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Adding object caching support to MCJIT
git-svn-id: https://llvm.org/svn/llvm-project/llvm/trunk@180146 91177308-0d34-0410-b5e6-96231b3b80d8
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@ -42,6 +42,7 @@ class JITMemoryManager;
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class MachineCodeInfo;
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class Module;
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class MutexGuard;
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class ObjectCache;
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class DataLayout;
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class Triple;
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class Type;
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@ -371,6 +372,12 @@ public:
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virtual void RegisterJITEventListener(JITEventListener *) {}
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virtual void UnregisterJITEventListener(JITEventListener *) {}
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/// Sets the pre-compiled object cache. The ownership of the ObjectCache is
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/// not changed. Supported by MCJIT by not JIT.
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virtual void setObjectCache(ObjectCache *) {
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llvm_unreachable("No support for an object cache");
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}
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/// DisableLazyCompilation - When lazy compilation is off (the default), the
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/// JIT will eagerly compile every function reachable from the argument to
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/// getPointerToFunction. If lazy compilation is turned on, the JIT will only
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54
include/llvm/ExecutionEngine/ObjectCache.h
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54
include/llvm/ExecutionEngine/ObjectCache.h
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@ -0,0 +1,54 @@
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//===-- ObjectCache.h - Class definition for the ObjectCache -----C++ -*-===//
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//
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// The LLVM Compiler Infrastructure
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//
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// This file is distributed under the University of Illinois Open Source
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// License. See LICENSE.TXT for details.
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//
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//===----------------------------------------------------------------------===//
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#ifndef LLVM_LIB_EXECUTIONENGINE_OBJECTCACHE_H
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#define LLVM_LIB_EXECUTIONENGINE_OBJECTCACHE_H
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#include "llvm/Support/MemoryBuffer.h"
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namespace llvm {
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class Module;
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/// This is the base ObjectCache type which can be provided to an
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/// ExecutionEngine for the purpose of avoiding compilation for Modules that
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/// have already been compiled and an object file is available.
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class ObjectCache {
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public:
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ObjectCache() { }
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virtual ~ObjectCache() { }
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/// notifyObjectCompiled - Provides a pointer to compiled code for Module M.
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virtual void notifyObjectCompiled(const Module *M, const MemoryBuffer *Obj) = 0;
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/// getObjectCopy - Returns a pointer to a newly allocated MemoryBuffer that
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/// contains the object which corresponds with Module M, or 0 if an object is
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/// not available. The caller owns the MemoryBuffer returned by this function.
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MemoryBuffer* getObjectCopy(const Module* M) {
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const MemoryBuffer* Obj = getObject(M);
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if (Obj)
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return MemoryBuffer::getMemBufferCopy(Obj->getBuffer());
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else
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return 0;
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}
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protected:
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/// getObject - Returns a pointer to a MemoryBuffer that contains an object
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/// that corresponds with Module M, or 0 if an object is not available.
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/// The pointer returned by this function is not suitable for loading because
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/// the memory is read-only and owned by the ObjectCache. To retrieve an
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/// owning pointer to a MemoryBuffer (which is suitable for calling
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/// RuntimeDyld::loadObject() with) use getObjectCopy() instead.
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virtual const MemoryBuffer* getObject(const Module* M) = 0;
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};
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}
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#endif
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@ -52,7 +52,7 @@ ExecutionEngine *MCJIT::createJIT(Module *M,
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MCJIT::MCJIT(Module *m, TargetMachine *tm, RTDyldMemoryManager *MM,
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bool AllocateGVsWithCode)
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: ExecutionEngine(m), TM(tm), Ctx(0), MemMgr(MM), Dyld(MM),
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isCompiled(false), M(m) {
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IsLoaded(false), M(m), ObjCache(0) {
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setDataLayout(TM->getDataLayout());
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}
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@ -64,7 +64,11 @@ MCJIT::~MCJIT() {
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delete TM;
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}
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void MCJIT::emitObject(Module *m) {
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void MCJIT::setObjectCache(ObjectCache* NewCache) {
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ObjCache = NewCache;
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}
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ObjectBufferStream* MCJIT::emitObject(Module *m) {
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/// Currently, MCJIT only supports a single module and the module passed to
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/// this function call is expected to be the contained module. The module
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/// is passed as a parameter here to prepare for multiple module support in
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@ -77,30 +81,63 @@ void MCJIT::emitObject(Module *m) {
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// FIXME: Track compilation state on a per-module basis when multiple modules
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// are supported.
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// Re-compilation is not supported
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if (isCompiled)
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return;
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assert(!IsLoaded);
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PassManager PM;
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PM.add(new DataLayout(*TM->getDataLayout()));
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// The RuntimeDyld will take ownership of this shortly
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OwningPtr<ObjectBufferStream> Buffer(new ObjectBufferStream());
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OwningPtr<ObjectBufferStream> CompiledObject(new ObjectBufferStream());
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// Turn the machine code intermediate representation into bytes in memory
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// that may be executed.
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if (TM->addPassesToEmitMC(PM, Ctx, Buffer->getOStream(), false)) {
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if (TM->addPassesToEmitMC(PM, Ctx, CompiledObject->getOStream(), false)) {
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report_fatal_error("Target does not support MC emission!");
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}
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// Initialize passes.
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PM.run(*m);
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// Flush the output buffer to get the generated code into memory
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Buffer->flush();
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CompiledObject->flush();
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// If we have an object cache, tell it about the new object.
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// Note that we're using the compiled image, not the loaded image (as below).
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if (ObjCache) {
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ObjCache->notifyObjectCompiled(m, CompiledObject->getMemBuffer());
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}
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return CompiledObject.take();
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}
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void MCJIT::loadObject(Module *M) {
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// Get a thread lock to make sure we aren't trying to load multiple times
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MutexGuard locked(lock);
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// FIXME: Track compilation state on a per-module basis when multiple modules
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// are supported.
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// Re-compilation is not supported
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if (IsLoaded)
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return;
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OwningPtr<ObjectBuffer> ObjectToLoad;
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// Try to load the pre-compiled object from cache if possible
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if (0 != ObjCache) {
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OwningPtr<MemoryBuffer> PreCompiledObject(ObjCache->getObjectCopy(M));
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if (0 != PreCompiledObject.get())
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ObjectToLoad.reset(new ObjectBuffer(PreCompiledObject.take()));
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}
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// If the cache did not contain a suitable object, compile the object
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if (!ObjectToLoad) {
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ObjectToLoad.reset(emitObject(M));
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assert(ObjectToLoad.get() && "Compilation did not produce an object.");
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}
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// Load the object into the dynamic linker.
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// handing off ownership of the buffer
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LoadedObject.reset(Dyld.loadObject(Buffer.take()));
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LoadedObject.reset(Dyld.loadObject(ObjectToLoad.take()));
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if (!LoadedObject)
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report_fatal_error(Dyld.getErrorString());
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@ -113,7 +150,7 @@ void MCJIT::emitObject(Module *m) {
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NotifyObjectEmitted(*LoadedObject);
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// FIXME: Add support for per-module compilation state
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isCompiled = true;
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IsLoaded = true;
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}
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// FIXME: Add a parameter to identify which object is being finalized when
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@ -122,10 +159,10 @@ void MCJIT::emitObject(Module *m) {
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// protection in the interface.
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void MCJIT::finalizeObject() {
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// If the module hasn't been compiled, just do that.
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if (!isCompiled) {
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// If the call to Dyld.resolveRelocations() is removed from emitObject()
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if (!IsLoaded) {
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// If the call to Dyld.resolveRelocations() is removed from loadObject()
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// we'll need to do that here.
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emitObject(M);
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loadObject(M);
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// Set page permissions.
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MemMgr->applyPermissions();
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@ -151,8 +188,8 @@ void *MCJIT::getPointerToFunction(Function *F) {
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// dies.
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// FIXME: Add support for per-module compilation state
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if (!isCompiled)
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emitObject(M);
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if (!IsLoaded)
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loadObject(M);
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if (F->isDeclaration() || F->hasAvailableExternallyLinkage()) {
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bool AbortOnFailure = !F->hasExternalWeakLinkage();
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@ -284,8 +321,8 @@ GenericValue MCJIT::runFunction(Function *F,
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void *MCJIT::getPointerToNamedFunction(const std::string &Name,
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bool AbortOnFailure) {
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// FIXME: Add support for per-module compilation state
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if (!isCompiled)
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emitObject(M);
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if (!IsLoaded)
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loadObject(M);
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if (!isSymbolSearchingDisabled() && MemMgr) {
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void *ptr = MemMgr->getPointerToNamedFunction(Name, false);
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@ -12,6 +12,7 @@
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#include "llvm/ADT/SmallVector.h"
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#include "llvm/ExecutionEngine/ExecutionEngine.h"
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#include "llvm/ExecutionEngine/ObjectCache.h"
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#include "llvm/ExecutionEngine/RuntimeDyld.h"
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#include "llvm/PassManager.h"
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@ -34,16 +35,23 @@ class MCJIT : public ExecutionEngine {
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SmallVector<JITEventListener*, 2> EventListeners;
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// FIXME: Add support for multiple modules
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bool isCompiled;
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bool IsLoaded;
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Module *M;
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OwningPtr<ObjectImage> LoadedObject;
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// An optional ObjectCache to be notified of compiled objects and used to
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// perform lookup of pre-compiled code to avoid re-compilation.
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ObjectCache *ObjCache;
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public:
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~MCJIT();
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/// @name ExecutionEngine interface implementation
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/// @{
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/// Sets the object manager that MCJIT should use to avoid compilation.
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virtual void setObjectCache(ObjectCache *manager);
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virtual void finalizeObject();
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virtual void *getPointerToBasicBlock(BasicBlock *BB);
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@ -102,7 +110,9 @@ protected:
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/// this function call is expected to be the contained module. The module
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/// is passed as a parameter here to prepare for multiple module support in
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/// the future.
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void emitObject(Module *M);
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ObjectBufferStream* emitObject(Module *M);
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void loadObject(Module *M);
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void NotifyObjectEmitted(const ObjectImage& Obj);
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void NotifyFreeingObject(const ObjectImage& Obj);
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240
unittests/ExecutionEngine/MCJIT/MCJITObjectCacheTest.cpp
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240
unittests/ExecutionEngine/MCJIT/MCJITObjectCacheTest.cpp
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//===- MCJITObjectCacheTest.cpp - Unit tests for MCJIT object caching -----===//
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//
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// The LLVM Compiler Infrastructure
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//
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// This file is distributed under the University of Illinois Open Source
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// License. See LICENSE.TXT for details.
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//
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//===----------------------------------------------------------------------===//
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#include "llvm/ADT/OwningPtr.h"
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#include "llvm/ADT/SmallVector.h"
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#include "llvm/ADT/StringMap.h"
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#include "llvm/ADT/StringSet.h"
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#include "llvm/ExecutionEngine/JIT.h"
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#include "llvm/ExecutionEngine/MCJIT.h"
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#include "llvm/ExecutionEngine/ObjectCache.h"
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#include "llvm/ExecutionEngine/SectionMemoryManager.h"
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#include "MCJITTestBase.h"
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#include "gtest/gtest.h"
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using namespace llvm;
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namespace {
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class TestObjectCache : public ObjectCache {
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public:
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TestObjectCache() : DuplicateInserted(false) { }
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virtual ~TestObjectCache() {
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// Free any buffers we've allocated.
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SmallVector<MemoryBuffer *, 2>::iterator it, end;
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end = AllocatedBuffers.end();
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for (it = AllocatedBuffers.begin(); it != end; ++it) {
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delete *it;
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}
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AllocatedBuffers.clear();
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}
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virtual void notifyObjectCompiled(const Module *M, const MemoryBuffer *Obj) {
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// If we've seen this module before, note that.
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const std::string ModuleID = M->getModuleIdentifier();
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if (ObjMap.find(ModuleID) != ObjMap.end())
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DuplicateInserted = true;
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// Store a copy of the buffer in our map.
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ObjMap[ModuleID] = copyBuffer(Obj);
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}
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// Test-harness-specific functions
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bool wereDuplicatesInserted() { return DuplicateInserted; }
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bool wasModuleLookedUp(const Module *M) {
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return ModulesLookedUp.find(M->getModuleIdentifier())
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!= ModulesLookedUp.end();
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}
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const MemoryBuffer* getObjectInternal(const Module* M) {
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// Look for the module in our map.
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const std::string ModuleID = M->getModuleIdentifier();
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StringMap<const MemoryBuffer *>::iterator it = ObjMap.find(ModuleID);
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if (it == ObjMap.end())
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return 0;
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return it->second;
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}
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protected:
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virtual const MemoryBuffer* getObject(const Module* M) {
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const MemoryBuffer* BufferFound = getObjectInternal(M);
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ModulesLookedUp.insert(M->getModuleIdentifier());
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return BufferFound;
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}
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private:
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MemoryBuffer *copyBuffer(const MemoryBuffer *Buf) {
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// Create a local copy of the buffer.
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MemoryBuffer *NewBuffer = MemoryBuffer::getMemBufferCopy(Buf->getBuffer());
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AllocatedBuffers.push_back(NewBuffer);
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return NewBuffer;
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}
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StringMap<const MemoryBuffer *> ObjMap;
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StringSet<> ModulesLookedUp;
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SmallVector<MemoryBuffer *, 2> AllocatedBuffers;
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bool DuplicateInserted;
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};
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class MCJITObjectCacheTest : public testing::Test, public MCJITTestBase {
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protected:
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enum {
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OriginalRC = 6,
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ReplacementRC = 7
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};
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virtual void SetUp() {
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M.reset(createEmptyModule("<main>"));
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Main = insertMainFunction(M.get(), OriginalRC);
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}
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void compileAndRun(int ExpectedRC = OriginalRC) {
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// This function shouldn't be called until after SetUp.
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ASSERT_TRUE(0 != TheJIT);
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ASSERT_TRUE(0 != Main);
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TheJIT->finalizeObject();
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void *vPtr = TheJIT->getPointerToFunction(Main);
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static_cast<SectionMemoryManager*>(MM)->invalidateInstructionCache();
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EXPECT_TRUE(0 != vPtr)
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<< "Unable to get pointer to main() from JIT";
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int (*FuncPtr)(void) = (int(*)(void))(intptr_t)vPtr;
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int returnCode = FuncPtr();
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EXPECT_EQ(returnCode, ExpectedRC);
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}
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Function *Main;
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};
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TEST_F(MCJITObjectCacheTest, SetNullObjectCache) {
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SKIP_UNSUPPORTED_PLATFORM;
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createJIT(M.take());
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TheJIT->setObjectCache(NULL);
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compileAndRun();
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}
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TEST_F(MCJITObjectCacheTest, VerifyBasicObjectCaching) {
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SKIP_UNSUPPORTED_PLATFORM;
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OwningPtr<TestObjectCache> Cache(new TestObjectCache);
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// Save a copy of the module pointer before handing it off to MCJIT.
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const Module * SavedModulePointer = M.get();
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createJIT(M.take());
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TheJIT->setObjectCache(Cache.get());
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// Verify that our object cache does not contain the module yet.
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const MemoryBuffer *ObjBuffer = Cache->getObjectInternal(SavedModulePointer);
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EXPECT_EQ(0, ObjBuffer);
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compileAndRun();
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// Verify that MCJIT tried to look-up this module in the cache.
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EXPECT_TRUE(Cache->wasModuleLookedUp(SavedModulePointer));
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// Verify that our object cache now contains the module.
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ObjBuffer = Cache->getObjectInternal(SavedModulePointer);
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EXPECT_TRUE(0 != ObjBuffer);
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// Verify that the cache was only notified once.
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EXPECT_FALSE(Cache->wereDuplicatesInserted());
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}
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TEST_F(MCJITObjectCacheTest, VerifyLoadFromCache) {
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SKIP_UNSUPPORTED_PLATFORM;
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OwningPtr<TestObjectCache> Cache(new TestObjectCache);
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// Compile this module with an MCJIT engine
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createJIT(M.take());
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TheJIT->setObjectCache(Cache.get());
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TheJIT->finalizeObject();
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// Destroy the MCJIT engine we just used
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TheJIT.reset();
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// Create a new memory manager.
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MM = new SectionMemoryManager;
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// Create a new module and save it. Use a different return code so we can
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// tell if MCJIT compiled this module or used the cache.
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M.reset(createEmptyModule("<main>"));
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Main = insertMainFunction(M.get(), ReplacementRC);
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const Module * SecondModulePointer = M.get();
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// Create a new MCJIT instance to load this module then execute it.
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createJIT(M.take());
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TheJIT->setObjectCache(Cache.get());
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compileAndRun();
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// Verify that MCJIT tried to look-up this module in the cache.
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EXPECT_TRUE(Cache->wasModuleLookedUp(SecondModulePointer));
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// Verify that MCJIT didn't try to cache this again.
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EXPECT_FALSE(Cache->wereDuplicatesInserted());
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}
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TEST_F(MCJITObjectCacheTest, VerifyNonLoadFromCache) {
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SKIP_UNSUPPORTED_PLATFORM;
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OwningPtr<TestObjectCache> Cache(new TestObjectCache);
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// Compile this module with an MCJIT engine
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createJIT(M.take());
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TheJIT->setObjectCache(Cache.get());
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TheJIT->finalizeObject();
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// Destroy the MCJIT engine we just used
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TheJIT.reset();
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// Create a new memory manager.
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MM = new SectionMemoryManager;
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// Create a new module and save it. Use a different return code so we can
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// tell if MCJIT compiled this module or used the cache. Note that we use
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// a new module name here so the module shouldn't be found in the cache.
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M.reset(createEmptyModule("<not-main>"));
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Main = insertMainFunction(M.get(), ReplacementRC);
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const Module * SecondModulePointer = M.get();
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// Create a new MCJIT instance to load this module then execute it.
|
||||
createJIT(M.take());
|
||||
TheJIT->setObjectCache(Cache.get());
|
||||
|
||||
// Verify that our object cache does not contain the module yet.
|
||||
const MemoryBuffer *ObjBuffer = Cache->getObjectInternal(SecondModulePointer);
|
||||
EXPECT_EQ(0, ObjBuffer);
|
||||
|
||||
// Run the function and look for the replacement return code.
|
||||
compileAndRun(ReplacementRC);
|
||||
|
||||
// Verify that MCJIT tried to look-up this module in the cache.
|
||||
EXPECT_TRUE(Cache->wasModuleLookedUp(SecondModulePointer));
|
||||
|
||||
// Verify that our object cache now contains the module.
|
||||
ObjBuffer = Cache->getObjectInternal(SecondModulePointer);
|
||||
EXPECT_TRUE(0 != ObjBuffer);
|
||||
|
||||
// Verify that MCJIT didn't try to cache this again.
|
||||
EXPECT_FALSE(Cache->wereDuplicatesInserted());
|
||||
}
|
||||
|
||||
} // Namespace
|
||||
|
Loading…
Reference in New Issue
Block a user