1 //===-- LTOModule.cpp - LLVM Link Time Optimizer --------------------------===// 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 implements the Link Time Optimization library. This library is 10 // intended to be used by linker to optimize code at link time. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "llvm/LTO/legacy/LTOModule.h" 15 #include "llvm/Bitcode/BitcodeReader.h" 16 #include "llvm/CodeGen/TargetSubtargetInfo.h" 17 #include "llvm/IR/Constants.h" 18 #include "llvm/IR/LLVMContext.h" 19 #include "llvm/IR/Mangler.h" 20 #include "llvm/IR/Metadata.h" 21 #include "llvm/IR/Module.h" 22 #include "llvm/MC/MCExpr.h" 23 #include "llvm/MC/MCInst.h" 24 #include "llvm/MC/MCSection.h" 25 #include "llvm/MC/MCSymbol.h" 26 #include "llvm/MC/TargetRegistry.h" 27 #include "llvm/Object/IRObjectFile.h" 28 #include "llvm/Object/MachO.h" 29 #include "llvm/Object/ObjectFile.h" 30 #include "llvm/Support/FileSystem.h" 31 #include "llvm/Support/MemoryBuffer.h" 32 #include "llvm/Support/SourceMgr.h" 33 #include "llvm/Target/TargetLoweringObjectFile.h" 34 #include "llvm/TargetParser/Host.h" 35 #include "llvm/TargetParser/SubtargetFeature.h" 36 #include "llvm/TargetParser/Triple.h" 37 #include "llvm/Transforms/Utils/GlobalStatus.h" 38 #include <system_error> 39 using namespace llvm; 40 using namespace llvm::object; 41 42 LTOModule::LTOModule(std::unique_ptr<Module> M, MemoryBufferRef MBRef, 43 llvm::TargetMachine *TM) 44 : Mod(std::move(M)), MBRef(MBRef), _target(TM) { 45 assert(_target && "target machine is null"); 46 SymTab.addModule(Mod.get()); 47 } 48 49 LTOModule::~LTOModule() = default; 50 51 /// isBitcodeFile - Returns 'true' if the file (or memory contents) is LLVM 52 /// bitcode. 53 bool LTOModule::isBitcodeFile(const void *Mem, size_t Length) { 54 Expected<MemoryBufferRef> BCData = IRObjectFile::findBitcodeInMemBuffer( 55 MemoryBufferRef(StringRef((const char *)Mem, Length), "<mem>")); 56 return !errorToBool(BCData.takeError()); 57 } 58 59 bool LTOModule::isBitcodeFile(StringRef Path) { 60 ErrorOr<std::unique_ptr<MemoryBuffer>> BufferOrErr = 61 MemoryBuffer::getFile(Path); 62 if (!BufferOrErr) 63 return false; 64 65 Expected<MemoryBufferRef> BCData = IRObjectFile::findBitcodeInMemBuffer( 66 BufferOrErr.get()->getMemBufferRef()); 67 return !errorToBool(BCData.takeError()); 68 } 69 70 bool LTOModule::isThinLTO() { 71 Expected<BitcodeLTOInfo> Result = getBitcodeLTOInfo(MBRef); 72 if (!Result) { 73 logAllUnhandledErrors(Result.takeError(), errs()); 74 return false; 75 } 76 return Result->IsThinLTO; 77 } 78 79 bool LTOModule::isBitcodeForTarget(MemoryBuffer *Buffer, 80 StringRef TriplePrefix) { 81 Expected<MemoryBufferRef> BCOrErr = 82 IRObjectFile::findBitcodeInMemBuffer(Buffer->getMemBufferRef()); 83 if (errorToBool(BCOrErr.takeError())) 84 return false; 85 LLVMContext Context; 86 ErrorOr<std::string> TripleOrErr = 87 expectedToErrorOrAndEmitErrors(Context, getBitcodeTargetTriple(*BCOrErr)); 88 if (!TripleOrErr) 89 return false; 90 return StringRef(*TripleOrErr).starts_with(TriplePrefix); 91 } 92 93 std::string LTOModule::getProducerString(MemoryBuffer *Buffer) { 94 Expected<MemoryBufferRef> BCOrErr = 95 IRObjectFile::findBitcodeInMemBuffer(Buffer->getMemBufferRef()); 96 if (errorToBool(BCOrErr.takeError())) 97 return ""; 98 LLVMContext Context; 99 ErrorOr<std::string> ProducerOrErr = expectedToErrorOrAndEmitErrors( 100 Context, getBitcodeProducerString(*BCOrErr)); 101 if (!ProducerOrErr) 102 return ""; 103 return *ProducerOrErr; 104 } 105 106 ErrorOr<std::unique_ptr<LTOModule>> 107 LTOModule::createFromFile(LLVMContext &Context, StringRef path, 108 const TargetOptions &options) { 109 ErrorOr<std::unique_ptr<MemoryBuffer>> BufferOrErr = 110 MemoryBuffer::getFile(path); 111 if (std::error_code EC = BufferOrErr.getError()) { 112 Context.emitError(EC.message()); 113 return EC; 114 } 115 std::unique_ptr<MemoryBuffer> Buffer = std::move(BufferOrErr.get()); 116 return makeLTOModule(Buffer->getMemBufferRef(), options, Context, 117 /* ShouldBeLazy*/ false); 118 } 119 120 ErrorOr<std::unique_ptr<LTOModule>> 121 LTOModule::createFromOpenFile(LLVMContext &Context, int fd, StringRef path, 122 size_t size, const TargetOptions &options) { 123 return createFromOpenFileSlice(Context, fd, path, size, 0, options); 124 } 125 126 ErrorOr<std::unique_ptr<LTOModule>> 127 LTOModule::createFromOpenFileSlice(LLVMContext &Context, int fd, StringRef path, 128 size_t map_size, off_t offset, 129 const TargetOptions &options) { 130 ErrorOr<std::unique_ptr<MemoryBuffer>> BufferOrErr = 131 MemoryBuffer::getOpenFileSlice(sys::fs::convertFDToNativeFile(fd), path, 132 map_size, offset); 133 if (std::error_code EC = BufferOrErr.getError()) { 134 Context.emitError(EC.message()); 135 return EC; 136 } 137 std::unique_ptr<MemoryBuffer> Buffer = std::move(BufferOrErr.get()); 138 return makeLTOModule(Buffer->getMemBufferRef(), options, Context, 139 /* ShouldBeLazy */ false); 140 } 141 142 ErrorOr<std::unique_ptr<LTOModule>> 143 LTOModule::createFromBuffer(LLVMContext &Context, const void *mem, 144 size_t length, const TargetOptions &options, 145 StringRef path) { 146 StringRef Data((const char *)mem, length); 147 MemoryBufferRef Buffer(Data, path); 148 return makeLTOModule(Buffer, options, Context, /* ShouldBeLazy */ false); 149 } 150 151 ErrorOr<std::unique_ptr<LTOModule>> 152 LTOModule::createInLocalContext(std::unique_ptr<LLVMContext> Context, 153 const void *mem, size_t length, 154 const TargetOptions &options, StringRef path) { 155 StringRef Data((const char *)mem, length); 156 MemoryBufferRef Buffer(Data, path); 157 // If we own a context, we know this is being used only for symbol extraction, 158 // not linking. Be lazy in that case. 159 ErrorOr<std::unique_ptr<LTOModule>> Ret = 160 makeLTOModule(Buffer, options, *Context, /* ShouldBeLazy */ true); 161 if (Ret) 162 (*Ret)->OwnedContext = std::move(Context); 163 return Ret; 164 } 165 166 static ErrorOr<std::unique_ptr<Module>> 167 parseBitcodeFileImpl(MemoryBufferRef Buffer, LLVMContext &Context, 168 bool ShouldBeLazy) { 169 // Find the buffer. 170 Expected<MemoryBufferRef> MBOrErr = 171 IRObjectFile::findBitcodeInMemBuffer(Buffer); 172 if (Error E = MBOrErr.takeError()) { 173 std::error_code EC = errorToErrorCode(std::move(E)); 174 Context.emitError(EC.message()); 175 return EC; 176 } 177 178 if (!ShouldBeLazy) { 179 // Parse the full file. 180 return expectedToErrorOrAndEmitErrors(Context, 181 parseBitcodeFile(*MBOrErr, Context)); 182 } 183 184 // Parse lazily. 185 return expectedToErrorOrAndEmitErrors( 186 Context, 187 getLazyBitcodeModule(*MBOrErr, Context, true /*ShouldLazyLoadMetadata*/)); 188 } 189 190 ErrorOr<std::unique_ptr<LTOModule>> 191 LTOModule::makeLTOModule(MemoryBufferRef Buffer, const TargetOptions &options, 192 LLVMContext &Context, bool ShouldBeLazy) { 193 ErrorOr<std::unique_ptr<Module>> MOrErr = 194 parseBitcodeFileImpl(Buffer, Context, ShouldBeLazy); 195 if (std::error_code EC = MOrErr.getError()) 196 return EC; 197 std::unique_ptr<Module> &M = *MOrErr; 198 199 llvm::Triple Triple = M->getTargetTriple(); 200 if (Triple.empty()) 201 Triple = llvm::Triple(sys::getDefaultTargetTriple()); 202 203 // find machine architecture for this module 204 std::string errMsg; 205 const Target *march = TargetRegistry::lookupTarget(Triple, errMsg); 206 if (!march) 207 return make_error_code(object::object_error::arch_not_found); 208 209 // construct LTOModule, hand over ownership of module and target 210 SubtargetFeatures Features; 211 Features.getDefaultSubtargetFeatures(Triple); 212 std::string FeatureStr = Features.getString(); 213 // Set a default CPU for Darwin triples. 214 std::string CPU; 215 if (Triple.isOSDarwin()) { 216 if (Triple.getArch() == llvm::Triple::x86_64) 217 CPU = "core2"; 218 else if (Triple.getArch() == llvm::Triple::x86) 219 CPU = "yonah"; 220 else if (Triple.isArm64e()) 221 CPU = "apple-a12"; 222 else if (Triple.getArch() == llvm::Triple::aarch64 || 223 Triple.getArch() == llvm::Triple::aarch64_32) 224 CPU = "cyclone"; 225 } 226 227 TargetMachine *target = march->createTargetMachine(Triple, CPU, FeatureStr, 228 options, std::nullopt); 229 230 std::unique_ptr<LTOModule> Ret(new LTOModule(std::move(M), Buffer, target)); 231 Ret->parseSymbols(); 232 Ret->parseMetadata(); 233 234 return std::move(Ret); 235 } 236 237 /// Create a MemoryBuffer from a memory range with an optional name. 238 std::unique_ptr<MemoryBuffer> 239 LTOModule::makeBuffer(const void *mem, size_t length, StringRef name) { 240 const char *startPtr = (const char*)mem; 241 return MemoryBuffer::getMemBuffer(StringRef(startPtr, length), name, false); 242 } 243 244 /// objcClassNameFromExpression - Get string that the data pointer points to. 245 bool 246 LTOModule::objcClassNameFromExpression(const Constant *c, std::string &name) { 247 if (const ConstantExpr *ce = dyn_cast<ConstantExpr>(c)) { 248 Constant *op = ce->getOperand(0); 249 if (GlobalVariable *gvn = dyn_cast<GlobalVariable>(op)) { 250 Constant *cn = gvn->getInitializer(); 251 if (ConstantDataArray *ca = dyn_cast<ConstantDataArray>(cn)) { 252 if (ca->isCString()) { 253 name = (".objc_class_name_" + ca->getAsCString()).str(); 254 return true; 255 } 256 } 257 } 258 } 259 return false; 260 } 261 262 /// addObjCClass - Parse i386/ppc ObjC class data structure. 263 void LTOModule::addObjCClass(const GlobalVariable *clgv) { 264 const ConstantStruct *c = dyn_cast<ConstantStruct>(clgv->getInitializer()); 265 if (!c) return; 266 267 // second slot in __OBJC,__class is pointer to superclass name 268 std::string superclassName; 269 if (objcClassNameFromExpression(c->getOperand(1), superclassName)) { 270 auto IterBool = _undefines.try_emplace(superclassName); 271 if (IterBool.second) { 272 NameAndAttributes &info = IterBool.first->second; 273 info.name = IterBool.first->first(); 274 info.attributes = LTO_SYMBOL_DEFINITION_UNDEFINED; 275 info.isFunction = false; 276 info.symbol = clgv; 277 } 278 } 279 280 // third slot in __OBJC,__class is pointer to class name 281 std::string className; 282 if (objcClassNameFromExpression(c->getOperand(2), className)) { 283 auto Iter = _defines.insert(className).first; 284 285 NameAndAttributes info; 286 info.name = Iter->first(); 287 info.attributes = LTO_SYMBOL_PERMISSIONS_DATA | 288 LTO_SYMBOL_DEFINITION_REGULAR | LTO_SYMBOL_SCOPE_DEFAULT; 289 info.isFunction = false; 290 info.symbol = clgv; 291 _symbols.push_back(info); 292 } 293 } 294 295 /// addObjCCategory - Parse i386/ppc ObjC category data structure. 296 void LTOModule::addObjCCategory(const GlobalVariable *clgv) { 297 const ConstantStruct *c = dyn_cast<ConstantStruct>(clgv->getInitializer()); 298 if (!c) return; 299 300 // second slot in __OBJC,__category is pointer to target class name 301 std::string targetclassName; 302 if (!objcClassNameFromExpression(c->getOperand(1), targetclassName)) 303 return; 304 305 auto IterBool = _undefines.try_emplace(targetclassName); 306 307 if (!IterBool.second) 308 return; 309 310 NameAndAttributes &info = IterBool.first->second; 311 info.name = IterBool.first->first(); 312 info.attributes = LTO_SYMBOL_DEFINITION_UNDEFINED; 313 info.isFunction = false; 314 info.symbol = clgv; 315 } 316 317 /// addObjCClassRef - Parse i386/ppc ObjC class list data structure. 318 void LTOModule::addObjCClassRef(const GlobalVariable *clgv) { 319 std::string targetclassName; 320 if (!objcClassNameFromExpression(clgv->getInitializer(), targetclassName)) 321 return; 322 323 auto IterBool = _undefines.try_emplace(targetclassName); 324 325 if (!IterBool.second) 326 return; 327 328 NameAndAttributes &info = IterBool.first->second; 329 info.name = IterBool.first->first(); 330 info.attributes = LTO_SYMBOL_DEFINITION_UNDEFINED; 331 info.isFunction = false; 332 info.symbol = clgv; 333 } 334 335 void LTOModule::addDefinedDataSymbol(ModuleSymbolTable::Symbol Sym) { 336 SmallString<64> Buffer; 337 { 338 raw_svector_ostream OS(Buffer); 339 SymTab.printSymbolName(OS, Sym); 340 Buffer.c_str(); 341 } 342 343 const GlobalValue *V = cast<GlobalValue *>(Sym); 344 addDefinedDataSymbol(Buffer, V); 345 } 346 347 void LTOModule::addDefinedDataSymbol(StringRef Name, const GlobalValue *v) { 348 // Add to list of defined symbols. 349 addDefinedSymbol(Name, v, false); 350 351 if (!v->hasSection() /* || !isTargetDarwin */) 352 return; 353 354 // Special case i386/ppc ObjC data structures in magic sections: 355 // The issue is that the old ObjC object format did some strange 356 // contortions to avoid real linker symbols. For instance, the 357 // ObjC class data structure is allocated statically in the executable 358 // that defines that class. That data structures contains a pointer to 359 // its superclass. But instead of just initializing that part of the 360 // struct to the address of its superclass, and letting the static and 361 // dynamic linkers do the rest, the runtime works by having that field 362 // instead point to a C-string that is the name of the superclass. 363 // At runtime the objc initialization updates that pointer and sets 364 // it to point to the actual super class. As far as the linker 365 // knows it is just a pointer to a string. But then someone wanted the 366 // linker to issue errors at build time if the superclass was not found. 367 // So they figured out a way in mach-o object format to use an absolute 368 // symbols (.objc_class_name_Foo = 0) and a floating reference 369 // (.reference .objc_class_name_Bar) to cause the linker into erroring when 370 // a class was missing. 371 // The following synthesizes the implicit .objc_* symbols for the linker 372 // from the ObjC data structures generated by the front end. 373 374 // special case if this data blob is an ObjC class definition 375 if (const GlobalVariable *GV = dyn_cast<GlobalVariable>(v)) { 376 StringRef Section = GV->getSection(); 377 if (Section.starts_with("__OBJC,__class,")) { 378 addObjCClass(GV); 379 } 380 381 // special case if this data blob is an ObjC category definition 382 else if (Section.starts_with("__OBJC,__category,")) { 383 addObjCCategory(GV); 384 } 385 386 // special case if this data blob is the list of referenced classes 387 else if (Section.starts_with("__OBJC,__cls_refs,")) { 388 addObjCClassRef(GV); 389 } 390 } 391 } 392 393 void LTOModule::addDefinedFunctionSymbol(ModuleSymbolTable::Symbol Sym) { 394 SmallString<64> Buffer; 395 { 396 raw_svector_ostream OS(Buffer); 397 SymTab.printSymbolName(OS, Sym); 398 Buffer.c_str(); 399 } 400 401 auto *GV = cast<GlobalValue *>(Sym); 402 assert((isa<Function>(GV) || 403 (isa<GlobalAlias>(GV) && 404 isa<Function>(cast<GlobalAlias>(GV)->getAliasee()))) && 405 "Not function or function alias"); 406 407 addDefinedFunctionSymbol(Buffer, GV); 408 } 409 410 void LTOModule::addDefinedFunctionSymbol(StringRef Name, const GlobalValue *F) { 411 // add to list of defined symbols 412 addDefinedSymbol(Name, F, true); 413 } 414 415 void LTOModule::addDefinedSymbol(StringRef Name, const GlobalValue *def, 416 bool isFunction) { 417 uint32_t attr = 0; 418 if (auto *gv = dyn_cast<GlobalVariable>(def)) 419 attr = Log2(gv->getAlign().valueOrOne()); 420 else if (auto *f = dyn_cast<Function>(def)) 421 attr = Log2(f->getAlign().valueOrOne()); 422 423 // set permissions part 424 if (isFunction) { 425 attr |= LTO_SYMBOL_PERMISSIONS_CODE; 426 } else { 427 const GlobalVariable *gv = dyn_cast<GlobalVariable>(def); 428 if (gv && gv->isConstant()) 429 attr |= LTO_SYMBOL_PERMISSIONS_RODATA; 430 else 431 attr |= LTO_SYMBOL_PERMISSIONS_DATA; 432 } 433 434 // set definition part 435 if (def->hasWeakLinkage() || def->hasLinkOnceLinkage()) 436 attr |= LTO_SYMBOL_DEFINITION_WEAK; 437 else if (def->hasCommonLinkage()) 438 attr |= LTO_SYMBOL_DEFINITION_TENTATIVE; 439 else 440 attr |= LTO_SYMBOL_DEFINITION_REGULAR; 441 442 // set scope part 443 if (def->hasLocalLinkage()) 444 // Ignore visibility if linkage is local. 445 attr |= LTO_SYMBOL_SCOPE_INTERNAL; 446 else if (def->hasHiddenVisibility()) 447 attr |= LTO_SYMBOL_SCOPE_HIDDEN; 448 else if (def->hasProtectedVisibility()) 449 attr |= LTO_SYMBOL_SCOPE_PROTECTED; 450 else if (def->canBeOmittedFromSymbolTable()) 451 attr |= LTO_SYMBOL_SCOPE_DEFAULT_CAN_BE_HIDDEN; 452 else 453 attr |= LTO_SYMBOL_SCOPE_DEFAULT; 454 455 if (def->hasComdat()) 456 attr |= LTO_SYMBOL_COMDAT; 457 458 if (isa<GlobalAlias>(def)) 459 attr |= LTO_SYMBOL_ALIAS; 460 461 auto Iter = _defines.insert(Name).first; 462 463 // fill information structure 464 NameAndAttributes info; 465 StringRef NameRef = Iter->first(); 466 info.name = NameRef; 467 assert(NameRef.data()[NameRef.size()] == '\0'); 468 info.attributes = attr; 469 info.isFunction = isFunction; 470 info.symbol = def; 471 472 // add to table of symbols 473 _symbols.push_back(info); 474 } 475 476 /// addAsmGlobalSymbol - Add a global symbol from module-level ASM to the 477 /// defined list. 478 void LTOModule::addAsmGlobalSymbol(StringRef name, 479 lto_symbol_attributes scope) { 480 auto IterBool = _defines.insert(name); 481 482 // only add new define if not already defined 483 if (!IterBool.second) 484 return; 485 486 NameAndAttributes &info = _undefines[IterBool.first->first()]; 487 488 if (info.symbol == nullptr) { 489 // FIXME: This is trying to take care of module ASM like this: 490 // 491 // module asm ".zerofill __FOO, __foo, _bar_baz_qux, 0" 492 // 493 // but is gross and its mother dresses it funny. Have the ASM parser give us 494 // more details for this type of situation so that we're not guessing so 495 // much. 496 497 // fill information structure 498 info.name = IterBool.first->first(); 499 info.attributes = 500 LTO_SYMBOL_PERMISSIONS_DATA | LTO_SYMBOL_DEFINITION_REGULAR | scope; 501 info.isFunction = false; 502 info.symbol = nullptr; 503 504 // add to table of symbols 505 _symbols.push_back(info); 506 return; 507 } 508 509 if (info.isFunction) 510 addDefinedFunctionSymbol(info.name, cast<Function>(info.symbol)); 511 else 512 addDefinedDataSymbol(info.name, info.symbol); 513 514 _symbols.back().attributes &= ~LTO_SYMBOL_SCOPE_MASK; 515 _symbols.back().attributes |= scope; 516 } 517 518 /// addAsmGlobalSymbolUndef - Add a global symbol from module-level ASM to the 519 /// undefined list. 520 void LTOModule::addAsmGlobalSymbolUndef(StringRef name) { 521 auto IterBool = _undefines.try_emplace(name); 522 523 _asm_undefines.push_back(IterBool.first->first()); 524 525 // we already have the symbol 526 if (!IterBool.second) 527 return; 528 529 uint32_t attr = LTO_SYMBOL_DEFINITION_UNDEFINED; 530 attr |= LTO_SYMBOL_SCOPE_DEFAULT; 531 NameAndAttributes &info = IterBool.first->second; 532 info.name = IterBool.first->first(); 533 info.attributes = attr; 534 info.isFunction = false; 535 info.symbol = nullptr; 536 } 537 538 /// Add a symbol which isn't defined just yet to a list to be resolved later. 539 void LTOModule::addPotentialUndefinedSymbol(ModuleSymbolTable::Symbol Sym, 540 bool isFunc) { 541 SmallString<64> name; 542 { 543 raw_svector_ostream OS(name); 544 SymTab.printSymbolName(OS, Sym); 545 name.c_str(); 546 } 547 548 auto IterBool = _undefines.try_emplace(name.str()); 549 550 // we already have the symbol 551 if (!IterBool.second) 552 return; 553 554 NameAndAttributes &info = IterBool.first->second; 555 556 info.name = IterBool.first->first(); 557 558 const GlobalValue *decl = dyn_cast_if_present<GlobalValue *>(Sym); 559 560 if (decl->hasExternalWeakLinkage()) 561 info.attributes = LTO_SYMBOL_DEFINITION_WEAKUNDEF; 562 else 563 info.attributes = LTO_SYMBOL_DEFINITION_UNDEFINED; 564 565 info.isFunction = isFunc; 566 info.symbol = decl; 567 } 568 569 void LTOModule::parseSymbols() { 570 for (auto Sym : SymTab.symbols()) { 571 auto *GV = dyn_cast_if_present<GlobalValue *>(Sym); 572 uint32_t Flags = SymTab.getSymbolFlags(Sym); 573 if (Flags & object::BasicSymbolRef::SF_FormatSpecific) 574 continue; 575 576 bool IsUndefined = Flags & object::BasicSymbolRef::SF_Undefined; 577 578 if (!GV) { 579 SmallString<64> Buffer; 580 { 581 raw_svector_ostream OS(Buffer); 582 SymTab.printSymbolName(OS, Sym); 583 Buffer.c_str(); 584 } 585 StringRef Name = Buffer; 586 587 if (IsUndefined) 588 addAsmGlobalSymbolUndef(Name); 589 else if (Flags & object::BasicSymbolRef::SF_Global) 590 addAsmGlobalSymbol(Name, LTO_SYMBOL_SCOPE_DEFAULT); 591 else 592 addAsmGlobalSymbol(Name, LTO_SYMBOL_SCOPE_INTERNAL); 593 continue; 594 } 595 596 auto *F = dyn_cast<Function>(GV); 597 if (IsUndefined) { 598 addPotentialUndefinedSymbol(Sym, F != nullptr); 599 continue; 600 } 601 602 if (F) { 603 addDefinedFunctionSymbol(Sym); 604 continue; 605 } 606 607 if (isa<GlobalVariable>(GV)) { 608 addDefinedDataSymbol(Sym); 609 continue; 610 } 611 612 assert(isa<GlobalAlias>(GV)); 613 614 if (isa<Function>(cast<GlobalAlias>(GV)->getAliasee())) 615 addDefinedFunctionSymbol(Sym); 616 else 617 addDefinedDataSymbol(Sym); 618 } 619 620 // make symbols for all undefines 621 for (StringMap<NameAndAttributes>::iterator u =_undefines.begin(), 622 e = _undefines.end(); u != e; ++u) { 623 // If this symbol also has a definition, then don't make an undefine because 624 // it is a tentative definition. 625 if (_defines.count(u->getKey())) continue; 626 NameAndAttributes info = u->getValue(); 627 _symbols.push_back(info); 628 } 629 } 630 631 /// parseMetadata - Parse metadata from the module 632 void LTOModule::parseMetadata() { 633 raw_string_ostream OS(LinkerOpts); 634 635 // Linker Options 636 if (NamedMDNode *LinkerOptions = 637 getModule().getNamedMetadata("llvm.linker.options")) { 638 for (unsigned i = 0, e = LinkerOptions->getNumOperands(); i != e; ++i) { 639 MDNode *MDOptions = LinkerOptions->getOperand(i); 640 for (unsigned ii = 0, ie = MDOptions->getNumOperands(); ii != ie; ++ii) { 641 MDString *MDOption = cast<MDString>(MDOptions->getOperand(ii)); 642 OS << " " << MDOption->getString(); 643 } 644 } 645 } 646 647 // Globals - we only need to do this for COFF. 648 const Triple TT(_target->getTargetTriple()); 649 if (!TT.isOSBinFormatCOFF()) 650 return; 651 Mangler M; 652 for (const NameAndAttributes &Sym : _symbols) { 653 if (!Sym.symbol) 654 continue; 655 emitLinkerFlagsForGlobalCOFF(OS, Sym.symbol, TT, M); 656 } 657 } 658 659 lto::InputFile *LTOModule::createInputFile(const void *buffer, 660 size_t buffer_size, const char *path, 661 std::string &outErr) { 662 StringRef Data((const char *)buffer, buffer_size); 663 MemoryBufferRef BufferRef(Data, path); 664 665 Expected<std::unique_ptr<lto::InputFile>> ObjOrErr = 666 lto::InputFile::create(BufferRef); 667 668 if (ObjOrErr) 669 return ObjOrErr->release(); 670 671 outErr = std::string(path) + 672 ": Could not read LTO input file: " + toString(ObjOrErr.takeError()); 673 return nullptr; 674 } 675 676 size_t LTOModule::getDependentLibraryCount(lto::InputFile *input) { 677 return input->getDependentLibraries().size(); 678 } 679 680 const char *LTOModule::getDependentLibrary(lto::InputFile *input, size_t index, 681 size_t *size) { 682 StringRef S = input->getDependentLibraries()[index]; 683 *size = S.size(); 684 return S.data(); 685 } 686 687 Expected<uint32_t> LTOModule::getMachOCPUType() const { 688 return MachO::getCPUType(Mod->getTargetTriple()); 689 } 690 691 Expected<uint32_t> LTOModule::getMachOCPUSubType() const { 692 return MachO::getCPUSubType(Mod->getTargetTriple()); 693 } 694 695 bool LTOModule::hasCtorDtor() const { 696 for (auto Sym : SymTab.symbols()) { 697 if (auto *GV = dyn_cast_if_present<GlobalValue *>(Sym)) { 698 StringRef Name = GV->getName(); 699 if (Name.consume_front("llvm.global_")) { 700 if (Name == "ctors" || Name == "dtors") 701 return true; 702 } 703 } 704 } 705 return false; 706 } 707