1 //===-- ClangExpressionParser.cpp -------------------------------*- C++ -*-===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 10 // C Includes 11 // C++ Includes 12 // Other libraries and framework includes 13 #include "clang/AST/ASTContext.h" 14 #include "clang/AST/ASTDiagnostic.h" 15 #include "clang/AST/ExternalASTSource.h" 16 #include "clang/Basic/DiagnosticIDs.h" 17 #include "clang/Basic/FileManager.h" 18 #include "clang/Basic/SourceLocation.h" 19 #include "clang/Basic/TargetInfo.h" 20 #include "clang/Basic/Version.h" 21 #include "clang/CodeGen/CodeGenAction.h" 22 #include "clang/CodeGen/ModuleBuilder.h" 23 #include "clang/Edit/Commit.h" 24 #include "clang/Edit/EditedSource.h" 25 #include "clang/Edit/EditsReceiver.h" 26 #include "clang/Frontend/CompilerInstance.h" 27 #include "clang/Frontend/CompilerInvocation.h" 28 #include "clang/Frontend/FrontendActions.h" 29 #include "clang/Frontend/FrontendDiagnostic.h" 30 #include "clang/Frontend/FrontendPluginRegistry.h" 31 #include "clang/Frontend/TextDiagnosticBuffer.h" 32 #include "clang/Frontend/TextDiagnosticPrinter.h" 33 #include "clang/Lex/Preprocessor.h" 34 #include "clang/Parse/ParseAST.h" 35 #include "clang/Rewrite/Core/Rewriter.h" 36 #include "clang/Rewrite/Frontend/FrontendActions.h" 37 #include "clang/Sema/SemaConsumer.h" 38 39 #include "llvm/ADT/StringRef.h" 40 #include "llvm/ExecutionEngine/ExecutionEngine.h" 41 #include "llvm/Support/Debug.h" 42 #include "llvm/Support/FileSystem.h" 43 #include "llvm/Support/TargetSelect.h" 44 45 #pragma clang diagnostic push 46 #pragma clang diagnostic ignored "-Wglobal-constructors" 47 #include "llvm/ExecutionEngine/MCJIT.h" 48 #pragma clang diagnostic pop 49 50 #include "llvm/IR/LLVMContext.h" 51 #include "llvm/IR/Module.h" 52 #include "llvm/Support/DynamicLibrary.h" 53 #include "llvm/Support/ErrorHandling.h" 54 #include "llvm/Support/Host.h" 55 #include "llvm/Support/MemoryBuffer.h" 56 #include "llvm/Support/Signals.h" 57 58 // Project includes 59 #include "ClangDiagnostic.h" 60 #include "ClangExpressionParser.h" 61 62 #include "ClangASTSource.h" 63 #include "ClangExpressionDeclMap.h" 64 #include "ClangExpressionHelper.h" 65 #include "ClangModulesDeclVendor.h" 66 #include "ClangPersistentVariables.h" 67 #include "IRForTarget.h" 68 69 #include "lldb/Core/Debugger.h" 70 #include "lldb/Core/Disassembler.h" 71 #include "lldb/Core/Module.h" 72 #include "lldb/Core/StreamFile.h" 73 #include "lldb/Expression/IRDynamicChecks.h" 74 #include "lldb/Expression/IRExecutionUnit.h" 75 #include "lldb/Expression/IRInterpreter.h" 76 #include "lldb/Host/File.h" 77 #include "lldb/Host/HostInfo.h" 78 #include "lldb/Symbol/ClangASTContext.h" 79 #include "lldb/Symbol/SymbolVendor.h" 80 #include "lldb/Target/ExecutionContext.h" 81 #include "lldb/Target/Language.h" 82 #include "lldb/Target/ObjCLanguageRuntime.h" 83 #include "lldb/Target/Process.h" 84 #include "lldb/Target/Target.h" 85 #include "lldb/Target/ThreadPlanCallFunction.h" 86 #include "lldb/Utility/DataBufferHeap.h" 87 #include "lldb/Utility/LLDBAssert.h" 88 #include "lldb/Utility/Log.h" 89 #include "lldb/Utility/Stream.h" 90 #include "lldb/Utility/StreamString.h" 91 #include "lldb/Utility/StringList.h" 92 93 using namespace clang; 94 using namespace llvm; 95 using namespace lldb_private; 96 97 //===----------------------------------------------------------------------===// 98 // Utility Methods for Clang 99 //===----------------------------------------------------------------------===// 100 101 class ClangExpressionParser::LLDBPreprocessorCallbacks : public PPCallbacks { 102 ClangModulesDeclVendor &m_decl_vendor; 103 ClangPersistentVariables &m_persistent_vars; 104 StreamString m_error_stream; 105 bool m_has_errors = false; 106 107 public: 108 LLDBPreprocessorCallbacks(ClangModulesDeclVendor &decl_vendor, 109 ClangPersistentVariables &persistent_vars) 110 : m_decl_vendor(decl_vendor), m_persistent_vars(persistent_vars) {} 111 112 void moduleImport(SourceLocation import_location, clang::ModuleIdPath path, 113 const clang::Module * /*null*/) override { 114 std::vector<ConstString> string_path; 115 116 for (const std::pair<IdentifierInfo *, SourceLocation> &component : path) { 117 string_path.push_back(ConstString(component.first->getName())); 118 } 119 120 StreamString error_stream; 121 122 ClangModulesDeclVendor::ModuleVector exported_modules; 123 124 if (!m_decl_vendor.AddModule(string_path, &exported_modules, 125 m_error_stream)) { 126 m_has_errors = true; 127 } 128 129 for (ClangModulesDeclVendor::ModuleID module : exported_modules) { 130 m_persistent_vars.AddHandLoadedClangModule(module); 131 } 132 } 133 134 bool hasErrors() { return m_has_errors; } 135 136 llvm::StringRef getErrorString() { return m_error_stream.GetString(); } 137 }; 138 139 class ClangDiagnosticManagerAdapter : public clang::DiagnosticConsumer { 140 public: 141 ClangDiagnosticManagerAdapter() 142 : m_passthrough(new clang::TextDiagnosticBuffer) {} 143 144 ClangDiagnosticManagerAdapter( 145 const std::shared_ptr<clang::TextDiagnosticBuffer> &passthrough) 146 : m_passthrough(passthrough) {} 147 148 void ResetManager(DiagnosticManager *manager = nullptr) { 149 m_manager = manager; 150 } 151 152 void HandleDiagnostic(DiagnosticsEngine::Level DiagLevel, 153 const clang::Diagnostic &Info) { 154 if (m_manager) { 155 llvm::SmallVector<char, 32> diag_str; 156 Info.FormatDiagnostic(diag_str); 157 diag_str.push_back('\0'); 158 const char *data = diag_str.data(); 159 160 lldb_private::DiagnosticSeverity severity; 161 bool make_new_diagnostic = true; 162 163 switch (DiagLevel) { 164 case DiagnosticsEngine::Level::Fatal: 165 case DiagnosticsEngine::Level::Error: 166 severity = eDiagnosticSeverityError; 167 break; 168 case DiagnosticsEngine::Level::Warning: 169 severity = eDiagnosticSeverityWarning; 170 break; 171 case DiagnosticsEngine::Level::Remark: 172 case DiagnosticsEngine::Level::Ignored: 173 severity = eDiagnosticSeverityRemark; 174 break; 175 case DiagnosticsEngine::Level::Note: 176 m_manager->AppendMessageToDiagnostic(data); 177 make_new_diagnostic = false; 178 } 179 if (make_new_diagnostic) { 180 ClangDiagnostic *new_diagnostic = 181 new ClangDiagnostic(data, severity, Info.getID()); 182 m_manager->AddDiagnostic(new_diagnostic); 183 184 // Don't store away warning fixits, since the compiler doesn't have 185 // enough 186 // context in an expression for the warning to be useful. 187 // FIXME: Should we try to filter out FixIts that apply to our generated 188 // code, and not the user's expression? 189 if (severity == eDiagnosticSeverityError) { 190 size_t num_fixit_hints = Info.getNumFixItHints(); 191 for (size_t i = 0; i < num_fixit_hints; i++) { 192 const clang::FixItHint &fixit = Info.getFixItHint(i); 193 if (!fixit.isNull()) 194 new_diagnostic->AddFixitHint(fixit); 195 } 196 } 197 } 198 } 199 200 m_passthrough->HandleDiagnostic(DiagLevel, Info); 201 } 202 203 void FlushDiagnostics(DiagnosticsEngine &Diags) { 204 m_passthrough->FlushDiagnostics(Diags); 205 } 206 207 DiagnosticConsumer *clone(DiagnosticsEngine &Diags) const { 208 return new ClangDiagnosticManagerAdapter(m_passthrough); 209 } 210 211 clang::TextDiagnosticBuffer *GetPassthrough() { return m_passthrough.get(); } 212 213 private: 214 DiagnosticManager *m_manager = nullptr; 215 std::shared_ptr<clang::TextDiagnosticBuffer> m_passthrough; 216 }; 217 218 //===----------------------------------------------------------------------===// 219 // Implementation of ClangExpressionParser 220 //===----------------------------------------------------------------------===// 221 222 ClangExpressionParser::ClangExpressionParser(ExecutionContextScope *exe_scope, 223 Expression &expr, 224 bool generate_debug_info) 225 : ExpressionParser(exe_scope, expr, generate_debug_info), m_compiler(), 226 m_code_generator(), m_pp_callbacks(nullptr) { 227 Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_EXPRESSIONS)); 228 229 // We can't compile expressions without a target. So if the exe_scope is null 230 // or doesn't have a target, 231 // then we just need to get out of here. I'll lldb_assert and not make any of 232 // the compiler objects since 233 // I can't return errors directly from the constructor. Further calls will 234 // check if the compiler was made and 235 // bag out if it wasn't. 236 237 if (!exe_scope) { 238 lldb_assert(exe_scope, "Can't make an expression parser with a null scope.", 239 __FUNCTION__, __FILE__, __LINE__); 240 return; 241 } 242 243 lldb::TargetSP target_sp; 244 target_sp = exe_scope->CalculateTarget(); 245 if (!target_sp) { 246 lldb_assert(target_sp.get(), 247 "Can't make an expression parser with a null target.", 248 __FUNCTION__, __FILE__, __LINE__); 249 return; 250 } 251 252 // 1. Create a new compiler instance. 253 m_compiler.reset(new CompilerInstance()); 254 lldb::LanguageType frame_lang = 255 expr.Language(); // defaults to lldb::eLanguageTypeUnknown 256 bool overridden_target_opts = false; 257 lldb_private::LanguageRuntime *lang_rt = nullptr; 258 259 std::string abi; 260 ArchSpec target_arch; 261 target_arch = target_sp->GetArchitecture(); 262 263 const auto target_machine = target_arch.GetMachine(); 264 265 // If the expression is being evaluated in the context of an existing 266 // stack frame, we introspect to see if the language runtime is available. 267 268 lldb::StackFrameSP frame_sp = exe_scope->CalculateStackFrame(); 269 lldb::ProcessSP process_sp = exe_scope->CalculateProcess(); 270 271 // Make sure the user hasn't provided a preferred execution language 272 // with `expression --language X -- ...` 273 if (frame_sp && frame_lang == lldb::eLanguageTypeUnknown) 274 frame_lang = frame_sp->GetLanguage(); 275 276 if (process_sp && frame_lang != lldb::eLanguageTypeUnknown) { 277 lang_rt = process_sp->GetLanguageRuntime(frame_lang); 278 if (log) 279 log->Printf("Frame has language of type %s", 280 Language::GetNameForLanguageType(frame_lang)); 281 } 282 283 // 2. Configure the compiler with a set of default options that are 284 // appropriate 285 // for most situations. 286 if (target_arch.IsValid()) { 287 std::string triple = target_arch.GetTriple().str(); 288 m_compiler->getTargetOpts().Triple = triple; 289 if (log) 290 log->Printf("Using %s as the target triple", 291 m_compiler->getTargetOpts().Triple.c_str()); 292 } else { 293 // If we get here we don't have a valid target and just have to guess. 294 // Sometimes this will be ok to just use the host target triple (when we 295 // evaluate say "2+3", but other 296 // expressions like breakpoint conditions and other things that _are_ target 297 // specific really shouldn't just be 298 // using the host triple. In such a case the language runtime should expose 299 // an overridden options set (3), 300 // below. 301 m_compiler->getTargetOpts().Triple = llvm::sys::getDefaultTargetTriple(); 302 if (log) 303 log->Printf("Using default target triple of %s", 304 m_compiler->getTargetOpts().Triple.c_str()); 305 } 306 // Now add some special fixes for known architectures: 307 // Any arm32 iOS environment, but not on arm64 308 if (m_compiler->getTargetOpts().Triple.find("arm64") == std::string::npos && 309 m_compiler->getTargetOpts().Triple.find("arm") != std::string::npos && 310 m_compiler->getTargetOpts().Triple.find("ios") != std::string::npos) { 311 m_compiler->getTargetOpts().ABI = "apcs-gnu"; 312 } 313 // Supported subsets of x86 314 if (target_machine == llvm::Triple::x86 || 315 target_machine == llvm::Triple::x86_64) { 316 m_compiler->getTargetOpts().Features.push_back("+sse"); 317 m_compiler->getTargetOpts().Features.push_back("+sse2"); 318 } 319 320 // Set the target CPU to generate code for. 321 // This will be empty for any CPU that doesn't really need to make a special 322 // CPU string. 323 m_compiler->getTargetOpts().CPU = target_arch.GetClangTargetCPU(); 324 325 // Set the target ABI 326 abi = GetClangTargetABI(target_arch); 327 if (!abi.empty()) 328 m_compiler->getTargetOpts().ABI = abi; 329 330 // 3. Now allow the runtime to provide custom configuration options for the 331 // target. 332 // In this case, a specialized language runtime is available and we can query 333 // it for extra options. 334 // For 99% of use cases, this will not be needed and should be provided when 335 // basic platform detection is not enough. 336 if (lang_rt) 337 overridden_target_opts = 338 lang_rt->GetOverrideExprOptions(m_compiler->getTargetOpts()); 339 340 if (overridden_target_opts) 341 if (log && log->GetVerbose()) { 342 LLDB_LOGV( 343 log, "Using overridden target options for the expression evaluation"); 344 345 auto opts = m_compiler->getTargetOpts(); 346 LLDB_LOGV(log, "Triple: '{0}'", opts.Triple); 347 LLDB_LOGV(log, "CPU: '{0}'", opts.CPU); 348 LLDB_LOGV(log, "FPMath: '{0}'", opts.FPMath); 349 LLDB_LOGV(log, "ABI: '{0}'", opts.ABI); 350 LLDB_LOGV(log, "LinkerVersion: '{0}'", opts.LinkerVersion); 351 StringList::LogDump(log, opts.FeaturesAsWritten, "FeaturesAsWritten"); 352 StringList::LogDump(log, opts.Features, "Features"); 353 StringList::LogDump(log, opts.Reciprocals, "Reciprocals"); 354 } 355 356 // 4. Create and install the target on the compiler. 357 m_compiler->createDiagnostics(); 358 auto target_info = TargetInfo::CreateTargetInfo( 359 m_compiler->getDiagnostics(), m_compiler->getInvocation().TargetOpts); 360 if (log) { 361 log->Printf("Using SIMD alignment: %d", target_info->getSimdDefaultAlign()); 362 log->Printf("Target datalayout string: '%s'", 363 target_info->getDataLayout().getStringRepresentation().c_str()); 364 log->Printf("Target ABI: '%s'", target_info->getABI().str().c_str()); 365 log->Printf("Target vector alignment: %d", 366 target_info->getMaxVectorAlign()); 367 } 368 m_compiler->setTarget(target_info); 369 370 assert(m_compiler->hasTarget()); 371 372 // 5. Set language options. 373 lldb::LanguageType language = expr.Language(); 374 375 switch (language) { 376 case lldb::eLanguageTypeC: 377 case lldb::eLanguageTypeC89: 378 case lldb::eLanguageTypeC99: 379 case lldb::eLanguageTypeC11: 380 // FIXME: the following language option is a temporary workaround, 381 // to "ask for C, get C++." 382 // For now, the expression parser must use C++ anytime the 383 // language is a C family language, because the expression parser 384 // uses features of C++ to capture values. 385 m_compiler->getLangOpts().CPlusPlus = true; 386 break; 387 case lldb::eLanguageTypeObjC: 388 m_compiler->getLangOpts().ObjC1 = true; 389 m_compiler->getLangOpts().ObjC2 = true; 390 // FIXME: the following language option is a temporary workaround, 391 // to "ask for ObjC, get ObjC++" (see comment above). 392 m_compiler->getLangOpts().CPlusPlus = true; 393 break; 394 case lldb::eLanguageTypeC_plus_plus: 395 case lldb::eLanguageTypeC_plus_plus_11: 396 case lldb::eLanguageTypeC_plus_plus_14: 397 m_compiler->getLangOpts().CPlusPlus11 = true; 398 m_compiler->getHeaderSearchOpts().UseLibcxx = true; 399 LLVM_FALLTHROUGH; 400 case lldb::eLanguageTypeC_plus_plus_03: 401 m_compiler->getLangOpts().CPlusPlus = true; 402 // FIXME: the following language option is a temporary workaround, 403 // to "ask for C++, get ObjC++". Apple hopes to remove this requirement 404 // on non-Apple platforms, but for now it is needed. 405 m_compiler->getLangOpts().ObjC1 = true; 406 break; 407 case lldb::eLanguageTypeObjC_plus_plus: 408 case lldb::eLanguageTypeUnknown: 409 default: 410 m_compiler->getLangOpts().ObjC1 = true; 411 m_compiler->getLangOpts().ObjC2 = true; 412 m_compiler->getLangOpts().CPlusPlus = true; 413 m_compiler->getLangOpts().CPlusPlus11 = true; 414 m_compiler->getHeaderSearchOpts().UseLibcxx = true; 415 break; 416 } 417 418 m_compiler->getLangOpts().Bool = true; 419 m_compiler->getLangOpts().WChar = true; 420 m_compiler->getLangOpts().Blocks = true; 421 m_compiler->getLangOpts().DebuggerSupport = 422 true; // Features specifically for debugger clients 423 if (expr.DesiredResultType() == Expression::eResultTypeId) 424 m_compiler->getLangOpts().DebuggerCastResultToId = true; 425 426 m_compiler->getLangOpts().CharIsSigned = 427 ArchSpec(m_compiler->getTargetOpts().Triple.c_str()) 428 .CharIsSignedByDefault(); 429 430 // Spell checking is a nice feature, but it ends up completing a 431 // lot of types that we didn't strictly speaking need to complete. 432 // As a result, we spend a long time parsing and importing debug 433 // information. 434 m_compiler->getLangOpts().SpellChecking = false; 435 436 if (process_sp && m_compiler->getLangOpts().ObjC1) { 437 if (process_sp->GetObjCLanguageRuntime()) { 438 if (process_sp->GetObjCLanguageRuntime()->GetRuntimeVersion() == 439 ObjCLanguageRuntime::ObjCRuntimeVersions::eAppleObjC_V2) 440 m_compiler->getLangOpts().ObjCRuntime.set(ObjCRuntime::MacOSX, 441 VersionTuple(10, 7)); 442 else 443 m_compiler->getLangOpts().ObjCRuntime.set(ObjCRuntime::FragileMacOSX, 444 VersionTuple(10, 7)); 445 446 if (process_sp->GetObjCLanguageRuntime()->HasNewLiteralsAndIndexing()) 447 m_compiler->getLangOpts().DebuggerObjCLiteral = true; 448 } 449 } 450 451 m_compiler->getLangOpts().ThreadsafeStatics = false; 452 m_compiler->getLangOpts().AccessControl = 453 false; // Debuggers get universal access 454 m_compiler->getLangOpts().DollarIdents = 455 true; // $ indicates a persistent variable name 456 457 // Set CodeGen options 458 m_compiler->getCodeGenOpts().EmitDeclMetadata = true; 459 m_compiler->getCodeGenOpts().InstrumentFunctions = false; 460 m_compiler->getCodeGenOpts().DisableFPElim = true; 461 m_compiler->getCodeGenOpts().OmitLeafFramePointer = false; 462 if (generate_debug_info) 463 m_compiler->getCodeGenOpts().setDebugInfo(codegenoptions::FullDebugInfo); 464 else 465 m_compiler->getCodeGenOpts().setDebugInfo(codegenoptions::NoDebugInfo); 466 467 // Disable some warnings. 468 m_compiler->getDiagnostics().setSeverityForGroup( 469 clang::diag::Flavor::WarningOrError, "unused-value", 470 clang::diag::Severity::Ignored, SourceLocation()); 471 m_compiler->getDiagnostics().setSeverityForGroup( 472 clang::diag::Flavor::WarningOrError, "odr", 473 clang::diag::Severity::Ignored, SourceLocation()); 474 475 // Inform the target of the language options 476 // 477 // FIXME: We shouldn't need to do this, the target should be immutable once 478 // created. This complexity should be lifted elsewhere. 479 m_compiler->getTarget().adjust(m_compiler->getLangOpts()); 480 481 // 6. Set up the diagnostic buffer for reporting errors 482 483 m_compiler->getDiagnostics().setClient(new ClangDiagnosticManagerAdapter); 484 485 // 7. Set up the source management objects inside the compiler 486 487 clang::FileSystemOptions file_system_options; 488 m_file_manager.reset(new clang::FileManager(file_system_options)); 489 490 if (!m_compiler->hasSourceManager()) 491 m_compiler->createSourceManager(*m_file_manager.get()); 492 493 m_compiler->createFileManager(); 494 m_compiler->createPreprocessor(TU_Complete); 495 496 if (ClangModulesDeclVendor *decl_vendor = 497 target_sp->GetClangModulesDeclVendor()) { 498 ClangPersistentVariables *clang_persistent_vars = 499 llvm::cast<ClangPersistentVariables>( 500 target_sp->GetPersistentExpressionStateForLanguage( 501 lldb::eLanguageTypeC)); 502 std::unique_ptr<PPCallbacks> pp_callbacks( 503 new LLDBPreprocessorCallbacks(*decl_vendor, *clang_persistent_vars)); 504 m_pp_callbacks = 505 static_cast<LLDBPreprocessorCallbacks *>(pp_callbacks.get()); 506 m_compiler->getPreprocessor().addPPCallbacks(std::move(pp_callbacks)); 507 } 508 509 // 8. Most of this we get from the CompilerInstance, but we 510 // also want to give the context an ExternalASTSource. 511 m_selector_table.reset(new SelectorTable()); 512 m_builtin_context.reset(new Builtin::Context()); 513 514 std::unique_ptr<clang::ASTContext> ast_context( 515 new ASTContext(m_compiler->getLangOpts(), m_compiler->getSourceManager(), 516 m_compiler->getPreprocessor().getIdentifierTable(), 517 *m_selector_table.get(), *m_builtin_context.get())); 518 519 ast_context->InitBuiltinTypes(m_compiler->getTarget()); 520 521 ClangExpressionHelper *type_system_helper = 522 dyn_cast<ClangExpressionHelper>(m_expr.GetTypeSystemHelper()); 523 ClangExpressionDeclMap *decl_map = type_system_helper->DeclMap(); 524 525 if (decl_map) { 526 llvm::IntrusiveRefCntPtr<clang::ExternalASTSource> ast_source( 527 decl_map->CreateProxy()); 528 decl_map->InstallASTContext(*ast_context, m_compiler->getFileManager()); 529 ast_context->setExternalSource(ast_source); 530 } 531 532 m_ast_context.reset( 533 new ClangASTContext(m_compiler->getTargetOpts().Triple.c_str())); 534 m_ast_context->setASTContext(ast_context.get()); 535 m_compiler->setASTContext(ast_context.release()); 536 537 std::string module_name("$__lldb_module"); 538 539 m_llvm_context.reset(new LLVMContext()); 540 m_code_generator.reset(CreateLLVMCodeGen( 541 m_compiler->getDiagnostics(), module_name, 542 m_compiler->getHeaderSearchOpts(), m_compiler->getPreprocessorOpts(), 543 m_compiler->getCodeGenOpts(), *m_llvm_context)); 544 } 545 546 ClangExpressionParser::~ClangExpressionParser() {} 547 548 unsigned ClangExpressionParser::Parse(DiagnosticManager &diagnostic_manager) { 549 ClangDiagnosticManagerAdapter *adapter = 550 static_cast<ClangDiagnosticManagerAdapter *>( 551 m_compiler->getDiagnostics().getClient()); 552 clang::TextDiagnosticBuffer *diag_buf = adapter->GetPassthrough(); 553 diag_buf->FlushDiagnostics(m_compiler->getDiagnostics()); 554 555 adapter->ResetManager(&diagnostic_manager); 556 557 const char *expr_text = m_expr.Text(); 558 559 clang::SourceManager &source_mgr = m_compiler->getSourceManager(); 560 bool created_main_file = false; 561 if (m_compiler->getCodeGenOpts().getDebugInfo() == 562 codegenoptions::FullDebugInfo) { 563 int temp_fd = -1; 564 llvm::SmallString<PATH_MAX> result_path; 565 FileSpec tmpdir_file_spec; 566 if (HostInfo::GetLLDBPath(lldb::ePathTypeLLDBTempSystemDir, 567 tmpdir_file_spec)) { 568 tmpdir_file_spec.AppendPathComponent("lldb-%%%%%%.expr"); 569 std::string temp_source_path = tmpdir_file_spec.GetPath(); 570 llvm::sys::fs::createUniqueFile(temp_source_path, temp_fd, result_path); 571 } else { 572 llvm::sys::fs::createTemporaryFile("lldb", "expr", temp_fd, result_path); 573 } 574 575 if (temp_fd != -1) { 576 lldb_private::File file(temp_fd, true); 577 const size_t expr_text_len = strlen(expr_text); 578 size_t bytes_written = expr_text_len; 579 if (file.Write(expr_text, bytes_written).Success()) { 580 if (bytes_written == expr_text_len) { 581 file.Close(); 582 source_mgr.setMainFileID( 583 source_mgr.createFileID(m_file_manager->getFile(result_path), 584 SourceLocation(), SrcMgr::C_User)); 585 created_main_file = true; 586 } 587 } 588 } 589 } 590 591 if (!created_main_file) { 592 std::unique_ptr<MemoryBuffer> memory_buffer = 593 MemoryBuffer::getMemBufferCopy(expr_text, __FUNCTION__); 594 source_mgr.setMainFileID(source_mgr.createFileID(std::move(memory_buffer))); 595 } 596 597 diag_buf->BeginSourceFile(m_compiler->getLangOpts(), 598 &m_compiler->getPreprocessor()); 599 600 ClangExpressionHelper *type_system_helper = 601 dyn_cast<ClangExpressionHelper>(m_expr.GetTypeSystemHelper()); 602 603 ASTConsumer *ast_transformer = 604 type_system_helper->ASTTransformer(m_code_generator.get()); 605 606 if (ClangExpressionDeclMap *decl_map = type_system_helper->DeclMap()) 607 decl_map->InstallCodeGenerator(m_code_generator.get()); 608 609 if (ast_transformer) { 610 ast_transformer->Initialize(m_compiler->getASTContext()); 611 ParseAST(m_compiler->getPreprocessor(), ast_transformer, 612 m_compiler->getASTContext()); 613 } else { 614 m_code_generator->Initialize(m_compiler->getASTContext()); 615 ParseAST(m_compiler->getPreprocessor(), m_code_generator.get(), 616 m_compiler->getASTContext()); 617 } 618 619 diag_buf->EndSourceFile(); 620 621 unsigned num_errors = diag_buf->getNumErrors(); 622 623 if (m_pp_callbacks && m_pp_callbacks->hasErrors()) { 624 num_errors++; 625 diagnostic_manager.PutString(eDiagnosticSeverityError, 626 "while importing modules:"); 627 diagnostic_manager.AppendMessageToDiagnostic( 628 m_pp_callbacks->getErrorString()); 629 } 630 631 if (!num_errors) { 632 if (type_system_helper->DeclMap() && 633 !type_system_helper->DeclMap()->ResolveUnknownTypes()) { 634 diagnostic_manager.Printf(eDiagnosticSeverityError, 635 "Couldn't infer the type of a variable"); 636 num_errors++; 637 } 638 } 639 640 if (!num_errors) { 641 type_system_helper->CommitPersistentDecls(); 642 } 643 644 adapter->ResetManager(); 645 646 return num_errors; 647 } 648 649 std::string 650 ClangExpressionParser::GetClangTargetABI(const ArchSpec &target_arch) { 651 std::string abi; 652 653 if (target_arch.IsMIPS()) { 654 switch (target_arch.GetFlags() & ArchSpec::eMIPSABI_mask) { 655 case ArchSpec::eMIPSABI_N64: 656 abi = "n64"; 657 break; 658 case ArchSpec::eMIPSABI_N32: 659 abi = "n32"; 660 break; 661 case ArchSpec::eMIPSABI_O32: 662 abi = "o32"; 663 break; 664 default: 665 break; 666 } 667 } 668 return abi; 669 } 670 671 bool ClangExpressionParser::RewriteExpression( 672 DiagnosticManager &diagnostic_manager) { 673 clang::SourceManager &source_manager = m_compiler->getSourceManager(); 674 clang::edit::EditedSource editor(source_manager, m_compiler->getLangOpts(), 675 nullptr); 676 clang::edit::Commit commit(editor); 677 clang::Rewriter rewriter(source_manager, m_compiler->getLangOpts()); 678 679 class RewritesReceiver : public edit::EditsReceiver { 680 Rewriter &rewrite; 681 682 public: 683 RewritesReceiver(Rewriter &in_rewrite) : rewrite(in_rewrite) {} 684 685 void insert(SourceLocation loc, StringRef text) override { 686 rewrite.InsertText(loc, text); 687 } 688 void replace(CharSourceRange range, StringRef text) override { 689 rewrite.ReplaceText(range.getBegin(), rewrite.getRangeSize(range), text); 690 } 691 }; 692 693 RewritesReceiver rewrites_receiver(rewriter); 694 695 const DiagnosticList &diagnostics = diagnostic_manager.Diagnostics(); 696 size_t num_diags = diagnostics.size(); 697 if (num_diags == 0) 698 return false; 699 700 for (const Diagnostic *diag : diagnostic_manager.Diagnostics()) { 701 const ClangDiagnostic *diagnostic = llvm::dyn_cast<ClangDiagnostic>(diag); 702 if (diagnostic && diagnostic->HasFixIts()) { 703 for (const FixItHint &fixit : diagnostic->FixIts()) { 704 // This is cobbed from clang::Rewrite::FixItRewriter. 705 if (fixit.CodeToInsert.empty()) { 706 if (fixit.InsertFromRange.isValid()) { 707 commit.insertFromRange(fixit.RemoveRange.getBegin(), 708 fixit.InsertFromRange, /*afterToken=*/false, 709 fixit.BeforePreviousInsertions); 710 } else 711 commit.remove(fixit.RemoveRange); 712 } else { 713 if (fixit.RemoveRange.isTokenRange() || 714 fixit.RemoveRange.getBegin() != fixit.RemoveRange.getEnd()) 715 commit.replace(fixit.RemoveRange, fixit.CodeToInsert); 716 else 717 commit.insert(fixit.RemoveRange.getBegin(), fixit.CodeToInsert, 718 /*afterToken=*/false, fixit.BeforePreviousInsertions); 719 } 720 } 721 } 722 } 723 724 // FIXME - do we want to try to propagate specific errors here? 725 if (!commit.isCommitable()) 726 return false; 727 else if (!editor.commit(commit)) 728 return false; 729 730 // Now play all the edits, and stash the result in the diagnostic manager. 731 editor.applyRewrites(rewrites_receiver); 732 RewriteBuffer &main_file_buffer = 733 rewriter.getEditBuffer(source_manager.getMainFileID()); 734 735 std::string fixed_expression; 736 llvm::raw_string_ostream out_stream(fixed_expression); 737 738 main_file_buffer.write(out_stream); 739 out_stream.flush(); 740 diagnostic_manager.SetFixedExpression(fixed_expression); 741 742 return true; 743 } 744 745 static bool FindFunctionInModule(ConstString &mangled_name, 746 llvm::Module *module, const char *orig_name) { 747 for (const auto &func : module->getFunctionList()) { 748 const StringRef &name = func.getName(); 749 if (name.find(orig_name) != StringRef::npos) { 750 mangled_name.SetString(name); 751 return true; 752 } 753 } 754 755 return false; 756 } 757 758 lldb_private::Status ClangExpressionParser::PrepareForExecution( 759 lldb::addr_t &func_addr, lldb::addr_t &func_end, 760 lldb::IRExecutionUnitSP &execution_unit_sp, ExecutionContext &exe_ctx, 761 bool &can_interpret, ExecutionPolicy execution_policy) { 762 func_addr = LLDB_INVALID_ADDRESS; 763 func_end = LLDB_INVALID_ADDRESS; 764 Log *log(lldb_private::GetLogIfAllCategoriesSet(LIBLLDB_LOG_EXPRESSIONS)); 765 766 lldb_private::Status err; 767 768 std::unique_ptr<llvm::Module> llvm_module_ap( 769 m_code_generator->ReleaseModule()); 770 771 if (!llvm_module_ap.get()) { 772 err.SetErrorToGenericError(); 773 err.SetErrorString("IR doesn't contain a module"); 774 return err; 775 } 776 777 ConstString function_name; 778 779 if (execution_policy != eExecutionPolicyTopLevel) { 780 // Find the actual name of the function (it's often mangled somehow) 781 782 if (!FindFunctionInModule(function_name, llvm_module_ap.get(), 783 m_expr.FunctionName())) { 784 err.SetErrorToGenericError(); 785 err.SetErrorStringWithFormat("Couldn't find %s() in the module", 786 m_expr.FunctionName()); 787 return err; 788 } else { 789 if (log) 790 log->Printf("Found function %s for %s", function_name.AsCString(), 791 m_expr.FunctionName()); 792 } 793 } 794 795 SymbolContext sc; 796 797 if (lldb::StackFrameSP frame_sp = exe_ctx.GetFrameSP()) { 798 sc = frame_sp->GetSymbolContext(lldb::eSymbolContextEverything); 799 } else if (lldb::TargetSP target_sp = exe_ctx.GetTargetSP()) { 800 sc.target_sp = target_sp; 801 } 802 803 LLVMUserExpression::IRPasses custom_passes; 804 { 805 auto lang = m_expr.Language(); 806 if (log) 807 log->Printf("%s - Currrent expression language is %s\n", __FUNCTION__, 808 Language::GetNameForLanguageType(lang)); 809 lldb::ProcessSP process_sp = exe_ctx.GetProcessSP(); 810 if (process_sp && lang != lldb::eLanguageTypeUnknown) { 811 auto runtime = process_sp->GetLanguageRuntime(lang); 812 if (runtime) 813 runtime->GetIRPasses(custom_passes); 814 } 815 } 816 817 if (custom_passes.EarlyPasses) { 818 if (log) 819 log->Printf("%s - Running Early IR Passes from LanguageRuntime on " 820 "expression module '%s'", 821 __FUNCTION__, m_expr.FunctionName()); 822 823 custom_passes.EarlyPasses->run(*llvm_module_ap); 824 } 825 826 execution_unit_sp.reset( 827 new IRExecutionUnit(m_llvm_context, // handed off here 828 llvm_module_ap, // handed off here 829 function_name, exe_ctx.GetTargetSP(), sc, 830 m_compiler->getTargetOpts().Features)); 831 832 ClangExpressionHelper *type_system_helper = 833 dyn_cast<ClangExpressionHelper>(m_expr.GetTypeSystemHelper()); 834 ClangExpressionDeclMap *decl_map = 835 type_system_helper->DeclMap(); // result can be NULL 836 837 if (decl_map) { 838 Stream *error_stream = NULL; 839 Target *target = exe_ctx.GetTargetPtr(); 840 error_stream = target->GetDebugger().GetErrorFile().get(); 841 842 IRForTarget ir_for_target(decl_map, m_expr.NeedsVariableResolution(), 843 *execution_unit_sp, *error_stream, 844 function_name.AsCString()); 845 846 bool ir_can_run = 847 ir_for_target.runOnModule(*execution_unit_sp->GetModule()); 848 849 if (!ir_can_run) { 850 err.SetErrorString( 851 "The expression could not be prepared to run in the target"); 852 return err; 853 } 854 855 Process *process = exe_ctx.GetProcessPtr(); 856 857 if (execution_policy != eExecutionPolicyAlways && 858 execution_policy != eExecutionPolicyTopLevel) { 859 lldb_private::Status interpret_error; 860 861 bool interpret_function_calls = 862 !process ? false : process->CanInterpretFunctionCalls(); 863 can_interpret = IRInterpreter::CanInterpret( 864 *execution_unit_sp->GetModule(), *execution_unit_sp->GetFunction(), 865 interpret_error, interpret_function_calls); 866 867 if (!can_interpret && execution_policy == eExecutionPolicyNever) { 868 err.SetErrorStringWithFormat("Can't run the expression locally: %s", 869 interpret_error.AsCString()); 870 return err; 871 } 872 } 873 874 if (!process && execution_policy == eExecutionPolicyAlways) { 875 err.SetErrorString("Expression needed to run in the target, but the " 876 "target can't be run"); 877 return err; 878 } 879 880 if (!process && execution_policy == eExecutionPolicyTopLevel) { 881 err.SetErrorString("Top-level code needs to be inserted into a runnable " 882 "target, but the target can't be run"); 883 return err; 884 } 885 886 if (execution_policy == eExecutionPolicyAlways || 887 (execution_policy != eExecutionPolicyTopLevel && !can_interpret)) { 888 if (m_expr.NeedsValidation() && process) { 889 if (!process->GetDynamicCheckers()) { 890 DynamicCheckerFunctions *dynamic_checkers = 891 new DynamicCheckerFunctions(); 892 893 DiagnosticManager install_diagnostics; 894 895 if (!dynamic_checkers->Install(install_diagnostics, exe_ctx)) { 896 if (install_diagnostics.Diagnostics().size()) 897 err.SetErrorString("couldn't install checkers, unknown error"); 898 else 899 err.SetErrorString(install_diagnostics.GetString().c_str()); 900 901 return err; 902 } 903 904 process->SetDynamicCheckers(dynamic_checkers); 905 906 if (log) 907 log->Printf("== [ClangUserExpression::Evaluate] Finished " 908 "installing dynamic checkers =="); 909 } 910 911 IRDynamicChecks ir_dynamic_checks(*process->GetDynamicCheckers(), 912 function_name.AsCString()); 913 914 llvm::Module *module = execution_unit_sp->GetModule(); 915 if (!module || !ir_dynamic_checks.runOnModule(*module)) { 916 err.SetErrorToGenericError(); 917 err.SetErrorString("Couldn't add dynamic checks to the expression"); 918 return err; 919 } 920 921 if (custom_passes.LatePasses) { 922 if (log) 923 log->Printf("%s - Running Late IR Passes from LanguageRuntime on " 924 "expression module '%s'", 925 __FUNCTION__, m_expr.FunctionName()); 926 927 custom_passes.LatePasses->run(*module); 928 } 929 } 930 } 931 932 if (execution_policy == eExecutionPolicyAlways || 933 execution_policy == eExecutionPolicyTopLevel || !can_interpret) { 934 execution_unit_sp->GetRunnableInfo(err, func_addr, func_end); 935 } 936 } else { 937 execution_unit_sp->GetRunnableInfo(err, func_addr, func_end); 938 } 939 940 return err; 941 } 942 943 lldb_private::Status ClangExpressionParser::RunStaticInitializers( 944 lldb::IRExecutionUnitSP &execution_unit_sp, ExecutionContext &exe_ctx) { 945 lldb_private::Status err; 946 947 lldbassert(execution_unit_sp.get()); 948 lldbassert(exe_ctx.HasThreadScope()); 949 950 if (!execution_unit_sp.get()) { 951 err.SetErrorString( 952 "can't run static initializers for a NULL execution unit"); 953 return err; 954 } 955 956 if (!exe_ctx.HasThreadScope()) { 957 err.SetErrorString("can't run static initializers without a thread"); 958 return err; 959 } 960 961 std::vector<lldb::addr_t> static_initializers; 962 963 execution_unit_sp->GetStaticInitializers(static_initializers); 964 965 for (lldb::addr_t static_initializer : static_initializers) { 966 EvaluateExpressionOptions options; 967 968 lldb::ThreadPlanSP call_static_initializer(new ThreadPlanCallFunction( 969 exe_ctx.GetThreadRef(), Address(static_initializer), CompilerType(), 970 llvm::ArrayRef<lldb::addr_t>(), options)); 971 972 DiagnosticManager execution_errors; 973 lldb::ExpressionResults results = 974 exe_ctx.GetThreadRef().GetProcess()->RunThreadPlan( 975 exe_ctx, call_static_initializer, options, execution_errors); 976 977 if (results != lldb::eExpressionCompleted) { 978 err.SetErrorStringWithFormat("couldn't run static initializer: %s", 979 execution_errors.GetString().c_str()); 980 return err; 981 } 982 } 983 984 return err; 985 } 986