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	compiled. When functions are compiled, they accumulate references in the JITResolver's stub maps. This patch removes those references when the functions are destroyed. It's illegal to destroy a Function when any thread may still try to call its machine code. This patch also updates r83987 to use ValueMap instead of explicit CallbackVHs and fixes a couple "do stuff inside assert()" bugs from r84522. git-svn-id: https://llvm.org/svn/llvm-project/llvm/trunk@84975 91177308-0d34-0410-b5e6-96231b3b80d8
		
			
				
	
	
		
			307 lines
		
	
	
		
			11 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
			
		
		
	
	
			307 lines
		
	
	
		
			11 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
//===- JITTest.cpp - Unit tests for the JIT -------------------------------===//
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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 "gtest/gtest.h"
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#include "llvm/ADT/OwningPtr.h"
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#include "llvm/Assembly/Parser.h"
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#include "llvm/BasicBlock.h"
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#include "llvm/Constant.h"
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#include "llvm/Constants.h"
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#include "llvm/DerivedTypes.h"
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#include "llvm/ExecutionEngine/JIT.h"
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#include "llvm/ExecutionEngine/JITMemoryManager.h"
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#include "llvm/Function.h"
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#include "llvm/GlobalValue.h"
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#include "llvm/GlobalVariable.h"
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#include "llvm/LLVMContext.h"
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#include "llvm/Module.h"
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#include "llvm/ModuleProvider.h"
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#include "llvm/Support/IRBuilder.h"
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#include "llvm/Support/SourceMgr.h"
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#include "llvm/Support/TypeBuilder.h"
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#include "llvm/Target/TargetSelect.h"
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#include "llvm/Type.h"
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using namespace llvm;
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namespace {
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Function *makeReturnGlobal(std::string Name, GlobalVariable *G, Module *M) {
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  std::vector<const Type*> params;
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  const FunctionType *FTy = FunctionType::get(G->getType()->getElementType(),
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                                              params, false);
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  Function *F = Function::Create(FTy, GlobalValue::ExternalLinkage, Name, M);
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  BasicBlock *Entry = BasicBlock::Create(M->getContext(), "entry", F);
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  IRBuilder<> builder(Entry);
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  Value *Load = builder.CreateLoad(G);
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  const Type *GTy = G->getType()->getElementType();
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  Value *Add = builder.CreateAdd(Load, ConstantInt::get(GTy, 1LL));
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  builder.CreateStore(Add, G);
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  builder.CreateRet(Add);
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  return F;
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}
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class JITTest : public testing::Test {
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 protected:
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  virtual void SetUp() {
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    M = new Module("<main>", Context);
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    MP = new ExistingModuleProvider(M);
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    std::string Error;
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    TheJIT.reset(EngineBuilder(MP).setEngineKind(EngineKind::JIT)
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                 .setErrorStr(&Error).create());
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    ASSERT_TRUE(TheJIT.get() != NULL) << Error;
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  }
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  void LoadAssembly(const char *assembly) {
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    SMDiagnostic Error;
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    bool success = NULL != ParseAssemblyString(assembly, M, Error, Context);
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    std::string errMsg;
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    raw_string_ostream os(errMsg);
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    Error.Print("", os);
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    ASSERT_TRUE(success) << os.str();
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  }
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  LLVMContext Context;
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  Module *M;  // Owned by MP.
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  ModuleProvider *MP;  // Owned by ExecutionEngine.
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  OwningPtr<ExecutionEngine> TheJIT;
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};
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// Regression test for a bug.  The JIT used to allocate globals inside the same
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// memory block used for the function, and when the function code was freed,
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// the global was left in the same place.  This test allocates a function
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// that uses and global, deallocates it, and then makes sure that the global
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// stays alive after that.
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TEST(JIT, GlobalInFunction) {
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  LLVMContext context;
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  Module *M = new Module("<main>", context);
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  ExistingModuleProvider *MP = new ExistingModuleProvider(M);
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  JITMemoryManager *MemMgr = JITMemoryManager::CreateDefaultMemManager();
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  // Tell the memory manager to poison freed memory so that accessing freed
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  // memory is more easily tested.
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  MemMgr->setPoisonMemory(true);
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  std::string Error;
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  OwningPtr<ExecutionEngine> JIT(EngineBuilder(MP)
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                                 .setEngineKind(EngineKind::JIT)
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                                 .setErrorStr(&Error)
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                                 .setJITMemoryManager(MemMgr)
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                                 // The next line enables the fix:
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                                 .setAllocateGVsWithCode(false)
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                                 .create());
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  ASSERT_EQ(Error, "");
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  // Create a global variable.
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  const Type *GTy = Type::getInt32Ty(context);
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  GlobalVariable *G = new GlobalVariable(
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      *M,
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      GTy,
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      false,  // Not constant.
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      GlobalValue::InternalLinkage,
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      Constant::getNullValue(GTy),
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      "myglobal");
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  // Make a function that points to a global.
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  Function *F1 = makeReturnGlobal("F1", G, M);
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  // Get the pointer to the native code to force it to JIT the function and
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  // allocate space for the global.
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  void (*F1Ptr)() =
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      reinterpret_cast<void(*)()>((intptr_t)JIT->getPointerToFunction(F1));
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  // Since F1 was codegen'd, a pointer to G should be available.
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  int32_t *GPtr = (int32_t*)JIT->getPointerToGlobalIfAvailable(G);
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  ASSERT_NE((int32_t*)NULL, GPtr);
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  EXPECT_EQ(0, *GPtr);
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  // F1() should increment G.
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  F1Ptr();
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  EXPECT_EQ(1, *GPtr);
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  // Make a second function identical to the first, referring to the same
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  // global.
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  Function *F2 = makeReturnGlobal("F2", G, M);
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  void (*F2Ptr)() =
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      reinterpret_cast<void(*)()>((intptr_t)JIT->getPointerToFunction(F2));
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  // F2() should increment G.
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  F2Ptr();
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  EXPECT_EQ(2, *GPtr);
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  // Deallocate F1.
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  JIT->freeMachineCodeForFunction(F1);
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  // F2() should *still* increment G.
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  F2Ptr();
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  EXPECT_EQ(3, *GPtr);
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}
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int PlusOne(int arg) {
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  return arg + 1;
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}
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TEST_F(JITTest, FarCallToKnownFunction) {
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  // x86-64 can only make direct calls to functions within 32 bits of
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  // the current PC.  To call anything farther away, we have to load
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  // the address into a register and call through the register.  The
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  // current JIT does this by allocating a stub for any far call.
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  // There was a bug in which the JIT tried to emit a direct call when
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  // the target was already in the JIT's global mappings and lazy
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  // compilation was disabled.
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  Function *KnownFunction = Function::Create(
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      TypeBuilder<int(int), false>::get(Context),
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      GlobalValue::ExternalLinkage, "known", M);
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  TheJIT->addGlobalMapping(KnownFunction, (void*)(intptr_t)PlusOne);
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  // int test() { return known(7); }
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  Function *TestFunction = Function::Create(
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      TypeBuilder<int(), false>::get(Context),
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      GlobalValue::ExternalLinkage, "test", M);
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  BasicBlock *Entry = BasicBlock::Create(Context, "entry", TestFunction);
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  IRBuilder<> Builder(Entry);
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  Value *result = Builder.CreateCall(
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      KnownFunction,
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      ConstantInt::get(TypeBuilder<int, false>::get(Context), 7));
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  Builder.CreateRet(result);
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  TheJIT->EnableDlsymStubs(false);
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  TheJIT->DisableLazyCompilation();
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  int (*TestFunctionPtr)() = reinterpret_cast<int(*)()>(
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      (intptr_t)TheJIT->getPointerToFunction(TestFunction));
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  // This used to crash in trying to call PlusOne().
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  EXPECT_EQ(8, TestFunctionPtr());
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}
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#if !defined(__arm__) && !defined(__powerpc__) && !defined(__ppc__)
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// Test a function C which calls A and B which call each other.
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TEST_F(JITTest, NonLazyCompilationStillNeedsStubs) {
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  TheJIT->DisableLazyCompilation();
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  const FunctionType *Func1Ty =
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      cast<FunctionType>(TypeBuilder<void(void), false>::get(Context));
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  std::vector<const Type*> arg_types;
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  arg_types.push_back(Type::getInt1Ty(Context));
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  const FunctionType *FuncTy = FunctionType::get(
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      Type::getVoidTy(Context), arg_types, false);
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  Function *Func1 = Function::Create(Func1Ty, Function::ExternalLinkage,
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                                     "func1", M);
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  Function *Func2 = Function::Create(FuncTy, Function::InternalLinkage,
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                                     "func2", M);
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  Function *Func3 = Function::Create(FuncTy, Function::InternalLinkage,
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                                     "func3", M);
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  BasicBlock *Block1 = BasicBlock::Create(Context, "block1", Func1);
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  BasicBlock *Block2 = BasicBlock::Create(Context, "block2", Func2);
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  BasicBlock *True2 = BasicBlock::Create(Context, "cond_true", Func2);
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  BasicBlock *False2 = BasicBlock::Create(Context, "cond_false", Func2);
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  BasicBlock *Block3 = BasicBlock::Create(Context, "block3", Func3);
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  BasicBlock *True3 = BasicBlock::Create(Context, "cond_true", Func3);
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  BasicBlock *False3 = BasicBlock::Create(Context, "cond_false", Func3);
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  // Make Func1 call Func2(0) and Func3(0).
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  IRBuilder<> Builder(Block1);
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  Builder.CreateCall(Func2, ConstantInt::getTrue(Context));
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  Builder.CreateCall(Func3, ConstantInt::getTrue(Context));
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  Builder.CreateRetVoid();
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  // void Func2(bool b) { if (b) { Func3(false); return; } return; }
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  Builder.SetInsertPoint(Block2);
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  Builder.CreateCondBr(Func2->arg_begin(), True2, False2);
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  Builder.SetInsertPoint(True2);
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  Builder.CreateCall(Func3, ConstantInt::getFalse(Context));
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  Builder.CreateRetVoid();
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  Builder.SetInsertPoint(False2);
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  Builder.CreateRetVoid();
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  // void Func3(bool b) { if (b) { Func2(false); return; } return; }
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  Builder.SetInsertPoint(Block3);
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  Builder.CreateCondBr(Func3->arg_begin(), True3, False3);
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  Builder.SetInsertPoint(True3);
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  Builder.CreateCall(Func2, ConstantInt::getFalse(Context));
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  Builder.CreateRetVoid();
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  Builder.SetInsertPoint(False3);
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  Builder.CreateRetVoid();
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  // Compile the function to native code
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  void (*F1Ptr)() =
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     reinterpret_cast<void(*)()>((intptr_t)TheJIT->getPointerToFunction(Func1));
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  F1Ptr();
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}
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// Regression test for PR5162.  This used to trigger an AssertingVH inside the
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// JIT's Function to stub mapping.
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TEST_F(JITTest, NonLazyLeaksNoStubs) {
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  TheJIT->DisableLazyCompilation();
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  // Create two functions with a single basic block each.
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  const FunctionType *FuncTy =
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      cast<FunctionType>(TypeBuilder<int(), false>::get(Context));
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  Function *Func1 = Function::Create(FuncTy, Function::ExternalLinkage,
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                                     "func1", M);
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  Function *Func2 = Function::Create(FuncTy, Function::InternalLinkage,
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                                     "func2", M);
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  BasicBlock *Block1 = BasicBlock::Create(Context, "block1", Func1);
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  BasicBlock *Block2 = BasicBlock::Create(Context, "block2", Func2);
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  // The first function calls the second and returns the result
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  IRBuilder<> Builder(Block1);
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  Value *Result = Builder.CreateCall(Func2);
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  Builder.CreateRet(Result);
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  // The second function just returns a constant
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  Builder.SetInsertPoint(Block2);
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  Builder.CreateRet(ConstantInt::get(TypeBuilder<int, false>::get(Context),42));
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  // Compile the function to native code
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  (void)TheJIT->getPointerToFunction(Func1);
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  // Free the JIT state for the functions
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  TheJIT->freeMachineCodeForFunction(Func1);
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  TheJIT->freeMachineCodeForFunction(Func2);
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  // Delete the first function (and show that is has no users)
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  EXPECT_EQ(Func1->getNumUses(), 0u);
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  Func1->eraseFromParent();
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  // Delete the second function (and show that it has no users - it had one,
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  // func1 but that's gone now)
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  EXPECT_EQ(Func2->getNumUses(), 0u);
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  Func2->eraseFromParent();
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}
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#endif
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TEST_F(JITTest, ModuleDeletion) {
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  LoadAssembly("define void @main() { "
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               "  call i32 @computeVal() "
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               "  ret void "
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               "} "
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               " "
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               "define internal i32 @computeVal()  { "
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               "  ret i32 0 "
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               "} ");
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  Function *func = M->getFunction("main");
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  TheJIT->getPointerToFunction(func);
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  TheJIT->deleteModuleProvider(MP);
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}
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// This code is copied from JITEventListenerTest, but it only runs once for all
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// the tests in this directory.  Everything seems fine, but that's strange
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// behavior.
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class JITEnvironment : public testing::Environment {
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  virtual void SetUp() {
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    // Required to create a JIT.
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    InitializeNativeTarget();
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  }
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};
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testing::Environment* const jit_env =
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  testing::AddGlobalTestEnvironment(new JITEnvironment);
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}
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