1 //===- Relocations.cpp ----------------------------------------------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // This file contains platform-independent functions to process relocations. 10 // I'll describe the overview of this file here. 11 // 12 // Simple relocations are easy to handle for the linker. For example, 13 // for R_X86_64_PC64 relocs, the linker just has to fix up locations 14 // with the relative offsets to the target symbols. It would just be 15 // reading records from relocation sections and applying them to output. 16 // 17 // But not all relocations are that easy to handle. For example, for 18 // R_386_GOTOFF relocs, the linker has to create new GOT entries for 19 // symbols if they don't exist, and fix up locations with GOT entry 20 // offsets from the beginning of GOT section. So there is more than 21 // fixing addresses in relocation processing. 22 // 23 // ELF defines a large number of complex relocations. 24 // 25 // The functions in this file analyze relocations and do whatever needs 26 // to be done. It includes, but not limited to, the following. 27 // 28 // - create GOT/PLT entries 29 // - create new relocations in .dynsym to let the dynamic linker resolve 30 // them at runtime (since ELF supports dynamic linking, not all 31 // relocations can be resolved at link-time) 32 // - create COPY relocs and reserve space in .bss 33 // - replace expensive relocs (in terms of runtime cost) with cheap ones 34 // - error out infeasible combinations such as PIC and non-relative relocs 35 // 36 // Note that the functions in this file don't actually apply relocations 37 // because it doesn't know about the output file nor the output file buffer. 38 // It instead stores Relocation objects to InputSection's Relocations 39 // vector to let it apply later in InputSection::writeTo. 40 // 41 //===----------------------------------------------------------------------===// 42 43 #include "Relocations.h" 44 #include "Config.h" 45 #include "LinkerScript.h" 46 #include "OutputSections.h" 47 #include "SymbolTable.h" 48 #include "Symbols.h" 49 #include "SyntheticSections.h" 50 #include "Target.h" 51 #include "Thunks.h" 52 #include "lld/Common/ErrorHandler.h" 53 #include "lld/Common/Memory.h" 54 #include "lld/Common/Strings.h" 55 #include "llvm/ADT/SmallSet.h" 56 #include "llvm/Demangle/Demangle.h" 57 #include "llvm/Support/Endian.h" 58 #include "llvm/Support/raw_ostream.h" 59 #include <algorithm> 60 61 using namespace llvm; 62 using namespace llvm::ELF; 63 using namespace llvm::object; 64 using namespace llvm::support::endian; 65 using namespace lld; 66 using namespace lld::elf; 67 68 static Optional<std::string> getLinkerScriptLocation(const Symbol &sym) { 69 for (BaseCommand *base : script->sectionCommands) 70 if (auto *cmd = dyn_cast<SymbolAssignment>(base)) 71 if (cmd->sym == &sym) 72 return cmd->location; 73 return None; 74 } 75 76 static std::string getDefinedLocation(const Symbol &sym) { 77 const char msg[] = "\n>>> defined in "; 78 if (sym.file) 79 return msg + toString(sym.file); 80 if (Optional<std::string> loc = getLinkerScriptLocation(sym)) 81 return msg + *loc; 82 return ""; 83 } 84 85 // Construct a message in the following format. 86 // 87 // >>> defined in /home/alice/src/foo.o 88 // >>> referenced by bar.c:12 (/home/alice/src/bar.c:12) 89 // >>> /home/alice/src/bar.o:(.text+0x1) 90 static std::string getLocation(InputSectionBase &s, const Symbol &sym, 91 uint64_t off) { 92 std::string msg = getDefinedLocation(sym) + "\n>>> referenced by "; 93 std::string src = s.getSrcMsg(sym, off); 94 if (!src.empty()) 95 msg += src + "\n>>> "; 96 return msg + s.getObjMsg(off); 97 } 98 99 void elf::reportRangeError(uint8_t *loc, const Relocation &rel, const Twine &v, 100 int64_t min, uint64_t max) { 101 ErrorPlace errPlace = getErrorPlace(loc); 102 std::string hint; 103 if (rel.sym && !rel.sym->isLocal()) 104 hint = "; references " + lld::toString(*rel.sym) + 105 getDefinedLocation(*rel.sym); 106 107 if (errPlace.isec && errPlace.isec->name.startswith(".debug")) 108 hint += "; consider recompiling with -fdebug-types-section to reduce size " 109 "of debug sections"; 110 111 errorOrWarn(errPlace.loc + "relocation " + lld::toString(rel.type) + 112 " out of range: " + v.str() + " is not in [" + Twine(min).str() + 113 ", " + Twine(max).str() + "]" + hint); 114 } 115 116 void elf::reportRangeError(uint8_t *loc, int64_t v, int n, const Symbol &sym, 117 const Twine &msg) { 118 ErrorPlace errPlace = getErrorPlace(loc); 119 std::string hint; 120 if (!sym.getName().empty()) 121 hint = "; references " + lld::toString(sym) + getDefinedLocation(sym); 122 errorOrWarn(errPlace.loc + msg + " is out of range: " + Twine(v) + 123 " is not in [" + Twine(llvm::minIntN(n)) + ", " + 124 Twine(llvm::maxIntN(n)) + "]" + hint); 125 } 126 127 namespace { 128 // Build a bitmask with one bit set for each RelExpr. 129 // 130 // Constexpr function arguments can't be used in static asserts, so we 131 // use template arguments to build the mask. 132 // But function template partial specializations don't exist (needed 133 // for base case of the recursion), so we need a dummy struct. 134 template <RelExpr... Exprs> struct RelExprMaskBuilder { 135 static inline uint64_t build() { return 0; } 136 }; 137 138 // Specialization for recursive case. 139 template <RelExpr Head, RelExpr... Tail> 140 struct RelExprMaskBuilder<Head, Tail...> { 141 static inline uint64_t build() { 142 static_assert(0 <= Head && Head < 64, 143 "RelExpr is too large for 64-bit mask!"); 144 return (uint64_t(1) << Head) | RelExprMaskBuilder<Tail...>::build(); 145 } 146 }; 147 } // namespace 148 149 // Return true if `Expr` is one of `Exprs`. 150 // There are fewer than 64 RelExpr's, so we can represent any set of 151 // RelExpr's as a constant bit mask and test for membership with a 152 // couple cheap bitwise operations. 153 template <RelExpr... Exprs> bool oneof(RelExpr expr) { 154 assert(0 <= expr && (int)expr < 64 && 155 "RelExpr is too large for 64-bit mask!"); 156 return (uint64_t(1) << expr) & RelExprMaskBuilder<Exprs...>::build(); 157 } 158 159 // This function is similar to the `handleTlsRelocation`. MIPS does not 160 // support any relaxations for TLS relocations so by factoring out MIPS 161 // handling in to the separate function we can simplify the code and do not 162 // pollute other `handleTlsRelocation` by MIPS `ifs` statements. 163 // Mips has a custom MipsGotSection that handles the writing of GOT entries 164 // without dynamic relocations. 165 static unsigned handleMipsTlsRelocation(RelType type, Symbol &sym, 166 InputSectionBase &c, uint64_t offset, 167 int64_t addend, RelExpr expr) { 168 if (expr == R_MIPS_TLSLD) { 169 in.mipsGot->addTlsIndex(*c.file); 170 c.relocations.push_back({expr, type, offset, addend, &sym}); 171 return 1; 172 } 173 if (expr == R_MIPS_TLSGD) { 174 in.mipsGot->addDynTlsEntry(*c.file, sym); 175 c.relocations.push_back({expr, type, offset, addend, &sym}); 176 return 1; 177 } 178 return 0; 179 } 180 181 // Notes about General Dynamic and Local Dynamic TLS models below. They may 182 // require the generation of a pair of GOT entries that have associated dynamic 183 // relocations. The pair of GOT entries created are of the form GOT[e0] Module 184 // Index (Used to find pointer to TLS block at run-time) GOT[e1] Offset of 185 // symbol in TLS block. 186 // 187 // Returns the number of relocations processed. 188 template <class ELFT> 189 static unsigned 190 handleTlsRelocation(RelType type, Symbol &sym, InputSectionBase &c, 191 typename ELFT::uint offset, int64_t addend, RelExpr expr) { 192 if (!sym.isTls()) 193 return 0; 194 195 if (config->emachine == EM_MIPS) 196 return handleMipsTlsRelocation(type, sym, c, offset, addend, expr); 197 198 if (oneof<R_AARCH64_TLSDESC_PAGE, R_TLSDESC, R_TLSDESC_CALL, R_TLSDESC_PC>( 199 expr) && 200 config->shared) { 201 if (in.got->addDynTlsEntry(sym)) { 202 uint64_t off = in.got->getGlobalDynOffset(sym); 203 mainPart->relaDyn->addAddendOnlyRelocIfNonPreemptible( 204 target->tlsDescRel, in.got, off, sym, target->tlsDescRel); 205 } 206 if (expr != R_TLSDESC_CALL) 207 c.relocations.push_back({expr, type, offset, addend, &sym}); 208 return 1; 209 } 210 211 // ARM, Hexagon and RISC-V do not support GD/LD to IE/LE relaxation. For 212 // PPC64, if the file has missing R_PPC64_TLSGD/R_PPC64_TLSLD, disable 213 // relaxation as well. 214 bool toExecRelax = !config->shared && config->emachine != EM_ARM && 215 config->emachine != EM_HEXAGON && 216 config->emachine != EM_RISCV && 217 !c.file->ppc64DisableTLSRelax; 218 219 // If we are producing an executable and the symbol is non-preemptable, it 220 // must be defined and the code sequence can be relaxed to use Local-Exec. 221 // 222 // ARM and RISC-V do not support any relaxations for TLS relocations, however, 223 // we can omit the DTPMOD dynamic relocations and resolve them at link time 224 // because them are always 1. This may be necessary for static linking as 225 // DTPMOD may not be expected at load time. 226 bool isLocalInExecutable = !sym.isPreemptible && !config->shared; 227 228 // Local Dynamic is for access to module local TLS variables, while still 229 // being suitable for being dynamically loaded via dlopen. GOT[e0] is the 230 // module index, with a special value of 0 for the current module. GOT[e1] is 231 // unused. There only needs to be one module index entry. 232 if (oneof<R_TLSLD_GOT, R_TLSLD_GOTPLT, R_TLSLD_PC, R_TLSLD_HINT>( 233 expr)) { 234 // Local-Dynamic relocs can be relaxed to Local-Exec. 235 if (toExecRelax) { 236 c.relocations.push_back( 237 {target->adjustTlsExpr(type, R_RELAX_TLS_LD_TO_LE), type, offset, 238 addend, &sym}); 239 return target->getTlsGdRelaxSkip(type); 240 } 241 if (expr == R_TLSLD_HINT) 242 return 1; 243 if (in.got->addTlsIndex()) { 244 if (isLocalInExecutable) 245 in.got->relocations.push_back( 246 {R_ADDEND, target->symbolicRel, in.got->getTlsIndexOff(), 1, &sym}); 247 else 248 mainPart->relaDyn->addReloc( 249 {target->tlsModuleIndexRel, in.got, in.got->getTlsIndexOff()}); 250 } 251 c.relocations.push_back({expr, type, offset, addend, &sym}); 252 return 1; 253 } 254 255 // Local-Dynamic relocs can be relaxed to Local-Exec. 256 if (expr == R_DTPREL && toExecRelax) { 257 c.relocations.push_back({target->adjustTlsExpr(type, R_RELAX_TLS_LD_TO_LE), 258 type, offset, addend, &sym}); 259 return 1; 260 } 261 262 // Local-Dynamic sequence where offset of tls variable relative to dynamic 263 // thread pointer is stored in the got. This cannot be relaxed to Local-Exec. 264 if (expr == R_TLSLD_GOT_OFF) { 265 if (!sym.isInGot()) { 266 in.got->addEntry(sym); 267 uint64_t off = sym.getGotOffset(); 268 in.got->relocations.push_back( 269 {R_ABS, target->tlsOffsetRel, off, 0, &sym}); 270 } 271 c.relocations.push_back({expr, type, offset, addend, &sym}); 272 return 1; 273 } 274 275 if (oneof<R_AARCH64_TLSDESC_PAGE, R_TLSDESC, R_TLSDESC_CALL, R_TLSDESC_PC, 276 R_TLSGD_GOT, R_TLSGD_GOTPLT, R_TLSGD_PC>(expr)) { 277 if (!toExecRelax) { 278 if (in.got->addDynTlsEntry(sym)) { 279 uint64_t off = in.got->getGlobalDynOffset(sym); 280 281 if (isLocalInExecutable) 282 // Write one to the GOT slot. 283 in.got->relocations.push_back( 284 {R_ADDEND, target->symbolicRel, off, 1, &sym}); 285 else 286 mainPart->relaDyn->addSymbolReloc(target->tlsModuleIndexRel, in.got, 287 off, sym); 288 289 // If the symbol is preemptible we need the dynamic linker to write 290 // the offset too. 291 uint64_t offsetOff = off + config->wordsize; 292 if (sym.isPreemptible) 293 mainPart->relaDyn->addSymbolReloc(target->tlsOffsetRel, in.got, 294 offsetOff, sym); 295 else 296 in.got->relocations.push_back( 297 {R_ABS, target->tlsOffsetRel, offsetOff, 0, &sym}); 298 } 299 c.relocations.push_back({expr, type, offset, addend, &sym}); 300 return 1; 301 } 302 303 // Global-Dynamic relocs can be relaxed to Initial-Exec or Local-Exec 304 // depending on the symbol being locally defined or not. 305 if (sym.isPreemptible) { 306 c.relocations.push_back( 307 {target->adjustTlsExpr(type, R_RELAX_TLS_GD_TO_IE), type, offset, 308 addend, &sym}); 309 if (!sym.isInGot()) { 310 in.got->addEntry(sym); 311 mainPart->relaDyn->addSymbolReloc(target->tlsGotRel, in.got, 312 sym.getGotOffset(), sym); 313 } 314 } else { 315 c.relocations.push_back( 316 {target->adjustTlsExpr(type, R_RELAX_TLS_GD_TO_LE), type, offset, 317 addend, &sym}); 318 } 319 return target->getTlsGdRelaxSkip(type); 320 } 321 322 // Initial-Exec relocs can be relaxed to Local-Exec if the symbol is locally 323 // defined. 324 if (oneof<R_GOT, R_GOTPLT, R_GOT_PC, R_AARCH64_GOT_PAGE_PC, R_GOT_OFF, 325 R_TLSIE_HINT>(expr) && 326 toExecRelax && isLocalInExecutable) { 327 c.relocations.push_back({R_RELAX_TLS_IE_TO_LE, type, offset, addend, &sym}); 328 return 1; 329 } 330 331 if (expr == R_TLSIE_HINT) 332 return 1; 333 return 0; 334 } 335 336 static RelType getMipsPairType(RelType type, bool isLocal) { 337 switch (type) { 338 case R_MIPS_HI16: 339 return R_MIPS_LO16; 340 case R_MIPS_GOT16: 341 // In case of global symbol, the R_MIPS_GOT16 relocation does not 342 // have a pair. Each global symbol has a unique entry in the GOT 343 // and a corresponding instruction with help of the R_MIPS_GOT16 344 // relocation loads an address of the symbol. In case of local 345 // symbol, the R_MIPS_GOT16 relocation creates a GOT entry to hold 346 // the high 16 bits of the symbol's value. A paired R_MIPS_LO16 347 // relocations handle low 16 bits of the address. That allows 348 // to allocate only one GOT entry for every 64 KBytes of local data. 349 return isLocal ? R_MIPS_LO16 : R_MIPS_NONE; 350 case R_MICROMIPS_GOT16: 351 return isLocal ? R_MICROMIPS_LO16 : R_MIPS_NONE; 352 case R_MIPS_PCHI16: 353 return R_MIPS_PCLO16; 354 case R_MICROMIPS_HI16: 355 return R_MICROMIPS_LO16; 356 default: 357 return R_MIPS_NONE; 358 } 359 } 360 361 // True if non-preemptable symbol always has the same value regardless of where 362 // the DSO is loaded. 363 static bool isAbsolute(const Symbol &sym) { 364 if (sym.isUndefWeak()) 365 return true; 366 if (const auto *dr = dyn_cast<Defined>(&sym)) 367 return dr->section == nullptr; // Absolute symbol. 368 return false; 369 } 370 371 static bool isAbsoluteValue(const Symbol &sym) { 372 return isAbsolute(sym) || sym.isTls(); 373 } 374 375 // Returns true if Expr refers a PLT entry. 376 static bool needsPlt(RelExpr expr) { 377 return oneof<R_PLT_PC, R_PPC32_PLTREL, R_PPC64_CALL_PLT, R_PLT>(expr); 378 } 379 380 // Returns true if Expr refers a GOT entry. Note that this function 381 // returns false for TLS variables even though they need GOT, because 382 // TLS variables uses GOT differently than the regular variables. 383 static bool needsGot(RelExpr expr) { 384 return oneof<R_GOT, R_GOT_OFF, R_MIPS_GOT_LOCAL_PAGE, R_MIPS_GOT_OFF, 385 R_MIPS_GOT_OFF32, R_AARCH64_GOT_PAGE_PC, R_GOT_PC, R_GOTPLT, 386 R_AARCH64_GOT_PAGE>(expr); 387 } 388 389 // True if this expression is of the form Sym - X, where X is a position in the 390 // file (PC, or GOT for example). 391 static bool isRelExpr(RelExpr expr) { 392 return oneof<R_PC, R_GOTREL, R_GOTPLTREL, R_MIPS_GOTREL, R_PPC64_CALL, 393 R_PPC64_RELAX_TOC, R_AARCH64_PAGE_PC, R_RELAX_GOT_PC, 394 R_RISCV_PC_INDIRECT, R_PPC64_RELAX_GOT_PC>(expr); 395 } 396 397 // Returns true if a given relocation can be computed at link-time. 398 // 399 // For instance, we know the offset from a relocation to its target at 400 // link-time if the relocation is PC-relative and refers a 401 // non-interposable function in the same executable. This function 402 // will return true for such relocation. 403 // 404 // If this function returns false, that means we need to emit a 405 // dynamic relocation so that the relocation will be fixed at load-time. 406 static bool isStaticLinkTimeConstant(RelExpr e, RelType type, const Symbol &sym, 407 InputSectionBase &s, uint64_t relOff) { 408 // These expressions always compute a constant 409 if (oneof<R_DTPREL, R_GOTPLT, R_GOT_OFF, R_TLSLD_GOT_OFF, 410 R_MIPS_GOT_LOCAL_PAGE, R_MIPS_GOTREL, R_MIPS_GOT_OFF, 411 R_MIPS_GOT_OFF32, R_MIPS_GOT_GP_PC, R_MIPS_TLSGD, 412 R_AARCH64_GOT_PAGE_PC, R_GOT_PC, R_GOTONLY_PC, R_GOTPLTONLY_PC, 413 R_PLT_PC, R_TLSGD_GOT, R_TLSGD_GOTPLT, R_TLSGD_PC, R_PPC32_PLTREL, 414 R_PPC64_CALL_PLT, R_PPC64_RELAX_TOC, R_RISCV_ADD, R_TLSDESC_CALL, 415 R_TLSDESC_PC, R_AARCH64_TLSDESC_PAGE, R_TLSLD_HINT, R_TLSIE_HINT, 416 R_AARCH64_GOT_PAGE>( 417 e)) 418 return true; 419 420 // These never do, except if the entire file is position dependent or if 421 // only the low bits are used. 422 if (e == R_GOT || e == R_PLT || e == R_TLSDESC) 423 return target->usesOnlyLowPageBits(type) || !config->isPic; 424 425 if (sym.isPreemptible) 426 return false; 427 if (!config->isPic) 428 return true; 429 430 // The size of a non preemptible symbol is a constant. 431 if (e == R_SIZE) 432 return true; 433 434 // For the target and the relocation, we want to know if they are 435 // absolute or relative. 436 bool absVal = isAbsoluteValue(sym); 437 bool relE = isRelExpr(e); 438 if (absVal && !relE) 439 return true; 440 if (!absVal && relE) 441 return true; 442 if (!absVal && !relE) 443 return target->usesOnlyLowPageBits(type); 444 445 assert(absVal && relE); 446 447 // Allow R_PLT_PC (optimized to R_PC here) to a hidden undefined weak symbol 448 // in PIC mode. This is a little strange, but it allows us to link function 449 // calls to such symbols (e.g. glibc/stdlib/exit.c:__run_exit_handlers). 450 // Normally such a call will be guarded with a comparison, which will load a 451 // zero from the GOT. 452 if (sym.isUndefWeak()) 453 return true; 454 455 // We set the final symbols values for linker script defined symbols later. 456 // They always can be computed as a link time constant. 457 if (sym.scriptDefined) 458 return true; 459 460 error("relocation " + toString(type) + " cannot refer to absolute symbol: " + 461 toString(sym) + getLocation(s, sym, relOff)); 462 return true; 463 } 464 465 static RelExpr toPlt(RelExpr expr) { 466 switch (expr) { 467 case R_PPC64_CALL: 468 return R_PPC64_CALL_PLT; 469 case R_PC: 470 return R_PLT_PC; 471 case R_ABS: 472 return R_PLT; 473 default: 474 return expr; 475 } 476 } 477 478 static RelExpr fromPlt(RelExpr expr) { 479 // We decided not to use a plt. Optimize a reference to the plt to a 480 // reference to the symbol itself. 481 switch (expr) { 482 case R_PLT_PC: 483 case R_PPC32_PLTREL: 484 return R_PC; 485 case R_PPC64_CALL_PLT: 486 return R_PPC64_CALL; 487 case R_PLT: 488 return R_ABS; 489 default: 490 return expr; 491 } 492 } 493 494 // Returns true if a given shared symbol is in a read-only segment in a DSO. 495 template <class ELFT> static bool isReadOnly(SharedSymbol &ss) { 496 using Elf_Phdr = typename ELFT::Phdr; 497 498 // Determine if the symbol is read-only by scanning the DSO's program headers. 499 const SharedFile &file = ss.getFile(); 500 for (const Elf_Phdr &phdr : 501 check(file.template getObj<ELFT>().program_headers())) 502 if ((phdr.p_type == ELF::PT_LOAD || phdr.p_type == ELF::PT_GNU_RELRO) && 503 !(phdr.p_flags & ELF::PF_W) && ss.value >= phdr.p_vaddr && 504 ss.value < phdr.p_vaddr + phdr.p_memsz) 505 return true; 506 return false; 507 } 508 509 // Returns symbols at the same offset as a given symbol, including SS itself. 510 // 511 // If two or more symbols are at the same offset, and at least one of 512 // them are copied by a copy relocation, all of them need to be copied. 513 // Otherwise, they would refer to different places at runtime. 514 template <class ELFT> 515 static SmallSet<SharedSymbol *, 4> getSymbolsAt(SharedSymbol &ss) { 516 using Elf_Sym = typename ELFT::Sym; 517 518 SharedFile &file = ss.getFile(); 519 520 SmallSet<SharedSymbol *, 4> ret; 521 for (const Elf_Sym &s : file.template getGlobalELFSyms<ELFT>()) { 522 if (s.st_shndx == SHN_UNDEF || s.st_shndx == SHN_ABS || 523 s.getType() == STT_TLS || s.st_value != ss.value) 524 continue; 525 StringRef name = check(s.getName(file.getStringTable())); 526 Symbol *sym = symtab->find(name); 527 if (auto *alias = dyn_cast_or_null<SharedSymbol>(sym)) 528 ret.insert(alias); 529 } 530 return ret; 531 } 532 533 // When a symbol is copy relocated or we create a canonical plt entry, it is 534 // effectively a defined symbol. In the case of copy relocation the symbol is 535 // in .bss and in the case of a canonical plt entry it is in .plt. This function 536 // replaces the existing symbol with a Defined pointing to the appropriate 537 // location. 538 static void replaceWithDefined(Symbol &sym, SectionBase *sec, uint64_t value, 539 uint64_t size) { 540 Symbol old = sym; 541 542 sym.replace(Defined{sym.file, sym.getName(), sym.binding, sym.stOther, 543 sym.type, value, size, sec}); 544 545 sym.pltIndex = old.pltIndex; 546 sym.gotIndex = old.gotIndex; 547 sym.verdefIndex = old.verdefIndex; 548 sym.exportDynamic = true; 549 sym.isUsedInRegularObj = true; 550 } 551 552 // Reserve space in .bss or .bss.rel.ro for copy relocation. 553 // 554 // The copy relocation is pretty much a hack. If you use a copy relocation 555 // in your program, not only the symbol name but the symbol's size, RW/RO 556 // bit and alignment become part of the ABI. In addition to that, if the 557 // symbol has aliases, the aliases become part of the ABI. That's subtle, 558 // but if you violate that implicit ABI, that can cause very counter- 559 // intuitive consequences. 560 // 561 // So, what is the copy relocation? It's for linking non-position 562 // independent code to DSOs. In an ideal world, all references to data 563 // exported by DSOs should go indirectly through GOT. But if object files 564 // are compiled as non-PIC, all data references are direct. There is no 565 // way for the linker to transform the code to use GOT, as machine 566 // instructions are already set in stone in object files. This is where 567 // the copy relocation takes a role. 568 // 569 // A copy relocation instructs the dynamic linker to copy data from a DSO 570 // to a specified address (which is usually in .bss) at load-time. If the 571 // static linker (that's us) finds a direct data reference to a DSO 572 // symbol, it creates a copy relocation, so that the symbol can be 573 // resolved as if it were in .bss rather than in a DSO. 574 // 575 // As you can see in this function, we create a copy relocation for the 576 // dynamic linker, and the relocation contains not only symbol name but 577 // various other information about the symbol. So, such attributes become a 578 // part of the ABI. 579 // 580 // Note for application developers: I can give you a piece of advice if 581 // you are writing a shared library. You probably should export only 582 // functions from your library. You shouldn't export variables. 583 // 584 // As an example what can happen when you export variables without knowing 585 // the semantics of copy relocations, assume that you have an exported 586 // variable of type T. It is an ABI-breaking change to add new members at 587 // end of T even though doing that doesn't change the layout of the 588 // existing members. That's because the space for the new members are not 589 // reserved in .bss unless you recompile the main program. That means they 590 // are likely to overlap with other data that happens to be laid out next 591 // to the variable in .bss. This kind of issue is sometimes very hard to 592 // debug. What's a solution? Instead of exporting a variable V from a DSO, 593 // define an accessor getV(). 594 template <class ELFT> static void addCopyRelSymbol(SharedSymbol &ss) { 595 // Copy relocation against zero-sized symbol doesn't make sense. 596 uint64_t symSize = ss.getSize(); 597 if (symSize == 0 || ss.alignment == 0) 598 fatal("cannot create a copy relocation for symbol " + toString(ss)); 599 600 // See if this symbol is in a read-only segment. If so, preserve the symbol's 601 // memory protection by reserving space in the .bss.rel.ro section. 602 bool isRO = isReadOnly<ELFT>(ss); 603 BssSection *sec = 604 make<BssSection>(isRO ? ".bss.rel.ro" : ".bss", symSize, ss.alignment); 605 OutputSection *osec = (isRO ? in.bssRelRo : in.bss)->getParent(); 606 607 // At this point, sectionBases has been migrated to sections. Append sec to 608 // sections. 609 if (osec->sectionCommands.empty() || 610 !isa<InputSectionDescription>(osec->sectionCommands.back())) 611 osec->sectionCommands.push_back(make<InputSectionDescription>("")); 612 auto *isd = cast<InputSectionDescription>(osec->sectionCommands.back()); 613 isd->sections.push_back(sec); 614 osec->commitSection(sec); 615 616 // Look through the DSO's dynamic symbol table for aliases and create a 617 // dynamic symbol for each one. This causes the copy relocation to correctly 618 // interpose any aliases. 619 for (SharedSymbol *sym : getSymbolsAt<ELFT>(ss)) 620 replaceWithDefined(*sym, sec, 0, sym->size); 621 622 mainPart->relaDyn->addSymbolReloc(target->copyRel, sec, 0, ss); 623 } 624 625 // MIPS has an odd notion of "paired" relocations to calculate addends. 626 // For example, if a relocation is of R_MIPS_HI16, there must be a 627 // R_MIPS_LO16 relocation after that, and an addend is calculated using 628 // the two relocations. 629 template <class ELFT, class RelTy> 630 static int64_t computeMipsAddend(const RelTy &rel, const RelTy *end, 631 InputSectionBase &sec, RelExpr expr, 632 bool isLocal) { 633 if (expr == R_MIPS_GOTREL && isLocal) 634 return sec.getFile<ELFT>()->mipsGp0; 635 636 // The ABI says that the paired relocation is used only for REL. 637 // See p. 4-17 at ftp://www.linux-mips.org/pub/linux/mips/doc/ABI/mipsabi.pdf 638 if (RelTy::IsRela) 639 return 0; 640 641 RelType type = rel.getType(config->isMips64EL); 642 uint32_t pairTy = getMipsPairType(type, isLocal); 643 if (pairTy == R_MIPS_NONE) 644 return 0; 645 646 const uint8_t *buf = sec.data().data(); 647 uint32_t symIndex = rel.getSymbol(config->isMips64EL); 648 649 // To make things worse, paired relocations might not be contiguous in 650 // the relocation table, so we need to do linear search. *sigh* 651 for (const RelTy *ri = &rel; ri != end; ++ri) 652 if (ri->getType(config->isMips64EL) == pairTy && 653 ri->getSymbol(config->isMips64EL) == symIndex) 654 return target->getImplicitAddend(buf + ri->r_offset, pairTy); 655 656 warn("can't find matching " + toString(pairTy) + " relocation for " + 657 toString(type)); 658 return 0; 659 } 660 661 // Returns an addend of a given relocation. If it is RELA, an addend 662 // is in a relocation itself. If it is REL, we need to read it from an 663 // input section. 664 template <class ELFT, class RelTy> 665 static int64_t computeAddend(const RelTy &rel, const RelTy *end, 666 InputSectionBase &sec, RelExpr expr, 667 bool isLocal) { 668 int64_t addend; 669 RelType type = rel.getType(config->isMips64EL); 670 671 if (RelTy::IsRela) { 672 addend = getAddend<ELFT>(rel); 673 } else { 674 const uint8_t *buf = sec.data().data(); 675 addend = target->getImplicitAddend(buf + rel.r_offset, type); 676 } 677 678 if (config->emachine == EM_PPC64 && config->isPic && type == R_PPC64_TOC) 679 addend += getPPC64TocBase(); 680 if (config->emachine == EM_MIPS) 681 addend += computeMipsAddend<ELFT>(rel, end, sec, expr, isLocal); 682 683 return addend; 684 } 685 686 // Custom error message if Sym is defined in a discarded section. 687 template <class ELFT> 688 static std::string maybeReportDiscarded(Undefined &sym) { 689 auto *file = dyn_cast_or_null<ObjFile<ELFT>>(sym.file); 690 if (!file || !sym.discardedSecIdx || 691 file->getSections()[sym.discardedSecIdx] != &InputSection::discarded) 692 return ""; 693 ArrayRef<Elf_Shdr_Impl<ELFT>> objSections = 694 CHECK(file->getObj().sections(), file); 695 696 std::string msg; 697 if (sym.type == ELF::STT_SECTION) { 698 msg = "relocation refers to a discarded section: "; 699 msg += CHECK( 700 file->getObj().getSectionName(objSections[sym.discardedSecIdx]), file); 701 } else { 702 msg = "relocation refers to a symbol in a discarded section: " + 703 toString(sym); 704 } 705 msg += "\n>>> defined in " + toString(file); 706 707 Elf_Shdr_Impl<ELFT> elfSec = objSections[sym.discardedSecIdx - 1]; 708 if (elfSec.sh_type != SHT_GROUP) 709 return msg; 710 711 // If the discarded section is a COMDAT. 712 StringRef signature = file->getShtGroupSignature(objSections, elfSec); 713 if (const InputFile *prevailing = 714 symtab->comdatGroups.lookup(CachedHashStringRef(signature))) 715 msg += "\n>>> section group signature: " + signature.str() + 716 "\n>>> prevailing definition is in " + toString(prevailing); 717 return msg; 718 } 719 720 // Undefined diagnostics are collected in a vector and emitted once all of 721 // them are known, so that some postprocessing on the list of undefined symbols 722 // can happen before lld emits diagnostics. 723 struct UndefinedDiag { 724 Symbol *sym; 725 struct Loc { 726 InputSectionBase *sec; 727 uint64_t offset; 728 }; 729 std::vector<Loc> locs; 730 bool isWarning; 731 }; 732 733 static std::vector<UndefinedDiag> undefs; 734 735 // Check whether the definition name def is a mangled function name that matches 736 // the reference name ref. 737 static bool canSuggestExternCForCXX(StringRef ref, StringRef def) { 738 llvm::ItaniumPartialDemangler d; 739 std::string name = def.str(); 740 if (d.partialDemangle(name.c_str())) 741 return false; 742 char *buf = d.getFunctionName(nullptr, nullptr); 743 if (!buf) 744 return false; 745 bool ret = ref == buf; 746 free(buf); 747 return ret; 748 } 749 750 // Suggest an alternative spelling of an "undefined symbol" diagnostic. Returns 751 // the suggested symbol, which is either in the symbol table, or in the same 752 // file of sym. 753 template <class ELFT> 754 static const Symbol *getAlternativeSpelling(const Undefined &sym, 755 std::string &pre_hint, 756 std::string &post_hint) { 757 DenseMap<StringRef, const Symbol *> map; 758 if (auto *file = dyn_cast_or_null<ObjFile<ELFT>>(sym.file)) { 759 // If sym is a symbol defined in a discarded section, maybeReportDiscarded() 760 // will give an error. Don't suggest an alternative spelling. 761 if (file && sym.discardedSecIdx != 0 && 762 file->getSections()[sym.discardedSecIdx] == &InputSection::discarded) 763 return nullptr; 764 765 // Build a map of local defined symbols. 766 for (const Symbol *s : sym.file->getSymbols()) 767 if (s->isLocal() && s->isDefined() && !s->getName().empty()) 768 map.try_emplace(s->getName(), s); 769 } 770 771 auto suggest = [&](StringRef newName) -> const Symbol * { 772 // If defined locally. 773 if (const Symbol *s = map.lookup(newName)) 774 return s; 775 776 // If in the symbol table and not undefined. 777 if (const Symbol *s = symtab->find(newName)) 778 if (!s->isUndefined()) 779 return s; 780 781 return nullptr; 782 }; 783 784 // This loop enumerates all strings of Levenshtein distance 1 as typo 785 // correction candidates and suggests the one that exists as a non-undefined 786 // symbol. 787 StringRef name = sym.getName(); 788 for (size_t i = 0, e = name.size(); i != e + 1; ++i) { 789 // Insert a character before name[i]. 790 std::string newName = (name.substr(0, i) + "0" + name.substr(i)).str(); 791 for (char c = '0'; c <= 'z'; ++c) { 792 newName[i] = c; 793 if (const Symbol *s = suggest(newName)) 794 return s; 795 } 796 if (i == e) 797 break; 798 799 // Substitute name[i]. 800 newName = std::string(name); 801 for (char c = '0'; c <= 'z'; ++c) { 802 newName[i] = c; 803 if (const Symbol *s = suggest(newName)) 804 return s; 805 } 806 807 // Transpose name[i] and name[i+1]. This is of edit distance 2 but it is 808 // common. 809 if (i + 1 < e) { 810 newName[i] = name[i + 1]; 811 newName[i + 1] = name[i]; 812 if (const Symbol *s = suggest(newName)) 813 return s; 814 } 815 816 // Delete name[i]. 817 newName = (name.substr(0, i) + name.substr(i + 1)).str(); 818 if (const Symbol *s = suggest(newName)) 819 return s; 820 } 821 822 // Case mismatch, e.g. Foo vs FOO. 823 for (auto &it : map) 824 if (name.equals_insensitive(it.first)) 825 return it.second; 826 for (Symbol *sym : symtab->symbols()) 827 if (!sym->isUndefined() && name.equals_insensitive(sym->getName())) 828 return sym; 829 830 // The reference may be a mangled name while the definition is not. Suggest a 831 // missing extern "C". 832 if (name.startswith("_Z")) { 833 std::string buf = name.str(); 834 llvm::ItaniumPartialDemangler d; 835 if (!d.partialDemangle(buf.c_str())) 836 if (char *buf = d.getFunctionName(nullptr, nullptr)) { 837 const Symbol *s = suggest(buf); 838 free(buf); 839 if (s) { 840 pre_hint = ": extern \"C\" "; 841 return s; 842 } 843 } 844 } else { 845 const Symbol *s = nullptr; 846 for (auto &it : map) 847 if (canSuggestExternCForCXX(name, it.first)) { 848 s = it.second; 849 break; 850 } 851 if (!s) 852 for (Symbol *sym : symtab->symbols()) 853 if (canSuggestExternCForCXX(name, sym->getName())) { 854 s = sym; 855 break; 856 } 857 if (s) { 858 pre_hint = " to declare "; 859 post_hint = " as extern \"C\"?"; 860 return s; 861 } 862 } 863 864 return nullptr; 865 } 866 867 template <class ELFT> 868 static void reportUndefinedSymbol(const UndefinedDiag &undef, 869 bool correctSpelling) { 870 Symbol &sym = *undef.sym; 871 872 auto visibility = [&]() -> std::string { 873 switch (sym.visibility) { 874 case STV_INTERNAL: 875 return "internal "; 876 case STV_HIDDEN: 877 return "hidden "; 878 case STV_PROTECTED: 879 return "protected "; 880 default: 881 return ""; 882 } 883 }; 884 885 std::string msg = maybeReportDiscarded<ELFT>(cast<Undefined>(sym)); 886 if (msg.empty()) 887 msg = "undefined " + visibility() + "symbol: " + toString(sym); 888 889 const size_t maxUndefReferences = 3; 890 size_t i = 0; 891 for (UndefinedDiag::Loc l : undef.locs) { 892 if (i >= maxUndefReferences) 893 break; 894 InputSectionBase &sec = *l.sec; 895 uint64_t offset = l.offset; 896 897 msg += "\n>>> referenced by "; 898 std::string src = sec.getSrcMsg(sym, offset); 899 if (!src.empty()) 900 msg += src + "\n>>> "; 901 msg += sec.getObjMsg(offset); 902 i++; 903 } 904 905 if (i < undef.locs.size()) 906 msg += ("\n>>> referenced " + Twine(undef.locs.size() - i) + " more times") 907 .str(); 908 909 if (correctSpelling) { 910 std::string pre_hint = ": ", post_hint; 911 if (const Symbol *corrected = getAlternativeSpelling<ELFT>( 912 cast<Undefined>(sym), pre_hint, post_hint)) { 913 msg += "\n>>> did you mean" + pre_hint + toString(*corrected) + post_hint; 914 if (corrected->file) 915 msg += "\n>>> defined in: " + toString(corrected->file); 916 } 917 } 918 919 if (sym.getName().startswith("_ZTV")) 920 msg += 921 "\n>>> the vtable symbol may be undefined because the class is missing " 922 "its key function (see https://lld.llvm.org/missingkeyfunction)"; 923 924 if (undef.isWarning) 925 warn(msg); 926 else 927 error(msg, ErrorTag::SymbolNotFound, {sym.getName()}); 928 } 929 930 template <class ELFT> void elf::reportUndefinedSymbols() { 931 // Find the first "undefined symbol" diagnostic for each diagnostic, and 932 // collect all "referenced from" lines at the first diagnostic. 933 DenseMap<Symbol *, UndefinedDiag *> firstRef; 934 for (UndefinedDiag &undef : undefs) { 935 assert(undef.locs.size() == 1); 936 if (UndefinedDiag *canon = firstRef.lookup(undef.sym)) { 937 canon->locs.push_back(undef.locs[0]); 938 undef.locs.clear(); 939 } else 940 firstRef[undef.sym] = &undef; 941 } 942 943 // Enable spell corrector for the first 2 diagnostics. 944 for (auto it : enumerate(undefs)) 945 if (!it.value().locs.empty()) 946 reportUndefinedSymbol<ELFT>(it.value(), it.index() < 2); 947 undefs.clear(); 948 } 949 950 // Report an undefined symbol if necessary. 951 // Returns true if the undefined symbol will produce an error message. 952 static bool maybeReportUndefined(Symbol &sym, InputSectionBase &sec, 953 uint64_t offset) { 954 if (!sym.isUndefined()) 955 return false; 956 // If versioned, issue an error (even if the symbol is weak) because we don't 957 // know the defining filename which is required to construct a Verneed entry. 958 if (*sym.getVersionSuffix() == '@') { 959 undefs.push_back({&sym, {{&sec, offset}}, false}); 960 return true; 961 } 962 if (sym.isWeak()) 963 return false; 964 965 bool canBeExternal = !sym.isLocal() && sym.visibility == STV_DEFAULT; 966 if (config->unresolvedSymbols == UnresolvedPolicy::Ignore && canBeExternal) 967 return false; 968 969 // clang (as of 2019-06-12) / gcc (as of 8.2.1) PPC64 may emit a .rela.toc 970 // which references a switch table in a discarded .rodata/.text section. The 971 // .toc and the .rela.toc are incorrectly not placed in the comdat. The ELF 972 // spec says references from outside the group to a STB_LOCAL symbol are not 973 // allowed. Work around the bug. 974 // 975 // PPC32 .got2 is similar but cannot be fixed. Multiple .got2 is infeasible 976 // because .LC0-.LTOC is not representable if the two labels are in different 977 // .got2 978 if (cast<Undefined>(sym).discardedSecIdx != 0 && 979 (sec.name == ".got2" || sec.name == ".toc")) 980 return false; 981 982 bool isWarning = 983 (config->unresolvedSymbols == UnresolvedPolicy::Warn && canBeExternal) || 984 config->noinhibitExec; 985 undefs.push_back({&sym, {{&sec, offset}}, isWarning}); 986 return !isWarning; 987 } 988 989 // MIPS N32 ABI treats series of successive relocations with the same offset 990 // as a single relocation. The similar approach used by N64 ABI, but this ABI 991 // packs all relocations into the single relocation record. Here we emulate 992 // this for the N32 ABI. Iterate over relocation with the same offset and put 993 // theirs types into the single bit-set. 994 template <class RelTy> static RelType getMipsN32RelType(RelTy *&rel, RelTy *end) { 995 RelType type = 0; 996 uint64_t offset = rel->r_offset; 997 998 int n = 0; 999 while (rel != end && rel->r_offset == offset) 1000 type |= (rel++)->getType(config->isMips64EL) << (8 * n++); 1001 return type; 1002 } 1003 1004 // .eh_frame sections are mergeable input sections, so their input 1005 // offsets are not linearly mapped to output section. For each input 1006 // offset, we need to find a section piece containing the offset and 1007 // add the piece's base address to the input offset to compute the 1008 // output offset. That isn't cheap. 1009 // 1010 // This class is to speed up the offset computation. When we process 1011 // relocations, we access offsets in the monotonically increasing 1012 // order. So we can optimize for that access pattern. 1013 // 1014 // For sections other than .eh_frame, this class doesn't do anything. 1015 namespace { 1016 class OffsetGetter { 1017 public: 1018 explicit OffsetGetter(InputSectionBase &sec) { 1019 if (auto *eh = dyn_cast<EhInputSection>(&sec)) 1020 pieces = eh->pieces; 1021 } 1022 1023 // Translates offsets in input sections to offsets in output sections. 1024 // Given offset must increase monotonically. We assume that Piece is 1025 // sorted by inputOff. 1026 uint64_t get(uint64_t off) { 1027 if (pieces.empty()) 1028 return off; 1029 1030 while (i != pieces.size() && pieces[i].inputOff + pieces[i].size <= off) 1031 ++i; 1032 if (i == pieces.size()) 1033 fatal(".eh_frame: relocation is not in any piece"); 1034 1035 // Pieces must be contiguous, so there must be no holes in between. 1036 assert(pieces[i].inputOff <= off && "Relocation not in any piece"); 1037 1038 // Offset -1 means that the piece is dead (i.e. garbage collected). 1039 if (pieces[i].outputOff == -1) 1040 return -1; 1041 return pieces[i].outputOff + off - pieces[i].inputOff; 1042 } 1043 1044 private: 1045 ArrayRef<EhSectionPiece> pieces; 1046 size_t i = 0; 1047 }; 1048 } // namespace 1049 1050 static void addRelativeReloc(InputSectionBase *isec, uint64_t offsetInSec, 1051 Symbol &sym, int64_t addend, RelExpr expr, 1052 RelType type) { 1053 Partition &part = isec->getPartition(); 1054 1055 // Add a relative relocation. If relrDyn section is enabled, and the 1056 // relocation offset is guaranteed to be even, add the relocation to 1057 // the relrDyn section, otherwise add it to the relaDyn section. 1058 // relrDyn sections don't support odd offsets. Also, relrDyn sections 1059 // don't store the addend values, so we must write it to the relocated 1060 // address. 1061 if (part.relrDyn && isec->alignment >= 2 && offsetInSec % 2 == 0) { 1062 isec->relocations.push_back({expr, type, offsetInSec, addend, &sym}); 1063 part.relrDyn->relocs.push_back({isec, offsetInSec}); 1064 return; 1065 } 1066 part.relaDyn->addRelativeReloc(target->relativeRel, isec, offsetInSec, sym, 1067 addend, type, expr); 1068 } 1069 1070 template <class PltSection, class GotPltSection> 1071 static void addPltEntry(PltSection *plt, GotPltSection *gotPlt, 1072 RelocationBaseSection *rel, RelType type, Symbol &sym) { 1073 plt->addEntry(sym); 1074 gotPlt->addEntry(sym); 1075 rel->addReloc({type, gotPlt, sym.getGotPltOffset(), 1076 sym.isPreemptible ? DynamicReloc::AgainstSymbol 1077 : DynamicReloc::AddendOnlyWithTargetVA, 1078 sym, 0, R_ABS}); 1079 } 1080 1081 static void addGotEntry(Symbol &sym) { 1082 in.got->addEntry(sym); 1083 1084 RelExpr expr = sym.isTls() ? R_TPREL : R_ABS; 1085 uint64_t off = sym.getGotOffset(); 1086 1087 // If a GOT slot value can be calculated at link-time, which is now, 1088 // we can just fill that out. 1089 // 1090 // (We don't actually write a value to a GOT slot right now, but we 1091 // add a static relocation to a Relocations vector so that 1092 // InputSection::relocate will do the work for us. We may be able 1093 // to just write a value now, but it is a TODO.) 1094 bool isLinkTimeConstant = 1095 !sym.isPreemptible && (!config->isPic || isAbsolute(sym)); 1096 if (isLinkTimeConstant) { 1097 in.got->relocations.push_back({expr, target->symbolicRel, off, 0, &sym}); 1098 return; 1099 } 1100 1101 // Otherwise, we emit a dynamic relocation to .rel[a].dyn so that 1102 // the GOT slot will be fixed at load-time. 1103 if (!sym.isTls() && !sym.isPreemptible && config->isPic) { 1104 addRelativeReloc(in.got, off, sym, 0, R_ABS, target->symbolicRel); 1105 return; 1106 } 1107 mainPart->relaDyn->addAddendOnlyRelocIfNonPreemptible( 1108 sym.isTls() ? target->tlsGotRel : target->gotRel, in.got, off, sym, 1109 target->symbolicRel); 1110 } 1111 1112 // Return true if we can define a symbol in the executable that 1113 // contains the value/function of a symbol defined in a shared 1114 // library. 1115 static bool canDefineSymbolInExecutable(Symbol &sym) { 1116 // If the symbol has default visibility the symbol defined in the 1117 // executable will preempt it. 1118 // Note that we want the visibility of the shared symbol itself, not 1119 // the visibility of the symbol in the output file we are producing. That is 1120 // why we use Sym.stOther. 1121 if ((sym.stOther & 0x3) == STV_DEFAULT) 1122 return true; 1123 1124 // If we are allowed to break address equality of functions, defining 1125 // a plt entry will allow the program to call the function in the 1126 // .so, but the .so and the executable will no agree on the address 1127 // of the function. Similar logic for objects. 1128 return ((sym.isFunc() && config->ignoreFunctionAddressEquality) || 1129 (sym.isObject() && config->ignoreDataAddressEquality)); 1130 } 1131 1132 // The reason we have to do this early scan is as follows 1133 // * To mmap the output file, we need to know the size 1134 // * For that, we need to know how many dynamic relocs we will have. 1135 // It might be possible to avoid this by outputting the file with write: 1136 // * Write the allocated output sections, computing addresses. 1137 // * Apply relocations, recording which ones require a dynamic reloc. 1138 // * Write the dynamic relocations. 1139 // * Write the rest of the file. 1140 // This would have some drawbacks. For example, we would only know if .rela.dyn 1141 // is needed after applying relocations. If it is, it will go after rw and rx 1142 // sections. Given that it is ro, we will need an extra PT_LOAD. This 1143 // complicates things for the dynamic linker and means we would have to reserve 1144 // space for the extra PT_LOAD even if we end up not using it. 1145 template <class ELFT, class RelTy> 1146 static void processRelocAux(InputSectionBase &sec, RelExpr expr, RelType type, 1147 uint64_t offset, Symbol &sym, const RelTy &rel, 1148 int64_t addend) { 1149 // If the relocation is known to be a link-time constant, we know no dynamic 1150 // relocation will be created, pass the control to relocateAlloc() or 1151 // relocateNonAlloc() to resolve it. 1152 // 1153 // The behavior of an undefined weak reference is implementation defined. For 1154 // non-link-time constants, we resolve relocations statically (let 1155 // relocate{,Non}Alloc() resolve them) for -no-pie and try producing dynamic 1156 // relocations for -pie and -shared. 1157 // 1158 // The general expectation of -no-pie static linking is that there is no 1159 // dynamic relocation (except IRELATIVE). Emitting dynamic relocations for 1160 // -shared matches the spirit of its -z undefs default. -pie has freedom on 1161 // choices, and we choose dynamic relocations to be consistent with the 1162 // handling of GOT-generating relocations. 1163 if (isStaticLinkTimeConstant(expr, type, sym, sec, offset) || 1164 (!config->isPic && sym.isUndefWeak())) { 1165 sec.relocations.push_back({expr, type, offset, addend, &sym}); 1166 return; 1167 } 1168 1169 bool canWrite = (sec.flags & SHF_WRITE) || !config->zText; 1170 if (canWrite) { 1171 RelType rel = target->getDynRel(type); 1172 if (expr == R_GOT || (rel == target->symbolicRel && !sym.isPreemptible)) { 1173 addRelativeReloc(&sec, offset, sym, addend, expr, type); 1174 return; 1175 } else if (rel != 0) { 1176 if (config->emachine == EM_MIPS && rel == target->symbolicRel) 1177 rel = target->relativeRel; 1178 sec.getPartition().relaDyn->addSymbolReloc(rel, &sec, offset, sym, addend, 1179 type); 1180 1181 // MIPS ABI turns using of GOT and dynamic relocations inside out. 1182 // While regular ABI uses dynamic relocations to fill up GOT entries 1183 // MIPS ABI requires dynamic linker to fills up GOT entries using 1184 // specially sorted dynamic symbol table. This affects even dynamic 1185 // relocations against symbols which do not require GOT entries 1186 // creation explicitly, i.e. do not have any GOT-relocations. So if 1187 // a preemptible symbol has a dynamic relocation we anyway have 1188 // to create a GOT entry for it. 1189 // If a non-preemptible symbol has a dynamic relocation against it, 1190 // dynamic linker takes it st_value, adds offset and writes down 1191 // result of the dynamic relocation. In case of preemptible symbol 1192 // dynamic linker performs symbol resolution, writes the symbol value 1193 // to the GOT entry and reads the GOT entry when it needs to perform 1194 // a dynamic relocation. 1195 // ftp://www.linux-mips.org/pub/linux/mips/doc/ABI/mipsabi.pdf p.4-19 1196 if (config->emachine == EM_MIPS) 1197 in.mipsGot->addEntry(*sec.file, sym, addend, expr); 1198 return; 1199 } 1200 } 1201 1202 // When producing an executable, we can perform copy relocations (for 1203 // STT_OBJECT) and canonical PLT (for STT_FUNC). 1204 if (!config->shared) { 1205 if (!canDefineSymbolInExecutable(sym)) { 1206 errorOrWarn("cannot preempt symbol: " + toString(sym) + 1207 getLocation(sec, sym, offset)); 1208 return; 1209 } 1210 1211 if (sym.isObject()) { 1212 // Produce a copy relocation. 1213 if (auto *ss = dyn_cast<SharedSymbol>(&sym)) { 1214 if (!config->zCopyreloc) 1215 error("unresolvable relocation " + toString(type) + 1216 " against symbol '" + toString(*ss) + 1217 "'; recompile with -fPIC or remove '-z nocopyreloc'" + 1218 getLocation(sec, sym, offset)); 1219 addCopyRelSymbol<ELFT>(*ss); 1220 } 1221 sec.relocations.push_back({expr, type, offset, addend, &sym}); 1222 return; 1223 } 1224 1225 // This handles a non PIC program call to function in a shared library. In 1226 // an ideal world, we could just report an error saying the relocation can 1227 // overflow at runtime. In the real world with glibc, crt1.o has a 1228 // R_X86_64_PC32 pointing to libc.so. 1229 // 1230 // The general idea on how to handle such cases is to create a PLT entry and 1231 // use that as the function value. 1232 // 1233 // For the static linking part, we just return a plt expr and everything 1234 // else will use the PLT entry as the address. 1235 // 1236 // The remaining problem is making sure pointer equality still works. We 1237 // need the help of the dynamic linker for that. We let it know that we have 1238 // a direct reference to a so symbol by creating an undefined symbol with a 1239 // non zero st_value. Seeing that, the dynamic linker resolves the symbol to 1240 // the value of the symbol we created. This is true even for got entries, so 1241 // pointer equality is maintained. To avoid an infinite loop, the only entry 1242 // that points to the real function is a dedicated got entry used by the 1243 // plt. That is identified by special relocation types (R_X86_64_JUMP_SLOT, 1244 // R_386_JMP_SLOT, etc). 1245 1246 // For position independent executable on i386, the plt entry requires ebx 1247 // to be set. This causes two problems: 1248 // * If some code has a direct reference to a function, it was probably 1249 // compiled without -fPIE/-fPIC and doesn't maintain ebx. 1250 // * If a library definition gets preempted to the executable, it will have 1251 // the wrong ebx value. 1252 if (sym.isFunc()) { 1253 if (config->pie && config->emachine == EM_386) 1254 errorOrWarn("symbol '" + toString(sym) + 1255 "' cannot be preempted; recompile with -fPIE" + 1256 getLocation(sec, sym, offset)); 1257 if (!sym.isInPlt()) 1258 addPltEntry(in.plt, in.gotPlt, in.relaPlt, target->pltRel, sym); 1259 if (!sym.isDefined()) { 1260 replaceWithDefined( 1261 sym, in.plt, 1262 target->pltHeaderSize + target->pltEntrySize * sym.pltIndex, 0); 1263 if (config->emachine == EM_PPC) { 1264 // PPC32 canonical PLT entries are at the beginning of .glink 1265 cast<Defined>(sym).value = in.plt->headerSize; 1266 in.plt->headerSize += 16; 1267 cast<PPC32GlinkSection>(in.plt)->canonical_plts.push_back(&sym); 1268 } 1269 } 1270 sym.needsPltAddr = true; 1271 sec.relocations.push_back({expr, type, offset, addend, &sym}); 1272 return; 1273 } 1274 } 1275 1276 if (config->isPic) { 1277 if (!canWrite && !isRelExpr(expr)) 1278 errorOrWarn( 1279 "can't create dynamic relocation " + toString(type) + " against " + 1280 (sym.getName().empty() ? "local symbol" 1281 : "symbol: " + toString(sym)) + 1282 " in readonly segment; recompile object files with -fPIC " 1283 "or pass '-Wl,-z,notext' to allow text relocations in the output" + 1284 getLocation(sec, sym, offset)); 1285 else 1286 errorOrWarn( 1287 "relocation " + toString(type) + " cannot be used against " + 1288 (sym.getName().empty() ? "local symbol" : "symbol " + toString(sym)) + 1289 "; recompile with -fPIC" + getLocation(sec, sym, offset)); 1290 return; 1291 } 1292 1293 errorOrWarn("symbol '" + toString(sym) + "' has no type" + 1294 getLocation(sec, sym, offset)); 1295 } 1296 1297 template <class ELFT, class RelTy> 1298 static void scanReloc(InputSectionBase &sec, OffsetGetter &getOffset, RelTy *&i, 1299 RelTy *start, RelTy *end) { 1300 const RelTy &rel = *i; 1301 uint32_t symIndex = rel.getSymbol(config->isMips64EL); 1302 Symbol &sym = sec.getFile<ELFT>()->getSymbol(symIndex); 1303 RelType type; 1304 1305 // Deal with MIPS oddity. 1306 if (config->mipsN32Abi) { 1307 type = getMipsN32RelType(i, end); 1308 } else { 1309 type = rel.getType(config->isMips64EL); 1310 ++i; 1311 } 1312 1313 // Get an offset in an output section this relocation is applied to. 1314 uint64_t offset = getOffset.get(rel.r_offset); 1315 if (offset == uint64_t(-1)) 1316 return; 1317 1318 // Error if the target symbol is undefined. Symbol index 0 may be used by 1319 // marker relocations, e.g. R_*_NONE and R_ARM_V4BX. Don't error on them. 1320 if (symIndex != 0 && maybeReportUndefined(sym, sec, rel.r_offset)) 1321 return; 1322 1323 const uint8_t *relocatedAddr = sec.data().begin() + rel.r_offset; 1324 RelExpr expr = target->getRelExpr(type, sym, relocatedAddr); 1325 1326 // Ignore R_*_NONE and other marker relocations. 1327 if (expr == R_NONE) 1328 return; 1329 1330 // Read an addend. 1331 int64_t addend = computeAddend<ELFT>(rel, end, sec, expr, sym.isLocal()); 1332 1333 if (config->emachine == EM_PPC64) { 1334 // We can separate the small code model relocations into 2 categories: 1335 // 1) Those that access the compiler generated .toc sections. 1336 // 2) Those that access the linker allocated got entries. 1337 // lld allocates got entries to symbols on demand. Since we don't try to 1338 // sort the got entries in any way, we don't have to track which objects 1339 // have got-based small code model relocs. The .toc sections get placed 1340 // after the end of the linker allocated .got section and we do sort those 1341 // so sections addressed with small code model relocations come first. 1342 if (isPPC64SmallCodeModelTocReloc(type)) 1343 sec.file->ppc64SmallCodeModelTocRelocs = true; 1344 1345 // Record the TOC entry (.toc + addend) as not relaxable. See the comment in 1346 // InputSectionBase::relocateAlloc(). 1347 if (type == R_PPC64_TOC16_LO && sym.isSection() && isa<Defined>(sym) && 1348 cast<Defined>(sym).section->name == ".toc") 1349 ppc64noTocRelax.insert({&sym, addend}); 1350 1351 if ((type == R_PPC64_TLSGD && expr == R_TLSDESC_CALL) || 1352 (type == R_PPC64_TLSLD && expr == R_TLSLD_HINT)) { 1353 if (i == end) { 1354 errorOrWarn("R_PPC64_TLSGD/R_PPC64_TLSLD may not be the last " 1355 "relocation" + 1356 getLocation(sec, sym, offset)); 1357 return; 1358 } 1359 1360 // Offset the 4-byte aligned R_PPC64_TLSGD by one byte in the NOTOC case, 1361 // so we can discern it later from the toc-case. 1362 if (i->getType(/*isMips64EL=*/false) == R_PPC64_REL24_NOTOC) 1363 ++offset; 1364 } 1365 } 1366 1367 // Relax relocations. 1368 // 1369 // If we know that a PLT entry will be resolved within the same ELF module, we 1370 // can skip PLT access and directly jump to the destination function. For 1371 // example, if we are linking a main executable, all dynamic symbols that can 1372 // be resolved within the executable will actually be resolved that way at 1373 // runtime, because the main executable is always at the beginning of a search 1374 // list. We can leverage that fact. 1375 if (!sym.isPreemptible && (!sym.isGnuIFunc() || config->zIfuncNoplt)) { 1376 if (expr != R_GOT_PC) { 1377 // The 0x8000 bit of r_addend of R_PPC_PLTREL24 is used to choose call 1378 // stub type. It should be ignored if optimized to R_PC. 1379 if (config->emachine == EM_PPC && expr == R_PPC32_PLTREL) 1380 addend &= ~0x8000; 1381 // R_HEX_GD_PLT_B22_PCREL (call a@GDPLT) is transformed into 1382 // call __tls_get_addr even if the symbol is non-preemptible. 1383 if (!(config->emachine == EM_HEXAGON && 1384 (type == R_HEX_GD_PLT_B22_PCREL || 1385 type == R_HEX_GD_PLT_B22_PCREL_X || 1386 type == R_HEX_GD_PLT_B32_PCREL_X))) 1387 expr = fromPlt(expr); 1388 } else if (!isAbsoluteValue(sym)) { 1389 expr = target->adjustGotPcExpr(type, addend, relocatedAddr); 1390 } 1391 } 1392 1393 // If the relocation does not emit a GOT or GOTPLT entry but its computation 1394 // uses their addresses, we need GOT or GOTPLT to be created. 1395 // 1396 // The 4 types that relative GOTPLT are all x86 and x86-64 specific. 1397 if (oneof<R_GOTPLTONLY_PC, R_GOTPLTREL, R_GOTPLT, R_TLSGD_GOTPLT>(expr)) { 1398 in.gotPlt->hasGotPltOffRel = true; 1399 } else if (oneof<R_GOTONLY_PC, R_GOTREL, R_PPC64_TOCBASE, R_PPC64_RELAX_TOC>( 1400 expr)) { 1401 in.got->hasGotOffRel = true; 1402 } 1403 1404 // Process TLS relocations, including relaxing TLS relocations. Note that 1405 // R_TPREL and R_TPREL_NEG relocations are resolved in processRelocAux. 1406 if (expr == R_TPREL || expr == R_TPREL_NEG) { 1407 if (config->shared) { 1408 errorOrWarn("relocation " + toString(type) + " against " + toString(sym) + 1409 " cannot be used with -shared" + 1410 getLocation(sec, sym, offset)); 1411 return; 1412 } 1413 } else if (unsigned processed = handleTlsRelocation<ELFT>( 1414 type, sym, sec, offset, addend, expr)) { 1415 i += (processed - 1); 1416 return; 1417 } 1418 1419 // We were asked not to generate PLT entries for ifuncs. Instead, pass the 1420 // direct relocation on through. 1421 if (sym.isGnuIFunc() && config->zIfuncNoplt) { 1422 sym.exportDynamic = true; 1423 mainPart->relaDyn->addSymbolReloc(type, &sec, offset, sym, addend, type); 1424 return; 1425 } 1426 1427 // Non-preemptible ifuncs require special handling. First, handle the usual 1428 // case where the symbol isn't one of these. 1429 if (!sym.isGnuIFunc() || sym.isPreemptible) { 1430 // If a relocation needs PLT, we create PLT and GOTPLT slots for the symbol. 1431 if (needsPlt(expr) && !sym.isInPlt()) 1432 addPltEntry(in.plt, in.gotPlt, in.relaPlt, target->pltRel, sym); 1433 1434 // Create a GOT slot if a relocation needs GOT. 1435 if (needsGot(expr)) { 1436 if (config->emachine == EM_MIPS) { 1437 // MIPS ABI has special rules to process GOT entries and doesn't 1438 // require relocation entries for them. A special case is TLS 1439 // relocations. In that case dynamic loader applies dynamic 1440 // relocations to initialize TLS GOT entries. 1441 // See "Global Offset Table" in Chapter 5 in the following document 1442 // for detailed description: 1443 // ftp://www.linux-mips.org/pub/linux/mips/doc/ABI/mipsabi.pdf 1444 in.mipsGot->addEntry(*sec.file, sym, addend, expr); 1445 } else if (!sym.isInGot()) { 1446 addGotEntry(sym); 1447 } 1448 } 1449 } else { 1450 // Handle a reference to a non-preemptible ifunc. These are special in a 1451 // few ways: 1452 // 1453 // - Unlike most non-preemptible symbols, non-preemptible ifuncs do not have 1454 // a fixed value. But assuming that all references to the ifunc are 1455 // GOT-generating or PLT-generating, the handling of an ifunc is 1456 // relatively straightforward. We create a PLT entry in Iplt, which is 1457 // usually at the end of .plt, which makes an indirect call using a 1458 // matching GOT entry in igotPlt, which is usually at the end of .got.plt. 1459 // The GOT entry is relocated using an IRELATIVE relocation in relaIplt, 1460 // which is usually at the end of .rela.plt. Unlike most relocations in 1461 // .rela.plt, which may be evaluated lazily without -z now, dynamic 1462 // loaders evaluate IRELATIVE relocs eagerly, which means that for 1463 // IRELATIVE relocs only, GOT-generating relocations can point directly to 1464 // .got.plt without requiring a separate GOT entry. 1465 // 1466 // - Despite the fact that an ifunc does not have a fixed value, compilers 1467 // that are not passed -fPIC will assume that they do, and will emit 1468 // direct (non-GOT-generating, non-PLT-generating) relocations to the 1469 // symbol. This means that if a direct relocation to the symbol is 1470 // seen, the linker must set a value for the symbol, and this value must 1471 // be consistent no matter what type of reference is made to the symbol. 1472 // This can be done by creating a PLT entry for the symbol in the way 1473 // described above and making it canonical, that is, making all references 1474 // point to the PLT entry instead of the resolver. In lld we also store 1475 // the address of the PLT entry in the dynamic symbol table, which means 1476 // that the symbol will also have the same value in other modules. 1477 // Because the value loaded from the GOT needs to be consistent with 1478 // the value computed using a direct relocation, a non-preemptible ifunc 1479 // may end up with two GOT entries, one in .got.plt that points to the 1480 // address returned by the resolver and is used only by the PLT entry, 1481 // and another in .got that points to the PLT entry and is used by 1482 // GOT-generating relocations. 1483 // 1484 // - The fact that these symbols do not have a fixed value makes them an 1485 // exception to the general rule that a statically linked executable does 1486 // not require any form of dynamic relocation. To handle these relocations 1487 // correctly, the IRELATIVE relocations are stored in an array which a 1488 // statically linked executable's startup code must enumerate using the 1489 // linker-defined symbols __rela?_iplt_{start,end}. 1490 if (!sym.isInPlt()) { 1491 // Create PLT and GOTPLT slots for the symbol. 1492 sym.isInIplt = true; 1493 1494 // Create a copy of the symbol to use as the target of the IRELATIVE 1495 // relocation in the igotPlt. This is in case we make the PLT canonical 1496 // later, which would overwrite the original symbol. 1497 // 1498 // FIXME: Creating a copy of the symbol here is a bit of a hack. All 1499 // that's really needed to create the IRELATIVE is the section and value, 1500 // so ideally we should just need to copy those. 1501 auto *directSym = make<Defined>(cast<Defined>(sym)); 1502 addPltEntry(in.iplt, in.igotPlt, in.relaIplt, target->iRelativeRel, 1503 *directSym); 1504 sym.pltIndex = directSym->pltIndex; 1505 } 1506 if (needsGot(expr)) { 1507 // Redirect GOT accesses to point to the Igot. 1508 // 1509 // This field is also used to keep track of whether we ever needed a GOT 1510 // entry. If we did and we make the PLT canonical later, we'll need to 1511 // create a GOT entry pointing to the PLT entry for Sym. 1512 sym.gotInIgot = true; 1513 } else if (!needsPlt(expr)) { 1514 // Make the ifunc's PLT entry canonical by changing the value of its 1515 // symbol to redirect all references to point to it. 1516 auto &d = cast<Defined>(sym); 1517 d.section = in.iplt; 1518 d.value = sym.pltIndex * target->ipltEntrySize; 1519 d.size = 0; 1520 // It's important to set the symbol type here so that dynamic loaders 1521 // don't try to call the PLT as if it were an ifunc resolver. 1522 d.type = STT_FUNC; 1523 1524 if (sym.gotInIgot) { 1525 // We previously encountered a GOT generating reference that we 1526 // redirected to the Igot. Now that the PLT entry is canonical we must 1527 // clear the redirection to the Igot and add a GOT entry. As we've 1528 // changed the symbol type to STT_FUNC future GOT generating references 1529 // will naturally use this GOT entry. 1530 // 1531 // We don't need to worry about creating a MIPS GOT here because ifuncs 1532 // aren't a thing on MIPS. 1533 sym.gotInIgot = false; 1534 addGotEntry(sym); 1535 } 1536 } 1537 } 1538 1539 processRelocAux<ELFT>(sec, expr, type, offset, sym, rel, addend); 1540 } 1541 1542 // R_PPC64_TLSGD/R_PPC64_TLSLD is required to mark `bl __tls_get_addr` for 1543 // General Dynamic/Local Dynamic code sequences. If a GD/LD GOT relocation is 1544 // found but no R_PPC64_TLSGD/R_PPC64_TLSLD is seen, we assume that the 1545 // instructions are generated by very old IBM XL compilers. Work around the 1546 // issue by disabling GD/LD to IE/LE relaxation. 1547 template <class RelTy> 1548 static void checkPPC64TLSRelax(InputSectionBase &sec, ArrayRef<RelTy> rels) { 1549 // Skip if sec is synthetic (sec.file is null) or if sec has been marked. 1550 if (!sec.file || sec.file->ppc64DisableTLSRelax) 1551 return; 1552 bool hasGDLD = false; 1553 for (const RelTy &rel : rels) { 1554 RelType type = rel.getType(false); 1555 switch (type) { 1556 case R_PPC64_TLSGD: 1557 case R_PPC64_TLSLD: 1558 return; // Found a marker 1559 case R_PPC64_GOT_TLSGD16: 1560 case R_PPC64_GOT_TLSGD16_HA: 1561 case R_PPC64_GOT_TLSGD16_HI: 1562 case R_PPC64_GOT_TLSGD16_LO: 1563 case R_PPC64_GOT_TLSLD16: 1564 case R_PPC64_GOT_TLSLD16_HA: 1565 case R_PPC64_GOT_TLSLD16_HI: 1566 case R_PPC64_GOT_TLSLD16_LO: 1567 hasGDLD = true; 1568 break; 1569 } 1570 } 1571 if (hasGDLD) { 1572 sec.file->ppc64DisableTLSRelax = true; 1573 warn(toString(sec.file) + 1574 ": disable TLS relaxation due to R_PPC64_GOT_TLS* relocations without " 1575 "R_PPC64_TLSGD/R_PPC64_TLSLD relocations"); 1576 } 1577 } 1578 1579 template <class ELFT, class RelTy> 1580 static void scanRelocs(InputSectionBase &sec, ArrayRef<RelTy> rels) { 1581 OffsetGetter getOffset(sec); 1582 1583 // Not all relocations end up in Sec.Relocations, but a lot do. 1584 sec.relocations.reserve(rels.size()); 1585 1586 if (config->emachine == EM_PPC64) 1587 checkPPC64TLSRelax<RelTy>(sec, rels); 1588 1589 // For EhInputSection, OffsetGetter expects the relocations to be sorted by 1590 // r_offset. In rare cases (.eh_frame pieces are reordered by a linker 1591 // script), the relocations may be unordered. 1592 SmallVector<RelTy, 0> storage; 1593 if (isa<EhInputSection>(sec)) 1594 rels = sortRels(rels, storage); 1595 1596 for (auto i = rels.begin(), end = rels.end(); i != end;) 1597 scanReloc<ELFT>(sec, getOffset, i, rels.begin(), end); 1598 1599 // Sort relocations by offset for more efficient searching for 1600 // R_RISCV_PCREL_HI20 and R_PPC64_ADDR64. 1601 if (config->emachine == EM_RISCV || 1602 (config->emachine == EM_PPC64 && sec.name == ".toc")) 1603 llvm::stable_sort(sec.relocations, 1604 [](const Relocation &lhs, const Relocation &rhs) { 1605 return lhs.offset < rhs.offset; 1606 }); 1607 } 1608 1609 template <class ELFT> void elf::scanRelocations(InputSectionBase &s) { 1610 if (s.areRelocsRela) 1611 scanRelocs<ELFT>(s, s.relas<ELFT>()); 1612 else 1613 scanRelocs<ELFT>(s, s.rels<ELFT>()); 1614 } 1615 1616 static bool mergeCmp(const InputSection *a, const InputSection *b) { 1617 // std::merge requires a strict weak ordering. 1618 if (a->outSecOff < b->outSecOff) 1619 return true; 1620 1621 if (a->outSecOff == b->outSecOff) { 1622 auto *ta = dyn_cast<ThunkSection>(a); 1623 auto *tb = dyn_cast<ThunkSection>(b); 1624 1625 // Check if Thunk is immediately before any specific Target 1626 // InputSection for example Mips LA25 Thunks. 1627 if (ta && ta->getTargetInputSection() == b) 1628 return true; 1629 1630 // Place Thunk Sections without specific targets before 1631 // non-Thunk Sections. 1632 if (ta && !tb && !ta->getTargetInputSection()) 1633 return true; 1634 } 1635 1636 return false; 1637 } 1638 1639 // Call Fn on every executable InputSection accessed via the linker script 1640 // InputSectionDescription::Sections. 1641 static void forEachInputSectionDescription( 1642 ArrayRef<OutputSection *> outputSections, 1643 llvm::function_ref<void(OutputSection *, InputSectionDescription *)> fn) { 1644 for (OutputSection *os : outputSections) { 1645 if (!(os->flags & SHF_ALLOC) || !(os->flags & SHF_EXECINSTR)) 1646 continue; 1647 for (BaseCommand *bc : os->sectionCommands) 1648 if (auto *isd = dyn_cast<InputSectionDescription>(bc)) 1649 fn(os, isd); 1650 } 1651 } 1652 1653 // Thunk Implementation 1654 // 1655 // Thunks (sometimes called stubs, veneers or branch islands) are small pieces 1656 // of code that the linker inserts inbetween a caller and a callee. The thunks 1657 // are added at link time rather than compile time as the decision on whether 1658 // a thunk is needed, such as the caller and callee being out of range, can only 1659 // be made at link time. 1660 // 1661 // It is straightforward to tell given the current state of the program when a 1662 // thunk is needed for a particular call. The more difficult part is that 1663 // the thunk needs to be placed in the program such that the caller can reach 1664 // the thunk and the thunk can reach the callee; furthermore, adding thunks to 1665 // the program alters addresses, which can mean more thunks etc. 1666 // 1667 // In lld we have a synthetic ThunkSection that can hold many Thunks. 1668 // The decision to have a ThunkSection act as a container means that we can 1669 // more easily handle the most common case of a single block of contiguous 1670 // Thunks by inserting just a single ThunkSection. 1671 // 1672 // The implementation of Thunks in lld is split across these areas 1673 // Relocations.cpp : Framework for creating and placing thunks 1674 // Thunks.cpp : The code generated for each supported thunk 1675 // Target.cpp : Target specific hooks that the framework uses to decide when 1676 // a thunk is used 1677 // Synthetic.cpp : Implementation of ThunkSection 1678 // Writer.cpp : Iteratively call framework until no more Thunks added 1679 // 1680 // Thunk placement requirements: 1681 // Mips LA25 thunks. These must be placed immediately before the callee section 1682 // We can assume that the caller is in range of the Thunk. These are modelled 1683 // by Thunks that return the section they must precede with 1684 // getTargetInputSection(). 1685 // 1686 // ARM interworking and range extension thunks. These thunks must be placed 1687 // within range of the caller. All implemented ARM thunks can always reach the 1688 // callee as they use an indirect jump via a register that has no range 1689 // restrictions. 1690 // 1691 // Thunk placement algorithm: 1692 // For Mips LA25 ThunkSections; the placement is explicit, it has to be before 1693 // getTargetInputSection(). 1694 // 1695 // For thunks that must be placed within range of the caller there are many 1696 // possible choices given that the maximum range from the caller is usually 1697 // much larger than the average InputSection size. Desirable properties include: 1698 // - Maximize reuse of thunks by multiple callers 1699 // - Minimize number of ThunkSections to simplify insertion 1700 // - Handle impact of already added Thunks on addresses 1701 // - Simple to understand and implement 1702 // 1703 // In lld for the first pass, we pre-create one or more ThunkSections per 1704 // InputSectionDescription at Target specific intervals. A ThunkSection is 1705 // placed so that the estimated end of the ThunkSection is within range of the 1706 // start of the InputSectionDescription or the previous ThunkSection. For 1707 // example: 1708 // InputSectionDescription 1709 // Section 0 1710 // ... 1711 // Section N 1712 // ThunkSection 0 1713 // Section N + 1 1714 // ... 1715 // Section N + K 1716 // Thunk Section 1 1717 // 1718 // The intention is that we can add a Thunk to a ThunkSection that is well 1719 // spaced enough to service a number of callers without having to do a lot 1720 // of work. An important principle is that it is not an error if a Thunk cannot 1721 // be placed in a pre-created ThunkSection; when this happens we create a new 1722 // ThunkSection placed next to the caller. This allows us to handle the vast 1723 // majority of thunks simply, but also handle rare cases where the branch range 1724 // is smaller than the target specific spacing. 1725 // 1726 // The algorithm is expected to create all the thunks that are needed in a 1727 // single pass, with a small number of programs needing a second pass due to 1728 // the insertion of thunks in the first pass increasing the offset between 1729 // callers and callees that were only just in range. 1730 // 1731 // A consequence of allowing new ThunkSections to be created outside of the 1732 // pre-created ThunkSections is that in rare cases calls to Thunks that were in 1733 // range in pass K, are out of range in some pass > K due to the insertion of 1734 // more Thunks in between the caller and callee. When this happens we retarget 1735 // the relocation back to the original target and create another Thunk. 1736 1737 // Remove ThunkSections that are empty, this should only be the initial set 1738 // precreated on pass 0. 1739 1740 // Insert the Thunks for OutputSection OS into their designated place 1741 // in the Sections vector, and recalculate the InputSection output section 1742 // offsets. 1743 // This may invalidate any output section offsets stored outside of InputSection 1744 void ThunkCreator::mergeThunks(ArrayRef<OutputSection *> outputSections) { 1745 forEachInputSectionDescription( 1746 outputSections, [&](OutputSection *os, InputSectionDescription *isd) { 1747 if (isd->thunkSections.empty()) 1748 return; 1749 1750 // Remove any zero sized precreated Thunks. 1751 llvm::erase_if(isd->thunkSections, 1752 [](const std::pair<ThunkSection *, uint32_t> &ts) { 1753 return ts.first->getSize() == 0; 1754 }); 1755 1756 // ISD->ThunkSections contains all created ThunkSections, including 1757 // those inserted in previous passes. Extract the Thunks created this 1758 // pass and order them in ascending outSecOff. 1759 std::vector<ThunkSection *> newThunks; 1760 for (std::pair<ThunkSection *, uint32_t> ts : isd->thunkSections) 1761 if (ts.second == pass) 1762 newThunks.push_back(ts.first); 1763 llvm::stable_sort(newThunks, 1764 [](const ThunkSection *a, const ThunkSection *b) { 1765 return a->outSecOff < b->outSecOff; 1766 }); 1767 1768 // Merge sorted vectors of Thunks and InputSections by outSecOff 1769 std::vector<InputSection *> tmp; 1770 tmp.reserve(isd->sections.size() + newThunks.size()); 1771 1772 std::merge(isd->sections.begin(), isd->sections.end(), 1773 newThunks.begin(), newThunks.end(), std::back_inserter(tmp), 1774 mergeCmp); 1775 1776 isd->sections = std::move(tmp); 1777 }); 1778 } 1779 1780 // Find or create a ThunkSection within the InputSectionDescription (ISD) that 1781 // is in range of Src. An ISD maps to a range of InputSections described by a 1782 // linker script section pattern such as { .text .text.* }. 1783 ThunkSection *ThunkCreator::getISDThunkSec(OutputSection *os, 1784 InputSection *isec, 1785 InputSectionDescription *isd, 1786 const Relocation &rel, 1787 uint64_t src) { 1788 for (std::pair<ThunkSection *, uint32_t> tp : isd->thunkSections) { 1789 ThunkSection *ts = tp.first; 1790 uint64_t tsBase = os->addr + ts->outSecOff + rel.addend; 1791 uint64_t tsLimit = tsBase + ts->getSize() + rel.addend; 1792 if (target->inBranchRange(rel.type, src, 1793 (src > tsLimit) ? tsBase : tsLimit)) 1794 return ts; 1795 } 1796 1797 // No suitable ThunkSection exists. This can happen when there is a branch 1798 // with lower range than the ThunkSection spacing or when there are too 1799 // many Thunks. Create a new ThunkSection as close to the InputSection as 1800 // possible. Error if InputSection is so large we cannot place ThunkSection 1801 // anywhere in Range. 1802 uint64_t thunkSecOff = isec->outSecOff; 1803 if (!target->inBranchRange(rel.type, src, 1804 os->addr + thunkSecOff + rel.addend)) { 1805 thunkSecOff = isec->outSecOff + isec->getSize(); 1806 if (!target->inBranchRange(rel.type, src, 1807 os->addr + thunkSecOff + rel.addend)) 1808 fatal("InputSection too large for range extension thunk " + 1809 isec->getObjMsg(src - (os->addr + isec->outSecOff))); 1810 } 1811 return addThunkSection(os, isd, thunkSecOff); 1812 } 1813 1814 // Add a Thunk that needs to be placed in a ThunkSection that immediately 1815 // precedes its Target. 1816 ThunkSection *ThunkCreator::getISThunkSec(InputSection *isec) { 1817 ThunkSection *ts = thunkedSections.lookup(isec); 1818 if (ts) 1819 return ts; 1820 1821 // Find InputSectionRange within Target Output Section (TOS) that the 1822 // InputSection (IS) that we need to precede is in. 1823 OutputSection *tos = isec->getParent(); 1824 for (BaseCommand *bc : tos->sectionCommands) { 1825 auto *isd = dyn_cast<InputSectionDescription>(bc); 1826 if (!isd || isd->sections.empty()) 1827 continue; 1828 1829 InputSection *first = isd->sections.front(); 1830 InputSection *last = isd->sections.back(); 1831 1832 if (isec->outSecOff < first->outSecOff || last->outSecOff < isec->outSecOff) 1833 continue; 1834 1835 ts = addThunkSection(tos, isd, isec->outSecOff); 1836 thunkedSections[isec] = ts; 1837 return ts; 1838 } 1839 1840 return nullptr; 1841 } 1842 1843 // Create one or more ThunkSections per OS that can be used to place Thunks. 1844 // We attempt to place the ThunkSections using the following desirable 1845 // properties: 1846 // - Within range of the maximum number of callers 1847 // - Minimise the number of ThunkSections 1848 // 1849 // We follow a simple but conservative heuristic to place ThunkSections at 1850 // offsets that are multiples of a Target specific branch range. 1851 // For an InputSectionDescription that is smaller than the range, a single 1852 // ThunkSection at the end of the range will do. 1853 // 1854 // For an InputSectionDescription that is more than twice the size of the range, 1855 // we place the last ThunkSection at range bytes from the end of the 1856 // InputSectionDescription in order to increase the likelihood that the 1857 // distance from a thunk to its target will be sufficiently small to 1858 // allow for the creation of a short thunk. 1859 void ThunkCreator::createInitialThunkSections( 1860 ArrayRef<OutputSection *> outputSections) { 1861 uint32_t thunkSectionSpacing = target->getThunkSectionSpacing(); 1862 1863 forEachInputSectionDescription( 1864 outputSections, [&](OutputSection *os, InputSectionDescription *isd) { 1865 if (isd->sections.empty()) 1866 return; 1867 1868 uint32_t isdBegin = isd->sections.front()->outSecOff; 1869 uint32_t isdEnd = 1870 isd->sections.back()->outSecOff + isd->sections.back()->getSize(); 1871 uint32_t lastThunkLowerBound = -1; 1872 if (isdEnd - isdBegin > thunkSectionSpacing * 2) 1873 lastThunkLowerBound = isdEnd - thunkSectionSpacing; 1874 1875 uint32_t isecLimit; 1876 uint32_t prevIsecLimit = isdBegin; 1877 uint32_t thunkUpperBound = isdBegin + thunkSectionSpacing; 1878 1879 for (const InputSection *isec : isd->sections) { 1880 isecLimit = isec->outSecOff + isec->getSize(); 1881 if (isecLimit > thunkUpperBound) { 1882 addThunkSection(os, isd, prevIsecLimit); 1883 thunkUpperBound = prevIsecLimit + thunkSectionSpacing; 1884 } 1885 if (isecLimit > lastThunkLowerBound) 1886 break; 1887 prevIsecLimit = isecLimit; 1888 } 1889 addThunkSection(os, isd, isecLimit); 1890 }); 1891 } 1892 1893 ThunkSection *ThunkCreator::addThunkSection(OutputSection *os, 1894 InputSectionDescription *isd, 1895 uint64_t off) { 1896 auto *ts = make<ThunkSection>(os, off); 1897 ts->partition = os->partition; 1898 if ((config->fixCortexA53Errata843419 || config->fixCortexA8) && 1899 !isd->sections.empty()) { 1900 // The errata fixes are sensitive to addresses modulo 4 KiB. When we add 1901 // thunks we disturb the base addresses of sections placed after the thunks 1902 // this makes patches we have generated redundant, and may cause us to 1903 // generate more patches as different instructions are now in sensitive 1904 // locations. When we generate more patches we may force more branches to 1905 // go out of range, causing more thunks to be generated. In pathological 1906 // cases this can cause the address dependent content pass not to converge. 1907 // We fix this by rounding up the size of the ThunkSection to 4KiB, this 1908 // limits the insertion of a ThunkSection on the addresses modulo 4 KiB, 1909 // which means that adding Thunks to the section does not invalidate 1910 // errata patches for following code. 1911 // Rounding up the size to 4KiB has consequences for code-size and can 1912 // trip up linker script defined assertions. For example the linux kernel 1913 // has an assertion that what LLD represents as an InputSectionDescription 1914 // does not exceed 4 KiB even if the overall OutputSection is > 128 Mib. 1915 // We use the heuristic of rounding up the size when both of the following 1916 // conditions are true: 1917 // 1.) The OutputSection is larger than the ThunkSectionSpacing. This 1918 // accounts for the case where no single InputSectionDescription is 1919 // larger than the OutputSection size. This is conservative but simple. 1920 // 2.) The InputSectionDescription is larger than 4 KiB. This will prevent 1921 // any assertion failures that an InputSectionDescription is < 4 KiB 1922 // in size. 1923 uint64_t isdSize = isd->sections.back()->outSecOff + 1924 isd->sections.back()->getSize() - 1925 isd->sections.front()->outSecOff; 1926 if (os->size > target->getThunkSectionSpacing() && isdSize > 4096) 1927 ts->roundUpSizeForErrata = true; 1928 } 1929 isd->thunkSections.push_back({ts, pass}); 1930 return ts; 1931 } 1932 1933 static bool isThunkSectionCompatible(InputSection *source, 1934 SectionBase *target) { 1935 // We can't reuse thunks in different loadable partitions because they might 1936 // not be loaded. But partition 1 (the main partition) will always be loaded. 1937 if (source->partition != target->partition) 1938 return target->partition == 1; 1939 return true; 1940 } 1941 1942 static int64_t getPCBias(RelType type) { 1943 if (config->emachine != EM_ARM) 1944 return 0; 1945 switch (type) { 1946 case R_ARM_THM_JUMP19: 1947 case R_ARM_THM_JUMP24: 1948 case R_ARM_THM_CALL: 1949 return 4; 1950 default: 1951 return 8; 1952 } 1953 } 1954 1955 std::pair<Thunk *, bool> ThunkCreator::getThunk(InputSection *isec, 1956 Relocation &rel, uint64_t src) { 1957 std::vector<Thunk *> *thunkVec = nullptr; 1958 // Arm and Thumb have a PC Bias of 8 and 4 respectively, this is cancelled 1959 // out in the relocation addend. We compensate for the PC bias so that 1960 // an Arm and Thumb relocation to the same destination get the same keyAddend, 1961 // which is usually 0. 1962 int64_t keyAddend = rel.addend + getPCBias(rel.type); 1963 1964 // We use a ((section, offset), addend) pair to find the thunk position if 1965 // possible so that we create only one thunk for aliased symbols or ICFed 1966 // sections. There may be multiple relocations sharing the same (section, 1967 // offset + addend) pair. We may revert the relocation back to its original 1968 // non-Thunk target, so we cannot fold offset + addend. 1969 if (auto *d = dyn_cast<Defined>(rel.sym)) 1970 if (!d->isInPlt() && d->section) 1971 thunkVec = &thunkedSymbolsBySectionAndAddend[{ 1972 {d->section->repl, d->value}, keyAddend}]; 1973 if (!thunkVec) 1974 thunkVec = &thunkedSymbols[{rel.sym, keyAddend}]; 1975 1976 // Check existing Thunks for Sym to see if they can be reused 1977 for (Thunk *t : *thunkVec) 1978 if (isThunkSectionCompatible(isec, t->getThunkTargetSym()->section) && 1979 t->isCompatibleWith(*isec, rel) && 1980 target->inBranchRange(rel.type, src, 1981 t->getThunkTargetSym()->getVA(rel.addend))) 1982 return std::make_pair(t, false); 1983 1984 // No existing compatible Thunk in range, create a new one 1985 Thunk *t = addThunk(*isec, rel); 1986 thunkVec->push_back(t); 1987 return std::make_pair(t, true); 1988 } 1989 1990 // Return true if the relocation target is an in range Thunk. 1991 // Return false if the relocation is not to a Thunk. If the relocation target 1992 // was originally to a Thunk, but is no longer in range we revert the 1993 // relocation back to its original non-Thunk target. 1994 bool ThunkCreator::normalizeExistingThunk(Relocation &rel, uint64_t src) { 1995 if (Thunk *t = thunks.lookup(rel.sym)) { 1996 if (target->inBranchRange(rel.type, src, rel.sym->getVA(rel.addend))) 1997 return true; 1998 rel.sym = &t->destination; 1999 rel.addend = t->addend; 2000 if (rel.sym->isInPlt()) 2001 rel.expr = toPlt(rel.expr); 2002 } 2003 return false; 2004 } 2005 2006 // Process all relocations from the InputSections that have been assigned 2007 // to InputSectionDescriptions and redirect through Thunks if needed. The 2008 // function should be called iteratively until it returns false. 2009 // 2010 // PreConditions: 2011 // All InputSections that may need a Thunk are reachable from 2012 // OutputSectionCommands. 2013 // 2014 // All OutputSections have an address and all InputSections have an offset 2015 // within the OutputSection. 2016 // 2017 // The offsets between caller (relocation place) and callee 2018 // (relocation target) will not be modified outside of createThunks(). 2019 // 2020 // PostConditions: 2021 // If return value is true then ThunkSections have been inserted into 2022 // OutputSections. All relocations that needed a Thunk based on the information 2023 // available to createThunks() on entry have been redirected to a Thunk. Note 2024 // that adding Thunks changes offsets between caller and callee so more Thunks 2025 // may be required. 2026 // 2027 // If return value is false then no more Thunks are needed, and createThunks has 2028 // made no changes. If the target requires range extension thunks, currently 2029 // ARM, then any future change in offset between caller and callee risks a 2030 // relocation out of range error. 2031 bool ThunkCreator::createThunks(ArrayRef<OutputSection *> outputSections) { 2032 bool addressesChanged = false; 2033 2034 if (pass == 0 && target->getThunkSectionSpacing()) 2035 createInitialThunkSections(outputSections); 2036 2037 // Create all the Thunks and insert them into synthetic ThunkSections. The 2038 // ThunkSections are later inserted back into InputSectionDescriptions. 2039 // We separate the creation of ThunkSections from the insertion of the 2040 // ThunkSections as ThunkSections are not always inserted into the same 2041 // InputSectionDescription as the caller. 2042 forEachInputSectionDescription( 2043 outputSections, [&](OutputSection *os, InputSectionDescription *isd) { 2044 for (InputSection *isec : isd->sections) 2045 for (Relocation &rel : isec->relocations) { 2046 uint64_t src = isec->getVA(rel.offset); 2047 2048 // If we are a relocation to an existing Thunk, check if it is 2049 // still in range. If not then Rel will be altered to point to its 2050 // original target so another Thunk can be generated. 2051 if (pass > 0 && normalizeExistingThunk(rel, src)) 2052 continue; 2053 2054 if (!target->needsThunk(rel.expr, rel.type, isec->file, src, 2055 *rel.sym, rel.addend)) 2056 continue; 2057 2058 Thunk *t; 2059 bool isNew; 2060 std::tie(t, isNew) = getThunk(isec, rel, src); 2061 2062 if (isNew) { 2063 // Find or create a ThunkSection for the new Thunk 2064 ThunkSection *ts; 2065 if (auto *tis = t->getTargetInputSection()) 2066 ts = getISThunkSec(tis); 2067 else 2068 ts = getISDThunkSec(os, isec, isd, rel, src); 2069 ts->addThunk(t); 2070 thunks[t->getThunkTargetSym()] = t; 2071 } 2072 2073 // Redirect relocation to Thunk, we never go via the PLT to a Thunk 2074 rel.sym = t->getThunkTargetSym(); 2075 rel.expr = fromPlt(rel.expr); 2076 2077 // On AArch64 and PPC, a jump/call relocation may be encoded as 2078 // STT_SECTION + non-zero addend, clear the addend after 2079 // redirection. 2080 if (config->emachine != EM_MIPS) 2081 rel.addend = -getPCBias(rel.type); 2082 } 2083 2084 for (auto &p : isd->thunkSections) 2085 addressesChanged |= p.first->assignOffsets(); 2086 }); 2087 2088 for (auto &p : thunkedSections) 2089 addressesChanged |= p.second->assignOffsets(); 2090 2091 // Merge all created synthetic ThunkSections back into OutputSection 2092 mergeThunks(outputSections); 2093 ++pass; 2094 return addressesChanged; 2095 } 2096 2097 // The following aid in the conversion of call x@GDPLT to call __tls_get_addr 2098 // hexagonNeedsTLSSymbol scans for relocations would require a call to 2099 // __tls_get_addr. 2100 // hexagonTLSSymbolUpdate rebinds the relocation to __tls_get_addr. 2101 bool elf::hexagonNeedsTLSSymbol(ArrayRef<OutputSection *> outputSections) { 2102 bool needTlsSymbol = false; 2103 forEachInputSectionDescription( 2104 outputSections, [&](OutputSection *os, InputSectionDescription *isd) { 2105 for (InputSection *isec : isd->sections) 2106 for (Relocation &rel : isec->relocations) 2107 if (rel.sym->type == llvm::ELF::STT_TLS && rel.expr == R_PLT_PC) { 2108 needTlsSymbol = true; 2109 return; 2110 } 2111 }); 2112 return needTlsSymbol; 2113 } 2114 2115 void elf::hexagonTLSSymbolUpdate(ArrayRef<OutputSection *> outputSections) { 2116 Symbol *sym = symtab->find("__tls_get_addr"); 2117 if (!sym) 2118 return; 2119 bool needEntry = true; 2120 forEachInputSectionDescription( 2121 outputSections, [&](OutputSection *os, InputSectionDescription *isd) { 2122 for (InputSection *isec : isd->sections) 2123 for (Relocation &rel : isec->relocations) 2124 if (rel.sym->type == llvm::ELF::STT_TLS && rel.expr == R_PLT_PC) { 2125 if (needEntry) { 2126 addPltEntry(in.plt, in.gotPlt, in.relaPlt, target->pltRel, 2127 *sym); 2128 needEntry = false; 2129 } 2130 rel.sym = sym; 2131 } 2132 }); 2133 } 2134 2135 template void elf::scanRelocations<ELF32LE>(InputSectionBase &); 2136 template void elf::scanRelocations<ELF32BE>(InputSectionBase &); 2137 template void elf::scanRelocations<ELF64LE>(InputSectionBase &); 2138 template void elf::scanRelocations<ELF64BE>(InputSectionBase &); 2139 template void elf::reportUndefinedSymbols<ELF32LE>(); 2140 template void elf::reportUndefinedSymbols<ELF32BE>(); 2141 template void elf::reportUndefinedSymbols<ELF64LE>(); 2142 template void elf::reportUndefinedSymbols<ELF64BE>(); 2143