1 //===- lli.cpp - LLVM Interpreter / Dynamic compiler ----------------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // This utility provides a simple wrapper around the LLVM Execution Engines, 10 // which allow the direct execution of LLVM programs through a Just-In-Time 11 // compiler, or through an interpreter if no JIT is available for this platform. 12 // 13 //===----------------------------------------------------------------------===// 14 15 #include "ExecutionUtils.h" 16 #include "ForwardingMemoryManager.h" 17 #include "llvm/ADT/StringExtras.h" 18 #include "llvm/ADT/Triple.h" 19 #include "llvm/Bitcode/BitcodeReader.h" 20 #include "llvm/CodeGen/CommandFlags.h" 21 #include "llvm/CodeGen/LinkAllCodegenComponents.h" 22 #include "llvm/Config/llvm-config.h" 23 #include "llvm/ExecutionEngine/GenericValue.h" 24 #include "llvm/ExecutionEngine/Interpreter.h" 25 #include "llvm/ExecutionEngine/JITEventListener.h" 26 #include "llvm/ExecutionEngine/JITSymbol.h" 27 #include "llvm/ExecutionEngine/MCJIT.h" 28 #include "llvm/ExecutionEngine/ObjectCache.h" 29 #include "llvm/ExecutionEngine/Orc/DebugObjectManagerPlugin.h" 30 #include "llvm/ExecutionEngine/Orc/DebugUtils.h" 31 #include "llvm/ExecutionEngine/Orc/ELFNixPlatform.h" 32 #include "llvm/ExecutionEngine/Orc/EPCDebugObjectRegistrar.h" 33 #include "llvm/ExecutionEngine/Orc/EPCDynamicLibrarySearchGenerator.h" 34 #include "llvm/ExecutionEngine/Orc/EPCEHFrameRegistrar.h" 35 #include "llvm/ExecutionEngine/Orc/EPCGenericRTDyldMemoryManager.h" 36 #include "llvm/ExecutionEngine/Orc/ExecutionUtils.h" 37 #include "llvm/ExecutionEngine/Orc/JITTargetMachineBuilder.h" 38 #include "llvm/ExecutionEngine/Orc/LLJIT.h" 39 #include "llvm/ExecutionEngine/Orc/MachOPlatform.h" 40 #include "llvm/ExecutionEngine/Orc/RTDyldObjectLinkingLayer.h" 41 #include "llvm/ExecutionEngine/Orc/SimpleRemoteEPC.h" 42 #include "llvm/ExecutionEngine/Orc/SymbolStringPool.h" 43 #include "llvm/ExecutionEngine/Orc/TargetProcess/JITLoaderGDB.h" 44 #include "llvm/ExecutionEngine/Orc/TargetProcess/RegisterEHFrames.h" 45 #include "llvm/ExecutionEngine/Orc/TargetProcess/TargetExecutionUtils.h" 46 #include "llvm/ExecutionEngine/SectionMemoryManager.h" 47 #include "llvm/IR/IRBuilder.h" 48 #include "llvm/IR/LLVMContext.h" 49 #include "llvm/IR/Module.h" 50 #include "llvm/IR/Type.h" 51 #include "llvm/IR/Verifier.h" 52 #include "llvm/IRReader/IRReader.h" 53 #include "llvm/Object/Archive.h" 54 #include "llvm/Object/ObjectFile.h" 55 #include "llvm/Support/CommandLine.h" 56 #include "llvm/Support/Debug.h" 57 #include "llvm/Support/DynamicLibrary.h" 58 #include "llvm/Support/Format.h" 59 #include "llvm/Support/InitLLVM.h" 60 #include "llvm/Support/MathExtras.h" 61 #include "llvm/Support/Memory.h" 62 #include "llvm/Support/MemoryBuffer.h" 63 #include "llvm/Support/Path.h" 64 #include "llvm/Support/PluginLoader.h" 65 #include "llvm/Support/Process.h" 66 #include "llvm/Support/Program.h" 67 #include "llvm/Support/SourceMgr.h" 68 #include "llvm/Support/TargetSelect.h" 69 #include "llvm/Support/WithColor.h" 70 #include "llvm/Support/raw_ostream.h" 71 #include "llvm/Transforms/Instrumentation.h" 72 #include <cerrno> 73 74 #if !defined(_MSC_VER) && !defined(__MINGW32__) 75 #include <unistd.h> 76 #else 77 #include <io.h> 78 #endif 79 80 #ifdef __CYGWIN__ 81 #include <cygwin/version.h> 82 #if defined(CYGWIN_VERSION_DLL_MAJOR) && CYGWIN_VERSION_DLL_MAJOR<1007 83 #define DO_NOTHING_ATEXIT 1 84 #endif 85 #endif 86 87 using namespace llvm; 88 89 static codegen::RegisterCodeGenFlags CGF; 90 91 #define DEBUG_TYPE "lli" 92 93 namespace { 94 95 enum class JITKind { MCJIT, Orc, OrcLazy }; 96 enum class JITLinkerKind { Default, RuntimeDyld, JITLink }; 97 98 cl::opt<std::string> 99 InputFile(cl::desc("<input bitcode>"), cl::Positional, cl::init("-")); 100 101 cl::list<std::string> 102 InputArgv(cl::ConsumeAfter, cl::desc("<program arguments>...")); 103 104 cl::opt<bool> ForceInterpreter("force-interpreter", 105 cl::desc("Force interpretation: disable JIT"), 106 cl::init(false)); 107 108 cl::opt<JITKind> UseJITKind( 109 "jit-kind", cl::desc("Choose underlying JIT kind."), 110 cl::init(JITKind::Orc), 111 cl::values(clEnumValN(JITKind::MCJIT, "mcjit", "MCJIT"), 112 clEnumValN(JITKind::Orc, "orc", "Orc JIT"), 113 clEnumValN(JITKind::OrcLazy, "orc-lazy", 114 "Orc-based lazy JIT."))); 115 116 cl::opt<JITLinkerKind> 117 JITLinker("jit-linker", cl::desc("Choose the dynamic linker/loader."), 118 cl::init(JITLinkerKind::Default), 119 cl::values(clEnumValN(JITLinkerKind::Default, "default", 120 "Default for platform and JIT-kind"), 121 clEnumValN(JITLinkerKind::RuntimeDyld, "rtdyld", 122 "RuntimeDyld"), 123 clEnumValN(JITLinkerKind::JITLink, "jitlink", 124 "Orc-specific linker"))); 125 cl::opt<std::string> OrcRuntime("orc-runtime", 126 cl::desc("Use ORC runtime from given path"), 127 cl::init("")); 128 129 cl::opt<unsigned> 130 LazyJITCompileThreads("compile-threads", 131 cl::desc("Choose the number of compile threads " 132 "(jit-kind=orc-lazy only)"), 133 cl::init(0)); 134 135 cl::list<std::string> 136 ThreadEntryPoints("thread-entry", 137 cl::desc("calls the given entry-point on a new thread " 138 "(jit-kind=orc-lazy only)")); 139 140 cl::opt<bool> PerModuleLazy( 141 "per-module-lazy", 142 cl::desc("Performs lazy compilation on whole module boundaries " 143 "rather than individual functions"), 144 cl::init(false)); 145 146 cl::list<std::string> 147 JITDylibs("jd", 148 cl::desc("Specifies the JITDylib to be used for any subsequent " 149 "-extra-module arguments.")); 150 151 cl::list<std::string> 152 Dylibs("dlopen", cl::desc("Dynamic libraries to load before linking")); 153 154 // The MCJIT supports building for a target address space separate from 155 // the JIT compilation process. Use a forked process and a copying 156 // memory manager with IPC to execute using this functionality. 157 cl::opt<bool> RemoteMCJIT("remote-mcjit", 158 cl::desc("Execute MCJIT'ed code in a separate process."), 159 cl::init(false)); 160 161 // Manually specify the child process for remote execution. This overrides 162 // the simulated remote execution that allocates address space for child 163 // execution. The child process will be executed and will communicate with 164 // lli via stdin/stdout pipes. 165 cl::opt<std::string> 166 ChildExecPath("mcjit-remote-process", 167 cl::desc("Specify the filename of the process to launch " 168 "for remote MCJIT execution. If none is specified," 169 "\n\tremote execution will be simulated in-process."), 170 cl::value_desc("filename"), cl::init("")); 171 172 // Determine optimization level. 173 cl::opt<char> OptLevel("O", 174 cl::desc("Optimization level. [-O0, -O1, -O2, or -O3] " 175 "(default = '-O2')"), 176 cl::Prefix, cl::init(' ')); 177 178 cl::opt<std::string> 179 TargetTriple("mtriple", cl::desc("Override target triple for module")); 180 181 cl::opt<std::string> 182 EntryFunc("entry-function", 183 cl::desc("Specify the entry function (default = 'main') " 184 "of the executable"), 185 cl::value_desc("function"), 186 cl::init("main")); 187 188 cl::list<std::string> 189 ExtraModules("extra-module", 190 cl::desc("Extra modules to be loaded"), 191 cl::value_desc("input bitcode")); 192 193 cl::list<std::string> 194 ExtraObjects("extra-object", 195 cl::desc("Extra object files to be loaded"), 196 cl::value_desc("input object")); 197 198 cl::list<std::string> 199 ExtraArchives("extra-archive", 200 cl::desc("Extra archive files to be loaded"), 201 cl::value_desc("input archive")); 202 203 cl::opt<bool> 204 EnableCacheManager("enable-cache-manager", 205 cl::desc("Use cache manager to save/load modules"), 206 cl::init(false)); 207 208 cl::opt<std::string> 209 ObjectCacheDir("object-cache-dir", 210 cl::desc("Directory to store cached object files " 211 "(must be user writable)"), 212 cl::init("")); 213 214 cl::opt<std::string> 215 FakeArgv0("fake-argv0", 216 cl::desc("Override the 'argv[0]' value passed into the executing" 217 " program"), cl::value_desc("executable")); 218 219 cl::opt<bool> 220 DisableCoreFiles("disable-core-files", cl::Hidden, 221 cl::desc("Disable emission of core files if possible")); 222 223 cl::opt<bool> 224 NoLazyCompilation("disable-lazy-compilation", 225 cl::desc("Disable JIT lazy compilation"), 226 cl::init(false)); 227 228 cl::opt<bool> 229 GenerateSoftFloatCalls("soft-float", 230 cl::desc("Generate software floating point library calls"), 231 cl::init(false)); 232 233 cl::opt<bool> NoProcessSymbols( 234 "no-process-syms", 235 cl::desc("Do not resolve lli process symbols in JIT'd code"), 236 cl::init(false)); 237 238 enum class LLJITPlatform { Inactive, DetectHost, ORC, GenericIR }; 239 240 cl::opt<LLJITPlatform> 241 Platform("lljit-platform", cl::desc("Platform to use with LLJIT"), 242 cl::init(LLJITPlatform::DetectHost), 243 cl::values(clEnumValN(LLJITPlatform::DetectHost, "DetectHost", 244 "Select based on JIT target triple"), 245 clEnumValN(LLJITPlatform::ORC, "ORC", 246 "Use ORCPlatform with the ORC runtime"), 247 clEnumValN(LLJITPlatform::GenericIR, "GenericIR", 248 "Use LLJITGenericIRPlatform"), 249 clEnumValN(LLJITPlatform::Inactive, "Inactive", 250 "Disable platform support explicitly")), 251 cl::Hidden); 252 253 enum class DumpKind { 254 NoDump, 255 DumpFuncsToStdOut, 256 DumpModsToStdOut, 257 DumpModsToDisk 258 }; 259 260 cl::opt<DumpKind> OrcDumpKind( 261 "orc-lazy-debug", cl::desc("Debug dumping for the orc-lazy JIT."), 262 cl::init(DumpKind::NoDump), 263 cl::values(clEnumValN(DumpKind::NoDump, "no-dump", 264 "Don't dump anything."), 265 clEnumValN(DumpKind::DumpFuncsToStdOut, "funcs-to-stdout", 266 "Dump function names to stdout."), 267 clEnumValN(DumpKind::DumpModsToStdOut, "mods-to-stdout", 268 "Dump modules to stdout."), 269 clEnumValN(DumpKind::DumpModsToDisk, "mods-to-disk", 270 "Dump modules to the current " 271 "working directory. (WARNING: " 272 "will overwrite existing files).")), 273 cl::Hidden); 274 275 cl::list<BuiltinFunctionKind> GenerateBuiltinFunctions( 276 "generate", 277 cl::desc("Provide built-in functions for access by JITed code " 278 "(jit-kind=orc-lazy only)"), 279 cl::values(clEnumValN(BuiltinFunctionKind::DumpDebugDescriptor, 280 "__dump_jit_debug_descriptor", 281 "Dump __jit_debug_descriptor contents to stdout"), 282 clEnumValN(BuiltinFunctionKind::DumpDebugObjects, 283 "__dump_jit_debug_objects", 284 "Dump __jit_debug_descriptor in-memory debug " 285 "objects as tool output")), 286 cl::Hidden); 287 288 ExitOnError ExitOnErr; 289 } 290 291 LLVM_ATTRIBUTE_USED void linkComponents() { 292 errs() << (void *)&llvm_orc_registerEHFrameSectionWrapper 293 << (void *)&llvm_orc_deregisterEHFrameSectionWrapper 294 << (void *)&llvm_orc_registerJITLoaderGDBWrapper 295 << (void *)&llvm_orc_registerJITLoaderGDBAllocAction; 296 } 297 298 //===----------------------------------------------------------------------===// 299 // Object cache 300 // 301 // This object cache implementation writes cached objects to disk to the 302 // directory specified by CacheDir, using a filename provided in the module 303 // descriptor. The cache tries to load a saved object using that path if the 304 // file exists. CacheDir defaults to "", in which case objects are cached 305 // alongside their originating bitcodes. 306 // 307 class LLIObjectCache : public ObjectCache { 308 public: 309 LLIObjectCache(const std::string& CacheDir) : CacheDir(CacheDir) { 310 // Add trailing '/' to cache dir if necessary. 311 if (!this->CacheDir.empty() && 312 this->CacheDir[this->CacheDir.size() - 1] != '/') 313 this->CacheDir += '/'; 314 } 315 ~LLIObjectCache() override {} 316 317 void notifyObjectCompiled(const Module *M, MemoryBufferRef Obj) override { 318 const std::string &ModuleID = M->getModuleIdentifier(); 319 std::string CacheName; 320 if (!getCacheFilename(ModuleID, CacheName)) 321 return; 322 if (!CacheDir.empty()) { // Create user-defined cache dir. 323 SmallString<128> dir(sys::path::parent_path(CacheName)); 324 sys::fs::create_directories(Twine(dir)); 325 } 326 327 std::error_code EC; 328 raw_fd_ostream outfile(CacheName, EC, sys::fs::OF_None); 329 outfile.write(Obj.getBufferStart(), Obj.getBufferSize()); 330 outfile.close(); 331 } 332 333 std::unique_ptr<MemoryBuffer> getObject(const Module* M) override { 334 const std::string &ModuleID = M->getModuleIdentifier(); 335 std::string CacheName; 336 if (!getCacheFilename(ModuleID, CacheName)) 337 return nullptr; 338 // Load the object from the cache filename 339 ErrorOr<std::unique_ptr<MemoryBuffer>> IRObjectBuffer = 340 MemoryBuffer::getFile(CacheName, /*IsText=*/false, 341 /*RequiresNullTerminator=*/false); 342 // If the file isn't there, that's OK. 343 if (!IRObjectBuffer) 344 return nullptr; 345 // MCJIT will want to write into this buffer, and we don't want that 346 // because the file has probably just been mmapped. Instead we make 347 // a copy. The filed-based buffer will be released when it goes 348 // out of scope. 349 return MemoryBuffer::getMemBufferCopy(IRObjectBuffer.get()->getBuffer()); 350 } 351 352 private: 353 std::string CacheDir; 354 355 bool getCacheFilename(const std::string &ModID, std::string &CacheName) { 356 std::string Prefix("file:"); 357 size_t PrefixLength = Prefix.length(); 358 if (ModID.substr(0, PrefixLength) != Prefix) 359 return false; 360 361 std::string CacheSubdir = ModID.substr(PrefixLength); 362 // Transform "X:\foo" => "/X\foo" for convenience on Windows. 363 if (is_style_windows(llvm::sys::path::Style::native) && 364 isalpha(CacheSubdir[0]) && CacheSubdir[1] == ':') { 365 CacheSubdir[1] = CacheSubdir[0]; 366 CacheSubdir[0] = '/'; 367 } 368 369 CacheName = CacheDir + CacheSubdir; 370 size_t pos = CacheName.rfind('.'); 371 CacheName.replace(pos, CacheName.length() - pos, ".o"); 372 return true; 373 } 374 }; 375 376 class ORCPlatformSupport : public orc::LLJIT::PlatformSupport { 377 public: 378 ORCPlatformSupport(orc::LLJIT &J) : J(J) {} 379 380 Error initialize(orc::JITDylib &JD) override { 381 using llvm::orc::shared::SPSExecutorAddr; 382 using llvm::orc::shared::SPSString; 383 using SPSDLOpenSig = SPSExecutorAddr(SPSString, int32_t); 384 enum dlopen_mode : int32_t { 385 ORC_RT_RTLD_LAZY = 0x1, 386 ORC_RT_RTLD_NOW = 0x2, 387 ORC_RT_RTLD_LOCAL = 0x4, 388 ORC_RT_RTLD_GLOBAL = 0x8 389 }; 390 391 if (auto WrapperAddr = J.lookup("__orc_rt_jit_dlopen_wrapper")) { 392 return J.getExecutionSession().callSPSWrapper<SPSDLOpenSig>( 393 *WrapperAddr, DSOHandles[&JD], JD.getName(), 394 int32_t(ORC_RT_RTLD_LAZY)); 395 } else 396 return WrapperAddr.takeError(); 397 } 398 399 Error deinitialize(orc::JITDylib &JD) override { 400 using llvm::orc::shared::SPSExecutorAddr; 401 using SPSDLCloseSig = int32_t(SPSExecutorAddr); 402 403 if (auto WrapperAddr = J.lookup("__orc_rt_jit_dlclose_wrapper")) { 404 int32_t result; 405 auto E = J.getExecutionSession().callSPSWrapper<SPSDLCloseSig>( 406 *WrapperAddr, result, DSOHandles[&JD]); 407 if (E) 408 return E; 409 else if (result) 410 return make_error<StringError>("dlclose failed", 411 inconvertibleErrorCode()); 412 DSOHandles.erase(&JD); 413 } else 414 return WrapperAddr.takeError(); 415 return Error::success(); 416 } 417 418 private: 419 orc::LLJIT &J; 420 DenseMap<orc::JITDylib *, orc::ExecutorAddr> DSOHandles; 421 }; 422 423 // On Mingw and Cygwin, an external symbol named '__main' is called from the 424 // generated 'main' function to allow static initialization. To avoid linking 425 // problems with remote targets (because lli's remote target support does not 426 // currently handle external linking) we add a secondary module which defines 427 // an empty '__main' function. 428 static void addCygMingExtraModule(ExecutionEngine &EE, LLVMContext &Context, 429 StringRef TargetTripleStr) { 430 IRBuilder<> Builder(Context); 431 Triple TargetTriple(TargetTripleStr); 432 433 // Create a new module. 434 std::unique_ptr<Module> M = std::make_unique<Module>("CygMingHelper", Context); 435 M->setTargetTriple(TargetTripleStr); 436 437 // Create an empty function named "__main". 438 Type *ReturnTy; 439 if (TargetTriple.isArch64Bit()) 440 ReturnTy = Type::getInt64Ty(Context); 441 else 442 ReturnTy = Type::getInt32Ty(Context); 443 Function *Result = 444 Function::Create(FunctionType::get(ReturnTy, {}, false), 445 GlobalValue::ExternalLinkage, "__main", M.get()); 446 447 BasicBlock *BB = BasicBlock::Create(Context, "__main", Result); 448 Builder.SetInsertPoint(BB); 449 Value *ReturnVal = ConstantInt::get(ReturnTy, 0); 450 Builder.CreateRet(ReturnVal); 451 452 // Add this new module to the ExecutionEngine. 453 EE.addModule(std::move(M)); 454 } 455 456 CodeGenOpt::Level getOptLevel() { 457 switch (OptLevel) { 458 default: 459 WithColor::error(errs(), "lli") << "invalid optimization level.\n"; 460 exit(1); 461 case '0': return CodeGenOpt::None; 462 case '1': return CodeGenOpt::Less; 463 case ' ': 464 case '2': return CodeGenOpt::Default; 465 case '3': return CodeGenOpt::Aggressive; 466 } 467 llvm_unreachable("Unrecognized opt level."); 468 } 469 470 [[noreturn]] static void reportError(SMDiagnostic Err, const char *ProgName) { 471 Err.print(ProgName, errs()); 472 exit(1); 473 } 474 475 Error loadDylibs(); 476 int runOrcJIT(const char *ProgName); 477 void disallowOrcOptions(); 478 Expected<std::unique_ptr<orc::ExecutorProcessControl>> launchRemote(); 479 480 //===----------------------------------------------------------------------===// 481 // main Driver function 482 // 483 int main(int argc, char **argv, char * const *envp) { 484 InitLLVM X(argc, argv); 485 486 if (argc > 1) 487 ExitOnErr.setBanner(std::string(argv[0]) + ": "); 488 489 // If we have a native target, initialize it to ensure it is linked in and 490 // usable by the JIT. 491 InitializeNativeTarget(); 492 InitializeNativeTargetAsmPrinter(); 493 InitializeNativeTargetAsmParser(); 494 495 cl::ParseCommandLineOptions(argc, argv, 496 "llvm interpreter & dynamic compiler\n"); 497 498 // If the user doesn't want core files, disable them. 499 if (DisableCoreFiles) 500 sys::Process::PreventCoreFiles(); 501 502 ExitOnErr(loadDylibs()); 503 504 if (UseJITKind == JITKind::MCJIT) 505 disallowOrcOptions(); 506 else 507 return runOrcJIT(argv[0]); 508 509 // Old lli implementation based on ExecutionEngine and MCJIT. 510 LLVMContext Context; 511 512 // Load the bitcode... 513 SMDiagnostic Err; 514 std::unique_ptr<Module> Owner = parseIRFile(InputFile, Err, Context); 515 Module *Mod = Owner.get(); 516 if (!Mod) 517 reportError(Err, argv[0]); 518 519 if (EnableCacheManager) { 520 std::string CacheName("file:"); 521 CacheName.append(InputFile); 522 Mod->setModuleIdentifier(CacheName); 523 } 524 525 // If not jitting lazily, load the whole bitcode file eagerly too. 526 if (NoLazyCompilation) { 527 // Use *argv instead of argv[0] to work around a wrong GCC warning. 528 ExitOnError ExitOnErr(std::string(*argv) + 529 ": bitcode didn't read correctly: "); 530 ExitOnErr(Mod->materializeAll()); 531 } 532 533 std::string ErrorMsg; 534 EngineBuilder builder(std::move(Owner)); 535 builder.setMArch(codegen::getMArch()); 536 builder.setMCPU(codegen::getCPUStr()); 537 builder.setMAttrs(codegen::getFeatureList()); 538 if (auto RM = codegen::getExplicitRelocModel()) 539 builder.setRelocationModel(RM.value()); 540 if (auto CM = codegen::getExplicitCodeModel()) 541 builder.setCodeModel(CM.value()); 542 builder.setErrorStr(&ErrorMsg); 543 builder.setEngineKind(ForceInterpreter 544 ? EngineKind::Interpreter 545 : EngineKind::JIT); 546 547 // If we are supposed to override the target triple, do so now. 548 if (!TargetTriple.empty()) 549 Mod->setTargetTriple(Triple::normalize(TargetTriple)); 550 551 // Enable MCJIT if desired. 552 RTDyldMemoryManager *RTDyldMM = nullptr; 553 if (!ForceInterpreter) { 554 if (RemoteMCJIT) 555 RTDyldMM = new ForwardingMemoryManager(); 556 else 557 RTDyldMM = new SectionMemoryManager(); 558 559 // Deliberately construct a temp std::unique_ptr to pass in. Do not null out 560 // RTDyldMM: We still use it below, even though we don't own it. 561 builder.setMCJITMemoryManager( 562 std::unique_ptr<RTDyldMemoryManager>(RTDyldMM)); 563 } else if (RemoteMCJIT) { 564 WithColor::error(errs(), argv[0]) 565 << "remote process execution does not work with the interpreter.\n"; 566 exit(1); 567 } 568 569 builder.setOptLevel(getOptLevel()); 570 571 TargetOptions Options = 572 codegen::InitTargetOptionsFromCodeGenFlags(Triple(TargetTriple)); 573 if (codegen::getFloatABIForCalls() != FloatABI::Default) 574 Options.FloatABIType = codegen::getFloatABIForCalls(); 575 576 builder.setTargetOptions(Options); 577 578 std::unique_ptr<ExecutionEngine> EE(builder.create()); 579 if (!EE) { 580 if (!ErrorMsg.empty()) 581 WithColor::error(errs(), argv[0]) 582 << "error creating EE: " << ErrorMsg << "\n"; 583 else 584 WithColor::error(errs(), argv[0]) << "unknown error creating EE!\n"; 585 exit(1); 586 } 587 588 std::unique_ptr<LLIObjectCache> CacheManager; 589 if (EnableCacheManager) { 590 CacheManager.reset(new LLIObjectCache(ObjectCacheDir)); 591 EE->setObjectCache(CacheManager.get()); 592 } 593 594 // Load any additional modules specified on the command line. 595 for (unsigned i = 0, e = ExtraModules.size(); i != e; ++i) { 596 std::unique_ptr<Module> XMod = parseIRFile(ExtraModules[i], Err, Context); 597 if (!XMod) 598 reportError(Err, argv[0]); 599 if (EnableCacheManager) { 600 std::string CacheName("file:"); 601 CacheName.append(ExtraModules[i]); 602 XMod->setModuleIdentifier(CacheName); 603 } 604 EE->addModule(std::move(XMod)); 605 } 606 607 for (unsigned i = 0, e = ExtraObjects.size(); i != e; ++i) { 608 Expected<object::OwningBinary<object::ObjectFile>> Obj = 609 object::ObjectFile::createObjectFile(ExtraObjects[i]); 610 if (!Obj) { 611 // TODO: Actually report errors helpfully. 612 consumeError(Obj.takeError()); 613 reportError(Err, argv[0]); 614 } 615 object::OwningBinary<object::ObjectFile> &O = Obj.get(); 616 EE->addObjectFile(std::move(O)); 617 } 618 619 for (unsigned i = 0, e = ExtraArchives.size(); i != e; ++i) { 620 ErrorOr<std::unique_ptr<MemoryBuffer>> ArBufOrErr = 621 MemoryBuffer::getFileOrSTDIN(ExtraArchives[i]); 622 if (!ArBufOrErr) 623 reportError(Err, argv[0]); 624 std::unique_ptr<MemoryBuffer> &ArBuf = ArBufOrErr.get(); 625 626 Expected<std::unique_ptr<object::Archive>> ArOrErr = 627 object::Archive::create(ArBuf->getMemBufferRef()); 628 if (!ArOrErr) { 629 std::string Buf; 630 raw_string_ostream OS(Buf); 631 logAllUnhandledErrors(ArOrErr.takeError(), OS); 632 OS.flush(); 633 errs() << Buf; 634 exit(1); 635 } 636 std::unique_ptr<object::Archive> &Ar = ArOrErr.get(); 637 638 object::OwningBinary<object::Archive> OB(std::move(Ar), std::move(ArBuf)); 639 640 EE->addArchive(std::move(OB)); 641 } 642 643 // If the target is Cygwin/MingW and we are generating remote code, we 644 // need an extra module to help out with linking. 645 if (RemoteMCJIT && Triple(Mod->getTargetTriple()).isOSCygMing()) { 646 addCygMingExtraModule(*EE, Context, Mod->getTargetTriple()); 647 } 648 649 // The following functions have no effect if their respective profiling 650 // support wasn't enabled in the build configuration. 651 EE->RegisterJITEventListener( 652 JITEventListener::createOProfileJITEventListener()); 653 EE->RegisterJITEventListener( 654 JITEventListener::createIntelJITEventListener()); 655 if (!RemoteMCJIT) 656 EE->RegisterJITEventListener( 657 JITEventListener::createPerfJITEventListener()); 658 659 if (!NoLazyCompilation && RemoteMCJIT) { 660 WithColor::warning(errs(), argv[0]) 661 << "remote mcjit does not support lazy compilation\n"; 662 NoLazyCompilation = true; 663 } 664 EE->DisableLazyCompilation(NoLazyCompilation); 665 666 // If the user specifically requested an argv[0] to pass into the program, 667 // do it now. 668 if (!FakeArgv0.empty()) { 669 InputFile = static_cast<std::string>(FakeArgv0); 670 } else { 671 // Otherwise, if there is a .bc suffix on the executable strip it off, it 672 // might confuse the program. 673 if (StringRef(InputFile).endswith(".bc")) 674 InputFile.erase(InputFile.length() - 3); 675 } 676 677 // Add the module's name to the start of the vector of arguments to main(). 678 InputArgv.insert(InputArgv.begin(), InputFile); 679 680 // Call the main function from M as if its signature were: 681 // int main (int argc, char **argv, const char **envp) 682 // using the contents of Args to determine argc & argv, and the contents of 683 // EnvVars to determine envp. 684 // 685 Function *EntryFn = Mod->getFunction(EntryFunc); 686 if (!EntryFn) { 687 WithColor::error(errs(), argv[0]) 688 << '\'' << EntryFunc << "\' function not found in module.\n"; 689 return -1; 690 } 691 692 // Reset errno to zero on entry to main. 693 errno = 0; 694 695 int Result = -1; 696 697 // Sanity check use of remote-jit: LLI currently only supports use of the 698 // remote JIT on Unix platforms. 699 if (RemoteMCJIT) { 700 #ifndef LLVM_ON_UNIX 701 WithColor::warning(errs(), argv[0]) 702 << "host does not support external remote targets.\n"; 703 WithColor::note() << "defaulting to local execution\n"; 704 return -1; 705 #else 706 if (ChildExecPath.empty()) { 707 WithColor::error(errs(), argv[0]) 708 << "-remote-mcjit requires -mcjit-remote-process.\n"; 709 exit(1); 710 } else if (!sys::fs::can_execute(ChildExecPath)) { 711 WithColor::error(errs(), argv[0]) 712 << "unable to find usable child executable: '" << ChildExecPath 713 << "'\n"; 714 return -1; 715 } 716 #endif 717 } 718 719 std::unique_ptr<orc::ExecutorProcessControl> EPC = 720 RemoteMCJIT ? ExitOnErr(launchRemote()) 721 : ExitOnErr(orc::SelfExecutorProcessControl::Create()); 722 723 if (!RemoteMCJIT) { 724 // If the program doesn't explicitly call exit, we will need the Exit 725 // function later on to make an explicit call, so get the function now. 726 FunctionCallee Exit = Mod->getOrInsertFunction( 727 "exit", Type::getVoidTy(Context), Type::getInt32Ty(Context)); 728 729 // Run static constructors. 730 if (!ForceInterpreter) { 731 // Give MCJIT a chance to apply relocations and set page permissions. 732 EE->finalizeObject(); 733 } 734 EE->runStaticConstructorsDestructors(false); 735 736 // Trigger compilation separately so code regions that need to be 737 // invalidated will be known. 738 (void)EE->getPointerToFunction(EntryFn); 739 // Clear instruction cache before code will be executed. 740 if (RTDyldMM) 741 static_cast<SectionMemoryManager*>(RTDyldMM)->invalidateInstructionCache(); 742 743 // Run main. 744 Result = EE->runFunctionAsMain(EntryFn, InputArgv, envp); 745 746 // Run static destructors. 747 EE->runStaticConstructorsDestructors(true); 748 749 // If the program didn't call exit explicitly, we should call it now. 750 // This ensures that any atexit handlers get called correctly. 751 if (Function *ExitF = 752 dyn_cast<Function>(Exit.getCallee()->stripPointerCasts())) { 753 if (ExitF->getFunctionType() == Exit.getFunctionType()) { 754 std::vector<GenericValue> Args; 755 GenericValue ResultGV; 756 ResultGV.IntVal = APInt(32, Result); 757 Args.push_back(ResultGV); 758 EE->runFunction(ExitF, Args); 759 WithColor::error(errs(), argv[0]) 760 << "exit(" << Result << ") returned!\n"; 761 abort(); 762 } 763 } 764 WithColor::error(errs(), argv[0]) << "exit defined with wrong prototype!\n"; 765 abort(); 766 } else { 767 // else == "if (RemoteMCJIT)" 768 769 // Remote target MCJIT doesn't (yet) support static constructors. No reason 770 // it couldn't. This is a limitation of the LLI implementation, not the 771 // MCJIT itself. FIXME. 772 773 // Create a remote memory manager. 774 auto RemoteMM = ExitOnErr( 775 orc::EPCGenericRTDyldMemoryManager::CreateWithDefaultBootstrapSymbols( 776 *EPC)); 777 778 // Forward MCJIT's memory manager calls to the remote memory manager. 779 static_cast<ForwardingMemoryManager*>(RTDyldMM)->setMemMgr( 780 std::move(RemoteMM)); 781 782 // Forward MCJIT's symbol resolution calls to the remote. 783 static_cast<ForwardingMemoryManager *>(RTDyldMM)->setResolver( 784 ExitOnErr(RemoteResolver::Create(*EPC))); 785 // Grab the target address of the JIT'd main function on the remote and call 786 // it. 787 // FIXME: argv and envp handling. 788 auto Entry = 789 orc::ExecutorAddr(EE->getFunctionAddress(EntryFn->getName().str())); 790 EE->finalizeObject(); 791 LLVM_DEBUG(dbgs() << "Executing '" << EntryFn->getName() << "' at 0x" 792 << format("%llx", Entry.getValue()) << "\n"); 793 Result = ExitOnErr(EPC->runAsMain(Entry, {})); 794 795 // Like static constructors, the remote target MCJIT support doesn't handle 796 // this yet. It could. FIXME. 797 798 // Delete the EE - we need to tear it down *before* we terminate the session 799 // with the remote, otherwise it'll crash when it tries to release resources 800 // on a remote that has already been disconnected. 801 EE.reset(); 802 803 // Signal the remote target that we're done JITing. 804 ExitOnErr(EPC->disconnect()); 805 } 806 807 return Result; 808 } 809 810 static std::function<void(Module &)> createDebugDumper() { 811 switch (OrcDumpKind) { 812 case DumpKind::NoDump: 813 return [](Module &M) {}; 814 815 case DumpKind::DumpFuncsToStdOut: 816 return [](Module &M) { 817 printf("[ "); 818 819 for (const auto &F : M) { 820 if (F.isDeclaration()) 821 continue; 822 823 if (F.hasName()) { 824 std::string Name(std::string(F.getName())); 825 printf("%s ", Name.c_str()); 826 } else 827 printf("<anon> "); 828 } 829 830 printf("]\n"); 831 }; 832 833 case DumpKind::DumpModsToStdOut: 834 return [](Module &M) { 835 outs() << "----- Module Start -----\n" << M << "----- Module End -----\n"; 836 }; 837 838 case DumpKind::DumpModsToDisk: 839 return [](Module &M) { 840 std::error_code EC; 841 raw_fd_ostream Out(M.getModuleIdentifier() + ".ll", EC, 842 sys::fs::OF_TextWithCRLF); 843 if (EC) { 844 errs() << "Couldn't open " << M.getModuleIdentifier() 845 << " for dumping.\nError:" << EC.message() << "\n"; 846 exit(1); 847 } 848 Out << M; 849 }; 850 } 851 llvm_unreachable("Unknown DumpKind"); 852 } 853 854 Error loadDylibs() { 855 for (const auto &Dylib : Dylibs) { 856 std::string ErrMsg; 857 if (sys::DynamicLibrary::LoadLibraryPermanently(Dylib.c_str(), &ErrMsg)) 858 return make_error<StringError>(ErrMsg, inconvertibleErrorCode()); 859 } 860 861 return Error::success(); 862 } 863 864 static void exitOnLazyCallThroughFailure() { exit(1); } 865 866 Expected<orc::ThreadSafeModule> 867 loadModule(StringRef Path, orc::ThreadSafeContext TSCtx) { 868 SMDiagnostic Err; 869 auto M = parseIRFile(Path, Err, *TSCtx.getContext()); 870 if (!M) { 871 std::string ErrMsg; 872 { 873 raw_string_ostream ErrMsgStream(ErrMsg); 874 Err.print("lli", ErrMsgStream); 875 } 876 return make_error<StringError>(std::move(ErrMsg), inconvertibleErrorCode()); 877 } 878 879 if (EnableCacheManager) 880 M->setModuleIdentifier("file:" + M->getModuleIdentifier()); 881 882 return orc::ThreadSafeModule(std::move(M), std::move(TSCtx)); 883 } 884 885 int runOrcJIT(const char *ProgName) { 886 // Start setting up the JIT environment. 887 888 // Parse the main module. 889 orc::ThreadSafeContext TSCtx(std::make_unique<LLVMContext>()); 890 auto MainModule = ExitOnErr(loadModule(InputFile, TSCtx)); 891 892 // Get TargetTriple and DataLayout from the main module if they're explicitly 893 // set. 894 Optional<Triple> TT; 895 Optional<DataLayout> DL; 896 MainModule.withModuleDo([&](Module &M) { 897 if (!M.getTargetTriple().empty()) 898 TT = Triple(M.getTargetTriple()); 899 if (!M.getDataLayout().isDefault()) 900 DL = M.getDataLayout(); 901 }); 902 903 orc::LLLazyJITBuilder Builder; 904 905 Builder.setJITTargetMachineBuilder( 906 TT ? orc::JITTargetMachineBuilder(*TT) 907 : ExitOnErr(orc::JITTargetMachineBuilder::detectHost())); 908 909 TT = Builder.getJITTargetMachineBuilder()->getTargetTriple(); 910 if (DL) 911 Builder.setDataLayout(DL); 912 913 if (!codegen::getMArch().empty()) 914 Builder.getJITTargetMachineBuilder()->getTargetTriple().setArchName( 915 codegen::getMArch()); 916 917 Builder.getJITTargetMachineBuilder() 918 ->setCPU(codegen::getCPUStr()) 919 .addFeatures(codegen::getFeatureList()) 920 .setRelocationModel(codegen::getExplicitRelocModel()) 921 .setCodeModel(codegen::getExplicitCodeModel()); 922 923 // FIXME: Setting a dummy call-through manager in non-lazy mode prevents the 924 // JIT builder to instantiate a default (which would fail with an error for 925 // unsupported architectures). 926 if (UseJITKind != JITKind::OrcLazy) { 927 auto ES = std::make_unique<orc::ExecutionSession>( 928 ExitOnErr(orc::SelfExecutorProcessControl::Create())); 929 Builder.setLazyCallthroughManager( 930 std::make_unique<orc::LazyCallThroughManager>(*ES, 0, nullptr)); 931 Builder.setExecutionSession(std::move(ES)); 932 } 933 934 Builder.setLazyCompileFailureAddr( 935 orc::ExecutorAddr::fromPtr(exitOnLazyCallThroughFailure)); 936 Builder.setNumCompileThreads(LazyJITCompileThreads); 937 938 // If the object cache is enabled then set a custom compile function 939 // creator to use the cache. 940 std::unique_ptr<LLIObjectCache> CacheManager; 941 if (EnableCacheManager) { 942 943 CacheManager = std::make_unique<LLIObjectCache>(ObjectCacheDir); 944 945 Builder.setCompileFunctionCreator( 946 [&](orc::JITTargetMachineBuilder JTMB) 947 -> Expected<std::unique_ptr<orc::IRCompileLayer::IRCompiler>> { 948 if (LazyJITCompileThreads > 0) 949 return std::make_unique<orc::ConcurrentIRCompiler>(std::move(JTMB), 950 CacheManager.get()); 951 952 auto TM = JTMB.createTargetMachine(); 953 if (!TM) 954 return TM.takeError(); 955 956 return std::make_unique<orc::TMOwningSimpleCompiler>(std::move(*TM), 957 CacheManager.get()); 958 }); 959 } 960 961 // Set up LLJIT platform. 962 LLJITPlatform P = Platform; 963 if (P == LLJITPlatform::DetectHost) { 964 if (JITLinker == JITLinkerKind::JITLink && !OrcRuntime.empty() && 965 (TT->isOSBinFormatMachO() || TT->isOSBinFormatELF())) 966 P = LLJITPlatform::ORC; 967 else 968 P = LLJITPlatform::GenericIR; 969 } 970 switch (P) { 971 case LLJITPlatform::ORC: 972 Builder.setPlatformSetUp([](llvm::orc::LLJIT &J) -> llvm::Error { 973 J.setPlatformSupport(std::make_unique<ORCPlatformSupport>(J)); 974 return Error::success(); 975 }); 976 break; 977 case LLJITPlatform::GenericIR: 978 // Nothing to do: LLJITBuilder will use this by default. 979 break; 980 case LLJITPlatform::Inactive: 981 Builder.setPlatformSetUp(orc::setUpInactivePlatform); 982 break; 983 default: 984 llvm_unreachable("Unrecognized platform value"); 985 } 986 987 std::unique_ptr<orc::ExecutorProcessControl> EPC = nullptr; 988 if (JITLinker == JITLinkerKind::JITLink) { 989 EPC = ExitOnErr(orc::SelfExecutorProcessControl::Create( 990 std::make_shared<orc::SymbolStringPool>())); 991 992 Builder.setObjectLinkingLayerCreator([&EPC, &P](orc::ExecutionSession &ES, 993 const Triple &TT) { 994 auto L = std::make_unique<orc::ObjectLinkingLayer>(ES, EPC->getMemMgr()); 995 if (P != LLJITPlatform::ORC) { 996 L->addPlugin(std::make_unique<orc::EHFrameRegistrationPlugin>( 997 ES, ExitOnErr(orc::EPCEHFrameRegistrar::Create(ES)))); 998 L->addPlugin(std::make_unique<orc::DebugObjectManagerPlugin>( 999 ES, ExitOnErr(orc::createJITLoaderGDBRegistrar(ES)))); 1000 } 1001 return L; 1002 }); 1003 } 1004 1005 auto J = ExitOnErr(Builder.create()); 1006 1007 auto *ObjLayer = &J->getObjLinkingLayer(); 1008 if (auto *RTDyldObjLayer = dyn_cast<orc::RTDyldObjectLinkingLayer>(ObjLayer)) 1009 RTDyldObjLayer->registerJITEventListener( 1010 *JITEventListener::createGDBRegistrationListener()); 1011 1012 if (PerModuleLazy) 1013 J->setPartitionFunction(orc::CompileOnDemandLayer::compileWholeModule); 1014 1015 auto Dump = createDebugDumper(); 1016 1017 J->getIRTransformLayer().setTransform( 1018 [&](orc::ThreadSafeModule TSM, 1019 const orc::MaterializationResponsibility &R) { 1020 TSM.withModuleDo([&](Module &M) { 1021 if (verifyModule(M, &dbgs())) { 1022 dbgs() << "Bad module: " << &M << "\n"; 1023 exit(1); 1024 } 1025 Dump(M); 1026 }); 1027 return TSM; 1028 }); 1029 1030 orc::MangleAndInterner Mangle(J->getExecutionSession(), J->getDataLayout()); 1031 1032 // Unless they've been explicitly disabled, make process symbols available to 1033 // JIT'd code. 1034 if (!NoProcessSymbols) 1035 J->getMainJITDylib().addGenerator( 1036 ExitOnErr(orc::DynamicLibrarySearchGenerator::GetForCurrentProcess( 1037 J->getDataLayout().getGlobalPrefix(), 1038 [MainName = Mangle("main")](const orc::SymbolStringPtr &Name) { 1039 return Name != MainName; 1040 }))); 1041 1042 if (GenerateBuiltinFunctions.size() > 0) 1043 J->getMainJITDylib().addGenerator( 1044 std::make_unique<LLIBuiltinFunctionGenerator>(GenerateBuiltinFunctions, 1045 Mangle)); 1046 1047 if (P == LLJITPlatform::ORC) { 1048 if (auto *OLL = llvm::dyn_cast<llvm::orc::ObjectLinkingLayer>(ObjLayer)) { 1049 auto &ES = J->getExecutionSession(); 1050 if (TT->isOSBinFormatMachO()) { 1051 if (auto P = llvm::orc::MachOPlatform::Create( 1052 ES, *OLL, J->getMainJITDylib(), OrcRuntime.c_str())) 1053 ES.setPlatform(std::move(*P)); 1054 else 1055 ExitOnErr(P.takeError()); 1056 } else if (TT->isOSBinFormatELF()) { 1057 if (auto P = llvm::orc::ELFNixPlatform::Create( 1058 ES, *OLL, J->getMainJITDylib(), OrcRuntime.c_str())) 1059 ES.setPlatform(std::move(*P)); 1060 else 1061 ExitOnErr(P.takeError()); 1062 } else { 1063 errs() << "No ORC platform support\n"; 1064 exit(1); 1065 } 1066 } else { 1067 errs() << "ORC platform requires JITLink\n"; 1068 exit(1); 1069 } 1070 } 1071 1072 // Regular modules are greedy: They materialize as a whole and trigger 1073 // materialization for all required symbols recursively. Lazy modules go 1074 // through partitioning and they replace outgoing calls with reexport stubs 1075 // that resolve on call-through. 1076 auto AddModule = [&](orc::JITDylib &JD, orc::ThreadSafeModule M) { 1077 return UseJITKind == JITKind::OrcLazy ? J->addLazyIRModule(JD, std::move(M)) 1078 : J->addIRModule(JD, std::move(M)); 1079 }; 1080 1081 // Add the main module. 1082 ExitOnErr(AddModule(J->getMainJITDylib(), std::move(MainModule))); 1083 1084 // Create JITDylibs and add any extra modules. 1085 { 1086 // Create JITDylibs, keep a map from argument index to dylib. We will use 1087 // -extra-module argument indexes to determine what dylib to use for each 1088 // -extra-module. 1089 std::map<unsigned, orc::JITDylib *> IdxToDylib; 1090 IdxToDylib[0] = &J->getMainJITDylib(); 1091 for (auto JDItr = JITDylibs.begin(), JDEnd = JITDylibs.end(); 1092 JDItr != JDEnd; ++JDItr) { 1093 orc::JITDylib *JD = J->getJITDylibByName(*JDItr); 1094 if (!JD) { 1095 JD = &ExitOnErr(J->createJITDylib(*JDItr)); 1096 J->getMainJITDylib().addToLinkOrder(*JD); 1097 JD->addToLinkOrder(J->getMainJITDylib()); 1098 } 1099 IdxToDylib[JITDylibs.getPosition(JDItr - JITDylibs.begin())] = JD; 1100 } 1101 1102 for (auto EMItr = ExtraModules.begin(), EMEnd = ExtraModules.end(); 1103 EMItr != EMEnd; ++EMItr) { 1104 auto M = ExitOnErr(loadModule(*EMItr, TSCtx)); 1105 1106 auto EMIdx = ExtraModules.getPosition(EMItr - ExtraModules.begin()); 1107 assert(EMIdx != 0 && "ExtraModule should have index > 0"); 1108 auto JDItr = std::prev(IdxToDylib.lower_bound(EMIdx)); 1109 auto &JD = *JDItr->second; 1110 ExitOnErr(AddModule(JD, std::move(M))); 1111 } 1112 1113 for (auto EAItr = ExtraArchives.begin(), EAEnd = ExtraArchives.end(); 1114 EAItr != EAEnd; ++EAItr) { 1115 auto EAIdx = ExtraArchives.getPosition(EAItr - ExtraArchives.begin()); 1116 assert(EAIdx != 0 && "ExtraArchive should have index > 0"); 1117 auto JDItr = std::prev(IdxToDylib.lower_bound(EAIdx)); 1118 auto &JD = *JDItr->second; 1119 JD.addGenerator(ExitOnErr(orc::StaticLibraryDefinitionGenerator::Load( 1120 J->getObjLinkingLayer(), EAItr->c_str(), *TT))); 1121 } 1122 } 1123 1124 // Add the objects. 1125 for (auto &ObjPath : ExtraObjects) { 1126 auto Obj = ExitOnErr(errorOrToExpected(MemoryBuffer::getFile(ObjPath))); 1127 ExitOnErr(J->addObjectFile(std::move(Obj))); 1128 } 1129 1130 // Run any static constructors. 1131 ExitOnErr(J->initialize(J->getMainJITDylib())); 1132 1133 // Run any -thread-entry points. 1134 std::vector<std::thread> AltEntryThreads; 1135 for (auto &ThreadEntryPoint : ThreadEntryPoints) { 1136 auto EntryPointSym = ExitOnErr(J->lookup(ThreadEntryPoint)); 1137 typedef void (*EntryPointPtr)(); 1138 auto EntryPoint = EntryPointSym.toPtr<EntryPointPtr>(); 1139 AltEntryThreads.push_back(std::thread([EntryPoint]() { EntryPoint(); })); 1140 } 1141 1142 // Resolve and run the main function. 1143 auto MainAddr = ExitOnErr(J->lookup(EntryFunc)); 1144 int Result; 1145 1146 if (EPC) { 1147 // ExecutorProcessControl-based execution with JITLink. 1148 Result = ExitOnErr(EPC->runAsMain(MainAddr, InputArgv)); 1149 } else { 1150 // Manual in-process execution with RuntimeDyld. 1151 using MainFnTy = int(int, char *[]); 1152 auto MainFn = MainAddr.toPtr<MainFnTy *>(); 1153 Result = orc::runAsMain(MainFn, InputArgv, StringRef(InputFile)); 1154 } 1155 1156 // Wait for -entry-point threads. 1157 for (auto &AltEntryThread : AltEntryThreads) 1158 AltEntryThread.join(); 1159 1160 // Run destructors. 1161 ExitOnErr(J->deinitialize(J->getMainJITDylib())); 1162 1163 return Result; 1164 } 1165 1166 void disallowOrcOptions() { 1167 // Make sure nobody used an orc-lazy specific option accidentally. 1168 1169 if (LazyJITCompileThreads != 0) { 1170 errs() << "-compile-threads requires -jit-kind=orc-lazy\n"; 1171 exit(1); 1172 } 1173 1174 if (!ThreadEntryPoints.empty()) { 1175 errs() << "-thread-entry requires -jit-kind=orc-lazy\n"; 1176 exit(1); 1177 } 1178 1179 if (PerModuleLazy) { 1180 errs() << "-per-module-lazy requires -jit-kind=orc-lazy\n"; 1181 exit(1); 1182 } 1183 } 1184 1185 Expected<std::unique_ptr<orc::ExecutorProcessControl>> launchRemote() { 1186 #ifndef LLVM_ON_UNIX 1187 llvm_unreachable("launchRemote not supported on non-Unix platforms"); 1188 #else 1189 int PipeFD[2][2]; 1190 pid_t ChildPID; 1191 1192 // Create two pipes. 1193 if (pipe(PipeFD[0]) != 0 || pipe(PipeFD[1]) != 0) 1194 perror("Error creating pipe: "); 1195 1196 ChildPID = fork(); 1197 1198 if (ChildPID == 0) { 1199 // In the child... 1200 1201 // Close the parent ends of the pipes 1202 close(PipeFD[0][1]); 1203 close(PipeFD[1][0]); 1204 1205 1206 // Execute the child process. 1207 std::unique_ptr<char[]> ChildPath, ChildIn, ChildOut; 1208 { 1209 ChildPath.reset(new char[ChildExecPath.size() + 1]); 1210 std::copy(ChildExecPath.begin(), ChildExecPath.end(), &ChildPath[0]); 1211 ChildPath[ChildExecPath.size()] = '\0'; 1212 std::string ChildInStr = utostr(PipeFD[0][0]); 1213 ChildIn.reset(new char[ChildInStr.size() + 1]); 1214 std::copy(ChildInStr.begin(), ChildInStr.end(), &ChildIn[0]); 1215 ChildIn[ChildInStr.size()] = '\0'; 1216 std::string ChildOutStr = utostr(PipeFD[1][1]); 1217 ChildOut.reset(new char[ChildOutStr.size() + 1]); 1218 std::copy(ChildOutStr.begin(), ChildOutStr.end(), &ChildOut[0]); 1219 ChildOut[ChildOutStr.size()] = '\0'; 1220 } 1221 1222 char * const args[] = { &ChildPath[0], &ChildIn[0], &ChildOut[0], nullptr }; 1223 int rc = execv(ChildExecPath.c_str(), args); 1224 if (rc != 0) 1225 perror("Error executing child process: "); 1226 llvm_unreachable("Error executing child process"); 1227 } 1228 // else we're the parent... 1229 1230 // Close the child ends of the pipes 1231 close(PipeFD[0][0]); 1232 close(PipeFD[1][1]); 1233 1234 // Return a SimpleRemoteEPC instance connected to our end of the pipes. 1235 return orc::SimpleRemoteEPC::Create<orc::FDSimpleRemoteEPCTransport>( 1236 std::make_unique<llvm::orc::InPlaceTaskDispatcher>(), 1237 llvm::orc::SimpleRemoteEPC::Setup(), PipeFD[1][0], PipeFD[0][1]); 1238 #endif 1239 } 1240