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Chris Lattner9f3c25a2009-11-09 22:57:59 +00001//===- InstructionSimplify.cpp - Fold instruction operands ----------------===//
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// This file implements routines for folding instructions into simpler forms
Duncan Sands4cd2ad12010-11-23 10:50:08 +000011// that do not require creating new instructions. This does constant folding
12// ("add i32 1, 1" -> "2") but can also handle non-constant operands, either
13// returning a constant ("and i32 %x, 0" -> "0") or an already existing value
Duncan Sandsee9a2e32010-12-20 14:47:04 +000014// ("and i32 %x, %x" -> "%x"). All operands are assumed to have already been
15// simplified: This is usually true and assuming it simplifies the logic (if
16// they have not been simplified then results are correct but maybe suboptimal).
Chris Lattner9f3c25a2009-11-09 22:57:59 +000017//
18//===----------------------------------------------------------------------===//
19
Duncan Sandsa3c44a52010-12-22 09:40:51 +000020#define DEBUG_TYPE "instsimplify"
Jay Foad562b84b2011-04-11 09:35:34 +000021#include "llvm/Operator.h"
Duncan Sandsa3c44a52010-12-22 09:40:51 +000022#include "llvm/ADT/Statistic.h"
Chris Lattner9f3c25a2009-11-09 22:57:59 +000023#include "llvm/Analysis/InstructionSimplify.h"
24#include "llvm/Analysis/ConstantFolding.h"
Duncan Sands18450092010-11-16 12:16:38 +000025#include "llvm/Analysis/Dominators.h"
Duncan Sandsd70d1a52011-01-25 09:38:29 +000026#include "llvm/Analysis/ValueTracking.h"
Nick Lewycky3a73e342011-03-04 07:00:57 +000027#include "llvm/Support/ConstantRange.h"
Chris Lattnerd06094f2009-11-10 00:55:12 +000028#include "llvm/Support/PatternMatch.h"
Duncan Sands18450092010-11-16 12:16:38 +000029#include "llvm/Support/ValueHandle.h"
Duncan Sandse60d79f2010-11-21 13:53:09 +000030#include "llvm/Target/TargetData.h"
Chris Lattner9f3c25a2009-11-09 22:57:59 +000031using namespace llvm;
Chris Lattnerd06094f2009-11-10 00:55:12 +000032using namespace llvm::PatternMatch;
Chris Lattner9f3c25a2009-11-09 22:57:59 +000033
Chris Lattner81a0dc92011-02-09 17:15:04 +000034enum { RecursionLimit = 3 };
Duncan Sandsa74a58c2010-11-10 18:23:01 +000035
Duncan Sandsa3c44a52010-12-22 09:40:51 +000036STATISTIC(NumExpand, "Number of expansions");
37STATISTIC(NumFactor , "Number of factorizations");
38STATISTIC(NumReassoc, "Number of reassociations");
39
Duncan Sands82fdab32010-12-21 14:00:22 +000040static Value *SimplifyAndInst(Value *, Value *, const TargetData *,
41 const DominatorTree *, unsigned);
Duncan Sandsa74a58c2010-11-10 18:23:01 +000042static Value *SimplifyBinOp(unsigned, Value *, Value *, const TargetData *,
Duncan Sands18450092010-11-16 12:16:38 +000043 const DominatorTree *, unsigned);
Duncan Sandsa74a58c2010-11-10 18:23:01 +000044static Value *SimplifyCmpInst(unsigned, Value *, Value *, const TargetData *,
Duncan Sands18450092010-11-16 12:16:38 +000045 const DominatorTree *, unsigned);
Duncan Sands82fdab32010-12-21 14:00:22 +000046static Value *SimplifyOrInst(Value *, Value *, const TargetData *,
47 const DominatorTree *, unsigned);
48static Value *SimplifyXorInst(Value *, Value *, const TargetData *,
49 const DominatorTree *, unsigned);
Duncan Sands18450092010-11-16 12:16:38 +000050
Duncan Sandsf56138d2011-07-26 15:03:53 +000051/// getFalse - For a boolean type, or a vector of boolean type, return false, or
52/// a vector with every element false, as appropriate for the type.
53static Constant *getFalse(Type *Ty) {
54 assert((Ty->isIntegerTy(1) ||
55 (Ty->isVectorTy() &&
56 cast<VectorType>(Ty)->getElementType()->isIntegerTy(1))) &&
57 "Expected i1 type or a vector of i1!");
58 return Constant::getNullValue(Ty);
59}
60
61/// getTrue - For a boolean type, or a vector of boolean type, return true, or
62/// a vector with every element true, as appropriate for the type.
63static Constant *getTrue(Type *Ty) {
64 assert((Ty->isIntegerTy(1) ||
65 (Ty->isVectorTy() &&
66 cast<VectorType>(Ty)->getElementType()->isIntegerTy(1))) &&
67 "Expected i1 type or a vector of i1!");
68 return Constant::getAllOnesValue(Ty);
69}
70
Duncan Sands18450092010-11-16 12:16:38 +000071/// ValueDominatesPHI - Does the given value dominate the specified phi node?
72static bool ValueDominatesPHI(Value *V, PHINode *P, const DominatorTree *DT) {
73 Instruction *I = dyn_cast<Instruction>(V);
74 if (!I)
75 // Arguments and constants dominate all instructions.
76 return true;
77
78 // If we have a DominatorTree then do a precise test.
79 if (DT)
80 return DT->dominates(I, P);
81
82 // Otherwise, if the instruction is in the entry block, and is not an invoke,
83 // then it obviously dominates all phi nodes.
84 if (I->getParent() == &I->getParent()->getParent()->getEntryBlock() &&
85 !isa<InvokeInst>(I))
86 return true;
87
88 return false;
89}
Duncan Sandsa74a58c2010-11-10 18:23:01 +000090
Duncan Sands3421d902010-12-21 13:32:22 +000091/// ExpandBinOp - Simplify "A op (B op' C)" by distributing op over op', turning
92/// it into "(A op B) op' (A op C)". Here "op" is given by Opcode and "op'" is
93/// given by OpcodeToExpand, while "A" corresponds to LHS and "B op' C" to RHS.
94/// Also performs the transform "(A op' B) op C" -> "(A op C) op' (B op C)".
95/// Returns the simplified value, or null if no simplification was performed.
96static Value *ExpandBinOp(unsigned Opcode, Value *LHS, Value *RHS,
Benjamin Kramere21083a2010-12-28 13:52:52 +000097 unsigned OpcToExpand, const TargetData *TD,
Duncan Sands3421d902010-12-21 13:32:22 +000098 const DominatorTree *DT, unsigned MaxRecurse) {
Benjamin Kramere21083a2010-12-28 13:52:52 +000099 Instruction::BinaryOps OpcodeToExpand = (Instruction::BinaryOps)OpcToExpand;
Duncan Sands3421d902010-12-21 13:32:22 +0000100 // Recursion is always used, so bail out at once if we already hit the limit.
101 if (!MaxRecurse--)
102 return 0;
103
104 // Check whether the expression has the form "(A op' B) op C".
105 if (BinaryOperator *Op0 = dyn_cast<BinaryOperator>(LHS))
106 if (Op0->getOpcode() == OpcodeToExpand) {
107 // It does! Try turning it into "(A op C) op' (B op C)".
108 Value *A = Op0->getOperand(0), *B = Op0->getOperand(1), *C = RHS;
109 // Do "A op C" and "B op C" both simplify?
110 if (Value *L = SimplifyBinOp(Opcode, A, C, TD, DT, MaxRecurse))
111 if (Value *R = SimplifyBinOp(Opcode, B, C, TD, DT, MaxRecurse)) {
112 // They do! Return "L op' R" if it simplifies or is already available.
113 // If "L op' R" equals "A op' B" then "L op' R" is just the LHS.
Duncan Sands124708d2011-01-01 20:08:02 +0000114 if ((L == A && R == B) || (Instruction::isCommutative(OpcodeToExpand)
115 && L == B && R == A)) {
Duncan Sandsa3c44a52010-12-22 09:40:51 +0000116 ++NumExpand;
Duncan Sands3421d902010-12-21 13:32:22 +0000117 return LHS;
Duncan Sandsa3c44a52010-12-22 09:40:51 +0000118 }
Duncan Sands3421d902010-12-21 13:32:22 +0000119 // Otherwise return "L op' R" if it simplifies.
Duncan Sandsa3c44a52010-12-22 09:40:51 +0000120 if (Value *V = SimplifyBinOp(OpcodeToExpand, L, R, TD, DT,
121 MaxRecurse)) {
122 ++NumExpand;
Duncan Sands3421d902010-12-21 13:32:22 +0000123 return V;
Duncan Sandsa3c44a52010-12-22 09:40:51 +0000124 }
Duncan Sands3421d902010-12-21 13:32:22 +0000125 }
126 }
127
128 // Check whether the expression has the form "A op (B op' C)".
129 if (BinaryOperator *Op1 = dyn_cast<BinaryOperator>(RHS))
130 if (Op1->getOpcode() == OpcodeToExpand) {
131 // It does! Try turning it into "(A op B) op' (A op C)".
132 Value *A = LHS, *B = Op1->getOperand(0), *C = Op1->getOperand(1);
133 // Do "A op B" and "A op C" both simplify?
134 if (Value *L = SimplifyBinOp(Opcode, A, B, TD, DT, MaxRecurse))
135 if (Value *R = SimplifyBinOp(Opcode, A, C, TD, DT, MaxRecurse)) {
136 // They do! Return "L op' R" if it simplifies or is already available.
137 // If "L op' R" equals "B op' C" then "L op' R" is just the RHS.
Duncan Sands124708d2011-01-01 20:08:02 +0000138 if ((L == B && R == C) || (Instruction::isCommutative(OpcodeToExpand)
139 && L == C && R == B)) {
Duncan Sandsa3c44a52010-12-22 09:40:51 +0000140 ++NumExpand;
Duncan Sands3421d902010-12-21 13:32:22 +0000141 return RHS;
Duncan Sandsa3c44a52010-12-22 09:40:51 +0000142 }
Duncan Sands3421d902010-12-21 13:32:22 +0000143 // Otherwise return "L op' R" if it simplifies.
Duncan Sandsa3c44a52010-12-22 09:40:51 +0000144 if (Value *V = SimplifyBinOp(OpcodeToExpand, L, R, TD, DT,
145 MaxRecurse)) {
146 ++NumExpand;
Duncan Sands3421d902010-12-21 13:32:22 +0000147 return V;
Duncan Sandsa3c44a52010-12-22 09:40:51 +0000148 }
Duncan Sands3421d902010-12-21 13:32:22 +0000149 }
150 }
151
152 return 0;
153}
154
155/// FactorizeBinOp - Simplify "LHS Opcode RHS" by factorizing out a common term
156/// using the operation OpCodeToExtract. For example, when Opcode is Add and
157/// OpCodeToExtract is Mul then this tries to turn "(A*B)+(A*C)" into "A*(B+C)".
158/// Returns the simplified value, or null if no simplification was performed.
159static Value *FactorizeBinOp(unsigned Opcode, Value *LHS, Value *RHS,
Benjamin Kramere21083a2010-12-28 13:52:52 +0000160 unsigned OpcToExtract, const TargetData *TD,
Duncan Sands3421d902010-12-21 13:32:22 +0000161 const DominatorTree *DT, unsigned MaxRecurse) {
Benjamin Kramere21083a2010-12-28 13:52:52 +0000162 Instruction::BinaryOps OpcodeToExtract = (Instruction::BinaryOps)OpcToExtract;
Duncan Sands3421d902010-12-21 13:32:22 +0000163 // Recursion is always used, so bail out at once if we already hit the limit.
164 if (!MaxRecurse--)
165 return 0;
166
167 BinaryOperator *Op0 = dyn_cast<BinaryOperator>(LHS);
168 BinaryOperator *Op1 = dyn_cast<BinaryOperator>(RHS);
169
170 if (!Op0 || Op0->getOpcode() != OpcodeToExtract ||
171 !Op1 || Op1->getOpcode() != OpcodeToExtract)
172 return 0;
173
174 // The expression has the form "(A op' B) op (C op' D)".
Duncan Sands82fdab32010-12-21 14:00:22 +0000175 Value *A = Op0->getOperand(0), *B = Op0->getOperand(1);
176 Value *C = Op1->getOperand(0), *D = Op1->getOperand(1);
Duncan Sands3421d902010-12-21 13:32:22 +0000177
178 // Use left distributivity, i.e. "X op' (Y op Z) = (X op' Y) op (X op' Z)".
179 // Does the instruction have the form "(A op' B) op (A op' D)" or, in the
180 // commutative case, "(A op' B) op (C op' A)"?
Duncan Sands124708d2011-01-01 20:08:02 +0000181 if (A == C || (Instruction::isCommutative(OpcodeToExtract) && A == D)) {
182 Value *DD = A == C ? D : C;
Duncan Sands3421d902010-12-21 13:32:22 +0000183 // Form "A op' (B op DD)" if it simplifies completely.
184 // Does "B op DD" simplify?
185 if (Value *V = SimplifyBinOp(Opcode, B, DD, TD, DT, MaxRecurse)) {
186 // It does! Return "A op' V" if it simplifies or is already available.
Duncan Sands1cd05bb2010-12-22 17:15:25 +0000187 // If V equals B then "A op' V" is just the LHS. If V equals DD then
188 // "A op' V" is just the RHS.
Duncan Sands124708d2011-01-01 20:08:02 +0000189 if (V == B || V == DD) {
Duncan Sandsa3c44a52010-12-22 09:40:51 +0000190 ++NumFactor;
Duncan Sands124708d2011-01-01 20:08:02 +0000191 return V == B ? LHS : RHS;
Duncan Sandsa3c44a52010-12-22 09:40:51 +0000192 }
Duncan Sands3421d902010-12-21 13:32:22 +0000193 // Otherwise return "A op' V" if it simplifies.
Duncan Sandsa3c44a52010-12-22 09:40:51 +0000194 if (Value *W = SimplifyBinOp(OpcodeToExtract, A, V, TD, DT, MaxRecurse)) {
195 ++NumFactor;
Duncan Sands3421d902010-12-21 13:32:22 +0000196 return W;
Duncan Sandsa3c44a52010-12-22 09:40:51 +0000197 }
Duncan Sands3421d902010-12-21 13:32:22 +0000198 }
199 }
200
201 // Use right distributivity, i.e. "(X op Y) op' Z = (X op' Z) op (Y op' Z)".
202 // Does the instruction have the form "(A op' B) op (C op' B)" or, in the
203 // commutative case, "(A op' B) op (B op' D)"?
Duncan Sands124708d2011-01-01 20:08:02 +0000204 if (B == D || (Instruction::isCommutative(OpcodeToExtract) && B == C)) {
205 Value *CC = B == D ? C : D;
Duncan Sands3421d902010-12-21 13:32:22 +0000206 // Form "(A op CC) op' B" if it simplifies completely..
207 // Does "A op CC" simplify?
208 if (Value *V = SimplifyBinOp(Opcode, A, CC, TD, DT, MaxRecurse)) {
209 // It does! Return "V op' B" if it simplifies or is already available.
Duncan Sands1cd05bb2010-12-22 17:15:25 +0000210 // If V equals A then "V op' B" is just the LHS. If V equals CC then
211 // "V op' B" is just the RHS.
Duncan Sands124708d2011-01-01 20:08:02 +0000212 if (V == A || V == CC) {
Duncan Sandsa3c44a52010-12-22 09:40:51 +0000213 ++NumFactor;
Duncan Sands124708d2011-01-01 20:08:02 +0000214 return V == A ? LHS : RHS;
Duncan Sandsa3c44a52010-12-22 09:40:51 +0000215 }
Duncan Sands3421d902010-12-21 13:32:22 +0000216 // Otherwise return "V op' B" if it simplifies.
Duncan Sandsa3c44a52010-12-22 09:40:51 +0000217 if (Value *W = SimplifyBinOp(OpcodeToExtract, V, B, TD, DT, MaxRecurse)) {
218 ++NumFactor;
Duncan Sands3421d902010-12-21 13:32:22 +0000219 return W;
Duncan Sandsa3c44a52010-12-22 09:40:51 +0000220 }
Duncan Sands3421d902010-12-21 13:32:22 +0000221 }
222 }
223
224 return 0;
225}
226
227/// SimplifyAssociativeBinOp - Generic simplifications for associative binary
228/// operations. Returns the simpler value, or null if none was found.
Benjamin Kramere21083a2010-12-28 13:52:52 +0000229static Value *SimplifyAssociativeBinOp(unsigned Opc, Value *LHS, Value *RHS,
Duncan Sands566edb02010-12-21 08:49:00 +0000230 const TargetData *TD,
231 const DominatorTree *DT,
232 unsigned MaxRecurse) {
Benjamin Kramere21083a2010-12-28 13:52:52 +0000233 Instruction::BinaryOps Opcode = (Instruction::BinaryOps)Opc;
Duncan Sands566edb02010-12-21 08:49:00 +0000234 assert(Instruction::isAssociative(Opcode) && "Not an associative operation!");
235
236 // Recursion is always used, so bail out at once if we already hit the limit.
237 if (!MaxRecurse--)
238 return 0;
239
240 BinaryOperator *Op0 = dyn_cast<BinaryOperator>(LHS);
241 BinaryOperator *Op1 = dyn_cast<BinaryOperator>(RHS);
242
243 // Transform: "(A op B) op C" ==> "A op (B op C)" if it simplifies completely.
244 if (Op0 && Op0->getOpcode() == Opcode) {
245 Value *A = Op0->getOperand(0);
246 Value *B = Op0->getOperand(1);
247 Value *C = RHS;
248
249 // Does "B op C" simplify?
250 if (Value *V = SimplifyBinOp(Opcode, B, C, TD, DT, MaxRecurse)) {
251 // It does! Return "A op V" if it simplifies or is already available.
252 // If V equals B then "A op V" is just the LHS.
Duncan Sands124708d2011-01-01 20:08:02 +0000253 if (V == B) return LHS;
Duncan Sands566edb02010-12-21 08:49:00 +0000254 // Otherwise return "A op V" if it simplifies.
Duncan Sandsa3c44a52010-12-22 09:40:51 +0000255 if (Value *W = SimplifyBinOp(Opcode, A, V, TD, DT, MaxRecurse)) {
256 ++NumReassoc;
Duncan Sands566edb02010-12-21 08:49:00 +0000257 return W;
Duncan Sandsa3c44a52010-12-22 09:40:51 +0000258 }
Duncan Sands566edb02010-12-21 08:49:00 +0000259 }
260 }
261
262 // Transform: "A op (B op C)" ==> "(A op B) op C" if it simplifies completely.
263 if (Op1 && Op1->getOpcode() == Opcode) {
264 Value *A = LHS;
265 Value *B = Op1->getOperand(0);
266 Value *C = Op1->getOperand(1);
267
268 // Does "A op B" simplify?
269 if (Value *V = SimplifyBinOp(Opcode, A, B, TD, DT, MaxRecurse)) {
270 // It does! Return "V op C" if it simplifies or is already available.
271 // If V equals B then "V op C" is just the RHS.
Duncan Sands124708d2011-01-01 20:08:02 +0000272 if (V == B) return RHS;
Duncan Sands566edb02010-12-21 08:49:00 +0000273 // Otherwise return "V op C" if it simplifies.
Duncan Sandsa3c44a52010-12-22 09:40:51 +0000274 if (Value *W = SimplifyBinOp(Opcode, V, C, TD, DT, MaxRecurse)) {
275 ++NumReassoc;
Duncan Sands566edb02010-12-21 08:49:00 +0000276 return W;
Duncan Sandsa3c44a52010-12-22 09:40:51 +0000277 }
Duncan Sands566edb02010-12-21 08:49:00 +0000278 }
279 }
280
281 // The remaining transforms require commutativity as well as associativity.
282 if (!Instruction::isCommutative(Opcode))
283 return 0;
284
285 // Transform: "(A op B) op C" ==> "(C op A) op B" if it simplifies completely.
286 if (Op0 && Op0->getOpcode() == Opcode) {
287 Value *A = Op0->getOperand(0);
288 Value *B = Op0->getOperand(1);
289 Value *C = RHS;
290
291 // Does "C op A" simplify?
292 if (Value *V = SimplifyBinOp(Opcode, C, A, TD, DT, MaxRecurse)) {
293 // It does! Return "V op B" if it simplifies or is already available.
294 // If V equals A then "V op B" is just the LHS.
Duncan Sands124708d2011-01-01 20:08:02 +0000295 if (V == A) return LHS;
Duncan Sands566edb02010-12-21 08:49:00 +0000296 // Otherwise return "V op B" if it simplifies.
Duncan Sandsa3c44a52010-12-22 09:40:51 +0000297 if (Value *W = SimplifyBinOp(Opcode, V, B, TD, DT, MaxRecurse)) {
298 ++NumReassoc;
Duncan Sands566edb02010-12-21 08:49:00 +0000299 return W;
Duncan Sandsa3c44a52010-12-22 09:40:51 +0000300 }
Duncan Sands566edb02010-12-21 08:49:00 +0000301 }
302 }
303
304 // Transform: "A op (B op C)" ==> "B op (C op A)" if it simplifies completely.
305 if (Op1 && Op1->getOpcode() == Opcode) {
306 Value *A = LHS;
307 Value *B = Op1->getOperand(0);
308 Value *C = Op1->getOperand(1);
309
310 // Does "C op A" simplify?
311 if (Value *V = SimplifyBinOp(Opcode, C, A, TD, DT, MaxRecurse)) {
312 // It does! Return "B op V" if it simplifies or is already available.
313 // If V equals C then "B op V" is just the RHS.
Duncan Sands124708d2011-01-01 20:08:02 +0000314 if (V == C) return RHS;
Duncan Sands566edb02010-12-21 08:49:00 +0000315 // Otherwise return "B op V" if it simplifies.
Duncan Sandsa3c44a52010-12-22 09:40:51 +0000316 if (Value *W = SimplifyBinOp(Opcode, B, V, TD, DT, MaxRecurse)) {
317 ++NumReassoc;
Duncan Sands566edb02010-12-21 08:49:00 +0000318 return W;
Duncan Sandsa3c44a52010-12-22 09:40:51 +0000319 }
Duncan Sands566edb02010-12-21 08:49:00 +0000320 }
321 }
322
323 return 0;
324}
325
Duncan Sandsb2cbdc32010-11-10 13:00:08 +0000326/// ThreadBinOpOverSelect - In the case of a binary operation with a select
327/// instruction as an operand, try to simplify the binop by seeing whether
328/// evaluating it on both branches of the select results in the same value.
329/// Returns the common value if so, otherwise returns null.
330static Value *ThreadBinOpOverSelect(unsigned Opcode, Value *LHS, Value *RHS,
Duncan Sands18450092010-11-16 12:16:38 +0000331 const TargetData *TD,
332 const DominatorTree *DT,
333 unsigned MaxRecurse) {
Duncan Sands0312a932010-12-21 09:09:15 +0000334 // Recursion is always used, so bail out at once if we already hit the limit.
335 if (!MaxRecurse--)
336 return 0;
337
Duncan Sandsb2cbdc32010-11-10 13:00:08 +0000338 SelectInst *SI;
339 if (isa<SelectInst>(LHS)) {
340 SI = cast<SelectInst>(LHS);
341 } else {
342 assert(isa<SelectInst>(RHS) && "No select instruction operand!");
343 SI = cast<SelectInst>(RHS);
344 }
345
346 // Evaluate the BinOp on the true and false branches of the select.
347 Value *TV;
348 Value *FV;
349 if (SI == LHS) {
Duncan Sands18450092010-11-16 12:16:38 +0000350 TV = SimplifyBinOp(Opcode, SI->getTrueValue(), RHS, TD, DT, MaxRecurse);
351 FV = SimplifyBinOp(Opcode, SI->getFalseValue(), RHS, TD, DT, MaxRecurse);
Duncan Sandsb2cbdc32010-11-10 13:00:08 +0000352 } else {
Duncan Sands18450092010-11-16 12:16:38 +0000353 TV = SimplifyBinOp(Opcode, LHS, SI->getTrueValue(), TD, DT, MaxRecurse);
354 FV = SimplifyBinOp(Opcode, LHS, SI->getFalseValue(), TD, DT, MaxRecurse);
Duncan Sandsb2cbdc32010-11-10 13:00:08 +0000355 }
356
Duncan Sands7cf85e72011-01-01 16:12:09 +0000357 // If they simplified to the same value, then return the common value.
Duncan Sands124708d2011-01-01 20:08:02 +0000358 // If they both failed to simplify then return null.
359 if (TV == FV)
Duncan Sandsb2cbdc32010-11-10 13:00:08 +0000360 return TV;
361
362 // If one branch simplified to undef, return the other one.
363 if (TV && isa<UndefValue>(TV))
364 return FV;
365 if (FV && isa<UndefValue>(FV))
366 return TV;
367
368 // If applying the operation did not change the true and false select values,
369 // then the result of the binop is the select itself.
Duncan Sands124708d2011-01-01 20:08:02 +0000370 if (TV == SI->getTrueValue() && FV == SI->getFalseValue())
Duncan Sandsb2cbdc32010-11-10 13:00:08 +0000371 return SI;
372
373 // If one branch simplified and the other did not, and the simplified
374 // value is equal to the unsimplified one, return the simplified value.
375 // For example, select (cond, X, X & Z) & Z -> X & Z.
376 if ((FV && !TV) || (TV && !FV)) {
377 // Check that the simplified value has the form "X op Y" where "op" is the
378 // same as the original operation.
379 Instruction *Simplified = dyn_cast<Instruction>(FV ? FV : TV);
380 if (Simplified && Simplified->getOpcode() == Opcode) {
381 // The value that didn't simplify is "UnsimplifiedLHS op UnsimplifiedRHS".
382 // We already know that "op" is the same as for the simplified value. See
383 // if the operands match too. If so, return the simplified value.
384 Value *UnsimplifiedBranch = FV ? SI->getTrueValue() : SI->getFalseValue();
385 Value *UnsimplifiedLHS = SI == LHS ? UnsimplifiedBranch : LHS;
386 Value *UnsimplifiedRHS = SI == LHS ? RHS : UnsimplifiedBranch;
Duncan Sands124708d2011-01-01 20:08:02 +0000387 if (Simplified->getOperand(0) == UnsimplifiedLHS &&
388 Simplified->getOperand(1) == UnsimplifiedRHS)
Duncan Sandsb2cbdc32010-11-10 13:00:08 +0000389 return Simplified;
390 if (Simplified->isCommutative() &&
Duncan Sands124708d2011-01-01 20:08:02 +0000391 Simplified->getOperand(1) == UnsimplifiedLHS &&
392 Simplified->getOperand(0) == UnsimplifiedRHS)
Duncan Sandsb2cbdc32010-11-10 13:00:08 +0000393 return Simplified;
394 }
395 }
396
397 return 0;
398}
399
400/// ThreadCmpOverSelect - In the case of a comparison with a select instruction,
401/// try to simplify the comparison by seeing whether both branches of the select
402/// result in the same value. Returns the common value if so, otherwise returns
403/// null.
404static Value *ThreadCmpOverSelect(CmpInst::Predicate Pred, Value *LHS,
Duncan Sandsa74a58c2010-11-10 18:23:01 +0000405 Value *RHS, const TargetData *TD,
Duncan Sands18450092010-11-16 12:16:38 +0000406 const DominatorTree *DT,
Duncan Sandsa74a58c2010-11-10 18:23:01 +0000407 unsigned MaxRecurse) {
Duncan Sands0312a932010-12-21 09:09:15 +0000408 // Recursion is always used, so bail out at once if we already hit the limit.
409 if (!MaxRecurse--)
410 return 0;
411
Duncan Sandsb2cbdc32010-11-10 13:00:08 +0000412 // Make sure the select is on the LHS.
413 if (!isa<SelectInst>(LHS)) {
414 std::swap(LHS, RHS);
415 Pred = CmpInst::getSwappedPredicate(Pred);
416 }
417 assert(isa<SelectInst>(LHS) && "Not comparing with a select instruction!");
418 SelectInst *SI = cast<SelectInst>(LHS);
419
Duncan Sands50ca4d32011-02-03 09:37:39 +0000420 // Now that we have "cmp select(Cond, TV, FV), RHS", analyse it.
Duncan Sandsb2cbdc32010-11-10 13:00:08 +0000421 // Does "cmp TV, RHS" simplify?
Duncan Sands18450092010-11-16 12:16:38 +0000422 if (Value *TCmp = SimplifyCmpInst(Pred, SI->getTrueValue(), RHS, TD, DT,
Duncan Sands50ca4d32011-02-03 09:37:39 +0000423 MaxRecurse)) {
Duncan Sandsb2cbdc32010-11-10 13:00:08 +0000424 // It does! Does "cmp FV, RHS" simplify?
Duncan Sands18450092010-11-16 12:16:38 +0000425 if (Value *FCmp = SimplifyCmpInst(Pred, SI->getFalseValue(), RHS, TD, DT,
Duncan Sands50ca4d32011-02-03 09:37:39 +0000426 MaxRecurse)) {
Duncan Sandsb2cbdc32010-11-10 13:00:08 +0000427 // It does! If they simplified to the same value, then use it as the
428 // result of the original comparison.
Duncan Sands124708d2011-01-01 20:08:02 +0000429 if (TCmp == FCmp)
Duncan Sandsb2cbdc32010-11-10 13:00:08 +0000430 return TCmp;
Duncan Sands50ca4d32011-02-03 09:37:39 +0000431 Value *Cond = SI->getCondition();
432 // If the false value simplified to false, then the result of the compare
433 // is equal to "Cond && TCmp". This also catches the case when the false
434 // value simplified to false and the true value to true, returning "Cond".
435 if (match(FCmp, m_Zero()))
436 if (Value *V = SimplifyAndInst(Cond, TCmp, TD, DT, MaxRecurse))
437 return V;
438 // If the true value simplified to true, then the result of the compare
439 // is equal to "Cond || FCmp".
440 if (match(TCmp, m_One()))
441 if (Value *V = SimplifyOrInst(Cond, FCmp, TD, DT, MaxRecurse))
442 return V;
443 // Finally, if the false value simplified to true and the true value to
444 // false, then the result of the compare is equal to "!Cond".
445 if (match(FCmp, m_One()) && match(TCmp, m_Zero()))
446 if (Value *V =
447 SimplifyXorInst(Cond, Constant::getAllOnesValue(Cond->getType()),
448 TD, DT, MaxRecurse))
449 return V;
450 }
451 }
452
Duncan Sandsb2cbdc32010-11-10 13:00:08 +0000453 return 0;
454}
455
Duncan Sandsa74a58c2010-11-10 18:23:01 +0000456/// ThreadBinOpOverPHI - In the case of a binary operation with an operand that
457/// is a PHI instruction, try to simplify the binop by seeing whether evaluating
458/// it on the incoming phi values yields the same result for every value. If so
459/// returns the common value, otherwise returns null.
460static Value *ThreadBinOpOverPHI(unsigned Opcode, Value *LHS, Value *RHS,
Duncan Sands18450092010-11-16 12:16:38 +0000461 const TargetData *TD, const DominatorTree *DT,
462 unsigned MaxRecurse) {
Duncan Sands0312a932010-12-21 09:09:15 +0000463 // Recursion is always used, so bail out at once if we already hit the limit.
464 if (!MaxRecurse--)
465 return 0;
466
Duncan Sandsa74a58c2010-11-10 18:23:01 +0000467 PHINode *PI;
468 if (isa<PHINode>(LHS)) {
469 PI = cast<PHINode>(LHS);
Duncan Sands18450092010-11-16 12:16:38 +0000470 // Bail out if RHS and the phi may be mutually interdependent due to a loop.
471 if (!ValueDominatesPHI(RHS, PI, DT))
472 return 0;
Duncan Sandsa74a58c2010-11-10 18:23:01 +0000473 } else {
474 assert(isa<PHINode>(RHS) && "No PHI instruction operand!");
475 PI = cast<PHINode>(RHS);
Duncan Sands18450092010-11-16 12:16:38 +0000476 // Bail out if LHS and the phi may be mutually interdependent due to a loop.
477 if (!ValueDominatesPHI(LHS, PI, DT))
478 return 0;
Duncan Sandsa74a58c2010-11-10 18:23:01 +0000479 }
480
481 // Evaluate the BinOp on the incoming phi values.
482 Value *CommonValue = 0;
483 for (unsigned i = 0, e = PI->getNumIncomingValues(); i != e; ++i) {
Duncan Sands55200892010-11-15 17:52:45 +0000484 Value *Incoming = PI->getIncomingValue(i);
Duncan Sandsff103412010-11-17 04:30:22 +0000485 // If the incoming value is the phi node itself, it can safely be skipped.
Duncan Sands55200892010-11-15 17:52:45 +0000486 if (Incoming == PI) continue;
Duncan Sandsa74a58c2010-11-10 18:23:01 +0000487 Value *V = PI == LHS ?
Duncan Sands18450092010-11-16 12:16:38 +0000488 SimplifyBinOp(Opcode, Incoming, RHS, TD, DT, MaxRecurse) :
489 SimplifyBinOp(Opcode, LHS, Incoming, TD, DT, MaxRecurse);
Duncan Sandsa74a58c2010-11-10 18:23:01 +0000490 // If the operation failed to simplify, or simplified to a different value
491 // to previously, then give up.
492 if (!V || (CommonValue && V != CommonValue))
493 return 0;
494 CommonValue = V;
495 }
496
497 return CommonValue;
498}
499
500/// ThreadCmpOverPHI - In the case of a comparison with a PHI instruction, try
501/// try to simplify the comparison by seeing whether comparing with all of the
502/// incoming phi values yields the same result every time. If so returns the
503/// common result, otherwise returns null.
504static Value *ThreadCmpOverPHI(CmpInst::Predicate Pred, Value *LHS, Value *RHS,
Duncan Sands18450092010-11-16 12:16:38 +0000505 const TargetData *TD, const DominatorTree *DT,
506 unsigned MaxRecurse) {
Duncan Sands0312a932010-12-21 09:09:15 +0000507 // Recursion is always used, so bail out at once if we already hit the limit.
508 if (!MaxRecurse--)
509 return 0;
510
Duncan Sandsa74a58c2010-11-10 18:23:01 +0000511 // Make sure the phi is on the LHS.
512 if (!isa<PHINode>(LHS)) {
513 std::swap(LHS, RHS);
514 Pred = CmpInst::getSwappedPredicate(Pred);
515 }
516 assert(isa<PHINode>(LHS) && "Not comparing with a phi instruction!");
517 PHINode *PI = cast<PHINode>(LHS);
518
Duncan Sands18450092010-11-16 12:16:38 +0000519 // Bail out if RHS and the phi may be mutually interdependent due to a loop.
520 if (!ValueDominatesPHI(RHS, PI, DT))
521 return 0;
522
Duncan Sandsa74a58c2010-11-10 18:23:01 +0000523 // Evaluate the BinOp on the incoming phi values.
524 Value *CommonValue = 0;
525 for (unsigned i = 0, e = PI->getNumIncomingValues(); i != e; ++i) {
Duncan Sands55200892010-11-15 17:52:45 +0000526 Value *Incoming = PI->getIncomingValue(i);
Duncan Sandsff103412010-11-17 04:30:22 +0000527 // If the incoming value is the phi node itself, it can safely be skipped.
Duncan Sands55200892010-11-15 17:52:45 +0000528 if (Incoming == PI) continue;
Duncan Sands18450092010-11-16 12:16:38 +0000529 Value *V = SimplifyCmpInst(Pred, Incoming, RHS, TD, DT, MaxRecurse);
Duncan Sandsa74a58c2010-11-10 18:23:01 +0000530 // If the operation failed to simplify, or simplified to a different value
531 // to previously, then give up.
532 if (!V || (CommonValue && V != CommonValue))
533 return 0;
534 CommonValue = V;
535 }
536
537 return CommonValue;
538}
539
Chris Lattner8aee8ef2009-11-27 17:42:22 +0000540/// SimplifyAddInst - Given operands for an Add, see if we can
541/// fold the result. If not, this returns null.
Duncan Sandsee9a2e32010-12-20 14:47:04 +0000542static Value *SimplifyAddInst(Value *Op0, Value *Op1, bool isNSW, bool isNUW,
543 const TargetData *TD, const DominatorTree *DT,
544 unsigned MaxRecurse) {
Chris Lattner8aee8ef2009-11-27 17:42:22 +0000545 if (Constant *CLHS = dyn_cast<Constant>(Op0)) {
546 if (Constant *CRHS = dyn_cast<Constant>(Op1)) {
547 Constant *Ops[] = { CLHS, CRHS };
548 return ConstantFoldInstOperands(Instruction::Add, CLHS->getType(),
Jay Foad1d2f5692011-07-19 13:32:40 +0000549 Ops, TD);
Chris Lattner8aee8ef2009-11-27 17:42:22 +0000550 }
Duncan Sands12a86f52010-11-14 11:23:23 +0000551
Chris Lattner8aee8ef2009-11-27 17:42:22 +0000552 // Canonicalize the constant to the RHS.
553 std::swap(Op0, Op1);
554 }
Duncan Sands12a86f52010-11-14 11:23:23 +0000555
Duncan Sandsfea3b212010-12-15 14:07:39 +0000556 // X + undef -> undef
Duncan Sandsf9e4a982011-02-01 09:06:20 +0000557 if (match(Op1, m_Undef()))
Duncan Sandsfea3b212010-12-15 14:07:39 +0000558 return Op1;
Duncan Sands12a86f52010-11-14 11:23:23 +0000559
Duncan Sandsfea3b212010-12-15 14:07:39 +0000560 // X + 0 -> X
561 if (match(Op1, m_Zero()))
562 return Op0;
Duncan Sands12a86f52010-11-14 11:23:23 +0000563
Duncan Sandsfea3b212010-12-15 14:07:39 +0000564 // X + (Y - X) -> Y
565 // (Y - X) + X -> Y
Duncan Sandsee9a2e32010-12-20 14:47:04 +0000566 // Eg: X + -X -> 0
Duncan Sands124708d2011-01-01 20:08:02 +0000567 Value *Y = 0;
568 if (match(Op1, m_Sub(m_Value(Y), m_Specific(Op0))) ||
569 match(Op0, m_Sub(m_Value(Y), m_Specific(Op1))))
Duncan Sandsfea3b212010-12-15 14:07:39 +0000570 return Y;
571
572 // X + ~X -> -1 since ~X = -X-1
Duncan Sands124708d2011-01-01 20:08:02 +0000573 if (match(Op0, m_Not(m_Specific(Op1))) ||
574 match(Op1, m_Not(m_Specific(Op0))))
Duncan Sandsfea3b212010-12-15 14:07:39 +0000575 return Constant::getAllOnesValue(Op0->getType());
Duncan Sands87689cf2010-11-19 09:20:39 +0000576
Duncan Sands82fdab32010-12-21 14:00:22 +0000577 /// i1 add -> xor.
Duncan Sands75d289e2010-12-21 14:48:48 +0000578 if (MaxRecurse && Op0->getType()->isIntegerTy(1))
Duncan Sands07f30fb2010-12-21 15:03:43 +0000579 if (Value *V = SimplifyXorInst(Op0, Op1, TD, DT, MaxRecurse-1))
580 return V;
Duncan Sands82fdab32010-12-21 14:00:22 +0000581
Duncan Sands566edb02010-12-21 08:49:00 +0000582 // Try some generic simplifications for associative operations.
583 if (Value *V = SimplifyAssociativeBinOp(Instruction::Add, Op0, Op1, TD, DT,
584 MaxRecurse))
585 return V;
586
Duncan Sands3421d902010-12-21 13:32:22 +0000587 // Mul distributes over Add. Try some generic simplifications based on this.
588 if (Value *V = FactorizeBinOp(Instruction::Add, Op0, Op1, Instruction::Mul,
589 TD, DT, MaxRecurse))
590 return V;
591
Duncan Sands87689cf2010-11-19 09:20:39 +0000592 // Threading Add over selects and phi nodes is pointless, so don't bother.
593 // Threading over the select in "A + select(cond, B, C)" means evaluating
594 // "A+B" and "A+C" and seeing if they are equal; but they are equal if and
595 // only if B and C are equal. If B and C are equal then (since we assume
596 // that operands have already been simplified) "select(cond, B, C)" should
597 // have been simplified to the common value of B and C already. Analysing
598 // "A+B" and "A+C" thus gains nothing, but costs compile time. Similarly
599 // for threading over phi nodes.
600
Chris Lattner8aee8ef2009-11-27 17:42:22 +0000601 return 0;
602}
603
Duncan Sandsee9a2e32010-12-20 14:47:04 +0000604Value *llvm::SimplifyAddInst(Value *Op0, Value *Op1, bool isNSW, bool isNUW,
605 const TargetData *TD, const DominatorTree *DT) {
606 return ::SimplifyAddInst(Op0, Op1, isNSW, isNUW, TD, DT, RecursionLimit);
607}
608
Duncan Sandsfea3b212010-12-15 14:07:39 +0000609/// SimplifySubInst - Given operands for a Sub, see if we can
610/// fold the result. If not, this returns null.
Duncan Sandsee9a2e32010-12-20 14:47:04 +0000611static Value *SimplifySubInst(Value *Op0, Value *Op1, bool isNSW, bool isNUW,
Duncan Sands3421d902010-12-21 13:32:22 +0000612 const TargetData *TD, const DominatorTree *DT,
Duncan Sandsee9a2e32010-12-20 14:47:04 +0000613 unsigned MaxRecurse) {
Duncan Sandsfea3b212010-12-15 14:07:39 +0000614 if (Constant *CLHS = dyn_cast<Constant>(Op0))
615 if (Constant *CRHS = dyn_cast<Constant>(Op1)) {
616 Constant *Ops[] = { CLHS, CRHS };
617 return ConstantFoldInstOperands(Instruction::Sub, CLHS->getType(),
Jay Foad1d2f5692011-07-19 13:32:40 +0000618 Ops, TD);
Duncan Sandsfea3b212010-12-15 14:07:39 +0000619 }
620
621 // X - undef -> undef
622 // undef - X -> undef
Duncan Sandsf9e4a982011-02-01 09:06:20 +0000623 if (match(Op0, m_Undef()) || match(Op1, m_Undef()))
Duncan Sandsfea3b212010-12-15 14:07:39 +0000624 return UndefValue::get(Op0->getType());
625
626 // X - 0 -> X
627 if (match(Op1, m_Zero()))
628 return Op0;
629
630 // X - X -> 0
Duncan Sands124708d2011-01-01 20:08:02 +0000631 if (Op0 == Op1)
Duncan Sandsfea3b212010-12-15 14:07:39 +0000632 return Constant::getNullValue(Op0->getType());
633
Duncan Sandsfe02c692011-01-18 09:24:58 +0000634 // (X*2) - X -> X
635 // (X<<1) - X -> X
Duncan Sandsb2f3c382011-01-18 11:50:19 +0000636 Value *X = 0;
Duncan Sandsfe02c692011-01-18 09:24:58 +0000637 if (match(Op0, m_Mul(m_Specific(Op1), m_ConstantInt<2>())) ||
638 match(Op0, m_Shl(m_Specific(Op1), m_One())))
639 return Op1;
640
Duncan Sandsb2f3c382011-01-18 11:50:19 +0000641 // (X + Y) - Z -> X + (Y - Z) or Y + (X - Z) if everything simplifies.
642 // For example, (X + Y) - Y -> X; (Y + X) - Y -> X
643 Value *Y = 0, *Z = Op1;
644 if (MaxRecurse && match(Op0, m_Add(m_Value(X), m_Value(Y)))) { // (X + Y) - Z
645 // See if "V === Y - Z" simplifies.
646 if (Value *V = SimplifyBinOp(Instruction::Sub, Y, Z, TD, DT, MaxRecurse-1))
647 // It does! Now see if "X + V" simplifies.
648 if (Value *W = SimplifyBinOp(Instruction::Add, X, V, TD, DT,
649 MaxRecurse-1)) {
650 // It does, we successfully reassociated!
651 ++NumReassoc;
652 return W;
653 }
654 // See if "V === X - Z" simplifies.
655 if (Value *V = SimplifyBinOp(Instruction::Sub, X, Z, TD, DT, MaxRecurse-1))
656 // It does! Now see if "Y + V" simplifies.
657 if (Value *W = SimplifyBinOp(Instruction::Add, Y, V, TD, DT,
658 MaxRecurse-1)) {
659 // It does, we successfully reassociated!
660 ++NumReassoc;
661 return W;
662 }
663 }
Duncan Sands82fdab32010-12-21 14:00:22 +0000664
Duncan Sandsb2f3c382011-01-18 11:50:19 +0000665 // X - (Y + Z) -> (X - Y) - Z or (X - Z) - Y if everything simplifies.
666 // For example, X - (X + 1) -> -1
667 X = Op0;
668 if (MaxRecurse && match(Op1, m_Add(m_Value(Y), m_Value(Z)))) { // X - (Y + Z)
669 // See if "V === X - Y" simplifies.
670 if (Value *V = SimplifyBinOp(Instruction::Sub, X, Y, TD, DT, MaxRecurse-1))
671 // It does! Now see if "V - Z" simplifies.
672 if (Value *W = SimplifyBinOp(Instruction::Sub, V, Z, TD, DT,
673 MaxRecurse-1)) {
674 // It does, we successfully reassociated!
675 ++NumReassoc;
676 return W;
677 }
678 // See if "V === X - Z" simplifies.
679 if (Value *V = SimplifyBinOp(Instruction::Sub, X, Z, TD, DT, MaxRecurse-1))
680 // It does! Now see if "V - Y" simplifies.
681 if (Value *W = SimplifyBinOp(Instruction::Sub, V, Y, TD, DT,
682 MaxRecurse-1)) {
683 // It does, we successfully reassociated!
684 ++NumReassoc;
685 return W;
686 }
687 }
688
689 // Z - (X - Y) -> (Z - X) + Y if everything simplifies.
690 // For example, X - (X - Y) -> Y.
691 Z = Op0;
Duncan Sandsc087e202011-01-14 15:26:10 +0000692 if (MaxRecurse && match(Op1, m_Sub(m_Value(X), m_Value(Y)))) // Z - (X - Y)
693 // See if "V === Z - X" simplifies.
694 if (Value *V = SimplifyBinOp(Instruction::Sub, Z, X, TD, DT, MaxRecurse-1))
Duncan Sandsb2f3c382011-01-18 11:50:19 +0000695 // It does! Now see if "V + Y" simplifies.
Duncan Sandsc087e202011-01-14 15:26:10 +0000696 if (Value *W = SimplifyBinOp(Instruction::Add, V, Y, TD, DT,
697 MaxRecurse-1)) {
698 // It does, we successfully reassociated!
699 ++NumReassoc;
700 return W;
701 }
702
Duncan Sands3421d902010-12-21 13:32:22 +0000703 // Mul distributes over Sub. Try some generic simplifications based on this.
704 if (Value *V = FactorizeBinOp(Instruction::Sub, Op0, Op1, Instruction::Mul,
705 TD, DT, MaxRecurse))
706 return V;
707
Duncan Sandsb2f3c382011-01-18 11:50:19 +0000708 // i1 sub -> xor.
709 if (MaxRecurse && Op0->getType()->isIntegerTy(1))
710 if (Value *V = SimplifyXorInst(Op0, Op1, TD, DT, MaxRecurse-1))
711 return V;
712
Duncan Sandsfea3b212010-12-15 14:07:39 +0000713 // Threading Sub over selects and phi nodes is pointless, so don't bother.
714 // Threading over the select in "A - select(cond, B, C)" means evaluating
715 // "A-B" and "A-C" and seeing if they are equal; but they are equal if and
716 // only if B and C are equal. If B and C are equal then (since we assume
717 // that operands have already been simplified) "select(cond, B, C)" should
718 // have been simplified to the common value of B and C already. Analysing
719 // "A-B" and "A-C" thus gains nothing, but costs compile time. Similarly
720 // for threading over phi nodes.
721
722 return 0;
723}
724
Duncan Sandsee9a2e32010-12-20 14:47:04 +0000725Value *llvm::SimplifySubInst(Value *Op0, Value *Op1, bool isNSW, bool isNUW,
726 const TargetData *TD, const DominatorTree *DT) {
727 return ::SimplifySubInst(Op0, Op1, isNSW, isNUW, TD, DT, RecursionLimit);
728}
729
Duncan Sands82fdab32010-12-21 14:00:22 +0000730/// SimplifyMulInst - Given operands for a Mul, see if we can
731/// fold the result. If not, this returns null.
732static Value *SimplifyMulInst(Value *Op0, Value *Op1, const TargetData *TD,
733 const DominatorTree *DT, unsigned MaxRecurse) {
734 if (Constant *CLHS = dyn_cast<Constant>(Op0)) {
735 if (Constant *CRHS = dyn_cast<Constant>(Op1)) {
736 Constant *Ops[] = { CLHS, CRHS };
737 return ConstantFoldInstOperands(Instruction::Mul, CLHS->getType(),
Jay Foad1d2f5692011-07-19 13:32:40 +0000738 Ops, TD);
Duncan Sands82fdab32010-12-21 14:00:22 +0000739 }
740
741 // Canonicalize the constant to the RHS.
742 std::swap(Op0, Op1);
743 }
744
745 // X * undef -> 0
Duncan Sandsf9e4a982011-02-01 09:06:20 +0000746 if (match(Op1, m_Undef()))
Duncan Sands82fdab32010-12-21 14:00:22 +0000747 return Constant::getNullValue(Op0->getType());
748
749 // X * 0 -> 0
750 if (match(Op1, m_Zero()))
751 return Op1;
752
753 // X * 1 -> X
754 if (match(Op1, m_One()))
755 return Op0;
756
Duncan Sands1895e982011-01-30 18:03:50 +0000757 // (X / Y) * Y -> X if the division is exact.
758 Value *X = 0, *Y = 0;
Chris Lattneraeaf3d42011-02-09 17:00:45 +0000759 if ((match(Op0, m_IDiv(m_Value(X), m_Value(Y))) && Y == Op1) || // (X / Y) * Y
760 (match(Op1, m_IDiv(m_Value(X), m_Value(Y))) && Y == Op0)) { // Y * (X / Y)
Chris Lattnerc6ee9182011-02-06 22:05:31 +0000761 BinaryOperator *Div = cast<BinaryOperator>(Y == Op1 ? Op0 : Op1);
762 if (Div->isExact())
Duncan Sands1895e982011-01-30 18:03:50 +0000763 return X;
764 }
765
Nick Lewycky54138802011-01-29 19:55:23 +0000766 // i1 mul -> and.
Duncan Sands75d289e2010-12-21 14:48:48 +0000767 if (MaxRecurse && Op0->getType()->isIntegerTy(1))
Duncan Sands07f30fb2010-12-21 15:03:43 +0000768 if (Value *V = SimplifyAndInst(Op0, Op1, TD, DT, MaxRecurse-1))
769 return V;
Duncan Sands82fdab32010-12-21 14:00:22 +0000770
771 // Try some generic simplifications for associative operations.
772 if (Value *V = SimplifyAssociativeBinOp(Instruction::Mul, Op0, Op1, TD, DT,
773 MaxRecurse))
774 return V;
775
776 // Mul distributes over Add. Try some generic simplifications based on this.
777 if (Value *V = ExpandBinOp(Instruction::Mul, Op0, Op1, Instruction::Add,
778 TD, DT, MaxRecurse))
779 return V;
780
781 // If the operation is with the result of a select instruction, check whether
782 // operating on either branch of the select always yields the same value.
783 if (isa<SelectInst>(Op0) || isa<SelectInst>(Op1))
784 if (Value *V = ThreadBinOpOverSelect(Instruction::Mul, Op0, Op1, TD, DT,
785 MaxRecurse))
786 return V;
787
788 // If the operation is with the result of a phi instruction, check whether
789 // operating on all incoming values of the phi always yields the same value.
790 if (isa<PHINode>(Op0) || isa<PHINode>(Op1))
791 if (Value *V = ThreadBinOpOverPHI(Instruction::Mul, Op0, Op1, TD, DT,
792 MaxRecurse))
793 return V;
794
795 return 0;
796}
797
798Value *llvm::SimplifyMulInst(Value *Op0, Value *Op1, const TargetData *TD,
799 const DominatorTree *DT) {
800 return ::SimplifyMulInst(Op0, Op1, TD, DT, RecursionLimit);
801}
802
Duncan Sands593faa52011-01-28 16:51:11 +0000803/// SimplifyDiv - Given operands for an SDiv or UDiv, see if we can
804/// fold the result. If not, this returns null.
Anders Carlsson479b4b92011-02-05 18:33:43 +0000805static Value *SimplifyDiv(Instruction::BinaryOps Opcode, Value *Op0, Value *Op1,
Duncan Sands593faa52011-01-28 16:51:11 +0000806 const TargetData *TD, const DominatorTree *DT,
807 unsigned MaxRecurse) {
808 if (Constant *C0 = dyn_cast<Constant>(Op0)) {
809 if (Constant *C1 = dyn_cast<Constant>(Op1)) {
810 Constant *Ops[] = { C0, C1 };
Jay Foad1d2f5692011-07-19 13:32:40 +0000811 return ConstantFoldInstOperands(Opcode, C0->getType(), Ops, TD);
Duncan Sands593faa52011-01-28 16:51:11 +0000812 }
813 }
814
Duncan Sandsa3e292c2011-01-28 18:50:50 +0000815 bool isSigned = Opcode == Instruction::SDiv;
816
Duncan Sands593faa52011-01-28 16:51:11 +0000817 // X / undef -> undef
Duncan Sandsf9e4a982011-02-01 09:06:20 +0000818 if (match(Op1, m_Undef()))
Duncan Sands593faa52011-01-28 16:51:11 +0000819 return Op1;
820
821 // undef / X -> 0
Duncan Sandsf9e4a982011-02-01 09:06:20 +0000822 if (match(Op0, m_Undef()))
Duncan Sands593faa52011-01-28 16:51:11 +0000823 return Constant::getNullValue(Op0->getType());
824
825 // 0 / X -> 0, we don't need to preserve faults!
826 if (match(Op0, m_Zero()))
827 return Op0;
828
829 // X / 1 -> X
830 if (match(Op1, m_One()))
831 return Op0;
Duncan Sands593faa52011-01-28 16:51:11 +0000832
833 if (Op0->getType()->isIntegerTy(1))
834 // It can't be division by zero, hence it must be division by one.
835 return Op0;
836
837 // X / X -> 1
838 if (Op0 == Op1)
839 return ConstantInt::get(Op0->getType(), 1);
840
841 // (X * Y) / Y -> X if the multiplication does not overflow.
842 Value *X = 0, *Y = 0;
843 if (match(Op0, m_Mul(m_Value(X), m_Value(Y))) && (X == Op1 || Y == Op1)) {
844 if (Y != Op1) std::swap(X, Y); // Ensure expression is (X * Y) / Y, Y = Op1
Duncan Sands4b720712011-02-02 20:52:00 +0000845 BinaryOperator *Mul = cast<BinaryOperator>(Op0);
846 // If the Mul knows it does not overflow, then we are good to go.
847 if ((isSigned && Mul->hasNoSignedWrap()) ||
848 (!isSigned && Mul->hasNoUnsignedWrap()))
849 return X;
Duncan Sands593faa52011-01-28 16:51:11 +0000850 // If X has the form X = A / Y then X * Y cannot overflow.
851 if (BinaryOperator *Div = dyn_cast<BinaryOperator>(X))
852 if (Div->getOpcode() == Opcode && Div->getOperand(1) == Y)
853 return X;
854 }
855
Duncan Sandsa3e292c2011-01-28 18:50:50 +0000856 // (X rem Y) / Y -> 0
857 if ((isSigned && match(Op0, m_SRem(m_Value(), m_Specific(Op1)))) ||
858 (!isSigned && match(Op0, m_URem(m_Value(), m_Specific(Op1)))))
859 return Constant::getNullValue(Op0->getType());
860
861 // If the operation is with the result of a select instruction, check whether
862 // operating on either branch of the select always yields the same value.
863 if (isa<SelectInst>(Op0) || isa<SelectInst>(Op1))
864 if (Value *V = ThreadBinOpOverSelect(Opcode, Op0, Op1, TD, DT, MaxRecurse))
865 return V;
866
867 // If the operation is with the result of a phi instruction, check whether
868 // operating on all incoming values of the phi always yields the same value.
869 if (isa<PHINode>(Op0) || isa<PHINode>(Op1))
870 if (Value *V = ThreadBinOpOverPHI(Opcode, Op0, Op1, TD, DT, MaxRecurse))
871 return V;
872
Duncan Sands593faa52011-01-28 16:51:11 +0000873 return 0;
874}
875
876/// SimplifySDivInst - Given operands for an SDiv, see if we can
877/// fold the result. If not, this returns null.
878static Value *SimplifySDivInst(Value *Op0, Value *Op1, const TargetData *TD,
879 const DominatorTree *DT, unsigned MaxRecurse) {
880 if (Value *V = SimplifyDiv(Instruction::SDiv, Op0, Op1, TD, DT, MaxRecurse))
881 return V;
882
Duncan Sands593faa52011-01-28 16:51:11 +0000883 return 0;
884}
885
886Value *llvm::SimplifySDivInst(Value *Op0, Value *Op1, const TargetData *TD,
Frits van Bommel1fca2c32011-01-29 15:26:31 +0000887 const DominatorTree *DT) {
Duncan Sands593faa52011-01-28 16:51:11 +0000888 return ::SimplifySDivInst(Op0, Op1, TD, DT, RecursionLimit);
889}
890
891/// SimplifyUDivInst - Given operands for a UDiv, see if we can
892/// fold the result. If not, this returns null.
893static Value *SimplifyUDivInst(Value *Op0, Value *Op1, const TargetData *TD,
894 const DominatorTree *DT, unsigned MaxRecurse) {
895 if (Value *V = SimplifyDiv(Instruction::UDiv, Op0, Op1, TD, DT, MaxRecurse))
896 return V;
897
Duncan Sands593faa52011-01-28 16:51:11 +0000898 return 0;
899}
900
901Value *llvm::SimplifyUDivInst(Value *Op0, Value *Op1, const TargetData *TD,
Frits van Bommel1fca2c32011-01-29 15:26:31 +0000902 const DominatorTree *DT) {
Duncan Sands593faa52011-01-28 16:51:11 +0000903 return ::SimplifyUDivInst(Op0, Op1, TD, DT, RecursionLimit);
904}
905
Duncan Sandsf9e4a982011-02-01 09:06:20 +0000906static Value *SimplifyFDivInst(Value *Op0, Value *Op1, const TargetData *,
907 const DominatorTree *, unsigned) {
Frits van Bommel1fca2c32011-01-29 15:26:31 +0000908 // undef / X -> undef (the undef could be a snan).
Duncan Sandsf9e4a982011-02-01 09:06:20 +0000909 if (match(Op0, m_Undef()))
Frits van Bommel1fca2c32011-01-29 15:26:31 +0000910 return Op0;
911
912 // X / undef -> undef
Duncan Sandsf9e4a982011-02-01 09:06:20 +0000913 if (match(Op1, m_Undef()))
Frits van Bommel1fca2c32011-01-29 15:26:31 +0000914 return Op1;
915
916 return 0;
917}
918
919Value *llvm::SimplifyFDivInst(Value *Op0, Value *Op1, const TargetData *TD,
920 const DominatorTree *DT) {
921 return ::SimplifyFDivInst(Op0, Op1, TD, DT, RecursionLimit);
922}
923
Duncan Sandsf24ed772011-05-02 16:27:02 +0000924/// SimplifyRem - Given operands for an SRem or URem, see if we can
925/// fold the result. If not, this returns null.
926static Value *SimplifyRem(Instruction::BinaryOps Opcode, Value *Op0, Value *Op1,
927 const TargetData *TD, const DominatorTree *DT,
928 unsigned MaxRecurse) {
929 if (Constant *C0 = dyn_cast<Constant>(Op0)) {
930 if (Constant *C1 = dyn_cast<Constant>(Op1)) {
931 Constant *Ops[] = { C0, C1 };
Jay Foad1d2f5692011-07-19 13:32:40 +0000932 return ConstantFoldInstOperands(Opcode, C0->getType(), Ops, TD);
Duncan Sandsf24ed772011-05-02 16:27:02 +0000933 }
934 }
935
Duncan Sandsf24ed772011-05-02 16:27:02 +0000936 // X % undef -> undef
937 if (match(Op1, m_Undef()))
938 return Op1;
939
940 // undef % X -> 0
941 if (match(Op0, m_Undef()))
942 return Constant::getNullValue(Op0->getType());
943
944 // 0 % X -> 0, we don't need to preserve faults!
945 if (match(Op0, m_Zero()))
946 return Op0;
947
948 // X % 0 -> undef, we don't need to preserve faults!
949 if (match(Op1, m_Zero()))
950 return UndefValue::get(Op0->getType());
951
952 // X % 1 -> 0
953 if (match(Op1, m_One()))
954 return Constant::getNullValue(Op0->getType());
955
956 if (Op0->getType()->isIntegerTy(1))
957 // It can't be remainder by zero, hence it must be remainder by one.
958 return Constant::getNullValue(Op0->getType());
959
960 // X % X -> 0
961 if (Op0 == Op1)
962 return Constant::getNullValue(Op0->getType());
963
964 // If the operation is with the result of a select instruction, check whether
965 // operating on either branch of the select always yields the same value.
966 if (isa<SelectInst>(Op0) || isa<SelectInst>(Op1))
967 if (Value *V = ThreadBinOpOverSelect(Opcode, Op0, Op1, TD, DT, MaxRecurse))
968 return V;
969
970 // If the operation is with the result of a phi instruction, check whether
971 // operating on all incoming values of the phi always yields the same value.
972 if (isa<PHINode>(Op0) || isa<PHINode>(Op1))
973 if (Value *V = ThreadBinOpOverPHI(Opcode, Op0, Op1, TD, DT, MaxRecurse))
974 return V;
975
976 return 0;
977}
978
979/// SimplifySRemInst - Given operands for an SRem, see if we can
980/// fold the result. If not, this returns null.
981static Value *SimplifySRemInst(Value *Op0, Value *Op1, const TargetData *TD,
982 const DominatorTree *DT, unsigned MaxRecurse) {
983 if (Value *V = SimplifyRem(Instruction::SRem, Op0, Op1, TD, DT, MaxRecurse))
984 return V;
985
986 return 0;
987}
988
989Value *llvm::SimplifySRemInst(Value *Op0, Value *Op1, const TargetData *TD,
990 const DominatorTree *DT) {
991 return ::SimplifySRemInst(Op0, Op1, TD, DT, RecursionLimit);
992}
993
994/// SimplifyURemInst - Given operands for a URem, see if we can
995/// fold the result. If not, this returns null.
996static Value *SimplifyURemInst(Value *Op0, Value *Op1, const TargetData *TD,
997 const DominatorTree *DT, unsigned MaxRecurse) {
998 if (Value *V = SimplifyRem(Instruction::URem, Op0, Op1, TD, DT, MaxRecurse))
999 return V;
1000
1001 return 0;
1002}
1003
1004Value *llvm::SimplifyURemInst(Value *Op0, Value *Op1, const TargetData *TD,
1005 const DominatorTree *DT) {
1006 return ::SimplifyURemInst(Op0, Op1, TD, DT, RecursionLimit);
1007}
1008
1009static Value *SimplifyFRemInst(Value *Op0, Value *Op1, const TargetData *,
1010 const DominatorTree *, unsigned) {
1011 // undef % X -> undef (the undef could be a snan).
1012 if (match(Op0, m_Undef()))
1013 return Op0;
1014
1015 // X % undef -> undef
1016 if (match(Op1, m_Undef()))
1017 return Op1;
1018
1019 return 0;
1020}
1021
1022Value *llvm::SimplifyFRemInst(Value *Op0, Value *Op1, const TargetData *TD,
1023 const DominatorTree *DT) {
1024 return ::SimplifyFRemInst(Op0, Op1, TD, DT, RecursionLimit);
1025}
1026
Duncan Sandscf80bc12011-01-14 14:44:12 +00001027/// SimplifyShift - Given operands for an Shl, LShr or AShr, see if we can
Duncan Sandsc43cee32011-01-14 00:37:45 +00001028/// fold the result. If not, this returns null.
Duncan Sandscf80bc12011-01-14 14:44:12 +00001029static Value *SimplifyShift(unsigned Opcode, Value *Op0, Value *Op1,
1030 const TargetData *TD, const DominatorTree *DT,
1031 unsigned MaxRecurse) {
Duncan Sandsc43cee32011-01-14 00:37:45 +00001032 if (Constant *C0 = dyn_cast<Constant>(Op0)) {
1033 if (Constant *C1 = dyn_cast<Constant>(Op1)) {
1034 Constant *Ops[] = { C0, C1 };
Jay Foad1d2f5692011-07-19 13:32:40 +00001035 return ConstantFoldInstOperands(Opcode, C0->getType(), Ops, TD);
Duncan Sandsc43cee32011-01-14 00:37:45 +00001036 }
1037 }
1038
Duncan Sandscf80bc12011-01-14 14:44:12 +00001039 // 0 shift by X -> 0
Duncan Sandsc43cee32011-01-14 00:37:45 +00001040 if (match(Op0, m_Zero()))
1041 return Op0;
1042
Duncan Sandscf80bc12011-01-14 14:44:12 +00001043 // X shift by 0 -> X
Duncan Sandsc43cee32011-01-14 00:37:45 +00001044 if (match(Op1, m_Zero()))
1045 return Op0;
1046
Duncan Sandscf80bc12011-01-14 14:44:12 +00001047 // X shift by undef -> undef because it may shift by the bitwidth.
Duncan Sandsf9e4a982011-02-01 09:06:20 +00001048 if (match(Op1, m_Undef()))
Duncan Sandsc43cee32011-01-14 00:37:45 +00001049 return Op1;
1050
1051 // Shifting by the bitwidth or more is undefined.
1052 if (ConstantInt *CI = dyn_cast<ConstantInt>(Op1))
1053 if (CI->getValue().getLimitedValue() >=
1054 Op0->getType()->getScalarSizeInBits())
1055 return UndefValue::get(Op0->getType());
1056
Duncan Sandscf80bc12011-01-14 14:44:12 +00001057 // If the operation is with the result of a select instruction, check whether
1058 // operating on either branch of the select always yields the same value.
1059 if (isa<SelectInst>(Op0) || isa<SelectInst>(Op1))
1060 if (Value *V = ThreadBinOpOverSelect(Opcode, Op0, Op1, TD, DT, MaxRecurse))
1061 return V;
1062
1063 // If the operation is with the result of a phi instruction, check whether
1064 // operating on all incoming values of the phi always yields the same value.
1065 if (isa<PHINode>(Op0) || isa<PHINode>(Op1))
1066 if (Value *V = ThreadBinOpOverPHI(Opcode, Op0, Op1, TD, DT, MaxRecurse))
1067 return V;
1068
1069 return 0;
1070}
1071
1072/// SimplifyShlInst - Given operands for an Shl, see if we can
1073/// fold the result. If not, this returns null.
Chris Lattner81a0dc92011-02-09 17:15:04 +00001074static Value *SimplifyShlInst(Value *Op0, Value *Op1, bool isNSW, bool isNUW,
1075 const TargetData *TD, const DominatorTree *DT,
1076 unsigned MaxRecurse) {
Duncan Sandscf80bc12011-01-14 14:44:12 +00001077 if (Value *V = SimplifyShift(Instruction::Shl, Op0, Op1, TD, DT, MaxRecurse))
1078 return V;
1079
1080 // undef << X -> 0
Duncan Sandsf9e4a982011-02-01 09:06:20 +00001081 if (match(Op0, m_Undef()))
Duncan Sandscf80bc12011-01-14 14:44:12 +00001082 return Constant::getNullValue(Op0->getType());
1083
Chris Lattner81a0dc92011-02-09 17:15:04 +00001084 // (X >> A) << A -> X
1085 Value *X;
1086 if (match(Op0, m_Shr(m_Value(X), m_Specific(Op1))) &&
1087 cast<PossiblyExactOperator>(Op0)->isExact())
1088 return X;
Duncan Sandsc43cee32011-01-14 00:37:45 +00001089 return 0;
1090}
1091
Chris Lattner81a0dc92011-02-09 17:15:04 +00001092Value *llvm::SimplifyShlInst(Value *Op0, Value *Op1, bool isNSW, bool isNUW,
1093 const TargetData *TD, const DominatorTree *DT) {
1094 return ::SimplifyShlInst(Op0, Op1, isNSW, isNUW, TD, DT, RecursionLimit);
Duncan Sandsc43cee32011-01-14 00:37:45 +00001095}
1096
1097/// SimplifyLShrInst - Given operands for an LShr, see if we can
1098/// fold the result. If not, this returns null.
Chris Lattner81a0dc92011-02-09 17:15:04 +00001099static Value *SimplifyLShrInst(Value *Op0, Value *Op1, bool isExact,
1100 const TargetData *TD, const DominatorTree *DT,
1101 unsigned MaxRecurse) {
Duncan Sandscf80bc12011-01-14 14:44:12 +00001102 if (Value *V = SimplifyShift(Instruction::LShr, Op0, Op1, TD, DT, MaxRecurse))
1103 return V;
Duncan Sandsc43cee32011-01-14 00:37:45 +00001104
1105 // undef >>l X -> 0
Duncan Sandsf9e4a982011-02-01 09:06:20 +00001106 if (match(Op0, m_Undef()))
Duncan Sandsc43cee32011-01-14 00:37:45 +00001107 return Constant::getNullValue(Op0->getType());
1108
Chris Lattner81a0dc92011-02-09 17:15:04 +00001109 // (X << A) >> A -> X
1110 Value *X;
1111 if (match(Op0, m_Shl(m_Value(X), m_Specific(Op1))) &&
1112 cast<OverflowingBinaryOperator>(Op0)->hasNoUnsignedWrap())
1113 return X;
Duncan Sands52fb8462011-02-13 17:15:40 +00001114
Duncan Sandsc43cee32011-01-14 00:37:45 +00001115 return 0;
1116}
1117
Chris Lattner81a0dc92011-02-09 17:15:04 +00001118Value *llvm::SimplifyLShrInst(Value *Op0, Value *Op1, bool isExact,
1119 const TargetData *TD, const DominatorTree *DT) {
1120 return ::SimplifyLShrInst(Op0, Op1, isExact, TD, DT, RecursionLimit);
Duncan Sandsc43cee32011-01-14 00:37:45 +00001121}
1122
1123/// SimplifyAShrInst - Given operands for an AShr, see if we can
1124/// fold the result. If not, this returns null.
Chris Lattner81a0dc92011-02-09 17:15:04 +00001125static Value *SimplifyAShrInst(Value *Op0, Value *Op1, bool isExact,
1126 const TargetData *TD, const DominatorTree *DT,
1127 unsigned MaxRecurse) {
Duncan Sandscf80bc12011-01-14 14:44:12 +00001128 if (Value *V = SimplifyShift(Instruction::AShr, Op0, Op1, TD, DT, MaxRecurse))
1129 return V;
Duncan Sandsc43cee32011-01-14 00:37:45 +00001130
1131 // all ones >>a X -> all ones
1132 if (match(Op0, m_AllOnes()))
1133 return Op0;
1134
1135 // undef >>a X -> all ones
Duncan Sandsf9e4a982011-02-01 09:06:20 +00001136 if (match(Op0, m_Undef()))
Duncan Sandsc43cee32011-01-14 00:37:45 +00001137 return Constant::getAllOnesValue(Op0->getType());
1138
Chris Lattner81a0dc92011-02-09 17:15:04 +00001139 // (X << A) >> A -> X
1140 Value *X;
1141 if (match(Op0, m_Shl(m_Value(X), m_Specific(Op1))) &&
1142 cast<OverflowingBinaryOperator>(Op0)->hasNoSignedWrap())
1143 return X;
Duncan Sands52fb8462011-02-13 17:15:40 +00001144
Duncan Sandsc43cee32011-01-14 00:37:45 +00001145 return 0;
1146}
1147
Chris Lattner81a0dc92011-02-09 17:15:04 +00001148Value *llvm::SimplifyAShrInst(Value *Op0, Value *Op1, bool isExact,
1149 const TargetData *TD, const DominatorTree *DT) {
1150 return ::SimplifyAShrInst(Op0, Op1, isExact, TD, DT, RecursionLimit);
Duncan Sandsc43cee32011-01-14 00:37:45 +00001151}
1152
Chris Lattnerd06094f2009-11-10 00:55:12 +00001153/// SimplifyAndInst - Given operands for an And, see if we can
Chris Lattner9f3c25a2009-11-09 22:57:59 +00001154/// fold the result. If not, this returns null.
Duncan Sandsa74a58c2010-11-10 18:23:01 +00001155static Value *SimplifyAndInst(Value *Op0, Value *Op1, const TargetData *TD,
Duncan Sands18450092010-11-16 12:16:38 +00001156 const DominatorTree *DT, unsigned MaxRecurse) {
Chris Lattnerd06094f2009-11-10 00:55:12 +00001157 if (Constant *CLHS = dyn_cast<Constant>(Op0)) {
1158 if (Constant *CRHS = dyn_cast<Constant>(Op1)) {
1159 Constant *Ops[] = { CLHS, CRHS };
1160 return ConstantFoldInstOperands(Instruction::And, CLHS->getType(),
Jay Foad1d2f5692011-07-19 13:32:40 +00001161 Ops, TD);
Chris Lattnerd06094f2009-11-10 00:55:12 +00001162 }
Duncan Sands12a86f52010-11-14 11:23:23 +00001163
Chris Lattnerd06094f2009-11-10 00:55:12 +00001164 // Canonicalize the constant to the RHS.
1165 std::swap(Op0, Op1);
1166 }
Duncan Sands12a86f52010-11-14 11:23:23 +00001167
Chris Lattnerd06094f2009-11-10 00:55:12 +00001168 // X & undef -> 0
Duncan Sandsf9e4a982011-02-01 09:06:20 +00001169 if (match(Op1, m_Undef()))
Chris Lattnerd06094f2009-11-10 00:55:12 +00001170 return Constant::getNullValue(Op0->getType());
Duncan Sands12a86f52010-11-14 11:23:23 +00001171
Chris Lattnerd06094f2009-11-10 00:55:12 +00001172 // X & X = X
Duncan Sands124708d2011-01-01 20:08:02 +00001173 if (Op0 == Op1)
Chris Lattnerd06094f2009-11-10 00:55:12 +00001174 return Op0;
Duncan Sands12a86f52010-11-14 11:23:23 +00001175
Duncan Sands2b749872010-11-17 18:52:15 +00001176 // X & 0 = 0
1177 if (match(Op1, m_Zero()))
Chris Lattnerd06094f2009-11-10 00:55:12 +00001178 return Op1;
Duncan Sands12a86f52010-11-14 11:23:23 +00001179
Duncan Sands2b749872010-11-17 18:52:15 +00001180 // X & -1 = X
1181 if (match(Op1, m_AllOnes()))
1182 return Op0;
Duncan Sands12a86f52010-11-14 11:23:23 +00001183
Chris Lattnerd06094f2009-11-10 00:55:12 +00001184 // A & ~A = ~A & A = 0
Chris Lattner81a0dc92011-02-09 17:15:04 +00001185 if (match(Op0, m_Not(m_Specific(Op1))) ||
1186 match(Op1, m_Not(m_Specific(Op0))))
Chris Lattnerd06094f2009-11-10 00:55:12 +00001187 return Constant::getNullValue(Op0->getType());
Duncan Sands12a86f52010-11-14 11:23:23 +00001188
Chris Lattnerd06094f2009-11-10 00:55:12 +00001189 // (A | ?) & A = A
Chris Lattner81a0dc92011-02-09 17:15:04 +00001190 Value *A = 0, *B = 0;
Chris Lattnerd06094f2009-11-10 00:55:12 +00001191 if (match(Op0, m_Or(m_Value(A), m_Value(B))) &&
Duncan Sands124708d2011-01-01 20:08:02 +00001192 (A == Op1 || B == Op1))
Chris Lattnerd06094f2009-11-10 00:55:12 +00001193 return Op1;
Duncan Sands12a86f52010-11-14 11:23:23 +00001194
Chris Lattnerd06094f2009-11-10 00:55:12 +00001195 // A & (A | ?) = A
1196 if (match(Op1, m_Or(m_Value(A), m_Value(B))) &&
Duncan Sands124708d2011-01-01 20:08:02 +00001197 (A == Op0 || B == Op0))
Chris Lattnerd06094f2009-11-10 00:55:12 +00001198 return Op0;
Duncan Sands12a86f52010-11-14 11:23:23 +00001199
Duncan Sands566edb02010-12-21 08:49:00 +00001200 // Try some generic simplifications for associative operations.
1201 if (Value *V = SimplifyAssociativeBinOp(Instruction::And, Op0, Op1, TD, DT,
1202 MaxRecurse))
1203 return V;
Benjamin Kramer6844c8e2010-09-10 22:39:55 +00001204
Duncan Sands3421d902010-12-21 13:32:22 +00001205 // And distributes over Or. Try some generic simplifications based on this.
1206 if (Value *V = ExpandBinOp(Instruction::And, Op0, Op1, Instruction::Or,
1207 TD, DT, MaxRecurse))
1208 return V;
1209
1210 // And distributes over Xor. Try some generic simplifications based on this.
1211 if (Value *V = ExpandBinOp(Instruction::And, Op0, Op1, Instruction::Xor,
1212 TD, DT, MaxRecurse))
1213 return V;
1214
1215 // Or distributes over And. Try some generic simplifications based on this.
1216 if (Value *V = FactorizeBinOp(Instruction::And, Op0, Op1, Instruction::Or,
1217 TD, DT, MaxRecurse))
1218 return V;
1219
Duncan Sandsb2cbdc32010-11-10 13:00:08 +00001220 // If the operation is with the result of a select instruction, check whether
1221 // operating on either branch of the select always yields the same value.
Duncan Sands0312a932010-12-21 09:09:15 +00001222 if (isa<SelectInst>(Op0) || isa<SelectInst>(Op1))
Duncan Sands18450092010-11-16 12:16:38 +00001223 if (Value *V = ThreadBinOpOverSelect(Instruction::And, Op0, Op1, TD, DT,
Duncan Sands0312a932010-12-21 09:09:15 +00001224 MaxRecurse))
Duncan Sandsa74a58c2010-11-10 18:23:01 +00001225 return V;
1226
1227 // If the operation is with the result of a phi instruction, check whether
1228 // operating on all incoming values of the phi always yields the same value.
Duncan Sands0312a932010-12-21 09:09:15 +00001229 if (isa<PHINode>(Op0) || isa<PHINode>(Op1))
Duncan Sands18450092010-11-16 12:16:38 +00001230 if (Value *V = ThreadBinOpOverPHI(Instruction::And, Op0, Op1, TD, DT,
Duncan Sands0312a932010-12-21 09:09:15 +00001231 MaxRecurse))
Duncan Sandsb2cbdc32010-11-10 13:00:08 +00001232 return V;
1233
Chris Lattner9f3c25a2009-11-09 22:57:59 +00001234 return 0;
1235}
1236
Duncan Sands18450092010-11-16 12:16:38 +00001237Value *llvm::SimplifyAndInst(Value *Op0, Value *Op1, const TargetData *TD,
1238 const DominatorTree *DT) {
1239 return ::SimplifyAndInst(Op0, Op1, TD, DT, RecursionLimit);
Duncan Sandsa74a58c2010-11-10 18:23:01 +00001240}
1241
Chris Lattnerd06094f2009-11-10 00:55:12 +00001242/// SimplifyOrInst - Given operands for an Or, see if we can
1243/// fold the result. If not, this returns null.
Duncan Sandsa74a58c2010-11-10 18:23:01 +00001244static Value *SimplifyOrInst(Value *Op0, Value *Op1, const TargetData *TD,
Duncan Sands18450092010-11-16 12:16:38 +00001245 const DominatorTree *DT, unsigned MaxRecurse) {
Chris Lattnerd06094f2009-11-10 00:55:12 +00001246 if (Constant *CLHS = dyn_cast<Constant>(Op0)) {
1247 if (Constant *CRHS = dyn_cast<Constant>(Op1)) {
1248 Constant *Ops[] = { CLHS, CRHS };
1249 return ConstantFoldInstOperands(Instruction::Or, CLHS->getType(),
Jay Foad1d2f5692011-07-19 13:32:40 +00001250 Ops, TD);
Chris Lattnerd06094f2009-11-10 00:55:12 +00001251 }
Duncan Sands12a86f52010-11-14 11:23:23 +00001252
Chris Lattnerd06094f2009-11-10 00:55:12 +00001253 // Canonicalize the constant to the RHS.
1254 std::swap(Op0, Op1);
1255 }
Duncan Sands12a86f52010-11-14 11:23:23 +00001256
Chris Lattnerd06094f2009-11-10 00:55:12 +00001257 // X | undef -> -1
Duncan Sandsf9e4a982011-02-01 09:06:20 +00001258 if (match(Op1, m_Undef()))
Chris Lattnerd06094f2009-11-10 00:55:12 +00001259 return Constant::getAllOnesValue(Op0->getType());
Duncan Sands12a86f52010-11-14 11:23:23 +00001260
Chris Lattnerd06094f2009-11-10 00:55:12 +00001261 // X | X = X
Duncan Sands124708d2011-01-01 20:08:02 +00001262 if (Op0 == Op1)
Chris Lattnerd06094f2009-11-10 00:55:12 +00001263 return Op0;
1264
Duncan Sands2b749872010-11-17 18:52:15 +00001265 // X | 0 = X
1266 if (match(Op1, m_Zero()))
Chris Lattnerd06094f2009-11-10 00:55:12 +00001267 return Op0;
Duncan Sands12a86f52010-11-14 11:23:23 +00001268
Duncan Sands2b749872010-11-17 18:52:15 +00001269 // X | -1 = -1
1270 if (match(Op1, m_AllOnes()))
1271 return Op1;
Duncan Sands12a86f52010-11-14 11:23:23 +00001272
Chris Lattnerd06094f2009-11-10 00:55:12 +00001273 // A | ~A = ~A | A = -1
Chris Lattner81a0dc92011-02-09 17:15:04 +00001274 if (match(Op0, m_Not(m_Specific(Op1))) ||
1275 match(Op1, m_Not(m_Specific(Op0))))
Chris Lattnerd06094f2009-11-10 00:55:12 +00001276 return Constant::getAllOnesValue(Op0->getType());
Duncan Sands12a86f52010-11-14 11:23:23 +00001277
Chris Lattnerd06094f2009-11-10 00:55:12 +00001278 // (A & ?) | A = A
Chris Lattner81a0dc92011-02-09 17:15:04 +00001279 Value *A = 0, *B = 0;
Chris Lattnerd06094f2009-11-10 00:55:12 +00001280 if (match(Op0, m_And(m_Value(A), m_Value(B))) &&
Duncan Sands124708d2011-01-01 20:08:02 +00001281 (A == Op1 || B == Op1))
Chris Lattnerd06094f2009-11-10 00:55:12 +00001282 return Op1;
Duncan Sands12a86f52010-11-14 11:23:23 +00001283
Chris Lattnerd06094f2009-11-10 00:55:12 +00001284 // A | (A & ?) = A
1285 if (match(Op1, m_And(m_Value(A), m_Value(B))) &&
Duncan Sands124708d2011-01-01 20:08:02 +00001286 (A == Op0 || B == Op0))
Chris Lattnerd06094f2009-11-10 00:55:12 +00001287 return Op0;
Duncan Sands12a86f52010-11-14 11:23:23 +00001288
Benjamin Kramer38f7f662011-02-20 15:20:01 +00001289 // ~(A & ?) | A = -1
1290 if (match(Op0, m_Not(m_And(m_Value(A), m_Value(B)))) &&
1291 (A == Op1 || B == Op1))
1292 return Constant::getAllOnesValue(Op1->getType());
1293
1294 // A | ~(A & ?) = -1
1295 if (match(Op1, m_Not(m_And(m_Value(A), m_Value(B)))) &&
1296 (A == Op0 || B == Op0))
1297 return Constant::getAllOnesValue(Op0->getType());
1298
Duncan Sands566edb02010-12-21 08:49:00 +00001299 // Try some generic simplifications for associative operations.
1300 if (Value *V = SimplifyAssociativeBinOp(Instruction::Or, Op0, Op1, TD, DT,
1301 MaxRecurse))
1302 return V;
Benjamin Kramer6844c8e2010-09-10 22:39:55 +00001303
Duncan Sands3421d902010-12-21 13:32:22 +00001304 // Or distributes over And. Try some generic simplifications based on this.
1305 if (Value *V = ExpandBinOp(Instruction::Or, Op0, Op1, Instruction::And,
1306 TD, DT, MaxRecurse))
1307 return V;
1308
1309 // And distributes over Or. Try some generic simplifications based on this.
1310 if (Value *V = FactorizeBinOp(Instruction::Or, Op0, Op1, Instruction::And,
1311 TD, DT, MaxRecurse))
1312 return V;
1313
Duncan Sandsb2cbdc32010-11-10 13:00:08 +00001314 // If the operation is with the result of a select instruction, check whether
1315 // operating on either branch of the select always yields the same value.
Duncan Sands0312a932010-12-21 09:09:15 +00001316 if (isa<SelectInst>(Op0) || isa<SelectInst>(Op1))
Duncan Sands18450092010-11-16 12:16:38 +00001317 if (Value *V = ThreadBinOpOverSelect(Instruction::Or, Op0, Op1, TD, DT,
Duncan Sands0312a932010-12-21 09:09:15 +00001318 MaxRecurse))
Duncan Sandsa74a58c2010-11-10 18:23:01 +00001319 return V;
1320
1321 // If the operation is with the result of a phi instruction, check whether
1322 // operating on all incoming values of the phi always yields the same value.
Duncan Sands0312a932010-12-21 09:09:15 +00001323 if (isa<PHINode>(Op0) || isa<PHINode>(Op1))
Duncan Sands18450092010-11-16 12:16:38 +00001324 if (Value *V = ThreadBinOpOverPHI(Instruction::Or, Op0, Op1, TD, DT,
Duncan Sands0312a932010-12-21 09:09:15 +00001325 MaxRecurse))
Duncan Sandsb2cbdc32010-11-10 13:00:08 +00001326 return V;
1327
Chris Lattnerd06094f2009-11-10 00:55:12 +00001328 return 0;
1329}
1330
Duncan Sands18450092010-11-16 12:16:38 +00001331Value *llvm::SimplifyOrInst(Value *Op0, Value *Op1, const TargetData *TD,
1332 const DominatorTree *DT) {
1333 return ::SimplifyOrInst(Op0, Op1, TD, DT, RecursionLimit);
Duncan Sandsa74a58c2010-11-10 18:23:01 +00001334}
Chris Lattnerd06094f2009-11-10 00:55:12 +00001335
Duncan Sands2b749872010-11-17 18:52:15 +00001336/// SimplifyXorInst - Given operands for a Xor, see if we can
1337/// fold the result. If not, this returns null.
1338static Value *SimplifyXorInst(Value *Op0, Value *Op1, const TargetData *TD,
1339 const DominatorTree *DT, unsigned MaxRecurse) {
1340 if (Constant *CLHS = dyn_cast<Constant>(Op0)) {
1341 if (Constant *CRHS = dyn_cast<Constant>(Op1)) {
1342 Constant *Ops[] = { CLHS, CRHS };
1343 return ConstantFoldInstOperands(Instruction::Xor, CLHS->getType(),
Jay Foad1d2f5692011-07-19 13:32:40 +00001344 Ops, TD);
Duncan Sands2b749872010-11-17 18:52:15 +00001345 }
1346
1347 // Canonicalize the constant to the RHS.
1348 std::swap(Op0, Op1);
1349 }
1350
1351 // A ^ undef -> undef
Duncan Sandsf9e4a982011-02-01 09:06:20 +00001352 if (match(Op1, m_Undef()))
Duncan Sandsf8b1a5e2010-12-15 11:02:22 +00001353 return Op1;
Duncan Sands2b749872010-11-17 18:52:15 +00001354
1355 // A ^ 0 = A
1356 if (match(Op1, m_Zero()))
1357 return Op0;
1358
1359 // A ^ A = 0
Duncan Sands124708d2011-01-01 20:08:02 +00001360 if (Op0 == Op1)
Duncan Sands2b749872010-11-17 18:52:15 +00001361 return Constant::getNullValue(Op0->getType());
1362
1363 // A ^ ~A = ~A ^ A = -1
Chris Lattner81a0dc92011-02-09 17:15:04 +00001364 if (match(Op0, m_Not(m_Specific(Op1))) ||
1365 match(Op1, m_Not(m_Specific(Op0))))
Duncan Sands2b749872010-11-17 18:52:15 +00001366 return Constant::getAllOnesValue(Op0->getType());
1367
Duncan Sands566edb02010-12-21 08:49:00 +00001368 // Try some generic simplifications for associative operations.
1369 if (Value *V = SimplifyAssociativeBinOp(Instruction::Xor, Op0, Op1, TD, DT,
1370 MaxRecurse))
1371 return V;
Duncan Sands2b749872010-11-17 18:52:15 +00001372
Duncan Sands3421d902010-12-21 13:32:22 +00001373 // And distributes over Xor. Try some generic simplifications based on this.
1374 if (Value *V = FactorizeBinOp(Instruction::Xor, Op0, Op1, Instruction::And,
1375 TD, DT, MaxRecurse))
1376 return V;
1377
Duncan Sands87689cf2010-11-19 09:20:39 +00001378 // Threading Xor over selects and phi nodes is pointless, so don't bother.
1379 // Threading over the select in "A ^ select(cond, B, C)" means evaluating
1380 // "A^B" and "A^C" and seeing if they are equal; but they are equal if and
1381 // only if B and C are equal. If B and C are equal then (since we assume
1382 // that operands have already been simplified) "select(cond, B, C)" should
1383 // have been simplified to the common value of B and C already. Analysing
1384 // "A^B" and "A^C" thus gains nothing, but costs compile time. Similarly
1385 // for threading over phi nodes.
Duncan Sands2b749872010-11-17 18:52:15 +00001386
1387 return 0;
1388}
1389
1390Value *llvm::SimplifyXorInst(Value *Op0, Value *Op1, const TargetData *TD,
1391 const DominatorTree *DT) {
1392 return ::SimplifyXorInst(Op0, Op1, TD, DT, RecursionLimit);
1393}
1394
Chris Lattnerdb125cf2011-07-18 04:54:35 +00001395static Type *GetCompareTy(Value *Op) {
Chris Lattner210c5d42009-11-09 23:55:12 +00001396 return CmpInst::makeCmpResultType(Op->getType());
1397}
1398
Duncan Sandse864b5b2011-05-07 16:56:49 +00001399/// ExtractEquivalentCondition - Rummage around inside V looking for something
1400/// equivalent to the comparison "LHS Pred RHS". Return such a value if found,
1401/// otherwise return null. Helper function for analyzing max/min idioms.
1402static Value *ExtractEquivalentCondition(Value *V, CmpInst::Predicate Pred,
1403 Value *LHS, Value *RHS) {
1404 SelectInst *SI = dyn_cast<SelectInst>(V);
1405 if (!SI)
1406 return 0;
1407 CmpInst *Cmp = dyn_cast<CmpInst>(SI->getCondition());
1408 if (!Cmp)
1409 return 0;
1410 Value *CmpLHS = Cmp->getOperand(0), *CmpRHS = Cmp->getOperand(1);
1411 if (Pred == Cmp->getPredicate() && LHS == CmpLHS && RHS == CmpRHS)
1412 return Cmp;
1413 if (Pred == CmpInst::getSwappedPredicate(Cmp->getPredicate()) &&
1414 LHS == CmpRHS && RHS == CmpLHS)
1415 return Cmp;
1416 return 0;
1417}
1418
Chris Lattner9dbb4292009-11-09 23:28:39 +00001419/// SimplifyICmpInst - Given operands for an ICmpInst, see if we can
1420/// fold the result. If not, this returns null.
Duncan Sandsa74a58c2010-11-10 18:23:01 +00001421static Value *SimplifyICmpInst(unsigned Predicate, Value *LHS, Value *RHS,
Duncan Sands18450092010-11-16 12:16:38 +00001422 const TargetData *TD, const DominatorTree *DT,
1423 unsigned MaxRecurse) {
Chris Lattner9f3c25a2009-11-09 22:57:59 +00001424 CmpInst::Predicate Pred = (CmpInst::Predicate)Predicate;
Chris Lattner9dbb4292009-11-09 23:28:39 +00001425 assert(CmpInst::isIntPredicate(Pred) && "Not an integer compare!");
Duncan Sands12a86f52010-11-14 11:23:23 +00001426
Chris Lattnerd06094f2009-11-10 00:55:12 +00001427 if (Constant *CLHS = dyn_cast<Constant>(LHS)) {
Chris Lattner8f73dea2009-11-09 23:06:58 +00001428 if (Constant *CRHS = dyn_cast<Constant>(RHS))
1429 return ConstantFoldCompareInstOperands(Pred, CLHS, CRHS, TD);
Chris Lattnerd06094f2009-11-10 00:55:12 +00001430
1431 // If we have a constant, make sure it is on the RHS.
1432 std::swap(LHS, RHS);
1433 Pred = CmpInst::getSwappedPredicate(Pred);
1434 }
Duncan Sands12a86f52010-11-14 11:23:23 +00001435
Chris Lattnerdb125cf2011-07-18 04:54:35 +00001436 Type *ITy = GetCompareTy(LHS); // The return type.
1437 Type *OpTy = LHS->getType(); // The operand type.
Duncan Sands12a86f52010-11-14 11:23:23 +00001438
Chris Lattner210c5d42009-11-09 23:55:12 +00001439 // icmp X, X -> true/false
Chris Lattnerc8e14b32010-03-03 19:46:03 +00001440 // X icmp undef -> true/false. For example, icmp ugt %X, undef -> false
1441 // because X could be 0.
Duncan Sands124708d2011-01-01 20:08:02 +00001442 if (LHS == RHS || isa<UndefValue>(RHS))
Chris Lattner210c5d42009-11-09 23:55:12 +00001443 return ConstantInt::get(ITy, CmpInst::isTrueWhenEqual(Pred));
Duncan Sands12a86f52010-11-14 11:23:23 +00001444
Duncan Sands6dc91252011-01-13 08:56:29 +00001445 // Special case logic when the operands have i1 type.
1446 if (OpTy->isIntegerTy(1) || (OpTy->isVectorTy() &&
1447 cast<VectorType>(OpTy)->getElementType()->isIntegerTy(1))) {
1448 switch (Pred) {
1449 default: break;
1450 case ICmpInst::ICMP_EQ:
1451 // X == 1 -> X
1452 if (match(RHS, m_One()))
1453 return LHS;
1454 break;
1455 case ICmpInst::ICMP_NE:
1456 // X != 0 -> X
1457 if (match(RHS, m_Zero()))
1458 return LHS;
1459 break;
1460 case ICmpInst::ICMP_UGT:
1461 // X >u 0 -> X
1462 if (match(RHS, m_Zero()))
1463 return LHS;
1464 break;
1465 case ICmpInst::ICMP_UGE:
1466 // X >=u 1 -> X
1467 if (match(RHS, m_One()))
1468 return LHS;
1469 break;
1470 case ICmpInst::ICMP_SLT:
1471 // X <s 0 -> X
1472 if (match(RHS, m_Zero()))
1473 return LHS;
1474 break;
1475 case ICmpInst::ICMP_SLE:
1476 // X <=s -1 -> X
1477 if (match(RHS, m_One()))
1478 return LHS;
1479 break;
1480 }
1481 }
1482
Duncan Sandsd70d1a52011-01-25 09:38:29 +00001483 // icmp <alloca*>, <global/alloca*/null> - Different stack variables have
1484 // different addresses, and what's more the address of a stack variable is
1485 // never null or equal to the address of a global. Note that generalizing
1486 // to the case where LHS is a global variable address or null is pointless,
1487 // since if both LHS and RHS are constants then we already constant folded
1488 // the compare, and if only one of them is then we moved it to RHS already.
1489 if (isa<AllocaInst>(LHS) && (isa<GlobalValue>(RHS) || isa<AllocaInst>(RHS) ||
1490 isa<ConstantPointerNull>(RHS)))
Nick Lewycky58bfcdb2011-03-05 05:19:11 +00001491 // We already know that LHS != RHS.
Duncan Sandsd70d1a52011-01-25 09:38:29 +00001492 return ConstantInt::get(ITy, CmpInst::isFalseWhenEqual(Pred));
1493
1494 // If we are comparing with zero then try hard since this is a common case.
1495 if (match(RHS, m_Zero())) {
1496 bool LHSKnownNonNegative, LHSKnownNegative;
1497 switch (Pred) {
1498 default:
1499 assert(false && "Unknown ICmp predicate!");
1500 case ICmpInst::ICMP_ULT:
Duncan Sandsf56138d2011-07-26 15:03:53 +00001501 return getFalse(ITy);
Duncan Sandsd70d1a52011-01-25 09:38:29 +00001502 case ICmpInst::ICMP_UGE:
Duncan Sandsf56138d2011-07-26 15:03:53 +00001503 return getTrue(ITy);
Duncan Sandsd70d1a52011-01-25 09:38:29 +00001504 case ICmpInst::ICMP_EQ:
1505 case ICmpInst::ICMP_ULE:
1506 if (isKnownNonZero(LHS, TD))
Duncan Sandsf56138d2011-07-26 15:03:53 +00001507 return getFalse(ITy);
Duncan Sandsd70d1a52011-01-25 09:38:29 +00001508 break;
1509 case ICmpInst::ICMP_NE:
1510 case ICmpInst::ICMP_UGT:
1511 if (isKnownNonZero(LHS, TD))
Duncan Sandsf56138d2011-07-26 15:03:53 +00001512 return getTrue(ITy);
Duncan Sandsd70d1a52011-01-25 09:38:29 +00001513 break;
1514 case ICmpInst::ICMP_SLT:
1515 ComputeSignBit(LHS, LHSKnownNonNegative, LHSKnownNegative, TD);
1516 if (LHSKnownNegative)
Duncan Sandsf56138d2011-07-26 15:03:53 +00001517 return getTrue(ITy);
Duncan Sandsd70d1a52011-01-25 09:38:29 +00001518 if (LHSKnownNonNegative)
Duncan Sandsf56138d2011-07-26 15:03:53 +00001519 return getFalse(ITy);
Duncan Sandsd70d1a52011-01-25 09:38:29 +00001520 break;
1521 case ICmpInst::ICMP_SLE:
1522 ComputeSignBit(LHS, LHSKnownNonNegative, LHSKnownNegative, TD);
1523 if (LHSKnownNegative)
Duncan Sandsf56138d2011-07-26 15:03:53 +00001524 return getTrue(ITy);
Duncan Sandsd70d1a52011-01-25 09:38:29 +00001525 if (LHSKnownNonNegative && isKnownNonZero(LHS, TD))
Duncan Sandsf56138d2011-07-26 15:03:53 +00001526 return getFalse(ITy);
Duncan Sandsd70d1a52011-01-25 09:38:29 +00001527 break;
1528 case ICmpInst::ICMP_SGE:
1529 ComputeSignBit(LHS, LHSKnownNonNegative, LHSKnownNegative, TD);
1530 if (LHSKnownNegative)
Duncan Sandsf56138d2011-07-26 15:03:53 +00001531 return getFalse(ITy);
Duncan Sandsd70d1a52011-01-25 09:38:29 +00001532 if (LHSKnownNonNegative)
Duncan Sandsf56138d2011-07-26 15:03:53 +00001533 return getTrue(ITy);
Duncan Sandsd70d1a52011-01-25 09:38:29 +00001534 break;
1535 case ICmpInst::ICMP_SGT:
1536 ComputeSignBit(LHS, LHSKnownNonNegative, LHSKnownNegative, TD);
1537 if (LHSKnownNegative)
Duncan Sandsf56138d2011-07-26 15:03:53 +00001538 return getFalse(ITy);
Duncan Sandsd70d1a52011-01-25 09:38:29 +00001539 if (LHSKnownNonNegative && isKnownNonZero(LHS, TD))
Duncan Sandsf56138d2011-07-26 15:03:53 +00001540 return getTrue(ITy);
Duncan Sandsd70d1a52011-01-25 09:38:29 +00001541 break;
1542 }
1543 }
1544
1545 // See if we are doing a comparison with a constant integer.
Duncan Sands6dc91252011-01-13 08:56:29 +00001546 if (ConstantInt *CI = dyn_cast<ConstantInt>(RHS)) {
Nick Lewycky3a73e342011-03-04 07:00:57 +00001547 // Rule out tautological comparisons (eg., ult 0 or uge 0).
1548 ConstantRange RHS_CR = ICmpInst::makeConstantRange(Pred, CI->getValue());
1549 if (RHS_CR.isEmptySet())
1550 return ConstantInt::getFalse(CI->getContext());
1551 if (RHS_CR.isFullSet())
1552 return ConstantInt::getTrue(CI->getContext());
Nick Lewycky88cd0aa2011-03-01 08:15:50 +00001553
Nick Lewycky3a73e342011-03-04 07:00:57 +00001554 // Many binary operators with constant RHS have easy to compute constant
1555 // range. Use them to check whether the comparison is a tautology.
1556 uint32_t Width = CI->getBitWidth();
1557 APInt Lower = APInt(Width, 0);
1558 APInt Upper = APInt(Width, 0);
1559 ConstantInt *CI2;
1560 if (match(LHS, m_URem(m_Value(), m_ConstantInt(CI2)))) {
1561 // 'urem x, CI2' produces [0, CI2).
1562 Upper = CI2->getValue();
1563 } else if (match(LHS, m_SRem(m_Value(), m_ConstantInt(CI2)))) {
1564 // 'srem x, CI2' produces (-|CI2|, |CI2|).
1565 Upper = CI2->getValue().abs();
1566 Lower = (-Upper) + 1;
1567 } else if (match(LHS, m_UDiv(m_Value(), m_ConstantInt(CI2)))) {
1568 // 'udiv x, CI2' produces [0, UINT_MAX / CI2].
1569 APInt NegOne = APInt::getAllOnesValue(Width);
1570 if (!CI2->isZero())
1571 Upper = NegOne.udiv(CI2->getValue()) + 1;
1572 } else if (match(LHS, m_SDiv(m_Value(), m_ConstantInt(CI2)))) {
1573 // 'sdiv x, CI2' produces [INT_MIN / CI2, INT_MAX / CI2].
1574 APInt IntMin = APInt::getSignedMinValue(Width);
1575 APInt IntMax = APInt::getSignedMaxValue(Width);
1576 APInt Val = CI2->getValue().abs();
1577 if (!Val.isMinValue()) {
1578 Lower = IntMin.sdiv(Val);
1579 Upper = IntMax.sdiv(Val) + 1;
1580 }
1581 } else if (match(LHS, m_LShr(m_Value(), m_ConstantInt(CI2)))) {
1582 // 'lshr x, CI2' produces [0, UINT_MAX >> CI2].
1583 APInt NegOne = APInt::getAllOnesValue(Width);
1584 if (CI2->getValue().ult(Width))
1585 Upper = NegOne.lshr(CI2->getValue()) + 1;
1586 } else if (match(LHS, m_AShr(m_Value(), m_ConstantInt(CI2)))) {
1587 // 'ashr x, CI2' produces [INT_MIN >> CI2, INT_MAX >> CI2].
1588 APInt IntMin = APInt::getSignedMinValue(Width);
1589 APInt IntMax = APInt::getSignedMaxValue(Width);
1590 if (CI2->getValue().ult(Width)) {
1591 Lower = IntMin.ashr(CI2->getValue());
1592 Upper = IntMax.ashr(CI2->getValue()) + 1;
1593 }
1594 } else if (match(LHS, m_Or(m_Value(), m_ConstantInt(CI2)))) {
1595 // 'or x, CI2' produces [CI2, UINT_MAX].
1596 Lower = CI2->getValue();
1597 } else if (match(LHS, m_And(m_Value(), m_ConstantInt(CI2)))) {
1598 // 'and x, CI2' produces [0, CI2].
1599 Upper = CI2->getValue() + 1;
1600 }
1601 if (Lower != Upper) {
1602 ConstantRange LHS_CR = ConstantRange(Lower, Upper);
1603 if (RHS_CR.contains(LHS_CR))
1604 return ConstantInt::getTrue(RHS->getContext());
1605 if (RHS_CR.inverse().contains(LHS_CR))
1606 return ConstantInt::getFalse(RHS->getContext());
1607 }
Duncan Sands6dc91252011-01-13 08:56:29 +00001608 }
1609
Duncan Sands9d32f602011-01-20 13:21:55 +00001610 // Compare of cast, for example (zext X) != 0 -> X != 0
1611 if (isa<CastInst>(LHS) && (isa<Constant>(RHS) || isa<CastInst>(RHS))) {
1612 Instruction *LI = cast<CastInst>(LHS);
1613 Value *SrcOp = LI->getOperand(0);
Chris Lattnerdb125cf2011-07-18 04:54:35 +00001614 Type *SrcTy = SrcOp->getType();
1615 Type *DstTy = LI->getType();
Duncan Sands9d32f602011-01-20 13:21:55 +00001616
1617 // Turn icmp (ptrtoint x), (ptrtoint/constant) into a compare of the input
1618 // if the integer type is the same size as the pointer type.
1619 if (MaxRecurse && TD && isa<PtrToIntInst>(LI) &&
1620 TD->getPointerSizeInBits() == DstTy->getPrimitiveSizeInBits()) {
1621 if (Constant *RHSC = dyn_cast<Constant>(RHS)) {
1622 // Transfer the cast to the constant.
1623 if (Value *V = SimplifyICmpInst(Pred, SrcOp,
1624 ConstantExpr::getIntToPtr(RHSC, SrcTy),
1625 TD, DT, MaxRecurse-1))
1626 return V;
1627 } else if (PtrToIntInst *RI = dyn_cast<PtrToIntInst>(RHS)) {
1628 if (RI->getOperand(0)->getType() == SrcTy)
1629 // Compare without the cast.
1630 if (Value *V = SimplifyICmpInst(Pred, SrcOp, RI->getOperand(0),
1631 TD, DT, MaxRecurse-1))
1632 return V;
1633 }
1634 }
1635
1636 if (isa<ZExtInst>(LHS)) {
1637 // Turn icmp (zext X), (zext Y) into a compare of X and Y if they have the
1638 // same type.
1639 if (ZExtInst *RI = dyn_cast<ZExtInst>(RHS)) {
1640 if (MaxRecurse && SrcTy == RI->getOperand(0)->getType())
1641 // Compare X and Y. Note that signed predicates become unsigned.
1642 if (Value *V = SimplifyICmpInst(ICmpInst::getUnsignedPredicate(Pred),
1643 SrcOp, RI->getOperand(0), TD, DT,
1644 MaxRecurse-1))
1645 return V;
1646 }
1647 // Turn icmp (zext X), Cst into a compare of X and Cst if Cst is extended
1648 // too. If not, then try to deduce the result of the comparison.
1649 else if (ConstantInt *CI = dyn_cast<ConstantInt>(RHS)) {
1650 // Compute the constant that would happen if we truncated to SrcTy then
1651 // reextended to DstTy.
1652 Constant *Trunc = ConstantExpr::getTrunc(CI, SrcTy);
1653 Constant *RExt = ConstantExpr::getCast(CastInst::ZExt, Trunc, DstTy);
1654
1655 // If the re-extended constant didn't change then this is effectively
1656 // also a case of comparing two zero-extended values.
1657 if (RExt == CI && MaxRecurse)
1658 if (Value *V = SimplifyICmpInst(ICmpInst::getUnsignedPredicate(Pred),
1659 SrcOp, Trunc, TD, DT, MaxRecurse-1))
1660 return V;
1661
1662 // Otherwise the upper bits of LHS are zero while RHS has a non-zero bit
1663 // there. Use this to work out the result of the comparison.
1664 if (RExt != CI) {
1665 switch (Pred) {
1666 default:
1667 assert(false && "Unknown ICmp predicate!");
1668 // LHS <u RHS.
1669 case ICmpInst::ICMP_EQ:
1670 case ICmpInst::ICMP_UGT:
1671 case ICmpInst::ICMP_UGE:
1672 return ConstantInt::getFalse(CI->getContext());
1673
1674 case ICmpInst::ICMP_NE:
1675 case ICmpInst::ICMP_ULT:
1676 case ICmpInst::ICMP_ULE:
1677 return ConstantInt::getTrue(CI->getContext());
1678
1679 // LHS is non-negative. If RHS is negative then LHS >s LHS. If RHS
1680 // is non-negative then LHS <s RHS.
1681 case ICmpInst::ICMP_SGT:
1682 case ICmpInst::ICMP_SGE:
1683 return CI->getValue().isNegative() ?
1684 ConstantInt::getTrue(CI->getContext()) :
1685 ConstantInt::getFalse(CI->getContext());
1686
1687 case ICmpInst::ICMP_SLT:
1688 case ICmpInst::ICMP_SLE:
1689 return CI->getValue().isNegative() ?
1690 ConstantInt::getFalse(CI->getContext()) :
1691 ConstantInt::getTrue(CI->getContext());
1692 }
1693 }
1694 }
1695 }
1696
1697 if (isa<SExtInst>(LHS)) {
1698 // Turn icmp (sext X), (sext Y) into a compare of X and Y if they have the
1699 // same type.
1700 if (SExtInst *RI = dyn_cast<SExtInst>(RHS)) {
1701 if (MaxRecurse && SrcTy == RI->getOperand(0)->getType())
1702 // Compare X and Y. Note that the predicate does not change.
1703 if (Value *V = SimplifyICmpInst(Pred, SrcOp, RI->getOperand(0),
1704 TD, DT, MaxRecurse-1))
1705 return V;
1706 }
1707 // Turn icmp (sext X), Cst into a compare of X and Cst if Cst is extended
1708 // too. If not, then try to deduce the result of the comparison.
1709 else if (ConstantInt *CI = dyn_cast<ConstantInt>(RHS)) {
1710 // Compute the constant that would happen if we truncated to SrcTy then
1711 // reextended to DstTy.
1712 Constant *Trunc = ConstantExpr::getTrunc(CI, SrcTy);
1713 Constant *RExt = ConstantExpr::getCast(CastInst::SExt, Trunc, DstTy);
1714
1715 // If the re-extended constant didn't change then this is effectively
1716 // also a case of comparing two sign-extended values.
1717 if (RExt == CI && MaxRecurse)
1718 if (Value *V = SimplifyICmpInst(Pred, SrcOp, Trunc, TD, DT,
1719 MaxRecurse-1))
1720 return V;
1721
1722 // Otherwise the upper bits of LHS are all equal, while RHS has varying
1723 // bits there. Use this to work out the result of the comparison.
1724 if (RExt != CI) {
1725 switch (Pred) {
1726 default:
1727 assert(false && "Unknown ICmp predicate!");
1728 case ICmpInst::ICMP_EQ:
1729 return ConstantInt::getFalse(CI->getContext());
1730 case ICmpInst::ICMP_NE:
1731 return ConstantInt::getTrue(CI->getContext());
1732
1733 // If RHS is non-negative then LHS <s RHS. If RHS is negative then
1734 // LHS >s RHS.
1735 case ICmpInst::ICMP_SGT:
1736 case ICmpInst::ICMP_SGE:
1737 return CI->getValue().isNegative() ?
1738 ConstantInt::getTrue(CI->getContext()) :
1739 ConstantInt::getFalse(CI->getContext());
1740 case ICmpInst::ICMP_SLT:
1741 case ICmpInst::ICMP_SLE:
1742 return CI->getValue().isNegative() ?
1743 ConstantInt::getFalse(CI->getContext()) :
1744 ConstantInt::getTrue(CI->getContext());
1745
1746 // If LHS is non-negative then LHS <u RHS. If LHS is negative then
1747 // LHS >u RHS.
1748 case ICmpInst::ICMP_UGT:
1749 case ICmpInst::ICMP_UGE:
1750 // Comparison is true iff the LHS <s 0.
1751 if (MaxRecurse)
1752 if (Value *V = SimplifyICmpInst(ICmpInst::ICMP_SLT, SrcOp,
1753 Constant::getNullValue(SrcTy),
1754 TD, DT, MaxRecurse-1))
1755 return V;
1756 break;
1757 case ICmpInst::ICMP_ULT:
1758 case ICmpInst::ICMP_ULE:
1759 // Comparison is true iff the LHS >=s 0.
1760 if (MaxRecurse)
1761 if (Value *V = SimplifyICmpInst(ICmpInst::ICMP_SGE, SrcOp,
1762 Constant::getNullValue(SrcTy),
1763 TD, DT, MaxRecurse-1))
1764 return V;
1765 break;
1766 }
1767 }
1768 }
1769 }
1770 }
1771
Duncan Sands52fb8462011-02-13 17:15:40 +00001772 // Special logic for binary operators.
1773 BinaryOperator *LBO = dyn_cast<BinaryOperator>(LHS);
1774 BinaryOperator *RBO = dyn_cast<BinaryOperator>(RHS);
1775 if (MaxRecurse && (LBO || RBO)) {
Duncan Sands52fb8462011-02-13 17:15:40 +00001776 // Analyze the case when either LHS or RHS is an add instruction.
1777 Value *A = 0, *B = 0, *C = 0, *D = 0;
1778 // LHS = A + B (or A and B are null); RHS = C + D (or C and D are null).
1779 bool NoLHSWrapProblem = false, NoRHSWrapProblem = false;
1780 if (LBO && LBO->getOpcode() == Instruction::Add) {
1781 A = LBO->getOperand(0); B = LBO->getOperand(1);
1782 NoLHSWrapProblem = ICmpInst::isEquality(Pred) ||
1783 (CmpInst::isUnsigned(Pred) && LBO->hasNoUnsignedWrap()) ||
1784 (CmpInst::isSigned(Pred) && LBO->hasNoSignedWrap());
1785 }
1786 if (RBO && RBO->getOpcode() == Instruction::Add) {
1787 C = RBO->getOperand(0); D = RBO->getOperand(1);
1788 NoRHSWrapProblem = ICmpInst::isEquality(Pred) ||
1789 (CmpInst::isUnsigned(Pred) && RBO->hasNoUnsignedWrap()) ||
1790 (CmpInst::isSigned(Pred) && RBO->hasNoSignedWrap());
1791 }
1792
1793 // icmp (X+Y), X -> icmp Y, 0 for equalities or if there is no overflow.
1794 if ((A == RHS || B == RHS) && NoLHSWrapProblem)
1795 if (Value *V = SimplifyICmpInst(Pred, A == RHS ? B : A,
1796 Constant::getNullValue(RHS->getType()),
1797 TD, DT, MaxRecurse-1))
1798 return V;
1799
1800 // icmp X, (X+Y) -> icmp 0, Y for equalities or if there is no overflow.
1801 if ((C == LHS || D == LHS) && NoRHSWrapProblem)
1802 if (Value *V = SimplifyICmpInst(Pred,
1803 Constant::getNullValue(LHS->getType()),
1804 C == LHS ? D : C, TD, DT, MaxRecurse-1))
1805 return V;
1806
1807 // icmp (X+Y), (X+Z) -> icmp Y,Z for equalities or if there is no overflow.
1808 if (A && C && (A == C || A == D || B == C || B == D) &&
1809 NoLHSWrapProblem && NoRHSWrapProblem) {
1810 // Determine Y and Z in the form icmp (X+Y), (X+Z).
1811 Value *Y = (A == C || A == D) ? B : A;
1812 Value *Z = (C == A || C == B) ? D : C;
1813 if (Value *V = SimplifyICmpInst(Pred, Y, Z, TD, DT, MaxRecurse-1))
1814 return V;
1815 }
1816 }
1817
Nick Lewycky84dd4fa2011-03-09 06:26:03 +00001818 if (LBO && match(LBO, m_URem(m_Value(), m_Specific(RHS)))) {
Nick Lewycky78679272011-03-04 10:06:52 +00001819 bool KnownNonNegative, KnownNegative;
Nick Lewycky88cd0aa2011-03-01 08:15:50 +00001820 switch (Pred) {
1821 default:
1822 break;
Nick Lewycky78679272011-03-04 10:06:52 +00001823 case ICmpInst::ICMP_SGT:
1824 case ICmpInst::ICMP_SGE:
1825 ComputeSignBit(LHS, KnownNonNegative, KnownNegative, TD);
1826 if (!KnownNonNegative)
1827 break;
1828 // fall-through
Nick Lewycky88cd0aa2011-03-01 08:15:50 +00001829 case ICmpInst::ICMP_EQ:
1830 case ICmpInst::ICMP_UGT:
1831 case ICmpInst::ICMP_UGE:
Duncan Sandsf56138d2011-07-26 15:03:53 +00001832 return getFalse(ITy);
Nick Lewycky78679272011-03-04 10:06:52 +00001833 case ICmpInst::ICMP_SLT:
1834 case ICmpInst::ICMP_SLE:
1835 ComputeSignBit(LHS, KnownNonNegative, KnownNegative, TD);
1836 if (!KnownNonNegative)
1837 break;
1838 // fall-through
Nick Lewycky88cd0aa2011-03-01 08:15:50 +00001839 case ICmpInst::ICMP_NE:
1840 case ICmpInst::ICMP_ULT:
1841 case ICmpInst::ICMP_ULE:
Duncan Sandsf56138d2011-07-26 15:03:53 +00001842 return getTrue(ITy);
Nick Lewycky88cd0aa2011-03-01 08:15:50 +00001843 }
1844 }
Nick Lewycky84dd4fa2011-03-09 06:26:03 +00001845 if (RBO && match(RBO, m_URem(m_Value(), m_Specific(LHS)))) {
1846 bool KnownNonNegative, KnownNegative;
1847 switch (Pred) {
1848 default:
1849 break;
1850 case ICmpInst::ICMP_SGT:
1851 case ICmpInst::ICMP_SGE:
1852 ComputeSignBit(RHS, KnownNonNegative, KnownNegative, TD);
1853 if (!KnownNonNegative)
1854 break;
1855 // fall-through
Nick Lewyckya0e2f382011-03-09 08:20:06 +00001856 case ICmpInst::ICMP_NE:
Nick Lewycky84dd4fa2011-03-09 06:26:03 +00001857 case ICmpInst::ICMP_UGT:
1858 case ICmpInst::ICMP_UGE:
Duncan Sandsf56138d2011-07-26 15:03:53 +00001859 return getTrue(ITy);
Nick Lewycky84dd4fa2011-03-09 06:26:03 +00001860 case ICmpInst::ICMP_SLT:
1861 case ICmpInst::ICMP_SLE:
1862 ComputeSignBit(RHS, KnownNonNegative, KnownNegative, TD);
1863 if (!KnownNonNegative)
1864 break;
1865 // fall-through
Nick Lewyckya0e2f382011-03-09 08:20:06 +00001866 case ICmpInst::ICMP_EQ:
Nick Lewycky84dd4fa2011-03-09 06:26:03 +00001867 case ICmpInst::ICMP_ULT:
1868 case ICmpInst::ICMP_ULE:
Duncan Sandsf56138d2011-07-26 15:03:53 +00001869 return getFalse(ITy);
Nick Lewycky84dd4fa2011-03-09 06:26:03 +00001870 }
1871 }
Nick Lewycky88cd0aa2011-03-01 08:15:50 +00001872
Nick Lewycky58bfcdb2011-03-05 05:19:11 +00001873 if (MaxRecurse && LBO && RBO && LBO->getOpcode() == RBO->getOpcode() &&
1874 LBO->getOperand(1) == RBO->getOperand(1)) {
1875 switch (LBO->getOpcode()) {
1876 default: break;
1877 case Instruction::UDiv:
1878 case Instruction::LShr:
1879 if (ICmpInst::isSigned(Pred))
1880 break;
1881 // fall-through
1882 case Instruction::SDiv:
1883 case Instruction::AShr:
Eli Friedmanb6e7cd62011-05-05 21:59:18 +00001884 if (!LBO->isExact() || !RBO->isExact())
Nick Lewycky58bfcdb2011-03-05 05:19:11 +00001885 break;
1886 if (Value *V = SimplifyICmpInst(Pred, LBO->getOperand(0),
1887 RBO->getOperand(0), TD, DT, MaxRecurse-1))
1888 return V;
1889 break;
1890 case Instruction::Shl: {
Duncan Sandsc9d904e2011-08-04 10:02:21 +00001891 bool NUW = LBO->hasNoUnsignedWrap() && RBO->hasNoUnsignedWrap();
Nick Lewycky58bfcdb2011-03-05 05:19:11 +00001892 bool NSW = LBO->hasNoSignedWrap() && RBO->hasNoSignedWrap();
1893 if (!NUW && !NSW)
1894 break;
1895 if (!NSW && ICmpInst::isSigned(Pred))
1896 break;
1897 if (Value *V = SimplifyICmpInst(Pred, LBO->getOperand(0),
1898 RBO->getOperand(0), TD, DT, MaxRecurse-1))
1899 return V;
1900 break;
1901 }
1902 }
1903 }
1904
Duncan Sandsad206812011-05-03 19:53:10 +00001905 // Simplify comparisons involving max/min.
1906 Value *A, *B;
1907 CmpInst::Predicate P = CmpInst::BAD_ICMP_PREDICATE;
1908 CmpInst::Predicate EqP; // Chosen so that "A == max/min(A,B)" iff "A EqP B".
1909
Duncan Sands8140ad32011-05-04 16:05:05 +00001910 // Signed variants on "max(a,b)>=a -> true".
Duncan Sandsad206812011-05-03 19:53:10 +00001911 if (match(LHS, m_SMax(m_Value(A), m_Value(B))) && (A == RHS || B == RHS)) {
1912 if (A != RHS) std::swap(A, B); // smax(A, B) pred A.
1913 EqP = CmpInst::ICMP_SGE; // "A == smax(A, B)" iff "A sge B".
1914 // We analyze this as smax(A, B) pred A.
1915 P = Pred;
1916 } else if (match(RHS, m_SMax(m_Value(A), m_Value(B))) &&
1917 (A == LHS || B == LHS)) {
1918 if (A != LHS) std::swap(A, B); // A pred smax(A, B).
1919 EqP = CmpInst::ICMP_SGE; // "A == smax(A, B)" iff "A sge B".
1920 // We analyze this as smax(A, B) swapped-pred A.
1921 P = CmpInst::getSwappedPredicate(Pred);
1922 } else if (match(LHS, m_SMin(m_Value(A), m_Value(B))) &&
1923 (A == RHS || B == RHS)) {
1924 if (A != RHS) std::swap(A, B); // smin(A, B) pred A.
1925 EqP = CmpInst::ICMP_SLE; // "A == smin(A, B)" iff "A sle B".
1926 // We analyze this as smax(-A, -B) swapped-pred -A.
1927 // Note that we do not need to actually form -A or -B thanks to EqP.
1928 P = CmpInst::getSwappedPredicate(Pred);
1929 } else if (match(RHS, m_SMin(m_Value(A), m_Value(B))) &&
1930 (A == LHS || B == LHS)) {
1931 if (A != LHS) std::swap(A, B); // A pred smin(A, B).
1932 EqP = CmpInst::ICMP_SLE; // "A == smin(A, B)" iff "A sle B".
1933 // We analyze this as smax(-A, -B) pred -A.
1934 // Note that we do not need to actually form -A or -B thanks to EqP.
1935 P = Pred;
1936 }
1937 if (P != CmpInst::BAD_ICMP_PREDICATE) {
1938 // Cases correspond to "max(A, B) p A".
1939 switch (P) {
1940 default:
1941 break;
1942 case CmpInst::ICMP_EQ:
1943 case CmpInst::ICMP_SLE:
Duncan Sandse864b5b2011-05-07 16:56:49 +00001944 // Equivalent to "A EqP B". This may be the same as the condition tested
1945 // in the max/min; if so, we can just return that.
1946 if (Value *V = ExtractEquivalentCondition(LHS, EqP, A, B))
1947 return V;
1948 if (Value *V = ExtractEquivalentCondition(RHS, EqP, A, B))
1949 return V;
1950 // Otherwise, see if "A EqP B" simplifies.
Duncan Sandsad206812011-05-03 19:53:10 +00001951 if (MaxRecurse)
1952 if (Value *V = SimplifyICmpInst(EqP, A, B, TD, DT, MaxRecurse-1))
1953 return V;
1954 break;
1955 case CmpInst::ICMP_NE:
Duncan Sandse864b5b2011-05-07 16:56:49 +00001956 case CmpInst::ICMP_SGT: {
1957 CmpInst::Predicate InvEqP = CmpInst::getInversePredicate(EqP);
1958 // Equivalent to "A InvEqP B". This may be the same as the condition
1959 // tested in the max/min; if so, we can just return that.
1960 if (Value *V = ExtractEquivalentCondition(LHS, InvEqP, A, B))
1961 return V;
1962 if (Value *V = ExtractEquivalentCondition(RHS, InvEqP, A, B))
1963 return V;
1964 // Otherwise, see if "A InvEqP B" simplifies.
Duncan Sandsad206812011-05-03 19:53:10 +00001965 if (MaxRecurse)
Duncan Sandse864b5b2011-05-07 16:56:49 +00001966 if (Value *V = SimplifyICmpInst(InvEqP, A, B, TD, DT, MaxRecurse-1))
Duncan Sandsad206812011-05-03 19:53:10 +00001967 return V;
1968 break;
Duncan Sandse864b5b2011-05-07 16:56:49 +00001969 }
Duncan Sandsad206812011-05-03 19:53:10 +00001970 case CmpInst::ICMP_SGE:
1971 // Always true.
Duncan Sandsf56138d2011-07-26 15:03:53 +00001972 return getTrue(ITy);
Duncan Sandsad206812011-05-03 19:53:10 +00001973 case CmpInst::ICMP_SLT:
1974 // Always false.
Duncan Sandsf56138d2011-07-26 15:03:53 +00001975 return getFalse(ITy);
Duncan Sandsad206812011-05-03 19:53:10 +00001976 }
1977 }
1978
Duncan Sands8140ad32011-05-04 16:05:05 +00001979 // Unsigned variants on "max(a,b)>=a -> true".
Duncan Sandsad206812011-05-03 19:53:10 +00001980 P = CmpInst::BAD_ICMP_PREDICATE;
1981 if (match(LHS, m_UMax(m_Value(A), m_Value(B))) && (A == RHS || B == RHS)) {
1982 if (A != RHS) std::swap(A, B); // umax(A, B) pred A.
1983 EqP = CmpInst::ICMP_UGE; // "A == umax(A, B)" iff "A uge B".
1984 // We analyze this as umax(A, B) pred A.
1985 P = Pred;
1986 } else if (match(RHS, m_UMax(m_Value(A), m_Value(B))) &&
1987 (A == LHS || B == LHS)) {
1988 if (A != LHS) std::swap(A, B); // A pred umax(A, B).
1989 EqP = CmpInst::ICMP_UGE; // "A == umax(A, B)" iff "A uge B".
1990 // We analyze this as umax(A, B) swapped-pred A.
1991 P = CmpInst::getSwappedPredicate(Pred);
1992 } else if (match(LHS, m_UMin(m_Value(A), m_Value(B))) &&
1993 (A == RHS || B == RHS)) {
1994 if (A != RHS) std::swap(A, B); // umin(A, B) pred A.
1995 EqP = CmpInst::ICMP_ULE; // "A == umin(A, B)" iff "A ule B".
1996 // We analyze this as umax(-A, -B) swapped-pred -A.
1997 // Note that we do not need to actually form -A or -B thanks to EqP.
1998 P = CmpInst::getSwappedPredicate(Pred);
1999 } else if (match(RHS, m_UMin(m_Value(A), m_Value(B))) &&
2000 (A == LHS || B == LHS)) {
2001 if (A != LHS) std::swap(A, B); // A pred umin(A, B).
2002 EqP = CmpInst::ICMP_ULE; // "A == umin(A, B)" iff "A ule B".
2003 // We analyze this as umax(-A, -B) pred -A.
2004 // Note that we do not need to actually form -A or -B thanks to EqP.
2005 P = Pred;
2006 }
2007 if (P != CmpInst::BAD_ICMP_PREDICATE) {
2008 // Cases correspond to "max(A, B) p A".
2009 switch (P) {
2010 default:
2011 break;
2012 case CmpInst::ICMP_EQ:
2013 case CmpInst::ICMP_ULE:
Duncan Sandse864b5b2011-05-07 16:56:49 +00002014 // Equivalent to "A EqP B". This may be the same as the condition tested
2015 // in the max/min; if so, we can just return that.
2016 if (Value *V = ExtractEquivalentCondition(LHS, EqP, A, B))
2017 return V;
2018 if (Value *V = ExtractEquivalentCondition(RHS, EqP, A, B))
2019 return V;
2020 // Otherwise, see if "A EqP B" simplifies.
Duncan Sandsad206812011-05-03 19:53:10 +00002021 if (MaxRecurse)
2022 if (Value *V = SimplifyICmpInst(EqP, A, B, TD, DT, MaxRecurse-1))
2023 return V;
2024 break;
2025 case CmpInst::ICMP_NE:
Duncan Sandse864b5b2011-05-07 16:56:49 +00002026 case CmpInst::ICMP_UGT: {
2027 CmpInst::Predicate InvEqP = CmpInst::getInversePredicate(EqP);
2028 // Equivalent to "A InvEqP B". This may be the same as the condition
2029 // tested in the max/min; if so, we can just return that.
2030 if (Value *V = ExtractEquivalentCondition(LHS, InvEqP, A, B))
2031 return V;
2032 if (Value *V = ExtractEquivalentCondition(RHS, InvEqP, A, B))
2033 return V;
2034 // Otherwise, see if "A InvEqP B" simplifies.
Duncan Sandsad206812011-05-03 19:53:10 +00002035 if (MaxRecurse)
Duncan Sandse864b5b2011-05-07 16:56:49 +00002036 if (Value *V = SimplifyICmpInst(InvEqP, A, B, TD, DT, MaxRecurse-1))
Duncan Sandsad206812011-05-03 19:53:10 +00002037 return V;
2038 break;
Duncan Sandse864b5b2011-05-07 16:56:49 +00002039 }
Duncan Sandsad206812011-05-03 19:53:10 +00002040 case CmpInst::ICMP_UGE:
2041 // Always true.
Duncan Sandsf56138d2011-07-26 15:03:53 +00002042 return getTrue(ITy);
Duncan Sandsad206812011-05-03 19:53:10 +00002043 case CmpInst::ICMP_ULT:
2044 // Always false.
Duncan Sandsf56138d2011-07-26 15:03:53 +00002045 return getFalse(ITy);
Duncan Sandsad206812011-05-03 19:53:10 +00002046 }
2047 }
2048
Duncan Sands8140ad32011-05-04 16:05:05 +00002049 // Variants on "max(x,y) >= min(x,z)".
2050 Value *C, *D;
2051 if (match(LHS, m_SMax(m_Value(A), m_Value(B))) &&
2052 match(RHS, m_SMin(m_Value(C), m_Value(D))) &&
2053 (A == C || A == D || B == C || B == D)) {
2054 // max(x, ?) pred min(x, ?).
2055 if (Pred == CmpInst::ICMP_SGE)
2056 // Always true.
Duncan Sandsf56138d2011-07-26 15:03:53 +00002057 return getTrue(ITy);
Duncan Sands8140ad32011-05-04 16:05:05 +00002058 if (Pred == CmpInst::ICMP_SLT)
2059 // Always false.
Duncan Sandsf56138d2011-07-26 15:03:53 +00002060 return getFalse(ITy);
Duncan Sands8140ad32011-05-04 16:05:05 +00002061 } else if (match(LHS, m_SMin(m_Value(A), m_Value(B))) &&
2062 match(RHS, m_SMax(m_Value(C), m_Value(D))) &&
2063 (A == C || A == D || B == C || B == D)) {
2064 // min(x, ?) pred max(x, ?).
2065 if (Pred == CmpInst::ICMP_SLE)
2066 // Always true.
Duncan Sandsf56138d2011-07-26 15:03:53 +00002067 return getTrue(ITy);
Duncan Sands8140ad32011-05-04 16:05:05 +00002068 if (Pred == CmpInst::ICMP_SGT)
2069 // Always false.
Duncan Sandsf56138d2011-07-26 15:03:53 +00002070 return getFalse(ITy);
Duncan Sands8140ad32011-05-04 16:05:05 +00002071 } else if (match(LHS, m_UMax(m_Value(A), m_Value(B))) &&
2072 match(RHS, m_UMin(m_Value(C), m_Value(D))) &&
2073 (A == C || A == D || B == C || B == D)) {
2074 // max(x, ?) pred min(x, ?).
2075 if (Pred == CmpInst::ICMP_UGE)
2076 // Always true.
Duncan Sandsf56138d2011-07-26 15:03:53 +00002077 return getTrue(ITy);
Duncan Sands8140ad32011-05-04 16:05:05 +00002078 if (Pred == CmpInst::ICMP_ULT)
2079 // Always false.
Duncan Sandsf56138d2011-07-26 15:03:53 +00002080 return getFalse(ITy);
Duncan Sands8140ad32011-05-04 16:05:05 +00002081 } else if (match(LHS, m_UMin(m_Value(A), m_Value(B))) &&
2082 match(RHS, m_UMax(m_Value(C), m_Value(D))) &&
2083 (A == C || A == D || B == C || B == D)) {
2084 // min(x, ?) pred max(x, ?).
2085 if (Pred == CmpInst::ICMP_ULE)
2086 // Always true.
Duncan Sandsf56138d2011-07-26 15:03:53 +00002087 return getTrue(ITy);
Duncan Sands8140ad32011-05-04 16:05:05 +00002088 if (Pred == CmpInst::ICMP_UGT)
2089 // Always false.
Duncan Sandsf56138d2011-07-26 15:03:53 +00002090 return getFalse(ITy);
Duncan Sands8140ad32011-05-04 16:05:05 +00002091 }
2092
Duncan Sands1ac7c992010-11-07 16:12:23 +00002093 // If the comparison is with the result of a select instruction, check whether
2094 // comparing with either branch of the select always yields the same value.
Duncan Sands0312a932010-12-21 09:09:15 +00002095 if (isa<SelectInst>(LHS) || isa<SelectInst>(RHS))
2096 if (Value *V = ThreadCmpOverSelect(Pred, LHS, RHS, TD, DT, MaxRecurse))
Duncan Sandsa74a58c2010-11-10 18:23:01 +00002097 return V;
2098
2099 // If the comparison is with the result of a phi instruction, check whether
2100 // doing the compare with each incoming phi value yields a common result.
Duncan Sands0312a932010-12-21 09:09:15 +00002101 if (isa<PHINode>(LHS) || isa<PHINode>(RHS))
2102 if (Value *V = ThreadCmpOverPHI(Pred, LHS, RHS, TD, DT, MaxRecurse))
Duncan Sands3bbb0cc2010-11-09 17:25:51 +00002103 return V;
Duncan Sands1ac7c992010-11-07 16:12:23 +00002104
Chris Lattner9f3c25a2009-11-09 22:57:59 +00002105 return 0;
2106}
2107
Duncan Sandsa74a58c2010-11-10 18:23:01 +00002108Value *llvm::SimplifyICmpInst(unsigned Predicate, Value *LHS, Value *RHS,
Duncan Sands18450092010-11-16 12:16:38 +00002109 const TargetData *TD, const DominatorTree *DT) {
2110 return ::SimplifyICmpInst(Predicate, LHS, RHS, TD, DT, RecursionLimit);
Duncan Sandsa74a58c2010-11-10 18:23:01 +00002111}
2112
Chris Lattner9dbb4292009-11-09 23:28:39 +00002113/// SimplifyFCmpInst - Given operands for an FCmpInst, see if we can
2114/// fold the result. If not, this returns null.
Duncan Sandsa74a58c2010-11-10 18:23:01 +00002115static Value *SimplifyFCmpInst(unsigned Predicate, Value *LHS, Value *RHS,
Duncan Sands18450092010-11-16 12:16:38 +00002116 const TargetData *TD, const DominatorTree *DT,
2117 unsigned MaxRecurse) {
Chris Lattner9dbb4292009-11-09 23:28:39 +00002118 CmpInst::Predicate Pred = (CmpInst::Predicate)Predicate;
2119 assert(CmpInst::isFPPredicate(Pred) && "Not an FP compare!");
2120
Chris Lattnerd06094f2009-11-10 00:55:12 +00002121 if (Constant *CLHS = dyn_cast<Constant>(LHS)) {
Chris Lattner9dbb4292009-11-09 23:28:39 +00002122 if (Constant *CRHS = dyn_cast<Constant>(RHS))
2123 return ConstantFoldCompareInstOperands(Pred, CLHS, CRHS, TD);
Duncan Sands12a86f52010-11-14 11:23:23 +00002124
Chris Lattnerd06094f2009-11-10 00:55:12 +00002125 // If we have a constant, make sure it is on the RHS.
2126 std::swap(LHS, RHS);
2127 Pred = CmpInst::getSwappedPredicate(Pred);
2128 }
Duncan Sands12a86f52010-11-14 11:23:23 +00002129
Chris Lattner210c5d42009-11-09 23:55:12 +00002130 // Fold trivial predicates.
2131 if (Pred == FCmpInst::FCMP_FALSE)
2132 return ConstantInt::get(GetCompareTy(LHS), 0);
2133 if (Pred == FCmpInst::FCMP_TRUE)
2134 return ConstantInt::get(GetCompareTy(LHS), 1);
2135
Chris Lattner210c5d42009-11-09 23:55:12 +00002136 if (isa<UndefValue>(RHS)) // fcmp pred X, undef -> undef
2137 return UndefValue::get(GetCompareTy(LHS));
2138
2139 // fcmp x,x -> true/false. Not all compares are foldable.
Duncan Sands124708d2011-01-01 20:08:02 +00002140 if (LHS == RHS) {
Chris Lattner210c5d42009-11-09 23:55:12 +00002141 if (CmpInst::isTrueWhenEqual(Pred))
2142 return ConstantInt::get(GetCompareTy(LHS), 1);
2143 if (CmpInst::isFalseWhenEqual(Pred))
2144 return ConstantInt::get(GetCompareTy(LHS), 0);
2145 }
Duncan Sands12a86f52010-11-14 11:23:23 +00002146
Chris Lattner210c5d42009-11-09 23:55:12 +00002147 // Handle fcmp with constant RHS
2148 if (Constant *RHSC = dyn_cast<Constant>(RHS)) {
2149 // If the constant is a nan, see if we can fold the comparison based on it.
2150 if (ConstantFP *CFP = dyn_cast<ConstantFP>(RHSC)) {
2151 if (CFP->getValueAPF().isNaN()) {
2152 if (FCmpInst::isOrdered(Pred)) // True "if ordered and foo"
2153 return ConstantInt::getFalse(CFP->getContext());
2154 assert(FCmpInst::isUnordered(Pred) &&
2155 "Comparison must be either ordered or unordered!");
2156 // True if unordered.
2157 return ConstantInt::getTrue(CFP->getContext());
2158 }
Dan Gohman6b617a72010-02-22 04:06:03 +00002159 // Check whether the constant is an infinity.
2160 if (CFP->getValueAPF().isInfinity()) {
2161 if (CFP->getValueAPF().isNegative()) {
2162 switch (Pred) {
2163 case FCmpInst::FCMP_OLT:
2164 // No value is ordered and less than negative infinity.
2165 return ConstantInt::getFalse(CFP->getContext());
2166 case FCmpInst::FCMP_UGE:
2167 // All values are unordered with or at least negative infinity.
2168 return ConstantInt::getTrue(CFP->getContext());
2169 default:
2170 break;
2171 }
2172 } else {
2173 switch (Pred) {
2174 case FCmpInst::FCMP_OGT:
2175 // No value is ordered and greater than infinity.
2176 return ConstantInt::getFalse(CFP->getContext());
2177 case FCmpInst::FCMP_ULE:
2178 // All values are unordered with and at most infinity.
2179 return ConstantInt::getTrue(CFP->getContext());
2180 default:
2181 break;
2182 }
2183 }
2184 }
Chris Lattner210c5d42009-11-09 23:55:12 +00002185 }
2186 }
Duncan Sands12a86f52010-11-14 11:23:23 +00002187
Duncan Sands92826de2010-11-07 16:46:25 +00002188 // If the comparison is with the result of a select instruction, check whether
2189 // comparing with either branch of the select always yields the same value.
Duncan Sands0312a932010-12-21 09:09:15 +00002190 if (isa<SelectInst>(LHS) || isa<SelectInst>(RHS))
2191 if (Value *V = ThreadCmpOverSelect(Pred, LHS, RHS, TD, DT, MaxRecurse))
Duncan Sandsa74a58c2010-11-10 18:23:01 +00002192 return V;
2193
2194 // If the comparison is with the result of a phi instruction, check whether
2195 // doing the compare with each incoming phi value yields a common result.
Duncan Sands0312a932010-12-21 09:09:15 +00002196 if (isa<PHINode>(LHS) || isa<PHINode>(RHS))
2197 if (Value *V = ThreadCmpOverPHI(Pred, LHS, RHS, TD, DT, MaxRecurse))
Duncan Sands3bbb0cc2010-11-09 17:25:51 +00002198 return V;
Duncan Sands92826de2010-11-07 16:46:25 +00002199
Chris Lattner9dbb4292009-11-09 23:28:39 +00002200 return 0;
2201}
2202
Duncan Sandsa74a58c2010-11-10 18:23:01 +00002203Value *llvm::SimplifyFCmpInst(unsigned Predicate, Value *LHS, Value *RHS,
Duncan Sands18450092010-11-16 12:16:38 +00002204 const TargetData *TD, const DominatorTree *DT) {
2205 return ::SimplifyFCmpInst(Predicate, LHS, RHS, TD, DT, RecursionLimit);
Duncan Sandsa74a58c2010-11-10 18:23:01 +00002206}
2207
Chris Lattner04754262010-04-20 05:32:14 +00002208/// SimplifySelectInst - Given operands for a SelectInst, see if we can fold
2209/// the result. If not, this returns null.
Duncan Sands124708d2011-01-01 20:08:02 +00002210Value *llvm::SimplifySelectInst(Value *CondVal, Value *TrueVal, Value *FalseVal,
2211 const TargetData *TD, const DominatorTree *) {
Chris Lattner04754262010-04-20 05:32:14 +00002212 // select true, X, Y -> X
2213 // select false, X, Y -> Y
2214 if (ConstantInt *CB = dyn_cast<ConstantInt>(CondVal))
2215 return CB->getZExtValue() ? TrueVal : FalseVal;
Duncan Sands12a86f52010-11-14 11:23:23 +00002216
Chris Lattner04754262010-04-20 05:32:14 +00002217 // select C, X, X -> X
Duncan Sands124708d2011-01-01 20:08:02 +00002218 if (TrueVal == FalseVal)
Chris Lattner04754262010-04-20 05:32:14 +00002219 return TrueVal;
Duncan Sands12a86f52010-11-14 11:23:23 +00002220
Chris Lattner04754262010-04-20 05:32:14 +00002221 if (isa<UndefValue>(CondVal)) { // select undef, X, Y -> X or Y
2222 if (isa<Constant>(TrueVal))
2223 return TrueVal;
2224 return FalseVal;
2225 }
Dan Gohman68c0dbc2011-07-01 01:03:43 +00002226 if (isa<UndefValue>(TrueVal)) // select C, undef, X -> X
2227 return FalseVal;
2228 if (isa<UndefValue>(FalseVal)) // select C, X, undef -> X
2229 return TrueVal;
Duncan Sands12a86f52010-11-14 11:23:23 +00002230
Chris Lattner04754262010-04-20 05:32:14 +00002231 return 0;
2232}
2233
Chris Lattnerc514c1f2009-11-27 00:29:05 +00002234/// SimplifyGEPInst - Given operands for an GetElementPtrInst, see if we can
2235/// fold the result. If not, this returns null.
Jay Foadb9b54eb2011-07-19 15:07:52 +00002236Value *llvm::SimplifyGEPInst(ArrayRef<Value *> Ops,
Duncan Sands18450092010-11-16 12:16:38 +00002237 const TargetData *TD, const DominatorTree *) {
Duncan Sands85bbff62010-11-22 13:42:49 +00002238 // The type of the GEP pointer operand.
Chris Lattnerdb125cf2011-07-18 04:54:35 +00002239 PointerType *PtrTy = cast<PointerType>(Ops[0]->getType());
Duncan Sands85bbff62010-11-22 13:42:49 +00002240
Chris Lattnerc514c1f2009-11-27 00:29:05 +00002241 // getelementptr P -> P.
Jay Foadb9b54eb2011-07-19 15:07:52 +00002242 if (Ops.size() == 1)
Chris Lattnerc514c1f2009-11-27 00:29:05 +00002243 return Ops[0];
2244
Duncan Sands85bbff62010-11-22 13:42:49 +00002245 if (isa<UndefValue>(Ops[0])) {
2246 // Compute the (pointer) type returned by the GEP instruction.
Jay Foada9203102011-07-25 09:48:08 +00002247 Type *LastType = GetElementPtrInst::getIndexedType(PtrTy, Ops.slice(1));
Chris Lattnerdb125cf2011-07-18 04:54:35 +00002248 Type *GEPTy = PointerType::get(LastType, PtrTy->getAddressSpace());
Duncan Sands85bbff62010-11-22 13:42:49 +00002249 return UndefValue::get(GEPTy);
2250 }
Chris Lattnerc514c1f2009-11-27 00:29:05 +00002251
Jay Foadb9b54eb2011-07-19 15:07:52 +00002252 if (Ops.size() == 2) {
Duncan Sandse60d79f2010-11-21 13:53:09 +00002253 // getelementptr P, 0 -> P.
Chris Lattnerc514c1f2009-11-27 00:29:05 +00002254 if (ConstantInt *C = dyn_cast<ConstantInt>(Ops[1]))
2255 if (C->isZero())
2256 return Ops[0];
Duncan Sandse60d79f2010-11-21 13:53:09 +00002257 // getelementptr P, N -> P if P points to a type of zero size.
2258 if (TD) {
Chris Lattnerdb125cf2011-07-18 04:54:35 +00002259 Type *Ty = PtrTy->getElementType();
Duncan Sandsa63395a2010-11-22 16:32:50 +00002260 if (Ty->isSized() && TD->getTypeAllocSize(Ty) == 0)
Duncan Sandse60d79f2010-11-21 13:53:09 +00002261 return Ops[0];
2262 }
2263 }
Duncan Sands12a86f52010-11-14 11:23:23 +00002264
Chris Lattnerc514c1f2009-11-27 00:29:05 +00002265 // Check to see if this is constant foldable.
Jay Foadb9b54eb2011-07-19 15:07:52 +00002266 for (unsigned i = 0, e = Ops.size(); i != e; ++i)
Chris Lattnerc514c1f2009-11-27 00:29:05 +00002267 if (!isa<Constant>(Ops[i]))
2268 return 0;
Duncan Sands12a86f52010-11-14 11:23:23 +00002269
Jay Foaddab3d292011-07-21 14:31:17 +00002270 return ConstantExpr::getGetElementPtr(cast<Constant>(Ops[0]), Ops.slice(1));
Chris Lattnerc514c1f2009-11-27 00:29:05 +00002271}
2272
Duncan Sandsff103412010-11-17 04:30:22 +00002273/// SimplifyPHINode - See if we can fold the given phi. If not, returns null.
2274static Value *SimplifyPHINode(PHINode *PN, const DominatorTree *DT) {
2275 // If all of the PHI's incoming values are the same then replace the PHI node
2276 // with the common value.
2277 Value *CommonValue = 0;
2278 bool HasUndefInput = false;
2279 for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i) {
2280 Value *Incoming = PN->getIncomingValue(i);
2281 // If the incoming value is the phi node itself, it can safely be skipped.
2282 if (Incoming == PN) continue;
2283 if (isa<UndefValue>(Incoming)) {
2284 // Remember that we saw an undef value, but otherwise ignore them.
2285 HasUndefInput = true;
2286 continue;
2287 }
2288 if (CommonValue && Incoming != CommonValue)
2289 return 0; // Not the same, bail out.
2290 CommonValue = Incoming;
2291 }
2292
2293 // If CommonValue is null then all of the incoming values were either undef or
2294 // equal to the phi node itself.
2295 if (!CommonValue)
2296 return UndefValue::get(PN->getType());
2297
2298 // If we have a PHI node like phi(X, undef, X), where X is defined by some
2299 // instruction, we cannot return X as the result of the PHI node unless it
2300 // dominates the PHI block.
2301 if (HasUndefInput)
2302 return ValueDominatesPHI(CommonValue, PN, DT) ? CommonValue : 0;
2303
2304 return CommonValue;
2305}
2306
Chris Lattnerc514c1f2009-11-27 00:29:05 +00002307
Chris Lattnerd06094f2009-11-10 00:55:12 +00002308//=== Helper functions for higher up the class hierarchy.
Chris Lattner9dbb4292009-11-09 23:28:39 +00002309
Chris Lattnerd06094f2009-11-10 00:55:12 +00002310/// SimplifyBinOp - Given operands for a BinaryOperator, see if we can
2311/// fold the result. If not, this returns null.
Duncan Sandsa74a58c2010-11-10 18:23:01 +00002312static Value *SimplifyBinOp(unsigned Opcode, Value *LHS, Value *RHS,
Duncan Sands18450092010-11-16 12:16:38 +00002313 const TargetData *TD, const DominatorTree *DT,
2314 unsigned MaxRecurse) {
Chris Lattnerd06094f2009-11-10 00:55:12 +00002315 switch (Opcode) {
Chris Lattner81a0dc92011-02-09 17:15:04 +00002316 case Instruction::Add:
Duncan Sandsffeb98a2011-02-09 17:45:03 +00002317 return SimplifyAddInst(LHS, RHS, /*isNSW*/false, /*isNUW*/false,
Chris Lattner81a0dc92011-02-09 17:15:04 +00002318 TD, DT, MaxRecurse);
2319 case Instruction::Sub:
Duncan Sandsffeb98a2011-02-09 17:45:03 +00002320 return SimplifySubInst(LHS, RHS, /*isNSW*/false, /*isNUW*/false,
Chris Lattner81a0dc92011-02-09 17:15:04 +00002321 TD, DT, MaxRecurse);
2322 case Instruction::Mul: return SimplifyMulInst (LHS, RHS, TD, DT, MaxRecurse);
Duncan Sands593faa52011-01-28 16:51:11 +00002323 case Instruction::SDiv: return SimplifySDivInst(LHS, RHS, TD, DT, MaxRecurse);
2324 case Instruction::UDiv: return SimplifyUDivInst(LHS, RHS, TD, DT, MaxRecurse);
Frits van Bommel1fca2c32011-01-29 15:26:31 +00002325 case Instruction::FDiv: return SimplifyFDivInst(LHS, RHS, TD, DT, MaxRecurse);
Duncan Sandsf24ed772011-05-02 16:27:02 +00002326 case Instruction::SRem: return SimplifySRemInst(LHS, RHS, TD, DT, MaxRecurse);
2327 case Instruction::URem: return SimplifyURemInst(LHS, RHS, TD, DT, MaxRecurse);
2328 case Instruction::FRem: return SimplifyFRemInst(LHS, RHS, TD, DT, MaxRecurse);
Chris Lattner81a0dc92011-02-09 17:15:04 +00002329 case Instruction::Shl:
Duncan Sandsffeb98a2011-02-09 17:45:03 +00002330 return SimplifyShlInst(LHS, RHS, /*isNSW*/false, /*isNUW*/false,
Chris Lattner81a0dc92011-02-09 17:15:04 +00002331 TD, DT, MaxRecurse);
2332 case Instruction::LShr:
Duncan Sandsffeb98a2011-02-09 17:45:03 +00002333 return SimplifyLShrInst(LHS, RHS, /*isExact*/false, TD, DT, MaxRecurse);
Chris Lattner81a0dc92011-02-09 17:15:04 +00002334 case Instruction::AShr:
Duncan Sandsffeb98a2011-02-09 17:45:03 +00002335 return SimplifyAShrInst(LHS, RHS, /*isExact*/false, TD, DT, MaxRecurse);
Duncan Sands82fdab32010-12-21 14:00:22 +00002336 case Instruction::And: return SimplifyAndInst(LHS, RHS, TD, DT, MaxRecurse);
Chris Lattner81a0dc92011-02-09 17:15:04 +00002337 case Instruction::Or: return SimplifyOrInst (LHS, RHS, TD, DT, MaxRecurse);
Duncan Sands82fdab32010-12-21 14:00:22 +00002338 case Instruction::Xor: return SimplifyXorInst(LHS, RHS, TD, DT, MaxRecurse);
Chris Lattnerd06094f2009-11-10 00:55:12 +00002339 default:
2340 if (Constant *CLHS = dyn_cast<Constant>(LHS))
2341 if (Constant *CRHS = dyn_cast<Constant>(RHS)) {
2342 Constant *COps[] = {CLHS, CRHS};
Jay Foad1d2f5692011-07-19 13:32:40 +00002343 return ConstantFoldInstOperands(Opcode, LHS->getType(), COps, TD);
Chris Lattnerd06094f2009-11-10 00:55:12 +00002344 }
Duncan Sandsb2cbdc32010-11-10 13:00:08 +00002345
Duncan Sands566edb02010-12-21 08:49:00 +00002346 // If the operation is associative, try some generic simplifications.
2347 if (Instruction::isAssociative(Opcode))
2348 if (Value *V = SimplifyAssociativeBinOp(Opcode, LHS, RHS, TD, DT,
2349 MaxRecurse))
2350 return V;
2351
Duncan Sandsb2cbdc32010-11-10 13:00:08 +00002352 // If the operation is with the result of a select instruction, check whether
2353 // operating on either branch of the select always yields the same value.
Duncan Sands0312a932010-12-21 09:09:15 +00002354 if (isa<SelectInst>(LHS) || isa<SelectInst>(RHS))
Duncan Sands18450092010-11-16 12:16:38 +00002355 if (Value *V = ThreadBinOpOverSelect(Opcode, LHS, RHS, TD, DT,
Duncan Sands0312a932010-12-21 09:09:15 +00002356 MaxRecurse))
Duncan Sandsa74a58c2010-11-10 18:23:01 +00002357 return V;
2358
2359 // If the operation is with the result of a phi instruction, check whether
2360 // operating on all incoming values of the phi always yields the same value.
Duncan Sands0312a932010-12-21 09:09:15 +00002361 if (isa<PHINode>(LHS) || isa<PHINode>(RHS))
2362 if (Value *V = ThreadBinOpOverPHI(Opcode, LHS, RHS, TD, DT, MaxRecurse))
Duncan Sandsb2cbdc32010-11-10 13:00:08 +00002363 return V;
2364
Chris Lattnerd06094f2009-11-10 00:55:12 +00002365 return 0;
2366 }
2367}
Chris Lattner9dbb4292009-11-09 23:28:39 +00002368
Duncan Sands12a86f52010-11-14 11:23:23 +00002369Value *llvm::SimplifyBinOp(unsigned Opcode, Value *LHS, Value *RHS,
Duncan Sands18450092010-11-16 12:16:38 +00002370 const TargetData *TD, const DominatorTree *DT) {
2371 return ::SimplifyBinOp(Opcode, LHS, RHS, TD, DT, RecursionLimit);
Chris Lattner9dbb4292009-11-09 23:28:39 +00002372}
2373
Duncan Sandsa74a58c2010-11-10 18:23:01 +00002374/// SimplifyCmpInst - Given operands for a CmpInst, see if we can
2375/// fold the result.
2376static Value *SimplifyCmpInst(unsigned Predicate, Value *LHS, Value *RHS,
Duncan Sands18450092010-11-16 12:16:38 +00002377 const TargetData *TD, const DominatorTree *DT,
2378 unsigned MaxRecurse) {
Duncan Sandsa74a58c2010-11-10 18:23:01 +00002379 if (CmpInst::isIntPredicate((CmpInst::Predicate)Predicate))
Duncan Sands18450092010-11-16 12:16:38 +00002380 return SimplifyICmpInst(Predicate, LHS, RHS, TD, DT, MaxRecurse);
2381 return SimplifyFCmpInst(Predicate, LHS, RHS, TD, DT, MaxRecurse);
Duncan Sandsa74a58c2010-11-10 18:23:01 +00002382}
2383
2384Value *llvm::SimplifyCmpInst(unsigned Predicate, Value *LHS, Value *RHS,
Duncan Sands18450092010-11-16 12:16:38 +00002385 const TargetData *TD, const DominatorTree *DT) {
2386 return ::SimplifyCmpInst(Predicate, LHS, RHS, TD, DT, RecursionLimit);
Duncan Sandsa74a58c2010-11-10 18:23:01 +00002387}
Chris Lattnere3453782009-11-10 01:08:51 +00002388
2389/// SimplifyInstruction - See if we can compute a simplified version of this
2390/// instruction. If not, this returns null.
Duncan Sandseff05812010-11-14 18:36:10 +00002391Value *llvm::SimplifyInstruction(Instruction *I, const TargetData *TD,
2392 const DominatorTree *DT) {
Duncan Sandsd261dc62010-11-17 08:35:29 +00002393 Value *Result;
2394
Chris Lattnere3453782009-11-10 01:08:51 +00002395 switch (I->getOpcode()) {
2396 default:
Duncan Sandsd261dc62010-11-17 08:35:29 +00002397 Result = ConstantFoldInstruction(I, TD);
2398 break;
Chris Lattner8aee8ef2009-11-27 17:42:22 +00002399 case Instruction::Add:
Duncan Sandsd261dc62010-11-17 08:35:29 +00002400 Result = SimplifyAddInst(I->getOperand(0), I->getOperand(1),
2401 cast<BinaryOperator>(I)->hasNoSignedWrap(),
2402 cast<BinaryOperator>(I)->hasNoUnsignedWrap(),
2403 TD, DT);
2404 break;
Duncan Sandsfea3b212010-12-15 14:07:39 +00002405 case Instruction::Sub:
2406 Result = SimplifySubInst(I->getOperand(0), I->getOperand(1),
2407 cast<BinaryOperator>(I)->hasNoSignedWrap(),
2408 cast<BinaryOperator>(I)->hasNoUnsignedWrap(),
2409 TD, DT);
2410 break;
Duncan Sands82fdab32010-12-21 14:00:22 +00002411 case Instruction::Mul:
2412 Result = SimplifyMulInst(I->getOperand(0), I->getOperand(1), TD, DT);
2413 break;
Duncan Sands593faa52011-01-28 16:51:11 +00002414 case Instruction::SDiv:
2415 Result = SimplifySDivInst(I->getOperand(0), I->getOperand(1), TD, DT);
2416 break;
2417 case Instruction::UDiv:
2418 Result = SimplifyUDivInst(I->getOperand(0), I->getOperand(1), TD, DT);
2419 break;
Frits van Bommel1fca2c32011-01-29 15:26:31 +00002420 case Instruction::FDiv:
2421 Result = SimplifyFDivInst(I->getOperand(0), I->getOperand(1), TD, DT);
2422 break;
Duncan Sandsf24ed772011-05-02 16:27:02 +00002423 case Instruction::SRem:
2424 Result = SimplifySRemInst(I->getOperand(0), I->getOperand(1), TD, DT);
2425 break;
2426 case Instruction::URem:
2427 Result = SimplifyURemInst(I->getOperand(0), I->getOperand(1), TD, DT);
2428 break;
2429 case Instruction::FRem:
2430 Result = SimplifyFRemInst(I->getOperand(0), I->getOperand(1), TD, DT);
2431 break;
Duncan Sandsc43cee32011-01-14 00:37:45 +00002432 case Instruction::Shl:
Chris Lattner81a0dc92011-02-09 17:15:04 +00002433 Result = SimplifyShlInst(I->getOperand(0), I->getOperand(1),
2434 cast<BinaryOperator>(I)->hasNoSignedWrap(),
2435 cast<BinaryOperator>(I)->hasNoUnsignedWrap(),
2436 TD, DT);
Duncan Sandsc43cee32011-01-14 00:37:45 +00002437 break;
2438 case Instruction::LShr:
Chris Lattner81a0dc92011-02-09 17:15:04 +00002439 Result = SimplifyLShrInst(I->getOperand(0), I->getOperand(1),
2440 cast<BinaryOperator>(I)->isExact(),
2441 TD, DT);
Duncan Sandsc43cee32011-01-14 00:37:45 +00002442 break;
2443 case Instruction::AShr:
Chris Lattner81a0dc92011-02-09 17:15:04 +00002444 Result = SimplifyAShrInst(I->getOperand(0), I->getOperand(1),
2445 cast<BinaryOperator>(I)->isExact(),
2446 TD, DT);
Duncan Sandsc43cee32011-01-14 00:37:45 +00002447 break;
Chris Lattnere3453782009-11-10 01:08:51 +00002448 case Instruction::And:
Duncan Sandsd261dc62010-11-17 08:35:29 +00002449 Result = SimplifyAndInst(I->getOperand(0), I->getOperand(1), TD, DT);
2450 break;
Chris Lattnere3453782009-11-10 01:08:51 +00002451 case Instruction::Or:
Duncan Sandsd261dc62010-11-17 08:35:29 +00002452 Result = SimplifyOrInst(I->getOperand(0), I->getOperand(1), TD, DT);
2453 break;
Duncan Sands2b749872010-11-17 18:52:15 +00002454 case Instruction::Xor:
2455 Result = SimplifyXorInst(I->getOperand(0), I->getOperand(1), TD, DT);
2456 break;
Chris Lattnere3453782009-11-10 01:08:51 +00002457 case Instruction::ICmp:
Duncan Sandsd261dc62010-11-17 08:35:29 +00002458 Result = SimplifyICmpInst(cast<ICmpInst>(I)->getPredicate(),
2459 I->getOperand(0), I->getOperand(1), TD, DT);
2460 break;
Chris Lattnere3453782009-11-10 01:08:51 +00002461 case Instruction::FCmp:
Duncan Sandsd261dc62010-11-17 08:35:29 +00002462 Result = SimplifyFCmpInst(cast<FCmpInst>(I)->getPredicate(),
2463 I->getOperand(0), I->getOperand(1), TD, DT);
2464 break;
Chris Lattner04754262010-04-20 05:32:14 +00002465 case Instruction::Select:
Duncan Sandsd261dc62010-11-17 08:35:29 +00002466 Result = SimplifySelectInst(I->getOperand(0), I->getOperand(1),
2467 I->getOperand(2), TD, DT);
2468 break;
Chris Lattnerc514c1f2009-11-27 00:29:05 +00002469 case Instruction::GetElementPtr: {
2470 SmallVector<Value*, 8> Ops(I->op_begin(), I->op_end());
Jay Foadb9b54eb2011-07-19 15:07:52 +00002471 Result = SimplifyGEPInst(Ops, TD, DT);
Duncan Sandsd261dc62010-11-17 08:35:29 +00002472 break;
Chris Lattnerc514c1f2009-11-27 00:29:05 +00002473 }
Duncan Sandscd6636c2010-11-14 13:30:18 +00002474 case Instruction::PHI:
Duncan Sandsd261dc62010-11-17 08:35:29 +00002475 Result = SimplifyPHINode(cast<PHINode>(I), DT);
2476 break;
Chris Lattnere3453782009-11-10 01:08:51 +00002477 }
Duncan Sandsd261dc62010-11-17 08:35:29 +00002478
2479 /// If called on unreachable code, the above logic may report that the
2480 /// instruction simplified to itself. Make life easier for users by
Duncan Sandsf8b1a5e2010-12-15 11:02:22 +00002481 /// detecting that case here, returning a safe value instead.
2482 return Result == I ? UndefValue::get(I->getType()) : Result;
Chris Lattnere3453782009-11-10 01:08:51 +00002483}
2484
Chris Lattner40d8c282009-11-10 22:26:15 +00002485/// ReplaceAndSimplifyAllUses - Perform From->replaceAllUsesWith(To) and then
2486/// delete the From instruction. In addition to a basic RAUW, this does a
2487/// recursive simplification of the newly formed instructions. This catches
2488/// things where one simplification exposes other opportunities. This only
2489/// simplifies and deletes scalar operations, it does not change the CFG.
2490///
2491void llvm::ReplaceAndSimplifyAllUses(Instruction *From, Value *To,
Duncan Sandseff05812010-11-14 18:36:10 +00002492 const TargetData *TD,
2493 const DominatorTree *DT) {
Chris Lattner40d8c282009-11-10 22:26:15 +00002494 assert(From != To && "ReplaceAndSimplifyAllUses(X,X) is not valid!");
Duncan Sands12a86f52010-11-14 11:23:23 +00002495
Chris Lattnerd2bfe542010-07-15 06:36:08 +00002496 // FromHandle/ToHandle - This keeps a WeakVH on the from/to values so that
2497 // we can know if it gets deleted out from under us or replaced in a
2498 // recursive simplification.
Chris Lattner40d8c282009-11-10 22:26:15 +00002499 WeakVH FromHandle(From);
Chris Lattnerd2bfe542010-07-15 06:36:08 +00002500 WeakVH ToHandle(To);
Duncan Sands12a86f52010-11-14 11:23:23 +00002501
Chris Lattner40d8c282009-11-10 22:26:15 +00002502 while (!From->use_empty()) {
2503 // Update the instruction to use the new value.
Chris Lattnerd2bfe542010-07-15 06:36:08 +00002504 Use &TheUse = From->use_begin().getUse();
2505 Instruction *User = cast<Instruction>(TheUse.getUser());
2506 TheUse = To;
2507
2508 // Check to see if the instruction can be folded due to the operand
2509 // replacement. For example changing (or X, Y) into (or X, -1) can replace
2510 // the 'or' with -1.
2511 Value *SimplifiedVal;
2512 {
2513 // Sanity check to make sure 'User' doesn't dangle across
2514 // SimplifyInstruction.
2515 AssertingVH<> UserHandle(User);
Duncan Sands12a86f52010-11-14 11:23:23 +00002516
Duncan Sandseff05812010-11-14 18:36:10 +00002517 SimplifiedVal = SimplifyInstruction(User, TD, DT);
Chris Lattnerd2bfe542010-07-15 06:36:08 +00002518 if (SimplifiedVal == 0) continue;
Chris Lattner40d8c282009-11-10 22:26:15 +00002519 }
Duncan Sands12a86f52010-11-14 11:23:23 +00002520
Chris Lattnerd2bfe542010-07-15 06:36:08 +00002521 // Recursively simplify this user to the new value.
Duncan Sandseff05812010-11-14 18:36:10 +00002522 ReplaceAndSimplifyAllUses(User, SimplifiedVal, TD, DT);
Chris Lattnerd2bfe542010-07-15 06:36:08 +00002523 From = dyn_cast_or_null<Instruction>((Value*)FromHandle);
2524 To = ToHandle;
Duncan Sands12a86f52010-11-14 11:23:23 +00002525
Chris Lattnerd2bfe542010-07-15 06:36:08 +00002526 assert(ToHandle && "To value deleted by recursive simplification?");
Duncan Sands12a86f52010-11-14 11:23:23 +00002527
Chris Lattnerd2bfe542010-07-15 06:36:08 +00002528 // If the recursive simplification ended up revisiting and deleting
2529 // 'From' then we're done.
2530 if (From == 0)
2531 return;
Chris Lattner40d8c282009-11-10 22:26:15 +00002532 }
Duncan Sands12a86f52010-11-14 11:23:23 +00002533
Chris Lattnerd2bfe542010-07-15 06:36:08 +00002534 // If 'From' has value handles referring to it, do a real RAUW to update them.
2535 From->replaceAllUsesWith(To);
Duncan Sands12a86f52010-11-14 11:23:23 +00002536
Chris Lattner40d8c282009-11-10 22:26:15 +00002537 From->eraseFromParent();
2538}