1 //===-- MCJIT.cpp - MC-based Just-in-Time Compiler ------------------------===//
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 #include "MCJIT.h"
11 #include "llvm/ADT/STLExtras.h"
12 #include "llvm/ExecutionEngine/GenericValue.h"
13 #include "llvm/ExecutionEngine/JITEventListener.h"
14 #include "llvm/ExecutionEngine/MCJIT.h"
15 #include "llvm/ExecutionEngine/SectionMemoryManager.h"
16 #include "llvm/IR/DataLayout.h"
17 #include "llvm/IR/DerivedTypes.h"
18 #include "llvm/IR/Function.h"
19 #include "llvm/IR/LegacyPassManager.h"
20 #include "llvm/IR/Mangler.h"
21 #include "llvm/IR/Module.h"
22 #include "llvm/MC/MCAsmInfo.h"
23 #include "llvm/Object/Archive.h"
24 #include "llvm/Object/ObjectFile.h"
25 #include "llvm/Support/DynamicLibrary.h"
26 #include "llvm/Support/ErrorHandling.h"
27 #include "llvm/Support/MemoryBuffer.h"
28 #include "llvm/Support/MutexGuard.h"
29 
30 using namespace llvm;
31 
32 namespace {
33 
34 static struct RegisterJIT {
35   RegisterJIT() { MCJIT::Register(); }
36 } JITRegistrator;
37 
38 }
39 
40 extern "C" void LLVMLinkInMCJIT() {
41 }
42 
43 ExecutionEngine*
44 MCJIT::createJIT(std::unique_ptr<Module> M,
45                  std::string *ErrorStr,
46                  std::shared_ptr<MCJITMemoryManager> MemMgr,
47                  std::shared_ptr<JITSymbolResolver> Resolver,
48                  std::unique_ptr<TargetMachine> TM) {
49   // Try to register the program as a source of symbols to resolve against.
50   //
51   // FIXME: Don't do this here.
52   sys::DynamicLibrary::LoadLibraryPermanently(nullptr, nullptr);
53 
54   if (!MemMgr || !Resolver) {
55     auto RTDyldMM = std::make_shared<SectionMemoryManager>();
56     if (!MemMgr)
57       MemMgr = RTDyldMM;
58     if (!Resolver)
59       Resolver = RTDyldMM;
60   }
61 
62   return new MCJIT(std::move(M), std::move(TM), std::move(MemMgr),
63                    std::move(Resolver));
64 }
65 
66 MCJIT::MCJIT(std::unique_ptr<Module> M, std::unique_ptr<TargetMachine> TM,
67              std::shared_ptr<MCJITMemoryManager> MemMgr,
68              std::shared_ptr<JITSymbolResolver> Resolver)
69     : ExecutionEngine(TM->createDataLayout(), std::move(M)), TM(std::move(TM)),
70       Ctx(nullptr), MemMgr(std::move(MemMgr)),
71       Resolver(*this, std::move(Resolver)), Dyld(*this->MemMgr, this->Resolver),
72       ObjCache(nullptr) {
73   // FIXME: We are managing our modules, so we do not want the base class
74   // ExecutionEngine to manage them as well. To avoid double destruction
75   // of the first (and only) module added in ExecutionEngine constructor
76   // we remove it from EE and will destruct it ourselves.
77   //
78   // It may make sense to move our module manager (based on SmallStPtr) back
79   // into EE if the JIT and Interpreter can live with it.
80   // If so, additional functions: addModule, removeModule, FindFunctionNamed,
81   // runStaticConstructorsDestructors could be moved back to EE as well.
82   //
83   std::unique_ptr<Module> First = std::move(Modules[0]);
84   Modules.clear();
85 
86   if (First->getDataLayout().isDefault())
87     First->setDataLayout(getDataLayout());
88 
89   OwnedModules.addModule(std::move(First));
90   RegisterJITEventListener(JITEventListener::createGDBRegistrationListener());
91 }
92 
93 MCJIT::~MCJIT() {
94   MutexGuard locked(lock);
95 
96   Dyld.deregisterEHFrames();
97 
98   for (auto &Obj : LoadedObjects)
99     if (Obj)
100       NotifyFreeingObject(*Obj);
101 
102   Archives.clear();
103 }
104 
105 void MCJIT::addModule(std::unique_ptr<Module> M) {
106   MutexGuard locked(lock);
107 
108   if (M->getDataLayout().isDefault())
109     M->setDataLayout(getDataLayout());
110 
111   OwnedModules.addModule(std::move(M));
112 }
113 
114 bool MCJIT::removeModule(Module *M) {
115   MutexGuard locked(lock);
116   return OwnedModules.removeModule(M);
117 }
118 
119 void MCJIT::addObjectFile(std::unique_ptr<object::ObjectFile> Obj) {
120   std::unique_ptr<RuntimeDyld::LoadedObjectInfo> L = Dyld.loadObject(*Obj);
121   if (Dyld.hasError())
122     report_fatal_error(Dyld.getErrorString());
123 
124   NotifyObjectEmitted(*Obj, *L);
125 
126   LoadedObjects.push_back(std::move(Obj));
127 }
128 
129 void MCJIT::addObjectFile(object::OwningBinary<object::ObjectFile> Obj) {
130   std::unique_ptr<object::ObjectFile> ObjFile;
131   std::unique_ptr<MemoryBuffer> MemBuf;
132   std::tie(ObjFile, MemBuf) = Obj.takeBinary();
133   addObjectFile(std::move(ObjFile));
134   Buffers.push_back(std::move(MemBuf));
135 }
136 
137 void MCJIT::addArchive(object::OwningBinary<object::Archive> A) {
138   Archives.push_back(std::move(A));
139 }
140 
141 void MCJIT::setObjectCache(ObjectCache* NewCache) {
142   MutexGuard locked(lock);
143   ObjCache = NewCache;
144 }
145 
146 std::unique_ptr<MemoryBuffer> MCJIT::emitObject(Module *M) {
147   MutexGuard locked(lock);
148 
149   // This must be a module which has already been added but not loaded to this
150   // MCJIT instance, since these conditions are tested by our caller,
151   // generateCodeForModule.
152 
153   legacy::PassManager PM;
154 
155   // The RuntimeDyld will take ownership of this shortly
156   SmallVector<char, 4096> ObjBufferSV;
157   raw_svector_ostream ObjStream(ObjBufferSV);
158 
159   // Turn the machine code intermediate representation into bytes in memory
160   // that may be executed.
161   if (TM->addPassesToEmitMC(PM, Ctx, ObjStream, !getVerifyModules()))
162     report_fatal_error("Target does not support MC emission!");
163 
164   // Initialize passes.
165   PM.run(*M);
166   // Flush the output buffer to get the generated code into memory
167 
168   std::unique_ptr<MemoryBuffer> CompiledObjBuffer(
169                                 new ObjectMemoryBuffer(std::move(ObjBufferSV)));
170 
171   // If we have an object cache, tell it about the new object.
172   // Note that we're using the compiled image, not the loaded image (as below).
173   if (ObjCache) {
174     // MemoryBuffer is a thin wrapper around the actual memory, so it's OK
175     // to create a temporary object here and delete it after the call.
176     MemoryBufferRef MB = CompiledObjBuffer->getMemBufferRef();
177     ObjCache->notifyObjectCompiled(M, MB);
178   }
179 
180   return CompiledObjBuffer;
181 }
182 
183 void MCJIT::generateCodeForModule(Module *M) {
184   // Get a thread lock to make sure we aren't trying to load multiple times
185   MutexGuard locked(lock);
186 
187   // This must be a module which has already been added to this MCJIT instance.
188   assert(OwnedModules.ownsModule(M) &&
189          "MCJIT::generateCodeForModule: Unknown module.");
190 
191   // Re-compilation is not supported
192   if (OwnedModules.hasModuleBeenLoaded(M))
193     return;
194 
195   std::unique_ptr<MemoryBuffer> ObjectToLoad;
196   // Try to load the pre-compiled object from cache if possible
197   if (ObjCache)
198     ObjectToLoad = ObjCache->getObject(M);
199 
200   assert(M->getDataLayout() == getDataLayout() && "DataLayout Mismatch");
201 
202   // If the cache did not contain a suitable object, compile the object
203   if (!ObjectToLoad) {
204     ObjectToLoad = emitObject(M);
205     assert(ObjectToLoad && "Compilation did not produce an object.");
206   }
207 
208   // Load the object into the dynamic linker.
209   // MCJIT now owns the ObjectImage pointer (via its LoadedObjects list).
210   Expected<std::unique_ptr<object::ObjectFile>> LoadedObject =
211     object::ObjectFile::createObjectFile(ObjectToLoad->getMemBufferRef());
212   if (!LoadedObject) {
213     std::string Buf;
214     raw_string_ostream OS(Buf);
215     logAllUnhandledErrors(LoadedObject.takeError(), OS, "");
216     OS.flush();
217     report_fatal_error(Buf);
218   }
219   std::unique_ptr<RuntimeDyld::LoadedObjectInfo> L =
220     Dyld.loadObject(*LoadedObject.get());
221 
222   if (Dyld.hasError())
223     report_fatal_error(Dyld.getErrorString());
224 
225   NotifyObjectEmitted(*LoadedObject.get(), *L);
226 
227   Buffers.push_back(std::move(ObjectToLoad));
228   LoadedObjects.push_back(std::move(*LoadedObject));
229 
230   OwnedModules.markModuleAsLoaded(M);
231 }
232 
233 void MCJIT::finalizeLoadedModules() {
234   MutexGuard locked(lock);
235 
236   // Resolve any outstanding relocations.
237   Dyld.resolveRelocations();
238 
239   OwnedModules.markAllLoadedModulesAsFinalized();
240 
241   // Register EH frame data for any module we own which has been loaded
242   Dyld.registerEHFrames();
243 
244   // Set page permissions.
245   MemMgr->finalizeMemory();
246 }
247 
248 // FIXME: Rename this.
249 void MCJIT::finalizeObject() {
250   MutexGuard locked(lock);
251 
252   // Generate code for module is going to move objects out of the 'added' list,
253   // so we need to copy that out before using it:
254   SmallVector<Module*, 16> ModsToAdd;
255   for (auto M : OwnedModules.added())
256     ModsToAdd.push_back(M);
257 
258   for (auto M : ModsToAdd)
259     generateCodeForModule(M);
260 
261   finalizeLoadedModules();
262 }
263 
264 void MCJIT::finalizeModule(Module *M) {
265   MutexGuard locked(lock);
266 
267   // This must be a module which has already been added to this MCJIT instance.
268   assert(OwnedModules.ownsModule(M) && "MCJIT::finalizeModule: Unknown module.");
269 
270   // If the module hasn't been compiled, just do that.
271   if (!OwnedModules.hasModuleBeenLoaded(M))
272     generateCodeForModule(M);
273 
274   finalizeLoadedModules();
275 }
276 
277 JITSymbol MCJIT::findExistingSymbol(const std::string &Name) {
278   if (void *Addr = getPointerToGlobalIfAvailable(Name))
279     return JITSymbol(static_cast<uint64_t>(
280                          reinterpret_cast<uintptr_t>(Addr)),
281                      JITSymbolFlags::Exported);
282 
283   return Dyld.getSymbol(Name);
284 }
285 
286 Module *MCJIT::findModuleForSymbol(const std::string &Name,
287                                    bool CheckFunctionsOnly) {
288   StringRef DemangledName = Name;
289   if (DemangledName[0] == getDataLayout().getGlobalPrefix())
290     DemangledName = DemangledName.substr(1);
291 
292   MutexGuard locked(lock);
293 
294   // If it hasn't already been generated, see if it's in one of our modules.
295   for (ModulePtrSet::iterator I = OwnedModules.begin_added(),
296                               E = OwnedModules.end_added();
297        I != E; ++I) {
298     Module *M = *I;
299     Function *F = M->getFunction(DemangledName);
300     if (F && !F->isDeclaration())
301       return M;
302     if (!CheckFunctionsOnly) {
303       GlobalVariable *G = M->getGlobalVariable(DemangledName);
304       if (G && !G->isDeclaration())
305         return M;
306       // FIXME: Do we need to worry about global aliases?
307     }
308   }
309   // We didn't find the symbol in any of our modules.
310   return nullptr;
311 }
312 
313 uint64_t MCJIT::getSymbolAddress(const std::string &Name,
314                                  bool CheckFunctionsOnly) {
315   std::string MangledName;
316   {
317     raw_string_ostream MangledNameStream(MangledName);
318     Mangler::getNameWithPrefix(MangledNameStream, Name, getDataLayout());
319   }
320   return findSymbol(MangledName, CheckFunctionsOnly).getAddress();
321 }
322 
323 JITSymbol MCJIT::findSymbol(const std::string &Name,
324                             bool CheckFunctionsOnly) {
325   MutexGuard locked(lock);
326 
327   // First, check to see if we already have this symbol.
328   if (auto Sym = findExistingSymbol(Name))
329     return Sym;
330 
331   for (object::OwningBinary<object::Archive> &OB : Archives) {
332     object::Archive *A = OB.getBinary();
333     // Look for our symbols in each Archive
334     auto OptionalChildOrErr = A->findSym(Name);
335     if (!OptionalChildOrErr)
336       report_fatal_error(OptionalChildOrErr.takeError());
337     auto &OptionalChild = *OptionalChildOrErr;
338     if (OptionalChild) {
339       // FIXME: Support nested archives?
340       Expected<std::unique_ptr<object::Binary>> ChildBinOrErr =
341           OptionalChild->getAsBinary();
342       if (!ChildBinOrErr) {
343         // TODO: Actually report errors helpfully.
344         consumeError(ChildBinOrErr.takeError());
345         continue;
346       }
347       std::unique_ptr<object::Binary> &ChildBin = ChildBinOrErr.get();
348       if (ChildBin->isObject()) {
349         std::unique_ptr<object::ObjectFile> OF(
350             static_cast<object::ObjectFile *>(ChildBin.release()));
351         // This causes the object file to be loaded.
352         addObjectFile(std::move(OF));
353         // The address should be here now.
354         if (auto Sym = findExistingSymbol(Name))
355           return Sym;
356       }
357     }
358   }
359 
360   // If it hasn't already been generated, see if it's in one of our modules.
361   Module *M = findModuleForSymbol(Name, CheckFunctionsOnly);
362   if (M) {
363     generateCodeForModule(M);
364 
365     // Check the RuntimeDyld table again, it should be there now.
366     return findExistingSymbol(Name);
367   }
368 
369   // If a LazyFunctionCreator is installed, use it to get/create the function.
370   // FIXME: Should we instead have a LazySymbolCreator callback?
371   if (LazyFunctionCreator) {
372     auto Addr = static_cast<uint64_t>(
373                   reinterpret_cast<uintptr_t>(LazyFunctionCreator(Name)));
374     return JITSymbol(Addr, JITSymbolFlags::Exported);
375   }
376 
377   return nullptr;
378 }
379 
380 uint64_t MCJIT::getGlobalValueAddress(const std::string &Name) {
381   MutexGuard locked(lock);
382   uint64_t Result = getSymbolAddress(Name, false);
383   if (Result != 0)
384     finalizeLoadedModules();
385   return Result;
386 }
387 
388 uint64_t MCJIT::getFunctionAddress(const std::string &Name) {
389   MutexGuard locked(lock);
390   uint64_t Result = getSymbolAddress(Name, true);
391   if (Result != 0)
392     finalizeLoadedModules();
393   return Result;
394 }
395 
396 // Deprecated.  Use getFunctionAddress instead.
397 void *MCJIT::getPointerToFunction(Function *F) {
398   MutexGuard locked(lock);
399 
400   Mangler Mang;
401   SmallString<128> Name;
402   TM->getNameWithPrefix(Name, F, Mang);
403 
404   if (F->isDeclaration() || F->hasAvailableExternallyLinkage()) {
405     bool AbortOnFailure = !F->hasExternalWeakLinkage();
406     void *Addr = getPointerToNamedFunction(Name, AbortOnFailure);
407     updateGlobalMapping(F, Addr);
408     return Addr;
409   }
410 
411   Module *M = F->getParent();
412   bool HasBeenAddedButNotLoaded = OwnedModules.hasModuleBeenAddedButNotLoaded(M);
413 
414   // Make sure the relevant module has been compiled and loaded.
415   if (HasBeenAddedButNotLoaded)
416     generateCodeForModule(M);
417   else if (!OwnedModules.hasModuleBeenLoaded(M)) {
418     // If this function doesn't belong to one of our modules, we're done.
419     // FIXME: Asking for the pointer to a function that hasn't been registered,
420     //        and isn't a declaration (which is handled above) should probably
421     //        be an assertion.
422     return nullptr;
423   }
424 
425   // FIXME: Should the Dyld be retaining module information? Probably not.
426   //
427   // This is the accessor for the target address, so make sure to check the
428   // load address of the symbol, not the local address.
429   return (void*)Dyld.getSymbol(Name).getAddress();
430 }
431 
432 void MCJIT::runStaticConstructorsDestructorsInModulePtrSet(
433     bool isDtors, ModulePtrSet::iterator I, ModulePtrSet::iterator E) {
434   for (; I != E; ++I) {
435     ExecutionEngine::runStaticConstructorsDestructors(**I, isDtors);
436   }
437 }
438 
439 void MCJIT::runStaticConstructorsDestructors(bool isDtors) {
440   // Execute global ctors/dtors for each module in the program.
441   runStaticConstructorsDestructorsInModulePtrSet(
442       isDtors, OwnedModules.begin_added(), OwnedModules.end_added());
443   runStaticConstructorsDestructorsInModulePtrSet(
444       isDtors, OwnedModules.begin_loaded(), OwnedModules.end_loaded());
445   runStaticConstructorsDestructorsInModulePtrSet(
446       isDtors, OwnedModules.begin_finalized(), OwnedModules.end_finalized());
447 }
448 
449 Function *MCJIT::FindFunctionNamedInModulePtrSet(StringRef FnName,
450                                                  ModulePtrSet::iterator I,
451                                                  ModulePtrSet::iterator E) {
452   for (; I != E; ++I) {
453     Function *F = (*I)->getFunction(FnName);
454     if (F && !F->isDeclaration())
455       return F;
456   }
457   return nullptr;
458 }
459 
460 GlobalVariable *MCJIT::FindGlobalVariableNamedInModulePtrSet(StringRef Name,
461                                                              bool AllowInternal,
462                                                              ModulePtrSet::iterator I,
463                                                              ModulePtrSet::iterator E) {
464   for (; I != E; ++I) {
465     GlobalVariable *GV = (*I)->getGlobalVariable(Name, AllowInternal);
466     if (GV && !GV->isDeclaration())
467       return GV;
468   }
469   return nullptr;
470 }
471 
472 
473 Function *MCJIT::FindFunctionNamed(StringRef FnName) {
474   Function *F = FindFunctionNamedInModulePtrSet(
475       FnName, OwnedModules.begin_added(), OwnedModules.end_added());
476   if (!F)
477     F = FindFunctionNamedInModulePtrSet(FnName, OwnedModules.begin_loaded(),
478                                         OwnedModules.end_loaded());
479   if (!F)
480     F = FindFunctionNamedInModulePtrSet(FnName, OwnedModules.begin_finalized(),
481                                         OwnedModules.end_finalized());
482   return F;
483 }
484 
485 GlobalVariable *MCJIT::FindGlobalVariableNamed(StringRef Name, bool AllowInternal) {
486   GlobalVariable *GV = FindGlobalVariableNamedInModulePtrSet(
487       Name, AllowInternal, OwnedModules.begin_added(), OwnedModules.end_added());
488   if (!GV)
489     GV = FindGlobalVariableNamedInModulePtrSet(Name, AllowInternal, OwnedModules.begin_loaded(),
490                                         OwnedModules.end_loaded());
491   if (!GV)
492     GV = FindGlobalVariableNamedInModulePtrSet(Name, AllowInternal, OwnedModules.begin_finalized(),
493                                         OwnedModules.end_finalized());
494   return GV;
495 }
496 
497 GenericValue MCJIT::runFunction(Function *F, ArrayRef<GenericValue> ArgValues) {
498   assert(F && "Function *F was null at entry to run()");
499 
500   void *FPtr = getPointerToFunction(F);
501   finalizeModule(F->getParent());
502   assert(FPtr && "Pointer to fn's code was null after getPointerToFunction");
503   FunctionType *FTy = F->getFunctionType();
504   Type *RetTy = FTy->getReturnType();
505 
506   assert((FTy->getNumParams() == ArgValues.size() ||
507           (FTy->isVarArg() && FTy->getNumParams() <= ArgValues.size())) &&
508          "Wrong number of arguments passed into function!");
509   assert(FTy->getNumParams() == ArgValues.size() &&
510          "This doesn't support passing arguments through varargs (yet)!");
511 
512   // Handle some common cases first.  These cases correspond to common `main'
513   // prototypes.
514   if (RetTy->isIntegerTy(32) || RetTy->isVoidTy()) {
515     switch (ArgValues.size()) {
516     case 3:
517       if (FTy->getParamType(0)->isIntegerTy(32) &&
518           FTy->getParamType(1)->isPointerTy() &&
519           FTy->getParamType(2)->isPointerTy()) {
520         int (*PF)(int, char **, const char **) =
521           (int(*)(int, char **, const char **))(intptr_t)FPtr;
522 
523         // Call the function.
524         GenericValue rv;
525         rv.IntVal = APInt(32, PF(ArgValues[0].IntVal.getZExtValue(),
526                                  (char **)GVTOP(ArgValues[1]),
527                                  (const char **)GVTOP(ArgValues[2])));
528         return rv;
529       }
530       break;
531     case 2:
532       if (FTy->getParamType(0)->isIntegerTy(32) &&
533           FTy->getParamType(1)->isPointerTy()) {
534         int (*PF)(int, char **) = (int(*)(int, char **))(intptr_t)FPtr;
535 
536         // Call the function.
537         GenericValue rv;
538         rv.IntVal = APInt(32, PF(ArgValues[0].IntVal.getZExtValue(),
539                                  (char **)GVTOP(ArgValues[1])));
540         return rv;
541       }
542       break;
543     case 1:
544       if (FTy->getNumParams() == 1 &&
545           FTy->getParamType(0)->isIntegerTy(32)) {
546         GenericValue rv;
547         int (*PF)(int) = (int(*)(int))(intptr_t)FPtr;
548         rv.IntVal = APInt(32, PF(ArgValues[0].IntVal.getZExtValue()));
549         return rv;
550       }
551       break;
552     }
553   }
554 
555   // Handle cases where no arguments are passed first.
556   if (ArgValues.empty()) {
557     GenericValue rv;
558     switch (RetTy->getTypeID()) {
559     default: llvm_unreachable("Unknown return type for function call!");
560     case Type::IntegerTyID: {
561       unsigned BitWidth = cast<IntegerType>(RetTy)->getBitWidth();
562       if (BitWidth == 1)
563         rv.IntVal = APInt(BitWidth, ((bool(*)())(intptr_t)FPtr)());
564       else if (BitWidth <= 8)
565         rv.IntVal = APInt(BitWidth, ((char(*)())(intptr_t)FPtr)());
566       else if (BitWidth <= 16)
567         rv.IntVal = APInt(BitWidth, ((short(*)())(intptr_t)FPtr)());
568       else if (BitWidth <= 32)
569         rv.IntVal = APInt(BitWidth, ((int(*)())(intptr_t)FPtr)());
570       else if (BitWidth <= 64)
571         rv.IntVal = APInt(BitWidth, ((int64_t(*)())(intptr_t)FPtr)());
572       else
573         llvm_unreachable("Integer types > 64 bits not supported");
574       return rv;
575     }
576     case Type::VoidTyID:
577       rv.IntVal = APInt(32, ((int(*)())(intptr_t)FPtr)());
578       return rv;
579     case Type::FloatTyID:
580       rv.FloatVal = ((float(*)())(intptr_t)FPtr)();
581       return rv;
582     case Type::DoubleTyID:
583       rv.DoubleVal = ((double(*)())(intptr_t)FPtr)();
584       return rv;
585     case Type::X86_FP80TyID:
586     case Type::FP128TyID:
587     case Type::PPC_FP128TyID:
588       llvm_unreachable("long double not supported yet");
589     case Type::PointerTyID:
590       return PTOGV(((void*(*)())(intptr_t)FPtr)());
591     }
592   }
593 
594   report_fatal_error("MCJIT::runFunction does not support full-featured "
595                      "argument passing. Please use "
596                      "ExecutionEngine::getFunctionAddress and cast the result "
597                      "to the desired function pointer type.");
598 }
599 
600 void *MCJIT::getPointerToNamedFunction(StringRef Name, bool AbortOnFailure) {
601   if (!isSymbolSearchingDisabled()) {
602     void *ptr =
603       reinterpret_cast<void*>(
604         static_cast<uintptr_t>(Resolver.findSymbol(Name).getAddress()));
605     if (ptr)
606       return ptr;
607   }
608 
609   /// If a LazyFunctionCreator is installed, use it to get/create the function.
610   if (LazyFunctionCreator)
611     if (void *RP = LazyFunctionCreator(Name))
612       return RP;
613 
614   if (AbortOnFailure) {
615     report_fatal_error("Program used external function '"+Name+
616                        "' which could not be resolved!");
617   }
618   return nullptr;
619 }
620 
621 void MCJIT::RegisterJITEventListener(JITEventListener *L) {
622   if (!L)
623     return;
624   MutexGuard locked(lock);
625   EventListeners.push_back(L);
626 }
627 
628 void MCJIT::UnregisterJITEventListener(JITEventListener *L) {
629   if (!L)
630     return;
631   MutexGuard locked(lock);
632   auto I = find(reverse(EventListeners), L);
633   if (I != EventListeners.rend()) {
634     std::swap(*I, EventListeners.back());
635     EventListeners.pop_back();
636   }
637 }
638 
639 void MCJIT::NotifyObjectEmitted(const object::ObjectFile& Obj,
640                                 const RuntimeDyld::LoadedObjectInfo &L) {
641   MutexGuard locked(lock);
642   MemMgr->notifyObjectLoaded(this, Obj);
643   for (unsigned I = 0, S = EventListeners.size(); I < S; ++I) {
644     EventListeners[I]->NotifyObjectEmitted(Obj, L);
645   }
646 }
647 
648 void MCJIT::NotifyFreeingObject(const object::ObjectFile& Obj) {
649   MutexGuard locked(lock);
650   for (JITEventListener *L : EventListeners)
651     L->NotifyFreeingObject(Obj);
652 }
653 
654 JITSymbol
655 LinkingSymbolResolver::findSymbol(const std::string &Name) {
656   auto Result = ParentEngine.findSymbol(Name, false);
657   if (Result)
658     return Result;
659   if (ParentEngine.isSymbolSearchingDisabled())
660     return nullptr;
661   return ClientResolver->findSymbol(Name);
662 }
663