forked from OSchip/llvm-project
				
			
		
			
				
	
	
		
			1069 lines
		
	
	
		
			40 KiB
		
	
	
	
		
			C++
		
	
	
	
			
		
		
	
	
			1069 lines
		
	
	
		
			40 KiB
		
	
	
	
		
			C++
		
	
	
	
//===-- ExecutionEngine.cpp - Common Implementation shared by EEs ---------===//
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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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//
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// This file defines the common interface used by the various execution engine
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// subclasses.
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//
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//===----------------------------------------------------------------------===//
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#define DEBUG_TYPE "jit"
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#include "llvm/ExecutionEngine/ExecutionEngine.h"
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#include "llvm/Constants.h"
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#include "llvm/DerivedTypes.h"
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#include "llvm/Module.h"
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#include "llvm/ModuleProvider.h"
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#include "llvm/ExecutionEngine/GenericValue.h"
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#include "llvm/ADT/Statistic.h"
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#include "llvm/Support/Debug.h"
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#include "llvm/Support/ErrorHandling.h"
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#include "llvm/Support/MutexGuard.h"
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#include "llvm/Support/ValueHandle.h"
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#include "llvm/Support/raw_ostream.h"
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#include "llvm/System/DynamicLibrary.h"
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#include "llvm/System/Host.h"
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#include "llvm/Target/TargetData.h"
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#include <cmath>
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#include <cstring>
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using namespace llvm;
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STATISTIC(NumInitBytes, "Number of bytes of global vars initialized");
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STATISTIC(NumGlobals  , "Number of global vars initialized");
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ExecutionEngine *(*ExecutionEngine::JITCtor)(ModuleProvider *MP,
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                                             std::string *ErrorStr,
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                                             JITMemoryManager *JMM,
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                                             CodeGenOpt::Level OptLevel,
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                                             bool GVsWithCode) = 0;
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ExecutionEngine *(*ExecutionEngine::InterpCtor)(ModuleProvider *MP,
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                                                std::string *ErrorStr) = 0;
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ExecutionEngine::EERegisterFn ExecutionEngine::ExceptionTableRegister = 0;
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ExecutionEngine::ExecutionEngine(ModuleProvider *P) : LazyFunctionCreator(0) {
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  LazyCompilationDisabled = false;
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  GVCompilationDisabled   = false;
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  SymbolSearchingDisabled = false;
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  DlsymStubsEnabled       = false;
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  Modules.push_back(P);
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  assert(P && "ModuleProvider is null?");
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}
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ExecutionEngine::~ExecutionEngine() {
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  clearAllGlobalMappings();
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  for (unsigned i = 0, e = Modules.size(); i != e; ++i)
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    delete Modules[i];
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}
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char* ExecutionEngine::getMemoryForGV(const GlobalVariable* GV) {
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  const Type *ElTy = GV->getType()->getElementType();
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  size_t GVSize = (size_t)getTargetData()->getTypeAllocSize(ElTy);
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  return new char[GVSize];
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}
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/// removeModuleProvider - Remove a ModuleProvider from the list of modules.
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/// Relases the Module from the ModuleProvider, materializing it in the
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/// process, and returns the materialized Module.
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Module* ExecutionEngine::removeModuleProvider(ModuleProvider *P, 
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                                              std::string *ErrInfo) {
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  for(SmallVector<ModuleProvider *, 1>::iterator I = Modules.begin(), 
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        E = Modules.end(); I != E; ++I) {
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    ModuleProvider *MP = *I;
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    if (MP == P) {
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      Modules.erase(I);
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      clearGlobalMappingsFromModule(MP->getModule());
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      return MP->releaseModule(ErrInfo);
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    }
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  }
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  return NULL;
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}
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/// deleteModuleProvider - Remove a ModuleProvider from the list of modules,
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/// and deletes the ModuleProvider and owned Module.  Avoids materializing 
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/// the underlying module.
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void ExecutionEngine::deleteModuleProvider(ModuleProvider *P, 
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                                           std::string *ErrInfo) {
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  for(SmallVector<ModuleProvider *, 1>::iterator I = Modules.begin(), 
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      E = Modules.end(); I != E; ++I) {
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    ModuleProvider *MP = *I;
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    if (MP == P) {
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      Modules.erase(I);
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      clearGlobalMappingsFromModule(MP->getModule());
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      delete MP;
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      return;
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    }
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  }
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}
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/// FindFunctionNamed - Search all of the active modules to find the one that
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/// defines FnName.  This is very slow operation and shouldn't be used for
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/// general code.
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Function *ExecutionEngine::FindFunctionNamed(const char *FnName) {
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  for (unsigned i = 0, e = Modules.size(); i != e; ++i) {
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    if (Function *F = Modules[i]->getModule()->getFunction(FnName))
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      return F;
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  }
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  return 0;
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}
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/// addGlobalMapping - Tell the execution engine that the specified global is
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/// at the specified location.  This is used internally as functions are JIT'd
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/// and as global variables are laid out in memory.  It can and should also be
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/// used by clients of the EE that want to have an LLVM global overlay
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/// existing data in memory.
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void ExecutionEngine::addGlobalMapping(const GlobalValue *GV, void *Addr) {
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  MutexGuard locked(lock);
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  DEBUG(errs() << "JIT: Map \'" << GV->getName() 
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        << "\' to [" << Addr << "]\n";);
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  void *&CurVal = state.getGlobalAddressMap(locked)[GV];
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  assert((CurVal == 0 || Addr == 0) && "GlobalMapping already established!");
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  CurVal = Addr;
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  // If we are using the reverse mapping, add it too
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  if (!state.getGlobalAddressReverseMap(locked).empty()) {
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    AssertingVH<const GlobalValue> &V =
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      state.getGlobalAddressReverseMap(locked)[Addr];
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    assert((V == 0 || GV == 0) && "GlobalMapping already established!");
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    V = GV;
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  }
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}
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/// clearAllGlobalMappings - Clear all global mappings and start over again
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/// use in dynamic compilation scenarios when you want to move globals
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void ExecutionEngine::clearAllGlobalMappings() {
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  MutexGuard locked(lock);
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  state.getGlobalAddressMap(locked).clear();
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  state.getGlobalAddressReverseMap(locked).clear();
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}
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/// clearGlobalMappingsFromModule - Clear all global mappings that came from a
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/// particular module, because it has been removed from the JIT.
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void ExecutionEngine::clearGlobalMappingsFromModule(Module *M) {
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  MutexGuard locked(lock);
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  for (Module::iterator FI = M->begin(), FE = M->end(); FI != FE; ++FI) {
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    state.getGlobalAddressMap(locked).erase(&*FI);
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    state.getGlobalAddressReverseMap(locked).erase(&*FI);
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  }
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  for (Module::global_iterator GI = M->global_begin(), GE = M->global_end(); 
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       GI != GE; ++GI) {
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    state.getGlobalAddressMap(locked).erase(&*GI);
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    state.getGlobalAddressReverseMap(locked).erase(&*GI);
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  }
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}
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/// updateGlobalMapping - Replace an existing mapping for GV with a new
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/// address.  This updates both maps as required.  If "Addr" is null, the
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/// entry for the global is removed from the mappings.
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void *ExecutionEngine::updateGlobalMapping(const GlobalValue *GV, void *Addr) {
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  MutexGuard locked(lock);
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  std::map<AssertingVH<const GlobalValue>, void *> &Map =
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    state.getGlobalAddressMap(locked);
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  // Deleting from the mapping?
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  if (Addr == 0) {
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    std::map<AssertingVH<const GlobalValue>, void *>::iterator I = Map.find(GV);
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    void *OldVal;
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    if (I == Map.end())
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      OldVal = 0;
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    else {
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      OldVal = I->second;
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      Map.erase(I); 
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    }
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    if (!state.getGlobalAddressReverseMap(locked).empty())
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      state.getGlobalAddressReverseMap(locked).erase(OldVal);
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    return OldVal;
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  }
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  void *&CurVal = Map[GV];
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  void *OldVal = CurVal;
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  if (CurVal && !state.getGlobalAddressReverseMap(locked).empty())
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    state.getGlobalAddressReverseMap(locked).erase(CurVal);
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  CurVal = Addr;
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  // If we are using the reverse mapping, add it too
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  if (!state.getGlobalAddressReverseMap(locked).empty()) {
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    AssertingVH<const GlobalValue> &V =
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      state.getGlobalAddressReverseMap(locked)[Addr];
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    assert((V == 0 || GV == 0) && "GlobalMapping already established!");
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    V = GV;
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  }
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  return OldVal;
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}
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/// getPointerToGlobalIfAvailable - This returns the address of the specified
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/// global value if it is has already been codegen'd, otherwise it returns null.
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///
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void *ExecutionEngine::getPointerToGlobalIfAvailable(const GlobalValue *GV) {
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  MutexGuard locked(lock);
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  std::map<AssertingVH<const GlobalValue>, void*>::iterator I =
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    state.getGlobalAddressMap(locked).find(GV);
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  return I != state.getGlobalAddressMap(locked).end() ? I->second : 0;
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}
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/// getGlobalValueAtAddress - Return the LLVM global value object that starts
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/// at the specified address.
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///
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const GlobalValue *ExecutionEngine::getGlobalValueAtAddress(void *Addr) {
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  MutexGuard locked(lock);
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  // If we haven't computed the reverse mapping yet, do so first.
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  if (state.getGlobalAddressReverseMap(locked).empty()) {
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    for (std::map<AssertingVH<const GlobalValue>, void *>::iterator
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         I = state.getGlobalAddressMap(locked).begin(),
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         E = state.getGlobalAddressMap(locked).end(); I != E; ++I)
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      state.getGlobalAddressReverseMap(locked).insert(std::make_pair(I->second,
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                                                                     I->first));
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  }
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  std::map<void *, AssertingVH<const GlobalValue> >::iterator I =
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    state.getGlobalAddressReverseMap(locked).find(Addr);
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  return I != state.getGlobalAddressReverseMap(locked).end() ? I->second : 0;
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}
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// CreateArgv - Turn a vector of strings into a nice argv style array of
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// pointers to null terminated strings.
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//
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static void *CreateArgv(LLVMContext &C, ExecutionEngine *EE,
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                        const std::vector<std::string> &InputArgv) {
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  unsigned PtrSize = EE->getTargetData()->getPointerSize();
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  char *Result = new char[(InputArgv.size()+1)*PtrSize];
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  DEBUG(errs() << "JIT: ARGV = " << (void*)Result << "\n");
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  const Type *SBytePtr = PointerType::getUnqual(Type::getInt8Ty(C));
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  for (unsigned i = 0; i != InputArgv.size(); ++i) {
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    unsigned Size = InputArgv[i].size()+1;
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    char *Dest = new char[Size];
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    DEBUG(errs() << "JIT: ARGV[" << i << "] = " << (void*)Dest << "\n");
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    std::copy(InputArgv[i].begin(), InputArgv[i].end(), Dest);
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    Dest[Size-1] = 0;
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    // Endian safe: Result[i] = (PointerTy)Dest;
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    EE->StoreValueToMemory(PTOGV(Dest), (GenericValue*)(Result+i*PtrSize),
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                           SBytePtr);
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  }
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  // Null terminate it
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  EE->StoreValueToMemory(PTOGV(0),
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                         (GenericValue*)(Result+InputArgv.size()*PtrSize),
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                         SBytePtr);
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  return Result;
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}
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/// runStaticConstructorsDestructors - This method is used to execute all of
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/// the static constructors or destructors for a module, depending on the
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/// value of isDtors.
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void ExecutionEngine::runStaticConstructorsDestructors(Module *module,
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                                                       bool isDtors) {
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  const char *Name = isDtors ? "llvm.global_dtors" : "llvm.global_ctors";
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  // Execute global ctors/dtors for each module in the program.
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						|
  
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 GlobalVariable *GV = module->getNamedGlobal(Name);
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 // If this global has internal linkage, or if it has a use, then it must be
 | 
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 // an old-style (llvmgcc3) static ctor with __main linked in and in use.  If
 | 
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 // this is the case, don't execute any of the global ctors, __main will do
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 // it.
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						|
 if (!GV || GV->isDeclaration() || GV->hasLocalLinkage()) return;
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 | 
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 // Should be an array of '{ int, void ()* }' structs.  The first value is
 | 
						|
 // the init priority, which we ignore.
 | 
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 ConstantArray *InitList = dyn_cast<ConstantArray>(GV->getInitializer());
 | 
						|
 if (!InitList) return;
 | 
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 for (unsigned i = 0, e = InitList->getNumOperands(); i != e; ++i)
 | 
						|
   if (ConstantStruct *CS = 
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						|
       dyn_cast<ConstantStruct>(InitList->getOperand(i))) {
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						|
     if (CS->getNumOperands() != 2) return; // Not array of 2-element structs.
 | 
						|
   
 | 
						|
     Constant *FP = CS->getOperand(1);
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						|
     if (FP->isNullValue())
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       break;  // Found a null terminator, exit.
 | 
						|
   
 | 
						|
     if (ConstantExpr *CE = dyn_cast<ConstantExpr>(FP))
 | 
						|
       if (CE->isCast())
 | 
						|
         FP = CE->getOperand(0);
 | 
						|
     if (Function *F = dyn_cast<Function>(FP)) {
 | 
						|
       // Execute the ctor/dtor function!
 | 
						|
       runFunction(F, std::vector<GenericValue>());
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						|
     }
 | 
						|
   }
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}
 | 
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 | 
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/// runStaticConstructorsDestructors - This method is used to execute all of
 | 
						|
/// the static constructors or destructors for a program, depending on the
 | 
						|
/// value of isDtors.
 | 
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void ExecutionEngine::runStaticConstructorsDestructors(bool isDtors) {
 | 
						|
  // Execute global ctors/dtors for each module in the program.
 | 
						|
  for (unsigned m = 0, e = Modules.size(); m != e; ++m)
 | 
						|
    runStaticConstructorsDestructors(Modules[m]->getModule(), isDtors);
 | 
						|
}
 | 
						|
 | 
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#ifndef NDEBUG
 | 
						|
/// isTargetNullPtr - Return whether the target pointer stored at Loc is null.
 | 
						|
static bool isTargetNullPtr(ExecutionEngine *EE, void *Loc) {
 | 
						|
  unsigned PtrSize = EE->getTargetData()->getPointerSize();
 | 
						|
  for (unsigned i = 0; i < PtrSize; ++i)
 | 
						|
    if (*(i + (uint8_t*)Loc))
 | 
						|
      return false;
 | 
						|
  return true;
 | 
						|
}
 | 
						|
#endif
 | 
						|
 | 
						|
/// runFunctionAsMain - This is a helper function which wraps runFunction to
 | 
						|
/// handle the common task of starting up main with the specified argc, argv,
 | 
						|
/// and envp parameters.
 | 
						|
int ExecutionEngine::runFunctionAsMain(Function *Fn,
 | 
						|
                                       const std::vector<std::string> &argv,
 | 
						|
                                       const char * const * envp) {
 | 
						|
  std::vector<GenericValue> GVArgs;
 | 
						|
  GenericValue GVArgc;
 | 
						|
  GVArgc.IntVal = APInt(32, argv.size());
 | 
						|
 | 
						|
  // Check main() type
 | 
						|
  unsigned NumArgs = Fn->getFunctionType()->getNumParams();
 | 
						|
  const FunctionType *FTy = Fn->getFunctionType();
 | 
						|
  const Type* PPInt8Ty = 
 | 
						|
    PointerType::getUnqual(PointerType::getUnqual(
 | 
						|
          Type::getInt8Ty(Fn->getContext())));
 | 
						|
  switch (NumArgs) {
 | 
						|
  case 3:
 | 
						|
   if (FTy->getParamType(2) != PPInt8Ty) {
 | 
						|
     llvm_report_error("Invalid type for third argument of main() supplied");
 | 
						|
   }
 | 
						|
   // FALLS THROUGH
 | 
						|
  case 2:
 | 
						|
   if (FTy->getParamType(1) != PPInt8Ty) {
 | 
						|
     llvm_report_error("Invalid type for second argument of main() supplied");
 | 
						|
   }
 | 
						|
   // FALLS THROUGH
 | 
						|
  case 1:
 | 
						|
   if (FTy->getParamType(0) != Type::getInt32Ty(Fn->getContext())) {
 | 
						|
     llvm_report_error("Invalid type for first argument of main() supplied");
 | 
						|
   }
 | 
						|
   // FALLS THROUGH
 | 
						|
  case 0:
 | 
						|
   if (!isa<IntegerType>(FTy->getReturnType()) &&
 | 
						|
       FTy->getReturnType() != Type::getVoidTy(FTy->getContext())) {
 | 
						|
     llvm_report_error("Invalid return type of main() supplied");
 | 
						|
   }
 | 
						|
   break;
 | 
						|
  default:
 | 
						|
   llvm_report_error("Invalid number of arguments of main() supplied");
 | 
						|
  }
 | 
						|
  
 | 
						|
  if (NumArgs) {
 | 
						|
    GVArgs.push_back(GVArgc); // Arg #0 = argc.
 | 
						|
    if (NumArgs > 1) {
 | 
						|
      // Arg #1 = argv.
 | 
						|
      GVArgs.push_back(PTOGV(CreateArgv(Fn->getContext(), this, argv))); 
 | 
						|
      assert(!isTargetNullPtr(this, GVTOP(GVArgs[1])) &&
 | 
						|
             "argv[0] was null after CreateArgv");
 | 
						|
      if (NumArgs > 2) {
 | 
						|
        std::vector<std::string> EnvVars;
 | 
						|
        for (unsigned i = 0; envp[i]; ++i)
 | 
						|
          EnvVars.push_back(envp[i]);
 | 
						|
        // Arg #2 = envp.
 | 
						|
        GVArgs.push_back(PTOGV(CreateArgv(Fn->getContext(), this, EnvVars)));
 | 
						|
      }
 | 
						|
    }
 | 
						|
  }
 | 
						|
  return runFunction(Fn, GVArgs).IntVal.getZExtValue();
 | 
						|
}
 | 
						|
 | 
						|
/// If possible, create a JIT, unless the caller specifically requests an
 | 
						|
/// Interpreter or there's an error. If even an Interpreter cannot be created,
 | 
						|
/// NULL is returned.
 | 
						|
///
 | 
						|
ExecutionEngine *ExecutionEngine::create(ModuleProvider *MP,
 | 
						|
                                         bool ForceInterpreter,
 | 
						|
                                         std::string *ErrorStr,
 | 
						|
                                         CodeGenOpt::Level OptLevel,
 | 
						|
                                         bool GVsWithCode) {
 | 
						|
  return EngineBuilder(MP)
 | 
						|
      .setEngineKind(ForceInterpreter
 | 
						|
                     ? EngineKind::Interpreter
 | 
						|
                     : EngineKind::JIT)
 | 
						|
      .setErrorStr(ErrorStr)
 | 
						|
      .setOptLevel(OptLevel)
 | 
						|
      .setAllocateGVsWithCode(GVsWithCode)
 | 
						|
      .create();
 | 
						|
}
 | 
						|
 | 
						|
ExecutionEngine *ExecutionEngine::create(Module *M) {
 | 
						|
  return EngineBuilder(M).create();
 | 
						|
}
 | 
						|
 | 
						|
/// EngineBuilder - Overloaded constructor that automatically creates an
 | 
						|
/// ExistingModuleProvider for an existing module.
 | 
						|
EngineBuilder::EngineBuilder(Module *m) : MP(new ExistingModuleProvider(m)) {
 | 
						|
  InitEngine();
 | 
						|
}
 | 
						|
 | 
						|
ExecutionEngine *EngineBuilder::create() {
 | 
						|
  // Make sure we can resolve symbols in the program as well. The zero arg
 | 
						|
  // to the function tells DynamicLibrary to load the program, not a library.
 | 
						|
  if (sys::DynamicLibrary::LoadLibraryPermanently(0, ErrorStr))
 | 
						|
    return 0;
 | 
						|
 | 
						|
  // If the user specified a memory manager but didn't specify which engine to
 | 
						|
  // create, we assume they only want the JIT, and we fail if they only want
 | 
						|
  // the interpreter.
 | 
						|
  if (JMM) {
 | 
						|
    if (WhichEngine & EngineKind::JIT)
 | 
						|
      WhichEngine = EngineKind::JIT;
 | 
						|
    else {
 | 
						|
      if (ErrorStr)
 | 
						|
        *ErrorStr = "Cannot create an interpreter with a memory manager.";
 | 
						|
      return 0;
 | 
						|
    }
 | 
						|
  }
 | 
						|
 | 
						|
  // Unless the interpreter was explicitly selected or the JIT is not linked,
 | 
						|
  // try making a JIT.
 | 
						|
  if (WhichEngine & EngineKind::JIT) {
 | 
						|
    if (ExecutionEngine::JITCtor) {
 | 
						|
      ExecutionEngine *EE =
 | 
						|
        ExecutionEngine::JITCtor(MP, ErrorStr, JMM, OptLevel,
 | 
						|
                                 AllocateGVsWithCode);
 | 
						|
      if (EE) return EE;
 | 
						|
    }
 | 
						|
  }
 | 
						|
 | 
						|
  // If we can't make a JIT and we didn't request one specifically, try making
 | 
						|
  // an interpreter instead.
 | 
						|
  if (WhichEngine & EngineKind::Interpreter) {
 | 
						|
    if (ExecutionEngine::InterpCtor)
 | 
						|
      return ExecutionEngine::InterpCtor(MP, ErrorStr);
 | 
						|
    if (ErrorStr)
 | 
						|
      *ErrorStr = "Interpreter has not been linked in.";
 | 
						|
    return 0;
 | 
						|
  }
 | 
						|
 | 
						|
  if ((WhichEngine & EngineKind::JIT) && ExecutionEngine::JITCtor == 0) {
 | 
						|
    if (ErrorStr)
 | 
						|
      *ErrorStr = "JIT has not been linked in.";
 | 
						|
  }    
 | 
						|
  return 0;
 | 
						|
}
 | 
						|
 | 
						|
/// getPointerToGlobal - This returns the address of the specified global
 | 
						|
/// value.  This may involve code generation if it's a function.
 | 
						|
///
 | 
						|
void *ExecutionEngine::getPointerToGlobal(const GlobalValue *GV) {
 | 
						|
  if (Function *F = const_cast<Function*>(dyn_cast<Function>(GV)))
 | 
						|
    return getPointerToFunction(F);
 | 
						|
 | 
						|
  MutexGuard locked(lock);
 | 
						|
  void *p = state.getGlobalAddressMap(locked)[GV];
 | 
						|
  if (p)
 | 
						|
    return p;
 | 
						|
 | 
						|
  // Global variable might have been added since interpreter started.
 | 
						|
  if (GlobalVariable *GVar =
 | 
						|
          const_cast<GlobalVariable *>(dyn_cast<GlobalVariable>(GV)))
 | 
						|
    EmitGlobalVariable(GVar);
 | 
						|
  else
 | 
						|
    llvm_unreachable("Global hasn't had an address allocated yet!");
 | 
						|
  return state.getGlobalAddressMap(locked)[GV];
 | 
						|
}
 | 
						|
 | 
						|
/// This function converts a Constant* into a GenericValue. The interesting 
 | 
						|
/// part is if C is a ConstantExpr.
 | 
						|
/// @brief Get a GenericValue for a Constant*
 | 
						|
GenericValue ExecutionEngine::getConstantValue(const Constant *C) {
 | 
						|
  // If its undefined, return the garbage.
 | 
						|
  if (isa<UndefValue>(C)) 
 | 
						|
    return GenericValue();
 | 
						|
 | 
						|
  // If the value is a ConstantExpr
 | 
						|
  if (const ConstantExpr *CE = dyn_cast<ConstantExpr>(C)) {
 | 
						|
    Constant *Op0 = CE->getOperand(0);
 | 
						|
    switch (CE->getOpcode()) {
 | 
						|
    case Instruction::GetElementPtr: {
 | 
						|
      // Compute the index 
 | 
						|
      GenericValue Result = getConstantValue(Op0);
 | 
						|
      SmallVector<Value*, 8> Indices(CE->op_begin()+1, CE->op_end());
 | 
						|
      uint64_t Offset =
 | 
						|
        TD->getIndexedOffset(Op0->getType(), &Indices[0], Indices.size());
 | 
						|
 | 
						|
      char* tmp = (char*) Result.PointerVal;
 | 
						|
      Result = PTOGV(tmp + Offset);
 | 
						|
      return Result;
 | 
						|
    }
 | 
						|
    case Instruction::Trunc: {
 | 
						|
      GenericValue GV = getConstantValue(Op0);
 | 
						|
      uint32_t BitWidth = cast<IntegerType>(CE->getType())->getBitWidth();
 | 
						|
      GV.IntVal = GV.IntVal.trunc(BitWidth);
 | 
						|
      return GV;
 | 
						|
    }
 | 
						|
    case Instruction::ZExt: {
 | 
						|
      GenericValue GV = getConstantValue(Op0);
 | 
						|
      uint32_t BitWidth = cast<IntegerType>(CE->getType())->getBitWidth();
 | 
						|
      GV.IntVal = GV.IntVal.zext(BitWidth);
 | 
						|
      return GV;
 | 
						|
    }
 | 
						|
    case Instruction::SExt: {
 | 
						|
      GenericValue GV = getConstantValue(Op0);
 | 
						|
      uint32_t BitWidth = cast<IntegerType>(CE->getType())->getBitWidth();
 | 
						|
      GV.IntVal = GV.IntVal.sext(BitWidth);
 | 
						|
      return GV;
 | 
						|
    }
 | 
						|
    case Instruction::FPTrunc: {
 | 
						|
      // FIXME long double
 | 
						|
      GenericValue GV = getConstantValue(Op0);
 | 
						|
      GV.FloatVal = float(GV.DoubleVal);
 | 
						|
      return GV;
 | 
						|
    }
 | 
						|
    case Instruction::FPExt:{
 | 
						|
      // FIXME long double
 | 
						|
      GenericValue GV = getConstantValue(Op0);
 | 
						|
      GV.DoubleVal = double(GV.FloatVal);
 | 
						|
      return GV;
 | 
						|
    }
 | 
						|
    case Instruction::UIToFP: {
 | 
						|
      GenericValue GV = getConstantValue(Op0);
 | 
						|
      if (CE->getType() == Type::getFloatTy(CE->getContext()))
 | 
						|
        GV.FloatVal = float(GV.IntVal.roundToDouble());
 | 
						|
      else if (CE->getType() == Type::getDoubleTy(CE->getContext()))
 | 
						|
        GV.DoubleVal = GV.IntVal.roundToDouble();
 | 
						|
      else if (CE->getType() == Type::getX86_FP80Ty(Op0->getContext())) {
 | 
						|
        const uint64_t zero[] = {0, 0};
 | 
						|
        APFloat apf = APFloat(APInt(80, 2, zero));
 | 
						|
        (void)apf.convertFromAPInt(GV.IntVal, 
 | 
						|
                                   false,
 | 
						|
                                   APFloat::rmNearestTiesToEven);
 | 
						|
        GV.IntVal = apf.bitcastToAPInt();
 | 
						|
      }
 | 
						|
      return GV;
 | 
						|
    }
 | 
						|
    case Instruction::SIToFP: {
 | 
						|
      GenericValue GV = getConstantValue(Op0);
 | 
						|
      if (CE->getType() == Type::getFloatTy(CE->getContext()))
 | 
						|
        GV.FloatVal = float(GV.IntVal.signedRoundToDouble());
 | 
						|
      else if (CE->getType() == Type::getDoubleTy(CE->getContext()))
 | 
						|
        GV.DoubleVal = GV.IntVal.signedRoundToDouble();
 | 
						|
      else if (CE->getType() == Type::getX86_FP80Ty(CE->getContext())) {
 | 
						|
        const uint64_t zero[] = { 0, 0};
 | 
						|
        APFloat apf = APFloat(APInt(80, 2, zero));
 | 
						|
        (void)apf.convertFromAPInt(GV.IntVal, 
 | 
						|
                                   true,
 | 
						|
                                   APFloat::rmNearestTiesToEven);
 | 
						|
        GV.IntVal = apf.bitcastToAPInt();
 | 
						|
      }
 | 
						|
      return GV;
 | 
						|
    }
 | 
						|
    case Instruction::FPToUI: // double->APInt conversion handles sign
 | 
						|
    case Instruction::FPToSI: {
 | 
						|
      GenericValue GV = getConstantValue(Op0);
 | 
						|
      uint32_t BitWidth = cast<IntegerType>(CE->getType())->getBitWidth();
 | 
						|
      if (Op0->getType() == Type::getFloatTy(Op0->getContext()))
 | 
						|
        GV.IntVal = APIntOps::RoundFloatToAPInt(GV.FloatVal, BitWidth);
 | 
						|
      else if (Op0->getType() == Type::getDoubleTy(Op0->getContext()))
 | 
						|
        GV.IntVal = APIntOps::RoundDoubleToAPInt(GV.DoubleVal, BitWidth);
 | 
						|
      else if (Op0->getType() == Type::getX86_FP80Ty(Op0->getContext())) {
 | 
						|
        APFloat apf = APFloat(GV.IntVal);
 | 
						|
        uint64_t v;
 | 
						|
        bool ignored;
 | 
						|
        (void)apf.convertToInteger(&v, BitWidth,
 | 
						|
                                   CE->getOpcode()==Instruction::FPToSI, 
 | 
						|
                                   APFloat::rmTowardZero, &ignored);
 | 
						|
        GV.IntVal = v; // endian?
 | 
						|
      }
 | 
						|
      return GV;
 | 
						|
    }
 | 
						|
    case Instruction::PtrToInt: {
 | 
						|
      GenericValue GV = getConstantValue(Op0);
 | 
						|
      uint32_t PtrWidth = TD->getPointerSizeInBits();
 | 
						|
      GV.IntVal = APInt(PtrWidth, uintptr_t(GV.PointerVal));
 | 
						|
      return GV;
 | 
						|
    }
 | 
						|
    case Instruction::IntToPtr: {
 | 
						|
      GenericValue GV = getConstantValue(Op0);
 | 
						|
      uint32_t PtrWidth = TD->getPointerSizeInBits();
 | 
						|
      if (PtrWidth != GV.IntVal.getBitWidth())
 | 
						|
        GV.IntVal = GV.IntVal.zextOrTrunc(PtrWidth);
 | 
						|
      assert(GV.IntVal.getBitWidth() <= 64 && "Bad pointer width");
 | 
						|
      GV.PointerVal = PointerTy(uintptr_t(GV.IntVal.getZExtValue()));
 | 
						|
      return GV;
 | 
						|
    }
 | 
						|
    case Instruction::BitCast: {
 | 
						|
      GenericValue GV = getConstantValue(Op0);
 | 
						|
      const Type* DestTy = CE->getType();
 | 
						|
      switch (Op0->getType()->getTypeID()) {
 | 
						|
        default: llvm_unreachable("Invalid bitcast operand");
 | 
						|
        case Type::IntegerTyID:
 | 
						|
          assert(DestTy->isFloatingPoint() && "invalid bitcast");
 | 
						|
          if (DestTy == Type::getFloatTy(Op0->getContext()))
 | 
						|
            GV.FloatVal = GV.IntVal.bitsToFloat();
 | 
						|
          else if (DestTy == Type::getDoubleTy(DestTy->getContext()))
 | 
						|
            GV.DoubleVal = GV.IntVal.bitsToDouble();
 | 
						|
          break;
 | 
						|
        case Type::FloatTyID: 
 | 
						|
          assert(DestTy == Type::getInt32Ty(DestTy->getContext()) &&
 | 
						|
                 "Invalid bitcast");
 | 
						|
          GV.IntVal.floatToBits(GV.FloatVal);
 | 
						|
          break;
 | 
						|
        case Type::DoubleTyID:
 | 
						|
          assert(DestTy == Type::getInt64Ty(DestTy->getContext()) &&
 | 
						|
                 "Invalid bitcast");
 | 
						|
          GV.IntVal.doubleToBits(GV.DoubleVal);
 | 
						|
          break;
 | 
						|
        case Type::PointerTyID:
 | 
						|
          assert(isa<PointerType>(DestTy) && "Invalid bitcast");
 | 
						|
          break; // getConstantValue(Op0)  above already converted it
 | 
						|
      }
 | 
						|
      return GV;
 | 
						|
    }
 | 
						|
    case Instruction::Add:
 | 
						|
    case Instruction::FAdd:
 | 
						|
    case Instruction::Sub:
 | 
						|
    case Instruction::FSub:
 | 
						|
    case Instruction::Mul:
 | 
						|
    case Instruction::FMul:
 | 
						|
    case Instruction::UDiv:
 | 
						|
    case Instruction::SDiv:
 | 
						|
    case Instruction::URem:
 | 
						|
    case Instruction::SRem:
 | 
						|
    case Instruction::And:
 | 
						|
    case Instruction::Or:
 | 
						|
    case Instruction::Xor: {
 | 
						|
      GenericValue LHS = getConstantValue(Op0);
 | 
						|
      GenericValue RHS = getConstantValue(CE->getOperand(1));
 | 
						|
      GenericValue GV;
 | 
						|
      switch (CE->getOperand(0)->getType()->getTypeID()) {
 | 
						|
      default: llvm_unreachable("Bad add type!");
 | 
						|
      case Type::IntegerTyID:
 | 
						|
        switch (CE->getOpcode()) {
 | 
						|
          default: llvm_unreachable("Invalid integer opcode");
 | 
						|
          case Instruction::Add: GV.IntVal = LHS.IntVal + RHS.IntVal; break;
 | 
						|
          case Instruction::Sub: GV.IntVal = LHS.IntVal - RHS.IntVal; break;
 | 
						|
          case Instruction::Mul: GV.IntVal = LHS.IntVal * RHS.IntVal; break;
 | 
						|
          case Instruction::UDiv:GV.IntVal = LHS.IntVal.udiv(RHS.IntVal); break;
 | 
						|
          case Instruction::SDiv:GV.IntVal = LHS.IntVal.sdiv(RHS.IntVal); break;
 | 
						|
          case Instruction::URem:GV.IntVal = LHS.IntVal.urem(RHS.IntVal); break;
 | 
						|
          case Instruction::SRem:GV.IntVal = LHS.IntVal.srem(RHS.IntVal); break;
 | 
						|
          case Instruction::And: GV.IntVal = LHS.IntVal & RHS.IntVal; break;
 | 
						|
          case Instruction::Or:  GV.IntVal = LHS.IntVal | RHS.IntVal; break;
 | 
						|
          case Instruction::Xor: GV.IntVal = LHS.IntVal ^ RHS.IntVal; break;
 | 
						|
        }
 | 
						|
        break;
 | 
						|
      case Type::FloatTyID:
 | 
						|
        switch (CE->getOpcode()) {
 | 
						|
          default: llvm_unreachable("Invalid float opcode");
 | 
						|
          case Instruction::FAdd:
 | 
						|
            GV.FloatVal = LHS.FloatVal + RHS.FloatVal; break;
 | 
						|
          case Instruction::FSub:
 | 
						|
            GV.FloatVal = LHS.FloatVal - RHS.FloatVal; break;
 | 
						|
          case Instruction::FMul:
 | 
						|
            GV.FloatVal = LHS.FloatVal * RHS.FloatVal; break;
 | 
						|
          case Instruction::FDiv: 
 | 
						|
            GV.FloatVal = LHS.FloatVal / RHS.FloatVal; break;
 | 
						|
          case Instruction::FRem: 
 | 
						|
            GV.FloatVal = ::fmodf(LHS.FloatVal,RHS.FloatVal); break;
 | 
						|
        }
 | 
						|
        break;
 | 
						|
      case Type::DoubleTyID:
 | 
						|
        switch (CE->getOpcode()) {
 | 
						|
          default: llvm_unreachable("Invalid double opcode");
 | 
						|
          case Instruction::FAdd:
 | 
						|
            GV.DoubleVal = LHS.DoubleVal + RHS.DoubleVal; break;
 | 
						|
          case Instruction::FSub:
 | 
						|
            GV.DoubleVal = LHS.DoubleVal - RHS.DoubleVal; break;
 | 
						|
          case Instruction::FMul:
 | 
						|
            GV.DoubleVal = LHS.DoubleVal * RHS.DoubleVal; break;
 | 
						|
          case Instruction::FDiv: 
 | 
						|
            GV.DoubleVal = LHS.DoubleVal / RHS.DoubleVal; break;
 | 
						|
          case Instruction::FRem: 
 | 
						|
            GV.DoubleVal = ::fmod(LHS.DoubleVal,RHS.DoubleVal); break;
 | 
						|
        }
 | 
						|
        break;
 | 
						|
      case Type::X86_FP80TyID:
 | 
						|
      case Type::PPC_FP128TyID:
 | 
						|
      case Type::FP128TyID: {
 | 
						|
        APFloat apfLHS = APFloat(LHS.IntVal);
 | 
						|
        switch (CE->getOpcode()) {
 | 
						|
          default: llvm_unreachable("Invalid long double opcode");llvm_unreachable(0);
 | 
						|
          case Instruction::FAdd:
 | 
						|
            apfLHS.add(APFloat(RHS.IntVal), APFloat::rmNearestTiesToEven);
 | 
						|
            GV.IntVal = apfLHS.bitcastToAPInt();
 | 
						|
            break;
 | 
						|
          case Instruction::FSub:
 | 
						|
            apfLHS.subtract(APFloat(RHS.IntVal), APFloat::rmNearestTiesToEven);
 | 
						|
            GV.IntVal = apfLHS.bitcastToAPInt();
 | 
						|
            break;
 | 
						|
          case Instruction::FMul:
 | 
						|
            apfLHS.multiply(APFloat(RHS.IntVal), APFloat::rmNearestTiesToEven);
 | 
						|
            GV.IntVal = apfLHS.bitcastToAPInt();
 | 
						|
            break;
 | 
						|
          case Instruction::FDiv: 
 | 
						|
            apfLHS.divide(APFloat(RHS.IntVal), APFloat::rmNearestTiesToEven);
 | 
						|
            GV.IntVal = apfLHS.bitcastToAPInt();
 | 
						|
            break;
 | 
						|
          case Instruction::FRem: 
 | 
						|
            apfLHS.mod(APFloat(RHS.IntVal), APFloat::rmNearestTiesToEven);
 | 
						|
            GV.IntVal = apfLHS.bitcastToAPInt();
 | 
						|
            break;
 | 
						|
          }
 | 
						|
        }
 | 
						|
        break;
 | 
						|
      }
 | 
						|
      return GV;
 | 
						|
    }
 | 
						|
    default:
 | 
						|
      break;
 | 
						|
    }
 | 
						|
    std::string msg;
 | 
						|
    raw_string_ostream Msg(msg);
 | 
						|
    Msg << "ConstantExpr not handled: " << *CE;
 | 
						|
    llvm_report_error(Msg.str());
 | 
						|
  }
 | 
						|
 | 
						|
  GenericValue Result;
 | 
						|
  switch (C->getType()->getTypeID()) {
 | 
						|
  case Type::FloatTyID: 
 | 
						|
    Result.FloatVal = cast<ConstantFP>(C)->getValueAPF().convertToFloat(); 
 | 
						|
    break;
 | 
						|
  case Type::DoubleTyID:
 | 
						|
    Result.DoubleVal = cast<ConstantFP>(C)->getValueAPF().convertToDouble();
 | 
						|
    break;
 | 
						|
  case Type::X86_FP80TyID:
 | 
						|
  case Type::FP128TyID:
 | 
						|
  case Type::PPC_FP128TyID:
 | 
						|
    Result.IntVal = cast <ConstantFP>(C)->getValueAPF().bitcastToAPInt();
 | 
						|
    break;
 | 
						|
  case Type::IntegerTyID:
 | 
						|
    Result.IntVal = cast<ConstantInt>(C)->getValue();
 | 
						|
    break;
 | 
						|
  case Type::PointerTyID:
 | 
						|
    if (isa<ConstantPointerNull>(C))
 | 
						|
      Result.PointerVal = 0;
 | 
						|
    else if (const Function *F = dyn_cast<Function>(C))
 | 
						|
      Result = PTOGV(getPointerToFunctionOrStub(const_cast<Function*>(F)));
 | 
						|
    else if (const GlobalVariable* GV = dyn_cast<GlobalVariable>(C))
 | 
						|
      Result = PTOGV(getOrEmitGlobalVariable(const_cast<GlobalVariable*>(GV)));
 | 
						|
    else
 | 
						|
      llvm_unreachable("Unknown constant pointer type!");
 | 
						|
    break;
 | 
						|
  default:
 | 
						|
    std::string msg;
 | 
						|
    raw_string_ostream Msg(msg);
 | 
						|
    Msg << "ERROR: Constant unimplemented for type: " << *C->getType();
 | 
						|
    llvm_report_error(Msg.str());
 | 
						|
  }
 | 
						|
  return Result;
 | 
						|
}
 | 
						|
 | 
						|
/// StoreIntToMemory - Fills the StoreBytes bytes of memory starting from Dst
 | 
						|
/// with the integer held in IntVal.
 | 
						|
static void StoreIntToMemory(const APInt &IntVal, uint8_t *Dst,
 | 
						|
                             unsigned StoreBytes) {
 | 
						|
  assert((IntVal.getBitWidth()+7)/8 >= StoreBytes && "Integer too small!");
 | 
						|
  uint8_t *Src = (uint8_t *)IntVal.getRawData();
 | 
						|
 | 
						|
  if (sys::isLittleEndianHost())
 | 
						|
    // Little-endian host - the source is ordered from LSB to MSB.  Order the
 | 
						|
    // destination from LSB to MSB: Do a straight copy.
 | 
						|
    memcpy(Dst, Src, StoreBytes);
 | 
						|
  else {
 | 
						|
    // Big-endian host - the source is an array of 64 bit words ordered from
 | 
						|
    // LSW to MSW.  Each word is ordered from MSB to LSB.  Order the destination
 | 
						|
    // from MSB to LSB: Reverse the word order, but not the bytes in a word.
 | 
						|
    while (StoreBytes > sizeof(uint64_t)) {
 | 
						|
      StoreBytes -= sizeof(uint64_t);
 | 
						|
      // May not be aligned so use memcpy.
 | 
						|
      memcpy(Dst + StoreBytes, Src, sizeof(uint64_t));
 | 
						|
      Src += sizeof(uint64_t);
 | 
						|
    }
 | 
						|
 | 
						|
    memcpy(Dst, Src + sizeof(uint64_t) - StoreBytes, StoreBytes);
 | 
						|
  }
 | 
						|
}
 | 
						|
 | 
						|
/// StoreValueToMemory - Stores the data in Val of type Ty at address Ptr.  Ptr
 | 
						|
/// is the address of the memory at which to store Val, cast to GenericValue *.
 | 
						|
/// It is not a pointer to a GenericValue containing the address at which to
 | 
						|
/// store Val.
 | 
						|
void ExecutionEngine::StoreValueToMemory(const GenericValue &Val,
 | 
						|
                                         GenericValue *Ptr, const Type *Ty) {
 | 
						|
  const unsigned StoreBytes = getTargetData()->getTypeStoreSize(Ty);
 | 
						|
 | 
						|
  switch (Ty->getTypeID()) {
 | 
						|
  case Type::IntegerTyID:
 | 
						|
    StoreIntToMemory(Val.IntVal, (uint8_t*)Ptr, StoreBytes);
 | 
						|
    break;
 | 
						|
  case Type::FloatTyID:
 | 
						|
    *((float*)Ptr) = Val.FloatVal;
 | 
						|
    break;
 | 
						|
  case Type::DoubleTyID:
 | 
						|
    *((double*)Ptr) = Val.DoubleVal;
 | 
						|
    break;
 | 
						|
  case Type::X86_FP80TyID:
 | 
						|
    memcpy(Ptr, Val.IntVal.getRawData(), 10);
 | 
						|
    break;
 | 
						|
  case Type::PointerTyID:
 | 
						|
    // Ensure 64 bit target pointers are fully initialized on 32 bit hosts.
 | 
						|
    if (StoreBytes != sizeof(PointerTy))
 | 
						|
      memset(Ptr, 0, StoreBytes);
 | 
						|
 | 
						|
    *((PointerTy*)Ptr) = Val.PointerVal;
 | 
						|
    break;
 | 
						|
  default:
 | 
						|
    errs() << "Cannot store value of type " << *Ty << "!\n";
 | 
						|
  }
 | 
						|
 | 
						|
  if (sys::isLittleEndianHost() != getTargetData()->isLittleEndian())
 | 
						|
    // Host and target are different endian - reverse the stored bytes.
 | 
						|
    std::reverse((uint8_t*)Ptr, StoreBytes + (uint8_t*)Ptr);
 | 
						|
}
 | 
						|
 | 
						|
/// LoadIntFromMemory - Loads the integer stored in the LoadBytes bytes starting
 | 
						|
/// from Src into IntVal, which is assumed to be wide enough and to hold zero.
 | 
						|
static void LoadIntFromMemory(APInt &IntVal, uint8_t *Src, unsigned LoadBytes) {
 | 
						|
  assert((IntVal.getBitWidth()+7)/8 >= LoadBytes && "Integer too small!");
 | 
						|
  uint8_t *Dst = (uint8_t *)IntVal.getRawData();
 | 
						|
 | 
						|
  if (sys::isLittleEndianHost())
 | 
						|
    // Little-endian host - the destination must be ordered from LSB to MSB.
 | 
						|
    // The source is ordered from LSB to MSB: Do a straight copy.
 | 
						|
    memcpy(Dst, Src, LoadBytes);
 | 
						|
  else {
 | 
						|
    // Big-endian - the destination is an array of 64 bit words ordered from
 | 
						|
    // LSW to MSW.  Each word must be ordered from MSB to LSB.  The source is
 | 
						|
    // ordered from MSB to LSB: Reverse the word order, but not the bytes in
 | 
						|
    // a word.
 | 
						|
    while (LoadBytes > sizeof(uint64_t)) {
 | 
						|
      LoadBytes -= sizeof(uint64_t);
 | 
						|
      // May not be aligned so use memcpy.
 | 
						|
      memcpy(Dst, Src + LoadBytes, sizeof(uint64_t));
 | 
						|
      Dst += sizeof(uint64_t);
 | 
						|
    }
 | 
						|
 | 
						|
    memcpy(Dst + sizeof(uint64_t) - LoadBytes, Src, LoadBytes);
 | 
						|
  }
 | 
						|
}
 | 
						|
 | 
						|
/// FIXME: document
 | 
						|
///
 | 
						|
void ExecutionEngine::LoadValueFromMemory(GenericValue &Result,
 | 
						|
                                          GenericValue *Ptr,
 | 
						|
                                          const Type *Ty) {
 | 
						|
  const unsigned LoadBytes = getTargetData()->getTypeStoreSize(Ty);
 | 
						|
 | 
						|
  switch (Ty->getTypeID()) {
 | 
						|
  case Type::IntegerTyID:
 | 
						|
    // An APInt with all words initially zero.
 | 
						|
    Result.IntVal = APInt(cast<IntegerType>(Ty)->getBitWidth(), 0);
 | 
						|
    LoadIntFromMemory(Result.IntVal, (uint8_t*)Ptr, LoadBytes);
 | 
						|
    break;
 | 
						|
  case Type::FloatTyID:
 | 
						|
    Result.FloatVal = *((float*)Ptr);
 | 
						|
    break;
 | 
						|
  case Type::DoubleTyID:
 | 
						|
    Result.DoubleVal = *((double*)Ptr);
 | 
						|
    break;
 | 
						|
  case Type::PointerTyID:
 | 
						|
    Result.PointerVal = *((PointerTy*)Ptr);
 | 
						|
    break;
 | 
						|
  case Type::X86_FP80TyID: {
 | 
						|
    // This is endian dependent, but it will only work on x86 anyway.
 | 
						|
    // FIXME: Will not trap if loading a signaling NaN.
 | 
						|
    uint64_t y[2];
 | 
						|
    memcpy(y, Ptr, 10);
 | 
						|
    Result.IntVal = APInt(80, 2, y);
 | 
						|
    break;
 | 
						|
  }
 | 
						|
  default:
 | 
						|
    std::string msg;
 | 
						|
    raw_string_ostream Msg(msg);
 | 
						|
    Msg << "Cannot load value of type " << *Ty << "!";
 | 
						|
    llvm_report_error(Msg.str());
 | 
						|
  }
 | 
						|
}
 | 
						|
 | 
						|
// InitializeMemory - Recursive function to apply a Constant value into the
 | 
						|
// specified memory location...
 | 
						|
//
 | 
						|
void ExecutionEngine::InitializeMemory(const Constant *Init, void *Addr) {
 | 
						|
  DEBUG(errs() << "JIT: Initializing " << Addr << " ");
 | 
						|
  DEBUG(Init->dump());
 | 
						|
  if (isa<UndefValue>(Init)) {
 | 
						|
    return;
 | 
						|
  } else if (const ConstantVector *CP = dyn_cast<ConstantVector>(Init)) {
 | 
						|
    unsigned ElementSize =
 | 
						|
      getTargetData()->getTypeAllocSize(CP->getType()->getElementType());
 | 
						|
    for (unsigned i = 0, e = CP->getNumOperands(); i != e; ++i)
 | 
						|
      InitializeMemory(CP->getOperand(i), (char*)Addr+i*ElementSize);
 | 
						|
    return;
 | 
						|
  } else if (isa<ConstantAggregateZero>(Init)) {
 | 
						|
    memset(Addr, 0, (size_t)getTargetData()->getTypeAllocSize(Init->getType()));
 | 
						|
    return;
 | 
						|
  } else if (const ConstantArray *CPA = dyn_cast<ConstantArray>(Init)) {
 | 
						|
    unsigned ElementSize =
 | 
						|
      getTargetData()->getTypeAllocSize(CPA->getType()->getElementType());
 | 
						|
    for (unsigned i = 0, e = CPA->getNumOperands(); i != e; ++i)
 | 
						|
      InitializeMemory(CPA->getOperand(i), (char*)Addr+i*ElementSize);
 | 
						|
    return;
 | 
						|
  } else if (const ConstantStruct *CPS = dyn_cast<ConstantStruct>(Init)) {
 | 
						|
    const StructLayout *SL =
 | 
						|
      getTargetData()->getStructLayout(cast<StructType>(CPS->getType()));
 | 
						|
    for (unsigned i = 0, e = CPS->getNumOperands(); i != e; ++i)
 | 
						|
      InitializeMemory(CPS->getOperand(i), (char*)Addr+SL->getElementOffset(i));
 | 
						|
    return;
 | 
						|
  } else if (Init->getType()->isFirstClassType()) {
 | 
						|
    GenericValue Val = getConstantValue(Init);
 | 
						|
    StoreValueToMemory(Val, (GenericValue*)Addr, Init->getType());
 | 
						|
    return;
 | 
						|
  }
 | 
						|
 | 
						|
  errs() << "Bad Type: " << *Init->getType() << "\n";
 | 
						|
  llvm_unreachable("Unknown constant type to initialize memory with!");
 | 
						|
}
 | 
						|
 | 
						|
/// EmitGlobals - Emit all of the global variables to memory, storing their
 | 
						|
/// addresses into GlobalAddress.  This must make sure to copy the contents of
 | 
						|
/// their initializers into the memory.
 | 
						|
///
 | 
						|
void ExecutionEngine::emitGlobals() {
 | 
						|
 | 
						|
  // Loop over all of the global variables in the program, allocating the memory
 | 
						|
  // to hold them.  If there is more than one module, do a prepass over globals
 | 
						|
  // to figure out how the different modules should link together.
 | 
						|
  //
 | 
						|
  std::map<std::pair<std::string, const Type*>,
 | 
						|
           const GlobalValue*> LinkedGlobalsMap;
 | 
						|
 | 
						|
  if (Modules.size() != 1) {
 | 
						|
    for (unsigned m = 0, e = Modules.size(); m != e; ++m) {
 | 
						|
      Module &M = *Modules[m]->getModule();
 | 
						|
      for (Module::const_global_iterator I = M.global_begin(),
 | 
						|
           E = M.global_end(); I != E; ++I) {
 | 
						|
        const GlobalValue *GV = I;
 | 
						|
        if (GV->hasLocalLinkage() || GV->isDeclaration() ||
 | 
						|
            GV->hasAppendingLinkage() || !GV->hasName())
 | 
						|
          continue;// Ignore external globals and globals with internal linkage.
 | 
						|
          
 | 
						|
        const GlobalValue *&GVEntry = 
 | 
						|
          LinkedGlobalsMap[std::make_pair(GV->getName(), GV->getType())];
 | 
						|
 | 
						|
        // If this is the first time we've seen this global, it is the canonical
 | 
						|
        // version.
 | 
						|
        if (!GVEntry) {
 | 
						|
          GVEntry = GV;
 | 
						|
          continue;
 | 
						|
        }
 | 
						|
        
 | 
						|
        // If the existing global is strong, never replace it.
 | 
						|
        if (GVEntry->hasExternalLinkage() ||
 | 
						|
            GVEntry->hasDLLImportLinkage() ||
 | 
						|
            GVEntry->hasDLLExportLinkage())
 | 
						|
          continue;
 | 
						|
        
 | 
						|
        // Otherwise, we know it's linkonce/weak, replace it if this is a strong
 | 
						|
        // symbol.  FIXME is this right for common?
 | 
						|
        if (GV->hasExternalLinkage() || GVEntry->hasExternalWeakLinkage())
 | 
						|
          GVEntry = GV;
 | 
						|
      }
 | 
						|
    }
 | 
						|
  }
 | 
						|
  
 | 
						|
  std::vector<const GlobalValue*> NonCanonicalGlobals;
 | 
						|
  for (unsigned m = 0, e = Modules.size(); m != e; ++m) {
 | 
						|
    Module &M = *Modules[m]->getModule();
 | 
						|
    for (Module::const_global_iterator I = M.global_begin(), E = M.global_end();
 | 
						|
         I != E; ++I) {
 | 
						|
      // In the multi-module case, see what this global maps to.
 | 
						|
      if (!LinkedGlobalsMap.empty()) {
 | 
						|
        if (const GlobalValue *GVEntry = 
 | 
						|
              LinkedGlobalsMap[std::make_pair(I->getName(), I->getType())]) {
 | 
						|
          // If something else is the canonical global, ignore this one.
 | 
						|
          if (GVEntry != &*I) {
 | 
						|
            NonCanonicalGlobals.push_back(I);
 | 
						|
            continue;
 | 
						|
          }
 | 
						|
        }
 | 
						|
      }
 | 
						|
      
 | 
						|
      if (!I->isDeclaration()) {
 | 
						|
        addGlobalMapping(I, getMemoryForGV(I));
 | 
						|
      } else {
 | 
						|
        // External variable reference. Try to use the dynamic loader to
 | 
						|
        // get a pointer to it.
 | 
						|
        if (void *SymAddr =
 | 
						|
            sys::DynamicLibrary::SearchForAddressOfSymbol(I->getName()))
 | 
						|
          addGlobalMapping(I, SymAddr);
 | 
						|
        else {
 | 
						|
          llvm_report_error("Could not resolve external global address: "
 | 
						|
                            +I->getName());
 | 
						|
        }
 | 
						|
      }
 | 
						|
    }
 | 
						|
    
 | 
						|
    // If there are multiple modules, map the non-canonical globals to their
 | 
						|
    // canonical location.
 | 
						|
    if (!NonCanonicalGlobals.empty()) {
 | 
						|
      for (unsigned i = 0, e = NonCanonicalGlobals.size(); i != e; ++i) {
 | 
						|
        const GlobalValue *GV = NonCanonicalGlobals[i];
 | 
						|
        const GlobalValue *CGV =
 | 
						|
          LinkedGlobalsMap[std::make_pair(GV->getName(), GV->getType())];
 | 
						|
        void *Ptr = getPointerToGlobalIfAvailable(CGV);
 | 
						|
        assert(Ptr && "Canonical global wasn't codegen'd!");
 | 
						|
        addGlobalMapping(GV, Ptr);
 | 
						|
      }
 | 
						|
    }
 | 
						|
    
 | 
						|
    // Now that all of the globals are set up in memory, loop through them all 
 | 
						|
    // and initialize their contents.
 | 
						|
    for (Module::const_global_iterator I = M.global_begin(), E = M.global_end();
 | 
						|
         I != E; ++I) {
 | 
						|
      if (!I->isDeclaration()) {
 | 
						|
        if (!LinkedGlobalsMap.empty()) {
 | 
						|
          if (const GlobalValue *GVEntry = 
 | 
						|
                LinkedGlobalsMap[std::make_pair(I->getName(), I->getType())])
 | 
						|
            if (GVEntry != &*I)  // Not the canonical variable.
 | 
						|
              continue;
 | 
						|
        }
 | 
						|
        EmitGlobalVariable(I);
 | 
						|
      }
 | 
						|
    }
 | 
						|
  }
 | 
						|
}
 | 
						|
 | 
						|
// EmitGlobalVariable - This method emits the specified global variable to the
 | 
						|
// address specified in GlobalAddresses, or allocates new memory if it's not
 | 
						|
// already in the map.
 | 
						|
void ExecutionEngine::EmitGlobalVariable(const GlobalVariable *GV) {
 | 
						|
  void *GA = getPointerToGlobalIfAvailable(GV);
 | 
						|
 | 
						|
  if (GA == 0) {
 | 
						|
    // If it's not already specified, allocate memory for the global.
 | 
						|
    GA = getMemoryForGV(GV);
 | 
						|
    addGlobalMapping(GV, GA);
 | 
						|
  }
 | 
						|
  
 | 
						|
  // Don't initialize if it's thread local, let the client do it.
 | 
						|
  if (!GV->isThreadLocal())
 | 
						|
    InitializeMemory(GV->getInitializer(), GA);
 | 
						|
  
 | 
						|
  const Type *ElTy = GV->getType()->getElementType();
 | 
						|
  size_t GVSize = (size_t)getTargetData()->getTypeAllocSize(ElTy);
 | 
						|
  NumInitBytes += (unsigned)GVSize;
 | 
						|
  ++NumGlobals;
 | 
						|
}
 |