1 //===- InputSection.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 #include "InputSection.h" 11 #include "Config.h" 12 #include "EhFrame.h" 13 #include "InputFiles.h" 14 #include "LinkerScript.h" 15 #include "OutputSections.h" 16 #include "Relocations.h" 17 #include "Symbols.h" 18 #include "SyntheticSections.h" 19 #include "Target.h" 20 #include "Thunks.h" 21 #include "lld/Common/ErrorHandler.h" 22 #include "lld/Common/Memory.h" 23 #include "llvm/Object/Decompressor.h" 24 #include "llvm/Support/Compiler.h" 25 #include "llvm/Support/Compression.h" 26 #include "llvm/Support/Endian.h" 27 #include "llvm/Support/Threading.h" 28 #include "llvm/Support/xxhash.h" 29 #include <mutex> 30 31 using namespace llvm; 32 using namespace llvm::ELF; 33 using namespace llvm::object; 34 using namespace llvm::support; 35 using namespace llvm::support::endian; 36 using namespace llvm::sys; 37 38 using namespace lld; 39 using namespace lld::elf; 40 41 std::vector<InputSectionBase *> elf::InputSections; 42 43 // Returns a string to construct an error message. 44 std::string lld::toString(const InputSectionBase *Sec) { 45 return (toString(Sec->File) + ":(" + Sec->Name + ")").str(); 46 } 47 48 template <class ELFT> 49 static ArrayRef<uint8_t> getSectionContents(ObjFile<ELFT> &File, 50 const typename ELFT::Shdr &Hdr) { 51 if (Hdr.sh_type == SHT_NOBITS) 52 return makeArrayRef<uint8_t>(nullptr, Hdr.sh_size); 53 return check(File.getObj().getSectionContents(&Hdr)); 54 } 55 56 InputSectionBase::InputSectionBase(InputFile *File, uint64_t Flags, 57 uint32_t Type, uint64_t Entsize, 58 uint32_t Link, uint32_t Info, 59 uint32_t Alignment, ArrayRef<uint8_t> Data, 60 StringRef Name, Kind SectionKind) 61 : SectionBase(SectionKind, Name, Flags, Entsize, Alignment, Type, Info, 62 Link), 63 File(File), Data(Data) { 64 // In order to reduce memory allocation, we assume that mergeable 65 // sections are smaller than 4 GiB, which is not an unreasonable 66 // assumption as of 2017. 67 if (SectionKind == SectionBase::Merge && Data.size() > UINT32_MAX) 68 error(toString(this) + ": section too large"); 69 70 NumRelocations = 0; 71 AreRelocsRela = false; 72 73 // The ELF spec states that a value of 0 means the section has 74 // no alignment constraits. 75 uint32_t V = std::max<uint64_t>(Alignment, 1); 76 if (!isPowerOf2_64(V)) 77 fatal(toString(File) + ": section sh_addralign is not a power of 2"); 78 this->Alignment = V; 79 } 80 81 // Drop SHF_GROUP bit unless we are producing a re-linkable object file. 82 // SHF_GROUP is a marker that a section belongs to some comdat group. 83 // That flag doesn't make sense in an executable. 84 static uint64_t getFlags(uint64_t Flags) { 85 Flags &= ~(uint64_t)SHF_INFO_LINK; 86 if (!Config->Relocatable) 87 Flags &= ~(uint64_t)SHF_GROUP; 88 return Flags; 89 } 90 91 // GNU assembler 2.24 and LLVM 4.0.0's MC (the newest release as of 92 // March 2017) fail to infer section types for sections starting with 93 // ".init_array." or ".fini_array.". They set SHT_PROGBITS instead of 94 // SHF_INIT_ARRAY. As a result, the following assembler directive 95 // creates ".init_array.100" with SHT_PROGBITS, for example. 96 // 97 // .section .init_array.100, "aw" 98 // 99 // This function forces SHT_{INIT,FINI}_ARRAY so that we can handle 100 // incorrect inputs as if they were correct from the beginning. 101 static uint64_t getType(uint64_t Type, StringRef Name) { 102 if (Type == SHT_PROGBITS && Name.startswith(".init_array.")) 103 return SHT_INIT_ARRAY; 104 if (Type == SHT_PROGBITS && Name.startswith(".fini_array.")) 105 return SHT_FINI_ARRAY; 106 return Type; 107 } 108 109 template <class ELFT> 110 InputSectionBase::InputSectionBase(ObjFile<ELFT> &File, 111 const typename ELFT::Shdr &Hdr, 112 StringRef Name, Kind SectionKind) 113 : InputSectionBase(&File, getFlags(Hdr.sh_flags), 114 getType(Hdr.sh_type, Name), Hdr.sh_entsize, Hdr.sh_link, 115 Hdr.sh_info, Hdr.sh_addralign, 116 getSectionContents(File, Hdr), Name, SectionKind) { 117 // We reject object files having insanely large alignments even though 118 // they are allowed by the spec. I think 4GB is a reasonable limitation. 119 // We might want to relax this in the future. 120 if (Hdr.sh_addralign > UINT32_MAX) 121 fatal(toString(&File) + ": section sh_addralign is too large"); 122 } 123 124 size_t InputSectionBase::getSize() const { 125 if (auto *S = dyn_cast<SyntheticSection>(this)) 126 return S->getSize(); 127 128 return Data.size(); 129 } 130 131 uint64_t InputSectionBase::getOffsetInFile() const { 132 const uint8_t *FileStart = (const uint8_t *)File->MB.getBufferStart(); 133 const uint8_t *SecStart = Data.begin(); 134 return SecStart - FileStart; 135 } 136 137 uint64_t SectionBase::getOffset(uint64_t Offset) const { 138 switch (kind()) { 139 case Output: { 140 auto *OS = cast<OutputSection>(this); 141 // For output sections we treat offset -1 as the end of the section. 142 return Offset == uint64_t(-1) ? OS->Size : Offset; 143 } 144 case Regular: 145 return cast<InputSection>(this)->OutSecOff + Offset; 146 case Synthetic: { 147 auto *IS = cast<InputSection>(this); 148 // For synthetic sections we treat offset -1 as the end of the section. 149 return IS->OutSecOff + (Offset == uint64_t(-1) ? IS->getSize() : Offset); 150 } 151 case EHFrame: 152 // The file crtbeginT.o has relocations pointing to the start of an empty 153 // .eh_frame that is known to be the first in the link. It does that to 154 // identify the start of the output .eh_frame. 155 return Offset; 156 case Merge: 157 const MergeInputSection *MS = cast<MergeInputSection>(this); 158 if (InputSection *IS = MS->getParent()) 159 return IS->OutSecOff + MS->getOffset(Offset); 160 return MS->getOffset(Offset); 161 } 162 llvm_unreachable("invalid section kind"); 163 } 164 165 OutputSection *SectionBase::getOutputSection() { 166 InputSection *Sec; 167 if (auto *IS = dyn_cast<InputSection>(this)) 168 return IS->getParent(); 169 else if (auto *MS = dyn_cast<MergeInputSection>(this)) 170 Sec = MS->getParent(); 171 else if (auto *EH = dyn_cast<EhInputSection>(this)) 172 Sec = EH->getParent(); 173 else 174 return cast<OutputSection>(this); 175 return Sec ? Sec->getParent() : nullptr; 176 } 177 178 // Decompress section contents if required. Note that this function 179 // is called from parallelForEach, so it must be thread-safe. 180 void InputSectionBase::maybeDecompress() { 181 if (DecompressBuf) 182 return; 183 if (!(Flags & SHF_COMPRESSED) && !Name.startswith(".zdebug")) 184 return; 185 186 // Decompress a section. 187 Decompressor Dec = check(Decompressor::create(Name, toStringRef(Data), 188 Config->IsLE, Config->Is64)); 189 190 size_t Size = Dec.getDecompressedSize(); 191 DecompressBuf.reset(new char[Size + Name.size()]()); 192 if (Error E = Dec.decompress({DecompressBuf.get(), Size})) 193 fatal(toString(this) + 194 ": decompress failed: " + llvm::toString(std::move(E))); 195 196 Data = makeArrayRef((uint8_t *)DecompressBuf.get(), Size); 197 Flags &= ~(uint64_t)SHF_COMPRESSED; 198 199 // A section name may have been altered if compressed. If that's 200 // the case, restore the original name. (i.e. ".zdebug_" -> ".debug_") 201 if (Name.startswith(".zdebug")) { 202 DecompressBuf[Size] = '.'; 203 memcpy(&DecompressBuf[Size + 1], Name.data() + 2, Name.size() - 2); 204 Name = StringRef(&DecompressBuf[Size], Name.size() - 1); 205 } 206 } 207 208 InputSection *InputSectionBase::getLinkOrderDep() const { 209 if ((Flags & SHF_LINK_ORDER) && Link != 0) { 210 InputSectionBase *L = File->getSections()[Link]; 211 if (auto *IS = dyn_cast<InputSection>(L)) 212 return IS; 213 error("a section with SHF_LINK_ORDER should not refer a non-regular " 214 "section: " + 215 toString(L)); 216 } 217 return nullptr; 218 } 219 220 // Returns a source location string. Used to construct an error message. 221 template <class ELFT> 222 std::string InputSectionBase::getLocation(uint64_t Offset) { 223 // We don't have file for synthetic sections. 224 if (getFile<ELFT>() == nullptr) 225 return (Config->OutputFile + ":(" + Name + "+0x" + utohexstr(Offset) + ")") 226 .str(); 227 228 // First check if we can get desired values from debugging information. 229 std::string LineInfo = getFile<ELFT>()->getLineInfo(this, Offset); 230 if (!LineInfo.empty()) 231 return LineInfo; 232 233 // File->SourceFile contains STT_FILE symbol that contains a 234 // source file name. If it's missing, we use an object file name. 235 std::string SrcFile = getFile<ELFT>()->SourceFile; 236 if (SrcFile.empty()) 237 SrcFile = toString(File); 238 239 // Find a function symbol that encloses a given location. 240 for (Symbol *B : File->getSymbols()) 241 if (auto *D = dyn_cast<Defined>(B)) 242 if (D->Section == this && D->Type == STT_FUNC) 243 if (D->Value <= Offset && Offset < D->Value + D->Size) 244 return SrcFile + ":(function " + toString(*D) + ")"; 245 246 // If there's no symbol, print out the offset in the section. 247 return (SrcFile + ":(" + Name + "+0x" + utohexstr(Offset) + ")").str(); 248 } 249 250 // This function is intended to be used for constructing an error message. 251 // The returned message looks like this: 252 // 253 // foo.c:42 (/home/alice/possibly/very/long/path/foo.c:42) 254 // 255 // Returns an empty string if there's no way to get line info. 256 std::string InputSectionBase::getSrcMsg(const Symbol &Sym, uint64_t Offset) { 257 // Synthetic sections don't have input files. 258 if (!File) 259 return ""; 260 return File->getSrcMsg(Sym, *this, Offset); 261 } 262 263 // Returns a filename string along with an optional section name. This 264 // function is intended to be used for constructing an error 265 // message. The returned message looks like this: 266 // 267 // path/to/foo.o:(function bar) 268 // 269 // or 270 // 271 // path/to/foo.o:(function bar) in archive path/to/bar.a 272 std::string InputSectionBase::getObjMsg(uint64_t Off) { 273 // Synthetic sections don't have input files. 274 if (!File) 275 return ("<internal>:(" + Name + "+0x" + utohexstr(Off) + ")").str(); 276 std::string Filename = File->getName(); 277 278 std::string Archive; 279 if (!File->ArchiveName.empty()) 280 Archive = (" in archive " + File->ArchiveName).str(); 281 282 // Find a symbol that encloses a given location. 283 for (Symbol *B : File->getSymbols()) 284 if (auto *D = dyn_cast<Defined>(B)) 285 if (D->Section == this && D->Value <= Off && Off < D->Value + D->Size) 286 return Filename + ":(" + toString(*D) + ")" + Archive; 287 288 // If there's no symbol, print out the offset in the section. 289 return (Filename + ":(" + Name + "+0x" + utohexstr(Off) + ")" + Archive) 290 .str(); 291 } 292 293 InputSection InputSection::Discarded(nullptr, 0, 0, 0, ArrayRef<uint8_t>(), ""); 294 295 InputSection::InputSection(InputFile *F, uint64_t Flags, uint32_t Type, 296 uint32_t Alignment, ArrayRef<uint8_t> Data, 297 StringRef Name, Kind K) 298 : InputSectionBase(F, Flags, Type, 299 /*Entsize*/ 0, /*Link*/ 0, /*Info*/ 0, Alignment, Data, 300 Name, K) {} 301 302 template <class ELFT> 303 InputSection::InputSection(ObjFile<ELFT> &F, const typename ELFT::Shdr &Header, 304 StringRef Name) 305 : InputSectionBase(F, Header, Name, InputSectionBase::Regular) {} 306 307 bool InputSection::classof(const SectionBase *S) { 308 return S->kind() == SectionBase::Regular || 309 S->kind() == SectionBase::Synthetic; 310 } 311 312 OutputSection *InputSection::getParent() const { 313 return cast_or_null<OutputSection>(Parent); 314 } 315 316 // Copy SHT_GROUP section contents. Used only for the -r option. 317 template <class ELFT> void InputSection::copyShtGroup(uint8_t *Buf) { 318 // ELFT::Word is the 32-bit integral type in the target endianness. 319 typedef typename ELFT::Word u32; 320 ArrayRef<u32> From = getDataAs<u32>(); 321 auto *To = reinterpret_cast<u32 *>(Buf); 322 323 // The first entry is not a section number but a flag. 324 *To++ = From[0]; 325 326 // Adjust section numbers because section numbers in an input object 327 // files are different in the output. 328 ArrayRef<InputSectionBase *> Sections = File->getSections(); 329 for (uint32_t Idx : From.slice(1)) 330 *To++ = Sections[Idx]->getOutputSection()->SectionIndex; 331 } 332 333 InputSectionBase *InputSection::getRelocatedSection() { 334 assert(Type == SHT_RELA || Type == SHT_REL); 335 ArrayRef<InputSectionBase *> Sections = File->getSections(); 336 return Sections[Info]; 337 } 338 339 // This is used for -r and --emit-relocs. We can't use memcpy to copy 340 // relocations because we need to update symbol table offset and section index 341 // for each relocation. So we copy relocations one by one. 342 template <class ELFT, class RelTy> 343 void InputSection::copyRelocations(uint8_t *Buf, ArrayRef<RelTy> Rels) { 344 InputSectionBase *Sec = getRelocatedSection(); 345 346 for (const RelTy &Rel : Rels) { 347 RelType Type = Rel.getType(Config->IsMips64EL); 348 Symbol &Sym = getFile<ELFT>()->getRelocTargetSym(Rel); 349 350 auto *P = reinterpret_cast<typename ELFT::Rela *>(Buf); 351 Buf += sizeof(RelTy); 352 353 if (RelTy::IsRela) 354 P->r_addend = getAddend<ELFT>(Rel); 355 356 // Output section VA is zero for -r, so r_offset is an offset within the 357 // section, but for --emit-relocs it is an virtual address. 358 P->r_offset = Sec->getOutputSection()->Addr + Sec->getOffset(Rel.r_offset); 359 P->setSymbolAndType(InX::SymTab->getSymbolIndex(&Sym), Type, 360 Config->IsMips64EL); 361 362 if (Sym.Type == STT_SECTION) { 363 // We combine multiple section symbols into only one per 364 // section. This means we have to update the addend. That is 365 // trivial for Elf_Rela, but for Elf_Rel we have to write to the 366 // section data. We do that by adding to the Relocation vector. 367 368 // .eh_frame is horribly special and can reference discarded sections. To 369 // avoid having to parse and recreate .eh_frame, we just replace any 370 // relocation in it pointing to discarded sections with R_*_NONE, which 371 // hopefully creates a frame that is ignored at runtime. 372 auto *D = dyn_cast<Defined>(&Sym); 373 if (!D) { 374 error("STT_SECTION symbol should be defined"); 375 continue; 376 } 377 SectionBase *Section = D->Section; 378 if (Section == &InputSection::Discarded) { 379 P->setSymbolAndType(0, 0, false); 380 continue; 381 } 382 383 if (RelTy::IsRela) { 384 P->r_addend = 385 Sym.getVA(getAddend<ELFT>(Rel)) - Section->getOutputSection()->Addr; 386 } else if (Config->Relocatable) { 387 const uint8_t *BufLoc = Sec->Data.begin() + Rel.r_offset; 388 Sec->Relocations.push_back({R_ABS, Type, Rel.r_offset, 389 Target->getImplicitAddend(BufLoc, Type), 390 &Sym}); 391 } 392 } 393 394 } 395 } 396 397 // The ARM and AArch64 ABI handle pc-relative relocations to undefined weak 398 // references specially. The general rule is that the value of the symbol in 399 // this context is the address of the place P. A further special case is that 400 // branch relocations to an undefined weak reference resolve to the next 401 // instruction. 402 static uint32_t getARMUndefinedRelativeWeakVA(RelType Type, uint32_t A, 403 uint32_t P) { 404 switch (Type) { 405 // Unresolved branch relocations to weak references resolve to next 406 // instruction, this will be either 2 or 4 bytes on from P. 407 case R_ARM_THM_JUMP11: 408 return P + 2 + A; 409 case R_ARM_CALL: 410 case R_ARM_JUMP24: 411 case R_ARM_PC24: 412 case R_ARM_PLT32: 413 case R_ARM_PREL31: 414 case R_ARM_THM_JUMP19: 415 case R_ARM_THM_JUMP24: 416 return P + 4 + A; 417 case R_ARM_THM_CALL: 418 // We don't want an interworking BLX to ARM 419 return P + 5 + A; 420 // Unresolved non branch pc-relative relocations 421 // R_ARM_TARGET2 which can be resolved relatively is not present as it never 422 // targets a weak-reference. 423 case R_ARM_MOVW_PREL_NC: 424 case R_ARM_MOVT_PREL: 425 case R_ARM_REL32: 426 case R_ARM_THM_MOVW_PREL_NC: 427 case R_ARM_THM_MOVT_PREL: 428 return P + A; 429 } 430 llvm_unreachable("ARM pc-relative relocation expected\n"); 431 } 432 433 // The comment above getARMUndefinedRelativeWeakVA applies to this function. 434 static uint64_t getAArch64UndefinedRelativeWeakVA(uint64_t Type, uint64_t A, 435 uint64_t P) { 436 switch (Type) { 437 // Unresolved branch relocations to weak references resolve to next 438 // instruction, this is 4 bytes on from P. 439 case R_AARCH64_CALL26: 440 case R_AARCH64_CONDBR19: 441 case R_AARCH64_JUMP26: 442 case R_AARCH64_TSTBR14: 443 return P + 4 + A; 444 // Unresolved non branch pc-relative relocations 445 case R_AARCH64_PREL16: 446 case R_AARCH64_PREL32: 447 case R_AARCH64_PREL64: 448 case R_AARCH64_ADR_PREL_LO21: 449 case R_AARCH64_LD_PREL_LO19: 450 return P + A; 451 } 452 llvm_unreachable("AArch64 pc-relative relocation expected\n"); 453 } 454 455 // ARM SBREL relocations are of the form S + A - B where B is the static base 456 // The ARM ABI defines base to be "addressing origin of the output segment 457 // defining the symbol S". We defined the "addressing origin"/static base to be 458 // the base of the PT_LOAD segment containing the Sym. 459 // The procedure call standard only defines a Read Write Position Independent 460 // RWPI variant so in practice we should expect the static base to be the base 461 // of the RW segment. 462 static uint64_t getARMStaticBase(const Symbol &Sym) { 463 OutputSection *OS = Sym.getOutputSection(); 464 if (!OS || !OS->PtLoad || !OS->PtLoad->FirstSec) 465 fatal("SBREL relocation to " + Sym.getName() + " without static base"); 466 return OS->PtLoad->FirstSec->Addr; 467 } 468 469 static uint64_t getRelocTargetVA(RelType Type, int64_t A, uint64_t P, 470 const Symbol &Sym, RelExpr Expr) { 471 switch (Expr) { 472 case R_INVALID: 473 return 0; 474 case R_ABS: 475 case R_RELAX_GOT_PC_NOPIC: 476 return Sym.getVA(A); 477 case R_ARM_SBREL: 478 return Sym.getVA(A) - getARMStaticBase(Sym); 479 case R_GOT: 480 case R_RELAX_TLS_GD_TO_IE_ABS: 481 return Sym.getGotVA() + A; 482 case R_GOTONLY_PC: 483 return InX::Got->getVA() + A - P; 484 case R_GOTONLY_PC_FROM_END: 485 return InX::Got->getVA() + A - P + InX::Got->getSize(); 486 case R_GOTREL: 487 return Sym.getVA(A) - InX::Got->getVA(); 488 case R_GOTREL_FROM_END: 489 return Sym.getVA(A) - InX::Got->getVA() - InX::Got->getSize(); 490 case R_GOT_FROM_END: 491 case R_RELAX_TLS_GD_TO_IE_END: 492 return Sym.getGotOffset() + A - InX::Got->getSize(); 493 case R_GOT_OFF: 494 return Sym.getGotOffset() + A; 495 case R_GOT_PAGE_PC: 496 case R_RELAX_TLS_GD_TO_IE_PAGE_PC: 497 return getAArch64Page(Sym.getGotVA() + A) - getAArch64Page(P); 498 case R_GOT_PC: 499 case R_RELAX_TLS_GD_TO_IE: 500 return Sym.getGotVA() + A - P; 501 case R_HINT: 502 case R_NONE: 503 case R_TLSDESC_CALL: 504 llvm_unreachable("cannot relocate hint relocs"); 505 case R_MIPS_GOTREL: 506 return Sym.getVA(A) - InX::MipsGot->getGp(); 507 case R_MIPS_GOT_GP: 508 return InX::MipsGot->getGp() + A; 509 case R_MIPS_GOT_GP_PC: { 510 // R_MIPS_LO16 expression has R_MIPS_GOT_GP_PC type iif the target 511 // is _gp_disp symbol. In that case we should use the following 512 // formula for calculation "AHL + GP - P + 4". For details see p. 4-19 at 513 // ftp://www.linux-mips.org/pub/linux/mips/doc/ABI/mipsabi.pdf 514 // microMIPS variants of these relocations use slightly different 515 // expressions: AHL + GP - P + 3 for %lo() and AHL + GP - P - 1 for %hi() 516 // to correctly handle less-sugnificant bit of the microMIPS symbol. 517 uint64_t V = InX::MipsGot->getGp() + A - P; 518 if (Type == R_MIPS_LO16 || Type == R_MICROMIPS_LO16) 519 V += 4; 520 if (Type == R_MICROMIPS_LO16 || Type == R_MICROMIPS_HI16) 521 V -= 1; 522 return V; 523 } 524 case R_MIPS_GOT_LOCAL_PAGE: 525 // If relocation against MIPS local symbol requires GOT entry, this entry 526 // should be initialized by 'page address'. This address is high 16-bits 527 // of sum the symbol's value and the addend. 528 return InX::MipsGot->getVA() + InX::MipsGot->getPageEntryOffset(Sym, A) - 529 InX::MipsGot->getGp(); 530 case R_MIPS_GOT_OFF: 531 case R_MIPS_GOT_OFF32: 532 // In case of MIPS if a GOT relocation has non-zero addend this addend 533 // should be applied to the GOT entry content not to the GOT entry offset. 534 // That is why we use separate expression type. 535 return InX::MipsGot->getVA() + InX::MipsGot->getSymEntryOffset(Sym, A) - 536 InX::MipsGot->getGp(); 537 case R_MIPS_TLSGD: 538 return InX::MipsGot->getVA() + InX::MipsGot->getTlsOffset() + 539 InX::MipsGot->getGlobalDynOffset(Sym) - InX::MipsGot->getGp(); 540 case R_MIPS_TLSLD: 541 return InX::MipsGot->getVA() + InX::MipsGot->getTlsOffset() + 542 InX::MipsGot->getTlsIndexOff() - InX::MipsGot->getGp(); 543 case R_PAGE_PC: 544 case R_PLT_PAGE_PC: { 545 uint64_t Dest; 546 if (Sym.isUndefWeak()) 547 Dest = getAArch64Page(A); 548 else 549 Dest = getAArch64Page(Sym.getVA(A)); 550 return Dest - getAArch64Page(P); 551 } 552 case R_PC: { 553 uint64_t Dest; 554 if (Sym.isUndefWeak()) { 555 // On ARM and AArch64 a branch to an undefined weak resolves to the 556 // next instruction, otherwise the place. 557 if (Config->EMachine == EM_ARM) 558 Dest = getARMUndefinedRelativeWeakVA(Type, A, P); 559 else if (Config->EMachine == EM_AARCH64) 560 Dest = getAArch64UndefinedRelativeWeakVA(Type, A, P); 561 else 562 Dest = Sym.getVA(A); 563 } else { 564 Dest = Sym.getVA(A); 565 } 566 return Dest - P; 567 } 568 case R_PLT: 569 return Sym.getPltVA() + A; 570 case R_PLT_PC: 571 case R_PPC_PLT_OPD: 572 return Sym.getPltVA() + A - P; 573 case R_PPC_OPD: { 574 uint64_t SymVA = Sym.getVA(A); 575 // If we have an undefined weak symbol, we might get here with a symbol 576 // address of zero. That could overflow, but the code must be unreachable, 577 // so don't bother doing anything at all. 578 if (!SymVA) 579 return 0; 580 if (Out::Opd) { 581 // If this is a local call, and we currently have the address of a 582 // function-descriptor, get the underlying code address instead. 583 uint64_t OpdStart = Out::Opd->Addr; 584 uint64_t OpdEnd = OpdStart + Out::Opd->Size; 585 bool InOpd = OpdStart <= SymVA && SymVA < OpdEnd; 586 if (InOpd) 587 SymVA = read64be(&Out::OpdBuf[SymVA - OpdStart]); 588 } 589 return SymVA - P; 590 } 591 case R_PPC_TOC: 592 return getPPC64TocBase() + A; 593 case R_RELAX_GOT_PC: 594 return Sym.getVA(A) - P; 595 case R_RELAX_TLS_GD_TO_LE: 596 case R_RELAX_TLS_IE_TO_LE: 597 case R_RELAX_TLS_LD_TO_LE: 598 case R_TLS: 599 // A weak undefined TLS symbol resolves to the base of the TLS 600 // block, i.e. gets a value of zero. If we pass --gc-sections to 601 // lld and .tbss is not referenced, it gets reclaimed and we don't 602 // create a TLS program header. Therefore, we resolve this 603 // statically to zero. 604 if (Sym.isTls() && Sym.isUndefWeak()) 605 return 0; 606 if (Target->TcbSize) 607 return Sym.getVA(A) + alignTo(Target->TcbSize, Out::TlsPhdr->p_align); 608 return Sym.getVA(A) - Out::TlsPhdr->p_memsz; 609 case R_RELAX_TLS_GD_TO_LE_NEG: 610 case R_NEG_TLS: 611 return Out::TlsPhdr->p_memsz - Sym.getVA(A); 612 case R_SIZE: 613 return Sym.getSize() + A; 614 case R_TLSDESC: 615 return InX::Got->getGlobalDynAddr(Sym) + A; 616 case R_TLSDESC_PAGE: 617 return getAArch64Page(InX::Got->getGlobalDynAddr(Sym) + A) - 618 getAArch64Page(P); 619 case R_TLSGD: 620 return InX::Got->getGlobalDynOffset(Sym) + A - InX::Got->getSize(); 621 case R_TLSGD_PC: 622 return InX::Got->getGlobalDynAddr(Sym) + A - P; 623 case R_TLSLD: 624 return InX::Got->getTlsIndexOff() + A - InX::Got->getSize(); 625 case R_TLSLD_PC: 626 return InX::Got->getTlsIndexVA() + A - P; 627 } 628 llvm_unreachable("Invalid expression"); 629 } 630 631 // This function applies relocations to sections without SHF_ALLOC bit. 632 // Such sections are never mapped to memory at runtime. Debug sections are 633 // an example. Relocations in non-alloc sections are much easier to 634 // handle than in allocated sections because it will never need complex 635 // treatement such as GOT or PLT (because at runtime no one refers them). 636 // So, we handle relocations for non-alloc sections directly in this 637 // function as a performance optimization. 638 template <class ELFT, class RelTy> 639 void InputSection::relocateNonAlloc(uint8_t *Buf, ArrayRef<RelTy> Rels) { 640 const unsigned Bits = sizeof(typename ELFT::uint) * 8; 641 642 for (const RelTy &Rel : Rels) { 643 RelType Type = Rel.getType(Config->IsMips64EL); 644 uint64_t Offset = getOffset(Rel.r_offset); 645 uint8_t *BufLoc = Buf + Offset; 646 int64_t Addend = getAddend<ELFT>(Rel); 647 if (!RelTy::IsRela) 648 Addend += Target->getImplicitAddend(BufLoc, Type); 649 650 Symbol &Sym = getFile<ELFT>()->getRelocTargetSym(Rel); 651 RelExpr Expr = Target->getRelExpr(Type, Sym, BufLoc); 652 if (Expr == R_NONE) 653 continue; 654 if (Expr != R_ABS) { 655 // GCC 8.0 or earlier have a bug that it emits R_386_GOTPC relocations 656 // against _GLOBAL_OFFSET_TABLE for .debug_info. The bug seems to have 657 // been fixed in 2017: https://gcc.gnu.org/bugzilla/show_bug.cgi?id=82630, 658 // but we need to keep this bug-compatible code for a while. 659 if (Config->EMachine == EM_386 && Type == R_386_GOTPC) 660 continue; 661 662 error(getLocation<ELFT>(Offset) + ": has non-ABS relocation " + 663 toString(Type) + " against symbol '" + toString(Sym) + "'"); 664 return; 665 } 666 667 if (Sym.isTls() && !Out::TlsPhdr) 668 Target->relocateOne(BufLoc, Type, 0); 669 else 670 Target->relocateOne(BufLoc, Type, SignExtend64<Bits>(Sym.getVA(Addend))); 671 } 672 } 673 674 template <class ELFT> 675 void InputSectionBase::relocate(uint8_t *Buf, uint8_t *BufEnd) { 676 if (Flags & SHF_ALLOC) { 677 relocateAlloc(Buf, BufEnd); 678 return; 679 } 680 681 auto *Sec = cast<InputSection>(this); 682 if (Sec->AreRelocsRela) 683 Sec->relocateNonAlloc<ELFT>(Buf, Sec->template relas<ELFT>()); 684 else 685 Sec->relocateNonAlloc<ELFT>(Buf, Sec->template rels<ELFT>()); 686 } 687 688 void InputSectionBase::relocateAlloc(uint8_t *Buf, uint8_t *BufEnd) { 689 assert(Flags & SHF_ALLOC); 690 const unsigned Bits = Config->Wordsize * 8; 691 692 for (const Relocation &Rel : Relocations) { 693 uint64_t Offset = getOffset(Rel.Offset); 694 uint8_t *BufLoc = Buf + Offset; 695 RelType Type = Rel.Type; 696 697 uint64_t AddrLoc = getOutputSection()->Addr + Offset; 698 RelExpr Expr = Rel.Expr; 699 uint64_t TargetVA = SignExtend64( 700 getRelocTargetVA(Type, Rel.Addend, AddrLoc, *Rel.Sym, Expr), Bits); 701 702 switch (Expr) { 703 case R_RELAX_GOT_PC: 704 case R_RELAX_GOT_PC_NOPIC: 705 Target->relaxGot(BufLoc, TargetVA); 706 break; 707 case R_RELAX_TLS_IE_TO_LE: 708 Target->relaxTlsIeToLe(BufLoc, Type, TargetVA); 709 break; 710 case R_RELAX_TLS_LD_TO_LE: 711 Target->relaxTlsLdToLe(BufLoc, Type, TargetVA); 712 break; 713 case R_RELAX_TLS_GD_TO_LE: 714 case R_RELAX_TLS_GD_TO_LE_NEG: 715 Target->relaxTlsGdToLe(BufLoc, Type, TargetVA); 716 break; 717 case R_RELAX_TLS_GD_TO_IE: 718 case R_RELAX_TLS_GD_TO_IE_ABS: 719 case R_RELAX_TLS_GD_TO_IE_PAGE_PC: 720 case R_RELAX_TLS_GD_TO_IE_END: 721 Target->relaxTlsGdToIe(BufLoc, Type, TargetVA); 722 break; 723 case R_PPC_PLT_OPD: 724 // Patch a nop (0x60000000) to a ld. 725 if (BufLoc + 8 <= BufEnd && read32be(BufLoc + 4) == 0x60000000) 726 write32be(BufLoc + 4, 0xe8410028); // ld %r2, 40(%r1) 727 LLVM_FALLTHROUGH; 728 default: 729 Target->relocateOne(BufLoc, Type, TargetVA); 730 break; 731 } 732 } 733 } 734 735 template <class ELFT> void InputSection::writeTo(uint8_t *Buf) { 736 if (Type == SHT_NOBITS) 737 return; 738 739 if (auto *S = dyn_cast<SyntheticSection>(this)) { 740 S->writeTo(Buf + OutSecOff); 741 return; 742 } 743 744 // If -r or --emit-relocs is given, then an InputSection 745 // may be a relocation section. 746 if (Type == SHT_RELA) { 747 copyRelocations<ELFT>(Buf + OutSecOff, getDataAs<typename ELFT::Rela>()); 748 return; 749 } 750 if (Type == SHT_REL) { 751 copyRelocations<ELFT>(Buf + OutSecOff, getDataAs<typename ELFT::Rel>()); 752 return; 753 } 754 755 // If -r is given, we may have a SHT_GROUP section. 756 if (Type == SHT_GROUP) { 757 copyShtGroup<ELFT>(Buf + OutSecOff); 758 return; 759 } 760 761 // Copy section contents from source object file to output file 762 // and then apply relocations. 763 memcpy(Buf + OutSecOff, Data.data(), Data.size()); 764 uint8_t *BufEnd = Buf + OutSecOff + Data.size(); 765 relocate<ELFT>(Buf, BufEnd); 766 } 767 768 void InputSection::replace(InputSection *Other) { 769 Alignment = std::max(Alignment, Other->Alignment); 770 Other->Repl = Repl; 771 Other->Live = false; 772 } 773 774 template <class ELFT> 775 EhInputSection::EhInputSection(ObjFile<ELFT> &F, 776 const typename ELFT::Shdr &Header, 777 StringRef Name) 778 : InputSectionBase(F, Header, Name, InputSectionBase::EHFrame) {} 779 780 SyntheticSection *EhInputSection::getParent() const { 781 return cast_or_null<SyntheticSection>(Parent); 782 } 783 784 // Returns the index of the first relocation that points to a region between 785 // Begin and Begin+Size. 786 template <class IntTy, class RelTy> 787 static unsigned getReloc(IntTy Begin, IntTy Size, const ArrayRef<RelTy> &Rels, 788 unsigned &RelocI) { 789 // Start search from RelocI for fast access. That works because the 790 // relocations are sorted in .eh_frame. 791 for (unsigned N = Rels.size(); RelocI < N; ++RelocI) { 792 const RelTy &Rel = Rels[RelocI]; 793 if (Rel.r_offset < Begin) 794 continue; 795 796 if (Rel.r_offset < Begin + Size) 797 return RelocI; 798 return -1; 799 } 800 return -1; 801 } 802 803 // .eh_frame is a sequence of CIE or FDE records. 804 // This function splits an input section into records and returns them. 805 template <class ELFT> void EhInputSection::split() { 806 // Early exit if already split. 807 if (!Pieces.empty()) 808 return; 809 810 if (AreRelocsRela) 811 split<ELFT>(relas<ELFT>()); 812 else 813 split<ELFT>(rels<ELFT>()); 814 } 815 816 template <class ELFT, class RelTy> 817 void EhInputSection::split(ArrayRef<RelTy> Rels) { 818 unsigned RelI = 0; 819 for (size_t Off = 0, End = Data.size(); Off != End;) { 820 size_t Size = readEhRecordSize(this, Off); 821 Pieces.emplace_back(Off, this, Size, getReloc(Off, Size, Rels, RelI)); 822 // The empty record is the end marker. 823 if (Size == 4) 824 break; 825 Off += Size; 826 } 827 } 828 829 static size_t findNull(StringRef S, size_t EntSize) { 830 // Optimize the common case. 831 if (EntSize == 1) 832 return S.find(0); 833 834 for (unsigned I = 0, N = S.size(); I != N; I += EntSize) { 835 const char *B = S.begin() + I; 836 if (std::all_of(B, B + EntSize, [](char C) { return C == 0; })) 837 return I; 838 } 839 return StringRef::npos; 840 } 841 842 SyntheticSection *MergeInputSection::getParent() const { 843 return cast_or_null<SyntheticSection>(Parent); 844 } 845 846 // Split SHF_STRINGS section. Such section is a sequence of 847 // null-terminated strings. 848 void MergeInputSection::splitStrings(ArrayRef<uint8_t> Data, size_t EntSize) { 849 size_t Off = 0; 850 bool IsAlloc = Flags & SHF_ALLOC; 851 StringRef S = toStringRef(Data); 852 853 while (!S.empty()) { 854 size_t End = findNull(S, EntSize); 855 if (End == StringRef::npos) 856 fatal(toString(this) + ": string is not null terminated"); 857 size_t Size = End + EntSize; 858 859 Pieces.emplace_back(Off, xxHash64(S.substr(0, Size)), !IsAlloc); 860 S = S.substr(Size); 861 Off += Size; 862 } 863 } 864 865 // Split non-SHF_STRINGS section. Such section is a sequence of 866 // fixed size records. 867 void MergeInputSection::splitNonStrings(ArrayRef<uint8_t> Data, 868 size_t EntSize) { 869 size_t Size = Data.size(); 870 assert((Size % EntSize) == 0); 871 bool IsAlloc = Flags & SHF_ALLOC; 872 873 for (size_t I = 0; I != Size; I += EntSize) 874 Pieces.emplace_back(I, xxHash64(toStringRef(Data.slice(I, EntSize))), 875 !IsAlloc); 876 } 877 878 template <class ELFT> 879 MergeInputSection::MergeInputSection(ObjFile<ELFT> &F, 880 const typename ELFT::Shdr &Header, 881 StringRef Name) 882 : InputSectionBase(F, Header, Name, InputSectionBase::Merge) {} 883 884 MergeInputSection::MergeInputSection(uint64_t Flags, uint32_t Type, 885 uint64_t Entsize, ArrayRef<uint8_t> Data, 886 StringRef Name) 887 : InputSectionBase(nullptr, Flags, Type, Entsize, /*Link*/ 0, /*Info*/ 0, 888 /*Alignment*/ Entsize, Data, Name, SectionBase::Merge) {} 889 890 // This function is called after we obtain a complete list of input sections 891 // that need to be linked. This is responsible to split section contents 892 // into small chunks for further processing. 893 // 894 // Note that this function is called from parallelForEach. This must be 895 // thread-safe (i.e. no memory allocation from the pools). 896 void MergeInputSection::splitIntoPieces() { 897 assert(Pieces.empty()); 898 899 if (Flags & SHF_STRINGS) 900 splitStrings(Data, Entsize); 901 else 902 splitNonStrings(Data, Entsize); 903 904 if (Config->GcSections && (Flags & SHF_ALLOC)) 905 for (uint64_t Off : LiveOffsets) 906 getSectionPiece(Off)->Live = true; 907 } 908 909 // Do binary search to get a section piece at a given input offset. 910 SectionPiece *MergeInputSection::getSectionPiece(uint64_t Offset) { 911 auto *This = static_cast<const MergeInputSection *>(this); 912 return const_cast<SectionPiece *>(This->getSectionPiece(Offset)); 913 } 914 915 template <class It, class T, class Compare> 916 static It fastUpperBound(It First, It Last, const T &Value, Compare Comp) { 917 size_t Size = std::distance(First, Last); 918 assert(Size != 0); 919 while (Size != 1) { 920 size_t H = Size / 2; 921 const It MI = First + H; 922 Size -= H; 923 First = Comp(Value, *MI) ? First : First + H; 924 } 925 return Comp(Value, *First) ? First : First + 1; 926 } 927 928 const SectionPiece *MergeInputSection::getSectionPiece(uint64_t Offset) const { 929 if (Data.size() <= Offset) 930 fatal(toString(this) + ": entry is past the end of the section"); 931 932 // Find the element this offset points to. 933 auto I = fastUpperBound( 934 Pieces.begin(), Pieces.end(), Offset, 935 [](const uint64_t &A, const SectionPiece &B) { return A < B.InputOff; }); 936 --I; 937 return &*I; 938 } 939 940 // Returns the offset in an output section for a given input offset. 941 // Because contents of a mergeable section is not contiguous in output, 942 // it is not just an addition to a base output offset. 943 uint64_t MergeInputSection::getOffset(uint64_t Offset) const { 944 if (!Live) 945 return 0; 946 947 // Initialize OffsetMap lazily. 948 llvm::call_once(InitOffsetMap, [&] { 949 OffsetMap.reserve(Pieces.size()); 950 for (size_t I = 0; I < Pieces.size(); ++I) 951 OffsetMap[Pieces[I].InputOff] = I; 952 }); 953 954 // Find a string starting at a given offset. 955 auto It = OffsetMap.find(Offset); 956 if (It != OffsetMap.end()) 957 return Pieces[It->second].OutputOff; 958 959 // If Offset is not at beginning of a section piece, it is not in the map. 960 // In that case we need to search from the original section piece vector. 961 const SectionPiece &Piece = *getSectionPiece(Offset); 962 if (!Piece.Live) 963 return 0; 964 965 uint64_t Addend = Offset - Piece.InputOff; 966 return Piece.OutputOff + Addend; 967 } 968 969 template InputSection::InputSection(ObjFile<ELF32LE> &, const ELF32LE::Shdr &, 970 StringRef); 971 template InputSection::InputSection(ObjFile<ELF32BE> &, const ELF32BE::Shdr &, 972 StringRef); 973 template InputSection::InputSection(ObjFile<ELF64LE> &, const ELF64LE::Shdr &, 974 StringRef); 975 template InputSection::InputSection(ObjFile<ELF64BE> &, const ELF64BE::Shdr &, 976 StringRef); 977 978 template std::string InputSectionBase::getLocation<ELF32LE>(uint64_t); 979 template std::string InputSectionBase::getLocation<ELF32BE>(uint64_t); 980 template std::string InputSectionBase::getLocation<ELF64LE>(uint64_t); 981 template std::string InputSectionBase::getLocation<ELF64BE>(uint64_t); 982 983 template void InputSection::writeTo<ELF32LE>(uint8_t *); 984 template void InputSection::writeTo<ELF32BE>(uint8_t *); 985 template void InputSection::writeTo<ELF64LE>(uint8_t *); 986 template void InputSection::writeTo<ELF64BE>(uint8_t *); 987 988 template MergeInputSection::MergeInputSection(ObjFile<ELF32LE> &, 989 const ELF32LE::Shdr &, StringRef); 990 template MergeInputSection::MergeInputSection(ObjFile<ELF32BE> &, 991 const ELF32BE::Shdr &, StringRef); 992 template MergeInputSection::MergeInputSection(ObjFile<ELF64LE> &, 993 const ELF64LE::Shdr &, StringRef); 994 template MergeInputSection::MergeInputSection(ObjFile<ELF64BE> &, 995 const ELF64BE::Shdr &, StringRef); 996 997 template EhInputSection::EhInputSection(ObjFile<ELF32LE> &, 998 const ELF32LE::Shdr &, StringRef); 999 template EhInputSection::EhInputSection(ObjFile<ELF32BE> &, 1000 const ELF32BE::Shdr &, StringRef); 1001 template EhInputSection::EhInputSection(ObjFile<ELF64LE> &, 1002 const ELF64LE::Shdr &, StringRef); 1003 template EhInputSection::EhInputSection(ObjFile<ELF64BE> &, 1004 const ELF64BE::Shdr &, StringRef); 1005 1006 template void EhInputSection::split<ELF32LE>(); 1007 template void EhInputSection::split<ELF32BE>(); 1008 template void EhInputSection::split<ELF64LE>(); 1009 template void EhInputSection::split<ELF64BE>(); 1010