1 //===- Writer.cpp ---------------------------------------------------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 9 #include "Writer.h" 10 #include "AArch64ErrataFix.h" 11 #include "ARMErrataFix.h" 12 #include "CallGraphSort.h" 13 #include "Config.h" 14 #include "LinkerScript.h" 15 #include "MapFile.h" 16 #include "OutputSections.h" 17 #include "Relocations.h" 18 #include "SymbolTable.h" 19 #include "Symbols.h" 20 #include "SyntheticSections.h" 21 #include "Target.h" 22 #include "lld/Common/Arrays.h" 23 #include "lld/Common/Filesystem.h" 24 #include "lld/Common/Memory.h" 25 #include "lld/Common/Strings.h" 26 #include "llvm/ADT/StringMap.h" 27 #include "llvm/ADT/StringSwitch.h" 28 #include "llvm/Support/Parallel.h" 29 #include "llvm/Support/RandomNumberGenerator.h" 30 #include "llvm/Support/SHA1.h" 31 #include "llvm/Support/TimeProfiler.h" 32 #include "llvm/Support/xxhash.h" 33 #include <climits> 34 35 #define DEBUG_TYPE "lld" 36 37 using namespace llvm; 38 using namespace llvm::ELF; 39 using namespace llvm::object; 40 using namespace llvm::support; 41 using namespace llvm::support::endian; 42 using namespace lld; 43 using namespace lld::elf; 44 45 namespace { 46 // The writer writes a SymbolTable result to a file. 47 template <class ELFT> class Writer { 48 public: 49 LLVM_ELF_IMPORT_TYPES_ELFT(ELFT) 50 51 Writer() : buffer(errorHandler().outputBuffer) {} 52 53 void run(); 54 55 private: 56 void copyLocalSymbols(); 57 void addSectionSymbols(); 58 void forEachRelSec(llvm::function_ref<void(InputSectionBase &)> fn); 59 void sortSections(); 60 void resolveShfLinkOrder(); 61 void finalizeAddressDependentContent(); 62 void optimizeBasicBlockJumps(); 63 void sortInputSections(); 64 void finalizeSections(); 65 void checkExecuteOnly(); 66 void setReservedSymbolSections(); 67 68 std::vector<PhdrEntry *> createPhdrs(Partition &part); 69 void addPhdrForSection(Partition &part, unsigned shType, unsigned pType, 70 unsigned pFlags); 71 void assignFileOffsets(); 72 void assignFileOffsetsBinary(); 73 void setPhdrs(Partition &part); 74 void checkSections(); 75 void fixSectionAlignments(); 76 void openFile(); 77 void writeTrapInstr(); 78 void writeHeader(); 79 void writeSections(); 80 void writeSectionsBinary(); 81 void writeBuildId(); 82 83 std::unique_ptr<FileOutputBuffer> &buffer; 84 85 void addRelIpltSymbols(); 86 void addStartEndSymbols(); 87 void addStartStopSymbols(OutputSection *sec); 88 89 uint64_t fileSize; 90 uint64_t sectionHeaderOff; 91 }; 92 } // anonymous namespace 93 94 static bool needsInterpSection() { 95 return !config->relocatable && !config->shared && 96 !config->dynamicLinker.empty() && script->needsInterpSection(); 97 } 98 99 template <class ELFT> void elf::writeResult() { 100 Writer<ELFT>().run(); 101 } 102 103 static void removeEmptyPTLoad(std::vector<PhdrEntry *> &phdrs) { 104 auto it = std::stable_partition( 105 phdrs.begin(), phdrs.end(), [&](const PhdrEntry *p) { 106 if (p->p_type != PT_LOAD) 107 return true; 108 if (!p->firstSec) 109 return false; 110 uint64_t size = p->lastSec->addr + p->lastSec->size - p->firstSec->addr; 111 return size != 0; 112 }); 113 114 // Clear OutputSection::ptLoad for sections contained in removed 115 // segments. 116 DenseSet<PhdrEntry *> removed(it, phdrs.end()); 117 for (OutputSection *sec : outputSections) 118 if (removed.count(sec->ptLoad)) 119 sec->ptLoad = nullptr; 120 phdrs.erase(it, phdrs.end()); 121 } 122 123 void elf::copySectionsIntoPartitions() { 124 std::vector<InputSectionBase *> newSections; 125 for (unsigned part = 2; part != partitions.size() + 1; ++part) { 126 for (InputSectionBase *s : inputSections) { 127 if (!(s->flags & SHF_ALLOC) || !s->isLive()) 128 continue; 129 InputSectionBase *copy; 130 if (s->type == SHT_NOTE) 131 copy = make<InputSection>(cast<InputSection>(*s)); 132 else if (auto *es = dyn_cast<EhInputSection>(s)) 133 copy = make<EhInputSection>(*es); 134 else 135 continue; 136 copy->partition = part; 137 newSections.push_back(copy); 138 } 139 } 140 141 inputSections.insert(inputSections.end(), newSections.begin(), 142 newSections.end()); 143 } 144 145 void elf::combineEhSections() { 146 llvm::TimeTraceScope timeScope("Combine EH sections"); 147 for (InputSectionBase *&s : inputSections) { 148 // Ignore dead sections and the partition end marker (.part.end), 149 // whose partition number is out of bounds. 150 if (!s->isLive() || s->partition == 255) 151 continue; 152 153 Partition &part = s->getPartition(); 154 if (auto *es = dyn_cast<EhInputSection>(s)) { 155 part.ehFrame->addSection(es); 156 s = nullptr; 157 } else if (s->kind() == SectionBase::Regular && part.armExidx && 158 part.armExidx->addSection(cast<InputSection>(s))) { 159 s = nullptr; 160 } 161 } 162 163 llvm::erase_value(inputSections, nullptr); 164 } 165 166 static Defined *addOptionalRegular(StringRef name, SectionBase *sec, 167 uint64_t val, uint8_t stOther = STV_HIDDEN) { 168 Symbol *s = symtab->find(name); 169 if (!s || s->isDefined()) 170 return nullptr; 171 172 s->resolve(Defined{/*file=*/nullptr, name, STB_GLOBAL, stOther, STT_NOTYPE, 173 val, 174 /*size=*/0, sec}); 175 return cast<Defined>(s); 176 } 177 178 static Defined *addAbsolute(StringRef name) { 179 Symbol *sym = symtab->addSymbol(Defined{nullptr, name, STB_GLOBAL, STV_HIDDEN, 180 STT_NOTYPE, 0, 0, nullptr}); 181 return cast<Defined>(sym); 182 } 183 184 // The linker is expected to define some symbols depending on 185 // the linking result. This function defines such symbols. 186 void elf::addReservedSymbols() { 187 if (config->emachine == EM_MIPS) { 188 // Define _gp for MIPS. st_value of _gp symbol will be updated by Writer 189 // so that it points to an absolute address which by default is relative 190 // to GOT. Default offset is 0x7ff0. 191 // See "Global Data Symbols" in Chapter 6 in the following document: 192 // ftp://www.linux-mips.org/pub/linux/mips/doc/ABI/mipsabi.pdf 193 ElfSym::mipsGp = addAbsolute("_gp"); 194 195 // On MIPS O32 ABI, _gp_disp is a magic symbol designates offset between 196 // start of function and 'gp' pointer into GOT. 197 if (symtab->find("_gp_disp")) 198 ElfSym::mipsGpDisp = addAbsolute("_gp_disp"); 199 200 // The __gnu_local_gp is a magic symbol equal to the current value of 'gp' 201 // pointer. This symbol is used in the code generated by .cpload pseudo-op 202 // in case of using -mno-shared option. 203 // https://sourceware.org/ml/binutils/2004-12/msg00094.html 204 if (symtab->find("__gnu_local_gp")) 205 ElfSym::mipsLocalGp = addAbsolute("__gnu_local_gp"); 206 } else if (config->emachine == EM_PPC) { 207 // glibc *crt1.o has a undefined reference to _SDA_BASE_. Since we don't 208 // support Small Data Area, define it arbitrarily as 0. 209 addOptionalRegular("_SDA_BASE_", nullptr, 0, STV_HIDDEN); 210 } else if (config->emachine == EM_PPC64) { 211 addPPC64SaveRestore(); 212 } 213 214 // The Power Architecture 64-bit v2 ABI defines a TableOfContents (TOC) which 215 // combines the typical ELF GOT with the small data sections. It commonly 216 // includes .got .toc .sdata .sbss. The .TOC. symbol replaces both 217 // _GLOBAL_OFFSET_TABLE_ and _SDA_BASE_ from the 32-bit ABI. It is used to 218 // represent the TOC base which is offset by 0x8000 bytes from the start of 219 // the .got section. 220 // We do not allow _GLOBAL_OFFSET_TABLE_ to be defined by input objects as the 221 // correctness of some relocations depends on its value. 222 StringRef gotSymName = 223 (config->emachine == EM_PPC64) ? ".TOC." : "_GLOBAL_OFFSET_TABLE_"; 224 225 if (Symbol *s = symtab->find(gotSymName)) { 226 if (s->isDefined()) { 227 error(toString(s->file) + " cannot redefine linker defined symbol '" + 228 gotSymName + "'"); 229 return; 230 } 231 232 uint64_t gotOff = 0; 233 if (config->emachine == EM_PPC64) 234 gotOff = 0x8000; 235 236 s->resolve(Defined{/*file=*/nullptr, gotSymName, STB_GLOBAL, STV_HIDDEN, 237 STT_NOTYPE, gotOff, /*size=*/0, Out::elfHeader}); 238 ElfSym::globalOffsetTable = cast<Defined>(s); 239 } 240 241 // __ehdr_start is the location of ELF file headers. Note that we define 242 // this symbol unconditionally even when using a linker script, which 243 // differs from the behavior implemented by GNU linker which only define 244 // this symbol if ELF headers are in the memory mapped segment. 245 addOptionalRegular("__ehdr_start", Out::elfHeader, 0, STV_HIDDEN); 246 247 // __executable_start is not documented, but the expectation of at 248 // least the Android libc is that it points to the ELF header. 249 addOptionalRegular("__executable_start", Out::elfHeader, 0, STV_HIDDEN); 250 251 // __dso_handle symbol is passed to cxa_finalize as a marker to identify 252 // each DSO. The address of the symbol doesn't matter as long as they are 253 // different in different DSOs, so we chose the start address of the DSO. 254 addOptionalRegular("__dso_handle", Out::elfHeader, 0, STV_HIDDEN); 255 256 // If linker script do layout we do not need to create any standard symbols. 257 if (script->hasSectionsCommand) 258 return; 259 260 auto add = [](StringRef s, int64_t pos) { 261 return addOptionalRegular(s, Out::elfHeader, pos, STV_DEFAULT); 262 }; 263 264 ElfSym::bss = add("__bss_start", 0); 265 ElfSym::end1 = add("end", -1); 266 ElfSym::end2 = add("_end", -1); 267 ElfSym::etext1 = add("etext", -1); 268 ElfSym::etext2 = add("_etext", -1); 269 ElfSym::edata1 = add("edata", -1); 270 ElfSym::edata2 = add("_edata", -1); 271 } 272 273 static OutputSection *findSection(StringRef name, unsigned partition = 1) { 274 for (SectionCommand *cmd : script->sectionCommands) 275 if (auto *sec = dyn_cast<OutputSection>(cmd)) 276 if (sec->name == name && sec->partition == partition) 277 return sec; 278 return nullptr; 279 } 280 281 template <class ELFT> void elf::createSyntheticSections() { 282 // Initialize all pointers with NULL. This is needed because 283 // you can call lld::elf::main more than once as a library. 284 Out::tlsPhdr = nullptr; 285 Out::preinitArray = nullptr; 286 Out::initArray = nullptr; 287 Out::finiArray = nullptr; 288 289 // Add the .interp section first because it is not a SyntheticSection. 290 // The removeUnusedSyntheticSections() function relies on the 291 // SyntheticSections coming last. 292 if (needsInterpSection()) { 293 for (size_t i = 1; i <= partitions.size(); ++i) { 294 InputSection *sec = createInterpSection(); 295 sec->partition = i; 296 inputSections.push_back(sec); 297 } 298 } 299 300 auto add = [](SyntheticSection &sec) { inputSections.push_back(&sec); }; 301 302 in.shStrTab = make<StringTableSection>(".shstrtab", false); 303 304 Out::programHeaders = make<OutputSection>("", 0, SHF_ALLOC); 305 Out::programHeaders->alignment = config->wordsize; 306 307 if (config->strip != StripPolicy::All) { 308 in.strTab = make<StringTableSection>(".strtab", false); 309 in.symTab = make<SymbolTableSection<ELFT>>(*in.strTab); 310 in.symTabShndx = make<SymtabShndxSection>(); 311 } 312 313 in.bss = make<BssSection>(".bss", 0, 1); 314 add(*in.bss); 315 316 // If there is a SECTIONS command and a .data.rel.ro section name use name 317 // .data.rel.ro.bss so that we match in the .data.rel.ro output section. 318 // This makes sure our relro is contiguous. 319 bool hasDataRelRo = 320 script->hasSectionsCommand && findSection(".data.rel.ro", 0); 321 in.bssRelRo = 322 make<BssSection>(hasDataRelRo ? ".data.rel.ro.bss" : ".bss.rel.ro", 0, 1); 323 add(*in.bssRelRo); 324 325 // Add MIPS-specific sections. 326 if (config->emachine == EM_MIPS) { 327 if (!config->shared && config->hasDynSymTab) { 328 in.mipsRldMap = make<MipsRldMapSection>(); 329 add(*in.mipsRldMap); 330 } 331 if (auto *sec = MipsAbiFlagsSection<ELFT>::create()) 332 add(*sec); 333 if (auto *sec = MipsOptionsSection<ELFT>::create()) 334 add(*sec); 335 if (auto *sec = MipsReginfoSection<ELFT>::create()) 336 add(*sec); 337 } 338 339 StringRef relaDynName = config->isRela ? ".rela.dyn" : ".rel.dyn"; 340 341 for (Partition &part : partitions) { 342 auto add = [&](SyntheticSection &sec) { 343 sec.partition = part.getNumber(); 344 inputSections.push_back(&sec); 345 }; 346 347 if (!part.name.empty()) { 348 part.elfHeader = make<PartitionElfHeaderSection<ELFT>>(); 349 part.elfHeader->name = part.name; 350 add(*part.elfHeader); 351 352 part.programHeaders = make<PartitionProgramHeadersSection<ELFT>>(); 353 add(*part.programHeaders); 354 } 355 356 if (config->buildId != BuildIdKind::None) { 357 part.buildId = make<BuildIdSection>(); 358 add(*part.buildId); 359 } 360 361 part.dynStrTab = make<StringTableSection>(".dynstr", true); 362 part.dynSymTab = make<SymbolTableSection<ELFT>>(*part.dynStrTab); 363 part.dynamic = make<DynamicSection<ELFT>>(); 364 if (config->androidPackDynRelocs) 365 part.relaDyn = make<AndroidPackedRelocationSection<ELFT>>(relaDynName); 366 else 367 part.relaDyn = 368 make<RelocationSection<ELFT>>(relaDynName, config->zCombreloc); 369 370 if (config->hasDynSymTab) { 371 add(*part.dynSymTab); 372 373 part.verSym = make<VersionTableSection>(); 374 add(*part.verSym); 375 376 if (!namedVersionDefs().empty()) { 377 part.verDef = make<VersionDefinitionSection>(); 378 add(*part.verDef); 379 } 380 381 part.verNeed = make<VersionNeedSection<ELFT>>(); 382 add(*part.verNeed); 383 384 if (config->gnuHash) { 385 part.gnuHashTab = make<GnuHashTableSection>(); 386 add(*part.gnuHashTab); 387 } 388 389 if (config->sysvHash) { 390 part.hashTab = make<HashTableSection>(); 391 add(*part.hashTab); 392 } 393 394 add(*part.dynamic); 395 add(*part.dynStrTab); 396 add(*part.relaDyn); 397 } 398 399 if (config->relrPackDynRelocs) { 400 part.relrDyn = make<RelrSection<ELFT>>(); 401 add(*part.relrDyn); 402 } 403 404 if (!config->relocatable) { 405 if (config->ehFrameHdr) { 406 part.ehFrameHdr = make<EhFrameHeader>(); 407 add(*part.ehFrameHdr); 408 } 409 part.ehFrame = make<EhFrameSection>(); 410 add(*part.ehFrame); 411 } 412 413 if (config->emachine == EM_ARM && !config->relocatable) { 414 // The ARMExidxsyntheticsection replaces all the individual .ARM.exidx 415 // InputSections. 416 part.armExidx = make<ARMExidxSyntheticSection>(); 417 add(*part.armExidx); 418 } 419 } 420 421 if (partitions.size() != 1) { 422 // Create the partition end marker. This needs to be in partition number 255 423 // so that it is sorted after all other partitions. It also has other 424 // special handling (see createPhdrs() and combineEhSections()). 425 in.partEnd = make<BssSection>(".part.end", config->maxPageSize, 1); 426 in.partEnd->partition = 255; 427 add(*in.partEnd); 428 429 in.partIndex = make<PartitionIndexSection>(); 430 addOptionalRegular("__part_index_begin", in.partIndex, 0); 431 addOptionalRegular("__part_index_end", in.partIndex, 432 in.partIndex->getSize()); 433 add(*in.partIndex); 434 } 435 436 // Add .got. MIPS' .got is so different from the other archs, 437 // it has its own class. 438 if (config->emachine == EM_MIPS) { 439 in.mipsGot = make<MipsGotSection>(); 440 add(*in.mipsGot); 441 } else { 442 in.got = make<GotSection>(); 443 add(*in.got); 444 } 445 446 if (config->emachine == EM_PPC) { 447 in.ppc32Got2 = make<PPC32Got2Section>(); 448 add(*in.ppc32Got2); 449 } 450 451 if (config->emachine == EM_PPC64) { 452 in.ppc64LongBranchTarget = make<PPC64LongBranchTargetSection>(); 453 add(*in.ppc64LongBranchTarget); 454 } 455 456 in.gotPlt = make<GotPltSection>(); 457 add(*in.gotPlt); 458 in.igotPlt = make<IgotPltSection>(); 459 add(*in.igotPlt); 460 461 // _GLOBAL_OFFSET_TABLE_ is defined relative to either .got.plt or .got. Treat 462 // it as a relocation and ensure the referenced section is created. 463 if (ElfSym::globalOffsetTable && config->emachine != EM_MIPS) { 464 if (target->gotBaseSymInGotPlt) 465 in.gotPlt->hasGotPltOffRel = true; 466 else 467 in.got->hasGotOffRel = true; 468 } 469 470 if (config->gdbIndex) 471 add(*GdbIndexSection::create<ELFT>()); 472 473 // We always need to add rel[a].plt to output if it has entries. 474 // Even for static linking it can contain R_[*]_IRELATIVE relocations. 475 in.relaPlt = make<RelocationSection<ELFT>>( 476 config->isRela ? ".rela.plt" : ".rel.plt", /*sort=*/false); 477 add(*in.relaPlt); 478 479 // The relaIplt immediately follows .rel[a].dyn to ensure that the IRelative 480 // relocations are processed last by the dynamic loader. We cannot place the 481 // iplt section in .rel.dyn when Android relocation packing is enabled because 482 // that would cause a section type mismatch. However, because the Android 483 // dynamic loader reads .rel.plt after .rel.dyn, we can get the desired 484 // behaviour by placing the iplt section in .rel.plt. 485 in.relaIplt = make<RelocationSection<ELFT>>( 486 config->androidPackDynRelocs ? in.relaPlt->name : relaDynName, 487 /*sort=*/false); 488 add(*in.relaIplt); 489 490 if ((config->emachine == EM_386 || config->emachine == EM_X86_64) && 491 (config->andFeatures & GNU_PROPERTY_X86_FEATURE_1_IBT)) { 492 in.ibtPlt = make<IBTPltSection>(); 493 add(*in.ibtPlt); 494 } 495 496 in.plt = config->emachine == EM_PPC ? make<PPC32GlinkSection>() 497 : make<PltSection>(); 498 add(*in.plt); 499 in.iplt = make<IpltSection>(); 500 add(*in.iplt); 501 502 if (config->andFeatures) 503 add(*make<GnuPropertySection>()); 504 505 // .note.GNU-stack is always added when we are creating a re-linkable 506 // object file. Other linkers are using the presence of this marker 507 // section to control the executable-ness of the stack area, but that 508 // is irrelevant these days. Stack area should always be non-executable 509 // by default. So we emit this section unconditionally. 510 if (config->relocatable) 511 add(*make<GnuStackSection>()); 512 513 if (in.symTab) 514 add(*in.symTab); 515 if (in.symTabShndx) 516 add(*in.symTabShndx); 517 add(*in.shStrTab); 518 if (in.strTab) 519 add(*in.strTab); 520 } 521 522 // The main function of the writer. 523 template <class ELFT> void Writer<ELFT>::run() { 524 copyLocalSymbols(); 525 526 if (config->copyRelocs) 527 addSectionSymbols(); 528 529 // Now that we have a complete set of output sections. This function 530 // completes section contents. For example, we need to add strings 531 // to the string table, and add entries to .got and .plt. 532 // finalizeSections does that. 533 finalizeSections(); 534 checkExecuteOnly(); 535 if (errorCount()) 536 return; 537 538 // If --compressed-debug-sections is specified, compress .debug_* sections. 539 // Do it right now because it changes the size of output sections. 540 for (OutputSection *sec : outputSections) 541 sec->maybeCompress<ELFT>(); 542 543 if (script->hasSectionsCommand) 544 script->allocateHeaders(mainPart->phdrs); 545 546 // Remove empty PT_LOAD to avoid causing the dynamic linker to try to mmap a 547 // 0 sized region. This has to be done late since only after assignAddresses 548 // we know the size of the sections. 549 for (Partition &part : partitions) 550 removeEmptyPTLoad(part.phdrs); 551 552 if (!config->oFormatBinary) 553 assignFileOffsets(); 554 else 555 assignFileOffsetsBinary(); 556 557 for (Partition &part : partitions) 558 setPhdrs(part); 559 560 if (config->relocatable) 561 for (OutputSection *sec : outputSections) 562 sec->addr = 0; 563 564 // Handle --print-map(-M)/--Map, --why-extract=, --cref and 565 // --print-archive-stats=. Dump them before checkSections() because the files 566 // may be useful in case checkSections() or openFile() fails, for example, due 567 // to an erroneous file size. 568 writeMapAndCref(); 569 writeWhyExtract(); 570 writeArchiveStats(); 571 572 if (config->checkSections) 573 checkSections(); 574 575 // It does not make sense try to open the file if we have error already. 576 if (errorCount()) 577 return; 578 579 { 580 llvm::TimeTraceScope timeScope("Write output file"); 581 // Write the result down to a file. 582 openFile(); 583 if (errorCount()) 584 return; 585 586 if (!config->oFormatBinary) { 587 if (config->zSeparate != SeparateSegmentKind::None) 588 writeTrapInstr(); 589 writeHeader(); 590 writeSections(); 591 } else { 592 writeSectionsBinary(); 593 } 594 595 // Backfill .note.gnu.build-id section content. This is done at last 596 // because the content is usually a hash value of the entire output file. 597 writeBuildId(); 598 if (errorCount()) 599 return; 600 601 if (auto e = buffer->commit()) 602 error("failed to write to the output file: " + toString(std::move(e))); 603 } 604 } 605 606 template <class ELFT, class RelTy> 607 static void markUsedLocalSymbolsImpl(ObjFile<ELFT> *file, 608 llvm::ArrayRef<RelTy> rels) { 609 for (const RelTy &rel : rels) { 610 Symbol &sym = file->getRelocTargetSym(rel); 611 if (sym.isLocal()) 612 sym.used = true; 613 } 614 } 615 616 // The function ensures that the "used" field of local symbols reflects the fact 617 // that the symbol is used in a relocation from a live section. 618 template <class ELFT> static void markUsedLocalSymbols() { 619 // With --gc-sections, the field is already filled. 620 // See MarkLive<ELFT>::resolveReloc(). 621 if (config->gcSections) 622 return; 623 // Without --gc-sections, the field is initialized with "true". 624 // Drop the flag first and then rise for symbols referenced in relocations. 625 for (ELFFileBase *file : objectFiles) { 626 ObjFile<ELFT> *f = cast<ObjFile<ELFT>>(file); 627 for (Symbol *b : f->getLocalSymbols()) 628 b->used = false; 629 for (InputSectionBase *s : f->getSections()) { 630 InputSection *isec = dyn_cast_or_null<InputSection>(s); 631 if (!isec) 632 continue; 633 if (isec->type == SHT_REL) 634 markUsedLocalSymbolsImpl(f, isec->getDataAs<typename ELFT::Rel>()); 635 else if (isec->type == SHT_RELA) 636 markUsedLocalSymbolsImpl(f, isec->getDataAs<typename ELFT::Rela>()); 637 } 638 } 639 } 640 641 static bool shouldKeepInSymtab(const Defined &sym) { 642 if (sym.isSection()) 643 return false; 644 645 // If --emit-reloc or -r is given, preserve symbols referenced by relocations 646 // from live sections. 647 if (config->copyRelocs && sym.used) 648 return true; 649 650 // Exclude local symbols pointing to .ARM.exidx sections. 651 // They are probably mapping symbols "$d", which are optional for these 652 // sections. After merging the .ARM.exidx sections, some of these symbols 653 // may become dangling. The easiest way to avoid the issue is not to add 654 // them to the symbol table from the beginning. 655 if (config->emachine == EM_ARM && sym.section && 656 sym.section->type == SHT_ARM_EXIDX) 657 return false; 658 659 if (config->discard == DiscardPolicy::None) 660 return true; 661 if (config->discard == DiscardPolicy::All) 662 return false; 663 664 // In ELF assembly .L symbols are normally discarded by the assembler. 665 // If the assembler fails to do so, the linker discards them if 666 // * --discard-locals is used. 667 // * The symbol is in a SHF_MERGE section, which is normally the reason for 668 // the assembler keeping the .L symbol. 669 if (sym.getName().startswith(".L") && 670 (config->discard == DiscardPolicy::Locals || 671 (sym.section && (sym.section->flags & SHF_MERGE)))) 672 return false; 673 return true; 674 } 675 676 static bool includeInSymtab(const Symbol &b) { 677 if (auto *d = dyn_cast<Defined>(&b)) { 678 // Always include absolute symbols. 679 SectionBase *sec = d->section; 680 if (!sec) 681 return true; 682 sec = sec->repl; 683 684 // Exclude symbols pointing to garbage-collected sections. 685 if (isa<InputSectionBase>(sec) && !sec->isLive()) 686 return false; 687 688 if (auto *s = dyn_cast<MergeInputSection>(sec)) 689 if (!s->getSectionPiece(d->value)->live) 690 return false; 691 return true; 692 } 693 return b.used; 694 } 695 696 // Local symbols are not in the linker's symbol table. This function scans 697 // each object file's symbol table to copy local symbols to the output. 698 template <class ELFT> void Writer<ELFT>::copyLocalSymbols() { 699 if (!in.symTab) 700 return; 701 llvm::TimeTraceScope timeScope("Add local symbols"); 702 if (config->copyRelocs && config->discard != DiscardPolicy::None) 703 markUsedLocalSymbols<ELFT>(); 704 for (ELFFileBase *file : objectFiles) { 705 for (Symbol *b : file->getLocalSymbols()) { 706 assert(b->isLocal() && "should have been caught in initializeSymbols()"); 707 auto *dr = dyn_cast<Defined>(b); 708 709 // No reason to keep local undefined symbol in symtab. 710 if (!dr) 711 continue; 712 if (includeInSymtab(*b) && shouldKeepInSymtab(*dr)) 713 in.symTab->addSymbol(b); 714 } 715 } 716 } 717 718 // Create a section symbol for each output section so that we can represent 719 // relocations that point to the section. If we know that no relocation is 720 // referring to a section (that happens if the section is a synthetic one), we 721 // don't create a section symbol for that section. 722 template <class ELFT> void Writer<ELFT>::addSectionSymbols() { 723 for (SectionCommand *cmd : script->sectionCommands) { 724 auto *sec = dyn_cast<OutputSection>(cmd); 725 if (!sec) 726 continue; 727 auto i = llvm::find_if(sec->commands, [](SectionCommand *cmd) { 728 if (auto *isd = dyn_cast<InputSectionDescription>(cmd)) 729 return !isd->sections.empty(); 730 return false; 731 }); 732 if (i == sec->commands.end()) 733 continue; 734 InputSectionBase *isec = cast<InputSectionDescription>(*i)->sections[0]; 735 736 // Relocations are not using REL[A] section symbols. 737 if (isec->type == SHT_REL || isec->type == SHT_RELA) 738 continue; 739 740 // Unlike other synthetic sections, mergeable output sections contain data 741 // copied from input sections, and there may be a relocation pointing to its 742 // contents if -r or --emit-reloc is given. 743 if (isa<SyntheticSection>(isec) && !(isec->flags & SHF_MERGE)) 744 continue; 745 746 // Set the symbol to be relative to the output section so that its st_value 747 // equals the output section address. Note, there may be a gap between the 748 // start of the output section and isec. 749 in.symTab->addSymbol( 750 makeDefined(isec->file, "", STB_LOCAL, /*stOther=*/0, STT_SECTION, 751 /*value=*/0, /*size=*/0, isec->getOutputSection())); 752 } 753 } 754 755 // Today's loaders have a feature to make segments read-only after 756 // processing dynamic relocations to enhance security. PT_GNU_RELRO 757 // is defined for that. 758 // 759 // This function returns true if a section needs to be put into a 760 // PT_GNU_RELRO segment. 761 static bool isRelroSection(const OutputSection *sec) { 762 if (!config->zRelro) 763 return false; 764 765 uint64_t flags = sec->flags; 766 767 // Non-allocatable or non-writable sections don't need RELRO because 768 // they are not writable or not even mapped to memory in the first place. 769 // RELRO is for sections that are essentially read-only but need to 770 // be writable only at process startup to allow dynamic linker to 771 // apply relocations. 772 if (!(flags & SHF_ALLOC) || !(flags & SHF_WRITE)) 773 return false; 774 775 // Once initialized, TLS data segments are used as data templates 776 // for a thread-local storage. For each new thread, runtime 777 // allocates memory for a TLS and copy templates there. No thread 778 // are supposed to use templates directly. Thus, it can be in RELRO. 779 if (flags & SHF_TLS) 780 return true; 781 782 // .init_array, .preinit_array and .fini_array contain pointers to 783 // functions that are executed on process startup or exit. These 784 // pointers are set by the static linker, and they are not expected 785 // to change at runtime. But if you are an attacker, you could do 786 // interesting things by manipulating pointers in .fini_array, for 787 // example. So they are put into RELRO. 788 uint32_t type = sec->type; 789 if (type == SHT_INIT_ARRAY || type == SHT_FINI_ARRAY || 790 type == SHT_PREINIT_ARRAY) 791 return true; 792 793 // .got contains pointers to external symbols. They are resolved by 794 // the dynamic linker when a module is loaded into memory, and after 795 // that they are not expected to change. So, it can be in RELRO. 796 if (in.got && sec == in.got->getParent()) 797 return true; 798 799 // .toc is a GOT-ish section for PowerPC64. Their contents are accessed 800 // through r2 register, which is reserved for that purpose. Since r2 is used 801 // for accessing .got as well, .got and .toc need to be close enough in the 802 // virtual address space. Usually, .toc comes just after .got. Since we place 803 // .got into RELRO, .toc needs to be placed into RELRO too. 804 if (sec->name.equals(".toc")) 805 return true; 806 807 // .got.plt contains pointers to external function symbols. They are 808 // by default resolved lazily, so we usually cannot put it into RELRO. 809 // However, if "-z now" is given, the lazy symbol resolution is 810 // disabled, which enables us to put it into RELRO. 811 if (sec == in.gotPlt->getParent()) 812 return config->zNow; 813 814 // .dynamic section contains data for the dynamic linker, and 815 // there's no need to write to it at runtime, so it's better to put 816 // it into RELRO. 817 if (sec->name == ".dynamic") 818 return true; 819 820 // Sections with some special names are put into RELRO. This is a 821 // bit unfortunate because section names shouldn't be significant in 822 // ELF in spirit. But in reality many linker features depend on 823 // magic section names. 824 StringRef s = sec->name; 825 return s == ".data.rel.ro" || s == ".bss.rel.ro" || s == ".ctors" || 826 s == ".dtors" || s == ".jcr" || s == ".eh_frame" || 827 s == ".fini_array" || s == ".init_array" || 828 s == ".openbsd.randomdata" || s == ".preinit_array"; 829 } 830 831 // We compute a rank for each section. The rank indicates where the 832 // section should be placed in the file. Instead of using simple 833 // numbers (0,1,2...), we use a series of flags. One for each decision 834 // point when placing the section. 835 // Using flags has two key properties: 836 // * It is easy to check if a give branch was taken. 837 // * It is easy two see how similar two ranks are (see getRankProximity). 838 enum RankFlags { 839 RF_NOT_ADDR_SET = 1 << 27, 840 RF_NOT_ALLOC = 1 << 26, 841 RF_PARTITION = 1 << 18, // Partition number (8 bits) 842 RF_NOT_PART_EHDR = 1 << 17, 843 RF_NOT_PART_PHDR = 1 << 16, 844 RF_NOT_INTERP = 1 << 15, 845 RF_NOT_NOTE = 1 << 14, 846 RF_WRITE = 1 << 13, 847 RF_EXEC_WRITE = 1 << 12, 848 RF_EXEC = 1 << 11, 849 RF_RODATA = 1 << 10, 850 RF_NOT_RELRO = 1 << 9, 851 RF_NOT_TLS = 1 << 8, 852 RF_BSS = 1 << 7, 853 RF_PPC_NOT_TOCBSS = 1 << 6, 854 RF_PPC_TOCL = 1 << 5, 855 RF_PPC_TOC = 1 << 4, 856 RF_PPC_GOT = 1 << 3, 857 RF_PPC_BRANCH_LT = 1 << 2, 858 RF_MIPS_GPREL = 1 << 1, 859 RF_MIPS_NOT_GOT = 1 << 0 860 }; 861 862 static unsigned getSectionRank(const OutputSection *sec) { 863 unsigned rank = sec->partition * RF_PARTITION; 864 865 // We want to put section specified by -T option first, so we 866 // can start assigning VA starting from them later. 867 if (config->sectionStartMap.count(sec->name)) 868 return rank; 869 rank |= RF_NOT_ADDR_SET; 870 871 // Allocatable sections go first to reduce the total PT_LOAD size and 872 // so debug info doesn't change addresses in actual code. 873 if (!(sec->flags & SHF_ALLOC)) 874 return rank | RF_NOT_ALLOC; 875 876 if (sec->type == SHT_LLVM_PART_EHDR) 877 return rank; 878 rank |= RF_NOT_PART_EHDR; 879 880 if (sec->type == SHT_LLVM_PART_PHDR) 881 return rank; 882 rank |= RF_NOT_PART_PHDR; 883 884 // Put .interp first because some loaders want to see that section 885 // on the first page of the executable file when loaded into memory. 886 if (sec->name == ".interp") 887 return rank; 888 rank |= RF_NOT_INTERP; 889 890 // Put .note sections (which make up one PT_NOTE) at the beginning so that 891 // they are likely to be included in a core file even if core file size is 892 // limited. In particular, we want a .note.gnu.build-id and a .note.tag to be 893 // included in a core to match core files with executables. 894 if (sec->type == SHT_NOTE) 895 return rank; 896 rank |= RF_NOT_NOTE; 897 898 // Sort sections based on their access permission in the following 899 // order: R, RX, RWX, RW. This order is based on the following 900 // considerations: 901 // * Read-only sections come first such that they go in the 902 // PT_LOAD covering the program headers at the start of the file. 903 // * Read-only, executable sections come next. 904 // * Writable, executable sections follow such that .plt on 905 // architectures where it needs to be writable will be placed 906 // between .text and .data. 907 // * Writable sections come last, such that .bss lands at the very 908 // end of the last PT_LOAD. 909 bool isExec = sec->flags & SHF_EXECINSTR; 910 bool isWrite = sec->flags & SHF_WRITE; 911 912 if (isExec) { 913 if (isWrite) 914 rank |= RF_EXEC_WRITE; 915 else 916 rank |= RF_EXEC; 917 } else if (isWrite) { 918 rank |= RF_WRITE; 919 } else if (sec->type == SHT_PROGBITS) { 920 // Make non-executable and non-writable PROGBITS sections (e.g .rodata 921 // .eh_frame) closer to .text. They likely contain PC or GOT relative 922 // relocations and there could be relocation overflow if other huge sections 923 // (.dynstr .dynsym) were placed in between. 924 rank |= RF_RODATA; 925 } 926 927 // Place RelRo sections first. After considering SHT_NOBITS below, the 928 // ordering is PT_LOAD(PT_GNU_RELRO(.data.rel.ro .bss.rel.ro) | .data .bss), 929 // where | marks where page alignment happens. An alternative ordering is 930 // PT_LOAD(.data | PT_GNU_RELRO( .data.rel.ro .bss.rel.ro) | .bss), but it may 931 // waste more bytes due to 2 alignment places. 932 if (!isRelroSection(sec)) 933 rank |= RF_NOT_RELRO; 934 935 // If we got here we know that both A and B are in the same PT_LOAD. 936 937 // The TLS initialization block needs to be a single contiguous block in a R/W 938 // PT_LOAD, so stick TLS sections directly before the other RelRo R/W 939 // sections. Since p_filesz can be less than p_memsz, place NOBITS sections 940 // after PROGBITS. 941 if (!(sec->flags & SHF_TLS)) 942 rank |= RF_NOT_TLS; 943 944 // Within TLS sections, or within other RelRo sections, or within non-RelRo 945 // sections, place non-NOBITS sections first. 946 if (sec->type == SHT_NOBITS) 947 rank |= RF_BSS; 948 949 // Some architectures have additional ordering restrictions for sections 950 // within the same PT_LOAD. 951 if (config->emachine == EM_PPC64) { 952 // PPC64 has a number of special SHT_PROGBITS+SHF_ALLOC+SHF_WRITE sections 953 // that we would like to make sure appear is a specific order to maximize 954 // their coverage by a single signed 16-bit offset from the TOC base 955 // pointer. Conversely, the special .tocbss section should be first among 956 // all SHT_NOBITS sections. This will put it next to the loaded special 957 // PPC64 sections (and, thus, within reach of the TOC base pointer). 958 StringRef name = sec->name; 959 if (name != ".tocbss") 960 rank |= RF_PPC_NOT_TOCBSS; 961 962 if (name == ".toc1") 963 rank |= RF_PPC_TOCL; 964 965 if (name == ".toc") 966 rank |= RF_PPC_TOC; 967 968 if (name == ".got") 969 rank |= RF_PPC_GOT; 970 971 if (name == ".branch_lt") 972 rank |= RF_PPC_BRANCH_LT; 973 } 974 975 if (config->emachine == EM_MIPS) { 976 // All sections with SHF_MIPS_GPREL flag should be grouped together 977 // because data in these sections is addressable with a gp relative address. 978 if (sec->flags & SHF_MIPS_GPREL) 979 rank |= RF_MIPS_GPREL; 980 981 if (sec->name != ".got") 982 rank |= RF_MIPS_NOT_GOT; 983 } 984 985 return rank; 986 } 987 988 static bool compareSections(const SectionCommand *aCmd, 989 const SectionCommand *bCmd) { 990 const OutputSection *a = cast<OutputSection>(aCmd); 991 const OutputSection *b = cast<OutputSection>(bCmd); 992 993 if (a->sortRank != b->sortRank) 994 return a->sortRank < b->sortRank; 995 996 if (!(a->sortRank & RF_NOT_ADDR_SET)) 997 return config->sectionStartMap.lookup(a->name) < 998 config->sectionStartMap.lookup(b->name); 999 return false; 1000 } 1001 1002 void PhdrEntry::add(OutputSection *sec) { 1003 lastSec = sec; 1004 if (!firstSec) 1005 firstSec = sec; 1006 p_align = std::max(p_align, sec->alignment); 1007 if (p_type == PT_LOAD) 1008 sec->ptLoad = this; 1009 } 1010 1011 // The beginning and the ending of .rel[a].plt section are marked 1012 // with __rel[a]_iplt_{start,end} symbols if it is a statically linked 1013 // executable. The runtime needs these symbols in order to resolve 1014 // all IRELATIVE relocs on startup. For dynamic executables, we don't 1015 // need these symbols, since IRELATIVE relocs are resolved through GOT 1016 // and PLT. For details, see http://www.airs.com/blog/archives/403. 1017 template <class ELFT> void Writer<ELFT>::addRelIpltSymbols() { 1018 if (config->relocatable || config->isPic) 1019 return; 1020 1021 // By default, __rela_iplt_{start,end} belong to a dummy section 0 1022 // because .rela.plt might be empty and thus removed from output. 1023 // We'll override Out::elfHeader with In.relaIplt later when we are 1024 // sure that .rela.plt exists in output. 1025 ElfSym::relaIpltStart = addOptionalRegular( 1026 config->isRela ? "__rela_iplt_start" : "__rel_iplt_start", 1027 Out::elfHeader, 0, STV_HIDDEN); 1028 1029 ElfSym::relaIpltEnd = addOptionalRegular( 1030 config->isRela ? "__rela_iplt_end" : "__rel_iplt_end", 1031 Out::elfHeader, 0, STV_HIDDEN); 1032 } 1033 1034 template <class ELFT> 1035 void Writer<ELFT>::forEachRelSec( 1036 llvm::function_ref<void(InputSectionBase &)> fn) { 1037 // Scan all relocations. Each relocation goes through a series 1038 // of tests to determine if it needs special treatment, such as 1039 // creating GOT, PLT, copy relocations, etc. 1040 // Note that relocations for non-alloc sections are directly 1041 // processed by InputSection::relocateNonAlloc. 1042 for (InputSectionBase *isec : inputSections) 1043 if (isec->isLive() && isa<InputSection>(isec) && (isec->flags & SHF_ALLOC)) 1044 fn(*isec); 1045 for (Partition &part : partitions) { 1046 for (EhInputSection *es : part.ehFrame->sections) 1047 fn(*es); 1048 if (part.armExidx && part.armExidx->isLive()) 1049 for (InputSection *ex : part.armExidx->exidxSections) 1050 fn(*ex); 1051 } 1052 } 1053 1054 // This function generates assignments for predefined symbols (e.g. _end or 1055 // _etext) and inserts them into the commands sequence to be processed at the 1056 // appropriate time. This ensures that the value is going to be correct by the 1057 // time any references to these symbols are processed and is equivalent to 1058 // defining these symbols explicitly in the linker script. 1059 template <class ELFT> void Writer<ELFT>::setReservedSymbolSections() { 1060 if (ElfSym::globalOffsetTable) { 1061 // The _GLOBAL_OFFSET_TABLE_ symbol is defined by target convention usually 1062 // to the start of the .got or .got.plt section. 1063 InputSection *gotSection = in.gotPlt; 1064 if (!target->gotBaseSymInGotPlt) 1065 gotSection = in.mipsGot ? cast<InputSection>(in.mipsGot) 1066 : cast<InputSection>(in.got); 1067 ElfSym::globalOffsetTable->section = gotSection; 1068 } 1069 1070 // .rela_iplt_{start,end} mark the start and the end of in.relaIplt. 1071 if (ElfSym::relaIpltStart && in.relaIplt->isNeeded()) { 1072 ElfSym::relaIpltStart->section = in.relaIplt; 1073 ElfSym::relaIpltEnd->section = in.relaIplt; 1074 ElfSym::relaIpltEnd->value = in.relaIplt->getSize(); 1075 } 1076 1077 PhdrEntry *last = nullptr; 1078 PhdrEntry *lastRO = nullptr; 1079 1080 for (Partition &part : partitions) { 1081 for (PhdrEntry *p : part.phdrs) { 1082 if (p->p_type != PT_LOAD) 1083 continue; 1084 last = p; 1085 if (!(p->p_flags & PF_W)) 1086 lastRO = p; 1087 } 1088 } 1089 1090 if (lastRO) { 1091 // _etext is the first location after the last read-only loadable segment. 1092 if (ElfSym::etext1) 1093 ElfSym::etext1->section = lastRO->lastSec; 1094 if (ElfSym::etext2) 1095 ElfSym::etext2->section = lastRO->lastSec; 1096 } 1097 1098 if (last) { 1099 // _edata points to the end of the last mapped initialized section. 1100 OutputSection *edata = nullptr; 1101 for (OutputSection *os : outputSections) { 1102 if (os->type != SHT_NOBITS) 1103 edata = os; 1104 if (os == last->lastSec) 1105 break; 1106 } 1107 1108 if (ElfSym::edata1) 1109 ElfSym::edata1->section = edata; 1110 if (ElfSym::edata2) 1111 ElfSym::edata2->section = edata; 1112 1113 // _end is the first location after the uninitialized data region. 1114 if (ElfSym::end1) 1115 ElfSym::end1->section = last->lastSec; 1116 if (ElfSym::end2) 1117 ElfSym::end2->section = last->lastSec; 1118 } 1119 1120 if (ElfSym::bss) 1121 ElfSym::bss->section = findSection(".bss"); 1122 1123 // Setup MIPS _gp_disp/__gnu_local_gp symbols which should 1124 // be equal to the _gp symbol's value. 1125 if (ElfSym::mipsGp) { 1126 // Find GP-relative section with the lowest address 1127 // and use this address to calculate default _gp value. 1128 for (OutputSection *os : outputSections) { 1129 if (os->flags & SHF_MIPS_GPREL) { 1130 ElfSym::mipsGp->section = os; 1131 ElfSym::mipsGp->value = 0x7ff0; 1132 break; 1133 } 1134 } 1135 } 1136 } 1137 1138 // We want to find how similar two ranks are. 1139 // The more branches in getSectionRank that match, the more similar they are. 1140 // Since each branch corresponds to a bit flag, we can just use 1141 // countLeadingZeros. 1142 static int getRankProximityAux(OutputSection *a, OutputSection *b) { 1143 return countLeadingZeros(a->sortRank ^ b->sortRank); 1144 } 1145 1146 static int getRankProximity(OutputSection *a, SectionCommand *b) { 1147 auto *sec = dyn_cast<OutputSection>(b); 1148 return (sec && sec->hasInputSections) ? getRankProximityAux(a, sec) : -1; 1149 } 1150 1151 // When placing orphan sections, we want to place them after symbol assignments 1152 // so that an orphan after 1153 // begin_foo = .; 1154 // foo : { *(foo) } 1155 // end_foo = .; 1156 // doesn't break the intended meaning of the begin/end symbols. 1157 // We don't want to go over sections since findOrphanPos is the 1158 // one in charge of deciding the order of the sections. 1159 // We don't want to go over changes to '.', since doing so in 1160 // rx_sec : { *(rx_sec) } 1161 // . = ALIGN(0x1000); 1162 // /* The RW PT_LOAD starts here*/ 1163 // rw_sec : { *(rw_sec) } 1164 // would mean that the RW PT_LOAD would become unaligned. 1165 static bool shouldSkip(SectionCommand *cmd) { 1166 if (auto *assign = dyn_cast<SymbolAssignment>(cmd)) 1167 return assign->name != "."; 1168 return false; 1169 } 1170 1171 // We want to place orphan sections so that they share as much 1172 // characteristics with their neighbors as possible. For example, if 1173 // both are rw, or both are tls. 1174 static std::vector<SectionCommand *>::iterator 1175 findOrphanPos(std::vector<SectionCommand *>::iterator b, 1176 std::vector<SectionCommand *>::iterator e) { 1177 OutputSection *sec = cast<OutputSection>(*e); 1178 1179 // Find the first element that has as close a rank as possible. 1180 auto i = std::max_element(b, e, [=](SectionCommand *a, SectionCommand *b) { 1181 return getRankProximity(sec, a) < getRankProximity(sec, b); 1182 }); 1183 if (i == e) 1184 return e; 1185 auto foundSec = dyn_cast<OutputSection>(*i); 1186 if (!foundSec) 1187 return e; 1188 1189 // Consider all existing sections with the same proximity. 1190 int proximity = getRankProximity(sec, *i); 1191 unsigned sortRank = sec->sortRank; 1192 if (script->hasPhdrsCommands() || !script->memoryRegions.empty()) 1193 // Prevent the orphan section to be placed before the found section. If 1194 // custom program headers are defined, that helps to avoid adding it to a 1195 // previous segment and changing flags of that segment, for example, making 1196 // a read-only segment writable. If memory regions are defined, an orphan 1197 // section should continue the same region as the found section to better 1198 // resemble the behavior of GNU ld. 1199 sortRank = std::max(sortRank, foundSec->sortRank); 1200 for (; i != e; ++i) { 1201 auto *curSec = dyn_cast<OutputSection>(*i); 1202 if (!curSec || !curSec->hasInputSections) 1203 continue; 1204 if (getRankProximity(sec, curSec) != proximity || 1205 sortRank < curSec->sortRank) 1206 break; 1207 } 1208 1209 auto isOutputSecWithInputSections = [](SectionCommand *cmd) { 1210 auto *os = dyn_cast<OutputSection>(cmd); 1211 return os && os->hasInputSections; 1212 }; 1213 auto j = std::find_if(llvm::make_reverse_iterator(i), 1214 llvm::make_reverse_iterator(b), 1215 isOutputSecWithInputSections); 1216 i = j.base(); 1217 1218 // As a special case, if the orphan section is the last section, put 1219 // it at the very end, past any other commands. 1220 // This matches bfd's behavior and is convenient when the linker script fully 1221 // specifies the start of the file, but doesn't care about the end (the non 1222 // alloc sections for example). 1223 auto nextSec = std::find_if(i, e, isOutputSecWithInputSections); 1224 if (nextSec == e) 1225 return e; 1226 1227 while (i != e && shouldSkip(*i)) 1228 ++i; 1229 return i; 1230 } 1231 1232 // Adds random priorities to sections not already in the map. 1233 static void maybeShuffle(DenseMap<const InputSectionBase *, int> &order) { 1234 if (config->shuffleSections.empty()) 1235 return; 1236 1237 SmallVector<InputSectionBase *, 0> matched, sections = inputSections; 1238 matched.reserve(sections.size()); 1239 for (const auto &patAndSeed : config->shuffleSections) { 1240 matched.clear(); 1241 for (InputSectionBase *sec : sections) 1242 if (patAndSeed.first.match(sec->name)) 1243 matched.push_back(sec); 1244 const uint32_t seed = patAndSeed.second; 1245 if (seed == UINT32_MAX) { 1246 // If --shuffle-sections <section-glob>=-1, reverse the section order. The 1247 // section order is stable even if the number of sections changes. This is 1248 // useful to catch issues like static initialization order fiasco 1249 // reliably. 1250 std::reverse(matched.begin(), matched.end()); 1251 } else { 1252 std::mt19937 g(seed ? seed : std::random_device()()); 1253 llvm::shuffle(matched.begin(), matched.end(), g); 1254 } 1255 size_t i = 0; 1256 for (InputSectionBase *&sec : sections) 1257 if (patAndSeed.first.match(sec->name)) 1258 sec = matched[i++]; 1259 } 1260 1261 // Existing priorities are < 0, so use priorities >= 0 for the missing 1262 // sections. 1263 int prio = 0; 1264 for (InputSectionBase *sec : sections) { 1265 if (order.try_emplace(sec, prio).second) 1266 ++prio; 1267 } 1268 } 1269 1270 // Builds section order for handling --symbol-ordering-file. 1271 static DenseMap<const InputSectionBase *, int> buildSectionOrder() { 1272 DenseMap<const InputSectionBase *, int> sectionOrder; 1273 // Use the rarely used option --call-graph-ordering-file to sort sections. 1274 if (!config->callGraphProfile.empty()) 1275 return computeCallGraphProfileOrder(); 1276 1277 if (config->symbolOrderingFile.empty()) 1278 return sectionOrder; 1279 1280 struct SymbolOrderEntry { 1281 int priority; 1282 bool present; 1283 }; 1284 1285 // Build a map from symbols to their priorities. Symbols that didn't 1286 // appear in the symbol ordering file have the lowest priority 0. 1287 // All explicitly mentioned symbols have negative (higher) priorities. 1288 DenseMap<StringRef, SymbolOrderEntry> symbolOrder; 1289 int priority = -config->symbolOrderingFile.size(); 1290 for (StringRef s : config->symbolOrderingFile) 1291 symbolOrder.insert({s, {priority++, false}}); 1292 1293 // Build a map from sections to their priorities. 1294 auto addSym = [&](Symbol &sym) { 1295 auto it = symbolOrder.find(sym.getName()); 1296 if (it == symbolOrder.end()) 1297 return; 1298 SymbolOrderEntry &ent = it->second; 1299 ent.present = true; 1300 1301 maybeWarnUnorderableSymbol(&sym); 1302 1303 if (auto *d = dyn_cast<Defined>(&sym)) { 1304 if (auto *sec = dyn_cast_or_null<InputSectionBase>(d->section)) { 1305 int &priority = sectionOrder[cast<InputSectionBase>(sec->repl)]; 1306 priority = std::min(priority, ent.priority); 1307 } 1308 } 1309 }; 1310 1311 // We want both global and local symbols. We get the global ones from the 1312 // symbol table and iterate the object files for the local ones. 1313 for (Symbol *sym : symtab->symbols()) 1314 if (!sym->isLazy()) 1315 addSym(*sym); 1316 1317 for (ELFFileBase *file : objectFiles) 1318 for (Symbol *sym : file->getSymbols()) { 1319 if (!sym->isLocal()) 1320 break; 1321 addSym(*sym); 1322 } 1323 1324 if (config->warnSymbolOrdering) 1325 for (auto orderEntry : symbolOrder) 1326 if (!orderEntry.second.present) 1327 warn("symbol ordering file: no such symbol: " + orderEntry.first); 1328 1329 return sectionOrder; 1330 } 1331 1332 // Sorts the sections in ISD according to the provided section order. 1333 static void 1334 sortISDBySectionOrder(InputSectionDescription *isd, 1335 const DenseMap<const InputSectionBase *, int> &order) { 1336 std::vector<InputSection *> unorderedSections; 1337 std::vector<std::pair<InputSection *, int>> orderedSections; 1338 uint64_t unorderedSize = 0; 1339 1340 for (InputSection *isec : isd->sections) { 1341 auto i = order.find(isec); 1342 if (i == order.end()) { 1343 unorderedSections.push_back(isec); 1344 unorderedSize += isec->getSize(); 1345 continue; 1346 } 1347 orderedSections.push_back({isec, i->second}); 1348 } 1349 llvm::sort(orderedSections, llvm::less_second()); 1350 1351 // Find an insertion point for the ordered section list in the unordered 1352 // section list. On targets with limited-range branches, this is the mid-point 1353 // of the unordered section list. This decreases the likelihood that a range 1354 // extension thunk will be needed to enter or exit the ordered region. If the 1355 // ordered section list is a list of hot functions, we can generally expect 1356 // the ordered functions to be called more often than the unordered functions, 1357 // making it more likely that any particular call will be within range, and 1358 // therefore reducing the number of thunks required. 1359 // 1360 // For example, imagine that you have 8MB of hot code and 32MB of cold code. 1361 // If the layout is: 1362 // 1363 // 8MB hot 1364 // 32MB cold 1365 // 1366 // only the first 8-16MB of the cold code (depending on which hot function it 1367 // is actually calling) can call the hot code without a range extension thunk. 1368 // However, if we use this layout: 1369 // 1370 // 16MB cold 1371 // 8MB hot 1372 // 16MB cold 1373 // 1374 // both the last 8-16MB of the first block of cold code and the first 8-16MB 1375 // of the second block of cold code can call the hot code without a thunk. So 1376 // we effectively double the amount of code that could potentially call into 1377 // the hot code without a thunk. 1378 size_t insPt = 0; 1379 if (target->getThunkSectionSpacing() && !orderedSections.empty()) { 1380 uint64_t unorderedPos = 0; 1381 for (; insPt != unorderedSections.size(); ++insPt) { 1382 unorderedPos += unorderedSections[insPt]->getSize(); 1383 if (unorderedPos > unorderedSize / 2) 1384 break; 1385 } 1386 } 1387 1388 isd->sections.clear(); 1389 for (InputSection *isec : makeArrayRef(unorderedSections).slice(0, insPt)) 1390 isd->sections.push_back(isec); 1391 for (std::pair<InputSection *, int> p : orderedSections) 1392 isd->sections.push_back(p.first); 1393 for (InputSection *isec : makeArrayRef(unorderedSections).slice(insPt)) 1394 isd->sections.push_back(isec); 1395 } 1396 1397 static void sortSection(OutputSection *sec, 1398 const DenseMap<const InputSectionBase *, int> &order) { 1399 StringRef name = sec->name; 1400 1401 // Never sort these. 1402 if (name == ".init" || name == ".fini") 1403 return; 1404 1405 // IRelative relocations that usually live in the .rel[a].dyn section should 1406 // be processed last by the dynamic loader. To achieve that we add synthetic 1407 // sections in the required order from the beginning so that the in.relaIplt 1408 // section is placed last in an output section. Here we just do not apply 1409 // sorting for an output section which holds the in.relaIplt section. 1410 if (in.relaIplt->getParent() == sec) 1411 return; 1412 1413 // Sort input sections by priority using the list provided by 1414 // --symbol-ordering-file or --shuffle-sections=. This is a least significant 1415 // digit radix sort. The sections may be sorted stably again by a more 1416 // significant key. 1417 if (!order.empty()) 1418 for (SectionCommand *b : sec->commands) 1419 if (auto *isd = dyn_cast<InputSectionDescription>(b)) 1420 sortISDBySectionOrder(isd, order); 1421 1422 if (script->hasSectionsCommand) 1423 return; 1424 1425 if (name == ".init_array" || name == ".fini_array") { 1426 sec->sortInitFini(); 1427 } else if (name == ".ctors" || name == ".dtors") { 1428 sec->sortCtorsDtors(); 1429 } else if (config->emachine == EM_PPC64 && name == ".toc") { 1430 // .toc is allocated just after .got and is accessed using GOT-relative 1431 // relocations. Object files compiled with small code model have an 1432 // addressable range of [.got, .got + 0xFFFC] for GOT-relative relocations. 1433 // To reduce the risk of relocation overflow, .toc contents are sorted so 1434 // that sections having smaller relocation offsets are at beginning of .toc 1435 assert(sec->commands.size() == 1); 1436 auto *isd = cast<InputSectionDescription>(sec->commands[0]); 1437 llvm::stable_sort(isd->sections, 1438 [](const InputSection *a, const InputSection *b) -> bool { 1439 return a->file->ppc64SmallCodeModelTocRelocs && 1440 !b->file->ppc64SmallCodeModelTocRelocs; 1441 }); 1442 } 1443 } 1444 1445 // If no layout was provided by linker script, we want to apply default 1446 // sorting for special input sections. This also handles --symbol-ordering-file. 1447 template <class ELFT> void Writer<ELFT>::sortInputSections() { 1448 // Build the order once since it is expensive. 1449 DenseMap<const InputSectionBase *, int> order = buildSectionOrder(); 1450 maybeShuffle(order); 1451 for (SectionCommand *cmd : script->sectionCommands) 1452 if (auto *sec = dyn_cast<OutputSection>(cmd)) 1453 sortSection(sec, order); 1454 } 1455 1456 template <class ELFT> void Writer<ELFT>::sortSections() { 1457 llvm::TimeTraceScope timeScope("Sort sections"); 1458 script->adjustSectionsBeforeSorting(); 1459 1460 // Don't sort if using -r. It is not necessary and we want to preserve the 1461 // relative order for SHF_LINK_ORDER sections. 1462 if (config->relocatable) 1463 return; 1464 1465 sortInputSections(); 1466 1467 for (SectionCommand *cmd : script->sectionCommands) { 1468 auto *os = dyn_cast<OutputSection>(cmd); 1469 if (!os) 1470 continue; 1471 os->sortRank = getSectionRank(os); 1472 } 1473 1474 if (!script->hasSectionsCommand) { 1475 // We know that all the OutputSections are contiguous in this case. 1476 auto isSection = [](SectionCommand *cmd) { 1477 return isa<OutputSection>(cmd); 1478 }; 1479 std::stable_sort( 1480 llvm::find_if(script->sectionCommands, isSection), 1481 llvm::find_if(llvm::reverse(script->sectionCommands), isSection).base(), 1482 compareSections); 1483 1484 // Process INSERT commands. From this point onwards the order of 1485 // script->sectionCommands is fixed. 1486 script->processInsertCommands(); 1487 return; 1488 } 1489 1490 script->processInsertCommands(); 1491 1492 // Orphan sections are sections present in the input files which are 1493 // not explicitly placed into the output file by the linker script. 1494 // 1495 // The sections in the linker script are already in the correct 1496 // order. We have to figuere out where to insert the orphan 1497 // sections. 1498 // 1499 // The order of the sections in the script is arbitrary and may not agree with 1500 // compareSections. This means that we cannot easily define a strict weak 1501 // ordering. To see why, consider a comparison of a section in the script and 1502 // one not in the script. We have a two simple options: 1503 // * Make them equivalent (a is not less than b, and b is not less than a). 1504 // The problem is then that equivalence has to be transitive and we can 1505 // have sections a, b and c with only b in a script and a less than c 1506 // which breaks this property. 1507 // * Use compareSectionsNonScript. Given that the script order doesn't have 1508 // to match, we can end up with sections a, b, c, d where b and c are in the 1509 // script and c is compareSectionsNonScript less than b. In which case d 1510 // can be equivalent to c, a to b and d < a. As a concrete example: 1511 // .a (rx) # not in script 1512 // .b (rx) # in script 1513 // .c (ro) # in script 1514 // .d (ro) # not in script 1515 // 1516 // The way we define an order then is: 1517 // * Sort only the orphan sections. They are in the end right now. 1518 // * Move each orphan section to its preferred position. We try 1519 // to put each section in the last position where it can share 1520 // a PT_LOAD. 1521 // 1522 // There is some ambiguity as to where exactly a new entry should be 1523 // inserted, because Commands contains not only output section 1524 // commands but also other types of commands such as symbol assignment 1525 // expressions. There's no correct answer here due to the lack of the 1526 // formal specification of the linker script. We use heuristics to 1527 // determine whether a new output command should be added before or 1528 // after another commands. For the details, look at shouldSkip 1529 // function. 1530 1531 auto i = script->sectionCommands.begin(); 1532 auto e = script->sectionCommands.end(); 1533 auto nonScriptI = std::find_if(i, e, [](SectionCommand *cmd) { 1534 if (auto *sec = dyn_cast<OutputSection>(cmd)) 1535 return sec->sectionIndex == UINT32_MAX; 1536 return false; 1537 }); 1538 1539 // Sort the orphan sections. 1540 std::stable_sort(nonScriptI, e, compareSections); 1541 1542 // As a horrible special case, skip the first . assignment if it is before any 1543 // section. We do this because it is common to set a load address by starting 1544 // the script with ". = 0xabcd" and the expectation is that every section is 1545 // after that. 1546 auto firstSectionOrDotAssignment = 1547 std::find_if(i, e, [](SectionCommand *cmd) { return !shouldSkip(cmd); }); 1548 if (firstSectionOrDotAssignment != e && 1549 isa<SymbolAssignment>(**firstSectionOrDotAssignment)) 1550 ++firstSectionOrDotAssignment; 1551 i = firstSectionOrDotAssignment; 1552 1553 while (nonScriptI != e) { 1554 auto pos = findOrphanPos(i, nonScriptI); 1555 OutputSection *orphan = cast<OutputSection>(*nonScriptI); 1556 1557 // As an optimization, find all sections with the same sort rank 1558 // and insert them with one rotate. 1559 unsigned rank = orphan->sortRank; 1560 auto end = std::find_if(nonScriptI + 1, e, [=](SectionCommand *cmd) { 1561 return cast<OutputSection>(cmd)->sortRank != rank; 1562 }); 1563 std::rotate(pos, nonScriptI, end); 1564 nonScriptI = end; 1565 } 1566 1567 script->adjustSectionsAfterSorting(); 1568 } 1569 1570 static bool compareByFilePosition(InputSection *a, InputSection *b) { 1571 InputSection *la = a->flags & SHF_LINK_ORDER ? a->getLinkOrderDep() : nullptr; 1572 InputSection *lb = b->flags & SHF_LINK_ORDER ? b->getLinkOrderDep() : nullptr; 1573 // SHF_LINK_ORDER sections with non-zero sh_link are ordered before 1574 // non-SHF_LINK_ORDER sections and SHF_LINK_ORDER sections with zero sh_link. 1575 if (!la || !lb) 1576 return la && !lb; 1577 OutputSection *aOut = la->getParent(); 1578 OutputSection *bOut = lb->getParent(); 1579 1580 if (aOut != bOut) 1581 return aOut->addr < bOut->addr; 1582 return la->outSecOff < lb->outSecOff; 1583 } 1584 1585 template <class ELFT> void Writer<ELFT>::resolveShfLinkOrder() { 1586 llvm::TimeTraceScope timeScope("Resolve SHF_LINK_ORDER"); 1587 for (OutputSection *sec : outputSections) { 1588 if (!(sec->flags & SHF_LINK_ORDER)) 1589 continue; 1590 1591 // The ARM.exidx section use SHF_LINK_ORDER, but we have consolidated 1592 // this processing inside the ARMExidxsyntheticsection::finalizeContents(). 1593 if (!config->relocatable && config->emachine == EM_ARM && 1594 sec->type == SHT_ARM_EXIDX) 1595 continue; 1596 1597 // Link order may be distributed across several InputSectionDescriptions. 1598 // Sorting is performed separately. 1599 std::vector<InputSection **> scriptSections; 1600 std::vector<InputSection *> sections; 1601 for (SectionCommand *cmd : sec->commands) { 1602 auto *isd = dyn_cast<InputSectionDescription>(cmd); 1603 if (!isd) 1604 continue; 1605 bool hasLinkOrder = false; 1606 scriptSections.clear(); 1607 sections.clear(); 1608 for (InputSection *&isec : isd->sections) { 1609 if (isec->flags & SHF_LINK_ORDER) { 1610 InputSection *link = isec->getLinkOrderDep(); 1611 if (link && !link->getParent()) 1612 error(toString(isec) + ": sh_link points to discarded section " + 1613 toString(link)); 1614 hasLinkOrder = true; 1615 } 1616 scriptSections.push_back(&isec); 1617 sections.push_back(isec); 1618 } 1619 if (hasLinkOrder && errorCount() == 0) { 1620 llvm::stable_sort(sections, compareByFilePosition); 1621 for (int i = 0, n = sections.size(); i != n; ++i) 1622 *scriptSections[i] = sections[i]; 1623 } 1624 } 1625 } 1626 } 1627 1628 static void finalizeSynthetic(SyntheticSection *sec) { 1629 if (sec && sec->isNeeded() && sec->getParent()) { 1630 llvm::TimeTraceScope timeScope("Finalize synthetic sections", sec->name); 1631 sec->finalizeContents(); 1632 } 1633 } 1634 1635 // We need to generate and finalize the content that depends on the address of 1636 // InputSections. As the generation of the content may also alter InputSection 1637 // addresses we must converge to a fixed point. We do that here. See the comment 1638 // in Writer<ELFT>::finalizeSections(). 1639 template <class ELFT> void Writer<ELFT>::finalizeAddressDependentContent() { 1640 llvm::TimeTraceScope timeScope("Finalize address dependent content"); 1641 ThunkCreator tc; 1642 AArch64Err843419Patcher a64p; 1643 ARMErr657417Patcher a32p; 1644 script->assignAddresses(); 1645 // .ARM.exidx and SHF_LINK_ORDER do not require precise addresses, but they 1646 // do require the relative addresses of OutputSections because linker scripts 1647 // can assign Virtual Addresses to OutputSections that are not monotonically 1648 // increasing. 1649 for (Partition &part : partitions) 1650 finalizeSynthetic(part.armExidx); 1651 resolveShfLinkOrder(); 1652 1653 // Converts call x@GDPLT to call __tls_get_addr 1654 if (config->emachine == EM_HEXAGON) 1655 hexagonTLSSymbolUpdate(outputSections); 1656 1657 int assignPasses = 0; 1658 for (;;) { 1659 bool changed = target->needsThunks && tc.createThunks(outputSections); 1660 1661 // With Thunk Size much smaller than branch range we expect to 1662 // converge quickly; if we get to 15 something has gone wrong. 1663 if (changed && tc.pass >= 15) { 1664 error("thunk creation not converged"); 1665 break; 1666 } 1667 1668 if (config->fixCortexA53Errata843419) { 1669 if (changed) 1670 script->assignAddresses(); 1671 changed |= a64p.createFixes(); 1672 } 1673 if (config->fixCortexA8) { 1674 if (changed) 1675 script->assignAddresses(); 1676 changed |= a32p.createFixes(); 1677 } 1678 1679 if (in.mipsGot) 1680 in.mipsGot->updateAllocSize(); 1681 1682 for (Partition &part : partitions) { 1683 changed |= part.relaDyn->updateAllocSize(); 1684 if (part.relrDyn) 1685 changed |= part.relrDyn->updateAllocSize(); 1686 } 1687 1688 const Defined *changedSym = script->assignAddresses(); 1689 if (!changed) { 1690 // Some symbols may be dependent on section addresses. When we break the 1691 // loop, the symbol values are finalized because a previous 1692 // assignAddresses() finalized section addresses. 1693 if (!changedSym) 1694 break; 1695 if (++assignPasses == 5) { 1696 errorOrWarn("assignment to symbol " + toString(*changedSym) + 1697 " does not converge"); 1698 break; 1699 } 1700 } 1701 } 1702 1703 // If addrExpr is set, the address may not be a multiple of the alignment. 1704 // Warn because this is error-prone. 1705 for (SectionCommand *cmd : script->sectionCommands) 1706 if (auto *os = dyn_cast<OutputSection>(cmd)) 1707 if (os->addr % os->alignment != 0) 1708 warn("address (0x" + Twine::utohexstr(os->addr) + ") of section " + 1709 os->name + " is not a multiple of alignment (" + 1710 Twine(os->alignment) + ")"); 1711 } 1712 1713 // If Input Sections have been shrunk (basic block sections) then 1714 // update symbol values and sizes associated with these sections. With basic 1715 // block sections, input sections can shrink when the jump instructions at 1716 // the end of the section are relaxed. 1717 static void fixSymbolsAfterShrinking() { 1718 for (InputFile *File : objectFiles) { 1719 parallelForEach(File->getSymbols(), [&](Symbol *Sym) { 1720 auto *def = dyn_cast<Defined>(Sym); 1721 if (!def) 1722 return; 1723 1724 const SectionBase *sec = def->section; 1725 if (!sec) 1726 return; 1727 1728 const InputSectionBase *inputSec = dyn_cast<InputSectionBase>(sec->repl); 1729 if (!inputSec || !inputSec->bytesDropped) 1730 return; 1731 1732 const size_t OldSize = inputSec->data().size(); 1733 const size_t NewSize = OldSize - inputSec->bytesDropped; 1734 1735 if (def->value > NewSize && def->value <= OldSize) { 1736 LLVM_DEBUG(llvm::dbgs() 1737 << "Moving symbol " << Sym->getName() << " from " 1738 << def->value << " to " 1739 << def->value - inputSec->bytesDropped << " bytes\n"); 1740 def->value -= inputSec->bytesDropped; 1741 return; 1742 } 1743 1744 if (def->value + def->size > NewSize && def->value <= OldSize && 1745 def->value + def->size <= OldSize) { 1746 LLVM_DEBUG(llvm::dbgs() 1747 << "Shrinking symbol " << Sym->getName() << " from " 1748 << def->size << " to " << def->size - inputSec->bytesDropped 1749 << " bytes\n"); 1750 def->size -= inputSec->bytesDropped; 1751 } 1752 }); 1753 } 1754 } 1755 1756 // If basic block sections exist, there are opportunities to delete fall thru 1757 // jumps and shrink jump instructions after basic block reordering. This 1758 // relaxation pass does that. It is only enabled when --optimize-bb-jumps 1759 // option is used. 1760 template <class ELFT> void Writer<ELFT>::optimizeBasicBlockJumps() { 1761 assert(config->optimizeBBJumps); 1762 1763 script->assignAddresses(); 1764 // For every output section that has executable input sections, this 1765 // does the following: 1766 // 1. Deletes all direct jump instructions in input sections that 1767 // jump to the following section as it is not required. 1768 // 2. If there are two consecutive jump instructions, it checks 1769 // if they can be flipped and one can be deleted. 1770 for (OutputSection *os : outputSections) { 1771 if (!(os->flags & SHF_EXECINSTR)) 1772 continue; 1773 std::vector<InputSection *> sections = getInputSections(os); 1774 std::vector<unsigned> result(sections.size()); 1775 // Delete all fall through jump instructions. Also, check if two 1776 // consecutive jump instructions can be flipped so that a fall 1777 // through jmp instruction can be deleted. 1778 parallelForEachN(0, sections.size(), [&](size_t i) { 1779 InputSection *next = i + 1 < sections.size() ? sections[i + 1] : nullptr; 1780 InputSection &is = *sections[i]; 1781 result[i] = 1782 target->deleteFallThruJmpInsn(is, is.getFile<ELFT>(), next) ? 1 : 0; 1783 }); 1784 size_t numDeleted = std::count(result.begin(), result.end(), 1); 1785 if (numDeleted > 0) { 1786 script->assignAddresses(); 1787 LLVM_DEBUG(llvm::dbgs() 1788 << "Removing " << numDeleted << " fall through jumps\n"); 1789 } 1790 } 1791 1792 fixSymbolsAfterShrinking(); 1793 1794 for (OutputSection *os : outputSections) { 1795 std::vector<InputSection *> sections = getInputSections(os); 1796 for (InputSection *is : sections) 1797 is->trim(); 1798 } 1799 } 1800 1801 // In order to allow users to manipulate linker-synthesized sections, 1802 // we had to add synthetic sections to the input section list early, 1803 // even before we make decisions whether they are needed. This allows 1804 // users to write scripts like this: ".mygot : { .got }". 1805 // 1806 // Doing it has an unintended side effects. If it turns out that we 1807 // don't need a .got (for example) at all because there's no 1808 // relocation that needs a .got, we don't want to emit .got. 1809 // 1810 // To deal with the above problem, this function is called after 1811 // scanRelocations is called to remove synthetic sections that turn 1812 // out to be empty. 1813 static void removeUnusedSyntheticSections() { 1814 // All input synthetic sections that can be empty are placed after 1815 // all regular ones. Reverse iterate to find the first synthetic section 1816 // after a non-synthetic one which will be our starting point. 1817 auto start = std::find_if(inputSections.rbegin(), inputSections.rend(), 1818 [](InputSectionBase *s) { 1819 return !isa<SyntheticSection>(s); 1820 }) 1821 .base(); 1822 1823 // Remove unused synthetic sections from inputSections; 1824 DenseSet<InputSectionBase *> unused; 1825 auto end = 1826 std::remove_if(start, inputSections.end(), [&](InputSectionBase *s) { 1827 auto *sec = cast<SyntheticSection>(s); 1828 if (sec->getParent() && sec->isNeeded()) 1829 return false; 1830 unused.insert(sec); 1831 return true; 1832 }); 1833 inputSections.erase(end, inputSections.end()); 1834 1835 // Remove unused synthetic sections from the corresponding input section 1836 // description and orphanSections. 1837 for (auto *sec : unused) 1838 if (OutputSection *osec = cast<SyntheticSection>(sec)->getParent()) 1839 for (SectionCommand *cmd : osec->commands) 1840 if (auto *isd = dyn_cast<InputSectionDescription>(cmd)) 1841 llvm::erase_if(isd->sections, [&](InputSection *isec) { 1842 return unused.count(isec); 1843 }); 1844 llvm::erase_if(script->orphanSections, [&](const InputSectionBase *sec) { 1845 return unused.count(sec); 1846 }); 1847 } 1848 1849 // Create output section objects and add them to OutputSections. 1850 template <class ELFT> void Writer<ELFT>::finalizeSections() { 1851 Out::preinitArray = findSection(".preinit_array"); 1852 Out::initArray = findSection(".init_array"); 1853 Out::finiArray = findSection(".fini_array"); 1854 1855 // The linker needs to define SECNAME_start, SECNAME_end and SECNAME_stop 1856 // symbols for sections, so that the runtime can get the start and end 1857 // addresses of each section by section name. Add such symbols. 1858 if (!config->relocatable) { 1859 addStartEndSymbols(); 1860 for (SectionCommand *cmd : script->sectionCommands) 1861 if (auto *sec = dyn_cast<OutputSection>(cmd)) 1862 addStartStopSymbols(sec); 1863 } 1864 1865 // Add _DYNAMIC symbol. Unlike GNU gold, our _DYNAMIC symbol has no type. 1866 // It should be okay as no one seems to care about the type. 1867 // Even the author of gold doesn't remember why gold behaves that way. 1868 // https://sourceware.org/ml/binutils/2002-03/msg00360.html 1869 if (mainPart->dynamic->parent) 1870 symtab->addSymbol(Defined{/*file=*/nullptr, "_DYNAMIC", STB_WEAK, 1871 STV_HIDDEN, STT_NOTYPE, 1872 /*value=*/0, /*size=*/0, mainPart->dynamic}); 1873 1874 // Define __rel[a]_iplt_{start,end} symbols if needed. 1875 addRelIpltSymbols(); 1876 1877 // RISC-V's gp can address +/- 2 KiB, set it to .sdata + 0x800. This symbol 1878 // should only be defined in an executable. If .sdata does not exist, its 1879 // value/section does not matter but it has to be relative, so set its 1880 // st_shndx arbitrarily to 1 (Out::elfHeader). 1881 if (config->emachine == EM_RISCV && !config->shared) { 1882 OutputSection *sec = findSection(".sdata"); 1883 ElfSym::riscvGlobalPointer = 1884 addOptionalRegular("__global_pointer$", sec ? sec : Out::elfHeader, 1885 0x800, STV_DEFAULT); 1886 } 1887 1888 if (config->emachine == EM_386 || config->emachine == EM_X86_64) { 1889 // On targets that support TLSDESC, _TLS_MODULE_BASE_ is defined in such a 1890 // way that: 1891 // 1892 // 1) Without relaxation: it produces a dynamic TLSDESC relocation that 1893 // computes 0. 1894 // 2) With LD->LE relaxation: _TLS_MODULE_BASE_@tpoff = 0 (lowest address in 1895 // the TLS block). 1896 // 1897 // 2) is special cased in @tpoff computation. To satisfy 1), we define it as 1898 // an absolute symbol of zero. This is different from GNU linkers which 1899 // define _TLS_MODULE_BASE_ relative to the first TLS section. 1900 Symbol *s = symtab->find("_TLS_MODULE_BASE_"); 1901 if (s && s->isUndefined()) { 1902 s->resolve(Defined{/*file=*/nullptr, s->getName(), STB_GLOBAL, STV_HIDDEN, 1903 STT_TLS, /*value=*/0, 0, 1904 /*section=*/nullptr}); 1905 ElfSym::tlsModuleBase = cast<Defined>(s); 1906 } 1907 } 1908 1909 { 1910 llvm::TimeTraceScope timeScope("Finalize .eh_frame"); 1911 // This responsible for splitting up .eh_frame section into 1912 // pieces. The relocation scan uses those pieces, so this has to be 1913 // earlier. 1914 for (Partition &part : partitions) 1915 finalizeSynthetic(part.ehFrame); 1916 } 1917 1918 for (Symbol *sym : symtab->symbols()) 1919 sym->isPreemptible = computeIsPreemptible(*sym); 1920 1921 // Change values of linker-script-defined symbols from placeholders (assigned 1922 // by declareSymbols) to actual definitions. 1923 script->processSymbolAssignments(); 1924 1925 { 1926 llvm::TimeTraceScope timeScope("Scan relocations"); 1927 // Scan relocations. This must be done after every symbol is declared so 1928 // that we can correctly decide if a dynamic relocation is needed. This is 1929 // called after processSymbolAssignments() because it needs to know whether 1930 // a linker-script-defined symbol is absolute. 1931 ppc64noTocRelax.clear(); 1932 if (!config->relocatable) { 1933 forEachRelSec(scanRelocations<ELFT>); 1934 reportUndefinedSymbols<ELFT>(); 1935 postScanRelocations(); 1936 } 1937 } 1938 1939 if (in.plt && in.plt->isNeeded()) 1940 in.plt->addSymbols(); 1941 if (in.iplt && in.iplt->isNeeded()) 1942 in.iplt->addSymbols(); 1943 1944 if (config->unresolvedSymbolsInShlib != UnresolvedPolicy::Ignore) { 1945 auto diagnose = 1946 config->unresolvedSymbolsInShlib == UnresolvedPolicy::ReportError 1947 ? errorOrWarn 1948 : warn; 1949 // Error on undefined symbols in a shared object, if all of its DT_NEEDED 1950 // entries are seen. These cases would otherwise lead to runtime errors 1951 // reported by the dynamic linker. 1952 // 1953 // ld.bfd traces all DT_NEEDED to emulate the logic of the dynamic linker to 1954 // catch more cases. That is too much for us. Our approach resembles the one 1955 // used in ld.gold, achieves a good balance to be useful but not too smart. 1956 for (SharedFile *file : sharedFiles) { 1957 bool allNeededIsKnown = 1958 llvm::all_of(file->dtNeeded, [&](StringRef needed) { 1959 return symtab->soNames.count(needed); 1960 }); 1961 if (!allNeededIsKnown) 1962 continue; 1963 for (Symbol *sym : file->requiredSymbols) 1964 if (sym->isUndefined() && !sym->isWeak()) 1965 diagnose(toString(file) + ": undefined reference to " + 1966 toString(*sym) + " [--no-allow-shlib-undefined]"); 1967 } 1968 } 1969 1970 { 1971 llvm::TimeTraceScope timeScope("Add symbols to symtabs"); 1972 // Now that we have defined all possible global symbols including linker- 1973 // synthesized ones. Visit all symbols to give the finishing touches. 1974 for (Symbol *sym : symtab->symbols()) { 1975 if (!sym->isUsedInRegularObj || !includeInSymtab(*sym)) 1976 continue; 1977 if (in.symTab) 1978 in.symTab->addSymbol(sym); 1979 1980 if (sym->includeInDynsym()) { 1981 partitions[sym->partition - 1].dynSymTab->addSymbol(sym); 1982 if (auto *file = dyn_cast_or_null<SharedFile>(sym->file)) 1983 if (file->isNeeded && !sym->isUndefined()) 1984 addVerneed(sym); 1985 } 1986 } 1987 1988 // We also need to scan the dynamic relocation tables of the other 1989 // partitions and add any referenced symbols to the partition's dynsym. 1990 for (Partition &part : MutableArrayRef<Partition>(partitions).slice(1)) { 1991 DenseSet<Symbol *> syms; 1992 for (const SymbolTableEntry &e : part.dynSymTab->getSymbols()) 1993 syms.insert(e.sym); 1994 for (DynamicReloc &reloc : part.relaDyn->relocs) 1995 if (reloc.sym && reloc.needsDynSymIndex() && 1996 syms.insert(reloc.sym).second) 1997 part.dynSymTab->addSymbol(reloc.sym); 1998 } 1999 } 2000 2001 // Do not proceed if there was an undefined symbol. 2002 if (errorCount()) 2003 return; 2004 2005 if (in.mipsGot) 2006 in.mipsGot->build(); 2007 2008 removeUnusedSyntheticSections(); 2009 script->diagnoseOrphanHandling(); 2010 2011 sortSections(); 2012 2013 // Create a list of OutputSections, assign sectionIndex, and populate 2014 // in.shStrTab. 2015 for (SectionCommand *cmd : script->sectionCommands) 2016 if (auto *osec = dyn_cast<OutputSection>(cmd)) { 2017 outputSections.push_back(osec); 2018 osec->sectionIndex = outputSections.size(); 2019 osec->shName = in.shStrTab->addString(osec->name); 2020 } 2021 2022 // Prefer command line supplied address over other constraints. 2023 for (OutputSection *sec : outputSections) { 2024 auto i = config->sectionStartMap.find(sec->name); 2025 if (i != config->sectionStartMap.end()) 2026 sec->addrExpr = [=] { return i->second; }; 2027 } 2028 2029 // With the outputSections available check for GDPLT relocations 2030 // and add __tls_get_addr symbol if needed. 2031 if (config->emachine == EM_HEXAGON && hexagonNeedsTLSSymbol(outputSections)) { 2032 Symbol *sym = symtab->addSymbol(Undefined{ 2033 nullptr, "__tls_get_addr", STB_GLOBAL, STV_DEFAULT, STT_NOTYPE}); 2034 sym->isPreemptible = true; 2035 partitions[0].dynSymTab->addSymbol(sym); 2036 } 2037 2038 // This is a bit of a hack. A value of 0 means undef, so we set it 2039 // to 1 to make __ehdr_start defined. The section number is not 2040 // particularly relevant. 2041 Out::elfHeader->sectionIndex = 1; 2042 Out::elfHeader->size = sizeof(typename ELFT::Ehdr); 2043 2044 // Binary and relocatable output does not have PHDRS. 2045 // The headers have to be created before finalize as that can influence the 2046 // image base and the dynamic section on mips includes the image base. 2047 if (!config->relocatable && !config->oFormatBinary) { 2048 for (Partition &part : partitions) { 2049 part.phdrs = script->hasPhdrsCommands() ? script->createPhdrs() 2050 : createPhdrs(part); 2051 if (config->emachine == EM_ARM) { 2052 // PT_ARM_EXIDX is the ARM EHABI equivalent of PT_GNU_EH_FRAME 2053 addPhdrForSection(part, SHT_ARM_EXIDX, PT_ARM_EXIDX, PF_R); 2054 } 2055 if (config->emachine == EM_MIPS) { 2056 // Add separate segments for MIPS-specific sections. 2057 addPhdrForSection(part, SHT_MIPS_REGINFO, PT_MIPS_REGINFO, PF_R); 2058 addPhdrForSection(part, SHT_MIPS_OPTIONS, PT_MIPS_OPTIONS, PF_R); 2059 addPhdrForSection(part, SHT_MIPS_ABIFLAGS, PT_MIPS_ABIFLAGS, PF_R); 2060 } 2061 } 2062 Out::programHeaders->size = sizeof(Elf_Phdr) * mainPart->phdrs.size(); 2063 2064 // Find the TLS segment. This happens before the section layout loop so that 2065 // Android relocation packing can look up TLS symbol addresses. We only need 2066 // to care about the main partition here because all TLS symbols were moved 2067 // to the main partition (see MarkLive.cpp). 2068 for (PhdrEntry *p : mainPart->phdrs) 2069 if (p->p_type == PT_TLS) 2070 Out::tlsPhdr = p; 2071 } 2072 2073 // Some symbols are defined in term of program headers. Now that we 2074 // have the headers, we can find out which sections they point to. 2075 setReservedSymbolSections(); 2076 2077 { 2078 llvm::TimeTraceScope timeScope("Finalize synthetic sections"); 2079 2080 finalizeSynthetic(in.bss); 2081 finalizeSynthetic(in.bssRelRo); 2082 finalizeSynthetic(in.symTabShndx); 2083 finalizeSynthetic(in.shStrTab); 2084 finalizeSynthetic(in.strTab); 2085 finalizeSynthetic(in.got); 2086 finalizeSynthetic(in.mipsGot); 2087 finalizeSynthetic(in.igotPlt); 2088 finalizeSynthetic(in.gotPlt); 2089 finalizeSynthetic(in.relaIplt); 2090 finalizeSynthetic(in.relaPlt); 2091 finalizeSynthetic(in.plt); 2092 finalizeSynthetic(in.iplt); 2093 finalizeSynthetic(in.ppc32Got2); 2094 finalizeSynthetic(in.partIndex); 2095 2096 // Dynamic section must be the last one in this list and dynamic 2097 // symbol table section (dynSymTab) must be the first one. 2098 for (Partition &part : partitions) { 2099 finalizeSynthetic(part.dynSymTab); 2100 finalizeSynthetic(part.gnuHashTab); 2101 finalizeSynthetic(part.hashTab); 2102 finalizeSynthetic(part.verDef); 2103 finalizeSynthetic(part.relaDyn); 2104 finalizeSynthetic(part.relrDyn); 2105 finalizeSynthetic(part.ehFrameHdr); 2106 finalizeSynthetic(part.verSym); 2107 finalizeSynthetic(part.verNeed); 2108 finalizeSynthetic(part.dynamic); 2109 } 2110 } 2111 2112 if (!script->hasSectionsCommand && !config->relocatable) 2113 fixSectionAlignments(); 2114 2115 // This is used to: 2116 // 1) Create "thunks": 2117 // Jump instructions in many ISAs have small displacements, and therefore 2118 // they cannot jump to arbitrary addresses in memory. For example, RISC-V 2119 // JAL instruction can target only +-1 MiB from PC. It is a linker's 2120 // responsibility to create and insert small pieces of code between 2121 // sections to extend the ranges if jump targets are out of range. Such 2122 // code pieces are called "thunks". 2123 // 2124 // We add thunks at this stage. We couldn't do this before this point 2125 // because this is the earliest point where we know sizes of sections and 2126 // their layouts (that are needed to determine if jump targets are in 2127 // range). 2128 // 2129 // 2) Update the sections. We need to generate content that depends on the 2130 // address of InputSections. For example, MIPS GOT section content or 2131 // android packed relocations sections content. 2132 // 2133 // 3) Assign the final values for the linker script symbols. Linker scripts 2134 // sometimes using forward symbol declarations. We want to set the correct 2135 // values. They also might change after adding the thunks. 2136 finalizeAddressDependentContent(); 2137 if (errorCount()) 2138 return; 2139 2140 { 2141 llvm::TimeTraceScope timeScope("Finalize synthetic sections"); 2142 // finalizeAddressDependentContent may have added local symbols to the 2143 // static symbol table. 2144 finalizeSynthetic(in.symTab); 2145 finalizeSynthetic(in.ppc64LongBranchTarget); 2146 } 2147 2148 // Relaxation to delete inter-basic block jumps created by basic block 2149 // sections. Run after in.symTab is finalized as optimizeBasicBlockJumps 2150 // can relax jump instructions based on symbol offset. 2151 if (config->optimizeBBJumps) 2152 optimizeBasicBlockJumps(); 2153 2154 // Fill other section headers. The dynamic table is finalized 2155 // at the end because some tags like RELSZ depend on result 2156 // of finalizing other sections. 2157 for (OutputSection *sec : outputSections) 2158 sec->finalize(); 2159 } 2160 2161 // Ensure data sections are not mixed with executable sections when 2162 // --execute-only is used. --execute-only make pages executable but not 2163 // readable. 2164 template <class ELFT> void Writer<ELFT>::checkExecuteOnly() { 2165 if (!config->executeOnly) 2166 return; 2167 2168 for (OutputSection *os : outputSections) 2169 if (os->flags & SHF_EXECINSTR) 2170 for (InputSection *isec : getInputSections(os)) 2171 if (!(isec->flags & SHF_EXECINSTR)) 2172 error("cannot place " + toString(isec) + " into " + toString(os->name) + 2173 ": -execute-only does not support intermingling data and code"); 2174 } 2175 2176 // The linker is expected to define SECNAME_start and SECNAME_end 2177 // symbols for a few sections. This function defines them. 2178 template <class ELFT> void Writer<ELFT>::addStartEndSymbols() { 2179 // If a section does not exist, there's ambiguity as to how we 2180 // define _start and _end symbols for an init/fini section. Since 2181 // the loader assume that the symbols are always defined, we need to 2182 // always define them. But what value? The loader iterates over all 2183 // pointers between _start and _end to run global ctors/dtors, so if 2184 // the section is empty, their symbol values don't actually matter 2185 // as long as _start and _end point to the same location. 2186 // 2187 // That said, we don't want to set the symbols to 0 (which is 2188 // probably the simplest value) because that could cause some 2189 // program to fail to link due to relocation overflow, if their 2190 // program text is above 2 GiB. We use the address of the .text 2191 // section instead to prevent that failure. 2192 // 2193 // In rare situations, the .text section may not exist. If that's the 2194 // case, use the image base address as a last resort. 2195 OutputSection *Default = findSection(".text"); 2196 if (!Default) 2197 Default = Out::elfHeader; 2198 2199 auto define = [=](StringRef start, StringRef end, OutputSection *os) { 2200 if (os && !script->isDiscarded(os)) { 2201 addOptionalRegular(start, os, 0); 2202 addOptionalRegular(end, os, -1); 2203 } else { 2204 addOptionalRegular(start, Default, 0); 2205 addOptionalRegular(end, Default, 0); 2206 } 2207 }; 2208 2209 define("__preinit_array_start", "__preinit_array_end", Out::preinitArray); 2210 define("__init_array_start", "__init_array_end", Out::initArray); 2211 define("__fini_array_start", "__fini_array_end", Out::finiArray); 2212 2213 if (OutputSection *sec = findSection(".ARM.exidx")) 2214 define("__exidx_start", "__exidx_end", sec); 2215 } 2216 2217 // If a section name is valid as a C identifier (which is rare because of 2218 // the leading '.'), linkers are expected to define __start_<secname> and 2219 // __stop_<secname> symbols. They are at beginning and end of the section, 2220 // respectively. This is not requested by the ELF standard, but GNU ld and 2221 // gold provide the feature, and used by many programs. 2222 template <class ELFT> 2223 void Writer<ELFT>::addStartStopSymbols(OutputSection *sec) { 2224 StringRef s = sec->name; 2225 if (!isValidCIdentifier(s)) 2226 return; 2227 addOptionalRegular(saver.save("__start_" + s), sec, 0, 2228 config->zStartStopVisibility); 2229 addOptionalRegular(saver.save("__stop_" + s), sec, -1, 2230 config->zStartStopVisibility); 2231 } 2232 2233 static bool needsPtLoad(OutputSection *sec) { 2234 if (!(sec->flags & SHF_ALLOC)) 2235 return false; 2236 2237 // Don't allocate VA space for TLS NOBITS sections. The PT_TLS PHDR is 2238 // responsible for allocating space for them, not the PT_LOAD that 2239 // contains the TLS initialization image. 2240 if ((sec->flags & SHF_TLS) && sec->type == SHT_NOBITS) 2241 return false; 2242 return true; 2243 } 2244 2245 // Linker scripts are responsible for aligning addresses. Unfortunately, most 2246 // linker scripts are designed for creating two PT_LOADs only, one RX and one 2247 // RW. This means that there is no alignment in the RO to RX transition and we 2248 // cannot create a PT_LOAD there. 2249 static uint64_t computeFlags(uint64_t flags) { 2250 if (config->omagic) 2251 return PF_R | PF_W | PF_X; 2252 if (config->executeOnly && (flags & PF_X)) 2253 return flags & ~PF_R; 2254 if (config->singleRoRx && !(flags & PF_W)) 2255 return flags | PF_X; 2256 return flags; 2257 } 2258 2259 // Decide which program headers to create and which sections to include in each 2260 // one. 2261 template <class ELFT> 2262 std::vector<PhdrEntry *> Writer<ELFT>::createPhdrs(Partition &part) { 2263 std::vector<PhdrEntry *> ret; 2264 auto addHdr = [&](unsigned type, unsigned flags) -> PhdrEntry * { 2265 ret.push_back(make<PhdrEntry>(type, flags)); 2266 return ret.back(); 2267 }; 2268 2269 unsigned partNo = part.getNumber(); 2270 bool isMain = partNo == 1; 2271 2272 // Add the first PT_LOAD segment for regular output sections. 2273 uint64_t flags = computeFlags(PF_R); 2274 PhdrEntry *load = nullptr; 2275 2276 // nmagic or omagic output does not have PT_PHDR, PT_INTERP, or the readonly 2277 // PT_LOAD. 2278 if (!config->nmagic && !config->omagic) { 2279 // The first phdr entry is PT_PHDR which describes the program header 2280 // itself. 2281 if (isMain) 2282 addHdr(PT_PHDR, PF_R)->add(Out::programHeaders); 2283 else 2284 addHdr(PT_PHDR, PF_R)->add(part.programHeaders->getParent()); 2285 2286 // PT_INTERP must be the second entry if exists. 2287 if (OutputSection *cmd = findSection(".interp", partNo)) 2288 addHdr(PT_INTERP, cmd->getPhdrFlags())->add(cmd); 2289 2290 // Add the headers. We will remove them if they don't fit. 2291 // In the other partitions the headers are ordinary sections, so they don't 2292 // need to be added here. 2293 if (isMain) { 2294 load = addHdr(PT_LOAD, flags); 2295 load->add(Out::elfHeader); 2296 load->add(Out::programHeaders); 2297 } 2298 } 2299 2300 // PT_GNU_RELRO includes all sections that should be marked as 2301 // read-only by dynamic linker after processing relocations. 2302 // Current dynamic loaders only support one PT_GNU_RELRO PHDR, give 2303 // an error message if more than one PT_GNU_RELRO PHDR is required. 2304 PhdrEntry *relRo = make<PhdrEntry>(PT_GNU_RELRO, PF_R); 2305 bool inRelroPhdr = false; 2306 OutputSection *relroEnd = nullptr; 2307 for (OutputSection *sec : outputSections) { 2308 if (sec->partition != partNo || !needsPtLoad(sec)) 2309 continue; 2310 if (isRelroSection(sec)) { 2311 inRelroPhdr = true; 2312 if (!relroEnd) 2313 relRo->add(sec); 2314 else 2315 error("section: " + sec->name + " is not contiguous with other relro" + 2316 " sections"); 2317 } else if (inRelroPhdr) { 2318 inRelroPhdr = false; 2319 relroEnd = sec; 2320 } 2321 } 2322 2323 for (OutputSection *sec : outputSections) { 2324 if (!needsPtLoad(sec)) 2325 continue; 2326 2327 // Normally, sections in partitions other than the current partition are 2328 // ignored. But partition number 255 is a special case: it contains the 2329 // partition end marker (.part.end). It needs to be added to the main 2330 // partition so that a segment is created for it in the main partition, 2331 // which will cause the dynamic loader to reserve space for the other 2332 // partitions. 2333 if (sec->partition != partNo) { 2334 if (isMain && sec->partition == 255) 2335 addHdr(PT_LOAD, computeFlags(sec->getPhdrFlags()))->add(sec); 2336 continue; 2337 } 2338 2339 // Segments are contiguous memory regions that has the same attributes 2340 // (e.g. executable or writable). There is one phdr for each segment. 2341 // Therefore, we need to create a new phdr when the next section has 2342 // different flags or is loaded at a discontiguous address or memory 2343 // region using AT or AT> linker script command, respectively. At the same 2344 // time, we don't want to create a separate load segment for the headers, 2345 // even if the first output section has an AT or AT> attribute. 2346 uint64_t newFlags = computeFlags(sec->getPhdrFlags()); 2347 bool sameLMARegion = 2348 load && !sec->lmaExpr && sec->lmaRegion == load->firstSec->lmaRegion; 2349 if (!(load && newFlags == flags && sec != relroEnd && 2350 sec->memRegion == load->firstSec->memRegion && 2351 (sameLMARegion || load->lastSec == Out::programHeaders))) { 2352 load = addHdr(PT_LOAD, newFlags); 2353 flags = newFlags; 2354 } 2355 2356 load->add(sec); 2357 } 2358 2359 // Add a TLS segment if any. 2360 PhdrEntry *tlsHdr = make<PhdrEntry>(PT_TLS, PF_R); 2361 for (OutputSection *sec : outputSections) 2362 if (sec->partition == partNo && sec->flags & SHF_TLS) 2363 tlsHdr->add(sec); 2364 if (tlsHdr->firstSec) 2365 ret.push_back(tlsHdr); 2366 2367 // Add an entry for .dynamic. 2368 if (OutputSection *sec = part.dynamic->getParent()) 2369 addHdr(PT_DYNAMIC, sec->getPhdrFlags())->add(sec); 2370 2371 if (relRo->firstSec) 2372 ret.push_back(relRo); 2373 2374 // PT_GNU_EH_FRAME is a special section pointing on .eh_frame_hdr. 2375 if (part.ehFrame->isNeeded() && part.ehFrameHdr && 2376 part.ehFrame->getParent() && part.ehFrameHdr->getParent()) 2377 addHdr(PT_GNU_EH_FRAME, part.ehFrameHdr->getParent()->getPhdrFlags()) 2378 ->add(part.ehFrameHdr->getParent()); 2379 2380 // PT_OPENBSD_RANDOMIZE is an OpenBSD-specific feature. That makes 2381 // the dynamic linker fill the segment with random data. 2382 if (OutputSection *cmd = findSection(".openbsd.randomdata", partNo)) 2383 addHdr(PT_OPENBSD_RANDOMIZE, cmd->getPhdrFlags())->add(cmd); 2384 2385 if (config->zGnustack != GnuStackKind::None) { 2386 // PT_GNU_STACK is a special section to tell the loader to make the 2387 // pages for the stack non-executable. If you really want an executable 2388 // stack, you can pass -z execstack, but that's not recommended for 2389 // security reasons. 2390 unsigned perm = PF_R | PF_W; 2391 if (config->zGnustack == GnuStackKind::Exec) 2392 perm |= PF_X; 2393 addHdr(PT_GNU_STACK, perm)->p_memsz = config->zStackSize; 2394 } 2395 2396 // PT_OPENBSD_WXNEEDED is a OpenBSD-specific header to mark the executable 2397 // is expected to perform W^X violations, such as calling mprotect(2) or 2398 // mmap(2) with PROT_WRITE | PROT_EXEC, which is prohibited by default on 2399 // OpenBSD. 2400 if (config->zWxneeded) 2401 addHdr(PT_OPENBSD_WXNEEDED, PF_X); 2402 2403 if (OutputSection *cmd = findSection(".note.gnu.property", partNo)) 2404 addHdr(PT_GNU_PROPERTY, PF_R)->add(cmd); 2405 2406 // Create one PT_NOTE per a group of contiguous SHT_NOTE sections with the 2407 // same alignment. 2408 PhdrEntry *note = nullptr; 2409 for (OutputSection *sec : outputSections) { 2410 if (sec->partition != partNo) 2411 continue; 2412 if (sec->type == SHT_NOTE && (sec->flags & SHF_ALLOC)) { 2413 if (!note || sec->lmaExpr || note->lastSec->alignment != sec->alignment) 2414 note = addHdr(PT_NOTE, PF_R); 2415 note->add(sec); 2416 } else { 2417 note = nullptr; 2418 } 2419 } 2420 return ret; 2421 } 2422 2423 template <class ELFT> 2424 void Writer<ELFT>::addPhdrForSection(Partition &part, unsigned shType, 2425 unsigned pType, unsigned pFlags) { 2426 unsigned partNo = part.getNumber(); 2427 auto i = llvm::find_if(outputSections, [=](OutputSection *cmd) { 2428 return cmd->partition == partNo && cmd->type == shType; 2429 }); 2430 if (i == outputSections.end()) 2431 return; 2432 2433 PhdrEntry *entry = make<PhdrEntry>(pType, pFlags); 2434 entry->add(*i); 2435 part.phdrs.push_back(entry); 2436 } 2437 2438 // Place the first section of each PT_LOAD to a different page (of maxPageSize). 2439 // This is achieved by assigning an alignment expression to addrExpr of each 2440 // such section. 2441 template <class ELFT> void Writer<ELFT>::fixSectionAlignments() { 2442 const PhdrEntry *prev; 2443 auto pageAlign = [&](const PhdrEntry *p) { 2444 OutputSection *cmd = p->firstSec; 2445 if (!cmd) 2446 return; 2447 cmd->alignExpr = [align = cmd->alignment]() { return align; }; 2448 if (!cmd->addrExpr) { 2449 // Prefer advancing to align(dot, maxPageSize) + dot%maxPageSize to avoid 2450 // padding in the file contents. 2451 // 2452 // When -z separate-code is used we must not have any overlap in pages 2453 // between an executable segment and a non-executable segment. We align to 2454 // the next maximum page size boundary on transitions between executable 2455 // and non-executable segments. 2456 // 2457 // SHT_LLVM_PART_EHDR marks the start of a partition. The partition 2458 // sections will be extracted to a separate file. Align to the next 2459 // maximum page size boundary so that we can find the ELF header at the 2460 // start. We cannot benefit from overlapping p_offset ranges with the 2461 // previous segment anyway. 2462 if (config->zSeparate == SeparateSegmentKind::Loadable || 2463 (config->zSeparate == SeparateSegmentKind::Code && prev && 2464 (prev->p_flags & PF_X) != (p->p_flags & PF_X)) || 2465 cmd->type == SHT_LLVM_PART_EHDR) 2466 cmd->addrExpr = [] { 2467 return alignTo(script->getDot(), config->maxPageSize); 2468 }; 2469 // PT_TLS is at the start of the first RW PT_LOAD. If `p` includes PT_TLS, 2470 // it must be the RW. Align to p_align(PT_TLS) to make sure 2471 // p_vaddr(PT_LOAD)%p_align(PT_LOAD) = 0. Otherwise, if 2472 // sh_addralign(.tdata) < sh_addralign(.tbss), we will set p_align(PT_TLS) 2473 // to sh_addralign(.tbss), while p_vaddr(PT_TLS)=p_vaddr(PT_LOAD) may not 2474 // be congruent to 0 modulo p_align(PT_TLS). 2475 // 2476 // Technically this is not required, but as of 2019, some dynamic loaders 2477 // don't handle p_vaddr%p_align != 0 correctly, e.g. glibc (i386 and 2478 // x86-64) doesn't make runtime address congruent to p_vaddr modulo 2479 // p_align for dynamic TLS blocks (PR/24606), FreeBSD rtld has the same 2480 // bug, musl (TLS Variant 1 architectures) before 1.1.23 handled TLS 2481 // blocks correctly. We need to keep the workaround for a while. 2482 else if (Out::tlsPhdr && Out::tlsPhdr->firstSec == p->firstSec) 2483 cmd->addrExpr = [] { 2484 return alignTo(script->getDot(), config->maxPageSize) + 2485 alignTo(script->getDot() % config->maxPageSize, 2486 Out::tlsPhdr->p_align); 2487 }; 2488 else 2489 cmd->addrExpr = [] { 2490 return alignTo(script->getDot(), config->maxPageSize) + 2491 script->getDot() % config->maxPageSize; 2492 }; 2493 } 2494 }; 2495 2496 for (Partition &part : partitions) { 2497 prev = nullptr; 2498 for (const PhdrEntry *p : part.phdrs) 2499 if (p->p_type == PT_LOAD && p->firstSec) { 2500 pageAlign(p); 2501 prev = p; 2502 } 2503 } 2504 } 2505 2506 // Compute an in-file position for a given section. The file offset must be the 2507 // same with its virtual address modulo the page size, so that the loader can 2508 // load executables without any address adjustment. 2509 static uint64_t computeFileOffset(OutputSection *os, uint64_t off) { 2510 // The first section in a PT_LOAD has to have congruent offset and address 2511 // modulo the maximum page size. 2512 if (os->ptLoad && os->ptLoad->firstSec == os) 2513 return alignTo(off, os->ptLoad->p_align, os->addr); 2514 2515 // File offsets are not significant for .bss sections other than the first one 2516 // in a PT_LOAD/PT_TLS. By convention, we keep section offsets monotonically 2517 // increasing rather than setting to zero. 2518 if (os->type == SHT_NOBITS && 2519 (!Out::tlsPhdr || Out::tlsPhdr->firstSec != os)) 2520 return off; 2521 2522 // If the section is not in a PT_LOAD, we just have to align it. 2523 if (!os->ptLoad) 2524 return alignTo(off, os->alignment); 2525 2526 // If two sections share the same PT_LOAD the file offset is calculated 2527 // using this formula: Off2 = Off1 + (VA2 - VA1). 2528 OutputSection *first = os->ptLoad->firstSec; 2529 return first->offset + os->addr - first->addr; 2530 } 2531 2532 template <class ELFT> void Writer<ELFT>::assignFileOffsetsBinary() { 2533 // Compute the minimum LMA of all non-empty non-NOBITS sections as minAddr. 2534 auto needsOffset = [](OutputSection &sec) { 2535 return sec.type != SHT_NOBITS && (sec.flags & SHF_ALLOC) && sec.size > 0; 2536 }; 2537 uint64_t minAddr = UINT64_MAX; 2538 for (OutputSection *sec : outputSections) 2539 if (needsOffset(*sec)) { 2540 sec->offset = sec->getLMA(); 2541 minAddr = std::min(minAddr, sec->offset); 2542 } 2543 2544 // Sections are laid out at LMA minus minAddr. 2545 fileSize = 0; 2546 for (OutputSection *sec : outputSections) 2547 if (needsOffset(*sec)) { 2548 sec->offset -= minAddr; 2549 fileSize = std::max(fileSize, sec->offset + sec->size); 2550 } 2551 } 2552 2553 static std::string rangeToString(uint64_t addr, uint64_t len) { 2554 return "[0x" + utohexstr(addr) + ", 0x" + utohexstr(addr + len - 1) + "]"; 2555 } 2556 2557 // Assign file offsets to output sections. 2558 template <class ELFT> void Writer<ELFT>::assignFileOffsets() { 2559 Out::programHeaders->offset = Out::elfHeader->size; 2560 uint64_t off = Out::elfHeader->size + Out::programHeaders->size; 2561 2562 PhdrEntry *lastRX = nullptr; 2563 for (Partition &part : partitions) 2564 for (PhdrEntry *p : part.phdrs) 2565 if (p->p_type == PT_LOAD && (p->p_flags & PF_X)) 2566 lastRX = p; 2567 2568 // Layout SHF_ALLOC sections before non-SHF_ALLOC sections. A non-SHF_ALLOC 2569 // will not occupy file offsets contained by a PT_LOAD. 2570 for (OutputSection *sec : outputSections) { 2571 if (!(sec->flags & SHF_ALLOC)) 2572 continue; 2573 off = computeFileOffset(sec, off); 2574 sec->offset = off; 2575 if (sec->type != SHT_NOBITS) 2576 off += sec->size; 2577 2578 // If this is a last section of the last executable segment and that 2579 // segment is the last loadable segment, align the offset of the 2580 // following section to avoid loading non-segments parts of the file. 2581 if (config->zSeparate != SeparateSegmentKind::None && lastRX && 2582 lastRX->lastSec == sec) 2583 off = alignTo(off, config->maxPageSize); 2584 } 2585 for (OutputSection *osec : outputSections) 2586 if (!(osec->flags & SHF_ALLOC)) { 2587 osec->offset = alignTo(off, osec->alignment); 2588 off = osec->offset + osec->size; 2589 } 2590 2591 sectionHeaderOff = alignTo(off, config->wordsize); 2592 fileSize = sectionHeaderOff + (outputSections.size() + 1) * sizeof(Elf_Shdr); 2593 2594 // Our logic assumes that sections have rising VA within the same segment. 2595 // With use of linker scripts it is possible to violate this rule and get file 2596 // offset overlaps or overflows. That should never happen with a valid script 2597 // which does not move the location counter backwards and usually scripts do 2598 // not do that. Unfortunately, there are apps in the wild, for example, Linux 2599 // kernel, which control segment distribution explicitly and move the counter 2600 // backwards, so we have to allow doing that to support linking them. We 2601 // perform non-critical checks for overlaps in checkSectionOverlap(), but here 2602 // we want to prevent file size overflows because it would crash the linker. 2603 for (OutputSection *sec : outputSections) { 2604 if (sec->type == SHT_NOBITS) 2605 continue; 2606 if ((sec->offset > fileSize) || (sec->offset + sec->size > fileSize)) 2607 error("unable to place section " + sec->name + " at file offset " + 2608 rangeToString(sec->offset, sec->size) + 2609 "; check your linker script for overflows"); 2610 } 2611 } 2612 2613 // Finalize the program headers. We call this function after we assign 2614 // file offsets and VAs to all sections. 2615 template <class ELFT> void Writer<ELFT>::setPhdrs(Partition &part) { 2616 for (PhdrEntry *p : part.phdrs) { 2617 OutputSection *first = p->firstSec; 2618 OutputSection *last = p->lastSec; 2619 2620 if (first) { 2621 p->p_filesz = last->offset - first->offset; 2622 if (last->type != SHT_NOBITS) 2623 p->p_filesz += last->size; 2624 2625 p->p_memsz = last->addr + last->size - first->addr; 2626 p->p_offset = first->offset; 2627 p->p_vaddr = first->addr; 2628 2629 // File offsets in partitions other than the main partition are relative 2630 // to the offset of the ELF headers. Perform that adjustment now. 2631 if (part.elfHeader) 2632 p->p_offset -= part.elfHeader->getParent()->offset; 2633 2634 if (!p->hasLMA) 2635 p->p_paddr = first->getLMA(); 2636 } 2637 2638 if (p->p_type == PT_GNU_RELRO) { 2639 p->p_align = 1; 2640 // musl/glibc ld.so rounds the size down, so we need to round up 2641 // to protect the last page. This is a no-op on FreeBSD which always 2642 // rounds up. 2643 p->p_memsz = alignTo(p->p_offset + p->p_memsz, config->commonPageSize) - 2644 p->p_offset; 2645 } 2646 } 2647 } 2648 2649 // A helper struct for checkSectionOverlap. 2650 namespace { 2651 struct SectionOffset { 2652 OutputSection *sec; 2653 uint64_t offset; 2654 }; 2655 } // namespace 2656 2657 // Check whether sections overlap for a specific address range (file offsets, 2658 // load and virtual addresses). 2659 static void checkOverlap(StringRef name, std::vector<SectionOffset> §ions, 2660 bool isVirtualAddr) { 2661 llvm::sort(sections, [=](const SectionOffset &a, const SectionOffset &b) { 2662 return a.offset < b.offset; 2663 }); 2664 2665 // Finding overlap is easy given a vector is sorted by start position. 2666 // If an element starts before the end of the previous element, they overlap. 2667 for (size_t i = 1, end = sections.size(); i < end; ++i) { 2668 SectionOffset a = sections[i - 1]; 2669 SectionOffset b = sections[i]; 2670 if (b.offset >= a.offset + a.sec->size) 2671 continue; 2672 2673 // If both sections are in OVERLAY we allow the overlapping of virtual 2674 // addresses, because it is what OVERLAY was designed for. 2675 if (isVirtualAddr && a.sec->inOverlay && b.sec->inOverlay) 2676 continue; 2677 2678 errorOrWarn("section " + a.sec->name + " " + name + 2679 " range overlaps with " + b.sec->name + "\n>>> " + a.sec->name + 2680 " range is " + rangeToString(a.offset, a.sec->size) + "\n>>> " + 2681 b.sec->name + " range is " + 2682 rangeToString(b.offset, b.sec->size)); 2683 } 2684 } 2685 2686 // Check for overlapping sections and address overflows. 2687 // 2688 // In this function we check that none of the output sections have overlapping 2689 // file offsets. For SHF_ALLOC sections we also check that the load address 2690 // ranges and the virtual address ranges don't overlap 2691 template <class ELFT> void Writer<ELFT>::checkSections() { 2692 // First, check that section's VAs fit in available address space for target. 2693 for (OutputSection *os : outputSections) 2694 if ((os->addr + os->size < os->addr) || 2695 (!ELFT::Is64Bits && os->addr + os->size > UINT32_MAX)) 2696 errorOrWarn("section " + os->name + " at 0x" + utohexstr(os->addr) + 2697 " of size 0x" + utohexstr(os->size) + 2698 " exceeds available address space"); 2699 2700 // Check for overlapping file offsets. In this case we need to skip any 2701 // section marked as SHT_NOBITS. These sections don't actually occupy space in 2702 // the file so Sec->Offset + Sec->Size can overlap with others. If --oformat 2703 // binary is specified only add SHF_ALLOC sections are added to the output 2704 // file so we skip any non-allocated sections in that case. 2705 std::vector<SectionOffset> fileOffs; 2706 for (OutputSection *sec : outputSections) 2707 if (sec->size > 0 && sec->type != SHT_NOBITS && 2708 (!config->oFormatBinary || (sec->flags & SHF_ALLOC))) 2709 fileOffs.push_back({sec, sec->offset}); 2710 checkOverlap("file", fileOffs, false); 2711 2712 // When linking with -r there is no need to check for overlapping virtual/load 2713 // addresses since those addresses will only be assigned when the final 2714 // executable/shared object is created. 2715 if (config->relocatable) 2716 return; 2717 2718 // Checking for overlapping virtual and load addresses only needs to take 2719 // into account SHF_ALLOC sections since others will not be loaded. 2720 // Furthermore, we also need to skip SHF_TLS sections since these will be 2721 // mapped to other addresses at runtime and can therefore have overlapping 2722 // ranges in the file. 2723 std::vector<SectionOffset> vmas; 2724 for (OutputSection *sec : outputSections) 2725 if (sec->size > 0 && (sec->flags & SHF_ALLOC) && !(sec->flags & SHF_TLS)) 2726 vmas.push_back({sec, sec->addr}); 2727 checkOverlap("virtual address", vmas, true); 2728 2729 // Finally, check that the load addresses don't overlap. This will usually be 2730 // the same as the virtual addresses but can be different when using a linker 2731 // script with AT(). 2732 std::vector<SectionOffset> lmas; 2733 for (OutputSection *sec : outputSections) 2734 if (sec->size > 0 && (sec->flags & SHF_ALLOC) && !(sec->flags & SHF_TLS)) 2735 lmas.push_back({sec, sec->getLMA()}); 2736 checkOverlap("load address", lmas, false); 2737 } 2738 2739 // The entry point address is chosen in the following ways. 2740 // 2741 // 1. the '-e' entry command-line option; 2742 // 2. the ENTRY(symbol) command in a linker control script; 2743 // 3. the value of the symbol _start, if present; 2744 // 4. the number represented by the entry symbol, if it is a number; 2745 // 5. the address 0. 2746 static uint64_t getEntryAddr() { 2747 // Case 1, 2 or 3 2748 if (Symbol *b = symtab->find(config->entry)) 2749 return b->getVA(); 2750 2751 // Case 4 2752 uint64_t addr; 2753 if (to_integer(config->entry, addr)) 2754 return addr; 2755 2756 // Case 5 2757 if (config->warnMissingEntry) 2758 warn("cannot find entry symbol " + config->entry + 2759 "; not setting start address"); 2760 return 0; 2761 } 2762 2763 static uint16_t getELFType() { 2764 if (config->isPic) 2765 return ET_DYN; 2766 if (config->relocatable) 2767 return ET_REL; 2768 return ET_EXEC; 2769 } 2770 2771 template <class ELFT> void Writer<ELFT>::writeHeader() { 2772 writeEhdr<ELFT>(Out::bufferStart, *mainPart); 2773 writePhdrs<ELFT>(Out::bufferStart + sizeof(Elf_Ehdr), *mainPart); 2774 2775 auto *eHdr = reinterpret_cast<Elf_Ehdr *>(Out::bufferStart); 2776 eHdr->e_type = getELFType(); 2777 eHdr->e_entry = getEntryAddr(); 2778 eHdr->e_shoff = sectionHeaderOff; 2779 2780 // Write the section header table. 2781 // 2782 // The ELF header can only store numbers up to SHN_LORESERVE in the e_shnum 2783 // and e_shstrndx fields. When the value of one of these fields exceeds 2784 // SHN_LORESERVE ELF requires us to put sentinel values in the ELF header and 2785 // use fields in the section header at index 0 to store 2786 // the value. The sentinel values and fields are: 2787 // e_shnum = 0, SHdrs[0].sh_size = number of sections. 2788 // e_shstrndx = SHN_XINDEX, SHdrs[0].sh_link = .shstrtab section index. 2789 auto *sHdrs = reinterpret_cast<Elf_Shdr *>(Out::bufferStart + eHdr->e_shoff); 2790 size_t num = outputSections.size() + 1; 2791 if (num >= SHN_LORESERVE) 2792 sHdrs->sh_size = num; 2793 else 2794 eHdr->e_shnum = num; 2795 2796 uint32_t strTabIndex = in.shStrTab->getParent()->sectionIndex; 2797 if (strTabIndex >= SHN_LORESERVE) { 2798 sHdrs->sh_link = strTabIndex; 2799 eHdr->e_shstrndx = SHN_XINDEX; 2800 } else { 2801 eHdr->e_shstrndx = strTabIndex; 2802 } 2803 2804 for (OutputSection *sec : outputSections) 2805 sec->writeHeaderTo<ELFT>(++sHdrs); 2806 } 2807 2808 // Open a result file. 2809 template <class ELFT> void Writer<ELFT>::openFile() { 2810 uint64_t maxSize = config->is64 ? INT64_MAX : UINT32_MAX; 2811 if (fileSize != size_t(fileSize) || maxSize < fileSize) { 2812 std::string msg; 2813 raw_string_ostream s(msg); 2814 s << "output file too large: " << Twine(fileSize) << " bytes\n" 2815 << "section sizes:\n"; 2816 for (OutputSection *os : outputSections) 2817 s << os->name << ' ' << os->size << "\n"; 2818 error(s.str()); 2819 return; 2820 } 2821 2822 unlinkAsync(config->outputFile); 2823 unsigned flags = 0; 2824 if (!config->relocatable) 2825 flags |= FileOutputBuffer::F_executable; 2826 if (!config->mmapOutputFile) 2827 flags |= FileOutputBuffer::F_no_mmap; 2828 Expected<std::unique_ptr<FileOutputBuffer>> bufferOrErr = 2829 FileOutputBuffer::create(config->outputFile, fileSize, flags); 2830 2831 if (!bufferOrErr) { 2832 error("failed to open " + config->outputFile + ": " + 2833 llvm::toString(bufferOrErr.takeError())); 2834 return; 2835 } 2836 buffer = std::move(*bufferOrErr); 2837 Out::bufferStart = buffer->getBufferStart(); 2838 } 2839 2840 template <class ELFT> void Writer<ELFT>::writeSectionsBinary() { 2841 for (OutputSection *sec : outputSections) 2842 if (sec->flags & SHF_ALLOC) 2843 sec->writeTo<ELFT>(Out::bufferStart + sec->offset); 2844 } 2845 2846 static void fillTrap(uint8_t *i, uint8_t *end) { 2847 for (; i + 4 <= end; i += 4) 2848 memcpy(i, &target->trapInstr, 4); 2849 } 2850 2851 // Fill the last page of executable segments with trap instructions 2852 // instead of leaving them as zero. Even though it is not required by any 2853 // standard, it is in general a good thing to do for security reasons. 2854 // 2855 // We'll leave other pages in segments as-is because the rest will be 2856 // overwritten by output sections. 2857 template <class ELFT> void Writer<ELFT>::writeTrapInstr() { 2858 for (Partition &part : partitions) { 2859 // Fill the last page. 2860 for (PhdrEntry *p : part.phdrs) 2861 if (p->p_type == PT_LOAD && (p->p_flags & PF_X)) 2862 fillTrap(Out::bufferStart + alignDown(p->firstSec->offset + p->p_filesz, 2863 config->maxPageSize), 2864 Out::bufferStart + alignTo(p->firstSec->offset + p->p_filesz, 2865 config->maxPageSize)); 2866 2867 // Round up the file size of the last segment to the page boundary iff it is 2868 // an executable segment to ensure that other tools don't accidentally 2869 // trim the instruction padding (e.g. when stripping the file). 2870 PhdrEntry *last = nullptr; 2871 for (PhdrEntry *p : part.phdrs) 2872 if (p->p_type == PT_LOAD) 2873 last = p; 2874 2875 if (last && (last->p_flags & PF_X)) 2876 last->p_memsz = last->p_filesz = 2877 alignTo(last->p_filesz, config->maxPageSize); 2878 } 2879 } 2880 2881 // Write section contents to a mmap'ed file. 2882 template <class ELFT> void Writer<ELFT>::writeSections() { 2883 llvm::TimeTraceScope timeScope("Write sections"); 2884 2885 // In -r or --emit-relocs mode, write the relocation sections first as in 2886 // ELf_Rel targets we might find out that we need to modify the relocated 2887 // section while doing it. 2888 for (OutputSection *sec : outputSections) 2889 if (sec->type == SHT_REL || sec->type == SHT_RELA) 2890 sec->writeTo<ELFT>(Out::bufferStart + sec->offset); 2891 2892 for (OutputSection *sec : outputSections) 2893 if (sec->type != SHT_REL && sec->type != SHT_RELA) 2894 sec->writeTo<ELFT>(Out::bufferStart + sec->offset); 2895 2896 // Finally, check that all dynamic relocation addends were written correctly. 2897 if (config->checkDynamicRelocs && config->writeAddends) { 2898 for (OutputSection *sec : outputSections) 2899 if (sec->type == SHT_REL || sec->type == SHT_RELA) 2900 sec->checkDynRelAddends(Out::bufferStart); 2901 } 2902 } 2903 2904 // Computes a hash value of Data using a given hash function. 2905 // In order to utilize multiple cores, we first split data into 1MB 2906 // chunks, compute a hash for each chunk, and then compute a hash value 2907 // of the hash values. 2908 static void 2909 computeHash(llvm::MutableArrayRef<uint8_t> hashBuf, 2910 llvm::ArrayRef<uint8_t> data, 2911 std::function<void(uint8_t *dest, ArrayRef<uint8_t> arr)> hashFn) { 2912 std::vector<ArrayRef<uint8_t>> chunks = split(data, 1024 * 1024); 2913 std::vector<uint8_t> hashes(chunks.size() * hashBuf.size()); 2914 2915 // Compute hash values. 2916 parallelForEachN(0, chunks.size(), [&](size_t i) { 2917 hashFn(hashes.data() + i * hashBuf.size(), chunks[i]); 2918 }); 2919 2920 // Write to the final output buffer. 2921 hashFn(hashBuf.data(), hashes); 2922 } 2923 2924 template <class ELFT> void Writer<ELFT>::writeBuildId() { 2925 if (!mainPart->buildId || !mainPart->buildId->getParent()) 2926 return; 2927 2928 if (config->buildId == BuildIdKind::Hexstring) { 2929 for (Partition &part : partitions) 2930 part.buildId->writeBuildId(config->buildIdVector); 2931 return; 2932 } 2933 2934 // Compute a hash of all sections of the output file. 2935 size_t hashSize = mainPart->buildId->hashSize; 2936 std::vector<uint8_t> buildId(hashSize); 2937 llvm::ArrayRef<uint8_t> buf{Out::bufferStart, size_t(fileSize)}; 2938 2939 switch (config->buildId) { 2940 case BuildIdKind::Fast: 2941 computeHash(buildId, buf, [](uint8_t *dest, ArrayRef<uint8_t> arr) { 2942 write64le(dest, xxHash64(arr)); 2943 }); 2944 break; 2945 case BuildIdKind::Md5: 2946 computeHash(buildId, buf, [&](uint8_t *dest, ArrayRef<uint8_t> arr) { 2947 memcpy(dest, MD5::hash(arr).data(), hashSize); 2948 }); 2949 break; 2950 case BuildIdKind::Sha1: 2951 computeHash(buildId, buf, [&](uint8_t *dest, ArrayRef<uint8_t> arr) { 2952 memcpy(dest, SHA1::hash(arr).data(), hashSize); 2953 }); 2954 break; 2955 case BuildIdKind::Uuid: 2956 if (auto ec = llvm::getRandomBytes(buildId.data(), hashSize)) 2957 error("entropy source failure: " + ec.message()); 2958 break; 2959 default: 2960 llvm_unreachable("unknown BuildIdKind"); 2961 } 2962 for (Partition &part : partitions) 2963 part.buildId->writeBuildId(buildId); 2964 } 2965 2966 template void elf::createSyntheticSections<ELF32LE>(); 2967 template void elf::createSyntheticSections<ELF32BE>(); 2968 template void elf::createSyntheticSections<ELF64LE>(); 2969 template void elf::createSyntheticSections<ELF64BE>(); 2970 2971 template void elf::writeResult<ELF32LE>(); 2972 template void elf::writeResult<ELF32BE>(); 2973 template void elf::writeResult<ELF64LE>(); 2974 template void elf::writeResult<ELF64BE>(); 2975