1 //===- llvm/CodeGen/TargetLoweringObjectFileImpl.cpp - Object File Info ---===// 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 classes used to handle lowerings specific to common 10 // object file formats. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "llvm/CodeGen/TargetLoweringObjectFileImpl.h" 15 #include "llvm/ADT/SmallString.h" 16 #include "llvm/ADT/SmallVector.h" 17 #include "llvm/ADT/StringExtras.h" 18 #include "llvm/ADT/StringRef.h" 19 #include "llvm/ADT/Triple.h" 20 #include "llvm/BinaryFormat/COFF.h" 21 #include "llvm/BinaryFormat/Dwarf.h" 22 #include "llvm/BinaryFormat/ELF.h" 23 #include "llvm/BinaryFormat/MachO.h" 24 #include "llvm/BinaryFormat/Wasm.h" 25 #include "llvm/CodeGen/BasicBlockSectionUtils.h" 26 #include "llvm/CodeGen/MachineBasicBlock.h" 27 #include "llvm/CodeGen/MachineFunction.h" 28 #include "llvm/CodeGen/MachineModuleInfo.h" 29 #include "llvm/CodeGen/MachineModuleInfoImpls.h" 30 #include "llvm/IR/Comdat.h" 31 #include "llvm/IR/Constants.h" 32 #include "llvm/IR/DataLayout.h" 33 #include "llvm/IR/DerivedTypes.h" 34 #include "llvm/IR/DiagnosticInfo.h" 35 #include "llvm/IR/DiagnosticPrinter.h" 36 #include "llvm/IR/Function.h" 37 #include "llvm/IR/GlobalAlias.h" 38 #include "llvm/IR/GlobalObject.h" 39 #include "llvm/IR/GlobalValue.h" 40 #include "llvm/IR/GlobalVariable.h" 41 #include "llvm/IR/Mangler.h" 42 #include "llvm/IR/Metadata.h" 43 #include "llvm/IR/Module.h" 44 #include "llvm/IR/PseudoProbe.h" 45 #include "llvm/IR/Type.h" 46 #include "llvm/MC/MCAsmInfo.h" 47 #include "llvm/MC/MCContext.h" 48 #include "llvm/MC/MCExpr.h" 49 #include "llvm/MC/MCSectionCOFF.h" 50 #include "llvm/MC/MCSectionELF.h" 51 #include "llvm/MC/MCSectionGOFF.h" 52 #include "llvm/MC/MCSectionMachO.h" 53 #include "llvm/MC/MCSectionWasm.h" 54 #include "llvm/MC/MCSectionXCOFF.h" 55 #include "llvm/MC/MCStreamer.h" 56 #include "llvm/MC/MCSymbol.h" 57 #include "llvm/MC/MCSymbolELF.h" 58 #include "llvm/MC/MCValue.h" 59 #include "llvm/MC/SectionKind.h" 60 #include "llvm/ProfileData/InstrProf.h" 61 #include "llvm/Support/Base64.h" 62 #include "llvm/Support/Casting.h" 63 #include "llvm/Support/CodeGen.h" 64 #include "llvm/Support/ErrorHandling.h" 65 #include "llvm/Support/Format.h" 66 #include "llvm/Support/raw_ostream.h" 67 #include "llvm/Target/TargetMachine.h" 68 #include <cassert> 69 #include <string> 70 71 using namespace llvm; 72 using namespace dwarf; 73 74 static void GetObjCImageInfo(Module &M, unsigned &Version, unsigned &Flags, 75 StringRef &Section) { 76 SmallVector<Module::ModuleFlagEntry, 8> ModuleFlags; 77 M.getModuleFlagsMetadata(ModuleFlags); 78 79 for (const auto &MFE: ModuleFlags) { 80 // Ignore flags with 'Require' behaviour. 81 if (MFE.Behavior == Module::Require) 82 continue; 83 84 StringRef Key = MFE.Key->getString(); 85 if (Key == "Objective-C Image Info Version") { 86 Version = mdconst::extract<ConstantInt>(MFE.Val)->getZExtValue(); 87 } else if (Key == "Objective-C Garbage Collection" || 88 Key == "Objective-C GC Only" || 89 Key == "Objective-C Is Simulated" || 90 Key == "Objective-C Class Properties" || 91 Key == "Objective-C Image Swift Version") { 92 Flags |= mdconst::extract<ConstantInt>(MFE.Val)->getZExtValue(); 93 } else if (Key == "Objective-C Image Info Section") { 94 Section = cast<MDString>(MFE.Val)->getString(); 95 } 96 // Backend generates L_OBJC_IMAGE_INFO from Swift ABI version + major + minor + 97 // "Objective-C Garbage Collection". 98 else if (Key == "Swift ABI Version") { 99 Flags |= (mdconst::extract<ConstantInt>(MFE.Val)->getZExtValue()) << 8; 100 } else if (Key == "Swift Major Version") { 101 Flags |= (mdconst::extract<ConstantInt>(MFE.Val)->getZExtValue()) << 24; 102 } else if (Key == "Swift Minor Version") { 103 Flags |= (mdconst::extract<ConstantInt>(MFE.Val)->getZExtValue()) << 16; 104 } 105 } 106 } 107 108 //===----------------------------------------------------------------------===// 109 // ELF 110 //===----------------------------------------------------------------------===// 111 112 TargetLoweringObjectFileELF::TargetLoweringObjectFileELF() { 113 SupportDSOLocalEquivalentLowering = true; 114 } 115 116 void TargetLoweringObjectFileELF::Initialize(MCContext &Ctx, 117 const TargetMachine &TgtM) { 118 TargetLoweringObjectFile::Initialize(Ctx, TgtM); 119 120 CodeModel::Model CM = TgtM.getCodeModel(); 121 InitializeELF(TgtM.Options.UseInitArray); 122 123 switch (TgtM.getTargetTriple().getArch()) { 124 case Triple::arm: 125 case Triple::armeb: 126 case Triple::thumb: 127 case Triple::thumbeb: 128 if (Ctx.getAsmInfo()->getExceptionHandlingType() == ExceptionHandling::ARM) 129 break; 130 // Fallthrough if not using EHABI 131 [[fallthrough]]; 132 case Triple::ppc: 133 case Triple::ppcle: 134 case Triple::x86: 135 PersonalityEncoding = isPositionIndependent() 136 ? dwarf::DW_EH_PE_indirect | 137 dwarf::DW_EH_PE_pcrel | 138 dwarf::DW_EH_PE_sdata4 139 : dwarf::DW_EH_PE_absptr; 140 LSDAEncoding = isPositionIndependent() 141 ? dwarf::DW_EH_PE_pcrel | dwarf::DW_EH_PE_sdata4 142 : dwarf::DW_EH_PE_absptr; 143 TTypeEncoding = isPositionIndependent() 144 ? dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel | 145 dwarf::DW_EH_PE_sdata4 146 : dwarf::DW_EH_PE_absptr; 147 break; 148 case Triple::x86_64: 149 if (isPositionIndependent()) { 150 PersonalityEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel | 151 ((CM == CodeModel::Small || CM == CodeModel::Medium) 152 ? dwarf::DW_EH_PE_sdata4 : dwarf::DW_EH_PE_sdata8); 153 LSDAEncoding = dwarf::DW_EH_PE_pcrel | 154 (CM == CodeModel::Small 155 ? dwarf::DW_EH_PE_sdata4 : dwarf::DW_EH_PE_sdata8); 156 TTypeEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel | 157 ((CM == CodeModel::Small || CM == CodeModel::Medium) 158 ? dwarf::DW_EH_PE_sdata4 : dwarf::DW_EH_PE_sdata8); 159 } else { 160 PersonalityEncoding = 161 (CM == CodeModel::Small || CM == CodeModel::Medium) 162 ? dwarf::DW_EH_PE_udata4 : dwarf::DW_EH_PE_absptr; 163 LSDAEncoding = (CM == CodeModel::Small) 164 ? dwarf::DW_EH_PE_udata4 : dwarf::DW_EH_PE_absptr; 165 TTypeEncoding = (CM == CodeModel::Small) 166 ? dwarf::DW_EH_PE_udata4 : dwarf::DW_EH_PE_absptr; 167 } 168 break; 169 case Triple::hexagon: 170 PersonalityEncoding = dwarf::DW_EH_PE_absptr; 171 LSDAEncoding = dwarf::DW_EH_PE_absptr; 172 TTypeEncoding = dwarf::DW_EH_PE_absptr; 173 if (isPositionIndependent()) { 174 PersonalityEncoding |= dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel; 175 LSDAEncoding |= dwarf::DW_EH_PE_pcrel; 176 TTypeEncoding |= dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel; 177 } 178 break; 179 case Triple::aarch64: 180 case Triple::aarch64_be: 181 case Triple::aarch64_32: 182 // The small model guarantees static code/data size < 4GB, but not where it 183 // will be in memory. Most of these could end up >2GB away so even a signed 184 // pc-relative 32-bit address is insufficient, theoretically. 185 if (isPositionIndependent()) { 186 // ILP32 uses sdata4 instead of sdata8 187 if (TgtM.getTargetTriple().getEnvironment() == Triple::GNUILP32) { 188 PersonalityEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel | 189 dwarf::DW_EH_PE_sdata4; 190 LSDAEncoding = dwarf::DW_EH_PE_pcrel | dwarf::DW_EH_PE_sdata4; 191 TTypeEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel | 192 dwarf::DW_EH_PE_sdata4; 193 } else { 194 PersonalityEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel | 195 dwarf::DW_EH_PE_sdata8; 196 LSDAEncoding = dwarf::DW_EH_PE_pcrel | dwarf::DW_EH_PE_sdata8; 197 TTypeEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel | 198 dwarf::DW_EH_PE_sdata8; 199 } 200 } else { 201 PersonalityEncoding = dwarf::DW_EH_PE_absptr; 202 LSDAEncoding = dwarf::DW_EH_PE_absptr; 203 TTypeEncoding = dwarf::DW_EH_PE_absptr; 204 } 205 break; 206 case Triple::lanai: 207 LSDAEncoding = dwarf::DW_EH_PE_absptr; 208 PersonalityEncoding = dwarf::DW_EH_PE_absptr; 209 TTypeEncoding = dwarf::DW_EH_PE_absptr; 210 break; 211 case Triple::mips: 212 case Triple::mipsel: 213 case Triple::mips64: 214 case Triple::mips64el: 215 // MIPS uses indirect pointer to refer personality functions and types, so 216 // that the eh_frame section can be read-only. DW.ref.personality will be 217 // generated for relocation. 218 PersonalityEncoding = dwarf::DW_EH_PE_indirect; 219 // FIXME: The N64 ABI probably ought to use DW_EH_PE_sdata8 but we can't 220 // identify N64 from just a triple. 221 TTypeEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel | 222 dwarf::DW_EH_PE_sdata4; 223 // We don't support PC-relative LSDA references in GAS so we use the default 224 // DW_EH_PE_absptr for those. 225 226 // FreeBSD must be explicit about the data size and using pcrel since it's 227 // assembler/linker won't do the automatic conversion that the Linux tools 228 // do. 229 if (TgtM.getTargetTriple().isOSFreeBSD()) { 230 PersonalityEncoding |= dwarf::DW_EH_PE_pcrel | dwarf::DW_EH_PE_sdata4; 231 LSDAEncoding = dwarf::DW_EH_PE_pcrel | dwarf::DW_EH_PE_sdata4; 232 } 233 break; 234 case Triple::ppc64: 235 case Triple::ppc64le: 236 PersonalityEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel | 237 dwarf::DW_EH_PE_udata8; 238 LSDAEncoding = dwarf::DW_EH_PE_pcrel | dwarf::DW_EH_PE_udata8; 239 TTypeEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel | 240 dwarf::DW_EH_PE_udata8; 241 break; 242 case Triple::sparcel: 243 case Triple::sparc: 244 if (isPositionIndependent()) { 245 LSDAEncoding = dwarf::DW_EH_PE_pcrel | dwarf::DW_EH_PE_sdata4; 246 PersonalityEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel | 247 dwarf::DW_EH_PE_sdata4; 248 TTypeEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel | 249 dwarf::DW_EH_PE_sdata4; 250 } else { 251 LSDAEncoding = dwarf::DW_EH_PE_absptr; 252 PersonalityEncoding = dwarf::DW_EH_PE_absptr; 253 TTypeEncoding = dwarf::DW_EH_PE_absptr; 254 } 255 CallSiteEncoding = dwarf::DW_EH_PE_udata4; 256 break; 257 case Triple::riscv32: 258 case Triple::riscv64: 259 LSDAEncoding = dwarf::DW_EH_PE_pcrel | dwarf::DW_EH_PE_sdata4; 260 PersonalityEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel | 261 dwarf::DW_EH_PE_sdata4; 262 TTypeEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel | 263 dwarf::DW_EH_PE_sdata4; 264 CallSiteEncoding = dwarf::DW_EH_PE_udata4; 265 break; 266 case Triple::sparcv9: 267 LSDAEncoding = dwarf::DW_EH_PE_pcrel | dwarf::DW_EH_PE_sdata4; 268 if (isPositionIndependent()) { 269 PersonalityEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel | 270 dwarf::DW_EH_PE_sdata4; 271 TTypeEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel | 272 dwarf::DW_EH_PE_sdata4; 273 } else { 274 PersonalityEncoding = dwarf::DW_EH_PE_absptr; 275 TTypeEncoding = dwarf::DW_EH_PE_absptr; 276 } 277 break; 278 case Triple::systemz: 279 // All currently-defined code models guarantee that 4-byte PC-relative 280 // values will be in range. 281 if (isPositionIndependent()) { 282 PersonalityEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel | 283 dwarf::DW_EH_PE_sdata4; 284 LSDAEncoding = dwarf::DW_EH_PE_pcrel | dwarf::DW_EH_PE_sdata4; 285 TTypeEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel | 286 dwarf::DW_EH_PE_sdata4; 287 } else { 288 PersonalityEncoding = dwarf::DW_EH_PE_absptr; 289 LSDAEncoding = dwarf::DW_EH_PE_absptr; 290 TTypeEncoding = dwarf::DW_EH_PE_absptr; 291 } 292 break; 293 case Triple::loongarch32: 294 case Triple::loongarch64: 295 LSDAEncoding = dwarf::DW_EH_PE_pcrel | dwarf::DW_EH_PE_sdata4; 296 PersonalityEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel | 297 dwarf::DW_EH_PE_sdata4; 298 TTypeEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel | 299 dwarf::DW_EH_PE_sdata4; 300 break; 301 default: 302 break; 303 } 304 } 305 306 void TargetLoweringObjectFileELF::getModuleMetadata(Module &M) { 307 SmallVector<GlobalValue *, 4> Vec; 308 collectUsedGlobalVariables(M, Vec, false); 309 for (GlobalValue *GV : Vec) 310 if (auto *GO = dyn_cast<GlobalObject>(GV)) 311 Used.insert(GO); 312 } 313 314 void TargetLoweringObjectFileELF::emitModuleMetadata(MCStreamer &Streamer, 315 Module &M) const { 316 auto &C = getContext(); 317 318 if (NamedMDNode *LinkerOptions = M.getNamedMetadata("llvm.linker.options")) { 319 auto *S = C.getELFSection(".linker-options", ELF::SHT_LLVM_LINKER_OPTIONS, 320 ELF::SHF_EXCLUDE); 321 322 Streamer.switchSection(S); 323 324 for (const auto *Operand : LinkerOptions->operands()) { 325 if (cast<MDNode>(Operand)->getNumOperands() != 2) 326 report_fatal_error("invalid llvm.linker.options"); 327 for (const auto &Option : cast<MDNode>(Operand)->operands()) { 328 Streamer.emitBytes(cast<MDString>(Option)->getString()); 329 Streamer.emitInt8(0); 330 } 331 } 332 } 333 334 if (NamedMDNode *DependentLibraries = M.getNamedMetadata("llvm.dependent-libraries")) { 335 auto *S = C.getELFSection(".deplibs", ELF::SHT_LLVM_DEPENDENT_LIBRARIES, 336 ELF::SHF_MERGE | ELF::SHF_STRINGS, 1); 337 338 Streamer.switchSection(S); 339 340 for (const auto *Operand : DependentLibraries->operands()) { 341 Streamer.emitBytes( 342 cast<MDString>(cast<MDNode>(Operand)->getOperand(0))->getString()); 343 Streamer.emitInt8(0); 344 } 345 } 346 347 if (NamedMDNode *FuncInfo = M.getNamedMetadata(PseudoProbeDescMetadataName)) { 348 // Emit a descriptor for every function including functions that have an 349 // available external linkage. We may not want this for imported functions 350 // that has code in another thinLTO module but we don't have a good way to 351 // tell them apart from inline functions defined in header files. Therefore 352 // we put each descriptor in a separate comdat section and rely on the 353 // linker to deduplicate. 354 for (const auto *Operand : FuncInfo->operands()) { 355 const auto *MD = cast<MDNode>(Operand); 356 auto *GUID = mdconst::dyn_extract<ConstantInt>(MD->getOperand(0)); 357 auto *Hash = mdconst::dyn_extract<ConstantInt>(MD->getOperand(1)); 358 auto *Name = cast<MDString>(MD->getOperand(2)); 359 auto *S = C.getObjectFileInfo()->getPseudoProbeDescSection( 360 TM->getFunctionSections() ? Name->getString() : StringRef()); 361 362 Streamer.switchSection(S); 363 Streamer.emitInt64(GUID->getZExtValue()); 364 Streamer.emitInt64(Hash->getZExtValue()); 365 Streamer.emitULEB128IntValue(Name->getString().size()); 366 Streamer.emitBytes(Name->getString()); 367 } 368 } 369 370 if (NamedMDNode *LLVMStats = M.getNamedMetadata("llvm.stats")) { 371 // Emit the metadata for llvm statistics into .llvm_stats section, which is 372 // formatted as a list of key/value pair, the value is base64 encoded. 373 auto *S = C.getObjectFileInfo()->getLLVMStatsSection(); 374 Streamer.switchSection(S); 375 for (const auto *Operand : LLVMStats->operands()) { 376 const auto *MD = cast<MDNode>(Operand); 377 assert(MD->getNumOperands() % 2 == 0 && 378 ("Operand num should be even for a list of key/value pair")); 379 for (size_t I = 0; I < MD->getNumOperands(); I += 2) { 380 // Encode the key string size. 381 auto *Key = cast<MDString>(MD->getOperand(I)); 382 Streamer.emitULEB128IntValue(Key->getString().size()); 383 Streamer.emitBytes(Key->getString()); 384 // Encode the value into a Base64 string. 385 std::string Value = encodeBase64( 386 Twine(mdconst::dyn_extract<ConstantInt>(MD->getOperand(I + 1)) 387 ->getZExtValue()) 388 .str()); 389 Streamer.emitULEB128IntValue(Value.size()); 390 Streamer.emitBytes(Value); 391 } 392 } 393 } 394 395 unsigned Version = 0; 396 unsigned Flags = 0; 397 StringRef Section; 398 399 GetObjCImageInfo(M, Version, Flags, Section); 400 if (!Section.empty()) { 401 auto *S = C.getELFSection(Section, ELF::SHT_PROGBITS, ELF::SHF_ALLOC); 402 Streamer.switchSection(S); 403 Streamer.emitLabel(C.getOrCreateSymbol(StringRef("OBJC_IMAGE_INFO"))); 404 Streamer.emitInt32(Version); 405 Streamer.emitInt32(Flags); 406 Streamer.addBlankLine(); 407 } 408 409 emitCGProfileMetadata(Streamer, M); 410 } 411 412 MCSymbol *TargetLoweringObjectFileELF::getCFIPersonalitySymbol( 413 const GlobalValue *GV, const TargetMachine &TM, 414 MachineModuleInfo *MMI) const { 415 unsigned Encoding = getPersonalityEncoding(); 416 if ((Encoding & 0x80) == DW_EH_PE_indirect) 417 return getContext().getOrCreateSymbol(StringRef("DW.ref.") + 418 TM.getSymbol(GV)->getName()); 419 if ((Encoding & 0x70) == DW_EH_PE_absptr) 420 return TM.getSymbol(GV); 421 report_fatal_error("We do not support this DWARF encoding yet!"); 422 } 423 424 void TargetLoweringObjectFileELF::emitPersonalityValue( 425 MCStreamer &Streamer, const DataLayout &DL, const MCSymbol *Sym) const { 426 SmallString<64> NameData("DW.ref."); 427 NameData += Sym->getName(); 428 MCSymbolELF *Label = 429 cast<MCSymbolELF>(getContext().getOrCreateSymbol(NameData)); 430 Streamer.emitSymbolAttribute(Label, MCSA_Hidden); 431 Streamer.emitSymbolAttribute(Label, MCSA_Weak); 432 unsigned Flags = ELF::SHF_ALLOC | ELF::SHF_WRITE | ELF::SHF_GROUP; 433 MCSection *Sec = getContext().getELFNamedSection(".data", Label->getName(), 434 ELF::SHT_PROGBITS, Flags, 0); 435 unsigned Size = DL.getPointerSize(); 436 Streamer.switchSection(Sec); 437 Streamer.emitValueToAlignment(DL.getPointerABIAlignment(0)); 438 Streamer.emitSymbolAttribute(Label, MCSA_ELF_TypeObject); 439 const MCExpr *E = MCConstantExpr::create(Size, getContext()); 440 Streamer.emitELFSize(Label, E); 441 Streamer.emitLabel(Label); 442 443 Streamer.emitSymbolValue(Sym, Size); 444 } 445 446 const MCExpr *TargetLoweringObjectFileELF::getTTypeGlobalReference( 447 const GlobalValue *GV, unsigned Encoding, const TargetMachine &TM, 448 MachineModuleInfo *MMI, MCStreamer &Streamer) const { 449 if (Encoding & DW_EH_PE_indirect) { 450 MachineModuleInfoELF &ELFMMI = MMI->getObjFileInfo<MachineModuleInfoELF>(); 451 452 MCSymbol *SSym = getSymbolWithGlobalValueBase(GV, ".DW.stub", TM); 453 454 // Add information about the stub reference to ELFMMI so that the stub 455 // gets emitted by the asmprinter. 456 MachineModuleInfoImpl::StubValueTy &StubSym = ELFMMI.getGVStubEntry(SSym); 457 if (!StubSym.getPointer()) { 458 MCSymbol *Sym = TM.getSymbol(GV); 459 StubSym = MachineModuleInfoImpl::StubValueTy(Sym, !GV->hasLocalLinkage()); 460 } 461 462 return TargetLoweringObjectFile:: 463 getTTypeReference(MCSymbolRefExpr::create(SSym, getContext()), 464 Encoding & ~DW_EH_PE_indirect, Streamer); 465 } 466 467 return TargetLoweringObjectFile::getTTypeGlobalReference(GV, Encoding, TM, 468 MMI, Streamer); 469 } 470 471 static SectionKind getELFKindForNamedSection(StringRef Name, SectionKind K) { 472 // N.B.: The defaults used in here are not the same ones used in MC. 473 // We follow gcc, MC follows gas. For example, given ".section .eh_frame", 474 // both gas and MC will produce a section with no flags. Given 475 // section(".eh_frame") gcc will produce: 476 // 477 // .section .eh_frame,"a",@progbits 478 479 if (Name == getInstrProfSectionName(IPSK_covmap, Triple::ELF, 480 /*AddSegmentInfo=*/false) || 481 Name == getInstrProfSectionName(IPSK_covfun, Triple::ELF, 482 /*AddSegmentInfo=*/false) || 483 Name == ".llvmbc" || Name == ".llvmcmd") 484 return SectionKind::getMetadata(); 485 486 if (Name.empty() || Name[0] != '.') return K; 487 488 // Default implementation based on some magic section names. 489 if (Name == ".bss" || 490 Name.startswith(".bss.") || 491 Name.startswith(".gnu.linkonce.b.") || 492 Name.startswith(".llvm.linkonce.b.") || 493 Name == ".sbss" || 494 Name.startswith(".sbss.") || 495 Name.startswith(".gnu.linkonce.sb.") || 496 Name.startswith(".llvm.linkonce.sb.")) 497 return SectionKind::getBSS(); 498 499 if (Name == ".tdata" || 500 Name.startswith(".tdata.") || 501 Name.startswith(".gnu.linkonce.td.") || 502 Name.startswith(".llvm.linkonce.td.")) 503 return SectionKind::getThreadData(); 504 505 if (Name == ".tbss" || 506 Name.startswith(".tbss.") || 507 Name.startswith(".gnu.linkonce.tb.") || 508 Name.startswith(".llvm.linkonce.tb.")) 509 return SectionKind::getThreadBSS(); 510 511 return K; 512 } 513 514 static bool hasPrefix(StringRef SectionName, StringRef Prefix) { 515 return SectionName.consume_front(Prefix) && 516 (SectionName.empty() || SectionName[0] == '.'); 517 } 518 519 static unsigned getELFSectionType(StringRef Name, SectionKind K) { 520 // Use SHT_NOTE for section whose name starts with ".note" to allow 521 // emitting ELF notes from C variable declaration. 522 // See https://gcc.gnu.org/bugzilla/show_bug.cgi?id=77609 523 if (Name.startswith(".note")) 524 return ELF::SHT_NOTE; 525 526 if (hasPrefix(Name, ".init_array")) 527 return ELF::SHT_INIT_ARRAY; 528 529 if (hasPrefix(Name, ".fini_array")) 530 return ELF::SHT_FINI_ARRAY; 531 532 if (hasPrefix(Name, ".preinit_array")) 533 return ELF::SHT_PREINIT_ARRAY; 534 535 if (hasPrefix(Name, ".llvm.offloading")) 536 return ELF::SHT_LLVM_OFFLOADING; 537 538 if (K.isBSS() || K.isThreadBSS()) 539 return ELF::SHT_NOBITS; 540 541 return ELF::SHT_PROGBITS; 542 } 543 544 static unsigned getELFSectionFlags(SectionKind K) { 545 unsigned Flags = 0; 546 547 if (!K.isMetadata() && !K.isExclude()) 548 Flags |= ELF::SHF_ALLOC; 549 550 if (K.isExclude()) 551 Flags |= ELF::SHF_EXCLUDE; 552 553 if (K.isText()) 554 Flags |= ELF::SHF_EXECINSTR; 555 556 if (K.isExecuteOnly()) 557 Flags |= ELF::SHF_ARM_PURECODE; 558 559 if (K.isWriteable()) 560 Flags |= ELF::SHF_WRITE; 561 562 if (K.isThreadLocal()) 563 Flags |= ELF::SHF_TLS; 564 565 if (K.isMergeableCString() || K.isMergeableConst()) 566 Flags |= ELF::SHF_MERGE; 567 568 if (K.isMergeableCString()) 569 Flags |= ELF::SHF_STRINGS; 570 571 return Flags; 572 } 573 574 static const Comdat *getELFComdat(const GlobalValue *GV) { 575 const Comdat *C = GV->getComdat(); 576 if (!C) 577 return nullptr; 578 579 if (C->getSelectionKind() != Comdat::Any && 580 C->getSelectionKind() != Comdat::NoDeduplicate) 581 report_fatal_error("ELF COMDATs only support SelectionKind::Any and " 582 "SelectionKind::NoDeduplicate, '" + 583 C->getName() + "' cannot be lowered."); 584 585 return C; 586 } 587 588 static const MCSymbolELF *getLinkedToSymbol(const GlobalObject *GO, 589 const TargetMachine &TM) { 590 MDNode *MD = GO->getMetadata(LLVMContext::MD_associated); 591 if (!MD) 592 return nullptr; 593 594 const MDOperand &Op = MD->getOperand(0); 595 if (!Op.get()) 596 return nullptr; 597 598 auto *VM = dyn_cast<ValueAsMetadata>(Op); 599 if (!VM) 600 report_fatal_error("MD_associated operand is not ValueAsMetadata"); 601 602 auto *OtherGV = dyn_cast<GlobalValue>(VM->getValue()); 603 return OtherGV ? dyn_cast<MCSymbolELF>(TM.getSymbol(OtherGV)) : nullptr; 604 } 605 606 static unsigned getEntrySizeForKind(SectionKind Kind) { 607 if (Kind.isMergeable1ByteCString()) 608 return 1; 609 else if (Kind.isMergeable2ByteCString()) 610 return 2; 611 else if (Kind.isMergeable4ByteCString()) 612 return 4; 613 else if (Kind.isMergeableConst4()) 614 return 4; 615 else if (Kind.isMergeableConst8()) 616 return 8; 617 else if (Kind.isMergeableConst16()) 618 return 16; 619 else if (Kind.isMergeableConst32()) 620 return 32; 621 else { 622 // We shouldn't have mergeable C strings or mergeable constants that we 623 // didn't handle above. 624 assert(!Kind.isMergeableCString() && "unknown string width"); 625 assert(!Kind.isMergeableConst() && "unknown data width"); 626 return 0; 627 } 628 } 629 630 /// Return the section prefix name used by options FunctionsSections and 631 /// DataSections. 632 static StringRef getSectionPrefixForGlobal(SectionKind Kind) { 633 if (Kind.isText()) 634 return ".text"; 635 if (Kind.isReadOnly()) 636 return ".rodata"; 637 if (Kind.isBSS()) 638 return ".bss"; 639 if (Kind.isThreadData()) 640 return ".tdata"; 641 if (Kind.isThreadBSS()) 642 return ".tbss"; 643 if (Kind.isData()) 644 return ".data"; 645 if (Kind.isReadOnlyWithRel()) 646 return ".data.rel.ro"; 647 llvm_unreachable("Unknown section kind"); 648 } 649 650 static SmallString<128> 651 getELFSectionNameForGlobal(const GlobalObject *GO, SectionKind Kind, 652 Mangler &Mang, const TargetMachine &TM, 653 unsigned EntrySize, bool UniqueSectionName) { 654 SmallString<128> Name; 655 if (Kind.isMergeableCString()) { 656 // We also need alignment here. 657 // FIXME: this is getting the alignment of the character, not the 658 // alignment of the global! 659 Align Alignment = GO->getParent()->getDataLayout().getPreferredAlign( 660 cast<GlobalVariable>(GO)); 661 662 std::string SizeSpec = ".rodata.str" + utostr(EntrySize) + "."; 663 Name = SizeSpec + utostr(Alignment.value()); 664 } else if (Kind.isMergeableConst()) { 665 Name = ".rodata.cst"; 666 Name += utostr(EntrySize); 667 } else { 668 Name = getSectionPrefixForGlobal(Kind); 669 } 670 671 bool HasPrefix = false; 672 if (const auto *F = dyn_cast<Function>(GO)) { 673 if (std::optional<StringRef> Prefix = F->getSectionPrefix()) { 674 raw_svector_ostream(Name) << '.' << *Prefix; 675 HasPrefix = true; 676 } 677 } 678 679 if (UniqueSectionName) { 680 Name.push_back('.'); 681 TM.getNameWithPrefix(Name, GO, Mang, /*MayAlwaysUsePrivate*/true); 682 } else if (HasPrefix) 683 // For distinguishing between .text.${text-section-prefix}. (with trailing 684 // dot) and .text.${function-name} 685 Name.push_back('.'); 686 return Name; 687 } 688 689 namespace { 690 class LoweringDiagnosticInfo : public DiagnosticInfo { 691 const Twine &Msg; 692 693 public: 694 LoweringDiagnosticInfo(const Twine &DiagMsg, 695 DiagnosticSeverity Severity = DS_Error) 696 : DiagnosticInfo(DK_Lowering, Severity), Msg(DiagMsg) {} 697 void print(DiagnosticPrinter &DP) const override { DP << Msg; } 698 }; 699 } 700 701 /// Calculate an appropriate unique ID for a section, and update Flags, 702 /// EntrySize and NextUniqueID where appropriate. 703 static unsigned 704 calcUniqueIDUpdateFlagsAndSize(const GlobalObject *GO, StringRef SectionName, 705 SectionKind Kind, const TargetMachine &TM, 706 MCContext &Ctx, Mangler &Mang, unsigned &Flags, 707 unsigned &EntrySize, unsigned &NextUniqueID, 708 const bool Retain, const bool ForceUnique) { 709 // Increment uniqueID if we are forced to emit a unique section. 710 // This works perfectly fine with section attribute or pragma section as the 711 // sections with the same name are grouped together by the assembler. 712 if (ForceUnique) 713 return NextUniqueID++; 714 715 // A section can have at most one associated section. Put each global with 716 // MD_associated in a unique section. 717 const bool Associated = GO->getMetadata(LLVMContext::MD_associated); 718 if (Associated) { 719 Flags |= ELF::SHF_LINK_ORDER; 720 return NextUniqueID++; 721 } 722 723 if (Retain) { 724 if (TM.getTargetTriple().isOSSolaris()) 725 Flags |= ELF::SHF_SUNW_NODISCARD; 726 else if (Ctx.getAsmInfo()->useIntegratedAssembler() || 727 Ctx.getAsmInfo()->binutilsIsAtLeast(2, 36)) 728 Flags |= ELF::SHF_GNU_RETAIN; 729 return NextUniqueID++; 730 } 731 732 // If two symbols with differing sizes end up in the same mergeable section 733 // that section can be assigned an incorrect entry size. To avoid this we 734 // usually put symbols of the same size into distinct mergeable sections with 735 // the same name. Doing so relies on the ",unique ," assembly feature. This 736 // feature is not avalible until bintuils version 2.35 737 // (https://sourceware.org/bugzilla/show_bug.cgi?id=25380). 738 const bool SupportsUnique = Ctx.getAsmInfo()->useIntegratedAssembler() || 739 Ctx.getAsmInfo()->binutilsIsAtLeast(2, 35); 740 if (!SupportsUnique) { 741 Flags &= ~ELF::SHF_MERGE; 742 EntrySize = 0; 743 return MCContext::GenericSectionID; 744 } 745 746 const bool SymbolMergeable = Flags & ELF::SHF_MERGE; 747 const bool SeenSectionNameBefore = 748 Ctx.isELFGenericMergeableSection(SectionName); 749 // If this is the first ocurrence of this section name, treat it as the 750 // generic section 751 if (!SymbolMergeable && !SeenSectionNameBefore) 752 return MCContext::GenericSectionID; 753 754 // Symbols must be placed into sections with compatible entry sizes. Generate 755 // unique sections for symbols that have not been assigned to compatible 756 // sections. 757 const auto PreviousID = 758 Ctx.getELFUniqueIDForEntsize(SectionName, Flags, EntrySize); 759 if (PreviousID) 760 return *PreviousID; 761 762 // If the user has specified the same section name as would be created 763 // implicitly for this symbol e.g. .rodata.str1.1, then we don't need 764 // to unique the section as the entry size for this symbol will be 765 // compatible with implicitly created sections. 766 SmallString<128> ImplicitSectionNameStem = 767 getELFSectionNameForGlobal(GO, Kind, Mang, TM, EntrySize, false); 768 if (SymbolMergeable && 769 Ctx.isELFImplicitMergeableSectionNamePrefix(SectionName) && 770 SectionName.startswith(ImplicitSectionNameStem)) 771 return MCContext::GenericSectionID; 772 773 // We have seen this section name before, but with different flags or entity 774 // size. Create a new unique ID. 775 return NextUniqueID++; 776 } 777 778 static MCSection *selectExplicitSectionGlobal( 779 const GlobalObject *GO, SectionKind Kind, const TargetMachine &TM, 780 MCContext &Ctx, Mangler &Mang, unsigned &NextUniqueID, 781 bool Retain, bool ForceUnique) { 782 StringRef SectionName = GO->getSection(); 783 784 // Check if '#pragma clang section' name is applicable. 785 // Note that pragma directive overrides -ffunction-section, -fdata-section 786 // and so section name is exactly as user specified and not uniqued. 787 const GlobalVariable *GV = dyn_cast<GlobalVariable>(GO); 788 if (GV && GV->hasImplicitSection()) { 789 auto Attrs = GV->getAttributes(); 790 if (Attrs.hasAttribute("bss-section") && Kind.isBSS()) { 791 SectionName = Attrs.getAttribute("bss-section").getValueAsString(); 792 } else if (Attrs.hasAttribute("rodata-section") && Kind.isReadOnly()) { 793 SectionName = Attrs.getAttribute("rodata-section").getValueAsString(); 794 } else if (Attrs.hasAttribute("relro-section") && Kind.isReadOnlyWithRel()) { 795 SectionName = Attrs.getAttribute("relro-section").getValueAsString(); 796 } else if (Attrs.hasAttribute("data-section") && Kind.isData()) { 797 SectionName = Attrs.getAttribute("data-section").getValueAsString(); 798 } 799 } 800 const Function *F = dyn_cast<Function>(GO); 801 if (F && F->hasFnAttribute("implicit-section-name")) { 802 SectionName = F->getFnAttribute("implicit-section-name").getValueAsString(); 803 } 804 805 // Infer section flags from the section name if we can. 806 Kind = getELFKindForNamedSection(SectionName, Kind); 807 808 StringRef Group = ""; 809 bool IsComdat = false; 810 unsigned Flags = getELFSectionFlags(Kind); 811 if (const Comdat *C = getELFComdat(GO)) { 812 Group = C->getName(); 813 IsComdat = C->getSelectionKind() == Comdat::Any; 814 Flags |= ELF::SHF_GROUP; 815 } 816 817 unsigned EntrySize = getEntrySizeForKind(Kind); 818 const unsigned UniqueID = calcUniqueIDUpdateFlagsAndSize( 819 GO, SectionName, Kind, TM, Ctx, Mang, Flags, EntrySize, NextUniqueID, 820 Retain, ForceUnique); 821 822 const MCSymbolELF *LinkedToSym = getLinkedToSymbol(GO, TM); 823 MCSectionELF *Section = Ctx.getELFSection( 824 SectionName, getELFSectionType(SectionName, Kind), Flags, EntrySize, 825 Group, IsComdat, UniqueID, LinkedToSym); 826 // Make sure that we did not get some other section with incompatible sh_link. 827 // This should not be possible due to UniqueID code above. 828 assert(Section->getLinkedToSymbol() == LinkedToSym && 829 "Associated symbol mismatch between sections"); 830 831 if (!(Ctx.getAsmInfo()->useIntegratedAssembler() || 832 Ctx.getAsmInfo()->binutilsIsAtLeast(2, 35))) { 833 // If we are using GNU as before 2.35, then this symbol might have 834 // been placed in an incompatible mergeable section. Emit an error if this 835 // is the case to avoid creating broken output. 836 if ((Section->getFlags() & ELF::SHF_MERGE) && 837 (Section->getEntrySize() != getEntrySizeForKind(Kind))) 838 GO->getContext().diagnose(LoweringDiagnosticInfo( 839 "Symbol '" + GO->getName() + "' from module '" + 840 (GO->getParent() ? GO->getParent()->getSourceFileName() : "unknown") + 841 "' required a section with entry-size=" + 842 Twine(getEntrySizeForKind(Kind)) + " but was placed in section '" + 843 SectionName + "' with entry-size=" + Twine(Section->getEntrySize()) + 844 ": Explicit assignment by pragma or attribute of an incompatible " 845 "symbol to this section?")); 846 } 847 848 return Section; 849 } 850 851 MCSection *TargetLoweringObjectFileELF::getExplicitSectionGlobal( 852 const GlobalObject *GO, SectionKind Kind, const TargetMachine &TM) const { 853 return selectExplicitSectionGlobal(GO, Kind, TM, getContext(), getMangler(), 854 NextUniqueID, Used.count(GO), 855 /* ForceUnique = */false); 856 } 857 858 static MCSectionELF *selectELFSectionForGlobal( 859 MCContext &Ctx, const GlobalObject *GO, SectionKind Kind, Mangler &Mang, 860 const TargetMachine &TM, bool EmitUniqueSection, unsigned Flags, 861 unsigned *NextUniqueID, const MCSymbolELF *AssociatedSymbol) { 862 863 StringRef Group = ""; 864 bool IsComdat = false; 865 if (const Comdat *C = getELFComdat(GO)) { 866 Flags |= ELF::SHF_GROUP; 867 Group = C->getName(); 868 IsComdat = C->getSelectionKind() == Comdat::Any; 869 } 870 871 // Get the section entry size based on the kind. 872 unsigned EntrySize = getEntrySizeForKind(Kind); 873 874 bool UniqueSectionName = false; 875 unsigned UniqueID = MCContext::GenericSectionID; 876 if (EmitUniqueSection) { 877 if (TM.getUniqueSectionNames()) { 878 UniqueSectionName = true; 879 } else { 880 UniqueID = *NextUniqueID; 881 (*NextUniqueID)++; 882 } 883 } 884 SmallString<128> Name = getELFSectionNameForGlobal( 885 GO, Kind, Mang, TM, EntrySize, UniqueSectionName); 886 887 // Use 0 as the unique ID for execute-only text. 888 if (Kind.isExecuteOnly()) 889 UniqueID = 0; 890 return Ctx.getELFSection(Name, getELFSectionType(Name, Kind), Flags, 891 EntrySize, Group, IsComdat, UniqueID, 892 AssociatedSymbol); 893 } 894 895 static MCSection *selectELFSectionForGlobal( 896 MCContext &Ctx, const GlobalObject *GO, SectionKind Kind, Mangler &Mang, 897 const TargetMachine &TM, bool Retain, bool EmitUniqueSection, 898 unsigned Flags, unsigned *NextUniqueID) { 899 const MCSymbolELF *LinkedToSym = getLinkedToSymbol(GO, TM); 900 if (LinkedToSym) { 901 EmitUniqueSection = true; 902 Flags |= ELF::SHF_LINK_ORDER; 903 } 904 if (Retain) { 905 if (TM.getTargetTriple().isOSSolaris()) { 906 EmitUniqueSection = true; 907 Flags |= ELF::SHF_SUNW_NODISCARD; 908 } else if (Ctx.getAsmInfo()->useIntegratedAssembler() || 909 Ctx.getAsmInfo()->binutilsIsAtLeast(2, 36)) { 910 EmitUniqueSection = true; 911 Flags |= ELF::SHF_GNU_RETAIN; 912 } 913 } 914 915 MCSectionELF *Section = selectELFSectionForGlobal( 916 Ctx, GO, Kind, Mang, TM, EmitUniqueSection, Flags, 917 NextUniqueID, LinkedToSym); 918 assert(Section->getLinkedToSymbol() == LinkedToSym); 919 return Section; 920 } 921 922 MCSection *TargetLoweringObjectFileELF::SelectSectionForGlobal( 923 const GlobalObject *GO, SectionKind Kind, const TargetMachine &TM) const { 924 unsigned Flags = getELFSectionFlags(Kind); 925 926 // If we have -ffunction-section or -fdata-section then we should emit the 927 // global value to a uniqued section specifically for it. 928 bool EmitUniqueSection = false; 929 if (!(Flags & ELF::SHF_MERGE) && !Kind.isCommon()) { 930 if (Kind.isText()) 931 EmitUniqueSection = TM.getFunctionSections(); 932 else 933 EmitUniqueSection = TM.getDataSections(); 934 } 935 EmitUniqueSection |= GO->hasComdat(); 936 return selectELFSectionForGlobal(getContext(), GO, Kind, getMangler(), TM, 937 Used.count(GO), EmitUniqueSection, Flags, 938 &NextUniqueID); 939 } 940 941 MCSection *TargetLoweringObjectFileELF::getUniqueSectionForFunction( 942 const Function &F, const TargetMachine &TM) const { 943 SectionKind Kind = SectionKind::getText(); 944 unsigned Flags = getELFSectionFlags(Kind); 945 // If the function's section names is pre-determined via pragma or a 946 // section attribute, call selectExplicitSectionGlobal. 947 if (F.hasSection() || F.hasFnAttribute("implicit-section-name")) 948 return selectExplicitSectionGlobal( 949 &F, Kind, TM, getContext(), getMangler(), NextUniqueID, 950 Used.count(&F), /* ForceUnique = */true); 951 else 952 return selectELFSectionForGlobal( 953 getContext(), &F, Kind, getMangler(), TM, Used.count(&F), 954 /*EmitUniqueSection=*/true, Flags, &NextUniqueID); 955 } 956 957 MCSection *TargetLoweringObjectFileELF::getSectionForJumpTable( 958 const Function &F, const TargetMachine &TM) const { 959 // If the function can be removed, produce a unique section so that 960 // the table doesn't prevent the removal. 961 const Comdat *C = F.getComdat(); 962 bool EmitUniqueSection = TM.getFunctionSections() || C; 963 if (!EmitUniqueSection) 964 return ReadOnlySection; 965 966 return selectELFSectionForGlobal(getContext(), &F, SectionKind::getReadOnly(), 967 getMangler(), TM, EmitUniqueSection, 968 ELF::SHF_ALLOC, &NextUniqueID, 969 /* AssociatedSymbol */ nullptr); 970 } 971 972 MCSection *TargetLoweringObjectFileELF::getSectionForLSDA( 973 const Function &F, const MCSymbol &FnSym, const TargetMachine &TM) const { 974 // If neither COMDAT nor function sections, use the monolithic LSDA section. 975 // Re-use this path if LSDASection is null as in the Arm EHABI. 976 if (!LSDASection || (!F.hasComdat() && !TM.getFunctionSections())) 977 return LSDASection; 978 979 const auto *LSDA = cast<MCSectionELF>(LSDASection); 980 unsigned Flags = LSDA->getFlags(); 981 const MCSymbolELF *LinkedToSym = nullptr; 982 StringRef Group; 983 bool IsComdat = false; 984 if (const Comdat *C = getELFComdat(&F)) { 985 Flags |= ELF::SHF_GROUP; 986 Group = C->getName(); 987 IsComdat = C->getSelectionKind() == Comdat::Any; 988 } 989 // Use SHF_LINK_ORDER to facilitate --gc-sections if we can use GNU ld>=2.36 990 // or LLD, which support mixed SHF_LINK_ORDER & non-SHF_LINK_ORDER. 991 if (TM.getFunctionSections() && 992 (getContext().getAsmInfo()->useIntegratedAssembler() && 993 getContext().getAsmInfo()->binutilsIsAtLeast(2, 36))) { 994 Flags |= ELF::SHF_LINK_ORDER; 995 LinkedToSym = cast<MCSymbolELF>(&FnSym); 996 } 997 998 // Append the function name as the suffix like GCC, assuming 999 // -funique-section-names applies to .gcc_except_table sections. 1000 return getContext().getELFSection( 1001 (TM.getUniqueSectionNames() ? LSDA->getName() + "." + F.getName() 1002 : LSDA->getName()), 1003 LSDA->getType(), Flags, 0, Group, IsComdat, MCSection::NonUniqueID, 1004 LinkedToSym); 1005 } 1006 1007 bool TargetLoweringObjectFileELF::shouldPutJumpTableInFunctionSection( 1008 bool UsesLabelDifference, const Function &F) const { 1009 // We can always create relative relocations, so use another section 1010 // that can be marked non-executable. 1011 return false; 1012 } 1013 1014 /// Given a mergeable constant with the specified size and relocation 1015 /// information, return a section that it should be placed in. 1016 MCSection *TargetLoweringObjectFileELF::getSectionForConstant( 1017 const DataLayout &DL, SectionKind Kind, const Constant *C, 1018 Align &Alignment) const { 1019 if (Kind.isMergeableConst4() && MergeableConst4Section) 1020 return MergeableConst4Section; 1021 if (Kind.isMergeableConst8() && MergeableConst8Section) 1022 return MergeableConst8Section; 1023 if (Kind.isMergeableConst16() && MergeableConst16Section) 1024 return MergeableConst16Section; 1025 if (Kind.isMergeableConst32() && MergeableConst32Section) 1026 return MergeableConst32Section; 1027 if (Kind.isReadOnly()) 1028 return ReadOnlySection; 1029 1030 assert(Kind.isReadOnlyWithRel() && "Unknown section kind"); 1031 return DataRelROSection; 1032 } 1033 1034 /// Returns a unique section for the given machine basic block. 1035 MCSection *TargetLoweringObjectFileELF::getSectionForMachineBasicBlock( 1036 const Function &F, const MachineBasicBlock &MBB, 1037 const TargetMachine &TM) const { 1038 assert(MBB.isBeginSection() && "Basic block does not start a section!"); 1039 unsigned UniqueID = MCContext::GenericSectionID; 1040 1041 // For cold sections use the .text.split. prefix along with the parent 1042 // function name. All cold blocks for the same function go to the same 1043 // section. Similarly all exception blocks are grouped by symbol name 1044 // under the .text.eh prefix. For regular sections, we either use a unique 1045 // name, or a unique ID for the section. 1046 SmallString<128> Name; 1047 if (MBB.getSectionID() == MBBSectionID::ColdSectionID) { 1048 Name += BBSectionsColdTextPrefix; 1049 Name += MBB.getParent()->getName(); 1050 } else if (MBB.getSectionID() == MBBSectionID::ExceptionSectionID) { 1051 Name += ".text.eh."; 1052 Name += MBB.getParent()->getName(); 1053 } else { 1054 Name += MBB.getParent()->getSection()->getName(); 1055 if (TM.getUniqueBasicBlockSectionNames()) { 1056 if (!Name.endswith(".")) 1057 Name += "."; 1058 Name += MBB.getSymbol()->getName(); 1059 } else { 1060 UniqueID = NextUniqueID++; 1061 } 1062 } 1063 1064 unsigned Flags = ELF::SHF_ALLOC | ELF::SHF_EXECINSTR; 1065 std::string GroupName; 1066 if (F.hasComdat()) { 1067 Flags |= ELF::SHF_GROUP; 1068 GroupName = F.getComdat()->getName().str(); 1069 } 1070 return getContext().getELFSection(Name, ELF::SHT_PROGBITS, Flags, 1071 0 /* Entry Size */, GroupName, 1072 F.hasComdat(), UniqueID, nullptr); 1073 } 1074 1075 static MCSectionELF *getStaticStructorSection(MCContext &Ctx, bool UseInitArray, 1076 bool IsCtor, unsigned Priority, 1077 const MCSymbol *KeySym) { 1078 std::string Name; 1079 unsigned Type; 1080 unsigned Flags = ELF::SHF_ALLOC | ELF::SHF_WRITE; 1081 StringRef Comdat = KeySym ? KeySym->getName() : ""; 1082 1083 if (KeySym) 1084 Flags |= ELF::SHF_GROUP; 1085 1086 if (UseInitArray) { 1087 if (IsCtor) { 1088 Type = ELF::SHT_INIT_ARRAY; 1089 Name = ".init_array"; 1090 } else { 1091 Type = ELF::SHT_FINI_ARRAY; 1092 Name = ".fini_array"; 1093 } 1094 if (Priority != 65535) { 1095 Name += '.'; 1096 Name += utostr(Priority); 1097 } 1098 } else { 1099 // The default scheme is .ctor / .dtor, so we have to invert the priority 1100 // numbering. 1101 if (IsCtor) 1102 Name = ".ctors"; 1103 else 1104 Name = ".dtors"; 1105 if (Priority != 65535) 1106 raw_string_ostream(Name) << format(".%05u", 65535 - Priority); 1107 Type = ELF::SHT_PROGBITS; 1108 } 1109 1110 return Ctx.getELFSection(Name, Type, Flags, 0, Comdat, /*IsComdat=*/true); 1111 } 1112 1113 MCSection *TargetLoweringObjectFileELF::getStaticCtorSection( 1114 unsigned Priority, const MCSymbol *KeySym) const { 1115 return getStaticStructorSection(getContext(), UseInitArray, true, Priority, 1116 KeySym); 1117 } 1118 1119 MCSection *TargetLoweringObjectFileELF::getStaticDtorSection( 1120 unsigned Priority, const MCSymbol *KeySym) const { 1121 return getStaticStructorSection(getContext(), UseInitArray, false, Priority, 1122 KeySym); 1123 } 1124 1125 const MCExpr *TargetLoweringObjectFileELF::lowerRelativeReference( 1126 const GlobalValue *LHS, const GlobalValue *RHS, 1127 const TargetMachine &TM) const { 1128 // We may only use a PLT-relative relocation to refer to unnamed_addr 1129 // functions. 1130 if (!LHS->hasGlobalUnnamedAddr() || !LHS->getValueType()->isFunctionTy()) 1131 return nullptr; 1132 1133 // Basic correctness checks. 1134 if (LHS->getType()->getPointerAddressSpace() != 0 || 1135 RHS->getType()->getPointerAddressSpace() != 0 || LHS->isThreadLocal() || 1136 RHS->isThreadLocal()) 1137 return nullptr; 1138 1139 return MCBinaryExpr::createSub( 1140 MCSymbolRefExpr::create(TM.getSymbol(LHS), PLTRelativeVariantKind, 1141 getContext()), 1142 MCSymbolRefExpr::create(TM.getSymbol(RHS), getContext()), getContext()); 1143 } 1144 1145 const MCExpr *TargetLoweringObjectFileELF::lowerDSOLocalEquivalent( 1146 const DSOLocalEquivalent *Equiv, const TargetMachine &TM) const { 1147 assert(supportDSOLocalEquivalentLowering()); 1148 1149 const auto *GV = Equiv->getGlobalValue(); 1150 1151 // A PLT entry is not needed for dso_local globals. 1152 if (GV->isDSOLocal() || GV->isImplicitDSOLocal()) 1153 return MCSymbolRefExpr::create(TM.getSymbol(GV), getContext()); 1154 1155 return MCSymbolRefExpr::create(TM.getSymbol(GV), PLTRelativeVariantKind, 1156 getContext()); 1157 } 1158 1159 MCSection *TargetLoweringObjectFileELF::getSectionForCommandLines() const { 1160 // Use ".GCC.command.line" since this feature is to support clang's 1161 // -frecord-gcc-switches which in turn attempts to mimic GCC's switch of the 1162 // same name. 1163 return getContext().getELFSection(".GCC.command.line", ELF::SHT_PROGBITS, 1164 ELF::SHF_MERGE | ELF::SHF_STRINGS, 1); 1165 } 1166 1167 void 1168 TargetLoweringObjectFileELF::InitializeELF(bool UseInitArray_) { 1169 UseInitArray = UseInitArray_; 1170 MCContext &Ctx = getContext(); 1171 if (!UseInitArray) { 1172 StaticCtorSection = Ctx.getELFSection(".ctors", ELF::SHT_PROGBITS, 1173 ELF::SHF_ALLOC | ELF::SHF_WRITE); 1174 1175 StaticDtorSection = Ctx.getELFSection(".dtors", ELF::SHT_PROGBITS, 1176 ELF::SHF_ALLOC | ELF::SHF_WRITE); 1177 return; 1178 } 1179 1180 StaticCtorSection = Ctx.getELFSection(".init_array", ELF::SHT_INIT_ARRAY, 1181 ELF::SHF_WRITE | ELF::SHF_ALLOC); 1182 StaticDtorSection = Ctx.getELFSection(".fini_array", ELF::SHT_FINI_ARRAY, 1183 ELF::SHF_WRITE | ELF::SHF_ALLOC); 1184 } 1185 1186 //===----------------------------------------------------------------------===// 1187 // MachO 1188 //===----------------------------------------------------------------------===// 1189 1190 TargetLoweringObjectFileMachO::TargetLoweringObjectFileMachO() { 1191 SupportIndirectSymViaGOTPCRel = true; 1192 } 1193 1194 void TargetLoweringObjectFileMachO::Initialize(MCContext &Ctx, 1195 const TargetMachine &TM) { 1196 TargetLoweringObjectFile::Initialize(Ctx, TM); 1197 if (TM.getRelocationModel() == Reloc::Static) { 1198 StaticCtorSection = Ctx.getMachOSection("__TEXT", "__constructor", 0, 1199 SectionKind::getData()); 1200 StaticDtorSection = Ctx.getMachOSection("__TEXT", "__destructor", 0, 1201 SectionKind::getData()); 1202 } else { 1203 StaticCtorSection = Ctx.getMachOSection("__DATA", "__mod_init_func", 1204 MachO::S_MOD_INIT_FUNC_POINTERS, 1205 SectionKind::getData()); 1206 StaticDtorSection = Ctx.getMachOSection("__DATA", "__mod_term_func", 1207 MachO::S_MOD_TERM_FUNC_POINTERS, 1208 SectionKind::getData()); 1209 } 1210 1211 PersonalityEncoding = 1212 dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel | dwarf::DW_EH_PE_sdata4; 1213 LSDAEncoding = dwarf::DW_EH_PE_pcrel; 1214 TTypeEncoding = 1215 dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel | dwarf::DW_EH_PE_sdata4; 1216 } 1217 1218 MCSection *TargetLoweringObjectFileMachO::getStaticDtorSection( 1219 unsigned Priority, const MCSymbol *KeySym) const { 1220 // TODO(yln): Remove -lower-global-dtors-via-cxa-atexit fallback flag 1221 // (LowerGlobalDtorsViaCxaAtExit) and always issue a fatal error here. 1222 if (TM->Options.LowerGlobalDtorsViaCxaAtExit) 1223 report_fatal_error("@llvm.global_dtors should have been lowered already"); 1224 return StaticDtorSection; 1225 } 1226 1227 void TargetLoweringObjectFileMachO::emitModuleMetadata(MCStreamer &Streamer, 1228 Module &M) const { 1229 // Emit the linker options if present. 1230 if (auto *LinkerOptions = M.getNamedMetadata("llvm.linker.options")) { 1231 for (const auto *Option : LinkerOptions->operands()) { 1232 SmallVector<std::string, 4> StrOptions; 1233 for (const auto &Piece : cast<MDNode>(Option)->operands()) 1234 StrOptions.push_back(std::string(cast<MDString>(Piece)->getString())); 1235 Streamer.emitLinkerOptions(StrOptions); 1236 } 1237 } 1238 1239 unsigned VersionVal = 0; 1240 unsigned ImageInfoFlags = 0; 1241 StringRef SectionVal; 1242 1243 GetObjCImageInfo(M, VersionVal, ImageInfoFlags, SectionVal); 1244 emitCGProfileMetadata(Streamer, M); 1245 1246 // The section is mandatory. If we don't have it, then we don't have GC info. 1247 if (SectionVal.empty()) 1248 return; 1249 1250 StringRef Segment, Section; 1251 unsigned TAA = 0, StubSize = 0; 1252 bool TAAParsed; 1253 if (Error E = MCSectionMachO::ParseSectionSpecifier( 1254 SectionVal, Segment, Section, TAA, TAAParsed, StubSize)) { 1255 // If invalid, report the error with report_fatal_error. 1256 report_fatal_error("Invalid section specifier '" + Section + 1257 "': " + toString(std::move(E)) + "."); 1258 } 1259 1260 // Get the section. 1261 MCSectionMachO *S = getContext().getMachOSection( 1262 Segment, Section, TAA, StubSize, SectionKind::getData()); 1263 Streamer.switchSection(S); 1264 Streamer.emitLabel(getContext(). 1265 getOrCreateSymbol(StringRef("L_OBJC_IMAGE_INFO"))); 1266 Streamer.emitInt32(VersionVal); 1267 Streamer.emitInt32(ImageInfoFlags); 1268 Streamer.addBlankLine(); 1269 } 1270 1271 static void checkMachOComdat(const GlobalValue *GV) { 1272 const Comdat *C = GV->getComdat(); 1273 if (!C) 1274 return; 1275 1276 report_fatal_error("MachO doesn't support COMDATs, '" + C->getName() + 1277 "' cannot be lowered."); 1278 } 1279 1280 MCSection *TargetLoweringObjectFileMachO::getExplicitSectionGlobal( 1281 const GlobalObject *GO, SectionKind Kind, const TargetMachine &TM) const { 1282 1283 StringRef SectionName = GO->getSection(); 1284 1285 const Function *F = dyn_cast<Function>(GO); 1286 if (F && F->hasFnAttribute("implicit-section-name")) { 1287 SectionName = F->getFnAttribute("implicit-section-name").getValueAsString(); 1288 } 1289 1290 // Parse the section specifier and create it if valid. 1291 StringRef Segment, Section; 1292 unsigned TAA = 0, StubSize = 0; 1293 bool TAAParsed; 1294 1295 checkMachOComdat(GO); 1296 1297 if (Error E = MCSectionMachO::ParseSectionSpecifier( 1298 SectionName, Segment, Section, TAA, TAAParsed, StubSize)) { 1299 // If invalid, report the error with report_fatal_error. 1300 report_fatal_error("Global variable '" + GO->getName() + 1301 "' has an invalid section specifier '" + 1302 GO->getSection() + "': " + toString(std::move(E)) + "."); 1303 } 1304 1305 // Get the section. 1306 MCSectionMachO *S = 1307 getContext().getMachOSection(Segment, Section, TAA, StubSize, Kind); 1308 1309 // If TAA wasn't set by ParseSectionSpecifier() above, 1310 // use the value returned by getMachOSection() as a default. 1311 if (!TAAParsed) 1312 TAA = S->getTypeAndAttributes(); 1313 1314 // Okay, now that we got the section, verify that the TAA & StubSize agree. 1315 // If the user declared multiple globals with different section flags, we need 1316 // to reject it here. 1317 if (S->getTypeAndAttributes() != TAA || S->getStubSize() != StubSize) { 1318 // If invalid, report the error with report_fatal_error. 1319 report_fatal_error("Global variable '" + GO->getName() + 1320 "' section type or attributes does not match previous" 1321 " section specifier"); 1322 } 1323 1324 return S; 1325 } 1326 1327 MCSection *TargetLoweringObjectFileMachO::SelectSectionForGlobal( 1328 const GlobalObject *GO, SectionKind Kind, const TargetMachine &TM) const { 1329 checkMachOComdat(GO); 1330 1331 // Handle thread local data. 1332 if (Kind.isThreadBSS()) return TLSBSSSection; 1333 if (Kind.isThreadData()) return TLSDataSection; 1334 1335 if (Kind.isText()) 1336 return GO->isWeakForLinker() ? TextCoalSection : TextSection; 1337 1338 // If this is weak/linkonce, put this in a coalescable section, either in text 1339 // or data depending on if it is writable. 1340 if (GO->isWeakForLinker()) { 1341 if (Kind.isReadOnly()) 1342 return ConstTextCoalSection; 1343 if (Kind.isReadOnlyWithRel()) 1344 return ConstDataCoalSection; 1345 return DataCoalSection; 1346 } 1347 1348 // FIXME: Alignment check should be handled by section classifier. 1349 if (Kind.isMergeable1ByteCString() && 1350 GO->getParent()->getDataLayout().getPreferredAlign( 1351 cast<GlobalVariable>(GO)) < Align(32)) 1352 return CStringSection; 1353 1354 // Do not put 16-bit arrays in the UString section if they have an 1355 // externally visible label, this runs into issues with certain linker 1356 // versions. 1357 if (Kind.isMergeable2ByteCString() && !GO->hasExternalLinkage() && 1358 GO->getParent()->getDataLayout().getPreferredAlign( 1359 cast<GlobalVariable>(GO)) < Align(32)) 1360 return UStringSection; 1361 1362 // With MachO only variables whose corresponding symbol starts with 'l' or 1363 // 'L' can be merged, so we only try merging GVs with private linkage. 1364 if (GO->hasPrivateLinkage() && Kind.isMergeableConst()) { 1365 if (Kind.isMergeableConst4()) 1366 return FourByteConstantSection; 1367 if (Kind.isMergeableConst8()) 1368 return EightByteConstantSection; 1369 if (Kind.isMergeableConst16()) 1370 return SixteenByteConstantSection; 1371 } 1372 1373 // Otherwise, if it is readonly, but not something we can specially optimize, 1374 // just drop it in .const. 1375 if (Kind.isReadOnly()) 1376 return ReadOnlySection; 1377 1378 // If this is marked const, put it into a const section. But if the dynamic 1379 // linker needs to write to it, put it in the data segment. 1380 if (Kind.isReadOnlyWithRel()) 1381 return ConstDataSection; 1382 1383 // Put zero initialized globals with strong external linkage in the 1384 // DATA, __common section with the .zerofill directive. 1385 if (Kind.isBSSExtern()) 1386 return DataCommonSection; 1387 1388 // Put zero initialized globals with local linkage in __DATA,__bss directive 1389 // with the .zerofill directive (aka .lcomm). 1390 if (Kind.isBSSLocal()) 1391 return DataBSSSection; 1392 1393 // Otherwise, just drop the variable in the normal data section. 1394 return DataSection; 1395 } 1396 1397 MCSection *TargetLoweringObjectFileMachO::getSectionForConstant( 1398 const DataLayout &DL, SectionKind Kind, const Constant *C, 1399 Align &Alignment) const { 1400 // If this constant requires a relocation, we have to put it in the data 1401 // segment, not in the text segment. 1402 if (Kind.isData() || Kind.isReadOnlyWithRel()) 1403 return ConstDataSection; 1404 1405 if (Kind.isMergeableConst4()) 1406 return FourByteConstantSection; 1407 if (Kind.isMergeableConst8()) 1408 return EightByteConstantSection; 1409 if (Kind.isMergeableConst16()) 1410 return SixteenByteConstantSection; 1411 return ReadOnlySection; // .const 1412 } 1413 1414 const MCExpr *TargetLoweringObjectFileMachO::getTTypeGlobalReference( 1415 const GlobalValue *GV, unsigned Encoding, const TargetMachine &TM, 1416 MachineModuleInfo *MMI, MCStreamer &Streamer) const { 1417 // The mach-o version of this method defaults to returning a stub reference. 1418 1419 if (Encoding & DW_EH_PE_indirect) { 1420 MachineModuleInfoMachO &MachOMMI = 1421 MMI->getObjFileInfo<MachineModuleInfoMachO>(); 1422 1423 MCSymbol *SSym = getSymbolWithGlobalValueBase(GV, "$non_lazy_ptr", TM); 1424 1425 // Add information about the stub reference to MachOMMI so that the stub 1426 // gets emitted by the asmprinter. 1427 MachineModuleInfoImpl::StubValueTy &StubSym = MachOMMI.getGVStubEntry(SSym); 1428 if (!StubSym.getPointer()) { 1429 MCSymbol *Sym = TM.getSymbol(GV); 1430 StubSym = MachineModuleInfoImpl::StubValueTy(Sym, !GV->hasLocalLinkage()); 1431 } 1432 1433 return TargetLoweringObjectFile:: 1434 getTTypeReference(MCSymbolRefExpr::create(SSym, getContext()), 1435 Encoding & ~DW_EH_PE_indirect, Streamer); 1436 } 1437 1438 return TargetLoweringObjectFile::getTTypeGlobalReference(GV, Encoding, TM, 1439 MMI, Streamer); 1440 } 1441 1442 MCSymbol *TargetLoweringObjectFileMachO::getCFIPersonalitySymbol( 1443 const GlobalValue *GV, const TargetMachine &TM, 1444 MachineModuleInfo *MMI) const { 1445 // The mach-o version of this method defaults to returning a stub reference. 1446 MachineModuleInfoMachO &MachOMMI = 1447 MMI->getObjFileInfo<MachineModuleInfoMachO>(); 1448 1449 MCSymbol *SSym = getSymbolWithGlobalValueBase(GV, "$non_lazy_ptr", TM); 1450 1451 // Add information about the stub reference to MachOMMI so that the stub 1452 // gets emitted by the asmprinter. 1453 MachineModuleInfoImpl::StubValueTy &StubSym = MachOMMI.getGVStubEntry(SSym); 1454 if (!StubSym.getPointer()) { 1455 MCSymbol *Sym = TM.getSymbol(GV); 1456 StubSym = MachineModuleInfoImpl::StubValueTy(Sym, !GV->hasLocalLinkage()); 1457 } 1458 1459 return SSym; 1460 } 1461 1462 const MCExpr *TargetLoweringObjectFileMachO::getIndirectSymViaGOTPCRel( 1463 const GlobalValue *GV, const MCSymbol *Sym, const MCValue &MV, 1464 int64_t Offset, MachineModuleInfo *MMI, MCStreamer &Streamer) const { 1465 // Although MachO 32-bit targets do not explicitly have a GOTPCREL relocation 1466 // as 64-bit do, we replace the GOT equivalent by accessing the final symbol 1467 // through a non_lazy_ptr stub instead. One advantage is that it allows the 1468 // computation of deltas to final external symbols. Example: 1469 // 1470 // _extgotequiv: 1471 // .long _extfoo 1472 // 1473 // _delta: 1474 // .long _extgotequiv-_delta 1475 // 1476 // is transformed to: 1477 // 1478 // _delta: 1479 // .long L_extfoo$non_lazy_ptr-(_delta+0) 1480 // 1481 // .section __IMPORT,__pointers,non_lazy_symbol_pointers 1482 // L_extfoo$non_lazy_ptr: 1483 // .indirect_symbol _extfoo 1484 // .long 0 1485 // 1486 // The indirect symbol table (and sections of non_lazy_symbol_pointers type) 1487 // may point to both local (same translation unit) and global (other 1488 // translation units) symbols. Example: 1489 // 1490 // .section __DATA,__pointers,non_lazy_symbol_pointers 1491 // L1: 1492 // .indirect_symbol _myGlobal 1493 // .long 0 1494 // L2: 1495 // .indirect_symbol _myLocal 1496 // .long _myLocal 1497 // 1498 // If the symbol is local, instead of the symbol's index, the assembler 1499 // places the constant INDIRECT_SYMBOL_LOCAL into the indirect symbol table. 1500 // Then the linker will notice the constant in the table and will look at the 1501 // content of the symbol. 1502 MachineModuleInfoMachO &MachOMMI = 1503 MMI->getObjFileInfo<MachineModuleInfoMachO>(); 1504 MCContext &Ctx = getContext(); 1505 1506 // The offset must consider the original displacement from the base symbol 1507 // since 32-bit targets don't have a GOTPCREL to fold the PC displacement. 1508 Offset = -MV.getConstant(); 1509 const MCSymbol *BaseSym = &MV.getSymB()->getSymbol(); 1510 1511 // Access the final symbol via sym$non_lazy_ptr and generate the appropriated 1512 // non_lazy_ptr stubs. 1513 SmallString<128> Name; 1514 StringRef Suffix = "$non_lazy_ptr"; 1515 Name += MMI->getModule()->getDataLayout().getPrivateGlobalPrefix(); 1516 Name += Sym->getName(); 1517 Name += Suffix; 1518 MCSymbol *Stub = Ctx.getOrCreateSymbol(Name); 1519 1520 MachineModuleInfoImpl::StubValueTy &StubSym = MachOMMI.getGVStubEntry(Stub); 1521 1522 if (!StubSym.getPointer()) 1523 StubSym = MachineModuleInfoImpl::StubValueTy(const_cast<MCSymbol *>(Sym), 1524 !GV->hasLocalLinkage()); 1525 1526 const MCExpr *BSymExpr = 1527 MCSymbolRefExpr::create(BaseSym, MCSymbolRefExpr::VK_None, Ctx); 1528 const MCExpr *LHS = 1529 MCSymbolRefExpr::create(Stub, MCSymbolRefExpr::VK_None, Ctx); 1530 1531 if (!Offset) 1532 return MCBinaryExpr::createSub(LHS, BSymExpr, Ctx); 1533 1534 const MCExpr *RHS = 1535 MCBinaryExpr::createAdd(BSymExpr, MCConstantExpr::create(Offset, Ctx), Ctx); 1536 return MCBinaryExpr::createSub(LHS, RHS, Ctx); 1537 } 1538 1539 static bool canUsePrivateLabel(const MCAsmInfo &AsmInfo, 1540 const MCSection &Section) { 1541 if (!AsmInfo.isSectionAtomizableBySymbols(Section)) 1542 return true; 1543 1544 // FIXME: we should be able to use private labels for sections that can't be 1545 // dead-stripped (there's no issue with blocking atomization there), but `ld 1546 // -r` sometimes drops the no_dead_strip attribute from sections so for safety 1547 // we don't allow it. 1548 return false; 1549 } 1550 1551 void TargetLoweringObjectFileMachO::getNameWithPrefix( 1552 SmallVectorImpl<char> &OutName, const GlobalValue *GV, 1553 const TargetMachine &TM) const { 1554 bool CannotUsePrivateLabel = true; 1555 if (auto *GO = GV->getAliaseeObject()) { 1556 SectionKind GOKind = TargetLoweringObjectFile::getKindForGlobal(GO, TM); 1557 const MCSection *TheSection = SectionForGlobal(GO, GOKind, TM); 1558 CannotUsePrivateLabel = 1559 !canUsePrivateLabel(*TM.getMCAsmInfo(), *TheSection); 1560 } 1561 getMangler().getNameWithPrefix(OutName, GV, CannotUsePrivateLabel); 1562 } 1563 1564 //===----------------------------------------------------------------------===// 1565 // COFF 1566 //===----------------------------------------------------------------------===// 1567 1568 static unsigned 1569 getCOFFSectionFlags(SectionKind K, const TargetMachine &TM) { 1570 unsigned Flags = 0; 1571 bool isThumb = TM.getTargetTriple().getArch() == Triple::thumb; 1572 1573 if (K.isMetadata()) 1574 Flags |= 1575 COFF::IMAGE_SCN_MEM_DISCARDABLE; 1576 else if (K.isExclude()) 1577 Flags |= 1578 COFF::IMAGE_SCN_LNK_REMOVE | COFF::IMAGE_SCN_MEM_DISCARDABLE; 1579 else if (K.isText()) 1580 Flags |= 1581 COFF::IMAGE_SCN_MEM_EXECUTE | 1582 COFF::IMAGE_SCN_MEM_READ | 1583 COFF::IMAGE_SCN_CNT_CODE | 1584 (isThumb ? COFF::IMAGE_SCN_MEM_16BIT : (COFF::SectionCharacteristics)0); 1585 else if (K.isBSS()) 1586 Flags |= 1587 COFF::IMAGE_SCN_CNT_UNINITIALIZED_DATA | 1588 COFF::IMAGE_SCN_MEM_READ | 1589 COFF::IMAGE_SCN_MEM_WRITE; 1590 else if (K.isThreadLocal()) 1591 Flags |= 1592 COFF::IMAGE_SCN_CNT_INITIALIZED_DATA | 1593 COFF::IMAGE_SCN_MEM_READ | 1594 COFF::IMAGE_SCN_MEM_WRITE; 1595 else if (K.isReadOnly() || K.isReadOnlyWithRel()) 1596 Flags |= 1597 COFF::IMAGE_SCN_CNT_INITIALIZED_DATA | 1598 COFF::IMAGE_SCN_MEM_READ; 1599 else if (K.isWriteable()) 1600 Flags |= 1601 COFF::IMAGE_SCN_CNT_INITIALIZED_DATA | 1602 COFF::IMAGE_SCN_MEM_READ | 1603 COFF::IMAGE_SCN_MEM_WRITE; 1604 1605 return Flags; 1606 } 1607 1608 static const GlobalValue *getComdatGVForCOFF(const GlobalValue *GV) { 1609 const Comdat *C = GV->getComdat(); 1610 assert(C && "expected GV to have a Comdat!"); 1611 1612 StringRef ComdatGVName = C->getName(); 1613 const GlobalValue *ComdatGV = GV->getParent()->getNamedValue(ComdatGVName); 1614 if (!ComdatGV) 1615 report_fatal_error("Associative COMDAT symbol '" + ComdatGVName + 1616 "' does not exist."); 1617 1618 if (ComdatGV->getComdat() != C) 1619 report_fatal_error("Associative COMDAT symbol '" + ComdatGVName + 1620 "' is not a key for its COMDAT."); 1621 1622 return ComdatGV; 1623 } 1624 1625 static int getSelectionForCOFF(const GlobalValue *GV) { 1626 if (const Comdat *C = GV->getComdat()) { 1627 const GlobalValue *ComdatKey = getComdatGVForCOFF(GV); 1628 if (const auto *GA = dyn_cast<GlobalAlias>(ComdatKey)) 1629 ComdatKey = GA->getAliaseeObject(); 1630 if (ComdatKey == GV) { 1631 switch (C->getSelectionKind()) { 1632 case Comdat::Any: 1633 return COFF::IMAGE_COMDAT_SELECT_ANY; 1634 case Comdat::ExactMatch: 1635 return COFF::IMAGE_COMDAT_SELECT_EXACT_MATCH; 1636 case Comdat::Largest: 1637 return COFF::IMAGE_COMDAT_SELECT_LARGEST; 1638 case Comdat::NoDeduplicate: 1639 return COFF::IMAGE_COMDAT_SELECT_NODUPLICATES; 1640 case Comdat::SameSize: 1641 return COFF::IMAGE_COMDAT_SELECT_SAME_SIZE; 1642 } 1643 } else { 1644 return COFF::IMAGE_COMDAT_SELECT_ASSOCIATIVE; 1645 } 1646 } 1647 return 0; 1648 } 1649 1650 MCSection *TargetLoweringObjectFileCOFF::getExplicitSectionGlobal( 1651 const GlobalObject *GO, SectionKind Kind, const TargetMachine &TM) const { 1652 int Selection = 0; 1653 unsigned Characteristics = getCOFFSectionFlags(Kind, TM); 1654 StringRef Name = GO->getSection(); 1655 StringRef COMDATSymName = ""; 1656 if (GO->hasComdat()) { 1657 Selection = getSelectionForCOFF(GO); 1658 const GlobalValue *ComdatGV; 1659 if (Selection == COFF::IMAGE_COMDAT_SELECT_ASSOCIATIVE) 1660 ComdatGV = getComdatGVForCOFF(GO); 1661 else 1662 ComdatGV = GO; 1663 1664 if (!ComdatGV->hasPrivateLinkage()) { 1665 MCSymbol *Sym = TM.getSymbol(ComdatGV); 1666 COMDATSymName = Sym->getName(); 1667 Characteristics |= COFF::IMAGE_SCN_LNK_COMDAT; 1668 } else { 1669 Selection = 0; 1670 } 1671 } 1672 1673 return getContext().getCOFFSection(Name, Characteristics, Kind, COMDATSymName, 1674 Selection); 1675 } 1676 1677 static StringRef getCOFFSectionNameForUniqueGlobal(SectionKind Kind) { 1678 if (Kind.isText()) 1679 return ".text"; 1680 if (Kind.isBSS()) 1681 return ".bss"; 1682 if (Kind.isThreadLocal()) 1683 return ".tls$"; 1684 if (Kind.isReadOnly() || Kind.isReadOnlyWithRel()) 1685 return ".rdata"; 1686 return ".data"; 1687 } 1688 1689 MCSection *TargetLoweringObjectFileCOFF::SelectSectionForGlobal( 1690 const GlobalObject *GO, SectionKind Kind, const TargetMachine &TM) const { 1691 // If we have -ffunction-sections then we should emit the global value to a 1692 // uniqued section specifically for it. 1693 bool EmitUniquedSection; 1694 if (Kind.isText()) 1695 EmitUniquedSection = TM.getFunctionSections(); 1696 else 1697 EmitUniquedSection = TM.getDataSections(); 1698 1699 if ((EmitUniquedSection && !Kind.isCommon()) || GO->hasComdat()) { 1700 SmallString<256> Name = getCOFFSectionNameForUniqueGlobal(Kind); 1701 1702 unsigned Characteristics = getCOFFSectionFlags(Kind, TM); 1703 1704 Characteristics |= COFF::IMAGE_SCN_LNK_COMDAT; 1705 int Selection = getSelectionForCOFF(GO); 1706 if (!Selection) 1707 Selection = COFF::IMAGE_COMDAT_SELECT_NODUPLICATES; 1708 const GlobalValue *ComdatGV; 1709 if (GO->hasComdat()) 1710 ComdatGV = getComdatGVForCOFF(GO); 1711 else 1712 ComdatGV = GO; 1713 1714 unsigned UniqueID = MCContext::GenericSectionID; 1715 if (EmitUniquedSection) 1716 UniqueID = NextUniqueID++; 1717 1718 if (!ComdatGV->hasPrivateLinkage()) { 1719 MCSymbol *Sym = TM.getSymbol(ComdatGV); 1720 StringRef COMDATSymName = Sym->getName(); 1721 1722 if (const auto *F = dyn_cast<Function>(GO)) 1723 if (std::optional<StringRef> Prefix = F->getSectionPrefix()) 1724 raw_svector_ostream(Name) << '$' << *Prefix; 1725 1726 // Append "$symbol" to the section name *before* IR-level mangling is 1727 // applied when targetting mingw. This is what GCC does, and the ld.bfd 1728 // COFF linker will not properly handle comdats otherwise. 1729 if (getContext().getTargetTriple().isWindowsGNUEnvironment()) 1730 raw_svector_ostream(Name) << '$' << ComdatGV->getName(); 1731 1732 return getContext().getCOFFSection(Name, Characteristics, Kind, 1733 COMDATSymName, Selection, UniqueID); 1734 } else { 1735 SmallString<256> TmpData; 1736 getMangler().getNameWithPrefix(TmpData, GO, /*CannotUsePrivateLabel=*/true); 1737 return getContext().getCOFFSection(Name, Characteristics, Kind, TmpData, 1738 Selection, UniqueID); 1739 } 1740 } 1741 1742 if (Kind.isText()) 1743 return TextSection; 1744 1745 if (Kind.isThreadLocal()) 1746 return TLSDataSection; 1747 1748 if (Kind.isReadOnly() || Kind.isReadOnlyWithRel()) 1749 return ReadOnlySection; 1750 1751 // Note: we claim that common symbols are put in BSSSection, but they are 1752 // really emitted with the magic .comm directive, which creates a symbol table 1753 // entry but not a section. 1754 if (Kind.isBSS() || Kind.isCommon()) 1755 return BSSSection; 1756 1757 return DataSection; 1758 } 1759 1760 void TargetLoweringObjectFileCOFF::getNameWithPrefix( 1761 SmallVectorImpl<char> &OutName, const GlobalValue *GV, 1762 const TargetMachine &TM) const { 1763 bool CannotUsePrivateLabel = false; 1764 if (GV->hasPrivateLinkage() && 1765 ((isa<Function>(GV) && TM.getFunctionSections()) || 1766 (isa<GlobalVariable>(GV) && TM.getDataSections()))) 1767 CannotUsePrivateLabel = true; 1768 1769 getMangler().getNameWithPrefix(OutName, GV, CannotUsePrivateLabel); 1770 } 1771 1772 MCSection *TargetLoweringObjectFileCOFF::getSectionForJumpTable( 1773 const Function &F, const TargetMachine &TM) const { 1774 // If the function can be removed, produce a unique section so that 1775 // the table doesn't prevent the removal. 1776 const Comdat *C = F.getComdat(); 1777 bool EmitUniqueSection = TM.getFunctionSections() || C; 1778 if (!EmitUniqueSection) 1779 return ReadOnlySection; 1780 1781 // FIXME: we should produce a symbol for F instead. 1782 if (F.hasPrivateLinkage()) 1783 return ReadOnlySection; 1784 1785 MCSymbol *Sym = TM.getSymbol(&F); 1786 StringRef COMDATSymName = Sym->getName(); 1787 1788 SectionKind Kind = SectionKind::getReadOnly(); 1789 StringRef SecName = getCOFFSectionNameForUniqueGlobal(Kind); 1790 unsigned Characteristics = getCOFFSectionFlags(Kind, TM); 1791 Characteristics |= COFF::IMAGE_SCN_LNK_COMDAT; 1792 unsigned UniqueID = NextUniqueID++; 1793 1794 return getContext().getCOFFSection( 1795 SecName, Characteristics, Kind, COMDATSymName, 1796 COFF::IMAGE_COMDAT_SELECT_ASSOCIATIVE, UniqueID); 1797 } 1798 1799 void TargetLoweringObjectFileCOFF::emitModuleMetadata(MCStreamer &Streamer, 1800 Module &M) const { 1801 emitLinkerDirectives(Streamer, M); 1802 1803 unsigned Version = 0; 1804 unsigned Flags = 0; 1805 StringRef Section; 1806 1807 GetObjCImageInfo(M, Version, Flags, Section); 1808 if (!Section.empty()) { 1809 auto &C = getContext(); 1810 auto *S = C.getCOFFSection(Section, 1811 COFF::IMAGE_SCN_CNT_INITIALIZED_DATA | 1812 COFF::IMAGE_SCN_MEM_READ, 1813 SectionKind::getReadOnly()); 1814 Streamer.switchSection(S); 1815 Streamer.emitLabel(C.getOrCreateSymbol(StringRef("OBJC_IMAGE_INFO"))); 1816 Streamer.emitInt32(Version); 1817 Streamer.emitInt32(Flags); 1818 Streamer.addBlankLine(); 1819 } 1820 1821 emitCGProfileMetadata(Streamer, M); 1822 } 1823 1824 void TargetLoweringObjectFileCOFF::emitLinkerDirectives( 1825 MCStreamer &Streamer, Module &M) const { 1826 if (NamedMDNode *LinkerOptions = M.getNamedMetadata("llvm.linker.options")) { 1827 // Emit the linker options to the linker .drectve section. According to the 1828 // spec, this section is a space-separated string containing flags for 1829 // linker. 1830 MCSection *Sec = getDrectveSection(); 1831 Streamer.switchSection(Sec); 1832 for (const auto *Option : LinkerOptions->operands()) { 1833 for (const auto &Piece : cast<MDNode>(Option)->operands()) { 1834 // Lead with a space for consistency with our dllexport implementation. 1835 std::string Directive(" "); 1836 Directive.append(std::string(cast<MDString>(Piece)->getString())); 1837 Streamer.emitBytes(Directive); 1838 } 1839 } 1840 } 1841 1842 // Emit /EXPORT: flags for each exported global as necessary. 1843 std::string Flags; 1844 for (const GlobalValue &GV : M.global_values()) { 1845 raw_string_ostream OS(Flags); 1846 emitLinkerFlagsForGlobalCOFF(OS, &GV, getContext().getTargetTriple(), 1847 getMangler()); 1848 OS.flush(); 1849 if (!Flags.empty()) { 1850 Streamer.switchSection(getDrectveSection()); 1851 Streamer.emitBytes(Flags); 1852 } 1853 Flags.clear(); 1854 } 1855 1856 // Emit /INCLUDE: flags for each used global as necessary. 1857 if (const auto *LU = M.getNamedGlobal("llvm.used")) { 1858 assert(LU->hasInitializer() && "expected llvm.used to have an initializer"); 1859 assert(isa<ArrayType>(LU->getValueType()) && 1860 "expected llvm.used to be an array type"); 1861 if (const auto *A = cast<ConstantArray>(LU->getInitializer())) { 1862 for (const Value *Op : A->operands()) { 1863 const auto *GV = cast<GlobalValue>(Op->stripPointerCasts()); 1864 // Global symbols with internal or private linkage are not visible to 1865 // the linker, and thus would cause an error when the linker tried to 1866 // preserve the symbol due to the `/include:` directive. 1867 if (GV->hasLocalLinkage()) 1868 continue; 1869 1870 raw_string_ostream OS(Flags); 1871 emitLinkerFlagsForUsedCOFF(OS, GV, getContext().getTargetTriple(), 1872 getMangler()); 1873 OS.flush(); 1874 1875 if (!Flags.empty()) { 1876 Streamer.switchSection(getDrectveSection()); 1877 Streamer.emitBytes(Flags); 1878 } 1879 Flags.clear(); 1880 } 1881 } 1882 } 1883 } 1884 1885 void TargetLoweringObjectFileCOFF::Initialize(MCContext &Ctx, 1886 const TargetMachine &TM) { 1887 TargetLoweringObjectFile::Initialize(Ctx, TM); 1888 this->TM = &TM; 1889 const Triple &T = TM.getTargetTriple(); 1890 if (T.isWindowsMSVCEnvironment() || T.isWindowsItaniumEnvironment()) { 1891 StaticCtorSection = 1892 Ctx.getCOFFSection(".CRT$XCU", COFF::IMAGE_SCN_CNT_INITIALIZED_DATA | 1893 COFF::IMAGE_SCN_MEM_READ, 1894 SectionKind::getReadOnly()); 1895 StaticDtorSection = 1896 Ctx.getCOFFSection(".CRT$XTX", COFF::IMAGE_SCN_CNT_INITIALIZED_DATA | 1897 COFF::IMAGE_SCN_MEM_READ, 1898 SectionKind::getReadOnly()); 1899 } else { 1900 StaticCtorSection = Ctx.getCOFFSection( 1901 ".ctors", COFF::IMAGE_SCN_CNT_INITIALIZED_DATA | 1902 COFF::IMAGE_SCN_MEM_READ | COFF::IMAGE_SCN_MEM_WRITE, 1903 SectionKind::getData()); 1904 StaticDtorSection = Ctx.getCOFFSection( 1905 ".dtors", COFF::IMAGE_SCN_CNT_INITIALIZED_DATA | 1906 COFF::IMAGE_SCN_MEM_READ | COFF::IMAGE_SCN_MEM_WRITE, 1907 SectionKind::getData()); 1908 } 1909 } 1910 1911 static MCSectionCOFF *getCOFFStaticStructorSection(MCContext &Ctx, 1912 const Triple &T, bool IsCtor, 1913 unsigned Priority, 1914 const MCSymbol *KeySym, 1915 MCSectionCOFF *Default) { 1916 if (T.isWindowsMSVCEnvironment() || T.isWindowsItaniumEnvironment()) { 1917 // If the priority is the default, use .CRT$XCU, possibly associative. 1918 if (Priority == 65535) 1919 return Ctx.getAssociativeCOFFSection(Default, KeySym, 0); 1920 1921 // Otherwise, we need to compute a new section name. Low priorities should 1922 // run earlier. The linker will sort sections ASCII-betically, and we need a 1923 // string that sorts between .CRT$XCA and .CRT$XCU. In the general case, we 1924 // make a name like ".CRT$XCT12345", since that runs before .CRT$XCU. Really 1925 // low priorities need to sort before 'L', since the CRT uses that 1926 // internally, so we use ".CRT$XCA00001" for them. We have a contract with 1927 // the frontend that "init_seg(compiler)" corresponds to priority 200 and 1928 // "init_seg(lib)" corresponds to priority 400, and those respectively use 1929 // 'C' and 'L' without the priority suffix. Priorities between 200 and 400 1930 // use 'C' with the priority as a suffix. 1931 SmallString<24> Name; 1932 char LastLetter = 'T'; 1933 bool AddPrioritySuffix = Priority != 200 && Priority != 400; 1934 if (Priority < 200) 1935 LastLetter = 'A'; 1936 else if (Priority < 400) 1937 LastLetter = 'C'; 1938 else if (Priority == 400) 1939 LastLetter = 'L'; 1940 raw_svector_ostream OS(Name); 1941 OS << ".CRT$X" << (IsCtor ? "C" : "T") << LastLetter; 1942 if (AddPrioritySuffix) 1943 OS << format("%05u", Priority); 1944 MCSectionCOFF *Sec = Ctx.getCOFFSection( 1945 Name, COFF::IMAGE_SCN_CNT_INITIALIZED_DATA | COFF::IMAGE_SCN_MEM_READ, 1946 SectionKind::getReadOnly()); 1947 return Ctx.getAssociativeCOFFSection(Sec, KeySym, 0); 1948 } 1949 1950 std::string Name = IsCtor ? ".ctors" : ".dtors"; 1951 if (Priority != 65535) 1952 raw_string_ostream(Name) << format(".%05u", 65535 - Priority); 1953 1954 return Ctx.getAssociativeCOFFSection( 1955 Ctx.getCOFFSection(Name, COFF::IMAGE_SCN_CNT_INITIALIZED_DATA | 1956 COFF::IMAGE_SCN_MEM_READ | 1957 COFF::IMAGE_SCN_MEM_WRITE, 1958 SectionKind::getData()), 1959 KeySym, 0); 1960 } 1961 1962 MCSection *TargetLoweringObjectFileCOFF::getStaticCtorSection( 1963 unsigned Priority, const MCSymbol *KeySym) const { 1964 return getCOFFStaticStructorSection( 1965 getContext(), getContext().getTargetTriple(), true, Priority, KeySym, 1966 cast<MCSectionCOFF>(StaticCtorSection)); 1967 } 1968 1969 MCSection *TargetLoweringObjectFileCOFF::getStaticDtorSection( 1970 unsigned Priority, const MCSymbol *KeySym) const { 1971 return getCOFFStaticStructorSection( 1972 getContext(), getContext().getTargetTriple(), false, Priority, KeySym, 1973 cast<MCSectionCOFF>(StaticDtorSection)); 1974 } 1975 1976 const MCExpr *TargetLoweringObjectFileCOFF::lowerRelativeReference( 1977 const GlobalValue *LHS, const GlobalValue *RHS, 1978 const TargetMachine &TM) const { 1979 const Triple &T = TM.getTargetTriple(); 1980 if (T.isOSCygMing()) 1981 return nullptr; 1982 1983 // Our symbols should exist in address space zero, cowardly no-op if 1984 // otherwise. 1985 if (LHS->getType()->getPointerAddressSpace() != 0 || 1986 RHS->getType()->getPointerAddressSpace() != 0) 1987 return nullptr; 1988 1989 // Both ptrtoint instructions must wrap global objects: 1990 // - Only global variables are eligible for image relative relocations. 1991 // - The subtrahend refers to the special symbol __ImageBase, a GlobalVariable. 1992 // We expect __ImageBase to be a global variable without a section, externally 1993 // defined. 1994 // 1995 // It should look something like this: @__ImageBase = external constant i8 1996 if (!isa<GlobalObject>(LHS) || !isa<GlobalVariable>(RHS) || 1997 LHS->isThreadLocal() || RHS->isThreadLocal() || 1998 RHS->getName() != "__ImageBase" || !RHS->hasExternalLinkage() || 1999 cast<GlobalVariable>(RHS)->hasInitializer() || RHS->hasSection()) 2000 return nullptr; 2001 2002 return MCSymbolRefExpr::create(TM.getSymbol(LHS), 2003 MCSymbolRefExpr::VK_COFF_IMGREL32, 2004 getContext()); 2005 } 2006 2007 static std::string APIntToHexString(const APInt &AI) { 2008 unsigned Width = (AI.getBitWidth() / 8) * 2; 2009 std::string HexString = toString(AI, 16, /*Signed=*/false); 2010 llvm::transform(HexString, HexString.begin(), tolower); 2011 unsigned Size = HexString.size(); 2012 assert(Width >= Size && "hex string is too large!"); 2013 HexString.insert(HexString.begin(), Width - Size, '0'); 2014 2015 return HexString; 2016 } 2017 2018 static std::string scalarConstantToHexString(const Constant *C) { 2019 Type *Ty = C->getType(); 2020 if (isa<UndefValue>(C)) { 2021 return APIntToHexString(APInt::getZero(Ty->getPrimitiveSizeInBits())); 2022 } else if (const auto *CFP = dyn_cast<ConstantFP>(C)) { 2023 return APIntToHexString(CFP->getValueAPF().bitcastToAPInt()); 2024 } else if (const auto *CI = dyn_cast<ConstantInt>(C)) { 2025 return APIntToHexString(CI->getValue()); 2026 } else { 2027 unsigned NumElements; 2028 if (auto *VTy = dyn_cast<VectorType>(Ty)) 2029 NumElements = cast<FixedVectorType>(VTy)->getNumElements(); 2030 else 2031 NumElements = Ty->getArrayNumElements(); 2032 std::string HexString; 2033 for (int I = NumElements - 1, E = -1; I != E; --I) 2034 HexString += scalarConstantToHexString(C->getAggregateElement(I)); 2035 return HexString; 2036 } 2037 } 2038 2039 MCSection *TargetLoweringObjectFileCOFF::getSectionForConstant( 2040 const DataLayout &DL, SectionKind Kind, const Constant *C, 2041 Align &Alignment) const { 2042 if (Kind.isMergeableConst() && C && 2043 getContext().getAsmInfo()->hasCOFFComdatConstants()) { 2044 // This creates comdat sections with the given symbol name, but unless 2045 // AsmPrinter::GetCPISymbol actually makes the symbol global, the symbol 2046 // will be created with a null storage class, which makes GNU binutils 2047 // error out. 2048 const unsigned Characteristics = COFF::IMAGE_SCN_CNT_INITIALIZED_DATA | 2049 COFF::IMAGE_SCN_MEM_READ | 2050 COFF::IMAGE_SCN_LNK_COMDAT; 2051 std::string COMDATSymName; 2052 if (Kind.isMergeableConst4()) { 2053 if (Alignment <= 4) { 2054 COMDATSymName = "__real@" + scalarConstantToHexString(C); 2055 Alignment = Align(4); 2056 } 2057 } else if (Kind.isMergeableConst8()) { 2058 if (Alignment <= 8) { 2059 COMDATSymName = "__real@" + scalarConstantToHexString(C); 2060 Alignment = Align(8); 2061 } 2062 } else if (Kind.isMergeableConst16()) { 2063 // FIXME: These may not be appropriate for non-x86 architectures. 2064 if (Alignment <= 16) { 2065 COMDATSymName = "__xmm@" + scalarConstantToHexString(C); 2066 Alignment = Align(16); 2067 } 2068 } else if (Kind.isMergeableConst32()) { 2069 if (Alignment <= 32) { 2070 COMDATSymName = "__ymm@" + scalarConstantToHexString(C); 2071 Alignment = Align(32); 2072 } 2073 } 2074 2075 if (!COMDATSymName.empty()) 2076 return getContext().getCOFFSection(".rdata", Characteristics, Kind, 2077 COMDATSymName, 2078 COFF::IMAGE_COMDAT_SELECT_ANY); 2079 } 2080 2081 return TargetLoweringObjectFile::getSectionForConstant(DL, Kind, C, 2082 Alignment); 2083 } 2084 2085 //===----------------------------------------------------------------------===// 2086 // Wasm 2087 //===----------------------------------------------------------------------===// 2088 2089 static const Comdat *getWasmComdat(const GlobalValue *GV) { 2090 const Comdat *C = GV->getComdat(); 2091 if (!C) 2092 return nullptr; 2093 2094 if (C->getSelectionKind() != Comdat::Any) 2095 report_fatal_error("WebAssembly COMDATs only support " 2096 "SelectionKind::Any, '" + C->getName() + "' cannot be " 2097 "lowered."); 2098 2099 return C; 2100 } 2101 2102 static unsigned getWasmSectionFlags(SectionKind K) { 2103 unsigned Flags = 0; 2104 2105 if (K.isThreadLocal()) 2106 Flags |= wasm::WASM_SEG_FLAG_TLS; 2107 2108 if (K.isMergeableCString()) 2109 Flags |= wasm::WASM_SEG_FLAG_STRINGS; 2110 2111 // TODO(sbc): Add suport for K.isMergeableConst() 2112 2113 return Flags; 2114 } 2115 2116 MCSection *TargetLoweringObjectFileWasm::getExplicitSectionGlobal( 2117 const GlobalObject *GO, SectionKind Kind, const TargetMachine &TM) const { 2118 // We don't support explict section names for functions in the wasm object 2119 // format. Each function has to be in its own unique section. 2120 if (isa<Function>(GO)) { 2121 return SelectSectionForGlobal(GO, Kind, TM); 2122 } 2123 2124 StringRef Name = GO->getSection(); 2125 2126 // Certain data sections we treat as named custom sections rather than 2127 // segments within the data section. 2128 // This could be avoided if all data segements (the wasm sense) were 2129 // represented as their own sections (in the llvm sense). 2130 // TODO(sbc): https://github.com/WebAssembly/tool-conventions/issues/138 2131 if (Name == ".llvmcmd" || Name == ".llvmbc") 2132 Kind = SectionKind::getMetadata(); 2133 2134 StringRef Group = ""; 2135 if (const Comdat *C = getWasmComdat(GO)) { 2136 Group = C->getName(); 2137 } 2138 2139 unsigned Flags = getWasmSectionFlags(Kind); 2140 MCSectionWasm *Section = getContext().getWasmSection( 2141 Name, Kind, Flags, Group, MCContext::GenericSectionID); 2142 2143 return Section; 2144 } 2145 2146 static MCSectionWasm *selectWasmSectionForGlobal( 2147 MCContext &Ctx, const GlobalObject *GO, SectionKind Kind, Mangler &Mang, 2148 const TargetMachine &TM, bool EmitUniqueSection, unsigned *NextUniqueID) { 2149 StringRef Group = ""; 2150 if (const Comdat *C = getWasmComdat(GO)) { 2151 Group = C->getName(); 2152 } 2153 2154 bool UniqueSectionNames = TM.getUniqueSectionNames(); 2155 SmallString<128> Name = getSectionPrefixForGlobal(Kind); 2156 2157 if (const auto *F = dyn_cast<Function>(GO)) { 2158 const auto &OptionalPrefix = F->getSectionPrefix(); 2159 if (OptionalPrefix) 2160 raw_svector_ostream(Name) << '.' << *OptionalPrefix; 2161 } 2162 2163 if (EmitUniqueSection && UniqueSectionNames) { 2164 Name.push_back('.'); 2165 TM.getNameWithPrefix(Name, GO, Mang, true); 2166 } 2167 unsigned UniqueID = MCContext::GenericSectionID; 2168 if (EmitUniqueSection && !UniqueSectionNames) { 2169 UniqueID = *NextUniqueID; 2170 (*NextUniqueID)++; 2171 } 2172 2173 unsigned Flags = getWasmSectionFlags(Kind); 2174 return Ctx.getWasmSection(Name, Kind, Flags, Group, UniqueID); 2175 } 2176 2177 MCSection *TargetLoweringObjectFileWasm::SelectSectionForGlobal( 2178 const GlobalObject *GO, SectionKind Kind, const TargetMachine &TM) const { 2179 2180 if (Kind.isCommon()) 2181 report_fatal_error("mergable sections not supported yet on wasm"); 2182 2183 // If we have -ffunction-section or -fdata-section then we should emit the 2184 // global value to a uniqued section specifically for it. 2185 bool EmitUniqueSection = false; 2186 if (Kind.isText()) 2187 EmitUniqueSection = TM.getFunctionSections(); 2188 else 2189 EmitUniqueSection = TM.getDataSections(); 2190 EmitUniqueSection |= GO->hasComdat(); 2191 2192 return selectWasmSectionForGlobal(getContext(), GO, Kind, getMangler(), TM, 2193 EmitUniqueSection, &NextUniqueID); 2194 } 2195 2196 bool TargetLoweringObjectFileWasm::shouldPutJumpTableInFunctionSection( 2197 bool UsesLabelDifference, const Function &F) const { 2198 // We can always create relative relocations, so use another section 2199 // that can be marked non-executable. 2200 return false; 2201 } 2202 2203 const MCExpr *TargetLoweringObjectFileWasm::lowerRelativeReference( 2204 const GlobalValue *LHS, const GlobalValue *RHS, 2205 const TargetMachine &TM) const { 2206 // We may only use a PLT-relative relocation to refer to unnamed_addr 2207 // functions. 2208 if (!LHS->hasGlobalUnnamedAddr() || !LHS->getValueType()->isFunctionTy()) 2209 return nullptr; 2210 2211 // Basic correctness checks. 2212 if (LHS->getType()->getPointerAddressSpace() != 0 || 2213 RHS->getType()->getPointerAddressSpace() != 0 || LHS->isThreadLocal() || 2214 RHS->isThreadLocal()) 2215 return nullptr; 2216 2217 return MCBinaryExpr::createSub( 2218 MCSymbolRefExpr::create(TM.getSymbol(LHS), MCSymbolRefExpr::VK_None, 2219 getContext()), 2220 MCSymbolRefExpr::create(TM.getSymbol(RHS), getContext()), getContext()); 2221 } 2222 2223 void TargetLoweringObjectFileWasm::InitializeWasm() { 2224 StaticCtorSection = 2225 getContext().getWasmSection(".init_array", SectionKind::getData()); 2226 2227 // We don't use PersonalityEncoding and LSDAEncoding because we don't emit 2228 // .cfi directives. We use TTypeEncoding to encode typeinfo global variables. 2229 TTypeEncoding = dwarf::DW_EH_PE_absptr; 2230 } 2231 2232 MCSection *TargetLoweringObjectFileWasm::getStaticCtorSection( 2233 unsigned Priority, const MCSymbol *KeySym) const { 2234 return Priority == UINT16_MAX ? 2235 StaticCtorSection : 2236 getContext().getWasmSection(".init_array." + utostr(Priority), 2237 SectionKind::getData()); 2238 } 2239 2240 MCSection *TargetLoweringObjectFileWasm::getStaticDtorSection( 2241 unsigned Priority, const MCSymbol *KeySym) const { 2242 report_fatal_error("@llvm.global_dtors should have been lowered already"); 2243 } 2244 2245 //===----------------------------------------------------------------------===// 2246 // XCOFF 2247 //===----------------------------------------------------------------------===// 2248 bool TargetLoweringObjectFileXCOFF::ShouldEmitEHBlock( 2249 const MachineFunction *MF) { 2250 if (!MF->getLandingPads().empty()) 2251 return true; 2252 2253 const Function &F = MF->getFunction(); 2254 if (!F.hasPersonalityFn() || !F.needsUnwindTableEntry()) 2255 return false; 2256 2257 const GlobalValue *Per = 2258 dyn_cast<GlobalValue>(F.getPersonalityFn()->stripPointerCasts()); 2259 assert(Per && "Personality routine is not a GlobalValue type."); 2260 if (isNoOpWithoutInvoke(classifyEHPersonality(Per))) 2261 return false; 2262 2263 return true; 2264 } 2265 2266 bool TargetLoweringObjectFileXCOFF::ShouldSetSSPCanaryBitInTB( 2267 const MachineFunction *MF) { 2268 const Function &F = MF->getFunction(); 2269 if (!F.hasStackProtectorFnAttr()) 2270 return false; 2271 // FIXME: check presence of canary word 2272 // There are cases that the stack protectors are not really inserted even if 2273 // the attributes are on. 2274 return true; 2275 } 2276 2277 MCSymbol * 2278 TargetLoweringObjectFileXCOFF::getEHInfoTableSymbol(const MachineFunction *MF) { 2279 return MF->getMMI().getContext().getOrCreateSymbol( 2280 "__ehinfo." + Twine(MF->getFunctionNumber())); 2281 } 2282 2283 MCSymbol * 2284 TargetLoweringObjectFileXCOFF::getTargetSymbol(const GlobalValue *GV, 2285 const TargetMachine &TM) const { 2286 // We always use a qualname symbol for a GV that represents 2287 // a declaration, a function descriptor, or a common symbol. 2288 // If a GV represents a GlobalVariable and -fdata-sections is enabled, we 2289 // also return a qualname so that a label symbol could be avoided. 2290 // It is inherently ambiguous when the GO represents the address of a 2291 // function, as the GO could either represent a function descriptor or a 2292 // function entry point. We choose to always return a function descriptor 2293 // here. 2294 if (const GlobalObject *GO = dyn_cast<GlobalObject>(GV)) { 2295 if (GO->isDeclarationForLinker()) 2296 return cast<MCSectionXCOFF>(getSectionForExternalReference(GO, TM)) 2297 ->getQualNameSymbol(); 2298 2299 if (const GlobalVariable *GVar = dyn_cast<GlobalVariable>(GV)) 2300 if (GVar->hasAttribute("toc-data")) 2301 return cast<MCSectionXCOFF>( 2302 SectionForGlobal(GVar, SectionKind::getData(), TM)) 2303 ->getQualNameSymbol(); 2304 2305 SectionKind GOKind = getKindForGlobal(GO, TM); 2306 if (GOKind.isText()) 2307 return cast<MCSectionXCOFF>( 2308 getSectionForFunctionDescriptor(cast<Function>(GO), TM)) 2309 ->getQualNameSymbol(); 2310 if ((TM.getDataSections() && !GO->hasSection()) || GO->hasCommonLinkage() || 2311 GOKind.isBSSLocal() || GOKind.isThreadBSSLocal()) 2312 return cast<MCSectionXCOFF>(SectionForGlobal(GO, GOKind, TM)) 2313 ->getQualNameSymbol(); 2314 } 2315 2316 // For all other cases, fall back to getSymbol to return the unqualified name. 2317 return nullptr; 2318 } 2319 2320 MCSection *TargetLoweringObjectFileXCOFF::getExplicitSectionGlobal( 2321 const GlobalObject *GO, SectionKind Kind, const TargetMachine &TM) const { 2322 if (!GO->hasSection()) 2323 report_fatal_error("#pragma clang section is not yet supported"); 2324 2325 StringRef SectionName = GO->getSection(); 2326 2327 // Handle the XCOFF::TD case first, then deal with the rest. 2328 if (const GlobalVariable *GVar = dyn_cast<GlobalVariable>(GO)) 2329 if (GVar->hasAttribute("toc-data")) 2330 return getContext().getXCOFFSection( 2331 SectionName, Kind, 2332 XCOFF::CsectProperties(/*MappingClass*/ XCOFF::XMC_TD, XCOFF::XTY_SD), 2333 /* MultiSymbolsAllowed*/ true); 2334 2335 XCOFF::StorageMappingClass MappingClass; 2336 if (Kind.isText()) 2337 MappingClass = XCOFF::XMC_PR; 2338 else if (Kind.isData() || Kind.isReadOnlyWithRel() || Kind.isBSS()) 2339 MappingClass = XCOFF::XMC_RW; 2340 else if (Kind.isReadOnly()) 2341 MappingClass = XCOFF::XMC_RO; 2342 else 2343 report_fatal_error("XCOFF other section types not yet implemented."); 2344 2345 return getContext().getXCOFFSection( 2346 SectionName, Kind, XCOFF::CsectProperties(MappingClass, XCOFF::XTY_SD), 2347 /* MultiSymbolsAllowed*/ true); 2348 } 2349 2350 MCSection *TargetLoweringObjectFileXCOFF::getSectionForExternalReference( 2351 const GlobalObject *GO, const TargetMachine &TM) const { 2352 assert(GO->isDeclarationForLinker() && 2353 "Tried to get ER section for a defined global."); 2354 2355 SmallString<128> Name; 2356 getNameWithPrefix(Name, GO, TM); 2357 2358 XCOFF::StorageMappingClass SMC = 2359 isa<Function>(GO) ? XCOFF::XMC_DS : XCOFF::XMC_UA; 2360 if (GO->isThreadLocal()) 2361 SMC = XCOFF::XMC_UL; 2362 2363 if (const GlobalVariable *GVar = dyn_cast<GlobalVariable>(GO)) 2364 if (GVar->hasAttribute("toc-data")) 2365 SMC = XCOFF::XMC_TD; 2366 2367 // Externals go into a csect of type ER. 2368 return getContext().getXCOFFSection( 2369 Name, SectionKind::getMetadata(), 2370 XCOFF::CsectProperties(SMC, XCOFF::XTY_ER)); 2371 } 2372 2373 MCSection *TargetLoweringObjectFileXCOFF::SelectSectionForGlobal( 2374 const GlobalObject *GO, SectionKind Kind, const TargetMachine &TM) const { 2375 // Handle the XCOFF::TD case first, then deal with the rest. 2376 if (const GlobalVariable *GVar = dyn_cast<GlobalVariable>(GO)) 2377 if (GVar->hasAttribute("toc-data")) { 2378 SmallString<128> Name; 2379 getNameWithPrefix(Name, GO, TM); 2380 return getContext().getXCOFFSection( 2381 Name, Kind, XCOFF::CsectProperties(XCOFF::XMC_TD, XCOFF::XTY_SD), 2382 /* MultiSymbolsAllowed*/ true); 2383 } 2384 2385 // Common symbols go into a csect with matching name which will get mapped 2386 // into the .bss section. 2387 // Zero-initialized local TLS symbols go into a csect with matching name which 2388 // will get mapped into the .tbss section. 2389 if (Kind.isBSSLocal() || GO->hasCommonLinkage() || Kind.isThreadBSSLocal()) { 2390 SmallString<128> Name; 2391 getNameWithPrefix(Name, GO, TM); 2392 XCOFF::StorageMappingClass SMC = Kind.isBSSLocal() ? XCOFF::XMC_BS 2393 : Kind.isCommon() ? XCOFF::XMC_RW 2394 : XCOFF::XMC_UL; 2395 return getContext().getXCOFFSection( 2396 Name, Kind, XCOFF::CsectProperties(SMC, XCOFF::XTY_CM)); 2397 } 2398 2399 if (Kind.isMergeableCString()) { 2400 Align Alignment = GO->getParent()->getDataLayout().getPreferredAlign( 2401 cast<GlobalVariable>(GO)); 2402 2403 unsigned EntrySize = getEntrySizeForKind(Kind); 2404 std::string SizeSpec = ".rodata.str" + utostr(EntrySize) + "."; 2405 SmallString<128> Name; 2406 Name = SizeSpec + utostr(Alignment.value()); 2407 2408 if (TM.getDataSections()) 2409 getNameWithPrefix(Name, GO, TM); 2410 2411 return getContext().getXCOFFSection( 2412 Name, Kind, XCOFF::CsectProperties(XCOFF::XMC_RO, XCOFF::XTY_SD), 2413 /* MultiSymbolsAllowed*/ !TM.getDataSections()); 2414 } 2415 2416 if (Kind.isText()) { 2417 if (TM.getFunctionSections()) { 2418 return cast<MCSymbolXCOFF>(getFunctionEntryPointSymbol(GO, TM)) 2419 ->getRepresentedCsect(); 2420 } 2421 return TextSection; 2422 } 2423 2424 // TODO: We may put Kind.isReadOnlyWithRel() under option control, because 2425 // user may want to have read-only data with relocations placed into a 2426 // read-only section by the compiler. 2427 // For BSS kind, zero initialized data must be emitted to the .data section 2428 // because external linkage control sections that get mapped to the .bss 2429 // section will be linked as tentative defintions, which is only appropriate 2430 // for SectionKind::Common. 2431 if (Kind.isData() || Kind.isReadOnlyWithRel() || Kind.isBSS()) { 2432 if (TM.getDataSections()) { 2433 SmallString<128> Name; 2434 getNameWithPrefix(Name, GO, TM); 2435 return getContext().getXCOFFSection( 2436 Name, SectionKind::getData(), 2437 XCOFF::CsectProperties(XCOFF::XMC_RW, XCOFF::XTY_SD)); 2438 } 2439 return DataSection; 2440 } 2441 2442 if (Kind.isReadOnly()) { 2443 if (TM.getDataSections()) { 2444 SmallString<128> Name; 2445 getNameWithPrefix(Name, GO, TM); 2446 return getContext().getXCOFFSection( 2447 Name, SectionKind::getReadOnly(), 2448 XCOFF::CsectProperties(XCOFF::XMC_RO, XCOFF::XTY_SD)); 2449 } 2450 return ReadOnlySection; 2451 } 2452 2453 // External/weak TLS data and initialized local TLS data are not eligible 2454 // to be put into common csect. If data sections are enabled, thread 2455 // data are emitted into separate sections. Otherwise, thread data 2456 // are emitted into the .tdata section. 2457 if (Kind.isThreadLocal()) { 2458 if (TM.getDataSections()) { 2459 SmallString<128> Name; 2460 getNameWithPrefix(Name, GO, TM); 2461 return getContext().getXCOFFSection( 2462 Name, Kind, XCOFF::CsectProperties(XCOFF::XMC_TL, XCOFF::XTY_SD)); 2463 } 2464 return TLSDataSection; 2465 } 2466 2467 report_fatal_error("XCOFF other section types not yet implemented."); 2468 } 2469 2470 MCSection *TargetLoweringObjectFileXCOFF::getSectionForJumpTable( 2471 const Function &F, const TargetMachine &TM) const { 2472 assert (!F.getComdat() && "Comdat not supported on XCOFF."); 2473 2474 if (!TM.getFunctionSections()) 2475 return ReadOnlySection; 2476 2477 // If the function can be removed, produce a unique section so that 2478 // the table doesn't prevent the removal. 2479 SmallString<128> NameStr(".rodata.jmp.."); 2480 getNameWithPrefix(NameStr, &F, TM); 2481 return getContext().getXCOFFSection( 2482 NameStr, SectionKind::getReadOnly(), 2483 XCOFF::CsectProperties(XCOFF::XMC_RO, XCOFF::XTY_SD)); 2484 } 2485 2486 bool TargetLoweringObjectFileXCOFF::shouldPutJumpTableInFunctionSection( 2487 bool UsesLabelDifference, const Function &F) const { 2488 return false; 2489 } 2490 2491 /// Given a mergeable constant with the specified size and relocation 2492 /// information, return a section that it should be placed in. 2493 MCSection *TargetLoweringObjectFileXCOFF::getSectionForConstant( 2494 const DataLayout &DL, SectionKind Kind, const Constant *C, 2495 Align &Alignment) const { 2496 // TODO: Enable emiting constant pool to unique sections when we support it. 2497 if (Alignment > Align(16)) 2498 report_fatal_error("Alignments greater than 16 not yet supported."); 2499 2500 if (Alignment == Align(8)) { 2501 assert(ReadOnly8Section && "Section should always be initialized."); 2502 return ReadOnly8Section; 2503 } 2504 2505 if (Alignment == Align(16)) { 2506 assert(ReadOnly16Section && "Section should always be initialized."); 2507 return ReadOnly16Section; 2508 } 2509 2510 return ReadOnlySection; 2511 } 2512 2513 void TargetLoweringObjectFileXCOFF::Initialize(MCContext &Ctx, 2514 const TargetMachine &TgtM) { 2515 TargetLoweringObjectFile::Initialize(Ctx, TgtM); 2516 TTypeEncoding = 2517 dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_datarel | 2518 (TgtM.getTargetTriple().isArch32Bit() ? dwarf::DW_EH_PE_sdata4 2519 : dwarf::DW_EH_PE_sdata8); 2520 PersonalityEncoding = 0; 2521 LSDAEncoding = 0; 2522 CallSiteEncoding = dwarf::DW_EH_PE_udata4; 2523 2524 // AIX debug for thread local location is not ready. And for integrated as 2525 // mode, the relocatable address for the thread local variable will cause 2526 // linker error. So disable the location attribute generation for thread local 2527 // variables for now. 2528 // FIXME: when TLS debug on AIX is ready, remove this setting. 2529 SupportDebugThreadLocalLocation = false; 2530 } 2531 2532 MCSection *TargetLoweringObjectFileXCOFF::getStaticCtorSection( 2533 unsigned Priority, const MCSymbol *KeySym) const { 2534 report_fatal_error("no static constructor section on AIX"); 2535 } 2536 2537 MCSection *TargetLoweringObjectFileXCOFF::getStaticDtorSection( 2538 unsigned Priority, const MCSymbol *KeySym) const { 2539 report_fatal_error("no static destructor section on AIX"); 2540 } 2541 2542 const MCExpr *TargetLoweringObjectFileXCOFF::lowerRelativeReference( 2543 const GlobalValue *LHS, const GlobalValue *RHS, 2544 const TargetMachine &TM) const { 2545 /* Not implemented yet, but don't crash, return nullptr. */ 2546 return nullptr; 2547 } 2548 2549 XCOFF::StorageClass 2550 TargetLoweringObjectFileXCOFF::getStorageClassForGlobal(const GlobalValue *GV) { 2551 assert(!isa<GlobalIFunc>(GV) && "GlobalIFunc is not supported on AIX."); 2552 2553 switch (GV->getLinkage()) { 2554 case GlobalValue::InternalLinkage: 2555 case GlobalValue::PrivateLinkage: 2556 return XCOFF::C_HIDEXT; 2557 case GlobalValue::ExternalLinkage: 2558 case GlobalValue::CommonLinkage: 2559 case GlobalValue::AvailableExternallyLinkage: 2560 return XCOFF::C_EXT; 2561 case GlobalValue::ExternalWeakLinkage: 2562 case GlobalValue::LinkOnceAnyLinkage: 2563 case GlobalValue::LinkOnceODRLinkage: 2564 case GlobalValue::WeakAnyLinkage: 2565 case GlobalValue::WeakODRLinkage: 2566 return XCOFF::C_WEAKEXT; 2567 case GlobalValue::AppendingLinkage: 2568 report_fatal_error( 2569 "There is no mapping that implements AppendingLinkage for XCOFF."); 2570 } 2571 llvm_unreachable("Unknown linkage type!"); 2572 } 2573 2574 MCSymbol *TargetLoweringObjectFileXCOFF::getFunctionEntryPointSymbol( 2575 const GlobalValue *Func, const TargetMachine &TM) const { 2576 assert((isa<Function>(Func) || 2577 (isa<GlobalAlias>(Func) && 2578 isa_and_nonnull<Function>( 2579 cast<GlobalAlias>(Func)->getAliaseeObject()))) && 2580 "Func must be a function or an alias which has a function as base " 2581 "object."); 2582 2583 SmallString<128> NameStr; 2584 NameStr.push_back('.'); 2585 getNameWithPrefix(NameStr, Func, TM); 2586 2587 // When -function-sections is enabled and explicit section is not specified, 2588 // it's not necessary to emit function entry point label any more. We will use 2589 // function entry point csect instead. And for function delcarations, the 2590 // undefined symbols gets treated as csect with XTY_ER property. 2591 if (((TM.getFunctionSections() && !Func->hasSection()) || 2592 Func->isDeclaration()) && 2593 isa<Function>(Func)) { 2594 return getContext() 2595 .getXCOFFSection( 2596 NameStr, SectionKind::getText(), 2597 XCOFF::CsectProperties(XCOFF::XMC_PR, Func->isDeclaration() 2598 ? XCOFF::XTY_ER 2599 : XCOFF::XTY_SD)) 2600 ->getQualNameSymbol(); 2601 } 2602 2603 return getContext().getOrCreateSymbol(NameStr); 2604 } 2605 2606 MCSection *TargetLoweringObjectFileXCOFF::getSectionForFunctionDescriptor( 2607 const Function *F, const TargetMachine &TM) const { 2608 SmallString<128> NameStr; 2609 getNameWithPrefix(NameStr, F, TM); 2610 return getContext().getXCOFFSection( 2611 NameStr, SectionKind::getData(), 2612 XCOFF::CsectProperties(XCOFF::XMC_DS, XCOFF::XTY_SD)); 2613 } 2614 2615 MCSection *TargetLoweringObjectFileXCOFF::getSectionForTOCEntry( 2616 const MCSymbol *Sym, const TargetMachine &TM) const { 2617 // Use TE storage-mapping class when large code model is enabled so that 2618 // the chance of needing -bbigtoc is decreased. 2619 return getContext().getXCOFFSection( 2620 cast<MCSymbolXCOFF>(Sym)->getSymbolTableName(), SectionKind::getData(), 2621 XCOFF::CsectProperties( 2622 TM.getCodeModel() == CodeModel::Large ? XCOFF::XMC_TE : XCOFF::XMC_TC, 2623 XCOFF::XTY_SD)); 2624 } 2625 2626 MCSection *TargetLoweringObjectFileXCOFF::getSectionForLSDA( 2627 const Function &F, const MCSymbol &FnSym, const TargetMachine &TM) const { 2628 auto *LSDA = cast<MCSectionXCOFF>(LSDASection); 2629 if (TM.getFunctionSections()) { 2630 // If option -ffunction-sections is on, append the function name to the 2631 // name of the LSDA csect so that each function has its own LSDA csect. 2632 // This helps the linker to garbage-collect EH info of unused functions. 2633 SmallString<128> NameStr = LSDA->getName(); 2634 raw_svector_ostream(NameStr) << '.' << F.getName(); 2635 LSDA = getContext().getXCOFFSection(NameStr, LSDA->getKind(), 2636 LSDA->getCsectProp()); 2637 } 2638 return LSDA; 2639 } 2640 //===----------------------------------------------------------------------===// 2641 // GOFF 2642 //===----------------------------------------------------------------------===// 2643 TargetLoweringObjectFileGOFF::TargetLoweringObjectFileGOFF() = default; 2644 2645 MCSection *TargetLoweringObjectFileGOFF::getExplicitSectionGlobal( 2646 const GlobalObject *GO, SectionKind Kind, const TargetMachine &TM) const { 2647 return SelectSectionForGlobal(GO, Kind, TM); 2648 } 2649 2650 MCSection *TargetLoweringObjectFileGOFF::SelectSectionForGlobal( 2651 const GlobalObject *GO, SectionKind Kind, const TargetMachine &TM) const { 2652 auto *Symbol = TM.getSymbol(GO); 2653 if (Kind.isBSS()) 2654 return getContext().getGOFFSection(Symbol->getName(), SectionKind::getBSS(), 2655 nullptr, nullptr); 2656 2657 return getContext().getObjectFileInfo()->getTextSection(); 2658 } 2659