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