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Eric Christopherb9fd9ed2014-08-07 22:02:54 +00001//===- JITTest.cpp - Unit tests for the JIT -------------------------------===//
2//
3// The LLVM Compiler Infrastructure
4//
5// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
7//
8//===----------------------------------------------------------------------===//
9
10#include "llvm/ExecutionEngine/JIT.h"
11#include "llvm/ADT/SmallPtrSet.h"
12#include "llvm/AsmParser/Parser.h"
13#include "llvm/Bitcode/ReaderWriter.h"
14#include "llvm/ExecutionEngine/JITMemoryManager.h"
15#include "llvm/IR/BasicBlock.h"
16#include "llvm/IR/Constant.h"
17#include "llvm/IR/Constants.h"
18#include "llvm/IR/DerivedTypes.h"
19#include "llvm/IR/Function.h"
20#include "llvm/IR/GlobalValue.h"
21#include "llvm/IR/GlobalVariable.h"
22#include "llvm/IR/IRBuilder.h"
23#include "llvm/IR/LLVMContext.h"
24#include "llvm/IR/Module.h"
25#include "llvm/IR/Type.h"
26#include "llvm/IR/TypeBuilder.h"
27#include "llvm/Support/MemoryBuffer.h"
28#include "llvm/Support/SourceMgr.h"
29#include "llvm/Support/TargetSelect.h"
30#include "gtest/gtest.h"
31#include <vector>
32
33using namespace llvm;
34
35// This variable is intentionally defined differently in the statically-compiled
36// program from the IR input to the JIT to assert that the JIT doesn't use its
37// definition. Note that this variable must be defined even on platforms where
38// JIT tests are disabled as it is referenced from the .def file.
39extern "C" int32_t JITTest_AvailableExternallyGlobal;
40int32_t JITTest_AvailableExternallyGlobal LLVM_ATTRIBUTE_USED = 42;
41
42// This function is intentionally defined differently in the statically-compiled
43// program from the IR input to the JIT to assert that the JIT doesn't use its
44// definition. Note that this function must be defined even on platforms where
45// JIT tests are disabled as it is referenced from the .def file.
46extern "C" int32_t JITTest_AvailableExternallyFunction() LLVM_ATTRIBUTE_USED;
47extern "C" int32_t JITTest_AvailableExternallyFunction() {
48 return 42;
49}
50
51namespace {
52
53// Tests on ARM, PowerPC and SystemZ disabled as we're running the old jit
54#if !defined(__arm__) && !defined(__powerpc__) && !defined(__s390__) \
55 && !defined(__aarch64__)
56
57Function *makeReturnGlobal(std::string Name, GlobalVariable *G, Module *M) {
58 std::vector<Type*> params;
59 FunctionType *FTy = FunctionType::get(G->getType()->getElementType(),
60 params, false);
61 Function *F = Function::Create(FTy, GlobalValue::ExternalLinkage, Name, M);
62 BasicBlock *Entry = BasicBlock::Create(M->getContext(), "entry", F);
63 IRBuilder<> builder(Entry);
64 Value *Load = builder.CreateLoad(G);
65 Type *GTy = G->getType()->getElementType();
66 Value *Add = builder.CreateAdd(Load, ConstantInt::get(GTy, 1LL));
67 builder.CreateStore(Add, G);
68 builder.CreateRet(Add);
69 return F;
70}
71
72std::string DumpFunction(const Function *F) {
73 std::string Result;
74 raw_string_ostream(Result) << "" << *F;
75 return Result;
76}
77
78class RecordingJITMemoryManager : public JITMemoryManager {
79 const std::unique_ptr<JITMemoryManager> Base;
80
81public:
82 RecordingJITMemoryManager()
83 : Base(JITMemoryManager::CreateDefaultMemManager()) {
84 stubsAllocated = 0;
85 }
86 virtual void *getPointerToNamedFunction(const std::string &Name,
87 bool AbortOnFailure = true) {
88 return Base->getPointerToNamedFunction(Name, AbortOnFailure);
89 }
90
91 virtual void setMemoryWritable() { Base->setMemoryWritable(); }
92 virtual void setMemoryExecutable() { Base->setMemoryExecutable(); }
93 virtual void setPoisonMemory(bool poison) { Base->setPoisonMemory(poison); }
94 virtual void AllocateGOT() { Base->AllocateGOT(); }
95 virtual uint8_t *getGOTBase() const { return Base->getGOTBase(); }
96 struct StartFunctionBodyCall {
97 StartFunctionBodyCall(uint8_t *Result, const Function *F,
98 uintptr_t ActualSize, uintptr_t ActualSizeResult)
99 : Result(Result), F(F), F_dump(DumpFunction(F)),
100 ActualSize(ActualSize), ActualSizeResult(ActualSizeResult) {}
101 uint8_t *Result;
102 const Function *F;
103 std::string F_dump;
104 uintptr_t ActualSize;
105 uintptr_t ActualSizeResult;
106 };
107 std::vector<StartFunctionBodyCall> startFunctionBodyCalls;
108 virtual uint8_t *startFunctionBody(const Function *F,
109 uintptr_t &ActualSize) {
110 uintptr_t InitialActualSize = ActualSize;
111 uint8_t *Result = Base->startFunctionBody(F, ActualSize);
112 startFunctionBodyCalls.push_back(
113 StartFunctionBodyCall(Result, F, InitialActualSize, ActualSize));
114 return Result;
115 }
116 int stubsAllocated;
117 uint8_t *allocateStub(const GlobalValue *F, unsigned StubSize,
118 unsigned Alignment) override {
119 stubsAllocated++;
120 return Base->allocateStub(F, StubSize, Alignment);
121 }
122 struct EndFunctionBodyCall {
123 EndFunctionBodyCall(const Function *F, uint8_t *FunctionStart,
124 uint8_t *FunctionEnd)
125 : F(F), F_dump(DumpFunction(F)),
126 FunctionStart(FunctionStart), FunctionEnd(FunctionEnd) {}
127 const Function *F;
128 std::string F_dump;
129 uint8_t *FunctionStart;
130 uint8_t *FunctionEnd;
131 };
132 std::vector<EndFunctionBodyCall> endFunctionBodyCalls;
133 virtual void endFunctionBody(const Function *F, uint8_t *FunctionStart,
134 uint8_t *FunctionEnd) {
135 endFunctionBodyCalls.push_back(
136 EndFunctionBodyCall(F, FunctionStart, FunctionEnd));
137 Base->endFunctionBody(F, FunctionStart, FunctionEnd);
138 }
139 virtual uint8_t *allocateDataSection(
140 uintptr_t Size, unsigned Alignment, unsigned SectionID,
141 StringRef SectionName, bool IsReadOnly) {
142 return Base->allocateDataSection(
143 Size, Alignment, SectionID, SectionName, IsReadOnly);
144 }
145 virtual uint8_t *allocateCodeSection(
146 uintptr_t Size, unsigned Alignment, unsigned SectionID,
147 StringRef SectionName) {
148 return Base->allocateCodeSection(
149 Size, Alignment, SectionID, SectionName);
150 }
151 virtual bool finalizeMemory(std::string *ErrMsg) { return false; }
152 virtual uint8_t *allocateSpace(intptr_t Size, unsigned Alignment) {
153 return Base->allocateSpace(Size, Alignment);
154 }
155 virtual uint8_t *allocateGlobal(uintptr_t Size, unsigned Alignment) {
156 return Base->allocateGlobal(Size, Alignment);
157 }
158 struct DeallocateFunctionBodyCall {
159 DeallocateFunctionBodyCall(const void *Body) : Body(Body) {}
160 const void *Body;
161 };
162 std::vector<DeallocateFunctionBodyCall> deallocateFunctionBodyCalls;
163 virtual void deallocateFunctionBody(void *Body) {
164 deallocateFunctionBodyCalls.push_back(DeallocateFunctionBodyCall(Body));
165 Base->deallocateFunctionBody(Body);
166 }
167};
168
169bool LoadAssemblyInto(Module *M, const char *assembly) {
170 SMDiagnostic Error;
171 bool success =
172 nullptr != ParseAssemblyString(assembly, M, Error, M->getContext());
173 std::string errMsg;
174 raw_string_ostream os(errMsg);
175 Error.print("", os);
176 EXPECT_TRUE(success) << os.str();
177 return success;
178}
179
180class JITTest : public testing::Test {
181 protected:
182 virtual RecordingJITMemoryManager *createMemoryManager() {
183 return new RecordingJITMemoryManager;
184 }
185
186 virtual void SetUp() {
Rafael Espindola2a8a2792014-08-19 04:04:25 +0000187 std::unique_ptr<Module> Owner = make_unique<Module>("<main>", Context);
188 M = Owner.get();
Eric Christopherb9fd9ed2014-08-07 22:02:54 +0000189 RJMM = createMemoryManager();
190 RJMM->setPoisonMemory(true);
191 std::string Error;
192 TargetOptions Options;
Rafael Espindola2a8a2792014-08-19 04:04:25 +0000193 TheJIT.reset(EngineBuilder(std::move(Owner))
194 .setEngineKind(EngineKind::JIT)
195 .setJITMemoryManager(RJMM)
196 .setErrorStr(&Error)
197 .setTargetOptions(Options)
198 .create());
Eric Christopherb9fd9ed2014-08-07 22:02:54 +0000199 ASSERT_TRUE(TheJIT.get() != nullptr) << Error;
200 }
201
202 void LoadAssembly(const char *assembly) {
203 LoadAssemblyInto(M, assembly);
204 }
205
206 LLVMContext Context;
207 Module *M; // Owned by ExecutionEngine.
208 RecordingJITMemoryManager *RJMM;
209 std::unique_ptr<ExecutionEngine> TheJIT;
210};
211
212// Regression test for a bug. The JIT used to allocate globals inside the same
213// memory block used for the function, and when the function code was freed,
214// the global was left in the same place. This test allocates a function
215// that uses and global, deallocates it, and then makes sure that the global
216// stays alive after that.
217TEST(JIT, GlobalInFunction) {
218 LLVMContext context;
Rafael Espindola2a8a2792014-08-19 04:04:25 +0000219 std::unique_ptr<Module> Owner = make_unique<Module>("<main>", context);
220 Module *M = Owner.get();
Eric Christopherb9fd9ed2014-08-07 22:02:54 +0000221
222 JITMemoryManager *MemMgr = JITMemoryManager::CreateDefaultMemManager();
223 // Tell the memory manager to poison freed memory so that accessing freed
224 // memory is more easily tested.
225 MemMgr->setPoisonMemory(true);
226 std::string Error;
Rafael Espindola2a8a2792014-08-19 04:04:25 +0000227 std::unique_ptr<ExecutionEngine> JIT(EngineBuilder(std::move(Owner))
Eric Christopherb9fd9ed2014-08-07 22:02:54 +0000228 .setEngineKind(EngineKind::JIT)
229 .setErrorStr(&Error)
230 .setJITMemoryManager(MemMgr)
231 // The next line enables the fix:
232 .setAllocateGVsWithCode(false)
233 .create());
234 ASSERT_EQ(Error, "");
235
236 // Create a global variable.
237 Type *GTy = Type::getInt32Ty(context);
238 GlobalVariable *G = new GlobalVariable(
239 *M,
240 GTy,
241 false, // Not constant.
242 GlobalValue::InternalLinkage,
243 Constant::getNullValue(GTy),
244 "myglobal");
245
246 // Make a function that points to a global.
247 Function *F1 = makeReturnGlobal("F1", G, M);
248
249 // Get the pointer to the native code to force it to JIT the function and
250 // allocate space for the global.
251 void (*F1Ptr)() =
252 reinterpret_cast<void(*)()>((intptr_t)JIT->getPointerToFunction(F1));
253
254 // Since F1 was codegen'd, a pointer to G should be available.
255 int32_t *GPtr = (int32_t*)JIT->getPointerToGlobalIfAvailable(G);
256 ASSERT_NE((int32_t*)nullptr, GPtr);
257 EXPECT_EQ(0, *GPtr);
258
259 // F1() should increment G.
260 F1Ptr();
261 EXPECT_EQ(1, *GPtr);
262
263 // Make a second function identical to the first, referring to the same
264 // global.
265 Function *F2 = makeReturnGlobal("F2", G, M);
266 void (*F2Ptr)() =
267 reinterpret_cast<void(*)()>((intptr_t)JIT->getPointerToFunction(F2));
268
269 // F2() should increment G.
270 F2Ptr();
271 EXPECT_EQ(2, *GPtr);
272
273 // Deallocate F1.
274 JIT->freeMachineCodeForFunction(F1);
275
276 // F2() should *still* increment G.
277 F2Ptr();
278 EXPECT_EQ(3, *GPtr);
279}
280
281int PlusOne(int arg) {
282 return arg + 1;
283}
284
285TEST_F(JITTest, FarCallToKnownFunction) {
286 // x86-64 can only make direct calls to functions within 32 bits of
287 // the current PC. To call anything farther away, we have to load
288 // the address into a register and call through the register. The
289 // current JIT does this by allocating a stub for any far call.
290 // There was a bug in which the JIT tried to emit a direct call when
291 // the target was already in the JIT's global mappings and lazy
292 // compilation was disabled.
293
294 Function *KnownFunction = Function::Create(
295 TypeBuilder<int(int), false>::get(Context),
296 GlobalValue::ExternalLinkage, "known", M);
297 TheJIT->addGlobalMapping(KnownFunction, (void*)(intptr_t)PlusOne);
298
299 // int test() { return known(7); }
300 Function *TestFunction = Function::Create(
301 TypeBuilder<int(), false>::get(Context),
302 GlobalValue::ExternalLinkage, "test", M);
303 BasicBlock *Entry = BasicBlock::Create(Context, "entry", TestFunction);
304 IRBuilder<> Builder(Entry);
305 Value *result = Builder.CreateCall(
306 KnownFunction,
307 ConstantInt::get(TypeBuilder<int, false>::get(Context), 7));
308 Builder.CreateRet(result);
309
310 TheJIT->DisableLazyCompilation(true);
311 int (*TestFunctionPtr)() = reinterpret_cast<int(*)()>(
312 (intptr_t)TheJIT->getPointerToFunction(TestFunction));
313 // This used to crash in trying to call PlusOne().
314 EXPECT_EQ(8, TestFunctionPtr());
315}
316
317// Test a function C which calls A and B which call each other.
318TEST_F(JITTest, NonLazyCompilationStillNeedsStubs) {
319 TheJIT->DisableLazyCompilation(true);
320
321 FunctionType *Func1Ty =
322 cast<FunctionType>(TypeBuilder<void(void), false>::get(Context));
323 std::vector<Type*> arg_types;
324 arg_types.push_back(Type::getInt1Ty(Context));
325 FunctionType *FuncTy = FunctionType::get(
326 Type::getVoidTy(Context), arg_types, false);
327 Function *Func1 = Function::Create(Func1Ty, Function::ExternalLinkage,
328 "func1", M);
329 Function *Func2 = Function::Create(FuncTy, Function::InternalLinkage,
330 "func2", M);
331 Function *Func3 = Function::Create(FuncTy, Function::InternalLinkage,
332 "func3", M);
333 BasicBlock *Block1 = BasicBlock::Create(Context, "block1", Func1);
334 BasicBlock *Block2 = BasicBlock::Create(Context, "block2", Func2);
335 BasicBlock *True2 = BasicBlock::Create(Context, "cond_true", Func2);
336 BasicBlock *False2 = BasicBlock::Create(Context, "cond_false", Func2);
337 BasicBlock *Block3 = BasicBlock::Create(Context, "block3", Func3);
338 BasicBlock *True3 = BasicBlock::Create(Context, "cond_true", Func3);
339 BasicBlock *False3 = BasicBlock::Create(Context, "cond_false", Func3);
340
341 // Make Func1 call Func2(0) and Func3(0).
342 IRBuilder<> Builder(Block1);
343 Builder.CreateCall(Func2, ConstantInt::getTrue(Context));
344 Builder.CreateCall(Func3, ConstantInt::getTrue(Context));
345 Builder.CreateRetVoid();
346
347 // void Func2(bool b) { if (b) { Func3(false); return; } return; }
348 Builder.SetInsertPoint(Block2);
349 Builder.CreateCondBr(Func2->arg_begin(), True2, False2);
350 Builder.SetInsertPoint(True2);
351 Builder.CreateCall(Func3, ConstantInt::getFalse(Context));
352 Builder.CreateRetVoid();
353 Builder.SetInsertPoint(False2);
354 Builder.CreateRetVoid();
355
356 // void Func3(bool b) { if (b) { Func2(false); return; } return; }
357 Builder.SetInsertPoint(Block3);
358 Builder.CreateCondBr(Func3->arg_begin(), True3, False3);
359 Builder.SetInsertPoint(True3);
360 Builder.CreateCall(Func2, ConstantInt::getFalse(Context));
361 Builder.CreateRetVoid();
362 Builder.SetInsertPoint(False3);
363 Builder.CreateRetVoid();
364
365 // Compile the function to native code
366 void (*F1Ptr)() =
367 reinterpret_cast<void(*)()>((intptr_t)TheJIT->getPointerToFunction(Func1));
368
369 F1Ptr();
370}
371
372// Regression test for PR5162. This used to trigger an AssertingVH inside the
373// JIT's Function to stub mapping.
374TEST_F(JITTest, NonLazyLeaksNoStubs) {
375 TheJIT->DisableLazyCompilation(true);
376
377 // Create two functions with a single basic block each.
378 FunctionType *FuncTy =
379 cast<FunctionType>(TypeBuilder<int(), false>::get(Context));
380 Function *Func1 = Function::Create(FuncTy, Function::ExternalLinkage,
381 "func1", M);
382 Function *Func2 = Function::Create(FuncTy, Function::InternalLinkage,
383 "func2", M);
384 BasicBlock *Block1 = BasicBlock::Create(Context, "block1", Func1);
385 BasicBlock *Block2 = BasicBlock::Create(Context, "block2", Func2);
386
387 // The first function calls the second and returns the result
388 IRBuilder<> Builder(Block1);
389 Value *Result = Builder.CreateCall(Func2);
390 Builder.CreateRet(Result);
391
392 // The second function just returns a constant
393 Builder.SetInsertPoint(Block2);
394 Builder.CreateRet(ConstantInt::get(TypeBuilder<int, false>::get(Context),42));
395
396 // Compile the function to native code
397 (void)TheJIT->getPointerToFunction(Func1);
398
399 // Free the JIT state for the functions
400 TheJIT->freeMachineCodeForFunction(Func1);
401 TheJIT->freeMachineCodeForFunction(Func2);
402
403 // Delete the first function (and show that is has no users)
404 EXPECT_EQ(Func1->getNumUses(), 0u);
405 Func1->eraseFromParent();
406
407 // Delete the second function (and show that it has no users - it had one,
408 // func1 but that's gone now)
409 EXPECT_EQ(Func2->getNumUses(), 0u);
410 Func2->eraseFromParent();
411}
412
413TEST_F(JITTest, ModuleDeletion) {
414 TheJIT->DisableLazyCompilation(false);
415 LoadAssembly("define void @main() { "
416 " call i32 @computeVal() "
417 " ret void "
418 "} "
419 " "
420 "define internal i32 @computeVal() { "
421 " ret i32 0 "
422 "} ");
423 Function *func = M->getFunction("main");
424 TheJIT->getPointerToFunction(func);
425 TheJIT->removeModule(M);
426 delete M;
427
428 SmallPtrSet<const void*, 2> FunctionsDeallocated;
429 for (unsigned i = 0, e = RJMM->deallocateFunctionBodyCalls.size();
430 i != e; ++i) {
431 FunctionsDeallocated.insert(RJMM->deallocateFunctionBodyCalls[i].Body);
432 }
433 for (unsigned i = 0, e = RJMM->startFunctionBodyCalls.size(); i != e; ++i) {
434 EXPECT_TRUE(FunctionsDeallocated.count(
435 RJMM->startFunctionBodyCalls[i].Result))
436 << "Function leaked: \n" << RJMM->startFunctionBodyCalls[i].F_dump;
437 }
438 EXPECT_EQ(RJMM->startFunctionBodyCalls.size(),
439 RJMM->deallocateFunctionBodyCalls.size());
440}
441
442// ARM, MIPS and PPC still emit stubs for calls since the target may be
443// too far away to call directly. This #if can probably be removed when
444// http://llvm.org/PR5201 is fixed.
445#if !defined(__arm__) && !defined(__mips__) && \
446 !defined(__powerpc__) && !defined(__ppc__) && !defined(__aarch64__)
447typedef int (*FooPtr) ();
448
449TEST_F(JITTest, NoStubs) {
450 LoadAssembly("define void @bar() {"
451 "entry: "
452 "ret void"
453 "}"
454 " "
455 "define i32 @foo() {"
456 "entry:"
457 "call void @bar()"
458 "ret i32 undef"
459 "}"
460 " "
461 "define i32 @main() {"
462 "entry:"
463 "%0 = call i32 @foo()"
464 "call void @bar()"
465 "ret i32 undef"
466 "}");
467 Function *foo = M->getFunction("foo");
468 uintptr_t tmp = (uintptr_t)(TheJIT->getPointerToFunction(foo));
469 FooPtr ptr = (FooPtr)(tmp);
470
471 (ptr)();
472
473 // We should now allocate no more stubs, we have the code to foo
474 // and the existing stub for bar.
475 int stubsBefore = RJMM->stubsAllocated;
476 Function *func = M->getFunction("main");
477 TheJIT->getPointerToFunction(func);
478
479 Function *bar = M->getFunction("bar");
480 TheJIT->getPointerToFunction(bar);
481
482 ASSERT_EQ(stubsBefore, RJMM->stubsAllocated);
483}
484#endif // !ARM && !PPC
485
486TEST_F(JITTest, FunctionPointersOutliveTheirCreator) {
487 TheJIT->DisableLazyCompilation(true);
488 LoadAssembly("define i8()* @get_foo_addr() { "
489 " ret i8()* @foo "
490 "} "
491 " "
492 "define i8 @foo() { "
493 " ret i8 42 "
494 "} ");
495 Function *F_get_foo_addr = M->getFunction("get_foo_addr");
496
497 typedef char(*fooT)();
498 fooT (*get_foo_addr)() = reinterpret_cast<fooT(*)()>(
499 (intptr_t)TheJIT->getPointerToFunction(F_get_foo_addr));
500 fooT foo_addr = get_foo_addr();
501
502 // Now free get_foo_addr. This should not free the machine code for foo or
503 // any call stub returned as foo's canonical address.
504 TheJIT->freeMachineCodeForFunction(F_get_foo_addr);
505
506 // Check by calling the reported address of foo.
507 EXPECT_EQ(42, foo_addr());
508
509 // The reported address should also be the same as the result of a subsequent
510 // getPointerToFunction(foo).
511#if 0
512 // Fails until PR5126 is fixed:
513 Function *F_foo = M->getFunction("foo");
514 fooT foo = reinterpret_cast<fooT>(
515 (intptr_t)TheJIT->getPointerToFunction(F_foo));
516 EXPECT_EQ((intptr_t)foo, (intptr_t)foo_addr);
517#endif
518}
519
520// ARM does not have an implementation of replaceMachineCodeForFunction(),
521// so recompileAndRelinkFunction doesn't work.
522#if !defined(__arm__) && !defined(__aarch64__)
523TEST_F(JITTest, FunctionIsRecompiledAndRelinked) {
524 Function *F = Function::Create(TypeBuilder<int(void), false>::get(Context),
525 GlobalValue::ExternalLinkage, "test", M);
526 BasicBlock *Entry = BasicBlock::Create(Context, "entry", F);
527 IRBuilder<> Builder(Entry);
528 Value *Val = ConstantInt::get(TypeBuilder<int, false>::get(Context), 1);
529 Builder.CreateRet(Val);
530
531 TheJIT->DisableLazyCompilation(true);
532 // Compile the function once, and make sure it works.
533 int (*OrigFPtr)() = reinterpret_cast<int(*)()>(
534 (intptr_t)TheJIT->recompileAndRelinkFunction(F));
535 EXPECT_EQ(1, OrigFPtr());
536
537 // Now change the function to return a different value.
538 Entry->eraseFromParent();
539 BasicBlock *NewEntry = BasicBlock::Create(Context, "new_entry", F);
540 Builder.SetInsertPoint(NewEntry);
541 Val = ConstantInt::get(TypeBuilder<int, false>::get(Context), 2);
542 Builder.CreateRet(Val);
543 // Recompile it, which should produce a new function pointer _and_ update the
544 // old one.
545 int (*NewFPtr)() = reinterpret_cast<int(*)()>(
546 (intptr_t)TheJIT->recompileAndRelinkFunction(F));
547
548 EXPECT_EQ(2, NewFPtr())
549 << "The new pointer should call the new version of the function";
550 EXPECT_EQ(2, OrigFPtr())
551 << "The old pointer's target should now jump to the new version";
552}
553#endif // !defined(__arm__)
554
555TEST_F(JITTest, AvailableExternallyGlobalIsntEmitted) {
556 TheJIT->DisableLazyCompilation(true);
557 LoadAssembly("@JITTest_AvailableExternallyGlobal = "
558 " available_externally global i32 7 "
559 " "
560 "define i32 @loader() { "
561 " %result = load i32* @JITTest_AvailableExternallyGlobal "
562 " ret i32 %result "
563 "} ");
564 Function *loaderIR = M->getFunction("loader");
565
566 int32_t (*loader)() = reinterpret_cast<int32_t(*)()>(
567 (intptr_t)TheJIT->getPointerToFunction(loaderIR));
568 EXPECT_EQ(42, loader()) << "func should return 42 from the external global,"
569 << " not 7 from the IR version.";
570}
571
572TEST_F(JITTest, AvailableExternallyFunctionIsntCompiled) {
573 TheJIT->DisableLazyCompilation(true);
574 LoadAssembly("define available_externally i32 "
575 " @JITTest_AvailableExternallyFunction() { "
576 " ret i32 7 "
577 "} "
578 " "
579 "define i32 @func() { "
580 " %result = tail call i32 "
581 " @JITTest_AvailableExternallyFunction() "
582 " ret i32 %result "
583 "} ");
584 Function *funcIR = M->getFunction("func");
585
586 int32_t (*func)() = reinterpret_cast<int32_t(*)()>(
587 (intptr_t)TheJIT->getPointerToFunction(funcIR));
588 EXPECT_EQ(42, func()) << "func should return 42 from the static version,"
589 << " not 7 from the IR version.";
590}
591
592TEST_F(JITTest, EscapedLazyStubStillCallable) {
593 TheJIT->DisableLazyCompilation(false);
594 LoadAssembly("define internal i32 @stubbed() { "
595 " ret i32 42 "
596 "} "
597 " "
598 "define i32()* @get_stub() { "
599 " ret i32()* @stubbed "
600 "} ");
601 typedef int32_t(*StubTy)();
602
603 // Call get_stub() to get the address of @stubbed without actually JITting it.
604 Function *get_stubIR = M->getFunction("get_stub");
605 StubTy (*get_stub)() = reinterpret_cast<StubTy(*)()>(
606 (intptr_t)TheJIT->getPointerToFunction(get_stubIR));
607 StubTy stubbed = get_stub();
608 // Now get_stubIR is the only reference to stubbed's stub.
609 get_stubIR->eraseFromParent();
610 // Now there are no references inside the JIT, but we've got a pointer outside
611 // it. The stub should be callable and return the right value.
612 EXPECT_EQ(42, stubbed());
613}
614
615// Converts the LLVM assembly to bitcode and returns it in a std::string. An
616// empty string indicates an error.
617std::string AssembleToBitcode(LLVMContext &Context, const char *Assembly) {
618 Module TempModule("TempModule", Context);
619 if (!LoadAssemblyInto(&TempModule, Assembly)) {
620 return "";
621 }
622
623 std::string Result;
624 raw_string_ostream OS(Result);
625 WriteBitcodeToFile(&TempModule, OS);
626 OS.flush();
627 return Result;
628}
629
630// Returns a newly-created ExecutionEngine that reads the bitcode in 'Bitcode'
631// lazily. The associated Module (owned by the ExecutionEngine) is returned in
632// M. Both will be NULL on an error. Bitcode must live at least as long as the
633// ExecutionEngine.
634ExecutionEngine *getJITFromBitcode(
635 LLVMContext &Context, const std::string &Bitcode, Module *&M) {
636 // c_str() is null-terminated like MemoryBuffer::getMemBuffer requires.
637 MemoryBuffer *BitcodeBuffer =
638 MemoryBuffer::getMemBuffer(Bitcode, "Bitcode for test");
639 ErrorOr<Module*> ModuleOrErr = getLazyBitcodeModule(BitcodeBuffer, Context);
640 if (std::error_code EC = ModuleOrErr.getError()) {
641 ADD_FAILURE() << EC.message();
642 delete BitcodeBuffer;
643 return nullptr;
644 }
Rafael Espindola2a8a2792014-08-19 04:04:25 +0000645 std::unique_ptr<Module> Owner(ModuleOrErr.get());
646 M = Owner.get();
Eric Christopherb9fd9ed2014-08-07 22:02:54 +0000647 std::string errMsg;
Rafael Espindola2a8a2792014-08-19 04:04:25 +0000648 ExecutionEngine *TheJIT = EngineBuilder(std::move(Owner))
Eric Christopherb9fd9ed2014-08-07 22:02:54 +0000649 .setEngineKind(EngineKind::JIT)
650 .setErrorStr(&errMsg)
651 .create();
652 if (TheJIT == nullptr) {
653 ADD_FAILURE() << errMsg;
654 delete M;
655 M = nullptr;
656 return nullptr;
657 }
658 return TheJIT;
659}
660
661TEST(LazyLoadedJITTest, MaterializableAvailableExternallyFunctionIsntCompiled) {
662 LLVMContext Context;
663 const std::string Bitcode =
664 AssembleToBitcode(Context,
665 "define available_externally i32 "
666 " @JITTest_AvailableExternallyFunction() { "
667 " ret i32 7 "
668 "} "
669 " "
670 "define i32 @func() { "
671 " %result = tail call i32 "
672 " @JITTest_AvailableExternallyFunction() "
673 " ret i32 %result "
674 "} ");
675 ASSERT_FALSE(Bitcode.empty()) << "Assembling failed";
676 Module *M;
677 std::unique_ptr<ExecutionEngine> TheJIT(
678 getJITFromBitcode(Context, Bitcode, M));
679 ASSERT_TRUE(TheJIT.get()) << "Failed to create JIT.";
680 TheJIT->DisableLazyCompilation(true);
681
682 Function *funcIR = M->getFunction("func");
683 Function *availableFunctionIR =
684 M->getFunction("JITTest_AvailableExternallyFunction");
685
686 // Double-check that the available_externally function is still unmaterialized
687 // when getPointerToFunction needs to find out if it's available_externally.
688 EXPECT_TRUE(availableFunctionIR->isMaterializable());
689
690 int32_t (*func)() = reinterpret_cast<int32_t(*)()>(
691 (intptr_t)TheJIT->getPointerToFunction(funcIR));
692 EXPECT_EQ(42, func()) << "func should return 42 from the static version,"
693 << " not 7 from the IR version.";
694}
695
696TEST(LazyLoadedJITTest, EagerCompiledRecursionThroughGhost) {
697 LLVMContext Context;
698 const std::string Bitcode =
699 AssembleToBitcode(Context,
700 "define i32 @recur1(i32 %a) { "
701 " %zero = icmp eq i32 %a, 0 "
702 " br i1 %zero, label %done, label %notdone "
703 "done: "
704 " ret i32 3 "
705 "notdone: "
706 " %am1 = sub i32 %a, 1 "
707 " %result = call i32 @recur2(i32 %am1) "
708 " ret i32 %result "
709 "} "
710 " "
711 "define i32 @recur2(i32 %b) { "
712 " %result = call i32 @recur1(i32 %b) "
713 " ret i32 %result "
714 "} ");
715 ASSERT_FALSE(Bitcode.empty()) << "Assembling failed";
716 Module *M;
717 std::unique_ptr<ExecutionEngine> TheJIT(
718 getJITFromBitcode(Context, Bitcode, M));
719 ASSERT_TRUE(TheJIT.get()) << "Failed to create JIT.";
720 TheJIT->DisableLazyCompilation(true);
721
722 Function *recur1IR = M->getFunction("recur1");
723 Function *recur2IR = M->getFunction("recur2");
724 EXPECT_TRUE(recur1IR->isMaterializable());
725 EXPECT_TRUE(recur2IR->isMaterializable());
726
727 int32_t (*recur1)(int32_t) = reinterpret_cast<int32_t(*)(int32_t)>(
728 (intptr_t)TheJIT->getPointerToFunction(recur1IR));
729 EXPECT_EQ(3, recur1(4));
730}
731#endif // !defined(__arm__) && !defined(__powerpc__) && !defined(__s390__)
732
733}