1 //===--- Driver.cpp - Clang GCC Compatible Driver -------------------------===// 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 "clang/Driver/Driver.h" 10 #include "InputInfo.h" 11 #include "ToolChains/AIX.h" 12 #include "ToolChains/AMDGPU.h" 13 #include "ToolChains/AMDGPUOpenMP.h" 14 #include "ToolChains/AVR.h" 15 #include "ToolChains/Ananas.h" 16 #include "ToolChains/BareMetal.h" 17 #include "ToolChains/Clang.h" 18 #include "ToolChains/CloudABI.h" 19 #include "ToolChains/Contiki.h" 20 #include "ToolChains/CrossWindows.h" 21 #include "ToolChains/Cuda.h" 22 #include "ToolChains/Darwin.h" 23 #include "ToolChains/DragonFly.h" 24 #include "ToolChains/FreeBSD.h" 25 #include "ToolChains/Fuchsia.h" 26 #include "ToolChains/Gnu.h" 27 #include "ToolChains/HIP.h" 28 #include "ToolChains/Haiku.h" 29 #include "ToolChains/Hexagon.h" 30 #include "ToolChains/Hurd.h" 31 #include "ToolChains/Lanai.h" 32 #include "ToolChains/Linux.h" 33 #include "ToolChains/MSP430.h" 34 #include "ToolChains/MSVC.h" 35 #include "ToolChains/MinGW.h" 36 #include "ToolChains/Minix.h" 37 #include "ToolChains/MipsLinux.h" 38 #include "ToolChains/Myriad.h" 39 #include "ToolChains/NaCl.h" 40 #include "ToolChains/NetBSD.h" 41 #include "ToolChains/OpenBSD.h" 42 #include "ToolChains/PPCLinux.h" 43 #include "ToolChains/PS4CPU.h" 44 #include "ToolChains/RISCVToolchain.h" 45 #include "ToolChains/Solaris.h" 46 #include "ToolChains/TCE.h" 47 #include "ToolChains/VEToolchain.h" 48 #include "ToolChains/WebAssembly.h" 49 #include "ToolChains/XCore.h" 50 #include "ToolChains/ZOS.h" 51 #include "clang/Basic/TargetID.h" 52 #include "clang/Basic/Version.h" 53 #include "clang/Config/config.h" 54 #include "clang/Driver/Action.h" 55 #include "clang/Driver/Compilation.h" 56 #include "clang/Driver/DriverDiagnostic.h" 57 #include "clang/Driver/Job.h" 58 #include "clang/Driver/Options.h" 59 #include "clang/Driver/SanitizerArgs.h" 60 #include "clang/Driver/Tool.h" 61 #include "clang/Driver/ToolChain.h" 62 #include "llvm/ADT/ArrayRef.h" 63 #include "llvm/ADT/STLExtras.h" 64 #include "llvm/ADT/SmallSet.h" 65 #include "llvm/ADT/StringExtras.h" 66 #include "llvm/ADT/StringSet.h" 67 #include "llvm/ADT/StringSwitch.h" 68 #include "llvm/Config/llvm-config.h" 69 #include "llvm/Option/Arg.h" 70 #include "llvm/Option/ArgList.h" 71 #include "llvm/Option/OptSpecifier.h" 72 #include "llvm/Option/OptTable.h" 73 #include "llvm/Option/Option.h" 74 #include "llvm/Support/CommandLine.h" 75 #include "llvm/Support/ErrorHandling.h" 76 #include "llvm/Support/ExitCodes.h" 77 #include "llvm/Support/FileSystem.h" 78 #include "llvm/Support/FormatVariadic.h" 79 #include "llvm/Support/Host.h" 80 #include "llvm/Support/MD5.h" 81 #include "llvm/Support/Path.h" 82 #include "llvm/Support/PrettyStackTrace.h" 83 #include "llvm/Support/Process.h" 84 #include "llvm/Support/Program.h" 85 #include "llvm/Support/StringSaver.h" 86 #include "llvm/Support/TargetRegistry.h" 87 #include "llvm/Support/VirtualFileSystem.h" 88 #include "llvm/Support/raw_ostream.h" 89 #include <map> 90 #include <memory> 91 #include <utility> 92 #if LLVM_ON_UNIX 93 #include <unistd.h> // getpid 94 #endif 95 96 using namespace clang::driver; 97 using namespace clang; 98 using namespace llvm::opt; 99 100 static llvm::Triple getHIPOffloadTargetTriple() { 101 static const llvm::Triple T("amdgcn-amd-amdhsa"); 102 return T; 103 } 104 105 // static 106 std::string Driver::GetResourcesPath(StringRef BinaryPath, 107 StringRef CustomResourceDir) { 108 // Since the resource directory is embedded in the module hash, it's important 109 // that all places that need it call this function, so that they get the 110 // exact same string ("a/../b/" and "b/" get different hashes, for example). 111 112 // Dir is bin/ or lib/, depending on where BinaryPath is. 113 std::string Dir = std::string(llvm::sys::path::parent_path(BinaryPath)); 114 115 SmallString<128> P(Dir); 116 if (CustomResourceDir != "") { 117 llvm::sys::path::append(P, CustomResourceDir); 118 } else { 119 // On Windows, libclang.dll is in bin/. 120 // On non-Windows, libclang.so/.dylib is in lib/. 121 // With a static-library build of libclang, LibClangPath will contain the 122 // path of the embedding binary, which for LLVM binaries will be in bin/. 123 // ../lib gets us to lib/ in both cases. 124 P = llvm::sys::path::parent_path(Dir); 125 llvm::sys::path::append(P, Twine("lib") + CLANG_LIBDIR_SUFFIX, "clang", 126 CLANG_VERSION_STRING); 127 } 128 129 return std::string(P.str()); 130 } 131 132 Driver::Driver(StringRef ClangExecutable, StringRef TargetTriple, 133 DiagnosticsEngine &Diags, std::string Title, 134 IntrusiveRefCntPtr<llvm::vfs::FileSystem> VFS) 135 : Diags(Diags), VFS(std::move(VFS)), Mode(GCCMode), 136 SaveTemps(SaveTempsNone), BitcodeEmbed(EmbedNone), LTOMode(LTOK_None), 137 ClangExecutable(ClangExecutable), SysRoot(DEFAULT_SYSROOT), 138 DriverTitle(Title), CCPrintOptionsFilename(nullptr), 139 CCPrintHeadersFilename(nullptr), CCLogDiagnosticsFilename(nullptr), 140 CCCPrintBindings(false), CCPrintOptions(false), CCPrintHeaders(false), 141 CCLogDiagnostics(false), CCGenDiagnostics(false), 142 TargetTriple(TargetTriple), CCCGenericGCCName(""), Saver(Alloc), 143 CheckInputsExist(true), GenReproducer(false), 144 SuppressMissingInputWarning(false) { 145 // Provide a sane fallback if no VFS is specified. 146 if (!this->VFS) 147 this->VFS = llvm::vfs::getRealFileSystem(); 148 149 Name = std::string(llvm::sys::path::filename(ClangExecutable)); 150 Dir = std::string(llvm::sys::path::parent_path(ClangExecutable)); 151 InstalledDir = Dir; // Provide a sensible default installed dir. 152 153 if ((!SysRoot.empty()) && llvm::sys::path::is_relative(SysRoot)) { 154 // Prepend InstalledDir if SysRoot is relative 155 SmallString<128> P(InstalledDir); 156 llvm::sys::path::append(P, SysRoot); 157 SysRoot = std::string(P); 158 } 159 160 #if defined(CLANG_CONFIG_FILE_SYSTEM_DIR) 161 SystemConfigDir = CLANG_CONFIG_FILE_SYSTEM_DIR; 162 #endif 163 #if defined(CLANG_CONFIG_FILE_USER_DIR) 164 UserConfigDir = CLANG_CONFIG_FILE_USER_DIR; 165 #endif 166 167 // Compute the path to the resource directory. 168 ResourceDir = GetResourcesPath(ClangExecutable, CLANG_RESOURCE_DIR); 169 } 170 171 void Driver::ParseDriverMode(StringRef ProgramName, 172 ArrayRef<const char *> Args) { 173 if (ClangNameParts.isEmpty()) 174 ClangNameParts = ToolChain::getTargetAndModeFromProgramName(ProgramName); 175 setDriverModeFromOption(ClangNameParts.DriverMode); 176 177 for (const char *ArgPtr : Args) { 178 // Ignore nullptrs, they are the response file's EOL markers. 179 if (ArgPtr == nullptr) 180 continue; 181 const StringRef Arg = ArgPtr; 182 setDriverModeFromOption(Arg); 183 } 184 } 185 186 void Driver::setDriverModeFromOption(StringRef Opt) { 187 const std::string OptName = 188 getOpts().getOption(options::OPT_driver_mode).getPrefixedName(); 189 if (!Opt.startswith(OptName)) 190 return; 191 StringRef Value = Opt.drop_front(OptName.size()); 192 193 if (auto M = llvm::StringSwitch<llvm::Optional<DriverMode>>(Value) 194 .Case("gcc", GCCMode) 195 .Case("g++", GXXMode) 196 .Case("cpp", CPPMode) 197 .Case("cl", CLMode) 198 .Case("flang", FlangMode) 199 .Default(None)) 200 Mode = *M; 201 else 202 Diag(diag::err_drv_unsupported_option_argument) << OptName << Value; 203 } 204 205 InputArgList Driver::ParseArgStrings(ArrayRef<const char *> ArgStrings, 206 bool IsClCompatMode, 207 bool &ContainsError) { 208 llvm::PrettyStackTraceString CrashInfo("Command line argument parsing"); 209 ContainsError = false; 210 211 unsigned IncludedFlagsBitmask; 212 unsigned ExcludedFlagsBitmask; 213 std::tie(IncludedFlagsBitmask, ExcludedFlagsBitmask) = 214 getIncludeExcludeOptionFlagMasks(IsClCompatMode); 215 216 // Make sure that Flang-only options don't pollute the Clang output 217 // TODO: Make sure that Clang-only options don't pollute Flang output 218 if (!IsFlangMode()) 219 ExcludedFlagsBitmask |= options::FlangOnlyOption; 220 221 unsigned MissingArgIndex, MissingArgCount; 222 InputArgList Args = 223 getOpts().ParseArgs(ArgStrings, MissingArgIndex, MissingArgCount, 224 IncludedFlagsBitmask, ExcludedFlagsBitmask); 225 226 // Check for missing argument error. 227 if (MissingArgCount) { 228 Diag(diag::err_drv_missing_argument) 229 << Args.getArgString(MissingArgIndex) << MissingArgCount; 230 ContainsError |= 231 Diags.getDiagnosticLevel(diag::err_drv_missing_argument, 232 SourceLocation()) > DiagnosticsEngine::Warning; 233 } 234 235 // Check for unsupported options. 236 for (const Arg *A : Args) { 237 if (A->getOption().hasFlag(options::Unsupported)) { 238 unsigned DiagID; 239 auto ArgString = A->getAsString(Args); 240 std::string Nearest; 241 if (getOpts().findNearest( 242 ArgString, Nearest, IncludedFlagsBitmask, 243 ExcludedFlagsBitmask | options::Unsupported) > 1) { 244 DiagID = diag::err_drv_unsupported_opt; 245 Diag(DiagID) << ArgString; 246 } else { 247 DiagID = diag::err_drv_unsupported_opt_with_suggestion; 248 Diag(DiagID) << ArgString << Nearest; 249 } 250 ContainsError |= Diags.getDiagnosticLevel(DiagID, SourceLocation()) > 251 DiagnosticsEngine::Warning; 252 continue; 253 } 254 255 // Warn about -mcpu= without an argument. 256 if (A->getOption().matches(options::OPT_mcpu_EQ) && A->containsValue("")) { 257 Diag(diag::warn_drv_empty_joined_argument) << A->getAsString(Args); 258 ContainsError |= Diags.getDiagnosticLevel( 259 diag::warn_drv_empty_joined_argument, 260 SourceLocation()) > DiagnosticsEngine::Warning; 261 } 262 } 263 264 for (const Arg *A : Args.filtered(options::OPT_UNKNOWN)) { 265 unsigned DiagID; 266 auto ArgString = A->getAsString(Args); 267 std::string Nearest; 268 if (getOpts().findNearest( 269 ArgString, Nearest, IncludedFlagsBitmask, ExcludedFlagsBitmask) > 1) { 270 DiagID = IsCLMode() ? diag::warn_drv_unknown_argument_clang_cl 271 : diag::err_drv_unknown_argument; 272 Diags.Report(DiagID) << ArgString; 273 } else { 274 DiagID = IsCLMode() 275 ? diag::warn_drv_unknown_argument_clang_cl_with_suggestion 276 : diag::err_drv_unknown_argument_with_suggestion; 277 Diags.Report(DiagID) << ArgString << Nearest; 278 } 279 ContainsError |= Diags.getDiagnosticLevel(DiagID, SourceLocation()) > 280 DiagnosticsEngine::Warning; 281 } 282 283 return Args; 284 } 285 286 // Determine which compilation mode we are in. We look for options which 287 // affect the phase, starting with the earliest phases, and record which 288 // option we used to determine the final phase. 289 phases::ID Driver::getFinalPhase(const DerivedArgList &DAL, 290 Arg **FinalPhaseArg) const { 291 Arg *PhaseArg = nullptr; 292 phases::ID FinalPhase; 293 294 // -{E,EP,P,M,MM} only run the preprocessor. 295 if (CCCIsCPP() || (PhaseArg = DAL.getLastArg(options::OPT_E)) || 296 (PhaseArg = DAL.getLastArg(options::OPT__SLASH_EP)) || 297 (PhaseArg = DAL.getLastArg(options::OPT_M, options::OPT_MM)) || 298 (PhaseArg = DAL.getLastArg(options::OPT__SLASH_P))) { 299 FinalPhase = phases::Preprocess; 300 301 // --precompile only runs up to precompilation. 302 } else if ((PhaseArg = DAL.getLastArg(options::OPT__precompile))) { 303 FinalPhase = phases::Precompile; 304 305 // -{fsyntax-only,-analyze,emit-ast} only run up to the compiler. 306 } else if ((PhaseArg = DAL.getLastArg(options::OPT_fsyntax_only)) || 307 (PhaseArg = DAL.getLastArg(options::OPT_print_supported_cpus)) || 308 (PhaseArg = DAL.getLastArg(options::OPT_module_file_info)) || 309 (PhaseArg = DAL.getLastArg(options::OPT_verify_pch)) || 310 (PhaseArg = DAL.getLastArg(options::OPT_rewrite_objc)) || 311 (PhaseArg = DAL.getLastArg(options::OPT_rewrite_legacy_objc)) || 312 (PhaseArg = DAL.getLastArg(options::OPT__migrate)) || 313 (PhaseArg = DAL.getLastArg(options::OPT__analyze)) || 314 (PhaseArg = DAL.getLastArg(options::OPT_emit_ast))) { 315 FinalPhase = phases::Compile; 316 317 // -S only runs up to the backend. 318 } else if ((PhaseArg = DAL.getLastArg(options::OPT_S))) { 319 FinalPhase = phases::Backend; 320 321 // -c compilation only runs up to the assembler. 322 } else if ((PhaseArg = DAL.getLastArg(options::OPT_c))) { 323 FinalPhase = phases::Assemble; 324 325 // Otherwise do everything. 326 } else 327 FinalPhase = phases::Link; 328 329 if (FinalPhaseArg) 330 *FinalPhaseArg = PhaseArg; 331 332 return FinalPhase; 333 } 334 335 static Arg *MakeInputArg(DerivedArgList &Args, const OptTable &Opts, 336 StringRef Value, bool Claim = true) { 337 Arg *A = new Arg(Opts.getOption(options::OPT_INPUT), Value, 338 Args.getBaseArgs().MakeIndex(Value), Value.data()); 339 Args.AddSynthesizedArg(A); 340 if (Claim) 341 A->claim(); 342 return A; 343 } 344 345 DerivedArgList *Driver::TranslateInputArgs(const InputArgList &Args) const { 346 const llvm::opt::OptTable &Opts = getOpts(); 347 DerivedArgList *DAL = new DerivedArgList(Args); 348 349 bool HasNostdlib = Args.hasArg(options::OPT_nostdlib); 350 bool HasNostdlibxx = Args.hasArg(options::OPT_nostdlibxx); 351 bool HasNodefaultlib = Args.hasArg(options::OPT_nodefaultlibs); 352 for (Arg *A : Args) { 353 // Unfortunately, we have to parse some forwarding options (-Xassembler, 354 // -Xlinker, -Xpreprocessor) because we either integrate their functionality 355 // (assembler and preprocessor), or bypass a previous driver ('collect2'). 356 357 // Rewrite linker options, to replace --no-demangle with a custom internal 358 // option. 359 if ((A->getOption().matches(options::OPT_Wl_COMMA) || 360 A->getOption().matches(options::OPT_Xlinker)) && 361 A->containsValue("--no-demangle")) { 362 // Add the rewritten no-demangle argument. 363 DAL->AddFlagArg(A, Opts.getOption(options::OPT_Z_Xlinker__no_demangle)); 364 365 // Add the remaining values as Xlinker arguments. 366 for (StringRef Val : A->getValues()) 367 if (Val != "--no-demangle") 368 DAL->AddSeparateArg(A, Opts.getOption(options::OPT_Xlinker), Val); 369 370 continue; 371 } 372 373 // Rewrite preprocessor options, to replace -Wp,-MD,FOO which is used by 374 // some build systems. We don't try to be complete here because we don't 375 // care to encourage this usage model. 376 if (A->getOption().matches(options::OPT_Wp_COMMA) && 377 (A->getValue(0) == StringRef("-MD") || 378 A->getValue(0) == StringRef("-MMD"))) { 379 // Rewrite to -MD/-MMD along with -MF. 380 if (A->getValue(0) == StringRef("-MD")) 381 DAL->AddFlagArg(A, Opts.getOption(options::OPT_MD)); 382 else 383 DAL->AddFlagArg(A, Opts.getOption(options::OPT_MMD)); 384 if (A->getNumValues() == 2) 385 DAL->AddSeparateArg(A, Opts.getOption(options::OPT_MF), A->getValue(1)); 386 continue; 387 } 388 389 // Rewrite reserved library names. 390 if (A->getOption().matches(options::OPT_l)) { 391 StringRef Value = A->getValue(); 392 393 // Rewrite unless -nostdlib is present. 394 if (!HasNostdlib && !HasNodefaultlib && !HasNostdlibxx && 395 Value == "stdc++") { 396 DAL->AddFlagArg(A, Opts.getOption(options::OPT_Z_reserved_lib_stdcxx)); 397 continue; 398 } 399 400 // Rewrite unconditionally. 401 if (Value == "cc_kext") { 402 DAL->AddFlagArg(A, Opts.getOption(options::OPT_Z_reserved_lib_cckext)); 403 continue; 404 } 405 } 406 407 // Pick up inputs via the -- option. 408 if (A->getOption().matches(options::OPT__DASH_DASH)) { 409 A->claim(); 410 for (StringRef Val : A->getValues()) 411 DAL->append(MakeInputArg(*DAL, Opts, Val, false)); 412 continue; 413 } 414 415 DAL->append(A); 416 } 417 418 // Enforce -static if -miamcu is present. 419 if (Args.hasFlag(options::OPT_miamcu, options::OPT_mno_iamcu, false)) 420 DAL->AddFlagArg(0, Opts.getOption(options::OPT_static)); 421 422 // Add a default value of -mlinker-version=, if one was given and the user 423 // didn't specify one. 424 #if defined(HOST_LINK_VERSION) 425 if (!Args.hasArg(options::OPT_mlinker_version_EQ) && 426 strlen(HOST_LINK_VERSION) > 0) { 427 DAL->AddJoinedArg(0, Opts.getOption(options::OPT_mlinker_version_EQ), 428 HOST_LINK_VERSION); 429 DAL->getLastArg(options::OPT_mlinker_version_EQ)->claim(); 430 } 431 #endif 432 433 return DAL; 434 } 435 436 /// Compute target triple from args. 437 /// 438 /// This routine provides the logic to compute a target triple from various 439 /// args passed to the driver and the default triple string. 440 static llvm::Triple computeTargetTriple(const Driver &D, 441 StringRef TargetTriple, 442 const ArgList &Args, 443 StringRef DarwinArchName = "") { 444 // FIXME: Already done in Compilation *Driver::BuildCompilation 445 if (const Arg *A = Args.getLastArg(options::OPT_target)) 446 TargetTriple = A->getValue(); 447 448 llvm::Triple Target(llvm::Triple::normalize(TargetTriple)); 449 450 // GNU/Hurd's triples should have been -hurd-gnu*, but were historically made 451 // -gnu* only, and we can not change this, so we have to detect that case as 452 // being the Hurd OS. 453 if (TargetTriple.find("-unknown-gnu") != StringRef::npos || 454 TargetTriple.find("-pc-gnu") != StringRef::npos) 455 Target.setOSName("hurd"); 456 457 // Handle Apple-specific options available here. 458 if (Target.isOSBinFormatMachO()) { 459 // If an explicit Darwin arch name is given, that trumps all. 460 if (!DarwinArchName.empty()) { 461 tools::darwin::setTripleTypeForMachOArchName(Target, DarwinArchName); 462 return Target; 463 } 464 465 // Handle the Darwin '-arch' flag. 466 if (Arg *A = Args.getLastArg(options::OPT_arch)) { 467 StringRef ArchName = A->getValue(); 468 tools::darwin::setTripleTypeForMachOArchName(Target, ArchName); 469 } 470 } 471 472 // Handle pseudo-target flags '-mlittle-endian'/'-EL' and 473 // '-mbig-endian'/'-EB'. 474 if (Arg *A = Args.getLastArg(options::OPT_mlittle_endian, 475 options::OPT_mbig_endian)) { 476 if (A->getOption().matches(options::OPT_mlittle_endian)) { 477 llvm::Triple LE = Target.getLittleEndianArchVariant(); 478 if (LE.getArch() != llvm::Triple::UnknownArch) 479 Target = std::move(LE); 480 } else { 481 llvm::Triple BE = Target.getBigEndianArchVariant(); 482 if (BE.getArch() != llvm::Triple::UnknownArch) 483 Target = std::move(BE); 484 } 485 } 486 487 // Skip further flag support on OSes which don't support '-m32' or '-m64'. 488 if (Target.getArch() == llvm::Triple::tce || 489 Target.getOS() == llvm::Triple::Minix) 490 return Target; 491 492 // On AIX, the env OBJECT_MODE may affect the resulting arch variant. 493 if (Target.isOSAIX()) { 494 if (Optional<std::string> ObjectModeValue = 495 llvm::sys::Process::GetEnv("OBJECT_MODE")) { 496 StringRef ObjectMode = *ObjectModeValue; 497 llvm::Triple::ArchType AT = llvm::Triple::UnknownArch; 498 499 if (ObjectMode.equals("64")) { 500 AT = Target.get64BitArchVariant().getArch(); 501 } else if (ObjectMode.equals("32")) { 502 AT = Target.get32BitArchVariant().getArch(); 503 } else { 504 D.Diag(diag::err_drv_invalid_object_mode) << ObjectMode; 505 } 506 507 if (AT != llvm::Triple::UnknownArch && AT != Target.getArch()) 508 Target.setArch(AT); 509 } 510 } 511 512 // Handle pseudo-target flags '-m64', '-mx32', '-m32' and '-m16'. 513 Arg *A = Args.getLastArg(options::OPT_m64, options::OPT_mx32, 514 options::OPT_m32, options::OPT_m16); 515 if (A) { 516 llvm::Triple::ArchType AT = llvm::Triple::UnknownArch; 517 518 if (A->getOption().matches(options::OPT_m64)) { 519 AT = Target.get64BitArchVariant().getArch(); 520 if (Target.getEnvironment() == llvm::Triple::GNUX32) 521 Target.setEnvironment(llvm::Triple::GNU); 522 } else if (A->getOption().matches(options::OPT_mx32) && 523 Target.get64BitArchVariant().getArch() == llvm::Triple::x86_64) { 524 AT = llvm::Triple::x86_64; 525 Target.setEnvironment(llvm::Triple::GNUX32); 526 } else if (A->getOption().matches(options::OPT_m32)) { 527 AT = Target.get32BitArchVariant().getArch(); 528 if (Target.getEnvironment() == llvm::Triple::GNUX32) 529 Target.setEnvironment(llvm::Triple::GNU); 530 } else if (A->getOption().matches(options::OPT_m16) && 531 Target.get32BitArchVariant().getArch() == llvm::Triple::x86) { 532 AT = llvm::Triple::x86; 533 Target.setEnvironment(llvm::Triple::CODE16); 534 } 535 536 if (AT != llvm::Triple::UnknownArch && AT != Target.getArch()) 537 Target.setArch(AT); 538 } 539 540 // Handle -miamcu flag. 541 if (Args.hasFlag(options::OPT_miamcu, options::OPT_mno_iamcu, false)) { 542 if (Target.get32BitArchVariant().getArch() != llvm::Triple::x86) 543 D.Diag(diag::err_drv_unsupported_opt_for_target) << "-miamcu" 544 << Target.str(); 545 546 if (A && !A->getOption().matches(options::OPT_m32)) 547 D.Diag(diag::err_drv_argument_not_allowed_with) 548 << "-miamcu" << A->getBaseArg().getAsString(Args); 549 550 Target.setArch(llvm::Triple::x86); 551 Target.setArchName("i586"); 552 Target.setEnvironment(llvm::Triple::UnknownEnvironment); 553 Target.setEnvironmentName(""); 554 Target.setOS(llvm::Triple::ELFIAMCU); 555 Target.setVendor(llvm::Triple::UnknownVendor); 556 Target.setVendorName("intel"); 557 } 558 559 // If target is MIPS adjust the target triple 560 // accordingly to provided ABI name. 561 A = Args.getLastArg(options::OPT_mabi_EQ); 562 if (A && Target.isMIPS()) { 563 StringRef ABIName = A->getValue(); 564 if (ABIName == "32") { 565 Target = Target.get32BitArchVariant(); 566 if (Target.getEnvironment() == llvm::Triple::GNUABI64 || 567 Target.getEnvironment() == llvm::Triple::GNUABIN32) 568 Target.setEnvironment(llvm::Triple::GNU); 569 } else if (ABIName == "n32") { 570 Target = Target.get64BitArchVariant(); 571 if (Target.getEnvironment() == llvm::Triple::GNU || 572 Target.getEnvironment() == llvm::Triple::GNUABI64) 573 Target.setEnvironment(llvm::Triple::GNUABIN32); 574 } else if (ABIName == "64") { 575 Target = Target.get64BitArchVariant(); 576 if (Target.getEnvironment() == llvm::Triple::GNU || 577 Target.getEnvironment() == llvm::Triple::GNUABIN32) 578 Target.setEnvironment(llvm::Triple::GNUABI64); 579 } 580 } 581 582 // If target is RISC-V adjust the target triple according to 583 // provided architecture name 584 A = Args.getLastArg(options::OPT_march_EQ); 585 if (A && Target.isRISCV()) { 586 StringRef ArchName = A->getValue(); 587 if (ArchName.startswith_lower("rv32")) 588 Target.setArch(llvm::Triple::riscv32); 589 else if (ArchName.startswith_lower("rv64")) 590 Target.setArch(llvm::Triple::riscv64); 591 } 592 593 return Target; 594 } 595 596 // Parse the LTO options and record the type of LTO compilation 597 // based on which -f(no-)?lto(=.*)? option occurs last. 598 void Driver::setLTOMode(const llvm::opt::ArgList &Args) { 599 LTOMode = LTOK_None; 600 if (!Args.hasFlag(options::OPT_flto, options::OPT_flto_EQ, 601 options::OPT_fno_lto, false)) 602 return; 603 604 StringRef LTOName("full"); 605 606 const Arg *A = Args.getLastArg(options::OPT_flto_EQ); 607 if (A) 608 LTOName = A->getValue(); 609 610 LTOMode = llvm::StringSwitch<LTOKind>(LTOName) 611 .Case("full", LTOK_Full) 612 .Case("thin", LTOK_Thin) 613 .Default(LTOK_Unknown); 614 615 if (LTOMode == LTOK_Unknown) { 616 assert(A); 617 Diag(diag::err_drv_unsupported_option_argument) << A->getOption().getName() 618 << A->getValue(); 619 } 620 } 621 622 /// Compute the desired OpenMP runtime from the flags provided. 623 Driver::OpenMPRuntimeKind Driver::getOpenMPRuntime(const ArgList &Args) const { 624 StringRef RuntimeName(CLANG_DEFAULT_OPENMP_RUNTIME); 625 626 const Arg *A = Args.getLastArg(options::OPT_fopenmp_EQ); 627 if (A) 628 RuntimeName = A->getValue(); 629 630 auto RT = llvm::StringSwitch<OpenMPRuntimeKind>(RuntimeName) 631 .Case("libomp", OMPRT_OMP) 632 .Case("libgomp", OMPRT_GOMP) 633 .Case("libiomp5", OMPRT_IOMP5) 634 .Default(OMPRT_Unknown); 635 636 if (RT == OMPRT_Unknown) { 637 if (A) 638 Diag(diag::err_drv_unsupported_option_argument) 639 << A->getOption().getName() << A->getValue(); 640 else 641 // FIXME: We could use a nicer diagnostic here. 642 Diag(diag::err_drv_unsupported_opt) << "-fopenmp"; 643 } 644 645 return RT; 646 } 647 648 void Driver::CreateOffloadingDeviceToolChains(Compilation &C, 649 InputList &Inputs) { 650 651 // 652 // CUDA/HIP 653 // 654 // We need to generate a CUDA/HIP toolchain if any of the inputs has a CUDA 655 // or HIP type. However, mixed CUDA/HIP compilation is not supported. 656 bool IsCuda = 657 llvm::any_of(Inputs, [](std::pair<types::ID, const llvm::opt::Arg *> &I) { 658 return types::isCuda(I.first); 659 }); 660 bool IsHIP = 661 llvm::any_of(Inputs, 662 [](std::pair<types::ID, const llvm::opt::Arg *> &I) { 663 return types::isHIP(I.first); 664 }) || 665 C.getInputArgs().hasArg(options::OPT_hip_link); 666 if (IsCuda && IsHIP) { 667 Diag(clang::diag::err_drv_mix_cuda_hip); 668 return; 669 } 670 if (IsCuda) { 671 const ToolChain *HostTC = C.getSingleOffloadToolChain<Action::OFK_Host>(); 672 const llvm::Triple &HostTriple = HostTC->getTriple(); 673 StringRef DeviceTripleStr; 674 auto OFK = Action::OFK_Cuda; 675 DeviceTripleStr = 676 HostTriple.isArch64Bit() ? "nvptx64-nvidia-cuda" : "nvptx-nvidia-cuda"; 677 llvm::Triple CudaTriple(DeviceTripleStr); 678 // Use the CUDA and host triples as the key into the ToolChains map, 679 // because the device toolchain we create depends on both. 680 auto &CudaTC = ToolChains[CudaTriple.str() + "/" + HostTriple.str()]; 681 if (!CudaTC) { 682 CudaTC = std::make_unique<toolchains::CudaToolChain>( 683 *this, CudaTriple, *HostTC, C.getInputArgs(), OFK); 684 } 685 C.addOffloadDeviceToolChain(CudaTC.get(), OFK); 686 } else if (IsHIP) { 687 const ToolChain *HostTC = C.getSingleOffloadToolChain<Action::OFK_Host>(); 688 const llvm::Triple &HostTriple = HostTC->getTriple(); 689 auto OFK = Action::OFK_HIP; 690 llvm::Triple HIPTriple = getHIPOffloadTargetTriple(); 691 // Use the HIP and host triples as the key into the ToolChains map, 692 // because the device toolchain we create depends on both. 693 auto &HIPTC = ToolChains[HIPTriple.str() + "/" + HostTriple.str()]; 694 if (!HIPTC) { 695 HIPTC = std::make_unique<toolchains::HIPToolChain>( 696 *this, HIPTriple, *HostTC, C.getInputArgs()); 697 } 698 C.addOffloadDeviceToolChain(HIPTC.get(), OFK); 699 } 700 701 // 702 // OpenMP 703 // 704 // We need to generate an OpenMP toolchain if the user specified targets with 705 // the -fopenmp-targets option. 706 if (Arg *OpenMPTargets = 707 C.getInputArgs().getLastArg(options::OPT_fopenmp_targets_EQ)) { 708 if (OpenMPTargets->getNumValues()) { 709 // We expect that -fopenmp-targets is always used in conjunction with the 710 // option -fopenmp specifying a valid runtime with offloading support, 711 // i.e. libomp or libiomp. 712 bool HasValidOpenMPRuntime = C.getInputArgs().hasFlag( 713 options::OPT_fopenmp, options::OPT_fopenmp_EQ, 714 options::OPT_fno_openmp, false); 715 if (HasValidOpenMPRuntime) { 716 OpenMPRuntimeKind OpenMPKind = getOpenMPRuntime(C.getInputArgs()); 717 HasValidOpenMPRuntime = 718 OpenMPKind == OMPRT_OMP || OpenMPKind == OMPRT_IOMP5; 719 } 720 721 if (HasValidOpenMPRuntime) { 722 llvm::StringMap<const char *> FoundNormalizedTriples; 723 for (const char *Val : OpenMPTargets->getValues()) { 724 llvm::Triple TT(Val); 725 std::string NormalizedName = TT.normalize(); 726 727 // Make sure we don't have a duplicate triple. 728 auto Duplicate = FoundNormalizedTriples.find(NormalizedName); 729 if (Duplicate != FoundNormalizedTriples.end()) { 730 Diag(clang::diag::warn_drv_omp_offload_target_duplicate) 731 << Val << Duplicate->second; 732 continue; 733 } 734 735 // Store the current triple so that we can check for duplicates in the 736 // following iterations. 737 FoundNormalizedTriples[NormalizedName] = Val; 738 739 // If the specified target is invalid, emit a diagnostic. 740 if (TT.getArch() == llvm::Triple::UnknownArch) 741 Diag(clang::diag::err_drv_invalid_omp_target) << Val; 742 else { 743 const ToolChain *TC; 744 // Device toolchains have to be selected differently. They pair host 745 // and device in their implementation. 746 if (TT.isNVPTX() || TT.isAMDGCN()) { 747 const ToolChain *HostTC = 748 C.getSingleOffloadToolChain<Action::OFK_Host>(); 749 assert(HostTC && "Host toolchain should be always defined."); 750 auto &DeviceTC = 751 ToolChains[TT.str() + "/" + HostTC->getTriple().normalize()]; 752 if (!DeviceTC) { 753 if (TT.isNVPTX()) 754 DeviceTC = std::make_unique<toolchains::CudaToolChain>( 755 *this, TT, *HostTC, C.getInputArgs(), Action::OFK_OpenMP); 756 else if (TT.isAMDGCN()) 757 DeviceTC = 758 std::make_unique<toolchains::AMDGPUOpenMPToolChain>( 759 *this, TT, *HostTC, C.getInputArgs()); 760 else 761 assert(DeviceTC && "Device toolchain not defined."); 762 } 763 764 TC = DeviceTC.get(); 765 } else 766 TC = &getToolChain(C.getInputArgs(), TT); 767 C.addOffloadDeviceToolChain(TC, Action::OFK_OpenMP); 768 } 769 } 770 } else 771 Diag(clang::diag::err_drv_expecting_fopenmp_with_fopenmp_targets); 772 } else 773 Diag(clang::diag::warn_drv_empty_joined_argument) 774 << OpenMPTargets->getAsString(C.getInputArgs()); 775 } 776 777 // 778 // TODO: Add support for other offloading programming models here. 779 // 780 } 781 782 /// Looks the given directories for the specified file. 783 /// 784 /// \param[out] FilePath File path, if the file was found. 785 /// \param[in] Dirs Directories used for the search. 786 /// \param[in] FileName Name of the file to search for. 787 /// \return True if file was found. 788 /// 789 /// Looks for file specified by FileName sequentially in directories specified 790 /// by Dirs. 791 /// 792 static bool searchForFile(SmallVectorImpl<char> &FilePath, 793 ArrayRef<StringRef> Dirs, StringRef FileName) { 794 SmallString<128> WPath; 795 for (const StringRef &Dir : Dirs) { 796 if (Dir.empty()) 797 continue; 798 WPath.clear(); 799 llvm::sys::path::append(WPath, Dir, FileName); 800 llvm::sys::path::native(WPath); 801 if (llvm::sys::fs::is_regular_file(WPath)) { 802 FilePath = std::move(WPath); 803 return true; 804 } 805 } 806 return false; 807 } 808 809 bool Driver::readConfigFile(StringRef FileName) { 810 // Try reading the given file. 811 SmallVector<const char *, 32> NewCfgArgs; 812 if (!llvm::cl::readConfigFile(FileName, Saver, NewCfgArgs)) { 813 Diag(diag::err_drv_cannot_read_config_file) << FileName; 814 return true; 815 } 816 817 // Read options from config file. 818 llvm::SmallString<128> CfgFileName(FileName); 819 llvm::sys::path::native(CfgFileName); 820 ConfigFile = std::string(CfgFileName); 821 bool ContainErrors; 822 CfgOptions = std::make_unique<InputArgList>( 823 ParseArgStrings(NewCfgArgs, IsCLMode(), ContainErrors)); 824 if (ContainErrors) { 825 CfgOptions.reset(); 826 return true; 827 } 828 829 if (CfgOptions->hasArg(options::OPT_config)) { 830 CfgOptions.reset(); 831 Diag(diag::err_drv_nested_config_file); 832 return true; 833 } 834 835 // Claim all arguments that come from a configuration file so that the driver 836 // does not warn on any that is unused. 837 for (Arg *A : *CfgOptions) 838 A->claim(); 839 return false; 840 } 841 842 bool Driver::loadConfigFile() { 843 std::string CfgFileName; 844 bool FileSpecifiedExplicitly = false; 845 846 // Process options that change search path for config files. 847 if (CLOptions) { 848 if (CLOptions->hasArg(options::OPT_config_system_dir_EQ)) { 849 SmallString<128> CfgDir; 850 CfgDir.append( 851 CLOptions->getLastArgValue(options::OPT_config_system_dir_EQ)); 852 if (!CfgDir.empty()) { 853 if (llvm::sys::fs::make_absolute(CfgDir).value() != 0) 854 SystemConfigDir.clear(); 855 else 856 SystemConfigDir = std::string(CfgDir.begin(), CfgDir.end()); 857 } 858 } 859 if (CLOptions->hasArg(options::OPT_config_user_dir_EQ)) { 860 SmallString<128> CfgDir; 861 CfgDir.append( 862 CLOptions->getLastArgValue(options::OPT_config_user_dir_EQ)); 863 if (!CfgDir.empty()) { 864 if (llvm::sys::fs::make_absolute(CfgDir).value() != 0) 865 UserConfigDir.clear(); 866 else 867 UserConfigDir = std::string(CfgDir.begin(), CfgDir.end()); 868 } 869 } 870 } 871 872 // First try to find config file specified in command line. 873 if (CLOptions) { 874 std::vector<std::string> ConfigFiles = 875 CLOptions->getAllArgValues(options::OPT_config); 876 if (ConfigFiles.size() > 1) { 877 if (!std::all_of(ConfigFiles.begin(), ConfigFiles.end(), 878 [ConfigFiles](const std::string &s) { 879 return s == ConfigFiles[0]; 880 })) { 881 Diag(diag::err_drv_duplicate_config); 882 return true; 883 } 884 } 885 886 if (!ConfigFiles.empty()) { 887 CfgFileName = ConfigFiles.front(); 888 assert(!CfgFileName.empty()); 889 890 // If argument contains directory separator, treat it as a path to 891 // configuration file. 892 if (llvm::sys::path::has_parent_path(CfgFileName)) { 893 SmallString<128> CfgFilePath; 894 if (llvm::sys::path::is_relative(CfgFileName)) 895 llvm::sys::fs::current_path(CfgFilePath); 896 llvm::sys::path::append(CfgFilePath, CfgFileName); 897 if (!llvm::sys::fs::is_regular_file(CfgFilePath)) { 898 Diag(diag::err_drv_config_file_not_exist) << CfgFilePath; 899 return true; 900 } 901 return readConfigFile(CfgFilePath); 902 } 903 904 FileSpecifiedExplicitly = true; 905 } 906 } 907 908 // If config file is not specified explicitly, try to deduce configuration 909 // from executable name. For instance, an executable 'armv7l-clang' will 910 // search for config file 'armv7l-clang.cfg'. 911 if (CfgFileName.empty() && !ClangNameParts.TargetPrefix.empty()) 912 CfgFileName = ClangNameParts.TargetPrefix + '-' + ClangNameParts.ModeSuffix; 913 914 if (CfgFileName.empty()) 915 return false; 916 917 // Determine architecture part of the file name, if it is present. 918 StringRef CfgFileArch = CfgFileName; 919 size_t ArchPrefixLen = CfgFileArch.find('-'); 920 if (ArchPrefixLen == StringRef::npos) 921 ArchPrefixLen = CfgFileArch.size(); 922 llvm::Triple CfgTriple; 923 CfgFileArch = CfgFileArch.take_front(ArchPrefixLen); 924 CfgTriple = llvm::Triple(llvm::Triple::normalize(CfgFileArch)); 925 if (CfgTriple.getArch() == llvm::Triple::ArchType::UnknownArch) 926 ArchPrefixLen = 0; 927 928 if (!StringRef(CfgFileName).endswith(".cfg")) 929 CfgFileName += ".cfg"; 930 931 // If config file starts with architecture name and command line options 932 // redefine architecture (with options like -m32 -LE etc), try finding new 933 // config file with that architecture. 934 SmallString<128> FixedConfigFile; 935 size_t FixedArchPrefixLen = 0; 936 if (ArchPrefixLen) { 937 // Get architecture name from config file name like 'i386.cfg' or 938 // 'armv7l-clang.cfg'. 939 // Check if command line options changes effective triple. 940 llvm::Triple EffectiveTriple = computeTargetTriple(*this, 941 CfgTriple.getTriple(), *CLOptions); 942 if (CfgTriple.getArch() != EffectiveTriple.getArch()) { 943 FixedConfigFile = EffectiveTriple.getArchName(); 944 FixedArchPrefixLen = FixedConfigFile.size(); 945 // Append the rest of original file name so that file name transforms 946 // like: i386-clang.cfg -> x86_64-clang.cfg. 947 if (ArchPrefixLen < CfgFileName.size()) 948 FixedConfigFile += CfgFileName.substr(ArchPrefixLen); 949 } 950 } 951 952 // Prepare list of directories where config file is searched for. 953 StringRef CfgFileSearchDirs[] = {UserConfigDir, SystemConfigDir, Dir}; 954 955 // Try to find config file. First try file with corrected architecture. 956 llvm::SmallString<128> CfgFilePath; 957 if (!FixedConfigFile.empty()) { 958 if (searchForFile(CfgFilePath, CfgFileSearchDirs, FixedConfigFile)) 959 return readConfigFile(CfgFilePath); 960 // If 'x86_64-clang.cfg' was not found, try 'x86_64.cfg'. 961 FixedConfigFile.resize(FixedArchPrefixLen); 962 FixedConfigFile.append(".cfg"); 963 if (searchForFile(CfgFilePath, CfgFileSearchDirs, FixedConfigFile)) 964 return readConfigFile(CfgFilePath); 965 } 966 967 // Then try original file name. 968 if (searchForFile(CfgFilePath, CfgFileSearchDirs, CfgFileName)) 969 return readConfigFile(CfgFilePath); 970 971 // Finally try removing driver mode part: 'x86_64-clang.cfg' -> 'x86_64.cfg'. 972 if (!ClangNameParts.ModeSuffix.empty() && 973 !ClangNameParts.TargetPrefix.empty()) { 974 CfgFileName.assign(ClangNameParts.TargetPrefix); 975 CfgFileName.append(".cfg"); 976 if (searchForFile(CfgFilePath, CfgFileSearchDirs, CfgFileName)) 977 return readConfigFile(CfgFilePath); 978 } 979 980 // Report error but only if config file was specified explicitly, by option 981 // --config. If it was deduced from executable name, it is not an error. 982 if (FileSpecifiedExplicitly) { 983 Diag(diag::err_drv_config_file_not_found) << CfgFileName; 984 for (const StringRef &SearchDir : CfgFileSearchDirs) 985 if (!SearchDir.empty()) 986 Diag(diag::note_drv_config_file_searched_in) << SearchDir; 987 return true; 988 } 989 990 return false; 991 } 992 993 Compilation *Driver::BuildCompilation(ArrayRef<const char *> ArgList) { 994 llvm::PrettyStackTraceString CrashInfo("Compilation construction"); 995 996 // FIXME: Handle environment options which affect driver behavior, somewhere 997 // (client?). GCC_EXEC_PREFIX, LPATH, CC_PRINT_OPTIONS. 998 999 // We look for the driver mode option early, because the mode can affect 1000 // how other options are parsed. 1001 ParseDriverMode(ClangExecutable, ArgList.slice(1)); 1002 1003 // FIXME: What are we going to do with -V and -b? 1004 1005 // Arguments specified in command line. 1006 bool ContainsError; 1007 CLOptions = std::make_unique<InputArgList>( 1008 ParseArgStrings(ArgList.slice(1), IsCLMode(), ContainsError)); 1009 1010 // Try parsing configuration file. 1011 if (!ContainsError) 1012 ContainsError = loadConfigFile(); 1013 bool HasConfigFile = !ContainsError && (CfgOptions.get() != nullptr); 1014 1015 // All arguments, from both config file and command line. 1016 InputArgList Args = std::move(HasConfigFile ? std::move(*CfgOptions) 1017 : std::move(*CLOptions)); 1018 1019 // The args for config files or /clang: flags belong to different InputArgList 1020 // objects than Args. This copies an Arg from one of those other InputArgLists 1021 // to the ownership of Args. 1022 auto appendOneArg = [&Args](const Arg *Opt, const Arg *BaseArg) { 1023 unsigned Index = Args.MakeIndex(Opt->getSpelling()); 1024 Arg *Copy = new llvm::opt::Arg(Opt->getOption(), Args.getArgString(Index), 1025 Index, BaseArg); 1026 Copy->getValues() = Opt->getValues(); 1027 if (Opt->isClaimed()) 1028 Copy->claim(); 1029 Copy->setOwnsValues(Opt->getOwnsValues()); 1030 Opt->setOwnsValues(false); 1031 Args.append(Copy); 1032 }; 1033 1034 if (HasConfigFile) 1035 for (auto *Opt : *CLOptions) { 1036 if (Opt->getOption().matches(options::OPT_config)) 1037 continue; 1038 const Arg *BaseArg = &Opt->getBaseArg(); 1039 if (BaseArg == Opt) 1040 BaseArg = nullptr; 1041 appendOneArg(Opt, BaseArg); 1042 } 1043 1044 // In CL mode, look for any pass-through arguments 1045 if (IsCLMode() && !ContainsError) { 1046 SmallVector<const char *, 16> CLModePassThroughArgList; 1047 for (const auto *A : Args.filtered(options::OPT__SLASH_clang)) { 1048 A->claim(); 1049 CLModePassThroughArgList.push_back(A->getValue()); 1050 } 1051 1052 if (!CLModePassThroughArgList.empty()) { 1053 // Parse any pass through args using default clang processing rather 1054 // than clang-cl processing. 1055 auto CLModePassThroughOptions = std::make_unique<InputArgList>( 1056 ParseArgStrings(CLModePassThroughArgList, false, ContainsError)); 1057 1058 if (!ContainsError) 1059 for (auto *Opt : *CLModePassThroughOptions) { 1060 appendOneArg(Opt, nullptr); 1061 } 1062 } 1063 } 1064 1065 // Check for working directory option before accessing any files 1066 if (Arg *WD = Args.getLastArg(options::OPT_working_directory)) 1067 if (VFS->setCurrentWorkingDirectory(WD->getValue())) 1068 Diag(diag::err_drv_unable_to_set_working_directory) << WD->getValue(); 1069 1070 // FIXME: This stuff needs to go into the Compilation, not the driver. 1071 bool CCCPrintPhases; 1072 1073 // Silence driver warnings if requested 1074 Diags.setIgnoreAllWarnings(Args.hasArg(options::OPT_w)); 1075 1076 // -no-canonical-prefixes is used very early in main. 1077 Args.ClaimAllArgs(options::OPT_no_canonical_prefixes); 1078 1079 // f(no-)integated-cc1 is also used very early in main. 1080 Args.ClaimAllArgs(options::OPT_fintegrated_cc1); 1081 Args.ClaimAllArgs(options::OPT_fno_integrated_cc1); 1082 1083 // Ignore -pipe. 1084 Args.ClaimAllArgs(options::OPT_pipe); 1085 1086 // Extract -ccc args. 1087 // 1088 // FIXME: We need to figure out where this behavior should live. Most of it 1089 // should be outside in the client; the parts that aren't should have proper 1090 // options, either by introducing new ones or by overloading gcc ones like -V 1091 // or -b. 1092 CCCPrintPhases = Args.hasArg(options::OPT_ccc_print_phases); 1093 CCCPrintBindings = Args.hasArg(options::OPT_ccc_print_bindings); 1094 if (const Arg *A = Args.getLastArg(options::OPT_ccc_gcc_name)) 1095 CCCGenericGCCName = A->getValue(); 1096 GenReproducer = Args.hasFlag(options::OPT_gen_reproducer, 1097 options::OPT_fno_crash_diagnostics, 1098 !!::getenv("FORCE_CLANG_DIAGNOSTICS_CRASH")); 1099 // FIXME: TargetTriple is used by the target-prefixed calls to as/ld 1100 // and getToolChain is const. 1101 if (IsCLMode()) { 1102 // clang-cl targets MSVC-style Win32. 1103 llvm::Triple T(TargetTriple); 1104 T.setOS(llvm::Triple::Win32); 1105 T.setVendor(llvm::Triple::PC); 1106 T.setEnvironment(llvm::Triple::MSVC); 1107 T.setObjectFormat(llvm::Triple::COFF); 1108 TargetTriple = T.str(); 1109 } 1110 if (const Arg *A = Args.getLastArg(options::OPT_target)) 1111 TargetTriple = A->getValue(); 1112 if (const Arg *A = Args.getLastArg(options::OPT_ccc_install_dir)) 1113 Dir = InstalledDir = A->getValue(); 1114 for (const Arg *A : Args.filtered(options::OPT_B)) { 1115 A->claim(); 1116 PrefixDirs.push_back(A->getValue(0)); 1117 } 1118 if (Optional<std::string> CompilerPathValue = 1119 llvm::sys::Process::GetEnv("COMPILER_PATH")) { 1120 StringRef CompilerPath = *CompilerPathValue; 1121 while (!CompilerPath.empty()) { 1122 std::pair<StringRef, StringRef> Split = 1123 CompilerPath.split(llvm::sys::EnvPathSeparator); 1124 PrefixDirs.push_back(std::string(Split.first)); 1125 CompilerPath = Split.second; 1126 } 1127 } 1128 if (const Arg *A = Args.getLastArg(options::OPT__sysroot_EQ)) 1129 SysRoot = A->getValue(); 1130 if (const Arg *A = Args.getLastArg(options::OPT__dyld_prefix_EQ)) 1131 DyldPrefix = A->getValue(); 1132 1133 if (const Arg *A = Args.getLastArg(options::OPT_resource_dir)) 1134 ResourceDir = A->getValue(); 1135 1136 if (const Arg *A = Args.getLastArg(options::OPT_save_temps_EQ)) { 1137 SaveTemps = llvm::StringSwitch<SaveTempsMode>(A->getValue()) 1138 .Case("cwd", SaveTempsCwd) 1139 .Case("obj", SaveTempsObj) 1140 .Default(SaveTempsCwd); 1141 } 1142 1143 setLTOMode(Args); 1144 1145 // Process -fembed-bitcode= flags. 1146 if (Arg *A = Args.getLastArg(options::OPT_fembed_bitcode_EQ)) { 1147 StringRef Name = A->getValue(); 1148 unsigned Model = llvm::StringSwitch<unsigned>(Name) 1149 .Case("off", EmbedNone) 1150 .Case("all", EmbedBitcode) 1151 .Case("bitcode", EmbedBitcode) 1152 .Case("marker", EmbedMarker) 1153 .Default(~0U); 1154 if (Model == ~0U) { 1155 Diags.Report(diag::err_drv_invalid_value) << A->getAsString(Args) 1156 << Name; 1157 } else 1158 BitcodeEmbed = static_cast<BitcodeEmbedMode>(Model); 1159 } 1160 1161 std::unique_ptr<llvm::opt::InputArgList> UArgs = 1162 std::make_unique<InputArgList>(std::move(Args)); 1163 1164 // Perform the default argument translations. 1165 DerivedArgList *TranslatedArgs = TranslateInputArgs(*UArgs); 1166 1167 // Owned by the host. 1168 const ToolChain &TC = getToolChain( 1169 *UArgs, computeTargetTriple(*this, TargetTriple, *UArgs)); 1170 1171 // The compilation takes ownership of Args. 1172 Compilation *C = new Compilation(*this, TC, UArgs.release(), TranslatedArgs, 1173 ContainsError); 1174 1175 if (!HandleImmediateArgs(*C)) 1176 return C; 1177 1178 // Construct the list of inputs. 1179 InputList Inputs; 1180 BuildInputs(C->getDefaultToolChain(), *TranslatedArgs, Inputs); 1181 1182 // Populate the tool chains for the offloading devices, if any. 1183 CreateOffloadingDeviceToolChains(*C, Inputs); 1184 1185 // Construct the list of abstract actions to perform for this compilation. On 1186 // MachO targets this uses the driver-driver and universal actions. 1187 if (TC.getTriple().isOSBinFormatMachO()) 1188 BuildUniversalActions(*C, C->getDefaultToolChain(), Inputs); 1189 else 1190 BuildActions(*C, C->getArgs(), Inputs, C->getActions()); 1191 1192 if (CCCPrintPhases) { 1193 PrintActions(*C); 1194 return C; 1195 } 1196 1197 BuildJobs(*C); 1198 1199 return C; 1200 } 1201 1202 static void printArgList(raw_ostream &OS, const llvm::opt::ArgList &Args) { 1203 llvm::opt::ArgStringList ASL; 1204 for (const auto *A : Args) 1205 A->render(Args, ASL); 1206 1207 for (auto I = ASL.begin(), E = ASL.end(); I != E; ++I) { 1208 if (I != ASL.begin()) 1209 OS << ' '; 1210 llvm::sys::printArg(OS, *I, true); 1211 } 1212 OS << '\n'; 1213 } 1214 1215 bool Driver::getCrashDiagnosticFile(StringRef ReproCrashFilename, 1216 SmallString<128> &CrashDiagDir) { 1217 using namespace llvm::sys; 1218 assert(llvm::Triple(llvm::sys::getProcessTriple()).isOSDarwin() && 1219 "Only knows about .crash files on Darwin"); 1220 1221 // The .crash file can be found on at ~/Library/Logs/DiagnosticReports/ 1222 // (or /Library/Logs/DiagnosticReports for root) and has the filename pattern 1223 // clang-<VERSION>_<YYYY-MM-DD-HHMMSS>_<hostname>.crash. 1224 path::home_directory(CrashDiagDir); 1225 if (CrashDiagDir.startswith("/var/root")) 1226 CrashDiagDir = "/"; 1227 path::append(CrashDiagDir, "Library/Logs/DiagnosticReports"); 1228 int PID = 1229 #if LLVM_ON_UNIX 1230 getpid(); 1231 #else 1232 0; 1233 #endif 1234 std::error_code EC; 1235 fs::file_status FileStatus; 1236 TimePoint<> LastAccessTime; 1237 SmallString<128> CrashFilePath; 1238 // Lookup the .crash files and get the one generated by a subprocess spawned 1239 // by this driver invocation. 1240 for (fs::directory_iterator File(CrashDiagDir, EC), FileEnd; 1241 File != FileEnd && !EC; File.increment(EC)) { 1242 StringRef FileName = path::filename(File->path()); 1243 if (!FileName.startswith(Name)) 1244 continue; 1245 if (fs::status(File->path(), FileStatus)) 1246 continue; 1247 llvm::ErrorOr<std::unique_ptr<llvm::MemoryBuffer>> CrashFile = 1248 llvm::MemoryBuffer::getFile(File->path()); 1249 if (!CrashFile) 1250 continue; 1251 // The first line should start with "Process:", otherwise this isn't a real 1252 // .crash file. 1253 StringRef Data = CrashFile.get()->getBuffer(); 1254 if (!Data.startswith("Process:")) 1255 continue; 1256 // Parse parent process pid line, e.g: "Parent Process: clang-4.0 [79141]" 1257 size_t ParentProcPos = Data.find("Parent Process:"); 1258 if (ParentProcPos == StringRef::npos) 1259 continue; 1260 size_t LineEnd = Data.find_first_of("\n", ParentProcPos); 1261 if (LineEnd == StringRef::npos) 1262 continue; 1263 StringRef ParentProcess = Data.slice(ParentProcPos+15, LineEnd).trim(); 1264 int OpenBracket = -1, CloseBracket = -1; 1265 for (size_t i = 0, e = ParentProcess.size(); i < e; ++i) { 1266 if (ParentProcess[i] == '[') 1267 OpenBracket = i; 1268 if (ParentProcess[i] == ']') 1269 CloseBracket = i; 1270 } 1271 // Extract the parent process PID from the .crash file and check whether 1272 // it matches this driver invocation pid. 1273 int CrashPID; 1274 if (OpenBracket < 0 || CloseBracket < 0 || 1275 ParentProcess.slice(OpenBracket + 1, CloseBracket) 1276 .getAsInteger(10, CrashPID) || CrashPID != PID) { 1277 continue; 1278 } 1279 1280 // Found a .crash file matching the driver pid. To avoid getting an older 1281 // and misleading crash file, continue looking for the most recent. 1282 // FIXME: the driver can dispatch multiple cc1 invocations, leading to 1283 // multiple crashes poiting to the same parent process. Since the driver 1284 // does not collect pid information for the dispatched invocation there's 1285 // currently no way to distinguish among them. 1286 const auto FileAccessTime = FileStatus.getLastModificationTime(); 1287 if (FileAccessTime > LastAccessTime) { 1288 CrashFilePath.assign(File->path()); 1289 LastAccessTime = FileAccessTime; 1290 } 1291 } 1292 1293 // If found, copy it over to the location of other reproducer files. 1294 if (!CrashFilePath.empty()) { 1295 EC = fs::copy_file(CrashFilePath, ReproCrashFilename); 1296 if (EC) 1297 return false; 1298 return true; 1299 } 1300 1301 return false; 1302 } 1303 1304 // When clang crashes, produce diagnostic information including the fully 1305 // preprocessed source file(s). Request that the developer attach the 1306 // diagnostic information to a bug report. 1307 void Driver::generateCompilationDiagnostics( 1308 Compilation &C, const Command &FailingCommand, 1309 StringRef AdditionalInformation, CompilationDiagnosticReport *Report) { 1310 if (C.getArgs().hasArg(options::OPT_fno_crash_diagnostics)) 1311 return; 1312 1313 // Don't try to generate diagnostics for link or dsymutil jobs. 1314 if (FailingCommand.getCreator().isLinkJob() || 1315 FailingCommand.getCreator().isDsymutilJob()) 1316 return; 1317 1318 // Print the version of the compiler. 1319 PrintVersion(C, llvm::errs()); 1320 1321 // Suppress driver output and emit preprocessor output to temp file. 1322 Mode = CPPMode; 1323 CCGenDiagnostics = true; 1324 1325 // Save the original job command(s). 1326 Command Cmd = FailingCommand; 1327 1328 // Keep track of whether we produce any errors while trying to produce 1329 // preprocessed sources. 1330 DiagnosticErrorTrap Trap(Diags); 1331 1332 // Suppress tool output. 1333 C.initCompilationForDiagnostics(); 1334 1335 // Construct the list of inputs. 1336 InputList Inputs; 1337 BuildInputs(C.getDefaultToolChain(), C.getArgs(), Inputs); 1338 1339 for (InputList::iterator it = Inputs.begin(), ie = Inputs.end(); it != ie;) { 1340 bool IgnoreInput = false; 1341 1342 // Ignore input from stdin or any inputs that cannot be preprocessed. 1343 // Check type first as not all linker inputs have a value. 1344 if (types::getPreprocessedType(it->first) == types::TY_INVALID) { 1345 IgnoreInput = true; 1346 } else if (!strcmp(it->second->getValue(), "-")) { 1347 Diag(clang::diag::note_drv_command_failed_diag_msg) 1348 << "Error generating preprocessed source(s) - " 1349 "ignoring input from stdin."; 1350 IgnoreInput = true; 1351 } 1352 1353 if (IgnoreInput) { 1354 it = Inputs.erase(it); 1355 ie = Inputs.end(); 1356 } else { 1357 ++it; 1358 } 1359 } 1360 1361 if (Inputs.empty()) { 1362 Diag(clang::diag::note_drv_command_failed_diag_msg) 1363 << "Error generating preprocessed source(s) - " 1364 "no preprocessable inputs."; 1365 return; 1366 } 1367 1368 // Don't attempt to generate preprocessed files if multiple -arch options are 1369 // used, unless they're all duplicates. 1370 llvm::StringSet<> ArchNames; 1371 for (const Arg *A : C.getArgs()) { 1372 if (A->getOption().matches(options::OPT_arch)) { 1373 StringRef ArchName = A->getValue(); 1374 ArchNames.insert(ArchName); 1375 } 1376 } 1377 if (ArchNames.size() > 1) { 1378 Diag(clang::diag::note_drv_command_failed_diag_msg) 1379 << "Error generating preprocessed source(s) - cannot generate " 1380 "preprocessed source with multiple -arch options."; 1381 return; 1382 } 1383 1384 // Construct the list of abstract actions to perform for this compilation. On 1385 // Darwin OSes this uses the driver-driver and builds universal actions. 1386 const ToolChain &TC = C.getDefaultToolChain(); 1387 if (TC.getTriple().isOSBinFormatMachO()) 1388 BuildUniversalActions(C, TC, Inputs); 1389 else 1390 BuildActions(C, C.getArgs(), Inputs, C.getActions()); 1391 1392 BuildJobs(C); 1393 1394 // If there were errors building the compilation, quit now. 1395 if (Trap.hasErrorOccurred()) { 1396 Diag(clang::diag::note_drv_command_failed_diag_msg) 1397 << "Error generating preprocessed source(s)."; 1398 return; 1399 } 1400 1401 // Generate preprocessed output. 1402 SmallVector<std::pair<int, const Command *>, 4> FailingCommands; 1403 C.ExecuteJobs(C.getJobs(), FailingCommands); 1404 1405 // If any of the preprocessing commands failed, clean up and exit. 1406 if (!FailingCommands.empty()) { 1407 Diag(clang::diag::note_drv_command_failed_diag_msg) 1408 << "Error generating preprocessed source(s)."; 1409 return; 1410 } 1411 1412 const ArgStringList &TempFiles = C.getTempFiles(); 1413 if (TempFiles.empty()) { 1414 Diag(clang::diag::note_drv_command_failed_diag_msg) 1415 << "Error generating preprocessed source(s)."; 1416 return; 1417 } 1418 1419 Diag(clang::diag::note_drv_command_failed_diag_msg) 1420 << "\n********************\n\n" 1421 "PLEASE ATTACH THE FOLLOWING FILES TO THE BUG REPORT:\n" 1422 "Preprocessed source(s) and associated run script(s) are located at:"; 1423 1424 SmallString<128> VFS; 1425 SmallString<128> ReproCrashFilename; 1426 for (const char *TempFile : TempFiles) { 1427 Diag(clang::diag::note_drv_command_failed_diag_msg) << TempFile; 1428 if (Report) 1429 Report->TemporaryFiles.push_back(TempFile); 1430 if (ReproCrashFilename.empty()) { 1431 ReproCrashFilename = TempFile; 1432 llvm::sys::path::replace_extension(ReproCrashFilename, ".crash"); 1433 } 1434 if (StringRef(TempFile).endswith(".cache")) { 1435 // In some cases (modules) we'll dump extra data to help with reproducing 1436 // the crash into a directory next to the output. 1437 VFS = llvm::sys::path::filename(TempFile); 1438 llvm::sys::path::append(VFS, "vfs", "vfs.yaml"); 1439 } 1440 } 1441 1442 // Assume associated files are based off of the first temporary file. 1443 CrashReportInfo CrashInfo(TempFiles[0], VFS); 1444 1445 llvm::SmallString<128> Script(CrashInfo.Filename); 1446 llvm::sys::path::replace_extension(Script, "sh"); 1447 std::error_code EC; 1448 llvm::raw_fd_ostream ScriptOS(Script, EC, llvm::sys::fs::CD_CreateNew); 1449 if (EC) { 1450 Diag(clang::diag::note_drv_command_failed_diag_msg) 1451 << "Error generating run script: " << Script << " " << EC.message(); 1452 } else { 1453 ScriptOS << "# Crash reproducer for " << getClangFullVersion() << "\n" 1454 << "# Driver args: "; 1455 printArgList(ScriptOS, C.getInputArgs()); 1456 ScriptOS << "# Original command: "; 1457 Cmd.Print(ScriptOS, "\n", /*Quote=*/true); 1458 Cmd.Print(ScriptOS, "\n", /*Quote=*/true, &CrashInfo); 1459 if (!AdditionalInformation.empty()) 1460 ScriptOS << "\n# Additional information: " << AdditionalInformation 1461 << "\n"; 1462 if (Report) 1463 Report->TemporaryFiles.push_back(std::string(Script.str())); 1464 Diag(clang::diag::note_drv_command_failed_diag_msg) << Script; 1465 } 1466 1467 // On darwin, provide information about the .crash diagnostic report. 1468 if (llvm::Triple(llvm::sys::getProcessTriple()).isOSDarwin()) { 1469 SmallString<128> CrashDiagDir; 1470 if (getCrashDiagnosticFile(ReproCrashFilename, CrashDiagDir)) { 1471 Diag(clang::diag::note_drv_command_failed_diag_msg) 1472 << ReproCrashFilename.str(); 1473 } else { // Suggest a directory for the user to look for .crash files. 1474 llvm::sys::path::append(CrashDiagDir, Name); 1475 CrashDiagDir += "_<YYYY-MM-DD-HHMMSS>_<hostname>.crash"; 1476 Diag(clang::diag::note_drv_command_failed_diag_msg) 1477 << "Crash backtrace is located in"; 1478 Diag(clang::diag::note_drv_command_failed_diag_msg) 1479 << CrashDiagDir.str(); 1480 Diag(clang::diag::note_drv_command_failed_diag_msg) 1481 << "(choose the .crash file that corresponds to your crash)"; 1482 } 1483 } 1484 1485 for (const auto &A : C.getArgs().filtered(options::OPT_frewrite_map_file, 1486 options::OPT_frewrite_map_file_EQ)) 1487 Diag(clang::diag::note_drv_command_failed_diag_msg) << A->getValue(); 1488 1489 Diag(clang::diag::note_drv_command_failed_diag_msg) 1490 << "\n\n********************"; 1491 } 1492 1493 void Driver::setUpResponseFiles(Compilation &C, Command &Cmd) { 1494 // Since commandLineFitsWithinSystemLimits() may underestimate system's 1495 // capacity if the tool does not support response files, there is a chance/ 1496 // that things will just work without a response file, so we silently just 1497 // skip it. 1498 if (Cmd.getResponseFileSupport().ResponseKind == 1499 ResponseFileSupport::RF_None || 1500 llvm::sys::commandLineFitsWithinSystemLimits(Cmd.getExecutable(), 1501 Cmd.getArguments())) 1502 return; 1503 1504 std::string TmpName = GetTemporaryPath("response", "txt"); 1505 Cmd.setResponseFile(C.addTempFile(C.getArgs().MakeArgString(TmpName))); 1506 } 1507 1508 int Driver::ExecuteCompilation( 1509 Compilation &C, 1510 SmallVectorImpl<std::pair<int, const Command *>> &FailingCommands) { 1511 // Just print if -### was present. 1512 if (C.getArgs().hasArg(options::OPT__HASH_HASH_HASH)) { 1513 C.getJobs().Print(llvm::errs(), "\n", true); 1514 return 0; 1515 } 1516 1517 // If there were errors building the compilation, quit now. 1518 if (Diags.hasErrorOccurred()) 1519 return 1; 1520 1521 // Set up response file names for each command, if necessary 1522 for (auto &Job : C.getJobs()) 1523 setUpResponseFiles(C, Job); 1524 1525 C.ExecuteJobs(C.getJobs(), FailingCommands); 1526 1527 // If the command succeeded, we are done. 1528 if (FailingCommands.empty()) 1529 return 0; 1530 1531 // Otherwise, remove result files and print extra information about abnormal 1532 // failures. 1533 int Res = 0; 1534 for (const auto &CmdPair : FailingCommands) { 1535 int CommandRes = CmdPair.first; 1536 const Command *FailingCommand = CmdPair.second; 1537 1538 // Remove result files if we're not saving temps. 1539 if (!isSaveTempsEnabled()) { 1540 const JobAction *JA = cast<JobAction>(&FailingCommand->getSource()); 1541 C.CleanupFileMap(C.getResultFiles(), JA, true); 1542 1543 // Failure result files are valid unless we crashed. 1544 if (CommandRes < 0) 1545 C.CleanupFileMap(C.getFailureResultFiles(), JA, true); 1546 } 1547 1548 #if LLVM_ON_UNIX 1549 // llvm/lib/Support/Unix/Signals.inc will exit with a special return code 1550 // for SIGPIPE. Do not print diagnostics for this case. 1551 if (CommandRes == EX_IOERR) { 1552 Res = CommandRes; 1553 continue; 1554 } 1555 #endif 1556 1557 // Print extra information about abnormal failures, if possible. 1558 // 1559 // This is ad-hoc, but we don't want to be excessively noisy. If the result 1560 // status was 1, assume the command failed normally. In particular, if it 1561 // was the compiler then assume it gave a reasonable error code. Failures 1562 // in other tools are less common, and they generally have worse 1563 // diagnostics, so always print the diagnostic there. 1564 const Tool &FailingTool = FailingCommand->getCreator(); 1565 1566 if (!FailingCommand->getCreator().hasGoodDiagnostics() || CommandRes != 1) { 1567 // FIXME: See FIXME above regarding result code interpretation. 1568 if (CommandRes < 0) 1569 Diag(clang::diag::err_drv_command_signalled) 1570 << FailingTool.getShortName(); 1571 else 1572 Diag(clang::diag::err_drv_command_failed) 1573 << FailingTool.getShortName() << CommandRes; 1574 } 1575 } 1576 return Res; 1577 } 1578 1579 void Driver::PrintHelp(bool ShowHidden) const { 1580 unsigned IncludedFlagsBitmask; 1581 unsigned ExcludedFlagsBitmask; 1582 std::tie(IncludedFlagsBitmask, ExcludedFlagsBitmask) = 1583 getIncludeExcludeOptionFlagMasks(IsCLMode()); 1584 1585 ExcludedFlagsBitmask |= options::NoDriverOption; 1586 if (!ShowHidden) 1587 ExcludedFlagsBitmask |= HelpHidden; 1588 1589 if (IsFlangMode()) 1590 IncludedFlagsBitmask |= options::FlangOption; 1591 else 1592 ExcludedFlagsBitmask |= options::FlangOnlyOption; 1593 1594 std::string Usage = llvm::formatv("{0} [options] file...", Name).str(); 1595 getOpts().PrintHelp(llvm::outs(), Usage.c_str(), DriverTitle.c_str(), 1596 IncludedFlagsBitmask, ExcludedFlagsBitmask, 1597 /*ShowAllAliases=*/false); 1598 } 1599 1600 void Driver::PrintVersion(const Compilation &C, raw_ostream &OS) const { 1601 if (IsFlangMode()) { 1602 OS << getClangToolFullVersion("flang-new") << '\n'; 1603 } else { 1604 // FIXME: The following handlers should use a callback mechanism, we don't 1605 // know what the client would like to do. 1606 OS << getClangFullVersion() << '\n'; 1607 } 1608 const ToolChain &TC = C.getDefaultToolChain(); 1609 OS << "Target: " << TC.getTripleString() << '\n'; 1610 1611 // Print the threading model. 1612 if (Arg *A = C.getArgs().getLastArg(options::OPT_mthread_model)) { 1613 // Don't print if the ToolChain would have barfed on it already 1614 if (TC.isThreadModelSupported(A->getValue())) 1615 OS << "Thread model: " << A->getValue(); 1616 } else 1617 OS << "Thread model: " << TC.getThreadModel(); 1618 OS << '\n'; 1619 1620 // Print out the install directory. 1621 OS << "InstalledDir: " << InstalledDir << '\n'; 1622 1623 // If configuration file was used, print its path. 1624 if (!ConfigFile.empty()) 1625 OS << "Configuration file: " << ConfigFile << '\n'; 1626 } 1627 1628 /// PrintDiagnosticCategories - Implement the --print-diagnostic-categories 1629 /// option. 1630 static void PrintDiagnosticCategories(raw_ostream &OS) { 1631 // Skip the empty category. 1632 for (unsigned i = 1, max = DiagnosticIDs::getNumberOfCategories(); i != max; 1633 ++i) 1634 OS << i << ',' << DiagnosticIDs::getCategoryNameFromID(i) << '\n'; 1635 } 1636 1637 void Driver::HandleAutocompletions(StringRef PassedFlags) const { 1638 if (PassedFlags == "") 1639 return; 1640 // Print out all options that start with a given argument. This is used for 1641 // shell autocompletion. 1642 std::vector<std::string> SuggestedCompletions; 1643 std::vector<std::string> Flags; 1644 1645 unsigned int DisableFlags = 1646 options::NoDriverOption | options::Unsupported | options::Ignored; 1647 1648 // Make sure that Flang-only options don't pollute the Clang output 1649 // TODO: Make sure that Clang-only options don't pollute Flang output 1650 if (!IsFlangMode()) 1651 DisableFlags |= options::FlangOnlyOption; 1652 1653 // Distinguish "--autocomplete=-someflag" and "--autocomplete=-someflag," 1654 // because the latter indicates that the user put space before pushing tab 1655 // which should end up in a file completion. 1656 const bool HasSpace = PassedFlags.endswith(","); 1657 1658 // Parse PassedFlags by "," as all the command-line flags are passed to this 1659 // function separated by "," 1660 StringRef TargetFlags = PassedFlags; 1661 while (TargetFlags != "") { 1662 StringRef CurFlag; 1663 std::tie(CurFlag, TargetFlags) = TargetFlags.split(","); 1664 Flags.push_back(std::string(CurFlag)); 1665 } 1666 1667 // We want to show cc1-only options only when clang is invoked with -cc1 or 1668 // -Xclang. 1669 if (llvm::is_contained(Flags, "-Xclang") || llvm::is_contained(Flags, "-cc1")) 1670 DisableFlags &= ~options::NoDriverOption; 1671 1672 const llvm::opt::OptTable &Opts = getOpts(); 1673 StringRef Cur; 1674 Cur = Flags.at(Flags.size() - 1); 1675 StringRef Prev; 1676 if (Flags.size() >= 2) { 1677 Prev = Flags.at(Flags.size() - 2); 1678 SuggestedCompletions = Opts.suggestValueCompletions(Prev, Cur); 1679 } 1680 1681 if (SuggestedCompletions.empty()) 1682 SuggestedCompletions = Opts.suggestValueCompletions(Cur, ""); 1683 1684 // If Flags were empty, it means the user typed `clang [tab]` where we should 1685 // list all possible flags. If there was no value completion and the user 1686 // pressed tab after a space, we should fall back to a file completion. 1687 // We're printing a newline to be consistent with what we print at the end of 1688 // this function. 1689 if (SuggestedCompletions.empty() && HasSpace && !Flags.empty()) { 1690 llvm::outs() << '\n'; 1691 return; 1692 } 1693 1694 // When flag ends with '=' and there was no value completion, return empty 1695 // string and fall back to the file autocompletion. 1696 if (SuggestedCompletions.empty() && !Cur.endswith("=")) { 1697 // If the flag is in the form of "--autocomplete=-foo", 1698 // we were requested to print out all option names that start with "-foo". 1699 // For example, "--autocomplete=-fsyn" is expanded to "-fsyntax-only". 1700 SuggestedCompletions = Opts.findByPrefix(Cur, DisableFlags); 1701 1702 // We have to query the -W flags manually as they're not in the OptTable. 1703 // TODO: Find a good way to add them to OptTable instead and them remove 1704 // this code. 1705 for (StringRef S : DiagnosticIDs::getDiagnosticFlags()) 1706 if (S.startswith(Cur)) 1707 SuggestedCompletions.push_back(std::string(S)); 1708 } 1709 1710 // Sort the autocomplete candidates so that shells print them out in a 1711 // deterministic order. We could sort in any way, but we chose 1712 // case-insensitive sorting for consistency with the -help option 1713 // which prints out options in the case-insensitive alphabetical order. 1714 llvm::sort(SuggestedCompletions, [](StringRef A, StringRef B) { 1715 if (int X = A.compare_lower(B)) 1716 return X < 0; 1717 return A.compare(B) > 0; 1718 }); 1719 1720 llvm::outs() << llvm::join(SuggestedCompletions, "\n") << '\n'; 1721 } 1722 1723 bool Driver::HandleImmediateArgs(const Compilation &C) { 1724 // The order these options are handled in gcc is all over the place, but we 1725 // don't expect inconsistencies w.r.t. that to matter in practice. 1726 1727 if (C.getArgs().hasArg(options::OPT_dumpmachine)) { 1728 llvm::outs() << C.getDefaultToolChain().getTripleString() << '\n'; 1729 return false; 1730 } 1731 1732 if (C.getArgs().hasArg(options::OPT_dumpversion)) { 1733 // Since -dumpversion is only implemented for pedantic GCC compatibility, we 1734 // return an answer which matches our definition of __VERSION__. 1735 llvm::outs() << CLANG_VERSION_STRING << "\n"; 1736 return false; 1737 } 1738 1739 if (C.getArgs().hasArg(options::OPT__print_diagnostic_categories)) { 1740 PrintDiagnosticCategories(llvm::outs()); 1741 return false; 1742 } 1743 1744 if (C.getArgs().hasArg(options::OPT_help) || 1745 C.getArgs().hasArg(options::OPT__help_hidden)) { 1746 PrintHelp(C.getArgs().hasArg(options::OPT__help_hidden)); 1747 return false; 1748 } 1749 1750 if (C.getArgs().hasArg(options::OPT__version)) { 1751 // Follow gcc behavior and use stdout for --version and stderr for -v. 1752 PrintVersion(C, llvm::outs()); 1753 return false; 1754 } 1755 1756 if (C.getArgs().hasArg(options::OPT_v) || 1757 C.getArgs().hasArg(options::OPT__HASH_HASH_HASH) || 1758 C.getArgs().hasArg(options::OPT_print_supported_cpus)) { 1759 PrintVersion(C, llvm::errs()); 1760 SuppressMissingInputWarning = true; 1761 } 1762 1763 if (C.getArgs().hasArg(options::OPT_v)) { 1764 if (!SystemConfigDir.empty()) 1765 llvm::errs() << "System configuration file directory: " 1766 << SystemConfigDir << "\n"; 1767 if (!UserConfigDir.empty()) 1768 llvm::errs() << "User configuration file directory: " 1769 << UserConfigDir << "\n"; 1770 } 1771 1772 const ToolChain &TC = C.getDefaultToolChain(); 1773 1774 if (C.getArgs().hasArg(options::OPT_v)) 1775 TC.printVerboseInfo(llvm::errs()); 1776 1777 if (C.getArgs().hasArg(options::OPT_print_resource_dir)) { 1778 llvm::outs() << ResourceDir << '\n'; 1779 return false; 1780 } 1781 1782 if (C.getArgs().hasArg(options::OPT_print_search_dirs)) { 1783 llvm::outs() << "programs: ="; 1784 bool separator = false; 1785 // Print -B and COMPILER_PATH. 1786 for (const std::string &Path : PrefixDirs) { 1787 if (separator) 1788 llvm::outs() << llvm::sys::EnvPathSeparator; 1789 llvm::outs() << Path; 1790 separator = true; 1791 } 1792 for (const std::string &Path : TC.getProgramPaths()) { 1793 if (separator) 1794 llvm::outs() << llvm::sys::EnvPathSeparator; 1795 llvm::outs() << Path; 1796 separator = true; 1797 } 1798 llvm::outs() << "\n"; 1799 llvm::outs() << "libraries: =" << ResourceDir; 1800 1801 StringRef sysroot = C.getSysRoot(); 1802 1803 for (const std::string &Path : TC.getFilePaths()) { 1804 // Always print a separator. ResourceDir was the first item shown. 1805 llvm::outs() << llvm::sys::EnvPathSeparator; 1806 // Interpretation of leading '=' is needed only for NetBSD. 1807 if (Path[0] == '=') 1808 llvm::outs() << sysroot << Path.substr(1); 1809 else 1810 llvm::outs() << Path; 1811 } 1812 llvm::outs() << "\n"; 1813 return false; 1814 } 1815 1816 // FIXME: The following handlers should use a callback mechanism, we don't 1817 // know what the client would like to do. 1818 if (Arg *A = C.getArgs().getLastArg(options::OPT_print_file_name_EQ)) { 1819 llvm::outs() << GetFilePath(A->getValue(), TC) << "\n"; 1820 return false; 1821 } 1822 1823 if (Arg *A = C.getArgs().getLastArg(options::OPT_print_prog_name_EQ)) { 1824 StringRef ProgName = A->getValue(); 1825 1826 // Null program name cannot have a path. 1827 if (! ProgName.empty()) 1828 llvm::outs() << GetProgramPath(ProgName, TC); 1829 1830 llvm::outs() << "\n"; 1831 return false; 1832 } 1833 1834 if (Arg *A = C.getArgs().getLastArg(options::OPT_autocomplete)) { 1835 StringRef PassedFlags = A->getValue(); 1836 HandleAutocompletions(PassedFlags); 1837 return false; 1838 } 1839 1840 if (C.getArgs().hasArg(options::OPT_print_libgcc_file_name)) { 1841 ToolChain::RuntimeLibType RLT = TC.GetRuntimeLibType(C.getArgs()); 1842 const llvm::Triple Triple(TC.ComputeEffectiveClangTriple(C.getArgs())); 1843 RegisterEffectiveTriple TripleRAII(TC, Triple); 1844 switch (RLT) { 1845 case ToolChain::RLT_CompilerRT: 1846 llvm::outs() << TC.getCompilerRT(C.getArgs(), "builtins") << "\n"; 1847 break; 1848 case ToolChain::RLT_Libgcc: 1849 llvm::outs() << GetFilePath("libgcc.a", TC) << "\n"; 1850 break; 1851 } 1852 return false; 1853 } 1854 1855 if (C.getArgs().hasArg(options::OPT_print_multi_lib)) { 1856 for (const Multilib &Multilib : TC.getMultilibs()) 1857 llvm::outs() << Multilib << "\n"; 1858 return false; 1859 } 1860 1861 if (C.getArgs().hasArg(options::OPT_print_multi_directory)) { 1862 const Multilib &Multilib = TC.getMultilib(); 1863 if (Multilib.gccSuffix().empty()) 1864 llvm::outs() << ".\n"; 1865 else { 1866 StringRef Suffix(Multilib.gccSuffix()); 1867 assert(Suffix.front() == '/'); 1868 llvm::outs() << Suffix.substr(1) << "\n"; 1869 } 1870 return false; 1871 } 1872 1873 if (C.getArgs().hasArg(options::OPT_print_target_triple)) { 1874 llvm::outs() << TC.getTripleString() << "\n"; 1875 return false; 1876 } 1877 1878 if (C.getArgs().hasArg(options::OPT_print_effective_triple)) { 1879 const llvm::Triple Triple(TC.ComputeEffectiveClangTriple(C.getArgs())); 1880 llvm::outs() << Triple.getTriple() << "\n"; 1881 return false; 1882 } 1883 1884 if (C.getArgs().hasArg(options::OPT_print_targets)) { 1885 llvm::TargetRegistry::printRegisteredTargetsForVersion(llvm::outs()); 1886 return false; 1887 } 1888 1889 return true; 1890 } 1891 1892 enum { 1893 TopLevelAction = 0, 1894 HeadSibAction = 1, 1895 OtherSibAction = 2, 1896 }; 1897 1898 // Display an action graph human-readably. Action A is the "sink" node 1899 // and latest-occuring action. Traversal is in pre-order, visiting the 1900 // inputs to each action before printing the action itself. 1901 static unsigned PrintActions1(const Compilation &C, Action *A, 1902 std::map<Action *, unsigned> &Ids, 1903 Twine Indent = {}, int Kind = TopLevelAction) { 1904 if (Ids.count(A)) // A was already visited. 1905 return Ids[A]; 1906 1907 std::string str; 1908 llvm::raw_string_ostream os(str); 1909 1910 auto getSibIndent = [](int K) -> Twine { 1911 return (K == HeadSibAction) ? " " : (K == OtherSibAction) ? "| " : ""; 1912 }; 1913 1914 Twine SibIndent = Indent + getSibIndent(Kind); 1915 int SibKind = HeadSibAction; 1916 os << Action::getClassName(A->getKind()) << ", "; 1917 if (InputAction *IA = dyn_cast<InputAction>(A)) { 1918 os << "\"" << IA->getInputArg().getValue() << "\""; 1919 } else if (BindArchAction *BIA = dyn_cast<BindArchAction>(A)) { 1920 os << '"' << BIA->getArchName() << '"' << ", {" 1921 << PrintActions1(C, *BIA->input_begin(), Ids, SibIndent, SibKind) << "}"; 1922 } else if (OffloadAction *OA = dyn_cast<OffloadAction>(A)) { 1923 bool IsFirst = true; 1924 OA->doOnEachDependence( 1925 [&](Action *A, const ToolChain *TC, const char *BoundArch) { 1926 assert(TC && "Unknown host toolchain"); 1927 // E.g. for two CUDA device dependences whose bound arch is sm_20 and 1928 // sm_35 this will generate: 1929 // "cuda-device" (nvptx64-nvidia-cuda:sm_20) {#ID}, "cuda-device" 1930 // (nvptx64-nvidia-cuda:sm_35) {#ID} 1931 if (!IsFirst) 1932 os << ", "; 1933 os << '"'; 1934 os << A->getOffloadingKindPrefix(); 1935 os << " ("; 1936 os << TC->getTriple().normalize(); 1937 if (BoundArch) 1938 os << ":" << BoundArch; 1939 os << ")"; 1940 os << '"'; 1941 os << " {" << PrintActions1(C, A, Ids, SibIndent, SibKind) << "}"; 1942 IsFirst = false; 1943 SibKind = OtherSibAction; 1944 }); 1945 } else { 1946 const ActionList *AL = &A->getInputs(); 1947 1948 if (AL->size()) { 1949 const char *Prefix = "{"; 1950 for (Action *PreRequisite : *AL) { 1951 os << Prefix << PrintActions1(C, PreRequisite, Ids, SibIndent, SibKind); 1952 Prefix = ", "; 1953 SibKind = OtherSibAction; 1954 } 1955 os << "}"; 1956 } else 1957 os << "{}"; 1958 } 1959 1960 // Append offload info for all options other than the offloading action 1961 // itself (e.g. (cuda-device, sm_20) or (cuda-host)). 1962 std::string offload_str; 1963 llvm::raw_string_ostream offload_os(offload_str); 1964 if (!isa<OffloadAction>(A)) { 1965 auto S = A->getOffloadingKindPrefix(); 1966 if (!S.empty()) { 1967 offload_os << ", (" << S; 1968 if (A->getOffloadingArch()) 1969 offload_os << ", " << A->getOffloadingArch(); 1970 offload_os << ")"; 1971 } 1972 } 1973 1974 auto getSelfIndent = [](int K) -> Twine { 1975 return (K == HeadSibAction) ? "+- " : (K == OtherSibAction) ? "|- " : ""; 1976 }; 1977 1978 unsigned Id = Ids.size(); 1979 Ids[A] = Id; 1980 llvm::errs() << Indent + getSelfIndent(Kind) << Id << ": " << os.str() << ", " 1981 << types::getTypeName(A->getType()) << offload_os.str() << "\n"; 1982 1983 return Id; 1984 } 1985 1986 // Print the action graphs in a compilation C. 1987 // For example "clang -c file1.c file2.c" is composed of two subgraphs. 1988 void Driver::PrintActions(const Compilation &C) const { 1989 std::map<Action *, unsigned> Ids; 1990 for (Action *A : C.getActions()) 1991 PrintActions1(C, A, Ids); 1992 } 1993 1994 /// Check whether the given input tree contains any compilation or 1995 /// assembly actions. 1996 static bool ContainsCompileOrAssembleAction(const Action *A) { 1997 if (isa<CompileJobAction>(A) || isa<BackendJobAction>(A) || 1998 isa<AssembleJobAction>(A)) 1999 return true; 2000 2001 for (const Action *Input : A->inputs()) 2002 if (ContainsCompileOrAssembleAction(Input)) 2003 return true; 2004 2005 return false; 2006 } 2007 2008 void Driver::BuildUniversalActions(Compilation &C, const ToolChain &TC, 2009 const InputList &BAInputs) const { 2010 DerivedArgList &Args = C.getArgs(); 2011 ActionList &Actions = C.getActions(); 2012 llvm::PrettyStackTraceString CrashInfo("Building universal build actions"); 2013 // Collect the list of architectures. Duplicates are allowed, but should only 2014 // be handled once (in the order seen). 2015 llvm::StringSet<> ArchNames; 2016 SmallVector<const char *, 4> Archs; 2017 for (Arg *A : Args) { 2018 if (A->getOption().matches(options::OPT_arch)) { 2019 // Validate the option here; we don't save the type here because its 2020 // particular spelling may participate in other driver choices. 2021 llvm::Triple::ArchType Arch = 2022 tools::darwin::getArchTypeForMachOArchName(A->getValue()); 2023 if (Arch == llvm::Triple::UnknownArch) { 2024 Diag(clang::diag::err_drv_invalid_arch_name) << A->getAsString(Args); 2025 continue; 2026 } 2027 2028 A->claim(); 2029 if (ArchNames.insert(A->getValue()).second) 2030 Archs.push_back(A->getValue()); 2031 } 2032 } 2033 2034 // When there is no explicit arch for this platform, make sure we still bind 2035 // the architecture (to the default) so that -Xarch_ is handled correctly. 2036 if (!Archs.size()) 2037 Archs.push_back(Args.MakeArgString(TC.getDefaultUniversalArchName())); 2038 2039 ActionList SingleActions; 2040 BuildActions(C, Args, BAInputs, SingleActions); 2041 2042 // Add in arch bindings for every top level action, as well as lipo and 2043 // dsymutil steps if needed. 2044 for (Action* Act : SingleActions) { 2045 // Make sure we can lipo this kind of output. If not (and it is an actual 2046 // output) then we disallow, since we can't create an output file with the 2047 // right name without overwriting it. We could remove this oddity by just 2048 // changing the output names to include the arch, which would also fix 2049 // -save-temps. Compatibility wins for now. 2050 2051 if (Archs.size() > 1 && !types::canLipoType(Act->getType())) 2052 Diag(clang::diag::err_drv_invalid_output_with_multiple_archs) 2053 << types::getTypeName(Act->getType()); 2054 2055 ActionList Inputs; 2056 for (unsigned i = 0, e = Archs.size(); i != e; ++i) 2057 Inputs.push_back(C.MakeAction<BindArchAction>(Act, Archs[i])); 2058 2059 // Lipo if necessary, we do it this way because we need to set the arch flag 2060 // so that -Xarch_ gets overwritten. 2061 if (Inputs.size() == 1 || Act->getType() == types::TY_Nothing) 2062 Actions.append(Inputs.begin(), Inputs.end()); 2063 else 2064 Actions.push_back(C.MakeAction<LipoJobAction>(Inputs, Act->getType())); 2065 2066 // Handle debug info queries. 2067 Arg *A = Args.getLastArg(options::OPT_g_Group); 2068 bool enablesDebugInfo = A && !A->getOption().matches(options::OPT_g0) && 2069 !A->getOption().matches(options::OPT_gstabs); 2070 if ((enablesDebugInfo || willEmitRemarks(Args)) && 2071 ContainsCompileOrAssembleAction(Actions.back())) { 2072 2073 // Add a 'dsymutil' step if necessary, when debug info is enabled and we 2074 // have a compile input. We need to run 'dsymutil' ourselves in such cases 2075 // because the debug info will refer to a temporary object file which 2076 // will be removed at the end of the compilation process. 2077 if (Act->getType() == types::TY_Image) { 2078 ActionList Inputs; 2079 Inputs.push_back(Actions.back()); 2080 Actions.pop_back(); 2081 Actions.push_back( 2082 C.MakeAction<DsymutilJobAction>(Inputs, types::TY_dSYM)); 2083 } 2084 2085 // Verify the debug info output. 2086 if (Args.hasArg(options::OPT_verify_debug_info)) { 2087 Action* LastAction = Actions.back(); 2088 Actions.pop_back(); 2089 Actions.push_back(C.MakeAction<VerifyDebugInfoJobAction>( 2090 LastAction, types::TY_Nothing)); 2091 } 2092 } 2093 } 2094 } 2095 2096 bool Driver::DiagnoseInputExistence(const DerivedArgList &Args, StringRef Value, 2097 types::ID Ty, bool TypoCorrect) const { 2098 if (!getCheckInputsExist()) 2099 return true; 2100 2101 // stdin always exists. 2102 if (Value == "-") 2103 return true; 2104 2105 if (getVFS().exists(Value)) 2106 return true; 2107 2108 if (IsCLMode()) { 2109 if (!llvm::sys::path::is_absolute(Twine(Value)) && 2110 llvm::sys::Process::FindInEnvPath("LIB", Value, ';')) 2111 return true; 2112 2113 if (Args.hasArg(options::OPT__SLASH_link) && Ty == types::TY_Object) { 2114 // Arguments to the /link flag might cause the linker to search for object 2115 // and library files in paths we don't know about. Don't error in such 2116 // cases. 2117 return true; 2118 } 2119 } 2120 2121 if (TypoCorrect) { 2122 // Check if the filename is a typo for an option flag. OptTable thinks 2123 // that all args that are not known options and that start with / are 2124 // filenames, but e.g. `/diagnostic:caret` is more likely a typo for 2125 // the option `/diagnostics:caret` than a reference to a file in the root 2126 // directory. 2127 unsigned IncludedFlagsBitmask; 2128 unsigned ExcludedFlagsBitmask; 2129 std::tie(IncludedFlagsBitmask, ExcludedFlagsBitmask) = 2130 getIncludeExcludeOptionFlagMasks(IsCLMode()); 2131 std::string Nearest; 2132 if (getOpts().findNearest(Value, Nearest, IncludedFlagsBitmask, 2133 ExcludedFlagsBitmask) <= 1) { 2134 Diag(clang::diag::err_drv_no_such_file_with_suggestion) 2135 << Value << Nearest; 2136 return false; 2137 } 2138 } 2139 2140 Diag(clang::diag::err_drv_no_such_file) << Value; 2141 return false; 2142 } 2143 2144 // Construct a the list of inputs and their types. 2145 void Driver::BuildInputs(const ToolChain &TC, DerivedArgList &Args, 2146 InputList &Inputs) const { 2147 const llvm::opt::OptTable &Opts = getOpts(); 2148 // Track the current user specified (-x) input. We also explicitly track the 2149 // argument used to set the type; we only want to claim the type when we 2150 // actually use it, so we warn about unused -x arguments. 2151 types::ID InputType = types::TY_Nothing; 2152 Arg *InputTypeArg = nullptr; 2153 2154 // The last /TC or /TP option sets the input type to C or C++ globally. 2155 if (Arg *TCTP = Args.getLastArgNoClaim(options::OPT__SLASH_TC, 2156 options::OPT__SLASH_TP)) { 2157 InputTypeArg = TCTP; 2158 InputType = TCTP->getOption().matches(options::OPT__SLASH_TC) 2159 ? types::TY_C 2160 : types::TY_CXX; 2161 2162 Arg *Previous = nullptr; 2163 bool ShowNote = false; 2164 for (Arg *A : 2165 Args.filtered(options::OPT__SLASH_TC, options::OPT__SLASH_TP)) { 2166 if (Previous) { 2167 Diag(clang::diag::warn_drv_overriding_flag_option) 2168 << Previous->getSpelling() << A->getSpelling(); 2169 ShowNote = true; 2170 } 2171 Previous = A; 2172 } 2173 if (ShowNote) 2174 Diag(clang::diag::note_drv_t_option_is_global); 2175 2176 // No driver mode exposes -x and /TC or /TP; we don't support mixing them. 2177 assert(!Args.hasArg(options::OPT_x) && "-x and /TC or /TP is not allowed"); 2178 } 2179 2180 for (Arg *A : Args) { 2181 if (A->getOption().getKind() == Option::InputClass) { 2182 const char *Value = A->getValue(); 2183 types::ID Ty = types::TY_INVALID; 2184 2185 // Infer the input type if necessary. 2186 if (InputType == types::TY_Nothing) { 2187 // If there was an explicit arg for this, claim it. 2188 if (InputTypeArg) 2189 InputTypeArg->claim(); 2190 2191 // stdin must be handled specially. 2192 if (memcmp(Value, "-", 2) == 0) { 2193 // If running with -E, treat as a C input (this changes the builtin 2194 // macros, for example). This may be overridden by -ObjC below. 2195 // 2196 // Otherwise emit an error but still use a valid type to avoid 2197 // spurious errors (e.g., no inputs). 2198 if (!Args.hasArgNoClaim(options::OPT_E) && !CCCIsCPP()) 2199 Diag(IsCLMode() ? clang::diag::err_drv_unknown_stdin_type_clang_cl 2200 : clang::diag::err_drv_unknown_stdin_type); 2201 Ty = types::TY_C; 2202 } else { 2203 // Otherwise lookup by extension. 2204 // Fallback is C if invoked as C preprocessor, C++ if invoked with 2205 // clang-cl /E, or Object otherwise. 2206 // We use a host hook here because Darwin at least has its own 2207 // idea of what .s is. 2208 if (const char *Ext = strrchr(Value, '.')) 2209 Ty = TC.LookupTypeForExtension(Ext + 1); 2210 2211 if (Ty == types::TY_INVALID) { 2212 if (CCCIsCPP()) 2213 Ty = types::TY_C; 2214 else if (IsCLMode() && Args.hasArgNoClaim(options::OPT_E)) 2215 Ty = types::TY_CXX; 2216 else 2217 Ty = types::TY_Object; 2218 } 2219 2220 // If the driver is invoked as C++ compiler (like clang++ or c++) it 2221 // should autodetect some input files as C++ for g++ compatibility. 2222 if (CCCIsCXX()) { 2223 types::ID OldTy = Ty; 2224 Ty = types::lookupCXXTypeForCType(Ty); 2225 2226 if (Ty != OldTy) 2227 Diag(clang::diag::warn_drv_treating_input_as_cxx) 2228 << getTypeName(OldTy) << getTypeName(Ty); 2229 } 2230 2231 // If running with -fthinlto-index=, extensions that normally identify 2232 // native object files actually identify LLVM bitcode files. 2233 if (Args.hasArgNoClaim(options::OPT_fthinlto_index_EQ) && 2234 Ty == types::TY_Object) 2235 Ty = types::TY_LLVM_BC; 2236 } 2237 2238 // -ObjC and -ObjC++ override the default language, but only for "source 2239 // files". We just treat everything that isn't a linker input as a 2240 // source file. 2241 // 2242 // FIXME: Clean this up if we move the phase sequence into the type. 2243 if (Ty != types::TY_Object) { 2244 if (Args.hasArg(options::OPT_ObjC)) 2245 Ty = types::TY_ObjC; 2246 else if (Args.hasArg(options::OPT_ObjCXX)) 2247 Ty = types::TY_ObjCXX; 2248 } 2249 } else { 2250 assert(InputTypeArg && "InputType set w/o InputTypeArg"); 2251 if (!InputTypeArg->getOption().matches(options::OPT_x)) { 2252 // If emulating cl.exe, make sure that /TC and /TP don't affect input 2253 // object files. 2254 const char *Ext = strrchr(Value, '.'); 2255 if (Ext && TC.LookupTypeForExtension(Ext + 1) == types::TY_Object) 2256 Ty = types::TY_Object; 2257 } 2258 if (Ty == types::TY_INVALID) { 2259 Ty = InputType; 2260 InputTypeArg->claim(); 2261 } 2262 } 2263 2264 if (DiagnoseInputExistence(Args, Value, Ty, /*TypoCorrect=*/true)) 2265 Inputs.push_back(std::make_pair(Ty, A)); 2266 2267 } else if (A->getOption().matches(options::OPT__SLASH_Tc)) { 2268 StringRef Value = A->getValue(); 2269 if (DiagnoseInputExistence(Args, Value, types::TY_C, 2270 /*TypoCorrect=*/false)) { 2271 Arg *InputArg = MakeInputArg(Args, Opts, A->getValue()); 2272 Inputs.push_back(std::make_pair(types::TY_C, InputArg)); 2273 } 2274 A->claim(); 2275 } else if (A->getOption().matches(options::OPT__SLASH_Tp)) { 2276 StringRef Value = A->getValue(); 2277 if (DiagnoseInputExistence(Args, Value, types::TY_CXX, 2278 /*TypoCorrect=*/false)) { 2279 Arg *InputArg = MakeInputArg(Args, Opts, A->getValue()); 2280 Inputs.push_back(std::make_pair(types::TY_CXX, InputArg)); 2281 } 2282 A->claim(); 2283 } else if (A->getOption().hasFlag(options::LinkerInput)) { 2284 // Just treat as object type, we could make a special type for this if 2285 // necessary. 2286 Inputs.push_back(std::make_pair(types::TY_Object, A)); 2287 2288 } else if (A->getOption().matches(options::OPT_x)) { 2289 InputTypeArg = A; 2290 InputType = types::lookupTypeForTypeSpecifier(A->getValue()); 2291 A->claim(); 2292 2293 // Follow gcc behavior and treat as linker input for invalid -x 2294 // options. Its not clear why we shouldn't just revert to unknown; but 2295 // this isn't very important, we might as well be bug compatible. 2296 if (!InputType) { 2297 Diag(clang::diag::err_drv_unknown_language) << A->getValue(); 2298 InputType = types::TY_Object; 2299 } 2300 } else if (A->getOption().getID() == options::OPT_U) { 2301 assert(A->getNumValues() == 1 && "The /U option has one value."); 2302 StringRef Val = A->getValue(0); 2303 if (Val.find_first_of("/\\") != StringRef::npos) { 2304 // Warn about e.g. "/Users/me/myfile.c". 2305 Diag(diag::warn_slash_u_filename) << Val; 2306 Diag(diag::note_use_dashdash); 2307 } 2308 } 2309 } 2310 if (CCCIsCPP() && Inputs.empty()) { 2311 // If called as standalone preprocessor, stdin is processed 2312 // if no other input is present. 2313 Arg *A = MakeInputArg(Args, Opts, "-"); 2314 Inputs.push_back(std::make_pair(types::TY_C, A)); 2315 } 2316 } 2317 2318 namespace { 2319 /// Provides a convenient interface for different programming models to generate 2320 /// the required device actions. 2321 class OffloadingActionBuilder final { 2322 /// Flag used to trace errors in the builder. 2323 bool IsValid = false; 2324 2325 /// The compilation that is using this builder. 2326 Compilation &C; 2327 2328 /// Map between an input argument and the offload kinds used to process it. 2329 std::map<const Arg *, unsigned> InputArgToOffloadKindMap; 2330 2331 /// Builder interface. It doesn't build anything or keep any state. 2332 class DeviceActionBuilder { 2333 public: 2334 typedef const llvm::SmallVectorImpl<phases::ID> PhasesTy; 2335 2336 enum ActionBuilderReturnCode { 2337 // The builder acted successfully on the current action. 2338 ABRT_Success, 2339 // The builder didn't have to act on the current action. 2340 ABRT_Inactive, 2341 // The builder was successful and requested the host action to not be 2342 // generated. 2343 ABRT_Ignore_Host, 2344 }; 2345 2346 protected: 2347 /// Compilation associated with this builder. 2348 Compilation &C; 2349 2350 /// Tool chains associated with this builder. The same programming 2351 /// model may have associated one or more tool chains. 2352 SmallVector<const ToolChain *, 2> ToolChains; 2353 2354 /// The derived arguments associated with this builder. 2355 DerivedArgList &Args; 2356 2357 /// The inputs associated with this builder. 2358 const Driver::InputList &Inputs; 2359 2360 /// The associated offload kind. 2361 Action::OffloadKind AssociatedOffloadKind = Action::OFK_None; 2362 2363 public: 2364 DeviceActionBuilder(Compilation &C, DerivedArgList &Args, 2365 const Driver::InputList &Inputs, 2366 Action::OffloadKind AssociatedOffloadKind) 2367 : C(C), Args(Args), Inputs(Inputs), 2368 AssociatedOffloadKind(AssociatedOffloadKind) {} 2369 virtual ~DeviceActionBuilder() {} 2370 2371 /// Fill up the array \a DA with all the device dependences that should be 2372 /// added to the provided host action \a HostAction. By default it is 2373 /// inactive. 2374 virtual ActionBuilderReturnCode 2375 getDeviceDependences(OffloadAction::DeviceDependences &DA, 2376 phases::ID CurPhase, phases::ID FinalPhase, 2377 PhasesTy &Phases) { 2378 return ABRT_Inactive; 2379 } 2380 2381 /// Update the state to include the provided host action \a HostAction as a 2382 /// dependency of the current device action. By default it is inactive. 2383 virtual ActionBuilderReturnCode addDeviceDepences(Action *HostAction) { 2384 return ABRT_Inactive; 2385 } 2386 2387 /// Append top level actions generated by the builder. 2388 virtual void appendTopLevelActions(ActionList &AL) {} 2389 2390 /// Append linker device actions generated by the builder. 2391 virtual void appendLinkDeviceActions(ActionList &AL) {} 2392 2393 /// Append linker host action generated by the builder. 2394 virtual Action* appendLinkHostActions(ActionList &AL) { return nullptr; } 2395 2396 /// Append linker actions generated by the builder. 2397 virtual void appendLinkDependences(OffloadAction::DeviceDependences &DA) {} 2398 2399 /// Initialize the builder. Return true if any initialization errors are 2400 /// found. 2401 virtual bool initialize() { return false; } 2402 2403 /// Return true if the builder can use bundling/unbundling. 2404 virtual bool canUseBundlerUnbundler() const { return false; } 2405 2406 /// Return true if this builder is valid. We have a valid builder if we have 2407 /// associated device tool chains. 2408 bool isValid() { return !ToolChains.empty(); } 2409 2410 /// Return the associated offload kind. 2411 Action::OffloadKind getAssociatedOffloadKind() { 2412 return AssociatedOffloadKind; 2413 } 2414 }; 2415 2416 /// Base class for CUDA/HIP action builder. It injects device code in 2417 /// the host backend action. 2418 class CudaActionBuilderBase : public DeviceActionBuilder { 2419 protected: 2420 /// Flags to signal if the user requested host-only or device-only 2421 /// compilation. 2422 bool CompileHostOnly = false; 2423 bool CompileDeviceOnly = false; 2424 bool EmitLLVM = false; 2425 bool EmitAsm = false; 2426 2427 /// ID to identify each device compilation. For CUDA it is simply the 2428 /// GPU arch string. For HIP it is either the GPU arch string or GPU 2429 /// arch string plus feature strings delimited by a plus sign, e.g. 2430 /// gfx906+xnack. 2431 struct TargetID { 2432 /// Target ID string which is persistent throughout the compilation. 2433 const char *ID; 2434 TargetID(CudaArch Arch) { ID = CudaArchToString(Arch); } 2435 TargetID(const char *ID) : ID(ID) {} 2436 operator const char *() { return ID; } 2437 operator StringRef() { return StringRef(ID); } 2438 }; 2439 /// List of GPU architectures to use in this compilation. 2440 SmallVector<TargetID, 4> GpuArchList; 2441 2442 /// The CUDA actions for the current input. 2443 ActionList CudaDeviceActions; 2444 2445 /// The CUDA fat binary if it was generated for the current input. 2446 Action *CudaFatBinary = nullptr; 2447 2448 /// Flag that is set to true if this builder acted on the current input. 2449 bool IsActive = false; 2450 2451 /// Flag for -fgpu-rdc. 2452 bool Relocatable = false; 2453 2454 /// Default GPU architecture if there's no one specified. 2455 CudaArch DefaultCudaArch = CudaArch::UNKNOWN; 2456 2457 /// Method to generate compilation unit ID specified by option 2458 /// '-fuse-cuid='. 2459 enum UseCUIDKind { CUID_Hash, CUID_Random, CUID_None, CUID_Invalid }; 2460 UseCUIDKind UseCUID = CUID_Hash; 2461 2462 /// Compilation unit ID specified by option '-cuid='. 2463 StringRef FixedCUID; 2464 2465 public: 2466 CudaActionBuilderBase(Compilation &C, DerivedArgList &Args, 2467 const Driver::InputList &Inputs, 2468 Action::OffloadKind OFKind) 2469 : DeviceActionBuilder(C, Args, Inputs, OFKind) {} 2470 2471 ActionBuilderReturnCode addDeviceDepences(Action *HostAction) override { 2472 // While generating code for CUDA, we only depend on the host input action 2473 // to trigger the creation of all the CUDA device actions. 2474 2475 // If we are dealing with an input action, replicate it for each GPU 2476 // architecture. If we are in host-only mode we return 'success' so that 2477 // the host uses the CUDA offload kind. 2478 if (auto *IA = dyn_cast<InputAction>(HostAction)) { 2479 assert(!GpuArchList.empty() && 2480 "We should have at least one GPU architecture."); 2481 2482 // If the host input is not CUDA or HIP, we don't need to bother about 2483 // this input. 2484 if (!(IA->getType() == types::TY_CUDA || 2485 IA->getType() == types::TY_HIP || 2486 IA->getType() == types::TY_PP_HIP)) { 2487 // The builder will ignore this input. 2488 IsActive = false; 2489 return ABRT_Inactive; 2490 } 2491 2492 // Set the flag to true, so that the builder acts on the current input. 2493 IsActive = true; 2494 2495 if (CompileHostOnly) 2496 return ABRT_Success; 2497 2498 // Replicate inputs for each GPU architecture. 2499 auto Ty = IA->getType() == types::TY_HIP ? types::TY_HIP_DEVICE 2500 : types::TY_CUDA_DEVICE; 2501 std::string CUID = FixedCUID.str(); 2502 if (CUID.empty()) { 2503 if (UseCUID == CUID_Random) 2504 CUID = llvm::utohexstr(llvm::sys::Process::GetRandomNumber(), 2505 /*LowerCase=*/true); 2506 else if (UseCUID == CUID_Hash) { 2507 llvm::MD5 Hasher; 2508 llvm::MD5::MD5Result Hash; 2509 SmallString<256> RealPath; 2510 llvm::sys::fs::real_path(IA->getInputArg().getValue(), RealPath, 2511 /*expand_tilde=*/true); 2512 Hasher.update(RealPath); 2513 for (auto *A : Args) { 2514 if (A->getOption().matches(options::OPT_INPUT)) 2515 continue; 2516 Hasher.update(A->getAsString(Args)); 2517 } 2518 Hasher.final(Hash); 2519 CUID = llvm::utohexstr(Hash.low(), /*LowerCase=*/true); 2520 } 2521 } 2522 IA->setId(CUID); 2523 2524 for (unsigned I = 0, E = GpuArchList.size(); I != E; ++I) { 2525 CudaDeviceActions.push_back( 2526 C.MakeAction<InputAction>(IA->getInputArg(), Ty, IA->getId())); 2527 } 2528 2529 return ABRT_Success; 2530 } 2531 2532 // If this is an unbundling action use it as is for each CUDA toolchain. 2533 if (auto *UA = dyn_cast<OffloadUnbundlingJobAction>(HostAction)) { 2534 2535 // If -fgpu-rdc is disabled, should not unbundle since there is no 2536 // device code to link. 2537 if (UA->getType() == types::TY_Object && !Relocatable) 2538 return ABRT_Inactive; 2539 2540 CudaDeviceActions.clear(); 2541 auto *IA = cast<InputAction>(UA->getInputs().back()); 2542 std::string FileName = IA->getInputArg().getAsString(Args); 2543 // Check if the type of the file is the same as the action. Do not 2544 // unbundle it if it is not. Do not unbundle .so files, for example, 2545 // which are not object files. 2546 if (IA->getType() == types::TY_Object && 2547 (!llvm::sys::path::has_extension(FileName) || 2548 types::lookupTypeForExtension( 2549 llvm::sys::path::extension(FileName).drop_front()) != 2550 types::TY_Object)) 2551 return ABRT_Inactive; 2552 2553 for (auto Arch : GpuArchList) { 2554 CudaDeviceActions.push_back(UA); 2555 UA->registerDependentActionInfo(ToolChains[0], Arch, 2556 AssociatedOffloadKind); 2557 } 2558 return ABRT_Success; 2559 } 2560 2561 return IsActive ? ABRT_Success : ABRT_Inactive; 2562 } 2563 2564 void appendTopLevelActions(ActionList &AL) override { 2565 // Utility to append actions to the top level list. 2566 auto AddTopLevel = [&](Action *A, TargetID TargetID) { 2567 OffloadAction::DeviceDependences Dep; 2568 Dep.add(*A, *ToolChains.front(), TargetID, AssociatedOffloadKind); 2569 AL.push_back(C.MakeAction<OffloadAction>(Dep, A->getType())); 2570 }; 2571 2572 // If we have a fat binary, add it to the list. 2573 if (CudaFatBinary) { 2574 AddTopLevel(CudaFatBinary, CudaArch::UNUSED); 2575 CudaDeviceActions.clear(); 2576 CudaFatBinary = nullptr; 2577 return; 2578 } 2579 2580 if (CudaDeviceActions.empty()) 2581 return; 2582 2583 // If we have CUDA actions at this point, that's because we have a have 2584 // partial compilation, so we should have an action for each GPU 2585 // architecture. 2586 assert(CudaDeviceActions.size() == GpuArchList.size() && 2587 "Expecting one action per GPU architecture."); 2588 assert(ToolChains.size() == 1 && 2589 "Expecting to have a sing CUDA toolchain."); 2590 for (unsigned I = 0, E = GpuArchList.size(); I != E; ++I) 2591 AddTopLevel(CudaDeviceActions[I], GpuArchList[I]); 2592 2593 CudaDeviceActions.clear(); 2594 } 2595 2596 /// Get canonicalized offload arch option. \returns empty StringRef if the 2597 /// option is invalid. 2598 virtual StringRef getCanonicalOffloadArch(StringRef Arch) = 0; 2599 2600 virtual llvm::Optional<std::pair<llvm::StringRef, llvm::StringRef>> 2601 getConflictOffloadArchCombination(const std::set<StringRef> &GpuArchs) = 0; 2602 2603 bool initialize() override { 2604 assert(AssociatedOffloadKind == Action::OFK_Cuda || 2605 AssociatedOffloadKind == Action::OFK_HIP); 2606 2607 // We don't need to support CUDA. 2608 if (AssociatedOffloadKind == Action::OFK_Cuda && 2609 !C.hasOffloadToolChain<Action::OFK_Cuda>()) 2610 return false; 2611 2612 // We don't need to support HIP. 2613 if (AssociatedOffloadKind == Action::OFK_HIP && 2614 !C.hasOffloadToolChain<Action::OFK_HIP>()) 2615 return false; 2616 2617 Relocatable = Args.hasFlag(options::OPT_fgpu_rdc, 2618 options::OPT_fno_gpu_rdc, /*Default=*/false); 2619 2620 const ToolChain *HostTC = C.getSingleOffloadToolChain<Action::OFK_Host>(); 2621 assert(HostTC && "No toolchain for host compilation."); 2622 if (HostTC->getTriple().isNVPTX() || 2623 HostTC->getTriple().getArch() == llvm::Triple::amdgcn) { 2624 // We do not support targeting NVPTX/AMDGCN for host compilation. Throw 2625 // an error and abort pipeline construction early so we don't trip 2626 // asserts that assume device-side compilation. 2627 C.getDriver().Diag(diag::err_drv_cuda_host_arch) 2628 << HostTC->getTriple().getArchName(); 2629 return true; 2630 } 2631 2632 ToolChains.push_back( 2633 AssociatedOffloadKind == Action::OFK_Cuda 2634 ? C.getSingleOffloadToolChain<Action::OFK_Cuda>() 2635 : C.getSingleOffloadToolChain<Action::OFK_HIP>()); 2636 2637 Arg *PartialCompilationArg = Args.getLastArg( 2638 options::OPT_cuda_host_only, options::OPT_cuda_device_only, 2639 options::OPT_cuda_compile_host_device); 2640 CompileHostOnly = PartialCompilationArg && 2641 PartialCompilationArg->getOption().matches( 2642 options::OPT_cuda_host_only); 2643 CompileDeviceOnly = PartialCompilationArg && 2644 PartialCompilationArg->getOption().matches( 2645 options::OPT_cuda_device_only); 2646 EmitLLVM = Args.getLastArg(options::OPT_emit_llvm); 2647 EmitAsm = Args.getLastArg(options::OPT_S); 2648 FixedCUID = Args.getLastArgValue(options::OPT_cuid_EQ); 2649 if (Arg *A = Args.getLastArg(options::OPT_fuse_cuid_EQ)) { 2650 StringRef UseCUIDStr = A->getValue(); 2651 UseCUID = llvm::StringSwitch<UseCUIDKind>(UseCUIDStr) 2652 .Case("hash", CUID_Hash) 2653 .Case("random", CUID_Random) 2654 .Case("none", CUID_None) 2655 .Default(CUID_Invalid); 2656 if (UseCUID == CUID_Invalid) { 2657 C.getDriver().Diag(diag::err_drv_invalid_value) 2658 << A->getAsString(Args) << UseCUIDStr; 2659 C.setContainsError(); 2660 return true; 2661 } 2662 } 2663 2664 // Collect all cuda_gpu_arch parameters, removing duplicates. 2665 std::set<StringRef> GpuArchs; 2666 bool Error = false; 2667 for (Arg *A : Args) { 2668 if (!(A->getOption().matches(options::OPT_offload_arch_EQ) || 2669 A->getOption().matches(options::OPT_no_offload_arch_EQ))) 2670 continue; 2671 A->claim(); 2672 2673 StringRef ArchStr = A->getValue(); 2674 if (A->getOption().matches(options::OPT_no_offload_arch_EQ) && 2675 ArchStr == "all") { 2676 GpuArchs.clear(); 2677 continue; 2678 } 2679 ArchStr = getCanonicalOffloadArch(ArchStr); 2680 if (ArchStr.empty()) { 2681 Error = true; 2682 } else if (A->getOption().matches(options::OPT_offload_arch_EQ)) 2683 GpuArchs.insert(ArchStr); 2684 else if (A->getOption().matches(options::OPT_no_offload_arch_EQ)) 2685 GpuArchs.erase(ArchStr); 2686 else 2687 llvm_unreachable("Unexpected option."); 2688 } 2689 2690 auto &&ConflictingArchs = getConflictOffloadArchCombination(GpuArchs); 2691 if (ConflictingArchs) { 2692 C.getDriver().Diag(clang::diag::err_drv_bad_offload_arch_combo) 2693 << ConflictingArchs.getValue().first 2694 << ConflictingArchs.getValue().second; 2695 C.setContainsError(); 2696 return true; 2697 } 2698 2699 // Collect list of GPUs remaining in the set. 2700 for (auto Arch : GpuArchs) 2701 GpuArchList.push_back(Arch.data()); 2702 2703 // Default to sm_20 which is the lowest common denominator for 2704 // supported GPUs. sm_20 code should work correctly, if 2705 // suboptimally, on all newer GPUs. 2706 if (GpuArchList.empty()) 2707 GpuArchList.push_back(DefaultCudaArch); 2708 2709 return Error; 2710 } 2711 }; 2712 2713 /// \brief CUDA action builder. It injects device code in the host backend 2714 /// action. 2715 class CudaActionBuilder final : public CudaActionBuilderBase { 2716 public: 2717 CudaActionBuilder(Compilation &C, DerivedArgList &Args, 2718 const Driver::InputList &Inputs) 2719 : CudaActionBuilderBase(C, Args, Inputs, Action::OFK_Cuda) { 2720 DefaultCudaArch = CudaArch::SM_20; 2721 } 2722 2723 StringRef getCanonicalOffloadArch(StringRef ArchStr) override { 2724 CudaArch Arch = StringToCudaArch(ArchStr); 2725 if (Arch == CudaArch::UNKNOWN) { 2726 C.getDriver().Diag(clang::diag::err_drv_cuda_bad_gpu_arch) << ArchStr; 2727 return StringRef(); 2728 } 2729 return CudaArchToString(Arch); 2730 } 2731 2732 llvm::Optional<std::pair<llvm::StringRef, llvm::StringRef>> 2733 getConflictOffloadArchCombination( 2734 const std::set<StringRef> &GpuArchs) override { 2735 return llvm::None; 2736 } 2737 2738 ActionBuilderReturnCode 2739 getDeviceDependences(OffloadAction::DeviceDependences &DA, 2740 phases::ID CurPhase, phases::ID FinalPhase, 2741 PhasesTy &Phases) override { 2742 if (!IsActive) 2743 return ABRT_Inactive; 2744 2745 // If we don't have more CUDA actions, we don't have any dependences to 2746 // create for the host. 2747 if (CudaDeviceActions.empty()) 2748 return ABRT_Success; 2749 2750 assert(CudaDeviceActions.size() == GpuArchList.size() && 2751 "Expecting one action per GPU architecture."); 2752 assert(!CompileHostOnly && 2753 "Not expecting CUDA actions in host-only compilation."); 2754 2755 // If we are generating code for the device or we are in a backend phase, 2756 // we attempt to generate the fat binary. We compile each arch to ptx and 2757 // assemble to cubin, then feed the cubin *and* the ptx into a device 2758 // "link" action, which uses fatbinary to combine these cubins into one 2759 // fatbin. The fatbin is then an input to the host action if not in 2760 // device-only mode. 2761 if (CompileDeviceOnly || CurPhase == phases::Backend) { 2762 ActionList DeviceActions; 2763 for (unsigned I = 0, E = GpuArchList.size(); I != E; ++I) { 2764 // Produce the device action from the current phase up to the assemble 2765 // phase. 2766 for (auto Ph : Phases) { 2767 // Skip the phases that were already dealt with. 2768 if (Ph < CurPhase) 2769 continue; 2770 // We have to be consistent with the host final phase. 2771 if (Ph > FinalPhase) 2772 break; 2773 2774 CudaDeviceActions[I] = C.getDriver().ConstructPhaseAction( 2775 C, Args, Ph, CudaDeviceActions[I], Action::OFK_Cuda); 2776 2777 if (Ph == phases::Assemble) 2778 break; 2779 } 2780 2781 // If we didn't reach the assemble phase, we can't generate the fat 2782 // binary. We don't need to generate the fat binary if we are not in 2783 // device-only mode. 2784 if (!isa<AssembleJobAction>(CudaDeviceActions[I]) || 2785 CompileDeviceOnly) 2786 continue; 2787 2788 Action *AssembleAction = CudaDeviceActions[I]; 2789 assert(AssembleAction->getType() == types::TY_Object); 2790 assert(AssembleAction->getInputs().size() == 1); 2791 2792 Action *BackendAction = AssembleAction->getInputs()[0]; 2793 assert(BackendAction->getType() == types::TY_PP_Asm); 2794 2795 for (auto &A : {AssembleAction, BackendAction}) { 2796 OffloadAction::DeviceDependences DDep; 2797 DDep.add(*A, *ToolChains.front(), GpuArchList[I], Action::OFK_Cuda); 2798 DeviceActions.push_back( 2799 C.MakeAction<OffloadAction>(DDep, A->getType())); 2800 } 2801 } 2802 2803 // We generate the fat binary if we have device input actions. 2804 if (!DeviceActions.empty()) { 2805 CudaFatBinary = 2806 C.MakeAction<LinkJobAction>(DeviceActions, types::TY_CUDA_FATBIN); 2807 2808 if (!CompileDeviceOnly) { 2809 DA.add(*CudaFatBinary, *ToolChains.front(), /*BoundArch=*/nullptr, 2810 Action::OFK_Cuda); 2811 // Clear the fat binary, it is already a dependence to an host 2812 // action. 2813 CudaFatBinary = nullptr; 2814 } 2815 2816 // Remove the CUDA actions as they are already connected to an host 2817 // action or fat binary. 2818 CudaDeviceActions.clear(); 2819 } 2820 2821 // We avoid creating host action in device-only mode. 2822 return CompileDeviceOnly ? ABRT_Ignore_Host : ABRT_Success; 2823 } else if (CurPhase > phases::Backend) { 2824 // If we are past the backend phase and still have a device action, we 2825 // don't have to do anything as this action is already a device 2826 // top-level action. 2827 return ABRT_Success; 2828 } 2829 2830 assert(CurPhase < phases::Backend && "Generating single CUDA " 2831 "instructions should only occur " 2832 "before the backend phase!"); 2833 2834 // By default, we produce an action for each device arch. 2835 for (Action *&A : CudaDeviceActions) 2836 A = C.getDriver().ConstructPhaseAction(C, Args, CurPhase, A); 2837 2838 return ABRT_Success; 2839 } 2840 }; 2841 /// \brief HIP action builder. It injects device code in the host backend 2842 /// action. 2843 class HIPActionBuilder final : public CudaActionBuilderBase { 2844 /// The linker inputs obtained for each device arch. 2845 SmallVector<ActionList, 8> DeviceLinkerInputs; 2846 2847 public: 2848 HIPActionBuilder(Compilation &C, DerivedArgList &Args, 2849 const Driver::InputList &Inputs) 2850 : CudaActionBuilderBase(C, Args, Inputs, Action::OFK_HIP) { 2851 DefaultCudaArch = CudaArch::GFX803; 2852 } 2853 2854 bool canUseBundlerUnbundler() const override { return true; } 2855 2856 StringRef getCanonicalOffloadArch(StringRef IdStr) override { 2857 llvm::StringMap<bool> Features; 2858 auto ArchStr = 2859 parseTargetID(getHIPOffloadTargetTriple(), IdStr, &Features); 2860 if (!ArchStr) { 2861 C.getDriver().Diag(clang::diag::err_drv_bad_target_id) << IdStr; 2862 C.setContainsError(); 2863 return StringRef(); 2864 } 2865 auto CanId = getCanonicalTargetID(ArchStr.getValue(), Features); 2866 return Args.MakeArgStringRef(CanId); 2867 }; 2868 2869 llvm::Optional<std::pair<llvm::StringRef, llvm::StringRef>> 2870 getConflictOffloadArchCombination( 2871 const std::set<StringRef> &GpuArchs) override { 2872 return getConflictTargetIDCombination(GpuArchs); 2873 } 2874 2875 ActionBuilderReturnCode 2876 getDeviceDependences(OffloadAction::DeviceDependences &DA, 2877 phases::ID CurPhase, phases::ID FinalPhase, 2878 PhasesTy &Phases) override { 2879 // amdgcn does not support linking of object files, therefore we skip 2880 // backend and assemble phases to output LLVM IR. Except for generating 2881 // non-relocatable device coee, where we generate fat binary for device 2882 // code and pass to host in Backend phase. 2883 if (CudaDeviceActions.empty()) 2884 return ABRT_Success; 2885 2886 assert(((CurPhase == phases::Link && Relocatable) || 2887 CudaDeviceActions.size() == GpuArchList.size()) && 2888 "Expecting one action per GPU architecture."); 2889 assert(!CompileHostOnly && 2890 "Not expecting CUDA actions in host-only compilation."); 2891 2892 if (!Relocatable && CurPhase == phases::Backend && !EmitLLVM && 2893 !EmitAsm) { 2894 // If we are in backend phase, we attempt to generate the fat binary. 2895 // We compile each arch to IR and use a link action to generate code 2896 // object containing ISA. Then we use a special "link" action to create 2897 // a fat binary containing all the code objects for different GPU's. 2898 // The fat binary is then an input to the host action. 2899 for (unsigned I = 0, E = GpuArchList.size(); I != E; ++I) { 2900 auto BackendAction = C.getDriver().ConstructPhaseAction( 2901 C, Args, phases::Backend, CudaDeviceActions[I], 2902 AssociatedOffloadKind); 2903 auto AssembleAction = C.getDriver().ConstructPhaseAction( 2904 C, Args, phases::Assemble, BackendAction, AssociatedOffloadKind); 2905 // Create a link action to link device IR with device library 2906 // and generate ISA. 2907 ActionList AL; 2908 AL.push_back(AssembleAction); 2909 CudaDeviceActions[I] = 2910 C.MakeAction<LinkJobAction>(AL, types::TY_Image); 2911 2912 // OffloadingActionBuilder propagates device arch until an offload 2913 // action. Since the next action for creating fatbin does 2914 // not have device arch, whereas the above link action and its input 2915 // have device arch, an offload action is needed to stop the null 2916 // device arch of the next action being propagated to the above link 2917 // action. 2918 OffloadAction::DeviceDependences DDep; 2919 DDep.add(*CudaDeviceActions[I], *ToolChains.front(), GpuArchList[I], 2920 AssociatedOffloadKind); 2921 CudaDeviceActions[I] = C.MakeAction<OffloadAction>( 2922 DDep, CudaDeviceActions[I]->getType()); 2923 } 2924 // Create HIP fat binary with a special "link" action. 2925 CudaFatBinary = 2926 C.MakeAction<LinkJobAction>(CudaDeviceActions, 2927 types::TY_HIP_FATBIN); 2928 2929 if (!CompileDeviceOnly) { 2930 DA.add(*CudaFatBinary, *ToolChains.front(), /*BoundArch=*/nullptr, 2931 AssociatedOffloadKind); 2932 // Clear the fat binary, it is already a dependence to an host 2933 // action. 2934 CudaFatBinary = nullptr; 2935 } 2936 2937 // Remove the CUDA actions as they are already connected to an host 2938 // action or fat binary. 2939 CudaDeviceActions.clear(); 2940 2941 return CompileDeviceOnly ? ABRT_Ignore_Host : ABRT_Success; 2942 } else if (CurPhase == phases::Link) { 2943 // Save CudaDeviceActions to DeviceLinkerInputs for each GPU subarch. 2944 // This happens to each device action originated from each input file. 2945 // Later on, device actions in DeviceLinkerInputs are used to create 2946 // device link actions in appendLinkDependences and the created device 2947 // link actions are passed to the offload action as device dependence. 2948 DeviceLinkerInputs.resize(CudaDeviceActions.size()); 2949 auto LI = DeviceLinkerInputs.begin(); 2950 for (auto *A : CudaDeviceActions) { 2951 LI->push_back(A); 2952 ++LI; 2953 } 2954 2955 // We will pass the device action as a host dependence, so we don't 2956 // need to do anything else with them. 2957 CudaDeviceActions.clear(); 2958 return ABRT_Success; 2959 } 2960 2961 // By default, we produce an action for each device arch. 2962 for (Action *&A : CudaDeviceActions) 2963 A = C.getDriver().ConstructPhaseAction(C, Args, CurPhase, A, 2964 AssociatedOffloadKind); 2965 2966 return (CompileDeviceOnly && CurPhase == FinalPhase) ? ABRT_Ignore_Host 2967 : ABRT_Success; 2968 } 2969 2970 void appendLinkDeviceActions(ActionList &AL) override { 2971 if (DeviceLinkerInputs.size() == 0) 2972 return; 2973 2974 assert(DeviceLinkerInputs.size() == GpuArchList.size() && 2975 "Linker inputs and GPU arch list sizes do not match."); 2976 2977 // Append a new link action for each device. 2978 unsigned I = 0; 2979 for (auto &LI : DeviceLinkerInputs) { 2980 // Each entry in DeviceLinkerInputs corresponds to a GPU arch. 2981 auto *DeviceLinkAction = 2982 C.MakeAction<LinkJobAction>(LI, types::TY_Image); 2983 // Linking all inputs for the current GPU arch. 2984 // LI contains all the inputs for the linker. 2985 OffloadAction::DeviceDependences DeviceLinkDeps; 2986 DeviceLinkDeps.add(*DeviceLinkAction, *ToolChains[0], 2987 GpuArchList[I], AssociatedOffloadKind); 2988 AL.push_back(C.MakeAction<OffloadAction>(DeviceLinkDeps, 2989 DeviceLinkAction->getType())); 2990 ++I; 2991 } 2992 DeviceLinkerInputs.clear(); 2993 2994 // Create a host object from all the device images by embedding them 2995 // in a fat binary. 2996 OffloadAction::DeviceDependences DDeps; 2997 auto *TopDeviceLinkAction = 2998 C.MakeAction<LinkJobAction>(AL, types::TY_Object); 2999 DDeps.add(*TopDeviceLinkAction, *ToolChains[0], 3000 nullptr, AssociatedOffloadKind); 3001 3002 // Offload the host object to the host linker. 3003 AL.push_back(C.MakeAction<OffloadAction>(DDeps, TopDeviceLinkAction->getType())); 3004 } 3005 3006 Action* appendLinkHostActions(ActionList &AL) override { return AL.back(); } 3007 3008 void appendLinkDependences(OffloadAction::DeviceDependences &DA) override {} 3009 }; 3010 3011 /// OpenMP action builder. The host bitcode is passed to the device frontend 3012 /// and all the device linked images are passed to the host link phase. 3013 class OpenMPActionBuilder final : public DeviceActionBuilder { 3014 /// The OpenMP actions for the current input. 3015 ActionList OpenMPDeviceActions; 3016 3017 /// The linker inputs obtained for each toolchain. 3018 SmallVector<ActionList, 8> DeviceLinkerInputs; 3019 3020 public: 3021 OpenMPActionBuilder(Compilation &C, DerivedArgList &Args, 3022 const Driver::InputList &Inputs) 3023 : DeviceActionBuilder(C, Args, Inputs, Action::OFK_OpenMP) {} 3024 3025 ActionBuilderReturnCode 3026 getDeviceDependences(OffloadAction::DeviceDependences &DA, 3027 phases::ID CurPhase, phases::ID FinalPhase, 3028 PhasesTy &Phases) override { 3029 if (OpenMPDeviceActions.empty()) 3030 return ABRT_Inactive; 3031 3032 // We should always have an action for each input. 3033 assert(OpenMPDeviceActions.size() == ToolChains.size() && 3034 "Number of OpenMP actions and toolchains do not match."); 3035 3036 // The host only depends on device action in the linking phase, when all 3037 // the device images have to be embedded in the host image. 3038 if (CurPhase == phases::Link) { 3039 assert(ToolChains.size() == DeviceLinkerInputs.size() && 3040 "Toolchains and linker inputs sizes do not match."); 3041 auto LI = DeviceLinkerInputs.begin(); 3042 for (auto *A : OpenMPDeviceActions) { 3043 LI->push_back(A); 3044 ++LI; 3045 } 3046 3047 // We passed the device action as a host dependence, so we don't need to 3048 // do anything else with them. 3049 OpenMPDeviceActions.clear(); 3050 return ABRT_Success; 3051 } 3052 3053 // By default, we produce an action for each device arch. 3054 for (Action *&A : OpenMPDeviceActions) 3055 A = C.getDriver().ConstructPhaseAction(C, Args, CurPhase, A); 3056 3057 return ABRT_Success; 3058 } 3059 3060 ActionBuilderReturnCode addDeviceDepences(Action *HostAction) override { 3061 3062 // If this is an input action replicate it for each OpenMP toolchain. 3063 if (auto *IA = dyn_cast<InputAction>(HostAction)) { 3064 OpenMPDeviceActions.clear(); 3065 for (unsigned I = 0; I < ToolChains.size(); ++I) 3066 OpenMPDeviceActions.push_back( 3067 C.MakeAction<InputAction>(IA->getInputArg(), IA->getType())); 3068 return ABRT_Success; 3069 } 3070 3071 // If this is an unbundling action use it as is for each OpenMP toolchain. 3072 if (auto *UA = dyn_cast<OffloadUnbundlingJobAction>(HostAction)) { 3073 OpenMPDeviceActions.clear(); 3074 auto *IA = cast<InputAction>(UA->getInputs().back()); 3075 std::string FileName = IA->getInputArg().getAsString(Args); 3076 // Check if the type of the file is the same as the action. Do not 3077 // unbundle it if it is not. Do not unbundle .so files, for example, 3078 // which are not object files. 3079 if (IA->getType() == types::TY_Object && 3080 (!llvm::sys::path::has_extension(FileName) || 3081 types::lookupTypeForExtension( 3082 llvm::sys::path::extension(FileName).drop_front()) != 3083 types::TY_Object)) 3084 return ABRT_Inactive; 3085 for (unsigned I = 0; I < ToolChains.size(); ++I) { 3086 OpenMPDeviceActions.push_back(UA); 3087 UA->registerDependentActionInfo( 3088 ToolChains[I], /*BoundArch=*/StringRef(), Action::OFK_OpenMP); 3089 } 3090 return ABRT_Success; 3091 } 3092 3093 // When generating code for OpenMP we use the host compile phase result as 3094 // a dependence to the device compile phase so that it can learn what 3095 // declarations should be emitted. However, this is not the only use for 3096 // the host action, so we prevent it from being collapsed. 3097 if (isa<CompileJobAction>(HostAction)) { 3098 HostAction->setCannotBeCollapsedWithNextDependentAction(); 3099 assert(ToolChains.size() == OpenMPDeviceActions.size() && 3100 "Toolchains and device action sizes do not match."); 3101 OffloadAction::HostDependence HDep( 3102 *HostAction, *C.getSingleOffloadToolChain<Action::OFK_Host>(), 3103 /*BoundArch=*/nullptr, Action::OFK_OpenMP); 3104 auto TC = ToolChains.begin(); 3105 for (Action *&A : OpenMPDeviceActions) { 3106 assert(isa<CompileJobAction>(A)); 3107 OffloadAction::DeviceDependences DDep; 3108 DDep.add(*A, **TC, /*BoundArch=*/nullptr, Action::OFK_OpenMP); 3109 A = C.MakeAction<OffloadAction>(HDep, DDep); 3110 ++TC; 3111 } 3112 } 3113 return ABRT_Success; 3114 } 3115 3116 void appendTopLevelActions(ActionList &AL) override { 3117 if (OpenMPDeviceActions.empty()) 3118 return; 3119 3120 // We should always have an action for each input. 3121 assert(OpenMPDeviceActions.size() == ToolChains.size() && 3122 "Number of OpenMP actions and toolchains do not match."); 3123 3124 // Append all device actions followed by the proper offload action. 3125 auto TI = ToolChains.begin(); 3126 for (auto *A : OpenMPDeviceActions) { 3127 OffloadAction::DeviceDependences Dep; 3128 Dep.add(*A, **TI, /*BoundArch=*/nullptr, Action::OFK_OpenMP); 3129 AL.push_back(C.MakeAction<OffloadAction>(Dep, A->getType())); 3130 ++TI; 3131 } 3132 // We no longer need the action stored in this builder. 3133 OpenMPDeviceActions.clear(); 3134 } 3135 3136 void appendLinkDeviceActions(ActionList &AL) override { 3137 assert(ToolChains.size() == DeviceLinkerInputs.size() && 3138 "Toolchains and linker inputs sizes do not match."); 3139 3140 // Append a new link action for each device. 3141 auto TC = ToolChains.begin(); 3142 for (auto &LI : DeviceLinkerInputs) { 3143 auto *DeviceLinkAction = 3144 C.MakeAction<LinkJobAction>(LI, types::TY_Image); 3145 OffloadAction::DeviceDependences DeviceLinkDeps; 3146 DeviceLinkDeps.add(*DeviceLinkAction, **TC, /*BoundArch=*/nullptr, 3147 Action::OFK_OpenMP); 3148 AL.push_back(C.MakeAction<OffloadAction>(DeviceLinkDeps, 3149 DeviceLinkAction->getType())); 3150 ++TC; 3151 } 3152 DeviceLinkerInputs.clear(); 3153 } 3154 3155 Action* appendLinkHostActions(ActionList &AL) override { 3156 // Create wrapper bitcode from the result of device link actions and compile 3157 // it to an object which will be added to the host link command. 3158 auto *BC = C.MakeAction<OffloadWrapperJobAction>(AL, types::TY_LLVM_BC); 3159 auto *ASM = C.MakeAction<BackendJobAction>(BC, types::TY_PP_Asm); 3160 return C.MakeAction<AssembleJobAction>(ASM, types::TY_Object); 3161 } 3162 3163 void appendLinkDependences(OffloadAction::DeviceDependences &DA) override {} 3164 3165 bool initialize() override { 3166 // Get the OpenMP toolchains. If we don't get any, the action builder will 3167 // know there is nothing to do related to OpenMP offloading. 3168 auto OpenMPTCRange = C.getOffloadToolChains<Action::OFK_OpenMP>(); 3169 for (auto TI = OpenMPTCRange.first, TE = OpenMPTCRange.second; TI != TE; 3170 ++TI) 3171 ToolChains.push_back(TI->second); 3172 3173 DeviceLinkerInputs.resize(ToolChains.size()); 3174 return false; 3175 } 3176 3177 bool canUseBundlerUnbundler() const override { 3178 // OpenMP should use bundled files whenever possible. 3179 return true; 3180 } 3181 }; 3182 3183 /// 3184 /// TODO: Add the implementation for other specialized builders here. 3185 /// 3186 3187 /// Specialized builders being used by this offloading action builder. 3188 SmallVector<DeviceActionBuilder *, 4> SpecializedBuilders; 3189 3190 /// Flag set to true if all valid builders allow file bundling/unbundling. 3191 bool CanUseBundler; 3192 3193 public: 3194 OffloadingActionBuilder(Compilation &C, DerivedArgList &Args, 3195 const Driver::InputList &Inputs) 3196 : C(C) { 3197 // Create a specialized builder for each device toolchain. 3198 3199 IsValid = true; 3200 3201 // Create a specialized builder for CUDA. 3202 SpecializedBuilders.push_back(new CudaActionBuilder(C, Args, Inputs)); 3203 3204 // Create a specialized builder for HIP. 3205 SpecializedBuilders.push_back(new HIPActionBuilder(C, Args, Inputs)); 3206 3207 // Create a specialized builder for OpenMP. 3208 SpecializedBuilders.push_back(new OpenMPActionBuilder(C, Args, Inputs)); 3209 3210 // 3211 // TODO: Build other specialized builders here. 3212 // 3213 3214 // Initialize all the builders, keeping track of errors. If all valid 3215 // builders agree that we can use bundling, set the flag to true. 3216 unsigned ValidBuilders = 0u; 3217 unsigned ValidBuildersSupportingBundling = 0u; 3218 for (auto *SB : SpecializedBuilders) { 3219 IsValid = IsValid && !SB->initialize(); 3220 3221 // Update the counters if the builder is valid. 3222 if (SB->isValid()) { 3223 ++ValidBuilders; 3224 if (SB->canUseBundlerUnbundler()) 3225 ++ValidBuildersSupportingBundling; 3226 } 3227 } 3228 CanUseBundler = 3229 ValidBuilders && ValidBuilders == ValidBuildersSupportingBundling; 3230 } 3231 3232 ~OffloadingActionBuilder() { 3233 for (auto *SB : SpecializedBuilders) 3234 delete SB; 3235 } 3236 3237 /// Generate an action that adds device dependences (if any) to a host action. 3238 /// If no device dependence actions exist, just return the host action \a 3239 /// HostAction. If an error is found or if no builder requires the host action 3240 /// to be generated, return nullptr. 3241 Action * 3242 addDeviceDependencesToHostAction(Action *HostAction, const Arg *InputArg, 3243 phases::ID CurPhase, phases::ID FinalPhase, 3244 DeviceActionBuilder::PhasesTy &Phases) { 3245 if (!IsValid) 3246 return nullptr; 3247 3248 if (SpecializedBuilders.empty()) 3249 return HostAction; 3250 3251 assert(HostAction && "Invalid host action!"); 3252 3253 OffloadAction::DeviceDependences DDeps; 3254 // Check if all the programming models agree we should not emit the host 3255 // action. Also, keep track of the offloading kinds employed. 3256 auto &OffloadKind = InputArgToOffloadKindMap[InputArg]; 3257 unsigned InactiveBuilders = 0u; 3258 unsigned IgnoringBuilders = 0u; 3259 for (auto *SB : SpecializedBuilders) { 3260 if (!SB->isValid()) { 3261 ++InactiveBuilders; 3262 continue; 3263 } 3264 3265 auto RetCode = 3266 SB->getDeviceDependences(DDeps, CurPhase, FinalPhase, Phases); 3267 3268 // If the builder explicitly says the host action should be ignored, 3269 // we need to increment the variable that tracks the builders that request 3270 // the host object to be ignored. 3271 if (RetCode == DeviceActionBuilder::ABRT_Ignore_Host) 3272 ++IgnoringBuilders; 3273 3274 // Unless the builder was inactive for this action, we have to record the 3275 // offload kind because the host will have to use it. 3276 if (RetCode != DeviceActionBuilder::ABRT_Inactive) 3277 OffloadKind |= SB->getAssociatedOffloadKind(); 3278 } 3279 3280 // If all builders agree that the host object should be ignored, just return 3281 // nullptr. 3282 if (IgnoringBuilders && 3283 SpecializedBuilders.size() == (InactiveBuilders + IgnoringBuilders)) 3284 return nullptr; 3285 3286 if (DDeps.getActions().empty()) 3287 return HostAction; 3288 3289 // We have dependences we need to bundle together. We use an offload action 3290 // for that. 3291 OffloadAction::HostDependence HDep( 3292 *HostAction, *C.getSingleOffloadToolChain<Action::OFK_Host>(), 3293 /*BoundArch=*/nullptr, DDeps); 3294 return C.MakeAction<OffloadAction>(HDep, DDeps); 3295 } 3296 3297 /// Generate an action that adds a host dependence to a device action. The 3298 /// results will be kept in this action builder. Return true if an error was 3299 /// found. 3300 bool addHostDependenceToDeviceActions(Action *&HostAction, 3301 const Arg *InputArg) { 3302 if (!IsValid) 3303 return true; 3304 3305 // If we are supporting bundling/unbundling and the current action is an 3306 // input action of non-source file, we replace the host action by the 3307 // unbundling action. The bundler tool has the logic to detect if an input 3308 // is a bundle or not and if the input is not a bundle it assumes it is a 3309 // host file. Therefore it is safe to create an unbundling action even if 3310 // the input is not a bundle. 3311 if (CanUseBundler && isa<InputAction>(HostAction) && 3312 InputArg->getOption().getKind() == llvm::opt::Option::InputClass && 3313 (!types::isSrcFile(HostAction->getType()) || 3314 HostAction->getType() == types::TY_PP_HIP)) { 3315 auto UnbundlingHostAction = 3316 C.MakeAction<OffloadUnbundlingJobAction>(HostAction); 3317 UnbundlingHostAction->registerDependentActionInfo( 3318 C.getSingleOffloadToolChain<Action::OFK_Host>(), 3319 /*BoundArch=*/StringRef(), Action::OFK_Host); 3320 HostAction = UnbundlingHostAction; 3321 } 3322 3323 assert(HostAction && "Invalid host action!"); 3324 3325 // Register the offload kinds that are used. 3326 auto &OffloadKind = InputArgToOffloadKindMap[InputArg]; 3327 for (auto *SB : SpecializedBuilders) { 3328 if (!SB->isValid()) 3329 continue; 3330 3331 auto RetCode = SB->addDeviceDepences(HostAction); 3332 3333 // Host dependences for device actions are not compatible with that same 3334 // action being ignored. 3335 assert(RetCode != DeviceActionBuilder::ABRT_Ignore_Host && 3336 "Host dependence not expected to be ignored.!"); 3337 3338 // Unless the builder was inactive for this action, we have to record the 3339 // offload kind because the host will have to use it. 3340 if (RetCode != DeviceActionBuilder::ABRT_Inactive) 3341 OffloadKind |= SB->getAssociatedOffloadKind(); 3342 } 3343 3344 // Do not use unbundler if the Host does not depend on device action. 3345 if (OffloadKind == Action::OFK_None && CanUseBundler) 3346 if (auto *UA = dyn_cast<OffloadUnbundlingJobAction>(HostAction)) 3347 HostAction = UA->getInputs().back(); 3348 3349 return false; 3350 } 3351 3352 /// Add the offloading top level actions to the provided action list. This 3353 /// function can replace the host action by a bundling action if the 3354 /// programming models allow it. 3355 bool appendTopLevelActions(ActionList &AL, Action *HostAction, 3356 const Arg *InputArg) { 3357 // Get the device actions to be appended. 3358 ActionList OffloadAL; 3359 for (auto *SB : SpecializedBuilders) { 3360 if (!SB->isValid()) 3361 continue; 3362 SB->appendTopLevelActions(OffloadAL); 3363 } 3364 3365 // If we can use the bundler, replace the host action by the bundling one in 3366 // the resulting list. Otherwise, just append the device actions. For 3367 // device only compilation, HostAction is a null pointer, therefore only do 3368 // this when HostAction is not a null pointer. 3369 if (CanUseBundler && HostAction && 3370 HostAction->getType() != types::TY_Nothing && !OffloadAL.empty()) { 3371 // Add the host action to the list in order to create the bundling action. 3372 OffloadAL.push_back(HostAction); 3373 3374 // We expect that the host action was just appended to the action list 3375 // before this method was called. 3376 assert(HostAction == AL.back() && "Host action not in the list??"); 3377 HostAction = C.MakeAction<OffloadBundlingJobAction>(OffloadAL); 3378 AL.back() = HostAction; 3379 } else 3380 AL.append(OffloadAL.begin(), OffloadAL.end()); 3381 3382 // Propagate to the current host action (if any) the offload information 3383 // associated with the current input. 3384 if (HostAction) 3385 HostAction->propagateHostOffloadInfo(InputArgToOffloadKindMap[InputArg], 3386 /*BoundArch=*/nullptr); 3387 return false; 3388 } 3389 3390 Action* makeHostLinkAction() { 3391 // Build a list of device linking actions. 3392 ActionList DeviceAL; 3393 for (DeviceActionBuilder *SB : SpecializedBuilders) { 3394 if (!SB->isValid()) 3395 continue; 3396 SB->appendLinkDeviceActions(DeviceAL); 3397 } 3398 3399 if (DeviceAL.empty()) 3400 return nullptr; 3401 3402 // Let builders add host linking actions. 3403 Action* HA; 3404 for (DeviceActionBuilder *SB : SpecializedBuilders) { 3405 if (!SB->isValid()) 3406 continue; 3407 HA = SB->appendLinkHostActions(DeviceAL); 3408 } 3409 return HA; 3410 } 3411 3412 /// Processes the host linker action. This currently consists of replacing it 3413 /// with an offload action if there are device link objects and propagate to 3414 /// the host action all the offload kinds used in the current compilation. The 3415 /// resulting action is returned. 3416 Action *processHostLinkAction(Action *HostAction) { 3417 // Add all the dependences from the device linking actions. 3418 OffloadAction::DeviceDependences DDeps; 3419 for (auto *SB : SpecializedBuilders) { 3420 if (!SB->isValid()) 3421 continue; 3422 3423 SB->appendLinkDependences(DDeps); 3424 } 3425 3426 // Calculate all the offload kinds used in the current compilation. 3427 unsigned ActiveOffloadKinds = 0u; 3428 for (auto &I : InputArgToOffloadKindMap) 3429 ActiveOffloadKinds |= I.second; 3430 3431 // If we don't have device dependencies, we don't have to create an offload 3432 // action. 3433 if (DDeps.getActions().empty()) { 3434 // Propagate all the active kinds to host action. Given that it is a link 3435 // action it is assumed to depend on all actions generated so far. 3436 HostAction->propagateHostOffloadInfo(ActiveOffloadKinds, 3437 /*BoundArch=*/nullptr); 3438 return HostAction; 3439 } 3440 3441 // Create the offload action with all dependences. When an offload action 3442 // is created the kinds are propagated to the host action, so we don't have 3443 // to do that explicitly here. 3444 OffloadAction::HostDependence HDep( 3445 *HostAction, *C.getSingleOffloadToolChain<Action::OFK_Host>(), 3446 /*BoundArch*/ nullptr, ActiveOffloadKinds); 3447 return C.MakeAction<OffloadAction>(HDep, DDeps); 3448 } 3449 }; 3450 } // anonymous namespace. 3451 3452 void Driver::handleArguments(Compilation &C, DerivedArgList &Args, 3453 const InputList &Inputs, 3454 ActionList &Actions) const { 3455 3456 // Ignore /Yc/Yu if both /Yc and /Yu passed but with different filenames. 3457 Arg *YcArg = Args.getLastArg(options::OPT__SLASH_Yc); 3458 Arg *YuArg = Args.getLastArg(options::OPT__SLASH_Yu); 3459 if (YcArg && YuArg && strcmp(YcArg->getValue(), YuArg->getValue()) != 0) { 3460 Diag(clang::diag::warn_drv_ycyu_different_arg_clang_cl); 3461 Args.eraseArg(options::OPT__SLASH_Yc); 3462 Args.eraseArg(options::OPT__SLASH_Yu); 3463 YcArg = YuArg = nullptr; 3464 } 3465 if (YcArg && Inputs.size() > 1) { 3466 Diag(clang::diag::warn_drv_yc_multiple_inputs_clang_cl); 3467 Args.eraseArg(options::OPT__SLASH_Yc); 3468 YcArg = nullptr; 3469 } 3470 3471 Arg *FinalPhaseArg; 3472 phases::ID FinalPhase = getFinalPhase(Args, &FinalPhaseArg); 3473 3474 if (FinalPhase == phases::Link) { 3475 if (Args.hasArg(options::OPT_emit_llvm)) 3476 Diag(clang::diag::err_drv_emit_llvm_link); 3477 if (IsCLMode() && LTOMode != LTOK_None && 3478 !Args.getLastArgValue(options::OPT_fuse_ld_EQ).equals_lower("lld")) 3479 Diag(clang::diag::err_drv_lto_without_lld); 3480 } 3481 3482 if (FinalPhase == phases::Preprocess || Args.hasArg(options::OPT__SLASH_Y_)) { 3483 // If only preprocessing or /Y- is used, all pch handling is disabled. 3484 // Rather than check for it everywhere, just remove clang-cl pch-related 3485 // flags here. 3486 Args.eraseArg(options::OPT__SLASH_Fp); 3487 Args.eraseArg(options::OPT__SLASH_Yc); 3488 Args.eraseArg(options::OPT__SLASH_Yu); 3489 YcArg = YuArg = nullptr; 3490 } 3491 3492 unsigned LastPLSize = 0; 3493 for (auto &I : Inputs) { 3494 types::ID InputType = I.first; 3495 const Arg *InputArg = I.second; 3496 3497 auto PL = types::getCompilationPhases(InputType); 3498 LastPLSize = PL.size(); 3499 3500 // If the first step comes after the final phase we are doing as part of 3501 // this compilation, warn the user about it. 3502 phases::ID InitialPhase = PL[0]; 3503 if (InitialPhase > FinalPhase) { 3504 if (InputArg->isClaimed()) 3505 continue; 3506 3507 // Claim here to avoid the more general unused warning. 3508 InputArg->claim(); 3509 3510 // Suppress all unused style warnings with -Qunused-arguments 3511 if (Args.hasArg(options::OPT_Qunused_arguments)) 3512 continue; 3513 3514 // Special case when final phase determined by binary name, rather than 3515 // by a command-line argument with a corresponding Arg. 3516 if (CCCIsCPP()) 3517 Diag(clang::diag::warn_drv_input_file_unused_by_cpp) 3518 << InputArg->getAsString(Args) << getPhaseName(InitialPhase); 3519 // Special case '-E' warning on a previously preprocessed file to make 3520 // more sense. 3521 else if (InitialPhase == phases::Compile && 3522 (Args.getLastArg(options::OPT__SLASH_EP, 3523 options::OPT__SLASH_P) || 3524 Args.getLastArg(options::OPT_E) || 3525 Args.getLastArg(options::OPT_M, options::OPT_MM)) && 3526 getPreprocessedType(InputType) == types::TY_INVALID) 3527 Diag(clang::diag::warn_drv_preprocessed_input_file_unused) 3528 << InputArg->getAsString(Args) << !!FinalPhaseArg 3529 << (FinalPhaseArg ? FinalPhaseArg->getOption().getName() : ""); 3530 else 3531 Diag(clang::diag::warn_drv_input_file_unused) 3532 << InputArg->getAsString(Args) << getPhaseName(InitialPhase) 3533 << !!FinalPhaseArg 3534 << (FinalPhaseArg ? FinalPhaseArg->getOption().getName() : ""); 3535 continue; 3536 } 3537 3538 if (YcArg) { 3539 // Add a separate precompile phase for the compile phase. 3540 if (FinalPhase >= phases::Compile) { 3541 const types::ID HeaderType = lookupHeaderTypeForSourceType(InputType); 3542 // Build the pipeline for the pch file. 3543 Action *ClangClPch = C.MakeAction<InputAction>(*InputArg, HeaderType); 3544 for (phases::ID Phase : types::getCompilationPhases(HeaderType)) 3545 ClangClPch = ConstructPhaseAction(C, Args, Phase, ClangClPch); 3546 assert(ClangClPch); 3547 Actions.push_back(ClangClPch); 3548 // The driver currently exits after the first failed command. This 3549 // relies on that behavior, to make sure if the pch generation fails, 3550 // the main compilation won't run. 3551 // FIXME: If the main compilation fails, the PCH generation should 3552 // probably not be considered successful either. 3553 } 3554 } 3555 } 3556 3557 // If we are linking, claim any options which are obviously only used for 3558 // compilation. 3559 // FIXME: Understand why the last Phase List length is used here. 3560 if (FinalPhase == phases::Link && LastPLSize == 1) { 3561 Args.ClaimAllArgs(options::OPT_CompileOnly_Group); 3562 Args.ClaimAllArgs(options::OPT_cl_compile_Group); 3563 } 3564 } 3565 3566 void Driver::BuildActions(Compilation &C, DerivedArgList &Args, 3567 const InputList &Inputs, ActionList &Actions) const { 3568 llvm::PrettyStackTraceString CrashInfo("Building compilation actions"); 3569 3570 if (!SuppressMissingInputWarning && Inputs.empty()) { 3571 Diag(clang::diag::err_drv_no_input_files); 3572 return; 3573 } 3574 3575 // Reject -Z* at the top level, these options should never have been exposed 3576 // by gcc. 3577 if (Arg *A = Args.getLastArg(options::OPT_Z_Joined)) 3578 Diag(clang::diag::err_drv_use_of_Z_option) << A->getAsString(Args); 3579 3580 // Diagnose misuse of /Fo. 3581 if (Arg *A = Args.getLastArg(options::OPT__SLASH_Fo)) { 3582 StringRef V = A->getValue(); 3583 if (Inputs.size() > 1 && !V.empty() && 3584 !llvm::sys::path::is_separator(V.back())) { 3585 // Check whether /Fo tries to name an output file for multiple inputs. 3586 Diag(clang::diag::err_drv_out_file_argument_with_multiple_sources) 3587 << A->getSpelling() << V; 3588 Args.eraseArg(options::OPT__SLASH_Fo); 3589 } 3590 } 3591 3592 // Diagnose misuse of /Fa. 3593 if (Arg *A = Args.getLastArg(options::OPT__SLASH_Fa)) { 3594 StringRef V = A->getValue(); 3595 if (Inputs.size() > 1 && !V.empty() && 3596 !llvm::sys::path::is_separator(V.back())) { 3597 // Check whether /Fa tries to name an asm file for multiple inputs. 3598 Diag(clang::diag::err_drv_out_file_argument_with_multiple_sources) 3599 << A->getSpelling() << V; 3600 Args.eraseArg(options::OPT__SLASH_Fa); 3601 } 3602 } 3603 3604 // Diagnose misuse of /o. 3605 if (Arg *A = Args.getLastArg(options::OPT__SLASH_o)) { 3606 if (A->getValue()[0] == '\0') { 3607 // It has to have a value. 3608 Diag(clang::diag::err_drv_missing_argument) << A->getSpelling() << 1; 3609 Args.eraseArg(options::OPT__SLASH_o); 3610 } 3611 } 3612 3613 handleArguments(C, Args, Inputs, Actions); 3614 3615 // Builder to be used to build offloading actions. 3616 OffloadingActionBuilder OffloadBuilder(C, Args, Inputs); 3617 3618 // Construct the actions to perform. 3619 HeaderModulePrecompileJobAction *HeaderModuleAction = nullptr; 3620 ActionList LinkerInputs; 3621 ActionList MergerInputs; 3622 3623 for (auto &I : Inputs) { 3624 types::ID InputType = I.first; 3625 const Arg *InputArg = I.second; 3626 3627 auto PL = types::getCompilationPhases(*this, Args, InputType); 3628 if (PL.empty()) 3629 continue; 3630 3631 auto FullPL = types::getCompilationPhases(InputType); 3632 3633 // Build the pipeline for this file. 3634 Action *Current = C.MakeAction<InputAction>(*InputArg, InputType); 3635 3636 // Use the current host action in any of the offloading actions, if 3637 // required. 3638 if (OffloadBuilder.addHostDependenceToDeviceActions(Current, InputArg)) 3639 break; 3640 3641 for (phases::ID Phase : PL) { 3642 3643 // Add any offload action the host action depends on. 3644 Current = OffloadBuilder.addDeviceDependencesToHostAction( 3645 Current, InputArg, Phase, PL.back(), FullPL); 3646 if (!Current) 3647 break; 3648 3649 // Queue linker inputs. 3650 if (Phase == phases::Link) { 3651 assert(Phase == PL.back() && "linking must be final compilation step."); 3652 LinkerInputs.push_back(Current); 3653 Current = nullptr; 3654 break; 3655 } 3656 3657 // TODO: Consider removing this because the merged may not end up being 3658 // the final Phase in the pipeline. Perhaps the merged could just merge 3659 // and then pass an artifact of some sort to the Link Phase. 3660 // Queue merger inputs. 3661 if (Phase == phases::IfsMerge) { 3662 assert(Phase == PL.back() && "merging must be final compilation step."); 3663 MergerInputs.push_back(Current); 3664 Current = nullptr; 3665 break; 3666 } 3667 3668 // Each precompiled header file after a module file action is a module 3669 // header of that same module file, rather than being compiled to a 3670 // separate PCH. 3671 if (Phase == phases::Precompile && HeaderModuleAction && 3672 getPrecompiledType(InputType) == types::TY_PCH) { 3673 HeaderModuleAction->addModuleHeaderInput(Current); 3674 Current = nullptr; 3675 break; 3676 } 3677 3678 // FIXME: Should we include any prior module file outputs as inputs of 3679 // later actions in the same command line? 3680 3681 // Otherwise construct the appropriate action. 3682 Action *NewCurrent = ConstructPhaseAction(C, Args, Phase, Current); 3683 3684 // We didn't create a new action, so we will just move to the next phase. 3685 if (NewCurrent == Current) 3686 continue; 3687 3688 if (auto *HMA = dyn_cast<HeaderModulePrecompileJobAction>(NewCurrent)) 3689 HeaderModuleAction = HMA; 3690 3691 Current = NewCurrent; 3692 3693 // Use the current host action in any of the offloading actions, if 3694 // required. 3695 if (OffloadBuilder.addHostDependenceToDeviceActions(Current, InputArg)) 3696 break; 3697 3698 if (Current->getType() == types::TY_Nothing) 3699 break; 3700 } 3701 3702 // If we ended with something, add to the output list. 3703 if (Current) 3704 Actions.push_back(Current); 3705 3706 // Add any top level actions generated for offloading. 3707 OffloadBuilder.appendTopLevelActions(Actions, Current, InputArg); 3708 } 3709 3710 // Add a link action if necessary. 3711 if (!LinkerInputs.empty()) { 3712 if (Action *Wrapper = OffloadBuilder.makeHostLinkAction()) 3713 LinkerInputs.push_back(Wrapper); 3714 Action *LA; 3715 // Check if this Linker Job should emit a static library. 3716 if (ShouldEmitStaticLibrary(Args)) { 3717 LA = C.MakeAction<StaticLibJobAction>(LinkerInputs, types::TY_Image); 3718 } else { 3719 LA = C.MakeAction<LinkJobAction>(LinkerInputs, types::TY_Image); 3720 } 3721 LA = OffloadBuilder.processHostLinkAction(LA); 3722 Actions.push_back(LA); 3723 } 3724 3725 // Add an interface stubs merge action if necessary. 3726 if (!MergerInputs.empty()) 3727 Actions.push_back( 3728 C.MakeAction<IfsMergeJobAction>(MergerInputs, types::TY_Image)); 3729 3730 if (Args.hasArg(options::OPT_emit_interface_stubs)) { 3731 auto PhaseList = types::getCompilationPhases( 3732 types::TY_IFS_CPP, 3733 Args.hasArg(options::OPT_c) ? phases::Compile : phases::LastPhase); 3734 3735 ActionList MergerInputs; 3736 3737 for (auto &I : Inputs) { 3738 types::ID InputType = I.first; 3739 const Arg *InputArg = I.second; 3740 3741 // Currently clang and the llvm assembler do not support generating symbol 3742 // stubs from assembly, so we skip the input on asm files. For ifs files 3743 // we rely on the normal pipeline setup in the pipeline setup code above. 3744 if (InputType == types::TY_IFS || InputType == types::TY_PP_Asm || 3745 InputType == types::TY_Asm) 3746 continue; 3747 3748 Action *Current = C.MakeAction<InputAction>(*InputArg, InputType); 3749 3750 for (auto Phase : PhaseList) { 3751 switch (Phase) { 3752 default: 3753 llvm_unreachable( 3754 "IFS Pipeline can only consist of Compile followed by IfsMerge."); 3755 case phases::Compile: { 3756 // Only IfsMerge (llvm-ifs) can handle .o files by looking for ifs 3757 // files where the .o file is located. The compile action can not 3758 // handle this. 3759 if (InputType == types::TY_Object) 3760 break; 3761 3762 Current = C.MakeAction<CompileJobAction>(Current, types::TY_IFS_CPP); 3763 break; 3764 } 3765 case phases::IfsMerge: { 3766 assert(Phase == PhaseList.back() && 3767 "merging must be final compilation step."); 3768 MergerInputs.push_back(Current); 3769 Current = nullptr; 3770 break; 3771 } 3772 } 3773 } 3774 3775 // If we ended with something, add to the output list. 3776 if (Current) 3777 Actions.push_back(Current); 3778 } 3779 3780 // Add an interface stubs merge action if necessary. 3781 if (!MergerInputs.empty()) 3782 Actions.push_back( 3783 C.MakeAction<IfsMergeJobAction>(MergerInputs, types::TY_Image)); 3784 } 3785 3786 // If --print-supported-cpus, -mcpu=? or -mtune=? is specified, build a custom 3787 // Compile phase that prints out supported cpu models and quits. 3788 if (Arg *A = Args.getLastArg(options::OPT_print_supported_cpus)) { 3789 // Use the -mcpu=? flag as the dummy input to cc1. 3790 Actions.clear(); 3791 Action *InputAc = C.MakeAction<InputAction>(*A, types::TY_C); 3792 Actions.push_back( 3793 C.MakeAction<PrecompileJobAction>(InputAc, types::TY_Nothing)); 3794 for (auto &I : Inputs) 3795 I.second->claim(); 3796 } 3797 3798 // Claim ignored clang-cl options. 3799 Args.ClaimAllArgs(options::OPT_cl_ignored_Group); 3800 3801 // Claim --cuda-host-only and --cuda-compile-host-device, which may be passed 3802 // to non-CUDA compilations and should not trigger warnings there. 3803 Args.ClaimAllArgs(options::OPT_cuda_host_only); 3804 Args.ClaimAllArgs(options::OPT_cuda_compile_host_device); 3805 } 3806 3807 Action *Driver::ConstructPhaseAction( 3808 Compilation &C, const ArgList &Args, phases::ID Phase, Action *Input, 3809 Action::OffloadKind TargetDeviceOffloadKind) const { 3810 llvm::PrettyStackTraceString CrashInfo("Constructing phase actions"); 3811 3812 // Some types skip the assembler phase (e.g., llvm-bc), but we can't 3813 // encode this in the steps because the intermediate type depends on 3814 // arguments. Just special case here. 3815 if (Phase == phases::Assemble && Input->getType() != types::TY_PP_Asm) 3816 return Input; 3817 3818 // Build the appropriate action. 3819 switch (Phase) { 3820 case phases::Link: 3821 llvm_unreachable("link action invalid here."); 3822 case phases::IfsMerge: 3823 llvm_unreachable("ifsmerge action invalid here."); 3824 case phases::Preprocess: { 3825 types::ID OutputTy; 3826 // -M and -MM specify the dependency file name by altering the output type, 3827 // -if -MD and -MMD are not specified. 3828 if (Args.hasArg(options::OPT_M, options::OPT_MM) && 3829 !Args.hasArg(options::OPT_MD, options::OPT_MMD)) { 3830 OutputTy = types::TY_Dependencies; 3831 } else { 3832 OutputTy = Input->getType(); 3833 if (!Args.hasFlag(options::OPT_frewrite_includes, 3834 options::OPT_fno_rewrite_includes, false) && 3835 !Args.hasFlag(options::OPT_frewrite_imports, 3836 options::OPT_fno_rewrite_imports, false) && 3837 !CCGenDiagnostics) 3838 OutputTy = types::getPreprocessedType(OutputTy); 3839 assert(OutputTy != types::TY_INVALID && 3840 "Cannot preprocess this input type!"); 3841 } 3842 return C.MakeAction<PreprocessJobAction>(Input, OutputTy); 3843 } 3844 case phases::Precompile: { 3845 types::ID OutputTy = getPrecompiledType(Input->getType()); 3846 assert(OutputTy != types::TY_INVALID && 3847 "Cannot precompile this input type!"); 3848 3849 // If we're given a module name, precompile header file inputs as a 3850 // module, not as a precompiled header. 3851 const char *ModName = nullptr; 3852 if (OutputTy == types::TY_PCH) { 3853 if (Arg *A = Args.getLastArg(options::OPT_fmodule_name_EQ)) 3854 ModName = A->getValue(); 3855 if (ModName) 3856 OutputTy = types::TY_ModuleFile; 3857 } 3858 3859 if (Args.hasArg(options::OPT_fsyntax_only)) { 3860 // Syntax checks should not emit a PCH file 3861 OutputTy = types::TY_Nothing; 3862 } 3863 3864 if (ModName) 3865 return C.MakeAction<HeaderModulePrecompileJobAction>(Input, OutputTy, 3866 ModName); 3867 return C.MakeAction<PrecompileJobAction>(Input, OutputTy); 3868 } 3869 case phases::Compile: { 3870 if (Args.hasArg(options::OPT_fsyntax_only)) 3871 return C.MakeAction<CompileJobAction>(Input, types::TY_Nothing); 3872 if (Args.hasArg(options::OPT_rewrite_objc)) 3873 return C.MakeAction<CompileJobAction>(Input, types::TY_RewrittenObjC); 3874 if (Args.hasArg(options::OPT_rewrite_legacy_objc)) 3875 return C.MakeAction<CompileJobAction>(Input, 3876 types::TY_RewrittenLegacyObjC); 3877 if (Args.hasArg(options::OPT__analyze)) 3878 return C.MakeAction<AnalyzeJobAction>(Input, types::TY_Plist); 3879 if (Args.hasArg(options::OPT__migrate)) 3880 return C.MakeAction<MigrateJobAction>(Input, types::TY_Remap); 3881 if (Args.hasArg(options::OPT_emit_ast)) 3882 return C.MakeAction<CompileJobAction>(Input, types::TY_AST); 3883 if (Args.hasArg(options::OPT_module_file_info)) 3884 return C.MakeAction<CompileJobAction>(Input, types::TY_ModuleFile); 3885 if (Args.hasArg(options::OPT_verify_pch)) 3886 return C.MakeAction<VerifyPCHJobAction>(Input, types::TY_Nothing); 3887 return C.MakeAction<CompileJobAction>(Input, types::TY_LLVM_BC); 3888 } 3889 case phases::Backend: { 3890 if (isUsingLTO() && TargetDeviceOffloadKind == Action::OFK_None) { 3891 types::ID Output = 3892 Args.hasArg(options::OPT_S) ? types::TY_LTO_IR : types::TY_LTO_BC; 3893 return C.MakeAction<BackendJobAction>(Input, Output); 3894 } 3895 if (Args.hasArg(options::OPT_emit_llvm) || 3896 (TargetDeviceOffloadKind == Action::OFK_HIP && 3897 Args.hasFlag(options::OPT_fgpu_rdc, options::OPT_fno_gpu_rdc, 3898 false))) { 3899 types::ID Output = 3900 Args.hasArg(options::OPT_S) ? types::TY_LLVM_IR : types::TY_LLVM_BC; 3901 return C.MakeAction<BackendJobAction>(Input, Output); 3902 } 3903 return C.MakeAction<BackendJobAction>(Input, types::TY_PP_Asm); 3904 } 3905 case phases::Assemble: 3906 return C.MakeAction<AssembleJobAction>(std::move(Input), types::TY_Object); 3907 } 3908 3909 llvm_unreachable("invalid phase in ConstructPhaseAction"); 3910 } 3911 3912 void Driver::BuildJobs(Compilation &C) const { 3913 llvm::PrettyStackTraceString CrashInfo("Building compilation jobs"); 3914 3915 Arg *FinalOutput = C.getArgs().getLastArg(options::OPT_o); 3916 3917 // It is an error to provide a -o option if we are making multiple output 3918 // files. There are exceptions: 3919 // 3920 // IfsMergeJob: when generating interface stubs enabled we want to be able to 3921 // generate the stub file at the same time that we generate the real 3922 // library/a.out. So when a .o, .so, etc are the output, with clang interface 3923 // stubs there will also be a .ifs and .ifso at the same location. 3924 // 3925 // CompileJob of type TY_IFS_CPP: when generating interface stubs is enabled 3926 // and -c is passed, we still want to be able to generate a .ifs file while 3927 // we are also generating .o files. So we allow more than one output file in 3928 // this case as well. 3929 // 3930 if (FinalOutput) { 3931 unsigned NumOutputs = 0; 3932 unsigned NumIfsOutputs = 0; 3933 for (const Action *A : C.getActions()) 3934 if (A->getType() != types::TY_Nothing && 3935 !(A->getKind() == Action::IfsMergeJobClass || 3936 (A->getType() == clang::driver::types::TY_IFS_CPP && 3937 A->getKind() == clang::driver::Action::CompileJobClass && 3938 0 == NumIfsOutputs++) || 3939 (A->getKind() == Action::BindArchClass && A->getInputs().size() && 3940 A->getInputs().front()->getKind() == Action::IfsMergeJobClass))) 3941 ++NumOutputs; 3942 3943 if (NumOutputs > 1) { 3944 Diag(clang::diag::err_drv_output_argument_with_multiple_files); 3945 FinalOutput = nullptr; 3946 } 3947 } 3948 3949 const llvm::Triple &RawTriple = C.getDefaultToolChain().getTriple(); 3950 if (RawTriple.isOSAIX()) 3951 if (Arg *A = C.getArgs().getLastArg(options::OPT_G)) 3952 Diag(diag::err_drv_unsupported_opt_for_target) 3953 << A->getSpelling() << RawTriple.str(); 3954 3955 // Collect the list of architectures. 3956 llvm::StringSet<> ArchNames; 3957 if (RawTriple.isOSBinFormatMachO()) 3958 for (const Arg *A : C.getArgs()) 3959 if (A->getOption().matches(options::OPT_arch)) 3960 ArchNames.insert(A->getValue()); 3961 3962 // Set of (Action, canonical ToolChain triple) pairs we've built jobs for. 3963 std::map<std::pair<const Action *, std::string>, InputInfo> CachedResults; 3964 for (Action *A : C.getActions()) { 3965 // If we are linking an image for multiple archs then the linker wants 3966 // -arch_multiple and -final_output <final image name>. Unfortunately, this 3967 // doesn't fit in cleanly because we have to pass this information down. 3968 // 3969 // FIXME: This is a hack; find a cleaner way to integrate this into the 3970 // process. 3971 const char *LinkingOutput = nullptr; 3972 if (isa<LipoJobAction>(A)) { 3973 if (FinalOutput) 3974 LinkingOutput = FinalOutput->getValue(); 3975 else 3976 LinkingOutput = getDefaultImageName(); 3977 } 3978 3979 BuildJobsForAction(C, A, &C.getDefaultToolChain(), 3980 /*BoundArch*/ StringRef(), 3981 /*AtTopLevel*/ true, 3982 /*MultipleArchs*/ ArchNames.size() > 1, 3983 /*LinkingOutput*/ LinkingOutput, CachedResults, 3984 /*TargetDeviceOffloadKind*/ Action::OFK_None); 3985 } 3986 3987 StringRef StatReportFile; 3988 bool PrintProcessStat = false; 3989 if (const Arg *A = C.getArgs().getLastArg(options::OPT_fproc_stat_report_EQ)) 3990 StatReportFile = A->getValue(); 3991 if (C.getArgs().hasArg(options::OPT_fproc_stat_report)) 3992 PrintProcessStat = true; 3993 3994 // If we have more than one job, then disable integrated-cc1 for now. Do this 3995 // also when we need to report process execution statistics. 3996 if (C.getJobs().size() > 1 || !StatReportFile.empty() || PrintProcessStat) 3997 for (auto &J : C.getJobs()) 3998 J.InProcess = false; 3999 4000 if (!StatReportFile.empty() || PrintProcessStat) { 4001 C.setPostCallback([=](const Command &Cmd, int Res) { 4002 Optional<llvm::sys::ProcessStatistics> ProcStat = 4003 Cmd.getProcessStatistics(); 4004 if (!ProcStat) 4005 return; 4006 if (PrintProcessStat) { 4007 using namespace llvm; 4008 // Human readable output. 4009 outs() << sys::path::filename(Cmd.getExecutable()) << ": " 4010 << "output="; 4011 if (Cmd.getOutputFilenames().empty()) 4012 outs() << "\"\""; 4013 else 4014 outs() << Cmd.getOutputFilenames().front(); 4015 outs() << ", total=" 4016 << format("%.3f", ProcStat->TotalTime.count() / 1000.) << " ms" 4017 << ", user=" 4018 << format("%.3f", ProcStat->UserTime.count() / 1000.) << " ms" 4019 << ", mem=" << ProcStat->PeakMemory << " Kb\n"; 4020 } 4021 if (!StatReportFile.empty()) { 4022 // CSV format. 4023 std::string Buffer; 4024 llvm::raw_string_ostream Out(Buffer); 4025 llvm::sys::printArg(Out, llvm::sys::path::filename(Cmd.getExecutable()), 4026 /*Quote*/ true); 4027 Out << ','; 4028 if (Cmd.getOutputFilenames().empty()) 4029 Out << "\"\""; 4030 else 4031 llvm::sys::printArg(Out, Cmd.getOutputFilenames().front(), true); 4032 Out << ',' << ProcStat->TotalTime.count() << ',' 4033 << ProcStat->UserTime.count() << ',' << ProcStat->PeakMemory 4034 << '\n'; 4035 Out.flush(); 4036 std::error_code EC; 4037 llvm::raw_fd_ostream OS(StatReportFile, EC, llvm::sys::fs::OF_Append); 4038 if (EC) 4039 return; 4040 auto L = OS.lock(); 4041 if (!L) { 4042 llvm::errs() << "ERROR: Cannot lock file " << StatReportFile << ": " 4043 << toString(L.takeError()) << "\n"; 4044 return; 4045 } 4046 OS << Buffer; 4047 } 4048 }); 4049 } 4050 4051 // If the user passed -Qunused-arguments or there were errors, don't warn 4052 // about any unused arguments. 4053 if (Diags.hasErrorOccurred() || 4054 C.getArgs().hasArg(options::OPT_Qunused_arguments)) 4055 return; 4056 4057 // Claim -### here. 4058 (void)C.getArgs().hasArg(options::OPT__HASH_HASH_HASH); 4059 4060 // Claim --driver-mode, --rsp-quoting, it was handled earlier. 4061 (void)C.getArgs().hasArg(options::OPT_driver_mode); 4062 (void)C.getArgs().hasArg(options::OPT_rsp_quoting); 4063 4064 for (Arg *A : C.getArgs()) { 4065 // FIXME: It would be nice to be able to send the argument to the 4066 // DiagnosticsEngine, so that extra values, position, and so on could be 4067 // printed. 4068 if (!A->isClaimed()) { 4069 if (A->getOption().hasFlag(options::NoArgumentUnused)) 4070 continue; 4071 4072 // Suppress the warning automatically if this is just a flag, and it is an 4073 // instance of an argument we already claimed. 4074 const Option &Opt = A->getOption(); 4075 if (Opt.getKind() == Option::FlagClass) { 4076 bool DuplicateClaimed = false; 4077 4078 for (const Arg *AA : C.getArgs().filtered(&Opt)) { 4079 if (AA->isClaimed()) { 4080 DuplicateClaimed = true; 4081 break; 4082 } 4083 } 4084 4085 if (DuplicateClaimed) 4086 continue; 4087 } 4088 4089 // In clang-cl, don't mention unknown arguments here since they have 4090 // already been warned about. 4091 if (!IsCLMode() || !A->getOption().matches(options::OPT_UNKNOWN)) 4092 Diag(clang::diag::warn_drv_unused_argument) 4093 << A->getAsString(C.getArgs()); 4094 } 4095 } 4096 } 4097 4098 namespace { 4099 /// Utility class to control the collapse of dependent actions and select the 4100 /// tools accordingly. 4101 class ToolSelector final { 4102 /// The tool chain this selector refers to. 4103 const ToolChain &TC; 4104 4105 /// The compilation this selector refers to. 4106 const Compilation &C; 4107 4108 /// The base action this selector refers to. 4109 const JobAction *BaseAction; 4110 4111 /// Set to true if the current toolchain refers to host actions. 4112 bool IsHostSelector; 4113 4114 /// Set to true if save-temps and embed-bitcode functionalities are active. 4115 bool SaveTemps; 4116 bool EmbedBitcode; 4117 4118 /// Get previous dependent action or null if that does not exist. If 4119 /// \a CanBeCollapsed is false, that action must be legal to collapse or 4120 /// null will be returned. 4121 const JobAction *getPrevDependentAction(const ActionList &Inputs, 4122 ActionList &SavedOffloadAction, 4123 bool CanBeCollapsed = true) { 4124 // An option can be collapsed only if it has a single input. 4125 if (Inputs.size() != 1) 4126 return nullptr; 4127 4128 Action *CurAction = *Inputs.begin(); 4129 if (CanBeCollapsed && 4130 !CurAction->isCollapsingWithNextDependentActionLegal()) 4131 return nullptr; 4132 4133 // If the input action is an offload action. Look through it and save any 4134 // offload action that can be dropped in the event of a collapse. 4135 if (auto *OA = dyn_cast<OffloadAction>(CurAction)) { 4136 // If the dependent action is a device action, we will attempt to collapse 4137 // only with other device actions. Otherwise, we would do the same but 4138 // with host actions only. 4139 if (!IsHostSelector) { 4140 if (OA->hasSingleDeviceDependence(/*DoNotConsiderHostActions=*/true)) { 4141 CurAction = 4142 OA->getSingleDeviceDependence(/*DoNotConsiderHostActions=*/true); 4143 if (CanBeCollapsed && 4144 !CurAction->isCollapsingWithNextDependentActionLegal()) 4145 return nullptr; 4146 SavedOffloadAction.push_back(OA); 4147 return dyn_cast<JobAction>(CurAction); 4148 } 4149 } else if (OA->hasHostDependence()) { 4150 CurAction = OA->getHostDependence(); 4151 if (CanBeCollapsed && 4152 !CurAction->isCollapsingWithNextDependentActionLegal()) 4153 return nullptr; 4154 SavedOffloadAction.push_back(OA); 4155 return dyn_cast<JobAction>(CurAction); 4156 } 4157 return nullptr; 4158 } 4159 4160 return dyn_cast<JobAction>(CurAction); 4161 } 4162 4163 /// Return true if an assemble action can be collapsed. 4164 bool canCollapseAssembleAction() const { 4165 return TC.useIntegratedAs() && !SaveTemps && 4166 !C.getArgs().hasArg(options::OPT_via_file_asm) && 4167 !C.getArgs().hasArg(options::OPT__SLASH_FA) && 4168 !C.getArgs().hasArg(options::OPT__SLASH_Fa); 4169 } 4170 4171 /// Return true if a preprocessor action can be collapsed. 4172 bool canCollapsePreprocessorAction() const { 4173 return !C.getArgs().hasArg(options::OPT_no_integrated_cpp) && 4174 !C.getArgs().hasArg(options::OPT_traditional_cpp) && !SaveTemps && 4175 !C.getArgs().hasArg(options::OPT_rewrite_objc); 4176 } 4177 4178 /// Struct that relates an action with the offload actions that would be 4179 /// collapsed with it. 4180 struct JobActionInfo final { 4181 /// The action this info refers to. 4182 const JobAction *JA = nullptr; 4183 /// The offload actions we need to take care off if this action is 4184 /// collapsed. 4185 ActionList SavedOffloadAction; 4186 }; 4187 4188 /// Append collapsed offload actions from the give nnumber of elements in the 4189 /// action info array. 4190 static void AppendCollapsedOffloadAction(ActionList &CollapsedOffloadAction, 4191 ArrayRef<JobActionInfo> &ActionInfo, 4192 unsigned ElementNum) { 4193 assert(ElementNum <= ActionInfo.size() && "Invalid number of elements."); 4194 for (unsigned I = 0; I < ElementNum; ++I) 4195 CollapsedOffloadAction.append(ActionInfo[I].SavedOffloadAction.begin(), 4196 ActionInfo[I].SavedOffloadAction.end()); 4197 } 4198 4199 /// Functions that attempt to perform the combining. They detect if that is 4200 /// legal, and if so they update the inputs \a Inputs and the offload action 4201 /// that were collapsed in \a CollapsedOffloadAction. A tool that deals with 4202 /// the combined action is returned. If the combining is not legal or if the 4203 /// tool does not exist, null is returned. 4204 /// Currently three kinds of collapsing are supported: 4205 /// - Assemble + Backend + Compile; 4206 /// - Assemble + Backend ; 4207 /// - Backend + Compile. 4208 const Tool * 4209 combineAssembleBackendCompile(ArrayRef<JobActionInfo> ActionInfo, 4210 ActionList &Inputs, 4211 ActionList &CollapsedOffloadAction) { 4212 if (ActionInfo.size() < 3 || !canCollapseAssembleAction()) 4213 return nullptr; 4214 auto *AJ = dyn_cast<AssembleJobAction>(ActionInfo[0].JA); 4215 auto *BJ = dyn_cast<BackendJobAction>(ActionInfo[1].JA); 4216 auto *CJ = dyn_cast<CompileJobAction>(ActionInfo[2].JA); 4217 if (!AJ || !BJ || !CJ) 4218 return nullptr; 4219 4220 // Get compiler tool. 4221 const Tool *T = TC.SelectTool(*CJ); 4222 if (!T) 4223 return nullptr; 4224 4225 // When using -fembed-bitcode, it is required to have the same tool (clang) 4226 // for both CompilerJA and BackendJA. Otherwise, combine two stages. 4227 if (EmbedBitcode) { 4228 const Tool *BT = TC.SelectTool(*BJ); 4229 if (BT == T) 4230 return nullptr; 4231 } 4232 4233 if (!T->hasIntegratedAssembler()) 4234 return nullptr; 4235 4236 Inputs = CJ->getInputs(); 4237 AppendCollapsedOffloadAction(CollapsedOffloadAction, ActionInfo, 4238 /*NumElements=*/3); 4239 return T; 4240 } 4241 const Tool *combineAssembleBackend(ArrayRef<JobActionInfo> ActionInfo, 4242 ActionList &Inputs, 4243 ActionList &CollapsedOffloadAction) { 4244 if (ActionInfo.size() < 2 || !canCollapseAssembleAction()) 4245 return nullptr; 4246 auto *AJ = dyn_cast<AssembleJobAction>(ActionInfo[0].JA); 4247 auto *BJ = dyn_cast<BackendJobAction>(ActionInfo[1].JA); 4248 if (!AJ || !BJ) 4249 return nullptr; 4250 4251 // Get backend tool. 4252 const Tool *T = TC.SelectTool(*BJ); 4253 if (!T) 4254 return nullptr; 4255 4256 if (!T->hasIntegratedAssembler()) 4257 return nullptr; 4258 4259 Inputs = BJ->getInputs(); 4260 AppendCollapsedOffloadAction(CollapsedOffloadAction, ActionInfo, 4261 /*NumElements=*/2); 4262 return T; 4263 } 4264 const Tool *combineBackendCompile(ArrayRef<JobActionInfo> ActionInfo, 4265 ActionList &Inputs, 4266 ActionList &CollapsedOffloadAction) { 4267 if (ActionInfo.size() < 2) 4268 return nullptr; 4269 auto *BJ = dyn_cast<BackendJobAction>(ActionInfo[0].JA); 4270 auto *CJ = dyn_cast<CompileJobAction>(ActionInfo[1].JA); 4271 if (!BJ || !CJ) 4272 return nullptr; 4273 4274 // Check if the initial input (to the compile job or its predessor if one 4275 // exists) is LLVM bitcode. In that case, no preprocessor step is required 4276 // and we can still collapse the compile and backend jobs when we have 4277 // -save-temps. I.e. there is no need for a separate compile job just to 4278 // emit unoptimized bitcode. 4279 bool InputIsBitcode = true; 4280 for (size_t i = 1; i < ActionInfo.size(); i++) 4281 if (ActionInfo[i].JA->getType() != types::TY_LLVM_BC && 4282 ActionInfo[i].JA->getType() != types::TY_LTO_BC) { 4283 InputIsBitcode = false; 4284 break; 4285 } 4286 if (!InputIsBitcode && !canCollapsePreprocessorAction()) 4287 return nullptr; 4288 4289 // Get compiler tool. 4290 const Tool *T = TC.SelectTool(*CJ); 4291 if (!T) 4292 return nullptr; 4293 4294 if (T->canEmitIR() && ((SaveTemps && !InputIsBitcode) || EmbedBitcode)) 4295 return nullptr; 4296 4297 Inputs = CJ->getInputs(); 4298 AppendCollapsedOffloadAction(CollapsedOffloadAction, ActionInfo, 4299 /*NumElements=*/2); 4300 return T; 4301 } 4302 4303 /// Updates the inputs if the obtained tool supports combining with 4304 /// preprocessor action, and the current input is indeed a preprocessor 4305 /// action. If combining results in the collapse of offloading actions, those 4306 /// are appended to \a CollapsedOffloadAction. 4307 void combineWithPreprocessor(const Tool *T, ActionList &Inputs, 4308 ActionList &CollapsedOffloadAction) { 4309 if (!T || !canCollapsePreprocessorAction() || !T->hasIntegratedCPP()) 4310 return; 4311 4312 // Attempt to get a preprocessor action dependence. 4313 ActionList PreprocessJobOffloadActions; 4314 ActionList NewInputs; 4315 for (Action *A : Inputs) { 4316 auto *PJ = getPrevDependentAction({A}, PreprocessJobOffloadActions); 4317 if (!PJ || !isa<PreprocessJobAction>(PJ)) { 4318 NewInputs.push_back(A); 4319 continue; 4320 } 4321 4322 // This is legal to combine. Append any offload action we found and add the 4323 // current input to preprocessor inputs. 4324 CollapsedOffloadAction.append(PreprocessJobOffloadActions.begin(), 4325 PreprocessJobOffloadActions.end()); 4326 NewInputs.append(PJ->input_begin(), PJ->input_end()); 4327 } 4328 Inputs = NewInputs; 4329 } 4330 4331 public: 4332 ToolSelector(const JobAction *BaseAction, const ToolChain &TC, 4333 const Compilation &C, bool SaveTemps, bool EmbedBitcode) 4334 : TC(TC), C(C), BaseAction(BaseAction), SaveTemps(SaveTemps), 4335 EmbedBitcode(EmbedBitcode) { 4336 assert(BaseAction && "Invalid base action."); 4337 IsHostSelector = BaseAction->getOffloadingDeviceKind() == Action::OFK_None; 4338 } 4339 4340 /// Check if a chain of actions can be combined and return the tool that can 4341 /// handle the combination of actions. The pointer to the current inputs \a 4342 /// Inputs and the list of offload actions \a CollapsedOffloadActions 4343 /// connected to collapsed actions are updated accordingly. The latter enables 4344 /// the caller of the selector to process them afterwards instead of just 4345 /// dropping them. If no suitable tool is found, null will be returned. 4346 const Tool *getTool(ActionList &Inputs, 4347 ActionList &CollapsedOffloadAction) { 4348 // 4349 // Get the largest chain of actions that we could combine. 4350 // 4351 4352 SmallVector<JobActionInfo, 5> ActionChain(1); 4353 ActionChain.back().JA = BaseAction; 4354 while (ActionChain.back().JA) { 4355 const Action *CurAction = ActionChain.back().JA; 4356 4357 // Grow the chain by one element. 4358 ActionChain.resize(ActionChain.size() + 1); 4359 JobActionInfo &AI = ActionChain.back(); 4360 4361 // Attempt to fill it with the 4362 AI.JA = 4363 getPrevDependentAction(CurAction->getInputs(), AI.SavedOffloadAction); 4364 } 4365 4366 // Pop the last action info as it could not be filled. 4367 ActionChain.pop_back(); 4368 4369 // 4370 // Attempt to combine actions. If all combining attempts failed, just return 4371 // the tool of the provided action. At the end we attempt to combine the 4372 // action with any preprocessor action it may depend on. 4373 // 4374 4375 const Tool *T = combineAssembleBackendCompile(ActionChain, Inputs, 4376 CollapsedOffloadAction); 4377 if (!T) 4378 T = combineAssembleBackend(ActionChain, Inputs, CollapsedOffloadAction); 4379 if (!T) 4380 T = combineBackendCompile(ActionChain, Inputs, CollapsedOffloadAction); 4381 if (!T) { 4382 Inputs = BaseAction->getInputs(); 4383 T = TC.SelectTool(*BaseAction); 4384 } 4385 4386 combineWithPreprocessor(T, Inputs, CollapsedOffloadAction); 4387 return T; 4388 } 4389 }; 4390 } 4391 4392 /// Return a string that uniquely identifies the result of a job. The bound arch 4393 /// is not necessarily represented in the toolchain's triple -- for example, 4394 /// armv7 and armv7s both map to the same triple -- so we need both in our map. 4395 /// Also, we need to add the offloading device kind, as the same tool chain can 4396 /// be used for host and device for some programming models, e.g. OpenMP. 4397 static std::string GetTriplePlusArchString(const ToolChain *TC, 4398 StringRef BoundArch, 4399 Action::OffloadKind OffloadKind) { 4400 std::string TriplePlusArch = TC->getTriple().normalize(); 4401 if (!BoundArch.empty()) { 4402 TriplePlusArch += "-"; 4403 TriplePlusArch += BoundArch; 4404 } 4405 TriplePlusArch += "-"; 4406 TriplePlusArch += Action::GetOffloadKindName(OffloadKind); 4407 return TriplePlusArch; 4408 } 4409 4410 InputInfo Driver::BuildJobsForAction( 4411 Compilation &C, const Action *A, const ToolChain *TC, StringRef BoundArch, 4412 bool AtTopLevel, bool MultipleArchs, const char *LinkingOutput, 4413 std::map<std::pair<const Action *, std::string>, InputInfo> &CachedResults, 4414 Action::OffloadKind TargetDeviceOffloadKind) const { 4415 std::pair<const Action *, std::string> ActionTC = { 4416 A, GetTriplePlusArchString(TC, BoundArch, TargetDeviceOffloadKind)}; 4417 auto CachedResult = CachedResults.find(ActionTC); 4418 if (CachedResult != CachedResults.end()) { 4419 return CachedResult->second; 4420 } 4421 InputInfo Result = BuildJobsForActionNoCache( 4422 C, A, TC, BoundArch, AtTopLevel, MultipleArchs, LinkingOutput, 4423 CachedResults, TargetDeviceOffloadKind); 4424 CachedResults[ActionTC] = Result; 4425 return Result; 4426 } 4427 4428 InputInfo Driver::BuildJobsForActionNoCache( 4429 Compilation &C, const Action *A, const ToolChain *TC, StringRef BoundArch, 4430 bool AtTopLevel, bool MultipleArchs, const char *LinkingOutput, 4431 std::map<std::pair<const Action *, std::string>, InputInfo> &CachedResults, 4432 Action::OffloadKind TargetDeviceOffloadKind) const { 4433 llvm::PrettyStackTraceString CrashInfo("Building compilation jobs"); 4434 4435 InputInfoList OffloadDependencesInputInfo; 4436 bool BuildingForOffloadDevice = TargetDeviceOffloadKind != Action::OFK_None; 4437 if (const OffloadAction *OA = dyn_cast<OffloadAction>(A)) { 4438 // The 'Darwin' toolchain is initialized only when its arguments are 4439 // computed. Get the default arguments for OFK_None to ensure that 4440 // initialization is performed before processing the offload action. 4441 // FIXME: Remove when darwin's toolchain is initialized during construction. 4442 C.getArgsForToolChain(TC, BoundArch, Action::OFK_None); 4443 4444 // The offload action is expected to be used in four different situations. 4445 // 4446 // a) Set a toolchain/architecture/kind for a host action: 4447 // Host Action 1 -> OffloadAction -> Host Action 2 4448 // 4449 // b) Set a toolchain/architecture/kind for a device action; 4450 // Device Action 1 -> OffloadAction -> Device Action 2 4451 // 4452 // c) Specify a device dependence to a host action; 4453 // Device Action 1 _ 4454 // \ 4455 // Host Action 1 ---> OffloadAction -> Host Action 2 4456 // 4457 // d) Specify a host dependence to a device action. 4458 // Host Action 1 _ 4459 // \ 4460 // Device Action 1 ---> OffloadAction -> Device Action 2 4461 // 4462 // For a) and b), we just return the job generated for the dependence. For 4463 // c) and d) we override the current action with the host/device dependence 4464 // if the current toolchain is host/device and set the offload dependences 4465 // info with the jobs obtained from the device/host dependence(s). 4466 4467 // If there is a single device option, just generate the job for it. 4468 if (OA->hasSingleDeviceDependence()) { 4469 InputInfo DevA; 4470 OA->doOnEachDeviceDependence([&](Action *DepA, const ToolChain *DepTC, 4471 const char *DepBoundArch) { 4472 DevA = 4473 BuildJobsForAction(C, DepA, DepTC, DepBoundArch, AtTopLevel, 4474 /*MultipleArchs*/ !!DepBoundArch, LinkingOutput, 4475 CachedResults, DepA->getOffloadingDeviceKind()); 4476 }); 4477 return DevA; 4478 } 4479 4480 // If 'Action 2' is host, we generate jobs for the device dependences and 4481 // override the current action with the host dependence. Otherwise, we 4482 // generate the host dependences and override the action with the device 4483 // dependence. The dependences can't therefore be a top-level action. 4484 OA->doOnEachDependence( 4485 /*IsHostDependence=*/BuildingForOffloadDevice, 4486 [&](Action *DepA, const ToolChain *DepTC, const char *DepBoundArch) { 4487 OffloadDependencesInputInfo.push_back(BuildJobsForAction( 4488 C, DepA, DepTC, DepBoundArch, /*AtTopLevel=*/false, 4489 /*MultipleArchs*/ !!DepBoundArch, LinkingOutput, CachedResults, 4490 DepA->getOffloadingDeviceKind())); 4491 }); 4492 4493 A = BuildingForOffloadDevice 4494 ? OA->getSingleDeviceDependence(/*DoNotConsiderHostActions=*/true) 4495 : OA->getHostDependence(); 4496 } 4497 4498 if (const InputAction *IA = dyn_cast<InputAction>(A)) { 4499 // FIXME: It would be nice to not claim this here; maybe the old scheme of 4500 // just using Args was better? 4501 const Arg &Input = IA->getInputArg(); 4502 Input.claim(); 4503 if (Input.getOption().matches(options::OPT_INPUT)) { 4504 const char *Name = Input.getValue(); 4505 return InputInfo(A, Name, /* _BaseInput = */ Name); 4506 } 4507 return InputInfo(A, &Input, /* _BaseInput = */ ""); 4508 } 4509 4510 if (const BindArchAction *BAA = dyn_cast<BindArchAction>(A)) { 4511 const ToolChain *TC; 4512 StringRef ArchName = BAA->getArchName(); 4513 4514 if (!ArchName.empty()) 4515 TC = &getToolChain(C.getArgs(), 4516 computeTargetTriple(*this, TargetTriple, 4517 C.getArgs(), ArchName)); 4518 else 4519 TC = &C.getDefaultToolChain(); 4520 4521 return BuildJobsForAction(C, *BAA->input_begin(), TC, ArchName, AtTopLevel, 4522 MultipleArchs, LinkingOutput, CachedResults, 4523 TargetDeviceOffloadKind); 4524 } 4525 4526 4527 ActionList Inputs = A->getInputs(); 4528 4529 const JobAction *JA = cast<JobAction>(A); 4530 ActionList CollapsedOffloadActions; 4531 4532 ToolSelector TS(JA, *TC, C, isSaveTempsEnabled(), 4533 embedBitcodeInObject() && !isUsingLTO()); 4534 const Tool *T = TS.getTool(Inputs, CollapsedOffloadActions); 4535 4536 if (!T) 4537 return InputInfo(); 4538 4539 // If we've collapsed action list that contained OffloadAction we 4540 // need to build jobs for host/device-side inputs it may have held. 4541 for (const auto *OA : CollapsedOffloadActions) 4542 cast<OffloadAction>(OA)->doOnEachDependence( 4543 /*IsHostDependence=*/BuildingForOffloadDevice, 4544 [&](Action *DepA, const ToolChain *DepTC, const char *DepBoundArch) { 4545 OffloadDependencesInputInfo.push_back(BuildJobsForAction( 4546 C, DepA, DepTC, DepBoundArch, /* AtTopLevel */ false, 4547 /*MultipleArchs=*/!!DepBoundArch, LinkingOutput, CachedResults, 4548 DepA->getOffloadingDeviceKind())); 4549 }); 4550 4551 // Only use pipes when there is exactly one input. 4552 InputInfoList InputInfos; 4553 for (const Action *Input : Inputs) { 4554 // Treat dsymutil and verify sub-jobs as being at the top-level too, they 4555 // shouldn't get temporary output names. 4556 // FIXME: Clean this up. 4557 bool SubJobAtTopLevel = 4558 AtTopLevel && (isa<DsymutilJobAction>(A) || isa<VerifyJobAction>(A)); 4559 InputInfos.push_back(BuildJobsForAction( 4560 C, Input, TC, BoundArch, SubJobAtTopLevel, MultipleArchs, LinkingOutput, 4561 CachedResults, A->getOffloadingDeviceKind())); 4562 } 4563 4564 // Always use the first input as the base input. 4565 const char *BaseInput = InputInfos[0].getBaseInput(); 4566 4567 // ... except dsymutil actions, which use their actual input as the base 4568 // input. 4569 if (JA->getType() == types::TY_dSYM) 4570 BaseInput = InputInfos[0].getFilename(); 4571 4572 // ... and in header module compilations, which use the module name. 4573 if (auto *ModuleJA = dyn_cast<HeaderModulePrecompileJobAction>(JA)) 4574 BaseInput = ModuleJA->getModuleName(); 4575 4576 // Append outputs of offload device jobs to the input list 4577 if (!OffloadDependencesInputInfo.empty()) 4578 InputInfos.append(OffloadDependencesInputInfo.begin(), 4579 OffloadDependencesInputInfo.end()); 4580 4581 // Set the effective triple of the toolchain for the duration of this job. 4582 llvm::Triple EffectiveTriple; 4583 const ToolChain &ToolTC = T->getToolChain(); 4584 const ArgList &Args = 4585 C.getArgsForToolChain(TC, BoundArch, A->getOffloadingDeviceKind()); 4586 if (InputInfos.size() != 1) { 4587 EffectiveTriple = llvm::Triple(ToolTC.ComputeEffectiveClangTriple(Args)); 4588 } else { 4589 // Pass along the input type if it can be unambiguously determined. 4590 EffectiveTriple = llvm::Triple( 4591 ToolTC.ComputeEffectiveClangTriple(Args, InputInfos[0].getType())); 4592 } 4593 RegisterEffectiveTriple TripleRAII(ToolTC, EffectiveTriple); 4594 4595 // Determine the place to write output to, if any. 4596 InputInfo Result; 4597 InputInfoList UnbundlingResults; 4598 if (auto *UA = dyn_cast<OffloadUnbundlingJobAction>(JA)) { 4599 // If we have an unbundling job, we need to create results for all the 4600 // outputs. We also update the results cache so that other actions using 4601 // this unbundling action can get the right results. 4602 for (auto &UI : UA->getDependentActionsInfo()) { 4603 assert(UI.DependentOffloadKind != Action::OFK_None && 4604 "Unbundling with no offloading??"); 4605 4606 // Unbundling actions are never at the top level. When we generate the 4607 // offloading prefix, we also do that for the host file because the 4608 // unbundling action does not change the type of the output which can 4609 // cause a overwrite. 4610 std::string OffloadingPrefix = Action::GetOffloadingFileNamePrefix( 4611 UI.DependentOffloadKind, 4612 UI.DependentToolChain->getTriple().normalize(), 4613 /*CreatePrefixForHost=*/true); 4614 auto CurI = InputInfo( 4615 UA, 4616 GetNamedOutputPath(C, *UA, BaseInput, UI.DependentBoundArch, 4617 /*AtTopLevel=*/false, 4618 MultipleArchs || 4619 UI.DependentOffloadKind == Action::OFK_HIP, 4620 OffloadingPrefix), 4621 BaseInput); 4622 // Save the unbundling result. 4623 UnbundlingResults.push_back(CurI); 4624 4625 // Get the unique string identifier for this dependence and cache the 4626 // result. 4627 StringRef Arch; 4628 if (TargetDeviceOffloadKind == Action::OFK_HIP) { 4629 if (UI.DependentOffloadKind == Action::OFK_Host) 4630 Arch = StringRef(); 4631 else 4632 Arch = UI.DependentBoundArch; 4633 } else 4634 Arch = BoundArch; 4635 4636 CachedResults[{A, GetTriplePlusArchString(UI.DependentToolChain, Arch, 4637 UI.DependentOffloadKind)}] = 4638 CurI; 4639 } 4640 4641 // Now that we have all the results generated, select the one that should be 4642 // returned for the current depending action. 4643 std::pair<const Action *, std::string> ActionTC = { 4644 A, GetTriplePlusArchString(TC, BoundArch, TargetDeviceOffloadKind)}; 4645 assert(CachedResults.find(ActionTC) != CachedResults.end() && 4646 "Result does not exist??"); 4647 Result = CachedResults[ActionTC]; 4648 } else if (JA->getType() == types::TY_Nothing) 4649 Result = InputInfo(A, BaseInput); 4650 else { 4651 // We only have to generate a prefix for the host if this is not a top-level 4652 // action. 4653 std::string OffloadingPrefix = Action::GetOffloadingFileNamePrefix( 4654 A->getOffloadingDeviceKind(), TC->getTriple().normalize(), 4655 /*CreatePrefixForHost=*/!!A->getOffloadingHostActiveKinds() && 4656 !AtTopLevel); 4657 if (isa<OffloadWrapperJobAction>(JA)) { 4658 OffloadingPrefix += "-wrapper"; 4659 if (Arg *FinalOutput = C.getArgs().getLastArg(options::OPT_o)) 4660 BaseInput = FinalOutput->getValue(); 4661 else 4662 BaseInput = getDefaultImageName(); 4663 } 4664 Result = InputInfo(A, GetNamedOutputPath(C, *JA, BaseInput, BoundArch, 4665 AtTopLevel, MultipleArchs, 4666 OffloadingPrefix), 4667 BaseInput); 4668 } 4669 4670 if (CCCPrintBindings && !CCGenDiagnostics) { 4671 llvm::errs() << "# \"" << T->getToolChain().getTripleString() << '"' 4672 << " - \"" << T->getName() << "\", inputs: ["; 4673 for (unsigned i = 0, e = InputInfos.size(); i != e; ++i) { 4674 llvm::errs() << InputInfos[i].getAsString(); 4675 if (i + 1 != e) 4676 llvm::errs() << ", "; 4677 } 4678 if (UnbundlingResults.empty()) 4679 llvm::errs() << "], output: " << Result.getAsString() << "\n"; 4680 else { 4681 llvm::errs() << "], outputs: ["; 4682 for (unsigned i = 0, e = UnbundlingResults.size(); i != e; ++i) { 4683 llvm::errs() << UnbundlingResults[i].getAsString(); 4684 if (i + 1 != e) 4685 llvm::errs() << ", "; 4686 } 4687 llvm::errs() << "] \n"; 4688 } 4689 } else { 4690 if (UnbundlingResults.empty()) 4691 T->ConstructJob( 4692 C, *JA, Result, InputInfos, 4693 C.getArgsForToolChain(TC, BoundArch, JA->getOffloadingDeviceKind()), 4694 LinkingOutput); 4695 else 4696 T->ConstructJobMultipleOutputs( 4697 C, *JA, UnbundlingResults, InputInfos, 4698 C.getArgsForToolChain(TC, BoundArch, JA->getOffloadingDeviceKind()), 4699 LinkingOutput); 4700 } 4701 return Result; 4702 } 4703 4704 const char *Driver::getDefaultImageName() const { 4705 llvm::Triple Target(llvm::Triple::normalize(TargetTriple)); 4706 return Target.isOSWindows() ? "a.exe" : "a.out"; 4707 } 4708 4709 /// Create output filename based on ArgValue, which could either be a 4710 /// full filename, filename without extension, or a directory. If ArgValue 4711 /// does not provide a filename, then use BaseName, and use the extension 4712 /// suitable for FileType. 4713 static const char *MakeCLOutputFilename(const ArgList &Args, StringRef ArgValue, 4714 StringRef BaseName, 4715 types::ID FileType) { 4716 SmallString<128> Filename = ArgValue; 4717 4718 if (ArgValue.empty()) { 4719 // If the argument is empty, output to BaseName in the current dir. 4720 Filename = BaseName; 4721 } else if (llvm::sys::path::is_separator(Filename.back())) { 4722 // If the argument is a directory, output to BaseName in that dir. 4723 llvm::sys::path::append(Filename, BaseName); 4724 } 4725 4726 if (!llvm::sys::path::has_extension(ArgValue)) { 4727 // If the argument didn't provide an extension, then set it. 4728 const char *Extension = types::getTypeTempSuffix(FileType, true); 4729 4730 if (FileType == types::TY_Image && 4731 Args.hasArg(options::OPT__SLASH_LD, options::OPT__SLASH_LDd)) { 4732 // The output file is a dll. 4733 Extension = "dll"; 4734 } 4735 4736 llvm::sys::path::replace_extension(Filename, Extension); 4737 } 4738 4739 return Args.MakeArgString(Filename.c_str()); 4740 } 4741 4742 static bool HasPreprocessOutput(const Action &JA) { 4743 if (isa<PreprocessJobAction>(JA)) 4744 return true; 4745 if (isa<OffloadAction>(JA) && isa<PreprocessJobAction>(JA.getInputs()[0])) 4746 return true; 4747 if (isa<OffloadBundlingJobAction>(JA) && 4748 HasPreprocessOutput(*(JA.getInputs()[0]))) 4749 return true; 4750 return false; 4751 } 4752 4753 const char *Driver::GetNamedOutputPath(Compilation &C, const JobAction &JA, 4754 const char *BaseInput, 4755 StringRef OrigBoundArch, bool AtTopLevel, 4756 bool MultipleArchs, 4757 StringRef OffloadingPrefix) const { 4758 std::string BoundArch = OrigBoundArch.str(); 4759 #if defined(_WIN32) 4760 // BoundArch may contains ':', which is invalid in file names on Windows, 4761 // therefore replace it with '%'. 4762 std::replace(BoundArch.begin(), BoundArch.end(), ':', '@'); 4763 #endif 4764 4765 llvm::PrettyStackTraceString CrashInfo("Computing output path"); 4766 // Output to a user requested destination? 4767 if (AtTopLevel && !isa<DsymutilJobAction>(JA) && !isa<VerifyJobAction>(JA)) { 4768 if (Arg *FinalOutput = C.getArgs().getLastArg(options::OPT_o)) 4769 return C.addResultFile(FinalOutput->getValue(), &JA); 4770 } 4771 4772 // For /P, preprocess to file named after BaseInput. 4773 if (C.getArgs().hasArg(options::OPT__SLASH_P)) { 4774 assert(AtTopLevel && isa<PreprocessJobAction>(JA)); 4775 StringRef BaseName = llvm::sys::path::filename(BaseInput); 4776 StringRef NameArg; 4777 if (Arg *A = C.getArgs().getLastArg(options::OPT__SLASH_Fi)) 4778 NameArg = A->getValue(); 4779 return C.addResultFile( 4780 MakeCLOutputFilename(C.getArgs(), NameArg, BaseName, types::TY_PP_C), 4781 &JA); 4782 } 4783 4784 // Default to writing to stdout? 4785 if (AtTopLevel && !CCGenDiagnostics && HasPreprocessOutput(JA)) { 4786 return "-"; 4787 } 4788 4789 // Is this the assembly listing for /FA? 4790 if (JA.getType() == types::TY_PP_Asm && 4791 (C.getArgs().hasArg(options::OPT__SLASH_FA) || 4792 C.getArgs().hasArg(options::OPT__SLASH_Fa))) { 4793 // Use /Fa and the input filename to determine the asm file name. 4794 StringRef BaseName = llvm::sys::path::filename(BaseInput); 4795 StringRef FaValue = C.getArgs().getLastArgValue(options::OPT__SLASH_Fa); 4796 return C.addResultFile( 4797 MakeCLOutputFilename(C.getArgs(), FaValue, BaseName, JA.getType()), 4798 &JA); 4799 } 4800 4801 // Output to a temporary file? 4802 if ((!AtTopLevel && !isSaveTempsEnabled() && 4803 !C.getArgs().hasArg(options::OPT__SLASH_Fo)) || 4804 CCGenDiagnostics) { 4805 StringRef Name = llvm::sys::path::filename(BaseInput); 4806 std::pair<StringRef, StringRef> Split = Name.split('.'); 4807 SmallString<128> TmpName; 4808 const char *Suffix = types::getTypeTempSuffix(JA.getType(), IsCLMode()); 4809 Arg *A = C.getArgs().getLastArg(options::OPT_fcrash_diagnostics_dir); 4810 if (CCGenDiagnostics && A) { 4811 SmallString<128> CrashDirectory(A->getValue()); 4812 if (!getVFS().exists(CrashDirectory)) 4813 llvm::sys::fs::create_directories(CrashDirectory); 4814 llvm::sys::path::append(CrashDirectory, Split.first); 4815 const char *Middle = Suffix ? "-%%%%%%." : "-%%%%%%"; 4816 std::error_code EC = llvm::sys::fs::createUniqueFile( 4817 CrashDirectory + Middle + Suffix, TmpName); 4818 if (EC) { 4819 Diag(clang::diag::err_unable_to_make_temp) << EC.message(); 4820 return ""; 4821 } 4822 } else { 4823 TmpName = GetTemporaryPath(Split.first, Suffix); 4824 } 4825 return C.addTempFile(C.getArgs().MakeArgString(TmpName)); 4826 } 4827 4828 SmallString<128> BasePath(BaseInput); 4829 SmallString<128> ExternalPath(""); 4830 StringRef BaseName; 4831 4832 // Dsymutil actions should use the full path. 4833 if (isa<DsymutilJobAction>(JA) && C.getArgs().hasArg(options::OPT_dsym_dir)) { 4834 ExternalPath += C.getArgs().getLastArg(options::OPT_dsym_dir)->getValue(); 4835 // We use posix style here because the tests (specifically 4836 // darwin-dsymutil.c) demonstrate that posix style paths are acceptable 4837 // even on Windows and if we don't then the similar test covering this 4838 // fails. 4839 llvm::sys::path::append(ExternalPath, llvm::sys::path::Style::posix, 4840 llvm::sys::path::filename(BasePath)); 4841 BaseName = ExternalPath; 4842 } else if (isa<DsymutilJobAction>(JA) || isa<VerifyJobAction>(JA)) 4843 BaseName = BasePath; 4844 else 4845 BaseName = llvm::sys::path::filename(BasePath); 4846 4847 // Determine what the derived output name should be. 4848 const char *NamedOutput; 4849 4850 if ((JA.getType() == types::TY_Object || JA.getType() == types::TY_LTO_BC) && 4851 C.getArgs().hasArg(options::OPT__SLASH_Fo, options::OPT__SLASH_o)) { 4852 // The /Fo or /o flag decides the object filename. 4853 StringRef Val = 4854 C.getArgs() 4855 .getLastArg(options::OPT__SLASH_Fo, options::OPT__SLASH_o) 4856 ->getValue(); 4857 NamedOutput = 4858 MakeCLOutputFilename(C.getArgs(), Val, BaseName, types::TY_Object); 4859 } else if (JA.getType() == types::TY_Image && 4860 C.getArgs().hasArg(options::OPT__SLASH_Fe, 4861 options::OPT__SLASH_o)) { 4862 // The /Fe or /o flag names the linked file. 4863 StringRef Val = 4864 C.getArgs() 4865 .getLastArg(options::OPT__SLASH_Fe, options::OPT__SLASH_o) 4866 ->getValue(); 4867 NamedOutput = 4868 MakeCLOutputFilename(C.getArgs(), Val, BaseName, types::TY_Image); 4869 } else if (JA.getType() == types::TY_Image) { 4870 if (IsCLMode()) { 4871 // clang-cl uses BaseName for the executable name. 4872 NamedOutput = 4873 MakeCLOutputFilename(C.getArgs(), "", BaseName, types::TY_Image); 4874 } else { 4875 SmallString<128> Output(getDefaultImageName()); 4876 // HIP image for device compilation with -fno-gpu-rdc is per compilation 4877 // unit. 4878 bool IsHIPNoRDC = JA.getOffloadingDeviceKind() == Action::OFK_HIP && 4879 !C.getArgs().hasFlag(options::OPT_fgpu_rdc, 4880 options::OPT_fno_gpu_rdc, false); 4881 if (IsHIPNoRDC) { 4882 Output = BaseName; 4883 llvm::sys::path::replace_extension(Output, ""); 4884 } 4885 Output += OffloadingPrefix; 4886 if (MultipleArchs && !BoundArch.empty()) { 4887 Output += "-"; 4888 Output.append(BoundArch); 4889 } 4890 if (IsHIPNoRDC) 4891 Output += ".out"; 4892 NamedOutput = C.getArgs().MakeArgString(Output.c_str()); 4893 } 4894 } else if (JA.getType() == types::TY_PCH && IsCLMode()) { 4895 NamedOutput = C.getArgs().MakeArgString(GetClPchPath(C, BaseName)); 4896 } else { 4897 const char *Suffix = types::getTypeTempSuffix(JA.getType(), IsCLMode()); 4898 assert(Suffix && "All types used for output should have a suffix."); 4899 4900 std::string::size_type End = std::string::npos; 4901 if (!types::appendSuffixForType(JA.getType())) 4902 End = BaseName.rfind('.'); 4903 SmallString<128> Suffixed(BaseName.substr(0, End)); 4904 Suffixed += OffloadingPrefix; 4905 if (MultipleArchs && !BoundArch.empty()) { 4906 Suffixed += "-"; 4907 Suffixed.append(BoundArch); 4908 } 4909 // When using both -save-temps and -emit-llvm, use a ".tmp.bc" suffix for 4910 // the unoptimized bitcode so that it does not get overwritten by the ".bc" 4911 // optimized bitcode output. 4912 auto IsHIPRDCInCompilePhase = [](const JobAction &JA, 4913 const llvm::opt::DerivedArgList &Args) { 4914 // The relocatable compilation in HIP implies -emit-llvm. Similarly, use a 4915 // ".tmp.bc" suffix for the unoptimized bitcode (generated in the compile 4916 // phase.) 4917 return isa<CompileJobAction>(JA) && 4918 JA.getOffloadingDeviceKind() == Action::OFK_HIP && 4919 Args.hasFlag(options::OPT_fgpu_rdc, options::OPT_fno_gpu_rdc, 4920 false); 4921 }; 4922 if (!AtTopLevel && JA.getType() == types::TY_LLVM_BC && 4923 (C.getArgs().hasArg(options::OPT_emit_llvm) || 4924 IsHIPRDCInCompilePhase(JA, C.getArgs()))) 4925 Suffixed += ".tmp"; 4926 Suffixed += '.'; 4927 Suffixed += Suffix; 4928 NamedOutput = C.getArgs().MakeArgString(Suffixed.c_str()); 4929 } 4930 4931 // Prepend object file path if -save-temps=obj 4932 if (!AtTopLevel && isSaveTempsObj() && C.getArgs().hasArg(options::OPT_o) && 4933 JA.getType() != types::TY_PCH) { 4934 Arg *FinalOutput = C.getArgs().getLastArg(options::OPT_o); 4935 SmallString<128> TempPath(FinalOutput->getValue()); 4936 llvm::sys::path::remove_filename(TempPath); 4937 StringRef OutputFileName = llvm::sys::path::filename(NamedOutput); 4938 llvm::sys::path::append(TempPath, OutputFileName); 4939 NamedOutput = C.getArgs().MakeArgString(TempPath.c_str()); 4940 } 4941 4942 // If we're saving temps and the temp file conflicts with the input file, 4943 // then avoid overwriting input file. 4944 if (!AtTopLevel && isSaveTempsEnabled() && NamedOutput == BaseName) { 4945 bool SameFile = false; 4946 SmallString<256> Result; 4947 llvm::sys::fs::current_path(Result); 4948 llvm::sys::path::append(Result, BaseName); 4949 llvm::sys::fs::equivalent(BaseInput, Result.c_str(), SameFile); 4950 // Must share the same path to conflict. 4951 if (SameFile) { 4952 StringRef Name = llvm::sys::path::filename(BaseInput); 4953 std::pair<StringRef, StringRef> Split = Name.split('.'); 4954 std::string TmpName = GetTemporaryPath( 4955 Split.first, types::getTypeTempSuffix(JA.getType(), IsCLMode())); 4956 return C.addTempFile(C.getArgs().MakeArgString(TmpName)); 4957 } 4958 } 4959 4960 // As an annoying special case, PCH generation doesn't strip the pathname. 4961 if (JA.getType() == types::TY_PCH && !IsCLMode()) { 4962 llvm::sys::path::remove_filename(BasePath); 4963 if (BasePath.empty()) 4964 BasePath = NamedOutput; 4965 else 4966 llvm::sys::path::append(BasePath, NamedOutput); 4967 return C.addResultFile(C.getArgs().MakeArgString(BasePath.c_str()), &JA); 4968 } else { 4969 return C.addResultFile(NamedOutput, &JA); 4970 } 4971 } 4972 4973 std::string Driver::GetFilePath(StringRef Name, const ToolChain &TC) const { 4974 // Search for Name in a list of paths. 4975 auto SearchPaths = [&](const llvm::SmallVectorImpl<std::string> &P) 4976 -> llvm::Optional<std::string> { 4977 // Respect a limited subset of the '-Bprefix' functionality in GCC by 4978 // attempting to use this prefix when looking for file paths. 4979 for (const auto &Dir : P) { 4980 if (Dir.empty()) 4981 continue; 4982 SmallString<128> P(Dir[0] == '=' ? SysRoot + Dir.substr(1) : Dir); 4983 llvm::sys::path::append(P, Name); 4984 if (llvm::sys::fs::exists(Twine(P))) 4985 return std::string(P); 4986 } 4987 return None; 4988 }; 4989 4990 if (auto P = SearchPaths(PrefixDirs)) 4991 return *P; 4992 4993 SmallString<128> R(ResourceDir); 4994 llvm::sys::path::append(R, Name); 4995 if (llvm::sys::fs::exists(Twine(R))) 4996 return std::string(R.str()); 4997 4998 SmallString<128> P(TC.getCompilerRTPath()); 4999 llvm::sys::path::append(P, Name); 5000 if (llvm::sys::fs::exists(Twine(P))) 5001 return std::string(P.str()); 5002 5003 SmallString<128> D(Dir); 5004 llvm::sys::path::append(D, "..", Name); 5005 if (llvm::sys::fs::exists(Twine(D))) 5006 return std::string(D.str()); 5007 5008 if (auto P = SearchPaths(TC.getLibraryPaths())) 5009 return *P; 5010 5011 if (auto P = SearchPaths(TC.getFilePaths())) 5012 return *P; 5013 5014 return std::string(Name); 5015 } 5016 5017 void Driver::generatePrefixedToolNames( 5018 StringRef Tool, const ToolChain &TC, 5019 SmallVectorImpl<std::string> &Names) const { 5020 // FIXME: Needs a better variable than TargetTriple 5021 Names.emplace_back((TargetTriple + "-" + Tool).str()); 5022 Names.emplace_back(Tool); 5023 5024 // Allow the discovery of tools prefixed with LLVM's default target triple. 5025 std::string DefaultTargetTriple = llvm::sys::getDefaultTargetTriple(); 5026 if (DefaultTargetTriple != TargetTriple) 5027 Names.emplace_back((DefaultTargetTriple + "-" + Tool).str()); 5028 } 5029 5030 static bool ScanDirForExecutable(SmallString<128> &Dir, StringRef Name) { 5031 llvm::sys::path::append(Dir, Name); 5032 if (llvm::sys::fs::can_execute(Twine(Dir))) 5033 return true; 5034 llvm::sys::path::remove_filename(Dir); 5035 return false; 5036 } 5037 5038 std::string Driver::GetProgramPath(StringRef Name, const ToolChain &TC) const { 5039 SmallVector<std::string, 2> TargetSpecificExecutables; 5040 generatePrefixedToolNames(Name, TC, TargetSpecificExecutables); 5041 5042 // Respect a limited subset of the '-Bprefix' functionality in GCC by 5043 // attempting to use this prefix when looking for program paths. 5044 for (const auto &PrefixDir : PrefixDirs) { 5045 if (llvm::sys::fs::is_directory(PrefixDir)) { 5046 SmallString<128> P(PrefixDir); 5047 if (ScanDirForExecutable(P, Name)) 5048 return std::string(P.str()); 5049 } else { 5050 SmallString<128> P((PrefixDir + Name).str()); 5051 if (llvm::sys::fs::can_execute(Twine(P))) 5052 return std::string(P.str()); 5053 } 5054 } 5055 5056 const ToolChain::path_list &List = TC.getProgramPaths(); 5057 for (const auto &TargetSpecificExecutable : TargetSpecificExecutables) { 5058 // For each possible name of the tool look for it in 5059 // program paths first, then the path. 5060 // Higher priority names will be first, meaning that 5061 // a higher priority name in the path will be found 5062 // instead of a lower priority name in the program path. 5063 // E.g. <triple>-gcc on the path will be found instead 5064 // of gcc in the program path 5065 for (const auto &Path : List) { 5066 SmallString<128> P(Path); 5067 if (ScanDirForExecutable(P, TargetSpecificExecutable)) 5068 return std::string(P.str()); 5069 } 5070 5071 // Fall back to the path 5072 if (llvm::ErrorOr<std::string> P = 5073 llvm::sys::findProgramByName(TargetSpecificExecutable)) 5074 return *P; 5075 } 5076 5077 return std::string(Name); 5078 } 5079 5080 std::string Driver::GetTemporaryPath(StringRef Prefix, StringRef Suffix) const { 5081 SmallString<128> Path; 5082 std::error_code EC = llvm::sys::fs::createTemporaryFile(Prefix, Suffix, Path); 5083 if (EC) { 5084 Diag(clang::diag::err_unable_to_make_temp) << EC.message(); 5085 return ""; 5086 } 5087 5088 return std::string(Path.str()); 5089 } 5090 5091 std::string Driver::GetTemporaryDirectory(StringRef Prefix) const { 5092 SmallString<128> Path; 5093 std::error_code EC = llvm::sys::fs::createUniqueDirectory(Prefix, Path); 5094 if (EC) { 5095 Diag(clang::diag::err_unable_to_make_temp) << EC.message(); 5096 return ""; 5097 } 5098 5099 return std::string(Path.str()); 5100 } 5101 5102 std::string Driver::GetClPchPath(Compilation &C, StringRef BaseName) const { 5103 SmallString<128> Output; 5104 if (Arg *FpArg = C.getArgs().getLastArg(options::OPT__SLASH_Fp)) { 5105 // FIXME: If anybody needs it, implement this obscure rule: 5106 // "If you specify a directory without a file name, the default file name 5107 // is VCx0.pch., where x is the major version of Visual C++ in use." 5108 Output = FpArg->getValue(); 5109 5110 // "If you do not specify an extension as part of the path name, an 5111 // extension of .pch is assumed. " 5112 if (!llvm::sys::path::has_extension(Output)) 5113 Output += ".pch"; 5114 } else { 5115 if (Arg *YcArg = C.getArgs().getLastArg(options::OPT__SLASH_Yc)) 5116 Output = YcArg->getValue(); 5117 if (Output.empty()) 5118 Output = BaseName; 5119 llvm::sys::path::replace_extension(Output, ".pch"); 5120 } 5121 return std::string(Output.str()); 5122 } 5123 5124 const ToolChain &Driver::getToolChain(const ArgList &Args, 5125 const llvm::Triple &Target) const { 5126 5127 auto &TC = ToolChains[Target.str()]; 5128 if (!TC) { 5129 switch (Target.getOS()) { 5130 case llvm::Triple::AIX: 5131 TC = std::make_unique<toolchains::AIX>(*this, Target, Args); 5132 break; 5133 case llvm::Triple::Haiku: 5134 TC = std::make_unique<toolchains::Haiku>(*this, Target, Args); 5135 break; 5136 case llvm::Triple::Ananas: 5137 TC = std::make_unique<toolchains::Ananas>(*this, Target, Args); 5138 break; 5139 case llvm::Triple::CloudABI: 5140 TC = std::make_unique<toolchains::CloudABI>(*this, Target, Args); 5141 break; 5142 case llvm::Triple::Darwin: 5143 case llvm::Triple::MacOSX: 5144 case llvm::Triple::IOS: 5145 case llvm::Triple::TvOS: 5146 case llvm::Triple::WatchOS: 5147 TC = std::make_unique<toolchains::DarwinClang>(*this, Target, Args); 5148 break; 5149 case llvm::Triple::DragonFly: 5150 TC = std::make_unique<toolchains::DragonFly>(*this, Target, Args); 5151 break; 5152 case llvm::Triple::OpenBSD: 5153 TC = std::make_unique<toolchains::OpenBSD>(*this, Target, Args); 5154 break; 5155 case llvm::Triple::NetBSD: 5156 TC = std::make_unique<toolchains::NetBSD>(*this, Target, Args); 5157 break; 5158 case llvm::Triple::FreeBSD: 5159 TC = std::make_unique<toolchains::FreeBSD>(*this, Target, Args); 5160 break; 5161 case llvm::Triple::Minix: 5162 TC = std::make_unique<toolchains::Minix>(*this, Target, Args); 5163 break; 5164 case llvm::Triple::Linux: 5165 case llvm::Triple::ELFIAMCU: 5166 if (Target.getArch() == llvm::Triple::hexagon) 5167 TC = std::make_unique<toolchains::HexagonToolChain>(*this, Target, 5168 Args); 5169 else if ((Target.getVendor() == llvm::Triple::MipsTechnologies) && 5170 !Target.hasEnvironment()) 5171 TC = std::make_unique<toolchains::MipsLLVMToolChain>(*this, Target, 5172 Args); 5173 else if (Target.isPPC()) 5174 TC = std::make_unique<toolchains::PPCLinuxToolChain>(*this, Target, 5175 Args); 5176 else if (Target.getArch() == llvm::Triple::ve) 5177 TC = std::make_unique<toolchains::VEToolChain>(*this, Target, Args); 5178 5179 else 5180 TC = std::make_unique<toolchains::Linux>(*this, Target, Args); 5181 break; 5182 case llvm::Triple::NaCl: 5183 TC = std::make_unique<toolchains::NaClToolChain>(*this, Target, Args); 5184 break; 5185 case llvm::Triple::Fuchsia: 5186 TC = std::make_unique<toolchains::Fuchsia>(*this, Target, Args); 5187 break; 5188 case llvm::Triple::Solaris: 5189 TC = std::make_unique<toolchains::Solaris>(*this, Target, Args); 5190 break; 5191 case llvm::Triple::AMDHSA: 5192 TC = std::make_unique<toolchains::ROCMToolChain>(*this, Target, Args); 5193 break; 5194 case llvm::Triple::AMDPAL: 5195 case llvm::Triple::Mesa3D: 5196 TC = std::make_unique<toolchains::AMDGPUToolChain>(*this, Target, Args); 5197 break; 5198 case llvm::Triple::Win32: 5199 switch (Target.getEnvironment()) { 5200 default: 5201 if (Target.isOSBinFormatELF()) 5202 TC = std::make_unique<toolchains::Generic_ELF>(*this, Target, Args); 5203 else if (Target.isOSBinFormatMachO()) 5204 TC = std::make_unique<toolchains::MachO>(*this, Target, Args); 5205 else 5206 TC = std::make_unique<toolchains::Generic_GCC>(*this, Target, Args); 5207 break; 5208 case llvm::Triple::GNU: 5209 TC = std::make_unique<toolchains::MinGW>(*this, Target, Args); 5210 break; 5211 case llvm::Triple::Itanium: 5212 TC = std::make_unique<toolchains::CrossWindowsToolChain>(*this, Target, 5213 Args); 5214 break; 5215 case llvm::Triple::MSVC: 5216 case llvm::Triple::UnknownEnvironment: 5217 if (Args.getLastArgValue(options::OPT_fuse_ld_EQ) 5218 .startswith_lower("bfd")) 5219 TC = std::make_unique<toolchains::CrossWindowsToolChain>( 5220 *this, Target, Args); 5221 else 5222 TC = 5223 std::make_unique<toolchains::MSVCToolChain>(*this, Target, Args); 5224 break; 5225 } 5226 break; 5227 case llvm::Triple::PS4: 5228 TC = std::make_unique<toolchains::PS4CPU>(*this, Target, Args); 5229 break; 5230 case llvm::Triple::Contiki: 5231 TC = std::make_unique<toolchains::Contiki>(*this, Target, Args); 5232 break; 5233 case llvm::Triple::Hurd: 5234 TC = std::make_unique<toolchains::Hurd>(*this, Target, Args); 5235 break; 5236 case llvm::Triple::ZOS: 5237 TC = std::make_unique<toolchains::ZOS>(*this, Target, Args); 5238 break; 5239 default: 5240 // Of these targets, Hexagon is the only one that might have 5241 // an OS of Linux, in which case it got handled above already. 5242 switch (Target.getArch()) { 5243 case llvm::Triple::tce: 5244 TC = std::make_unique<toolchains::TCEToolChain>(*this, Target, Args); 5245 break; 5246 case llvm::Triple::tcele: 5247 TC = std::make_unique<toolchains::TCELEToolChain>(*this, Target, Args); 5248 break; 5249 case llvm::Triple::hexagon: 5250 TC = std::make_unique<toolchains::HexagonToolChain>(*this, Target, 5251 Args); 5252 break; 5253 case llvm::Triple::lanai: 5254 TC = std::make_unique<toolchains::LanaiToolChain>(*this, Target, Args); 5255 break; 5256 case llvm::Triple::xcore: 5257 TC = std::make_unique<toolchains::XCoreToolChain>(*this, Target, Args); 5258 break; 5259 case llvm::Triple::wasm32: 5260 case llvm::Triple::wasm64: 5261 TC = std::make_unique<toolchains::WebAssembly>(*this, Target, Args); 5262 break; 5263 case llvm::Triple::avr: 5264 TC = std::make_unique<toolchains::AVRToolChain>(*this, Target, Args); 5265 break; 5266 case llvm::Triple::msp430: 5267 TC = 5268 std::make_unique<toolchains::MSP430ToolChain>(*this, Target, Args); 5269 break; 5270 case llvm::Triple::riscv32: 5271 case llvm::Triple::riscv64: 5272 if (toolchains::RISCVToolChain::hasGCCToolchain(*this, Args)) 5273 TC = 5274 std::make_unique<toolchains::RISCVToolChain>(*this, Target, Args); 5275 else 5276 TC = std::make_unique<toolchains::BareMetal>(*this, Target, Args); 5277 break; 5278 case llvm::Triple::ve: 5279 TC = std::make_unique<toolchains::VEToolChain>(*this, Target, Args); 5280 break; 5281 default: 5282 if (Target.getVendor() == llvm::Triple::Myriad) 5283 TC = std::make_unique<toolchains::MyriadToolChain>(*this, Target, 5284 Args); 5285 else if (toolchains::BareMetal::handlesTarget(Target)) 5286 TC = std::make_unique<toolchains::BareMetal>(*this, Target, Args); 5287 else if (Target.isOSBinFormatELF()) 5288 TC = std::make_unique<toolchains::Generic_ELF>(*this, Target, Args); 5289 else if (Target.isOSBinFormatMachO()) 5290 TC = std::make_unique<toolchains::MachO>(*this, Target, Args); 5291 else 5292 TC = std::make_unique<toolchains::Generic_GCC>(*this, Target, Args); 5293 } 5294 } 5295 } 5296 5297 // Intentionally omitted from the switch above: llvm::Triple::CUDA. CUDA 5298 // compiles always need two toolchains, the CUDA toolchain and the host 5299 // toolchain. So the only valid way to create a CUDA toolchain is via 5300 // CreateOffloadingDeviceToolChains. 5301 5302 return *TC; 5303 } 5304 5305 bool Driver::ShouldUseClangCompiler(const JobAction &JA) const { 5306 // Say "no" if there is not exactly one input of a type clang understands. 5307 if (JA.size() != 1 || 5308 !types::isAcceptedByClang((*JA.input_begin())->getType())) 5309 return false; 5310 5311 // And say "no" if this is not a kind of action clang understands. 5312 if (!isa<PreprocessJobAction>(JA) && !isa<PrecompileJobAction>(JA) && 5313 !isa<CompileJobAction>(JA) && !isa<BackendJobAction>(JA)) 5314 return false; 5315 5316 return true; 5317 } 5318 5319 bool Driver::ShouldUseFlangCompiler(const JobAction &JA) const { 5320 // Say "no" if there is not exactly one input of a type flang understands. 5321 if (JA.size() != 1 || 5322 !types::isFortran((*JA.input_begin())->getType())) 5323 return false; 5324 5325 // And say "no" if this is not a kind of action flang understands. 5326 if (!isa<PreprocessJobAction>(JA) && !isa<CompileJobAction>(JA) && !isa<BackendJobAction>(JA)) 5327 return false; 5328 5329 return true; 5330 } 5331 5332 bool Driver::ShouldEmitStaticLibrary(const ArgList &Args) const { 5333 // Only emit static library if the flag is set explicitly. 5334 if (Args.hasArg(options::OPT_emit_static_lib)) 5335 return true; 5336 return false; 5337 } 5338 5339 /// GetReleaseVersion - Parse (([0-9]+)(.([0-9]+)(.([0-9]+)?))?)? and return the 5340 /// grouped values as integers. Numbers which are not provided are set to 0. 5341 /// 5342 /// \return True if the entire string was parsed (9.2), or all groups were 5343 /// parsed (10.3.5extrastuff). 5344 bool Driver::GetReleaseVersion(StringRef Str, unsigned &Major, unsigned &Minor, 5345 unsigned &Micro, bool &HadExtra) { 5346 HadExtra = false; 5347 5348 Major = Minor = Micro = 0; 5349 if (Str.empty()) 5350 return false; 5351 5352 if (Str.consumeInteger(10, Major)) 5353 return false; 5354 if (Str.empty()) 5355 return true; 5356 if (Str[0] != '.') 5357 return false; 5358 5359 Str = Str.drop_front(1); 5360 5361 if (Str.consumeInteger(10, Minor)) 5362 return false; 5363 if (Str.empty()) 5364 return true; 5365 if (Str[0] != '.') 5366 return false; 5367 Str = Str.drop_front(1); 5368 5369 if (Str.consumeInteger(10, Micro)) 5370 return false; 5371 if (!Str.empty()) 5372 HadExtra = true; 5373 return true; 5374 } 5375 5376 /// Parse digits from a string \p Str and fulfill \p Digits with 5377 /// the parsed numbers. This method assumes that the max number of 5378 /// digits to look for is equal to Digits.size(). 5379 /// 5380 /// \return True if the entire string was parsed and there are 5381 /// no extra characters remaining at the end. 5382 bool Driver::GetReleaseVersion(StringRef Str, 5383 MutableArrayRef<unsigned> Digits) { 5384 if (Str.empty()) 5385 return false; 5386 5387 unsigned CurDigit = 0; 5388 while (CurDigit < Digits.size()) { 5389 unsigned Digit; 5390 if (Str.consumeInteger(10, Digit)) 5391 return false; 5392 Digits[CurDigit] = Digit; 5393 if (Str.empty()) 5394 return true; 5395 if (Str[0] != '.') 5396 return false; 5397 Str = Str.drop_front(1); 5398 CurDigit++; 5399 } 5400 5401 // More digits than requested, bail out... 5402 return false; 5403 } 5404 5405 std::pair<unsigned, unsigned> 5406 Driver::getIncludeExcludeOptionFlagMasks(bool IsClCompatMode) const { 5407 unsigned IncludedFlagsBitmask = 0; 5408 unsigned ExcludedFlagsBitmask = options::NoDriverOption; 5409 5410 if (IsClCompatMode) { 5411 // Include CL and Core options. 5412 IncludedFlagsBitmask |= options::CLOption; 5413 IncludedFlagsBitmask |= options::CoreOption; 5414 } else { 5415 ExcludedFlagsBitmask |= options::CLOption; 5416 } 5417 5418 return std::make_pair(IncludedFlagsBitmask, ExcludedFlagsBitmask); 5419 } 5420 5421 bool clang::driver::isOptimizationLevelFast(const ArgList &Args) { 5422 return Args.hasFlag(options::OPT_Ofast, options::OPT_O_Group, false); 5423 } 5424 5425 bool clang::driver::willEmitRemarks(const ArgList &Args) { 5426 // -fsave-optimization-record enables it. 5427 if (Args.hasFlag(options::OPT_fsave_optimization_record, 5428 options::OPT_fno_save_optimization_record, false)) 5429 return true; 5430 5431 // -fsave-optimization-record=<format> enables it as well. 5432 if (Args.hasFlag(options::OPT_fsave_optimization_record_EQ, 5433 options::OPT_fno_save_optimization_record, false)) 5434 return true; 5435 5436 // -foptimization-record-file alone enables it too. 5437 if (Args.hasFlag(options::OPT_foptimization_record_file_EQ, 5438 options::OPT_fno_save_optimization_record, false)) 5439 return true; 5440 5441 // -foptimization-record-passes alone enables it too. 5442 if (Args.hasFlag(options::OPT_foptimization_record_passes_EQ, 5443 options::OPT_fno_save_optimization_record, false)) 5444 return true; 5445 return false; 5446 } 5447