1 //===--- Gnu.cpp - Gnu Tool and ToolChain Implementations -------*- C++ -*-===// 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 #include "Gnu.h" 10 #include "Arch/ARM.h" 11 #include "Arch/Mips.h" 12 #include "Arch/PPC.h" 13 #include "Arch/RISCV.h" 14 #include "Arch/Sparc.h" 15 #include "Arch/SystemZ.h" 16 #include "CommonArgs.h" 17 #include "Linux.h" 18 #include "clang/Config/config.h" // for GCC_INSTALL_PREFIX 19 #include "clang/Driver/Compilation.h" 20 #include "clang/Driver/Driver.h" 21 #include "clang/Driver/DriverDiagnostic.h" 22 #include "clang/Driver/Options.h" 23 #include "clang/Driver/Tool.h" 24 #include "clang/Driver/ToolChain.h" 25 #include "llvm/Option/ArgList.h" 26 #include "llvm/Support/CodeGen.h" 27 #include "llvm/Support/Path.h" 28 #include "llvm/Support/TargetParser.h" 29 #include "llvm/Support/VirtualFileSystem.h" 30 #include <system_error> 31 32 using namespace clang::driver; 33 using namespace clang::driver::toolchains; 34 using namespace clang; 35 using namespace llvm::opt; 36 37 using tools::addMultilibFlag; 38 using tools::addPathIfExists; 39 40 static bool forwardToGCC(const Option &O) { 41 // LinkerInput options have been forwarded. Don't duplicate. 42 if (O.hasFlag(options::LinkerInput)) 43 return false; 44 return O.matches(options::OPT_Link_Group) || O.hasFlag(options::LinkOption); 45 } 46 47 // Switch CPU names not recognized by GNU assembler to a close CPU that it does 48 // recognize, instead of a lower march from being picked in the absence of a cpu 49 // flag. 50 static void normalizeCPUNamesForAssembler(const ArgList &Args, 51 ArgStringList &CmdArgs) { 52 if (Arg *A = Args.getLastArg(options::OPT_mcpu_EQ)) { 53 StringRef CPUArg(A->getValue()); 54 if (CPUArg.equals_insensitive("krait")) 55 CmdArgs.push_back("-mcpu=cortex-a15"); 56 else if (CPUArg.equals_insensitive("kryo")) 57 CmdArgs.push_back("-mcpu=cortex-a57"); 58 else 59 Args.AddLastArg(CmdArgs, options::OPT_mcpu_EQ); 60 } 61 } 62 63 void tools::gcc::Common::ConstructJob(Compilation &C, const JobAction &JA, 64 const InputInfo &Output, 65 const InputInfoList &Inputs, 66 const ArgList &Args, 67 const char *LinkingOutput) const { 68 const Driver &D = getToolChain().getDriver(); 69 ArgStringList CmdArgs; 70 71 for (const auto &A : Args) { 72 if (forwardToGCC(A->getOption())) { 73 // It is unfortunate that we have to claim here, as this means 74 // we will basically never report anything interesting for 75 // platforms using a generic gcc, even if we are just using gcc 76 // to get to the assembler. 77 A->claim(); 78 79 A->render(Args, CmdArgs); 80 } 81 } 82 83 RenderExtraToolArgs(JA, CmdArgs); 84 85 // If using a driver driver, force the arch. 86 if (getToolChain().getTriple().isOSDarwin()) { 87 CmdArgs.push_back("-arch"); 88 CmdArgs.push_back( 89 Args.MakeArgString(getToolChain().getDefaultUniversalArchName())); 90 } 91 92 // Try to force gcc to match the tool chain we want, if we recognize 93 // the arch. 94 // 95 // FIXME: The triple class should directly provide the information we want 96 // here. 97 switch (getToolChain().getArch()) { 98 default: 99 break; 100 case llvm::Triple::x86: 101 case llvm::Triple::ppc: 102 case llvm::Triple::ppcle: 103 CmdArgs.push_back("-m32"); 104 break; 105 case llvm::Triple::x86_64: 106 case llvm::Triple::ppc64: 107 case llvm::Triple::ppc64le: 108 CmdArgs.push_back("-m64"); 109 break; 110 case llvm::Triple::sparcel: 111 CmdArgs.push_back("-EL"); 112 break; 113 } 114 115 if (Output.isFilename()) { 116 CmdArgs.push_back("-o"); 117 CmdArgs.push_back(Output.getFilename()); 118 } else { 119 assert(Output.isNothing() && "Unexpected output"); 120 CmdArgs.push_back("-fsyntax-only"); 121 } 122 123 Args.AddAllArgValues(CmdArgs, options::OPT_Wa_COMMA, options::OPT_Xassembler); 124 125 // Only pass -x if gcc will understand it; otherwise hope gcc 126 // understands the suffix correctly. The main use case this would go 127 // wrong in is for linker inputs if they happened to have an odd 128 // suffix; really the only way to get this to happen is a command 129 // like '-x foobar a.c' which will treat a.c like a linker input. 130 // 131 // FIXME: For the linker case specifically, can we safely convert 132 // inputs into '-Wl,' options? 133 for (const auto &II : Inputs) { 134 // Don't try to pass LLVM or AST inputs to a generic gcc. 135 if (types::isLLVMIR(II.getType())) 136 D.Diag(clang::diag::err_drv_no_linker_llvm_support) 137 << getToolChain().getTripleString(); 138 else if (II.getType() == types::TY_AST) 139 D.Diag(diag::err_drv_no_ast_support) << getToolChain().getTripleString(); 140 else if (II.getType() == types::TY_ModuleFile) 141 D.Diag(diag::err_drv_no_module_support) 142 << getToolChain().getTripleString(); 143 144 if (types::canTypeBeUserSpecified(II.getType())) { 145 CmdArgs.push_back("-x"); 146 CmdArgs.push_back(types::getTypeName(II.getType())); 147 } 148 149 if (II.isFilename()) 150 CmdArgs.push_back(II.getFilename()); 151 else { 152 const Arg &A = II.getInputArg(); 153 154 // Reverse translate some rewritten options. 155 if (A.getOption().matches(options::OPT_Z_reserved_lib_stdcxx)) { 156 CmdArgs.push_back("-lstdc++"); 157 continue; 158 } 159 160 // Don't render as input, we need gcc to do the translations. 161 A.render(Args, CmdArgs); 162 } 163 } 164 165 const std::string &customGCCName = D.getCCCGenericGCCName(); 166 const char *GCCName; 167 if (!customGCCName.empty()) 168 GCCName = customGCCName.c_str(); 169 else if (D.CCCIsCXX()) { 170 GCCName = "g++"; 171 } else 172 GCCName = "gcc"; 173 174 const char *Exec = Args.MakeArgString(getToolChain().GetProgramPath(GCCName)); 175 C.addCommand(std::make_unique<Command>(JA, *this, 176 ResponseFileSupport::AtFileCurCP(), 177 Exec, CmdArgs, Inputs, Output)); 178 } 179 180 void tools::gcc::Preprocessor::RenderExtraToolArgs( 181 const JobAction &JA, ArgStringList &CmdArgs) const { 182 CmdArgs.push_back("-E"); 183 } 184 185 void tools::gcc::Compiler::RenderExtraToolArgs(const JobAction &JA, 186 ArgStringList &CmdArgs) const { 187 const Driver &D = getToolChain().getDriver(); 188 189 switch (JA.getType()) { 190 // If -flto, etc. are present then make sure not to force assembly output. 191 case types::TY_LLVM_IR: 192 case types::TY_LTO_IR: 193 case types::TY_LLVM_BC: 194 case types::TY_LTO_BC: 195 CmdArgs.push_back("-c"); 196 break; 197 // We assume we've got an "integrated" assembler in that gcc will produce an 198 // object file itself. 199 case types::TY_Object: 200 CmdArgs.push_back("-c"); 201 break; 202 case types::TY_PP_Asm: 203 CmdArgs.push_back("-S"); 204 break; 205 case types::TY_Nothing: 206 CmdArgs.push_back("-fsyntax-only"); 207 break; 208 default: 209 D.Diag(diag::err_drv_invalid_gcc_output_type) << getTypeName(JA.getType()); 210 } 211 } 212 213 void tools::gcc::Linker::RenderExtraToolArgs(const JobAction &JA, 214 ArgStringList &CmdArgs) const { 215 // The types are (hopefully) good enough. 216 } 217 218 // On Arm the endianness of the output file is determined by the target and 219 // can be overridden by the pseudo-target flags '-mlittle-endian'/'-EL' and 220 // '-mbig-endian'/'-EB'. Unlike other targets the flag does not result in a 221 // normalized triple so we must handle the flag here. 222 static bool isArmBigEndian(const llvm::Triple &Triple, 223 const ArgList &Args) { 224 bool IsBigEndian = false; 225 switch (Triple.getArch()) { 226 case llvm::Triple::armeb: 227 case llvm::Triple::thumbeb: 228 IsBigEndian = true; 229 LLVM_FALLTHROUGH; 230 case llvm::Triple::arm: 231 case llvm::Triple::thumb: 232 if (Arg *A = Args.getLastArg(options::OPT_mlittle_endian, 233 options::OPT_mbig_endian)) 234 IsBigEndian = !A->getOption().matches(options::OPT_mlittle_endian); 235 break; 236 default: 237 break; 238 } 239 return IsBigEndian; 240 } 241 242 static const char *getLDMOption(const llvm::Triple &T, const ArgList &Args) { 243 switch (T.getArch()) { 244 case llvm::Triple::x86: 245 if (T.isOSIAMCU()) 246 return "elf_iamcu"; 247 return "elf_i386"; 248 case llvm::Triple::aarch64: 249 return "aarch64linux"; 250 case llvm::Triple::aarch64_be: 251 return "aarch64linuxb"; 252 case llvm::Triple::arm: 253 case llvm::Triple::thumb: 254 case llvm::Triple::armeb: 255 case llvm::Triple::thumbeb: 256 return isArmBigEndian(T, Args) ? "armelfb_linux_eabi" : "armelf_linux_eabi"; 257 case llvm::Triple::m68k: 258 return "m68kelf"; 259 case llvm::Triple::ppc: 260 if (T.isOSLinux()) 261 return "elf32ppclinux"; 262 return "elf32ppc"; 263 case llvm::Triple::ppcle: 264 if (T.isOSLinux()) 265 return "elf32lppclinux"; 266 return "elf32lppc"; 267 case llvm::Triple::ppc64: 268 return "elf64ppc"; 269 case llvm::Triple::ppc64le: 270 return "elf64lppc"; 271 case llvm::Triple::riscv32: 272 return "elf32lriscv"; 273 case llvm::Triple::riscv64: 274 return "elf64lriscv"; 275 case llvm::Triple::sparc: 276 case llvm::Triple::sparcel: 277 return "elf32_sparc"; 278 case llvm::Triple::sparcv9: 279 return "elf64_sparc"; 280 case llvm::Triple::mips: 281 return "elf32btsmip"; 282 case llvm::Triple::mipsel: 283 return "elf32ltsmip"; 284 case llvm::Triple::mips64: 285 if (tools::mips::hasMipsAbiArg(Args, "n32") || 286 T.getEnvironment() == llvm::Triple::GNUABIN32) 287 return "elf32btsmipn32"; 288 return "elf64btsmip"; 289 case llvm::Triple::mips64el: 290 if (tools::mips::hasMipsAbiArg(Args, "n32") || 291 T.getEnvironment() == llvm::Triple::GNUABIN32) 292 return "elf32ltsmipn32"; 293 return "elf64ltsmip"; 294 case llvm::Triple::systemz: 295 return "elf64_s390"; 296 case llvm::Triple::x86_64: 297 if (T.isX32()) 298 return "elf32_x86_64"; 299 return "elf_x86_64"; 300 case llvm::Triple::ve: 301 return "elf64ve"; 302 default: 303 return nullptr; 304 } 305 } 306 307 static bool getPIE(const ArgList &Args, const ToolChain &TC) { 308 if (Args.hasArg(options::OPT_shared) || Args.hasArg(options::OPT_static) || 309 Args.hasArg(options::OPT_r) || Args.hasArg(options::OPT_static_pie)) 310 return false; 311 312 Arg *A = Args.getLastArg(options::OPT_pie, options::OPT_no_pie, 313 options::OPT_nopie); 314 if (!A) 315 return TC.isPIEDefault(Args); 316 return A->getOption().matches(options::OPT_pie); 317 } 318 319 static bool getStaticPIE(const ArgList &Args, const ToolChain &TC) { 320 bool HasStaticPIE = Args.hasArg(options::OPT_static_pie); 321 // -no-pie is an alias for -nopie. So, handling -nopie takes care of 322 // -no-pie as well. 323 if (HasStaticPIE && Args.hasArg(options::OPT_nopie)) { 324 const Driver &D = TC.getDriver(); 325 const llvm::opt::OptTable &Opts = D.getOpts(); 326 const char *StaticPIEName = Opts.getOptionName(options::OPT_static_pie); 327 const char *NoPIEName = Opts.getOptionName(options::OPT_nopie); 328 D.Diag(diag::err_drv_cannot_mix_options) << StaticPIEName << NoPIEName; 329 } 330 return HasStaticPIE; 331 } 332 333 static bool getStatic(const ArgList &Args) { 334 return Args.hasArg(options::OPT_static) && 335 !Args.hasArg(options::OPT_static_pie); 336 } 337 338 void tools::gnutools::StaticLibTool::ConstructJob( 339 Compilation &C, const JobAction &JA, const InputInfo &Output, 340 const InputInfoList &Inputs, const ArgList &Args, 341 const char *LinkingOutput) const { 342 const Driver &D = getToolChain().getDriver(); 343 344 // Silence warning for "clang -g foo.o -o foo" 345 Args.ClaimAllArgs(options::OPT_g_Group); 346 // and "clang -emit-llvm foo.o -o foo" 347 Args.ClaimAllArgs(options::OPT_emit_llvm); 348 // and for "clang -w foo.o -o foo". Other warning options are already 349 // handled somewhere else. 350 Args.ClaimAllArgs(options::OPT_w); 351 // Silence warnings when linking C code with a C++ '-stdlib' argument. 352 Args.ClaimAllArgs(options::OPT_stdlib_EQ); 353 354 // ar tool command "llvm-ar <options> <output_file> <input_files>". 355 ArgStringList CmdArgs; 356 // Create and insert file members with a deterministic index. 357 CmdArgs.push_back("rcsD"); 358 CmdArgs.push_back(Output.getFilename()); 359 360 for (const auto &II : Inputs) { 361 if (II.isFilename()) { 362 CmdArgs.push_back(II.getFilename()); 363 } 364 } 365 366 // Delete old output archive file if it already exists before generating a new 367 // archive file. 368 auto OutputFileName = Output.getFilename(); 369 if (Output.isFilename() && llvm::sys::fs::exists(OutputFileName)) { 370 if (std::error_code EC = llvm::sys::fs::remove(OutputFileName)) { 371 D.Diag(diag::err_drv_unable_to_remove_file) << EC.message(); 372 return; 373 } 374 } 375 376 const char *Exec = Args.MakeArgString(getToolChain().GetStaticLibToolPath()); 377 C.addCommand(std::make_unique<Command>(JA, *this, 378 ResponseFileSupport::AtFileCurCP(), 379 Exec, CmdArgs, Inputs, Output)); 380 } 381 382 void tools::gnutools::Linker::ConstructJob(Compilation &C, const JobAction &JA, 383 const InputInfo &Output, 384 const InputInfoList &Inputs, 385 const ArgList &Args, 386 const char *LinkingOutput) const { 387 // FIXME: The Linker class constructor takes a ToolChain and not a 388 // Generic_ELF, so the static_cast might return a reference to a invalid 389 // instance (see PR45061). Ideally, the Linker constructor needs to take a 390 // Generic_ELF instead. 391 const toolchains::Generic_ELF &ToolChain = 392 static_cast<const toolchains::Generic_ELF &>(getToolChain()); 393 const Driver &D = ToolChain.getDriver(); 394 395 const llvm::Triple &Triple = getToolChain().getEffectiveTriple(); 396 397 const llvm::Triple::ArchType Arch = ToolChain.getArch(); 398 const bool isAndroid = ToolChain.getTriple().isAndroid(); 399 const bool IsIAMCU = ToolChain.getTriple().isOSIAMCU(); 400 const bool IsVE = ToolChain.getTriple().isVE(); 401 const bool IsPIE = getPIE(Args, ToolChain); 402 const bool IsStaticPIE = getStaticPIE(Args, ToolChain); 403 const bool IsStatic = getStatic(Args); 404 const bool HasCRTBeginEndFiles = 405 ToolChain.getTriple().hasEnvironment() || 406 (ToolChain.getTriple().getVendor() != llvm::Triple::MipsTechnologies); 407 408 ArgStringList CmdArgs; 409 410 // Silence warning for "clang -g foo.o -o foo" 411 Args.ClaimAllArgs(options::OPT_g_Group); 412 // and "clang -emit-llvm foo.o -o foo" 413 Args.ClaimAllArgs(options::OPT_emit_llvm); 414 // and for "clang -w foo.o -o foo". Other warning options are already 415 // handled somewhere else. 416 Args.ClaimAllArgs(options::OPT_w); 417 418 if (!D.SysRoot.empty()) 419 CmdArgs.push_back(Args.MakeArgString("--sysroot=" + D.SysRoot)); 420 421 if (IsPIE) 422 CmdArgs.push_back("-pie"); 423 424 if (IsStaticPIE) { 425 CmdArgs.push_back("-static"); 426 CmdArgs.push_back("-pie"); 427 CmdArgs.push_back("--no-dynamic-linker"); 428 CmdArgs.push_back("-z"); 429 CmdArgs.push_back("text"); 430 } 431 432 if (Args.hasArg(options::OPT_rdynamic)) 433 CmdArgs.push_back("-export-dynamic"); 434 435 if (Args.hasArg(options::OPT_s)) 436 CmdArgs.push_back("-s"); 437 438 if (Triple.isARM() || Triple.isThumb() || Triple.isAArch64()) { 439 bool IsBigEndian = isArmBigEndian(Triple, Args); 440 if (IsBigEndian) 441 arm::appendBE8LinkFlag(Args, CmdArgs, Triple); 442 IsBigEndian = IsBigEndian || Arch == llvm::Triple::aarch64_be; 443 CmdArgs.push_back(IsBigEndian ? "-EB" : "-EL"); 444 } 445 446 // Most Android ARM64 targets should enable the linker fix for erratum 447 // 843419. Only non-Cortex-A53 devices are allowed to skip this flag. 448 if (Arch == llvm::Triple::aarch64 && isAndroid) { 449 std::string CPU = getCPUName(D, Args, Triple); 450 if (CPU.empty() || CPU == "generic" || CPU == "cortex-a53") 451 CmdArgs.push_back("--fix-cortex-a53-843419"); 452 } 453 454 ToolChain.addExtraOpts(CmdArgs); 455 456 CmdArgs.push_back("--eh-frame-hdr"); 457 458 if (const char *LDMOption = getLDMOption(ToolChain.getTriple(), Args)) { 459 CmdArgs.push_back("-m"); 460 CmdArgs.push_back(LDMOption); 461 } else { 462 D.Diag(diag::err_target_unknown_triple) << Triple.str(); 463 return; 464 } 465 466 if (Args.hasArg(options::OPT_shared)) 467 CmdArgs.push_back("-shared"); 468 469 if (IsStatic) { 470 CmdArgs.push_back("-static"); 471 } else { 472 if (Args.hasArg(options::OPT_rdynamic)) 473 CmdArgs.push_back("-export-dynamic"); 474 475 if (!Args.hasArg(options::OPT_shared) && !IsStaticPIE) { 476 CmdArgs.push_back("-dynamic-linker"); 477 CmdArgs.push_back(Args.MakeArgString(Twine(D.DyldPrefix) + 478 ToolChain.getDynamicLinker(Args))); 479 } 480 } 481 482 CmdArgs.push_back("-o"); 483 CmdArgs.push_back(Output.getFilename()); 484 485 if (!Args.hasArg(options::OPT_nostdlib, options::OPT_nostartfiles, 486 options::OPT_r)) { 487 if (!isAndroid && !IsIAMCU) { 488 const char *crt1 = nullptr; 489 if (!Args.hasArg(options::OPT_shared)) { 490 if (Args.hasArg(options::OPT_pg)) 491 crt1 = "gcrt1.o"; 492 else if (IsPIE) 493 crt1 = "Scrt1.o"; 494 else if (IsStaticPIE) 495 crt1 = "rcrt1.o"; 496 else 497 crt1 = "crt1.o"; 498 } 499 if (crt1) 500 CmdArgs.push_back(Args.MakeArgString(ToolChain.GetFilePath(crt1))); 501 502 CmdArgs.push_back(Args.MakeArgString(ToolChain.GetFilePath("crti.o"))); 503 } 504 505 if (IsVE) { 506 CmdArgs.push_back("-z"); 507 CmdArgs.push_back("max-page-size=0x4000000"); 508 } 509 510 if (IsIAMCU) 511 CmdArgs.push_back(Args.MakeArgString(ToolChain.GetFilePath("crt0.o"))); 512 else if (HasCRTBeginEndFiles) { 513 std::string P; 514 if (ToolChain.GetRuntimeLibType(Args) == ToolChain::RLT_CompilerRT && 515 !isAndroid) { 516 std::string crtbegin = ToolChain.getCompilerRT(Args, "crtbegin", 517 ToolChain::FT_Object); 518 if (ToolChain.getVFS().exists(crtbegin)) 519 P = crtbegin; 520 } 521 if (P.empty()) { 522 const char *crtbegin; 523 if (Args.hasArg(options::OPT_shared)) 524 crtbegin = isAndroid ? "crtbegin_so.o" : "crtbeginS.o"; 525 else if (IsStatic) 526 crtbegin = isAndroid ? "crtbegin_static.o" : "crtbeginT.o"; 527 else if (IsPIE || IsStaticPIE) 528 crtbegin = isAndroid ? "crtbegin_dynamic.o" : "crtbeginS.o"; 529 else 530 crtbegin = isAndroid ? "crtbegin_dynamic.o" : "crtbegin.o"; 531 P = ToolChain.GetFilePath(crtbegin); 532 } 533 CmdArgs.push_back(Args.MakeArgString(P)); 534 } 535 536 // Add crtfastmath.o if available and fast math is enabled. 537 ToolChain.addFastMathRuntimeIfAvailable(Args, CmdArgs); 538 } 539 540 Args.AddAllArgs(CmdArgs, options::OPT_L); 541 Args.AddAllArgs(CmdArgs, options::OPT_u); 542 543 ToolChain.AddFilePathLibArgs(Args, CmdArgs); 544 545 if (D.isUsingLTO()) { 546 assert(!Inputs.empty() && "Must have at least one input."); 547 addLTOOptions(ToolChain, Args, CmdArgs, Output, Inputs[0], 548 D.getLTOMode() == LTOK_Thin); 549 } 550 551 if (Args.hasArg(options::OPT_Z_Xlinker__no_demangle)) 552 CmdArgs.push_back("--no-demangle"); 553 554 bool NeedsSanitizerDeps = addSanitizerRuntimes(ToolChain, Args, CmdArgs); 555 bool NeedsXRayDeps = addXRayRuntime(ToolChain, Args, CmdArgs); 556 addLinkerCompressDebugSectionsOption(ToolChain, Args, CmdArgs); 557 AddLinkerInputs(ToolChain, Inputs, Args, CmdArgs, JA); 558 // The profile runtime also needs access to system libraries. 559 getToolChain().addProfileRTLibs(Args, CmdArgs); 560 561 if (D.CCCIsCXX() && 562 !Args.hasArg(options::OPT_nostdlib, options::OPT_nodefaultlibs, 563 options::OPT_r)) { 564 if (ToolChain.ShouldLinkCXXStdlib(Args)) { 565 bool OnlyLibstdcxxStatic = Args.hasArg(options::OPT_static_libstdcxx) && 566 !Args.hasArg(options::OPT_static); 567 if (OnlyLibstdcxxStatic) 568 CmdArgs.push_back("-Bstatic"); 569 ToolChain.AddCXXStdlibLibArgs(Args, CmdArgs); 570 if (OnlyLibstdcxxStatic) 571 CmdArgs.push_back("-Bdynamic"); 572 } 573 CmdArgs.push_back("-lm"); 574 } 575 576 // If we are linking for the device all symbols should be bound locally. The 577 // symbols are already protected which makes this redundant. This is only 578 // necessary to work around a problem in bfd. 579 // TODO: Remove this once 'lld' becomes the only linker for offloading. 580 if (JA.isDeviceOffloading(Action::OFK_OpenMP)) 581 CmdArgs.push_back("-Bsymbolic"); 582 583 // Silence warnings when linking C code with a C++ '-stdlib' argument. 584 Args.ClaimAllArgs(options::OPT_stdlib_EQ); 585 586 if (!Args.hasArg(options::OPT_nostdlib, options::OPT_r)) { 587 if (!Args.hasArg(options::OPT_nodefaultlibs)) { 588 if (IsStatic || IsStaticPIE) 589 CmdArgs.push_back("--start-group"); 590 591 if (NeedsSanitizerDeps) 592 linkSanitizerRuntimeDeps(ToolChain, CmdArgs); 593 594 if (NeedsXRayDeps) 595 linkXRayRuntimeDeps(ToolChain, CmdArgs); 596 597 bool WantPthread = Args.hasArg(options::OPT_pthread) || 598 Args.hasArg(options::OPT_pthreads); 599 600 // Use the static OpenMP runtime with -static-openmp 601 bool StaticOpenMP = Args.hasArg(options::OPT_static_openmp) && 602 !Args.hasArg(options::OPT_static); 603 604 // FIXME: Only pass GompNeedsRT = true for platforms with libgomp that 605 // require librt. Most modern Linux platforms do, but some may not. 606 if (addOpenMPRuntime(CmdArgs, ToolChain, Args, StaticOpenMP, 607 JA.isHostOffloading(Action::OFK_OpenMP), 608 /* GompNeedsRT= */ true)) 609 // OpenMP runtimes implies pthreads when using the GNU toolchain. 610 // FIXME: Does this really make sense for all GNU toolchains? 611 WantPthread = true; 612 613 AddRunTimeLibs(ToolChain, D, CmdArgs, Args); 614 615 if (WantPthread && !isAndroid) 616 CmdArgs.push_back("-lpthread"); 617 618 if (Args.hasArg(options::OPT_fsplit_stack)) 619 CmdArgs.push_back("--wrap=pthread_create"); 620 621 if (!Args.hasArg(options::OPT_nolibc)) 622 CmdArgs.push_back("-lc"); 623 624 // Add IAMCU specific libs, if needed. 625 if (IsIAMCU) 626 CmdArgs.push_back("-lgloss"); 627 628 if (IsStatic || IsStaticPIE) 629 CmdArgs.push_back("--end-group"); 630 else 631 AddRunTimeLibs(ToolChain, D, CmdArgs, Args); 632 633 // Add IAMCU specific libs (outside the group), if needed. 634 if (IsIAMCU) { 635 CmdArgs.push_back("--as-needed"); 636 CmdArgs.push_back("-lsoftfp"); 637 CmdArgs.push_back("--no-as-needed"); 638 } 639 } 640 641 if (!Args.hasArg(options::OPT_nostartfiles) && !IsIAMCU) { 642 if (HasCRTBeginEndFiles) { 643 std::string P; 644 if (ToolChain.GetRuntimeLibType(Args) == ToolChain::RLT_CompilerRT && 645 !isAndroid) { 646 std::string crtend = ToolChain.getCompilerRT(Args, "crtend", 647 ToolChain::FT_Object); 648 if (ToolChain.getVFS().exists(crtend)) 649 P = crtend; 650 } 651 if (P.empty()) { 652 const char *crtend; 653 if (Args.hasArg(options::OPT_shared)) 654 crtend = isAndroid ? "crtend_so.o" : "crtendS.o"; 655 else if (IsPIE || IsStaticPIE) 656 crtend = isAndroid ? "crtend_android.o" : "crtendS.o"; 657 else 658 crtend = isAndroid ? "crtend_android.o" : "crtend.o"; 659 P = ToolChain.GetFilePath(crtend); 660 } 661 CmdArgs.push_back(Args.MakeArgString(P)); 662 } 663 if (!isAndroid) 664 CmdArgs.push_back(Args.MakeArgString(ToolChain.GetFilePath("crtn.o"))); 665 } 666 } 667 668 Args.AddAllArgs(CmdArgs, options::OPT_T); 669 670 const char *Exec = Args.MakeArgString(ToolChain.GetLinkerPath()); 671 C.addCommand(std::make_unique<Command>(JA, *this, 672 ResponseFileSupport::AtFileCurCP(), 673 Exec, CmdArgs, Inputs, Output)); 674 } 675 676 void tools::gnutools::Assembler::ConstructJob(Compilation &C, 677 const JobAction &JA, 678 const InputInfo &Output, 679 const InputInfoList &Inputs, 680 const ArgList &Args, 681 const char *LinkingOutput) const { 682 const auto &D = getToolChain().getDriver(); 683 684 claimNoWarnArgs(Args); 685 686 ArgStringList CmdArgs; 687 688 llvm::Reloc::Model RelocationModel; 689 unsigned PICLevel; 690 bool IsPIE; 691 const char *DefaultAssembler = "as"; 692 std::tie(RelocationModel, PICLevel, IsPIE) = 693 ParsePICArgs(getToolChain(), Args); 694 695 if (const Arg *A = Args.getLastArg(options::OPT_gz, options::OPT_gz_EQ)) { 696 if (A->getOption().getID() == options::OPT_gz) { 697 CmdArgs.push_back("--compress-debug-sections"); 698 } else { 699 StringRef Value = A->getValue(); 700 if (Value == "none" || Value == "zlib") { 701 CmdArgs.push_back( 702 Args.MakeArgString("--compress-debug-sections=" + Twine(Value))); 703 } else { 704 D.Diag(diag::err_drv_unsupported_option_argument) 705 << A->getOption().getName() << Value; 706 } 707 } 708 } 709 710 switch (getToolChain().getArch()) { 711 default: 712 break; 713 // Add --32/--64 to make sure we get the format we want. 714 // This is incomplete 715 case llvm::Triple::x86: 716 CmdArgs.push_back("--32"); 717 break; 718 case llvm::Triple::x86_64: 719 if (getToolChain().getTriple().isX32()) 720 CmdArgs.push_back("--x32"); 721 else 722 CmdArgs.push_back("--64"); 723 break; 724 case llvm::Triple::ppc: { 725 CmdArgs.push_back("-a32"); 726 CmdArgs.push_back("-mppc"); 727 CmdArgs.push_back("-mbig-endian"); 728 CmdArgs.push_back(ppc::getPPCAsmModeForCPU( 729 getCPUName(D, Args, getToolChain().getTriple()))); 730 break; 731 } 732 case llvm::Triple::ppcle: { 733 CmdArgs.push_back("-a32"); 734 CmdArgs.push_back("-mppc"); 735 CmdArgs.push_back("-mlittle-endian"); 736 CmdArgs.push_back(ppc::getPPCAsmModeForCPU( 737 getCPUName(D, Args, getToolChain().getTriple()))); 738 break; 739 } 740 case llvm::Triple::ppc64: { 741 CmdArgs.push_back("-a64"); 742 CmdArgs.push_back("-mppc64"); 743 CmdArgs.push_back("-mbig-endian"); 744 CmdArgs.push_back(ppc::getPPCAsmModeForCPU( 745 getCPUName(D, Args, getToolChain().getTriple()))); 746 break; 747 } 748 case llvm::Triple::ppc64le: { 749 CmdArgs.push_back("-a64"); 750 CmdArgs.push_back("-mppc64"); 751 CmdArgs.push_back("-mlittle-endian"); 752 CmdArgs.push_back(ppc::getPPCAsmModeForCPU( 753 getCPUName(D, Args, getToolChain().getTriple()))); 754 break; 755 } 756 case llvm::Triple::riscv32: 757 case llvm::Triple::riscv64: { 758 StringRef ABIName = riscv::getRISCVABI(Args, getToolChain().getTriple()); 759 CmdArgs.push_back("-mabi"); 760 CmdArgs.push_back(ABIName.data()); 761 StringRef MArchName = riscv::getRISCVArch(Args, getToolChain().getTriple()); 762 CmdArgs.push_back("-march"); 763 CmdArgs.push_back(MArchName.data()); 764 break; 765 } 766 case llvm::Triple::sparc: 767 case llvm::Triple::sparcel: { 768 CmdArgs.push_back("-32"); 769 std::string CPU = getCPUName(D, Args, getToolChain().getTriple()); 770 CmdArgs.push_back( 771 sparc::getSparcAsmModeForCPU(CPU, getToolChain().getTriple())); 772 AddAssemblerKPIC(getToolChain(), Args, CmdArgs); 773 break; 774 } 775 case llvm::Triple::sparcv9: { 776 CmdArgs.push_back("-64"); 777 std::string CPU = getCPUName(D, Args, getToolChain().getTriple()); 778 CmdArgs.push_back( 779 sparc::getSparcAsmModeForCPU(CPU, getToolChain().getTriple())); 780 AddAssemblerKPIC(getToolChain(), Args, CmdArgs); 781 break; 782 } 783 case llvm::Triple::arm: 784 case llvm::Triple::armeb: 785 case llvm::Triple::thumb: 786 case llvm::Triple::thumbeb: { 787 const llvm::Triple &Triple2 = getToolChain().getTriple(); 788 CmdArgs.push_back(isArmBigEndian(Triple2, Args) ? "-EB" : "-EL"); 789 switch (Triple2.getSubArch()) { 790 case llvm::Triple::ARMSubArch_v7: 791 CmdArgs.push_back("-mfpu=neon"); 792 break; 793 case llvm::Triple::ARMSubArch_v8: 794 CmdArgs.push_back("-mfpu=crypto-neon-fp-armv8"); 795 break; 796 default: 797 break; 798 } 799 800 switch (arm::getARMFloatABI(getToolChain(), Args)) { 801 case arm::FloatABI::Invalid: llvm_unreachable("must have an ABI!"); 802 case arm::FloatABI::Soft: 803 CmdArgs.push_back(Args.MakeArgString("-mfloat-abi=soft")); 804 break; 805 case arm::FloatABI::SoftFP: 806 CmdArgs.push_back(Args.MakeArgString("-mfloat-abi=softfp")); 807 break; 808 case arm::FloatABI::Hard: 809 CmdArgs.push_back(Args.MakeArgString("-mfloat-abi=hard")); 810 break; 811 } 812 813 Args.AddLastArg(CmdArgs, options::OPT_march_EQ); 814 normalizeCPUNamesForAssembler(Args, CmdArgs); 815 816 Args.AddLastArg(CmdArgs, options::OPT_mfpu_EQ); 817 break; 818 } 819 case llvm::Triple::aarch64: 820 case llvm::Triple::aarch64_be: { 821 CmdArgs.push_back( 822 getToolChain().getArch() == llvm::Triple::aarch64_be ? "-EB" : "-EL"); 823 Args.AddLastArg(CmdArgs, options::OPT_march_EQ); 824 normalizeCPUNamesForAssembler(Args, CmdArgs); 825 826 break; 827 } 828 case llvm::Triple::mips: 829 case llvm::Triple::mipsel: 830 case llvm::Triple::mips64: 831 case llvm::Triple::mips64el: { 832 StringRef CPUName; 833 StringRef ABIName; 834 mips::getMipsCPUAndABI(Args, getToolChain().getTriple(), CPUName, ABIName); 835 ABIName = mips::getGnuCompatibleMipsABIName(ABIName); 836 837 CmdArgs.push_back("-march"); 838 CmdArgs.push_back(CPUName.data()); 839 840 CmdArgs.push_back("-mabi"); 841 CmdArgs.push_back(ABIName.data()); 842 843 // -mno-shared should be emitted unless -fpic, -fpie, -fPIC, -fPIE, 844 // or -mshared (not implemented) is in effect. 845 if (RelocationModel == llvm::Reloc::Static) 846 CmdArgs.push_back("-mno-shared"); 847 848 // LLVM doesn't support -mplt yet and acts as if it is always given. 849 // However, -mplt has no effect with the N64 ABI. 850 if (ABIName != "64" && !Args.hasArg(options::OPT_mno_abicalls)) 851 CmdArgs.push_back("-call_nonpic"); 852 853 if (getToolChain().getTriple().isLittleEndian()) 854 CmdArgs.push_back("-EL"); 855 else 856 CmdArgs.push_back("-EB"); 857 858 if (Arg *A = Args.getLastArg(options::OPT_mnan_EQ)) { 859 if (StringRef(A->getValue()) == "2008") 860 CmdArgs.push_back(Args.MakeArgString("-mnan=2008")); 861 } 862 863 // Add the last -mfp32/-mfpxx/-mfp64 or -mfpxx if it is enabled by default. 864 if (Arg *A = Args.getLastArg(options::OPT_mfp32, options::OPT_mfpxx, 865 options::OPT_mfp64)) { 866 A->claim(); 867 A->render(Args, CmdArgs); 868 } else if (mips::shouldUseFPXX( 869 Args, getToolChain().getTriple(), CPUName, ABIName, 870 mips::getMipsFloatABI(getToolChain().getDriver(), Args, 871 getToolChain().getTriple()))) 872 CmdArgs.push_back("-mfpxx"); 873 874 // Pass on -mmips16 or -mno-mips16. However, the assembler equivalent of 875 // -mno-mips16 is actually -no-mips16. 876 if (Arg *A = 877 Args.getLastArg(options::OPT_mips16, options::OPT_mno_mips16)) { 878 if (A->getOption().matches(options::OPT_mips16)) { 879 A->claim(); 880 A->render(Args, CmdArgs); 881 } else { 882 A->claim(); 883 CmdArgs.push_back("-no-mips16"); 884 } 885 } 886 887 Args.AddLastArg(CmdArgs, options::OPT_mmicromips, 888 options::OPT_mno_micromips); 889 Args.AddLastArg(CmdArgs, options::OPT_mdsp, options::OPT_mno_dsp); 890 Args.AddLastArg(CmdArgs, options::OPT_mdspr2, options::OPT_mno_dspr2); 891 892 if (Arg *A = Args.getLastArg(options::OPT_mmsa, options::OPT_mno_msa)) { 893 // Do not use AddLastArg because not all versions of MIPS assembler 894 // support -mmsa / -mno-msa options. 895 if (A->getOption().matches(options::OPT_mmsa)) 896 CmdArgs.push_back(Args.MakeArgString("-mmsa")); 897 } 898 899 Args.AddLastArg(CmdArgs, options::OPT_mhard_float, 900 options::OPT_msoft_float); 901 902 Args.AddLastArg(CmdArgs, options::OPT_mdouble_float, 903 options::OPT_msingle_float); 904 905 Args.AddLastArg(CmdArgs, options::OPT_modd_spreg, 906 options::OPT_mno_odd_spreg); 907 908 AddAssemblerKPIC(getToolChain(), Args, CmdArgs); 909 break; 910 } 911 case llvm::Triple::systemz: { 912 // Always pass an -march option, since our default of z10 is later 913 // than the GNU assembler's default. 914 std::string CPUName = systemz::getSystemZTargetCPU(Args); 915 CmdArgs.push_back(Args.MakeArgString("-march=" + CPUName)); 916 break; 917 } 918 case llvm::Triple::ve: 919 DefaultAssembler = "nas"; 920 } 921 922 for (const Arg *A : Args.filtered(options::OPT_ffile_prefix_map_EQ, 923 options::OPT_fdebug_prefix_map_EQ)) { 924 StringRef Map = A->getValue(); 925 if (!Map.contains('=')) 926 D.Diag(diag::err_drv_invalid_argument_to_option) 927 << Map << A->getOption().getName(); 928 else { 929 CmdArgs.push_back(Args.MakeArgString("--debug-prefix-map")); 930 CmdArgs.push_back(Args.MakeArgString(Map)); 931 } 932 A->claim(); 933 } 934 935 Args.AddAllArgs(CmdArgs, options::OPT_I); 936 Args.AddAllArgValues(CmdArgs, options::OPT_Wa_COMMA, options::OPT_Xassembler); 937 938 CmdArgs.push_back("-o"); 939 CmdArgs.push_back(Output.getFilename()); 940 941 for (const auto &II : Inputs) 942 CmdArgs.push_back(II.getFilename()); 943 944 const char *Exec = 945 Args.MakeArgString(getToolChain().GetProgramPath(DefaultAssembler)); 946 C.addCommand(std::make_unique<Command>(JA, *this, 947 ResponseFileSupport::AtFileCurCP(), 948 Exec, CmdArgs, Inputs, Output)); 949 950 // Handle the debug info splitting at object creation time if we're 951 // creating an object. 952 // TODO: Currently only works on linux with newer objcopy. 953 if (Args.hasArg(options::OPT_gsplit_dwarf) && 954 getToolChain().getTriple().isOSLinux()) 955 SplitDebugInfo(getToolChain(), C, *this, JA, Args, Output, 956 SplitDebugName(JA, Args, Inputs[0], Output)); 957 } 958 959 namespace { 960 // Filter to remove Multilibs that don't exist as a suffix to Path 961 class FilterNonExistent { 962 StringRef Base, File; 963 llvm::vfs::FileSystem &VFS; 964 965 public: 966 FilterNonExistent(StringRef Base, StringRef File, llvm::vfs::FileSystem &VFS) 967 : Base(Base), File(File), VFS(VFS) {} 968 bool operator()(const Multilib &M) { 969 return !VFS.exists(Base + M.gccSuffix() + File); 970 } 971 }; 972 } // end anonymous namespace 973 974 static bool isSoftFloatABI(const ArgList &Args) { 975 Arg *A = Args.getLastArg(options::OPT_msoft_float, options::OPT_mhard_float, 976 options::OPT_mfloat_abi_EQ); 977 if (!A) 978 return false; 979 980 return A->getOption().matches(options::OPT_msoft_float) || 981 (A->getOption().matches(options::OPT_mfloat_abi_EQ) && 982 A->getValue() == StringRef("soft")); 983 } 984 985 static bool isArmOrThumbArch(llvm::Triple::ArchType Arch) { 986 return Arch == llvm::Triple::arm || Arch == llvm::Triple::thumb; 987 } 988 989 static bool isMipsEL(llvm::Triple::ArchType Arch) { 990 return Arch == llvm::Triple::mipsel || Arch == llvm::Triple::mips64el; 991 } 992 993 static bool isMips16(const ArgList &Args) { 994 Arg *A = Args.getLastArg(options::OPT_mips16, options::OPT_mno_mips16); 995 return A && A->getOption().matches(options::OPT_mips16); 996 } 997 998 static bool isMicroMips(const ArgList &Args) { 999 Arg *A = Args.getLastArg(options::OPT_mmicromips, options::OPT_mno_micromips); 1000 return A && A->getOption().matches(options::OPT_mmicromips); 1001 } 1002 1003 static bool isMSP430(llvm::Triple::ArchType Arch) { 1004 return Arch == llvm::Triple::msp430; 1005 } 1006 1007 static Multilib makeMultilib(StringRef commonSuffix) { 1008 return Multilib(commonSuffix, commonSuffix, commonSuffix); 1009 } 1010 1011 static bool findMipsCsMultilibs(const Multilib::flags_list &Flags, 1012 FilterNonExistent &NonExistent, 1013 DetectedMultilibs &Result) { 1014 // Check for Code Sourcery toolchain multilibs 1015 MultilibSet CSMipsMultilibs; 1016 { 1017 auto MArchMips16 = makeMultilib("/mips16").flag("+m32").flag("+mips16"); 1018 1019 auto MArchMicroMips = 1020 makeMultilib("/micromips").flag("+m32").flag("+mmicromips"); 1021 1022 auto MArchDefault = makeMultilib("").flag("-mips16").flag("-mmicromips"); 1023 1024 auto UCLibc = makeMultilib("/uclibc").flag("+muclibc"); 1025 1026 auto SoftFloat = makeMultilib("/soft-float").flag("+msoft-float"); 1027 1028 auto Nan2008 = makeMultilib("/nan2008").flag("+mnan=2008"); 1029 1030 auto DefaultFloat = 1031 makeMultilib("").flag("-msoft-float").flag("-mnan=2008"); 1032 1033 auto BigEndian = makeMultilib("").flag("+EB").flag("-EL"); 1034 1035 auto LittleEndian = makeMultilib("/el").flag("+EL").flag("-EB"); 1036 1037 // Note that this one's osSuffix is "" 1038 auto MAbi64 = makeMultilib("") 1039 .gccSuffix("/64") 1040 .includeSuffix("/64") 1041 .flag("+mabi=n64") 1042 .flag("-mabi=n32") 1043 .flag("-m32"); 1044 1045 CSMipsMultilibs = 1046 MultilibSet() 1047 .Either(MArchMips16, MArchMicroMips, MArchDefault) 1048 .Maybe(UCLibc) 1049 .Either(SoftFloat, Nan2008, DefaultFloat) 1050 .FilterOut("/micromips/nan2008") 1051 .FilterOut("/mips16/nan2008") 1052 .Either(BigEndian, LittleEndian) 1053 .Maybe(MAbi64) 1054 .FilterOut("/mips16.*/64") 1055 .FilterOut("/micromips.*/64") 1056 .FilterOut(NonExistent) 1057 .setIncludeDirsCallback([](const Multilib &M) { 1058 std::vector<std::string> Dirs({"/include"}); 1059 if (StringRef(M.includeSuffix()).startswith("/uclibc")) 1060 Dirs.push_back( 1061 "/../../../../mips-linux-gnu/libc/uclibc/usr/include"); 1062 else 1063 Dirs.push_back("/../../../../mips-linux-gnu/libc/usr/include"); 1064 return Dirs; 1065 }); 1066 } 1067 1068 MultilibSet DebianMipsMultilibs; 1069 { 1070 Multilib MAbiN32 = 1071 Multilib().gccSuffix("/n32").includeSuffix("/n32").flag("+mabi=n32"); 1072 1073 Multilib M64 = Multilib() 1074 .gccSuffix("/64") 1075 .includeSuffix("/64") 1076 .flag("+m64") 1077 .flag("-m32") 1078 .flag("-mabi=n32"); 1079 1080 Multilib M32 = 1081 Multilib().gccSuffix("/32").flag("-m64").flag("+m32").flag("-mabi=n32"); 1082 1083 DebianMipsMultilibs = 1084 MultilibSet().Either(M32, M64, MAbiN32).FilterOut(NonExistent); 1085 } 1086 1087 // Sort candidates. Toolchain that best meets the directories tree goes first. 1088 // Then select the first toolchains matches command line flags. 1089 MultilibSet *Candidates[] = {&CSMipsMultilibs, &DebianMipsMultilibs}; 1090 if (CSMipsMultilibs.size() < DebianMipsMultilibs.size()) 1091 std::iter_swap(Candidates, Candidates + 1); 1092 for (const MultilibSet *Candidate : Candidates) { 1093 if (Candidate->select(Flags, Result.SelectedMultilib)) { 1094 if (Candidate == &DebianMipsMultilibs) 1095 Result.BiarchSibling = Multilib(); 1096 Result.Multilibs = *Candidate; 1097 return true; 1098 } 1099 } 1100 return false; 1101 } 1102 1103 static bool findMipsAndroidMultilibs(llvm::vfs::FileSystem &VFS, StringRef Path, 1104 const Multilib::flags_list &Flags, 1105 FilterNonExistent &NonExistent, 1106 DetectedMultilibs &Result) { 1107 1108 MultilibSet AndroidMipsMultilibs = 1109 MultilibSet() 1110 .Maybe(Multilib("/mips-r2").flag("+march=mips32r2")) 1111 .Maybe(Multilib("/mips-r6").flag("+march=mips32r6")) 1112 .FilterOut(NonExistent); 1113 1114 MultilibSet AndroidMipselMultilibs = 1115 MultilibSet() 1116 .Either(Multilib().flag("+march=mips32"), 1117 Multilib("/mips-r2", "", "/mips-r2").flag("+march=mips32r2"), 1118 Multilib("/mips-r6", "", "/mips-r6").flag("+march=mips32r6")) 1119 .FilterOut(NonExistent); 1120 1121 MultilibSet AndroidMips64elMultilibs = 1122 MultilibSet() 1123 .Either( 1124 Multilib().flag("+march=mips64r6"), 1125 Multilib("/32/mips-r1", "", "/mips-r1").flag("+march=mips32"), 1126 Multilib("/32/mips-r2", "", "/mips-r2").flag("+march=mips32r2"), 1127 Multilib("/32/mips-r6", "", "/mips-r6").flag("+march=mips32r6")) 1128 .FilterOut(NonExistent); 1129 1130 MultilibSet *MS = &AndroidMipsMultilibs; 1131 if (VFS.exists(Path + "/mips-r6")) 1132 MS = &AndroidMipselMultilibs; 1133 else if (VFS.exists(Path + "/32")) 1134 MS = &AndroidMips64elMultilibs; 1135 if (MS->select(Flags, Result.SelectedMultilib)) { 1136 Result.Multilibs = *MS; 1137 return true; 1138 } 1139 return false; 1140 } 1141 1142 static bool findMipsMuslMultilibs(const Multilib::flags_list &Flags, 1143 FilterNonExistent &NonExistent, 1144 DetectedMultilibs &Result) { 1145 // Musl toolchain multilibs 1146 MultilibSet MuslMipsMultilibs; 1147 { 1148 auto MArchMipsR2 = makeMultilib("") 1149 .osSuffix("/mips-r2-hard-musl") 1150 .flag("+EB") 1151 .flag("-EL") 1152 .flag("+march=mips32r2"); 1153 1154 auto MArchMipselR2 = makeMultilib("/mipsel-r2-hard-musl") 1155 .flag("-EB") 1156 .flag("+EL") 1157 .flag("+march=mips32r2"); 1158 1159 MuslMipsMultilibs = MultilibSet().Either(MArchMipsR2, MArchMipselR2); 1160 1161 // Specify the callback that computes the include directories. 1162 MuslMipsMultilibs.setIncludeDirsCallback([](const Multilib &M) { 1163 return std::vector<std::string>( 1164 {"/../sysroot" + M.osSuffix() + "/usr/include"}); 1165 }); 1166 } 1167 if (MuslMipsMultilibs.select(Flags, Result.SelectedMultilib)) { 1168 Result.Multilibs = MuslMipsMultilibs; 1169 return true; 1170 } 1171 return false; 1172 } 1173 1174 static bool findMipsMtiMultilibs(const Multilib::flags_list &Flags, 1175 FilterNonExistent &NonExistent, 1176 DetectedMultilibs &Result) { 1177 // CodeScape MTI toolchain v1.2 and early. 1178 MultilibSet MtiMipsMultilibsV1; 1179 { 1180 auto MArchMips32 = makeMultilib("/mips32") 1181 .flag("+m32") 1182 .flag("-m64") 1183 .flag("-mmicromips") 1184 .flag("+march=mips32"); 1185 1186 auto MArchMicroMips = makeMultilib("/micromips") 1187 .flag("+m32") 1188 .flag("-m64") 1189 .flag("+mmicromips"); 1190 1191 auto MArchMips64r2 = makeMultilib("/mips64r2") 1192 .flag("-m32") 1193 .flag("+m64") 1194 .flag("+march=mips64r2"); 1195 1196 auto MArchMips64 = makeMultilib("/mips64").flag("-m32").flag("+m64").flag( 1197 "-march=mips64r2"); 1198 1199 auto MArchDefault = makeMultilib("") 1200 .flag("+m32") 1201 .flag("-m64") 1202 .flag("-mmicromips") 1203 .flag("+march=mips32r2"); 1204 1205 auto Mips16 = makeMultilib("/mips16").flag("+mips16"); 1206 1207 auto UCLibc = makeMultilib("/uclibc").flag("+muclibc"); 1208 1209 auto MAbi64 = 1210 makeMultilib("/64").flag("+mabi=n64").flag("-mabi=n32").flag("-m32"); 1211 1212 auto BigEndian = makeMultilib("").flag("+EB").flag("-EL"); 1213 1214 auto LittleEndian = makeMultilib("/el").flag("+EL").flag("-EB"); 1215 1216 auto SoftFloat = makeMultilib("/sof").flag("+msoft-float"); 1217 1218 auto Nan2008 = makeMultilib("/nan2008").flag("+mnan=2008"); 1219 1220 MtiMipsMultilibsV1 = 1221 MultilibSet() 1222 .Either(MArchMips32, MArchMicroMips, MArchMips64r2, MArchMips64, 1223 MArchDefault) 1224 .Maybe(UCLibc) 1225 .Maybe(Mips16) 1226 .FilterOut("/mips64/mips16") 1227 .FilterOut("/mips64r2/mips16") 1228 .FilterOut("/micromips/mips16") 1229 .Maybe(MAbi64) 1230 .FilterOut("/micromips/64") 1231 .FilterOut("/mips32/64") 1232 .FilterOut("^/64") 1233 .FilterOut("/mips16/64") 1234 .Either(BigEndian, LittleEndian) 1235 .Maybe(SoftFloat) 1236 .Maybe(Nan2008) 1237 .FilterOut(".*sof/nan2008") 1238 .FilterOut(NonExistent) 1239 .setIncludeDirsCallback([](const Multilib &M) { 1240 std::vector<std::string> Dirs({"/include"}); 1241 if (StringRef(M.includeSuffix()).startswith("/uclibc")) 1242 Dirs.push_back("/../../../../sysroot/uclibc/usr/include"); 1243 else 1244 Dirs.push_back("/../../../../sysroot/usr/include"); 1245 return Dirs; 1246 }); 1247 } 1248 1249 // CodeScape IMG toolchain starting from v1.3. 1250 MultilibSet MtiMipsMultilibsV2; 1251 { 1252 auto BeHard = makeMultilib("/mips-r2-hard") 1253 .flag("+EB") 1254 .flag("-msoft-float") 1255 .flag("-mnan=2008") 1256 .flag("-muclibc"); 1257 auto BeSoft = makeMultilib("/mips-r2-soft") 1258 .flag("+EB") 1259 .flag("+msoft-float") 1260 .flag("-mnan=2008"); 1261 auto ElHard = makeMultilib("/mipsel-r2-hard") 1262 .flag("+EL") 1263 .flag("-msoft-float") 1264 .flag("-mnan=2008") 1265 .flag("-muclibc"); 1266 auto ElSoft = makeMultilib("/mipsel-r2-soft") 1267 .flag("+EL") 1268 .flag("+msoft-float") 1269 .flag("-mnan=2008") 1270 .flag("-mmicromips"); 1271 auto BeHardNan = makeMultilib("/mips-r2-hard-nan2008") 1272 .flag("+EB") 1273 .flag("-msoft-float") 1274 .flag("+mnan=2008") 1275 .flag("-muclibc"); 1276 auto ElHardNan = makeMultilib("/mipsel-r2-hard-nan2008") 1277 .flag("+EL") 1278 .flag("-msoft-float") 1279 .flag("+mnan=2008") 1280 .flag("-muclibc") 1281 .flag("-mmicromips"); 1282 auto BeHardNanUclibc = makeMultilib("/mips-r2-hard-nan2008-uclibc") 1283 .flag("+EB") 1284 .flag("-msoft-float") 1285 .flag("+mnan=2008") 1286 .flag("+muclibc"); 1287 auto ElHardNanUclibc = makeMultilib("/mipsel-r2-hard-nan2008-uclibc") 1288 .flag("+EL") 1289 .flag("-msoft-float") 1290 .flag("+mnan=2008") 1291 .flag("+muclibc"); 1292 auto BeHardUclibc = makeMultilib("/mips-r2-hard-uclibc") 1293 .flag("+EB") 1294 .flag("-msoft-float") 1295 .flag("-mnan=2008") 1296 .flag("+muclibc"); 1297 auto ElHardUclibc = makeMultilib("/mipsel-r2-hard-uclibc") 1298 .flag("+EL") 1299 .flag("-msoft-float") 1300 .flag("-mnan=2008") 1301 .flag("+muclibc"); 1302 auto ElMicroHardNan = makeMultilib("/micromipsel-r2-hard-nan2008") 1303 .flag("+EL") 1304 .flag("-msoft-float") 1305 .flag("+mnan=2008") 1306 .flag("+mmicromips"); 1307 auto ElMicroSoft = makeMultilib("/micromipsel-r2-soft") 1308 .flag("+EL") 1309 .flag("+msoft-float") 1310 .flag("-mnan=2008") 1311 .flag("+mmicromips"); 1312 1313 auto O32 = 1314 makeMultilib("/lib").osSuffix("").flag("-mabi=n32").flag("-mabi=n64"); 1315 auto N32 = 1316 makeMultilib("/lib32").osSuffix("").flag("+mabi=n32").flag("-mabi=n64"); 1317 auto N64 = 1318 makeMultilib("/lib64").osSuffix("").flag("-mabi=n32").flag("+mabi=n64"); 1319 1320 MtiMipsMultilibsV2 = 1321 MultilibSet() 1322 .Either({BeHard, BeSoft, ElHard, ElSoft, BeHardNan, ElHardNan, 1323 BeHardNanUclibc, ElHardNanUclibc, BeHardUclibc, 1324 ElHardUclibc, ElMicroHardNan, ElMicroSoft}) 1325 .Either(O32, N32, N64) 1326 .FilterOut(NonExistent) 1327 .setIncludeDirsCallback([](const Multilib &M) { 1328 return std::vector<std::string>({"/../../../../sysroot" + 1329 M.includeSuffix() + 1330 "/../usr/include"}); 1331 }) 1332 .setFilePathsCallback([](const Multilib &M) { 1333 return std::vector<std::string>( 1334 {"/../../../../mips-mti-linux-gnu/lib" + M.gccSuffix()}); 1335 }); 1336 } 1337 for (auto Candidate : {&MtiMipsMultilibsV1, &MtiMipsMultilibsV2}) { 1338 if (Candidate->select(Flags, Result.SelectedMultilib)) { 1339 Result.Multilibs = *Candidate; 1340 return true; 1341 } 1342 } 1343 return false; 1344 } 1345 1346 static bool findMipsImgMultilibs(const Multilib::flags_list &Flags, 1347 FilterNonExistent &NonExistent, 1348 DetectedMultilibs &Result) { 1349 // CodeScape IMG toolchain v1.2 and early. 1350 MultilibSet ImgMultilibsV1; 1351 { 1352 auto Mips64r6 = makeMultilib("/mips64r6").flag("+m64").flag("-m32"); 1353 1354 auto LittleEndian = makeMultilib("/el").flag("+EL").flag("-EB"); 1355 1356 auto MAbi64 = 1357 makeMultilib("/64").flag("+mabi=n64").flag("-mabi=n32").flag("-m32"); 1358 1359 ImgMultilibsV1 = 1360 MultilibSet() 1361 .Maybe(Mips64r6) 1362 .Maybe(MAbi64) 1363 .Maybe(LittleEndian) 1364 .FilterOut(NonExistent) 1365 .setIncludeDirsCallback([](const Multilib &M) { 1366 return std::vector<std::string>( 1367 {"/include", "/../../../../sysroot/usr/include"}); 1368 }); 1369 } 1370 1371 // CodeScape IMG toolchain starting from v1.3. 1372 MultilibSet ImgMultilibsV2; 1373 { 1374 auto BeHard = makeMultilib("/mips-r6-hard") 1375 .flag("+EB") 1376 .flag("-msoft-float") 1377 .flag("-mmicromips"); 1378 auto BeSoft = makeMultilib("/mips-r6-soft") 1379 .flag("+EB") 1380 .flag("+msoft-float") 1381 .flag("-mmicromips"); 1382 auto ElHard = makeMultilib("/mipsel-r6-hard") 1383 .flag("+EL") 1384 .flag("-msoft-float") 1385 .flag("-mmicromips"); 1386 auto ElSoft = makeMultilib("/mipsel-r6-soft") 1387 .flag("+EL") 1388 .flag("+msoft-float") 1389 .flag("-mmicromips"); 1390 auto BeMicroHard = makeMultilib("/micromips-r6-hard") 1391 .flag("+EB") 1392 .flag("-msoft-float") 1393 .flag("+mmicromips"); 1394 auto BeMicroSoft = makeMultilib("/micromips-r6-soft") 1395 .flag("+EB") 1396 .flag("+msoft-float") 1397 .flag("+mmicromips"); 1398 auto ElMicroHard = makeMultilib("/micromipsel-r6-hard") 1399 .flag("+EL") 1400 .flag("-msoft-float") 1401 .flag("+mmicromips"); 1402 auto ElMicroSoft = makeMultilib("/micromipsel-r6-soft") 1403 .flag("+EL") 1404 .flag("+msoft-float") 1405 .flag("+mmicromips"); 1406 1407 auto O32 = 1408 makeMultilib("/lib").osSuffix("").flag("-mabi=n32").flag("-mabi=n64"); 1409 auto N32 = 1410 makeMultilib("/lib32").osSuffix("").flag("+mabi=n32").flag("-mabi=n64"); 1411 auto N64 = 1412 makeMultilib("/lib64").osSuffix("").flag("-mabi=n32").flag("+mabi=n64"); 1413 1414 ImgMultilibsV2 = 1415 MultilibSet() 1416 .Either({BeHard, BeSoft, ElHard, ElSoft, BeMicroHard, BeMicroSoft, 1417 ElMicroHard, ElMicroSoft}) 1418 .Either(O32, N32, N64) 1419 .FilterOut(NonExistent) 1420 .setIncludeDirsCallback([](const Multilib &M) { 1421 return std::vector<std::string>({"/../../../../sysroot" + 1422 M.includeSuffix() + 1423 "/../usr/include"}); 1424 }) 1425 .setFilePathsCallback([](const Multilib &M) { 1426 return std::vector<std::string>( 1427 {"/../../../../mips-img-linux-gnu/lib" + M.gccSuffix()}); 1428 }); 1429 } 1430 for (auto Candidate : {&ImgMultilibsV1, &ImgMultilibsV2}) { 1431 if (Candidate->select(Flags, Result.SelectedMultilib)) { 1432 Result.Multilibs = *Candidate; 1433 return true; 1434 } 1435 } 1436 return false; 1437 } 1438 1439 bool clang::driver::findMIPSMultilibs(const Driver &D, 1440 const llvm::Triple &TargetTriple, 1441 StringRef Path, const ArgList &Args, 1442 DetectedMultilibs &Result) { 1443 FilterNonExistent NonExistent(Path, "/crtbegin.o", D.getVFS()); 1444 1445 StringRef CPUName; 1446 StringRef ABIName; 1447 tools::mips::getMipsCPUAndABI(Args, TargetTriple, CPUName, ABIName); 1448 1449 llvm::Triple::ArchType TargetArch = TargetTriple.getArch(); 1450 1451 Multilib::flags_list Flags; 1452 addMultilibFlag(TargetTriple.isMIPS32(), "m32", Flags); 1453 addMultilibFlag(TargetTriple.isMIPS64(), "m64", Flags); 1454 addMultilibFlag(isMips16(Args), "mips16", Flags); 1455 addMultilibFlag(CPUName == "mips32", "march=mips32", Flags); 1456 addMultilibFlag(CPUName == "mips32r2" || CPUName == "mips32r3" || 1457 CPUName == "mips32r5" || CPUName == "p5600", 1458 "march=mips32r2", Flags); 1459 addMultilibFlag(CPUName == "mips32r6", "march=mips32r6", Flags); 1460 addMultilibFlag(CPUName == "mips64", "march=mips64", Flags); 1461 addMultilibFlag(CPUName == "mips64r2" || CPUName == "mips64r3" || 1462 CPUName == "mips64r5" || CPUName == "octeon" || 1463 CPUName == "octeon+", 1464 "march=mips64r2", Flags); 1465 addMultilibFlag(CPUName == "mips64r6", "march=mips64r6", Flags); 1466 addMultilibFlag(isMicroMips(Args), "mmicromips", Flags); 1467 addMultilibFlag(tools::mips::isUCLibc(Args), "muclibc", Flags); 1468 addMultilibFlag(tools::mips::isNaN2008(D, Args, TargetTriple), "mnan=2008", 1469 Flags); 1470 addMultilibFlag(ABIName == "n32", "mabi=n32", Flags); 1471 addMultilibFlag(ABIName == "n64", "mabi=n64", Flags); 1472 addMultilibFlag(isSoftFloatABI(Args), "msoft-float", Flags); 1473 addMultilibFlag(!isSoftFloatABI(Args), "mhard-float", Flags); 1474 addMultilibFlag(isMipsEL(TargetArch), "EL", Flags); 1475 addMultilibFlag(!isMipsEL(TargetArch), "EB", Flags); 1476 1477 if (TargetTriple.isAndroid()) 1478 return findMipsAndroidMultilibs(D.getVFS(), Path, Flags, NonExistent, 1479 Result); 1480 1481 if (TargetTriple.getVendor() == llvm::Triple::MipsTechnologies && 1482 TargetTriple.getOS() == llvm::Triple::Linux && 1483 TargetTriple.getEnvironment() == llvm::Triple::UnknownEnvironment) 1484 return findMipsMuslMultilibs(Flags, NonExistent, Result); 1485 1486 if (TargetTriple.getVendor() == llvm::Triple::MipsTechnologies && 1487 TargetTriple.getOS() == llvm::Triple::Linux && 1488 TargetTriple.isGNUEnvironment()) 1489 return findMipsMtiMultilibs(Flags, NonExistent, Result); 1490 1491 if (TargetTriple.getVendor() == llvm::Triple::ImaginationTechnologies && 1492 TargetTriple.getOS() == llvm::Triple::Linux && 1493 TargetTriple.isGNUEnvironment()) 1494 return findMipsImgMultilibs(Flags, NonExistent, Result); 1495 1496 if (findMipsCsMultilibs(Flags, NonExistent, Result)) 1497 return true; 1498 1499 // Fallback to the regular toolchain-tree structure. 1500 Multilib Default; 1501 Result.Multilibs.push_back(Default); 1502 Result.Multilibs.FilterOut(NonExistent); 1503 1504 if (Result.Multilibs.select(Flags, Result.SelectedMultilib)) { 1505 Result.BiarchSibling = Multilib(); 1506 return true; 1507 } 1508 1509 return false; 1510 } 1511 1512 static void findAndroidArmMultilibs(const Driver &D, 1513 const llvm::Triple &TargetTriple, 1514 StringRef Path, const ArgList &Args, 1515 DetectedMultilibs &Result) { 1516 // Find multilibs with subdirectories like armv7-a, thumb, armv7-a/thumb. 1517 FilterNonExistent NonExistent(Path, "/crtbegin.o", D.getVFS()); 1518 Multilib ArmV7Multilib = makeMultilib("/armv7-a") 1519 .flag("+march=armv7-a") 1520 .flag("-mthumb"); 1521 Multilib ThumbMultilib = makeMultilib("/thumb") 1522 .flag("-march=armv7-a") 1523 .flag("+mthumb"); 1524 Multilib ArmV7ThumbMultilib = makeMultilib("/armv7-a/thumb") 1525 .flag("+march=armv7-a") 1526 .flag("+mthumb"); 1527 Multilib DefaultMultilib = makeMultilib("") 1528 .flag("-march=armv7-a") 1529 .flag("-mthumb"); 1530 MultilibSet AndroidArmMultilibs = 1531 MultilibSet() 1532 .Either(ThumbMultilib, ArmV7Multilib, 1533 ArmV7ThumbMultilib, DefaultMultilib) 1534 .FilterOut(NonExistent); 1535 1536 Multilib::flags_list Flags; 1537 llvm::StringRef Arch = Args.getLastArgValue(options::OPT_march_EQ); 1538 bool IsArmArch = TargetTriple.getArch() == llvm::Triple::arm; 1539 bool IsThumbArch = TargetTriple.getArch() == llvm::Triple::thumb; 1540 bool IsV7SubArch = TargetTriple.getSubArch() == llvm::Triple::ARMSubArch_v7; 1541 bool IsThumbMode = IsThumbArch || 1542 Args.hasFlag(options::OPT_mthumb, options::OPT_mno_thumb, false) || 1543 (IsArmArch && llvm::ARM::parseArchISA(Arch) == llvm::ARM::ISAKind::THUMB); 1544 bool IsArmV7Mode = (IsArmArch || IsThumbArch) && 1545 (llvm::ARM::parseArchVersion(Arch) == 7 || 1546 (IsArmArch && Arch == "" && IsV7SubArch)); 1547 addMultilibFlag(IsArmV7Mode, "march=armv7-a", Flags); 1548 addMultilibFlag(IsThumbMode, "mthumb", Flags); 1549 1550 if (AndroidArmMultilibs.select(Flags, Result.SelectedMultilib)) 1551 Result.Multilibs = AndroidArmMultilibs; 1552 } 1553 1554 static bool findMSP430Multilibs(const Driver &D, 1555 const llvm::Triple &TargetTriple, 1556 StringRef Path, const ArgList &Args, 1557 DetectedMultilibs &Result) { 1558 FilterNonExistent NonExistent(Path, "/crtbegin.o", D.getVFS()); 1559 Multilib WithoutExceptions = makeMultilib("/430").flag("-exceptions"); 1560 Multilib WithExceptions = makeMultilib("/430/exceptions").flag("+exceptions"); 1561 1562 // FIXME: when clang starts to support msp430x ISA additional logic 1563 // to select between multilib must be implemented 1564 // Multilib MSP430xMultilib = makeMultilib("/large"); 1565 1566 Result.Multilibs.push_back(WithoutExceptions); 1567 Result.Multilibs.push_back(WithExceptions); 1568 Result.Multilibs.FilterOut(NonExistent); 1569 1570 Multilib::flags_list Flags; 1571 addMultilibFlag(Args.hasFlag(options::OPT_fexceptions, 1572 options::OPT_fno_exceptions, false), 1573 "exceptions", Flags); 1574 if (Result.Multilibs.select(Flags, Result.SelectedMultilib)) 1575 return true; 1576 1577 return false; 1578 } 1579 1580 static void findRISCVBareMetalMultilibs(const Driver &D, 1581 const llvm::Triple &TargetTriple, 1582 StringRef Path, const ArgList &Args, 1583 DetectedMultilibs &Result) { 1584 FilterNonExistent NonExistent(Path, "/crtbegin.o", D.getVFS()); 1585 struct RiscvMultilib { 1586 StringRef march; 1587 StringRef mabi; 1588 }; 1589 // currently only support the set of multilibs like riscv-gnu-toolchain does. 1590 // TODO: support MULTILIB_REUSE 1591 constexpr RiscvMultilib RISCVMultilibSet[] = { 1592 {"rv32i", "ilp32"}, {"rv32im", "ilp32"}, {"rv32iac", "ilp32"}, 1593 {"rv32imac", "ilp32"}, {"rv32imafc", "ilp32f"}, {"rv64imac", "lp64"}, 1594 {"rv64imafdc", "lp64d"}}; 1595 1596 std::vector<Multilib> Ms; 1597 for (auto Element : RISCVMultilibSet) { 1598 // multilib path rule is ${march}/${mabi} 1599 Ms.emplace_back( 1600 makeMultilib((Twine(Element.march) + "/" + Twine(Element.mabi)).str()) 1601 .flag(Twine("+march=", Element.march).str()) 1602 .flag(Twine("+mabi=", Element.mabi).str())); 1603 } 1604 MultilibSet RISCVMultilibs = 1605 MultilibSet() 1606 .Either(ArrayRef<Multilib>(Ms)) 1607 .FilterOut(NonExistent) 1608 .setFilePathsCallback([](const Multilib &M) { 1609 return std::vector<std::string>( 1610 {M.gccSuffix(), 1611 "/../../../../riscv64-unknown-elf/lib" + M.gccSuffix(), 1612 "/../../../../riscv32-unknown-elf/lib" + M.gccSuffix()}); 1613 }); 1614 1615 1616 Multilib::flags_list Flags; 1617 llvm::StringSet<> Added_ABIs; 1618 StringRef ABIName = tools::riscv::getRISCVABI(Args, TargetTriple); 1619 StringRef MArch = tools::riscv::getRISCVArch(Args, TargetTriple); 1620 for (auto Element : RISCVMultilibSet) { 1621 addMultilibFlag(MArch == Element.march, 1622 Twine("march=", Element.march).str().c_str(), Flags); 1623 if (!Added_ABIs.count(Element.mabi)) { 1624 Added_ABIs.insert(Element.mabi); 1625 addMultilibFlag(ABIName == Element.mabi, 1626 Twine("mabi=", Element.mabi).str().c_str(), Flags); 1627 } 1628 } 1629 1630 if (RISCVMultilibs.select(Flags, Result.SelectedMultilib)) 1631 Result.Multilibs = RISCVMultilibs; 1632 } 1633 1634 static void findRISCVMultilibs(const Driver &D, 1635 const llvm::Triple &TargetTriple, StringRef Path, 1636 const ArgList &Args, DetectedMultilibs &Result) { 1637 if (TargetTriple.getOS() == llvm::Triple::UnknownOS) 1638 return findRISCVBareMetalMultilibs(D, TargetTriple, Path, Args, Result); 1639 1640 FilterNonExistent NonExistent(Path, "/crtbegin.o", D.getVFS()); 1641 Multilib Ilp32 = makeMultilib("lib32/ilp32").flag("+m32").flag("+mabi=ilp32"); 1642 Multilib Ilp32f = 1643 makeMultilib("lib32/ilp32f").flag("+m32").flag("+mabi=ilp32f"); 1644 Multilib Ilp32d = 1645 makeMultilib("lib32/ilp32d").flag("+m32").flag("+mabi=ilp32d"); 1646 Multilib Lp64 = makeMultilib("lib64/lp64").flag("+m64").flag("+mabi=lp64"); 1647 Multilib Lp64f = makeMultilib("lib64/lp64f").flag("+m64").flag("+mabi=lp64f"); 1648 Multilib Lp64d = makeMultilib("lib64/lp64d").flag("+m64").flag("+mabi=lp64d"); 1649 MultilibSet RISCVMultilibs = 1650 MultilibSet() 1651 .Either({Ilp32, Ilp32f, Ilp32d, Lp64, Lp64f, Lp64d}) 1652 .FilterOut(NonExistent); 1653 1654 Multilib::flags_list Flags; 1655 bool IsRV64 = TargetTriple.getArch() == llvm::Triple::riscv64; 1656 StringRef ABIName = tools::riscv::getRISCVABI(Args, TargetTriple); 1657 1658 addMultilibFlag(!IsRV64, "m32", Flags); 1659 addMultilibFlag(IsRV64, "m64", Flags); 1660 addMultilibFlag(ABIName == "ilp32", "mabi=ilp32", Flags); 1661 addMultilibFlag(ABIName == "ilp32f", "mabi=ilp32f", Flags); 1662 addMultilibFlag(ABIName == "ilp32d", "mabi=ilp32d", Flags); 1663 addMultilibFlag(ABIName == "lp64", "mabi=lp64", Flags); 1664 addMultilibFlag(ABIName == "lp64f", "mabi=lp64f", Flags); 1665 addMultilibFlag(ABIName == "lp64d", "mabi=lp64d", Flags); 1666 1667 if (RISCVMultilibs.select(Flags, Result.SelectedMultilib)) 1668 Result.Multilibs = RISCVMultilibs; 1669 } 1670 1671 static bool findBiarchMultilibs(const Driver &D, 1672 const llvm::Triple &TargetTriple, 1673 StringRef Path, const ArgList &Args, 1674 bool NeedsBiarchSuffix, 1675 DetectedMultilibs &Result) { 1676 Multilib Default; 1677 1678 // Some versions of SUSE and Fedora on ppc64 put 32-bit libs 1679 // in what would normally be GCCInstallPath and put the 64-bit 1680 // libs in a subdirectory named 64. The simple logic we follow is that 1681 // *if* there is a subdirectory of the right name with crtbegin.o in it, 1682 // we use that. If not, and if not a biarch triple alias, we look for 1683 // crtbegin.o without the subdirectory. 1684 1685 StringRef Suff64 = "/64"; 1686 // Solaris uses platform-specific suffixes instead of /64. 1687 if (TargetTriple.getOS() == llvm::Triple::Solaris) { 1688 switch (TargetTriple.getArch()) { 1689 case llvm::Triple::x86: 1690 case llvm::Triple::x86_64: 1691 Suff64 = "/amd64"; 1692 break; 1693 case llvm::Triple::sparc: 1694 case llvm::Triple::sparcv9: 1695 Suff64 = "/sparcv9"; 1696 break; 1697 default: 1698 break; 1699 } 1700 } 1701 1702 Multilib Alt64 = Multilib() 1703 .gccSuffix(Suff64) 1704 .includeSuffix(Suff64) 1705 .flag("-m32") 1706 .flag("+m64") 1707 .flag("-mx32"); 1708 Multilib Alt32 = Multilib() 1709 .gccSuffix("/32") 1710 .includeSuffix("/32") 1711 .flag("+m32") 1712 .flag("-m64") 1713 .flag("-mx32"); 1714 Multilib Altx32 = Multilib() 1715 .gccSuffix("/x32") 1716 .includeSuffix("/x32") 1717 .flag("-m32") 1718 .flag("-m64") 1719 .flag("+mx32"); 1720 1721 // GCC toolchain for IAMCU doesn't have crtbegin.o, so look for libgcc.a. 1722 FilterNonExistent NonExistent( 1723 Path, TargetTriple.isOSIAMCU() ? "/libgcc.a" : "/crtbegin.o", D.getVFS()); 1724 1725 // Determine default multilib from: 32, 64, x32 1726 // Also handle cases such as 64 on 32, 32 on 64, etc. 1727 enum { UNKNOWN, WANT32, WANT64, WANTX32 } Want = UNKNOWN; 1728 const bool IsX32 = TargetTriple.isX32(); 1729 if (TargetTriple.isArch32Bit() && !NonExistent(Alt32)) 1730 Want = WANT64; 1731 else if (TargetTriple.isArch64Bit() && IsX32 && !NonExistent(Altx32)) 1732 Want = WANT64; 1733 else if (TargetTriple.isArch64Bit() && !IsX32 && !NonExistent(Alt64)) 1734 Want = WANT32; 1735 else { 1736 if (TargetTriple.isArch32Bit()) 1737 Want = NeedsBiarchSuffix ? WANT64 : WANT32; 1738 else if (IsX32) 1739 Want = NeedsBiarchSuffix ? WANT64 : WANTX32; 1740 else 1741 Want = NeedsBiarchSuffix ? WANT32 : WANT64; 1742 } 1743 1744 if (Want == WANT32) 1745 Default.flag("+m32").flag("-m64").flag("-mx32"); 1746 else if (Want == WANT64) 1747 Default.flag("-m32").flag("+m64").flag("-mx32"); 1748 else if (Want == WANTX32) 1749 Default.flag("-m32").flag("-m64").flag("+mx32"); 1750 else 1751 return false; 1752 1753 Result.Multilibs.push_back(Default); 1754 Result.Multilibs.push_back(Alt64); 1755 Result.Multilibs.push_back(Alt32); 1756 Result.Multilibs.push_back(Altx32); 1757 1758 Result.Multilibs.FilterOut(NonExistent); 1759 1760 Multilib::flags_list Flags; 1761 addMultilibFlag(TargetTriple.isArch64Bit() && !IsX32, "m64", Flags); 1762 addMultilibFlag(TargetTriple.isArch32Bit(), "m32", Flags); 1763 addMultilibFlag(TargetTriple.isArch64Bit() && IsX32, "mx32", Flags); 1764 1765 if (!Result.Multilibs.select(Flags, Result.SelectedMultilib)) 1766 return false; 1767 1768 if (Result.SelectedMultilib == Alt64 || Result.SelectedMultilib == Alt32 || 1769 Result.SelectedMultilib == Altx32) 1770 Result.BiarchSibling = Default; 1771 1772 return true; 1773 } 1774 1775 /// Generic_GCC - A tool chain using the 'gcc' command to perform 1776 /// all subcommands; this relies on gcc translating the majority of 1777 /// command line options. 1778 1779 /// Less-than for GCCVersion, implementing a Strict Weak Ordering. 1780 bool Generic_GCC::GCCVersion::isOlderThan(int RHSMajor, int RHSMinor, 1781 int RHSPatch, 1782 StringRef RHSPatchSuffix) const { 1783 if (Major != RHSMajor) 1784 return Major < RHSMajor; 1785 if (Minor != RHSMinor) 1786 return Minor < RHSMinor; 1787 if (Patch != RHSPatch) { 1788 // Note that versions without a specified patch sort higher than those with 1789 // a patch. 1790 if (RHSPatch == -1) 1791 return true; 1792 if (Patch == -1) 1793 return false; 1794 1795 // Otherwise just sort on the patch itself. 1796 return Patch < RHSPatch; 1797 } 1798 if (PatchSuffix != RHSPatchSuffix) { 1799 // Sort empty suffixes higher. 1800 if (RHSPatchSuffix.empty()) 1801 return true; 1802 if (PatchSuffix.empty()) 1803 return false; 1804 1805 // Provide a lexicographic sort to make this a total ordering. 1806 return PatchSuffix < RHSPatchSuffix; 1807 } 1808 1809 // The versions are equal. 1810 return false; 1811 } 1812 1813 /// Parse a GCCVersion object out of a string of text. 1814 /// 1815 /// This is the primary means of forming GCCVersion objects. 1816 /*static*/ 1817 Generic_GCC::GCCVersion Generic_GCC::GCCVersion::Parse(StringRef VersionText) { 1818 const GCCVersion BadVersion = {VersionText.str(), -1, -1, -1, "", "", ""}; 1819 std::pair<StringRef, StringRef> First = VersionText.split('.'); 1820 std::pair<StringRef, StringRef> Second = First.second.split('.'); 1821 1822 GCCVersion GoodVersion = {VersionText.str(), -1, -1, -1, "", "", ""}; 1823 if (First.first.getAsInteger(10, GoodVersion.Major) || GoodVersion.Major < 0) 1824 return BadVersion; 1825 GoodVersion.MajorStr = First.first.str(); 1826 if (First.second.empty()) 1827 return GoodVersion; 1828 StringRef MinorStr = Second.first; 1829 if (Second.second.empty()) { 1830 if (size_t EndNumber = MinorStr.find_first_not_of("0123456789")) { 1831 GoodVersion.PatchSuffix = std::string(MinorStr.substr(EndNumber)); 1832 MinorStr = MinorStr.slice(0, EndNumber); 1833 } 1834 } 1835 if (MinorStr.getAsInteger(10, GoodVersion.Minor) || GoodVersion.Minor < 0) 1836 return BadVersion; 1837 GoodVersion.MinorStr = MinorStr.str(); 1838 1839 // First look for a number prefix and parse that if present. Otherwise just 1840 // stash the entire patch string in the suffix, and leave the number 1841 // unspecified. This covers versions strings such as: 1842 // 5 (handled above) 1843 // 4.4 1844 // 4.4-patched 1845 // 4.4.0 1846 // 4.4.x 1847 // 4.4.2-rc4 1848 // 4.4.x-patched 1849 // And retains any patch number it finds. 1850 StringRef PatchText = Second.second; 1851 if (!PatchText.empty()) { 1852 if (size_t EndNumber = PatchText.find_first_not_of("0123456789")) { 1853 // Try to parse the number and any suffix. 1854 if (PatchText.slice(0, EndNumber).getAsInteger(10, GoodVersion.Patch) || 1855 GoodVersion.Patch < 0) 1856 return BadVersion; 1857 GoodVersion.PatchSuffix = std::string(PatchText.substr(EndNumber)); 1858 } 1859 } 1860 1861 return GoodVersion; 1862 } 1863 1864 static llvm::StringRef getGCCToolchainDir(const ArgList &Args, 1865 llvm::StringRef SysRoot) { 1866 const Arg *A = Args.getLastArg(clang::driver::options::OPT_gcc_toolchain); 1867 if (A) 1868 return A->getValue(); 1869 1870 // If we have a SysRoot, ignore GCC_INSTALL_PREFIX. 1871 // GCC_INSTALL_PREFIX specifies the gcc installation for the default 1872 // sysroot and is likely not valid with a different sysroot. 1873 if (!SysRoot.empty()) 1874 return ""; 1875 1876 return GCC_INSTALL_PREFIX; 1877 } 1878 1879 /// Initialize a GCCInstallationDetector from the driver. 1880 /// 1881 /// This performs all of the autodetection and sets up the various paths. 1882 /// Once constructed, a GCCInstallationDetector is essentially immutable. 1883 /// 1884 /// FIXME: We shouldn't need an explicit TargetTriple parameter here, and 1885 /// should instead pull the target out of the driver. This is currently 1886 /// necessary because the driver doesn't store the final version of the target 1887 /// triple. 1888 void Generic_GCC::GCCInstallationDetector::init( 1889 const llvm::Triple &TargetTriple, const ArgList &Args, 1890 ArrayRef<std::string> ExtraTripleAliases) { 1891 llvm::Triple BiarchVariantTriple = TargetTriple.isArch32Bit() 1892 ? TargetTriple.get64BitArchVariant() 1893 : TargetTriple.get32BitArchVariant(); 1894 // The library directories which may contain GCC installations. 1895 SmallVector<StringRef, 4> CandidateLibDirs, CandidateBiarchLibDirs; 1896 // The compatible GCC triples for this particular architecture. 1897 SmallVector<StringRef, 16> CandidateTripleAliases; 1898 SmallVector<StringRef, 16> CandidateBiarchTripleAliases; 1899 CollectLibDirsAndTriples(TargetTriple, BiarchVariantTriple, CandidateLibDirs, 1900 CandidateTripleAliases, CandidateBiarchLibDirs, 1901 CandidateBiarchTripleAliases); 1902 1903 // Compute the set of prefixes for our search. 1904 SmallVector<std::string, 8> Prefixes; 1905 StringRef GCCToolchainDir = getGCCToolchainDir(Args, D.SysRoot); 1906 if (GCCToolchainDir != "") { 1907 if (GCCToolchainDir.back() == '/') 1908 GCCToolchainDir = GCCToolchainDir.drop_back(); // remove the / 1909 1910 Prefixes.push_back(std::string(GCCToolchainDir)); 1911 } else { 1912 // If we have a SysRoot, try that first. 1913 if (!D.SysRoot.empty()) { 1914 Prefixes.push_back(D.SysRoot); 1915 AddDefaultGCCPrefixes(TargetTriple, Prefixes, D.SysRoot); 1916 } 1917 1918 // Then look for gcc installed alongside clang. 1919 Prefixes.push_back(D.InstalledDir + "/.."); 1920 1921 // Next, look for prefix(es) that correspond to distribution-supplied gcc 1922 // installations. 1923 if (D.SysRoot.empty()) { 1924 // Typically /usr. 1925 AddDefaultGCCPrefixes(TargetTriple, Prefixes, D.SysRoot); 1926 } 1927 1928 // Try to respect gcc-config on Gentoo if --gcc-toolchain is not provided. 1929 // This avoids accidentally enforcing the system GCC version when using a 1930 // custom toolchain. 1931 SmallVector<StringRef, 16> GentooTestTriples; 1932 // Try to match an exact triple as target triple first. 1933 // e.g. crossdev -S x86_64-gentoo-linux-gnu will install gcc libs for 1934 // x86_64-gentoo-linux-gnu. But "clang -target x86_64-gentoo-linux-gnu" 1935 // may pick the libraries for x86_64-pc-linux-gnu even when exact matching 1936 // triple x86_64-gentoo-linux-gnu is present. 1937 GentooTestTriples.push_back(TargetTriple.str()); 1938 // Check rest of triples. 1939 GentooTestTriples.append(ExtraTripleAliases.begin(), 1940 ExtraTripleAliases.end()); 1941 GentooTestTriples.append(CandidateTripleAliases.begin(), 1942 CandidateTripleAliases.end()); 1943 if (ScanGentooConfigs(TargetTriple, Args, GentooTestTriples, 1944 CandidateBiarchTripleAliases)) 1945 return; 1946 } 1947 1948 // Loop over the various components which exist and select the best GCC 1949 // installation available. GCC installs are ranked by version number. 1950 const GCCVersion VersionZero = GCCVersion::Parse("0.0.0"); 1951 Version = VersionZero; 1952 for (const std::string &Prefix : Prefixes) { 1953 auto &VFS = D.getVFS(); 1954 if (!VFS.exists(Prefix)) 1955 continue; 1956 for (StringRef Suffix : CandidateLibDirs) { 1957 const std::string LibDir = Prefix + Suffix.str(); 1958 if (!VFS.exists(LibDir)) 1959 continue; 1960 // Maybe filter out <libdir>/gcc and <libdir>/gcc-cross. 1961 bool GCCDirExists = VFS.exists(LibDir + "/gcc"); 1962 bool GCCCrossDirExists = VFS.exists(LibDir + "/gcc-cross"); 1963 // Try to match the exact target triple first. 1964 ScanLibDirForGCCTriple(TargetTriple, Args, LibDir, TargetTriple.str(), 1965 false, GCCDirExists, GCCCrossDirExists); 1966 // Try rest of possible triples. 1967 for (StringRef Candidate : ExtraTripleAliases) // Try these first. 1968 ScanLibDirForGCCTriple(TargetTriple, Args, LibDir, Candidate, false, 1969 GCCDirExists, GCCCrossDirExists); 1970 for (StringRef Candidate : CandidateTripleAliases) 1971 ScanLibDirForGCCTriple(TargetTriple, Args, LibDir, Candidate, false, 1972 GCCDirExists, GCCCrossDirExists); 1973 } 1974 for (StringRef Suffix : CandidateBiarchLibDirs) { 1975 const std::string LibDir = Prefix + Suffix.str(); 1976 if (!VFS.exists(LibDir)) 1977 continue; 1978 bool GCCDirExists = VFS.exists(LibDir + "/gcc"); 1979 bool GCCCrossDirExists = VFS.exists(LibDir + "/gcc-cross"); 1980 for (StringRef Candidate : CandidateBiarchTripleAliases) 1981 ScanLibDirForGCCTriple(TargetTriple, Args, LibDir, Candidate, true, 1982 GCCDirExists, GCCCrossDirExists); 1983 } 1984 1985 // Skip other prefixes once a GCC installation is found. 1986 if (Version > VersionZero) 1987 break; 1988 } 1989 } 1990 1991 void Generic_GCC::GCCInstallationDetector::print(raw_ostream &OS) const { 1992 for (const auto &InstallPath : CandidateGCCInstallPaths) 1993 OS << "Found candidate GCC installation: " << InstallPath << "\n"; 1994 1995 if (!GCCInstallPath.empty()) 1996 OS << "Selected GCC installation: " << GCCInstallPath << "\n"; 1997 1998 for (const auto &Multilib : Multilibs) 1999 OS << "Candidate multilib: " << Multilib << "\n"; 2000 2001 if (Multilibs.size() != 0 || !SelectedMultilib.isDefault()) 2002 OS << "Selected multilib: " << SelectedMultilib << "\n"; 2003 } 2004 2005 bool Generic_GCC::GCCInstallationDetector::getBiarchSibling(Multilib &M) const { 2006 if (BiarchSibling.hasValue()) { 2007 M = BiarchSibling.getValue(); 2008 return true; 2009 } 2010 return false; 2011 } 2012 2013 void Generic_GCC::GCCInstallationDetector::AddDefaultGCCPrefixes( 2014 const llvm::Triple &TargetTriple, SmallVectorImpl<std::string> &Prefixes, 2015 StringRef SysRoot) { 2016 if (TargetTriple.getOS() == llvm::Triple::Solaris) { 2017 // Solaris is a special case. 2018 // The GCC installation is under 2019 // /usr/gcc/<major>.<minor>/lib/gcc/<triple>/<major>.<minor>.<patch>/ 2020 // so we need to find those /usr/gcc/*/lib/gcc libdirs and go with 2021 // /usr/gcc/<version> as a prefix. 2022 2023 std::string PrefixDir = SysRoot.str() + "/usr/gcc"; 2024 std::error_code EC; 2025 for (llvm::vfs::directory_iterator LI = D.getVFS().dir_begin(PrefixDir, EC), 2026 LE; 2027 !EC && LI != LE; LI = LI.increment(EC)) { 2028 StringRef VersionText = llvm::sys::path::filename(LI->path()); 2029 GCCVersion CandidateVersion = GCCVersion::Parse(VersionText); 2030 2031 // Filter out obviously bad entries. 2032 if (CandidateVersion.Major == -1 || CandidateVersion.isOlderThan(4, 1, 1)) 2033 continue; 2034 2035 std::string CandidatePrefix = PrefixDir + "/" + VersionText.str(); 2036 std::string CandidateLibPath = CandidatePrefix + "/lib/gcc"; 2037 if (!D.getVFS().exists(CandidateLibPath)) 2038 continue; 2039 2040 Prefixes.push_back(CandidatePrefix); 2041 } 2042 return; 2043 } 2044 2045 // Non-Solaris is much simpler - most systems just go with "/usr". 2046 if (SysRoot.empty() && TargetTriple.getOS() == llvm::Triple::Linux) { 2047 // Yet, still look for RHEL/CentOS devtoolsets and gcc-toolsets. 2048 Prefixes.push_back("/opt/rh/gcc-toolset-10/root/usr"); 2049 Prefixes.push_back("/opt/rh/devtoolset-10/root/usr"); 2050 Prefixes.push_back("/opt/rh/devtoolset-9/root/usr"); 2051 Prefixes.push_back("/opt/rh/devtoolset-8/root/usr"); 2052 Prefixes.push_back("/opt/rh/devtoolset-7/root/usr"); 2053 Prefixes.push_back("/opt/rh/devtoolset-6/root/usr"); 2054 Prefixes.push_back("/opt/rh/devtoolset-4/root/usr"); 2055 Prefixes.push_back("/opt/rh/devtoolset-3/root/usr"); 2056 Prefixes.push_back("/opt/rh/devtoolset-2/root/usr"); 2057 } 2058 Prefixes.push_back(SysRoot.str() + "/usr"); 2059 } 2060 2061 /*static*/ void Generic_GCC::GCCInstallationDetector::CollectLibDirsAndTriples( 2062 const llvm::Triple &TargetTriple, const llvm::Triple &BiarchTriple, 2063 SmallVectorImpl<StringRef> &LibDirs, 2064 SmallVectorImpl<StringRef> &TripleAliases, 2065 SmallVectorImpl<StringRef> &BiarchLibDirs, 2066 SmallVectorImpl<StringRef> &BiarchTripleAliases) { 2067 // Declare a bunch of static data sets that we'll select between below. These 2068 // are specifically designed to always refer to string literals to avoid any 2069 // lifetime or initialization issues. 2070 // 2071 // The *Triples variables hard code some triples so that, for example, 2072 // --target=aarch64 (incomplete triple) can detect lib/aarch64-linux-gnu. 2073 // They are not needed when the user has correct LLVM_DEFAULT_TARGET_TRIPLE 2074 // and always uses the full --target (e.g. --target=aarch64-linux-gnu). The 2075 // lists should shrink over time. Please don't add more elements to *Triples. 2076 static const char *const AArch64LibDirs[] = {"/lib64", "/lib"}; 2077 static const char *const AArch64Triples[] = { 2078 "aarch64-none-linux-gnu", "aarch64-linux-gnu", "aarch64-redhat-linux", 2079 "aarch64-suse-linux"}; 2080 static const char *const AArch64beLibDirs[] = {"/lib"}; 2081 static const char *const AArch64beTriples[] = {"aarch64_be-none-linux-gnu", 2082 "aarch64_be-linux-gnu"}; 2083 2084 static const char *const ARMLibDirs[] = {"/lib"}; 2085 static const char *const ARMTriples[] = {"arm-linux-gnueabi"}; 2086 static const char *const ARMHFTriples[] = {"arm-linux-gnueabihf", 2087 "armv7hl-redhat-linux-gnueabi", 2088 "armv6hl-suse-linux-gnueabi", 2089 "armv7hl-suse-linux-gnueabi"}; 2090 static const char *const ARMebLibDirs[] = {"/lib"}; 2091 static const char *const ARMebTriples[] = {"armeb-linux-gnueabi"}; 2092 static const char *const ARMebHFTriples[] = { 2093 "armeb-linux-gnueabihf", "armebv7hl-redhat-linux-gnueabi"}; 2094 2095 static const char *const AVRLibDirs[] = {"/lib"}; 2096 static const char *const AVRTriples[] = {"avr"}; 2097 2098 static const char *const X86_64LibDirs[] = {"/lib64", "/lib"}; 2099 static const char *const X86_64Triples[] = { 2100 "x86_64-linux-gnu", "x86_64-unknown-linux-gnu", 2101 "x86_64-pc-linux-gnu", "x86_64-redhat-linux6E", 2102 "x86_64-redhat-linux", "x86_64-suse-linux", 2103 "x86_64-manbo-linux-gnu", "x86_64-linux-gnu", 2104 "x86_64-slackware-linux", "x86_64-unknown-linux", 2105 "x86_64-amazon-linux"}; 2106 static const char *const X32Triples[] = {"x86_64-linux-gnux32", 2107 "x86_64-pc-linux-gnux32"}; 2108 static const char *const X32LibDirs[] = {"/libx32", "/lib"}; 2109 static const char *const X86LibDirs[] = {"/lib32", "/lib"}; 2110 static const char *const X86Triples[] = { 2111 "i586-linux-gnu", "i686-linux-gnu", "i686-pc-linux-gnu", 2112 "i386-redhat-linux6E", "i686-redhat-linux", "i386-redhat-linux", 2113 "i586-suse-linux", "i686-montavista-linux", "i686-gnu", 2114 }; 2115 2116 static const char *const M68kLibDirs[] = {"/lib"}; 2117 static const char *const M68kTriples[] = { 2118 "m68k-linux-gnu", "m68k-unknown-linux-gnu", "m68k-suse-linux"}; 2119 2120 static const char *const MIPSLibDirs[] = {"/libo32", "/lib"}; 2121 static const char *const MIPSTriples[] = { 2122 "mips-linux-gnu", "mips-mti-linux", "mips-mti-linux-gnu", 2123 "mips-img-linux-gnu", "mipsisa32r6-linux-gnu"}; 2124 static const char *const MIPSELLibDirs[] = {"/libo32", "/lib"}; 2125 static const char *const MIPSELTriples[] = { 2126 "mipsel-linux-gnu", "mips-img-linux-gnu", "mipsisa32r6el-linux-gnu"}; 2127 2128 static const char *const MIPS64LibDirs[] = {"/lib64", "/lib"}; 2129 static const char *const MIPS64Triples[] = { 2130 "mips64-linux-gnu", "mips-mti-linux-gnu", 2131 "mips-img-linux-gnu", "mips64-linux-gnuabi64", 2132 "mipsisa64r6-linux-gnu", "mipsisa64r6-linux-gnuabi64"}; 2133 static const char *const MIPS64ELLibDirs[] = {"/lib64", "/lib"}; 2134 static const char *const MIPS64ELTriples[] = { 2135 "mips64el-linux-gnu", "mips-mti-linux-gnu", 2136 "mips-img-linux-gnu", "mips64el-linux-gnuabi64", 2137 "mipsisa64r6el-linux-gnu", "mipsisa64r6el-linux-gnuabi64"}; 2138 2139 static const char *const MIPSN32LibDirs[] = {"/lib32"}; 2140 static const char *const MIPSN32Triples[] = {"mips64-linux-gnuabin32", 2141 "mipsisa64r6-linux-gnuabin32"}; 2142 static const char *const MIPSN32ELLibDirs[] = {"/lib32"}; 2143 static const char *const MIPSN32ELTriples[] = { 2144 "mips64el-linux-gnuabin32", "mipsisa64r6el-linux-gnuabin32"}; 2145 2146 static const char *const MSP430LibDirs[] = {"/lib"}; 2147 static const char *const MSP430Triples[] = {"msp430-elf"}; 2148 2149 static const char *const PPCLibDirs[] = {"/lib32", "/lib"}; 2150 static const char *const PPCTriples[] = { 2151 "powerpc-linux-gnu", "powerpc-unknown-linux-gnu", "powerpc-linux-gnuspe", 2152 // On 32-bit PowerPC systems running SUSE Linux, gcc is configured as a 2153 // 64-bit compiler which defaults to "-m32", hence "powerpc64-suse-linux". 2154 "powerpc64-suse-linux", "powerpc-montavista-linuxspe"}; 2155 static const char *const PPCLELibDirs[] = {"/lib32", "/lib"}; 2156 static const char *const PPCLETriples[] = {"powerpcle-linux-gnu", 2157 "powerpcle-unknown-linux-gnu", 2158 "powerpcle-linux-musl"}; 2159 2160 static const char *const PPC64LibDirs[] = {"/lib64", "/lib"}; 2161 static const char *const PPC64Triples[] = { 2162 "powerpc64-linux-gnu", "powerpc64-unknown-linux-gnu", 2163 "powerpc64-suse-linux", "ppc64-redhat-linux"}; 2164 static const char *const PPC64LELibDirs[] = {"/lib64", "/lib"}; 2165 static const char *const PPC64LETriples[] = { 2166 "powerpc64le-linux-gnu", "powerpc64le-unknown-linux-gnu", 2167 "powerpc64le-none-linux-gnu", "powerpc64le-suse-linux", 2168 "ppc64le-redhat-linux"}; 2169 2170 static const char *const RISCV32LibDirs[] = {"/lib32", "/lib"}; 2171 static const char *const RISCV32Triples[] = {"riscv32-unknown-linux-gnu", 2172 "riscv32-linux-gnu", 2173 "riscv32-unknown-elf"}; 2174 static const char *const RISCV64LibDirs[] = {"/lib64", "/lib"}; 2175 static const char *const RISCV64Triples[] = {"riscv64-unknown-linux-gnu", 2176 "riscv64-linux-gnu", 2177 "riscv64-unknown-elf"}; 2178 2179 static const char *const SPARCv8LibDirs[] = {"/lib32", "/lib"}; 2180 static const char *const SPARCv8Triples[] = {"sparc-linux-gnu", 2181 "sparcv8-linux-gnu"}; 2182 static const char *const SPARCv9LibDirs[] = {"/lib64", "/lib"}; 2183 static const char *const SPARCv9Triples[] = {"sparc64-linux-gnu", 2184 "sparcv9-linux-gnu"}; 2185 2186 static const char *const SystemZLibDirs[] = {"/lib64", "/lib"}; 2187 static const char *const SystemZTriples[] = { 2188 "s390x-linux-gnu", "s390x-unknown-linux-gnu", "s390x-ibm-linux-gnu", 2189 "s390x-suse-linux", "s390x-redhat-linux"}; 2190 2191 2192 using std::begin; 2193 using std::end; 2194 2195 if (TargetTriple.getOS() == llvm::Triple::Solaris) { 2196 static const char *const SolarisLibDirs[] = {"/lib"}; 2197 static const char *const SolarisSparcV8Triples[] = { 2198 "sparc-sun-solaris2.11", "sparc-sun-solaris2.12"}; 2199 static const char *const SolarisSparcV9Triples[] = { 2200 "sparcv9-sun-solaris2.11", "sparcv9-sun-solaris2.12"}; 2201 static const char *const SolarisX86Triples[] = {"i386-pc-solaris2.11", 2202 "i386-pc-solaris2.12"}; 2203 static const char *const SolarisX86_64Triples[] = {"x86_64-pc-solaris2.11", 2204 "x86_64-pc-solaris2.12"}; 2205 LibDirs.append(begin(SolarisLibDirs), end(SolarisLibDirs)); 2206 BiarchLibDirs.append(begin(SolarisLibDirs), end(SolarisLibDirs)); 2207 switch (TargetTriple.getArch()) { 2208 case llvm::Triple::x86: 2209 TripleAliases.append(begin(SolarisX86Triples), end(SolarisX86Triples)); 2210 BiarchTripleAliases.append(begin(SolarisX86_64Triples), 2211 end(SolarisX86_64Triples)); 2212 break; 2213 case llvm::Triple::x86_64: 2214 TripleAliases.append(begin(SolarisX86_64Triples), 2215 end(SolarisX86_64Triples)); 2216 BiarchTripleAliases.append(begin(SolarisX86Triples), 2217 end(SolarisX86Triples)); 2218 break; 2219 case llvm::Triple::sparc: 2220 TripleAliases.append(begin(SolarisSparcV8Triples), 2221 end(SolarisSparcV8Triples)); 2222 BiarchTripleAliases.append(begin(SolarisSparcV9Triples), 2223 end(SolarisSparcV9Triples)); 2224 break; 2225 case llvm::Triple::sparcv9: 2226 TripleAliases.append(begin(SolarisSparcV9Triples), 2227 end(SolarisSparcV9Triples)); 2228 BiarchTripleAliases.append(begin(SolarisSparcV8Triples), 2229 end(SolarisSparcV8Triples)); 2230 break; 2231 default: 2232 break; 2233 } 2234 return; 2235 } 2236 2237 // Android targets should not use GNU/Linux tools or libraries. 2238 if (TargetTriple.isAndroid()) { 2239 static const char *const AArch64AndroidTriples[] = { 2240 "aarch64-linux-android"}; 2241 static const char *const ARMAndroidTriples[] = {"arm-linux-androideabi"}; 2242 static const char *const MIPSELAndroidTriples[] = {"mipsel-linux-android"}; 2243 static const char *const MIPS64ELAndroidTriples[] = { 2244 "mips64el-linux-android"}; 2245 static const char *const X86AndroidTriples[] = {"i686-linux-android"}; 2246 static const char *const X86_64AndroidTriples[] = {"x86_64-linux-android"}; 2247 2248 switch (TargetTriple.getArch()) { 2249 case llvm::Triple::aarch64: 2250 LibDirs.append(begin(AArch64LibDirs), end(AArch64LibDirs)); 2251 TripleAliases.append(begin(AArch64AndroidTriples), 2252 end(AArch64AndroidTriples)); 2253 break; 2254 case llvm::Triple::arm: 2255 case llvm::Triple::thumb: 2256 LibDirs.append(begin(ARMLibDirs), end(ARMLibDirs)); 2257 TripleAliases.append(begin(ARMAndroidTriples), end(ARMAndroidTriples)); 2258 break; 2259 case llvm::Triple::mipsel: 2260 LibDirs.append(begin(MIPSELLibDirs), end(MIPSELLibDirs)); 2261 TripleAliases.append(begin(MIPSELAndroidTriples), 2262 end(MIPSELAndroidTriples)); 2263 BiarchLibDirs.append(begin(MIPS64ELLibDirs), end(MIPS64ELLibDirs)); 2264 BiarchTripleAliases.append(begin(MIPS64ELAndroidTriples), 2265 end(MIPS64ELAndroidTriples)); 2266 break; 2267 case llvm::Triple::mips64el: 2268 LibDirs.append(begin(MIPS64ELLibDirs), end(MIPS64ELLibDirs)); 2269 TripleAliases.append(begin(MIPS64ELAndroidTriples), 2270 end(MIPS64ELAndroidTriples)); 2271 BiarchLibDirs.append(begin(MIPSELLibDirs), end(MIPSELLibDirs)); 2272 BiarchTripleAliases.append(begin(MIPSELAndroidTriples), 2273 end(MIPSELAndroidTriples)); 2274 break; 2275 case llvm::Triple::x86_64: 2276 LibDirs.append(begin(X86_64LibDirs), end(X86_64LibDirs)); 2277 TripleAliases.append(begin(X86_64AndroidTriples), 2278 end(X86_64AndroidTriples)); 2279 BiarchLibDirs.append(begin(X86LibDirs), end(X86LibDirs)); 2280 BiarchTripleAliases.append(begin(X86AndroidTriples), 2281 end(X86AndroidTriples)); 2282 break; 2283 case llvm::Triple::x86: 2284 LibDirs.append(begin(X86LibDirs), end(X86LibDirs)); 2285 TripleAliases.append(begin(X86AndroidTriples), end(X86AndroidTriples)); 2286 BiarchLibDirs.append(begin(X86_64LibDirs), end(X86_64LibDirs)); 2287 BiarchTripleAliases.append(begin(X86_64AndroidTriples), 2288 end(X86_64AndroidTriples)); 2289 break; 2290 default: 2291 break; 2292 } 2293 2294 return; 2295 } 2296 2297 switch (TargetTriple.getArch()) { 2298 case llvm::Triple::aarch64: 2299 LibDirs.append(begin(AArch64LibDirs), end(AArch64LibDirs)); 2300 TripleAliases.append(begin(AArch64Triples), end(AArch64Triples)); 2301 BiarchLibDirs.append(begin(AArch64LibDirs), end(AArch64LibDirs)); 2302 BiarchTripleAliases.append(begin(AArch64Triples), end(AArch64Triples)); 2303 break; 2304 case llvm::Triple::aarch64_be: 2305 LibDirs.append(begin(AArch64beLibDirs), end(AArch64beLibDirs)); 2306 TripleAliases.append(begin(AArch64beTriples), end(AArch64beTriples)); 2307 BiarchLibDirs.append(begin(AArch64beLibDirs), end(AArch64beLibDirs)); 2308 BiarchTripleAliases.append(begin(AArch64beTriples), end(AArch64beTriples)); 2309 break; 2310 case llvm::Triple::arm: 2311 case llvm::Triple::thumb: 2312 LibDirs.append(begin(ARMLibDirs), end(ARMLibDirs)); 2313 if (TargetTriple.getEnvironment() == llvm::Triple::GNUEABIHF) { 2314 TripleAliases.append(begin(ARMHFTriples), end(ARMHFTriples)); 2315 } else { 2316 TripleAliases.append(begin(ARMTriples), end(ARMTriples)); 2317 } 2318 break; 2319 case llvm::Triple::armeb: 2320 case llvm::Triple::thumbeb: 2321 LibDirs.append(begin(ARMebLibDirs), end(ARMebLibDirs)); 2322 if (TargetTriple.getEnvironment() == llvm::Triple::GNUEABIHF) { 2323 TripleAliases.append(begin(ARMebHFTriples), end(ARMebHFTriples)); 2324 } else { 2325 TripleAliases.append(begin(ARMebTriples), end(ARMebTriples)); 2326 } 2327 break; 2328 case llvm::Triple::avr: 2329 LibDirs.append(begin(AVRLibDirs), end(AVRLibDirs)); 2330 TripleAliases.append(begin(AVRTriples), end(AVRTriples)); 2331 break; 2332 case llvm::Triple::x86_64: 2333 if (TargetTriple.isX32()) { 2334 LibDirs.append(begin(X32LibDirs), end(X32LibDirs)); 2335 TripleAliases.append(begin(X32Triples), end(X32Triples)); 2336 BiarchLibDirs.append(begin(X86_64LibDirs), end(X86_64LibDirs)); 2337 BiarchTripleAliases.append(begin(X86_64Triples), end(X86_64Triples)); 2338 } else { 2339 LibDirs.append(begin(X86_64LibDirs), end(X86_64LibDirs)); 2340 TripleAliases.append(begin(X86_64Triples), end(X86_64Triples)); 2341 BiarchLibDirs.append(begin(X32LibDirs), end(X32LibDirs)); 2342 BiarchTripleAliases.append(begin(X32Triples), end(X32Triples)); 2343 } 2344 BiarchLibDirs.append(begin(X86LibDirs), end(X86LibDirs)); 2345 BiarchTripleAliases.append(begin(X86Triples), end(X86Triples)); 2346 break; 2347 case llvm::Triple::x86: 2348 LibDirs.append(begin(X86LibDirs), end(X86LibDirs)); 2349 // MCU toolchain is 32 bit only and its triple alias is TargetTriple 2350 // itself, which will be appended below. 2351 if (!TargetTriple.isOSIAMCU()) { 2352 TripleAliases.append(begin(X86Triples), end(X86Triples)); 2353 BiarchLibDirs.append(begin(X86_64LibDirs), end(X86_64LibDirs)); 2354 BiarchTripleAliases.append(begin(X86_64Triples), end(X86_64Triples)); 2355 BiarchLibDirs.append(begin(X32LibDirs), end(X32LibDirs)); 2356 BiarchTripleAliases.append(begin(X32Triples), end(X32Triples)); 2357 } 2358 break; 2359 case llvm::Triple::m68k: 2360 LibDirs.append(begin(M68kLibDirs), end(M68kLibDirs)); 2361 TripleAliases.append(begin(M68kTriples), end(M68kTriples)); 2362 break; 2363 case llvm::Triple::mips: 2364 LibDirs.append(begin(MIPSLibDirs), end(MIPSLibDirs)); 2365 TripleAliases.append(begin(MIPSTriples), end(MIPSTriples)); 2366 BiarchLibDirs.append(begin(MIPS64LibDirs), end(MIPS64LibDirs)); 2367 BiarchTripleAliases.append(begin(MIPS64Triples), end(MIPS64Triples)); 2368 BiarchLibDirs.append(begin(MIPSN32LibDirs), end(MIPSN32LibDirs)); 2369 BiarchTripleAliases.append(begin(MIPSN32Triples), end(MIPSN32Triples)); 2370 break; 2371 case llvm::Triple::mipsel: 2372 LibDirs.append(begin(MIPSELLibDirs), end(MIPSELLibDirs)); 2373 TripleAliases.append(begin(MIPSELTriples), end(MIPSELTriples)); 2374 TripleAliases.append(begin(MIPSTriples), end(MIPSTriples)); 2375 BiarchLibDirs.append(begin(MIPS64ELLibDirs), end(MIPS64ELLibDirs)); 2376 BiarchTripleAliases.append(begin(MIPS64ELTriples), end(MIPS64ELTriples)); 2377 BiarchLibDirs.append(begin(MIPSN32ELLibDirs), end(MIPSN32ELLibDirs)); 2378 BiarchTripleAliases.append(begin(MIPSN32ELTriples), end(MIPSN32ELTriples)); 2379 break; 2380 case llvm::Triple::mips64: 2381 LibDirs.append(begin(MIPS64LibDirs), end(MIPS64LibDirs)); 2382 TripleAliases.append(begin(MIPS64Triples), end(MIPS64Triples)); 2383 BiarchLibDirs.append(begin(MIPSLibDirs), end(MIPSLibDirs)); 2384 BiarchTripleAliases.append(begin(MIPSTriples), end(MIPSTriples)); 2385 BiarchLibDirs.append(begin(MIPSN32LibDirs), end(MIPSN32LibDirs)); 2386 BiarchTripleAliases.append(begin(MIPSN32Triples), end(MIPSN32Triples)); 2387 break; 2388 case llvm::Triple::mips64el: 2389 LibDirs.append(begin(MIPS64ELLibDirs), end(MIPS64ELLibDirs)); 2390 TripleAliases.append(begin(MIPS64ELTriples), end(MIPS64ELTriples)); 2391 BiarchLibDirs.append(begin(MIPSELLibDirs), end(MIPSELLibDirs)); 2392 BiarchTripleAliases.append(begin(MIPSELTriples), end(MIPSELTriples)); 2393 BiarchLibDirs.append(begin(MIPSN32ELLibDirs), end(MIPSN32ELLibDirs)); 2394 BiarchTripleAliases.append(begin(MIPSN32ELTriples), end(MIPSN32ELTriples)); 2395 BiarchTripleAliases.append(begin(MIPSTriples), end(MIPSTriples)); 2396 break; 2397 case llvm::Triple::msp430: 2398 LibDirs.append(begin(MSP430LibDirs), end(MSP430LibDirs)); 2399 TripleAliases.append(begin(MSP430Triples), end(MSP430Triples)); 2400 break; 2401 case llvm::Triple::ppc: 2402 LibDirs.append(begin(PPCLibDirs), end(PPCLibDirs)); 2403 TripleAliases.append(begin(PPCTriples), end(PPCTriples)); 2404 BiarchLibDirs.append(begin(PPC64LibDirs), end(PPC64LibDirs)); 2405 BiarchTripleAliases.append(begin(PPC64Triples), end(PPC64Triples)); 2406 break; 2407 case llvm::Triple::ppcle: 2408 LibDirs.append(begin(PPCLELibDirs), end(PPCLELibDirs)); 2409 TripleAliases.append(begin(PPCLETriples), end(PPCLETriples)); 2410 BiarchLibDirs.append(begin(PPC64LELibDirs), end(PPC64LELibDirs)); 2411 BiarchTripleAliases.append(begin(PPC64LETriples), end(PPC64LETriples)); 2412 break; 2413 case llvm::Triple::ppc64: 2414 LibDirs.append(begin(PPC64LibDirs), end(PPC64LibDirs)); 2415 TripleAliases.append(begin(PPC64Triples), end(PPC64Triples)); 2416 BiarchLibDirs.append(begin(PPCLibDirs), end(PPCLibDirs)); 2417 BiarchTripleAliases.append(begin(PPCTriples), end(PPCTriples)); 2418 break; 2419 case llvm::Triple::ppc64le: 2420 LibDirs.append(begin(PPC64LELibDirs), end(PPC64LELibDirs)); 2421 TripleAliases.append(begin(PPC64LETriples), end(PPC64LETriples)); 2422 BiarchLibDirs.append(begin(PPCLELibDirs), end(PPCLELibDirs)); 2423 BiarchTripleAliases.append(begin(PPCLETriples), end(PPCLETriples)); 2424 break; 2425 case llvm::Triple::riscv32: 2426 LibDirs.append(begin(RISCV32LibDirs), end(RISCV32LibDirs)); 2427 TripleAliases.append(begin(RISCV32Triples), end(RISCV32Triples)); 2428 BiarchLibDirs.append(begin(RISCV64LibDirs), end(RISCV64LibDirs)); 2429 BiarchTripleAliases.append(begin(RISCV64Triples), end(RISCV64Triples)); 2430 break; 2431 case llvm::Triple::riscv64: 2432 LibDirs.append(begin(RISCV64LibDirs), end(RISCV64LibDirs)); 2433 TripleAliases.append(begin(RISCV64Triples), end(RISCV64Triples)); 2434 BiarchLibDirs.append(begin(RISCV32LibDirs), end(RISCV32LibDirs)); 2435 BiarchTripleAliases.append(begin(RISCV32Triples), end(RISCV32Triples)); 2436 break; 2437 case llvm::Triple::sparc: 2438 case llvm::Triple::sparcel: 2439 LibDirs.append(begin(SPARCv8LibDirs), end(SPARCv8LibDirs)); 2440 TripleAliases.append(begin(SPARCv8Triples), end(SPARCv8Triples)); 2441 BiarchLibDirs.append(begin(SPARCv9LibDirs), end(SPARCv9LibDirs)); 2442 BiarchTripleAliases.append(begin(SPARCv9Triples), end(SPARCv9Triples)); 2443 break; 2444 case llvm::Triple::sparcv9: 2445 LibDirs.append(begin(SPARCv9LibDirs), end(SPARCv9LibDirs)); 2446 TripleAliases.append(begin(SPARCv9Triples), end(SPARCv9Triples)); 2447 BiarchLibDirs.append(begin(SPARCv8LibDirs), end(SPARCv8LibDirs)); 2448 BiarchTripleAliases.append(begin(SPARCv8Triples), end(SPARCv8Triples)); 2449 break; 2450 case llvm::Triple::systemz: 2451 LibDirs.append(begin(SystemZLibDirs), end(SystemZLibDirs)); 2452 TripleAliases.append(begin(SystemZTriples), end(SystemZTriples)); 2453 break; 2454 default: 2455 // By default, just rely on the standard lib directories and the original 2456 // triple. 2457 break; 2458 } 2459 2460 // Always append the drivers target triple to the end, in case it doesn't 2461 // match any of our aliases. 2462 TripleAliases.push_back(TargetTriple.str()); 2463 2464 // Also include the multiarch variant if it's different. 2465 if (TargetTriple.str() != BiarchTriple.str()) 2466 BiarchTripleAliases.push_back(BiarchTriple.str()); 2467 } 2468 2469 bool Generic_GCC::GCCInstallationDetector::ScanGCCForMultilibs( 2470 const llvm::Triple &TargetTriple, const ArgList &Args, 2471 StringRef Path, bool NeedsBiarchSuffix) { 2472 llvm::Triple::ArchType TargetArch = TargetTriple.getArch(); 2473 DetectedMultilibs Detected; 2474 2475 // Android standalone toolchain could have multilibs for ARM and Thumb. 2476 // Debian mips multilibs behave more like the rest of the biarch ones, 2477 // so handle them there 2478 if (isArmOrThumbArch(TargetArch) && TargetTriple.isAndroid()) { 2479 // It should also work without multilibs in a simplified toolchain. 2480 findAndroidArmMultilibs(D, TargetTriple, Path, Args, Detected); 2481 } else if (TargetTriple.isMIPS()) { 2482 if (!findMIPSMultilibs(D, TargetTriple, Path, Args, Detected)) 2483 return false; 2484 } else if (TargetTriple.isRISCV()) { 2485 findRISCVMultilibs(D, TargetTriple, Path, Args, Detected); 2486 } else if (isMSP430(TargetArch)) { 2487 findMSP430Multilibs(D, TargetTriple, Path, Args, Detected); 2488 } else if (TargetArch == llvm::Triple::avr) { 2489 // AVR has no multilibs. 2490 } else if (!findBiarchMultilibs(D, TargetTriple, Path, Args, 2491 NeedsBiarchSuffix, Detected)) { 2492 return false; 2493 } 2494 2495 Multilibs = Detected.Multilibs; 2496 SelectedMultilib = Detected.SelectedMultilib; 2497 BiarchSibling = Detected.BiarchSibling; 2498 2499 return true; 2500 } 2501 2502 void Generic_GCC::GCCInstallationDetector::ScanLibDirForGCCTriple( 2503 const llvm::Triple &TargetTriple, const ArgList &Args, 2504 const std::string &LibDir, StringRef CandidateTriple, 2505 bool NeedsBiarchSuffix, bool GCCDirExists, bool GCCCrossDirExists) { 2506 // Locations relative to the system lib directory where GCC's triple-specific 2507 // directories might reside. 2508 struct GCCLibSuffix { 2509 // Path from system lib directory to GCC triple-specific directory. 2510 std::string LibSuffix; 2511 // Path from GCC triple-specific directory back to system lib directory. 2512 // This is one '..' component per component in LibSuffix. 2513 StringRef ReversePath; 2514 // Whether this library suffix is relevant for the triple. 2515 bool Active; 2516 } Suffixes[] = { 2517 // This is the normal place. 2518 {"gcc/" + CandidateTriple.str(), "../..", GCCDirExists}, 2519 2520 // Debian puts cross-compilers in gcc-cross. 2521 {"gcc-cross/" + CandidateTriple.str(), "../..", GCCCrossDirExists}, 2522 2523 // The Freescale PPC SDK has the gcc libraries in 2524 // <sysroot>/usr/lib/<triple>/x.y.z so have a look there as well. Only do 2525 // this on Freescale triples, though, since some systems put a *lot* of 2526 // files in that location, not just GCC installation data. 2527 {CandidateTriple.str(), "..", 2528 TargetTriple.getVendor() == llvm::Triple::Freescale || 2529 TargetTriple.getVendor() == llvm::Triple::OpenEmbedded}}; 2530 2531 for (auto &Suffix : Suffixes) { 2532 if (!Suffix.Active) 2533 continue; 2534 2535 StringRef LibSuffix = Suffix.LibSuffix; 2536 std::error_code EC; 2537 for (llvm::vfs::directory_iterator 2538 LI = D.getVFS().dir_begin(LibDir + "/" + LibSuffix, EC), 2539 LE; 2540 !EC && LI != LE; LI = LI.increment(EC)) { 2541 StringRef VersionText = llvm::sys::path::filename(LI->path()); 2542 GCCVersion CandidateVersion = GCCVersion::Parse(VersionText); 2543 if (CandidateVersion.Major != -1) // Filter obviously bad entries. 2544 if (!CandidateGCCInstallPaths.insert(std::string(LI->path())).second) 2545 continue; // Saw this path before; no need to look at it again. 2546 if (CandidateVersion.isOlderThan(4, 1, 1)) 2547 continue; 2548 if (CandidateVersion <= Version) 2549 continue; 2550 2551 if (!ScanGCCForMultilibs(TargetTriple, Args, LI->path(), 2552 NeedsBiarchSuffix)) 2553 continue; 2554 2555 Version = CandidateVersion; 2556 GCCTriple.setTriple(CandidateTriple); 2557 // FIXME: We hack together the directory name here instead of 2558 // using LI to ensure stable path separators across Windows and 2559 // Linux. 2560 GCCInstallPath = (LibDir + "/" + LibSuffix + "/" + VersionText).str(); 2561 GCCParentLibPath = (GCCInstallPath + "/../" + Suffix.ReversePath).str(); 2562 IsValid = true; 2563 } 2564 } 2565 } 2566 2567 bool Generic_GCC::GCCInstallationDetector::ScanGentooConfigs( 2568 const llvm::Triple &TargetTriple, const ArgList &Args, 2569 const SmallVectorImpl<StringRef> &CandidateTriples, 2570 const SmallVectorImpl<StringRef> &CandidateBiarchTriples) { 2571 if (!D.getVFS().exists(D.SysRoot + GentooConfigDir)) 2572 return false; 2573 2574 for (StringRef CandidateTriple : CandidateTriples) { 2575 if (ScanGentooGccConfig(TargetTriple, Args, CandidateTriple)) 2576 return true; 2577 } 2578 2579 for (StringRef CandidateTriple : CandidateBiarchTriples) { 2580 if (ScanGentooGccConfig(TargetTriple, Args, CandidateTriple, true)) 2581 return true; 2582 } 2583 return false; 2584 } 2585 2586 bool Generic_GCC::GCCInstallationDetector::ScanGentooGccConfig( 2587 const llvm::Triple &TargetTriple, const ArgList &Args, 2588 StringRef CandidateTriple, bool NeedsBiarchSuffix) { 2589 llvm::ErrorOr<std::unique_ptr<llvm::MemoryBuffer>> File = 2590 D.getVFS().getBufferForFile(D.SysRoot + GentooConfigDir + "/config-" + 2591 CandidateTriple.str()); 2592 if (File) { 2593 SmallVector<StringRef, 2> Lines; 2594 File.get()->getBuffer().split(Lines, "\n"); 2595 for (StringRef Line : Lines) { 2596 Line = Line.trim(); 2597 // CURRENT=triple-version 2598 if (!Line.consume_front("CURRENT=")) 2599 continue; 2600 // Process the config file pointed to by CURRENT. 2601 llvm::ErrorOr<std::unique_ptr<llvm::MemoryBuffer>> ConfigFile = 2602 D.getVFS().getBufferForFile(D.SysRoot + GentooConfigDir + "/" + 2603 Line.str()); 2604 std::pair<StringRef, StringRef> ActiveVersion = Line.rsplit('-'); 2605 // List of paths to scan for libraries. 2606 SmallVector<StringRef, 4> GentooScanPaths; 2607 // Scan the Config file to find installed GCC libraries path. 2608 // Typical content of the GCC config file: 2609 // LDPATH="/usr/lib/gcc/x86_64-pc-linux-gnu/4.9.x:/usr/lib/gcc/ 2610 // (continued from previous line) x86_64-pc-linux-gnu/4.9.x/32" 2611 // MANPATH="/usr/share/gcc-data/x86_64-pc-linux-gnu/4.9.x/man" 2612 // INFOPATH="/usr/share/gcc-data/x86_64-pc-linux-gnu/4.9.x/info" 2613 // STDCXX_INCDIR="/usr/lib/gcc/x86_64-pc-linux-gnu/4.9.x/include/g++-v4" 2614 // We are looking for the paths listed in LDPATH=... . 2615 if (ConfigFile) { 2616 SmallVector<StringRef, 2> ConfigLines; 2617 ConfigFile.get()->getBuffer().split(ConfigLines, "\n"); 2618 for (StringRef ConfLine : ConfigLines) { 2619 ConfLine = ConfLine.trim(); 2620 if (ConfLine.consume_front("LDPATH=")) { 2621 // Drop '"' from front and back if present. 2622 ConfLine.consume_back("\""); 2623 ConfLine.consume_front("\""); 2624 // Get all paths sperated by ':' 2625 ConfLine.split(GentooScanPaths, ':', -1, /*AllowEmpty*/ false); 2626 } 2627 } 2628 } 2629 // Test the path based on the version in /etc/env.d/gcc/config-{tuple}. 2630 std::string basePath = "/usr/lib/gcc/" + ActiveVersion.first.str() + "/" 2631 + ActiveVersion.second.str(); 2632 GentooScanPaths.push_back(StringRef(basePath)); 2633 2634 // Scan all paths for GCC libraries. 2635 for (const auto &GentooScanPath : GentooScanPaths) { 2636 std::string GentooPath = D.SysRoot + std::string(GentooScanPath); 2637 if (D.getVFS().exists(GentooPath + "/crtbegin.o")) { 2638 if (!ScanGCCForMultilibs(TargetTriple, Args, GentooPath, 2639 NeedsBiarchSuffix)) 2640 continue; 2641 2642 Version = GCCVersion::Parse(ActiveVersion.second); 2643 GCCInstallPath = GentooPath; 2644 GCCParentLibPath = GentooPath + std::string("/../../.."); 2645 GCCTriple.setTriple(ActiveVersion.first); 2646 IsValid = true; 2647 return true; 2648 } 2649 } 2650 } 2651 } 2652 2653 return false; 2654 } 2655 2656 Generic_GCC::Generic_GCC(const Driver &D, const llvm::Triple &Triple, 2657 const ArgList &Args) 2658 : ToolChain(D, Triple, Args), GCCInstallation(D), 2659 CudaInstallation(D, Triple, Args), RocmInstallation(D, Triple, Args) { 2660 getProgramPaths().push_back(getDriver().getInstalledDir()); 2661 if (getDriver().getInstalledDir() != getDriver().Dir) 2662 getProgramPaths().push_back(getDriver().Dir); 2663 } 2664 2665 Generic_GCC::~Generic_GCC() {} 2666 2667 Tool *Generic_GCC::getTool(Action::ActionClass AC) const { 2668 switch (AC) { 2669 case Action::PreprocessJobClass: 2670 if (!Preprocess) 2671 Preprocess.reset(new clang::driver::tools::gcc::Preprocessor(*this)); 2672 return Preprocess.get(); 2673 case Action::CompileJobClass: 2674 if (!Compile) 2675 Compile.reset(new tools::gcc::Compiler(*this)); 2676 return Compile.get(); 2677 default: 2678 return ToolChain::getTool(AC); 2679 } 2680 } 2681 2682 Tool *Generic_GCC::buildAssembler() const { 2683 return new tools::gnutools::Assembler(*this); 2684 } 2685 2686 Tool *Generic_GCC::buildLinker() const { return new tools::gcc::Linker(*this); } 2687 2688 void Generic_GCC::printVerboseInfo(raw_ostream &OS) const { 2689 // Print the information about how we detected the GCC installation. 2690 GCCInstallation.print(OS); 2691 CudaInstallation.print(OS); 2692 RocmInstallation.print(OS); 2693 } 2694 2695 bool Generic_GCC::IsUnwindTablesDefault(const ArgList &Args) const { 2696 switch (getArch()) { 2697 case llvm::Triple::aarch64: 2698 case llvm::Triple::ppc: 2699 case llvm::Triple::ppcle: 2700 case llvm::Triple::ppc64: 2701 case llvm::Triple::ppc64le: 2702 case llvm::Triple::x86: 2703 case llvm::Triple::x86_64: 2704 return true; 2705 default: 2706 return false; 2707 } 2708 } 2709 2710 bool Generic_GCC::isPICDefault() const { 2711 switch (getArch()) { 2712 case llvm::Triple::x86_64: 2713 return getTriple().isOSWindows(); 2714 case llvm::Triple::mips64: 2715 case llvm::Triple::mips64el: 2716 return true; 2717 default: 2718 return false; 2719 } 2720 } 2721 2722 bool Generic_GCC::isPIEDefault(const llvm::opt::ArgList &Args) const { 2723 return false; 2724 } 2725 2726 bool Generic_GCC::isPICDefaultForced() const { 2727 return getArch() == llvm::Triple::x86_64 && getTriple().isOSWindows(); 2728 } 2729 2730 bool Generic_GCC::IsIntegratedAssemblerDefault() const { 2731 switch (getTriple().getArch()) { 2732 case llvm::Triple::x86: 2733 case llvm::Triple::x86_64: 2734 case llvm::Triple::aarch64: 2735 case llvm::Triple::aarch64_be: 2736 case llvm::Triple::arm: 2737 case llvm::Triple::armeb: 2738 case llvm::Triple::avr: 2739 case llvm::Triple::bpfel: 2740 case llvm::Triple::bpfeb: 2741 case llvm::Triple::thumb: 2742 case llvm::Triple::thumbeb: 2743 case llvm::Triple::ppc: 2744 case llvm::Triple::ppcle: 2745 case llvm::Triple::ppc64: 2746 case llvm::Triple::ppc64le: 2747 case llvm::Triple::riscv32: 2748 case llvm::Triple::riscv64: 2749 case llvm::Triple::systemz: 2750 case llvm::Triple::mips: 2751 case llvm::Triple::mipsel: 2752 case llvm::Triple::mips64: 2753 case llvm::Triple::mips64el: 2754 case llvm::Triple::msp430: 2755 case llvm::Triple::m68k: 2756 return true; 2757 case llvm::Triple::sparc: 2758 case llvm::Triple::sparcel: 2759 case llvm::Triple::sparcv9: 2760 if (getTriple().isOSFreeBSD() || getTriple().isOSOpenBSD() || 2761 getTriple().isOSSolaris()) 2762 return true; 2763 return false; 2764 default: 2765 return false; 2766 } 2767 } 2768 2769 void Generic_GCC::PushPPaths(ToolChain::path_list &PPaths) { 2770 // Cross-compiling binutils and GCC installations (vanilla and openSUSE at 2771 // least) put various tools in a triple-prefixed directory off of the parent 2772 // of the GCC installation. We use the GCC triple here to ensure that we end 2773 // up with tools that support the same amount of cross compiling as the 2774 // detected GCC installation. For example, if we find a GCC installation 2775 // targeting x86_64, but it is a bi-arch GCC installation, it can also be 2776 // used to target i386. 2777 if (GCCInstallation.isValid()) { 2778 PPaths.push_back(Twine(GCCInstallation.getParentLibPath() + "/../" + 2779 GCCInstallation.getTriple().str() + "/bin") 2780 .str()); 2781 } 2782 } 2783 2784 void Generic_GCC::AddMultilibPaths(const Driver &D, 2785 const std::string &SysRoot, 2786 const std::string &OSLibDir, 2787 const std::string &MultiarchTriple, 2788 path_list &Paths) { 2789 // Add the multilib suffixed paths where they are available. 2790 if (GCCInstallation.isValid()) { 2791 const llvm::Triple &GCCTriple = GCCInstallation.getTriple(); 2792 const std::string &LibPath = 2793 std::string(GCCInstallation.getParentLibPath()); 2794 2795 // Sourcery CodeBench MIPS toolchain holds some libraries under 2796 // a biarch-like suffix of the GCC installation. 2797 if (const auto &PathsCallback = Multilibs.filePathsCallback()) 2798 for (const auto &Path : PathsCallback(SelectedMultilib)) 2799 addPathIfExists(D, GCCInstallation.getInstallPath() + Path, Paths); 2800 2801 // Add lib/gcc/$triple/$version, with an optional /multilib suffix. 2802 addPathIfExists( 2803 D, GCCInstallation.getInstallPath() + SelectedMultilib.gccSuffix(), 2804 Paths); 2805 2806 // GCC cross compiling toolchains will install target libraries which ship 2807 // as part of the toolchain under <prefix>/<triple>/<libdir> rather than as 2808 // any part of the GCC installation in 2809 // <prefix>/<libdir>/gcc/<triple>/<version>. This decision is somewhat 2810 // debatable, but is the reality today. We need to search this tree even 2811 // when we have a sysroot somewhere else. It is the responsibility of 2812 // whomever is doing the cross build targeting a sysroot using a GCC 2813 // installation that is *not* within the system root to ensure two things: 2814 // 2815 // 1) Any DSOs that are linked in from this tree or from the install path 2816 // above must be present on the system root and found via an 2817 // appropriate rpath. 2818 // 2) There must not be libraries installed into 2819 // <prefix>/<triple>/<libdir> unless they should be preferred over 2820 // those within the system root. 2821 // 2822 // Note that this matches the GCC behavior. See the below comment for where 2823 // Clang diverges from GCC's behavior. 2824 addPathIfExists(D, 2825 LibPath + "/../" + GCCTriple.str() + "/lib/../" + OSLibDir + 2826 SelectedMultilib.osSuffix(), 2827 Paths); 2828 2829 // If the GCC installation we found is inside of the sysroot, we want to 2830 // prefer libraries installed in the parent prefix of the GCC installation. 2831 // It is important to *not* use these paths when the GCC installation is 2832 // outside of the system root as that can pick up unintended libraries. 2833 // This usually happens when there is an external cross compiler on the 2834 // host system, and a more minimal sysroot available that is the target of 2835 // the cross. Note that GCC does include some of these directories in some 2836 // configurations but this seems somewhere between questionable and simply 2837 // a bug. 2838 if (StringRef(LibPath).startswith(SysRoot)) 2839 addPathIfExists(D, LibPath + "/../" + OSLibDir, Paths); 2840 } 2841 } 2842 2843 void Generic_GCC::AddMultiarchPaths(const Driver &D, 2844 const std::string &SysRoot, 2845 const std::string &OSLibDir, 2846 path_list &Paths) { 2847 if (GCCInstallation.isValid()) { 2848 const std::string &LibPath = 2849 std::string(GCCInstallation.getParentLibPath()); 2850 const llvm::Triple &GCCTriple = GCCInstallation.getTriple(); 2851 const Multilib &Multilib = GCCInstallation.getMultilib(); 2852 addPathIfExists( 2853 D, LibPath + "/../" + GCCTriple.str() + "/lib" + Multilib.osSuffix(), 2854 Paths); 2855 } 2856 } 2857 2858 void Generic_GCC::AddMultilibIncludeArgs(const ArgList &DriverArgs, 2859 ArgStringList &CC1Args) const { 2860 // Add include directories specific to the selected multilib set and multilib. 2861 if (!GCCInstallation.isValid()) 2862 return; 2863 // gcc TOOL_INCLUDE_DIR. 2864 const llvm::Triple &GCCTriple = GCCInstallation.getTriple(); 2865 std::string LibPath(GCCInstallation.getParentLibPath()); 2866 addSystemInclude(DriverArgs, CC1Args, 2867 Twine(LibPath) + "/../" + GCCTriple.str() + "/include"); 2868 2869 const auto &Callback = Multilibs.includeDirsCallback(); 2870 if (Callback) { 2871 for (const auto &Path : Callback(GCCInstallation.getMultilib())) 2872 addExternCSystemIncludeIfExists(DriverArgs, CC1Args, 2873 GCCInstallation.getInstallPath() + Path); 2874 } 2875 } 2876 2877 void Generic_GCC::AddClangCXXStdlibIncludeArgs(const ArgList &DriverArgs, 2878 ArgStringList &CC1Args) const { 2879 if (DriverArgs.hasArg(options::OPT_nostdinc, options::OPT_nostdincxx, 2880 options::OPT_nostdlibinc)) 2881 return; 2882 2883 switch (GetCXXStdlibType(DriverArgs)) { 2884 case ToolChain::CST_Libcxx: 2885 addLibCxxIncludePaths(DriverArgs, CC1Args); 2886 break; 2887 2888 case ToolChain::CST_Libstdcxx: 2889 addLibStdCxxIncludePaths(DriverArgs, CC1Args); 2890 break; 2891 } 2892 } 2893 2894 void 2895 Generic_GCC::addLibCxxIncludePaths(const llvm::opt::ArgList &DriverArgs, 2896 llvm::opt::ArgStringList &CC1Args) const { 2897 const Driver &D = getDriver(); 2898 std::string SysRoot = computeSysRoot(); 2899 std::string Target = getTripleString(); 2900 2901 auto AddIncludePath = [&](std::string Path) { 2902 std::string Version = detectLibcxxVersion(Path); 2903 if (Version.empty()) 2904 return false; 2905 2906 // First add the per-target include path if it exists. 2907 std::string TargetDir = Path + "/" + Target + "/c++/" + Version; 2908 if (D.getVFS().exists(TargetDir)) 2909 addSystemInclude(DriverArgs, CC1Args, TargetDir); 2910 2911 // Second add the generic one. 2912 addSystemInclude(DriverArgs, CC1Args, Path + "/c++/" + Version); 2913 return true; 2914 }; 2915 2916 // Android never uses the libc++ headers installed alongside the toolchain, 2917 // which are generally incompatible with the NDK libraries anyway. 2918 if (!getTriple().isAndroid()) 2919 if (AddIncludePath(getDriver().Dir + "/../include")) 2920 return; 2921 // If this is a development, non-installed, clang, libcxx will 2922 // not be found at ../include/c++ but it likely to be found at 2923 // one of the following two locations: 2924 if (AddIncludePath(SysRoot + "/usr/local/include")) 2925 return; 2926 if (AddIncludePath(SysRoot + "/usr/include")) 2927 return; 2928 } 2929 2930 bool Generic_GCC::addLibStdCXXIncludePaths(Twine IncludeDir, StringRef Triple, 2931 Twine IncludeSuffix, 2932 const llvm::opt::ArgList &DriverArgs, 2933 llvm::opt::ArgStringList &CC1Args, 2934 bool DetectDebian) const { 2935 if (!getVFS().exists(IncludeDir)) 2936 return false; 2937 2938 // Debian native gcc uses g++-multiarch-incdir.diff which uses 2939 // include/x86_64-linux-gnu/c++/10$IncludeSuffix instead of 2940 // include/c++/10/x86_64-linux-gnu$IncludeSuffix. 2941 std::string Dir = IncludeDir.str(); 2942 StringRef Include = 2943 llvm::sys::path::parent_path(llvm::sys::path::parent_path(Dir)); 2944 std::string Path = 2945 (Include + "/" + Triple + Dir.substr(Include.size()) + IncludeSuffix) 2946 .str(); 2947 if (DetectDebian && !getVFS().exists(Path)) 2948 return false; 2949 2950 // GPLUSPLUS_INCLUDE_DIR 2951 addSystemInclude(DriverArgs, CC1Args, IncludeDir); 2952 // GPLUSPLUS_TOOL_INCLUDE_DIR. If Triple is not empty, add a target-dependent 2953 // include directory. 2954 if (DetectDebian) 2955 addSystemInclude(DriverArgs, CC1Args, Path); 2956 else if (!Triple.empty()) 2957 addSystemInclude(DriverArgs, CC1Args, 2958 IncludeDir + "/" + Triple + IncludeSuffix); 2959 // GPLUSPLUS_BACKWARD_INCLUDE_DIR 2960 addSystemInclude(DriverArgs, CC1Args, IncludeDir + "/backward"); 2961 return true; 2962 } 2963 2964 bool Generic_GCC::addGCCLibStdCxxIncludePaths( 2965 const llvm::opt::ArgList &DriverArgs, llvm::opt::ArgStringList &CC1Args, 2966 StringRef DebianMultiarch) const { 2967 assert(GCCInstallation.isValid()); 2968 2969 // By default, look for the C++ headers in an include directory adjacent to 2970 // the lib directory of the GCC installation. Note that this is expect to be 2971 // equivalent to '/usr/include/c++/X.Y' in almost all cases. 2972 StringRef LibDir = GCCInstallation.getParentLibPath(); 2973 StringRef InstallDir = GCCInstallation.getInstallPath(); 2974 StringRef TripleStr = GCCInstallation.getTriple().str(); 2975 const Multilib &Multilib = GCCInstallation.getMultilib(); 2976 const GCCVersion &Version = GCCInstallation.getVersion(); 2977 2978 // Try /../$triple/include/c++/$version (gcc --print-multiarch is not empty). 2979 if (addLibStdCXXIncludePaths( 2980 LibDir.str() + "/../" + TripleStr + "/include/c++/" + Version.Text, 2981 TripleStr, Multilib.includeSuffix(), DriverArgs, CC1Args)) 2982 return true; 2983 2984 // Detect Debian g++-multiarch-incdir.diff. 2985 if (addLibStdCXXIncludePaths(LibDir.str() + "/../include/c++/" + Version.Text, 2986 DebianMultiarch, Multilib.includeSuffix(), 2987 DriverArgs, CC1Args, /*Debian=*/true)) 2988 return true; 2989 2990 // Try /../include/c++/$version (gcc --print-multiarch is empty). 2991 if (addLibStdCXXIncludePaths(LibDir.str() + "/../include/c++/" + Version.Text, 2992 TripleStr, Multilib.includeSuffix(), DriverArgs, 2993 CC1Args)) 2994 return true; 2995 2996 // Otherwise, fall back on a bunch of options which don't use multiarch 2997 // layouts for simplicity. 2998 const std::string LibStdCXXIncludePathCandidates[] = { 2999 // Gentoo is weird and places its headers inside the GCC install, 3000 // so if the first attempt to find the headers fails, try these patterns. 3001 InstallDir.str() + "/include/g++-v" + Version.Text, 3002 InstallDir.str() + "/include/g++-v" + Version.MajorStr + "." + 3003 Version.MinorStr, 3004 InstallDir.str() + "/include/g++-v" + Version.MajorStr, 3005 }; 3006 3007 for (const auto &IncludePath : LibStdCXXIncludePathCandidates) { 3008 if (addLibStdCXXIncludePaths(IncludePath, TripleStr, 3009 Multilib.includeSuffix(), DriverArgs, CC1Args)) 3010 return true; 3011 } 3012 return false; 3013 } 3014 3015 void 3016 Generic_GCC::addLibStdCxxIncludePaths(const llvm::opt::ArgList &DriverArgs, 3017 llvm::opt::ArgStringList &CC1Args) const { 3018 if (GCCInstallation.isValid()) { 3019 addGCCLibStdCxxIncludePaths(DriverArgs, CC1Args, 3020 GCCInstallation.getTriple().str()); 3021 } 3022 } 3023 3024 llvm::opt::DerivedArgList * 3025 Generic_GCC::TranslateArgs(const llvm::opt::DerivedArgList &Args, StringRef, 3026 Action::OffloadKind DeviceOffloadKind) const { 3027 3028 // If this tool chain is used for an OpenMP offloading device we have to make 3029 // sure we always generate a shared library regardless of the commands the 3030 // user passed to the host. This is required because the runtime library 3031 // is required to load the device image dynamically at run time. 3032 if (DeviceOffloadKind == Action::OFK_OpenMP) { 3033 DerivedArgList *DAL = new DerivedArgList(Args.getBaseArgs()); 3034 const OptTable &Opts = getDriver().getOpts(); 3035 3036 // Request the shared library. Given that these options are decided 3037 // implicitly, they do not refer to any base argument. 3038 DAL->AddFlagArg(/*BaseArg=*/nullptr, Opts.getOption(options::OPT_shared)); 3039 DAL->AddFlagArg(/*BaseArg=*/nullptr, Opts.getOption(options::OPT_fPIC)); 3040 3041 // Filter all the arguments we don't care passing to the offloading 3042 // toolchain as they can mess up with the creation of a shared library. 3043 for (auto *A : Args) { 3044 switch ((options::ID)A->getOption().getID()) { 3045 default: 3046 DAL->append(A); 3047 break; 3048 case options::OPT_shared: 3049 case options::OPT_dynamic: 3050 case options::OPT_static: 3051 case options::OPT_fPIC: 3052 case options::OPT_fno_PIC: 3053 case options::OPT_fpic: 3054 case options::OPT_fno_pic: 3055 case options::OPT_fPIE: 3056 case options::OPT_fno_PIE: 3057 case options::OPT_fpie: 3058 case options::OPT_fno_pie: 3059 break; 3060 } 3061 } 3062 return DAL; 3063 } 3064 return nullptr; 3065 } 3066 3067 void Generic_ELF::anchor() {} 3068 3069 void Generic_ELF::addClangTargetOptions(const ArgList &DriverArgs, 3070 ArgStringList &CC1Args, 3071 Action::OffloadKind) const { 3072 if (!DriverArgs.hasFlag(options::OPT_fuse_init_array, 3073 options::OPT_fno_use_init_array, true)) 3074 CC1Args.push_back("-fno-use-init-array"); 3075 } 3076