34d662dcb343d8321128f068746e4cdc838ead52
[oota-llvm.git] / unittests / IR / InstructionsTest.cpp
1 //===- llvm/unittest/IR/InstructionsTest.cpp - Instructions unit tests ----===//
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/IR/Instructions.h"
11 #include "llvm/ADT/STLExtras.h"
12 #include "llvm/Analysis/ValueTracking.h"
13 #include "llvm/IR/BasicBlock.h"
14 #include "llvm/IR/Constants.h"
15 #include "llvm/IR/DataLayout.h"
16 #include "llvm/IR/DerivedTypes.h"
17 #include "llvm/IR/IRBuilder.h"
18 #include "llvm/IR/LLVMContext.h"
19 #include "llvm/IR/MDBuilder.h"
20 #include "llvm/IR/Operator.h"
21 #include "gtest/gtest.h"
22
23 namespace llvm {
24 namespace {
25
26 TEST(InstructionsTest, ReturnInst) {
27   LLVMContext &C(getGlobalContext());
28
29   // test for PR6589
30   const ReturnInst* r0 = ReturnInst::Create(C);
31   EXPECT_EQ(r0->getNumOperands(), 0U);
32   EXPECT_EQ(r0->op_begin(), r0->op_end());
33
34   IntegerType* Int1 = IntegerType::get(C, 1);
35   Constant* One = ConstantInt::get(Int1, 1, true);
36   const ReturnInst* r1 = ReturnInst::Create(C, One);
37   EXPECT_EQ(1U, r1->getNumOperands());
38   User::const_op_iterator b(r1->op_begin());
39   EXPECT_NE(r1->op_end(), b);
40   EXPECT_EQ(One, *b);
41   EXPECT_EQ(One, r1->getOperand(0));
42   ++b;
43   EXPECT_EQ(r1->op_end(), b);
44
45   // clean up
46   delete r0;
47   delete r1;
48 }
49
50 TEST(InstructionsTest, BranchInst) {
51   LLVMContext &C(getGlobalContext());
52
53   // Make a BasicBlocks
54   BasicBlock* bb0 = BasicBlock::Create(C);
55   BasicBlock* bb1 = BasicBlock::Create(C);
56
57   // Mandatory BranchInst
58   const BranchInst* b0 = BranchInst::Create(bb0);
59
60   EXPECT_TRUE(b0->isUnconditional());
61   EXPECT_FALSE(b0->isConditional());
62   EXPECT_EQ(1U, b0->getNumSuccessors());
63
64   // check num operands
65   EXPECT_EQ(1U, b0->getNumOperands());
66
67   EXPECT_NE(b0->op_begin(), b0->op_end());
68   EXPECT_EQ(b0->op_end(), llvm::next(b0->op_begin()));
69
70   EXPECT_EQ(b0->op_end(), llvm::next(b0->op_begin()));
71
72   IntegerType* Int1 = IntegerType::get(C, 1);
73   Constant* One = ConstantInt::get(Int1, 1, true);
74
75   // Conditional BranchInst
76   BranchInst* b1 = BranchInst::Create(bb0, bb1, One);
77
78   EXPECT_FALSE(b1->isUnconditional());
79   EXPECT_TRUE(b1->isConditional());
80   EXPECT_EQ(2U, b1->getNumSuccessors());
81
82   // check num operands
83   EXPECT_EQ(3U, b1->getNumOperands());
84
85   User::const_op_iterator b(b1->op_begin());
86
87   // check COND
88   EXPECT_NE(b, b1->op_end());
89   EXPECT_EQ(One, *b);
90   EXPECT_EQ(One, b1->getOperand(0));
91   EXPECT_EQ(One, b1->getCondition());
92   ++b;
93
94   // check ELSE
95   EXPECT_EQ(bb1, *b);
96   EXPECT_EQ(bb1, b1->getOperand(1));
97   EXPECT_EQ(bb1, b1->getSuccessor(1));
98   ++b;
99
100   // check THEN
101   EXPECT_EQ(bb0, *b);
102   EXPECT_EQ(bb0, b1->getOperand(2));
103   EXPECT_EQ(bb0, b1->getSuccessor(0));
104   ++b;
105
106   EXPECT_EQ(b1->op_end(), b);
107
108   // clean up
109   delete b0;
110   delete b1;
111
112   delete bb0;
113   delete bb1;
114 }
115
116 TEST(InstructionsTest, CastInst) {
117   LLVMContext &C(getGlobalContext());
118
119   Type *Int8Ty = Type::getInt8Ty(C);
120   Type *Int16Ty = Type::getInt16Ty(C);
121   Type *Int32Ty = Type::getInt32Ty(C);
122   Type *Int64Ty = Type::getInt64Ty(C);
123   Type *V8x8Ty = VectorType::get(Int8Ty, 8);
124   Type *V8x64Ty = VectorType::get(Int64Ty, 8);
125   Type *X86MMXTy = Type::getX86_MMXTy(C);
126
127   Type *HalfTy = Type::getHalfTy(C);
128   Type *FloatTy = Type::getFloatTy(C);
129   Type *DoubleTy = Type::getDoubleTy(C);
130
131   Type *V2Int32Ty = VectorType::get(Int32Ty, 2);
132   Type *V2Int64Ty = VectorType::get(Int64Ty, 2);
133   Type *V4Int16Ty = VectorType::get(Int16Ty, 4);
134
135   Type *Int32PtrTy = PointerType::get(Int32Ty, 0);
136   Type *Int64PtrTy = PointerType::get(Int64Ty, 0);
137
138   Type *Int32PtrAS1Ty = PointerType::get(Int32Ty, 1);
139   Type *Int64PtrAS1Ty = PointerType::get(Int64Ty, 1);
140
141   Type *V2Int32PtrAS1Ty = VectorType::get(Int32PtrAS1Ty, 2);
142   Type *V2Int64PtrAS1Ty = VectorType::get(Int64PtrAS1Ty, 2);
143   Type *V4Int32PtrAS1Ty = VectorType::get(Int32PtrAS1Ty, 4);
144   Type *V4Int64PtrAS1Ty = VectorType::get(Int64PtrAS1Ty, 4);
145
146   Type *V2Int64PtrTy = VectorType::get(Int64PtrTy, 2);
147   Type *V2Int32PtrTy = VectorType::get(Int32PtrTy, 2);
148
149   const Constant* c8 = Constant::getNullValue(V8x8Ty);
150   const Constant* c64 = Constant::getNullValue(V8x64Ty);
151
152   EXPECT_TRUE(CastInst::isCastable(V8x8Ty, X86MMXTy));
153   EXPECT_TRUE(CastInst::isCastable(X86MMXTy, V8x8Ty));
154   EXPECT_FALSE(CastInst::isCastable(Int64Ty, X86MMXTy));
155   EXPECT_TRUE(CastInst::isCastable(V8x64Ty, V8x8Ty));
156   EXPECT_TRUE(CastInst::isCastable(V8x8Ty, V8x64Ty));
157   EXPECT_EQ(CastInst::Trunc, CastInst::getCastOpcode(c64, true, V8x8Ty, true));
158   EXPECT_EQ(CastInst::SExt, CastInst::getCastOpcode(c8, true, V8x64Ty, true));
159
160   EXPECT_FALSE(CastInst::isBitCastable(V8x8Ty, X86MMXTy));
161   EXPECT_FALSE(CastInst::isBitCastable(X86MMXTy, V8x8Ty));
162   EXPECT_FALSE(CastInst::isBitCastable(Int64Ty, X86MMXTy));
163   EXPECT_FALSE(CastInst::isBitCastable(V8x64Ty, V8x8Ty));
164   EXPECT_FALSE(CastInst::isBitCastable(V8x8Ty, V8x64Ty));
165
166   // Check address space casts are rejected since we don't know the sizes here
167   EXPECT_FALSE(CastInst::isBitCastable(Int32PtrTy, Int32PtrAS1Ty));
168   EXPECT_FALSE(CastInst::isBitCastable(Int32PtrAS1Ty, Int32PtrTy));
169   EXPECT_FALSE(CastInst::isBitCastable(V2Int32PtrTy, V2Int32PtrAS1Ty));
170   EXPECT_FALSE(CastInst::isBitCastable(V2Int32PtrAS1Ty, V2Int32PtrTy));
171   EXPECT_TRUE(CastInst::isBitCastable(V2Int32PtrAS1Ty, V2Int64PtrAS1Ty));
172
173   // Test mismatched number of elements for pointers
174   EXPECT_FALSE(CastInst::isBitCastable(V2Int32PtrAS1Ty, V4Int64PtrAS1Ty));
175   EXPECT_FALSE(CastInst::isBitCastable(V4Int64PtrAS1Ty, V2Int32PtrAS1Ty));
176   EXPECT_FALSE(CastInst::isBitCastable(V2Int32PtrAS1Ty, V4Int32PtrAS1Ty));
177   EXPECT_FALSE(CastInst::isBitCastable(Int32PtrTy, V2Int32PtrTy));
178   EXPECT_FALSE(CastInst::isBitCastable(V2Int32PtrTy, Int32PtrTy));
179
180   EXPECT_TRUE(CastInst::isBitCastable(Int32PtrTy, Int64PtrTy));
181   EXPECT_FALSE(CastInst::isBitCastable(DoubleTy, FloatTy));
182   EXPECT_FALSE(CastInst::isBitCastable(FloatTy, DoubleTy));
183   EXPECT_TRUE(CastInst::isBitCastable(FloatTy, FloatTy));
184   EXPECT_TRUE(CastInst::isBitCastable(FloatTy, FloatTy));
185   EXPECT_TRUE(CastInst::isBitCastable(FloatTy, Int32Ty));
186   EXPECT_TRUE(CastInst::isBitCastable(Int16Ty, HalfTy));
187   EXPECT_TRUE(CastInst::isBitCastable(Int32Ty, FloatTy));
188   EXPECT_TRUE(CastInst::isBitCastable(V2Int32Ty, Int64Ty));
189
190   EXPECT_TRUE(CastInst::isBitCastable(V2Int32Ty, V4Int16Ty));
191   EXPECT_FALSE(CastInst::isBitCastable(Int32Ty, Int64Ty));
192   EXPECT_FALSE(CastInst::isBitCastable(Int64Ty, Int32Ty));
193
194   EXPECT_FALSE(CastInst::isBitCastable(V2Int32PtrTy, Int64Ty));
195   EXPECT_FALSE(CastInst::isBitCastable(Int64Ty, V2Int32PtrTy));
196   EXPECT_TRUE(CastInst::isBitCastable(V2Int64PtrTy, V2Int32PtrTy));
197   EXPECT_TRUE(CastInst::isBitCastable(V2Int32PtrTy, V2Int64PtrTy));
198   EXPECT_FALSE(CastInst::isBitCastable(V2Int32Ty, V2Int64Ty));
199   EXPECT_FALSE(CastInst::isBitCastable(V2Int64Ty, V2Int32Ty));
200 }
201
202 TEST(InstructionsTest, VectorGep) {
203   LLVMContext &C(getGlobalContext());
204
205   // Type Definitions
206   PointerType *Ptri8Ty = PointerType::get(IntegerType::get(C, 8), 0);
207   PointerType *Ptri32Ty = PointerType::get(IntegerType::get(C, 32), 0);
208
209   VectorType *V2xi8PTy = VectorType::get(Ptri8Ty, 2);
210   VectorType *V2xi32PTy = VectorType::get(Ptri32Ty, 2);
211
212   // Test different aspects of the vector-of-pointers type
213   // and GEPs which use this type.
214   ConstantInt *Ci32a = ConstantInt::get(C, APInt(32, 1492));
215   ConstantInt *Ci32b = ConstantInt::get(C, APInt(32, 1948));
216   std::vector<Constant*> ConstVa(2, Ci32a);
217   std::vector<Constant*> ConstVb(2, Ci32b);
218   Constant *C2xi32a = ConstantVector::get(ConstVa);
219   Constant *C2xi32b = ConstantVector::get(ConstVb);
220
221   CastInst *PtrVecA = new IntToPtrInst(C2xi32a, V2xi32PTy);
222   CastInst *PtrVecB = new IntToPtrInst(C2xi32b, V2xi32PTy);
223
224   ICmpInst *ICmp0 = new ICmpInst(ICmpInst::ICMP_SGT, PtrVecA, PtrVecB);
225   ICmpInst *ICmp1 = new ICmpInst(ICmpInst::ICMP_ULT, PtrVecA, PtrVecB);
226   EXPECT_NE(ICmp0, ICmp1); // suppress warning.
227
228   BasicBlock* BB0 = BasicBlock::Create(C);
229   // Test InsertAtEnd ICmpInst constructor.
230   ICmpInst *ICmp2 = new ICmpInst(*BB0, ICmpInst::ICMP_SGE, PtrVecA, PtrVecB);
231   EXPECT_NE(ICmp0, ICmp2); // suppress warning.
232
233   GetElementPtrInst *Gep0 = GetElementPtrInst::Create(PtrVecA, C2xi32a);
234   GetElementPtrInst *Gep1 = GetElementPtrInst::Create(PtrVecA, C2xi32b);
235   GetElementPtrInst *Gep2 = GetElementPtrInst::Create(PtrVecB, C2xi32a);
236   GetElementPtrInst *Gep3 = GetElementPtrInst::Create(PtrVecB, C2xi32b);
237
238   CastInst *BTC0 = new BitCastInst(Gep0, V2xi8PTy);
239   CastInst *BTC1 = new BitCastInst(Gep1, V2xi8PTy);
240   CastInst *BTC2 = new BitCastInst(Gep2, V2xi8PTy);
241   CastInst *BTC3 = new BitCastInst(Gep3, V2xi8PTy);
242
243   Value *S0 = BTC0->stripPointerCasts();
244   Value *S1 = BTC1->stripPointerCasts();
245   Value *S2 = BTC2->stripPointerCasts();
246   Value *S3 = BTC3->stripPointerCasts();
247
248   EXPECT_NE(S0, Gep0);
249   EXPECT_NE(S1, Gep1);
250   EXPECT_NE(S2, Gep2);
251   EXPECT_NE(S3, Gep3);
252
253   int64_t Offset;
254   DataLayout TD("e-p:64:64:64-i1:8:8-i8:8:8-i16:16:16-i32:32:32-i64:64:64-f3"
255                 "2:32:32-f64:64:64-v64:64:64-v128:128:128-a0:0:64-s0:64:64-f80"
256                 ":128:128-n8:16:32:64-S128");
257   // Make sure we don't crash
258   GetPointerBaseWithConstantOffset(Gep0, Offset, &TD);
259   GetPointerBaseWithConstantOffset(Gep1, Offset, &TD);
260   GetPointerBaseWithConstantOffset(Gep2, Offset, &TD);
261   GetPointerBaseWithConstantOffset(Gep3, Offset, &TD);
262
263   // Gep of Geps
264   GetElementPtrInst *GepII0 = GetElementPtrInst::Create(Gep0, C2xi32b);
265   GetElementPtrInst *GepII1 = GetElementPtrInst::Create(Gep1, C2xi32a);
266   GetElementPtrInst *GepII2 = GetElementPtrInst::Create(Gep2, C2xi32b);
267   GetElementPtrInst *GepII3 = GetElementPtrInst::Create(Gep3, C2xi32a);
268
269   EXPECT_EQ(GepII0->getNumIndices(), 1u);
270   EXPECT_EQ(GepII1->getNumIndices(), 1u);
271   EXPECT_EQ(GepII2->getNumIndices(), 1u);
272   EXPECT_EQ(GepII3->getNumIndices(), 1u);
273
274   EXPECT_FALSE(GepII0->hasAllZeroIndices());
275   EXPECT_FALSE(GepII1->hasAllZeroIndices());
276   EXPECT_FALSE(GepII2->hasAllZeroIndices());
277   EXPECT_FALSE(GepII3->hasAllZeroIndices());
278
279   delete GepII0;
280   delete GepII1;
281   delete GepII2;
282   delete GepII3;
283
284   delete BTC0;
285   delete BTC1;
286   delete BTC2;
287   delete BTC3;
288
289   delete Gep0;
290   delete Gep1;
291   delete Gep2;
292   delete Gep3;
293
294   ICmp2->eraseFromParent();
295   delete BB0;
296
297   delete ICmp0;
298   delete ICmp1;
299   delete PtrVecA;
300   delete PtrVecB;
301 }
302
303 TEST(InstructionsTest, FPMathOperator) {
304   LLVMContext &Context = getGlobalContext();
305   IRBuilder<> Builder(Context);
306   MDBuilder MDHelper(Context);
307   Instruction *I = Builder.CreatePHI(Builder.getDoubleTy(), 0);
308   MDNode *MD1 = MDHelper.createFPMath(1.0);
309   Value *V1 = Builder.CreateFAdd(I, I, "", MD1);
310   EXPECT_TRUE(isa<FPMathOperator>(V1));
311   FPMathOperator *O1 = cast<FPMathOperator>(V1);
312   EXPECT_EQ(O1->getFPAccuracy(), 1.0);
313   delete V1;
314   delete I;
315 }
316
317
318 TEST(InstructionsTest, isEliminableCastPair) {
319   LLVMContext &C(getGlobalContext());
320
321   Type* Int32Ty = Type::getInt32Ty(C);
322   Type* Int64Ty = Type::getInt64Ty(C);
323   Type* Int64PtrTy = Type::getInt64PtrTy(C);
324
325   // Source and destination pointers have same size -> bitcast.
326   EXPECT_EQ(CastInst::isEliminableCastPair(CastInst::PtrToInt,
327                                            CastInst::IntToPtr,
328                                            Int64PtrTy, Int64Ty, Int64PtrTy,
329                                            Int32Ty, 0, Int32Ty),
330             CastInst::BitCast);
331
332   // Source and destination pointers have different sizes -> fail.
333   EXPECT_EQ(CastInst::isEliminableCastPair(CastInst::PtrToInt,
334                                            CastInst::IntToPtr,
335                                            Int64PtrTy, Int64Ty, Int64PtrTy,
336                                            Int32Ty, 0, Int64Ty),
337             0U);
338
339   // Middle pointer big enough -> bitcast.
340   EXPECT_EQ(CastInst::isEliminableCastPair(CastInst::IntToPtr,
341                                            CastInst::PtrToInt,
342                                            Int64Ty, Int64PtrTy, Int64Ty,
343                                            0, Int64Ty, 0),
344             CastInst::BitCast);
345
346   // Middle pointer too small -> fail.
347   EXPECT_EQ(CastInst::isEliminableCastPair(CastInst::IntToPtr,
348                                            CastInst::PtrToInt,
349                                            Int64Ty, Int64PtrTy, Int64Ty,
350                                            0, Int32Ty, 0),
351             0U);
352 }
353
354 }  // end anonymous namespace
355 }  // end namespace llvm