1 //===- LinkerScript.cpp ---------------------------------------------------===// 2 // 3 // The LLVM Linker 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This file contains the parser/evaluator of the linker script. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "LinkerScript.h" 15 #include "Config.h" 16 #include "Driver.h" 17 #include "InputSection.h" 18 #include "Memory.h" 19 #include "OutputSections.h" 20 #include "ScriptParser.h" 21 #include "Strings.h" 22 #include "SymbolTable.h" 23 #include "Symbols.h" 24 #include "SyntheticSections.h" 25 #include "Target.h" 26 #include "Writer.h" 27 #include "llvm/ADT/STLExtras.h" 28 #include "llvm/ADT/SmallString.h" 29 #include "llvm/ADT/StringRef.h" 30 #include "llvm/ADT/StringSwitch.h" 31 #include "llvm/Support/Casting.h" 32 #include "llvm/Support/ELF.h" 33 #include "llvm/Support/Endian.h" 34 #include "llvm/Support/ErrorHandling.h" 35 #include "llvm/Support/FileSystem.h" 36 #include "llvm/Support/MathExtras.h" 37 #include "llvm/Support/Path.h" 38 #include <algorithm> 39 #include <cassert> 40 #include <cstddef> 41 #include <cstdint> 42 #include <iterator> 43 #include <limits> 44 #include <memory> 45 #include <string> 46 #include <tuple> 47 #include <vector> 48 49 using namespace llvm; 50 using namespace llvm::ELF; 51 using namespace llvm::object; 52 using namespace llvm::support::endian; 53 using namespace lld; 54 using namespace lld::elf; 55 56 LinkerScriptBase *elf::ScriptBase; 57 ScriptConfiguration *elf::ScriptConfig; 58 59 template <class ELFT> static SymbolBody *addRegular(SymbolAssignment *Cmd) { 60 uint8_t Visibility = Cmd->Hidden ? STV_HIDDEN : STV_DEFAULT; 61 Symbol *Sym = Symtab<ELFT>::X->addUndefined( 62 Cmd->Name, /*IsLocal=*/false, STB_GLOBAL, Visibility, 63 /*Type*/ 0, 64 /*CanOmitFromDynSym*/ false, /*File*/ nullptr); 65 66 replaceBody<DefinedRegular<ELFT>>(Sym, Cmd->Name, /*IsLocal=*/false, 67 Visibility, STT_NOTYPE, 0, 0, nullptr, 68 nullptr); 69 return Sym->body(); 70 } 71 72 template <class ELFT> static SymbolBody *addSynthetic(SymbolAssignment *Cmd) { 73 uint8_t Visibility = Cmd->Hidden ? STV_HIDDEN : STV_DEFAULT; 74 const OutputSectionBase *Sec = 75 ScriptConfig->HasSections ? nullptr : Cmd->Expression.Section(); 76 Symbol *Sym = Symtab<ELFT>::X->addUndefined( 77 Cmd->Name, /*IsLocal=*/false, STB_GLOBAL, Visibility, 78 /*Type*/ 0, 79 /*CanOmitFromDynSym*/ false, /*File*/ nullptr); 80 81 replaceBody<DefinedSynthetic>(Sym, Cmd->Name, 0, Sec); 82 return Sym->body(); 83 } 84 85 static bool isUnderSysroot(StringRef Path) { 86 if (Config->Sysroot == "") 87 return false; 88 for (; !Path.empty(); Path = sys::path::parent_path(Path)) 89 if (sys::fs::equivalent(Config->Sysroot, Path)) 90 return true; 91 return false; 92 } 93 94 template <class ELFT> static void assignSymbol(SymbolAssignment *Cmd) { 95 // If there are sections, then let the value be assigned later in 96 // `assignAddresses`. 97 if (ScriptConfig->HasSections) 98 return; 99 100 uint64_t Value = Cmd->Expression(0); 101 if (Cmd->Expression.IsAbsolute()) { 102 cast<DefinedRegular<ELFT>>(Cmd->Sym)->Value = Value; 103 } else { 104 const OutputSectionBase *Sec = Cmd->Expression.Section(); 105 if (Sec) 106 cast<DefinedSynthetic>(Cmd->Sym)->Value = Value - Sec->Addr; 107 } 108 } 109 110 template <class ELFT> static void addSymbol(SymbolAssignment *Cmd) { 111 if (Cmd->Name == ".") 112 return; 113 114 // If a symbol was in PROVIDE(), we need to define it only when 115 // it is a referenced undefined symbol. 116 SymbolBody *B = Symtab<ELFT>::X->find(Cmd->Name); 117 if (Cmd->Provide && (!B || B->isDefined())) 118 return; 119 120 // Otherwise, create a new symbol if one does not exist or an 121 // undefined one does exist. 122 if (Cmd->Expression.IsAbsolute()) 123 Cmd->Sym = addRegular<ELFT>(Cmd); 124 else 125 Cmd->Sym = addSynthetic<ELFT>(Cmd); 126 assignSymbol<ELFT>(Cmd); 127 } 128 129 bool SymbolAssignment::classof(const BaseCommand *C) { 130 return C->Kind == AssignmentKind; 131 } 132 133 bool OutputSectionCommand::classof(const BaseCommand *C) { 134 return C->Kind == OutputSectionKind; 135 } 136 137 bool InputSectionDescription::classof(const BaseCommand *C) { 138 return C->Kind == InputSectionKind; 139 } 140 141 bool AssertCommand::classof(const BaseCommand *C) { 142 return C->Kind == AssertKind; 143 } 144 145 bool BytesDataCommand::classof(const BaseCommand *C) { 146 return C->Kind == BytesDataKind; 147 } 148 149 template <class ELFT> LinkerScript<ELFT>::LinkerScript() = default; 150 template <class ELFT> LinkerScript<ELFT>::~LinkerScript() = default; 151 152 template <class ELFT> static StringRef basename(InputSectionBase<ELFT> *S) { 153 if (S->getFile()) 154 return sys::path::filename(S->getFile()->getName()); 155 return ""; 156 } 157 158 template <class ELFT> 159 bool LinkerScript<ELFT>::shouldKeep(InputSectionBase<ELFT> *S) { 160 for (InputSectionDescription *ID : Opt.KeptSections) 161 if (ID->FilePat.match(basename(S))) 162 for (SectionPattern &P : ID->SectionPatterns) 163 if (P.SectionPat.match(S->Name)) 164 return true; 165 return false; 166 } 167 168 static bool comparePriority(InputSectionData *A, InputSectionData *B) { 169 return getPriority(A->Name) < getPriority(B->Name); 170 } 171 172 static bool compareName(InputSectionData *A, InputSectionData *B) { 173 return A->Name < B->Name; 174 } 175 176 static bool compareAlignment(InputSectionData *A, InputSectionData *B) { 177 // ">" is not a mistake. Larger alignments are placed before smaller 178 // alignments in order to reduce the amount of padding necessary. 179 // This is compatible with GNU. 180 return A->Alignment > B->Alignment; 181 } 182 183 static std::function<bool(InputSectionData *, InputSectionData *)> 184 getComparator(SortSectionPolicy K) { 185 switch (K) { 186 case SortSectionPolicy::Alignment: 187 return compareAlignment; 188 case SortSectionPolicy::Name: 189 return compareName; 190 case SortSectionPolicy::Priority: 191 return comparePriority; 192 default: 193 llvm_unreachable("unknown sort policy"); 194 } 195 } 196 197 template <class ELFT> 198 static bool matchConstraints(ArrayRef<InputSectionBase<ELFT> *> Sections, 199 ConstraintKind Kind) { 200 if (Kind == ConstraintKind::NoConstraint) 201 return true; 202 bool IsRW = llvm::any_of(Sections, [=](InputSectionData *Sec2) { 203 auto *Sec = static_cast<InputSectionBase<ELFT> *>(Sec2); 204 return Sec->Flags & SHF_WRITE; 205 }); 206 return (IsRW && Kind == ConstraintKind::ReadWrite) || 207 (!IsRW && Kind == ConstraintKind::ReadOnly); 208 } 209 210 static void sortSections(InputSectionData **Begin, InputSectionData **End, 211 SortSectionPolicy K) { 212 if (K != SortSectionPolicy::Default && K != SortSectionPolicy::None) 213 std::stable_sort(Begin, End, getComparator(K)); 214 } 215 216 // Compute and remember which sections the InputSectionDescription matches. 217 template <class ELFT> 218 void LinkerScript<ELFT>::computeInputSections(InputSectionDescription *I) { 219 // Collects all sections that satisfy constraints of I 220 // and attach them to I. 221 for (SectionPattern &Pat : I->SectionPatterns) { 222 size_t SizeBefore = I->Sections.size(); 223 224 for (InputSectionBase<ELFT> *S : Symtab<ELFT>::X->Sections) { 225 if (!S->Live || S->Assigned) 226 continue; 227 228 StringRef Filename = basename(S); 229 if (!I->FilePat.match(Filename) || Pat.ExcludedFilePat.match(Filename)) 230 continue; 231 if (!Pat.SectionPat.match(S->Name)) 232 continue; 233 I->Sections.push_back(S); 234 S->Assigned = true; 235 } 236 237 // Sort sections as instructed by SORT-family commands and --sort-section 238 // option. Because SORT-family commands can be nested at most two depth 239 // (e.g. SORT_BY_NAME(SORT_BY_ALIGNMENT(.text.*))) and because the command 240 // line option is respected even if a SORT command is given, the exact 241 // behavior we have here is a bit complicated. Here are the rules. 242 // 243 // 1. If two SORT commands are given, --sort-section is ignored. 244 // 2. If one SORT command is given, and if it is not SORT_NONE, 245 // --sort-section is handled as an inner SORT command. 246 // 3. If one SORT command is given, and if it is SORT_NONE, don't sort. 247 // 4. If no SORT command is given, sort according to --sort-section. 248 InputSectionData **Begin = I->Sections.data() + SizeBefore; 249 InputSectionData **End = I->Sections.data() + I->Sections.size(); 250 if (Pat.SortOuter != SortSectionPolicy::None) { 251 if (Pat.SortInner == SortSectionPolicy::Default) 252 sortSections(Begin, End, Config->SortSection); 253 else 254 sortSections(Begin, End, Pat.SortInner); 255 sortSections(Begin, End, Pat.SortOuter); 256 } 257 } 258 } 259 260 template <class ELFT> 261 void LinkerScript<ELFT>::discard(ArrayRef<InputSectionBase<ELFT> *> V) { 262 for (InputSectionBase<ELFT> *S : V) { 263 S->Live = false; 264 reportDiscarded(S); 265 } 266 } 267 268 template <class ELFT> 269 std::vector<InputSectionBase<ELFT> *> 270 LinkerScript<ELFT>::createInputSectionList(OutputSectionCommand &OutCmd) { 271 std::vector<InputSectionBase<ELFT> *> Ret; 272 273 for (const std::unique_ptr<BaseCommand> &Base : OutCmd.Commands) { 274 auto *Cmd = dyn_cast<InputSectionDescription>(Base.get()); 275 if (!Cmd) 276 continue; 277 computeInputSections(Cmd); 278 for (InputSectionData *S : Cmd->Sections) 279 Ret.push_back(static_cast<InputSectionBase<ELFT> *>(S)); 280 } 281 282 return Ret; 283 } 284 285 template <class ELFT> 286 void LinkerScript<ELFT>::addSection(OutputSectionFactory<ELFT> &Factory, 287 InputSectionBase<ELFT> *Sec, 288 StringRef Name) { 289 OutputSectionBase *OutSec; 290 bool IsNew; 291 std::tie(OutSec, IsNew) = Factory.create(Sec, Name); 292 if (IsNew) 293 OutputSections->push_back(OutSec); 294 OutSec->addSection(Sec); 295 } 296 297 template <class ELFT> 298 void LinkerScript<ELFT>::processCommands(OutputSectionFactory<ELFT> &Factory) { 299 for (unsigned I = 0; I < Opt.Commands.size(); ++I) { 300 auto Iter = Opt.Commands.begin() + I; 301 const std::unique_ptr<BaseCommand> &Base1 = *Iter; 302 303 // Handle symbol assignments outside of any output section. 304 if (auto *Cmd = dyn_cast<SymbolAssignment>(Base1.get())) { 305 addSymbol<ELFT>(Cmd); 306 continue; 307 } 308 309 if (auto *Cmd = dyn_cast<AssertCommand>(Base1.get())) { 310 // If we don't have SECTIONS then output sections have already been 311 // created by Writer<ELFT>. The LinkerScript<ELFT>::assignAddresses 312 // will not be called, so ASSERT should be evaluated now. 313 if (!Opt.HasSections) 314 Cmd->Expression(0); 315 continue; 316 } 317 318 if (auto *Cmd = dyn_cast<OutputSectionCommand>(Base1.get())) { 319 std::vector<InputSectionBase<ELFT> *> V = createInputSectionList(*Cmd); 320 321 // The output section name `/DISCARD/' is special. 322 // Any input section assigned to it is discarded. 323 if (Cmd->Name == "/DISCARD/") { 324 discard(V); 325 continue; 326 } 327 328 // This is for ONLY_IF_RO and ONLY_IF_RW. An output section directive 329 // ".foo : ONLY_IF_R[OW] { ... }" is handled only if all member input 330 // sections satisfy a given constraint. If not, a directive is handled 331 // as if it wasn't present from the beginning. 332 // 333 // Because we'll iterate over Commands many more times, the easiest 334 // way to "make it as if it wasn't present" is to just remove it. 335 if (!matchConstraints<ELFT>(V, Cmd->Constraint)) { 336 for (InputSectionBase<ELFT> *S : V) 337 S->Assigned = false; 338 Opt.Commands.erase(Iter); 339 --I; 340 continue; 341 } 342 343 // A directive may contain symbol definitions like this: 344 // ".foo : { ...; bar = .; }". Handle them. 345 for (const std::unique_ptr<BaseCommand> &Base : Cmd->Commands) 346 if (auto *OutCmd = dyn_cast<SymbolAssignment>(Base.get())) 347 addSymbol<ELFT>(OutCmd); 348 349 // Handle subalign (e.g. ".foo : SUBALIGN(32) { ... }"). If subalign 350 // is given, input sections are aligned to that value, whether the 351 // given value is larger or smaller than the original section alignment. 352 if (Cmd->SubalignExpr) { 353 uint32_t Subalign = Cmd->SubalignExpr(0); 354 for (InputSectionBase<ELFT> *S : V) 355 S->Alignment = Subalign; 356 } 357 358 // Add input sections to an output section. 359 for (InputSectionBase<ELFT> *S : V) 360 addSection(Factory, S, Cmd->Name); 361 } 362 } 363 } 364 365 // Add sections that didn't match any sections command. 366 template <class ELFT> 367 void LinkerScript<ELFT>::addOrphanSections( 368 OutputSectionFactory<ELFT> &Factory) { 369 for (InputSectionBase<ELFT> *S : Symtab<ELFT>::X->Sections) 370 if (S->Live && !S->OutSec) 371 addSection(Factory, S, getOutputSectionName(S->Name)); 372 } 373 374 // Sets value of a section-defined symbol. Two kinds of 375 // symbols are processed: synthetic symbols, whose value 376 // is an offset from beginning of section and regular 377 // symbols whose value is absolute. 378 template <class ELFT> 379 static void assignSectionSymbol(SymbolAssignment *Cmd, 380 typename ELFT::uint Value) { 381 if (!Cmd->Sym) 382 return; 383 384 if (auto *Body = dyn_cast<DefinedSynthetic>(Cmd->Sym)) { 385 Body->Section = Cmd->Expression.Section(); 386 Body->Value = Cmd->Expression(Value) - Body->Section->Addr; 387 return; 388 } 389 auto *Body = cast<DefinedRegular<ELFT>>(Cmd->Sym); 390 Body->Value = Cmd->Expression(Value); 391 } 392 393 template <class ELFT> static bool isTbss(OutputSectionBase *Sec) { 394 return (Sec->Flags & SHF_TLS) && Sec->Type == SHT_NOBITS; 395 } 396 397 template <class ELFT> void LinkerScript<ELFT>::output(InputSection<ELFT> *S) { 398 if (!AlreadyOutputIS.insert(S).second) 399 return; 400 bool IsTbss = isTbss<ELFT>(CurOutSec); 401 402 uintX_t Pos = IsTbss ? Dot + ThreadBssOffset : Dot; 403 Pos = alignTo(Pos, S->Alignment); 404 S->OutSecOff = Pos - CurOutSec->Addr; 405 Pos += S->getSize(); 406 407 // Update output section size after adding each section. This is so that 408 // SIZEOF works correctly in the case below: 409 // .foo { *(.aaa) a = SIZEOF(.foo); *(.bbb) } 410 CurOutSec->Size = Pos - CurOutSec->Addr; 411 412 if (IsTbss) 413 ThreadBssOffset = Pos - Dot; 414 else 415 Dot = Pos; 416 } 417 418 template <class ELFT> void LinkerScript<ELFT>::flush() { 419 if (!CurOutSec || !AlreadyOutputOS.insert(CurOutSec).second) 420 return; 421 if (auto *OutSec = dyn_cast<OutputSection<ELFT>>(CurOutSec)) { 422 for (InputSection<ELFT> *I : OutSec->Sections) 423 output(I); 424 } else { 425 Dot += CurOutSec->Size; 426 } 427 } 428 429 template <class ELFT> 430 void LinkerScript<ELFT>::switchTo(OutputSectionBase *Sec) { 431 if (CurOutSec == Sec) 432 return; 433 if (AlreadyOutputOS.count(Sec)) 434 return; 435 436 flush(); 437 CurOutSec = Sec; 438 439 Dot = alignTo(Dot, CurOutSec->Addralign); 440 CurOutSec->Addr = isTbss<ELFT>(CurOutSec) ? Dot + ThreadBssOffset : Dot; 441 442 // If neither AT nor AT> is specified for an allocatable section, the linker 443 // will set the LMA such that the difference between VMA and LMA for the 444 // section is the same as the preceding output section in the same region 445 // https://sourceware.org/binutils/docs-2.20/ld/Output-Section-LMA.html 446 CurOutSec->setLMAOffset(LMAOffset); 447 } 448 449 template <class ELFT> void LinkerScript<ELFT>::process(BaseCommand &Base) { 450 // This handles the assignments to symbol or to a location counter (.) 451 if (auto *AssignCmd = dyn_cast<SymbolAssignment>(&Base)) { 452 if (AssignCmd->Name == ".") { 453 // Update to location counter means update to section size. 454 uintX_t Val = AssignCmd->Expression(Dot); 455 if (Val < Dot) 456 error("unable to move location counter backward for: " + 457 CurOutSec->Name); 458 Dot = Val; 459 CurOutSec->Size = Dot - CurOutSec->Addr; 460 return; 461 } 462 assignSectionSymbol<ELFT>(AssignCmd, Dot); 463 return; 464 } 465 466 // Handle BYTE(), SHORT(), LONG(), or QUAD(). 467 if (auto *DataCmd = dyn_cast<BytesDataCommand>(&Base)) { 468 DataCmd->Offset = Dot - CurOutSec->Addr; 469 Dot += DataCmd->Size; 470 CurOutSec->Size = Dot - CurOutSec->Addr; 471 return; 472 } 473 474 if (auto *AssertCmd = dyn_cast<AssertCommand>(&Base)) { 475 AssertCmd->Expression(Dot); 476 return; 477 } 478 479 // It handles single input section description command, 480 // calculates and assigns the offsets for each section and also 481 // updates the output section size. 482 auto &ICmd = cast<InputSectionDescription>(Base); 483 for (InputSectionData *ID : ICmd.Sections) { 484 // We tentatively added all synthetic sections at the beginning and removed 485 // empty ones afterwards (because there is no way to know whether they were 486 // going be empty or not other than actually running linker scripts.) 487 // We need to ignore remains of empty sections. 488 if (auto *Sec = dyn_cast<SyntheticSection<ELFT>>(ID)) 489 if (Sec->empty()) 490 continue; 491 492 auto *IB = static_cast<InputSectionBase<ELFT> *>(ID); 493 switchTo(IB->OutSec); 494 if (auto *I = dyn_cast<InputSection<ELFT>>(IB)) 495 output(I); 496 else 497 flush(); 498 } 499 } 500 501 template <class ELFT> 502 static std::vector<OutputSectionBase *> 503 findSections(StringRef Name, const std::vector<OutputSectionBase *> &Sections) { 504 std::vector<OutputSectionBase *> Ret; 505 for (OutputSectionBase *Sec : Sections) 506 if (Sec->getName() == Name) 507 Ret.push_back(Sec); 508 return Ret; 509 } 510 511 // This function assigns offsets to input sections and an output section 512 // for a single sections command (e.g. ".text { *(.text); }"). 513 template <class ELFT> 514 void LinkerScript<ELFT>::assignOffsets(OutputSectionCommand *Cmd) { 515 if (Cmd->LMAExpr) 516 LMAOffset = Cmd->LMAExpr(Dot) - Dot; 517 std::vector<OutputSectionBase *> Sections = 518 findSections<ELFT>(Cmd->Name, *OutputSections); 519 if (Sections.empty()) 520 return; 521 switchTo(Sections[0]); 522 523 // Find the last section output location. We will output orphan sections 524 // there so that end symbols point to the correct location. 525 auto E = std::find_if(Cmd->Commands.rbegin(), Cmd->Commands.rend(), 526 [](const std::unique_ptr<BaseCommand> &Cmd) { 527 return !isa<SymbolAssignment>(*Cmd); 528 }) 529 .base(); 530 for (auto I = Cmd->Commands.begin(); I != E; ++I) 531 process(**I); 532 for (OutputSectionBase *Base : Sections) 533 switchTo(Base); 534 flush(); 535 std::for_each(E, Cmd->Commands.end(), 536 [this](std::unique_ptr<BaseCommand> &B) { process(*B.get()); }); 537 } 538 539 template <class ELFT> void LinkerScript<ELFT>::removeEmptyCommands() { 540 // It is common practice to use very generic linker scripts. So for any 541 // given run some of the output sections in the script will be empty. 542 // We could create corresponding empty output sections, but that would 543 // clutter the output. 544 // We instead remove trivially empty sections. The bfd linker seems even 545 // more aggressive at removing them. 546 auto Pos = std::remove_if( 547 Opt.Commands.begin(), Opt.Commands.end(), 548 [&](const std::unique_ptr<BaseCommand> &Base) { 549 if (auto *Cmd = dyn_cast<OutputSectionCommand>(Base.get())) 550 return findSections<ELFT>(Cmd->Name, *OutputSections).empty(); 551 return false; 552 }); 553 Opt.Commands.erase(Pos, Opt.Commands.end()); 554 } 555 556 static bool isAllSectionDescription(const OutputSectionCommand &Cmd) { 557 for (const std::unique_ptr<BaseCommand> &I : Cmd.Commands) 558 if (!isa<InputSectionDescription>(*I)) 559 return false; 560 return true; 561 } 562 563 template <class ELFT> void LinkerScript<ELFT>::adjustSectionsBeforeSorting() { 564 // If the output section contains only symbol assignments, create a 565 // corresponding output section. The bfd linker seems to only create them if 566 // '.' is assigned to, but creating these section should not have any bad 567 // consequeces and gives us a section to put the symbol in. 568 uintX_t Flags = SHF_ALLOC; 569 uint32_t Type = SHT_NOBITS; 570 for (const std::unique_ptr<BaseCommand> &Base : Opt.Commands) { 571 auto *Cmd = dyn_cast<OutputSectionCommand>(Base.get()); 572 if (!Cmd) 573 continue; 574 std::vector<OutputSectionBase *> Secs = 575 findSections<ELFT>(Cmd->Name, *OutputSections); 576 if (!Secs.empty()) { 577 Flags = Secs[0]->Flags; 578 Type = Secs[0]->Type; 579 continue; 580 } 581 582 if (isAllSectionDescription(*Cmd)) 583 continue; 584 585 auto *OutSec = make<OutputSection<ELFT>>(Cmd->Name, Type, Flags); 586 OutputSections->push_back(OutSec); 587 } 588 } 589 590 template <class ELFT> void LinkerScript<ELFT>::adjustSectionsAfterSorting() { 591 placeOrphanSections(); 592 593 // If output section command doesn't specify any segments, 594 // and we haven't previously assigned any section to segment, 595 // then we simply assign section to the very first load segment. 596 // Below is an example of such linker script: 597 // PHDRS { seg PT_LOAD; } 598 // SECTIONS { .aaa : { *(.aaa) } } 599 std::vector<StringRef> DefPhdrs; 600 auto FirstPtLoad = 601 std::find_if(Opt.PhdrsCommands.begin(), Opt.PhdrsCommands.end(), 602 [](const PhdrsCommand &Cmd) { return Cmd.Type == PT_LOAD; }); 603 if (FirstPtLoad != Opt.PhdrsCommands.end()) 604 DefPhdrs.push_back(FirstPtLoad->Name); 605 606 // Walk the commands and propagate the program headers to commands that don't 607 // explicitly specify them. 608 for (const std::unique_ptr<BaseCommand> &Base : Opt.Commands) { 609 auto *Cmd = dyn_cast<OutputSectionCommand>(Base.get()); 610 if (!Cmd) 611 continue; 612 if (Cmd->Phdrs.empty()) 613 Cmd->Phdrs = DefPhdrs; 614 else 615 DefPhdrs = Cmd->Phdrs; 616 } 617 618 removeEmptyCommands(); 619 } 620 621 // When placing orphan sections, we want to place them after symbol assignments 622 // so that an orphan after 623 // begin_foo = .; 624 // foo : { *(foo) } 625 // end_foo = .; 626 // doesn't break the intended meaning of the begin/end symbols. 627 // We don't want to go over sections since Writer<ELFT>::sortSections is the 628 // one in charge of deciding the order of the sections. 629 // We don't want to go over alignments, since doing so in 630 // rx_sec : { *(rx_sec) } 631 // . = ALIGN(0x1000); 632 // /* The RW PT_LOAD starts here*/ 633 // rw_sec : { *(rw_sec) } 634 // would mean that the RW PT_LOAD would become unaligned. 635 static bool shouldSkip(const BaseCommand &Cmd) { 636 if (isa<OutputSectionCommand>(Cmd)) 637 return false; 638 const auto *Assign = dyn_cast<SymbolAssignment>(&Cmd); 639 if (!Assign) 640 return true; 641 return Assign->Name != "."; 642 } 643 644 // Orphan sections are sections present in the input files which are not 645 // explicitly placed into the output file by the linker script. This just 646 // places them in the order already decided in OutputSections. 647 template <class ELFT> void LinkerScript<ELFT>::placeOrphanSections() { 648 // The OutputSections are already in the correct order. 649 // This loops creates or moves commands as needed so that they are in the 650 // correct order. 651 int CmdIndex = 0; 652 653 // As a horrible special case, skip the first . assignment if it is before any 654 // section. We do this because it is common to set a load address by starting 655 // the script with ". = 0xabcd" and the expectation is that every section is 656 // after that. 657 auto FirstSectionOrDotAssignment = 658 std::find_if(Opt.Commands.begin(), Opt.Commands.end(), 659 [](const std::unique_ptr<BaseCommand> &Cmd) { 660 if (isa<OutputSectionCommand>(*Cmd)) 661 return true; 662 const auto *Assign = dyn_cast<SymbolAssignment>(Cmd.get()); 663 if (!Assign) 664 return false; 665 return Assign->Name == "."; 666 }); 667 if (FirstSectionOrDotAssignment != Opt.Commands.end()) { 668 CmdIndex = FirstSectionOrDotAssignment - Opt.Commands.begin(); 669 if (isa<SymbolAssignment>(**FirstSectionOrDotAssignment)) 670 ++CmdIndex; 671 } 672 673 for (OutputSectionBase *Sec : *OutputSections) { 674 StringRef Name = Sec->getName(); 675 676 // Find the last spot where we can insert a command and still get the 677 // correct result. 678 auto CmdIter = Opt.Commands.begin() + CmdIndex; 679 auto E = Opt.Commands.end(); 680 while (CmdIter != E && shouldSkip(**CmdIter)) { 681 ++CmdIter; 682 ++CmdIndex; 683 } 684 685 auto Pos = 686 std::find_if(CmdIter, E, [&](const std::unique_ptr<BaseCommand> &Base) { 687 auto *Cmd = dyn_cast<OutputSectionCommand>(Base.get()); 688 return Cmd && Cmd->Name == Name; 689 }); 690 if (Pos == E) { 691 Opt.Commands.insert(CmdIter, 692 llvm::make_unique<OutputSectionCommand>(Name)); 693 ++CmdIndex; 694 continue; 695 } 696 697 // Continue from where we found it. 698 CmdIndex = (Pos - Opt.Commands.begin()) + 1; 699 } 700 } 701 702 template <class ELFT> 703 void LinkerScript<ELFT>::assignAddresses(std::vector<PhdrEntry> &Phdrs) { 704 // Assign addresses as instructed by linker script SECTIONS sub-commands. 705 Dot = 0; 706 707 for (const std::unique_ptr<BaseCommand> &Base : Opt.Commands) { 708 if (auto *Cmd = dyn_cast<SymbolAssignment>(Base.get())) { 709 if (Cmd->Name == ".") { 710 Dot = Cmd->Expression(Dot); 711 } else if (Cmd->Sym) { 712 assignSectionSymbol<ELFT>(Cmd, Dot); 713 } 714 continue; 715 } 716 717 if (auto *Cmd = dyn_cast<AssertCommand>(Base.get())) { 718 Cmd->Expression(Dot); 719 continue; 720 } 721 722 auto *Cmd = cast<OutputSectionCommand>(Base.get()); 723 if (Cmd->AddrExpr) 724 Dot = Cmd->AddrExpr(Dot); 725 assignOffsets(Cmd); 726 } 727 728 uintX_t MinVA = std::numeric_limits<uintX_t>::max(); 729 for (OutputSectionBase *Sec : *OutputSections) { 730 if (Sec->Flags & SHF_ALLOC) 731 MinVA = std::min<uint64_t>(MinVA, Sec->Addr); 732 else 733 Sec->Addr = 0; 734 } 735 736 uintX_t HeaderSize = getHeaderSize(); 737 // If the linker script doesn't have PHDRS, add ElfHeader and ProgramHeaders 738 // now that we know we have space. 739 if (HeaderSize <= MinVA && !hasPhdrsCommands()) 740 allocateHeaders<ELFT>(Phdrs, *OutputSections); 741 742 // ELF and Program headers need to be right before the first section in 743 // memory. Set their addresses accordingly. 744 MinVA = alignDown(MinVA - HeaderSize, Config->MaxPageSize); 745 Out<ELFT>::ElfHeader->Addr = MinVA; 746 Out<ELFT>::ProgramHeaders->Addr = Out<ELFT>::ElfHeader->Size + MinVA; 747 } 748 749 // Creates program headers as instructed by PHDRS linker script command. 750 template <class ELFT> std::vector<PhdrEntry> LinkerScript<ELFT>::createPhdrs() { 751 std::vector<PhdrEntry> Ret; 752 753 // Process PHDRS and FILEHDR keywords because they are not 754 // real output sections and cannot be added in the following loop. 755 for (const PhdrsCommand &Cmd : Opt.PhdrsCommands) { 756 Ret.emplace_back(Cmd.Type, Cmd.Flags == UINT_MAX ? PF_R : Cmd.Flags); 757 PhdrEntry &Phdr = Ret.back(); 758 759 if (Cmd.HasFilehdr) 760 Phdr.add(Out<ELFT>::ElfHeader); 761 if (Cmd.HasPhdrs) 762 Phdr.add(Out<ELFT>::ProgramHeaders); 763 764 if (Cmd.LMAExpr) { 765 Phdr.p_paddr = Cmd.LMAExpr(0); 766 Phdr.HasLMA = true; 767 } 768 } 769 770 // Add output sections to program headers. 771 for (OutputSectionBase *Sec : *OutputSections) { 772 if (!(Sec->Flags & SHF_ALLOC)) 773 break; 774 775 // Assign headers specified by linker script 776 for (size_t Id : getPhdrIndices(Sec->getName())) { 777 Ret[Id].add(Sec); 778 if (Opt.PhdrsCommands[Id].Flags == UINT_MAX) 779 Ret[Id].p_flags |= Sec->getPhdrFlags(); 780 } 781 } 782 return Ret; 783 } 784 785 template <class ELFT> bool LinkerScript<ELFT>::ignoreInterpSection() { 786 // Ignore .interp section in case we have PHDRS specification 787 // and PT_INTERP isn't listed. 788 return !Opt.PhdrsCommands.empty() && 789 llvm::find_if(Opt.PhdrsCommands, [](const PhdrsCommand &Cmd) { 790 return Cmd.Type == PT_INTERP; 791 }) == Opt.PhdrsCommands.end(); 792 } 793 794 template <class ELFT> uint32_t LinkerScript<ELFT>::getFiller(StringRef Name) { 795 for (const std::unique_ptr<BaseCommand> &Base : Opt.Commands) 796 if (auto *Cmd = dyn_cast<OutputSectionCommand>(Base.get())) 797 if (Cmd->Name == Name) 798 return Cmd->Filler; 799 return 0; 800 } 801 802 template <class ELFT> 803 static void writeInt(uint8_t *Buf, uint64_t Data, uint64_t Size) { 804 const endianness E = ELFT::TargetEndianness; 805 806 switch (Size) { 807 case 1: 808 *Buf = (uint8_t)Data; 809 break; 810 case 2: 811 write16<E>(Buf, Data); 812 break; 813 case 4: 814 write32<E>(Buf, Data); 815 break; 816 case 8: 817 write64<E>(Buf, Data); 818 break; 819 default: 820 llvm_unreachable("unsupported Size argument"); 821 } 822 } 823 824 template <class ELFT> 825 void LinkerScript<ELFT>::writeDataBytes(StringRef Name, uint8_t *Buf) { 826 int I = getSectionIndex(Name); 827 if (I == INT_MAX) 828 return; 829 830 auto *Cmd = dyn_cast<OutputSectionCommand>(Opt.Commands[I].get()); 831 for (const std::unique_ptr<BaseCommand> &Base : Cmd->Commands) 832 if (auto *Data = dyn_cast<BytesDataCommand>(Base.get())) 833 writeInt<ELFT>(Buf + Data->Offset, Data->Expression(0), Data->Size); 834 } 835 836 template <class ELFT> bool LinkerScript<ELFT>::hasLMA(StringRef Name) { 837 for (const std::unique_ptr<BaseCommand> &Base : Opt.Commands) 838 if (auto *Cmd = dyn_cast<OutputSectionCommand>(Base.get())) 839 if (Cmd->LMAExpr && Cmd->Name == Name) 840 return true; 841 return false; 842 } 843 844 // Returns the index of the given section name in linker script 845 // SECTIONS commands. Sections are laid out as the same order as they 846 // were in the script. If a given name did not appear in the script, 847 // it returns INT_MAX, so that it will be laid out at end of file. 848 template <class ELFT> int LinkerScript<ELFT>::getSectionIndex(StringRef Name) { 849 for (int I = 0, E = Opt.Commands.size(); I != E; ++I) 850 if (auto *Cmd = dyn_cast<OutputSectionCommand>(Opt.Commands[I].get())) 851 if (Cmd->Name == Name) 852 return I; 853 return INT_MAX; 854 } 855 856 template <class ELFT> bool LinkerScript<ELFT>::hasPhdrsCommands() { 857 return !Opt.PhdrsCommands.empty(); 858 } 859 860 template <class ELFT> 861 const OutputSectionBase *LinkerScript<ELFT>::getOutputSection(const Twine &Loc, 862 StringRef Name) { 863 static OutputSectionBase FakeSec("", 0, 0); 864 865 for (OutputSectionBase *Sec : *OutputSections) 866 if (Sec->getName() == Name) 867 return Sec; 868 869 error(Loc + ": undefined section " + Name); 870 return &FakeSec; 871 } 872 873 // This function is essentially the same as getOutputSection(Name)->Size, 874 // but it won't print out an error message if a given section is not found. 875 // 876 // Linker script does not create an output section if its content is empty. 877 // We want to allow SIZEOF(.foo) where .foo is a section which happened to 878 // be empty. That is why this function is different from getOutputSection(). 879 template <class ELFT> 880 uint64_t LinkerScript<ELFT>::getOutputSectionSize(StringRef Name) { 881 for (OutputSectionBase *Sec : *OutputSections) 882 if (Sec->getName() == Name) 883 return Sec->Size; 884 return 0; 885 } 886 887 template <class ELFT> uint64_t LinkerScript<ELFT>::getHeaderSize() { 888 return elf::getHeaderSize<ELFT>(); 889 } 890 891 template <class ELFT> 892 uint64_t LinkerScript<ELFT>::getSymbolValue(const Twine &Loc, StringRef S) { 893 if (SymbolBody *B = Symtab<ELFT>::X->find(S)) 894 return B->getVA<ELFT>(); 895 error(Loc + ": symbol not found: " + S); 896 return 0; 897 } 898 899 template <class ELFT> bool LinkerScript<ELFT>::isDefined(StringRef S) { 900 return Symtab<ELFT>::X->find(S) != nullptr; 901 } 902 903 template <class ELFT> bool LinkerScript<ELFT>::isAbsolute(StringRef S) { 904 SymbolBody *Sym = Symtab<ELFT>::X->find(S); 905 auto *DR = dyn_cast_or_null<DefinedRegular<ELFT>>(Sym); 906 return DR && !DR->Section; 907 } 908 909 // Gets section symbol belongs to. Symbol "." doesn't belong to any 910 // specific section but isn't absolute at the same time, so we try 911 // to find suitable section for it as well. 912 template <class ELFT> 913 const OutputSectionBase *LinkerScript<ELFT>::getSymbolSection(StringRef S) { 914 SymbolBody *Sym = Symtab<ELFT>::X->find(S); 915 if (!Sym) { 916 if (OutputSections->empty()) 917 return nullptr; 918 return CurOutSec ? CurOutSec : (*OutputSections)[0]; 919 } 920 921 return SymbolTableSection<ELFT>::getOutputSection(Sym); 922 } 923 924 // Returns indices of ELF headers containing specific section, identified 925 // by Name. Each index is a zero based number of ELF header listed within 926 // PHDRS {} script block. 927 template <class ELFT> 928 std::vector<size_t> LinkerScript<ELFT>::getPhdrIndices(StringRef SectionName) { 929 for (const std::unique_ptr<BaseCommand> &Base : Opt.Commands) { 930 auto *Cmd = dyn_cast<OutputSectionCommand>(Base.get()); 931 if (!Cmd || Cmd->Name != SectionName) 932 continue; 933 934 std::vector<size_t> Ret; 935 for (StringRef PhdrName : Cmd->Phdrs) 936 Ret.push_back(getPhdrIndex(Cmd->Location, PhdrName)); 937 return Ret; 938 } 939 return {}; 940 } 941 942 template <class ELFT> 943 size_t LinkerScript<ELFT>::getPhdrIndex(const Twine &Loc, StringRef PhdrName) { 944 size_t I = 0; 945 for (PhdrsCommand &Cmd : Opt.PhdrsCommands) { 946 if (Cmd.Name == PhdrName) 947 return I; 948 ++I; 949 } 950 error(Loc + ": section header '" + PhdrName + "' is not listed in PHDRS"); 951 return 0; 952 } 953 954 class elf::ScriptParser final : public ScriptParserBase { 955 typedef void (ScriptParser::*Handler)(); 956 957 public: 958 ScriptParser(MemoryBufferRef MB) 959 : ScriptParserBase(MB), 960 IsUnderSysroot(isUnderSysroot(MB.getBufferIdentifier())) {} 961 962 void readLinkerScript(); 963 void readVersionScript(); 964 void readDynamicList(); 965 966 private: 967 void addFile(StringRef Path); 968 969 void readAsNeeded(); 970 void readEntry(); 971 void readExtern(); 972 void readGroup(); 973 void readInclude(); 974 void readOutput(); 975 void readOutputArch(); 976 void readOutputFormat(); 977 void readPhdrs(); 978 void readSearchDir(); 979 void readSections(); 980 void readVersion(); 981 void readVersionScriptCommand(); 982 983 SymbolAssignment *readAssignment(StringRef Name); 984 BytesDataCommand *readBytesDataCommand(StringRef Tok); 985 uint32_t readFill(); 986 OutputSectionCommand *readOutputSectionDescription(StringRef OutSec); 987 uint32_t readOutputSectionFiller(StringRef Tok); 988 std::vector<StringRef> readOutputSectionPhdrs(); 989 InputSectionDescription *readInputSectionDescription(StringRef Tok); 990 StringMatcher readFilePatterns(); 991 std::vector<SectionPattern> readInputSectionsList(); 992 InputSectionDescription *readInputSectionRules(StringRef FilePattern); 993 unsigned readPhdrType(); 994 SortSectionPolicy readSortKind(); 995 SymbolAssignment *readProvideHidden(bool Provide, bool Hidden); 996 SymbolAssignment *readProvideOrAssignment(StringRef Tok); 997 void readSort(); 998 Expr readAssert(); 999 1000 Expr readExpr(); 1001 Expr readExpr1(Expr Lhs, int MinPrec); 1002 StringRef readParenLiteral(); 1003 Expr readPrimary(); 1004 Expr readTernary(Expr Cond); 1005 Expr readParenExpr(); 1006 1007 // For parsing version script. 1008 std::vector<SymbolVersion> readVersionExtern(); 1009 void readAnonymousDeclaration(); 1010 void readVersionDeclaration(StringRef VerStr); 1011 std::vector<SymbolVersion> readSymbols(); 1012 void readLocals(); 1013 1014 ScriptConfiguration &Opt = *ScriptConfig; 1015 bool IsUnderSysroot; 1016 }; 1017 1018 void ScriptParser::readDynamicList() { 1019 expect("{"); 1020 readAnonymousDeclaration(); 1021 if (!atEOF()) 1022 setError("EOF expected, but got " + next()); 1023 } 1024 1025 void ScriptParser::readVersionScript() { 1026 readVersionScriptCommand(); 1027 if (!atEOF()) 1028 setError("EOF expected, but got " + next()); 1029 } 1030 1031 void ScriptParser::readVersionScriptCommand() { 1032 if (consume("{")) { 1033 readAnonymousDeclaration(); 1034 return; 1035 } 1036 1037 while (!atEOF() && !Error && peek() != "}") { 1038 StringRef VerStr = next(); 1039 if (VerStr == "{") { 1040 setError("anonymous version definition is used in " 1041 "combination with other version definitions"); 1042 return; 1043 } 1044 expect("{"); 1045 readVersionDeclaration(VerStr); 1046 } 1047 } 1048 1049 void ScriptParser::readVersion() { 1050 expect("{"); 1051 readVersionScriptCommand(); 1052 expect("}"); 1053 } 1054 1055 void ScriptParser::readLinkerScript() { 1056 while (!atEOF()) { 1057 StringRef Tok = next(); 1058 if (Tok == ";") 1059 continue; 1060 1061 if (Tok == "ASSERT") { 1062 Opt.Commands.emplace_back(new AssertCommand(readAssert())); 1063 } else if (Tok == "ENTRY") { 1064 readEntry(); 1065 } else if (Tok == "EXTERN") { 1066 readExtern(); 1067 } else if (Tok == "GROUP" || Tok == "INPUT") { 1068 readGroup(); 1069 } else if (Tok == "INCLUDE") { 1070 readInclude(); 1071 } else if (Tok == "OUTPUT") { 1072 readOutput(); 1073 } else if (Tok == "OUTPUT_ARCH") { 1074 readOutputArch(); 1075 } else if (Tok == "OUTPUT_FORMAT") { 1076 readOutputFormat(); 1077 } else if (Tok == "PHDRS") { 1078 readPhdrs(); 1079 } else if (Tok == "SEARCH_DIR") { 1080 readSearchDir(); 1081 } else if (Tok == "SECTIONS") { 1082 readSections(); 1083 } else if (Tok == "VERSION") { 1084 readVersion(); 1085 } else if (SymbolAssignment *Cmd = readProvideOrAssignment(Tok)) { 1086 Opt.Commands.emplace_back(Cmd); 1087 } else { 1088 setError("unknown directive: " + Tok); 1089 } 1090 } 1091 } 1092 1093 void ScriptParser::addFile(StringRef S) { 1094 if (IsUnderSysroot && S.startswith("/")) { 1095 SmallString<128> PathData; 1096 StringRef Path = (Config->Sysroot + S).toStringRef(PathData); 1097 if (sys::fs::exists(Path)) { 1098 Driver->addFile(Saver.save(Path)); 1099 return; 1100 } 1101 } 1102 1103 if (sys::path::is_absolute(S)) { 1104 Driver->addFile(S); 1105 } else if (S.startswith("=")) { 1106 if (Config->Sysroot.empty()) 1107 Driver->addFile(S.substr(1)); 1108 else 1109 Driver->addFile(Saver.save(Config->Sysroot + "/" + S.substr(1))); 1110 } else if (S.startswith("-l")) { 1111 Driver->addLibrary(S.substr(2)); 1112 } else if (sys::fs::exists(S)) { 1113 Driver->addFile(S); 1114 } else { 1115 if (Optional<std::string> Path = findFromSearchPaths(S)) 1116 Driver->addFile(Saver.save(*Path)); 1117 else 1118 setError("unable to find " + S); 1119 } 1120 } 1121 1122 void ScriptParser::readAsNeeded() { 1123 expect("("); 1124 bool Orig = Config->AsNeeded; 1125 Config->AsNeeded = true; 1126 while (!Error && !consume(")")) 1127 addFile(unquote(next())); 1128 Config->AsNeeded = Orig; 1129 } 1130 1131 void ScriptParser::readEntry() { 1132 // -e <symbol> takes predecence over ENTRY(<symbol>). 1133 expect("("); 1134 StringRef Tok = next(); 1135 if (Config->Entry.empty()) 1136 Config->Entry = Tok; 1137 expect(")"); 1138 } 1139 1140 void ScriptParser::readExtern() { 1141 expect("("); 1142 while (!Error && !consume(")")) 1143 Config->Undefined.push_back(next()); 1144 } 1145 1146 void ScriptParser::readGroup() { 1147 expect("("); 1148 while (!Error && !consume(")")) { 1149 StringRef Tok = next(); 1150 if (Tok == "AS_NEEDED") 1151 readAsNeeded(); 1152 else 1153 addFile(unquote(Tok)); 1154 } 1155 } 1156 1157 void ScriptParser::readInclude() { 1158 StringRef Tok = unquote(next()); 1159 1160 // https://sourceware.org/binutils/docs/ld/File-Commands.html: 1161 // The file will be searched for in the current directory, and in any 1162 // directory specified with the -L option. 1163 if (sys::fs::exists(Tok)) { 1164 if (Optional<MemoryBufferRef> MB = readFile(Tok)) 1165 tokenize(*MB); 1166 return; 1167 } 1168 if (Optional<std::string> Path = findFromSearchPaths(Tok)) { 1169 if (Optional<MemoryBufferRef> MB = readFile(*Path)) 1170 tokenize(*MB); 1171 return; 1172 } 1173 setError("cannot open " + Tok); 1174 } 1175 1176 void ScriptParser::readOutput() { 1177 // -o <file> takes predecence over OUTPUT(<file>). 1178 expect("("); 1179 StringRef Tok = next(); 1180 if (Config->OutputFile.empty()) 1181 Config->OutputFile = unquote(Tok); 1182 expect(")"); 1183 } 1184 1185 void ScriptParser::readOutputArch() { 1186 // Error checking only for now. 1187 expect("("); 1188 skip(); 1189 expect(")"); 1190 } 1191 1192 void ScriptParser::readOutputFormat() { 1193 // Error checking only for now. 1194 expect("("); 1195 skip(); 1196 StringRef Tok = next(); 1197 if (Tok == ")") 1198 return; 1199 if (Tok != ",") { 1200 setError("unexpected token: " + Tok); 1201 return; 1202 } 1203 skip(); 1204 expect(","); 1205 skip(); 1206 expect(")"); 1207 } 1208 1209 void ScriptParser::readPhdrs() { 1210 expect("{"); 1211 while (!Error && !consume("}")) { 1212 StringRef Tok = next(); 1213 Opt.PhdrsCommands.push_back( 1214 {Tok, PT_NULL, false, false, UINT_MAX, nullptr}); 1215 PhdrsCommand &PhdrCmd = Opt.PhdrsCommands.back(); 1216 1217 PhdrCmd.Type = readPhdrType(); 1218 do { 1219 Tok = next(); 1220 if (Tok == ";") 1221 break; 1222 if (Tok == "FILEHDR") 1223 PhdrCmd.HasFilehdr = true; 1224 else if (Tok == "PHDRS") 1225 PhdrCmd.HasPhdrs = true; 1226 else if (Tok == "AT") 1227 PhdrCmd.LMAExpr = readParenExpr(); 1228 else if (Tok == "FLAGS") { 1229 expect("("); 1230 // Passing 0 for the value of dot is a bit of a hack. It means that 1231 // we accept expressions like ".|1". 1232 PhdrCmd.Flags = readExpr()(0); 1233 expect(")"); 1234 } else 1235 setError("unexpected header attribute: " + Tok); 1236 } while (!Error); 1237 } 1238 } 1239 1240 void ScriptParser::readSearchDir() { 1241 expect("("); 1242 StringRef Tok = next(); 1243 if (!Config->Nostdlib) 1244 Config->SearchPaths.push_back(unquote(Tok)); 1245 expect(")"); 1246 } 1247 1248 void ScriptParser::readSections() { 1249 Opt.HasSections = true; 1250 // -no-rosegment is used to avoid placing read only non-executable sections in 1251 // their own segment. We do the same if SECTIONS command is present in linker 1252 // script. See comment for computeFlags(). 1253 Config->SingleRoRx = true; 1254 1255 expect("{"); 1256 while (!Error && !consume("}")) { 1257 StringRef Tok = next(); 1258 BaseCommand *Cmd = readProvideOrAssignment(Tok); 1259 if (!Cmd) { 1260 if (Tok == "ASSERT") 1261 Cmd = new AssertCommand(readAssert()); 1262 else 1263 Cmd = readOutputSectionDescription(Tok); 1264 } 1265 Opt.Commands.emplace_back(Cmd); 1266 } 1267 } 1268 1269 static int precedence(StringRef Op) { 1270 return StringSwitch<int>(Op) 1271 .Cases("*", "/", 5) 1272 .Cases("+", "-", 4) 1273 .Cases("<<", ">>", 3) 1274 .Cases("<", "<=", ">", ">=", "==", "!=", 2) 1275 .Cases("&", "|", 1) 1276 .Default(-1); 1277 } 1278 1279 StringMatcher ScriptParser::readFilePatterns() { 1280 std::vector<StringRef> V; 1281 while (!Error && !consume(")")) 1282 V.push_back(next()); 1283 return StringMatcher(V); 1284 } 1285 1286 SortSectionPolicy ScriptParser::readSortKind() { 1287 if (consume("SORT") || consume("SORT_BY_NAME")) 1288 return SortSectionPolicy::Name; 1289 if (consume("SORT_BY_ALIGNMENT")) 1290 return SortSectionPolicy::Alignment; 1291 if (consume("SORT_BY_INIT_PRIORITY")) 1292 return SortSectionPolicy::Priority; 1293 if (consume("SORT_NONE")) 1294 return SortSectionPolicy::None; 1295 return SortSectionPolicy::Default; 1296 } 1297 1298 // Method reads a list of sequence of excluded files and section globs given in 1299 // a following form: ((EXCLUDE_FILE(file_pattern+))? section_pattern+)+ 1300 // Example: *(.foo.1 EXCLUDE_FILE (*a.o) .foo.2 EXCLUDE_FILE (*b.o) .foo.3) 1301 // The semantics of that is next: 1302 // * Include .foo.1 from every file. 1303 // * Include .foo.2 from every file but a.o 1304 // * Include .foo.3 from every file but b.o 1305 std::vector<SectionPattern> ScriptParser::readInputSectionsList() { 1306 std::vector<SectionPattern> Ret; 1307 while (!Error && peek() != ")") { 1308 StringMatcher ExcludeFilePat; 1309 if (consume("EXCLUDE_FILE")) { 1310 expect("("); 1311 ExcludeFilePat = readFilePatterns(); 1312 } 1313 1314 std::vector<StringRef> V; 1315 while (!Error && peek() != ")" && peek() != "EXCLUDE_FILE") 1316 V.push_back(next()); 1317 1318 if (!V.empty()) 1319 Ret.push_back({std::move(ExcludeFilePat), StringMatcher(V)}); 1320 else 1321 setError("section pattern is expected"); 1322 } 1323 return Ret; 1324 } 1325 1326 // Reads contents of "SECTIONS" directive. That directive contains a 1327 // list of glob patterns for input sections. The grammar is as follows. 1328 // 1329 // <patterns> ::= <section-list> 1330 // | <sort> "(" <section-list> ")" 1331 // | <sort> "(" <sort> "(" <section-list> ")" ")" 1332 // 1333 // <sort> ::= "SORT" | "SORT_BY_NAME" | "SORT_BY_ALIGNMENT" 1334 // | "SORT_BY_INIT_PRIORITY" | "SORT_NONE" 1335 // 1336 // <section-list> is parsed by readInputSectionsList(). 1337 InputSectionDescription * 1338 ScriptParser::readInputSectionRules(StringRef FilePattern) { 1339 auto *Cmd = new InputSectionDescription(FilePattern); 1340 expect("("); 1341 while (!Error && !consume(")")) { 1342 SortSectionPolicy Outer = readSortKind(); 1343 SortSectionPolicy Inner = SortSectionPolicy::Default; 1344 std::vector<SectionPattern> V; 1345 if (Outer != SortSectionPolicy::Default) { 1346 expect("("); 1347 Inner = readSortKind(); 1348 if (Inner != SortSectionPolicy::Default) { 1349 expect("("); 1350 V = readInputSectionsList(); 1351 expect(")"); 1352 } else { 1353 V = readInputSectionsList(); 1354 } 1355 expect(")"); 1356 } else { 1357 V = readInputSectionsList(); 1358 } 1359 1360 for (SectionPattern &Pat : V) { 1361 Pat.SortInner = Inner; 1362 Pat.SortOuter = Outer; 1363 } 1364 1365 std::move(V.begin(), V.end(), std::back_inserter(Cmd->SectionPatterns)); 1366 } 1367 return Cmd; 1368 } 1369 1370 InputSectionDescription * 1371 ScriptParser::readInputSectionDescription(StringRef Tok) { 1372 // Input section wildcard can be surrounded by KEEP. 1373 // https://sourceware.org/binutils/docs/ld/Input-Section-Keep.html#Input-Section-Keep 1374 if (Tok == "KEEP") { 1375 expect("("); 1376 StringRef FilePattern = next(); 1377 InputSectionDescription *Cmd = readInputSectionRules(FilePattern); 1378 expect(")"); 1379 Opt.KeptSections.push_back(Cmd); 1380 return Cmd; 1381 } 1382 return readInputSectionRules(Tok); 1383 } 1384 1385 void ScriptParser::readSort() { 1386 expect("("); 1387 expect("CONSTRUCTORS"); 1388 expect(")"); 1389 } 1390 1391 Expr ScriptParser::readAssert() { 1392 expect("("); 1393 Expr E = readExpr(); 1394 expect(","); 1395 StringRef Msg = unquote(next()); 1396 expect(")"); 1397 return [=](uint64_t Dot) { 1398 uint64_t V = E(Dot); 1399 if (!V) 1400 error(Msg); 1401 return V; 1402 }; 1403 } 1404 1405 // Reads a FILL(expr) command. We handle the FILL command as an 1406 // alias for =fillexp section attribute, which is different from 1407 // what GNU linkers do. 1408 // https://sourceware.org/binutils/docs/ld/Output-Section-Data.html 1409 uint32_t ScriptParser::readFill() { 1410 expect("("); 1411 uint32_t V = readOutputSectionFiller(next()); 1412 expect(")"); 1413 expect(";"); 1414 return V; 1415 } 1416 1417 OutputSectionCommand * 1418 ScriptParser::readOutputSectionDescription(StringRef OutSec) { 1419 OutputSectionCommand *Cmd = new OutputSectionCommand(OutSec); 1420 Cmd->Location = getCurrentLocation(); 1421 1422 // Read an address expression. 1423 // https://sourceware.org/binutils/docs/ld/Output-Section-Address.html#Output-Section-Address 1424 if (peek() != ":") 1425 Cmd->AddrExpr = readExpr(); 1426 1427 expect(":"); 1428 1429 if (consume("AT")) 1430 Cmd->LMAExpr = readParenExpr(); 1431 if (consume("ALIGN")) 1432 Cmd->AlignExpr = readParenExpr(); 1433 if (consume("SUBALIGN")) 1434 Cmd->SubalignExpr = readParenExpr(); 1435 1436 // Parse constraints. 1437 if (consume("ONLY_IF_RO")) 1438 Cmd->Constraint = ConstraintKind::ReadOnly; 1439 if (consume("ONLY_IF_RW")) 1440 Cmd->Constraint = ConstraintKind::ReadWrite; 1441 expect("{"); 1442 1443 while (!Error && !consume("}")) { 1444 StringRef Tok = next(); 1445 if (SymbolAssignment *Assignment = readProvideOrAssignment(Tok)) { 1446 Cmd->Commands.emplace_back(Assignment); 1447 } else if (BytesDataCommand *Data = readBytesDataCommand(Tok)) { 1448 Cmd->Commands.emplace_back(Data); 1449 } else if (Tok == "ASSERT") { 1450 Cmd->Commands.emplace_back(new AssertCommand(readAssert())); 1451 expect(";"); 1452 } else if (Tok == "FILL") { 1453 Cmd->Filler = readFill(); 1454 } else if (Tok == "SORT") { 1455 readSort(); 1456 } else if (peek() == "(") { 1457 Cmd->Commands.emplace_back(readInputSectionDescription(Tok)); 1458 } else { 1459 setError("unknown command " + Tok); 1460 } 1461 } 1462 Cmd->Phdrs = readOutputSectionPhdrs(); 1463 1464 if (consume("=")) 1465 Cmd->Filler = readOutputSectionFiller(next()); 1466 else if (peek().startswith("=")) 1467 Cmd->Filler = readOutputSectionFiller(next().drop_front()); 1468 1469 return Cmd; 1470 } 1471 1472 // Read "=<number>" where <number> is an octal/decimal/hexadecimal number. 1473 // https://sourceware.org/binutils/docs/ld/Output-Section-Fill.html 1474 // 1475 // ld.gold is not fully compatible with ld.bfd. ld.bfd handles 1476 // hexstrings as blobs of arbitrary sizes, while ld.gold handles them 1477 // as 32-bit big-endian values. We will do the same as ld.gold does 1478 // because it's simpler than what ld.bfd does. 1479 uint32_t ScriptParser::readOutputSectionFiller(StringRef Tok) { 1480 uint32_t V; 1481 if (!Tok.getAsInteger(0, V)) 1482 return V; 1483 setError("invalid filler expression: " + Tok); 1484 return 0; 1485 } 1486 1487 SymbolAssignment *ScriptParser::readProvideHidden(bool Provide, bool Hidden) { 1488 expect("("); 1489 SymbolAssignment *Cmd = readAssignment(next()); 1490 Cmd->Provide = Provide; 1491 Cmd->Hidden = Hidden; 1492 expect(")"); 1493 expect(";"); 1494 return Cmd; 1495 } 1496 1497 SymbolAssignment *ScriptParser::readProvideOrAssignment(StringRef Tok) { 1498 SymbolAssignment *Cmd = nullptr; 1499 if (peek() == "=" || peek() == "+=") { 1500 Cmd = readAssignment(Tok); 1501 expect(";"); 1502 } else if (Tok == "PROVIDE") { 1503 Cmd = readProvideHidden(true, false); 1504 } else if (Tok == "HIDDEN") { 1505 Cmd = readProvideHidden(false, true); 1506 } else if (Tok == "PROVIDE_HIDDEN") { 1507 Cmd = readProvideHidden(true, true); 1508 } 1509 return Cmd; 1510 } 1511 1512 static uint64_t getSymbolValue(const Twine &Loc, StringRef S, uint64_t Dot) { 1513 if (S == ".") 1514 return Dot; 1515 return ScriptBase->getSymbolValue(Loc, S); 1516 } 1517 1518 static bool isAbsolute(StringRef S) { 1519 if (S == ".") 1520 return false; 1521 return ScriptBase->isAbsolute(S); 1522 } 1523 1524 SymbolAssignment *ScriptParser::readAssignment(StringRef Name) { 1525 StringRef Op = next(); 1526 Expr E; 1527 assert(Op == "=" || Op == "+="); 1528 if (consume("ABSOLUTE")) { 1529 // The RHS may be something like "ABSOLUTE(.) & 0xff". 1530 // Call readExpr1 to read the whole expression. 1531 E = readExpr1(readParenExpr(), 0); 1532 E.IsAbsolute = [] { return true; }; 1533 } else { 1534 E = readExpr(); 1535 } 1536 if (Op == "+=") { 1537 std::string Loc = getCurrentLocation(); 1538 E = [=](uint64_t Dot) { 1539 return getSymbolValue(Loc, Name, Dot) + E(Dot); 1540 }; 1541 } 1542 return new SymbolAssignment(Name, E); 1543 } 1544 1545 // This is an operator-precedence parser to parse a linker 1546 // script expression. 1547 Expr ScriptParser::readExpr() { return readExpr1(readPrimary(), 0); } 1548 1549 static Expr combine(StringRef Op, Expr L, Expr R) { 1550 if (Op == "*") 1551 return [=](uint64_t Dot) { return L(Dot) * R(Dot); }; 1552 if (Op == "/") { 1553 return [=](uint64_t Dot) -> uint64_t { 1554 uint64_t RHS = R(Dot); 1555 if (RHS == 0) { 1556 error("division by zero"); 1557 return 0; 1558 } 1559 return L(Dot) / RHS; 1560 }; 1561 } 1562 if (Op == "+") 1563 return {[=](uint64_t Dot) { return L(Dot) + R(Dot); }, 1564 [=] { return L.IsAbsolute() && R.IsAbsolute(); }, 1565 [=] { 1566 const OutputSectionBase *S = L.Section(); 1567 return S ? S : R.Section(); 1568 }}; 1569 if (Op == "-") 1570 return [=](uint64_t Dot) { return L(Dot) - R(Dot); }; 1571 if (Op == "<<") 1572 return [=](uint64_t Dot) { return L(Dot) << R(Dot); }; 1573 if (Op == ">>") 1574 return [=](uint64_t Dot) { return L(Dot) >> R(Dot); }; 1575 if (Op == "<") 1576 return [=](uint64_t Dot) { return L(Dot) < R(Dot); }; 1577 if (Op == ">") 1578 return [=](uint64_t Dot) { return L(Dot) > R(Dot); }; 1579 if (Op == ">=") 1580 return [=](uint64_t Dot) { return L(Dot) >= R(Dot); }; 1581 if (Op == "<=") 1582 return [=](uint64_t Dot) { return L(Dot) <= R(Dot); }; 1583 if (Op == "==") 1584 return [=](uint64_t Dot) { return L(Dot) == R(Dot); }; 1585 if (Op == "!=") 1586 return [=](uint64_t Dot) { return L(Dot) != R(Dot); }; 1587 if (Op == "&") 1588 return [=](uint64_t Dot) { return L(Dot) & R(Dot); }; 1589 if (Op == "|") 1590 return [=](uint64_t Dot) { return L(Dot) | R(Dot); }; 1591 llvm_unreachable("invalid operator"); 1592 } 1593 1594 // This is a part of the operator-precedence parser. This function 1595 // assumes that the remaining token stream starts with an operator. 1596 Expr ScriptParser::readExpr1(Expr Lhs, int MinPrec) { 1597 while (!atEOF() && !Error) { 1598 // Read an operator and an expression. 1599 if (consume("?")) 1600 return readTernary(Lhs); 1601 StringRef Op1 = peek(); 1602 if (precedence(Op1) < MinPrec) 1603 break; 1604 skip(); 1605 Expr Rhs = readPrimary(); 1606 1607 // Evaluate the remaining part of the expression first if the 1608 // next operator has greater precedence than the previous one. 1609 // For example, if we have read "+" and "3", and if the next 1610 // operator is "*", then we'll evaluate 3 * ... part first. 1611 while (!atEOF()) { 1612 StringRef Op2 = peek(); 1613 if (precedence(Op2) <= precedence(Op1)) 1614 break; 1615 Rhs = readExpr1(Rhs, precedence(Op2)); 1616 } 1617 1618 Lhs = combine(Op1, Lhs, Rhs); 1619 } 1620 return Lhs; 1621 } 1622 1623 uint64_t static getConstant(StringRef S) { 1624 if (S == "COMMONPAGESIZE") 1625 return Target->PageSize; 1626 if (S == "MAXPAGESIZE") 1627 return Config->MaxPageSize; 1628 error("unknown constant: " + S); 1629 return 0; 1630 } 1631 1632 // Parses Tok as an integer. Returns true if successful. 1633 // It recognizes hexadecimal (prefixed with "0x" or suffixed with "H") 1634 // and decimal numbers. Decimal numbers may have "K" (kilo) or 1635 // "M" (mega) prefixes. 1636 static bool readInteger(StringRef Tok, uint64_t &Result) { 1637 // Negative number 1638 if (Tok.startswith("-")) { 1639 if (!readInteger(Tok.substr(1), Result)) 1640 return false; 1641 Result = -Result; 1642 return true; 1643 } 1644 1645 // Hexadecimal 1646 if (Tok.startswith_lower("0x")) 1647 return !Tok.substr(2).getAsInteger(16, Result); 1648 if (Tok.endswith_lower("H")) 1649 return !Tok.drop_back().getAsInteger(16, Result); 1650 1651 // Decimal 1652 int Suffix = 1; 1653 if (Tok.endswith_lower("K")) { 1654 Suffix = 1024; 1655 Tok = Tok.drop_back(); 1656 } else if (Tok.endswith_lower("M")) { 1657 Suffix = 1024 * 1024; 1658 Tok = Tok.drop_back(); 1659 } 1660 if (Tok.getAsInteger(10, Result)) 1661 return false; 1662 Result *= Suffix; 1663 return true; 1664 } 1665 1666 BytesDataCommand *ScriptParser::readBytesDataCommand(StringRef Tok) { 1667 int Size = StringSwitch<unsigned>(Tok) 1668 .Case("BYTE", 1) 1669 .Case("SHORT", 2) 1670 .Case("LONG", 4) 1671 .Case("QUAD", 8) 1672 .Default(-1); 1673 if (Size == -1) 1674 return nullptr; 1675 1676 return new BytesDataCommand(readParenExpr(), Size); 1677 } 1678 1679 StringRef ScriptParser::readParenLiteral() { 1680 expect("("); 1681 StringRef Tok = next(); 1682 expect(")"); 1683 return Tok; 1684 } 1685 1686 Expr ScriptParser::readPrimary() { 1687 if (peek() == "(") 1688 return readParenExpr(); 1689 1690 StringRef Tok = next(); 1691 std::string Location = getCurrentLocation(); 1692 1693 if (Tok == "~") { 1694 Expr E = readPrimary(); 1695 return [=](uint64_t Dot) { return ~E(Dot); }; 1696 } 1697 if (Tok == "-") { 1698 Expr E = readPrimary(); 1699 return [=](uint64_t Dot) { return -E(Dot); }; 1700 } 1701 1702 // Built-in functions are parsed here. 1703 // https://sourceware.org/binutils/docs/ld/Builtin-Functions.html. 1704 if (Tok == "ADDR") { 1705 StringRef Name = readParenLiteral(); 1706 return {[=](uint64_t Dot) { 1707 return ScriptBase->getOutputSection(Location, Name)->Addr; 1708 }, 1709 [=] { return false; }, 1710 [=] { return ScriptBase->getOutputSection(Location, Name); }}; 1711 } 1712 if (Tok == "LOADADDR") { 1713 StringRef Name = readParenLiteral(); 1714 return [=](uint64_t Dot) { 1715 return ScriptBase->getOutputSection(Location, Name)->getLMA(); 1716 }; 1717 } 1718 if (Tok == "ASSERT") 1719 return readAssert(); 1720 if (Tok == "ALIGN") { 1721 expect("("); 1722 Expr E = readExpr(); 1723 if (consume(",")) { 1724 Expr E2 = readExpr(); 1725 expect(")"); 1726 return [=](uint64_t Dot) { return alignTo(E(Dot), E2(Dot)); }; 1727 } 1728 expect(")"); 1729 return [=](uint64_t Dot) { return alignTo(Dot, E(Dot)); }; 1730 } 1731 if (Tok == "CONSTANT") { 1732 StringRef Name = readParenLiteral(); 1733 return [=](uint64_t Dot) { return getConstant(Name); }; 1734 } 1735 if (Tok == "DEFINED") { 1736 StringRef Name = readParenLiteral(); 1737 return [=](uint64_t Dot) { return ScriptBase->isDefined(Name) ? 1 : 0; }; 1738 } 1739 if (Tok == "SEGMENT_START") { 1740 expect("("); 1741 skip(); 1742 expect(","); 1743 Expr E = readExpr(); 1744 expect(")"); 1745 return [=](uint64_t Dot) { return E(Dot); }; 1746 } 1747 if (Tok == "DATA_SEGMENT_ALIGN") { 1748 expect("("); 1749 Expr E = readExpr(); 1750 expect(","); 1751 readExpr(); 1752 expect(")"); 1753 return [=](uint64_t Dot) { return alignTo(Dot, E(Dot)); }; 1754 } 1755 if (Tok == "DATA_SEGMENT_END") { 1756 expect("("); 1757 expect("."); 1758 expect(")"); 1759 return [](uint64_t Dot) { return Dot; }; 1760 } 1761 // GNU linkers implements more complicated logic to handle 1762 // DATA_SEGMENT_RELRO_END. We instead ignore the arguments and just align to 1763 // the next page boundary for simplicity. 1764 if (Tok == "DATA_SEGMENT_RELRO_END") { 1765 expect("("); 1766 readExpr(); 1767 expect(","); 1768 readExpr(); 1769 expect(")"); 1770 return [](uint64_t Dot) { return alignTo(Dot, Target->PageSize); }; 1771 } 1772 if (Tok == "SIZEOF") { 1773 StringRef Name = readParenLiteral(); 1774 return [=](uint64_t Dot) { return ScriptBase->getOutputSectionSize(Name); }; 1775 } 1776 if (Tok == "ALIGNOF") { 1777 StringRef Name = readParenLiteral(); 1778 return [=](uint64_t Dot) { 1779 return ScriptBase->getOutputSection(Location, Name)->Addralign; 1780 }; 1781 } 1782 if (Tok == "SIZEOF_HEADERS") 1783 return [=](uint64_t Dot) { return ScriptBase->getHeaderSize(); }; 1784 1785 // Tok is a literal number. 1786 uint64_t V; 1787 if (readInteger(Tok, V)) 1788 return [=](uint64_t Dot) { return V; }; 1789 1790 // Tok is a symbol name. 1791 if (Tok != "." && !isValidCIdentifier(Tok)) 1792 setError("malformed number: " + Tok); 1793 return {[=](uint64_t Dot) { return getSymbolValue(Location, Tok, Dot); }, 1794 [=] { return isAbsolute(Tok); }, 1795 [=] { return ScriptBase->getSymbolSection(Tok); }}; 1796 } 1797 1798 Expr ScriptParser::readTernary(Expr Cond) { 1799 Expr L = readExpr(); 1800 expect(":"); 1801 Expr R = readExpr(); 1802 return [=](uint64_t Dot) { return Cond(Dot) ? L(Dot) : R(Dot); }; 1803 } 1804 1805 Expr ScriptParser::readParenExpr() { 1806 expect("("); 1807 Expr E = readExpr(); 1808 expect(")"); 1809 return E; 1810 } 1811 1812 std::vector<StringRef> ScriptParser::readOutputSectionPhdrs() { 1813 std::vector<StringRef> Phdrs; 1814 while (!Error && peek().startswith(":")) { 1815 StringRef Tok = next(); 1816 Phdrs.push_back((Tok.size() == 1) ? next() : Tok.substr(1)); 1817 } 1818 return Phdrs; 1819 } 1820 1821 // Read a program header type name. The next token must be a 1822 // name of a program header type or a constant (e.g. "0x3"). 1823 unsigned ScriptParser::readPhdrType() { 1824 StringRef Tok = next(); 1825 uint64_t Val; 1826 if (readInteger(Tok, Val)) 1827 return Val; 1828 1829 unsigned Ret = StringSwitch<unsigned>(Tok) 1830 .Case("PT_NULL", PT_NULL) 1831 .Case("PT_LOAD", PT_LOAD) 1832 .Case("PT_DYNAMIC", PT_DYNAMIC) 1833 .Case("PT_INTERP", PT_INTERP) 1834 .Case("PT_NOTE", PT_NOTE) 1835 .Case("PT_SHLIB", PT_SHLIB) 1836 .Case("PT_PHDR", PT_PHDR) 1837 .Case("PT_TLS", PT_TLS) 1838 .Case("PT_GNU_EH_FRAME", PT_GNU_EH_FRAME) 1839 .Case("PT_GNU_STACK", PT_GNU_STACK) 1840 .Case("PT_GNU_RELRO", PT_GNU_RELRO) 1841 .Case("PT_OPENBSD_RANDOMIZE", PT_OPENBSD_RANDOMIZE) 1842 .Case("PT_OPENBSD_WXNEEDED", PT_OPENBSD_WXNEEDED) 1843 .Case("PT_OPENBSD_BOOTDATA", PT_OPENBSD_BOOTDATA) 1844 .Default(-1); 1845 1846 if (Ret == (unsigned)-1) { 1847 setError("invalid program header type: " + Tok); 1848 return PT_NULL; 1849 } 1850 return Ret; 1851 } 1852 1853 // Reads a list of symbols, e.g. "{ global: foo; bar; local: *; };". 1854 void ScriptParser::readAnonymousDeclaration() { 1855 // Read global symbols first. "global:" is default, so if there's 1856 // no label, we assume global symbols. 1857 if (consume("global:") || peek() != "local:") 1858 Config->VersionScriptGlobals = readSymbols(); 1859 1860 readLocals(); 1861 expect("}"); 1862 expect(";"); 1863 } 1864 1865 void ScriptParser::readLocals() { 1866 if (!consume("local:")) 1867 return; 1868 std::vector<SymbolVersion> Locals = readSymbols(); 1869 for (SymbolVersion V : Locals) { 1870 if (V.Name == "*") { 1871 Config->DefaultSymbolVersion = VER_NDX_LOCAL; 1872 continue; 1873 } 1874 Config->VersionScriptLocals.push_back(V); 1875 } 1876 } 1877 1878 // Reads a list of symbols, e.g. "VerStr { global: foo; bar; local: *; };". 1879 void ScriptParser::readVersionDeclaration(StringRef VerStr) { 1880 // Identifiers start at 2 because 0 and 1 are reserved 1881 // for VER_NDX_LOCAL and VER_NDX_GLOBAL constants. 1882 uint16_t VersionId = Config->VersionDefinitions.size() + 2; 1883 Config->VersionDefinitions.push_back({VerStr, VersionId}); 1884 1885 // Read global symbols. 1886 if (consume("global:") || peek() != "local:") 1887 Config->VersionDefinitions.back().Globals = readSymbols(); 1888 1889 readLocals(); 1890 expect("}"); 1891 1892 // Each version may have a parent version. For example, "Ver2" 1893 // defined as "Ver2 { global: foo; local: *; } Ver1;" has "Ver1" 1894 // as a parent. This version hierarchy is, probably against your 1895 // instinct, purely for hint; the runtime doesn't care about it 1896 // at all. In LLD, we simply ignore it. 1897 if (peek() != ";") 1898 skip(); 1899 expect(";"); 1900 } 1901 1902 // Reads a list of symbols for a versions cript. 1903 std::vector<SymbolVersion> ScriptParser::readSymbols() { 1904 std::vector<SymbolVersion> Ret; 1905 for (;;) { 1906 if (consume("extern")) { 1907 for (SymbolVersion V : readVersionExtern()) 1908 Ret.push_back(V); 1909 continue; 1910 } 1911 1912 if (peek() == "}" || peek() == "local:" || Error) 1913 break; 1914 StringRef Tok = next(); 1915 Ret.push_back({unquote(Tok), false, hasWildcard(Tok)}); 1916 expect(";"); 1917 } 1918 return Ret; 1919 } 1920 1921 // Reads an "extern C++" directive, e.g., 1922 // "extern "C++" { ns::*; "f(int, double)"; };" 1923 std::vector<SymbolVersion> ScriptParser::readVersionExtern() { 1924 StringRef Tok = next(); 1925 bool IsCXX = Tok == "\"C++\""; 1926 if (!IsCXX && Tok != "\"C\"") 1927 setError("Unknown language"); 1928 expect("{"); 1929 1930 std::vector<SymbolVersion> Ret; 1931 while (!Error && peek() != "}") { 1932 StringRef Tok = next(); 1933 bool HasWildcard = !Tok.startswith("\"") && hasWildcard(Tok); 1934 Ret.push_back({unquote(Tok), IsCXX, HasWildcard}); 1935 expect(";"); 1936 } 1937 1938 expect("}"); 1939 expect(";"); 1940 return Ret; 1941 } 1942 1943 void elf::readLinkerScript(MemoryBufferRef MB) { 1944 ScriptParser(MB).readLinkerScript(); 1945 } 1946 1947 void elf::readVersionScript(MemoryBufferRef MB) { 1948 ScriptParser(MB).readVersionScript(); 1949 } 1950 1951 void elf::readDynamicList(MemoryBufferRef MB) { 1952 ScriptParser(MB).readDynamicList(); 1953 } 1954 1955 template class elf::LinkerScript<ELF32LE>; 1956 template class elf::LinkerScript<ELF32BE>; 1957 template class elf::LinkerScript<ELF64LE>; 1958 template class elf::LinkerScript<ELF64BE>; 1959