Use 'override/final' instead of 'virtual' for overridden methods
[oota-llvm.git] / unittests / Transforms / Utils / Cloning.cpp
1 //===- Cloning.cpp - Unit tests for the Cloner ----------------------------===//
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/Transforms/Utils/Cloning.h"
11 #include "llvm/ADT/ArrayRef.h"
12 #include "llvm/ADT/STLExtras.h"
13 #include "llvm/ADT/SmallPtrSet.h"
14 #include "llvm/IR/Argument.h"
15 #include "llvm/IR/Constant.h"
16 #include "llvm/IR/DIBuilder.h"
17 #include "llvm/IR/DebugInfo.h"
18 #include "llvm/IR/Function.h"
19 #include "llvm/IR/IRBuilder.h"
20 #include "llvm/IR/InstIterator.h"
21 #include "llvm/IR/Instructions.h"
22 #include "llvm/IR/IntrinsicInst.h"
23 #include "llvm/IR/LLVMContext.h"
24 #include "llvm/IR/Module.h"
25 #include "llvm/IR/Verifier.h"
26 #include "gtest/gtest.h"
27
28 using namespace llvm;
29
30 namespace {
31
32 class CloneInstruction : public ::testing::Test {
33 protected:
34   void SetUp() override { V = nullptr; }
35
36   template <typename T>
37   T *clone(T *V1) {
38     Value *V2 = V1->clone();
39     Orig.insert(V1);
40     Clones.insert(V2);
41     return cast<T>(V2);
42   }
43
44   void eraseClones() {
45     DeleteContainerPointers(Clones);
46   }
47
48   void TearDown() override {
49     eraseClones();
50     DeleteContainerPointers(Orig);
51     delete V;
52   }
53
54   SmallPtrSet<Value *, 4> Orig;   // Erase on exit
55   SmallPtrSet<Value *, 4> Clones; // Erase in eraseClones
56
57   LLVMContext context;
58   Value *V;
59 };
60
61 TEST_F(CloneInstruction, OverflowBits) {
62   V = new Argument(Type::getInt32Ty(context));
63
64   BinaryOperator *Add = BinaryOperator::Create(Instruction::Add, V, V);
65   BinaryOperator *Sub = BinaryOperator::Create(Instruction::Sub, V, V);
66   BinaryOperator *Mul = BinaryOperator::Create(Instruction::Mul, V, V);
67
68   BinaryOperator *AddClone = this->clone(Add);
69   BinaryOperator *SubClone = this->clone(Sub);
70   BinaryOperator *MulClone = this->clone(Mul);
71
72   EXPECT_FALSE(AddClone->hasNoUnsignedWrap());
73   EXPECT_FALSE(AddClone->hasNoSignedWrap());
74   EXPECT_FALSE(SubClone->hasNoUnsignedWrap());
75   EXPECT_FALSE(SubClone->hasNoSignedWrap());
76   EXPECT_FALSE(MulClone->hasNoUnsignedWrap());
77   EXPECT_FALSE(MulClone->hasNoSignedWrap());
78
79   eraseClones();
80
81   Add->setHasNoUnsignedWrap();
82   Sub->setHasNoUnsignedWrap();
83   Mul->setHasNoUnsignedWrap();
84
85   AddClone = this->clone(Add);
86   SubClone = this->clone(Sub);
87   MulClone = this->clone(Mul);
88
89   EXPECT_TRUE(AddClone->hasNoUnsignedWrap());
90   EXPECT_FALSE(AddClone->hasNoSignedWrap());
91   EXPECT_TRUE(SubClone->hasNoUnsignedWrap());
92   EXPECT_FALSE(SubClone->hasNoSignedWrap());
93   EXPECT_TRUE(MulClone->hasNoUnsignedWrap());
94   EXPECT_FALSE(MulClone->hasNoSignedWrap());
95
96   eraseClones();
97
98   Add->setHasNoSignedWrap();
99   Sub->setHasNoSignedWrap();
100   Mul->setHasNoSignedWrap();
101
102   AddClone = this->clone(Add);
103   SubClone = this->clone(Sub);
104   MulClone = this->clone(Mul);
105
106   EXPECT_TRUE(AddClone->hasNoUnsignedWrap());
107   EXPECT_TRUE(AddClone->hasNoSignedWrap());
108   EXPECT_TRUE(SubClone->hasNoUnsignedWrap());
109   EXPECT_TRUE(SubClone->hasNoSignedWrap());
110   EXPECT_TRUE(MulClone->hasNoUnsignedWrap());
111   EXPECT_TRUE(MulClone->hasNoSignedWrap());
112
113   eraseClones();
114
115   Add->setHasNoUnsignedWrap(false);
116   Sub->setHasNoUnsignedWrap(false);
117   Mul->setHasNoUnsignedWrap(false);
118
119   AddClone = this->clone(Add);
120   SubClone = this->clone(Sub);
121   MulClone = this->clone(Mul);
122
123   EXPECT_FALSE(AddClone->hasNoUnsignedWrap());
124   EXPECT_TRUE(AddClone->hasNoSignedWrap());
125   EXPECT_FALSE(SubClone->hasNoUnsignedWrap());
126   EXPECT_TRUE(SubClone->hasNoSignedWrap());
127   EXPECT_FALSE(MulClone->hasNoUnsignedWrap());
128   EXPECT_TRUE(MulClone->hasNoSignedWrap());
129 }
130
131 TEST_F(CloneInstruction, Inbounds) {
132   V = new Argument(Type::getInt32PtrTy(context));
133
134   Constant *Z = Constant::getNullValue(Type::getInt32Ty(context));
135   std::vector<Value *> ops;
136   ops.push_back(Z);
137   GetElementPtrInst *GEP =
138       GetElementPtrInst::Create(Type::getInt32Ty(context), V, ops);
139   EXPECT_FALSE(this->clone(GEP)->isInBounds());
140
141   GEP->setIsInBounds();
142   EXPECT_TRUE(this->clone(GEP)->isInBounds());
143 }
144
145 TEST_F(CloneInstruction, Exact) {
146   V = new Argument(Type::getInt32Ty(context));
147
148   BinaryOperator *SDiv = BinaryOperator::Create(Instruction::SDiv, V, V);
149   EXPECT_FALSE(this->clone(SDiv)->isExact());
150
151   SDiv->setIsExact(true);
152   EXPECT_TRUE(this->clone(SDiv)->isExact());
153 }
154
155 TEST_F(CloneInstruction, Attributes) {
156   Type *ArgTy1[] = { Type::getInt32PtrTy(context) };
157   FunctionType *FT1 =  FunctionType::get(Type::getVoidTy(context), ArgTy1, false);
158
159   Function *F1 = Function::Create(FT1, Function::ExternalLinkage);
160   BasicBlock *BB = BasicBlock::Create(context, "", F1);
161   IRBuilder<> Builder(BB);
162   Builder.CreateRetVoid();
163
164   Function *F2 = Function::Create(FT1, Function::ExternalLinkage);
165
166   Attribute::AttrKind AK[] = { Attribute::NoCapture };
167   AttributeSet AS = AttributeSet::get(context, 0, AK);
168   Argument *A = F1->arg_begin();
169   A->addAttr(AS);
170
171   SmallVector<ReturnInst*, 4> Returns;
172   ValueToValueMapTy VMap;
173   VMap[A] = UndefValue::get(A->getType());
174
175   CloneFunctionInto(F2, F1, VMap, false, Returns);
176   EXPECT_FALSE(F2->arg_begin()->hasNoCaptureAttr());
177
178   delete F1;
179   delete F2;
180 }
181
182 TEST_F(CloneInstruction, CallingConvention) {
183   Type *ArgTy1[] = { Type::getInt32PtrTy(context) };
184   FunctionType *FT1 =  FunctionType::get(Type::getVoidTy(context), ArgTy1, false);
185
186   Function *F1 = Function::Create(FT1, Function::ExternalLinkage);
187   F1->setCallingConv(CallingConv::Cold);
188   BasicBlock *BB = BasicBlock::Create(context, "", F1);
189   IRBuilder<> Builder(BB);
190   Builder.CreateRetVoid();
191
192   Function *F2 = Function::Create(FT1, Function::ExternalLinkage);
193
194   SmallVector<ReturnInst*, 4> Returns;
195   ValueToValueMapTy VMap;
196   VMap[F1->arg_begin()] = F2->arg_begin();
197
198   CloneFunctionInto(F2, F1, VMap, false, Returns);
199   EXPECT_EQ(CallingConv::Cold, F2->getCallingConv());
200
201   delete F1;
202   delete F2;
203 }
204
205 class CloneFunc : public ::testing::Test {
206 protected:
207   void SetUp() override {
208     SetupModule();
209     CreateOldFunc();
210     CreateNewFunc();
211     SetupFinder();
212   }
213
214   void TearDown() override { delete Finder; }
215
216   void SetupModule() {
217     M = new Module("", C);
218   }
219
220   void CreateOldFunc() {
221     FunctionType* FuncType = FunctionType::get(Type::getVoidTy(C), false);
222     OldFunc = Function::Create(FuncType, GlobalValue::PrivateLinkage, "f", M);
223     CreateOldFunctionBodyAndDI();
224   }
225
226   void CreateOldFunctionBodyAndDI() {
227     DIBuilder DBuilder(*M);
228     IRBuilder<> IBuilder(C);
229
230     // Function DI
231     DIFile File = DBuilder.createFile("filename.c", "/file/dir/");
232     DITypeArray ParamTypes = DBuilder.getOrCreateTypeArray(None);
233     DICompositeType FuncType = DBuilder.createSubroutineType(File, ParamTypes);
234     DICompileUnit CU = DBuilder.createCompileUnit(dwarf::DW_LANG_C99,
235         "filename.c", "/file/dir", "CloneFunc", false, "", 0);
236
237     DISubprogram Subprogram = DBuilder.createFunction(CU, "f", "f", File, 4,
238         FuncType, true, true, 3, 0, false, OldFunc);
239
240     // Function body
241     BasicBlock* Entry = BasicBlock::Create(C, "", OldFunc);
242     IBuilder.SetInsertPoint(Entry);
243     DebugLoc Loc = DebugLoc::get(3, 2, Subprogram);
244     IBuilder.SetCurrentDebugLocation(Loc);
245     AllocaInst* Alloca = IBuilder.CreateAlloca(IntegerType::getInt32Ty(C));
246     IBuilder.SetCurrentDebugLocation(DebugLoc::get(4, 2, Subprogram));
247     Value* AllocaContent = IBuilder.getInt32(1);
248     Instruction* Store = IBuilder.CreateStore(AllocaContent, Alloca);
249     IBuilder.SetCurrentDebugLocation(DebugLoc::get(5, 2, Subprogram));
250     Instruction* Terminator = IBuilder.CreateRetVoid();
251
252     // Create a local variable around the alloca
253     DIType IntType = DBuilder.createBasicType("int", 32, 0,
254         dwarf::DW_ATE_signed);
255     DIExpression E = DBuilder.createExpression();
256     DIVariable Variable = DBuilder.createLocalVariable(
257       dwarf::DW_TAG_auto_variable, Subprogram, "x", File, 5, IntType, true);
258     DBuilder.insertDeclare(Alloca, Variable, E, Store);
259     DBuilder.insertDbgValueIntrinsic(AllocaContent, 0, Variable, E, Terminator);
260     // Finalize the debug info
261     DBuilder.finalize();
262
263
264     // Create another, empty, compile unit
265     DIBuilder DBuilder2(*M);
266     DBuilder2.createCompileUnit(dwarf::DW_LANG_C99,
267         "extra.c", "/file/dir", "CloneFunc", false, "", 0);
268     DBuilder2.finalize();
269   }
270
271   void CreateNewFunc() {
272     ValueToValueMapTy VMap;
273     NewFunc = CloneFunction(OldFunc, VMap, true, nullptr);
274     M->getFunctionList().push_back(NewFunc);
275   }
276
277   void SetupFinder() {
278     Finder = new DebugInfoFinder();
279     Finder->processModule(*M);
280   }
281
282   LLVMContext C;
283   Function* OldFunc;
284   Function* NewFunc;
285   Module* M;
286   DebugInfoFinder* Finder;
287 };
288
289 // Test that a new, distinct function was created.
290 TEST_F(CloneFunc, NewFunctionCreated) {
291   EXPECT_NE(OldFunc, NewFunc);
292 }
293
294 // Test that a new subprogram entry was added and is pointing to the new
295 // function, while the original subprogram still points to the old one.
296 TEST_F(CloneFunc, Subprogram) {
297   EXPECT_FALSE(verifyModule(*M));
298
299   unsigned SubprogramCount = Finder->subprogram_count();
300   EXPECT_EQ(2U, SubprogramCount);
301
302   auto Iter = Finder->subprograms().begin();
303   DISubprogram Sub1 = cast<MDSubprogram>(*Iter);
304   Iter++;
305   DISubprogram Sub2 = cast<MDSubprogram>(*Iter);
306
307   EXPECT_TRUE((Sub1.getFunction() == OldFunc && Sub2.getFunction() == NewFunc)
308            || (Sub1.getFunction() == NewFunc && Sub2.getFunction() == OldFunc));
309 }
310
311 // Test that the new subprogram entry was not added to the CU which doesn't
312 // contain the old subprogram entry.
313 TEST_F(CloneFunc, SubprogramInRightCU) {
314   EXPECT_FALSE(verifyModule(*M));
315
316   EXPECT_EQ(2U, Finder->compile_unit_count());
317
318   auto Iter = Finder->compile_units().begin();
319   DICompileUnit CU1 = cast<MDCompileUnit>(*Iter);
320   Iter++;
321   DICompileUnit CU2 = cast<MDCompileUnit>(*Iter);
322   EXPECT_TRUE(CU1.getSubprograms().size() == 0 ||
323               CU2.getSubprograms().size() == 0);
324 }
325
326 // Test that instructions in the old function still belong to it in the
327 // metadata, while instruction in the new function belong to the new one.
328 TEST_F(CloneFunc, InstructionOwnership) {
329   EXPECT_FALSE(verifyModule(*M));
330
331   inst_iterator OldIter = inst_begin(OldFunc);
332   inst_iterator OldEnd = inst_end(OldFunc);
333   inst_iterator NewIter = inst_begin(NewFunc);
334   inst_iterator NewEnd = inst_end(NewFunc);
335   while (OldIter != OldEnd && NewIter != NewEnd) {
336     Instruction& OldI = *OldIter;
337     Instruction& NewI = *NewIter;
338     EXPECT_NE(&OldI, &NewI);
339
340     EXPECT_EQ(OldI.hasMetadata(), NewI.hasMetadata());
341     if (OldI.hasMetadata()) {
342       const DebugLoc& OldDL = OldI.getDebugLoc();
343       const DebugLoc& NewDL = NewI.getDebugLoc();
344
345       // Verify that the debug location data is the same
346       EXPECT_EQ(OldDL.getLine(), NewDL.getLine());
347       EXPECT_EQ(OldDL.getCol(), NewDL.getCol());
348
349       // But that they belong to different functions
350       DISubprogram OldSubprogram = cast<MDSubprogram>(OldDL.getScope());
351       DISubprogram NewSubprogram = cast<MDSubprogram>(NewDL.getScope());
352       EXPECT_EQ(OldFunc, OldSubprogram.getFunction());
353       EXPECT_EQ(NewFunc, NewSubprogram.getFunction());
354     }
355
356     ++OldIter;
357     ++NewIter;
358   }
359   EXPECT_EQ(OldEnd, OldIter);
360   EXPECT_EQ(NewEnd, NewIter);
361 }
362
363 // Test that the arguments for debug intrinsics in the new function were
364 // properly cloned
365 TEST_F(CloneFunc, DebugIntrinsics) {
366   EXPECT_FALSE(verifyModule(*M));
367
368   inst_iterator OldIter = inst_begin(OldFunc);
369   inst_iterator OldEnd = inst_end(OldFunc);
370   inst_iterator NewIter = inst_begin(NewFunc);
371   inst_iterator NewEnd = inst_end(NewFunc);
372   while (OldIter != OldEnd && NewIter != NewEnd) {
373     Instruction& OldI = *OldIter;
374     Instruction& NewI = *NewIter;
375     if (DbgDeclareInst* OldIntrin = dyn_cast<DbgDeclareInst>(&OldI)) {
376       DbgDeclareInst* NewIntrin = dyn_cast<DbgDeclareInst>(&NewI);
377       EXPECT_TRUE(NewIntrin);
378
379       // Old address must belong to the old function
380       EXPECT_EQ(OldFunc, cast<AllocaInst>(OldIntrin->getAddress())->
381                          getParent()->getParent());
382       // New address must belong to the new function
383       EXPECT_EQ(NewFunc, cast<AllocaInst>(NewIntrin->getAddress())->
384                          getParent()->getParent());
385
386       // Old variable must belong to the old function
387       EXPECT_EQ(OldFunc, DISubprogram(cast<MDSubprogram>(
388                                           OldIntrin->getVariable()->getScope()))
389                              .getFunction());
390       // New variable must belong to the New function
391       EXPECT_EQ(NewFunc, DISubprogram(cast<MDSubprogram>(
392                                           NewIntrin->getVariable()->getScope()))
393                              .getFunction());
394     } else if (DbgValueInst* OldIntrin = dyn_cast<DbgValueInst>(&OldI)) {
395       DbgValueInst* NewIntrin = dyn_cast<DbgValueInst>(&NewI);
396       EXPECT_TRUE(NewIntrin);
397
398       // Old variable must belong to the old function
399       EXPECT_EQ(OldFunc, DISubprogram(cast<MDSubprogram>(
400                                           OldIntrin->getVariable()->getScope()))
401                              .getFunction());
402       // New variable must belong to the New function
403       EXPECT_EQ(NewFunc, DISubprogram(cast<MDSubprogram>(
404                                           NewIntrin->getVariable()->getScope()))
405                              .getFunction());
406     }
407
408     ++OldIter;
409     ++NewIter;
410   }
411 }
412
413 }