981 config->zOrigin = hasZOption(args, "origin"); 982 config->zRelro = getZFlag(args, "relro", "norelro", true); 983 config->zRetpolineplt = hasZOption(args, "retpolineplt"); 984 config->zRodynamic = hasZOption(args, "rodynamic"); 985 config->zSeparate = getZSeparate(args); 986 config->zShstk = hasZOption(args, "shstk"); 987 config->zStackSize = args::getZOptionValue(args, OPT_z, "stack-size", 0); 988 config->zText = getZFlag(args, "text", "notext", true); 989 config->zWxneeded = hasZOption(args, "wxneeded"); 990 991 // Parse LTO options. 992 if (auto *arg = args.getLastArg(OPT_plugin_opt_mcpu_eq)) 993 parseClangOption(saver.save("-mcpu=" + StringRef(arg->getValue())), 994 arg->getSpelling()); 995 996 for (auto *arg : args.filtered(OPT_plugin_opt)) 997 parseClangOption(arg->getValue(), arg->getSpelling()); 998 999 // Parse -mllvm options. 1000 for (auto *arg : args.filtered(OPT_mllvm)) 1001 parseClangOption(arg->getValue(), arg->getSpelling()); 1002 1003 if (config->ltoo > 3) 1004 error("invalid optimization level for LTO: " + Twine(config->ltoo)); 1005 if (config->ltoPartitions == 0) 1006 error("--lto-partitions: number of threads must be > 0"); 1007 if (config->thinLTOJobs == 0) 1008 error("--thinlto-jobs: number of threads must be > 0"); 1009 1010 if (config->splitStackAdjustSize < 0) 1011 error("--split-stack-adjust-size: size must be >= 0"); 1012 1013 // The text segment is traditionally the first segment, whose address equals 1014 // the base address. However, lld places the R PT_LOAD first. -Ttext-segment 1015 // is an old-fashioned option that does not play well with lld's layout. 1016 // Suggest --image-base as a likely alternative. 1017 if (args.hasArg(OPT_Ttext_segment)) 1018 error("-Ttext-segment is not supported. Use --image-base if you " 1019 "intend to set the base address"); 1020 1021 // Parse ELF{32,64}{LE,BE} and CPU type. 1022 if (auto *arg = args.getLastArg(OPT_m)) { 1023 StringRef s = arg->getValue(); 1024 std::tie(config->ekind, config->emachine, config->osabi) = 1025 parseEmulation(s); 1026 config->mipsN32Abi = 1027 (s.startswith("elf32btsmipn32") || s.startswith("elf32ltsmipn32")); 1028 config->emulation = s; 1029 } 1030 1031 // Parse -hash-style={sysv,gnu,both}. 1032 if (auto *arg = args.getLastArg(OPT_hash_style)) { 1033 StringRef s = arg->getValue(); 1034 if (s == "sysv") 1035 config->sysvHash = true; 1036 else if (s == "gnu") 1037 config->gnuHash = true; 1038 else if (s == "both") 1039 config->sysvHash = config->gnuHash = true; 1040 else 1041 error("unknown -hash-style: " + s); 1042 } 1043 1044 if (args.hasArg(OPT_print_map)) 1045 config->mapFile = "-"; 1046 1047 // Page alignment can be disabled by the -n (--nmagic) and -N (--omagic). 1048 // As PT_GNU_RELRO relies on Paging, do not create it when we have disabled 1049 // it. 1050 if (config->nmagic || config->omagic) 1051 config->zRelro = false; 1052 1053 std::tie(config->buildId, config->buildIdVector) = getBuildId(args); 1054 1055 std::tie(config->androidPackDynRelocs, config->relrPackDynRelocs) = 1056 getPackDynRelocs(args); 1057 1058 if (auto *arg = args.getLastArg(OPT_symbol_ordering_file)){ 1059 if (args.hasArg(OPT_call_graph_ordering_file)) 1060 error("--symbol-ordering-file and --call-graph-order-file " 1061 "may not be used together"); 1062 if (Optional<MemoryBufferRef> buffer = readFile(arg->getValue())){ 1063 config->symbolOrderingFile = getSymbolOrderingFile(*buffer); 1064 // Also need to disable CallGraphProfileSort to prevent 1065 // LLD order symbols with CGProfile 1066 config->callGraphProfileSort = false; 1067 } 1068 } 1069 1070 assert(config->versionDefinitions.empty()); 1071 config->versionDefinitions.push_back({"local", (uint16_t)VER_NDX_LOCAL, {}}); 1072 config->versionDefinitions.push_back( 1073 {"global", (uint16_t)VER_NDX_GLOBAL, {}}); 1074 1075 // If --retain-symbol-file is used, we'll keep only the symbols listed in 1076 // the file and discard all others. 1077 if (auto *arg = args.getLastArg(OPT_retain_symbols_file)) { 1078 config->versionDefinitions[VER_NDX_LOCAL].patterns.push_back( 1079 {"*", /*isExternCpp=*/false, /*hasWildcard=*/true}); 1080 if (Optional<MemoryBufferRef> buffer = readFile(arg->getValue())) 1081 for (StringRef s : args::getLines(*buffer)) 1082 config->versionDefinitions[VER_NDX_GLOBAL].patterns.push_back( 1083 {s, /*isExternCpp=*/false, /*hasWildcard=*/false}); 1084 } 1085 1086 // Parses -dynamic-list and -export-dynamic-symbol. They make some 1087 // symbols private. Note that -export-dynamic takes precedence over them 1088 // as it says all symbols should be exported. 1089 if (!config->exportDynamic) { 1090 for (auto *arg : args.filtered(OPT_dynamic_list)) 1091 if (Optional<MemoryBufferRef> buffer = readFile(arg->getValue())) 1092 readDynamicList(*buffer); 1093 1094 for (auto *arg : args.filtered(OPT_export_dynamic_symbol)) 1095 config->dynamicList.push_back( 1096 {arg->getValue(), /*isExternCpp=*/false, /*hasWildcard=*/false}); 1097 } 1098 1099 // If --export-dynamic-symbol=foo is given and symbol foo is defined in 1100 // an object file in an archive file, that object file should be pulled 1101 // out and linked. (It doesn't have to behave like that from technical 1102 // point of view, but this is needed for compatibility with GNU.) 1103 for (auto *arg : args.filtered(OPT_export_dynamic_symbol)) 1104 config->undefined.push_back(arg->getValue()); 1105 1106 for (auto *arg : args.filtered(OPT_version_script)) 1107 if (Optional<std::string> path = searchScript(arg->getValue())) { 1108 if (Optional<MemoryBufferRef> buffer = readFile(*path)) 1109 readVersionScript(*buffer); 1110 } else { 1111 error(Twine("cannot find version script ") + arg->getValue()); 1112 } 1113 } 1114 1115 // Some Config members do not directly correspond to any particular 1116 // command line options, but computed based on other Config values. 1117 // This function initialize such members. See Config.h for the details 1118 // of these values. 1119 static void setConfigs(opt::InputArgList &args) { 1120 ELFKind k = config->ekind; 1121 uint16_t m = config->emachine; 1122 1123 config->copyRelocs = (config->relocatable || config->emitRelocs); 1124 config->is64 = (k == ELF64LEKind || k == ELF64BEKind); 1125 config->isLE = (k == ELF32LEKind || k == ELF64LEKind); 1126 config->endianness = config->isLE ? endianness::little : endianness::big; 1127 config->isMips64EL = (k == ELF64LEKind && m == EM_MIPS); 1128 config->isPic = config->pie || config->shared; 1129 config->picThunk = args.hasArg(OPT_pic_veneer, config->isPic); 1130 config->wordsize = config->is64 ? 8 : 4; 1131 1132 // ELF defines two different ways to store relocation addends as shown below: 1133 // 1134 // Rel: Addends are stored to the location where relocations are applied. 1135 // Rela: Addends are stored as part of relocation entry. 1136 // 1137 // In other words, Rela makes it easy to read addends at the price of extra 1138 // 4 or 8 byte for each relocation entry. We don't know why ELF defined two 1139 // different mechanisms in the first place, but this is how the spec is 1140 // defined. 1141 // 1142 // You cannot choose which one, Rel or Rela, you want to use. Instead each 1143 // ABI defines which one you need to use. The following expression expresses 1144 // that. 1145 config->isRela = m == EM_AARCH64 || m == EM_AMDGPU || m == EM_HEXAGON || 1146 m == EM_PPC || m == EM_PPC64 || m == EM_RISCV || 1147 m == EM_X86_64; 1148 1149 // If the output uses REL relocations we must store the dynamic relocation 1150 // addends to the output sections. We also store addends for RELA relocations 1151 // if --apply-dynamic-relocs is used. 1152 // We default to not writing the addends when using RELA relocations since 1153 // any standard conforming tool can find it in r_addend. 1154 config->writeAddends = args.hasFlag(OPT_apply_dynamic_relocs, 1155 OPT_no_apply_dynamic_relocs, false) || 1156 !config->isRela; 1157 1158 config->tocOptimize = 1159 args.hasFlag(OPT_toc_optimize, OPT_no_toc_optimize, m == EM_PPC64); 1160 } 1161 1162 // Returns a value of "-format" option. 1163 static bool isFormatBinary(StringRef s) { 1164 if (s == "binary") 1165 return true; 1166 if (s == "elf" || s == "default") 1167 return false; 1168 error("unknown -format value: " + s + 1169 " (supported formats: elf, default, binary)"); 1170 return false; 1171 } 1172 1173 void LinkerDriver::createFiles(opt::InputArgList &args) { 1174 // For --{push,pop}-state. 1175 std::vector<std::tuple<bool, bool, bool>> stack; 1176 1177 // Iterate over argv to process input files and positional arguments. 1178 for (auto *arg : args) { 1179 switch (arg->getOption().getID()) { 1180 case OPT_library: 1181 addLibrary(arg->getValue()); 1182 break; 1183 case OPT_INPUT: 1184 addFile(arg->getValue(), /*withLOption=*/false); 1185 break; 1186 case OPT_defsym: { 1187 StringRef from; 1188 StringRef to; 1189 std::tie(from, to) = StringRef(arg->getValue()).split('='); 1190 if (from.empty() || to.empty()) 1191 error("-defsym: syntax error: " + StringRef(arg->getValue())); 1192 else 1193 readDefsym(from, MemoryBufferRef(to, "-defsym")); 1194 break; 1195 } 1196 case OPT_script: 1197 if (Optional<std::string> path = searchScript(arg->getValue())) { 1198 if (Optional<MemoryBufferRef> mb = readFile(*path)) 1199 readLinkerScript(*mb); 1200 break; 1201 } 1202 error(Twine("cannot find linker script ") + arg->getValue()); 1203 break; 1204 case OPT_as_needed: 1205 config->asNeeded = true; 1206 break; 1207 case OPT_format: 1208 config->formatBinary = isFormatBinary(arg->getValue()); 1209 break; 1210 case OPT_no_as_needed: 1211 config->asNeeded = false; 1212 break; 1213 case OPT_Bstatic: 1214 case OPT_omagic: 1215 case OPT_nmagic: 1216 config->isStatic = true; 1217 break; 1218 case OPT_Bdynamic: 1219 config->isStatic = false; 1220 break; 1221 case OPT_whole_archive: 1222 inWholeArchive = true; 1223 break; 1224 case OPT_no_whole_archive: 1225 inWholeArchive = false; 1226 break; 1227 case OPT_just_symbols: 1228 if (Optional<MemoryBufferRef> mb = readFile(arg->getValue())) { 1229 files.push_back(createObjectFile(*mb)); 1230 files.back()->justSymbols = true; 1231 } 1232 break; 1233 case OPT_start_group: 1234 if (InputFile::isInGroup) 1235 error("nested --start-group"); 1236 InputFile::isInGroup = true; 1237 break; 1238 case OPT_end_group: 1239 if (!InputFile::isInGroup) 1240 error("stray --end-group"); 1241 InputFile::isInGroup = false; 1242 ++InputFile::nextGroupId; 1243 break; 1244 case OPT_start_lib: 1245 if (inLib) 1246 error("nested --start-lib"); 1247 if (InputFile::isInGroup) 1248 error("may not nest --start-lib in --start-group"); 1249 inLib = true; 1250 InputFile::isInGroup = true; 1251 break; 1252 case OPT_end_lib: 1253 if (!inLib) 1254 error("stray --end-lib"); 1255 inLib = false; 1256 InputFile::isInGroup = false; 1257 ++InputFile::nextGroupId; 1258 break; 1259 case OPT_push_state: 1260 stack.emplace_back(config->asNeeded, config->isStatic, inWholeArchive); 1261 break; 1262 case OPT_pop_state: 1263 if (stack.empty()) { 1264 error("unbalanced --push-state/--pop-state"); 1265 break; 1266 } 1267 std::tie(config->asNeeded, config->isStatic, inWholeArchive) = stack.back(); 1268 stack.pop_back(); 1269 break; 1270 } 1271 } 1272 1273 if (files.empty() && errorCount() == 0) 1274 error("no input files"); 1275 } 1276 1277 // If -m <machine_type> was not given, infer it from object files. 1278 void LinkerDriver::inferMachineType() { 1279 if (config->ekind != ELFNoneKind) 1280 return; 1281 1282 for (InputFile *f : files) { 1283 if (f->ekind == ELFNoneKind) 1284 continue; 1285 config->ekind = f->ekind; 1286 config->emachine = f->emachine; 1287 config->osabi = f->osabi; 1288 config->mipsN32Abi = config->emachine == EM_MIPS && isMipsN32Abi(f); 1289 return; 1290 } 1291 error("target emulation unknown: -m or at least one .o file required"); 1292 } 1293 1294 // Parse -z max-page-size=<value>. The default value is defined by 1295 // each target. 1296 static uint64_t getMaxPageSize(opt::InputArgList &args) { 1297 uint64_t val = args::getZOptionValue(args, OPT_z, "max-page-size", 1298 target->defaultMaxPageSize); 1299 if (!isPowerOf2_64(val)) 1300 error("max-page-size: value isn't a power of 2"); 1301 if (config->nmagic || config->omagic) { 1302 if (val != target->defaultMaxPageSize) 1303 warn("-z max-page-size set, but paging disabled by omagic or nmagic"); 1304 return 1; 1305 } 1306 return val; 1307 } 1308 1309 // Parse -z common-page-size=<value>. The default value is defined by 1310 // each target. 1311 static uint64_t getCommonPageSize(opt::InputArgList &args) { 1312 uint64_t val = args::getZOptionValue(args, OPT_z, "common-page-size", 1313 target->defaultCommonPageSize); 1314 if (!isPowerOf2_64(val)) 1315 error("common-page-size: value isn't a power of 2"); 1316 if (config->nmagic || config->omagic) { 1317 if (val != target->defaultCommonPageSize) 1318 warn("-z common-page-size set, but paging disabled by omagic or nmagic"); 1319 return 1; 1320 } 1321 // commonPageSize can't be larger than maxPageSize. 1322 if (val > config->maxPageSize) 1323 val = config->maxPageSize; 1324 return val; 1325 } 1326 1327 // Parses -image-base option. 1328 static Optional<uint64_t> getImageBase(opt::InputArgList &args) { 1329 // Because we are using "Config->maxPageSize" here, this function has to be 1330 // called after the variable is initialized. 1331 auto *arg = args.getLastArg(OPT_image_base); 1332 if (!arg) 1333 return None; 1334 1335 StringRef s = arg->getValue(); 1336 uint64_t v; 1337 if (!to_integer(s, v)) { 1338 error("-image-base: number expected, but got " + s); 1339 return 0; 1340 } 1341 if ((v % config->maxPageSize) != 0) 1342 warn("-image-base: address isn't multiple of page size: " + s); 1343 return v; 1344 } 1345 1346 // Parses `--exclude-libs=lib,lib,...`. 1347 // The library names may be delimited by commas or colons. 1348 static DenseSet<StringRef> getExcludeLibs(opt::InputArgList &args) { 1349 DenseSet<StringRef> ret; 1350 for (auto *arg : args.filtered(OPT_exclude_libs)) { 1351 StringRef s = arg->getValue(); 1352 for (;;) { 1353 size_t pos = s.find_first_of(",:"); 1354 if (pos == StringRef::npos) 1355 break; 1356 ret.insert(s.substr(0, pos)); 1357 s = s.substr(pos + 1); 1358 } 1359 ret.insert(s); 1360 } 1361 return ret; 1362 } 1363 1364 // Handles the -exclude-libs option. If a static library file is specified 1365 // by the -exclude-libs option, all public symbols from the archive become 1366 // private unless otherwise specified by version scripts or something. 1367 // A special library name "ALL" means all archive files. 1368 // 1369 // This is not a popular option, but some programs such as bionic libc use it. 1370 static void excludeLibs(opt::InputArgList &args) { 1371 DenseSet<StringRef> libs = getExcludeLibs(args); 1372 bool all = libs.count("ALL"); 1373 1374 auto visit = [&](InputFile *file) { 1375 if (!file->archiveName.empty()) 1376 if (all || libs.count(path::filename(file->archiveName))) 1377 for (Symbol *sym : file->getSymbols()) 1378 if (!sym->isUndefined() && !sym->isLocal() && sym->file == file) 1379 sym->versionId = VER_NDX_LOCAL; 1380 }; 1381 1382 for (InputFile *file : objectFiles) 1383 visit(file); 1384 1385 for (BitcodeFile *file : bitcodeFiles) 1386 visit(file); 1387 } 1388 1389 // Force Sym to be entered in the output. Used for -u or equivalent. 1390 static void handleUndefined(Symbol *sym) { 1391 // Since a symbol may not be used inside the program, LTO may 1392 // eliminate it. Mark the symbol as "used" to prevent it. 1393 sym->isUsedInRegularObj = true; 1394 1395 if (sym->isLazy()) 1396 sym->fetch(); 1397 } 1398 1399 // As an extension to GNU linkers, lld supports a variant of `-u` 1400 // which accepts wildcard patterns. All symbols that match a given 1401 // pattern are handled as if they were given by `-u`. 1402 static void handleUndefinedGlob(StringRef arg) { 1403 Expected<GlobPattern> pat = GlobPattern::create(arg); 1404 if (!pat) { 1405 error("--undefined-glob: " + toString(pat.takeError())); 1406 return; 1407 } 1408 1409 std::vector<Symbol *> syms; 1410 for (Symbol *sym : symtab->symbols()) { 1411 // Calling Sym->fetch() from here is not safe because it may 1412 // add new symbols to the symbol table, invalidating the 1413 // current iterator. So we just keep a note. 1414 if (pat->match(sym->getName())) 1415 syms.push_back(sym); 1416 } 1417 1418 for (Symbol *sym : syms) 1419 handleUndefined(sym); 1420 } 1421 1422 static void handleLibcall(StringRef name) { 1423 Symbol *sym = symtab->find(name); 1424 if (!sym || !sym->isLazy()) 1425 return; 1426 1427 MemoryBufferRef mb; 1428 if (auto *lo = dyn_cast<LazyObject>(sym)) 1429 mb = lo->file->mb; 1430 else 1431 mb = cast<LazyArchive>(sym)->getMemberBuffer(); 1432 1433 if (isBitcode(mb)) 1434 sym->fetch(); 1435 } 1436 1437 // Replaces common symbols with defined symbols reside in .bss sections. 1438 // This function is called after all symbol names are resolved. As a 1439 // result, the passes after the symbol resolution won't see any 1440 // symbols of type CommonSymbol. 1441 static void replaceCommonSymbols() { 1442 for (Symbol *sym : symtab->symbols()) { 1443 auto *s = dyn_cast<CommonSymbol>(sym); 1444 if (!s) 1445 continue; 1446 1447 auto *bss = make<BssSection>("COMMON", s->size, s->alignment); 1448 bss->file = s->file; 1449 bss->markDead(); 1450 inputSections.push_back(bss); 1451 s->replace(Defined{s->file, s->getName(), s->binding, s->stOther, s->type, 1452 /*value=*/0, s->size, bss}); 1453 } 1454 } 1455 1456 // If all references to a DSO happen to be weak, the DSO is not added 1457 // to DT_NEEDED. If that happens, we need to eliminate shared symbols 1458 // created from the DSO. Otherwise, they become dangling references 1459 // that point to a non-existent DSO. 1460 static void demoteSharedSymbols() { 1461 for (Symbol *sym : symtab->symbols()) { 1462 auto *s = dyn_cast<SharedSymbol>(sym); 1463 if (!s || s->getFile().isNeeded) 1464 continue; 1465 1466 bool used = s->used; 1467 s->replace(Undefined{nullptr, s->getName(), STB_WEAK, s->stOther, s->type}); 1468 s->used = used; 1469 } 1470 } 1471 1472 // The section referred to by `s` is considered address-significant. Set the 1473 // keepUnique flag on the section if appropriate. 1474 static void markAddrsig(Symbol *s) { 1475 if (auto *d = dyn_cast_or_null<Defined>(s)) 1476 if (d->section) 1477 // We don't need to keep text sections unique under --icf=all even if they 1478 // are address-significant. 1479 if (config->icf == ICFLevel::Safe || !(d->section->flags & SHF_EXECINSTR)) 1480 d->section->keepUnique = true; 1481 } 1482 1483 // Record sections that define symbols mentioned in --keep-unique <symbol> 1484 // and symbols referred to by address-significance tables. These sections are 1485 // ineligible for ICF. 1486 template <class ELFT> 1487 static void findKeepUniqueSections(opt::InputArgList &args) { 1488 for (auto *arg : args.filtered(OPT_keep_unique)) { 1489 StringRef name = arg->getValue(); 1490 auto *d = dyn_cast_or_null<Defined>(symtab->find(name)); 1491 if (!d || !d->section) { 1492 warn("could not find symbol " + name + " to keep unique"); 1493 continue; 1494 } 1495 d->section->keepUnique = true; 1496 } 1497 1498 // --icf=all --ignore-data-address-equality means that we can ignore 1499 // the dynsym and address-significance tables entirely. 1500 if (config->icf == ICFLevel::All && config->ignoreDataAddressEquality) 1501 return; 1502 1503 // Symbols in the dynsym could be address-significant in other executables 1504 // or DSOs, so we conservatively mark them as address-significant. 1505 for (Symbol *sym : symtab->symbols()) 1506 if (sym->includeInDynsym()) 1507 markAddrsig(sym); 1508 1509 // Visit the address-significance table in each object file and mark each 1510 // referenced symbol as address-significant. 1511 for (InputFile *f : objectFiles) { 1512 auto *obj = cast<ObjFile<ELFT>>(f); 1513 ArrayRef<Symbol *> syms = obj->getSymbols(); 1514 if (obj->addrsigSec) { 1515 ArrayRef<uint8_t> contents = 1516 check(obj->getObj().getSectionContents(obj->addrsigSec)); 1517 const uint8_t *cur = contents.begin(); 1518 while (cur != contents.end()) { 1519 unsigned size; 1520 const char *err; 1521 uint64_t symIndex = decodeULEB128(cur, &size, contents.end(), &err); 1522 if (err) 1523 fatal(toString(f) + ": could not decode addrsig section: " + err); 1524 markAddrsig(syms[symIndex]); 1525 cur += size; 1526 } 1527 } else { 1528 // If an object file does not have an address-significance table, 1529 // conservatively mark all of its symbols as address-significant. 1530 for (Symbol *s : syms) 1531 markAddrsig(s); 1532 } 1533 } 1534 } 1535 1536 // This function reads a symbol partition specification section. These sections 1537 // are used to control which partition a symbol is allocated to. See 1538 // https://lld.llvm.org/Partitions.html for more details on partitions. 1539 template <typename ELFT> 1540 static void readSymbolPartitionSection(InputSectionBase *s) { 1541 // Read the relocation that refers to the partition's entry point symbol. 1542 Symbol *sym; 1543 if (s->areRelocsRela) 1544 sym = &s->getFile<ELFT>()->getRelocTargetSym(s->template relas<ELFT>()[0]); 1545 else 1546 sym = &s->getFile<ELFT>()->getRelocTargetSym(s->template rels<ELFT>()[0]); 1547 if (!isa<Defined>(sym) || !sym->includeInDynsym()) 1548 return; 1549 1550 StringRef partName = reinterpret_cast<const char *>(s->data().data()); 1551 for (Partition &part : partitions) { 1552 if (part.name == partName) { 1553 sym->partition = part.getNumber(); 1554 return; 1555 } 1556 } 1557 1558 // Forbid partitions from being used on incompatible targets, and forbid them 1559 // from being used together with various linker features that assume a single 1560 // set of output sections. 1561 if (script->hasSectionsCommand) 1562 error(toString(s->file) + 1563 ": partitions cannot be used with the SECTIONS command"); 1564 if (script->hasPhdrsCommands()) 1565 error(toString(s->file) + 1566 ": partitions cannot be used with the PHDRS command"); 1567 if (!config->sectionStartMap.empty()) 1568 error(toString(s->file) + ": partitions cannot be used with " 1569 "--section-start, -Ttext, -Tdata or -Tbss"); 1570 if (config->emachine == EM_MIPS) 1571 error(toString(s->file) + ": partitions cannot be used on this target"); 1572 1573 // Impose a limit of no more than 254 partitions. This limit comes from the 1574 // sizes of the Partition fields in InputSectionBase and Symbol, as well as 1575 // the amount of space devoted to the partition number in RankFlags. 1576 if (partitions.size() == 254) 1577 fatal("may not have more than 254 partitions"); 1578 1579 partitions.emplace_back(); 1580 Partition &newPart = partitions.back(); 1581 newPart.name = partName; 1582 sym->partition = newPart.getNumber(); 1583 } 1584 1585 static Symbol *addUndefined(StringRef name) { 1586 return symtab->addSymbol( 1587 Undefined{nullptr, name, STB_GLOBAL, STV_DEFAULT, 0}); 1588 } 1589 1590 // This function is where all the optimizations of link-time 1591 // optimization takes place. When LTO is in use, some input files are 1592 // not in native object file format but in the LLVM bitcode format. 1593 // This function compiles bitcode files into a few big native files 1594 // using LLVM functions and replaces bitcode symbols with the results. 1595 // Because all bitcode files that the program consists of are passed to 1596 // the compiler at once, it can do a whole-program optimization. 1597 template <class ELFT> void LinkerDriver::compileBitcodeFiles() { 1598 // Compile bitcode files and replace bitcode symbols. 1599 lto.reset(new BitcodeCompiler); 1600 for (BitcodeFile *file : bitcodeFiles) 1601 lto->add(*file); 1602 1603 for (InputFile *file : lto->compile()) { 1604 auto *obj = cast<ObjFile<ELFT>>(file); 1605 obj->parse(/*ignoreComdats=*/true); 1606 for (Symbol *sym : obj->getGlobalSymbols()) 1607 sym->parseSymbolVersion(); 1608 objectFiles.push_back(file); 1609 } 1610 } 1611 1612 // The --wrap option is a feature to rename symbols so that you can write 1613 // wrappers for existing functions. If you pass `-wrap=foo`, all 1614 // occurrences of symbol `foo` are resolved to `wrap_foo` (so, you are 1615 // expected to write `wrap_foo` function as a wrapper). The original 1616 // symbol becomes accessible as `real_foo`, so you can call that from your 1617 // wrapper. 1618 // 1619 // This data structure is instantiated for each -wrap option. 1620 struct WrappedSymbol { 1621 Symbol *sym; 1622 Symbol *real; 1623 Symbol *wrap; 1624 }; 1625 1626 // Handles -wrap option. 1627 // 1628 // This function instantiates wrapper symbols. At this point, they seem 1629 // like they are not being used at all, so we explicitly set some flags so 1630 // that LTO won't eliminate them. 1631 static std::vector<WrappedSymbol> addWrappedSymbols(opt::InputArgList &args) { 1632 std::vector<WrappedSymbol> v; 1633 DenseSet<StringRef> seen; 1634 1635 for (auto *arg : args.filtered(OPT_wrap)) { 1636 StringRef name = arg->getValue(); 1637 if (!seen.insert(name).second) 1638 continue; 1639 1640 Symbol *sym = symtab->find(name); 1641 if (!sym) 1642 continue; 1643 1644 Symbol *real = addUndefined(saver.save("__real_" + name)); 1645 Symbol *wrap = addUndefined(saver.save("__wrap_" + name)); 1646 v.push_back({sym, real, wrap}); 1647 1648 // We want to tell LTO not to inline symbols to be overwritten 1649 // because LTO doesn't know the final symbol contents after renaming. 1650 real->canInline = false; 1651 sym->canInline = false; 1652 1653 // Tell LTO not to eliminate these symbols. 1654 sym->isUsedInRegularObj = true; 1655 wrap->isUsedInRegularObj = true; 1656 } 1657 return v; 1658 } 1659 1660 // Do renaming for -wrap by updating pointers to symbols. 1661 // 1662 // When this function is executed, only InputFiles and symbol table 1663 // contain pointers to symbol objects. We visit them to replace pointers, 1664 // so that wrapped symbols are swapped as instructed by the command line. 1665 static void wrapSymbols(ArrayRef<WrappedSymbol> wrapped) { 1666 DenseMap<Symbol *, Symbol *> map; 1667 for (const WrappedSymbol &w : wrapped) { 1668 map[w.sym] = w.wrap; 1669 map[w.real] = w.sym; 1670 } 1671 1672 // Update pointers in input files. 1673 parallelForEach(objectFiles, [&](InputFile *file) { 1674 MutableArrayRef<Symbol *> syms = file->getMutableSymbols(); 1675 for (size_t i = 0, e = syms.size(); i != e; ++i) 1676 if (Symbol *s = map.lookup(syms[i])) 1677 syms[i] = s; 1678 }); 1679 1680 // Update pointers in the symbol table. 1681 for (const WrappedSymbol &w : wrapped) 1682 symtab->wrap(w.sym, w.real, w.wrap); 1683 } 1684 1685 // To enable CET (x86's hardware-assited control flow enforcement), each 1686 // source file must be compiled with -fcf-protection. Object files compiled 1687 // with the flag contain feature flags indicating that they are compatible 1688 // with CET. We enable the feature only when all object files are compatible 1689 // with CET. 1690 // 1691 // This is also the case with AARCH64's BTI and PAC which use the similar 1692 // GNU_PROPERTY_AARCH64_FEATURE_1_AND mechanism. 1693 template <class ELFT> static uint32_t getAndFeatures() { 1694 if (config->emachine != EM_386 && config->emachine != EM_X86_64 && 1695 config->emachine != EM_AARCH64) 1696 return 0; 1697 1698 uint32_t ret = -1; 1699 for (InputFile *f : objectFiles) { 1700 uint32_t features = cast<ObjFile<ELFT>>(f)->andFeatures; 1701 if (config->forceBTI && !(features & GNU_PROPERTY_AARCH64_FEATURE_1_BTI)) { 1702 warn(toString(f) + ": -z force-bti: file does not have BTI property"); 1703 features |= GNU_PROPERTY_AARCH64_FEATURE_1_BTI; 1704 } else if (config->zForceIbt && 1705 !(features & GNU_PROPERTY_X86_FEATURE_1_IBT)) { 1706 warn(toString(f) + ": -z force-ibt: file does not have " 1707 "GNU_PROPERTY_X86_FEATURE_1_IBT property"); 1708 features |= GNU_PROPERTY_X86_FEATURE_1_IBT; 1709 } 1710 ret &= features; 1711 } 1712 1713 // Force enable pointer authentication Plt, we don't warn in this case as 1714 // this does not require support in the object for correctness. 1715 if (config->pacPlt) 1716 ret |= GNU_PROPERTY_AARCH64_FEATURE_1_PAC; 1717 // Force enable Shadow Stack. 1718 if (config->zShstk) 1719 ret |= GNU_PROPERTY_X86_FEATURE_1_SHSTK; 1720 1721 return ret; 1722 } 1723 1724 // Do actual linking. Note that when this function is called, 1725 // all linker scripts have already been parsed. 1726 template <class ELFT> void LinkerDriver::link(opt::InputArgList &args) { 1727 // If a -hash-style option was not given, set to a default value, 1728 // which varies depending on the target. 1729 if (!args.hasArg(OPT_hash_style)) { 1730 if (config->emachine == EM_MIPS) 1731 config->sysvHash = true; 1732 else 1733 config->sysvHash = config->gnuHash = true; 1734 } 1735 1736 // Default output filename is "a.out" by the Unix tradition. 1737 if (config->outputFile.empty()) 1738 config->outputFile = "a.out"; 1739 1740 // Fail early if the output file or map file is not writable. If a user has a 1741 // long link, e.g. due to a large LTO link, they do not wish to run it and 1742 // find that it failed because there was a mistake in their command-line. 1743 if (auto e = tryCreateFile(config->outputFile)) 1744 error("cannot open output file " + config->outputFile + ": " + e.message()); 1745 if (auto e = tryCreateFile(config->mapFile)) 1746 error("cannot open map file " + config->mapFile + ": " + e.message()); 1747 if (errorCount()) 1748 return; 1749 1750 // Use default entry point name if no name was given via the command 1751 // line nor linker scripts. For some reason, MIPS entry point name is 1752 // different from others. 1753 config->warnMissingEntry = 1754 (!config->entry.empty() || (!config->shared && !config->relocatable)); 1755 if (config->entry.empty() && !config->relocatable) 1756 config->entry = (config->emachine == EM_MIPS) ? "__start" : "_start"; 1757 1758 // Handle --trace-symbol. 1759 for (auto *arg : args.filtered(OPT_trace_symbol)) 1760 symtab->insert(arg->getValue())->traced = true; 1761 1762 // Add all files to the symbol table. This will add almost all 1763 // symbols that we need to the symbol table. This process might 1764 // add files to the link, via autolinking, these files are always 1765 // appended to the Files vector. 1766 for (size_t i = 0; i < files.size(); ++i) 1767 parseFile(files[i]); 1768 1769 // Now that we have every file, we can decide if we will need a 1770 // dynamic symbol table. 1771 // We need one if we were asked to export dynamic symbols or if we are 1772 // producing a shared library. 1773 // We also need one if any shared libraries are used and for pie executables 1774 // (probably because the dynamic linker needs it). 1775 config->hasDynSymTab = 1776 !sharedFiles.empty() || config->isPic || config->exportDynamic; 1777 1778 // Some symbols (such as __ehdr_start) are defined lazily only when there 1779 // are undefined symbols for them, so we add these to trigger that logic. 1780 for (StringRef name : script->referencedSymbols) 1781 addUndefined(name); 1782 1783 // Handle the `--undefined <sym>` options. 1784 for (StringRef arg : config->undefined) 1785 if (Symbol *sym = symtab->find(arg)) 1786 handleUndefined(sym); 1787 1788 // If an entry symbol is in a static archive, pull out that file now. 1789 if (Symbol *sym = symtab->find(config->entry)) 1790 handleUndefined(sym); 1791 1792 // Handle the `--undefined-glob <pattern>` options. 1793 for (StringRef pat : args::getStrings(args, OPT_undefined_glob)) 1794 handleUndefinedGlob(pat); 1795 1796 // Mark -init and -fini symbols so that the LTO doesn't eliminate them. 1797 if (Symbol *sym = symtab->find(config->init)) 1798 sym->isUsedInRegularObj = true; 1799 if (Symbol *sym = symtab->find(config->fini)) 1800 sym->isUsedInRegularObj = true; 1801 1802 // If any of our inputs are bitcode files, the LTO code generator may create 1803 // references to certain library functions that might not be explicit in the 1804 // bitcode file's symbol table. If any of those library functions are defined 1805 // in a bitcode file in an archive member, we need to arrange to use LTO to 1806 // compile those archive members by adding them to the link beforehand. 1807 // 1808 // However, adding all libcall symbols to the link can have undesired 1809 // consequences. For example, the libgcc implementation of 1810 // __sync_val_compare_and_swap_8 on 32-bit ARM pulls in an .init_array entry 1811 // that aborts the program if the Linux kernel does not support 64-bit 1812 // atomics, which would prevent the program from running even if it does not 1813 // use 64-bit atomics. 1814 // 1815 // Therefore, we only add libcall symbols to the link before LTO if we have 1816 // to, i.e. if the symbol's definition is in bitcode. Any other required 1817 // libcall symbols will be added to the link after LTO when we add the LTO 1818 // object file to the link. 1819 if (!bitcodeFiles.empty()) 1820 for (auto *s : lto::LTO::getRuntimeLibcallSymbols()) 1821 handleLibcall(s); 1822 1823 // Return if there were name resolution errors. 1824 if (errorCount()) 1825 return; 1826 1827 // Now when we read all script files, we want to finalize order of linker 1828 // script commands, which can be not yet final because of INSERT commands. 1829 script->processInsertCommands(); 1830 1831 // We want to declare linker script's symbols early, 1832 // so that we can version them. 1833 // They also might be exported if referenced by DSOs. 1834 script->declareSymbols(); 1835 1836 // Handle the -exclude-libs option. 1837 if (args.hasArg(OPT_exclude_libs)) 1838 excludeLibs(args); 1839 1840 // Create elfHeader early. We need a dummy section in 1841 // addReservedSymbols to mark the created symbols as not absolute. 1842 Out::elfHeader = make<OutputSection>("", 0, SHF_ALLOC); 1843 Out::elfHeader->size = sizeof(typename ELFT::Ehdr); 1844 1845 // Create wrapped symbols for -wrap option. 1846 std::vector<WrappedSymbol> wrapped = addWrappedSymbols(args); 1847 1848 // We need to create some reserved symbols such as _end. Create them. 1849 if (!config->relocatable) 1850 addReservedSymbols(); 1851 1852 // Apply version scripts. 1853 // 1854 // For a relocatable output, version scripts don't make sense, and 1855 // parsing a symbol version string (e.g. dropping "@ver1" from a symbol 1856 // name "foo@ver1") rather do harm, so we don't call this if -r is given. 1857 if (!config->relocatable) 1858 symtab->scanVersionScript(); 1859 1860 // Do link-time optimization if given files are LLVM bitcode files. 1861 // This compiles bitcode files into real object files. 1862 // 1863 // With this the symbol table should be complete. After this, no new names 1864 // except a few linker-synthesized ones will be added to the symbol table. 1865 compileBitcodeFiles<ELFT>(); 1866 if (errorCount()) 1867 return; 1868 1869 // If -thinlto-index-only is given, we should create only "index 1870 // files" and not object files. Index file creation is already done 1871 // in addCombinedLTOObject, so we are done if that's the case. 1872 if (config->thinLTOIndexOnly) 1873 return; 1874 1875 // Likewise, --plugin-opt=emit-llvm is an option to make LTO create 1876 // an output file in bitcode and exit, so that you can just get a 1877 // combined bitcode file. 1878 if (config->emitLLVM) 1879 return; 1880 1881 // Apply symbol renames for -wrap. 1882 if (!wrapped.empty()) 1883 wrapSymbols(wrapped); 1884 1885 // Now that we have a complete list of input files. 1886 // Beyond this point, no new files are added. 1887 // Aggregate all input sections into one place. 1888 for (InputFile *f : objectFiles) 1889 for (InputSectionBase *s : f->getSections()) 1890 if (s && s != &InputSection::discarded) 1891 inputSections.push_back(s); 1892 for (BinaryFile *f : binaryFiles) 1893 for (InputSectionBase *s : f->getSections()) 1894 inputSections.push_back(cast<InputSection>(s)); 1895 1896 llvm::erase_if(inputSections, [](InputSectionBase *s) { 1897 if (s->type == SHT_LLVM_SYMPART) { 1898 readSymbolPartitionSection<ELFT>(s); 1899 return true; 1900 } 1901 1902 // We do not want to emit debug sections if --strip-all 1903 // or -strip-debug are given. 1904 return config->strip != StripPolicy::None && 1905 (s->name.startswith(".debug") || s->name.startswith(".zdebug")); 1906 }); 1907 1908 // Now that the number of partitions is fixed, save a pointer to the main 1909 // partition. 1910 mainPart = &partitions[0]; 1911 1912 // Read .note.gnu.property sections from input object files which 1913 // contain a hint to tweak linker's and loader's behaviors. 1914 config->andFeatures = getAndFeatures<ELFT>(); 1915 1916 // The Target instance handles target-specific stuff, such as applying 1917 // relocations or writing a PLT section. It also contains target-dependent 1918 // values such as a default image base address. 1919 target = getTarget(); 1920 1921 config->eflags = target->calcEFlags(); 1922 // maxPageSize (sometimes called abi page size) is the maximum page size that 1923 // the output can be run on. For example if the OS can use 4k or 64k page 1924 // sizes then maxPageSize must be 64k for the output to be useable on both. 1925 // All important alignment decisions must use this value. 1926 config->maxPageSize = getMaxPageSize(args); 1927 // commonPageSize is the most common page size that the output will be run on. 1928 // For example if an OS can use 4k or 64k page sizes and 4k is more common 1929 // than 64k then commonPageSize is set to 4k. commonPageSize can be used for 1930 // optimizations such as DATA_SEGMENT_ALIGN in linker scripts. LLD's use of it 1931 // is limited to writing trap instructions on the last executable segment. 1932 config->commonPageSize = getCommonPageSize(args); 1933 1934 config->imageBase = getImageBase(args); 1935 1936 if (config->emachine == EM_ARM) { 1937 // FIXME: These warnings can be removed when lld only uses these features 1938 // when the input objects have been compiled with an architecture that 1939 // supports them. 1940 if (config->armHasBlx == false) 1941 warn("lld uses blx instruction, no object with architecture supporting " 1942 "feature detected"); 1943 } 1944 1945 // This adds a .comment section containing a version string. 1946 if (!config->relocatable) 1947 inputSections.push_back(createCommentSection()); 1948 1949 // Replace common symbols with regular symbols. 1950 replaceCommonSymbols(); 1951 1952 // Split SHF_MERGE and .eh_frame sections into pieces in preparation for garbage collection. 1953 splitSections<ELFT>(); 1954 1955 // Garbage collection and removal of shared symbols from unused shared objects. 1956 markLive<ELFT>(); 1957 demoteSharedSymbols(); 1958 1959 // Make copies of any input sections that need to be copied into each 1960 // partition. 1961 copySectionsIntoPartitions(); 1962 1963 // Create synthesized sections such as .got and .plt. This is called before 1964 // processSectionCommands() so that they can be placed by SECTIONS commands. 1965 createSyntheticSections<ELFT>(); 1966 1967 // Some input sections that are used for exception handling need to be moved 1968 // into synthetic sections. Do that now so that they aren't assigned to 1969 // output sections in the usual way. 1970 if (!config->relocatable) 1971 combineEhSections(); 1972 1973 // Create output sections described by SECTIONS commands. 1974 script->processSectionCommands(); 1975 1976 // Linker scripts control how input sections are assigned to output sections. 1977 // Input sections that were not handled by scripts are called "orphans", and 1978 // they are assigned to output sections by the default rule. Process that. 1979 script->addOrphanSections(); 1980 1981 // Migrate InputSectionDescription::sectionBases to sections. This includes 1982 // merging MergeInputSections into a single MergeSyntheticSection. From this 1983 // point onwards InputSectionDescription::sections should be used instead of 1984 // sectionBases. 1985 for (BaseCommand *base : script->sectionCommands) 1986 if (auto *sec = dyn_cast<OutputSection>(base)) 1987 sec->finalizeInputSections(); 1988 llvm::erase_if(inputSections, 1989 [](InputSectionBase *s) { return isa<MergeInputSection>(s); }); 1990 1991 // Two input sections with different output sections should not be folded. 1992 // ICF runs after processSectionCommands() so that we know the output sections. 1993 if (config->icf != ICFLevel::None) { 1994 findKeepUniqueSections<ELFT>(args); 1995 doIcf<ELFT>(); 1996 } 1997 1998 // Read the callgraph now that we know what was gced or icfed 1999 if (config->callGraphProfileSort) { 2000 if (auto *arg = args.getLastArg(OPT_call_graph_ordering_file)) 2001 if (Optional<MemoryBufferRef> buffer = readFile(arg->getValue())) 2002 readCallGraph(*buffer); 2003 readCallGraphsFromObjectFiles<ELFT>(); 2004 } 2005 2006 // Write the result to the file. 2007 writeResult<ELFT>(); 2008 } 2009 2010 } // namespace elf 2011 } // namespace lld 2012