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