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Chris Lattnerd501c132003-02-26 19:41:54 +00001//===- llvm/Analysis/BasicAliasAnalysis.h - Alias Analysis Impl -*- C++ -*-===//
2//
3// This file defines the default implementation of the Alias Analysis interface
4// that simply implements a few identities (two different globals cannot alias,
5// etc), but otherwise does no analysis.
6//
7//===----------------------------------------------------------------------===//
8
9#include "llvm/Analysis/AliasAnalysis.h"
10#include "llvm/Pass.h"
11#include "llvm/iMemory.h"
12#include "llvm/iOther.h"
13#include "llvm/ConstantHandling.h"
14#include "llvm/GlobalValue.h"
15#include "llvm/DerivedTypes.h"
16#include "llvm/Target/TargetData.h"
17
18// Make sure that anything that uses AliasAnalysis pulls in this file...
19void BasicAAStub() {}
20
21class GetElementPtrInst;
22namespace {
23 struct BasicAliasAnalysis : public ImmutablePass, public AliasAnalysis {
24
25 virtual void getAnalysisUsage(AnalysisUsage &AU) const {
26 AliasAnalysis::getAnalysisUsage(AU);
27 }
28
29 virtual void initializePass();
30
31 // alias - This is the only method here that does anything interesting...
32 //
33 AliasResult alias(const Value *V1, unsigned V1Size,
34 const Value *V2, unsigned V2Size);
35 private:
36 // CheckGEPInstructions - Check two GEP instructions of compatible types and
37 // equal number of arguments. This checks to see if the index expressions
38 // preclude the pointers from aliasing...
39 AliasResult CheckGEPInstructions(GetElementPtrInst *GEP1, unsigned G1Size,
40 GetElementPtrInst *GEP2, unsigned G2Size);
41 };
42
43 // Register this pass...
44 RegisterOpt<BasicAliasAnalysis>
45 X("basicaa", "Basic Alias Analysis (default AA impl)");
46
47 // Declare that we implement the AliasAnalysis interface
48 RegisterAnalysisGroup<AliasAnalysis, BasicAliasAnalysis, true> Y;
49} // End of anonymous namespace
50
51void BasicAliasAnalysis::initializePass() {
52 InitializeAliasAnalysis(this);
53}
54
55
56
57// hasUniqueAddress - Return true if the
58static inline bool hasUniqueAddress(const Value *V) {
59 return isa<GlobalValue>(V) || isa<MallocInst>(V) || isa<AllocaInst>(V);
60}
61
62static const Value *getUnderlyingObject(const Value *V) {
63 if (!isa<PointerType>(V->getType())) return 0;
64
65 // If we are at some type of object... return it.
66 if (hasUniqueAddress(V)) return V;
67
68 // Traverse through different addressing mechanisms...
69 if (const Instruction *I = dyn_cast<Instruction>(V)) {
70 if (isa<CastInst>(I) || isa<GetElementPtrInst>(I))
71 return getUnderlyingObject(I->getOperand(0));
72 }
73 return 0;
74}
75
76
77// alias - Provide a bunch of ad-hoc rules to disambiguate in common cases, such
78// as array references. Note that this function is heavily tail recursive.
79// Hopefully we have a smart C++ compiler. :)
80//
81AliasAnalysis::AliasResult
82BasicAliasAnalysis::alias(const Value *V1, unsigned V1Size,
83 const Value *V2, unsigned V2Size) {
84 // Strip off constant pointer refs if they exist
85 if (const ConstantPointerRef *CPR = dyn_cast<ConstantPointerRef>(V1))
86 V1 = CPR->getValue();
87 if (const ConstantPointerRef *CPR = dyn_cast<ConstantPointerRef>(V2))
88 V2 = CPR->getValue();
89
90 // Are we checking for alias of the same value?
91 if (V1 == V2) return MustAlias;
92
93 if ((!isa<PointerType>(V1->getType()) || !isa<PointerType>(V2->getType())) &&
94 V1->getType() != Type::LongTy && V2->getType() != Type::LongTy)
95 return NoAlias; // Scalars cannot alias each other
96
97 // Strip off cast instructions...
98 if (const Instruction *I = dyn_cast<CastInst>(V1))
99 return alias(I->getOperand(0), V1Size, V2, V2Size);
100 if (const Instruction *I = dyn_cast<CastInst>(V2))
101 return alias(V1, V1Size, I->getOperand(0), V2Size);
102
103 // Figure out what objects these things are pointing to if we can...
104 const Value *O1 = getUnderlyingObject(V1);
105 const Value *O2 = getUnderlyingObject(V2);
106
107 // Pointing at a discernable object?
108 if (O1 && O2) {
109 // If they are two different objects, we know that we have no alias...
110 if (O1 != O2) return NoAlias;
111
112 // If they are the same object, they we can look at the indexes. If they
113 // index off of the object is the same for both pointers, they must alias.
114 // If they are provably different, they must not alias. Otherwise, we can't
115 // tell anything.
116 } else if (O1 && isa<ConstantPointerNull>(V2)) {
117 return NoAlias; // Unique values don't alias null
118 } else if (O2 && isa<ConstantPointerNull>(V1)) {
119 return NoAlias; // Unique values don't alias null
120 }
121
122 // If we have two gep instructions with identical indices, return an alias
123 // result equal to the alias result of the original pointer...
124 //
125 if (const GetElementPtrInst *GEP1 = dyn_cast<GetElementPtrInst>(V1))
126 if (const GetElementPtrInst *GEP2 = dyn_cast<GetElementPtrInst>(V2))
127 if (GEP1->getNumOperands() == GEP2->getNumOperands() &&
128 GEP1->getOperand(0)->getType() == GEP2->getOperand(0)->getType()) {
129 AliasResult GAlias =
130 CheckGEPInstructions((GetElementPtrInst*)GEP1, V1Size,
131 (GetElementPtrInst*)GEP2, V2Size);
132 if (GAlias != MayAlias)
133 return GAlias;
134 }
135
136 // Check to see if these two pointers are related by a getelementptr
137 // instruction. If one pointer is a GEP with a non-zero index of the other
138 // pointer, we know they cannot alias.
139 //
140 if (isa<GetElementPtrInst>(V2)) {
141 std::swap(V1, V2);
142 std::swap(V1Size, V2Size);
143 }
144
Chris Lattnera36635a2003-02-26 21:28:49 +0000145 if (const GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(V1)) {
146 AliasResult R = alias(GEP->getOperand(0), V1Size, V2, V2Size);
147 if (R == NoAlias) return NoAlias;
148 if (R == MustAlias) {
Chris Lattnerd501c132003-02-26 19:41:54 +0000149 // If there is at least one non-zero constant index, we know they cannot
150 // alias.
151 for (unsigned i = 1, e = GEP->getNumOperands(); i != e; ++i)
152 if (const Constant *C = dyn_cast<Constant>(GEP->getOperand(i)))
153 if (!C->isNullValue())
154 return NoAlias;
155 }
Chris Lattnera36635a2003-02-26 21:28:49 +0000156 }
Chris Lattnerd501c132003-02-26 19:41:54 +0000157
158 return MayAlias;
159}
160
161// CheckGEPInstructions - Check two GEP instructions of compatible types and
162// equal number of arguments. This checks to see if the index expressions
163// preclude the pointers from aliasing...
164//
165AliasAnalysis::AliasResult
166BasicAliasAnalysis::CheckGEPInstructions(GetElementPtrInst *GEP1, unsigned G1S,
167 GetElementPtrInst *GEP2, unsigned G2S){
168 // Do the base pointers alias?
169 AliasResult BaseAlias = alias(GEP1->getOperand(0), G1S,
170 GEP2->getOperand(0), G2S);
171 if (BaseAlias != MustAlias) // No or May alias: We cannot add anything...
172 return BaseAlias;
173
174 // Find the (possibly empty) initial sequence of equal values...
175 unsigned NumGEPOperands = GEP1->getNumOperands();
176 unsigned UnequalOper = 1;
177 while (UnequalOper != NumGEPOperands &&
178 GEP1->getOperand(UnequalOper) == GEP2->getOperand(UnequalOper))
179 ++UnequalOper;
180
181 // If all operands equal each other, then the derived pointers must
182 // alias each other...
183 if (UnequalOper == NumGEPOperands) return MustAlias;
184
185 // So now we know that the indexes derived from the base pointers,
186 // which are known to alias, are different. We can still determine a
187 // no-alias result if there are differing constant pairs in the index
188 // chain. For example:
189 // A[i][0] != A[j][1] iff (&A[0][1]-&A[0][0] >= std::max(G1S, G2S))
190 //
191 unsigned SizeMax = std::max(G1S, G2S);
192 if (SizeMax == ~0U) return MayAlias; // Avoid frivolous work...
193
194 // Scan for the first operand that is constant and unequal in the
195 // two getelemenptrs...
196 unsigned FirstConstantOper = UnequalOper;
197 for (; FirstConstantOper != NumGEPOperands; ++FirstConstantOper) {
198 const Value *G1Oper = GEP1->getOperand(FirstConstantOper);
199 const Value *G2Oper = GEP2->getOperand(FirstConstantOper);
200 if (G1Oper != G2Oper && // Found non-equal constant indexes...
201 isa<Constant>(G1Oper) && isa<Constant>(G2Oper)) {
202 // Make sure they are comparable... and make sure the GEP with
203 // the smaller leading constant is GEP1.
204 ConstantBool *Compare =
205 *cast<Constant>(GEP1->getOperand(FirstConstantOper)) >
206 *cast<Constant>(GEP2->getOperand(FirstConstantOper));
207 if (Compare) { // If they are comparable...
208 if (Compare->getValue())
209 std::swap(GEP1, GEP2); // Make GEP1 < GEP2
210 break;
211 }
212 }
213 }
214
215 // No constant operands, we cannot tell anything...
216 if (FirstConstantOper == NumGEPOperands) return MayAlias;
217
218 // If there are non-equal constants arguments, then we can figure
219 // out a minimum known delta between the two index expressions... at
220 // this point we know that the first constant index of GEP1 is less
221 // than the first constant index of GEP2.
222 //
223 std::vector<Value*> Indices1;
224 Indices1.reserve(NumGEPOperands-1);
225 for (unsigned i = 1; i != FirstConstantOper; ++i)
Chris Lattnera36635a2003-02-26 21:28:49 +0000226 if (GEP1->getOperand(i)->getType() == Type::UByteTy)
227 Indices1.push_back(GEP1->getOperand(i));
228 else
229 Indices1.push_back(Constant::getNullValue(Type::LongTy));
Chris Lattnerd501c132003-02-26 19:41:54 +0000230 std::vector<Value*> Indices2;
231 Indices2.reserve(NumGEPOperands-1);
232 Indices2 = Indices1; // Copy the zeros prefix...
233
234 // Add the two known constant operands...
235 Indices1.push_back((Value*)GEP1->getOperand(FirstConstantOper));
236 Indices2.push_back((Value*)GEP2->getOperand(FirstConstantOper));
237
238 const Type *GEPPointerTy = GEP1->getOperand(0)->getType();
239
240 // Loop over the rest of the operands...
241 for (unsigned i = FirstConstantOper+1; i!=NumGEPOperands; ++i){
242 const Value *Op1 = GEP1->getOperand(i);
Chris Lattnera36635a2003-02-26 21:28:49 +0000243 const Value *Op2 = GEP2->getOperand(i);
Chris Lattnerd501c132003-02-26 19:41:54 +0000244 if (Op1 == Op2) { // If they are equal, use a zero index...
245 Indices1.push_back(Constant::getNullValue(Op1->getType()));
246 Indices2.push_back(Indices1.back());
247 } else {
248 if (isa<Constant>(Op1))
249 Indices1.push_back((Value*)Op1);
250 else {
251 // GEP1 is known to produce a value less than GEP2. To be
252 // conservatively correct, we must assume the largest
253 // possible constant is used in this position. This cannot
254 // be the initial index to the GEP instructions (because we
255 // know we have at least one element before this one with
256 // the different constant arguments), so we know that the
257 // current index must be into either a struct or array.
258 // Because of this, we can calculate the maximum value
259 // possible.
260 //
261 const Type *ElTy = GEP1->getIndexedType(GEPPointerTy,
262 Indices1, true);
263 if (const StructType *STy = dyn_cast<StructType>(ElTy)) {
264 Indices1.push_back(ConstantUInt::get(Type::UByteTy,
265 STy->getNumContainedTypes()));
266 } else {
267 Indices1.push_back(ConstantSInt::get(Type::LongTy,
268 cast<ArrayType>(ElTy)->getNumElements()));
269 }
270 }
271
272 if (isa<Constant>(Op2))
273 Indices2.push_back((Value*)Op2);
274 else // Conservatively assume the minimum value for this index
275 Indices2.push_back(Constant::getNullValue(Op1->getType()));
276 }
277 }
278
279 unsigned Offset1 = getTargetData().getIndexedOffset(GEPPointerTy, Indices1);
280 unsigned Offset2 = getTargetData().getIndexedOffset(GEPPointerTy, Indices2);
281 assert(Offset1 < Offset2 &&"There is at least one different constant here!");
282
283 if (Offset2-Offset1 >= SizeMax) {
284 //std::cerr << "Determined that these two GEP's don't alias ["
285 // << SizeMax << " bytes]: \n" << *GEP1 << *GEP2;
286 return NoAlias;
287 }
288 return MayAlias;
289}
290