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 "InputSection.h" 17 #include "Memory.h" 18 #include "OutputSections.h" 19 #include "Strings.h" 20 #include "SymbolTable.h" 21 #include "Symbols.h" 22 #include "SyntheticSections.h" 23 #include "Target.h" 24 #include "Threads.h" 25 #include "Writer.h" 26 #include "llvm/ADT/STLExtras.h" 27 #include "llvm/ADT/StringRef.h" 28 #include "llvm/BinaryFormat/ELF.h" 29 #include "llvm/Support/Casting.h" 30 #include "llvm/Support/Compression.h" 31 #include "llvm/Support/Endian.h" 32 #include "llvm/Support/ErrorHandling.h" 33 #include "llvm/Support/FileSystem.h" 34 #include "llvm/Support/Path.h" 35 #include <algorithm> 36 #include <cassert> 37 #include <cstddef> 38 #include <cstdint> 39 #include <iterator> 40 #include <limits> 41 #include <string> 42 #include <vector> 43 44 using namespace llvm; 45 using namespace llvm::ELF; 46 using namespace llvm::object; 47 using namespace llvm::support::endian; 48 using namespace lld; 49 using namespace lld::elf; 50 51 LinkerScript *elf::Script; 52 53 uint64_t ExprValue::getValue() const { 54 if (Sec) { 55 if (OutputSection *OS = Sec->getOutputSection()) 56 return alignTo(Sec->getOffset(Val) + OS->Addr, Alignment); 57 error(Loc + ": unable to evaluate expression: input section " + Sec->Name + 58 " has no output section assigned"); 59 } 60 return alignTo(Val, Alignment); 61 } 62 63 uint64_t ExprValue::getSecAddr() const { 64 if (Sec) 65 return Sec->getOffset(0) + Sec->getOutputSection()->Addr; 66 return 0; 67 } 68 69 template <class ELFT> static SymbolBody *addRegular(SymbolAssignment *Cmd) { 70 Symbol *Sym; 71 uint8_t Visibility = Cmd->Hidden ? STV_HIDDEN : STV_DEFAULT; 72 std::tie(Sym, std::ignore) = Symtab<ELFT>::X->insert( 73 Cmd->Name, /*Type*/ 0, Visibility, /*CanOmitFromDynSym*/ false, 74 /*File*/ nullptr); 75 Sym->Binding = STB_GLOBAL; 76 ExprValue Value = Cmd->Expression(); 77 SectionBase *Sec = Value.isAbsolute() ? nullptr : Value.Sec; 78 79 // We want to set symbol values early if we can. This allows us to use symbols 80 // as variables in linker scripts. Doing so allows us to write expressions 81 // like this: `alignment = 16; . = ALIGN(., alignment)` 82 uint64_t SymValue = Value.isAbsolute() ? Value.getValue() : 0; 83 replaceBody<DefinedRegular>(Sym, Cmd->Name, /*IsLocal=*/false, Visibility, 84 STT_NOTYPE, SymValue, 0, Sec, nullptr); 85 return Sym->body(); 86 } 87 88 OutputSectionCommand * 89 LinkerScript::createOutputSectionCommand(StringRef Name, StringRef Location) { 90 OutputSectionCommand *&CmdRef = NameToOutputSectionCommand[Name]; 91 OutputSectionCommand *Cmd; 92 if (CmdRef && CmdRef->Location.empty()) { 93 // There was a forward reference. 94 Cmd = CmdRef; 95 } else { 96 Cmd = make<OutputSectionCommand>(Name); 97 if (!CmdRef) 98 CmdRef = Cmd; 99 } 100 Cmd->Location = Location; 101 return Cmd; 102 } 103 104 OutputSectionCommand * 105 LinkerScript::getOrCreateOutputSectionCommand(StringRef Name) { 106 OutputSectionCommand *&CmdRef = NameToOutputSectionCommand[Name]; 107 if (!CmdRef) 108 CmdRef = make<OutputSectionCommand>(Name); 109 return CmdRef; 110 } 111 112 void LinkerScript::setDot(Expr E, const Twine &Loc, bool InSec) { 113 uint64_t Val = E().getValue(); 114 if (Val < Dot) { 115 if (InSec) 116 error(Loc + ": unable to move location counter backward for: " + 117 CurOutSec->Name); 118 else 119 error(Loc + ": unable to move location counter backward"); 120 } 121 Dot = Val; 122 // Update to location counter means update to section size. 123 if (InSec) 124 CurOutSec->Size = Dot - CurOutSec->Addr; 125 } 126 127 // Sets value of a symbol. Two kinds of symbols are processed: synthetic 128 // symbols, whose value is an offset from beginning of section and regular 129 // symbols whose value is absolute. 130 void LinkerScript::assignSymbol(SymbolAssignment *Cmd, bool InSec) { 131 if (Cmd->Name == ".") { 132 setDot(Cmd->Expression, Cmd->Location, InSec); 133 return; 134 } 135 136 if (!Cmd->Sym) 137 return; 138 139 auto *Sym = cast<DefinedRegular>(Cmd->Sym); 140 ExprValue V = Cmd->Expression(); 141 if (V.isAbsolute()) { 142 Sym->Value = V.getValue(); 143 } else { 144 Sym->Section = V.Sec; 145 Sym->Value = alignTo(V.Val, V.Alignment); 146 } 147 } 148 149 static SymbolBody *findSymbol(StringRef S) { 150 switch (Config->EKind) { 151 case ELF32LEKind: 152 return Symtab<ELF32LE>::X->find(S); 153 case ELF32BEKind: 154 return Symtab<ELF32BE>::X->find(S); 155 case ELF64LEKind: 156 return Symtab<ELF64LE>::X->find(S); 157 case ELF64BEKind: 158 return Symtab<ELF64BE>::X->find(S); 159 default: 160 llvm_unreachable("unknown Config->EKind"); 161 } 162 } 163 164 static SymbolBody *addRegularSymbol(SymbolAssignment *Cmd) { 165 switch (Config->EKind) { 166 case ELF32LEKind: 167 return addRegular<ELF32LE>(Cmd); 168 case ELF32BEKind: 169 return addRegular<ELF32BE>(Cmd); 170 case ELF64LEKind: 171 return addRegular<ELF64LE>(Cmd); 172 case ELF64BEKind: 173 return addRegular<ELF64BE>(Cmd); 174 default: 175 llvm_unreachable("unknown Config->EKind"); 176 } 177 } 178 179 void LinkerScript::addSymbol(SymbolAssignment *Cmd) { 180 if (Cmd->Name == ".") 181 return; 182 183 // If a symbol was in PROVIDE(), we need to define it only when 184 // it is a referenced undefined symbol. 185 SymbolBody *B = findSymbol(Cmd->Name); 186 if (Cmd->Provide && (!B || B->isDefined())) 187 return; 188 189 Cmd->Sym = addRegularSymbol(Cmd); 190 } 191 192 bool SymbolAssignment::classof(const BaseCommand *C) { 193 return C->Kind == AssignmentKind; 194 } 195 196 bool OutputSectionCommand::classof(const BaseCommand *C) { 197 return C->Kind == OutputSectionKind; 198 } 199 200 // Fill [Buf, Buf + Size) with Filler. 201 // This is used for linker script "=fillexp" command. 202 static void fill(uint8_t *Buf, size_t Size, uint32_t Filler) { 203 size_t I = 0; 204 for (; I + 4 < Size; I += 4) 205 memcpy(Buf + I, &Filler, 4); 206 memcpy(Buf + I, &Filler, Size - I); 207 } 208 209 bool InputSectionDescription::classof(const BaseCommand *C) { 210 return C->Kind == InputSectionKind; 211 } 212 213 bool AssertCommand::classof(const BaseCommand *C) { 214 return C->Kind == AssertKind; 215 } 216 217 bool BytesDataCommand::classof(const BaseCommand *C) { 218 return C->Kind == BytesDataKind; 219 } 220 221 static StringRef basename(InputSectionBase *S) { 222 if (S->File) 223 return sys::path::filename(S->File->getName()); 224 return ""; 225 } 226 227 bool LinkerScript::shouldKeep(InputSectionBase *S) { 228 for (InputSectionDescription *ID : Opt.KeptSections) 229 if (ID->FilePat.match(basename(S))) 230 for (SectionPattern &P : ID->SectionPatterns) 231 if (P.SectionPat.match(S->Name)) 232 return true; 233 return false; 234 } 235 236 // A helper function for the SORT() command. 237 static std::function<bool(InputSectionBase *, InputSectionBase *)> 238 getComparator(SortSectionPolicy K) { 239 switch (K) { 240 case SortSectionPolicy::Alignment: 241 return [](InputSectionBase *A, InputSectionBase *B) { 242 // ">" is not a mistake. Sections with larger alignments are placed 243 // before sections with smaller alignments in order to reduce the 244 // amount of padding necessary. This is compatible with GNU. 245 return A->Alignment > B->Alignment; 246 }; 247 case SortSectionPolicy::Name: 248 return [](InputSectionBase *A, InputSectionBase *B) { 249 return A->Name < B->Name; 250 }; 251 case SortSectionPolicy::Priority: 252 return [](InputSectionBase *A, InputSectionBase *B) { 253 return getPriority(A->Name) < getPriority(B->Name); 254 }; 255 default: 256 llvm_unreachable("unknown sort policy"); 257 } 258 } 259 260 // A helper function for the SORT() command. 261 static bool matchConstraints(ArrayRef<InputSectionBase *> Sections, 262 ConstraintKind Kind) { 263 if (Kind == ConstraintKind::NoConstraint) 264 return true; 265 266 bool IsRW = llvm::any_of(Sections, [](InputSectionBase *Sec) { 267 return static_cast<InputSectionBase *>(Sec)->Flags & SHF_WRITE; 268 }); 269 270 return (IsRW && Kind == ConstraintKind::ReadWrite) || 271 (!IsRW && Kind == ConstraintKind::ReadOnly); 272 } 273 274 static void sortSections(InputSection **Begin, InputSection **End, 275 SortSectionPolicy K) { 276 if (K != SortSectionPolicy::Default && K != SortSectionPolicy::None) 277 std::stable_sort(Begin, End, getComparator(K)); 278 } 279 280 // Compute and remember which sections the InputSectionDescription matches. 281 std::vector<InputSection *> 282 LinkerScript::computeInputSections(const InputSectionDescription *Cmd) { 283 std::vector<InputSection *> Ret; 284 285 // Collects all sections that satisfy constraints of Cmd. 286 for (const SectionPattern &Pat : Cmd->SectionPatterns) { 287 size_t SizeBefore = Ret.size(); 288 289 for (InputSectionBase *Sec : InputSections) { 290 if (Sec->Assigned) 291 continue; 292 293 if (!Sec->Live) { 294 reportDiscarded(Sec); 295 continue; 296 } 297 298 // For -emit-relocs we have to ignore entries like 299 // .rela.dyn : { *(.rela.data) } 300 // which are common because they are in the default bfd script. 301 if (Sec->Type == SHT_REL || Sec->Type == SHT_RELA) 302 continue; 303 304 StringRef Filename = basename(Sec); 305 if (!Cmd->FilePat.match(Filename) || 306 Pat.ExcludedFilePat.match(Filename) || 307 !Pat.SectionPat.match(Sec->Name)) 308 continue; 309 310 Ret.push_back(cast<InputSection>(Sec)); 311 Sec->Assigned = true; 312 } 313 314 // Sort sections as instructed by SORT-family commands and --sort-section 315 // option. Because SORT-family commands can be nested at most two depth 316 // (e.g. SORT_BY_NAME(SORT_BY_ALIGNMENT(.text.*))) and because the command 317 // line option is respected even if a SORT command is given, the exact 318 // behavior we have here is a bit complicated. Here are the rules. 319 // 320 // 1. If two SORT commands are given, --sort-section is ignored. 321 // 2. If one SORT command is given, and if it is not SORT_NONE, 322 // --sort-section is handled as an inner SORT command. 323 // 3. If one SORT command is given, and if it is SORT_NONE, don't sort. 324 // 4. If no SORT command is given, sort according to --sort-section. 325 InputSection **Begin = Ret.data() + SizeBefore; 326 InputSection **End = Ret.data() + Ret.size(); 327 if (Pat.SortOuter != SortSectionPolicy::None) { 328 if (Pat.SortInner == SortSectionPolicy::Default) 329 sortSections(Begin, End, Config->SortSection); 330 else 331 sortSections(Begin, End, Pat.SortInner); 332 sortSections(Begin, End, Pat.SortOuter); 333 } 334 } 335 return Ret; 336 } 337 338 void LinkerScript::discard(ArrayRef<InputSectionBase *> V) { 339 for (InputSectionBase *S : V) { 340 S->Live = false; 341 if (S == InX::ShStrTab) 342 error("discarding .shstrtab section is not allowed"); 343 discard(S->DependentSections); 344 } 345 } 346 347 std::vector<InputSectionBase *> 348 LinkerScript::createInputSectionList(OutputSectionCommand &OutCmd) { 349 std::vector<InputSectionBase *> Ret; 350 351 for (BaseCommand *Base : OutCmd.Commands) { 352 auto *Cmd = dyn_cast<InputSectionDescription>(Base); 353 if (!Cmd) 354 continue; 355 356 Cmd->Sections = computeInputSections(Cmd); 357 Ret.insert(Ret.end(), Cmd->Sections.begin(), Cmd->Sections.end()); 358 } 359 360 return Ret; 361 } 362 363 void LinkerScript::processCommands(OutputSectionFactory &Factory) { 364 // A symbol can be assigned before any section is mentioned in the linker 365 // script. In an DSO, the symbol values are addresses, so the only important 366 // section values are: 367 // * SHN_UNDEF 368 // * SHN_ABS 369 // * Any value meaning a regular section. 370 // To handle that, create a dummy aether section that fills the void before 371 // the linker scripts switches to another section. It has an index of one 372 // which will map to whatever the first actual section is. 373 Aether = make<OutputSection>("", 0, SHF_ALLOC); 374 Aether->SectionIndex = 1; 375 CurOutSec = Aether; 376 Dot = 0; 377 378 for (size_t I = 0; I < Opt.Commands.size(); ++I) { 379 // Handle symbol assignments outside of any output section. 380 if (auto *Cmd = dyn_cast<SymbolAssignment>(Opt.Commands[I])) { 381 addSymbol(Cmd); 382 continue; 383 } 384 385 if (auto *Cmd = dyn_cast<OutputSectionCommand>(Opt.Commands[I])) { 386 std::vector<InputSectionBase *> V = createInputSectionList(*Cmd); 387 388 // The output section name `/DISCARD/' is special. 389 // Any input section assigned to it is discarded. 390 if (Cmd->Name == "/DISCARD/") { 391 discard(V); 392 continue; 393 } 394 395 // This is for ONLY_IF_RO and ONLY_IF_RW. An output section directive 396 // ".foo : ONLY_IF_R[OW] { ... }" is handled only if all member input 397 // sections satisfy a given constraint. If not, a directive is handled 398 // as if it wasn't present from the beginning. 399 // 400 // Because we'll iterate over Commands many more times, the easiest 401 // way to "make it as if it wasn't present" is to just remove it. 402 if (!matchConstraints(V, Cmd->Constraint)) { 403 for (InputSectionBase *S : V) 404 S->Assigned = false; 405 Opt.Commands.erase(Opt.Commands.begin() + I); 406 --I; 407 continue; 408 } 409 410 // A directive may contain symbol definitions like this: 411 // ".foo : { ...; bar = .; }". Handle them. 412 for (BaseCommand *Base : Cmd->Commands) 413 if (auto *OutCmd = dyn_cast<SymbolAssignment>(Base)) 414 addSymbol(OutCmd); 415 416 // Handle subalign (e.g. ".foo : SUBALIGN(32) { ... }"). If subalign 417 // is given, input sections are aligned to that value, whether the 418 // given value is larger or smaller than the original section alignment. 419 if (Cmd->SubalignExpr) { 420 uint32_t Subalign = Cmd->SubalignExpr().getValue(); 421 for (InputSectionBase *S : V) 422 S->Alignment = Subalign; 423 } 424 425 // Add input sections to an output section. 426 for (InputSectionBase *S : V) 427 Factory.addInputSec(S, Cmd->Name, Cmd->Sec); 428 if (OutputSection *Sec = Cmd->Sec) { 429 assert(Sec->SectionIndex == INT_MAX); 430 Sec->SectionIndex = I; 431 if (Cmd->Noload) 432 Sec->Type = SHT_NOBITS; 433 SecToCommand[Sec] = Cmd; 434 } 435 } 436 } 437 CurOutSec = nullptr; 438 } 439 440 void LinkerScript::fabricateDefaultCommands() { 441 std::vector<BaseCommand *> Commands; 442 443 // Define start address 444 uint64_t StartAddr = -1; 445 446 // The Sections with -T<section> have been sorted in order of ascending 447 // address. We must lower StartAddr if the lowest -T<section address> as 448 // calls to setDot() must be monotonically increasing. 449 for (auto& KV : Config->SectionStartMap) 450 StartAddr = std::min(StartAddr, KV.second); 451 452 Commands.push_back(make<SymbolAssignment>( 453 ".", 454 [=] { 455 return std::min(StartAddr, Config->ImageBase + elf::getHeaderSize()); 456 }, 457 "")); 458 459 // For each OutputSection that needs a VA fabricate an OutputSectionCommand 460 // with an InputSectionDescription describing the InputSections 461 for (OutputSection *Sec : OutputSections) { 462 auto *OSCmd = createOutputSectionCommand(Sec->Name, "<internal>"); 463 OSCmd->Sec = Sec; 464 SecToCommand[Sec] = OSCmd; 465 466 // Prefer user supplied address over additional alignment constraint 467 auto I = Config->SectionStartMap.find(Sec->Name); 468 if (I != Config->SectionStartMap.end()) 469 OSCmd->AddrExpr = [=] { return I->second; }; 470 471 Commands.push_back(OSCmd); 472 if (Sec->Sections.size()) { 473 auto *ISD = make<InputSectionDescription>(""); 474 OSCmd->Commands.push_back(ISD); 475 for (InputSection *ISec : Sec->Sections) { 476 ISD->Sections.push_back(ISec); 477 ISec->Assigned = true; 478 } 479 } 480 } 481 // SECTIONS commands run before other non SECTIONS commands 482 Commands.insert(Commands.end(), Opt.Commands.begin(), Opt.Commands.end()); 483 Opt.Commands = std::move(Commands); 484 } 485 486 // Add sections that didn't match any sections command. 487 void LinkerScript::addOrphanSections(OutputSectionFactory &Factory) { 488 for (InputSectionBase *S : InputSections) { 489 if (!S->Live || S->Parent) 490 continue; 491 StringRef Name = getOutputSectionName(S->Name); 492 auto I = std::find_if( 493 Opt.Commands.begin(), Opt.Commands.end(), [&](BaseCommand *Base) { 494 if (auto *Cmd = dyn_cast<OutputSectionCommand>(Base)) 495 return Cmd->Name == Name; 496 return false; 497 }); 498 if (I == Opt.Commands.end()) { 499 Factory.addInputSec(S, Name); 500 } else { 501 auto *Cmd = cast<OutputSectionCommand>(*I); 502 Factory.addInputSec(S, Name, Cmd->Sec); 503 if (OutputSection *Sec = Cmd->Sec) { 504 SecToCommand[Sec] = Cmd; 505 unsigned Index = std::distance(Opt.Commands.begin(), I); 506 assert(Sec->SectionIndex == INT_MAX || Sec->SectionIndex == Index); 507 Sec->SectionIndex = Index; 508 } 509 auto *ISD = make<InputSectionDescription>(""); 510 ISD->Sections.push_back(cast<InputSection>(S)); 511 Cmd->Commands.push_back(ISD); 512 } 513 } 514 } 515 516 uint64_t LinkerScript::advance(uint64_t Size, unsigned Align) { 517 bool IsTbss = (CurOutSec->Flags & SHF_TLS) && CurOutSec->Type == SHT_NOBITS; 518 uint64_t Start = IsTbss ? Dot + ThreadBssOffset : Dot; 519 Start = alignTo(Start, Align); 520 uint64_t End = Start + Size; 521 522 if (IsTbss) 523 ThreadBssOffset = End - Dot; 524 else 525 Dot = End; 526 return End; 527 } 528 529 void LinkerScript::output(InputSection *S) { 530 uint64_t Pos = advance(S->getSize(), S->Alignment); 531 S->OutSecOff = Pos - S->getSize() - CurOutSec->Addr; 532 533 // Update output section size after adding each section. This is so that 534 // SIZEOF works correctly in the case below: 535 // .foo { *(.aaa) a = SIZEOF(.foo); *(.bbb) } 536 CurOutSec->Size = Pos - CurOutSec->Addr; 537 538 // If there is a memory region associated with this input section, then 539 // place the section in that region and update the region index. 540 if (CurMemRegion) { 541 CurMemRegion->Offset += CurOutSec->Size; 542 uint64_t CurSize = CurMemRegion->Offset - CurMemRegion->Origin; 543 if (CurSize > CurMemRegion->Length) { 544 uint64_t OverflowAmt = CurSize - CurMemRegion->Length; 545 error("section '" + CurOutSec->Name + "' will not fit in region '" + 546 CurMemRegion->Name + "': overflowed by " + Twine(OverflowAmt) + 547 " bytes"); 548 } 549 } 550 } 551 552 void LinkerScript::switchTo(OutputSection *Sec) { 553 if (CurOutSec == Sec) 554 return; 555 556 CurOutSec = Sec; 557 CurOutSec->Addr = advance(0, CurOutSec->Alignment); 558 559 // If neither AT nor AT> is specified for an allocatable section, the linker 560 // will set the LMA such that the difference between VMA and LMA for the 561 // section is the same as the preceding output section in the same region 562 // https://sourceware.org/binutils/docs-2.20/ld/Output-Section-LMA.html 563 if (LMAOffset) 564 CurOutSec->LMAOffset = LMAOffset(); 565 } 566 567 void LinkerScript::process(BaseCommand &Base) { 568 // This handles the assignments to symbol or to the dot. 569 if (auto *Cmd = dyn_cast<SymbolAssignment>(&Base)) { 570 assignSymbol(Cmd, true); 571 return; 572 } 573 574 // Handle BYTE(), SHORT(), LONG(), or QUAD(). 575 if (auto *Cmd = dyn_cast<BytesDataCommand>(&Base)) { 576 Cmd->Offset = Dot - CurOutSec->Addr; 577 Dot += Cmd->Size; 578 CurOutSec->Size = Dot - CurOutSec->Addr; 579 return; 580 } 581 582 // Handle ASSERT(). 583 if (auto *Cmd = dyn_cast<AssertCommand>(&Base)) { 584 Cmd->Expression(); 585 return; 586 } 587 588 // Handle a single input section description command. 589 // It calculates and assigns the offsets for each section and also 590 // updates the output section size. 591 auto &Cmd = cast<InputSectionDescription>(Base); 592 for (InputSection *Sec : Cmd.Sections) { 593 // We tentatively added all synthetic sections at the beginning and removed 594 // empty ones afterwards (because there is no way to know whether they were 595 // going be empty or not other than actually running linker scripts.) 596 // We need to ignore remains of empty sections. 597 if (auto *S = dyn_cast<SyntheticSection>(Sec)) 598 if (S->empty()) 599 continue; 600 601 if (!Sec->Live) 602 continue; 603 assert(CurOutSec == Sec->getParent()); 604 output(Sec); 605 } 606 } 607 608 // This function searches for a memory region to place the given output 609 // section in. If found, a pointer to the appropriate memory region is 610 // returned. Otherwise, a nullptr is returned. 611 MemoryRegion *LinkerScript::findMemoryRegion(OutputSectionCommand *Cmd) { 612 // If a memory region name was specified in the output section command, 613 // then try to find that region first. 614 if (!Cmd->MemoryRegionName.empty()) { 615 auto It = Opt.MemoryRegions.find(Cmd->MemoryRegionName); 616 if (It != Opt.MemoryRegions.end()) 617 return &It->second; 618 error("memory region '" + Cmd->MemoryRegionName + "' not declared"); 619 return nullptr; 620 } 621 622 // If at least one memory region is defined, all sections must 623 // belong to some memory region. Otherwise, we don't need to do 624 // anything for memory regions. 625 if (Opt.MemoryRegions.empty()) 626 return nullptr; 627 628 OutputSection *Sec = Cmd->Sec; 629 // See if a region can be found by matching section flags. 630 for (auto &Pair : Opt.MemoryRegions) { 631 MemoryRegion &M = Pair.second; 632 if ((M.Flags & Sec->Flags) && (M.NegFlags & Sec->Flags) == 0) 633 return &M; 634 } 635 636 // Otherwise, no suitable region was found. 637 if (Sec->Flags & SHF_ALLOC) 638 error("no memory region specified for section '" + Sec->Name + "'"); 639 return nullptr; 640 } 641 642 // This function assigns offsets to input sections and an output section 643 // for a single sections command (e.g. ".text { *(.text); }"). 644 void LinkerScript::assignOffsets(OutputSectionCommand *Cmd) { 645 OutputSection *Sec = Cmd->Sec; 646 if (!Sec) 647 return; 648 649 if (!(Sec->Flags & SHF_ALLOC)) 650 Dot = 0; 651 else if (Cmd->AddrExpr) 652 setDot(Cmd->AddrExpr, Cmd->Location, false); 653 654 if (Cmd->LMAExpr) { 655 uint64_t D = Dot; 656 LMAOffset = [=] { return Cmd->LMAExpr().getValue() - D; }; 657 } 658 659 CurMemRegion = Cmd->MemRegion; 660 if (CurMemRegion) 661 Dot = CurMemRegion->Offset; 662 switchTo(Sec); 663 664 // We do not support custom layout for compressed debug sectons. 665 // At this point we already know their size and have compressed content. 666 if (CurOutSec->Flags & SHF_COMPRESSED) 667 return; 668 669 for (BaseCommand *C : Cmd->Commands) 670 process(*C); 671 } 672 673 void LinkerScript::removeEmptyCommands() { 674 // It is common practice to use very generic linker scripts. So for any 675 // given run some of the output sections in the script will be empty. 676 // We could create corresponding empty output sections, but that would 677 // clutter the output. 678 // We instead remove trivially empty sections. The bfd linker seems even 679 // more aggressive at removing them. 680 auto Pos = std::remove_if( 681 Opt.Commands.begin(), Opt.Commands.end(), [&](BaseCommand *Base) { 682 if (auto *Cmd = dyn_cast<OutputSectionCommand>(Base)) 683 return Cmd->Sec == nullptr; 684 return false; 685 }); 686 Opt.Commands.erase(Pos, Opt.Commands.end()); 687 } 688 689 static bool isAllSectionDescription(const OutputSectionCommand &Cmd) { 690 for (BaseCommand *Base : Cmd.Commands) 691 if (!isa<InputSectionDescription>(*Base)) 692 return false; 693 return true; 694 } 695 696 void LinkerScript::adjustSectionsBeforeSorting() { 697 // If the output section contains only symbol assignments, create a 698 // corresponding output section. The bfd linker seems to only create them if 699 // '.' is assigned to, but creating these section should not have any bad 700 // consequeces and gives us a section to put the symbol in. 701 uint64_t Flags = SHF_ALLOC; 702 703 for (int I = 0, E = Opt.Commands.size(); I != E; ++I) { 704 auto *Cmd = dyn_cast<OutputSectionCommand>(Opt.Commands[I]); 705 if (!Cmd) 706 continue; 707 if (OutputSection *Sec = Cmd->Sec) { 708 Flags = Sec->Flags; 709 continue; 710 } 711 712 if (isAllSectionDescription(*Cmd)) 713 continue; 714 715 auto *OutSec = make<OutputSection>(Cmd->Name, SHT_PROGBITS, Flags); 716 OutSec->SectionIndex = I; 717 Cmd->Sec = OutSec; 718 SecToCommand[OutSec] = Cmd; 719 } 720 } 721 722 void LinkerScript::adjustSectionsAfterSorting() { 723 // Try and find an appropriate memory region to assign offsets in. 724 for (BaseCommand *Base : Opt.Commands) { 725 if (auto *Cmd = dyn_cast<OutputSectionCommand>(Base)) { 726 Cmd->MemRegion = findMemoryRegion(Cmd); 727 // Handle align (e.g. ".foo : ALIGN(16) { ... }"). 728 if (Cmd->AlignExpr) 729 Cmd->Sec->updateAlignment(Cmd->AlignExpr().getValue()); 730 } 731 } 732 733 // If output section command doesn't specify any segments, 734 // and we haven't previously assigned any section to segment, 735 // then we simply assign section to the very first load segment. 736 // Below is an example of such linker script: 737 // PHDRS { seg PT_LOAD; } 738 // SECTIONS { .aaa : { *(.aaa) } } 739 std::vector<StringRef> DefPhdrs; 740 auto FirstPtLoad = 741 std::find_if(Opt.PhdrsCommands.begin(), Opt.PhdrsCommands.end(), 742 [](const PhdrsCommand &Cmd) { return Cmd.Type == PT_LOAD; }); 743 if (FirstPtLoad != Opt.PhdrsCommands.end()) 744 DefPhdrs.push_back(FirstPtLoad->Name); 745 746 // Walk the commands and propagate the program headers to commands that don't 747 // explicitly specify them. 748 for (BaseCommand *Base : Opt.Commands) { 749 auto *Cmd = dyn_cast<OutputSectionCommand>(Base); 750 if (!Cmd) 751 continue; 752 753 if (Cmd->Phdrs.empty()) 754 Cmd->Phdrs = DefPhdrs; 755 else 756 DefPhdrs = Cmd->Phdrs; 757 } 758 759 removeEmptyCommands(); 760 } 761 762 void LinkerScript::createOrphanCommands() { 763 for (OutputSection *Sec : OutputSections) { 764 if (Sec->SectionIndex != INT_MAX) 765 continue; 766 OutputSectionCommand *Cmd = 767 createOutputSectionCommand(Sec->Name, "<internal>"); 768 Cmd->Sec = Sec; 769 SecToCommand[Sec] = Cmd; 770 auto *ISD = make<InputSectionDescription>(""); 771 ISD->Sections = Sec->Sections; 772 Cmd->Commands.push_back(ISD); 773 Opt.Commands.push_back(Cmd); 774 } 775 } 776 777 void LinkerScript::processNonSectionCommands() { 778 for (BaseCommand *Base : Opt.Commands) { 779 if (auto *Cmd = dyn_cast<SymbolAssignment>(Base)) 780 assignSymbol(Cmd, false); 781 else if (auto *Cmd = dyn_cast<AssertCommand>(Base)) 782 Cmd->Expression(); 783 } 784 } 785 786 static bool 787 allocateHeaders(std::vector<PhdrEntry> &Phdrs, 788 ArrayRef<OutputSectionCommand *> OutputSectionCommands, 789 uint64_t Min) { 790 auto FirstPTLoad = 791 std::find_if(Phdrs.begin(), Phdrs.end(), 792 [](const PhdrEntry &E) { return E.p_type == PT_LOAD; }); 793 if (FirstPTLoad == Phdrs.end()) 794 return false; 795 796 uint64_t HeaderSize = getHeaderSize(); 797 if (HeaderSize <= Min || Script->hasPhdrsCommands()) { 798 Min = alignDown(Min - HeaderSize, Config->MaxPageSize); 799 Out::ElfHeader->Addr = Min; 800 Out::ProgramHeaders->Addr = Min + Out::ElfHeader->Size; 801 return true; 802 } 803 804 assert(FirstPTLoad->First == Out::ElfHeader); 805 OutputSection *ActualFirst = nullptr; 806 for (OutputSectionCommand *Cmd : OutputSectionCommands) { 807 OutputSection *Sec = Cmd->Sec; 808 if (Sec->FirstInPtLoad == Out::ElfHeader) { 809 ActualFirst = Sec; 810 break; 811 } 812 } 813 if (ActualFirst) { 814 for (OutputSectionCommand *Cmd : OutputSectionCommands) { 815 OutputSection *Sec = Cmd->Sec; 816 if (Sec->FirstInPtLoad == Out::ElfHeader) 817 Sec->FirstInPtLoad = ActualFirst; 818 } 819 FirstPTLoad->First = ActualFirst; 820 } else { 821 Phdrs.erase(FirstPTLoad); 822 } 823 824 auto PhdrI = std::find_if(Phdrs.begin(), Phdrs.end(), [](const PhdrEntry &E) { 825 return E.p_type == PT_PHDR; 826 }); 827 if (PhdrI != Phdrs.end()) 828 Phdrs.erase(PhdrI); 829 return false; 830 } 831 832 void LinkerScript::assignAddresses(std::vector<PhdrEntry> &Phdrs) { 833 // Assign addresses as instructed by linker script SECTIONS sub-commands. 834 Dot = 0; 835 ErrorOnMissingSection = true; 836 switchTo(Aether); 837 838 for (BaseCommand *Base : Opt.Commands) { 839 if (auto *Cmd = dyn_cast<SymbolAssignment>(Base)) { 840 assignSymbol(Cmd, false); 841 continue; 842 } 843 844 if (auto *Cmd = dyn_cast<AssertCommand>(Base)) { 845 Cmd->Expression(); 846 continue; 847 } 848 849 auto *Cmd = cast<OutputSectionCommand>(Base); 850 assignOffsets(Cmd); 851 } 852 853 uint64_t MinVA = std::numeric_limits<uint64_t>::max(); 854 for (OutputSectionCommand *Cmd : OutputSectionCommands) { 855 OutputSection *Sec = Cmd->Sec; 856 if (Sec->Flags & SHF_ALLOC) 857 MinVA = std::min<uint64_t>(MinVA, Sec->Addr); 858 } 859 860 allocateHeaders(Phdrs, OutputSectionCommands, MinVA); 861 } 862 863 // Creates program headers as instructed by PHDRS linker script command. 864 std::vector<PhdrEntry> LinkerScript::createPhdrs() { 865 std::vector<PhdrEntry> Ret; 866 867 // Process PHDRS and FILEHDR keywords because they are not 868 // real output sections and cannot be added in the following loop. 869 for (const PhdrsCommand &Cmd : Opt.PhdrsCommands) { 870 Ret.emplace_back(Cmd.Type, Cmd.Flags == UINT_MAX ? PF_R : Cmd.Flags); 871 PhdrEntry &Phdr = Ret.back(); 872 873 if (Cmd.HasFilehdr) 874 Phdr.add(Out::ElfHeader); 875 if (Cmd.HasPhdrs) 876 Phdr.add(Out::ProgramHeaders); 877 878 if (Cmd.LMAExpr) { 879 Phdr.p_paddr = Cmd.LMAExpr().getValue(); 880 Phdr.HasLMA = true; 881 } 882 } 883 884 // Add output sections to program headers. 885 for (OutputSectionCommand *Cmd : OutputSectionCommands) { 886 OutputSection *Sec = Cmd->Sec; 887 if (!(Sec->Flags & SHF_ALLOC)) 888 break; 889 890 // Assign headers specified by linker script 891 for (size_t Id : getPhdrIndices(Sec)) { 892 Ret[Id].add(Sec); 893 if (Opt.PhdrsCommands[Id].Flags == UINT_MAX) 894 Ret[Id].p_flags |= Sec->getPhdrFlags(); 895 } 896 } 897 return Ret; 898 } 899 900 bool LinkerScript::ignoreInterpSection() { 901 // Ignore .interp section in case we have PHDRS specification 902 // and PT_INTERP isn't listed. 903 if (Opt.PhdrsCommands.empty()) 904 return false; 905 for (PhdrsCommand &Cmd : Opt.PhdrsCommands) 906 if (Cmd.Type == PT_INTERP) 907 return false; 908 return true; 909 } 910 911 OutputSectionCommand *LinkerScript::getCmd(OutputSection *Sec) const { 912 auto I = SecToCommand.find(Sec); 913 if (I == SecToCommand.end()) 914 return nullptr; 915 return I->second; 916 } 917 918 uint32_t OutputSectionCommand::getFiller() { 919 if (Filler) 920 return *Filler; 921 if (Sec->Flags & SHF_EXECINSTR) 922 return Target->TrapInstr; 923 return 0; 924 } 925 926 static void writeInt(uint8_t *Buf, uint64_t Data, uint64_t Size) { 927 if (Size == 1) 928 *Buf = Data; 929 else if (Size == 2) 930 write16(Buf, Data, Config->Endianness); 931 else if (Size == 4) 932 write32(Buf, Data, Config->Endianness); 933 else if (Size == 8) 934 write64(Buf, Data, Config->Endianness); 935 else 936 llvm_unreachable("unsupported Size argument"); 937 } 938 939 static bool compareByFilePosition(InputSection *A, InputSection *B) { 940 // Synthetic doesn't have link order dependecy, stable_sort will keep it last 941 if (A->kind() == InputSectionBase::Synthetic || 942 B->kind() == InputSectionBase::Synthetic) 943 return false; 944 InputSection *LA = A->getLinkOrderDep(); 945 InputSection *LB = B->getLinkOrderDep(); 946 OutputSection *AOut = LA->getParent(); 947 OutputSection *BOut = LB->getParent(); 948 if (AOut != BOut) 949 return AOut->SectionIndex < BOut->SectionIndex; 950 return LA->OutSecOff < LB->OutSecOff; 951 } 952 953 template <class ELFT> 954 static void finalizeShtGroup(OutputSection *OS, 955 ArrayRef<InputSection *> Sections) { 956 // sh_link field for SHT_GROUP sections should contain the section index of 957 // the symbol table. 958 OS->Link = InX::SymTab->getParent()->SectionIndex; 959 960 // sh_info then contain index of an entry in symbol table section which 961 // provides signature of the section group. 962 elf::ObjectFile<ELFT> *Obj = Sections[0]->getFile<ELFT>(); 963 assert(Config->Relocatable && Sections.size() == 1); 964 ArrayRef<SymbolBody *> Symbols = Obj->getSymbols(); 965 OS->Info = InX::SymTab->getSymbolIndex(Symbols[Sections[0]->Info - 1]); 966 } 967 968 template <class ELFT> void OutputSectionCommand::finalize() { 969 // Link order may be distributed across several InputSectionDescriptions 970 // but sort must consider them all at once. 971 std::vector<InputSection **> ScriptSections; 972 std::vector<InputSection *> Sections; 973 for (BaseCommand *Base : Commands) 974 if (auto *ISD = dyn_cast<InputSectionDescription>(Base)) 975 for (InputSection *&IS : ISD->Sections) { 976 ScriptSections.push_back(&IS); 977 Sections.push_back(IS); 978 } 979 980 if ((Sec->Flags & SHF_LINK_ORDER)) { 981 std::sort(Sections.begin(), Sections.end(), compareByFilePosition); 982 for (int I = 0, N = Sections.size(); I < N; ++I) 983 *ScriptSections[I] = Sections[I]; 984 985 // We must preserve the link order dependency of sections with the 986 // SHF_LINK_ORDER flag. The dependency is indicated by the sh_link field. We 987 // need to translate the InputSection sh_link to the OutputSection sh_link, 988 // all InputSections in the OutputSection have the same dependency. 989 if (auto *D = Sections.front()->getLinkOrderDep()) 990 Sec->Link = D->getParent()->SectionIndex; 991 } 992 993 uint32_t Type = Sec->Type; 994 if (Type == SHT_GROUP) { 995 finalizeShtGroup<ELFT>(Sec, Sections); 996 return; 997 } 998 999 if (!Config->CopyRelocs || (Type != SHT_RELA && Type != SHT_REL)) 1000 return; 1001 1002 InputSection *First = Sections[0]; 1003 if (isa<SyntheticSection>(First)) 1004 return; 1005 1006 Sec->Link = InX::SymTab->getParent()->SectionIndex; 1007 // sh_info for SHT_REL[A] sections should contain the section header index of 1008 // the section to which the relocation applies. 1009 InputSectionBase *S = First->getRelocatedSection(); 1010 Sec->Info = S->getOutputSection()->SectionIndex; 1011 Sec->Flags |= SHF_INFO_LINK; 1012 } 1013 1014 // Compress section contents if this section contains debug info. 1015 template <class ELFT> void OutputSectionCommand::maybeCompress() { 1016 typedef typename ELFT::Chdr Elf_Chdr; 1017 1018 // Compress only DWARF debug sections. 1019 if (!Config->CompressDebugSections || (Sec->Flags & SHF_ALLOC) || 1020 !Name.startswith(".debug_")) 1021 return; 1022 1023 // Create a section header. 1024 Sec->ZDebugHeader.resize(sizeof(Elf_Chdr)); 1025 auto *Hdr = reinterpret_cast<Elf_Chdr *>(Sec->ZDebugHeader.data()); 1026 Hdr->ch_type = ELFCOMPRESS_ZLIB; 1027 Hdr->ch_size = Sec->Size; 1028 Hdr->ch_addralign = Sec->Alignment; 1029 1030 // Write section contents to a temporary buffer and compress it. 1031 std::vector<uint8_t> Buf(Sec->Size); 1032 writeTo<ELFT>(Buf.data()); 1033 if (Error E = zlib::compress(toStringRef(Buf), Sec->CompressedData)) 1034 fatal("compress failed: " + llvm::toString(std::move(E))); 1035 1036 // Update section headers. 1037 Sec->Size = sizeof(Elf_Chdr) + Sec->CompressedData.size(); 1038 Sec->Flags |= SHF_COMPRESSED; 1039 } 1040 1041 template <class ELFT> void OutputSectionCommand::writeTo(uint8_t *Buf) { 1042 if (Sec->Type == SHT_NOBITS) 1043 return; 1044 1045 Sec->Loc = Buf; 1046 1047 // We may have already rendered compressed content when using 1048 // -compress-debug-sections option. Write it together with header. 1049 if (!Sec->CompressedData.empty()) { 1050 memcpy(Buf, Sec->ZDebugHeader.data(), Sec->ZDebugHeader.size()); 1051 memcpy(Buf + Sec->ZDebugHeader.size(), Sec->CompressedData.data(), 1052 Sec->CompressedData.size()); 1053 return; 1054 } 1055 1056 // Write leading padding. 1057 std::vector<InputSection *> Sections; 1058 for (BaseCommand *Cmd : Commands) 1059 if (auto *ISD = dyn_cast<InputSectionDescription>(Cmd)) 1060 for (InputSection *IS : ISD->Sections) 1061 if (IS->Live) 1062 Sections.push_back(IS); 1063 uint32_t Filler = getFiller(); 1064 if (Filler) 1065 fill(Buf, Sections.empty() ? Sec->Size : Sections[0]->OutSecOff, Filler); 1066 1067 parallelForEachN(0, Sections.size(), [=](size_t I) { 1068 InputSection *IS = Sections[I]; 1069 IS->writeTo<ELFT>(Buf); 1070 1071 // Fill gaps between sections. 1072 if (Filler) { 1073 uint8_t *Start = Buf + IS->OutSecOff + IS->getSize(); 1074 uint8_t *End; 1075 if (I + 1 == Sections.size()) 1076 End = Buf + Sec->Size; 1077 else 1078 End = Buf + Sections[I + 1]->OutSecOff; 1079 fill(Start, End - Start, Filler); 1080 } 1081 }); 1082 1083 // Linker scripts may have BYTE()-family commands with which you 1084 // can write arbitrary bytes to the output. Process them if any. 1085 for (BaseCommand *Base : Commands) 1086 if (auto *Data = dyn_cast<BytesDataCommand>(Base)) 1087 writeInt(Buf + Data->Offset, Data->Expression().getValue(), Data->Size); 1088 } 1089 1090 bool LinkerScript::hasLMA(OutputSection *Sec) { 1091 if (OutputSectionCommand *Cmd = getCmd(Sec)) 1092 if (Cmd->LMAExpr) 1093 return true; 1094 return false; 1095 } 1096 1097 ExprValue LinkerScript::getSymbolValue(const Twine &Loc, StringRef S) { 1098 if (S == ".") 1099 return {CurOutSec, Dot - CurOutSec->Addr, Loc}; 1100 if (SymbolBody *B = findSymbol(S)) { 1101 if (auto *D = dyn_cast<DefinedRegular>(B)) 1102 return {D->Section, D->Value, Loc}; 1103 if (auto *C = dyn_cast<DefinedCommon>(B)) 1104 return {InX::Common, C->Offset, Loc}; 1105 } 1106 error(Loc + ": symbol not found: " + S); 1107 return 0; 1108 } 1109 1110 bool LinkerScript::isDefined(StringRef S) { return findSymbol(S) != nullptr; } 1111 1112 // Returns indices of ELF headers containing specific section. Each index is a 1113 // zero based number of ELF header listed within PHDRS {} script block. 1114 std::vector<size_t> LinkerScript::getPhdrIndices(OutputSection *Sec) { 1115 if (OutputSectionCommand *Cmd = getCmd(Sec)) { 1116 std::vector<size_t> Ret; 1117 for (StringRef PhdrName : Cmd->Phdrs) 1118 Ret.push_back(getPhdrIndex(Cmd->Location, PhdrName)); 1119 return Ret; 1120 } 1121 return {}; 1122 } 1123 1124 size_t LinkerScript::getPhdrIndex(const Twine &Loc, StringRef PhdrName) { 1125 size_t I = 0; 1126 for (PhdrsCommand &Cmd : Opt.PhdrsCommands) { 1127 if (Cmd.Name == PhdrName) 1128 return I; 1129 ++I; 1130 } 1131 error(Loc + ": section header '" + PhdrName + "' is not listed in PHDRS"); 1132 return 0; 1133 } 1134 1135 template void OutputSectionCommand::writeTo<ELF32LE>(uint8_t *Buf); 1136 template void OutputSectionCommand::writeTo<ELF32BE>(uint8_t *Buf); 1137 template void OutputSectionCommand::writeTo<ELF64LE>(uint8_t *Buf); 1138 template void OutputSectionCommand::writeTo<ELF64BE>(uint8_t *Buf); 1139 1140 template void OutputSectionCommand::maybeCompress<ELF32LE>(); 1141 template void OutputSectionCommand::maybeCompress<ELF32BE>(); 1142 template void OutputSectionCommand::maybeCompress<ELF64LE>(); 1143 template void OutputSectionCommand::maybeCompress<ELF64BE>(); 1144 1145 template void OutputSectionCommand::finalize<ELF32LE>(); 1146 template void OutputSectionCommand::finalize<ELF32BE>(); 1147 template void OutputSectionCommand::finalize<ELF64LE>(); 1148 template void OutputSectionCommand::finalize<ELF64BE>(); 1149