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Chris Lattnerd934c702004-04-02 20:23:17 +00001//===- ScalarEvolution.cpp - Scalar Evolution Analysis ----------*- C++ -*-===//
Misha Brukman01808ca2005-04-21 21:13:18 +00002//
Chris Lattnerd934c702004-04-02 20:23:17 +00003// The LLVM Compiler Infrastructure
4//
Chris Lattnerf3ebc3f2007-12-29 20:36:04 +00005// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
Misha Brukman01808ca2005-04-21 21:13:18 +00007//
Chris Lattnerd934c702004-04-02 20:23:17 +00008//===----------------------------------------------------------------------===//
9//
10// This file contains the implementation of the scalar evolution analysis
11// engine, which is used primarily to analyze expressions involving induction
12// variables in loops.
13//
14// There are several aspects to this library. First is the representation of
15// scalar expressions, which are represented as subclasses of the SCEV class.
16// These classes are used to represent certain types of subexpressions that we
Dan Gohmanef2ae2c2009-07-25 16:18:07 +000017// can handle. We only create one SCEV of a particular shape, so
18// pointer-comparisons for equality are legal.
Chris Lattnerd934c702004-04-02 20:23:17 +000019//
20// One important aspect of the SCEV objects is that they are never cyclic, even
21// if there is a cycle in the dataflow for an expression (ie, a PHI node). If
22// the PHI node is one of the idioms that we can represent (e.g., a polynomial
23// recurrence) then we represent it directly as a recurrence node, otherwise we
24// represent it as a SCEVUnknown node.
25//
26// In addition to being able to represent expressions of various types, we also
27// have folders that are used to build the *canonical* representation for a
28// particular expression. These folders are capable of using a variety of
29// rewrite rules to simplify the expressions.
Misha Brukman01808ca2005-04-21 21:13:18 +000030//
Chris Lattnerd934c702004-04-02 20:23:17 +000031// Once the folders are defined, we can implement the more interesting
32// higher-level code, such as the code that recognizes PHI nodes of various
33// types, computes the execution count of a loop, etc.
34//
Chris Lattnerd934c702004-04-02 20:23:17 +000035// TODO: We should use these routines and value representations to implement
36// dependence analysis!
37//
38//===----------------------------------------------------------------------===//
39//
40// There are several good references for the techniques used in this analysis.
41//
42// Chains of recurrences -- a method to expedite the evaluation
43// of closed-form functions
44// Olaf Bachmann, Paul S. Wang, Eugene V. Zima
45//
46// On computational properties of chains of recurrences
47// Eugene V. Zima
48//
49// Symbolic Evaluation of Chains of Recurrences for Loop Optimization
50// Robert A. van Engelen
51//
52// Efficient Symbolic Analysis for Optimizing Compilers
53// Robert A. van Engelen
54//
55// Using the chains of recurrences algebra for data dependence testing and
56// induction variable substitution
57// MS Thesis, Johnie Birch
58//
59//===----------------------------------------------------------------------===//
60
Chris Lattner57ef9422006-12-19 22:30:33 +000061#define DEBUG_TYPE "scalar-evolution"
Chandler Carruthed0881b2012-12-03 16:50:05 +000062#include "llvm/Analysis/ScalarEvolution.h"
63#include "llvm/ADT/STLExtras.h"
64#include "llvm/ADT/SmallPtrSet.h"
65#include "llvm/ADT/Statistic.h"
John Criswellfe5f33b2005-10-27 15:54:34 +000066#include "llvm/Analysis/ConstantFolding.h"
Duncan Sandsd06f50e2010-11-17 04:18:45 +000067#include "llvm/Analysis/InstructionSimplify.h"
Chris Lattnerd934c702004-04-02 20:23:17 +000068#include "llvm/Analysis/LoopInfo.h"
Chandler Carruthed0881b2012-12-03 16:50:05 +000069#include "llvm/Analysis/ScalarEvolutionExpressions.h"
Dan Gohman1ee696d2009-06-16 19:52:01 +000070#include "llvm/Analysis/ValueTracking.h"
Chandler Carruth9fb823b2013-01-02 11:36:10 +000071#include "llvm/IR/Constants.h"
72#include "llvm/IR/DataLayout.h"
73#include "llvm/IR/DerivedTypes.h"
Chandler Carruth5ad5f152014-01-13 09:26:24 +000074#include "llvm/IR/Dominators.h"
Chandler Carruth9fb823b2013-01-02 11:36:10 +000075#include "llvm/IR/GlobalAlias.h"
76#include "llvm/IR/GlobalVariable.h"
77#include "llvm/IR/Instructions.h"
78#include "llvm/IR/LLVMContext.h"
79#include "llvm/IR/Operator.h"
Chris Lattner996795b2006-06-28 23:17:24 +000080#include "llvm/Support/CommandLine.h"
Chris Lattnerd934c702004-04-02 20:23:17 +000081#include "llvm/Support/ConstantRange.h"
David Greene2330f782009-12-23 22:58:38 +000082#include "llvm/Support/Debug.h"
Torok Edwin56d06592009-07-11 20:10:48 +000083#include "llvm/Support/ErrorHandling.h"
Dan Gohman0a40ad92009-04-16 03:18:22 +000084#include "llvm/Support/GetElementPtrTypeIterator.h"
Chris Lattnerd934c702004-04-02 20:23:17 +000085#include "llvm/Support/InstIterator.h"
Chris Lattner0a1e9932006-12-19 01:16:02 +000086#include "llvm/Support/MathExtras.h"
Dan Gohmane20f8242009-04-21 00:47:46 +000087#include "llvm/Support/raw_ostream.h"
Chandler Carruthed0881b2012-12-03 16:50:05 +000088#include "llvm/Target/TargetLibraryInfo.h"
Alkis Evlogimenosa5c04ee2004-09-03 18:19:51 +000089#include <algorithm>
Chris Lattnerd934c702004-04-02 20:23:17 +000090using namespace llvm;
91
Chris Lattner57ef9422006-12-19 22:30:33 +000092STATISTIC(NumArrayLenItCounts,
93 "Number of trip counts computed with array length");
94STATISTIC(NumTripCountsComputed,
95 "Number of loops with predictable loop counts");
96STATISTIC(NumTripCountsNotComputed,
97 "Number of loops without predictable loop counts");
98STATISTIC(NumBruteForceTripCountsComputed,
99 "Number of loops with trip counts computed by force");
100
Dan Gohmand78c4002008-05-13 00:00:25 +0000101static cl::opt<unsigned>
Chris Lattner57ef9422006-12-19 22:30:33 +0000102MaxBruteForceIterations("scalar-evolution-max-iterations", cl::ReallyHidden,
103 cl::desc("Maximum number of iterations SCEV will "
Dan Gohmance973df2009-06-24 04:48:43 +0000104 "symbolically execute a constant "
105 "derived loop"),
Chris Lattner57ef9422006-12-19 22:30:33 +0000106 cl::init(100));
107
Benjamin Kramer214935e2012-10-26 17:31:32 +0000108// FIXME: Enable this with XDEBUG when the test suite is clean.
109static cl::opt<bool>
110VerifySCEV("verify-scev",
111 cl::desc("Verify ScalarEvolution's backedge taken counts (slow)"));
112
Owen Anderson8ac477f2010-10-12 19:48:12 +0000113INITIALIZE_PASS_BEGIN(ScalarEvolution, "scalar-evolution",
114 "Scalar Evolution Analysis", false, true)
115INITIALIZE_PASS_DEPENDENCY(LoopInfo)
Chandler Carruth73523022014-01-13 13:07:17 +0000116INITIALIZE_PASS_DEPENDENCY(DominatorTreeWrapperPass)
Chad Rosierc24b86f2011-12-01 03:08:23 +0000117INITIALIZE_PASS_DEPENDENCY(TargetLibraryInfo)
Owen Anderson8ac477f2010-10-12 19:48:12 +0000118INITIALIZE_PASS_END(ScalarEvolution, "scalar-evolution",
Owen Andersondf7a4f22010-10-07 22:25:06 +0000119 "Scalar Evolution Analysis", false, true)
Devang Patel8c78a0b2007-05-03 01:11:54 +0000120char ScalarEvolution::ID = 0;
Chris Lattnerd934c702004-04-02 20:23:17 +0000121
122//===----------------------------------------------------------------------===//
123// SCEV class definitions
124//===----------------------------------------------------------------------===//
125
126//===----------------------------------------------------------------------===//
127// Implementation of the SCEV class.
128//
Dan Gohman3423e722009-06-30 20:13:32 +0000129
Manman Ren49d684e2012-09-12 05:06:18 +0000130#if !defined(NDEBUG) || defined(LLVM_ENABLE_DUMP)
Chris Lattnerd934c702004-04-02 20:23:17 +0000131void SCEV::dump() const {
David Greenedf1c4972009-12-23 22:18:14 +0000132 print(dbgs());
133 dbgs() << '\n';
Dan Gohmane20f8242009-04-21 00:47:46 +0000134}
Manman Renc3366cc2012-09-06 19:55:56 +0000135#endif
Dan Gohmane20f8242009-04-21 00:47:46 +0000136
Dan Gohman534749b2010-11-17 22:27:42 +0000137void SCEV::print(raw_ostream &OS) const {
138 switch (getSCEVType()) {
139 case scConstant:
Chandler Carruthd48cdbf2014-01-09 02:29:41 +0000140 cast<SCEVConstant>(this)->getValue()->printAsOperand(OS, false);
Dan Gohman534749b2010-11-17 22:27:42 +0000141 return;
142 case scTruncate: {
143 const SCEVTruncateExpr *Trunc = cast<SCEVTruncateExpr>(this);
144 const SCEV *Op = Trunc->getOperand();
145 OS << "(trunc " << *Op->getType() << " " << *Op << " to "
146 << *Trunc->getType() << ")";
147 return;
148 }
149 case scZeroExtend: {
150 const SCEVZeroExtendExpr *ZExt = cast<SCEVZeroExtendExpr>(this);
151 const SCEV *Op = ZExt->getOperand();
152 OS << "(zext " << *Op->getType() << " " << *Op << " to "
153 << *ZExt->getType() << ")";
154 return;
155 }
156 case scSignExtend: {
157 const SCEVSignExtendExpr *SExt = cast<SCEVSignExtendExpr>(this);
158 const SCEV *Op = SExt->getOperand();
159 OS << "(sext " << *Op->getType() << " " << *Op << " to "
160 << *SExt->getType() << ")";
161 return;
162 }
163 case scAddRecExpr: {
164 const SCEVAddRecExpr *AR = cast<SCEVAddRecExpr>(this);
165 OS << "{" << *AR->getOperand(0);
166 for (unsigned i = 1, e = AR->getNumOperands(); i != e; ++i)
167 OS << ",+," << *AR->getOperand(i);
168 OS << "}<";
Andrew Trick8b55b732011-03-14 16:50:06 +0000169 if (AR->getNoWrapFlags(FlagNUW))
Chris Lattnera337f5e2011-01-09 02:16:18 +0000170 OS << "nuw><";
Andrew Trick8b55b732011-03-14 16:50:06 +0000171 if (AR->getNoWrapFlags(FlagNSW))
Chris Lattnera337f5e2011-01-09 02:16:18 +0000172 OS << "nsw><";
Andrew Trick8b55b732011-03-14 16:50:06 +0000173 if (AR->getNoWrapFlags(FlagNW) &&
174 !AR->getNoWrapFlags((NoWrapFlags)(FlagNUW | FlagNSW)))
175 OS << "nw><";
Chandler Carruthd48cdbf2014-01-09 02:29:41 +0000176 AR->getLoop()->getHeader()->printAsOperand(OS, /*PrintType=*/false);
Dan Gohman534749b2010-11-17 22:27:42 +0000177 OS << ">";
178 return;
179 }
180 case scAddExpr:
181 case scMulExpr:
182 case scUMaxExpr:
183 case scSMaxExpr: {
184 const SCEVNAryExpr *NAry = cast<SCEVNAryExpr>(this);
Benjamin Kramerc77ebcc2010-11-19 11:37:26 +0000185 const char *OpStr = 0;
Dan Gohman534749b2010-11-17 22:27:42 +0000186 switch (NAry->getSCEVType()) {
187 case scAddExpr: OpStr = " + "; break;
188 case scMulExpr: OpStr = " * "; break;
189 case scUMaxExpr: OpStr = " umax "; break;
190 case scSMaxExpr: OpStr = " smax "; break;
191 }
192 OS << "(";
193 for (SCEVNAryExpr::op_iterator I = NAry->op_begin(), E = NAry->op_end();
194 I != E; ++I) {
195 OS << **I;
196 if (llvm::next(I) != E)
197 OS << OpStr;
198 }
199 OS << ")";
Andrew Trickd912a5b2011-11-29 02:06:35 +0000200 switch (NAry->getSCEVType()) {
201 case scAddExpr:
202 case scMulExpr:
203 if (NAry->getNoWrapFlags(FlagNUW))
204 OS << "<nuw>";
205 if (NAry->getNoWrapFlags(FlagNSW))
206 OS << "<nsw>";
207 }
Dan Gohman534749b2010-11-17 22:27:42 +0000208 return;
209 }
210 case scUDivExpr: {
211 const SCEVUDivExpr *UDiv = cast<SCEVUDivExpr>(this);
212 OS << "(" << *UDiv->getLHS() << " /u " << *UDiv->getRHS() << ")";
213 return;
214 }
215 case scUnknown: {
216 const SCEVUnknown *U = cast<SCEVUnknown>(this);
Chris Lattner229907c2011-07-18 04:54:35 +0000217 Type *AllocTy;
Dan Gohman534749b2010-11-17 22:27:42 +0000218 if (U->isSizeOf(AllocTy)) {
219 OS << "sizeof(" << *AllocTy << ")";
220 return;
221 }
222 if (U->isAlignOf(AllocTy)) {
223 OS << "alignof(" << *AllocTy << ")";
224 return;
225 }
Andrew Trick2a3b7162011-03-09 17:23:39 +0000226
Chris Lattner229907c2011-07-18 04:54:35 +0000227 Type *CTy;
Dan Gohman534749b2010-11-17 22:27:42 +0000228 Constant *FieldNo;
229 if (U->isOffsetOf(CTy, FieldNo)) {
230 OS << "offsetof(" << *CTy << ", ";
Chandler Carruthd48cdbf2014-01-09 02:29:41 +0000231 FieldNo->printAsOperand(OS, false);
Dan Gohman534749b2010-11-17 22:27:42 +0000232 OS << ")";
233 return;
234 }
Andrew Trick2a3b7162011-03-09 17:23:39 +0000235
Dan Gohman534749b2010-11-17 22:27:42 +0000236 // Otherwise just print it normally.
Chandler Carruthd48cdbf2014-01-09 02:29:41 +0000237 U->getValue()->printAsOperand(OS, false);
Dan Gohman534749b2010-11-17 22:27:42 +0000238 return;
239 }
240 case scCouldNotCompute:
241 OS << "***COULDNOTCOMPUTE***";
242 return;
243 default: break;
244 }
245 llvm_unreachable("Unknown SCEV kind!");
246}
247
Chris Lattner229907c2011-07-18 04:54:35 +0000248Type *SCEV::getType() const {
Dan Gohman534749b2010-11-17 22:27:42 +0000249 switch (getSCEVType()) {
250 case scConstant:
251 return cast<SCEVConstant>(this)->getType();
252 case scTruncate:
253 case scZeroExtend:
254 case scSignExtend:
255 return cast<SCEVCastExpr>(this)->getType();
256 case scAddRecExpr:
257 case scMulExpr:
258 case scUMaxExpr:
259 case scSMaxExpr:
260 return cast<SCEVNAryExpr>(this)->getType();
261 case scAddExpr:
262 return cast<SCEVAddExpr>(this)->getType();
263 case scUDivExpr:
264 return cast<SCEVUDivExpr>(this)->getType();
265 case scUnknown:
266 return cast<SCEVUnknown>(this)->getType();
267 case scCouldNotCompute:
268 llvm_unreachable("Attempt to use a SCEVCouldNotCompute object!");
David Blaikie46a9f012012-01-20 21:51:11 +0000269 default:
270 llvm_unreachable("Unknown SCEV kind!");
Dan Gohman534749b2010-11-17 22:27:42 +0000271 }
Dan Gohman534749b2010-11-17 22:27:42 +0000272}
273
Dan Gohmanbe928e32008-06-18 16:23:07 +0000274bool SCEV::isZero() const {
275 if (const SCEVConstant *SC = dyn_cast<SCEVConstant>(this))
276 return SC->getValue()->isZero();
277 return false;
278}
279
Dan Gohmanba7f6d82009-05-18 15:22:39 +0000280bool SCEV::isOne() const {
281 if (const SCEVConstant *SC = dyn_cast<SCEVConstant>(this))
282 return SC->getValue()->isOne();
283 return false;
284}
Chris Lattnerd934c702004-04-02 20:23:17 +0000285
Dan Gohman18a96bb2009-06-24 00:30:26 +0000286bool SCEV::isAllOnesValue() const {
287 if (const SCEVConstant *SC = dyn_cast<SCEVConstant>(this))
288 return SC->getValue()->isAllOnesValue();
289 return false;
290}
291
Andrew Trick881a7762012-01-07 00:27:31 +0000292/// isNonConstantNegative - Return true if the specified scev is negated, but
293/// not a constant.
294bool SCEV::isNonConstantNegative() const {
295 const SCEVMulExpr *Mul = dyn_cast<SCEVMulExpr>(this);
296 if (!Mul) return false;
297
298 // If there is a constant factor, it will be first.
299 const SCEVConstant *SC = dyn_cast<SCEVConstant>(Mul->getOperand(0));
300 if (!SC) return false;
301
302 // Return true if the value is negative, this matches things like (-42 * V).
303 return SC->getValue()->getValue().isNegative();
304}
305
Owen Anderson04052ec2009-06-22 21:57:23 +0000306SCEVCouldNotCompute::SCEVCouldNotCompute() :
Dan Gohman24ceda82010-06-18 19:54:20 +0000307 SCEV(FoldingSetNodeIDRef(), scCouldNotCompute) {}
Dan Gohmanc5c85c02009-06-27 21:21:31 +0000308
Chris Lattnerd934c702004-04-02 20:23:17 +0000309bool SCEVCouldNotCompute::classof(const SCEV *S) {
310 return S->getSCEVType() == scCouldNotCompute;
311}
312
Dan Gohmanaf752342009-07-07 17:06:11 +0000313const SCEV *ScalarEvolution::getConstant(ConstantInt *V) {
Dan Gohmanc5c85c02009-06-27 21:21:31 +0000314 FoldingSetNodeID ID;
315 ID.AddInteger(scConstant);
316 ID.AddPointer(V);
317 void *IP = 0;
318 if (const SCEV *S = UniqueSCEVs.FindNodeOrInsertPos(ID, IP)) return S;
Dan Gohman24ceda82010-06-18 19:54:20 +0000319 SCEV *S = new (SCEVAllocator) SCEVConstant(ID.Intern(SCEVAllocator), V);
Dan Gohmanc5c85c02009-06-27 21:21:31 +0000320 UniqueSCEVs.InsertNode(S, IP);
321 return S;
Chris Lattnerb4f681b2004-04-15 15:07:24 +0000322}
Chris Lattnerd934c702004-04-02 20:23:17 +0000323
Dan Gohmanaf752342009-07-07 17:06:11 +0000324const SCEV *ScalarEvolution::getConstant(const APInt& Val) {
Owen Andersonedb4a702009-07-24 23:12:02 +0000325 return getConstant(ConstantInt::get(getContext(), Val));
Dan Gohman0a76e7f2007-07-09 15:25:17 +0000326}
327
Dan Gohmanaf752342009-07-07 17:06:11 +0000328const SCEV *
Chris Lattner229907c2011-07-18 04:54:35 +0000329ScalarEvolution::getConstant(Type *Ty, uint64_t V, bool isSigned) {
330 IntegerType *ITy = cast<IntegerType>(getEffectiveSCEVType(Ty));
Dan Gohmana029cbe2010-04-21 16:04:04 +0000331 return getConstant(ConstantInt::get(ITy, V, isSigned));
Dan Gohman7ccc52f2009-06-15 22:12:54 +0000332}
333
Dan Gohman24ceda82010-06-18 19:54:20 +0000334SCEVCastExpr::SCEVCastExpr(const FoldingSetNodeIDRef ID,
Chris Lattner229907c2011-07-18 04:54:35 +0000335 unsigned SCEVTy, const SCEV *op, Type *ty)
Dan Gohman24ceda82010-06-18 19:54:20 +0000336 : SCEV(ID, SCEVTy), Op(op), Ty(ty) {}
Dan Gohmanc5c85c02009-06-27 21:21:31 +0000337
Dan Gohman24ceda82010-06-18 19:54:20 +0000338SCEVTruncateExpr::SCEVTruncateExpr(const FoldingSetNodeIDRef ID,
Chris Lattner229907c2011-07-18 04:54:35 +0000339 const SCEV *op, Type *ty)
Dan Gohman24ceda82010-06-18 19:54:20 +0000340 : SCEVCastExpr(ID, scTruncate, op, ty) {
Duncan Sands19d0b472010-02-16 11:11:14 +0000341 assert((Op->getType()->isIntegerTy() || Op->getType()->isPointerTy()) &&
342 (Ty->isIntegerTy() || Ty->isPointerTy()) &&
Chris Lattnerb4f681b2004-04-15 15:07:24 +0000343 "Cannot truncate non-integer value!");
Chris Lattnerb4f681b2004-04-15 15:07:24 +0000344}
Chris Lattnerd934c702004-04-02 20:23:17 +0000345
Dan Gohman24ceda82010-06-18 19:54:20 +0000346SCEVZeroExtendExpr::SCEVZeroExtendExpr(const FoldingSetNodeIDRef ID,
Chris Lattner229907c2011-07-18 04:54:35 +0000347 const SCEV *op, Type *ty)
Dan Gohman24ceda82010-06-18 19:54:20 +0000348 : SCEVCastExpr(ID, scZeroExtend, op, ty) {
Duncan Sands19d0b472010-02-16 11:11:14 +0000349 assert((Op->getType()->isIntegerTy() || Op->getType()->isPointerTy()) &&
350 (Ty->isIntegerTy() || Ty->isPointerTy()) &&
Chris Lattnerb4f681b2004-04-15 15:07:24 +0000351 "Cannot zero extend non-integer value!");
Chris Lattnerb4f681b2004-04-15 15:07:24 +0000352}
353
Dan Gohman24ceda82010-06-18 19:54:20 +0000354SCEVSignExtendExpr::SCEVSignExtendExpr(const FoldingSetNodeIDRef ID,
Chris Lattner229907c2011-07-18 04:54:35 +0000355 const SCEV *op, Type *ty)
Dan Gohman24ceda82010-06-18 19:54:20 +0000356 : SCEVCastExpr(ID, scSignExtend, op, ty) {
Duncan Sands19d0b472010-02-16 11:11:14 +0000357 assert((Op->getType()->isIntegerTy() || Op->getType()->isPointerTy()) &&
358 (Ty->isIntegerTy() || Ty->isPointerTy()) &&
Dan Gohmancb9e09a2007-06-15 14:38:12 +0000359 "Cannot sign extend non-integer value!");
Dan Gohmancb9e09a2007-06-15 14:38:12 +0000360}
361
Dan Gohman7cac9572010-08-02 23:49:30 +0000362void SCEVUnknown::deleted() {
Dan Gohman761065e2010-11-17 02:44:44 +0000363 // Clear this SCEVUnknown from various maps.
Dan Gohman7e6b3932010-11-17 23:28:48 +0000364 SE->forgetMemoizedResults(this);
Dan Gohman7cac9572010-08-02 23:49:30 +0000365
366 // Remove this SCEVUnknown from the uniquing map.
367 SE->UniqueSCEVs.RemoveNode(this);
368
369 // Release the value.
370 setValPtr(0);
371}
372
373void SCEVUnknown::allUsesReplacedWith(Value *New) {
Dan Gohman761065e2010-11-17 02:44:44 +0000374 // Clear this SCEVUnknown from various maps.
Dan Gohman7e6b3932010-11-17 23:28:48 +0000375 SE->forgetMemoizedResults(this);
Dan Gohman7cac9572010-08-02 23:49:30 +0000376
377 // Remove this SCEVUnknown from the uniquing map.
378 SE->UniqueSCEVs.RemoveNode(this);
379
380 // Update this SCEVUnknown to point to the new value. This is needed
381 // because there may still be outstanding SCEVs which still point to
382 // this SCEVUnknown.
383 setValPtr(New);
384}
385
Chris Lattner229907c2011-07-18 04:54:35 +0000386bool SCEVUnknown::isSizeOf(Type *&AllocTy) const {
Dan Gohman7cac9572010-08-02 23:49:30 +0000387 if (ConstantExpr *VCE = dyn_cast<ConstantExpr>(getValue()))
Dan Gohmancf913832010-01-28 02:15:55 +0000388 if (VCE->getOpcode() == Instruction::PtrToInt)
389 if (ConstantExpr *CE = dyn_cast<ConstantExpr>(VCE->getOperand(0)))
Dan Gohman7e5f1b22010-02-02 01:38:49 +0000390 if (CE->getOpcode() == Instruction::GetElementPtr &&
391 CE->getOperand(0)->isNullValue() &&
392 CE->getNumOperands() == 2)
393 if (ConstantInt *CI = dyn_cast<ConstantInt>(CE->getOperand(1)))
394 if (CI->isOne()) {
395 AllocTy = cast<PointerType>(CE->getOperand(0)->getType())
396 ->getElementType();
397 return true;
398 }
Dan Gohmancf913832010-01-28 02:15:55 +0000399
400 return false;
401}
402
Chris Lattner229907c2011-07-18 04:54:35 +0000403bool SCEVUnknown::isAlignOf(Type *&AllocTy) const {
Dan Gohman7cac9572010-08-02 23:49:30 +0000404 if (ConstantExpr *VCE = dyn_cast<ConstantExpr>(getValue()))
Dan Gohmancf913832010-01-28 02:15:55 +0000405 if (VCE->getOpcode() == Instruction::PtrToInt)
406 if (ConstantExpr *CE = dyn_cast<ConstantExpr>(VCE->getOperand(0)))
Dan Gohman7e5f1b22010-02-02 01:38:49 +0000407 if (CE->getOpcode() == Instruction::GetElementPtr &&
408 CE->getOperand(0)->isNullValue()) {
Chris Lattner229907c2011-07-18 04:54:35 +0000409 Type *Ty =
Dan Gohman7e5f1b22010-02-02 01:38:49 +0000410 cast<PointerType>(CE->getOperand(0)->getType())->getElementType();
Chris Lattner229907c2011-07-18 04:54:35 +0000411 if (StructType *STy = dyn_cast<StructType>(Ty))
Dan Gohman7e5f1b22010-02-02 01:38:49 +0000412 if (!STy->isPacked() &&
413 CE->getNumOperands() == 3 &&
414 CE->getOperand(1)->isNullValue()) {
415 if (ConstantInt *CI = dyn_cast<ConstantInt>(CE->getOperand(2)))
416 if (CI->isOne() &&
417 STy->getNumElements() == 2 &&
Duncan Sands9dff9be2010-02-15 16:12:20 +0000418 STy->getElementType(0)->isIntegerTy(1)) {
Dan Gohman7e5f1b22010-02-02 01:38:49 +0000419 AllocTy = STy->getElementType(1);
420 return true;
421 }
422 }
423 }
Dan Gohmancf913832010-01-28 02:15:55 +0000424
425 return false;
426}
427
Chris Lattner229907c2011-07-18 04:54:35 +0000428bool SCEVUnknown::isOffsetOf(Type *&CTy, Constant *&FieldNo) const {
Dan Gohman7cac9572010-08-02 23:49:30 +0000429 if (ConstantExpr *VCE = dyn_cast<ConstantExpr>(getValue()))
Dan Gohmane5e1b7b2010-02-01 18:27:38 +0000430 if (VCE->getOpcode() == Instruction::PtrToInt)
431 if (ConstantExpr *CE = dyn_cast<ConstantExpr>(VCE->getOperand(0)))
432 if (CE->getOpcode() == Instruction::GetElementPtr &&
433 CE->getNumOperands() == 3 &&
434 CE->getOperand(0)->isNullValue() &&
435 CE->getOperand(1)->isNullValue()) {
Chris Lattner229907c2011-07-18 04:54:35 +0000436 Type *Ty =
Dan Gohmane5e1b7b2010-02-01 18:27:38 +0000437 cast<PointerType>(CE->getOperand(0)->getType())->getElementType();
438 // Ignore vector types here so that ScalarEvolutionExpander doesn't
439 // emit getelementptrs that index into vectors.
Duncan Sands19d0b472010-02-16 11:11:14 +0000440 if (Ty->isStructTy() || Ty->isArrayTy()) {
Dan Gohmane5e1b7b2010-02-01 18:27:38 +0000441 CTy = Ty;
442 FieldNo = CE->getOperand(2);
443 return true;
444 }
445 }
446
447 return false;
448}
449
Chris Lattnereb3e8402004-06-20 06:23:15 +0000450//===----------------------------------------------------------------------===//
451// SCEV Utilities
452//===----------------------------------------------------------------------===//
453
454namespace {
455 /// SCEVComplexityCompare - Return true if the complexity of the LHS is less
456 /// than the complexity of the RHS. This comparator is used to canonicalize
457 /// expressions.
Nick Lewycky02d5f772009-10-25 06:33:48 +0000458 class SCEVComplexityCompare {
Dan Gohman3324b9e2010-08-13 20:17:27 +0000459 const LoopInfo *const LI;
Dan Gohman9ba542c2009-05-07 14:39:04 +0000460 public:
Dan Gohman992db002010-07-23 21:18:55 +0000461 explicit SCEVComplexityCompare(const LoopInfo *li) : LI(li) {}
Dan Gohman9ba542c2009-05-07 14:39:04 +0000462
Dan Gohman27065672010-08-27 15:26:01 +0000463 // Return true or false if LHS is less than, or at least RHS, respectively.
Dan Gohman5e6ce7b2008-04-14 18:23:56 +0000464 bool operator()(const SCEV *LHS, const SCEV *RHS) const {
Dan Gohman27065672010-08-27 15:26:01 +0000465 return compare(LHS, RHS) < 0;
466 }
467
468 // Return negative, zero, or positive, if LHS is less than, equal to, or
469 // greater than RHS, respectively. A three-way result allows recursive
470 // comparisons to be more efficient.
471 int compare(const SCEV *LHS, const SCEV *RHS) const {
Dan Gohmancc2f1eb2009-08-31 21:15:23 +0000472 // Fast-path: SCEVs are uniqued so we can do a quick equality check.
473 if (LHS == RHS)
Dan Gohman27065672010-08-27 15:26:01 +0000474 return 0;
Dan Gohmancc2f1eb2009-08-31 21:15:23 +0000475
Dan Gohman9ba542c2009-05-07 14:39:04 +0000476 // Primarily, sort the SCEVs by their getSCEVType().
Dan Gohman5ae31022010-07-23 21:20:52 +0000477 unsigned LType = LHS->getSCEVType(), RType = RHS->getSCEVType();
478 if (LType != RType)
Dan Gohman27065672010-08-27 15:26:01 +0000479 return (int)LType - (int)RType;
Dan Gohman9ba542c2009-05-07 14:39:04 +0000480
Dan Gohman24ceda82010-06-18 19:54:20 +0000481 // Aside from the getSCEVType() ordering, the particular ordering
482 // isn't very important except that it's beneficial to be consistent,
483 // so that (a + b) and (b + a) don't end up as different expressions.
Dan Gohman27065672010-08-27 15:26:01 +0000484 switch (LType) {
485 case scUnknown: {
486 const SCEVUnknown *LU = cast<SCEVUnknown>(LHS);
Dan Gohman24ceda82010-06-18 19:54:20 +0000487 const SCEVUnknown *RU = cast<SCEVUnknown>(RHS);
Dan Gohman27065672010-08-27 15:26:01 +0000488
489 // Sort SCEVUnknown values with some loose heuristics. TODO: This is
490 // not as complete as it could be.
Dan Gohman0c436ab2010-08-13 21:24:58 +0000491 const Value *LV = LU->getValue(), *RV = RU->getValue();
Dan Gohman24ceda82010-06-18 19:54:20 +0000492
493 // Order pointer values after integer values. This helps SCEVExpander
494 // form GEPs.
Dan Gohman0c436ab2010-08-13 21:24:58 +0000495 bool LIsPointer = LV->getType()->isPointerTy(),
496 RIsPointer = RV->getType()->isPointerTy();
Dan Gohman5ae31022010-07-23 21:20:52 +0000497 if (LIsPointer != RIsPointer)
Dan Gohman27065672010-08-27 15:26:01 +0000498 return (int)LIsPointer - (int)RIsPointer;
Dan Gohman24ceda82010-06-18 19:54:20 +0000499
500 // Compare getValueID values.
Dan Gohman0c436ab2010-08-13 21:24:58 +0000501 unsigned LID = LV->getValueID(),
502 RID = RV->getValueID();
Dan Gohman5ae31022010-07-23 21:20:52 +0000503 if (LID != RID)
Dan Gohman27065672010-08-27 15:26:01 +0000504 return (int)LID - (int)RID;
Dan Gohman24ceda82010-06-18 19:54:20 +0000505
506 // Sort arguments by their position.
Dan Gohman0c436ab2010-08-13 21:24:58 +0000507 if (const Argument *LA = dyn_cast<Argument>(LV)) {
508 const Argument *RA = cast<Argument>(RV);
Dan Gohman27065672010-08-27 15:26:01 +0000509 unsigned LArgNo = LA->getArgNo(), RArgNo = RA->getArgNo();
510 return (int)LArgNo - (int)RArgNo;
Dan Gohman24ceda82010-06-18 19:54:20 +0000511 }
512
Dan Gohman27065672010-08-27 15:26:01 +0000513 // For instructions, compare their loop depth, and their operand
514 // count. This is pretty loose.
Dan Gohman0c436ab2010-08-13 21:24:58 +0000515 if (const Instruction *LInst = dyn_cast<Instruction>(LV)) {
516 const Instruction *RInst = cast<Instruction>(RV);
Dan Gohman24ceda82010-06-18 19:54:20 +0000517
518 // Compare loop depths.
Dan Gohman0c436ab2010-08-13 21:24:58 +0000519 const BasicBlock *LParent = LInst->getParent(),
520 *RParent = RInst->getParent();
521 if (LParent != RParent) {
522 unsigned LDepth = LI->getLoopDepth(LParent),
523 RDepth = LI->getLoopDepth(RParent);
524 if (LDepth != RDepth)
Dan Gohman27065672010-08-27 15:26:01 +0000525 return (int)LDepth - (int)RDepth;
Dan Gohman0c436ab2010-08-13 21:24:58 +0000526 }
Dan Gohman24ceda82010-06-18 19:54:20 +0000527
528 // Compare the number of operands.
Dan Gohman0c436ab2010-08-13 21:24:58 +0000529 unsigned LNumOps = LInst->getNumOperands(),
530 RNumOps = RInst->getNumOperands();
Dan Gohman27065672010-08-27 15:26:01 +0000531 return (int)LNumOps - (int)RNumOps;
Dan Gohman24ceda82010-06-18 19:54:20 +0000532 }
533
Dan Gohman27065672010-08-27 15:26:01 +0000534 return 0;
Dan Gohman24ceda82010-06-18 19:54:20 +0000535 }
536
Dan Gohman27065672010-08-27 15:26:01 +0000537 case scConstant: {
538 const SCEVConstant *LC = cast<SCEVConstant>(LHS);
Dan Gohman24ceda82010-06-18 19:54:20 +0000539 const SCEVConstant *RC = cast<SCEVConstant>(RHS);
Dan Gohman27065672010-08-27 15:26:01 +0000540
541 // Compare constant values.
Dan Gohmanf2961822010-08-16 16:25:35 +0000542 const APInt &LA = LC->getValue()->getValue();
543 const APInt &RA = RC->getValue()->getValue();
544 unsigned LBitWidth = LA.getBitWidth(), RBitWidth = RA.getBitWidth();
Dan Gohman5ae31022010-07-23 21:20:52 +0000545 if (LBitWidth != RBitWidth)
Dan Gohman27065672010-08-27 15:26:01 +0000546 return (int)LBitWidth - (int)RBitWidth;
547 return LA.ult(RA) ? -1 : 1;
Dan Gohman24ceda82010-06-18 19:54:20 +0000548 }
549
Dan Gohman27065672010-08-27 15:26:01 +0000550 case scAddRecExpr: {
551 const SCEVAddRecExpr *LA = cast<SCEVAddRecExpr>(LHS);
Dan Gohman24ceda82010-06-18 19:54:20 +0000552 const SCEVAddRecExpr *RA = cast<SCEVAddRecExpr>(RHS);
Dan Gohman27065672010-08-27 15:26:01 +0000553
554 // Compare addrec loop depths.
Dan Gohman0c436ab2010-08-13 21:24:58 +0000555 const Loop *LLoop = LA->getLoop(), *RLoop = RA->getLoop();
556 if (LLoop != RLoop) {
557 unsigned LDepth = LLoop->getLoopDepth(),
558 RDepth = RLoop->getLoopDepth();
559 if (LDepth != RDepth)
Dan Gohman27065672010-08-27 15:26:01 +0000560 return (int)LDepth - (int)RDepth;
Dan Gohman0c436ab2010-08-13 21:24:58 +0000561 }
Dan Gohman27065672010-08-27 15:26:01 +0000562
563 // Addrec complexity grows with operand count.
564 unsigned LNumOps = LA->getNumOperands(), RNumOps = RA->getNumOperands();
565 if (LNumOps != RNumOps)
566 return (int)LNumOps - (int)RNumOps;
567
568 // Lexicographically compare.
569 for (unsigned i = 0; i != LNumOps; ++i) {
570 long X = compare(LA->getOperand(i), RA->getOperand(i));
571 if (X != 0)
572 return X;
573 }
574
575 return 0;
Dan Gohman24ceda82010-06-18 19:54:20 +0000576 }
577
Dan Gohman27065672010-08-27 15:26:01 +0000578 case scAddExpr:
579 case scMulExpr:
580 case scSMaxExpr:
581 case scUMaxExpr: {
582 const SCEVNAryExpr *LC = cast<SCEVNAryExpr>(LHS);
Dan Gohman24ceda82010-06-18 19:54:20 +0000583 const SCEVNAryExpr *RC = cast<SCEVNAryExpr>(RHS);
Dan Gohman27065672010-08-27 15:26:01 +0000584
585 // Lexicographically compare n-ary expressions.
Dan Gohman5ae31022010-07-23 21:20:52 +0000586 unsigned LNumOps = LC->getNumOperands(), RNumOps = RC->getNumOperands();
Andrew Trickc3bc8b82013-07-31 02:43:40 +0000587 if (LNumOps != RNumOps)
588 return (int)LNumOps - (int)RNumOps;
589
Dan Gohman5ae31022010-07-23 21:20:52 +0000590 for (unsigned i = 0; i != LNumOps; ++i) {
591 if (i >= RNumOps)
Dan Gohman27065672010-08-27 15:26:01 +0000592 return 1;
593 long X = compare(LC->getOperand(i), RC->getOperand(i));
594 if (X != 0)
595 return X;
Dan Gohman24ceda82010-06-18 19:54:20 +0000596 }
Dan Gohman27065672010-08-27 15:26:01 +0000597 return (int)LNumOps - (int)RNumOps;
Dan Gohman24ceda82010-06-18 19:54:20 +0000598 }
599
Dan Gohman27065672010-08-27 15:26:01 +0000600 case scUDivExpr: {
601 const SCEVUDivExpr *LC = cast<SCEVUDivExpr>(LHS);
Dan Gohman24ceda82010-06-18 19:54:20 +0000602 const SCEVUDivExpr *RC = cast<SCEVUDivExpr>(RHS);
Dan Gohman27065672010-08-27 15:26:01 +0000603
604 // Lexicographically compare udiv expressions.
605 long X = compare(LC->getLHS(), RC->getLHS());
606 if (X != 0)
607 return X;
608 return compare(LC->getRHS(), RC->getRHS());
Dan Gohman24ceda82010-06-18 19:54:20 +0000609 }
610
Dan Gohman27065672010-08-27 15:26:01 +0000611 case scTruncate:
612 case scZeroExtend:
613 case scSignExtend: {
614 const SCEVCastExpr *LC = cast<SCEVCastExpr>(LHS);
Dan Gohman24ceda82010-06-18 19:54:20 +0000615 const SCEVCastExpr *RC = cast<SCEVCastExpr>(RHS);
Dan Gohman27065672010-08-27 15:26:01 +0000616
617 // Compare cast expressions by operand.
618 return compare(LC->getOperand(), RC->getOperand());
619 }
620
621 default:
David Blaikie46a9f012012-01-20 21:51:11 +0000622 llvm_unreachable("Unknown SCEV kind!");
Dan Gohman24ceda82010-06-18 19:54:20 +0000623 }
Chris Lattnereb3e8402004-06-20 06:23:15 +0000624 }
625 };
626}
627
628/// GroupByComplexity - Given a list of SCEV objects, order them by their
629/// complexity, and group objects of the same complexity together by value.
630/// When this routine is finished, we know that any duplicates in the vector are
631/// consecutive and that complexity is monotonically increasing.
632///
Dan Gohman8b0a4192010-03-01 17:49:51 +0000633/// Note that we go take special precautions to ensure that we get deterministic
Chris Lattnereb3e8402004-06-20 06:23:15 +0000634/// results from this routine. In other words, we don't want the results of
635/// this to depend on where the addresses of various SCEV objects happened to
636/// land in memory.
637///
Dan Gohmanaf752342009-07-07 17:06:11 +0000638static void GroupByComplexity(SmallVectorImpl<const SCEV *> &Ops,
Dan Gohman9ba542c2009-05-07 14:39:04 +0000639 LoopInfo *LI) {
Chris Lattnereb3e8402004-06-20 06:23:15 +0000640 if (Ops.size() < 2) return; // Noop
641 if (Ops.size() == 2) {
642 // This is the common case, which also happens to be trivially simple.
643 // Special case it.
Dan Gohman7712d292010-08-29 15:07:13 +0000644 const SCEV *&LHS = Ops[0], *&RHS = Ops[1];
645 if (SCEVComplexityCompare(LI)(RHS, LHS))
646 std::swap(LHS, RHS);
Chris Lattnereb3e8402004-06-20 06:23:15 +0000647 return;
648 }
649
Dan Gohman24ceda82010-06-18 19:54:20 +0000650 // Do the rough sort by complexity.
651 std::stable_sort(Ops.begin(), Ops.end(), SCEVComplexityCompare(LI));
652
653 // Now that we are sorted by complexity, group elements of the same
654 // complexity. Note that this is, at worst, N^2, but the vector is likely to
655 // be extremely short in practice. Note that we take this approach because we
656 // do not want to depend on the addresses of the objects we are grouping.
657 for (unsigned i = 0, e = Ops.size(); i != e-2; ++i) {
658 const SCEV *S = Ops[i];
659 unsigned Complexity = S->getSCEVType();
660
661 // If there are any objects of the same complexity and same value as this
662 // one, group them.
663 for (unsigned j = i+1; j != e && Ops[j]->getSCEVType() == Complexity; ++j) {
664 if (Ops[j] == S) { // Found a duplicate.
665 // Move it to immediately after i'th element.
666 std::swap(Ops[i+1], Ops[j]);
667 ++i; // no need to rescan it.
668 if (i == e-2) return; // Done!
669 }
670 }
671 }
Chris Lattnereb3e8402004-06-20 06:23:15 +0000672}
673
Chris Lattnerd934c702004-04-02 20:23:17 +0000674
Chris Lattnerd934c702004-04-02 20:23:17 +0000675
676//===----------------------------------------------------------------------===//
677// Simple SCEV method implementations
678//===----------------------------------------------------------------------===//
679
Eli Friedman61f67622008-08-04 23:49:06 +0000680/// BinomialCoefficient - Compute BC(It, K). The result has width W.
Dan Gohman4d5435d2009-05-24 23:45:28 +0000681/// Assume, K > 0.
Dan Gohmanaf752342009-07-07 17:06:11 +0000682static const SCEV *BinomialCoefficient(const SCEV *It, unsigned K,
Dan Gohman32291b12009-07-21 00:38:55 +0000683 ScalarEvolution &SE,
Nick Lewycky702cf1e2011-09-06 06:39:54 +0000684 Type *ResultTy) {
Eli Friedman61f67622008-08-04 23:49:06 +0000685 // Handle the simplest case efficiently.
686 if (K == 1)
687 return SE.getTruncateOrZeroExtend(It, ResultTy);
688
Wojciech Matyjewiczd2d97642008-02-11 11:03:14 +0000689 // We are using the following formula for BC(It, K):
690 //
691 // BC(It, K) = (It * (It - 1) * ... * (It - K + 1)) / K!
692 //
Eli Friedman61f67622008-08-04 23:49:06 +0000693 // Suppose, W is the bitwidth of the return value. We must be prepared for
694 // overflow. Hence, we must assure that the result of our computation is
695 // equal to the accurate one modulo 2^W. Unfortunately, division isn't
696 // safe in modular arithmetic.
Wojciech Matyjewiczd2d97642008-02-11 11:03:14 +0000697 //
Eli Friedman61f67622008-08-04 23:49:06 +0000698 // However, this code doesn't use exactly that formula; the formula it uses
Dan Gohmance973df2009-06-24 04:48:43 +0000699 // is something like the following, where T is the number of factors of 2 in
Eli Friedman61f67622008-08-04 23:49:06 +0000700 // K! (i.e. trailing zeros in the binary representation of K!), and ^ is
701 // exponentiation:
Wojciech Matyjewiczd2d97642008-02-11 11:03:14 +0000702 //
Eli Friedman61f67622008-08-04 23:49:06 +0000703 // BC(It, K) = (It * (It - 1) * ... * (It - K + 1)) / 2^T / (K! / 2^T)
Wojciech Matyjewiczd2d97642008-02-11 11:03:14 +0000704 //
Eli Friedman61f67622008-08-04 23:49:06 +0000705 // This formula is trivially equivalent to the previous formula. However,
706 // this formula can be implemented much more efficiently. The trick is that
707 // K! / 2^T is odd, and exact division by an odd number *is* safe in modular
708 // arithmetic. To do exact division in modular arithmetic, all we have
709 // to do is multiply by the inverse. Therefore, this step can be done at
710 // width W.
Dan Gohmance973df2009-06-24 04:48:43 +0000711 //
Eli Friedman61f67622008-08-04 23:49:06 +0000712 // The next issue is how to safely do the division by 2^T. The way this
713 // is done is by doing the multiplication step at a width of at least W + T
714 // bits. This way, the bottom W+T bits of the product are accurate. Then,
715 // when we perform the division by 2^T (which is equivalent to a right shift
716 // by T), the bottom W bits are accurate. Extra bits are okay; they'll get
717 // truncated out after the division by 2^T.
718 //
719 // In comparison to just directly using the first formula, this technique
720 // is much more efficient; using the first formula requires W * K bits,
721 // but this formula less than W + K bits. Also, the first formula requires
722 // a division step, whereas this formula only requires multiplies and shifts.
723 //
724 // It doesn't matter whether the subtraction step is done in the calculation
725 // width or the input iteration count's width; if the subtraction overflows,
726 // the result must be zero anyway. We prefer here to do it in the width of
727 // the induction variable because it helps a lot for certain cases; CodeGen
728 // isn't smart enough to ignore the overflow, which leads to much less
729 // efficient code if the width of the subtraction is wider than the native
730 // register width.
731 //
732 // (It's possible to not widen at all by pulling out factors of 2 before
733 // the multiplication; for example, K=2 can be calculated as
734 // It/2*(It+(It*INT_MIN/INT_MIN)+-1). However, it requires
735 // extra arithmetic, so it's not an obvious win, and it gets
736 // much more complicated for K > 3.)
Wojciech Matyjewiczd2d97642008-02-11 11:03:14 +0000737
Eli Friedman61f67622008-08-04 23:49:06 +0000738 // Protection from insane SCEVs; this bound is conservative,
739 // but it probably doesn't matter.
740 if (K > 1000)
Dan Gohman31efa302009-04-18 17:58:19 +0000741 return SE.getCouldNotCompute();
Wojciech Matyjewiczd2d97642008-02-11 11:03:14 +0000742
Dan Gohmanb397e1a2009-04-21 01:07:12 +0000743 unsigned W = SE.getTypeSizeInBits(ResultTy);
Wojciech Matyjewiczd2d97642008-02-11 11:03:14 +0000744
Eli Friedman61f67622008-08-04 23:49:06 +0000745 // Calculate K! / 2^T and T; we divide out the factors of two before
746 // multiplying for calculating K! / 2^T to avoid overflow.
747 // Other overflow doesn't matter because we only care about the bottom
748 // W bits of the result.
749 APInt OddFactorial(W, 1);
750 unsigned T = 1;
751 for (unsigned i = 3; i <= K; ++i) {
752 APInt Mult(W, i);
753 unsigned TwoFactors = Mult.countTrailingZeros();
754 T += TwoFactors;
755 Mult = Mult.lshr(TwoFactors);
756 OddFactorial *= Mult;
Chris Lattnerd934c702004-04-02 20:23:17 +0000757 }
Nick Lewyckyed169d52008-06-13 04:38:55 +0000758
Eli Friedman61f67622008-08-04 23:49:06 +0000759 // We need at least W + T bits for the multiplication step
Nick Lewycky21add8f2009-01-25 08:16:27 +0000760 unsigned CalculationBits = W + T;
Eli Friedman61f67622008-08-04 23:49:06 +0000761
Dan Gohman8b0a4192010-03-01 17:49:51 +0000762 // Calculate 2^T, at width T+W.
Benjamin Kramerfc3ea6f2013-07-11 16:05:50 +0000763 APInt DivFactor = APInt::getOneBitSet(CalculationBits, T);
Eli Friedman61f67622008-08-04 23:49:06 +0000764
765 // Calculate the multiplicative inverse of K! / 2^T;
766 // this multiplication factor will perform the exact division by
767 // K! / 2^T.
768 APInt Mod = APInt::getSignedMinValue(W+1);
769 APInt MultiplyFactor = OddFactorial.zext(W+1);
770 MultiplyFactor = MultiplyFactor.multiplicativeInverse(Mod);
771 MultiplyFactor = MultiplyFactor.trunc(W);
772
773 // Calculate the product, at width T+W
Chris Lattner229907c2011-07-18 04:54:35 +0000774 IntegerType *CalculationTy = IntegerType::get(SE.getContext(),
Owen Anderson55f1c092009-08-13 21:58:54 +0000775 CalculationBits);
Dan Gohmanaf752342009-07-07 17:06:11 +0000776 const SCEV *Dividend = SE.getTruncateOrZeroExtend(It, CalculationTy);
Eli Friedman61f67622008-08-04 23:49:06 +0000777 for (unsigned i = 1; i != K; ++i) {
Dan Gohman1d2ded72010-05-03 22:09:21 +0000778 const SCEV *S = SE.getMinusSCEV(It, SE.getConstant(It->getType(), i));
Eli Friedman61f67622008-08-04 23:49:06 +0000779 Dividend = SE.getMulExpr(Dividend,
780 SE.getTruncateOrZeroExtend(S, CalculationTy));
781 }
782
783 // Divide by 2^T
Dan Gohmanaf752342009-07-07 17:06:11 +0000784 const SCEV *DivResult = SE.getUDivExpr(Dividend, SE.getConstant(DivFactor));
Eli Friedman61f67622008-08-04 23:49:06 +0000785
786 // Truncate the result, and divide by K! / 2^T.
787
788 return SE.getMulExpr(SE.getConstant(MultiplyFactor),
789 SE.getTruncateOrZeroExtend(DivResult, ResultTy));
Chris Lattnerd934c702004-04-02 20:23:17 +0000790}
791
Chris Lattnerd934c702004-04-02 20:23:17 +0000792/// evaluateAtIteration - Return the value of this chain of recurrences at
793/// the specified iteration number. We can evaluate this recurrence by
794/// multiplying each element in the chain by the binomial coefficient
795/// corresponding to it. In other words, we can evaluate {A,+,B,+,C,+,D} as:
796///
Wojciech Matyjewiczd2d97642008-02-11 11:03:14 +0000797/// A*BC(It, 0) + B*BC(It, 1) + C*BC(It, 2) + D*BC(It, 3)
Chris Lattnerd934c702004-04-02 20:23:17 +0000798///
Wojciech Matyjewiczd2d97642008-02-11 11:03:14 +0000799/// where BC(It, k) stands for binomial coefficient.
Chris Lattnerd934c702004-04-02 20:23:17 +0000800///
Dan Gohmanaf752342009-07-07 17:06:11 +0000801const SCEV *SCEVAddRecExpr::evaluateAtIteration(const SCEV *It,
Dan Gohman32291b12009-07-21 00:38:55 +0000802 ScalarEvolution &SE) const {
Dan Gohmanaf752342009-07-07 17:06:11 +0000803 const SCEV *Result = getStart();
Chris Lattnerd934c702004-04-02 20:23:17 +0000804 for (unsigned i = 1, e = getNumOperands(); i != e; ++i) {
Wojciech Matyjewiczd2d97642008-02-11 11:03:14 +0000805 // The computation is correct in the face of overflow provided that the
806 // multiplication is performed _after_ the evaluation of the binomial
807 // coefficient.
Dan Gohmanaf752342009-07-07 17:06:11 +0000808 const SCEV *Coeff = BinomialCoefficient(It, i, SE, getType());
Nick Lewycky707663e2008-10-13 03:58:02 +0000809 if (isa<SCEVCouldNotCompute>(Coeff))
810 return Coeff;
811
812 Result = SE.getAddExpr(Result, SE.getMulExpr(getOperand(i), Coeff));
Chris Lattnerd934c702004-04-02 20:23:17 +0000813 }
814 return Result;
815}
816
Chris Lattnerd934c702004-04-02 20:23:17 +0000817//===----------------------------------------------------------------------===//
818// SCEV Expression folder implementations
819//===----------------------------------------------------------------------===//
820
Dan Gohmanaf752342009-07-07 17:06:11 +0000821const SCEV *ScalarEvolution::getTruncateExpr(const SCEV *Op,
Chris Lattner229907c2011-07-18 04:54:35 +0000822 Type *Ty) {
Dan Gohmanb397e1a2009-04-21 01:07:12 +0000823 assert(getTypeSizeInBits(Op->getType()) > getTypeSizeInBits(Ty) &&
Dan Gohman413e91f2009-04-21 00:55:22 +0000824 "This is not a truncating conversion!");
Dan Gohman194e42c2009-05-01 16:44:18 +0000825 assert(isSCEVable(Ty) &&
826 "This is not a conversion to a SCEVable type!");
827 Ty = getEffectiveSCEVType(Ty);
Dan Gohman413e91f2009-04-21 00:55:22 +0000828
Dan Gohman3a302cb2009-07-13 20:50:19 +0000829 FoldingSetNodeID ID;
830 ID.AddInteger(scTruncate);
831 ID.AddPointer(Op);
832 ID.AddPointer(Ty);
833 void *IP = 0;
834 if (const SCEV *S = UniqueSCEVs.FindNodeOrInsertPos(ID, IP)) return S;
835
Dan Gohman3423e722009-06-30 20:13:32 +0000836 // Fold if the operand is constant.
Dan Gohmana30370b2009-05-04 22:02:23 +0000837 if (const SCEVConstant *SC = dyn_cast<SCEVConstant>(Op))
Dan Gohman8d7576e2009-06-24 00:38:39 +0000838 return getConstant(
Nuno Lopesab5c9242012-05-15 15:44:38 +0000839 cast<ConstantInt>(ConstantExpr::getTrunc(SC->getValue(), Ty)));
Chris Lattnerd934c702004-04-02 20:23:17 +0000840
Dan Gohman79af8542009-04-22 16:20:48 +0000841 // trunc(trunc(x)) --> trunc(x)
Dan Gohmana30370b2009-05-04 22:02:23 +0000842 if (const SCEVTruncateExpr *ST = dyn_cast<SCEVTruncateExpr>(Op))
Dan Gohman79af8542009-04-22 16:20:48 +0000843 return getTruncateExpr(ST->getOperand(), Ty);
844
Nick Lewyckyb4d9f7a2009-04-23 05:15:08 +0000845 // trunc(sext(x)) --> sext(x) if widening or trunc(x) if narrowing
Dan Gohmana30370b2009-05-04 22:02:23 +0000846 if (const SCEVSignExtendExpr *SS = dyn_cast<SCEVSignExtendExpr>(Op))
Nick Lewyckyb4d9f7a2009-04-23 05:15:08 +0000847 return getTruncateOrSignExtend(SS->getOperand(), Ty);
848
849 // trunc(zext(x)) --> zext(x) if widening or trunc(x) if narrowing
Dan Gohmana30370b2009-05-04 22:02:23 +0000850 if (const SCEVZeroExtendExpr *SZ = dyn_cast<SCEVZeroExtendExpr>(Op))
Nick Lewyckyb4d9f7a2009-04-23 05:15:08 +0000851 return getTruncateOrZeroExtend(SZ->getOperand(), Ty);
852
Nick Lewycky5143f0f2011-01-19 16:59:46 +0000853 // trunc(x1+x2+...+xN) --> trunc(x1)+trunc(x2)+...+trunc(xN) if we can
854 // eliminate all the truncates.
855 if (const SCEVAddExpr *SA = dyn_cast<SCEVAddExpr>(Op)) {
856 SmallVector<const SCEV *, 4> Operands;
857 bool hasTrunc = false;
858 for (unsigned i = 0, e = SA->getNumOperands(); i != e && !hasTrunc; ++i) {
859 const SCEV *S = getTruncateExpr(SA->getOperand(i), Ty);
860 hasTrunc = isa<SCEVTruncateExpr>(S);
861 Operands.push_back(S);
862 }
863 if (!hasTrunc)
Andrew Trick8b55b732011-03-14 16:50:06 +0000864 return getAddExpr(Operands);
Nick Lewyckyd9e6b4a2011-01-26 08:40:22 +0000865 UniqueSCEVs.FindNodeOrInsertPos(ID, IP); // Mutates IP, returns NULL.
Nick Lewycky5143f0f2011-01-19 16:59:46 +0000866 }
867
Nick Lewycky5c901f32011-01-19 18:56:00 +0000868 // trunc(x1*x2*...*xN) --> trunc(x1)*trunc(x2)*...*trunc(xN) if we can
869 // eliminate all the truncates.
870 if (const SCEVMulExpr *SM = dyn_cast<SCEVMulExpr>(Op)) {
871 SmallVector<const SCEV *, 4> Operands;
872 bool hasTrunc = false;
873 for (unsigned i = 0, e = SM->getNumOperands(); i != e && !hasTrunc; ++i) {
874 const SCEV *S = getTruncateExpr(SM->getOperand(i), Ty);
875 hasTrunc = isa<SCEVTruncateExpr>(S);
876 Operands.push_back(S);
877 }
878 if (!hasTrunc)
Andrew Trick8b55b732011-03-14 16:50:06 +0000879 return getMulExpr(Operands);
Nick Lewyckyd9e6b4a2011-01-26 08:40:22 +0000880 UniqueSCEVs.FindNodeOrInsertPos(ID, IP); // Mutates IP, returns NULL.
Nick Lewycky5c901f32011-01-19 18:56:00 +0000881 }
882
Dan Gohman5a728c92009-06-18 16:24:47 +0000883 // If the input value is a chrec scev, truncate the chrec's operands.
Dan Gohmana30370b2009-05-04 22:02:23 +0000884 if (const SCEVAddRecExpr *AddRec = dyn_cast<SCEVAddRecExpr>(Op)) {
Dan Gohmanaf752342009-07-07 17:06:11 +0000885 SmallVector<const SCEV *, 4> Operands;
Chris Lattnerd934c702004-04-02 20:23:17 +0000886 for (unsigned i = 0, e = AddRec->getNumOperands(); i != e; ++i)
Dan Gohman2e55cc52009-05-08 21:03:19 +0000887 Operands.push_back(getTruncateExpr(AddRec->getOperand(i), Ty));
Andrew Trick8b55b732011-03-14 16:50:06 +0000888 return getAddRecExpr(Operands, AddRec->getLoop(), SCEV::FlagAnyWrap);
Chris Lattnerd934c702004-04-02 20:23:17 +0000889 }
890
Dan Gohman89dd42a2010-06-25 18:47:08 +0000891 // The cast wasn't folded; create an explicit cast node. We can reuse
892 // the existing insert position since if we get here, we won't have
893 // made any changes which would invalidate it.
Dan Gohman01c65a22010-03-18 18:49:47 +0000894 SCEV *S = new (SCEVAllocator) SCEVTruncateExpr(ID.Intern(SCEVAllocator),
895 Op, Ty);
Dan Gohmanc5c85c02009-06-27 21:21:31 +0000896 UniqueSCEVs.InsertNode(S, IP);
897 return S;
Chris Lattnerd934c702004-04-02 20:23:17 +0000898}
899
Dan Gohmanaf752342009-07-07 17:06:11 +0000900const SCEV *ScalarEvolution::getZeroExtendExpr(const SCEV *Op,
Chris Lattner229907c2011-07-18 04:54:35 +0000901 Type *Ty) {
Dan Gohmanb397e1a2009-04-21 01:07:12 +0000902 assert(getTypeSizeInBits(Op->getType()) < getTypeSizeInBits(Ty) &&
Dan Gohmanc1c2ba72009-04-16 19:25:55 +0000903 "This is not an extending conversion!");
Dan Gohman194e42c2009-05-01 16:44:18 +0000904 assert(isSCEVable(Ty) &&
905 "This is not a conversion to a SCEVable type!");
906 Ty = getEffectiveSCEVType(Ty);
Dan Gohmanc1c2ba72009-04-16 19:25:55 +0000907
Dan Gohman3423e722009-06-30 20:13:32 +0000908 // Fold if the operand is constant.
Dan Gohman5235cc22010-06-24 16:47:03 +0000909 if (const SCEVConstant *SC = dyn_cast<SCEVConstant>(Op))
910 return getConstant(
Nuno Lopesab5c9242012-05-15 15:44:38 +0000911 cast<ConstantInt>(ConstantExpr::getZExt(SC->getValue(), Ty)));
Chris Lattnerd934c702004-04-02 20:23:17 +0000912
Dan Gohman79af8542009-04-22 16:20:48 +0000913 // zext(zext(x)) --> zext(x)
Dan Gohmana30370b2009-05-04 22:02:23 +0000914 if (const SCEVZeroExtendExpr *SZ = dyn_cast<SCEVZeroExtendExpr>(Op))
Dan Gohman79af8542009-04-22 16:20:48 +0000915 return getZeroExtendExpr(SZ->getOperand(), Ty);
916
Dan Gohman74a0ba12009-07-13 20:55:53 +0000917 // Before doing any expensive analysis, check to see if we've already
918 // computed a SCEV for this Op and Ty.
919 FoldingSetNodeID ID;
920 ID.AddInteger(scZeroExtend);
921 ID.AddPointer(Op);
922 ID.AddPointer(Ty);
923 void *IP = 0;
924 if (const SCEV *S = UniqueSCEVs.FindNodeOrInsertPos(ID, IP)) return S;
925
Nick Lewyckybc98f5b2011-01-23 06:20:19 +0000926 // zext(trunc(x)) --> zext(x) or x or trunc(x)
927 if (const SCEVTruncateExpr *ST = dyn_cast<SCEVTruncateExpr>(Op)) {
928 // It's possible the bits taken off by the truncate were all zero bits. If
929 // so, we should be able to simplify this further.
930 const SCEV *X = ST->getOperand();
931 ConstantRange CR = getUnsignedRange(X);
Nick Lewyckybc98f5b2011-01-23 06:20:19 +0000932 unsigned TruncBits = getTypeSizeInBits(ST->getType());
933 unsigned NewBits = getTypeSizeInBits(Ty);
934 if (CR.truncate(TruncBits).zeroExtend(NewBits).contains(
Nick Lewyckyd4192f72011-01-23 20:06:05 +0000935 CR.zextOrTrunc(NewBits)))
936 return getTruncateOrZeroExtend(X, Ty);
Nick Lewyckybc98f5b2011-01-23 06:20:19 +0000937 }
938
Dan Gohman76466372009-04-27 20:16:15 +0000939 // If the input value is a chrec scev, and we can prove that the value
Chris Lattnerd934c702004-04-02 20:23:17 +0000940 // did not overflow the old, smaller, value, we can zero extend all of the
Dan Gohman76466372009-04-27 20:16:15 +0000941 // operands (often constants). This allows analysis of something like
Chris Lattnerd934c702004-04-02 20:23:17 +0000942 // this: for (unsigned char X = 0; X < 100; ++X) { int Y = X; }
Dan Gohmana30370b2009-05-04 22:02:23 +0000943 if (const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(Op))
Dan Gohman76466372009-04-27 20:16:15 +0000944 if (AR->isAffine()) {
Dan Gohmane65c9172009-07-13 21:35:55 +0000945 const SCEV *Start = AR->getStart();
946 const SCEV *Step = AR->getStepRecurrence(*this);
947 unsigned BitWidth = getTypeSizeInBits(AR->getType());
948 const Loop *L = AR->getLoop();
949
Dan Gohman62ef6a72009-07-25 01:22:26 +0000950 // If we have special knowledge that this addrec won't overflow,
951 // we don't need to do any further analysis.
Andrew Trick8b55b732011-03-14 16:50:06 +0000952 if (AR->getNoWrapFlags(SCEV::FlagNUW))
Dan Gohman62ef6a72009-07-25 01:22:26 +0000953 return getAddRecExpr(getZeroExtendExpr(Start, Ty),
954 getZeroExtendExpr(Step, Ty),
Andrew Trickf6b01ff2011-03-15 00:37:00 +0000955 L, AR->getNoWrapFlags());
Dan Gohman62ef6a72009-07-25 01:22:26 +0000956
Dan Gohman76466372009-04-27 20:16:15 +0000957 // Check whether the backedge-taken count is SCEVCouldNotCompute.
958 // Note that this serves two purposes: It filters out loops that are
959 // simply not analyzable, and it covers the case where this code is
960 // being called from within backedge-taken count analysis, such that
961 // attempting to ask for the backedge-taken count would likely result
962 // in infinite recursion. In the later case, the analysis code will
963 // cope with a conservative value, and it will take care to purge
964 // that value once it has finished.
Dan Gohmane65c9172009-07-13 21:35:55 +0000965 const SCEV *MaxBECount = getMaxBackedgeTakenCount(L);
Dan Gohman2b8da352009-04-30 20:47:05 +0000966 if (!isa<SCEVCouldNotCompute>(MaxBECount)) {
Dan Gohman95c5b0e2009-04-29 01:54:20 +0000967 // Manually compute the final value for AR, checking for
Dan Gohman494dac32009-04-29 22:28:28 +0000968 // overflow.
Dan Gohman76466372009-04-27 20:16:15 +0000969
970 // Check whether the backedge-taken count can be losslessly casted to
971 // the addrec's type. The count is always unsigned.
Dan Gohmanaf752342009-07-07 17:06:11 +0000972 const SCEV *CastedMaxBECount =
Dan Gohman2b8da352009-04-30 20:47:05 +0000973 getTruncateOrZeroExtend(MaxBECount, Start->getType());
Dan Gohmanaf752342009-07-07 17:06:11 +0000974 const SCEV *RecastedMaxBECount =
Dan Gohman4fc36682009-05-18 15:58:39 +0000975 getTruncateOrZeroExtend(CastedMaxBECount, MaxBECount->getType());
976 if (MaxBECount == RecastedMaxBECount) {
Chris Lattner229907c2011-07-18 04:54:35 +0000977 Type *WideTy = IntegerType::get(getContext(), BitWidth * 2);
Dan Gohman2b8da352009-04-30 20:47:05 +0000978 // Check whether Start+Step*MaxBECount has no unsigned overflow.
Dan Gohman007f5042010-02-24 19:31:06 +0000979 const SCEV *ZMul = getMulExpr(CastedMaxBECount, Step);
Nuno Lopesc2a170e2012-05-15 20:20:14 +0000980 const SCEV *ZAdd = getZeroExtendExpr(getAddExpr(Start, ZMul), WideTy);
981 const SCEV *WideStart = getZeroExtendExpr(Start, WideTy);
982 const SCEV *WideMaxBECount =
983 getZeroExtendExpr(CastedMaxBECount, WideTy);
Dan Gohmanaf752342009-07-07 17:06:11 +0000984 const SCEV *OperandExtendedAdd =
Nuno Lopesc2a170e2012-05-15 20:20:14 +0000985 getAddExpr(WideStart,
986 getMulExpr(WideMaxBECount,
Dan Gohman4fc36682009-05-18 15:58:39 +0000987 getZeroExtendExpr(Step, WideTy)));
Nuno Lopesc2a170e2012-05-15 20:20:14 +0000988 if (ZAdd == OperandExtendedAdd) {
Andrew Trickf6b01ff2011-03-15 00:37:00 +0000989 // Cache knowledge of AR NUW, which is propagated to this AddRec.
990 const_cast<SCEVAddRecExpr *>(AR)->setNoWrapFlags(SCEV::FlagNUW);
Dan Gohman494dac32009-04-29 22:28:28 +0000991 // Return the expression with the addrec on the outside.
992 return getAddRecExpr(getZeroExtendExpr(Start, Ty),
993 getZeroExtendExpr(Step, Ty),
Andrew Trickf6b01ff2011-03-15 00:37:00 +0000994 L, AR->getNoWrapFlags());
995 }
Dan Gohman76466372009-04-27 20:16:15 +0000996 // Similar to above, only this time treat the step value as signed.
997 // This covers loops that count down.
Dan Gohman4fc36682009-05-18 15:58:39 +0000998 OperandExtendedAdd =
Nuno Lopesc2a170e2012-05-15 20:20:14 +0000999 getAddExpr(WideStart,
1000 getMulExpr(WideMaxBECount,
Dan Gohman4fc36682009-05-18 15:58:39 +00001001 getSignExtendExpr(Step, WideTy)));
Nuno Lopesc2a170e2012-05-15 20:20:14 +00001002 if (ZAdd == OperandExtendedAdd) {
Andrew Trickf6b01ff2011-03-15 00:37:00 +00001003 // Cache knowledge of AR NW, which is propagated to this AddRec.
1004 // Negative step causes unsigned wrap, but it still can't self-wrap.
1005 const_cast<SCEVAddRecExpr *>(AR)->setNoWrapFlags(SCEV::FlagNW);
Dan Gohman494dac32009-04-29 22:28:28 +00001006 // Return the expression with the addrec on the outside.
1007 return getAddRecExpr(getZeroExtendExpr(Start, Ty),
1008 getSignExtendExpr(Step, Ty),
Andrew Trickf6b01ff2011-03-15 00:37:00 +00001009 L, AR->getNoWrapFlags());
1010 }
Dan Gohmane65c9172009-07-13 21:35:55 +00001011 }
1012
1013 // If the backedge is guarded by a comparison with the pre-inc value
1014 // the addrec is safe. Also, if the entry is guarded by a comparison
1015 // with the start value and the backedge is guarded by a comparison
1016 // with the post-inc value, the addrec is safe.
1017 if (isKnownPositive(Step)) {
1018 const SCEV *N = getConstant(APInt::getMinValue(BitWidth) -
1019 getUnsignedRange(Step).getUnsignedMax());
1020 if (isLoopBackedgeGuardedByCond(L, ICmpInst::ICMP_ULT, AR, N) ||
Dan Gohmanb50349a2010-04-11 19:27:13 +00001021 (isLoopEntryGuardedByCond(L, ICmpInst::ICMP_ULT, Start, N) &&
Dan Gohmane65c9172009-07-13 21:35:55 +00001022 isLoopBackedgeGuardedByCond(L, ICmpInst::ICMP_ULT,
Andrew Trickf6b01ff2011-03-15 00:37:00 +00001023 AR->getPostIncExpr(*this), N))) {
1024 // Cache knowledge of AR NUW, which is propagated to this AddRec.
1025 const_cast<SCEVAddRecExpr *>(AR)->setNoWrapFlags(SCEV::FlagNUW);
Dan Gohmane65c9172009-07-13 21:35:55 +00001026 // Return the expression with the addrec on the outside.
1027 return getAddRecExpr(getZeroExtendExpr(Start, Ty),
1028 getZeroExtendExpr(Step, Ty),
Andrew Trickf6b01ff2011-03-15 00:37:00 +00001029 L, AR->getNoWrapFlags());
1030 }
Dan Gohmane65c9172009-07-13 21:35:55 +00001031 } else if (isKnownNegative(Step)) {
1032 const SCEV *N = getConstant(APInt::getMaxValue(BitWidth) -
1033 getSignedRange(Step).getSignedMin());
Dan Gohman5f18c542010-05-04 01:11:15 +00001034 if (isLoopBackedgeGuardedByCond(L, ICmpInst::ICMP_UGT, AR, N) ||
1035 (isLoopEntryGuardedByCond(L, ICmpInst::ICMP_UGT, Start, N) &&
Dan Gohmane65c9172009-07-13 21:35:55 +00001036 isLoopBackedgeGuardedByCond(L, ICmpInst::ICMP_UGT,
Andrew Trickf6b01ff2011-03-15 00:37:00 +00001037 AR->getPostIncExpr(*this), N))) {
1038 // Cache knowledge of AR NW, which is propagated to this AddRec.
1039 // Negative step causes unsigned wrap, but it still can't self-wrap.
1040 const_cast<SCEVAddRecExpr *>(AR)->setNoWrapFlags(SCEV::FlagNW);
1041 // Return the expression with the addrec on the outside.
Dan Gohmane65c9172009-07-13 21:35:55 +00001042 return getAddRecExpr(getZeroExtendExpr(Start, Ty),
1043 getSignExtendExpr(Step, Ty),
Andrew Trickf6b01ff2011-03-15 00:37:00 +00001044 L, AR->getNoWrapFlags());
1045 }
Dan Gohman76466372009-04-27 20:16:15 +00001046 }
1047 }
1048 }
Chris Lattnerd934c702004-04-02 20:23:17 +00001049
Dan Gohman74a0ba12009-07-13 20:55:53 +00001050 // The cast wasn't folded; create an explicit cast node.
1051 // Recompute the insert position, as it may have been invalidated.
Dan Gohmanc5c85c02009-06-27 21:21:31 +00001052 if (const SCEV *S = UniqueSCEVs.FindNodeOrInsertPos(ID, IP)) return S;
Dan Gohman01c65a22010-03-18 18:49:47 +00001053 SCEV *S = new (SCEVAllocator) SCEVZeroExtendExpr(ID.Intern(SCEVAllocator),
1054 Op, Ty);
Dan Gohmanc5c85c02009-06-27 21:21:31 +00001055 UniqueSCEVs.InsertNode(S, IP);
1056 return S;
Chris Lattnerd934c702004-04-02 20:23:17 +00001057}
1058
Andrew Trick812276e2011-05-31 21:17:47 +00001059// Get the limit of a recurrence such that incrementing by Step cannot cause
1060// signed overflow as long as the value of the recurrence within the loop does
1061// not exceed this limit before incrementing.
1062static const SCEV *getOverflowLimitForStep(const SCEV *Step,
1063 ICmpInst::Predicate *Pred,
1064 ScalarEvolution *SE) {
1065 unsigned BitWidth = SE->getTypeSizeInBits(Step->getType());
1066 if (SE->isKnownPositive(Step)) {
1067 *Pred = ICmpInst::ICMP_SLT;
1068 return SE->getConstant(APInt::getSignedMinValue(BitWidth) -
1069 SE->getSignedRange(Step).getSignedMax());
1070 }
1071 if (SE->isKnownNegative(Step)) {
1072 *Pred = ICmpInst::ICMP_SGT;
1073 return SE->getConstant(APInt::getSignedMaxValue(BitWidth) -
1074 SE->getSignedRange(Step).getSignedMin());
1075 }
1076 return 0;
1077}
1078
1079// The recurrence AR has been shown to have no signed wrap. Typically, if we can
1080// prove NSW for AR, then we can just as easily prove NSW for its preincrement
1081// or postincrement sibling. This allows normalizing a sign extended AddRec as
1082// such: {sext(Step + Start),+,Step} => {(Step + sext(Start),+,Step} As a
1083// result, the expression "Step + sext(PreIncAR)" is congruent with
1084// "sext(PostIncAR)"
1085static const SCEV *getPreStartForSignExtend(const SCEVAddRecExpr *AR,
Chris Lattner229907c2011-07-18 04:54:35 +00001086 Type *Ty,
Andrew Trick812276e2011-05-31 21:17:47 +00001087 ScalarEvolution *SE) {
1088 const Loop *L = AR->getLoop();
1089 const SCEV *Start = AR->getStart();
1090 const SCEV *Step = AR->getStepRecurrence(*SE);
1091
1092 // Check for a simple looking step prior to loop entry.
1093 const SCEVAddExpr *SA = dyn_cast<SCEVAddExpr>(Start);
Andrew Trickef8e4ef2011-09-28 17:02:54 +00001094 if (!SA)
1095 return 0;
1096
1097 // Create an AddExpr for "PreStart" after subtracting Step. Full SCEV
1098 // subtraction is expensive. For this purpose, perform a quick and dirty
1099 // difference, by checking for Step in the operand list.
1100 SmallVector<const SCEV *, 4> DiffOps;
1101 for (SCEVAddExpr::op_iterator I = SA->op_begin(), E = SA->op_end();
1102 I != E; ++I) {
1103 if (*I != Step)
1104 DiffOps.push_back(*I);
1105 }
1106 if (DiffOps.size() == SA->getNumOperands())
Andrew Trick812276e2011-05-31 21:17:47 +00001107 return 0;
1108
1109 // This is a postinc AR. Check for overflow on the preinc recurrence using the
1110 // same three conditions that getSignExtendedExpr checks.
1111
1112 // 1. NSW flags on the step increment.
Andrew Trickef8e4ef2011-09-28 17:02:54 +00001113 const SCEV *PreStart = SE->getAddExpr(DiffOps, SA->getNoWrapFlags());
Andrew Trick812276e2011-05-31 21:17:47 +00001114 const SCEVAddRecExpr *PreAR = dyn_cast<SCEVAddRecExpr>(
1115 SE->getAddRecExpr(PreStart, Step, L, SCEV::FlagAnyWrap));
1116
Andrew Trick8ef3ad02011-06-01 19:14:56 +00001117 if (PreAR && PreAR->getNoWrapFlags(SCEV::FlagNSW))
Andrew Trick812276e2011-05-31 21:17:47 +00001118 return PreStart;
Andrew Trick812276e2011-05-31 21:17:47 +00001119
1120 // 2. Direct overflow check on the step operation's expression.
1121 unsigned BitWidth = SE->getTypeSizeInBits(AR->getType());
Chris Lattner229907c2011-07-18 04:54:35 +00001122 Type *WideTy = IntegerType::get(SE->getContext(), BitWidth * 2);
Andrew Trick812276e2011-05-31 21:17:47 +00001123 const SCEV *OperandExtendedStart =
1124 SE->getAddExpr(SE->getSignExtendExpr(PreStart, WideTy),
1125 SE->getSignExtendExpr(Step, WideTy));
1126 if (SE->getSignExtendExpr(Start, WideTy) == OperandExtendedStart) {
1127 // Cache knowledge of PreAR NSW.
1128 if (PreAR)
1129 const_cast<SCEVAddRecExpr *>(PreAR)->setNoWrapFlags(SCEV::FlagNSW);
1130 // FIXME: this optimization needs a unit test
1131 DEBUG(dbgs() << "SCEV: untested prestart overflow check\n");
1132 return PreStart;
1133 }
1134
1135 // 3. Loop precondition.
1136 ICmpInst::Predicate Pred;
1137 const SCEV *OverflowLimit = getOverflowLimitForStep(Step, &Pred, SE);
1138
Andrew Trick8ef3ad02011-06-01 19:14:56 +00001139 if (OverflowLimit &&
1140 SE->isLoopEntryGuardedByCond(L, Pred, PreStart, OverflowLimit)) {
Andrew Trick812276e2011-05-31 21:17:47 +00001141 return PreStart;
1142 }
1143 return 0;
1144}
1145
1146// Get the normalized sign-extended expression for this AddRec's Start.
1147static const SCEV *getSignExtendAddRecStart(const SCEVAddRecExpr *AR,
Chris Lattner229907c2011-07-18 04:54:35 +00001148 Type *Ty,
Andrew Trick812276e2011-05-31 21:17:47 +00001149 ScalarEvolution *SE) {
1150 const SCEV *PreStart = getPreStartForSignExtend(AR, Ty, SE);
1151 if (!PreStart)
1152 return SE->getSignExtendExpr(AR->getStart(), Ty);
1153
1154 return SE->getAddExpr(SE->getSignExtendExpr(AR->getStepRecurrence(*SE), Ty),
1155 SE->getSignExtendExpr(PreStart, Ty));
1156}
1157
Dan Gohmanaf752342009-07-07 17:06:11 +00001158const SCEV *ScalarEvolution::getSignExtendExpr(const SCEV *Op,
Chris Lattner229907c2011-07-18 04:54:35 +00001159 Type *Ty) {
Dan Gohmanb397e1a2009-04-21 01:07:12 +00001160 assert(getTypeSizeInBits(Op->getType()) < getTypeSizeInBits(Ty) &&
Dan Gohman413e91f2009-04-21 00:55:22 +00001161 "This is not an extending conversion!");
Dan Gohman194e42c2009-05-01 16:44:18 +00001162 assert(isSCEVable(Ty) &&
1163 "This is not a conversion to a SCEVable type!");
1164 Ty = getEffectiveSCEVType(Ty);
Dan Gohman413e91f2009-04-21 00:55:22 +00001165
Dan Gohman3423e722009-06-30 20:13:32 +00001166 // Fold if the operand is constant.
Dan Gohman5235cc22010-06-24 16:47:03 +00001167 if (const SCEVConstant *SC = dyn_cast<SCEVConstant>(Op))
1168 return getConstant(
Nuno Lopesab5c9242012-05-15 15:44:38 +00001169 cast<ConstantInt>(ConstantExpr::getSExt(SC->getValue(), Ty)));
Dan Gohmancb9e09a2007-06-15 14:38:12 +00001170
Dan Gohman79af8542009-04-22 16:20:48 +00001171 // sext(sext(x)) --> sext(x)
Dan Gohmana30370b2009-05-04 22:02:23 +00001172 if (const SCEVSignExtendExpr *SS = dyn_cast<SCEVSignExtendExpr>(Op))
Dan Gohman79af8542009-04-22 16:20:48 +00001173 return getSignExtendExpr(SS->getOperand(), Ty);
1174
Nick Lewyckye9ea75e2011-01-19 15:56:12 +00001175 // sext(zext(x)) --> zext(x)
1176 if (const SCEVZeroExtendExpr *SZ = dyn_cast<SCEVZeroExtendExpr>(Op))
1177 return getZeroExtendExpr(SZ->getOperand(), Ty);
1178
Dan Gohman74a0ba12009-07-13 20:55:53 +00001179 // Before doing any expensive analysis, check to see if we've already
1180 // computed a SCEV for this Op and Ty.
1181 FoldingSetNodeID ID;
1182 ID.AddInteger(scSignExtend);
1183 ID.AddPointer(Op);
1184 ID.AddPointer(Ty);
1185 void *IP = 0;
1186 if (const SCEV *S = UniqueSCEVs.FindNodeOrInsertPos(ID, IP)) return S;
1187
Nick Lewyckyb32c8942011-01-22 22:06:21 +00001188 // If the input value is provably positive, build a zext instead.
1189 if (isKnownNonNegative(Op))
1190 return getZeroExtendExpr(Op, Ty);
1191
Nick Lewyckybc98f5b2011-01-23 06:20:19 +00001192 // sext(trunc(x)) --> sext(x) or x or trunc(x)
1193 if (const SCEVTruncateExpr *ST = dyn_cast<SCEVTruncateExpr>(Op)) {
1194 // It's possible the bits taken off by the truncate were all sign bits. If
1195 // so, we should be able to simplify this further.
1196 const SCEV *X = ST->getOperand();
1197 ConstantRange CR = getSignedRange(X);
Nick Lewyckybc98f5b2011-01-23 06:20:19 +00001198 unsigned TruncBits = getTypeSizeInBits(ST->getType());
1199 unsigned NewBits = getTypeSizeInBits(Ty);
1200 if (CR.truncate(TruncBits).signExtend(NewBits).contains(
Nick Lewyckyd4192f72011-01-23 20:06:05 +00001201 CR.sextOrTrunc(NewBits)))
1202 return getTruncateOrSignExtend(X, Ty);
Nick Lewyckybc98f5b2011-01-23 06:20:19 +00001203 }
1204
Dan Gohman76466372009-04-27 20:16:15 +00001205 // If the input value is a chrec scev, and we can prove that the value
Dan Gohmancb9e09a2007-06-15 14:38:12 +00001206 // did not overflow the old, smaller, value, we can sign extend all of the
Dan Gohman76466372009-04-27 20:16:15 +00001207 // operands (often constants). This allows analysis of something like
Dan Gohmancb9e09a2007-06-15 14:38:12 +00001208 // this: for (signed char X = 0; X < 100; ++X) { int Y = X; }
Dan Gohmana30370b2009-05-04 22:02:23 +00001209 if (const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(Op))
Dan Gohman76466372009-04-27 20:16:15 +00001210 if (AR->isAffine()) {
Dan Gohmane65c9172009-07-13 21:35:55 +00001211 const SCEV *Start = AR->getStart();
1212 const SCEV *Step = AR->getStepRecurrence(*this);
1213 unsigned BitWidth = getTypeSizeInBits(AR->getType());
1214 const Loop *L = AR->getLoop();
1215
Dan Gohman62ef6a72009-07-25 01:22:26 +00001216 // If we have special knowledge that this addrec won't overflow,
1217 // we don't need to do any further analysis.
Andrew Trick8b55b732011-03-14 16:50:06 +00001218 if (AR->getNoWrapFlags(SCEV::FlagNSW))
Andrew Trick812276e2011-05-31 21:17:47 +00001219 return getAddRecExpr(getSignExtendAddRecStart(AR, Ty, this),
Dan Gohman62ef6a72009-07-25 01:22:26 +00001220 getSignExtendExpr(Step, Ty),
Andrew Trickf6b01ff2011-03-15 00:37:00 +00001221 L, SCEV::FlagNSW);
Dan Gohman62ef6a72009-07-25 01:22:26 +00001222
Dan Gohman76466372009-04-27 20:16:15 +00001223 // Check whether the backedge-taken count is SCEVCouldNotCompute.
1224 // Note that this serves two purposes: It filters out loops that are
1225 // simply not analyzable, and it covers the case where this code is
1226 // being called from within backedge-taken count analysis, such that
1227 // attempting to ask for the backedge-taken count would likely result
1228 // in infinite recursion. In the later case, the analysis code will
1229 // cope with a conservative value, and it will take care to purge
1230 // that value once it has finished.
Dan Gohmane65c9172009-07-13 21:35:55 +00001231 const SCEV *MaxBECount = getMaxBackedgeTakenCount(L);
Dan Gohman2b8da352009-04-30 20:47:05 +00001232 if (!isa<SCEVCouldNotCompute>(MaxBECount)) {
Dan Gohman95c5b0e2009-04-29 01:54:20 +00001233 // Manually compute the final value for AR, checking for
Dan Gohman494dac32009-04-29 22:28:28 +00001234 // overflow.
Dan Gohman76466372009-04-27 20:16:15 +00001235
1236 // Check whether the backedge-taken count can be losslessly casted to
Dan Gohman494dac32009-04-29 22:28:28 +00001237 // the addrec's type. The count is always unsigned.
Dan Gohmanaf752342009-07-07 17:06:11 +00001238 const SCEV *CastedMaxBECount =
Dan Gohman2b8da352009-04-30 20:47:05 +00001239 getTruncateOrZeroExtend(MaxBECount, Start->getType());
Dan Gohmanaf752342009-07-07 17:06:11 +00001240 const SCEV *RecastedMaxBECount =
Dan Gohman4fc36682009-05-18 15:58:39 +00001241 getTruncateOrZeroExtend(CastedMaxBECount, MaxBECount->getType());
1242 if (MaxBECount == RecastedMaxBECount) {
Chris Lattner229907c2011-07-18 04:54:35 +00001243 Type *WideTy = IntegerType::get(getContext(), BitWidth * 2);
Dan Gohman2b8da352009-04-30 20:47:05 +00001244 // Check whether Start+Step*MaxBECount has no signed overflow.
Dan Gohman007f5042010-02-24 19:31:06 +00001245 const SCEV *SMul = getMulExpr(CastedMaxBECount, Step);
Nuno Lopesc2a170e2012-05-15 20:20:14 +00001246 const SCEV *SAdd = getSignExtendExpr(getAddExpr(Start, SMul), WideTy);
1247 const SCEV *WideStart = getSignExtendExpr(Start, WideTy);
1248 const SCEV *WideMaxBECount =
1249 getZeroExtendExpr(CastedMaxBECount, WideTy);
Dan Gohmanaf752342009-07-07 17:06:11 +00001250 const SCEV *OperandExtendedAdd =
Nuno Lopesc2a170e2012-05-15 20:20:14 +00001251 getAddExpr(WideStart,
1252 getMulExpr(WideMaxBECount,
Dan Gohman4fc36682009-05-18 15:58:39 +00001253 getSignExtendExpr(Step, WideTy)));
Nuno Lopesc2a170e2012-05-15 20:20:14 +00001254 if (SAdd == OperandExtendedAdd) {
Andrew Trickf6b01ff2011-03-15 00:37:00 +00001255 // Cache knowledge of AR NSW, which is propagated to this AddRec.
1256 const_cast<SCEVAddRecExpr *>(AR)->setNoWrapFlags(SCEV::FlagNSW);
Dan Gohman494dac32009-04-29 22:28:28 +00001257 // Return the expression with the addrec on the outside.
Andrew Trick812276e2011-05-31 21:17:47 +00001258 return getAddRecExpr(getSignExtendAddRecStart(AR, Ty, this),
Dan Gohman494dac32009-04-29 22:28:28 +00001259 getSignExtendExpr(Step, Ty),
Andrew Trickf6b01ff2011-03-15 00:37:00 +00001260 L, AR->getNoWrapFlags());
1261 }
Dan Gohman8c129d72009-07-16 17:34:36 +00001262 // Similar to above, only this time treat the step value as unsigned.
1263 // This covers loops that count up with an unsigned step.
Dan Gohman8c129d72009-07-16 17:34:36 +00001264 OperandExtendedAdd =
Nuno Lopesc2a170e2012-05-15 20:20:14 +00001265 getAddExpr(WideStart,
1266 getMulExpr(WideMaxBECount,
Dan Gohman8c129d72009-07-16 17:34:36 +00001267 getZeroExtendExpr(Step, WideTy)));
Nuno Lopesc2a170e2012-05-15 20:20:14 +00001268 if (SAdd == OperandExtendedAdd) {
Andrew Trickf6b01ff2011-03-15 00:37:00 +00001269 // Cache knowledge of AR NSW, which is propagated to this AddRec.
1270 const_cast<SCEVAddRecExpr *>(AR)->setNoWrapFlags(SCEV::FlagNSW);
Dan Gohman8c129d72009-07-16 17:34:36 +00001271 // Return the expression with the addrec on the outside.
Andrew Trick812276e2011-05-31 21:17:47 +00001272 return getAddRecExpr(getSignExtendAddRecStart(AR, Ty, this),
Dan Gohman8c129d72009-07-16 17:34:36 +00001273 getZeroExtendExpr(Step, Ty),
Andrew Trickf6b01ff2011-03-15 00:37:00 +00001274 L, AR->getNoWrapFlags());
1275 }
Dan Gohmane65c9172009-07-13 21:35:55 +00001276 }
1277
1278 // If the backedge is guarded by a comparison with the pre-inc value
1279 // the addrec is safe. Also, if the entry is guarded by a comparison
1280 // with the start value and the backedge is guarded by a comparison
1281 // with the post-inc value, the addrec is safe.
Andrew Trick812276e2011-05-31 21:17:47 +00001282 ICmpInst::Predicate Pred;
1283 const SCEV *OverflowLimit = getOverflowLimitForStep(Step, &Pred, this);
1284 if (OverflowLimit &&
1285 (isLoopBackedgeGuardedByCond(L, Pred, AR, OverflowLimit) ||
1286 (isLoopEntryGuardedByCond(L, Pred, Start, OverflowLimit) &&
1287 isLoopBackedgeGuardedByCond(L, Pred, AR->getPostIncExpr(*this),
1288 OverflowLimit)))) {
1289 // Cache knowledge of AR NSW, then propagate NSW to the wide AddRec.
1290 const_cast<SCEVAddRecExpr *>(AR)->setNoWrapFlags(SCEV::FlagNSW);
1291 return getAddRecExpr(getSignExtendAddRecStart(AR, Ty, this),
1292 getSignExtendExpr(Step, Ty),
1293 L, AR->getNoWrapFlags());
Dan Gohman76466372009-04-27 20:16:15 +00001294 }
1295 }
1296 }
Dan Gohmancb9e09a2007-06-15 14:38:12 +00001297
Dan Gohman74a0ba12009-07-13 20:55:53 +00001298 // The cast wasn't folded; create an explicit cast node.
1299 // Recompute the insert position, as it may have been invalidated.
Dan Gohmanc5c85c02009-06-27 21:21:31 +00001300 if (const SCEV *S = UniqueSCEVs.FindNodeOrInsertPos(ID, IP)) return S;
Dan Gohman01c65a22010-03-18 18:49:47 +00001301 SCEV *S = new (SCEVAllocator) SCEVSignExtendExpr(ID.Intern(SCEVAllocator),
1302 Op, Ty);
Dan Gohmanc5c85c02009-06-27 21:21:31 +00001303 UniqueSCEVs.InsertNode(S, IP);
1304 return S;
Dan Gohmancb9e09a2007-06-15 14:38:12 +00001305}
1306
Dan Gohman8db2edc2009-06-13 15:56:47 +00001307/// getAnyExtendExpr - Return a SCEV for the given operand extended with
1308/// unspecified bits out to the given type.
1309///
Dan Gohmanaf752342009-07-07 17:06:11 +00001310const SCEV *ScalarEvolution::getAnyExtendExpr(const SCEV *Op,
Chris Lattner229907c2011-07-18 04:54:35 +00001311 Type *Ty) {
Dan Gohman8db2edc2009-06-13 15:56:47 +00001312 assert(getTypeSizeInBits(Op->getType()) < getTypeSizeInBits(Ty) &&
1313 "This is not an extending conversion!");
1314 assert(isSCEVable(Ty) &&
1315 "This is not a conversion to a SCEVable type!");
1316 Ty = getEffectiveSCEVType(Ty);
1317
1318 // Sign-extend negative constants.
1319 if (const SCEVConstant *SC = dyn_cast<SCEVConstant>(Op))
1320 if (SC->getValue()->getValue().isNegative())
1321 return getSignExtendExpr(Op, Ty);
1322
1323 // Peel off a truncate cast.
1324 if (const SCEVTruncateExpr *T = dyn_cast<SCEVTruncateExpr>(Op)) {
Dan Gohmanaf752342009-07-07 17:06:11 +00001325 const SCEV *NewOp = T->getOperand();
Dan Gohman8db2edc2009-06-13 15:56:47 +00001326 if (getTypeSizeInBits(NewOp->getType()) < getTypeSizeInBits(Ty))
1327 return getAnyExtendExpr(NewOp, Ty);
1328 return getTruncateOrNoop(NewOp, Ty);
1329 }
1330
1331 // Next try a zext cast. If the cast is folded, use it.
Dan Gohmanaf752342009-07-07 17:06:11 +00001332 const SCEV *ZExt = getZeroExtendExpr(Op, Ty);
Dan Gohman8db2edc2009-06-13 15:56:47 +00001333 if (!isa<SCEVZeroExtendExpr>(ZExt))
1334 return ZExt;
1335
1336 // Next try a sext cast. If the cast is folded, use it.
Dan Gohmanaf752342009-07-07 17:06:11 +00001337 const SCEV *SExt = getSignExtendExpr(Op, Ty);
Dan Gohman8db2edc2009-06-13 15:56:47 +00001338 if (!isa<SCEVSignExtendExpr>(SExt))
1339 return SExt;
1340
Dan Gohman51ad99d2010-01-21 02:09:26 +00001341 // Force the cast to be folded into the operands of an addrec.
1342 if (const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(Op)) {
1343 SmallVector<const SCEV *, 4> Ops;
1344 for (SCEVAddRecExpr::op_iterator I = AR->op_begin(), E = AR->op_end();
1345 I != E; ++I)
1346 Ops.push_back(getAnyExtendExpr(*I, Ty));
Andrew Trickf6b01ff2011-03-15 00:37:00 +00001347 return getAddRecExpr(Ops, AR->getLoop(), SCEV::FlagNW);
Dan Gohman51ad99d2010-01-21 02:09:26 +00001348 }
1349
Dan Gohman8db2edc2009-06-13 15:56:47 +00001350 // If the expression is obviously signed, use the sext cast value.
1351 if (isa<SCEVSMaxExpr>(Op))
1352 return SExt;
1353
1354 // Absent any other information, use the zext cast value.
1355 return ZExt;
1356}
1357
Dan Gohman038d02e2009-06-14 22:58:51 +00001358/// CollectAddOperandsWithScales - Process the given Ops list, which is
1359/// a list of operands to be added under the given scale, update the given
1360/// map. This is a helper function for getAddRecExpr. As an example of
1361/// what it does, given a sequence of operands that would form an add
1362/// expression like this:
1363///
1364/// m + n + 13 + (A * (o + p + (B * q + m + 29))) + r + (-1 * r)
1365///
1366/// where A and B are constants, update the map with these values:
1367///
1368/// (m, 1+A*B), (n, 1), (o, A), (p, A), (q, A*B), (r, 0)
1369///
1370/// and add 13 + A*B*29 to AccumulatedConstant.
1371/// This will allow getAddRecExpr to produce this:
1372///
1373/// 13+A*B*29 + n + (m * (1+A*B)) + ((o + p) * A) + (q * A*B)
1374///
1375/// This form often exposes folding opportunities that are hidden in
1376/// the original operand list.
1377///
Sylvestre Ledru91ce36c2012-09-27 10:14:43 +00001378/// Return true iff it appears that any interesting folding opportunities
Dan Gohman038d02e2009-06-14 22:58:51 +00001379/// may be exposed. This helps getAddRecExpr short-circuit extra work in
1380/// the common case where no interesting opportunities are present, and
1381/// is also used as a check to avoid infinite recursion.
1382///
1383static bool
Dan Gohmanaf752342009-07-07 17:06:11 +00001384CollectAddOperandsWithScales(DenseMap<const SCEV *, APInt> &M,
Craig Topper2cd5ff82013-07-11 16:22:38 +00001385 SmallVectorImpl<const SCEV *> &NewOps,
Dan Gohman038d02e2009-06-14 22:58:51 +00001386 APInt &AccumulatedConstant,
Dan Gohman00524492010-03-18 01:17:13 +00001387 const SCEV *const *Ops, size_t NumOperands,
Dan Gohman038d02e2009-06-14 22:58:51 +00001388 const APInt &Scale,
1389 ScalarEvolution &SE) {
1390 bool Interesting = false;
1391
Dan Gohman45073042010-06-18 19:12:32 +00001392 // Iterate over the add operands. They are sorted, with constants first.
1393 unsigned i = 0;
1394 while (const SCEVConstant *C = dyn_cast<SCEVConstant>(Ops[i])) {
1395 ++i;
1396 // Pull a buried constant out to the outside.
1397 if (Scale != 1 || AccumulatedConstant != 0 || C->getValue()->isZero())
1398 Interesting = true;
1399 AccumulatedConstant += Scale * C->getValue()->getValue();
1400 }
1401
1402 // Next comes everything else. We're especially interested in multiplies
1403 // here, but they're in the middle, so just visit the rest with one loop.
1404 for (; i != NumOperands; ++i) {
Dan Gohman038d02e2009-06-14 22:58:51 +00001405 const SCEVMulExpr *Mul = dyn_cast<SCEVMulExpr>(Ops[i]);
1406 if (Mul && isa<SCEVConstant>(Mul->getOperand(0))) {
1407 APInt NewScale =
1408 Scale * cast<SCEVConstant>(Mul->getOperand(0))->getValue()->getValue();
1409 if (Mul->getNumOperands() == 2 && isa<SCEVAddExpr>(Mul->getOperand(1))) {
1410 // A multiplication of a constant with another add; recurse.
Dan Gohman00524492010-03-18 01:17:13 +00001411 const SCEVAddExpr *Add = cast<SCEVAddExpr>(Mul->getOperand(1));
Dan Gohman038d02e2009-06-14 22:58:51 +00001412 Interesting |=
1413 CollectAddOperandsWithScales(M, NewOps, AccumulatedConstant,
Dan Gohman00524492010-03-18 01:17:13 +00001414 Add->op_begin(), Add->getNumOperands(),
Dan Gohman038d02e2009-06-14 22:58:51 +00001415 NewScale, SE);
1416 } else {
1417 // A multiplication of a constant with some other value. Update
1418 // the map.
Dan Gohmanaf752342009-07-07 17:06:11 +00001419 SmallVector<const SCEV *, 4> MulOps(Mul->op_begin()+1, Mul->op_end());
1420 const SCEV *Key = SE.getMulExpr(MulOps);
1421 std::pair<DenseMap<const SCEV *, APInt>::iterator, bool> Pair =
Dan Gohmane00beaa2009-06-29 18:25:52 +00001422 M.insert(std::make_pair(Key, NewScale));
Dan Gohman038d02e2009-06-14 22:58:51 +00001423 if (Pair.second) {
Dan Gohman038d02e2009-06-14 22:58:51 +00001424 NewOps.push_back(Pair.first->first);
1425 } else {
1426 Pair.first->second += NewScale;
1427 // The map already had an entry for this value, which may indicate
1428 // a folding opportunity.
1429 Interesting = true;
1430 }
1431 }
Dan Gohman038d02e2009-06-14 22:58:51 +00001432 } else {
1433 // An ordinary operand. Update the map.
Dan Gohmanaf752342009-07-07 17:06:11 +00001434 std::pair<DenseMap<const SCEV *, APInt>::iterator, bool> Pair =
Dan Gohmane00beaa2009-06-29 18:25:52 +00001435 M.insert(std::make_pair(Ops[i], Scale));
Dan Gohman038d02e2009-06-14 22:58:51 +00001436 if (Pair.second) {
Dan Gohman038d02e2009-06-14 22:58:51 +00001437 NewOps.push_back(Pair.first->first);
1438 } else {
1439 Pair.first->second += Scale;
1440 // The map already had an entry for this value, which may indicate
1441 // a folding opportunity.
1442 Interesting = true;
1443 }
1444 }
1445 }
1446
1447 return Interesting;
1448}
1449
1450namespace {
1451 struct APIntCompare {
1452 bool operator()(const APInt &LHS, const APInt &RHS) const {
1453 return LHS.ult(RHS);
1454 }
1455 };
1456}
1457
Dan Gohman4d5435d2009-05-24 23:45:28 +00001458/// getAddExpr - Get a canonical add expression, or something simpler if
1459/// possible.
Dan Gohman816fe0a2009-10-09 00:10:36 +00001460const SCEV *ScalarEvolution::getAddExpr(SmallVectorImpl<const SCEV *> &Ops,
Andrew Trick8b55b732011-03-14 16:50:06 +00001461 SCEV::NoWrapFlags Flags) {
1462 assert(!(Flags & ~(SCEV::FlagNUW | SCEV::FlagNSW)) &&
1463 "only nuw or nsw allowed");
Chris Lattnerd934c702004-04-02 20:23:17 +00001464 assert(!Ops.empty() && "Cannot get empty add!");
Chris Lattner74498e12004-04-07 16:16:11 +00001465 if (Ops.size() == 1) return Ops[0];
Dan Gohmand33f36e2009-05-18 15:44:58 +00001466#ifndef NDEBUG
Chris Lattner229907c2011-07-18 04:54:35 +00001467 Type *ETy = getEffectiveSCEVType(Ops[0]->getType());
Dan Gohmand33f36e2009-05-18 15:44:58 +00001468 for (unsigned i = 1, e = Ops.size(); i != e; ++i)
Dan Gohman9136d9f2010-06-18 19:09:27 +00001469 assert(getEffectiveSCEVType(Ops[i]->getType()) == ETy &&
Dan Gohmand33f36e2009-05-18 15:44:58 +00001470 "SCEVAddExpr operand types don't match!");
1471#endif
Chris Lattnerd934c702004-04-02 20:23:17 +00001472
Andrew Trick8b55b732011-03-14 16:50:06 +00001473 // If FlagNSW is true and all the operands are non-negative, infer FlagNUW.
Andrew Trickf6b01ff2011-03-15 00:37:00 +00001474 // And vice-versa.
1475 int SignOrUnsignMask = SCEV::FlagNUW | SCEV::FlagNSW;
1476 SCEV::NoWrapFlags SignOrUnsignWrap = maskFlags(Flags, SignOrUnsignMask);
1477 if (SignOrUnsignWrap && (SignOrUnsignWrap != SignOrUnsignMask)) {
Dan Gohman51ad99d2010-01-21 02:09:26 +00001478 bool All = true;
Dan Gohman74c61502010-08-16 16:27:53 +00001479 for (SmallVectorImpl<const SCEV *>::const_iterator I = Ops.begin(),
1480 E = Ops.end(); I != E; ++I)
1481 if (!isKnownNonNegative(*I)) {
Dan Gohman51ad99d2010-01-21 02:09:26 +00001482 All = false;
1483 break;
1484 }
Andrew Trickf6b01ff2011-03-15 00:37:00 +00001485 if (All) Flags = setFlags(Flags, (SCEV::NoWrapFlags)SignOrUnsignMask);
Dan Gohman51ad99d2010-01-21 02:09:26 +00001486 }
1487
Chris Lattnerd934c702004-04-02 20:23:17 +00001488 // Sort by complexity, this groups all similar expression types together.
Dan Gohman9ba542c2009-05-07 14:39:04 +00001489 GroupByComplexity(Ops, LI);
Chris Lattnerd934c702004-04-02 20:23:17 +00001490
1491 // If there are any constants, fold them together.
1492 unsigned Idx = 0;
Dan Gohmana30370b2009-05-04 22:02:23 +00001493 if (const SCEVConstant *LHSC = dyn_cast<SCEVConstant>(Ops[0])) {
Chris Lattnerd934c702004-04-02 20:23:17 +00001494 ++Idx;
Chris Lattner74498e12004-04-07 16:16:11 +00001495 assert(Idx < Ops.size());
Dan Gohmana30370b2009-05-04 22:02:23 +00001496 while (const SCEVConstant *RHSC = dyn_cast<SCEVConstant>(Ops[Idx])) {
Chris Lattnerd934c702004-04-02 20:23:17 +00001497 // We found two constants, fold them together!
Dan Gohman0652fd52009-06-14 22:47:23 +00001498 Ops[0] = getConstant(LHSC->getValue()->getValue() +
1499 RHSC->getValue()->getValue());
Dan Gohman011cf682009-06-14 22:53:57 +00001500 if (Ops.size() == 2) return Ops[0];
Nick Lewycky1c44ebc2008-02-20 06:48:22 +00001501 Ops.erase(Ops.begin()+1); // Erase the folded element
Nick Lewycky1c44ebc2008-02-20 06:48:22 +00001502 LHSC = cast<SCEVConstant>(Ops[0]);
Chris Lattnerd934c702004-04-02 20:23:17 +00001503 }
1504
1505 // If we are left with a constant zero being added, strip it off.
Dan Gohmanebbd05f2010-04-12 23:08:18 +00001506 if (LHSC->getValue()->isZero()) {
Chris Lattnerd934c702004-04-02 20:23:17 +00001507 Ops.erase(Ops.begin());
1508 --Idx;
1509 }
Chris Lattnerd934c702004-04-02 20:23:17 +00001510
Dan Gohmanebbd05f2010-04-12 23:08:18 +00001511 if (Ops.size() == 1) return Ops[0];
1512 }
Misha Brukman01808ca2005-04-21 21:13:18 +00001513
Dan Gohman15871f22010-08-27 21:39:59 +00001514 // Okay, check to see if the same value occurs in the operand list more than
1515 // once. If so, merge them together into an multiply expression. Since we
1516 // sorted the list, these values are required to be adjacent.
Chris Lattner229907c2011-07-18 04:54:35 +00001517 Type *Ty = Ops[0]->getType();
Dan Gohmane67b2872010-08-12 14:46:54 +00001518 bool FoundMatch = false;
Dan Gohman15871f22010-08-27 21:39:59 +00001519 for (unsigned i = 0, e = Ops.size(); i != e-1; ++i)
Chris Lattnerd934c702004-04-02 20:23:17 +00001520 if (Ops[i] == Ops[i+1]) { // X + Y + Y --> X + Y*2
Dan Gohman15871f22010-08-27 21:39:59 +00001521 // Scan ahead to count how many equal operands there are.
1522 unsigned Count = 2;
1523 while (i+Count != e && Ops[i+Count] == Ops[i])
1524 ++Count;
1525 // Merge the values into a multiply.
1526 const SCEV *Scale = getConstant(Ty, Count);
1527 const SCEV *Mul = getMulExpr(Scale, Ops[i]);
1528 if (Ops.size() == Count)
Chris Lattnerd934c702004-04-02 20:23:17 +00001529 return Mul;
Dan Gohmane67b2872010-08-12 14:46:54 +00001530 Ops[i] = Mul;
Dan Gohman15871f22010-08-27 21:39:59 +00001531 Ops.erase(Ops.begin()+i+1, Ops.begin()+i+Count);
Dan Gohmanfe22f1d2010-08-28 00:39:27 +00001532 --i; e -= Count - 1;
Dan Gohmane67b2872010-08-12 14:46:54 +00001533 FoundMatch = true;
Chris Lattnerd934c702004-04-02 20:23:17 +00001534 }
Dan Gohmane67b2872010-08-12 14:46:54 +00001535 if (FoundMatch)
Andrew Trick8b55b732011-03-14 16:50:06 +00001536 return getAddExpr(Ops, Flags);
Chris Lattnerd934c702004-04-02 20:23:17 +00001537
Dan Gohman2e55cc52009-05-08 21:03:19 +00001538 // Check for truncates. If all the operands are truncated from the same
1539 // type, see if factoring out the truncate would permit the result to be
1540 // folded. eg., trunc(x) + m*trunc(n) --> trunc(x + trunc(m)*n)
1541 // if the contents of the resulting outer trunc fold to something simple.
1542 for (; Idx < Ops.size() && isa<SCEVTruncateExpr>(Ops[Idx]); ++Idx) {
1543 const SCEVTruncateExpr *Trunc = cast<SCEVTruncateExpr>(Ops[Idx]);
Chris Lattner229907c2011-07-18 04:54:35 +00001544 Type *DstType = Trunc->getType();
1545 Type *SrcType = Trunc->getOperand()->getType();
Dan Gohmanaf752342009-07-07 17:06:11 +00001546 SmallVector<const SCEV *, 8> LargeOps;
Dan Gohman2e55cc52009-05-08 21:03:19 +00001547 bool Ok = true;
1548 // Check all the operands to see if they can be represented in the
1549 // source type of the truncate.
1550 for (unsigned i = 0, e = Ops.size(); i != e; ++i) {
1551 if (const SCEVTruncateExpr *T = dyn_cast<SCEVTruncateExpr>(Ops[i])) {
1552 if (T->getOperand()->getType() != SrcType) {
1553 Ok = false;
1554 break;
1555 }
1556 LargeOps.push_back(T->getOperand());
1557 } else if (const SCEVConstant *C = dyn_cast<SCEVConstant>(Ops[i])) {
Dan Gohmanff3174e2010-04-23 01:51:29 +00001558 LargeOps.push_back(getAnyExtendExpr(C, SrcType));
Dan Gohman2e55cc52009-05-08 21:03:19 +00001559 } else if (const SCEVMulExpr *M = dyn_cast<SCEVMulExpr>(Ops[i])) {
Dan Gohmanaf752342009-07-07 17:06:11 +00001560 SmallVector<const SCEV *, 8> LargeMulOps;
Dan Gohman2e55cc52009-05-08 21:03:19 +00001561 for (unsigned j = 0, f = M->getNumOperands(); j != f && Ok; ++j) {
1562 if (const SCEVTruncateExpr *T =
1563 dyn_cast<SCEVTruncateExpr>(M->getOperand(j))) {
1564 if (T->getOperand()->getType() != SrcType) {
1565 Ok = false;
1566 break;
1567 }
1568 LargeMulOps.push_back(T->getOperand());
1569 } else if (const SCEVConstant *C =
1570 dyn_cast<SCEVConstant>(M->getOperand(j))) {
Dan Gohmanff3174e2010-04-23 01:51:29 +00001571 LargeMulOps.push_back(getAnyExtendExpr(C, SrcType));
Dan Gohman2e55cc52009-05-08 21:03:19 +00001572 } else {
1573 Ok = false;
1574 break;
1575 }
1576 }
1577 if (Ok)
1578 LargeOps.push_back(getMulExpr(LargeMulOps));
1579 } else {
1580 Ok = false;
1581 break;
1582 }
1583 }
1584 if (Ok) {
1585 // Evaluate the expression in the larger type.
Andrew Trick8b55b732011-03-14 16:50:06 +00001586 const SCEV *Fold = getAddExpr(LargeOps, Flags);
Dan Gohman2e55cc52009-05-08 21:03:19 +00001587 // If it folds to something simple, use it. Otherwise, don't.
1588 if (isa<SCEVConstant>(Fold) || isa<SCEVUnknown>(Fold))
1589 return getTruncateExpr(Fold, DstType);
1590 }
1591 }
1592
1593 // Skip past any other cast SCEVs.
Dan Gohmaneed125f2007-06-18 19:30:09 +00001594 while (Idx < Ops.size() && Ops[Idx]->getSCEVType() < scAddExpr)
1595 ++Idx;
1596
1597 // If there are add operands they would be next.
Chris Lattnerd934c702004-04-02 20:23:17 +00001598 if (Idx < Ops.size()) {
1599 bool DeletedAdd = false;
Dan Gohmana30370b2009-05-04 22:02:23 +00001600 while (const SCEVAddExpr *Add = dyn_cast<SCEVAddExpr>(Ops[Idx])) {
Chris Lattnerd934c702004-04-02 20:23:17 +00001601 // If we have an add, expand the add operands onto the end of the operands
1602 // list.
Chris Lattnerd934c702004-04-02 20:23:17 +00001603 Ops.erase(Ops.begin()+Idx);
Dan Gohmandd41bba2010-06-21 19:47:52 +00001604 Ops.append(Add->op_begin(), Add->op_end());
Chris Lattnerd934c702004-04-02 20:23:17 +00001605 DeletedAdd = true;
1606 }
1607
1608 // If we deleted at least one add, we added operands to the end of the list,
1609 // and they are not necessarily sorted. Recurse to resort and resimplify
Dan Gohman8b0a4192010-03-01 17:49:51 +00001610 // any operands we just acquired.
Chris Lattnerd934c702004-04-02 20:23:17 +00001611 if (DeletedAdd)
Dan Gohmana37eaf22007-10-22 18:31:58 +00001612 return getAddExpr(Ops);
Chris Lattnerd934c702004-04-02 20:23:17 +00001613 }
1614
1615 // Skip over the add expression until we get to a multiply.
1616 while (Idx < Ops.size() && Ops[Idx]->getSCEVType() < scMulExpr)
1617 ++Idx;
1618
Dan Gohman038d02e2009-06-14 22:58:51 +00001619 // Check to see if there are any folding opportunities present with
1620 // operands multiplied by constant values.
1621 if (Idx < Ops.size() && isa<SCEVMulExpr>(Ops[Idx])) {
1622 uint64_t BitWidth = getTypeSizeInBits(Ty);
Dan Gohmanaf752342009-07-07 17:06:11 +00001623 DenseMap<const SCEV *, APInt> M;
1624 SmallVector<const SCEV *, 8> NewOps;
Dan Gohman038d02e2009-06-14 22:58:51 +00001625 APInt AccumulatedConstant(BitWidth, 0);
1626 if (CollectAddOperandsWithScales(M, NewOps, AccumulatedConstant,
Dan Gohman00524492010-03-18 01:17:13 +00001627 Ops.data(), Ops.size(),
1628 APInt(BitWidth, 1), *this)) {
Dan Gohman038d02e2009-06-14 22:58:51 +00001629 // Some interesting folding opportunity is present, so its worthwhile to
1630 // re-generate the operands list. Group the operands by constant scale,
1631 // to avoid multiplying by the same constant scale multiple times.
Dan Gohmanaf752342009-07-07 17:06:11 +00001632 std::map<APInt, SmallVector<const SCEV *, 4>, APIntCompare> MulOpLists;
Craig Topper31ee5862013-07-03 15:07:05 +00001633 for (SmallVectorImpl<const SCEV *>::const_iterator I = NewOps.begin(),
Dan Gohman038d02e2009-06-14 22:58:51 +00001634 E = NewOps.end(); I != E; ++I)
1635 MulOpLists[M.find(*I)->second].push_back(*I);
1636 // Re-generate the operands list.
1637 Ops.clear();
1638 if (AccumulatedConstant != 0)
1639 Ops.push_back(getConstant(AccumulatedConstant));
Dan Gohmance973df2009-06-24 04:48:43 +00001640 for (std::map<APInt, SmallVector<const SCEV *, 4>, APIntCompare>::iterator
1641 I = MulOpLists.begin(), E = MulOpLists.end(); I != E; ++I)
Dan Gohman038d02e2009-06-14 22:58:51 +00001642 if (I->first != 0)
Dan Gohmance973df2009-06-24 04:48:43 +00001643 Ops.push_back(getMulExpr(getConstant(I->first),
1644 getAddExpr(I->second)));
Dan Gohman038d02e2009-06-14 22:58:51 +00001645 if (Ops.empty())
Dan Gohman1d2ded72010-05-03 22:09:21 +00001646 return getConstant(Ty, 0);
Dan Gohman038d02e2009-06-14 22:58:51 +00001647 if (Ops.size() == 1)
1648 return Ops[0];
1649 return getAddExpr(Ops);
1650 }
1651 }
1652
Chris Lattnerd934c702004-04-02 20:23:17 +00001653 // If we are adding something to a multiply expression, make sure the
1654 // something is not already an operand of the multiply. If so, merge it into
1655 // the multiply.
1656 for (; Idx < Ops.size() && isa<SCEVMulExpr>(Ops[Idx]); ++Idx) {
Dan Gohman48f82222009-05-04 22:30:44 +00001657 const SCEVMulExpr *Mul = cast<SCEVMulExpr>(Ops[Idx]);
Chris Lattnerd934c702004-04-02 20:23:17 +00001658 for (unsigned MulOp = 0, e = Mul->getNumOperands(); MulOp != e; ++MulOp) {
Dan Gohman48f82222009-05-04 22:30:44 +00001659 const SCEV *MulOpSCEV = Mul->getOperand(MulOp);
Dan Gohman157847f2010-08-12 14:52:55 +00001660 if (isa<SCEVConstant>(MulOpSCEV))
1661 continue;
Chris Lattnerd934c702004-04-02 20:23:17 +00001662 for (unsigned AddOp = 0, e = Ops.size(); AddOp != e; ++AddOp)
Dan Gohman157847f2010-08-12 14:52:55 +00001663 if (MulOpSCEV == Ops[AddOp]) {
Chris Lattnerd934c702004-04-02 20:23:17 +00001664 // Fold W + X + (X * Y * Z) --> W + (X * ((Y*Z)+1))
Dan Gohmanaf752342009-07-07 17:06:11 +00001665 const SCEV *InnerMul = Mul->getOperand(MulOp == 0);
Chris Lattnerd934c702004-04-02 20:23:17 +00001666 if (Mul->getNumOperands() != 2) {
1667 // If the multiply has more than two operands, we must get the
1668 // Y*Z term.
Dan Gohman797a1db2010-08-16 16:57:24 +00001669 SmallVector<const SCEV *, 4> MulOps(Mul->op_begin(),
1670 Mul->op_begin()+MulOp);
1671 MulOps.append(Mul->op_begin()+MulOp+1, Mul->op_end());
Dan Gohmana37eaf22007-10-22 18:31:58 +00001672 InnerMul = getMulExpr(MulOps);
Chris Lattnerd934c702004-04-02 20:23:17 +00001673 }
Dan Gohman1d2ded72010-05-03 22:09:21 +00001674 const SCEV *One = getConstant(Ty, 1);
Dan Gohmancf32f2b2010-08-13 20:17:14 +00001675 const SCEV *AddOne = getAddExpr(One, InnerMul);
Dan Gohman157847f2010-08-12 14:52:55 +00001676 const SCEV *OuterMul = getMulExpr(AddOne, MulOpSCEV);
Chris Lattnerd934c702004-04-02 20:23:17 +00001677 if (Ops.size() == 2) return OuterMul;
1678 if (AddOp < Idx) {
1679 Ops.erase(Ops.begin()+AddOp);
1680 Ops.erase(Ops.begin()+Idx-1);
1681 } else {
1682 Ops.erase(Ops.begin()+Idx);
1683 Ops.erase(Ops.begin()+AddOp-1);
1684 }
1685 Ops.push_back(OuterMul);
Dan Gohmana37eaf22007-10-22 18:31:58 +00001686 return getAddExpr(Ops);
Chris Lattnerd934c702004-04-02 20:23:17 +00001687 }
Misha Brukman01808ca2005-04-21 21:13:18 +00001688
Chris Lattnerd934c702004-04-02 20:23:17 +00001689 // Check this multiply against other multiplies being added together.
1690 for (unsigned OtherMulIdx = Idx+1;
1691 OtherMulIdx < Ops.size() && isa<SCEVMulExpr>(Ops[OtherMulIdx]);
1692 ++OtherMulIdx) {
Dan Gohman48f82222009-05-04 22:30:44 +00001693 const SCEVMulExpr *OtherMul = cast<SCEVMulExpr>(Ops[OtherMulIdx]);
Chris Lattnerd934c702004-04-02 20:23:17 +00001694 // If MulOp occurs in OtherMul, we can fold the two multiplies
1695 // together.
1696 for (unsigned OMulOp = 0, e = OtherMul->getNumOperands();
1697 OMulOp != e; ++OMulOp)
1698 if (OtherMul->getOperand(OMulOp) == MulOpSCEV) {
1699 // Fold X + (A*B*C) + (A*D*E) --> X + (A*(B*C+D*E))
Dan Gohmanaf752342009-07-07 17:06:11 +00001700 const SCEV *InnerMul1 = Mul->getOperand(MulOp == 0);
Chris Lattnerd934c702004-04-02 20:23:17 +00001701 if (Mul->getNumOperands() != 2) {
Dan Gohmance973df2009-06-24 04:48:43 +00001702 SmallVector<const SCEV *, 4> MulOps(Mul->op_begin(),
Dan Gohman797a1db2010-08-16 16:57:24 +00001703 Mul->op_begin()+MulOp);
1704 MulOps.append(Mul->op_begin()+MulOp+1, Mul->op_end());
Dan Gohmana37eaf22007-10-22 18:31:58 +00001705 InnerMul1 = getMulExpr(MulOps);
Chris Lattnerd934c702004-04-02 20:23:17 +00001706 }
Dan Gohmanaf752342009-07-07 17:06:11 +00001707 const SCEV *InnerMul2 = OtherMul->getOperand(OMulOp == 0);
Chris Lattnerd934c702004-04-02 20:23:17 +00001708 if (OtherMul->getNumOperands() != 2) {
Dan Gohmance973df2009-06-24 04:48:43 +00001709 SmallVector<const SCEV *, 4> MulOps(OtherMul->op_begin(),
Dan Gohman797a1db2010-08-16 16:57:24 +00001710 OtherMul->op_begin()+OMulOp);
1711 MulOps.append(OtherMul->op_begin()+OMulOp+1, OtherMul->op_end());
Dan Gohmana37eaf22007-10-22 18:31:58 +00001712 InnerMul2 = getMulExpr(MulOps);
Chris Lattnerd934c702004-04-02 20:23:17 +00001713 }
Dan Gohmanaf752342009-07-07 17:06:11 +00001714 const SCEV *InnerMulSum = getAddExpr(InnerMul1,InnerMul2);
1715 const SCEV *OuterMul = getMulExpr(MulOpSCEV, InnerMulSum);
Chris Lattnerd934c702004-04-02 20:23:17 +00001716 if (Ops.size() == 2) return OuterMul;
Dan Gohmanaabfc522010-08-31 22:50:31 +00001717 Ops.erase(Ops.begin()+Idx);
1718 Ops.erase(Ops.begin()+OtherMulIdx-1);
1719 Ops.push_back(OuterMul);
1720 return getAddExpr(Ops);
Chris Lattnerd934c702004-04-02 20:23:17 +00001721 }
1722 }
1723 }
1724 }
1725
1726 // If there are any add recurrences in the operands list, see if any other
1727 // added values are loop invariant. If so, we can fold them into the
1728 // recurrence.
1729 while (Idx < Ops.size() && Ops[Idx]->getSCEVType() < scAddRecExpr)
1730 ++Idx;
1731
1732 // Scan over all recurrences, trying to fold loop invariants into them.
1733 for (; Idx < Ops.size() && isa<SCEVAddRecExpr>(Ops[Idx]); ++Idx) {
1734 // Scan all of the other operands to this add and add them to the vector if
1735 // they are loop invariant w.r.t. the recurrence.
Dan Gohmanaf752342009-07-07 17:06:11 +00001736 SmallVector<const SCEV *, 8> LIOps;
Dan Gohman48f82222009-05-04 22:30:44 +00001737 const SCEVAddRecExpr *AddRec = cast<SCEVAddRecExpr>(Ops[Idx]);
Dan Gohmanebbd05f2010-04-12 23:08:18 +00001738 const Loop *AddRecLoop = AddRec->getLoop();
Chris Lattnerd934c702004-04-02 20:23:17 +00001739 for (unsigned i = 0, e = Ops.size(); i != e; ++i)
Dan Gohmanafd6db92010-11-17 21:23:15 +00001740 if (isLoopInvariant(Ops[i], AddRecLoop)) {
Chris Lattnerd934c702004-04-02 20:23:17 +00001741 LIOps.push_back(Ops[i]);
1742 Ops.erase(Ops.begin()+i);
1743 --i; --e;
1744 }
1745
1746 // If we found some loop invariants, fold them into the recurrence.
1747 if (!LIOps.empty()) {
Dan Gohman81313fd2008-09-14 17:21:12 +00001748 // NLI + LI + {Start,+,Step} --> NLI + {LI+Start,+,Step}
Chris Lattnerd934c702004-04-02 20:23:17 +00001749 LIOps.push_back(AddRec->getStart());
1750
Dan Gohmanaf752342009-07-07 17:06:11 +00001751 SmallVector<const SCEV *, 4> AddRecOps(AddRec->op_begin(),
Dan Gohman7a2dab82009-12-18 03:57:04 +00001752 AddRec->op_end());
Dan Gohmana37eaf22007-10-22 18:31:58 +00001753 AddRecOps[0] = getAddExpr(LIOps);
Chris Lattnerd934c702004-04-02 20:23:17 +00001754
Dan Gohman16206132010-06-30 07:16:37 +00001755 // Build the new addrec. Propagate the NUW and NSW flags if both the
Eric Christopher23bf3ba2011-01-11 09:02:09 +00001756 // outer add and the inner addrec are guaranteed to have no overflow.
Andrew Trickf6b01ff2011-03-15 00:37:00 +00001757 // Always propagate NW.
1758 Flags = AddRec->getNoWrapFlags(setFlags(Flags, SCEV::FlagNW));
Andrew Trick8b55b732011-03-14 16:50:06 +00001759 const SCEV *NewRec = getAddRecExpr(AddRecOps, AddRecLoop, Flags);
Dan Gohman51f13052009-12-18 18:45:31 +00001760
Chris Lattnerd934c702004-04-02 20:23:17 +00001761 // If all of the other operands were loop invariant, we are done.
1762 if (Ops.size() == 1) return NewRec;
1763
Nick Lewyckydb66b822011-09-06 05:08:09 +00001764 // Otherwise, add the folded AddRec by the non-invariant parts.
Chris Lattnerd934c702004-04-02 20:23:17 +00001765 for (unsigned i = 0;; ++i)
1766 if (Ops[i] == AddRec) {
1767 Ops[i] = NewRec;
1768 break;
1769 }
Dan Gohmana37eaf22007-10-22 18:31:58 +00001770 return getAddExpr(Ops);
Chris Lattnerd934c702004-04-02 20:23:17 +00001771 }
1772
1773 // Okay, if there weren't any loop invariants to be folded, check to see if
1774 // there are multiple AddRec's with the same loop induction variable being
1775 // added together. If so, we can fold them.
1776 for (unsigned OtherIdx = Idx+1;
Dan Gohmanc866bf42010-08-27 20:45:56 +00001777 OtherIdx < Ops.size() && isa<SCEVAddRecExpr>(Ops[OtherIdx]);
1778 ++OtherIdx)
1779 if (AddRecLoop == cast<SCEVAddRecExpr>(Ops[OtherIdx])->getLoop()) {
1780 // Other + {A,+,B}<L> + {C,+,D}<L> --> Other + {A+C,+,B+D}<L>
1781 SmallVector<const SCEV *, 4> AddRecOps(AddRec->op_begin(),
1782 AddRec->op_end());
1783 for (; OtherIdx != Ops.size() && isa<SCEVAddRecExpr>(Ops[OtherIdx]);
1784 ++OtherIdx)
Dan Gohman028c1812010-08-29 14:53:34 +00001785 if (const SCEVAddRecExpr *OtherAddRec =
Dan Gohmanc866bf42010-08-27 20:45:56 +00001786 dyn_cast<SCEVAddRecExpr>(Ops[OtherIdx]))
Dan Gohman028c1812010-08-29 14:53:34 +00001787 if (OtherAddRec->getLoop() == AddRecLoop) {
1788 for (unsigned i = 0, e = OtherAddRec->getNumOperands();
1789 i != e; ++i) {
Dan Gohmanc866bf42010-08-27 20:45:56 +00001790 if (i >= AddRecOps.size()) {
Dan Gohman028c1812010-08-29 14:53:34 +00001791 AddRecOps.append(OtherAddRec->op_begin()+i,
1792 OtherAddRec->op_end());
Dan Gohmanc866bf42010-08-27 20:45:56 +00001793 break;
1794 }
Dan Gohman028c1812010-08-29 14:53:34 +00001795 AddRecOps[i] = getAddExpr(AddRecOps[i],
1796 OtherAddRec->getOperand(i));
Dan Gohmanc866bf42010-08-27 20:45:56 +00001797 }
1798 Ops.erase(Ops.begin() + OtherIdx); --OtherIdx;
Chris Lattnerd934c702004-04-02 20:23:17 +00001799 }
Andrew Trick8b55b732011-03-14 16:50:06 +00001800 // Step size has changed, so we cannot guarantee no self-wraparound.
1801 Ops[Idx] = getAddRecExpr(AddRecOps, AddRecLoop, SCEV::FlagAnyWrap);
Dan Gohmanc866bf42010-08-27 20:45:56 +00001802 return getAddExpr(Ops);
Chris Lattnerd934c702004-04-02 20:23:17 +00001803 }
1804
1805 // Otherwise couldn't fold anything into this recurrence. Move onto the
1806 // next one.
1807 }
1808
1809 // Okay, it looks like we really DO need an add expr. Check to see if we
1810 // already have one, otherwise create a new one.
Dan Gohmanc5c85c02009-06-27 21:21:31 +00001811 FoldingSetNodeID ID;
1812 ID.AddInteger(scAddExpr);
Dan Gohmanc5c85c02009-06-27 21:21:31 +00001813 for (unsigned i = 0, e = Ops.size(); i != e; ++i)
1814 ID.AddPointer(Ops[i]);
1815 void *IP = 0;
Dan Gohman51ad99d2010-01-21 02:09:26 +00001816 SCEVAddExpr *S =
1817 static_cast<SCEVAddExpr *>(UniqueSCEVs.FindNodeOrInsertPos(ID, IP));
1818 if (!S) {
Dan Gohman00524492010-03-18 01:17:13 +00001819 const SCEV **O = SCEVAllocator.Allocate<const SCEV *>(Ops.size());
1820 std::uninitialized_copy(Ops.begin(), Ops.end(), O);
Dan Gohman01c65a22010-03-18 18:49:47 +00001821 S = new (SCEVAllocator) SCEVAddExpr(ID.Intern(SCEVAllocator),
1822 O, Ops.size());
Dan Gohman51ad99d2010-01-21 02:09:26 +00001823 UniqueSCEVs.InsertNode(S, IP);
1824 }
Andrew Trick8b55b732011-03-14 16:50:06 +00001825 S->setNoWrapFlags(Flags);
Dan Gohmanc5c85c02009-06-27 21:21:31 +00001826 return S;
Chris Lattnerd934c702004-04-02 20:23:17 +00001827}
1828
Nick Lewycky287682e2011-10-04 06:51:26 +00001829static uint64_t umul_ov(uint64_t i, uint64_t j, bool &Overflow) {
1830 uint64_t k = i*j;
1831 if (j > 1 && k / j != i) Overflow = true;
1832 return k;
1833}
1834
1835/// Compute the result of "n choose k", the binomial coefficient. If an
1836/// intermediate computation overflows, Overflow will be set and the return will
Benjamin Kramerbde91762012-06-02 10:20:22 +00001837/// be garbage. Overflow is not cleared on absence of overflow.
Nick Lewycky287682e2011-10-04 06:51:26 +00001838static uint64_t Choose(uint64_t n, uint64_t k, bool &Overflow) {
1839 // We use the multiplicative formula:
1840 // n(n-1)(n-2)...(n-(k-1)) / k(k-1)(k-2)...1 .
1841 // At each iteration, we take the n-th term of the numeral and divide by the
1842 // (k-n)th term of the denominator. This division will always produce an
1843 // integral result, and helps reduce the chance of overflow in the
1844 // intermediate computations. However, we can still overflow even when the
1845 // final result would fit.
1846
1847 if (n == 0 || n == k) return 1;
1848 if (k > n) return 0;
1849
1850 if (k > n/2)
1851 k = n-k;
1852
1853 uint64_t r = 1;
1854 for (uint64_t i = 1; i <= k; ++i) {
1855 r = umul_ov(r, n-(i-1), Overflow);
1856 r /= i;
1857 }
1858 return r;
1859}
1860
Dan Gohman4d5435d2009-05-24 23:45:28 +00001861/// getMulExpr - Get a canonical multiply expression, or something simpler if
1862/// possible.
Dan Gohman816fe0a2009-10-09 00:10:36 +00001863const SCEV *ScalarEvolution::getMulExpr(SmallVectorImpl<const SCEV *> &Ops,
Andrew Trick8b55b732011-03-14 16:50:06 +00001864 SCEV::NoWrapFlags Flags) {
1865 assert(Flags == maskFlags(Flags, SCEV::FlagNUW | SCEV::FlagNSW) &&
1866 "only nuw or nsw allowed");
Chris Lattnerd934c702004-04-02 20:23:17 +00001867 assert(!Ops.empty() && "Cannot get empty mul!");
Dan Gohman51ad99d2010-01-21 02:09:26 +00001868 if (Ops.size() == 1) return Ops[0];
Dan Gohmand33f36e2009-05-18 15:44:58 +00001869#ifndef NDEBUG
Chris Lattner229907c2011-07-18 04:54:35 +00001870 Type *ETy = getEffectiveSCEVType(Ops[0]->getType());
Dan Gohmand33f36e2009-05-18 15:44:58 +00001871 for (unsigned i = 1, e = Ops.size(); i != e; ++i)
Dan Gohmanb6c773e2010-08-16 16:13:54 +00001872 assert(getEffectiveSCEVType(Ops[i]->getType()) == ETy &&
Dan Gohmand33f36e2009-05-18 15:44:58 +00001873 "SCEVMulExpr operand types don't match!");
1874#endif
Chris Lattnerd934c702004-04-02 20:23:17 +00001875
Andrew Trick8b55b732011-03-14 16:50:06 +00001876 // If FlagNSW is true and all the operands are non-negative, infer FlagNUW.
Andrew Trickf6b01ff2011-03-15 00:37:00 +00001877 // And vice-versa.
1878 int SignOrUnsignMask = SCEV::FlagNUW | SCEV::FlagNSW;
1879 SCEV::NoWrapFlags SignOrUnsignWrap = maskFlags(Flags, SignOrUnsignMask);
1880 if (SignOrUnsignWrap && (SignOrUnsignWrap != SignOrUnsignMask)) {
Dan Gohman51ad99d2010-01-21 02:09:26 +00001881 bool All = true;
Dan Gohman74c61502010-08-16 16:27:53 +00001882 for (SmallVectorImpl<const SCEV *>::const_iterator I = Ops.begin(),
1883 E = Ops.end(); I != E; ++I)
1884 if (!isKnownNonNegative(*I)) {
Dan Gohman51ad99d2010-01-21 02:09:26 +00001885 All = false;
1886 break;
1887 }
Andrew Trickf6b01ff2011-03-15 00:37:00 +00001888 if (All) Flags = setFlags(Flags, (SCEV::NoWrapFlags)SignOrUnsignMask);
Dan Gohman51ad99d2010-01-21 02:09:26 +00001889 }
1890
Chris Lattnerd934c702004-04-02 20:23:17 +00001891 // Sort by complexity, this groups all similar expression types together.
Dan Gohman9ba542c2009-05-07 14:39:04 +00001892 GroupByComplexity(Ops, LI);
Chris Lattnerd934c702004-04-02 20:23:17 +00001893
1894 // If there are any constants, fold them together.
1895 unsigned Idx = 0;
Dan Gohmana30370b2009-05-04 22:02:23 +00001896 if (const SCEVConstant *LHSC = dyn_cast<SCEVConstant>(Ops[0])) {
Chris Lattnerd934c702004-04-02 20:23:17 +00001897
1898 // C1*(C2+V) -> C1*C2 + C1*V
1899 if (Ops.size() == 2)
Dan Gohmana30370b2009-05-04 22:02:23 +00001900 if (const SCEVAddExpr *Add = dyn_cast<SCEVAddExpr>(Ops[1]))
Chris Lattnerd934c702004-04-02 20:23:17 +00001901 if (Add->getNumOperands() == 2 &&
1902 isa<SCEVConstant>(Add->getOperand(0)))
Dan Gohmana37eaf22007-10-22 18:31:58 +00001903 return getAddExpr(getMulExpr(LHSC, Add->getOperand(0)),
1904 getMulExpr(LHSC, Add->getOperand(1)));
Chris Lattnerd934c702004-04-02 20:23:17 +00001905
Chris Lattnerd934c702004-04-02 20:23:17 +00001906 ++Idx;
Dan Gohmana30370b2009-05-04 22:02:23 +00001907 while (const SCEVConstant *RHSC = dyn_cast<SCEVConstant>(Ops[Idx])) {
Chris Lattnerd934c702004-04-02 20:23:17 +00001908 // We found two constants, fold them together!
Owen Andersonedb4a702009-07-24 23:12:02 +00001909 ConstantInt *Fold = ConstantInt::get(getContext(),
1910 LHSC->getValue()->getValue() *
Nick Lewycky1c44ebc2008-02-20 06:48:22 +00001911 RHSC->getValue()->getValue());
1912 Ops[0] = getConstant(Fold);
1913 Ops.erase(Ops.begin()+1); // Erase the folded element
1914 if (Ops.size() == 1) return Ops[0];
1915 LHSC = cast<SCEVConstant>(Ops[0]);
Chris Lattnerd934c702004-04-02 20:23:17 +00001916 }
1917
1918 // If we are left with a constant one being multiplied, strip it off.
1919 if (cast<SCEVConstant>(Ops[0])->getValue()->equalsInt(1)) {
1920 Ops.erase(Ops.begin());
1921 --Idx;
Reid Spencer2e54a152007-03-02 00:28:52 +00001922 } else if (cast<SCEVConstant>(Ops[0])->getValue()->isZero()) {
Chris Lattnerd934c702004-04-02 20:23:17 +00001923 // If we have a multiply of zero, it will always be zero.
1924 return Ops[0];
Dan Gohman51ad99d2010-01-21 02:09:26 +00001925 } else if (Ops[0]->isAllOnesValue()) {
1926 // If we have a mul by -1 of an add, try distributing the -1 among the
1927 // add operands.
Andrew Trick8b55b732011-03-14 16:50:06 +00001928 if (Ops.size() == 2) {
Dan Gohman51ad99d2010-01-21 02:09:26 +00001929 if (const SCEVAddExpr *Add = dyn_cast<SCEVAddExpr>(Ops[1])) {
1930 SmallVector<const SCEV *, 4> NewOps;
1931 bool AnyFolded = false;
Andrew Trick8b55b732011-03-14 16:50:06 +00001932 for (SCEVAddRecExpr::op_iterator I = Add->op_begin(),
1933 E = Add->op_end(); I != E; ++I) {
Dan Gohman51ad99d2010-01-21 02:09:26 +00001934 const SCEV *Mul = getMulExpr(Ops[0], *I);
1935 if (!isa<SCEVMulExpr>(Mul)) AnyFolded = true;
1936 NewOps.push_back(Mul);
1937 }
1938 if (AnyFolded)
1939 return getAddExpr(NewOps);
1940 }
Andrew Tricke92dcce2011-03-14 17:38:54 +00001941 else if (const SCEVAddRecExpr *
1942 AddRec = dyn_cast<SCEVAddRecExpr>(Ops[1])) {
1943 // Negation preserves a recurrence's no self-wrap property.
1944 SmallVector<const SCEV *, 4> Operands;
1945 for (SCEVAddRecExpr::op_iterator I = AddRec->op_begin(),
1946 E = AddRec->op_end(); I != E; ++I) {
1947 Operands.push_back(getMulExpr(Ops[0], *I));
1948 }
1949 return getAddRecExpr(Operands, AddRec->getLoop(),
1950 AddRec->getNoWrapFlags(SCEV::FlagNW));
1951 }
Andrew Trick8b55b732011-03-14 16:50:06 +00001952 }
Chris Lattnerd934c702004-04-02 20:23:17 +00001953 }
Dan Gohmanfe4b2912010-04-13 16:49:23 +00001954
1955 if (Ops.size() == 1)
1956 return Ops[0];
Chris Lattnerd934c702004-04-02 20:23:17 +00001957 }
1958
1959 // Skip over the add expression until we get to a multiply.
1960 while (Idx < Ops.size() && Ops[Idx]->getSCEVType() < scMulExpr)
1961 ++Idx;
1962
Chris Lattnerd934c702004-04-02 20:23:17 +00001963 // If there are mul operands inline them all into this expression.
1964 if (Idx < Ops.size()) {
1965 bool DeletedMul = false;
Dan Gohmana30370b2009-05-04 22:02:23 +00001966 while (const SCEVMulExpr *Mul = dyn_cast<SCEVMulExpr>(Ops[Idx])) {
Chris Lattnerd934c702004-04-02 20:23:17 +00001967 // If we have an mul, expand the mul operands onto the end of the operands
1968 // list.
Chris Lattnerd934c702004-04-02 20:23:17 +00001969 Ops.erase(Ops.begin()+Idx);
Dan Gohmandd41bba2010-06-21 19:47:52 +00001970 Ops.append(Mul->op_begin(), Mul->op_end());
Chris Lattnerd934c702004-04-02 20:23:17 +00001971 DeletedMul = true;
1972 }
1973
1974 // If we deleted at least one mul, we added operands to the end of the list,
1975 // and they are not necessarily sorted. Recurse to resort and resimplify
Dan Gohman8b0a4192010-03-01 17:49:51 +00001976 // any operands we just acquired.
Chris Lattnerd934c702004-04-02 20:23:17 +00001977 if (DeletedMul)
Dan Gohmana37eaf22007-10-22 18:31:58 +00001978 return getMulExpr(Ops);
Chris Lattnerd934c702004-04-02 20:23:17 +00001979 }
1980
1981 // If there are any add recurrences in the operands list, see if any other
1982 // added values are loop invariant. If so, we can fold them into the
1983 // recurrence.
1984 while (Idx < Ops.size() && Ops[Idx]->getSCEVType() < scAddRecExpr)
1985 ++Idx;
1986
1987 // Scan over all recurrences, trying to fold loop invariants into them.
1988 for (; Idx < Ops.size() && isa<SCEVAddRecExpr>(Ops[Idx]); ++Idx) {
1989 // Scan all of the other operands to this mul and add them to the vector if
1990 // they are loop invariant w.r.t. the recurrence.
Dan Gohmanaf752342009-07-07 17:06:11 +00001991 SmallVector<const SCEV *, 8> LIOps;
Dan Gohman48f82222009-05-04 22:30:44 +00001992 const SCEVAddRecExpr *AddRec = cast<SCEVAddRecExpr>(Ops[Idx]);
Dan Gohman0f2de012010-08-29 14:55:19 +00001993 const Loop *AddRecLoop = AddRec->getLoop();
Chris Lattnerd934c702004-04-02 20:23:17 +00001994 for (unsigned i = 0, e = Ops.size(); i != e; ++i)
Dan Gohmanafd6db92010-11-17 21:23:15 +00001995 if (isLoopInvariant(Ops[i], AddRecLoop)) {
Chris Lattnerd934c702004-04-02 20:23:17 +00001996 LIOps.push_back(Ops[i]);
1997 Ops.erase(Ops.begin()+i);
1998 --i; --e;
1999 }
2000
2001 // If we found some loop invariants, fold them into the recurrence.
2002 if (!LIOps.empty()) {
Dan Gohman81313fd2008-09-14 17:21:12 +00002003 // NLI * LI * {Start,+,Step} --> NLI * {LI*Start,+,LI*Step}
Dan Gohmanaf752342009-07-07 17:06:11 +00002004 SmallVector<const SCEV *, 4> NewOps;
Chris Lattnerd934c702004-04-02 20:23:17 +00002005 NewOps.reserve(AddRec->getNumOperands());
Dan Gohman8f5954f2010-06-17 23:34:09 +00002006 const SCEV *Scale = getMulExpr(LIOps);
2007 for (unsigned i = 0, e = AddRec->getNumOperands(); i != e; ++i)
2008 NewOps.push_back(getMulExpr(Scale, AddRec->getOperand(i)));
Chris Lattnerd934c702004-04-02 20:23:17 +00002009
Dan Gohman16206132010-06-30 07:16:37 +00002010 // Build the new addrec. Propagate the NUW and NSW flags if both the
2011 // outer mul and the inner addrec are guaranteed to have no overflow.
Andrew Trick8b55b732011-03-14 16:50:06 +00002012 //
2013 // No self-wrap cannot be guaranteed after changing the step size, but
Chris Lattner0ab5e2c2011-04-15 05:18:47 +00002014 // will be inferred if either NUW or NSW is true.
Andrew Trick8b55b732011-03-14 16:50:06 +00002015 Flags = AddRec->getNoWrapFlags(clearFlags(Flags, SCEV::FlagNW));
2016 const SCEV *NewRec = getAddRecExpr(NewOps, AddRecLoop, Flags);
Chris Lattnerd934c702004-04-02 20:23:17 +00002017
2018 // If all of the other operands were loop invariant, we are done.
2019 if (Ops.size() == 1) return NewRec;
2020
Nick Lewyckydb66b822011-09-06 05:08:09 +00002021 // Otherwise, multiply the folded AddRec by the non-invariant parts.
Chris Lattnerd934c702004-04-02 20:23:17 +00002022 for (unsigned i = 0;; ++i)
2023 if (Ops[i] == AddRec) {
2024 Ops[i] = NewRec;
2025 break;
2026 }
Dan Gohmana37eaf22007-10-22 18:31:58 +00002027 return getMulExpr(Ops);
Chris Lattnerd934c702004-04-02 20:23:17 +00002028 }
2029
2030 // Okay, if there weren't any loop invariants to be folded, check to see if
2031 // there are multiple AddRec's with the same loop induction variable being
2032 // multiplied together. If so, we can fold them.
2033 for (unsigned OtherIdx = Idx+1;
Dan Gohmanf01a5ee2010-08-31 22:52:12 +00002034 OtherIdx < Ops.size() && isa<SCEVAddRecExpr>(Ops[OtherIdx]);
Nick Lewyckye0aa54b2011-09-06 21:42:18 +00002035 ++OtherIdx) {
Andrew Trick946f76b2012-05-30 03:35:17 +00002036 if (AddRecLoop != cast<SCEVAddRecExpr>(Ops[OtherIdx])->getLoop())
2037 continue;
2038
2039 // {A1,+,A2,+,...,+,An}<L> * {B1,+,B2,+,...,+,Bn}<L>
2040 // = {x=1 in [ sum y=x..2x [ sum z=max(y-x, y-n)..min(x,n) [
2041 // choose(x, 2x)*choose(2x-y, x-z)*A_{y-z}*B_z
2042 // ]]],+,...up to x=2n}.
2043 // Note that the arguments to choose() are always integers with values
2044 // known at compile time, never SCEV objects.
2045 //
2046 // The implementation avoids pointless extra computations when the two
2047 // addrec's are of different length (mathematically, it's equivalent to
2048 // an infinite stream of zeros on the right).
2049 bool OpsModified = false;
2050 for (; OtherIdx != Ops.size() && isa<SCEVAddRecExpr>(Ops[OtherIdx]);
2051 ++OtherIdx) {
2052 const SCEVAddRecExpr *OtherAddRec =
2053 dyn_cast<SCEVAddRecExpr>(Ops[OtherIdx]);
2054 if (!OtherAddRec || OtherAddRec->getLoop() != AddRecLoop)
2055 continue;
2056
2057 bool Overflow = false;
2058 Type *Ty = AddRec->getType();
2059 bool LargerThan64Bits = getTypeSizeInBits(Ty) > 64;
2060 SmallVector<const SCEV*, 7> AddRecOps;
2061 for (int x = 0, xe = AddRec->getNumOperands() +
2062 OtherAddRec->getNumOperands() - 1; x != xe && !Overflow; ++x) {
2063 const SCEV *Term = getConstant(Ty, 0);
2064 for (int y = x, ye = 2*x+1; y != ye && !Overflow; ++y) {
2065 uint64_t Coeff1 = Choose(x, 2*x - y, Overflow);
2066 for (int z = std::max(y-x, y-(int)AddRec->getNumOperands()+1),
2067 ze = std::min(x+1, (int)OtherAddRec->getNumOperands());
2068 z < ze && !Overflow; ++z) {
2069 uint64_t Coeff2 = Choose(2*x - y, x-z, Overflow);
2070 uint64_t Coeff;
2071 if (LargerThan64Bits)
2072 Coeff = umul_ov(Coeff1, Coeff2, Overflow);
2073 else
2074 Coeff = Coeff1*Coeff2;
2075 const SCEV *CoeffTerm = getConstant(Ty, Coeff);
2076 const SCEV *Term1 = AddRec->getOperand(y-z);
2077 const SCEV *Term2 = OtherAddRec->getOperand(z);
2078 Term = getAddExpr(Term, getMulExpr(CoeffTerm, Term1,Term2));
Dan Gohmanf01a5ee2010-08-31 22:52:12 +00002079 }
Andrew Trick946f76b2012-05-30 03:35:17 +00002080 }
2081 AddRecOps.push_back(Term);
2082 }
2083 if (!Overflow) {
2084 const SCEV *NewAddRec = getAddRecExpr(AddRecOps, AddRec->getLoop(),
2085 SCEV::FlagAnyWrap);
2086 if (Ops.size() == 2) return NewAddRec;
Andrew Tricka3f90432012-05-30 03:35:20 +00002087 Ops[Idx] = NewAddRec;
Andrew Trick946f76b2012-05-30 03:35:17 +00002088 Ops.erase(Ops.begin() + OtherIdx); --OtherIdx;
2089 OpsModified = true;
Andrew Tricka3f90432012-05-30 03:35:20 +00002090 AddRec = dyn_cast<SCEVAddRecExpr>(NewAddRec);
2091 if (!AddRec)
2092 break;
Andrew Trick946f76b2012-05-30 03:35:17 +00002093 }
Chris Lattnerd934c702004-04-02 20:23:17 +00002094 }
Andrew Trick946f76b2012-05-30 03:35:17 +00002095 if (OpsModified)
2096 return getMulExpr(Ops);
Nick Lewyckye0aa54b2011-09-06 21:42:18 +00002097 }
Chris Lattnerd934c702004-04-02 20:23:17 +00002098
2099 // Otherwise couldn't fold anything into this recurrence. Move onto the
2100 // next one.
2101 }
2102
2103 // Okay, it looks like we really DO need an mul expr. Check to see if we
2104 // already have one, otherwise create a new one.
Dan Gohmanc5c85c02009-06-27 21:21:31 +00002105 FoldingSetNodeID ID;
2106 ID.AddInteger(scMulExpr);
Dan Gohmanc5c85c02009-06-27 21:21:31 +00002107 for (unsigned i = 0, e = Ops.size(); i != e; ++i)
2108 ID.AddPointer(Ops[i]);
2109 void *IP = 0;
Dan Gohman51ad99d2010-01-21 02:09:26 +00002110 SCEVMulExpr *S =
2111 static_cast<SCEVMulExpr *>(UniqueSCEVs.FindNodeOrInsertPos(ID, IP));
2112 if (!S) {
Dan Gohman00524492010-03-18 01:17:13 +00002113 const SCEV **O = SCEVAllocator.Allocate<const SCEV *>(Ops.size());
2114 std::uninitialized_copy(Ops.begin(), Ops.end(), O);
Dan Gohman01c65a22010-03-18 18:49:47 +00002115 S = new (SCEVAllocator) SCEVMulExpr(ID.Intern(SCEVAllocator),
2116 O, Ops.size());
Dan Gohman51ad99d2010-01-21 02:09:26 +00002117 UniqueSCEVs.InsertNode(S, IP);
2118 }
Andrew Trick8b55b732011-03-14 16:50:06 +00002119 S->setNoWrapFlags(Flags);
Dan Gohmanc5c85c02009-06-27 21:21:31 +00002120 return S;
Chris Lattnerd934c702004-04-02 20:23:17 +00002121}
2122
Andreas Bolka7a5c8db2009-08-07 22:55:26 +00002123/// getUDivExpr - Get a canonical unsigned division expression, or something
2124/// simpler if possible.
Dan Gohmanabd17092009-06-24 14:49:00 +00002125const SCEV *ScalarEvolution::getUDivExpr(const SCEV *LHS,
2126 const SCEV *RHS) {
Dan Gohmand33f36e2009-05-18 15:44:58 +00002127 assert(getEffectiveSCEVType(LHS->getType()) ==
2128 getEffectiveSCEVType(RHS->getType()) &&
2129 "SCEVUDivExpr operand types don't match!");
2130
Dan Gohmana30370b2009-05-04 22:02:23 +00002131 if (const SCEVConstant *RHSC = dyn_cast<SCEVConstant>(RHS)) {
Chris Lattnerd934c702004-04-02 20:23:17 +00002132 if (RHSC->getValue()->equalsInt(1))
Dan Gohman8a8ad7d2009-08-20 16:42:55 +00002133 return LHS; // X udiv 1 --> x
Dan Gohmanacd700a2010-04-22 01:35:11 +00002134 // If the denominator is zero, the result of the udiv is undefined. Don't
2135 // try to analyze it, because the resolution chosen here may differ from
2136 // the resolution chosen in other parts of the compiler.
2137 if (!RHSC->getValue()->isZero()) {
2138 // Determine if the division can be folded into the operands of
2139 // its operands.
2140 // TODO: Generalize this to non-constants by using known-bits information.
Chris Lattner229907c2011-07-18 04:54:35 +00002141 Type *Ty = LHS->getType();
Dan Gohmanacd700a2010-04-22 01:35:11 +00002142 unsigned LZ = RHSC->getValue()->getValue().countLeadingZeros();
Dan Gohmandb764c62010-08-04 19:52:50 +00002143 unsigned MaxShiftAmt = getTypeSizeInBits(Ty) - LZ - 1;
Dan Gohmanacd700a2010-04-22 01:35:11 +00002144 // For non-power-of-two values, effectively round the value up to the
2145 // nearest power of two.
2146 if (!RHSC->getValue()->getValue().isPowerOf2())
2147 ++MaxShiftAmt;
Chris Lattner229907c2011-07-18 04:54:35 +00002148 IntegerType *ExtTy =
Dan Gohmanacd700a2010-04-22 01:35:11 +00002149 IntegerType::get(getContext(), getTypeSizeInBits(Ty) + MaxShiftAmt);
Dan Gohmanacd700a2010-04-22 01:35:11 +00002150 if (const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(LHS))
2151 if (const SCEVConstant *Step =
Andrew Trick6d45a012011-08-06 07:00:37 +00002152 dyn_cast<SCEVConstant>(AR->getStepRecurrence(*this))) {
2153 // {X,+,N}/C --> {X/C,+,N/C} if safe and N/C can be folded.
2154 const APInt &StepInt = Step->getValue()->getValue();
2155 const APInt &DivInt = RHSC->getValue()->getValue();
2156 if (!StepInt.urem(DivInt) &&
Dan Gohmanacd700a2010-04-22 01:35:11 +00002157 getZeroExtendExpr(AR, ExtTy) ==
2158 getAddRecExpr(getZeroExtendExpr(AR->getStart(), ExtTy),
2159 getZeroExtendExpr(Step, ExtTy),
Andrew Trick8b55b732011-03-14 16:50:06 +00002160 AR->getLoop(), SCEV::FlagAnyWrap)) {
Dan Gohmanacd700a2010-04-22 01:35:11 +00002161 SmallVector<const SCEV *, 4> Operands;
2162 for (unsigned i = 0, e = AR->getNumOperands(); i != e; ++i)
2163 Operands.push_back(getUDivExpr(AR->getOperand(i), RHS));
Andrew Trick8b55b732011-03-14 16:50:06 +00002164 return getAddRecExpr(Operands, AR->getLoop(),
Andrew Trickf6b01ff2011-03-15 00:37:00 +00002165 SCEV::FlagNW);
Dan Gohmanc3a3cb42009-05-08 20:18:49 +00002166 }
Andrew Trick6d45a012011-08-06 07:00:37 +00002167 /// Get a canonical UDivExpr for a recurrence.
2168 /// {X,+,N}/C => {Y,+,N}/C where Y=X-(X%N). Safe when C%N=0.
2169 // We can currently only fold X%N if X is constant.
2170 const SCEVConstant *StartC = dyn_cast<SCEVConstant>(AR->getStart());
2171 if (StartC && !DivInt.urem(StepInt) &&
2172 getZeroExtendExpr(AR, ExtTy) ==
2173 getAddRecExpr(getZeroExtendExpr(AR->getStart(), ExtTy),
2174 getZeroExtendExpr(Step, ExtTy),
2175 AR->getLoop(), SCEV::FlagAnyWrap)) {
2176 const APInt &StartInt = StartC->getValue()->getValue();
2177 const APInt &StartRem = StartInt.urem(StepInt);
2178 if (StartRem != 0)
2179 LHS = getAddRecExpr(getConstant(StartInt - StartRem), Step,
2180 AR->getLoop(), SCEV::FlagNW);
2181 }
2182 }
Dan Gohmanacd700a2010-04-22 01:35:11 +00002183 // (A*B)/C --> A*(B/C) if safe and B/C can be folded.
2184 if (const SCEVMulExpr *M = dyn_cast<SCEVMulExpr>(LHS)) {
2185 SmallVector<const SCEV *, 4> Operands;
2186 for (unsigned i = 0, e = M->getNumOperands(); i != e; ++i)
2187 Operands.push_back(getZeroExtendExpr(M->getOperand(i), ExtTy));
2188 if (getZeroExtendExpr(M, ExtTy) == getMulExpr(Operands))
2189 // Find an operand that's safely divisible.
2190 for (unsigned i = 0, e = M->getNumOperands(); i != e; ++i) {
2191 const SCEV *Op = M->getOperand(i);
2192 const SCEV *Div = getUDivExpr(Op, RHSC);
2193 if (!isa<SCEVUDivExpr>(Div) && getMulExpr(Div, RHSC) == Op) {
2194 Operands = SmallVector<const SCEV *, 4>(M->op_begin(),
2195 M->op_end());
2196 Operands[i] = Div;
2197 return getMulExpr(Operands);
2198 }
2199 }
Dan Gohmanc3a3cb42009-05-08 20:18:49 +00002200 }
Dan Gohmanacd700a2010-04-22 01:35:11 +00002201 // (A+B)/C --> (A/C + B/C) if safe and A/C and B/C can be folded.
Andrew Trick7d1eea82011-04-27 18:17:36 +00002202 if (const SCEVAddExpr *A = dyn_cast<SCEVAddExpr>(LHS)) {
Dan Gohmanacd700a2010-04-22 01:35:11 +00002203 SmallVector<const SCEV *, 4> Operands;
2204 for (unsigned i = 0, e = A->getNumOperands(); i != e; ++i)
2205 Operands.push_back(getZeroExtendExpr(A->getOperand(i), ExtTy));
2206 if (getZeroExtendExpr(A, ExtTy) == getAddExpr(Operands)) {
2207 Operands.clear();
2208 for (unsigned i = 0, e = A->getNumOperands(); i != e; ++i) {
2209 const SCEV *Op = getUDivExpr(A->getOperand(i), RHS);
2210 if (isa<SCEVUDivExpr>(Op) ||
2211 getMulExpr(Op, RHS) != A->getOperand(i))
2212 break;
2213 Operands.push_back(Op);
2214 }
2215 if (Operands.size() == A->getNumOperands())
2216 return getAddExpr(Operands);
2217 }
2218 }
Dan Gohmanc3a3cb42009-05-08 20:18:49 +00002219
Dan Gohmanacd700a2010-04-22 01:35:11 +00002220 // Fold if both operands are constant.
2221 if (const SCEVConstant *LHSC = dyn_cast<SCEVConstant>(LHS)) {
2222 Constant *LHSCV = LHSC->getValue();
2223 Constant *RHSCV = RHSC->getValue();
2224 return getConstant(cast<ConstantInt>(ConstantExpr::getUDiv(LHSCV,
2225 RHSCV)));
2226 }
Chris Lattnerd934c702004-04-02 20:23:17 +00002227 }
2228 }
2229
Dan Gohmanc5c85c02009-06-27 21:21:31 +00002230 FoldingSetNodeID ID;
2231 ID.AddInteger(scUDivExpr);
2232 ID.AddPointer(LHS);
2233 ID.AddPointer(RHS);
2234 void *IP = 0;
2235 if (const SCEV *S = UniqueSCEVs.FindNodeOrInsertPos(ID, IP)) return S;
Dan Gohman01c65a22010-03-18 18:49:47 +00002236 SCEV *S = new (SCEVAllocator) SCEVUDivExpr(ID.Intern(SCEVAllocator),
2237 LHS, RHS);
Dan Gohmanc5c85c02009-06-27 21:21:31 +00002238 UniqueSCEVs.InsertNode(S, IP);
2239 return S;
Chris Lattnerd934c702004-04-02 20:23:17 +00002240}
2241
2242
Dan Gohman4d5435d2009-05-24 23:45:28 +00002243/// getAddRecExpr - Get an add recurrence expression for the specified loop.
2244/// Simplify the expression as much as possible.
Andrew Trick8b55b732011-03-14 16:50:06 +00002245const SCEV *ScalarEvolution::getAddRecExpr(const SCEV *Start, const SCEV *Step,
2246 const Loop *L,
2247 SCEV::NoWrapFlags Flags) {
Dan Gohmanaf752342009-07-07 17:06:11 +00002248 SmallVector<const SCEV *, 4> Operands;
Chris Lattnerd934c702004-04-02 20:23:17 +00002249 Operands.push_back(Start);
Dan Gohmana30370b2009-05-04 22:02:23 +00002250 if (const SCEVAddRecExpr *StepChrec = dyn_cast<SCEVAddRecExpr>(Step))
Chris Lattnerd934c702004-04-02 20:23:17 +00002251 if (StepChrec->getLoop() == L) {
Dan Gohmandd41bba2010-06-21 19:47:52 +00002252 Operands.append(StepChrec->op_begin(), StepChrec->op_end());
Andrew Trickf6b01ff2011-03-15 00:37:00 +00002253 return getAddRecExpr(Operands, L, maskFlags(Flags, SCEV::FlagNW));
Chris Lattnerd934c702004-04-02 20:23:17 +00002254 }
2255
2256 Operands.push_back(Step);
Andrew Trick8b55b732011-03-14 16:50:06 +00002257 return getAddRecExpr(Operands, L, Flags);
Chris Lattnerd934c702004-04-02 20:23:17 +00002258}
2259
Dan Gohman4d5435d2009-05-24 23:45:28 +00002260/// getAddRecExpr - Get an add recurrence expression for the specified loop.
2261/// Simplify the expression as much as possible.
Dan Gohmance973df2009-06-24 04:48:43 +00002262const SCEV *
Dan Gohmanaf752342009-07-07 17:06:11 +00002263ScalarEvolution::getAddRecExpr(SmallVectorImpl<const SCEV *> &Operands,
Andrew Trick8b55b732011-03-14 16:50:06 +00002264 const Loop *L, SCEV::NoWrapFlags Flags) {
Chris Lattnerd934c702004-04-02 20:23:17 +00002265 if (Operands.size() == 1) return Operands[0];
Dan Gohmand33f36e2009-05-18 15:44:58 +00002266#ifndef NDEBUG
Chris Lattner229907c2011-07-18 04:54:35 +00002267 Type *ETy = getEffectiveSCEVType(Operands[0]->getType());
Dan Gohmand33f36e2009-05-18 15:44:58 +00002268 for (unsigned i = 1, e = Operands.size(); i != e; ++i)
Dan Gohmanb6c773e2010-08-16 16:13:54 +00002269 assert(getEffectiveSCEVType(Operands[i]->getType()) == ETy &&
Dan Gohmand33f36e2009-05-18 15:44:58 +00002270 "SCEVAddRecExpr operand types don't match!");
Dan Gohmand3a32ae2010-11-17 20:48:38 +00002271 for (unsigned i = 0, e = Operands.size(); i != e; ++i)
Dan Gohmanafd6db92010-11-17 21:23:15 +00002272 assert(isLoopInvariant(Operands[i], L) &&
Dan Gohmand3a32ae2010-11-17 20:48:38 +00002273 "SCEVAddRecExpr operand is not loop-invariant!");
Dan Gohmand33f36e2009-05-18 15:44:58 +00002274#endif
Chris Lattnerd934c702004-04-02 20:23:17 +00002275
Dan Gohmanbe928e32008-06-18 16:23:07 +00002276 if (Operands.back()->isZero()) {
2277 Operands.pop_back();
Andrew Trick8b55b732011-03-14 16:50:06 +00002278 return getAddRecExpr(Operands, L, SCEV::FlagAnyWrap); // {X,+,0} --> X
Dan Gohmanbe928e32008-06-18 16:23:07 +00002279 }
Chris Lattnerd934c702004-04-02 20:23:17 +00002280
Dan Gohmancf9c64e2010-02-19 18:49:22 +00002281 // It's tempting to want to call getMaxBackedgeTakenCount count here and
2282 // use that information to infer NUW and NSW flags. However, computing a
2283 // BE count requires calling getAddRecExpr, so we may not yet have a
2284 // meaningful BE count at this point (and if we don't, we'd be stuck
2285 // with a SCEVCouldNotCompute as the cached BE count).
2286
Andrew Trick8b55b732011-03-14 16:50:06 +00002287 // If FlagNSW is true and all the operands are non-negative, infer FlagNUW.
Andrew Trickf6b01ff2011-03-15 00:37:00 +00002288 // And vice-versa.
2289 int SignOrUnsignMask = SCEV::FlagNUW | SCEV::FlagNSW;
2290 SCEV::NoWrapFlags SignOrUnsignWrap = maskFlags(Flags, SignOrUnsignMask);
2291 if (SignOrUnsignWrap && (SignOrUnsignWrap != SignOrUnsignMask)) {
Dan Gohman51ad99d2010-01-21 02:09:26 +00002292 bool All = true;
Dan Gohman74c61502010-08-16 16:27:53 +00002293 for (SmallVectorImpl<const SCEV *>::const_iterator I = Operands.begin(),
2294 E = Operands.end(); I != E; ++I)
2295 if (!isKnownNonNegative(*I)) {
Dan Gohman51ad99d2010-01-21 02:09:26 +00002296 All = false;
2297 break;
2298 }
Andrew Trickf6b01ff2011-03-15 00:37:00 +00002299 if (All) Flags = setFlags(Flags, (SCEV::NoWrapFlags)SignOrUnsignMask);
Dan Gohman51ad99d2010-01-21 02:09:26 +00002300 }
2301
Dan Gohman223a5d22008-08-08 18:33:12 +00002302 // Canonicalize nested AddRecs in by nesting them in order of loop depth.
Dan Gohmana30370b2009-05-04 22:02:23 +00002303 if (const SCEVAddRecExpr *NestedAR = dyn_cast<SCEVAddRecExpr>(Operands[0])) {
Dan Gohmancb0efec2009-12-18 01:14:11 +00002304 const Loop *NestedLoop = NestedAR->getLoop();
Dan Gohman63c020a2010-08-13 20:23:25 +00002305 if (L->contains(NestedLoop) ?
Dan Gohman51ad99d2010-01-21 02:09:26 +00002306 (L->getLoopDepth() < NestedLoop->getLoopDepth()) :
Dan Gohman63c020a2010-08-13 20:23:25 +00002307 (!NestedLoop->contains(L) &&
Dan Gohman51ad99d2010-01-21 02:09:26 +00002308 DT->dominates(L->getHeader(), NestedLoop->getHeader()))) {
Dan Gohmanaf752342009-07-07 17:06:11 +00002309 SmallVector<const SCEV *, 4> NestedOperands(NestedAR->op_begin(),
Dan Gohmancb0efec2009-12-18 01:14:11 +00002310 NestedAR->op_end());
Dan Gohman223a5d22008-08-08 18:33:12 +00002311 Operands[0] = NestedAR->getStart();
Dan Gohmancc030b72009-06-26 22:36:20 +00002312 // AddRecs require their operands be loop-invariant with respect to their
2313 // loops. Don't perform this transformation if it would break this
2314 // requirement.
2315 bool AllInvariant = true;
2316 for (unsigned i = 0, e = Operands.size(); i != e; ++i)
Dan Gohmanafd6db92010-11-17 21:23:15 +00002317 if (!isLoopInvariant(Operands[i], L)) {
Dan Gohmancc030b72009-06-26 22:36:20 +00002318 AllInvariant = false;
2319 break;
2320 }
2321 if (AllInvariant) {
Andrew Trick8b55b732011-03-14 16:50:06 +00002322 // Create a recurrence for the outer loop with the same step size.
2323 //
Andrew Trick8b55b732011-03-14 16:50:06 +00002324 // The outer recurrence keeps its NW flag but only keeps NUW/NSW if the
2325 // inner recurrence has the same property.
Andrew Trickf6b01ff2011-03-15 00:37:00 +00002326 SCEV::NoWrapFlags OuterFlags =
2327 maskFlags(Flags, SCEV::FlagNW | NestedAR->getNoWrapFlags());
Andrew Trick8b55b732011-03-14 16:50:06 +00002328
2329 NestedOperands[0] = getAddRecExpr(Operands, L, OuterFlags);
Dan Gohmancc030b72009-06-26 22:36:20 +00002330 AllInvariant = true;
2331 for (unsigned i = 0, e = NestedOperands.size(); i != e; ++i)
Dan Gohmanafd6db92010-11-17 21:23:15 +00002332 if (!isLoopInvariant(NestedOperands[i], NestedLoop)) {
Dan Gohmancc030b72009-06-26 22:36:20 +00002333 AllInvariant = false;
2334 break;
2335 }
Andrew Trick8b55b732011-03-14 16:50:06 +00002336 if (AllInvariant) {
Dan Gohmancc030b72009-06-26 22:36:20 +00002337 // Ok, both add recurrences are valid after the transformation.
Andrew Trick8b55b732011-03-14 16:50:06 +00002338 //
Andrew Trick8b55b732011-03-14 16:50:06 +00002339 // The inner recurrence keeps its NW flag but only keeps NUW/NSW if
2340 // the outer recurrence has the same property.
Andrew Trickf6b01ff2011-03-15 00:37:00 +00002341 SCEV::NoWrapFlags InnerFlags =
2342 maskFlags(NestedAR->getNoWrapFlags(), SCEV::FlagNW | Flags);
Andrew Trick8b55b732011-03-14 16:50:06 +00002343 return getAddRecExpr(NestedOperands, NestedLoop, InnerFlags);
2344 }
Dan Gohmancc030b72009-06-26 22:36:20 +00002345 }
2346 // Reset Operands to its original state.
2347 Operands[0] = NestedAR;
Dan Gohman223a5d22008-08-08 18:33:12 +00002348 }
2349 }
2350
Dan Gohman8d67d2f2010-01-19 22:27:22 +00002351 // Okay, it looks like we really DO need an addrec expr. Check to see if we
2352 // already have one, otherwise create a new one.
Dan Gohmanc5c85c02009-06-27 21:21:31 +00002353 FoldingSetNodeID ID;
2354 ID.AddInteger(scAddRecExpr);
Dan Gohmanc5c85c02009-06-27 21:21:31 +00002355 for (unsigned i = 0, e = Operands.size(); i != e; ++i)
2356 ID.AddPointer(Operands[i]);
2357 ID.AddPointer(L);
2358 void *IP = 0;
Dan Gohman51ad99d2010-01-21 02:09:26 +00002359 SCEVAddRecExpr *S =
2360 static_cast<SCEVAddRecExpr *>(UniqueSCEVs.FindNodeOrInsertPos(ID, IP));
2361 if (!S) {
Dan Gohman00524492010-03-18 01:17:13 +00002362 const SCEV **O = SCEVAllocator.Allocate<const SCEV *>(Operands.size());
2363 std::uninitialized_copy(Operands.begin(), Operands.end(), O);
Dan Gohman01c65a22010-03-18 18:49:47 +00002364 S = new (SCEVAllocator) SCEVAddRecExpr(ID.Intern(SCEVAllocator),
2365 O, Operands.size(), L);
Dan Gohman51ad99d2010-01-21 02:09:26 +00002366 UniqueSCEVs.InsertNode(S, IP);
2367 }
Andrew Trick8b55b732011-03-14 16:50:06 +00002368 S->setNoWrapFlags(Flags);
Dan Gohmanc5c85c02009-06-27 21:21:31 +00002369 return S;
Chris Lattnerd934c702004-04-02 20:23:17 +00002370}
2371
Dan Gohmanabd17092009-06-24 14:49:00 +00002372const SCEV *ScalarEvolution::getSMaxExpr(const SCEV *LHS,
2373 const SCEV *RHS) {
Dan Gohmanaf752342009-07-07 17:06:11 +00002374 SmallVector<const SCEV *, 2> Ops;
Nick Lewyckycdb7e542007-11-25 22:41:31 +00002375 Ops.push_back(LHS);
2376 Ops.push_back(RHS);
2377 return getSMaxExpr(Ops);
2378}
2379
Dan Gohmanaf752342009-07-07 17:06:11 +00002380const SCEV *
2381ScalarEvolution::getSMaxExpr(SmallVectorImpl<const SCEV *> &Ops) {
Nick Lewyckycdb7e542007-11-25 22:41:31 +00002382 assert(!Ops.empty() && "Cannot get empty smax!");
2383 if (Ops.size() == 1) return Ops[0];
Dan Gohmand33f36e2009-05-18 15:44:58 +00002384#ifndef NDEBUG
Chris Lattner229907c2011-07-18 04:54:35 +00002385 Type *ETy = getEffectiveSCEVType(Ops[0]->getType());
Dan Gohmand33f36e2009-05-18 15:44:58 +00002386 for (unsigned i = 1, e = Ops.size(); i != e; ++i)
Dan Gohmanb6c773e2010-08-16 16:13:54 +00002387 assert(getEffectiveSCEVType(Ops[i]->getType()) == ETy &&
Dan Gohmand33f36e2009-05-18 15:44:58 +00002388 "SCEVSMaxExpr operand types don't match!");
2389#endif
Nick Lewyckycdb7e542007-11-25 22:41:31 +00002390
2391 // Sort by complexity, this groups all similar expression types together.
Dan Gohman9ba542c2009-05-07 14:39:04 +00002392 GroupByComplexity(Ops, LI);
Nick Lewyckycdb7e542007-11-25 22:41:31 +00002393
2394 // If there are any constants, fold them together.
2395 unsigned Idx = 0;
Dan Gohmana30370b2009-05-04 22:02:23 +00002396 if (const SCEVConstant *LHSC = dyn_cast<SCEVConstant>(Ops[0])) {
Nick Lewyckycdb7e542007-11-25 22:41:31 +00002397 ++Idx;
2398 assert(Idx < Ops.size());
Dan Gohmana30370b2009-05-04 22:02:23 +00002399 while (const SCEVConstant *RHSC = dyn_cast<SCEVConstant>(Ops[Idx])) {
Nick Lewyckycdb7e542007-11-25 22:41:31 +00002400 // We found two constants, fold them together!
Owen Andersonedb4a702009-07-24 23:12:02 +00002401 ConstantInt *Fold = ConstantInt::get(getContext(),
Nick Lewyckycdb7e542007-11-25 22:41:31 +00002402 APIntOps::smax(LHSC->getValue()->getValue(),
2403 RHSC->getValue()->getValue()));
Nick Lewycky1c44ebc2008-02-20 06:48:22 +00002404 Ops[0] = getConstant(Fold);
2405 Ops.erase(Ops.begin()+1); // Erase the folded element
2406 if (Ops.size() == 1) return Ops[0];
2407 LHSC = cast<SCEVConstant>(Ops[0]);
Nick Lewyckycdb7e542007-11-25 22:41:31 +00002408 }
2409
Dan Gohmanf57bdb72009-06-24 14:46:22 +00002410 // If we are left with a constant minimum-int, strip it off.
Nick Lewyckycdb7e542007-11-25 22:41:31 +00002411 if (cast<SCEVConstant>(Ops[0])->getValue()->isMinValue(true)) {
2412 Ops.erase(Ops.begin());
2413 --Idx;
Dan Gohmanf57bdb72009-06-24 14:46:22 +00002414 } else if (cast<SCEVConstant>(Ops[0])->getValue()->isMaxValue(true)) {
2415 // If we have an smax with a constant maximum-int, it will always be
2416 // maximum-int.
2417 return Ops[0];
Nick Lewyckycdb7e542007-11-25 22:41:31 +00002418 }
Nick Lewyckycdb7e542007-11-25 22:41:31 +00002419
Dan Gohmanfe4b2912010-04-13 16:49:23 +00002420 if (Ops.size() == 1) return Ops[0];
2421 }
Nick Lewyckycdb7e542007-11-25 22:41:31 +00002422
2423 // Find the first SMax
2424 while (Idx < Ops.size() && Ops[Idx]->getSCEVType() < scSMaxExpr)
2425 ++Idx;
2426
2427 // Check to see if one of the operands is an SMax. If so, expand its operands
2428 // onto our operand list, and recurse to simplify.
2429 if (Idx < Ops.size()) {
2430 bool DeletedSMax = false;
Dan Gohmana30370b2009-05-04 22:02:23 +00002431 while (const SCEVSMaxExpr *SMax = dyn_cast<SCEVSMaxExpr>(Ops[Idx])) {
Nick Lewyckycdb7e542007-11-25 22:41:31 +00002432 Ops.erase(Ops.begin()+Idx);
Dan Gohmandd41bba2010-06-21 19:47:52 +00002433 Ops.append(SMax->op_begin(), SMax->op_end());
Nick Lewyckycdb7e542007-11-25 22:41:31 +00002434 DeletedSMax = true;
2435 }
2436
2437 if (DeletedSMax)
2438 return getSMaxExpr(Ops);
2439 }
2440
2441 // Okay, check to see if the same value occurs in the operand list twice. If
2442 // so, delete one. Since we sorted the list, these values are required to
2443 // be adjacent.
2444 for (unsigned i = 0, e = Ops.size()-1; i != e; ++i)
Dan Gohman7ef0dc22010-04-13 16:51:03 +00002445 // X smax Y smax Y --> X smax Y
2446 // X smax Y --> X, if X is always greater than Y
2447 if (Ops[i] == Ops[i+1] ||
2448 isKnownPredicate(ICmpInst::ICMP_SGE, Ops[i], Ops[i+1])) {
2449 Ops.erase(Ops.begin()+i+1, Ops.begin()+i+2);
2450 --i; --e;
2451 } else if (isKnownPredicate(ICmpInst::ICMP_SLE, Ops[i], Ops[i+1])) {
Nick Lewyckycdb7e542007-11-25 22:41:31 +00002452 Ops.erase(Ops.begin()+i, Ops.begin()+i+1);
2453 --i; --e;
2454 }
2455
2456 if (Ops.size() == 1) return Ops[0];
2457
2458 assert(!Ops.empty() && "Reduced smax down to nothing!");
2459
Nick Lewycky1c44ebc2008-02-20 06:48:22 +00002460 // Okay, it looks like we really DO need an smax expr. Check to see if we
Nick Lewyckycdb7e542007-11-25 22:41:31 +00002461 // already have one, otherwise create a new one.
Dan Gohmanc5c85c02009-06-27 21:21:31 +00002462 FoldingSetNodeID ID;
2463 ID.AddInteger(scSMaxExpr);
Dan Gohmanc5c85c02009-06-27 21:21:31 +00002464 for (unsigned i = 0, e = Ops.size(); i != e; ++i)
2465 ID.AddPointer(Ops[i]);
2466 void *IP = 0;
2467 if (const SCEV *S = UniqueSCEVs.FindNodeOrInsertPos(ID, IP)) return S;
Dan Gohman00524492010-03-18 01:17:13 +00002468 const SCEV **O = SCEVAllocator.Allocate<const SCEV *>(Ops.size());
2469 std::uninitialized_copy(Ops.begin(), Ops.end(), O);
Dan Gohman01c65a22010-03-18 18:49:47 +00002470 SCEV *S = new (SCEVAllocator) SCEVSMaxExpr(ID.Intern(SCEVAllocator),
2471 O, Ops.size());
Dan Gohmanc5c85c02009-06-27 21:21:31 +00002472 UniqueSCEVs.InsertNode(S, IP);
2473 return S;
Nick Lewyckycdb7e542007-11-25 22:41:31 +00002474}
2475
Dan Gohmanabd17092009-06-24 14:49:00 +00002476const SCEV *ScalarEvolution::getUMaxExpr(const SCEV *LHS,
2477 const SCEV *RHS) {
Dan Gohmanaf752342009-07-07 17:06:11 +00002478 SmallVector<const SCEV *, 2> Ops;
Nick Lewycky1c44ebc2008-02-20 06:48:22 +00002479 Ops.push_back(LHS);
2480 Ops.push_back(RHS);
2481 return getUMaxExpr(Ops);
2482}
2483
Dan Gohmanaf752342009-07-07 17:06:11 +00002484const SCEV *
2485ScalarEvolution::getUMaxExpr(SmallVectorImpl<const SCEV *> &Ops) {
Nick Lewycky1c44ebc2008-02-20 06:48:22 +00002486 assert(!Ops.empty() && "Cannot get empty umax!");
2487 if (Ops.size() == 1) return Ops[0];
Dan Gohmand33f36e2009-05-18 15:44:58 +00002488#ifndef NDEBUG
Chris Lattner229907c2011-07-18 04:54:35 +00002489 Type *ETy = getEffectiveSCEVType(Ops[0]->getType());
Dan Gohmand33f36e2009-05-18 15:44:58 +00002490 for (unsigned i = 1, e = Ops.size(); i != e; ++i)
Dan Gohmanb6c773e2010-08-16 16:13:54 +00002491 assert(getEffectiveSCEVType(Ops[i]->getType()) == ETy &&
Dan Gohmand33f36e2009-05-18 15:44:58 +00002492 "SCEVUMaxExpr operand types don't match!");
2493#endif
Nick Lewycky1c44ebc2008-02-20 06:48:22 +00002494
2495 // Sort by complexity, this groups all similar expression types together.
Dan Gohman9ba542c2009-05-07 14:39:04 +00002496 GroupByComplexity(Ops, LI);
Nick Lewycky1c44ebc2008-02-20 06:48:22 +00002497
2498 // If there are any constants, fold them together.
2499 unsigned Idx = 0;
Dan Gohmana30370b2009-05-04 22:02:23 +00002500 if (const SCEVConstant *LHSC = dyn_cast<SCEVConstant>(Ops[0])) {
Nick Lewycky1c44ebc2008-02-20 06:48:22 +00002501 ++Idx;
2502 assert(Idx < Ops.size());
Dan Gohmana30370b2009-05-04 22:02:23 +00002503 while (const SCEVConstant *RHSC = dyn_cast<SCEVConstant>(Ops[Idx])) {
Nick Lewycky1c44ebc2008-02-20 06:48:22 +00002504 // We found two constants, fold them together!
Owen Andersonedb4a702009-07-24 23:12:02 +00002505 ConstantInt *Fold = ConstantInt::get(getContext(),
Nick Lewycky1c44ebc2008-02-20 06:48:22 +00002506 APIntOps::umax(LHSC->getValue()->getValue(),
2507 RHSC->getValue()->getValue()));
2508 Ops[0] = getConstant(Fold);
2509 Ops.erase(Ops.begin()+1); // Erase the folded element
2510 if (Ops.size() == 1) return Ops[0];
2511 LHSC = cast<SCEVConstant>(Ops[0]);
2512 }
2513
Dan Gohmanf57bdb72009-06-24 14:46:22 +00002514 // If we are left with a constant minimum-int, strip it off.
Nick Lewycky1c44ebc2008-02-20 06:48:22 +00002515 if (cast<SCEVConstant>(Ops[0])->getValue()->isMinValue(false)) {
2516 Ops.erase(Ops.begin());
2517 --Idx;
Dan Gohmanf57bdb72009-06-24 14:46:22 +00002518 } else if (cast<SCEVConstant>(Ops[0])->getValue()->isMaxValue(false)) {
2519 // If we have an umax with a constant maximum-int, it will always be
2520 // maximum-int.
2521 return Ops[0];
Nick Lewycky1c44ebc2008-02-20 06:48:22 +00002522 }
Nick Lewycky1c44ebc2008-02-20 06:48:22 +00002523
Dan Gohmanfe4b2912010-04-13 16:49:23 +00002524 if (Ops.size() == 1) return Ops[0];
2525 }
Nick Lewycky1c44ebc2008-02-20 06:48:22 +00002526
2527 // Find the first UMax
2528 while (Idx < Ops.size() && Ops[Idx]->getSCEVType() < scUMaxExpr)
2529 ++Idx;
2530
2531 // Check to see if one of the operands is a UMax. If so, expand its operands
2532 // onto our operand list, and recurse to simplify.
2533 if (Idx < Ops.size()) {
2534 bool DeletedUMax = false;
Dan Gohmana30370b2009-05-04 22:02:23 +00002535 while (const SCEVUMaxExpr *UMax = dyn_cast<SCEVUMaxExpr>(Ops[Idx])) {
Nick Lewycky1c44ebc2008-02-20 06:48:22 +00002536 Ops.erase(Ops.begin()+Idx);
Dan Gohmandd41bba2010-06-21 19:47:52 +00002537 Ops.append(UMax->op_begin(), UMax->op_end());
Nick Lewycky1c44ebc2008-02-20 06:48:22 +00002538 DeletedUMax = true;
2539 }
2540
2541 if (DeletedUMax)
2542 return getUMaxExpr(Ops);
2543 }
2544
2545 // Okay, check to see if the same value occurs in the operand list twice. If
2546 // so, delete one. Since we sorted the list, these values are required to
2547 // be adjacent.
2548 for (unsigned i = 0, e = Ops.size()-1; i != e; ++i)
Dan Gohman7ef0dc22010-04-13 16:51:03 +00002549 // X umax Y umax Y --> X umax Y
2550 // X umax Y --> X, if X is always greater than Y
2551 if (Ops[i] == Ops[i+1] ||
2552 isKnownPredicate(ICmpInst::ICMP_UGE, Ops[i], Ops[i+1])) {
2553 Ops.erase(Ops.begin()+i+1, Ops.begin()+i+2);
2554 --i; --e;
2555 } else if (isKnownPredicate(ICmpInst::ICMP_ULE, Ops[i], Ops[i+1])) {
Nick Lewycky1c44ebc2008-02-20 06:48:22 +00002556 Ops.erase(Ops.begin()+i, Ops.begin()+i+1);
2557 --i; --e;
2558 }
2559
2560 if (Ops.size() == 1) return Ops[0];
2561
2562 assert(!Ops.empty() && "Reduced umax down to nothing!");
2563
2564 // Okay, it looks like we really DO need a umax expr. Check to see if we
2565 // already have one, otherwise create a new one.
Dan Gohmanc5c85c02009-06-27 21:21:31 +00002566 FoldingSetNodeID ID;
2567 ID.AddInteger(scUMaxExpr);
Dan Gohmanc5c85c02009-06-27 21:21:31 +00002568 for (unsigned i = 0, e = Ops.size(); i != e; ++i)
2569 ID.AddPointer(Ops[i]);
2570 void *IP = 0;
2571 if (const SCEV *S = UniqueSCEVs.FindNodeOrInsertPos(ID, IP)) return S;
Dan Gohman00524492010-03-18 01:17:13 +00002572 const SCEV **O = SCEVAllocator.Allocate<const SCEV *>(Ops.size());
2573 std::uninitialized_copy(Ops.begin(), Ops.end(), O);
Dan Gohman01c65a22010-03-18 18:49:47 +00002574 SCEV *S = new (SCEVAllocator) SCEVUMaxExpr(ID.Intern(SCEVAllocator),
2575 O, Ops.size());
Dan Gohmanc5c85c02009-06-27 21:21:31 +00002576 UniqueSCEVs.InsertNode(S, IP);
2577 return S;
Nick Lewycky1c44ebc2008-02-20 06:48:22 +00002578}
2579
Dan Gohmanabd17092009-06-24 14:49:00 +00002580const SCEV *ScalarEvolution::getSMinExpr(const SCEV *LHS,
2581 const SCEV *RHS) {
Dan Gohman692b4682009-06-22 03:18:45 +00002582 // ~smax(~x, ~y) == smin(x, y).
2583 return getNotSCEV(getSMaxExpr(getNotSCEV(LHS), getNotSCEV(RHS)));
2584}
2585
Dan Gohmanabd17092009-06-24 14:49:00 +00002586const SCEV *ScalarEvolution::getUMinExpr(const SCEV *LHS,
2587 const SCEV *RHS) {
Dan Gohman692b4682009-06-22 03:18:45 +00002588 // ~umax(~x, ~y) == umin(x, y)
2589 return getNotSCEV(getUMaxExpr(getNotSCEV(LHS), getNotSCEV(RHS)));
2590}
2591
Matt Arsenaulta90a18e2013-09-10 19:55:24 +00002592const SCEV *ScalarEvolution::getSizeOfExpr(Type *IntTy, Type *AllocTy) {
Micah Villmowcdfe20b2012-10-08 16:38:25 +00002593 // If we have DataLayout, we can bypass creating a target-independent
Dan Gohman11862a62010-04-12 23:03:26 +00002594 // constant expression and then folding it back into a ConstantInt.
2595 // This is just a compile-time optimization.
2596 if (TD)
Matt Arsenaulta90a18e2013-09-10 19:55:24 +00002597 return getConstant(IntTy, TD->getTypeAllocSize(AllocTy));
Dan Gohman11862a62010-04-12 23:03:26 +00002598
Dan Gohmane5e1b7b2010-02-01 18:27:38 +00002599 Constant *C = ConstantExpr::getSizeOf(AllocTy);
2600 if (ConstantExpr *CE = dyn_cast<ConstantExpr>(C))
Chad Rosier43a33062011-12-02 01:26:24 +00002601 if (Constant *Folded = ConstantFoldConstantExpression(CE, TD, TLI))
Dan Gohmana3b6c4b2010-05-28 16:12:08 +00002602 C = Folded;
Chris Lattner229907c2011-07-18 04:54:35 +00002603 Type *Ty = getEffectiveSCEVType(PointerType::getUnqual(AllocTy));
Matt Arsenaulta90a18e2013-09-10 19:55:24 +00002604 assert(Ty == IntTy && "Effective SCEV type doesn't match");
Dan Gohmane5e1b7b2010-02-01 18:27:38 +00002605 return getTruncateOrZeroExtend(getSCEV(C), Ty);
2606}
2607
Matt Arsenaulta90a18e2013-09-10 19:55:24 +00002608const SCEV *ScalarEvolution::getOffsetOfExpr(Type *IntTy,
2609 StructType *STy,
Dan Gohmane5e1b7b2010-02-01 18:27:38 +00002610 unsigned FieldNo) {
Micah Villmowcdfe20b2012-10-08 16:38:25 +00002611 // If we have DataLayout, we can bypass creating a target-independent
Dan Gohman11862a62010-04-12 23:03:26 +00002612 // constant expression and then folding it back into a ConstantInt.
2613 // This is just a compile-time optimization.
Matt Arsenaulta90a18e2013-09-10 19:55:24 +00002614 if (TD) {
2615 return getConstant(IntTy,
Dan Gohman11862a62010-04-12 23:03:26 +00002616 TD->getStructLayout(STy)->getElementOffset(FieldNo));
Matt Arsenaulta90a18e2013-09-10 19:55:24 +00002617 }
Dan Gohman11862a62010-04-12 23:03:26 +00002618
Dan Gohmancf913832010-01-28 02:15:55 +00002619 Constant *C = ConstantExpr::getOffsetOf(STy, FieldNo);
2620 if (ConstantExpr *CE = dyn_cast<ConstantExpr>(C))
Chad Rosier43a33062011-12-02 01:26:24 +00002621 if (Constant *Folded = ConstantFoldConstantExpression(CE, TD, TLI))
Dan Gohmana3b6c4b2010-05-28 16:12:08 +00002622 C = Folded;
Dan Gohmanbf2a9ae2009-08-18 16:46:41 +00002623
Matt Arsenault4ed49b52013-10-21 18:08:09 +00002624 Type *Ty = getEffectiveSCEVType(PointerType::getUnqual(STy));
Dan Gohmancf913832010-01-28 02:15:55 +00002625 return getTruncateOrZeroExtend(getSCEV(C), Ty);
Dan Gohmanbf2a9ae2009-08-18 16:46:41 +00002626}
2627
Dan Gohmanaf752342009-07-07 17:06:11 +00002628const SCEV *ScalarEvolution::getUnknown(Value *V) {
Dan Gohmanf436bac2009-06-24 00:54:57 +00002629 // Don't attempt to do anything other than create a SCEVUnknown object
2630 // here. createSCEV only calls getUnknown after checking for all other
2631 // interesting possibilities, and any other code that calls getUnknown
2632 // is doing so in order to hide a value from SCEV canonicalization.
2633
Dan Gohmanc5c85c02009-06-27 21:21:31 +00002634 FoldingSetNodeID ID;
2635 ID.AddInteger(scUnknown);
2636 ID.AddPointer(V);
2637 void *IP = 0;
Dan Gohman7cac9572010-08-02 23:49:30 +00002638 if (SCEV *S = UniqueSCEVs.FindNodeOrInsertPos(ID, IP)) {
2639 assert(cast<SCEVUnknown>(S)->getValue() == V &&
2640 "Stale SCEVUnknown in uniquing map!");
2641 return S;
2642 }
2643 SCEV *S = new (SCEVAllocator) SCEVUnknown(ID.Intern(SCEVAllocator), V, this,
2644 FirstUnknown);
2645 FirstUnknown = cast<SCEVUnknown>(S);
Dan Gohmanc5c85c02009-06-27 21:21:31 +00002646 UniqueSCEVs.InsertNode(S, IP);
2647 return S;
Chris Lattnerb4f681b2004-04-15 15:07:24 +00002648}
2649
Chris Lattnerd934c702004-04-02 20:23:17 +00002650//===----------------------------------------------------------------------===//
Chris Lattnerd934c702004-04-02 20:23:17 +00002651// Basic SCEV Analysis and PHI Idiom Recognition Code
2652//
2653
Dan Gohmanb397e1a2009-04-21 01:07:12 +00002654/// isSCEVable - Test if values of the given type are analyzable within
2655/// the SCEV framework. This primarily includes integer types, and it
2656/// can optionally include pointer types if the ScalarEvolution class
2657/// has access to target-specific information.
Chris Lattner229907c2011-07-18 04:54:35 +00002658bool ScalarEvolution::isSCEVable(Type *Ty) const {
Dan Gohmanbf2a9ae2009-08-18 16:46:41 +00002659 // Integers and pointers are always SCEVable.
Duncan Sands19d0b472010-02-16 11:11:14 +00002660 return Ty->isIntegerTy() || Ty->isPointerTy();
Dan Gohmanb397e1a2009-04-21 01:07:12 +00002661}
2662
2663/// getTypeSizeInBits - Return the size in bits of the specified type,
2664/// for which isSCEVable must return true.
Chris Lattner229907c2011-07-18 04:54:35 +00002665uint64_t ScalarEvolution::getTypeSizeInBits(Type *Ty) const {
Dan Gohmanb397e1a2009-04-21 01:07:12 +00002666 assert(isSCEVable(Ty) && "Type is not SCEVable!");
2667
Micah Villmowcdfe20b2012-10-08 16:38:25 +00002668 // If we have a DataLayout, use it!
Dan Gohmanb397e1a2009-04-21 01:07:12 +00002669 if (TD)
2670 return TD->getTypeSizeInBits(Ty);
2671
Dan Gohmanbf2a9ae2009-08-18 16:46:41 +00002672 // Integer types have fixed sizes.
Duncan Sands9dff9be2010-02-15 16:12:20 +00002673 if (Ty->isIntegerTy())
Dan Gohmanbf2a9ae2009-08-18 16:46:41 +00002674 return Ty->getPrimitiveSizeInBits();
2675
Micah Villmowcdfe20b2012-10-08 16:38:25 +00002676 // The only other support type is pointer. Without DataLayout, conservatively
Dan Gohmanbf2a9ae2009-08-18 16:46:41 +00002677 // assume pointers are 64-bit.
Duncan Sands19d0b472010-02-16 11:11:14 +00002678 assert(Ty->isPointerTy() && "isSCEVable permitted a non-SCEVable type!");
Dan Gohmanbf2a9ae2009-08-18 16:46:41 +00002679 return 64;
Dan Gohmanb397e1a2009-04-21 01:07:12 +00002680}
2681
2682/// getEffectiveSCEVType - Return a type with the same bitwidth as
2683/// the given type and which represents how SCEV will treat the given
2684/// type, for which isSCEVable must return true. For pointer types,
2685/// this is the pointer-sized integer type.
Chris Lattner229907c2011-07-18 04:54:35 +00002686Type *ScalarEvolution::getEffectiveSCEVType(Type *Ty) const {
Dan Gohmanb397e1a2009-04-21 01:07:12 +00002687 assert(isSCEVable(Ty) && "Type is not SCEVable!");
2688
Matt Arsenaulta90a18e2013-09-10 19:55:24 +00002689 if (Ty->isIntegerTy()) {
Dan Gohmanb397e1a2009-04-21 01:07:12 +00002690 return Ty;
Matt Arsenaulta90a18e2013-09-10 19:55:24 +00002691 }
Dan Gohmanb397e1a2009-04-21 01:07:12 +00002692
Dan Gohmanbf2a9ae2009-08-18 16:46:41 +00002693 // The only other support type is pointer.
Duncan Sands19d0b472010-02-16 11:11:14 +00002694 assert(Ty->isPointerTy() && "Unexpected non-pointer non-integer type!");
Matt Arsenaulta90a18e2013-09-10 19:55:24 +00002695
2696 if (TD)
2697 return TD->getIntPtrType(Ty);
Dan Gohmanbf2a9ae2009-08-18 16:46:41 +00002698
Micah Villmowcdfe20b2012-10-08 16:38:25 +00002699 // Without DataLayout, conservatively assume pointers are 64-bit.
Dan Gohmanbf2a9ae2009-08-18 16:46:41 +00002700 return Type::getInt64Ty(getContext());
Dan Gohman0a40ad92009-04-16 03:18:22 +00002701}
Chris Lattnerd934c702004-04-02 20:23:17 +00002702
Dan Gohmanaf752342009-07-07 17:06:11 +00002703const SCEV *ScalarEvolution::getCouldNotCompute() {
Dan Gohmanc5c85c02009-06-27 21:21:31 +00002704 return &CouldNotCompute;
Dan Gohman31efa302009-04-18 17:58:19 +00002705}
2706
Shuxin Yangefc4c012013-07-08 17:33:13 +00002707namespace {
2708 // Helper class working with SCEVTraversal to figure out if a SCEV contains
2709 // a SCEVUnknown with null value-pointer. FindInvalidSCEVUnknown::FindOne
2710 // is set iff if find such SCEVUnknown.
2711 //
2712 struct FindInvalidSCEVUnknown {
2713 bool FindOne;
2714 FindInvalidSCEVUnknown() { FindOne = false; }
2715 bool follow(const SCEV *S) {
2716 switch (S->getSCEVType()) {
2717 case scConstant:
2718 return false;
2719 case scUnknown:
Shuxin Yang23773b32013-07-12 07:25:38 +00002720 if (!cast<SCEVUnknown>(S)->getValue())
Shuxin Yangefc4c012013-07-08 17:33:13 +00002721 FindOne = true;
2722 return false;
2723 default:
2724 return true;
2725 }
2726 }
2727 bool isDone() const { return FindOne; }
2728 };
2729}
2730
2731bool ScalarEvolution::checkValidity(const SCEV *S) const {
2732 FindInvalidSCEVUnknown F;
2733 SCEVTraversal<FindInvalidSCEVUnknown> ST(F);
2734 ST.visitAll(S);
2735
2736 return !F.FindOne;
2737}
2738
Chris Lattnerd934c702004-04-02 20:23:17 +00002739/// getSCEV - Return an existing SCEV if it exists, otherwise analyze the
2740/// expression and create a new one.
Dan Gohmanaf752342009-07-07 17:06:11 +00002741const SCEV *ScalarEvolution::getSCEV(Value *V) {
Dan Gohmanb397e1a2009-04-21 01:07:12 +00002742 assert(isSCEVable(V->getType()) && "Value is not SCEVable!");
Chris Lattnerd934c702004-04-02 20:23:17 +00002743
Shuxin Yangefc4c012013-07-08 17:33:13 +00002744 ValueExprMapType::iterator I = ValueExprMap.find_as(V);
2745 if (I != ValueExprMap.end()) {
2746 const SCEV *S = I->second;
Shuxin Yang23773b32013-07-12 07:25:38 +00002747 if (checkValidity(S))
Shuxin Yangefc4c012013-07-08 17:33:13 +00002748 return S;
2749 else
2750 ValueExprMap.erase(I);
2751 }
Dan Gohmanaf752342009-07-07 17:06:11 +00002752 const SCEV *S = createSCEV(V);
Dan Gohmanc29eeae2010-08-16 16:31:39 +00002753
2754 // The process of creating a SCEV for V may have caused other SCEVs
2755 // to have been created, so it's necessary to insert the new entry
2756 // from scratch, rather than trying to remember the insert position
2757 // above.
Dan Gohman9bad2fb2010-08-27 18:55:03 +00002758 ValueExprMap.insert(std::make_pair(SCEVCallbackVH(V, this), S));
Chris Lattnerd934c702004-04-02 20:23:17 +00002759 return S;
2760}
2761
Dan Gohman0a40ad92009-04-16 03:18:22 +00002762/// getNegativeSCEV - Return a SCEV corresponding to -V = -1*V
2763///
Dan Gohmanaf752342009-07-07 17:06:11 +00002764const SCEV *ScalarEvolution::getNegativeSCEV(const SCEV *V) {
Dan Gohmana30370b2009-05-04 22:02:23 +00002765 if (const SCEVConstant *VC = dyn_cast<SCEVConstant>(V))
Owen Anderson53a52212009-07-13 04:09:18 +00002766 return getConstant(
Owen Anderson487375e2009-07-29 18:55:55 +00002767 cast<ConstantInt>(ConstantExpr::getNeg(VC->getValue())));
Dan Gohman0a40ad92009-04-16 03:18:22 +00002768
Chris Lattner229907c2011-07-18 04:54:35 +00002769 Type *Ty = V->getType();
Dan Gohmanc8e23622009-04-21 23:15:49 +00002770 Ty = getEffectiveSCEVType(Ty);
Owen Anderson542619e2009-07-13 20:58:05 +00002771 return getMulExpr(V,
Owen Anderson5a1acd92009-07-31 20:28:14 +00002772 getConstant(cast<ConstantInt>(Constant::getAllOnesValue(Ty))));
Dan Gohman0a40ad92009-04-16 03:18:22 +00002773}
2774
2775/// getNotSCEV - Return a SCEV corresponding to ~V = -1-V
Dan Gohmanaf752342009-07-07 17:06:11 +00002776const SCEV *ScalarEvolution::getNotSCEV(const SCEV *V) {
Dan Gohmana30370b2009-05-04 22:02:23 +00002777 if (const SCEVConstant *VC = dyn_cast<SCEVConstant>(V))
Owen Anderson542619e2009-07-13 20:58:05 +00002778 return getConstant(
Owen Anderson487375e2009-07-29 18:55:55 +00002779 cast<ConstantInt>(ConstantExpr::getNot(VC->getValue())));
Dan Gohman0a40ad92009-04-16 03:18:22 +00002780
Chris Lattner229907c2011-07-18 04:54:35 +00002781 Type *Ty = V->getType();
Dan Gohmanc8e23622009-04-21 23:15:49 +00002782 Ty = getEffectiveSCEVType(Ty);
Owen Anderson542619e2009-07-13 20:58:05 +00002783 const SCEV *AllOnes =
Owen Anderson5a1acd92009-07-31 20:28:14 +00002784 getConstant(cast<ConstantInt>(Constant::getAllOnesValue(Ty)));
Dan Gohman0a40ad92009-04-16 03:18:22 +00002785 return getMinusSCEV(AllOnes, V);
2786}
2787
Andrew Trick8b55b732011-03-14 16:50:06 +00002788/// getMinusSCEV - Return LHS-RHS. Minus is represented in SCEV as A+B*-1.
Chris Lattnerfc877522011-01-09 22:26:35 +00002789const SCEV *ScalarEvolution::getMinusSCEV(const SCEV *LHS, const SCEV *RHS,
Andrew Trick8b55b732011-03-14 16:50:06 +00002790 SCEV::NoWrapFlags Flags) {
Andrew Tricka34f1b12011-03-15 01:16:14 +00002791 assert(!maskFlags(Flags, SCEV::FlagNUW) && "subtraction does not have NUW");
2792
Dan Gohman46f00a22010-07-20 16:53:00 +00002793 // Fast path: X - X --> 0.
2794 if (LHS == RHS)
2795 return getConstant(LHS->getType(), 0);
2796
Dan Gohman0a40ad92009-04-16 03:18:22 +00002797 // X - Y --> X + -Y
Andrew Trick8b55b732011-03-14 16:50:06 +00002798 return getAddExpr(LHS, getNegativeSCEV(RHS), Flags);
Dan Gohman0a40ad92009-04-16 03:18:22 +00002799}
2800
2801/// getTruncateOrZeroExtend - Return a SCEV corresponding to a conversion of the
2802/// input value to the specified type. If the type must be extended, it is zero
2803/// extended.
Dan Gohmanaf752342009-07-07 17:06:11 +00002804const SCEV *
Chris Lattner229907c2011-07-18 04:54:35 +00002805ScalarEvolution::getTruncateOrZeroExtend(const SCEV *V, Type *Ty) {
2806 Type *SrcTy = V->getType();
Duncan Sands19d0b472010-02-16 11:11:14 +00002807 assert((SrcTy->isIntegerTy() || SrcTy->isPointerTy()) &&
2808 (Ty->isIntegerTy() || Ty->isPointerTy()) &&
Dan Gohman0a40ad92009-04-16 03:18:22 +00002809 "Cannot truncate or zero extend with non-integer arguments!");
Dan Gohmanb397e1a2009-04-21 01:07:12 +00002810 if (getTypeSizeInBits(SrcTy) == getTypeSizeInBits(Ty))
Dan Gohman0a40ad92009-04-16 03:18:22 +00002811 return V; // No conversion
Dan Gohmanb397e1a2009-04-21 01:07:12 +00002812 if (getTypeSizeInBits(SrcTy) > getTypeSizeInBits(Ty))
Dan Gohmanc8e23622009-04-21 23:15:49 +00002813 return getTruncateExpr(V, Ty);
2814 return getZeroExtendExpr(V, Ty);
Dan Gohman0a40ad92009-04-16 03:18:22 +00002815}
2816
2817/// getTruncateOrSignExtend - Return a SCEV corresponding to a conversion of the
2818/// input value to the specified type. If the type must be extended, it is sign
2819/// extended.
Dan Gohmanaf752342009-07-07 17:06:11 +00002820const SCEV *
2821ScalarEvolution::getTruncateOrSignExtend(const SCEV *V,
Chris Lattner229907c2011-07-18 04:54:35 +00002822 Type *Ty) {
2823 Type *SrcTy = V->getType();
Duncan Sands19d0b472010-02-16 11:11:14 +00002824 assert((SrcTy->isIntegerTy() || SrcTy->isPointerTy()) &&
2825 (Ty->isIntegerTy() || Ty->isPointerTy()) &&
Dan Gohman0a40ad92009-04-16 03:18:22 +00002826 "Cannot truncate or zero extend with non-integer arguments!");
Dan Gohmanb397e1a2009-04-21 01:07:12 +00002827 if (getTypeSizeInBits(SrcTy) == getTypeSizeInBits(Ty))
Dan Gohman0a40ad92009-04-16 03:18:22 +00002828 return V; // No conversion
Dan Gohmanb397e1a2009-04-21 01:07:12 +00002829 if (getTypeSizeInBits(SrcTy) > getTypeSizeInBits(Ty))
Dan Gohmanc8e23622009-04-21 23:15:49 +00002830 return getTruncateExpr(V, Ty);
2831 return getSignExtendExpr(V, Ty);
Dan Gohman0a40ad92009-04-16 03:18:22 +00002832}
2833
Dan Gohmane712a2f2009-05-13 03:46:30 +00002834/// getNoopOrZeroExtend - Return a SCEV corresponding to a conversion of the
2835/// input value to the specified type. If the type must be extended, it is zero
2836/// extended. The conversion must not be narrowing.
Dan Gohmanaf752342009-07-07 17:06:11 +00002837const SCEV *
Chris Lattner229907c2011-07-18 04:54:35 +00002838ScalarEvolution::getNoopOrZeroExtend(const SCEV *V, Type *Ty) {
2839 Type *SrcTy = V->getType();
Duncan Sands19d0b472010-02-16 11:11:14 +00002840 assert((SrcTy->isIntegerTy() || SrcTy->isPointerTy()) &&
2841 (Ty->isIntegerTy() || Ty->isPointerTy()) &&
Dan Gohmane712a2f2009-05-13 03:46:30 +00002842 "Cannot noop or zero extend with non-integer arguments!");
2843 assert(getTypeSizeInBits(SrcTy) <= getTypeSizeInBits(Ty) &&
2844 "getNoopOrZeroExtend cannot truncate!");
2845 if (getTypeSizeInBits(SrcTy) == getTypeSizeInBits(Ty))
2846 return V; // No conversion
2847 return getZeroExtendExpr(V, Ty);
2848}
2849
2850/// getNoopOrSignExtend - Return a SCEV corresponding to a conversion of the
2851/// input value to the specified type. If the type must be extended, it is sign
2852/// extended. The conversion must not be narrowing.
Dan Gohmanaf752342009-07-07 17:06:11 +00002853const SCEV *
Chris Lattner229907c2011-07-18 04:54:35 +00002854ScalarEvolution::getNoopOrSignExtend(const SCEV *V, Type *Ty) {
2855 Type *SrcTy = V->getType();
Duncan Sands19d0b472010-02-16 11:11:14 +00002856 assert((SrcTy->isIntegerTy() || SrcTy->isPointerTy()) &&
2857 (Ty->isIntegerTy() || Ty->isPointerTy()) &&
Dan Gohmane712a2f2009-05-13 03:46:30 +00002858 "Cannot noop or sign extend with non-integer arguments!");
2859 assert(getTypeSizeInBits(SrcTy) <= getTypeSizeInBits(Ty) &&
2860 "getNoopOrSignExtend cannot truncate!");
2861 if (getTypeSizeInBits(SrcTy) == getTypeSizeInBits(Ty))
2862 return V; // No conversion
2863 return getSignExtendExpr(V, Ty);
2864}
2865
Dan Gohman8db2edc2009-06-13 15:56:47 +00002866/// getNoopOrAnyExtend - Return a SCEV corresponding to a conversion of
2867/// the input value to the specified type. If the type must be extended,
2868/// it is extended with unspecified bits. The conversion must not be
2869/// narrowing.
Dan Gohmanaf752342009-07-07 17:06:11 +00002870const SCEV *
Chris Lattner229907c2011-07-18 04:54:35 +00002871ScalarEvolution::getNoopOrAnyExtend(const SCEV *V, Type *Ty) {
2872 Type *SrcTy = V->getType();
Duncan Sands19d0b472010-02-16 11:11:14 +00002873 assert((SrcTy->isIntegerTy() || SrcTy->isPointerTy()) &&
2874 (Ty->isIntegerTy() || Ty->isPointerTy()) &&
Dan Gohman8db2edc2009-06-13 15:56:47 +00002875 "Cannot noop or any extend with non-integer arguments!");
2876 assert(getTypeSizeInBits(SrcTy) <= getTypeSizeInBits(Ty) &&
2877 "getNoopOrAnyExtend cannot truncate!");
2878 if (getTypeSizeInBits(SrcTy) == getTypeSizeInBits(Ty))
2879 return V; // No conversion
2880 return getAnyExtendExpr(V, Ty);
2881}
2882
Dan Gohmane712a2f2009-05-13 03:46:30 +00002883/// getTruncateOrNoop - Return a SCEV corresponding to a conversion of the
2884/// input value to the specified type. The conversion must not be widening.
Dan Gohmanaf752342009-07-07 17:06:11 +00002885const SCEV *
Chris Lattner229907c2011-07-18 04:54:35 +00002886ScalarEvolution::getTruncateOrNoop(const SCEV *V, Type *Ty) {
2887 Type *SrcTy = V->getType();
Duncan Sands19d0b472010-02-16 11:11:14 +00002888 assert((SrcTy->isIntegerTy() || SrcTy->isPointerTy()) &&
2889 (Ty->isIntegerTy() || Ty->isPointerTy()) &&
Dan Gohmane712a2f2009-05-13 03:46:30 +00002890 "Cannot truncate or noop with non-integer arguments!");
2891 assert(getTypeSizeInBits(SrcTy) >= getTypeSizeInBits(Ty) &&
2892 "getTruncateOrNoop cannot extend!");
2893 if (getTypeSizeInBits(SrcTy) == getTypeSizeInBits(Ty))
2894 return V; // No conversion
2895 return getTruncateExpr(V, Ty);
2896}
2897
Dan Gohman96212b62009-06-22 00:31:57 +00002898/// getUMaxFromMismatchedTypes - Promote the operands to the wider of
2899/// the types using zero-extension, and then perform a umax operation
2900/// with them.
Dan Gohmanabd17092009-06-24 14:49:00 +00002901const SCEV *ScalarEvolution::getUMaxFromMismatchedTypes(const SCEV *LHS,
2902 const SCEV *RHS) {
Dan Gohmanaf752342009-07-07 17:06:11 +00002903 const SCEV *PromotedLHS = LHS;
2904 const SCEV *PromotedRHS = RHS;
Dan Gohman96212b62009-06-22 00:31:57 +00002905
2906 if (getTypeSizeInBits(LHS->getType()) > getTypeSizeInBits(RHS->getType()))
2907 PromotedRHS = getZeroExtendExpr(RHS, LHS->getType());
2908 else
2909 PromotedLHS = getNoopOrZeroExtend(LHS, RHS->getType());
2910
2911 return getUMaxExpr(PromotedLHS, PromotedRHS);
2912}
2913
Dan Gohman2bc22302009-06-22 15:03:27 +00002914/// getUMinFromMismatchedTypes - Promote the operands to the wider of
2915/// the types using zero-extension, and then perform a umin operation
2916/// with them.
Dan Gohmanabd17092009-06-24 14:49:00 +00002917const SCEV *ScalarEvolution::getUMinFromMismatchedTypes(const SCEV *LHS,
2918 const SCEV *RHS) {
Dan Gohmanaf752342009-07-07 17:06:11 +00002919 const SCEV *PromotedLHS = LHS;
2920 const SCEV *PromotedRHS = RHS;
Dan Gohman2bc22302009-06-22 15:03:27 +00002921
2922 if (getTypeSizeInBits(LHS->getType()) > getTypeSizeInBits(RHS->getType()))
2923 PromotedRHS = getZeroExtendExpr(RHS, LHS->getType());
2924 else
2925 PromotedLHS = getNoopOrZeroExtend(LHS, RHS->getType());
2926
2927 return getUMinExpr(PromotedLHS, PromotedRHS);
2928}
2929
Andrew Trick87716c92011-03-17 23:51:11 +00002930/// getPointerBase - Transitively follow the chain of pointer-type operands
2931/// until reaching a SCEV that does not have a single pointer operand. This
2932/// returns a SCEVUnknown pointer for well-formed pointer-type expressions,
2933/// but corner cases do exist.
2934const SCEV *ScalarEvolution::getPointerBase(const SCEV *V) {
2935 // A pointer operand may evaluate to a nonpointer expression, such as null.
2936 if (!V->getType()->isPointerTy())
2937 return V;
2938
2939 if (const SCEVCastExpr *Cast = dyn_cast<SCEVCastExpr>(V)) {
2940 return getPointerBase(Cast->getOperand());
2941 }
2942 else if (const SCEVNAryExpr *NAry = dyn_cast<SCEVNAryExpr>(V)) {
2943 const SCEV *PtrOp = 0;
2944 for (SCEVNAryExpr::op_iterator I = NAry->op_begin(), E = NAry->op_end();
2945 I != E; ++I) {
2946 if ((*I)->getType()->isPointerTy()) {
2947 // Cannot find the base of an expression with multiple pointer operands.
2948 if (PtrOp)
2949 return V;
2950 PtrOp = *I;
2951 }
2952 }
2953 if (!PtrOp)
2954 return V;
2955 return getPointerBase(PtrOp);
2956 }
2957 return V;
2958}
2959
Dan Gohman0b89dff2009-07-25 01:13:03 +00002960/// PushDefUseChildren - Push users of the given Instruction
2961/// onto the given Worklist.
2962static void
2963PushDefUseChildren(Instruction *I,
2964 SmallVectorImpl<Instruction *> &Worklist) {
2965 // Push the def-use children onto the Worklist stack.
2966 for (Value::use_iterator UI = I->use_begin(), UE = I->use_end();
2967 UI != UE; ++UI)
Gabor Greifdde79d82010-07-22 13:36:47 +00002968 Worklist.push_back(cast<Instruction>(*UI));
Dan Gohman0b89dff2009-07-25 01:13:03 +00002969}
2970
2971/// ForgetSymbolicValue - This looks up computed SCEV values for all
2972/// instructions that depend on the given instruction and removes them from
Dan Gohman9bad2fb2010-08-27 18:55:03 +00002973/// the ValueExprMapType map if they reference SymName. This is used during PHI
Dan Gohman0b89dff2009-07-25 01:13:03 +00002974/// resolution.
Dan Gohmance973df2009-06-24 04:48:43 +00002975void
Dan Gohmana9c205c2010-02-25 06:57:05 +00002976ScalarEvolution::ForgetSymbolicName(Instruction *PN, const SCEV *SymName) {
Dan Gohman0b89dff2009-07-25 01:13:03 +00002977 SmallVector<Instruction *, 16> Worklist;
Dan Gohmana9c205c2010-02-25 06:57:05 +00002978 PushDefUseChildren(PN, Worklist);
Chris Lattnerd934c702004-04-02 20:23:17 +00002979
Dan Gohman0b89dff2009-07-25 01:13:03 +00002980 SmallPtrSet<Instruction *, 8> Visited;
Dan Gohmana9c205c2010-02-25 06:57:05 +00002981 Visited.insert(PN);
Dan Gohman0b89dff2009-07-25 01:13:03 +00002982 while (!Worklist.empty()) {
Dan Gohmana9c205c2010-02-25 06:57:05 +00002983 Instruction *I = Worklist.pop_back_val();
Dan Gohman0b89dff2009-07-25 01:13:03 +00002984 if (!Visited.insert(I)) continue;
Chris Lattner7b0fbe72005-02-13 04:37:18 +00002985
Dan Gohman9bad2fb2010-08-27 18:55:03 +00002986 ValueExprMapType::iterator It =
Benjamin Kramere2ef47c2012-06-30 22:37:15 +00002987 ValueExprMap.find_as(static_cast<Value *>(I));
Dan Gohman9bad2fb2010-08-27 18:55:03 +00002988 if (It != ValueExprMap.end()) {
Dan Gohman761065e2010-11-17 02:44:44 +00002989 const SCEV *Old = It->second;
2990
Dan Gohman0b89dff2009-07-25 01:13:03 +00002991 // Short-circuit the def-use traversal if the symbolic name
2992 // ceases to appear in expressions.
Dan Gohman534749b2010-11-17 22:27:42 +00002993 if (Old != SymName && !hasOperand(Old, SymName))
Dan Gohman0b89dff2009-07-25 01:13:03 +00002994 continue;
Chris Lattner7b0fbe72005-02-13 04:37:18 +00002995
Dan Gohman0b89dff2009-07-25 01:13:03 +00002996 // SCEVUnknown for a PHI either means that it has an unrecognized
Dan Gohmana9c205c2010-02-25 06:57:05 +00002997 // structure, it's a PHI that's in the progress of being computed
2998 // by createNodeForPHI, or it's a single-value PHI. In the first case,
2999 // additional loop trip count information isn't going to change anything.
3000 // In the second case, createNodeForPHI will perform the necessary
3001 // updates on its own when it gets to that point. In the third, we do
3002 // want to forget the SCEVUnknown.
3003 if (!isa<PHINode>(I) ||
Dan Gohman761065e2010-11-17 02:44:44 +00003004 !isa<SCEVUnknown>(Old) ||
3005 (I != PN && Old == SymName)) {
Dan Gohman7e6b3932010-11-17 23:28:48 +00003006 forgetMemoizedResults(Old);
Dan Gohman9bad2fb2010-08-27 18:55:03 +00003007 ValueExprMap.erase(It);
Dan Gohmancc2f1eb2009-08-31 21:15:23 +00003008 }
Dan Gohman0b89dff2009-07-25 01:13:03 +00003009 }
3010
3011 PushDefUseChildren(I, Worklist);
3012 }
Chris Lattner7b0fbe72005-02-13 04:37:18 +00003013}
Chris Lattnerd934c702004-04-02 20:23:17 +00003014
3015/// createNodeForPHI - PHI nodes have two cases. Either the PHI node exists in
3016/// a loop header, making it a potential recurrence, or it doesn't.
3017///
Dan Gohmanaf752342009-07-07 17:06:11 +00003018const SCEV *ScalarEvolution::createNodeForPHI(PHINode *PN) {
Dan Gohman6635bb22010-04-12 07:49:36 +00003019 if (const Loop *L = LI->getLoopFor(PN->getParent()))
3020 if (L->getHeader() == PN->getParent()) {
3021 // The loop may have multiple entrances or multiple exits; we can analyze
3022 // this phi as an addrec if it has a unique entry value and a unique
3023 // backedge value.
3024 Value *BEValueV = 0, *StartValueV = 0;
3025 for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i) {
3026 Value *V = PN->getIncomingValue(i);
3027 if (L->contains(PN->getIncomingBlock(i))) {
3028 if (!BEValueV) {
3029 BEValueV = V;
3030 } else if (BEValueV != V) {
3031 BEValueV = 0;
3032 break;
3033 }
3034 } else if (!StartValueV) {
3035 StartValueV = V;
3036 } else if (StartValueV != V) {
3037 StartValueV = 0;
3038 break;
3039 }
3040 }
3041 if (BEValueV && StartValueV) {
Chris Lattnerd934c702004-04-02 20:23:17 +00003042 // While we are analyzing this PHI node, handle its value symbolically.
Dan Gohmanaf752342009-07-07 17:06:11 +00003043 const SCEV *SymbolicName = getUnknown(PN);
Benjamin Kramere2ef47c2012-06-30 22:37:15 +00003044 assert(ValueExprMap.find_as(PN) == ValueExprMap.end() &&
Chris Lattnerd934c702004-04-02 20:23:17 +00003045 "PHI node already processed?");
Dan Gohman9bad2fb2010-08-27 18:55:03 +00003046 ValueExprMap.insert(std::make_pair(SCEVCallbackVH(PN, this), SymbolicName));
Chris Lattnerd934c702004-04-02 20:23:17 +00003047
3048 // Using this symbolic name for the PHI, analyze the value coming around
3049 // the back-edge.
Dan Gohman0b89dff2009-07-25 01:13:03 +00003050 const SCEV *BEValue = getSCEV(BEValueV);
Chris Lattnerd934c702004-04-02 20:23:17 +00003051
3052 // NOTE: If BEValue is loop invariant, we know that the PHI node just
3053 // has a special value for the first iteration of the loop.
3054
3055 // If the value coming around the backedge is an add with the symbolic
3056 // value we just inserted, then we found a simple induction variable!
Dan Gohmana30370b2009-05-04 22:02:23 +00003057 if (const SCEVAddExpr *Add = dyn_cast<SCEVAddExpr>(BEValue)) {
Chris Lattnerd934c702004-04-02 20:23:17 +00003058 // If there is a single occurrence of the symbolic value, replace it
3059 // with a recurrence.
3060 unsigned FoundIndex = Add->getNumOperands();
3061 for (unsigned i = 0, e = Add->getNumOperands(); i != e; ++i)
3062 if (Add->getOperand(i) == SymbolicName)
3063 if (FoundIndex == e) {
3064 FoundIndex = i;
3065 break;
3066 }
3067
3068 if (FoundIndex != Add->getNumOperands()) {
3069 // Create an add with everything but the specified operand.
Dan Gohmanaf752342009-07-07 17:06:11 +00003070 SmallVector<const SCEV *, 8> Ops;
Chris Lattnerd934c702004-04-02 20:23:17 +00003071 for (unsigned i = 0, e = Add->getNumOperands(); i != e; ++i)
3072 if (i != FoundIndex)
3073 Ops.push_back(Add->getOperand(i));
Dan Gohmanaf752342009-07-07 17:06:11 +00003074 const SCEV *Accum = getAddExpr(Ops);
Chris Lattnerd934c702004-04-02 20:23:17 +00003075
3076 // This is not a valid addrec if the step amount is varying each
3077 // loop iteration, but is not itself an addrec in this loop.
Dan Gohmanafd6db92010-11-17 21:23:15 +00003078 if (isLoopInvariant(Accum, L) ||
Chris Lattnerd934c702004-04-02 20:23:17 +00003079 (isa<SCEVAddRecExpr>(Accum) &&
3080 cast<SCEVAddRecExpr>(Accum)->getLoop() == L)) {
Andrew Trick8b55b732011-03-14 16:50:06 +00003081 SCEV::NoWrapFlags Flags = SCEV::FlagAnyWrap;
Dan Gohman51ad99d2010-01-21 02:09:26 +00003082
3083 // If the increment doesn't overflow, then neither the addrec nor
3084 // the post-increment will overflow.
3085 if (const AddOperator *OBO = dyn_cast<AddOperator>(BEValueV)) {
3086 if (OBO->hasNoUnsignedWrap())
Andrew Trick8b55b732011-03-14 16:50:06 +00003087 Flags = setFlags(Flags, SCEV::FlagNUW);
Dan Gohman51ad99d2010-01-21 02:09:26 +00003088 if (OBO->hasNoSignedWrap())
Andrew Trick8b55b732011-03-14 16:50:06 +00003089 Flags = setFlags(Flags, SCEV::FlagNSW);
Benjamin Kramer6094f302013-10-28 07:30:06 +00003090 } else if (GEPOperator *GEP = dyn_cast<GEPOperator>(BEValueV)) {
Andrew Trick8b55b732011-03-14 16:50:06 +00003091 // If the increment is an inbounds GEP, then we know the address
3092 // space cannot be wrapped around. We cannot make any guarantee
3093 // about signed or unsigned overflow because pointers are
3094 // unsigned but we may have a negative index from the base
Benjamin Kramer6094f302013-10-28 07:30:06 +00003095 // pointer. We can guarantee that no unsigned wrap occurs if the
3096 // indices form a positive value.
3097 if (GEP->isInBounds()) {
Andrew Trickf6b01ff2011-03-15 00:37:00 +00003098 Flags = setFlags(Flags, SCEV::FlagNW);
Benjamin Kramer6094f302013-10-28 07:30:06 +00003099
3100 const SCEV *Ptr = getSCEV(GEP->getPointerOperand());
3101 if (isKnownPositive(getMinusSCEV(getSCEV(GEP), Ptr)))
3102 Flags = setFlags(Flags, SCEV::FlagNUW);
3103 }
Andrew Trick34e2f0c2013-11-06 02:08:26 +00003104 } else if (const SubOperator *OBO =
3105 dyn_cast<SubOperator>(BEValueV)) {
3106 if (OBO->hasNoUnsignedWrap())
3107 Flags = setFlags(Flags, SCEV::FlagNUW);
3108 if (OBO->hasNoSignedWrap())
3109 Flags = setFlags(Flags, SCEV::FlagNSW);
Dan Gohman51ad99d2010-01-21 02:09:26 +00003110 }
3111
Dan Gohman6635bb22010-04-12 07:49:36 +00003112 const SCEV *StartVal = getSCEV(StartValueV);
Andrew Trick8b55b732011-03-14 16:50:06 +00003113 const SCEV *PHISCEV = getAddRecExpr(StartVal, Accum, L, Flags);
Dan Gohman62ef6a72009-07-25 01:22:26 +00003114
Dan Gohman51ad99d2010-01-21 02:09:26 +00003115 // Since the no-wrap flags are on the increment, they apply to the
3116 // post-incremented value as well.
Dan Gohmanafd6db92010-11-17 21:23:15 +00003117 if (isLoopInvariant(Accum, L))
Dan Gohman51ad99d2010-01-21 02:09:26 +00003118 (void)getAddRecExpr(getAddExpr(StartVal, Accum),
Andrew Trick8b55b732011-03-14 16:50:06 +00003119 Accum, L, Flags);
Chris Lattnerd934c702004-04-02 20:23:17 +00003120
3121 // Okay, for the entire analysis of this edge we assumed the PHI
Dan Gohman0b89dff2009-07-25 01:13:03 +00003122 // to be symbolic. We now need to go back and purge all of the
3123 // entries for the scalars that use the symbolic expression.
3124 ForgetSymbolicName(PN, SymbolicName);
Dan Gohman9bad2fb2010-08-27 18:55:03 +00003125 ValueExprMap[SCEVCallbackVH(PN, this)] = PHISCEV;
Chris Lattnerd934c702004-04-02 20:23:17 +00003126 return PHISCEV;
3127 }
3128 }
Dan Gohmana30370b2009-05-04 22:02:23 +00003129 } else if (const SCEVAddRecExpr *AddRec =
3130 dyn_cast<SCEVAddRecExpr>(BEValue)) {
Chris Lattnere8cbdbf2006-04-26 18:34:07 +00003131 // Otherwise, this could be a loop like this:
3132 // i = 0; for (j = 1; ..; ++j) { .... i = j; }
3133 // In this case, j = {1,+,1} and BEValue is j.
3134 // Because the other in-value of i (0) fits the evolution of BEValue
3135 // i really is an addrec evolution.
3136 if (AddRec->getLoop() == L && AddRec->isAffine()) {
Dan Gohman6635bb22010-04-12 07:49:36 +00003137 const SCEV *StartVal = getSCEV(StartValueV);
Chris Lattnere8cbdbf2006-04-26 18:34:07 +00003138
3139 // If StartVal = j.start - j.stride, we can use StartVal as the
3140 // initial step of the addrec evolution.
Dan Gohmanc8e23622009-04-21 23:15:49 +00003141 if (StartVal == getMinusSCEV(AddRec->getOperand(0),
Dan Gohman068b7932010-04-11 23:44:58 +00003142 AddRec->getOperand(1))) {
Andrew Trick8b55b732011-03-14 16:50:06 +00003143 // FIXME: For constant StartVal, we should be able to infer
3144 // no-wrap flags.
Dan Gohmanaf752342009-07-07 17:06:11 +00003145 const SCEV *PHISCEV =
Andrew Trick8b55b732011-03-14 16:50:06 +00003146 getAddRecExpr(StartVal, AddRec->getOperand(1), L,
3147 SCEV::FlagAnyWrap);
Chris Lattnere8cbdbf2006-04-26 18:34:07 +00003148
3149 // Okay, for the entire analysis of this edge we assumed the PHI
Dan Gohman0b89dff2009-07-25 01:13:03 +00003150 // to be symbolic. We now need to go back and purge all of the
3151 // entries for the scalars that use the symbolic expression.
3152 ForgetSymbolicName(PN, SymbolicName);
Dan Gohman9bad2fb2010-08-27 18:55:03 +00003153 ValueExprMap[SCEVCallbackVH(PN, this)] = PHISCEV;
Chris Lattnere8cbdbf2006-04-26 18:34:07 +00003154 return PHISCEV;
3155 }
3156 }
Chris Lattnerd934c702004-04-02 20:23:17 +00003157 }
Chris Lattnerd934c702004-04-02 20:23:17 +00003158 }
Dan Gohman6635bb22010-04-12 07:49:36 +00003159 }
Misha Brukman01808ca2005-04-21 21:13:18 +00003160
Dan Gohmana9c205c2010-02-25 06:57:05 +00003161 // If the PHI has a single incoming value, follow that value, unless the
3162 // PHI's incoming blocks are in a different loop, in which case doing so
3163 // risks breaking LCSSA form. Instcombine would normally zap these, but
3164 // it doesn't have DominatorTree information, so it may miss cases.
Chad Rosierc24b86f2011-12-01 03:08:23 +00003165 if (Value *V = SimplifyInstruction(PN, TD, TLI, DT))
Duncan Sandsaef146b2010-11-18 19:59:41 +00003166 if (LI->replacementPreservesLCSSAForm(PN, V))
Dan Gohmana9c205c2010-02-25 06:57:05 +00003167 return getSCEV(V);
Duncan Sands39d771312010-11-17 20:49:12 +00003168
Chris Lattnerd934c702004-04-02 20:23:17 +00003169 // If it's not a loop phi, we can't handle it yet.
Dan Gohmanc8e23622009-04-21 23:15:49 +00003170 return getUnknown(PN);
Chris Lattnerd934c702004-04-02 20:23:17 +00003171}
3172
Dan Gohmanee750d12009-05-08 20:26:55 +00003173/// createNodeForGEP - Expand GEP instructions into add and multiply
3174/// operations. This allows them to be analyzed by regular SCEV code.
3175///
Dan Gohmanb256ccf2009-12-18 02:09:29 +00003176const SCEV *ScalarEvolution::createNodeForGEP(GEPOperator *GEP) {
Chris Lattner229907c2011-07-18 04:54:35 +00003177 Type *IntPtrTy = getEffectiveSCEVType(GEP->getType());
Dan Gohman2173bd32009-05-08 20:36:47 +00003178 Value *Base = GEP->getOperand(0);
Dan Gohman30f24fe2009-05-09 00:14:52 +00003179 // Don't attempt to analyze GEPs over unsized objects.
Matt Arsenault404c60a2013-10-21 19:43:56 +00003180 if (!Base->getType()->getPointerElementType()->isSized())
Dan Gohman30f24fe2009-05-09 00:14:52 +00003181 return getUnknown(GEP);
Matt Arsenault4c265902013-09-27 22:38:23 +00003182
3183 // Don't blindly transfer the inbounds flag from the GEP instruction to the
3184 // Add expression, because the Instruction may be guarded by control flow
3185 // and the no-overflow bits may not be valid for the expression in any
3186 // context.
3187 SCEV::NoWrapFlags Wrap = GEP->isInBounds() ? SCEV::FlagNSW : SCEV::FlagAnyWrap;
3188
Dan Gohman1d2ded72010-05-03 22:09:21 +00003189 const SCEV *TotalOffset = getConstant(IntPtrTy, 0);
Dan Gohman2173bd32009-05-08 20:36:47 +00003190 gep_type_iterator GTI = gep_type_begin(GEP);
Oscar Fuentes40b31ad2010-08-02 06:00:15 +00003191 for (GetElementPtrInst::op_iterator I = llvm::next(GEP->op_begin()),
Dan Gohman2173bd32009-05-08 20:36:47 +00003192 E = GEP->op_end();
Dan Gohmanee750d12009-05-08 20:26:55 +00003193 I != E; ++I) {
3194 Value *Index = *I;
3195 // Compute the (potentially symbolic) offset in bytes for this index.
Chris Lattner229907c2011-07-18 04:54:35 +00003196 if (StructType *STy = dyn_cast<StructType>(*GTI++)) {
Dan Gohmanee750d12009-05-08 20:26:55 +00003197 // For a struct, add the member offset.
Dan Gohmanee750d12009-05-08 20:26:55 +00003198 unsigned FieldNo = cast<ConstantInt>(Index)->getZExtValue();
Matt Arsenaulta90a18e2013-09-10 19:55:24 +00003199 const SCEV *FieldOffset = getOffsetOfExpr(IntPtrTy, STy, FieldNo);
Dan Gohman16206132010-06-30 07:16:37 +00003200
Dan Gohman16206132010-06-30 07:16:37 +00003201 // Add the field offset to the running total offset.
Dan Gohmanc0cca7f2010-06-30 17:27:11 +00003202 TotalOffset = getAddExpr(TotalOffset, FieldOffset);
Dan Gohmanee750d12009-05-08 20:26:55 +00003203 } else {
3204 // For an array, add the element offset, explicitly scaled.
Matt Arsenaulta90a18e2013-09-10 19:55:24 +00003205 const SCEV *ElementSize = getSizeOfExpr(IntPtrTy, *GTI);
Dan Gohman16206132010-06-30 07:16:37 +00003206 const SCEV *IndexS = getSCEV(Index);
Dan Gohman8b0a4192010-03-01 17:49:51 +00003207 // Getelementptr indices are signed.
Dan Gohman16206132010-06-30 07:16:37 +00003208 IndexS = getTruncateOrSignExtend(IndexS, IntPtrTy);
3209
Dan Gohman16206132010-06-30 07:16:37 +00003210 // Multiply the index by the element size to compute the element offset.
Matt Arsenault4c265902013-09-27 22:38:23 +00003211 const SCEV *LocalOffset = getMulExpr(IndexS, ElementSize, Wrap);
Dan Gohman16206132010-06-30 07:16:37 +00003212
3213 // Add the element offset to the running total offset.
Dan Gohmanc0cca7f2010-06-30 17:27:11 +00003214 TotalOffset = getAddExpr(TotalOffset, LocalOffset);
Dan Gohmanee750d12009-05-08 20:26:55 +00003215 }
3216 }
Dan Gohman16206132010-06-30 07:16:37 +00003217
3218 // Get the SCEV for the GEP base.
3219 const SCEV *BaseS = getSCEV(Base);
3220
Dan Gohman16206132010-06-30 07:16:37 +00003221 // Add the total offset from all the GEP indices to the base.
Matt Arsenault4c265902013-09-27 22:38:23 +00003222 return getAddExpr(BaseS, TotalOffset, Wrap);
Dan Gohmanee750d12009-05-08 20:26:55 +00003223}
3224
Nick Lewycky3783b462007-11-22 07:59:40 +00003225/// GetMinTrailingZeros - Determine the minimum number of zero bits that S is
3226/// guaranteed to end in (at every loop iteration). It is, at the same time,
3227/// the minimum number of times S is divisible by 2. For example, given {4,+,8}
3228/// it returns 2. If S is guaranteed to be 0, it returns the bitwidth of S.
Dan Gohmanc702fc02009-06-19 23:29:04 +00003229uint32_t
Dan Gohmanaf752342009-07-07 17:06:11 +00003230ScalarEvolution::GetMinTrailingZeros(const SCEV *S) {
Dan Gohmana30370b2009-05-04 22:02:23 +00003231 if (const SCEVConstant *C = dyn_cast<SCEVConstant>(S))
Chris Lattner69ec1ec2007-11-23 22:36:49 +00003232 return C->getValue()->getValue().countTrailingZeros();
Chris Lattner49b090e2006-12-12 02:26:09 +00003233
Dan Gohmana30370b2009-05-04 22:02:23 +00003234 if (const SCEVTruncateExpr *T = dyn_cast<SCEVTruncateExpr>(S))
Dan Gohmanc702fc02009-06-19 23:29:04 +00003235 return std::min(GetMinTrailingZeros(T->getOperand()),
3236 (uint32_t)getTypeSizeInBits(T->getType()));
Nick Lewycky3783b462007-11-22 07:59:40 +00003237
Dan Gohmana30370b2009-05-04 22:02:23 +00003238 if (const SCEVZeroExtendExpr *E = dyn_cast<SCEVZeroExtendExpr>(S)) {
Dan Gohmanc702fc02009-06-19 23:29:04 +00003239 uint32_t OpRes = GetMinTrailingZeros(E->getOperand());
3240 return OpRes == getTypeSizeInBits(E->getOperand()->getType()) ?
3241 getTypeSizeInBits(E->getType()) : OpRes;
Nick Lewycky3783b462007-11-22 07:59:40 +00003242 }
3243
Dan Gohmana30370b2009-05-04 22:02:23 +00003244 if (const SCEVSignExtendExpr *E = dyn_cast<SCEVSignExtendExpr>(S)) {
Dan Gohmanc702fc02009-06-19 23:29:04 +00003245 uint32_t OpRes = GetMinTrailingZeros(E->getOperand());
3246 return OpRes == getTypeSizeInBits(E->getOperand()->getType()) ?
3247 getTypeSizeInBits(E->getType()) : OpRes;
Nick Lewycky3783b462007-11-22 07:59:40 +00003248 }
3249
Dan Gohmana30370b2009-05-04 22:02:23 +00003250 if (const SCEVAddExpr *A = dyn_cast<SCEVAddExpr>(S)) {
Nick Lewycky3783b462007-11-22 07:59:40 +00003251 // The result is the min of all operands results.
Dan Gohmanc702fc02009-06-19 23:29:04 +00003252 uint32_t MinOpRes = GetMinTrailingZeros(A->getOperand(0));
Nick Lewycky3783b462007-11-22 07:59:40 +00003253 for (unsigned i = 1, e = A->getNumOperands(); MinOpRes && i != e; ++i)
Dan Gohmanc702fc02009-06-19 23:29:04 +00003254 MinOpRes = std::min(MinOpRes, GetMinTrailingZeros(A->getOperand(i)));
Nick Lewycky3783b462007-11-22 07:59:40 +00003255 return MinOpRes;
Chris Lattner49b090e2006-12-12 02:26:09 +00003256 }
3257
Dan Gohmana30370b2009-05-04 22:02:23 +00003258 if (const SCEVMulExpr *M = dyn_cast<SCEVMulExpr>(S)) {
Nick Lewycky3783b462007-11-22 07:59:40 +00003259 // The result is the sum of all operands results.
Dan Gohmanc702fc02009-06-19 23:29:04 +00003260 uint32_t SumOpRes = GetMinTrailingZeros(M->getOperand(0));
3261 uint32_t BitWidth = getTypeSizeInBits(M->getType());
Nick Lewycky3783b462007-11-22 07:59:40 +00003262 for (unsigned i = 1, e = M->getNumOperands();
3263 SumOpRes != BitWidth && i != e; ++i)
Dan Gohmanc702fc02009-06-19 23:29:04 +00003264 SumOpRes = std::min(SumOpRes + GetMinTrailingZeros(M->getOperand(i)),
Nick Lewycky3783b462007-11-22 07:59:40 +00003265 BitWidth);
3266 return SumOpRes;
Chris Lattner49b090e2006-12-12 02:26:09 +00003267 }
Nick Lewycky3783b462007-11-22 07:59:40 +00003268
Dan Gohmana30370b2009-05-04 22:02:23 +00003269 if (const SCEVAddRecExpr *A = dyn_cast<SCEVAddRecExpr>(S)) {
Nick Lewycky3783b462007-11-22 07:59:40 +00003270 // The result is the min of all operands results.
Dan Gohmanc702fc02009-06-19 23:29:04 +00003271 uint32_t MinOpRes = GetMinTrailingZeros(A->getOperand(0));
Nick Lewycky3783b462007-11-22 07:59:40 +00003272 for (unsigned i = 1, e = A->getNumOperands(); MinOpRes && i != e; ++i)
Dan Gohmanc702fc02009-06-19 23:29:04 +00003273 MinOpRes = std::min(MinOpRes, GetMinTrailingZeros(A->getOperand(i)));
Nick Lewycky3783b462007-11-22 07:59:40 +00003274 return MinOpRes;
Chris Lattner49b090e2006-12-12 02:26:09 +00003275 }
Nick Lewycky3783b462007-11-22 07:59:40 +00003276
Dan Gohmana30370b2009-05-04 22:02:23 +00003277 if (const SCEVSMaxExpr *M = dyn_cast<SCEVSMaxExpr>(S)) {
Nick Lewyckycdb7e542007-11-25 22:41:31 +00003278 // The result is the min of all operands results.
Dan Gohmanc702fc02009-06-19 23:29:04 +00003279 uint32_t MinOpRes = GetMinTrailingZeros(M->getOperand(0));
Nick Lewyckycdb7e542007-11-25 22:41:31 +00003280 for (unsigned i = 1, e = M->getNumOperands(); MinOpRes && i != e; ++i)
Dan Gohmanc702fc02009-06-19 23:29:04 +00003281 MinOpRes = std::min(MinOpRes, GetMinTrailingZeros(M->getOperand(i)));
Nick Lewyckycdb7e542007-11-25 22:41:31 +00003282 return MinOpRes;
3283 }
3284
Dan Gohmana30370b2009-05-04 22:02:23 +00003285 if (const SCEVUMaxExpr *M = dyn_cast<SCEVUMaxExpr>(S)) {
Nick Lewycky1c44ebc2008-02-20 06:48:22 +00003286 // The result is the min of all operands results.
Dan Gohmanc702fc02009-06-19 23:29:04 +00003287 uint32_t MinOpRes = GetMinTrailingZeros(M->getOperand(0));
Nick Lewycky1c44ebc2008-02-20 06:48:22 +00003288 for (unsigned i = 1, e = M->getNumOperands(); MinOpRes && i != e; ++i)
Dan Gohmanc702fc02009-06-19 23:29:04 +00003289 MinOpRes = std::min(MinOpRes, GetMinTrailingZeros(M->getOperand(i)));
Nick Lewycky1c44ebc2008-02-20 06:48:22 +00003290 return MinOpRes;
3291 }
3292
Dan Gohmanc702fc02009-06-19 23:29:04 +00003293 if (const SCEVUnknown *U = dyn_cast<SCEVUnknown>(S)) {
3294 // For a SCEVUnknown, ask ValueTracking.
3295 unsigned BitWidth = getTypeSizeInBits(U->getType());
Dan Gohmanc702fc02009-06-19 23:29:04 +00003296 APInt Zeros(BitWidth, 0), Ones(BitWidth, 0);
Rafael Espindolaba0a6ca2012-04-04 12:51:34 +00003297 ComputeMaskedBits(U->getValue(), Zeros, Ones);
Dan Gohmanc702fc02009-06-19 23:29:04 +00003298 return Zeros.countTrailingOnes();
3299 }
3300
3301 // SCEVUDivExpr
Nick Lewycky3783b462007-11-22 07:59:40 +00003302 return 0;
Chris Lattner49b090e2006-12-12 02:26:09 +00003303}
Chris Lattnerd934c702004-04-02 20:23:17 +00003304
Dan Gohmane65c9172009-07-13 21:35:55 +00003305/// getUnsignedRange - Determine the unsigned range for a particular SCEV.
3306///
3307ConstantRange
3308ScalarEvolution::getUnsignedRange(const SCEV *S) {
Dan Gohman761065e2010-11-17 02:44:44 +00003309 // See if we've computed this range already.
3310 DenseMap<const SCEV *, ConstantRange>::iterator I = UnsignedRanges.find(S);
3311 if (I != UnsignedRanges.end())
3312 return I->second;
Dan Gohmanc702fc02009-06-19 23:29:04 +00003313
3314 if (const SCEVConstant *C = dyn_cast<SCEVConstant>(S))
Dan Gohmaned756312010-11-17 20:23:08 +00003315 return setUnsignedRange(C, ConstantRange(C->getValue()->getValue()));
Dan Gohmanc702fc02009-06-19 23:29:04 +00003316
Dan Gohman85be4332010-01-26 19:19:05 +00003317 unsigned BitWidth = getTypeSizeInBits(S->getType());
3318 ConstantRange ConservativeResult(BitWidth, /*isFullSet=*/true);
3319
3320 // If the value has known zeros, the maximum unsigned value will have those
3321 // known zeros as well.
3322 uint32_t TZ = GetMinTrailingZeros(S);
3323 if (TZ != 0)
3324 ConservativeResult =
3325 ConstantRange(APInt::getMinValue(BitWidth),
3326 APInt::getMaxValue(BitWidth).lshr(TZ).shl(TZ) + 1);
3327
Dan Gohmane65c9172009-07-13 21:35:55 +00003328 if (const SCEVAddExpr *Add = dyn_cast<SCEVAddExpr>(S)) {
3329 ConstantRange X = getUnsignedRange(Add->getOperand(0));
3330 for (unsigned i = 1, e = Add->getNumOperands(); i != e; ++i)
3331 X = X.add(getUnsignedRange(Add->getOperand(i)));
Dan Gohmaned756312010-11-17 20:23:08 +00003332 return setUnsignedRange(Add, ConservativeResult.intersectWith(X));
Dan Gohmane65c9172009-07-13 21:35:55 +00003333 }
3334
3335 if (const SCEVMulExpr *Mul = dyn_cast<SCEVMulExpr>(S)) {
3336 ConstantRange X = getUnsignedRange(Mul->getOperand(0));
3337 for (unsigned i = 1, e = Mul->getNumOperands(); i != e; ++i)
3338 X = X.multiply(getUnsignedRange(Mul->getOperand(i)));
Dan Gohmaned756312010-11-17 20:23:08 +00003339 return setUnsignedRange(Mul, ConservativeResult.intersectWith(X));
Dan Gohmane65c9172009-07-13 21:35:55 +00003340 }
3341
3342 if (const SCEVSMaxExpr *SMax = dyn_cast<SCEVSMaxExpr>(S)) {
3343 ConstantRange X = getUnsignedRange(SMax->getOperand(0));
3344 for (unsigned i = 1, e = SMax->getNumOperands(); i != e; ++i)
3345 X = X.smax(getUnsignedRange(SMax->getOperand(i)));
Dan Gohmaned756312010-11-17 20:23:08 +00003346 return setUnsignedRange(SMax, ConservativeResult.intersectWith(X));
Dan Gohmane65c9172009-07-13 21:35:55 +00003347 }
3348
3349 if (const SCEVUMaxExpr *UMax = dyn_cast<SCEVUMaxExpr>(S)) {
3350 ConstantRange X = getUnsignedRange(UMax->getOperand(0));
3351 for (unsigned i = 1, e = UMax->getNumOperands(); i != e; ++i)
3352 X = X.umax(getUnsignedRange(UMax->getOperand(i)));
Dan Gohmaned756312010-11-17 20:23:08 +00003353 return setUnsignedRange(UMax, ConservativeResult.intersectWith(X));
Dan Gohmane65c9172009-07-13 21:35:55 +00003354 }
3355
3356 if (const SCEVUDivExpr *UDiv = dyn_cast<SCEVUDivExpr>(S)) {
3357 ConstantRange X = getUnsignedRange(UDiv->getLHS());
3358 ConstantRange Y = getUnsignedRange(UDiv->getRHS());
Dan Gohmaned756312010-11-17 20:23:08 +00003359 return setUnsignedRange(UDiv, ConservativeResult.intersectWith(X.udiv(Y)));
Dan Gohmane65c9172009-07-13 21:35:55 +00003360 }
3361
3362 if (const SCEVZeroExtendExpr *ZExt = dyn_cast<SCEVZeroExtendExpr>(S)) {
3363 ConstantRange X = getUnsignedRange(ZExt->getOperand());
Dan Gohmaned756312010-11-17 20:23:08 +00003364 return setUnsignedRange(ZExt,
3365 ConservativeResult.intersectWith(X.zeroExtend(BitWidth)));
Dan Gohmane65c9172009-07-13 21:35:55 +00003366 }
3367
3368 if (const SCEVSignExtendExpr *SExt = dyn_cast<SCEVSignExtendExpr>(S)) {
3369 ConstantRange X = getUnsignedRange(SExt->getOperand());
Dan Gohmaned756312010-11-17 20:23:08 +00003370 return setUnsignedRange(SExt,
3371 ConservativeResult.intersectWith(X.signExtend(BitWidth)));
Dan Gohmane65c9172009-07-13 21:35:55 +00003372 }
3373
3374 if (const SCEVTruncateExpr *Trunc = dyn_cast<SCEVTruncateExpr>(S)) {
3375 ConstantRange X = getUnsignedRange(Trunc->getOperand());
Dan Gohmaned756312010-11-17 20:23:08 +00003376 return setUnsignedRange(Trunc,
3377 ConservativeResult.intersectWith(X.truncate(BitWidth)));
Dan Gohmane65c9172009-07-13 21:35:55 +00003378 }
3379
Dan Gohmane65c9172009-07-13 21:35:55 +00003380 if (const SCEVAddRecExpr *AddRec = dyn_cast<SCEVAddRecExpr>(S)) {
Dan Gohman51ad99d2010-01-21 02:09:26 +00003381 // If there's no unsigned wrap, the value will never be less than its
3382 // initial value.
Andrew Trick8b55b732011-03-14 16:50:06 +00003383 if (AddRec->getNoWrapFlags(SCEV::FlagNUW))
Dan Gohman51ad99d2010-01-21 02:09:26 +00003384 if (const SCEVConstant *C = dyn_cast<SCEVConstant>(AddRec->getStart()))
Dan Gohmanebbd05f2010-04-12 23:08:18 +00003385 if (!C->getValue()->isZero())
Dan Gohmanae4a4142010-04-11 22:12:18 +00003386 ConservativeResult =
Dan Gohman9396b422010-06-30 06:58:35 +00003387 ConservativeResult.intersectWith(
3388 ConstantRange(C->getValue()->getValue(), APInt(BitWidth, 0)));
Dan Gohmane65c9172009-07-13 21:35:55 +00003389
3390 // TODO: non-affine addrec
Dan Gohman85be4332010-01-26 19:19:05 +00003391 if (AddRec->isAffine()) {
Chris Lattner229907c2011-07-18 04:54:35 +00003392 Type *Ty = AddRec->getType();
Dan Gohmane65c9172009-07-13 21:35:55 +00003393 const SCEV *MaxBECount = getMaxBackedgeTakenCount(AddRec->getLoop());
Dan Gohman85be4332010-01-26 19:19:05 +00003394 if (!isa<SCEVCouldNotCompute>(MaxBECount) &&
3395 getTypeSizeInBits(MaxBECount->getType()) <= BitWidth) {
Dan Gohmane65c9172009-07-13 21:35:55 +00003396 MaxBECount = getNoopOrZeroExtend(MaxBECount, Ty);
3397
3398 const SCEV *Start = AddRec->getStart();
Dan Gohmanf76210e2010-04-12 07:39:33 +00003399 const SCEV *Step = AddRec->getStepRecurrence(*this);
Dan Gohmane65c9172009-07-13 21:35:55 +00003400
3401 ConstantRange StartRange = getUnsignedRange(Start);
Dan Gohmanf76210e2010-04-12 07:39:33 +00003402 ConstantRange StepRange = getSignedRange(Step);
3403 ConstantRange MaxBECountRange = getUnsignedRange(MaxBECount);
3404 ConstantRange EndRange =
3405 StartRange.add(MaxBECountRange.multiply(StepRange));
3406
3407 // Check for overflow. This must be done with ConstantRange arithmetic
3408 // because we could be called from within the ScalarEvolution overflow
3409 // checking code.
3410 ConstantRange ExtStartRange = StartRange.zextOrTrunc(BitWidth*2+1);
3411 ConstantRange ExtStepRange = StepRange.sextOrTrunc(BitWidth*2+1);
3412 ConstantRange ExtMaxBECountRange =
3413 MaxBECountRange.zextOrTrunc(BitWidth*2+1);
3414 ConstantRange ExtEndRange = EndRange.zextOrTrunc(BitWidth*2+1);
3415 if (ExtStartRange.add(ExtMaxBECountRange.multiply(ExtStepRange)) !=
3416 ExtEndRange)
Dan Gohmaned756312010-11-17 20:23:08 +00003417 return setUnsignedRange(AddRec, ConservativeResult);
Dan Gohmanf76210e2010-04-12 07:39:33 +00003418
Dan Gohmane65c9172009-07-13 21:35:55 +00003419 APInt Min = APIntOps::umin(StartRange.getUnsignedMin(),
3420 EndRange.getUnsignedMin());
3421 APInt Max = APIntOps::umax(StartRange.getUnsignedMax(),
3422 EndRange.getUnsignedMax());
3423 if (Min.isMinValue() && Max.isMaxValue())
Dan Gohmaned756312010-11-17 20:23:08 +00003424 return setUnsignedRange(AddRec, ConservativeResult);
3425 return setUnsignedRange(AddRec,
3426 ConservativeResult.intersectWith(ConstantRange(Min, Max+1)));
Dan Gohmane65c9172009-07-13 21:35:55 +00003427 }
3428 }
Dan Gohman51ad99d2010-01-21 02:09:26 +00003429
Dan Gohmaned756312010-11-17 20:23:08 +00003430 return setUnsignedRange(AddRec, ConservativeResult);
Dan Gohmanc702fc02009-06-19 23:29:04 +00003431 }
3432
3433 if (const SCEVUnknown *U = dyn_cast<SCEVUnknown>(S)) {
3434 // For a SCEVUnknown, ask ValueTracking.
Dan Gohmanc702fc02009-06-19 23:29:04 +00003435 APInt Zeros(BitWidth, 0), Ones(BitWidth, 0);
Rafael Espindolaba0a6ca2012-04-04 12:51:34 +00003436 ComputeMaskedBits(U->getValue(), Zeros, Ones, TD);
Dan Gohman1a7ab942009-07-20 22:34:18 +00003437 if (Ones == ~Zeros + 1)
Dan Gohmaned756312010-11-17 20:23:08 +00003438 return setUnsignedRange(U, ConservativeResult);
3439 return setUnsignedRange(U,
3440 ConservativeResult.intersectWith(ConstantRange(Ones, ~Zeros + 1)));
Dan Gohmanc702fc02009-06-19 23:29:04 +00003441 }
3442
Dan Gohmaned756312010-11-17 20:23:08 +00003443 return setUnsignedRange(S, ConservativeResult);
Dan Gohmanc702fc02009-06-19 23:29:04 +00003444}
3445
Dan Gohmane65c9172009-07-13 21:35:55 +00003446/// getSignedRange - Determine the signed range for a particular SCEV.
3447///
3448ConstantRange
3449ScalarEvolution::getSignedRange(const SCEV *S) {
Dan Gohman3ac8cd62011-01-24 17:54:18 +00003450 // See if we've computed this range already.
Dan Gohman761065e2010-11-17 02:44:44 +00003451 DenseMap<const SCEV *, ConstantRange>::iterator I = SignedRanges.find(S);
3452 if (I != SignedRanges.end())
3453 return I->second;
Dan Gohmanc702fc02009-06-19 23:29:04 +00003454
Dan Gohmane65c9172009-07-13 21:35:55 +00003455 if (const SCEVConstant *C = dyn_cast<SCEVConstant>(S))
Dan Gohmaned756312010-11-17 20:23:08 +00003456 return setSignedRange(C, ConstantRange(C->getValue()->getValue()));
Dan Gohmane65c9172009-07-13 21:35:55 +00003457
Dan Gohman51aaf022010-01-26 04:40:18 +00003458 unsigned BitWidth = getTypeSizeInBits(S->getType());
3459 ConstantRange ConservativeResult(BitWidth, /*isFullSet=*/true);
3460
3461 // If the value has known zeros, the maximum signed value will have those
3462 // known zeros as well.
3463 uint32_t TZ = GetMinTrailingZeros(S);
3464 if (TZ != 0)
3465 ConservativeResult =
3466 ConstantRange(APInt::getSignedMinValue(BitWidth),
3467 APInt::getSignedMaxValue(BitWidth).ashr(TZ).shl(TZ) + 1);
3468
Dan Gohmane65c9172009-07-13 21:35:55 +00003469 if (const SCEVAddExpr *Add = dyn_cast<SCEVAddExpr>(S)) {
3470 ConstantRange X = getSignedRange(Add->getOperand(0));
3471 for (unsigned i = 1, e = Add->getNumOperands(); i != e; ++i)
3472 X = X.add(getSignedRange(Add->getOperand(i)));
Dan Gohmaned756312010-11-17 20:23:08 +00003473 return setSignedRange(Add, ConservativeResult.intersectWith(X));
Dan Gohmanc702fc02009-06-19 23:29:04 +00003474 }
3475
Dan Gohmane65c9172009-07-13 21:35:55 +00003476 if (const SCEVMulExpr *Mul = dyn_cast<SCEVMulExpr>(S)) {
3477 ConstantRange X = getSignedRange(Mul->getOperand(0));
3478 for (unsigned i = 1, e = Mul->getNumOperands(); i != e; ++i)
3479 X = X.multiply(getSignedRange(Mul->getOperand(i)));
Dan Gohmaned756312010-11-17 20:23:08 +00003480 return setSignedRange(Mul, ConservativeResult.intersectWith(X));
Dan Gohmanc702fc02009-06-19 23:29:04 +00003481 }
3482
Dan Gohmane65c9172009-07-13 21:35:55 +00003483 if (const SCEVSMaxExpr *SMax = dyn_cast<SCEVSMaxExpr>(S)) {
3484 ConstantRange X = getSignedRange(SMax->getOperand(0));
3485 for (unsigned i = 1, e = SMax->getNumOperands(); i != e; ++i)
3486 X = X.smax(getSignedRange(SMax->getOperand(i)));
Dan Gohmaned756312010-11-17 20:23:08 +00003487 return setSignedRange(SMax, ConservativeResult.intersectWith(X));
Dan Gohmane65c9172009-07-13 21:35:55 +00003488 }
Dan Gohmand261d272009-06-24 01:05:09 +00003489
Dan Gohmane65c9172009-07-13 21:35:55 +00003490 if (const SCEVUMaxExpr *UMax = dyn_cast<SCEVUMaxExpr>(S)) {
3491 ConstantRange X = getSignedRange(UMax->getOperand(0));
3492 for (unsigned i = 1, e = UMax->getNumOperands(); i != e; ++i)
3493 X = X.umax(getSignedRange(UMax->getOperand(i)));
Dan Gohmaned756312010-11-17 20:23:08 +00003494 return setSignedRange(UMax, ConservativeResult.intersectWith(X));
Dan Gohmane65c9172009-07-13 21:35:55 +00003495 }
Dan Gohmand261d272009-06-24 01:05:09 +00003496
Dan Gohmane65c9172009-07-13 21:35:55 +00003497 if (const SCEVUDivExpr *UDiv = dyn_cast<SCEVUDivExpr>(S)) {
3498 ConstantRange X = getSignedRange(UDiv->getLHS());
3499 ConstantRange Y = getSignedRange(UDiv->getRHS());
Dan Gohmaned756312010-11-17 20:23:08 +00003500 return setSignedRange(UDiv, ConservativeResult.intersectWith(X.udiv(Y)));
Dan Gohmane65c9172009-07-13 21:35:55 +00003501 }
Dan Gohmand261d272009-06-24 01:05:09 +00003502
Dan Gohmane65c9172009-07-13 21:35:55 +00003503 if (const SCEVZeroExtendExpr *ZExt = dyn_cast<SCEVZeroExtendExpr>(S)) {
3504 ConstantRange X = getSignedRange(ZExt->getOperand());
Dan Gohmaned756312010-11-17 20:23:08 +00003505 return setSignedRange(ZExt,
3506 ConservativeResult.intersectWith(X.zeroExtend(BitWidth)));
Dan Gohmane65c9172009-07-13 21:35:55 +00003507 }
3508
3509 if (const SCEVSignExtendExpr *SExt = dyn_cast<SCEVSignExtendExpr>(S)) {
3510 ConstantRange X = getSignedRange(SExt->getOperand());
Dan Gohmaned756312010-11-17 20:23:08 +00003511 return setSignedRange(SExt,
3512 ConservativeResult.intersectWith(X.signExtend(BitWidth)));
Dan Gohmane65c9172009-07-13 21:35:55 +00003513 }
3514
3515 if (const SCEVTruncateExpr *Trunc = dyn_cast<SCEVTruncateExpr>(S)) {
3516 ConstantRange X = getSignedRange(Trunc->getOperand());
Dan Gohmaned756312010-11-17 20:23:08 +00003517 return setSignedRange(Trunc,
3518 ConservativeResult.intersectWith(X.truncate(BitWidth)));
Dan Gohmane65c9172009-07-13 21:35:55 +00003519 }
3520
Dan Gohmane65c9172009-07-13 21:35:55 +00003521 if (const SCEVAddRecExpr *AddRec = dyn_cast<SCEVAddRecExpr>(S)) {
Dan Gohman51ad99d2010-01-21 02:09:26 +00003522 // If there's no signed wrap, and all the operands have the same sign or
3523 // zero, the value won't ever change sign.
Andrew Trick8b55b732011-03-14 16:50:06 +00003524 if (AddRec->getNoWrapFlags(SCEV::FlagNSW)) {
Dan Gohman51ad99d2010-01-21 02:09:26 +00003525 bool AllNonNeg = true;
3526 bool AllNonPos = true;
3527 for (unsigned i = 0, e = AddRec->getNumOperands(); i != e; ++i) {
3528 if (!isKnownNonNegative(AddRec->getOperand(i))) AllNonNeg = false;
3529 if (!isKnownNonPositive(AddRec->getOperand(i))) AllNonPos = false;
3530 }
Dan Gohman51ad99d2010-01-21 02:09:26 +00003531 if (AllNonNeg)
Dan Gohman51aaf022010-01-26 04:40:18 +00003532 ConservativeResult = ConservativeResult.intersectWith(
3533 ConstantRange(APInt(BitWidth, 0),
3534 APInt::getSignedMinValue(BitWidth)));
Dan Gohman51ad99d2010-01-21 02:09:26 +00003535 else if (AllNonPos)
Dan Gohman51aaf022010-01-26 04:40:18 +00003536 ConservativeResult = ConservativeResult.intersectWith(
3537 ConstantRange(APInt::getSignedMinValue(BitWidth),
3538 APInt(BitWidth, 1)));
Dan Gohman51ad99d2010-01-21 02:09:26 +00003539 }
Dan Gohmane65c9172009-07-13 21:35:55 +00003540
3541 // TODO: non-affine addrec
Dan Gohman85be4332010-01-26 19:19:05 +00003542 if (AddRec->isAffine()) {
Chris Lattner229907c2011-07-18 04:54:35 +00003543 Type *Ty = AddRec->getType();
Dan Gohmane65c9172009-07-13 21:35:55 +00003544 const SCEV *MaxBECount = getMaxBackedgeTakenCount(AddRec->getLoop());
Dan Gohman85be4332010-01-26 19:19:05 +00003545 if (!isa<SCEVCouldNotCompute>(MaxBECount) &&
3546 getTypeSizeInBits(MaxBECount->getType()) <= BitWidth) {
Dan Gohmane65c9172009-07-13 21:35:55 +00003547 MaxBECount = getNoopOrZeroExtend(MaxBECount, Ty);
3548
3549 const SCEV *Start = AddRec->getStart();
Dan Gohmanf76210e2010-04-12 07:39:33 +00003550 const SCEV *Step = AddRec->getStepRecurrence(*this);
Dan Gohmane65c9172009-07-13 21:35:55 +00003551
3552 ConstantRange StartRange = getSignedRange(Start);
Dan Gohmanf76210e2010-04-12 07:39:33 +00003553 ConstantRange StepRange = getSignedRange(Step);
3554 ConstantRange MaxBECountRange = getUnsignedRange(MaxBECount);
3555 ConstantRange EndRange =
3556 StartRange.add(MaxBECountRange.multiply(StepRange));
3557
3558 // Check for overflow. This must be done with ConstantRange arithmetic
3559 // because we could be called from within the ScalarEvolution overflow
3560 // checking code.
3561 ConstantRange ExtStartRange = StartRange.sextOrTrunc(BitWidth*2+1);
3562 ConstantRange ExtStepRange = StepRange.sextOrTrunc(BitWidth*2+1);
3563 ConstantRange ExtMaxBECountRange =
3564 MaxBECountRange.zextOrTrunc(BitWidth*2+1);
3565 ConstantRange ExtEndRange = EndRange.sextOrTrunc(BitWidth*2+1);
3566 if (ExtStartRange.add(ExtMaxBECountRange.multiply(ExtStepRange)) !=
3567 ExtEndRange)
Dan Gohmaned756312010-11-17 20:23:08 +00003568 return setSignedRange(AddRec, ConservativeResult);
Dan Gohmanf76210e2010-04-12 07:39:33 +00003569
Dan Gohmane65c9172009-07-13 21:35:55 +00003570 APInt Min = APIntOps::smin(StartRange.getSignedMin(),
3571 EndRange.getSignedMin());
3572 APInt Max = APIntOps::smax(StartRange.getSignedMax(),
3573 EndRange.getSignedMax());
3574 if (Min.isMinSignedValue() && Max.isMaxSignedValue())
Dan Gohmaned756312010-11-17 20:23:08 +00003575 return setSignedRange(AddRec, ConservativeResult);
3576 return setSignedRange(AddRec,
3577 ConservativeResult.intersectWith(ConstantRange(Min, Max+1)));
Dan Gohmand261d272009-06-24 01:05:09 +00003578 }
Dan Gohmand261d272009-06-24 01:05:09 +00003579 }
Dan Gohman51ad99d2010-01-21 02:09:26 +00003580
Dan Gohmaned756312010-11-17 20:23:08 +00003581 return setSignedRange(AddRec, ConservativeResult);
Dan Gohmand261d272009-06-24 01:05:09 +00003582 }
3583
Dan Gohmanc702fc02009-06-19 23:29:04 +00003584 if (const SCEVUnknown *U = dyn_cast<SCEVUnknown>(S)) {
3585 // For a SCEVUnknown, ask ValueTracking.
Duncan Sands9dff9be2010-02-15 16:12:20 +00003586 if (!U->getValue()->getType()->isIntegerTy() && !TD)
Dan Gohmaned756312010-11-17 20:23:08 +00003587 return setSignedRange(U, ConservativeResult);
Dan Gohmane65c9172009-07-13 21:35:55 +00003588 unsigned NS = ComputeNumSignBits(U->getValue(), TD);
Hal Finkelff666bd2013-07-09 18:16:16 +00003589 if (NS <= 1)
Dan Gohmaned756312010-11-17 20:23:08 +00003590 return setSignedRange(U, ConservativeResult);
3591 return setSignedRange(U, ConservativeResult.intersectWith(
Dan Gohmane65c9172009-07-13 21:35:55 +00003592 ConstantRange(APInt::getSignedMinValue(BitWidth).ashr(NS - 1),
Dan Gohmaned756312010-11-17 20:23:08 +00003593 APInt::getSignedMaxValue(BitWidth).ashr(NS - 1)+1)));
Dan Gohmanc702fc02009-06-19 23:29:04 +00003594 }
3595
Dan Gohmaned756312010-11-17 20:23:08 +00003596 return setSignedRange(S, ConservativeResult);
Dan Gohmanc702fc02009-06-19 23:29:04 +00003597}
3598
Chris Lattnerd934c702004-04-02 20:23:17 +00003599/// createSCEV - We know that there is no SCEV for the specified value.
3600/// Analyze the expression.
3601///
Dan Gohmanaf752342009-07-07 17:06:11 +00003602const SCEV *ScalarEvolution::createSCEV(Value *V) {
Dan Gohmanb397e1a2009-04-21 01:07:12 +00003603 if (!isSCEVable(V->getType()))
Dan Gohmanc8e23622009-04-21 23:15:49 +00003604 return getUnknown(V);
Dan Gohman0a40ad92009-04-16 03:18:22 +00003605
Dan Gohman05e89732008-06-22 19:56:46 +00003606 unsigned Opcode = Instruction::UserOp1;
Dan Gohman69451a02010-03-09 23:46:50 +00003607 if (Instruction *I = dyn_cast<Instruction>(V)) {
Dan Gohman05e89732008-06-22 19:56:46 +00003608 Opcode = I->getOpcode();
Dan Gohman69451a02010-03-09 23:46:50 +00003609
3610 // Don't attempt to analyze instructions in blocks that aren't
3611 // reachable. Such instructions don't matter, and they aren't required
3612 // to obey basic rules for definitions dominating uses which this
3613 // analysis depends on.
3614 if (!DT->isReachableFromEntry(I->getParent()))
3615 return getUnknown(V);
3616 } else if (ConstantExpr *CE = dyn_cast<ConstantExpr>(V))
Dan Gohman05e89732008-06-22 19:56:46 +00003617 Opcode = CE->getOpcode();
Dan Gohmanf436bac2009-06-24 00:54:57 +00003618 else if (ConstantInt *CI = dyn_cast<ConstantInt>(V))
3619 return getConstant(CI);
3620 else if (isa<ConstantPointerNull>(V))
Dan Gohman1d2ded72010-05-03 22:09:21 +00003621 return getConstant(V->getType(), 0);
Dan Gohmanf161e06e2009-08-25 17:49:57 +00003622 else if (GlobalAlias *GA = dyn_cast<GlobalAlias>(V))
3623 return GA->mayBeOverridden() ? getUnknown(V) : getSCEV(GA->getAliasee());
Dan Gohman05e89732008-06-22 19:56:46 +00003624 else
Dan Gohmanc8e23622009-04-21 23:15:49 +00003625 return getUnknown(V);
Chris Lattnera3e0bb42007-04-02 05:41:38 +00003626
Dan Gohman80ca01c2009-07-17 20:47:02 +00003627 Operator *U = cast<Operator>(V);
Dan Gohman05e89732008-06-22 19:56:46 +00003628 switch (Opcode) {
Dan Gohmane5fb1032010-08-16 16:03:49 +00003629 case Instruction::Add: {
3630 // The simple thing to do would be to just call getSCEV on both operands
3631 // and call getAddExpr with the result. However if we're looking at a
3632 // bunch of things all added together, this can be quite inefficient,
3633 // because it leads to N-1 getAddExpr calls for N ultimate operands.
3634 // Instead, gather up all the operands and make a single getAddExpr call.
3635 // LLVM IR canonical form means we need only traverse the left operands.
Andrew Trickd25089f2011-11-29 02:16:38 +00003636 //
3637 // Don't apply this instruction's NSW or NUW flags to the new
3638 // expression. The instruction may be guarded by control flow that the
3639 // no-wrap behavior depends on. Non-control-equivalent instructions can be
3640 // mapped to the same SCEV expression, and it would be incorrect to transfer
3641 // NSW/NUW semantics to those operations.
Dan Gohmane5fb1032010-08-16 16:03:49 +00003642 SmallVector<const SCEV *, 4> AddOps;
3643 AddOps.push_back(getSCEV(U->getOperand(1)));
Dan Gohman47308d52010-08-31 22:53:17 +00003644 for (Value *Op = U->getOperand(0); ; Op = U->getOperand(0)) {
3645 unsigned Opcode = Op->getValueID() - Value::InstructionVal;
3646 if (Opcode != Instruction::Add && Opcode != Instruction::Sub)
3647 break;
Dan Gohmane5fb1032010-08-16 16:03:49 +00003648 U = cast<Operator>(Op);
Dan Gohman47308d52010-08-31 22:53:17 +00003649 const SCEV *Op1 = getSCEV(U->getOperand(1));
3650 if (Opcode == Instruction::Sub)
3651 AddOps.push_back(getNegativeSCEV(Op1));
3652 else
3653 AddOps.push_back(Op1);
Dan Gohmane5fb1032010-08-16 16:03:49 +00003654 }
3655 AddOps.push_back(getSCEV(U->getOperand(0)));
Andrew Trickd25089f2011-11-29 02:16:38 +00003656 return getAddExpr(AddOps);
Dan Gohmane5fb1032010-08-16 16:03:49 +00003657 }
3658 case Instruction::Mul: {
Andrew Trickd25089f2011-11-29 02:16:38 +00003659 // Don't transfer NSW/NUW for the same reason as AddExpr.
Dan Gohmane5fb1032010-08-16 16:03:49 +00003660 SmallVector<const SCEV *, 4> MulOps;
3661 MulOps.push_back(getSCEV(U->getOperand(1)));
3662 for (Value *Op = U->getOperand(0);
Andrew Trick2a3b7162011-03-09 17:23:39 +00003663 Op->getValueID() == Instruction::Mul + Value::InstructionVal;
Dan Gohmane5fb1032010-08-16 16:03:49 +00003664 Op = U->getOperand(0)) {
3665 U = cast<Operator>(Op);
3666 MulOps.push_back(getSCEV(U->getOperand(1)));
3667 }
3668 MulOps.push_back(getSCEV(U->getOperand(0)));
3669 return getMulExpr(MulOps);
3670 }
Dan Gohman05e89732008-06-22 19:56:46 +00003671 case Instruction::UDiv:
Dan Gohmanc8e23622009-04-21 23:15:49 +00003672 return getUDivExpr(getSCEV(U->getOperand(0)),
3673 getSCEV(U->getOperand(1)));
Dan Gohman05e89732008-06-22 19:56:46 +00003674 case Instruction::Sub:
Dan Gohmanc8e23622009-04-21 23:15:49 +00003675 return getMinusSCEV(getSCEV(U->getOperand(0)),
3676 getSCEV(U->getOperand(1)));
Dan Gohman0ec05372009-04-21 02:26:00 +00003677 case Instruction::And:
3678 // For an expression like x&255 that merely masks off the high bits,
3679 // use zext(trunc(x)) as the SCEV expression.
3680 if (ConstantInt *CI = dyn_cast<ConstantInt>(U->getOperand(1))) {
Dan Gohmandf199482009-04-25 17:05:40 +00003681 if (CI->isNullValue())
3682 return getSCEV(U->getOperand(1));
Dan Gohman05c1d372009-04-27 01:41:10 +00003683 if (CI->isAllOnesValue())
3684 return getSCEV(U->getOperand(0));
Dan Gohman0ec05372009-04-21 02:26:00 +00003685 const APInt &A = CI->getValue();
Dan Gohman1ee696d2009-06-16 19:52:01 +00003686
3687 // Instcombine's ShrinkDemandedConstant may strip bits out of
3688 // constants, obscuring what would otherwise be a low-bits mask.
3689 // Use ComputeMaskedBits to compute what ShrinkDemandedConstant
3690 // knew about to reconstruct a low-bits mask value.
3691 unsigned LZ = A.countLeadingZeros();
3692 unsigned BitWidth = A.getBitWidth();
Dan Gohman1ee696d2009-06-16 19:52:01 +00003693 APInt KnownZero(BitWidth, 0), KnownOne(BitWidth, 0);
Rafael Espindolaba0a6ca2012-04-04 12:51:34 +00003694 ComputeMaskedBits(U->getOperand(0), KnownZero, KnownOne, TD);
Dan Gohman1ee696d2009-06-16 19:52:01 +00003695
3696 APInt EffectiveMask = APInt::getLowBitsSet(BitWidth, BitWidth - LZ);
3697
Dan Gohman4d8723d2009-06-17 23:54:37 +00003698 if (LZ != 0 && !((~A & ~KnownZero) & EffectiveMask))
Dan Gohman0ec05372009-04-21 02:26:00 +00003699 return
Dan Gohmanc8e23622009-04-21 23:15:49 +00003700 getZeroExtendExpr(getTruncateExpr(getSCEV(U->getOperand(0)),
Owen Anderson55f1c092009-08-13 21:58:54 +00003701 IntegerType::get(getContext(), BitWidth - LZ)),
Dan Gohmanc8e23622009-04-21 23:15:49 +00003702 U->getType());
Dan Gohman0ec05372009-04-21 02:26:00 +00003703 }
3704 break;
Dan Gohman1ee696d2009-06-16 19:52:01 +00003705
Dan Gohman05e89732008-06-22 19:56:46 +00003706 case Instruction::Or:
3707 // If the RHS of the Or is a constant, we may have something like:
3708 // X*4+1 which got turned into X*4|1. Handle this as an Add so loop
3709 // optimizations will transparently handle this case.
3710 //
3711 // In order for this transformation to be safe, the LHS must be of the
3712 // form X*(2^n) and the Or constant must be less than 2^n.
3713 if (ConstantInt *CI = dyn_cast<ConstantInt>(U->getOperand(1))) {
Dan Gohmanaf752342009-07-07 17:06:11 +00003714 const SCEV *LHS = getSCEV(U->getOperand(0));
Dan Gohman05e89732008-06-22 19:56:46 +00003715 const APInt &CIVal = CI->getValue();
Dan Gohmanc702fc02009-06-19 23:29:04 +00003716 if (GetMinTrailingZeros(LHS) >=
Dan Gohman36bad002009-09-17 18:05:20 +00003717 (CIVal.getBitWidth() - CIVal.countLeadingZeros())) {
3718 // Build a plain add SCEV.
3719 const SCEV *S = getAddExpr(LHS, getSCEV(CI));
3720 // If the LHS of the add was an addrec and it has no-wrap flags,
3721 // transfer the no-wrap flags, since an or won't introduce a wrap.
3722 if (const SCEVAddRecExpr *NewAR = dyn_cast<SCEVAddRecExpr>(S)) {
3723 const SCEVAddRecExpr *OldAR = cast<SCEVAddRecExpr>(LHS);
Andrew Trick8b55b732011-03-14 16:50:06 +00003724 const_cast<SCEVAddRecExpr *>(NewAR)->setNoWrapFlags(
3725 OldAR->getNoWrapFlags());
Dan Gohman36bad002009-09-17 18:05:20 +00003726 }
3727 return S;
3728 }
Chris Lattnerd934c702004-04-02 20:23:17 +00003729 }
Dan Gohman05e89732008-06-22 19:56:46 +00003730 break;
3731 case Instruction::Xor:
Dan Gohman05e89732008-06-22 19:56:46 +00003732 if (ConstantInt *CI = dyn_cast<ConstantInt>(U->getOperand(1))) {
Nick Lewyckyf5c547d2008-07-07 06:15:49 +00003733 // If the RHS of the xor is a signbit, then this is just an add.
3734 // Instcombine turns add of signbit into xor as a strength reduction step.
Dan Gohman05e89732008-06-22 19:56:46 +00003735 if (CI->getValue().isSignBit())
Dan Gohmanc8e23622009-04-21 23:15:49 +00003736 return getAddExpr(getSCEV(U->getOperand(0)),
3737 getSCEV(U->getOperand(1)));
Nick Lewyckyf5c547d2008-07-07 06:15:49 +00003738
3739 // If the RHS of xor is -1, then this is a not operation.
Dan Gohmand277a1e2009-05-18 16:17:44 +00003740 if (CI->isAllOnesValue())
Dan Gohmanc8e23622009-04-21 23:15:49 +00003741 return getNotSCEV(getSCEV(U->getOperand(0)));
Dan Gohman6350296e2009-05-18 16:29:04 +00003742
3743 // Model xor(and(x, C), C) as and(~x, C), if C is a low-bits mask.
3744 // This is a variant of the check for xor with -1, and it handles
3745 // the case where instcombine has trimmed non-demanded bits out
3746 // of an xor with -1.
3747 if (BinaryOperator *BO = dyn_cast<BinaryOperator>(U->getOperand(0)))
3748 if (ConstantInt *LCI = dyn_cast<ConstantInt>(BO->getOperand(1)))
3749 if (BO->getOpcode() == Instruction::And &&
3750 LCI->getValue() == CI->getValue())
3751 if (const SCEVZeroExtendExpr *Z =
Dan Gohmanb50f5a42009-06-17 01:22:39 +00003752 dyn_cast<SCEVZeroExtendExpr>(getSCEV(U->getOperand(0)))) {
Chris Lattner229907c2011-07-18 04:54:35 +00003753 Type *UTy = U->getType();
Dan Gohmanaf752342009-07-07 17:06:11 +00003754 const SCEV *Z0 = Z->getOperand();
Chris Lattner229907c2011-07-18 04:54:35 +00003755 Type *Z0Ty = Z0->getType();
Dan Gohmaneddf7712009-06-18 00:00:20 +00003756 unsigned Z0TySize = getTypeSizeInBits(Z0Ty);
3757
Dan Gohman8b0a4192010-03-01 17:49:51 +00003758 // If C is a low-bits mask, the zero extend is serving to
Dan Gohmaneddf7712009-06-18 00:00:20 +00003759 // mask off the high bits. Complement the operand and
3760 // re-apply the zext.
3761 if (APIntOps::isMask(Z0TySize, CI->getValue()))
3762 return getZeroExtendExpr(getNotSCEV(Z0), UTy);
3763
3764 // If C is a single bit, it may be in the sign-bit position
3765 // before the zero-extend. In this case, represent the xor
3766 // using an add, which is equivalent, and re-apply the zext.
Jay Foad583abbc2010-12-07 08:25:19 +00003767 APInt Trunc = CI->getValue().trunc(Z0TySize);
3768 if (Trunc.zext(getTypeSizeInBits(UTy)) == CI->getValue() &&
Dan Gohmaneddf7712009-06-18 00:00:20 +00003769 Trunc.isSignBit())
3770 return getZeroExtendExpr(getAddExpr(Z0, getConstant(Trunc)),
3771 UTy);
Dan Gohmanb50f5a42009-06-17 01:22:39 +00003772 }
Dan Gohman05e89732008-06-22 19:56:46 +00003773 }
3774 break;
3775
3776 case Instruction::Shl:
3777 // Turn shift left of a constant amount into a multiply.
3778 if (ConstantInt *SA = dyn_cast<ConstantInt>(U->getOperand(1))) {
Dan Gohmane5e1b7b2010-02-01 18:27:38 +00003779 uint32_t BitWidth = cast<IntegerType>(U->getType())->getBitWidth();
Dan Gohmanacd700a2010-04-22 01:35:11 +00003780
3781 // If the shift count is not less than the bitwidth, the result of
3782 // the shift is undefined. Don't try to analyze it, because the
3783 // resolution chosen here may differ from the resolution chosen in
3784 // other parts of the compiler.
3785 if (SA->getValue().uge(BitWidth))
3786 break;
3787
Owen Andersonedb4a702009-07-24 23:12:02 +00003788 Constant *X = ConstantInt::get(getContext(),
Benjamin Kramerfc3ea6f2013-07-11 16:05:50 +00003789 APInt::getOneBitSet(BitWidth, SA->getZExtValue()));
Dan Gohmanc8e23622009-04-21 23:15:49 +00003790 return getMulExpr(getSCEV(U->getOperand(0)), getSCEV(X));
Dan Gohman05e89732008-06-22 19:56:46 +00003791 }
3792 break;
3793
Nick Lewyckyf5c547d2008-07-07 06:15:49 +00003794 case Instruction::LShr:
Nick Lewycky52348302009-01-13 09:18:58 +00003795 // Turn logical shift right of a constant into a unsigned divide.
Nick Lewyckyf5c547d2008-07-07 06:15:49 +00003796 if (ConstantInt *SA = dyn_cast<ConstantInt>(U->getOperand(1))) {
Dan Gohmane5e1b7b2010-02-01 18:27:38 +00003797 uint32_t BitWidth = cast<IntegerType>(U->getType())->getBitWidth();
Dan Gohmanacd700a2010-04-22 01:35:11 +00003798
3799 // If the shift count is not less than the bitwidth, the result of
3800 // the shift is undefined. Don't try to analyze it, because the
3801 // resolution chosen here may differ from the resolution chosen in
3802 // other parts of the compiler.
3803 if (SA->getValue().uge(BitWidth))
3804 break;
3805
Owen Andersonedb4a702009-07-24 23:12:02 +00003806 Constant *X = ConstantInt::get(getContext(),
Benjamin Kramerfc3ea6f2013-07-11 16:05:50 +00003807 APInt::getOneBitSet(BitWidth, SA->getZExtValue()));
Dan Gohmanc8e23622009-04-21 23:15:49 +00003808 return getUDivExpr(getSCEV(U->getOperand(0)), getSCEV(X));
Nick Lewyckyf5c547d2008-07-07 06:15:49 +00003809 }
3810 break;
3811
Dan Gohman0ec05372009-04-21 02:26:00 +00003812 case Instruction::AShr:
3813 // For a two-shift sext-inreg, use sext(trunc(x)) as the SCEV expression.
3814 if (ConstantInt *CI = dyn_cast<ConstantInt>(U->getOperand(1)))
Dan Gohmanacd700a2010-04-22 01:35:11 +00003815 if (Operator *L = dyn_cast<Operator>(U->getOperand(0)))
Dan Gohman0ec05372009-04-21 02:26:00 +00003816 if (L->getOpcode() == Instruction::Shl &&
3817 L->getOperand(1) == U->getOperand(1)) {
Dan Gohmanacd700a2010-04-22 01:35:11 +00003818 uint64_t BitWidth = getTypeSizeInBits(U->getType());
3819
3820 // If the shift count is not less than the bitwidth, the result of
3821 // the shift is undefined. Don't try to analyze it, because the
3822 // resolution chosen here may differ from the resolution chosen in
3823 // other parts of the compiler.
3824 if (CI->getValue().uge(BitWidth))
3825 break;
3826
Dan Gohmandf199482009-04-25 17:05:40 +00003827 uint64_t Amt = BitWidth - CI->getZExtValue();
3828 if (Amt == BitWidth)
3829 return getSCEV(L->getOperand(0)); // shift by zero --> noop
Dan Gohman0ec05372009-04-21 02:26:00 +00003830 return
Dan Gohmanc8e23622009-04-21 23:15:49 +00003831 getSignExtendExpr(getTruncateExpr(getSCEV(L->getOperand(0)),
Dan Gohmanacd700a2010-04-22 01:35:11 +00003832 IntegerType::get(getContext(),
3833 Amt)),
3834 U->getType());
Dan Gohman0ec05372009-04-21 02:26:00 +00003835 }
3836 break;
3837
Dan Gohman05e89732008-06-22 19:56:46 +00003838 case Instruction::Trunc:
Dan Gohmanc8e23622009-04-21 23:15:49 +00003839 return getTruncateExpr(getSCEV(U->getOperand(0)), U->getType());
Dan Gohman05e89732008-06-22 19:56:46 +00003840
3841 case Instruction::ZExt:
Dan Gohmanc8e23622009-04-21 23:15:49 +00003842 return getZeroExtendExpr(getSCEV(U->getOperand(0)), U->getType());
Dan Gohman05e89732008-06-22 19:56:46 +00003843
3844 case Instruction::SExt:
Dan Gohmanc8e23622009-04-21 23:15:49 +00003845 return getSignExtendExpr(getSCEV(U->getOperand(0)), U->getType());
Dan Gohman05e89732008-06-22 19:56:46 +00003846
3847 case Instruction::BitCast:
3848 // BitCasts are no-op casts so we just eliminate the cast.
Dan Gohmanb397e1a2009-04-21 01:07:12 +00003849 if (isSCEVable(U->getType()) && isSCEVable(U->getOperand(0)->getType()))
Dan Gohman05e89732008-06-22 19:56:46 +00003850 return getSCEV(U->getOperand(0));
3851 break;
3852
Dan Gohmane5e1b7b2010-02-01 18:27:38 +00003853 // It's tempting to handle inttoptr and ptrtoint as no-ops, however this can
3854 // lead to pointer expressions which cannot safely be expanded to GEPs,
3855 // because ScalarEvolution doesn't respect the GEP aliasing rules when
3856 // simplifying integer expressions.
Dan Gohman0a40ad92009-04-16 03:18:22 +00003857
Dan Gohmanee750d12009-05-08 20:26:55 +00003858 case Instruction::GetElementPtr:
Dan Gohmanb256ccf2009-12-18 02:09:29 +00003859 return createNodeForGEP(cast<GEPOperator>(U));
Dan Gohman0a40ad92009-04-16 03:18:22 +00003860
Dan Gohman05e89732008-06-22 19:56:46 +00003861 case Instruction::PHI:
3862 return createNodeForPHI(cast<PHINode>(U));
3863
3864 case Instruction::Select:
3865 // This could be a smax or umax that was lowered earlier.
3866 // Try to recover it.
3867 if (ICmpInst *ICI = dyn_cast<ICmpInst>(U->getOperand(0))) {
3868 Value *LHS = ICI->getOperand(0);
3869 Value *RHS = ICI->getOperand(1);
3870 switch (ICI->getPredicate()) {
3871 case ICmpInst::ICMP_SLT:
3872 case ICmpInst::ICMP_SLE:
3873 std::swap(LHS, RHS);
3874 // fall through
3875 case ICmpInst::ICMP_SGT:
3876 case ICmpInst::ICMP_SGE:
Dan Gohmanf33bac32010-04-24 03:09:42 +00003877 // a >s b ? a+x : b+x -> smax(a, b)+x
3878 // a >s b ? b+x : a+x -> smin(a, b)+x
3879 if (LHS->getType() == U->getType()) {
3880 const SCEV *LS = getSCEV(LHS);
3881 const SCEV *RS = getSCEV(RHS);
3882 const SCEV *LA = getSCEV(U->getOperand(1));
3883 const SCEV *RA = getSCEV(U->getOperand(2));
3884 const SCEV *LDiff = getMinusSCEV(LA, LS);
3885 const SCEV *RDiff = getMinusSCEV(RA, RS);
3886 if (LDiff == RDiff)
3887 return getAddExpr(getSMaxExpr(LS, RS), LDiff);
3888 LDiff = getMinusSCEV(LA, RS);
3889 RDiff = getMinusSCEV(RA, LS);
3890 if (LDiff == RDiff)
3891 return getAddExpr(getSMinExpr(LS, RS), LDiff);
3892 }
Dan Gohman05e89732008-06-22 19:56:46 +00003893 break;
3894 case ICmpInst::ICMP_ULT:
3895 case ICmpInst::ICMP_ULE:
3896 std::swap(LHS, RHS);
3897 // fall through
3898 case ICmpInst::ICMP_UGT:
3899 case ICmpInst::ICMP_UGE:
Dan Gohmanf33bac32010-04-24 03:09:42 +00003900 // a >u b ? a+x : b+x -> umax(a, b)+x
3901 // a >u b ? b+x : a+x -> umin(a, b)+x
3902 if (LHS->getType() == U->getType()) {
3903 const SCEV *LS = getSCEV(LHS);
3904 const SCEV *RS = getSCEV(RHS);
3905 const SCEV *LA = getSCEV(U->getOperand(1));
3906 const SCEV *RA = getSCEV(U->getOperand(2));
3907 const SCEV *LDiff = getMinusSCEV(LA, LS);
3908 const SCEV *RDiff = getMinusSCEV(RA, RS);
3909 if (LDiff == RDiff)
3910 return getAddExpr(getUMaxExpr(LS, RS), LDiff);
3911 LDiff = getMinusSCEV(LA, RS);
3912 RDiff = getMinusSCEV(RA, LS);
3913 if (LDiff == RDiff)
3914 return getAddExpr(getUMinExpr(LS, RS), LDiff);
3915 }
Dan Gohman05e89732008-06-22 19:56:46 +00003916 break;
Dan Gohman4d3c3cf2009-06-18 20:21:07 +00003917 case ICmpInst::ICMP_NE:
Dan Gohmanf33bac32010-04-24 03:09:42 +00003918 // n != 0 ? n+x : 1+x -> umax(n, 1)+x
3919 if (LHS->getType() == U->getType() &&
Dan Gohman4d3c3cf2009-06-18 20:21:07 +00003920 isa<ConstantInt>(RHS) &&
Dan Gohmanf33bac32010-04-24 03:09:42 +00003921 cast<ConstantInt>(RHS)->isZero()) {
3922 const SCEV *One = getConstant(LHS->getType(), 1);
3923 const SCEV *LS = getSCEV(LHS);
3924 const SCEV *LA = getSCEV(U->getOperand(1));
3925 const SCEV *RA = getSCEV(U->getOperand(2));
3926 const SCEV *LDiff = getMinusSCEV(LA, LS);
3927 const SCEV *RDiff = getMinusSCEV(RA, One);
3928 if (LDiff == RDiff)
Dan Gohmancf32f2b2010-08-13 20:17:14 +00003929 return getAddExpr(getUMaxExpr(One, LS), LDiff);
Dan Gohmanf33bac32010-04-24 03:09:42 +00003930 }
Dan Gohman4d3c3cf2009-06-18 20:21:07 +00003931 break;
3932 case ICmpInst::ICMP_EQ:
Dan Gohmanf33bac32010-04-24 03:09:42 +00003933 // n == 0 ? 1+x : n+x -> umax(n, 1)+x
3934 if (LHS->getType() == U->getType() &&
Dan Gohman4d3c3cf2009-06-18 20:21:07 +00003935 isa<ConstantInt>(RHS) &&
Dan Gohmanf33bac32010-04-24 03:09:42 +00003936 cast<ConstantInt>(RHS)->isZero()) {
3937 const SCEV *One = getConstant(LHS->getType(), 1);
3938 const SCEV *LS = getSCEV(LHS);
3939 const SCEV *LA = getSCEV(U->getOperand(1));
3940 const SCEV *RA = getSCEV(U->getOperand(2));
3941 const SCEV *LDiff = getMinusSCEV(LA, One);
3942 const SCEV *RDiff = getMinusSCEV(RA, LS);
3943 if (LDiff == RDiff)
Dan Gohmancf32f2b2010-08-13 20:17:14 +00003944 return getAddExpr(getUMaxExpr(One, LS), LDiff);
Dan Gohmanf33bac32010-04-24 03:09:42 +00003945 }
Dan Gohman4d3c3cf2009-06-18 20:21:07 +00003946 break;
Dan Gohman05e89732008-06-22 19:56:46 +00003947 default:
3948 break;
3949 }
3950 }
3951
3952 default: // We cannot analyze this expression.
3953 break;
Chris Lattnerd934c702004-04-02 20:23:17 +00003954 }
3955
Dan Gohmanc8e23622009-04-21 23:15:49 +00003956 return getUnknown(V);
Chris Lattnerd934c702004-04-02 20:23:17 +00003957}
3958
3959
3960
3961//===----------------------------------------------------------------------===//
3962// Iteration Count Computation Code
3963//
3964
Andrew Trick2b6860f2011-08-11 23:36:16 +00003965/// getSmallConstantTripCount - Returns the maximum trip count of this loop as a
Andrew Tricke81211f2012-01-11 06:52:55 +00003966/// normal unsigned value. Returns 0 if the trip count is unknown or not
3967/// constant. Will also return 0 if the maximum trip count is very large (>=
3968/// 2^32).
3969///
3970/// This "trip count" assumes that control exits via ExitingBlock. More
3971/// precisely, it is the number of times that control may reach ExitingBlock
3972/// before taking the branch. For loops with multiple exits, it may not be the
3973/// number times that the loop header executes because the loop may exit
3974/// prematurely via another branch.
Andrew Trickee9143a2013-05-31 23:34:46 +00003975///
3976/// FIXME: We conservatively call getBackedgeTakenCount(L) instead of
3977/// getExitCount(L, ExitingBlock) to compute a safe trip count considering all
3978/// loop exits. getExitCount() may return an exact count for this branch
3979/// assuming no-signed-wrap. The number of well-defined iterations may actually
3980/// be higher than this trip count if this exit test is skipped and the loop
3981/// exits via a different branch. Ideally, getExitCount() would know whether it
3982/// depends on a NSW assumption, and we would only fall back to a conservative
3983/// trip count in that case.
Andrew Tricke81211f2012-01-11 06:52:55 +00003984unsigned ScalarEvolution::
Aaron Ballmand07f5512013-06-04 01:01:56 +00003985getSmallConstantTripCount(Loop *L, BasicBlock * /*ExitingBlock*/) {
Andrew Trick2b6860f2011-08-11 23:36:16 +00003986 const SCEVConstant *ExitCount =
Andrew Trickee9143a2013-05-31 23:34:46 +00003987 dyn_cast<SCEVConstant>(getBackedgeTakenCount(L));
Andrew Trick2b6860f2011-08-11 23:36:16 +00003988 if (!ExitCount)
3989 return 0;
3990
3991 ConstantInt *ExitConst = ExitCount->getValue();
3992
3993 // Guard against huge trip counts.
3994 if (ExitConst->getValue().getActiveBits() > 32)
3995 return 0;
3996
3997 // In case of integer overflow, this returns 0, which is correct.
3998 return ((unsigned)ExitConst->getZExtValue()) + 1;
3999}
4000
4001/// getSmallConstantTripMultiple - Returns the largest constant divisor of the
4002/// trip count of this loop as a normal unsigned value, if possible. This
4003/// means that the actual trip count is always a multiple of the returned
4004/// value (don't forget the trip count could very well be zero as well!).
4005///
4006/// Returns 1 if the trip count is unknown or not guaranteed to be the
4007/// multiple of a constant (which is also the case if the trip count is simply
4008/// constant, use getSmallConstantTripCount for that case), Will also return 1
4009/// if the trip count is very large (>= 2^32).
Andrew Tricke81211f2012-01-11 06:52:55 +00004010///
4011/// As explained in the comments for getSmallConstantTripCount, this assumes
4012/// that control exits the loop via ExitingBlock.
4013unsigned ScalarEvolution::
Aaron Ballmand07f5512013-06-04 01:01:56 +00004014getSmallConstantTripMultiple(Loop *L, BasicBlock * /*ExitingBlock*/) {
Andrew Trickee9143a2013-05-31 23:34:46 +00004015 const SCEV *ExitCount = getBackedgeTakenCount(L);
Andrew Trick2b6860f2011-08-11 23:36:16 +00004016 if (ExitCount == getCouldNotCompute())
4017 return 1;
4018
4019 // Get the trip count from the BE count by adding 1.
4020 const SCEV *TCMul = getAddExpr(ExitCount,
4021 getConstant(ExitCount->getType(), 1));
4022 // FIXME: SCEV distributes multiplication as V1*C1 + V2*C1. We could attempt
4023 // to factor simple cases.
4024 if (const SCEVMulExpr *Mul = dyn_cast<SCEVMulExpr>(TCMul))
4025 TCMul = Mul->getOperand(0);
4026
4027 const SCEVConstant *MulC = dyn_cast<SCEVConstant>(TCMul);
4028 if (!MulC)
4029 return 1;
4030
4031 ConstantInt *Result = MulC->getValue();
4032
Hal Finkel30bd9342012-10-24 19:46:44 +00004033 // Guard against huge trip counts (this requires checking
4034 // for zero to handle the case where the trip count == -1 and the
4035 // addition wraps).
4036 if (!Result || Result->getValue().getActiveBits() > 32 ||
4037 Result->getValue().getActiveBits() == 0)
Andrew Trick2b6860f2011-08-11 23:36:16 +00004038 return 1;
4039
4040 return (unsigned)Result->getZExtValue();
4041}
4042
Andrew Trick3ca3f982011-07-26 17:19:55 +00004043// getExitCount - Get the expression for the number of loop iterations for which
Andrew Trickee9143a2013-05-31 23:34:46 +00004044// this loop is guaranteed not to exit via ExitingBlock. Otherwise return
Andrew Trick3ca3f982011-07-26 17:19:55 +00004045// SCEVCouldNotCompute.
Andrew Trick77c55422011-08-02 04:23:35 +00004046const SCEV *ScalarEvolution::getExitCount(Loop *L, BasicBlock *ExitingBlock) {
4047 return getBackedgeTakenInfo(L).getExact(ExitingBlock, this);
Andrew Trick3ca3f982011-07-26 17:19:55 +00004048}
4049
Dan Gohman0bddac12009-02-24 18:55:53 +00004050/// getBackedgeTakenCount - If the specified loop has a predictable
4051/// backedge-taken count, return it, otherwise return a SCEVCouldNotCompute
4052/// object. The backedge-taken count is the number of times the loop header
4053/// will be branched to from within the loop. This is one less than the
4054/// trip count of the loop, since it doesn't count the first iteration,
4055/// when the header is branched to from outside the loop.
4056///
4057/// Note that it is not valid to call this method on a loop without a
4058/// loop-invariant backedge-taken count (see
4059/// hasLoopInvariantBackedgeTakenCount).
4060///
Dan Gohmanaf752342009-07-07 17:06:11 +00004061const SCEV *ScalarEvolution::getBackedgeTakenCount(const Loop *L) {
Andrew Trick3ca3f982011-07-26 17:19:55 +00004062 return getBackedgeTakenInfo(L).getExact(this);
Dan Gohman2b8da352009-04-30 20:47:05 +00004063}
4064
4065/// getMaxBackedgeTakenCount - Similar to getBackedgeTakenCount, except
4066/// return the least SCEV value that is known never to be less than the
4067/// actual backedge taken count.
Dan Gohmanaf752342009-07-07 17:06:11 +00004068const SCEV *ScalarEvolution::getMaxBackedgeTakenCount(const Loop *L) {
Andrew Trick3ca3f982011-07-26 17:19:55 +00004069 return getBackedgeTakenInfo(L).getMax(this);
Dan Gohman2b8da352009-04-30 20:47:05 +00004070}
4071
Dan Gohmandc191042009-07-08 19:23:34 +00004072/// PushLoopPHIs - Push PHI nodes in the header of the given loop
4073/// onto the given Worklist.
4074static void
4075PushLoopPHIs(const Loop *L, SmallVectorImpl<Instruction *> &Worklist) {
4076 BasicBlock *Header = L->getHeader();
4077
4078 // Push all Loop-header PHIs onto the Worklist stack.
4079 for (BasicBlock::iterator I = Header->begin();
4080 PHINode *PN = dyn_cast<PHINode>(I); ++I)
4081 Worklist.push_back(PN);
4082}
4083
Dan Gohman2b8da352009-04-30 20:47:05 +00004084const ScalarEvolution::BackedgeTakenInfo &
4085ScalarEvolution::getBackedgeTakenInfo(const Loop *L) {
Andrew Trick3ca3f982011-07-26 17:19:55 +00004086 // Initially insert an invalid entry for this loop. If the insertion
Dan Gohman8b0a4192010-03-01 17:49:51 +00004087 // succeeds, proceed to actually compute a backedge-taken count and
Dan Gohman76466372009-04-27 20:16:15 +00004088 // update the value. The temporary CouldNotCompute value tells SCEV
4089 // code elsewhere that it shouldn't attempt to request a new
4090 // backedge-taken count, which could result in infinite recursion.
Dan Gohman0daf6872011-05-09 18:44:09 +00004091 std::pair<DenseMap<const Loop *, BackedgeTakenInfo>::iterator, bool> Pair =
Andrew Trick3ca3f982011-07-26 17:19:55 +00004092 BackedgeTakenCounts.insert(std::make_pair(L, BackedgeTakenInfo()));
Chris Lattnera337f5e2011-01-09 02:16:18 +00004093 if (!Pair.second)
4094 return Pair.first->second;
Dan Gohman76466372009-04-27 20:16:15 +00004095
Andrew Trick3ca3f982011-07-26 17:19:55 +00004096 // ComputeBackedgeTakenCount may allocate memory for its result. Inserting it
4097 // into the BackedgeTakenCounts map transfers ownership. Otherwise, the result
4098 // must be cleared in this scope.
4099 BackedgeTakenInfo Result = ComputeBackedgeTakenCount(L);
4100
4101 if (Result.getExact(this) != getCouldNotCompute()) {
4102 assert(isLoopInvariant(Result.getExact(this), L) &&
4103 isLoopInvariant(Result.getMax(this), L) &&
Chris Lattnera337f5e2011-01-09 02:16:18 +00004104 "Computed backedge-taken count isn't loop invariant for loop!");
4105 ++NumTripCountsComputed;
Andrew Trick3ca3f982011-07-26 17:19:55 +00004106 }
4107 else if (Result.getMax(this) == getCouldNotCompute() &&
4108 isa<PHINode>(L->getHeader()->begin())) {
4109 // Only count loops that have phi nodes as not being computable.
4110 ++NumTripCountsNotComputed;
Chris Lattnera337f5e2011-01-09 02:16:18 +00004111 }
Dan Gohman2b8da352009-04-30 20:47:05 +00004112
Chris Lattnera337f5e2011-01-09 02:16:18 +00004113 // Now that we know more about the trip count for this loop, forget any
4114 // existing SCEV values for PHI nodes in this loop since they are only
4115 // conservative estimates made without the benefit of trip count
4116 // information. This is similar to the code in forgetLoop, except that
4117 // it handles SCEVUnknown PHI nodes specially.
Andrew Trick3ca3f982011-07-26 17:19:55 +00004118 if (Result.hasAnyInfo()) {
Chris Lattnera337f5e2011-01-09 02:16:18 +00004119 SmallVector<Instruction *, 16> Worklist;
4120 PushLoopPHIs(L, Worklist);
Dan Gohmandc191042009-07-08 19:23:34 +00004121
Chris Lattnera337f5e2011-01-09 02:16:18 +00004122 SmallPtrSet<Instruction *, 8> Visited;
4123 while (!Worklist.empty()) {
4124 Instruction *I = Worklist.pop_back_val();
4125 if (!Visited.insert(I)) continue;
Dan Gohmandc191042009-07-08 19:23:34 +00004126
Chris Lattnera337f5e2011-01-09 02:16:18 +00004127 ValueExprMapType::iterator It =
Benjamin Kramere2ef47c2012-06-30 22:37:15 +00004128 ValueExprMap.find_as(static_cast<Value *>(I));
Chris Lattnera337f5e2011-01-09 02:16:18 +00004129 if (It != ValueExprMap.end()) {
4130 const SCEV *Old = It->second;
Dan Gohman761065e2010-11-17 02:44:44 +00004131
Chris Lattnera337f5e2011-01-09 02:16:18 +00004132 // SCEVUnknown for a PHI either means that it has an unrecognized
4133 // structure, or it's a PHI that's in the progress of being computed
4134 // by createNodeForPHI. In the former case, additional loop trip
4135 // count information isn't going to change anything. In the later
4136 // case, createNodeForPHI will perform the necessary updates on its
4137 // own when it gets to that point.
4138 if (!isa<PHINode>(I) || !isa<SCEVUnknown>(Old)) {
4139 forgetMemoizedResults(Old);
4140 ValueExprMap.erase(It);
Dan Gohmandc191042009-07-08 19:23:34 +00004141 }
Chris Lattnera337f5e2011-01-09 02:16:18 +00004142 if (PHINode *PN = dyn_cast<PHINode>(I))
4143 ConstantEvolutionLoopExitValue.erase(PN);
Dan Gohmandc191042009-07-08 19:23:34 +00004144 }
Chris Lattnera337f5e2011-01-09 02:16:18 +00004145
4146 PushDefUseChildren(I, Worklist);
Dan Gohmandc191042009-07-08 19:23:34 +00004147 }
Chris Lattnerd934c702004-04-02 20:23:17 +00004148 }
Dan Gohman6acd95b2011-04-25 22:48:29 +00004149
4150 // Re-lookup the insert position, since the call to
4151 // ComputeBackedgeTakenCount above could result in a
4152 // recusive call to getBackedgeTakenInfo (on a different
4153 // loop), which would invalidate the iterator computed
4154 // earlier.
4155 return BackedgeTakenCounts.find(L)->second = Result;
Chris Lattnerd934c702004-04-02 20:23:17 +00004156}
4157
Dan Gohman880c92a2009-10-31 15:04:55 +00004158/// forgetLoop - This method should be called by the client when it has
4159/// changed a loop in a way that may effect ScalarEvolution's ability to
4160/// compute a trip count, or if the loop is deleted.
4161void ScalarEvolution::forgetLoop(const Loop *L) {
4162 // Drop any stored trip count value.
Andrew Trick3ca3f982011-07-26 17:19:55 +00004163 DenseMap<const Loop*, BackedgeTakenInfo>::iterator BTCPos =
4164 BackedgeTakenCounts.find(L);
4165 if (BTCPos != BackedgeTakenCounts.end()) {
4166 BTCPos->second.clear();
4167 BackedgeTakenCounts.erase(BTCPos);
4168 }
Dan Gohmanf1505722009-05-02 17:43:35 +00004169
Dan Gohman880c92a2009-10-31 15:04:55 +00004170 // Drop information about expressions based on loop-header PHIs.
Dan Gohman48f82222009-05-04 22:30:44 +00004171 SmallVector<Instruction *, 16> Worklist;
Dan Gohmandc191042009-07-08 19:23:34 +00004172 PushLoopPHIs(L, Worklist);
Dan Gohman48f82222009-05-04 22:30:44 +00004173
Dan Gohmandc191042009-07-08 19:23:34 +00004174 SmallPtrSet<Instruction *, 8> Visited;
Dan Gohman48f82222009-05-04 22:30:44 +00004175 while (!Worklist.empty()) {
4176 Instruction *I = Worklist.pop_back_val();
Dan Gohmandc191042009-07-08 19:23:34 +00004177 if (!Visited.insert(I)) continue;
4178
Benjamin Kramere2ef47c2012-06-30 22:37:15 +00004179 ValueExprMapType::iterator It =
4180 ValueExprMap.find_as(static_cast<Value *>(I));
Dan Gohman9bad2fb2010-08-27 18:55:03 +00004181 if (It != ValueExprMap.end()) {
Dan Gohman7e6b3932010-11-17 23:28:48 +00004182 forgetMemoizedResults(It->second);
Dan Gohman9bad2fb2010-08-27 18:55:03 +00004183 ValueExprMap.erase(It);
Dan Gohmandc191042009-07-08 19:23:34 +00004184 if (PHINode *PN = dyn_cast<PHINode>(I))
4185 ConstantEvolutionLoopExitValue.erase(PN);
4186 }
4187
4188 PushDefUseChildren(I, Worklist);
Dan Gohman48f82222009-05-04 22:30:44 +00004189 }
Dan Gohmandcb354b2010-10-29 20:16:10 +00004190
4191 // Forget all contained loops too, to avoid dangling entries in the
4192 // ValuesAtScopes map.
4193 for (Loop::iterator I = L->begin(), E = L->end(); I != E; ++I)
4194 forgetLoop(*I);
Dan Gohman43300342009-02-17 20:49:49 +00004195}
4196
Eric Christopheref6d5932010-07-29 01:25:38 +00004197/// forgetValue - This method should be called by the client when it has
4198/// changed a value in a way that may effect its value, or which may
4199/// disconnect it from a def-use chain linking it to a loop.
4200void ScalarEvolution::forgetValue(Value *V) {
Dale Johannesen1d6827a2010-02-19 07:14:22 +00004201 Instruction *I = dyn_cast<Instruction>(V);
4202 if (!I) return;
4203
4204 // Drop information about expressions based on loop-header PHIs.
4205 SmallVector<Instruction *, 16> Worklist;
4206 Worklist.push_back(I);
4207
4208 SmallPtrSet<Instruction *, 8> Visited;
4209 while (!Worklist.empty()) {
4210 I = Worklist.pop_back_val();
4211 if (!Visited.insert(I)) continue;
4212
Benjamin Kramere2ef47c2012-06-30 22:37:15 +00004213 ValueExprMapType::iterator It =
4214 ValueExprMap.find_as(static_cast<Value *>(I));
Dan Gohman9bad2fb2010-08-27 18:55:03 +00004215 if (It != ValueExprMap.end()) {
Dan Gohman7e6b3932010-11-17 23:28:48 +00004216 forgetMemoizedResults(It->second);
Dan Gohman9bad2fb2010-08-27 18:55:03 +00004217 ValueExprMap.erase(It);
Dale Johannesen1d6827a2010-02-19 07:14:22 +00004218 if (PHINode *PN = dyn_cast<PHINode>(I))
4219 ConstantEvolutionLoopExitValue.erase(PN);
4220 }
4221
4222 PushDefUseChildren(I, Worklist);
4223 }
4224}
4225
Andrew Trick3ca3f982011-07-26 17:19:55 +00004226/// getExact - Get the exact loop backedge taken count considering all loop
Andrew Trick90c7a102011-11-16 00:52:40 +00004227/// exits. A computable result can only be return for loops with a single exit.
4228/// Returning the minimum taken count among all exits is incorrect because one
4229/// of the loop's exit limit's may have been skipped. HowFarToZero assumes that
4230/// the limit of each loop test is never skipped. This is a valid assumption as
4231/// long as the loop exits via that test. For precise results, it is the
4232/// caller's responsibility to specify the relevant loop exit using
4233/// getExact(ExitingBlock, SE).
Andrew Trick3ca3f982011-07-26 17:19:55 +00004234const SCEV *
4235ScalarEvolution::BackedgeTakenInfo::getExact(ScalarEvolution *SE) const {
4236 // If any exits were not computable, the loop is not computable.
4237 if (!ExitNotTaken.isCompleteList()) return SE->getCouldNotCompute();
4238
Andrew Trick90c7a102011-11-16 00:52:40 +00004239 // We need exactly one computable exit.
Andrew Trick77c55422011-08-02 04:23:35 +00004240 if (!ExitNotTaken.ExitingBlock) return SE->getCouldNotCompute();
Andrew Trick3ca3f982011-07-26 17:19:55 +00004241 assert(ExitNotTaken.ExactNotTaken && "uninitialized not-taken info");
4242
4243 const SCEV *BECount = 0;
4244 for (const ExitNotTakenInfo *ENT = &ExitNotTaken;
4245 ENT != 0; ENT = ENT->getNextExit()) {
4246
4247 assert(ENT->ExactNotTaken != SE->getCouldNotCompute() && "bad exit SCEV");
4248
4249 if (!BECount)
4250 BECount = ENT->ExactNotTaken;
Andrew Trick90c7a102011-11-16 00:52:40 +00004251 else if (BECount != ENT->ExactNotTaken)
4252 return SE->getCouldNotCompute();
Andrew Trick3ca3f982011-07-26 17:19:55 +00004253 }
Andrew Trickbbb226a2011-09-02 21:20:46 +00004254 assert(BECount && "Invalid not taken count for loop exit");
Andrew Trick3ca3f982011-07-26 17:19:55 +00004255 return BECount;
4256}
4257
4258/// getExact - Get the exact not taken count for this loop exit.
4259const SCEV *
Andrew Trick77c55422011-08-02 04:23:35 +00004260ScalarEvolution::BackedgeTakenInfo::getExact(BasicBlock *ExitingBlock,
Andrew Trick3ca3f982011-07-26 17:19:55 +00004261 ScalarEvolution *SE) const {
4262 for (const ExitNotTakenInfo *ENT = &ExitNotTaken;
4263 ENT != 0; ENT = ENT->getNextExit()) {
4264
Andrew Trick77c55422011-08-02 04:23:35 +00004265 if (ENT->ExitingBlock == ExitingBlock)
Andrew Trick3ca3f982011-07-26 17:19:55 +00004266 return ENT->ExactNotTaken;
4267 }
4268 return SE->getCouldNotCompute();
4269}
4270
4271/// getMax - Get the max backedge taken count for the loop.
4272const SCEV *
4273ScalarEvolution::BackedgeTakenInfo::getMax(ScalarEvolution *SE) const {
4274 return Max ? Max : SE->getCouldNotCompute();
4275}
4276
Andrew Trick9093e152013-03-26 03:14:53 +00004277bool ScalarEvolution::BackedgeTakenInfo::hasOperand(const SCEV *S,
4278 ScalarEvolution *SE) const {
4279 if (Max && Max != SE->getCouldNotCompute() && SE->hasOperand(Max, S))
4280 return true;
4281
4282 if (!ExitNotTaken.ExitingBlock)
4283 return false;
4284
4285 for (const ExitNotTakenInfo *ENT = &ExitNotTaken;
4286 ENT != 0; ENT = ENT->getNextExit()) {
4287
4288 if (ENT->ExactNotTaken != SE->getCouldNotCompute()
4289 && SE->hasOperand(ENT->ExactNotTaken, S)) {
4290 return true;
4291 }
4292 }
4293 return false;
4294}
4295
Andrew Trick3ca3f982011-07-26 17:19:55 +00004296/// Allocate memory for BackedgeTakenInfo and copy the not-taken count of each
4297/// computable exit into a persistent ExitNotTakenInfo array.
4298ScalarEvolution::BackedgeTakenInfo::BackedgeTakenInfo(
4299 SmallVectorImpl< std::pair<BasicBlock *, const SCEV *> > &ExitCounts,
4300 bool Complete, const SCEV *MaxCount) : Max(MaxCount) {
4301
4302 if (!Complete)
4303 ExitNotTaken.setIncomplete();
4304
4305 unsigned NumExits = ExitCounts.size();
4306 if (NumExits == 0) return;
4307
Andrew Trick77c55422011-08-02 04:23:35 +00004308 ExitNotTaken.ExitingBlock = ExitCounts[0].first;
Andrew Trick3ca3f982011-07-26 17:19:55 +00004309 ExitNotTaken.ExactNotTaken = ExitCounts[0].second;
4310 if (NumExits == 1) return;
4311
4312 // Handle the rare case of multiple computable exits.
4313 ExitNotTakenInfo *ENT = new ExitNotTakenInfo[NumExits-1];
4314
4315 ExitNotTakenInfo *PrevENT = &ExitNotTaken;
4316 for (unsigned i = 1; i < NumExits; ++i, PrevENT = ENT, ++ENT) {
4317 PrevENT->setNextExit(ENT);
Andrew Trick77c55422011-08-02 04:23:35 +00004318 ENT->ExitingBlock = ExitCounts[i].first;
Andrew Trick3ca3f982011-07-26 17:19:55 +00004319 ENT->ExactNotTaken = ExitCounts[i].second;
4320 }
4321}
4322
4323/// clear - Invalidate this result and free the ExitNotTakenInfo array.
4324void ScalarEvolution::BackedgeTakenInfo::clear() {
Andrew Trick77c55422011-08-02 04:23:35 +00004325 ExitNotTaken.ExitingBlock = 0;
Andrew Trick3ca3f982011-07-26 17:19:55 +00004326 ExitNotTaken.ExactNotTaken = 0;
4327 delete[] ExitNotTaken.getNextExit();
4328}
4329
Dan Gohman0bddac12009-02-24 18:55:53 +00004330/// ComputeBackedgeTakenCount - Compute the number of times the backedge
4331/// of the specified loop will execute.
Dan Gohman2b8da352009-04-30 20:47:05 +00004332ScalarEvolution::BackedgeTakenInfo
4333ScalarEvolution::ComputeBackedgeTakenCount(const Loop *L) {
Dan Gohmancb0efec2009-12-18 01:14:11 +00004334 SmallVector<BasicBlock *, 8> ExitingBlocks;
Dan Gohman96212b62009-06-22 00:31:57 +00004335 L->getExitingBlocks(ExitingBlocks);
Chris Lattnerd934c702004-04-02 20:23:17 +00004336
Dan Gohman96212b62009-06-22 00:31:57 +00004337 // Examine all exits and pick the most conservative values.
Dan Gohmanaf752342009-07-07 17:06:11 +00004338 const SCEV *MaxBECount = getCouldNotCompute();
Andrew Trick3ca3f982011-07-26 17:19:55 +00004339 bool CouldComputeBECount = true;
4340 SmallVector<std::pair<BasicBlock *, const SCEV *>, 4> ExitCounts;
Dan Gohman96212b62009-06-22 00:31:57 +00004341 for (unsigned i = 0, e = ExitingBlocks.size(); i != e; ++i) {
Andrew Trick3ca3f982011-07-26 17:19:55 +00004342 ExitLimit EL = ComputeExitLimit(L, ExitingBlocks[i]);
4343 if (EL.Exact == getCouldNotCompute())
Dan Gohman96212b62009-06-22 00:31:57 +00004344 // We couldn't compute an exact value for this exit, so
Dan Gohman8885b372009-06-22 21:10:22 +00004345 // we won't be able to compute an exact value for the loop.
Andrew Trick3ca3f982011-07-26 17:19:55 +00004346 CouldComputeBECount = false;
4347 else
4348 ExitCounts.push_back(std::make_pair(ExitingBlocks[i], EL.Exact));
4349
Dan Gohmanc5c85c02009-06-27 21:21:31 +00004350 if (MaxBECount == getCouldNotCompute())
Andrew Trick3ca3f982011-07-26 17:19:55 +00004351 MaxBECount = EL.Max;
Andrew Trick90c7a102011-11-16 00:52:40 +00004352 else if (EL.Max != getCouldNotCompute()) {
4353 // We cannot take the "min" MaxBECount, because non-unit stride loops may
4354 // skip some loop tests. Taking the max over the exits is sufficiently
4355 // conservative. TODO: We could do better taking into consideration
4356 // that (1) the loop has unit stride (2) the last loop test is
4357 // less-than/greater-than (3) any loop test is less-than/greater-than AND
4358 // falls-through some constant times less then the other tests.
4359 MaxBECount = getUMaxFromMismatchedTypes(MaxBECount, EL.Max);
4360 }
Dan Gohman96212b62009-06-22 00:31:57 +00004361 }
4362
Andrew Trick3ca3f982011-07-26 17:19:55 +00004363 return BackedgeTakenInfo(ExitCounts, CouldComputeBECount, MaxBECount);
Dan Gohman96212b62009-06-22 00:31:57 +00004364}
4365
Andrew Trick3ca3f982011-07-26 17:19:55 +00004366/// ComputeExitLimit - Compute the number of times the backedge of the specified
4367/// loop will execute if it exits via the specified block.
4368ScalarEvolution::ExitLimit
4369ScalarEvolution::ComputeExitLimit(const Loop *L, BasicBlock *ExitingBlock) {
Dan Gohman96212b62009-06-22 00:31:57 +00004370
4371 // Okay, we've chosen an exiting block. See what condition causes us to
4372 // exit at this block.
Chris Lattnerd934c702004-04-02 20:23:17 +00004373 //
4374 // FIXME: we should be able to handle switch instructions (with a single exit)
Chris Lattnerd934c702004-04-02 20:23:17 +00004375 BranchInst *ExitBr = dyn_cast<BranchInst>(ExitingBlock->getTerminator());
Dan Gohmanc5c85c02009-06-27 21:21:31 +00004376 if (ExitBr == 0) return getCouldNotCompute();
Chris Lattnerd934c702004-04-02 20:23:17 +00004377 assert(ExitBr->isConditional() && "If unconditional, it can't be in loop!");
Dan Gohmance973df2009-06-24 04:48:43 +00004378
Chris Lattner18954852007-01-07 02:24:26 +00004379 // At this point, we know we have a conditional branch that determines whether
4380 // the loop is exited. However, we don't know if the branch is executed each
4381 // time through the loop. If not, then the execution count of the branch will
4382 // not be equal to the trip count of the loop.
4383 //
4384 // Currently we check for this by checking to see if the Exit branch goes to
4385 // the loop header. If so, we know it will always execute the same number of
Chris Lattner5a554762007-01-14 01:24:47 +00004386 // times as the loop. We also handle the case where the exit block *is* the
Dan Gohman96212b62009-06-22 00:31:57 +00004387 // loop header. This is common for un-rotated loops.
4388 //
4389 // If both of those tests fail, walk up the unique predecessor chain to the
4390 // header, stopping if there is an edge that doesn't exit the loop. If the
4391 // header is reached, the execution count of the branch will be equal to the
4392 // trip count of the loop.
4393 //
4394 // More extensive analysis could be done to handle more cases here.
4395 //
Chris Lattner18954852007-01-07 02:24:26 +00004396 if (ExitBr->getSuccessor(0) != L->getHeader() &&
Chris Lattner5a554762007-01-14 01:24:47 +00004397 ExitBr->getSuccessor(1) != L->getHeader() &&
Dan Gohman96212b62009-06-22 00:31:57 +00004398 ExitBr->getParent() != L->getHeader()) {
4399 // The simple checks failed, try climbing the unique predecessor chain
4400 // up to the header.
4401 bool Ok = false;
4402 for (BasicBlock *BB = ExitBr->getParent(); BB; ) {
4403 BasicBlock *Pred = BB->getUniquePredecessor();
4404 if (!Pred)
Dan Gohmanc5c85c02009-06-27 21:21:31 +00004405 return getCouldNotCompute();
Dan Gohman96212b62009-06-22 00:31:57 +00004406 TerminatorInst *PredTerm = Pred->getTerminator();
4407 for (unsigned i = 0, e = PredTerm->getNumSuccessors(); i != e; ++i) {
4408 BasicBlock *PredSucc = PredTerm->getSuccessor(i);
4409 if (PredSucc == BB)
4410 continue;
4411 // If the predecessor has a successor that isn't BB and isn't
4412 // outside the loop, assume the worst.
4413 if (L->contains(PredSucc))
Dan Gohmanc5c85c02009-06-27 21:21:31 +00004414 return getCouldNotCompute();
Dan Gohman96212b62009-06-22 00:31:57 +00004415 }
4416 if (Pred == L->getHeader()) {
4417 Ok = true;
4418 break;
4419 }
4420 BB = Pred;
4421 }
4422 if (!Ok)
Dan Gohmanc5c85c02009-06-27 21:21:31 +00004423 return getCouldNotCompute();
Dan Gohman96212b62009-06-22 00:31:57 +00004424 }
4425
Dan Gohman8b0a4192010-03-01 17:49:51 +00004426 // Proceed to the next level to examine the exit condition expression.
Andrew Trick3ca3f982011-07-26 17:19:55 +00004427 return ComputeExitLimitFromCond(L, ExitBr->getCondition(),
4428 ExitBr->getSuccessor(0),
Andrew Trick5b245a12013-05-31 06:43:25 +00004429 ExitBr->getSuccessor(1),
4430 /*IsSubExpr=*/false);
Dan Gohman96212b62009-06-22 00:31:57 +00004431}
4432
Andrew Trick3ca3f982011-07-26 17:19:55 +00004433/// ComputeExitLimitFromCond - Compute the number of times the
Dan Gohman96212b62009-06-22 00:31:57 +00004434/// backedge of the specified loop will execute if its exit condition
4435/// were a conditional branch of ExitCond, TBB, and FBB.
Andrew Trick5b245a12013-05-31 06:43:25 +00004436///
4437/// @param IsSubExpr is true if ExitCond does not directly control the exit
4438/// branch. In this case, we cannot assume that the loop only exits when the
4439/// condition is true and cannot infer that failing to meet the condition prior
4440/// to integer wraparound results in undefined behavior.
Andrew Trick3ca3f982011-07-26 17:19:55 +00004441ScalarEvolution::ExitLimit
4442ScalarEvolution::ComputeExitLimitFromCond(const Loop *L,
4443 Value *ExitCond,
4444 BasicBlock *TBB,
Andrew Trick5b245a12013-05-31 06:43:25 +00004445 BasicBlock *FBB,
4446 bool IsSubExpr) {
Dan Gohmanf19aeec2009-06-24 01:18:18 +00004447 // Check if the controlling expression for this loop is an And or Or.
Dan Gohman96212b62009-06-22 00:31:57 +00004448 if (BinaryOperator *BO = dyn_cast<BinaryOperator>(ExitCond)) {
4449 if (BO->getOpcode() == Instruction::And) {
4450 // Recurse on the operands of the and.
Andrew Trick5b245a12013-05-31 06:43:25 +00004451 bool EitherMayExit = L->contains(TBB);
4452 ExitLimit EL0 = ComputeExitLimitFromCond(L, BO->getOperand(0), TBB, FBB,
4453 IsSubExpr || EitherMayExit);
4454 ExitLimit EL1 = ComputeExitLimitFromCond(L, BO->getOperand(1), TBB, FBB,
4455 IsSubExpr || EitherMayExit);
Dan Gohmanaf752342009-07-07 17:06:11 +00004456 const SCEV *BECount = getCouldNotCompute();
4457 const SCEV *MaxBECount = getCouldNotCompute();
Andrew Trick5b245a12013-05-31 06:43:25 +00004458 if (EitherMayExit) {
Dan Gohman96212b62009-06-22 00:31:57 +00004459 // Both conditions must be true for the loop to continue executing.
4460 // Choose the less conservative count.
Andrew Trick3ca3f982011-07-26 17:19:55 +00004461 if (EL0.Exact == getCouldNotCompute() ||
4462 EL1.Exact == getCouldNotCompute())
Dan Gohmanc5c85c02009-06-27 21:21:31 +00004463 BECount = getCouldNotCompute();
Dan Gohmaned627382009-06-22 15:09:28 +00004464 else
Andrew Trick3ca3f982011-07-26 17:19:55 +00004465 BECount = getUMinFromMismatchedTypes(EL0.Exact, EL1.Exact);
4466 if (EL0.Max == getCouldNotCompute())
4467 MaxBECount = EL1.Max;
4468 else if (EL1.Max == getCouldNotCompute())
4469 MaxBECount = EL0.Max;
Dan Gohmaned627382009-06-22 15:09:28 +00004470 else
Andrew Trick3ca3f982011-07-26 17:19:55 +00004471 MaxBECount = getUMinFromMismatchedTypes(EL0.Max, EL1.Max);
Dan Gohman96212b62009-06-22 00:31:57 +00004472 } else {
Dan Gohmanf7495f22010-08-11 00:12:36 +00004473 // Both conditions must be true at the same time for the loop to exit.
4474 // For now, be conservative.
Dan Gohman96212b62009-06-22 00:31:57 +00004475 assert(L->contains(FBB) && "Loop block has no successor in loop!");
Andrew Trick3ca3f982011-07-26 17:19:55 +00004476 if (EL0.Max == EL1.Max)
4477 MaxBECount = EL0.Max;
4478 if (EL0.Exact == EL1.Exact)
4479 BECount = EL0.Exact;
Dan Gohman96212b62009-06-22 00:31:57 +00004480 }
4481
Andrew Trick3ca3f982011-07-26 17:19:55 +00004482 return ExitLimit(BECount, MaxBECount);
Dan Gohman96212b62009-06-22 00:31:57 +00004483 }
4484 if (BO->getOpcode() == Instruction::Or) {
4485 // Recurse on the operands of the or.
Andrew Trick5b245a12013-05-31 06:43:25 +00004486 bool EitherMayExit = L->contains(FBB);
4487 ExitLimit EL0 = ComputeExitLimitFromCond(L, BO->getOperand(0), TBB, FBB,
4488 IsSubExpr || EitherMayExit);
4489 ExitLimit EL1 = ComputeExitLimitFromCond(L, BO->getOperand(1), TBB, FBB,
4490 IsSubExpr || EitherMayExit);
Dan Gohmanaf752342009-07-07 17:06:11 +00004491 const SCEV *BECount = getCouldNotCompute();
4492 const SCEV *MaxBECount = getCouldNotCompute();
Andrew Trick5b245a12013-05-31 06:43:25 +00004493 if (EitherMayExit) {
Dan Gohman96212b62009-06-22 00:31:57 +00004494 // Both conditions must be false for the loop to continue executing.
4495 // Choose the less conservative count.
Andrew Trick3ca3f982011-07-26 17:19:55 +00004496 if (EL0.Exact == getCouldNotCompute() ||
4497 EL1.Exact == getCouldNotCompute())
Dan Gohmanc5c85c02009-06-27 21:21:31 +00004498 BECount = getCouldNotCompute();
Dan Gohmaned627382009-06-22 15:09:28 +00004499 else
Andrew Trick3ca3f982011-07-26 17:19:55 +00004500 BECount = getUMinFromMismatchedTypes(EL0.Exact, EL1.Exact);
4501 if (EL0.Max == getCouldNotCompute())
4502 MaxBECount = EL1.Max;
4503 else if (EL1.Max == getCouldNotCompute())
4504 MaxBECount = EL0.Max;
Dan Gohmaned627382009-06-22 15:09:28 +00004505 else
Andrew Trick3ca3f982011-07-26 17:19:55 +00004506 MaxBECount = getUMinFromMismatchedTypes(EL0.Max, EL1.Max);
Dan Gohman96212b62009-06-22 00:31:57 +00004507 } else {
Dan Gohmanf7495f22010-08-11 00:12:36 +00004508 // Both conditions must be false at the same time for the loop to exit.
4509 // For now, be conservative.
Dan Gohman96212b62009-06-22 00:31:57 +00004510 assert(L->contains(TBB) && "Loop block has no successor in loop!");
Andrew Trick3ca3f982011-07-26 17:19:55 +00004511 if (EL0.Max == EL1.Max)
4512 MaxBECount = EL0.Max;
4513 if (EL0.Exact == EL1.Exact)
4514 BECount = EL0.Exact;
Dan Gohman96212b62009-06-22 00:31:57 +00004515 }
4516
Andrew Trick3ca3f982011-07-26 17:19:55 +00004517 return ExitLimit(BECount, MaxBECount);
Dan Gohman96212b62009-06-22 00:31:57 +00004518 }
4519 }
4520
4521 // With an icmp, it may be feasible to compute an exact backedge-taken count.
Dan Gohman8b0a4192010-03-01 17:49:51 +00004522 // Proceed to the next level to examine the icmp.
Dan Gohman96212b62009-06-22 00:31:57 +00004523 if (ICmpInst *ExitCondICmp = dyn_cast<ICmpInst>(ExitCond))
Andrew Trick5b245a12013-05-31 06:43:25 +00004524 return ComputeExitLimitFromICmp(L, ExitCondICmp, TBB, FBB, IsSubExpr);
Reid Spencer266e42b2006-12-23 06:05:41 +00004525
Dan Gohman6b1e2a82010-02-19 18:12:07 +00004526 // Check for a constant condition. These are normally stripped out by
4527 // SimplifyCFG, but ScalarEvolution may be used by a pass which wishes to
4528 // preserve the CFG and is temporarily leaving constant conditions
4529 // in place.
4530 if (ConstantInt *CI = dyn_cast<ConstantInt>(ExitCond)) {
4531 if (L->contains(FBB) == !CI->getZExtValue())
4532 // The backedge is always taken.
4533 return getCouldNotCompute();
4534 else
4535 // The backedge is never taken.
Dan Gohman1d2ded72010-05-03 22:09:21 +00004536 return getConstant(CI->getType(), 0);
Dan Gohman6b1e2a82010-02-19 18:12:07 +00004537 }
4538
Eli Friedmanebf98b02009-05-09 12:32:42 +00004539 // If it's not an integer or pointer comparison then compute it the hard way.
Andrew Trick3ca3f982011-07-26 17:19:55 +00004540 return ComputeExitCountExhaustively(L, ExitCond, !L->contains(TBB));
Dan Gohman96212b62009-06-22 00:31:57 +00004541}
4542
Andrew Trick3ca3f982011-07-26 17:19:55 +00004543/// ComputeExitLimitFromICmp - Compute the number of times the
Dan Gohman96212b62009-06-22 00:31:57 +00004544/// backedge of the specified loop will execute if its exit condition
4545/// were a conditional branch of the ICmpInst ExitCond, TBB, and FBB.
Andrew Trick3ca3f982011-07-26 17:19:55 +00004546ScalarEvolution::ExitLimit
4547ScalarEvolution::ComputeExitLimitFromICmp(const Loop *L,
4548 ICmpInst *ExitCond,
4549 BasicBlock *TBB,
Andrew Trick5b245a12013-05-31 06:43:25 +00004550 BasicBlock *FBB,
4551 bool IsSubExpr) {
Chris Lattnerd934c702004-04-02 20:23:17 +00004552
Reid Spencer266e42b2006-12-23 06:05:41 +00004553 // If the condition was exit on true, convert the condition to exit on false
4554 ICmpInst::Predicate Cond;
Dan Gohman96212b62009-06-22 00:31:57 +00004555 if (!L->contains(FBB))
Reid Spencer266e42b2006-12-23 06:05:41 +00004556 Cond = ExitCond->getPredicate();
Chris Lattnerec901cc2004-10-12 01:49:27 +00004557 else
Reid Spencer266e42b2006-12-23 06:05:41 +00004558 Cond = ExitCond->getInversePredicate();
Chris Lattnerec901cc2004-10-12 01:49:27 +00004559
4560 // Handle common loops like: for (X = "string"; *X; ++X)
4561 if (LoadInst *LI = dyn_cast<LoadInst>(ExitCond->getOperand(0)))
4562 if (Constant *RHS = dyn_cast<Constant>(ExitCond->getOperand(1))) {
Andrew Trick3ca3f982011-07-26 17:19:55 +00004563 ExitLimit ItCnt =
4564 ComputeLoadConstantCompareExitLimit(LI, RHS, L, Cond);
Dan Gohmanba820342010-02-24 17:31:30 +00004565 if (ItCnt.hasAnyInfo())
4566 return ItCnt;
Chris Lattnerec901cc2004-10-12 01:49:27 +00004567 }
4568
Dan Gohmanaf752342009-07-07 17:06:11 +00004569 const SCEV *LHS = getSCEV(ExitCond->getOperand(0));
4570 const SCEV *RHS = getSCEV(ExitCond->getOperand(1));
Chris Lattnerd934c702004-04-02 20:23:17 +00004571
4572 // Try to evaluate any dependencies out of the loop.
Dan Gohman8ca08852009-05-24 23:25:42 +00004573 LHS = getSCEVAtScope(LHS, L);
4574 RHS = getSCEVAtScope(RHS, L);
Chris Lattnerd934c702004-04-02 20:23:17 +00004575
Dan Gohmance973df2009-06-24 04:48:43 +00004576 // At this point, we would like to compute how many iterations of the
Reid Spencer266e42b2006-12-23 06:05:41 +00004577 // loop the predicate will return true for these inputs.
Dan Gohmanafd6db92010-11-17 21:23:15 +00004578 if (isLoopInvariant(LHS, L) && !isLoopInvariant(RHS, L)) {
Dan Gohmandc5f5cb2008-09-16 18:52:57 +00004579 // If there is a loop-invariant, force it into the RHS.
Chris Lattnerd934c702004-04-02 20:23:17 +00004580 std::swap(LHS, RHS);
Reid Spencer266e42b2006-12-23 06:05:41 +00004581 Cond = ICmpInst::getSwappedPredicate(Cond);
Chris Lattnerd934c702004-04-02 20:23:17 +00004582 }
4583
Dan Gohman81585c12010-05-03 16:35:17 +00004584 // Simplify the operands before analyzing them.
4585 (void)SimplifyICmpOperands(Cond, LHS, RHS);
4586
Chris Lattnerd934c702004-04-02 20:23:17 +00004587 // If we have a comparison of a chrec against a constant, try to use value
4588 // ranges to answer this query.
Dan Gohmana30370b2009-05-04 22:02:23 +00004589 if (const SCEVConstant *RHSC = dyn_cast<SCEVConstant>(RHS))
4590 if (const SCEVAddRecExpr *AddRec = dyn_cast<SCEVAddRecExpr>(LHS))
Chris Lattnerd934c702004-04-02 20:23:17 +00004591 if (AddRec->getLoop() == L) {
Eli Friedmanebf98b02009-05-09 12:32:42 +00004592 // Form the constant range.
4593 ConstantRange CompRange(
4594 ICmpInst::makeConstantRange(Cond, RHSC->getValue()->getValue()));
Misha Brukman01808ca2005-04-21 21:13:18 +00004595
Dan Gohmanaf752342009-07-07 17:06:11 +00004596 const SCEV *Ret = AddRec->getNumIterationsInRange(CompRange, *this);
Eli Friedmanebf98b02009-05-09 12:32:42 +00004597 if (!isa<SCEVCouldNotCompute>(Ret)) return Ret;
Chris Lattnerd934c702004-04-02 20:23:17 +00004598 }
Misha Brukman01808ca2005-04-21 21:13:18 +00004599
Chris Lattnerd934c702004-04-02 20:23:17 +00004600 switch (Cond) {
Reid Spencer266e42b2006-12-23 06:05:41 +00004601 case ICmpInst::ICMP_NE: { // while (X != Y)
Chris Lattnerd934c702004-04-02 20:23:17 +00004602 // Convert to: while (X-Y != 0)
Andrew Trick5b245a12013-05-31 06:43:25 +00004603 ExitLimit EL = HowFarToZero(getMinusSCEV(LHS, RHS), L, IsSubExpr);
Andrew Trick3ca3f982011-07-26 17:19:55 +00004604 if (EL.hasAnyInfo()) return EL;
Chris Lattnerd934c702004-04-02 20:23:17 +00004605 break;
Reid Spencer266e42b2006-12-23 06:05:41 +00004606 }
Dan Gohman8a8ad7d2009-08-20 16:42:55 +00004607 case ICmpInst::ICMP_EQ: { // while (X == Y)
4608 // Convert to: while (X-Y == 0)
Andrew Trick3ca3f982011-07-26 17:19:55 +00004609 ExitLimit EL = HowFarToNonZero(getMinusSCEV(LHS, RHS), L);
4610 if (EL.hasAnyInfo()) return EL;
Chris Lattnerd934c702004-04-02 20:23:17 +00004611 break;
Reid Spencer266e42b2006-12-23 06:05:41 +00004612 }
Andrew Trick34e2f0c2013-11-06 02:08:26 +00004613 case ICmpInst::ICMP_SLT:
4614 case ICmpInst::ICMP_ULT: { // while (X < Y)
4615 bool IsSigned = Cond == ICmpInst::ICMP_SLT;
4616 ExitLimit EL = HowManyLessThans(LHS, RHS, L, IsSigned, IsSubExpr);
Andrew Trick3ca3f982011-07-26 17:19:55 +00004617 if (EL.hasAnyInfo()) return EL;
Chris Lattner587a75b2005-08-15 23:33:51 +00004618 break;
Reid Spencer266e42b2006-12-23 06:05:41 +00004619 }
Andrew Trick34e2f0c2013-11-06 02:08:26 +00004620 case ICmpInst::ICMP_SGT:
4621 case ICmpInst::ICMP_UGT: { // while (X > Y)
4622 bool IsSigned = Cond == ICmpInst::ICMP_SGT;
4623 ExitLimit EL = HowManyGreaterThans(LHS, RHS, L, IsSigned, IsSubExpr);
Andrew Trick3ca3f982011-07-26 17:19:55 +00004624 if (EL.hasAnyInfo()) return EL;
Chris Lattner587a75b2005-08-15 23:33:51 +00004625 break;
Reid Spencer266e42b2006-12-23 06:05:41 +00004626 }
Chris Lattnerd934c702004-04-02 20:23:17 +00004627 default:
Chris Lattner09169212004-04-02 20:26:46 +00004628#if 0
David Greenedf1c4972009-12-23 22:18:14 +00004629 dbgs() << "ComputeBackedgeTakenCount ";
Chris Lattnerd934c702004-04-02 20:23:17 +00004630 if (ExitCond->getOperand(0)->getType()->isUnsigned())
David Greenedf1c4972009-12-23 22:18:14 +00004631 dbgs() << "[unsigned] ";
4632 dbgs() << *LHS << " "
Dan Gohmance973df2009-06-24 04:48:43 +00004633 << Instruction::getOpcodeName(Instruction::ICmp)
Reid Spencer266e42b2006-12-23 06:05:41 +00004634 << " " << *RHS << "\n";
Chris Lattner09169212004-04-02 20:26:46 +00004635#endif
Chris Lattner0defaa12004-04-03 00:43:03 +00004636 break;
Chris Lattnerd934c702004-04-02 20:23:17 +00004637 }
Andrew Trick3ca3f982011-07-26 17:19:55 +00004638 return ComputeExitCountExhaustively(L, ExitCond, !L->contains(TBB));
Chris Lattner4021d1a2004-04-17 18:36:24 +00004639}
4640
Chris Lattnerec901cc2004-10-12 01:49:27 +00004641static ConstantInt *
Dan Gohmana37eaf22007-10-22 18:31:58 +00004642EvaluateConstantChrecAtConstant(const SCEVAddRecExpr *AddRec, ConstantInt *C,
4643 ScalarEvolution &SE) {
Dan Gohmanaf752342009-07-07 17:06:11 +00004644 const SCEV *InVal = SE.getConstant(C);
4645 const SCEV *Val = AddRec->evaluateAtIteration(InVal, SE);
Chris Lattnerec901cc2004-10-12 01:49:27 +00004646 assert(isa<SCEVConstant>(Val) &&
4647 "Evaluation of SCEV at constant didn't fold correctly?");
4648 return cast<SCEVConstant>(Val)->getValue();
4649}
4650
Andrew Trick3ca3f982011-07-26 17:19:55 +00004651/// ComputeLoadConstantCompareExitLimit - Given an exit condition of
Dan Gohman0bddac12009-02-24 18:55:53 +00004652/// 'icmp op load X, cst', try to see if we can compute the backedge
4653/// execution count.
Andrew Trick3ca3f982011-07-26 17:19:55 +00004654ScalarEvolution::ExitLimit
4655ScalarEvolution::ComputeLoadConstantCompareExitLimit(
4656 LoadInst *LI,
4657 Constant *RHS,
4658 const Loop *L,
4659 ICmpInst::Predicate predicate) {
4660
Dan Gohmanc5c85c02009-06-27 21:21:31 +00004661 if (LI->isVolatile()) return getCouldNotCompute();
Chris Lattnerec901cc2004-10-12 01:49:27 +00004662
4663 // Check to see if the loaded pointer is a getelementptr of a global.
Dan Gohmanba820342010-02-24 17:31:30 +00004664 // TODO: Use SCEV instead of manually grubbing with GEPs.
Chris Lattnerec901cc2004-10-12 01:49:27 +00004665 GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(LI->getOperand(0));
Dan Gohmanc5c85c02009-06-27 21:21:31 +00004666 if (!GEP) return getCouldNotCompute();
Chris Lattnerec901cc2004-10-12 01:49:27 +00004667
4668 // Make sure that it is really a constant global we are gepping, with an
4669 // initializer, and make sure the first IDX is really 0.
4670 GlobalVariable *GV = dyn_cast<GlobalVariable>(GEP->getOperand(0));
Dan Gohman5d5bc6d2009-08-19 18:20:44 +00004671 if (!GV || !GV->isConstant() || !GV->hasDefinitiveInitializer() ||
Chris Lattnerec901cc2004-10-12 01:49:27 +00004672 GEP->getNumOperands() < 3 || !isa<Constant>(GEP->getOperand(1)) ||
4673 !cast<Constant>(GEP->getOperand(1))->isNullValue())
Dan Gohmanc5c85c02009-06-27 21:21:31 +00004674 return getCouldNotCompute();
Chris Lattnerec901cc2004-10-12 01:49:27 +00004675
4676 // Okay, we allow one non-constant index into the GEP instruction.
4677 Value *VarIdx = 0;
Chris Lattnere166a852012-01-24 05:49:24 +00004678 std::vector<Constant*> Indexes;
Chris Lattnerec901cc2004-10-12 01:49:27 +00004679 unsigned VarIdxNum = 0;
4680 for (unsigned i = 2, e = GEP->getNumOperands(); i != e; ++i)
4681 if (ConstantInt *CI = dyn_cast<ConstantInt>(GEP->getOperand(i))) {
4682 Indexes.push_back(CI);
4683 } else if (!isa<ConstantInt>(GEP->getOperand(i))) {
Dan Gohmanc5c85c02009-06-27 21:21:31 +00004684 if (VarIdx) return getCouldNotCompute(); // Multiple non-constant idx's.
Chris Lattnerec901cc2004-10-12 01:49:27 +00004685 VarIdx = GEP->getOperand(i);
4686 VarIdxNum = i-2;
4687 Indexes.push_back(0);
4688 }
4689
Andrew Trick7004e4b2012-03-26 22:33:59 +00004690 // Loop-invariant loads may be a byproduct of loop optimization. Skip them.
4691 if (!VarIdx)
4692 return getCouldNotCompute();
4693
Chris Lattnerec901cc2004-10-12 01:49:27 +00004694 // Okay, we know we have a (load (gep GV, 0, X)) comparison with a constant.
4695 // Check to see if X is a loop variant variable value now.
Dan Gohmanaf752342009-07-07 17:06:11 +00004696 const SCEV *Idx = getSCEV(VarIdx);
Dan Gohman8ca08852009-05-24 23:25:42 +00004697 Idx = getSCEVAtScope(Idx, L);
Chris Lattnerec901cc2004-10-12 01:49:27 +00004698
4699 // We can only recognize very limited forms of loop index expressions, in
4700 // particular, only affine AddRec's like {C1,+,C2}.
Dan Gohman48f82222009-05-04 22:30:44 +00004701 const SCEVAddRecExpr *IdxExpr = dyn_cast<SCEVAddRecExpr>(Idx);
Dan Gohmanafd6db92010-11-17 21:23:15 +00004702 if (!IdxExpr || !IdxExpr->isAffine() || isLoopInvariant(IdxExpr, L) ||
Chris Lattnerec901cc2004-10-12 01:49:27 +00004703 !isa<SCEVConstant>(IdxExpr->getOperand(0)) ||
4704 !isa<SCEVConstant>(IdxExpr->getOperand(1)))
Dan Gohmanc5c85c02009-06-27 21:21:31 +00004705 return getCouldNotCompute();
Chris Lattnerec901cc2004-10-12 01:49:27 +00004706
4707 unsigned MaxSteps = MaxBruteForceIterations;
4708 for (unsigned IterationNum = 0; IterationNum != MaxSteps; ++IterationNum) {
Owen Andersonedb4a702009-07-24 23:12:02 +00004709 ConstantInt *ItCst = ConstantInt::get(
Owen Andersonb6b25302009-07-14 23:09:55 +00004710 cast<IntegerType>(IdxExpr->getType()), IterationNum);
Dan Gohmanc8e23622009-04-21 23:15:49 +00004711 ConstantInt *Val = EvaluateConstantChrecAtConstant(IdxExpr, ItCst, *this);
Chris Lattnerec901cc2004-10-12 01:49:27 +00004712
4713 // Form the GEP offset.
4714 Indexes[VarIdxNum] = Val;
4715
Chris Lattnere166a852012-01-24 05:49:24 +00004716 Constant *Result = ConstantFoldLoadThroughGEPIndices(GV->getInitializer(),
4717 Indexes);
Chris Lattnerec901cc2004-10-12 01:49:27 +00004718 if (Result == 0) break; // Cannot compute!
4719
4720 // Evaluate the condition for this iteration.
Reid Spencer266e42b2006-12-23 06:05:41 +00004721 Result = ConstantExpr::getICmp(predicate, Result, RHS);
Zhou Sheng75b871f2007-01-11 12:24:14 +00004722 if (!isa<ConstantInt>(Result)) break; // Couldn't decide for sure
Reid Spencer983e3b32007-03-01 07:25:48 +00004723 if (cast<ConstantInt>(Result)->getValue().isMinValue()) {
Chris Lattnerec901cc2004-10-12 01:49:27 +00004724#if 0
David Greenedf1c4972009-12-23 22:18:14 +00004725 dbgs() << "\n***\n*** Computed loop count " << *ItCst
Dan Gohmane20f8242009-04-21 00:47:46 +00004726 << "\n*** From global " << *GV << "*** BB: " << *L->getHeader()
4727 << "***\n";
Chris Lattnerec901cc2004-10-12 01:49:27 +00004728#endif
4729 ++NumArrayLenItCounts;
Dan Gohmanc8e23622009-04-21 23:15:49 +00004730 return getConstant(ItCst); // Found terminating iteration!
Chris Lattnerec901cc2004-10-12 01:49:27 +00004731 }
4732 }
Dan Gohmanc5c85c02009-06-27 21:21:31 +00004733 return getCouldNotCompute();
Chris Lattnerec901cc2004-10-12 01:49:27 +00004734}
4735
4736
Chris Lattnerdd730472004-04-17 22:58:41 +00004737/// CanConstantFold - Return true if we can constant fold an instruction of the
4738/// specified type, assuming that all operands were constants.
4739static bool CanConstantFold(const Instruction *I) {
Reid Spencer2341c222007-02-02 02:16:23 +00004740 if (isa<BinaryOperator>(I) || isa<CmpInst>(I) ||
Nick Lewyckya6674c72011-10-22 19:58:20 +00004741 isa<SelectInst>(I) || isa<CastInst>(I) || isa<GetElementPtrInst>(I) ||
4742 isa<LoadInst>(I))
Chris Lattnerdd730472004-04-17 22:58:41 +00004743 return true;
Misha Brukman01808ca2005-04-21 21:13:18 +00004744
Chris Lattnerdd730472004-04-17 22:58:41 +00004745 if (const CallInst *CI = dyn_cast<CallInst>(I))
4746 if (const Function *F = CI->getCalledFunction())
Dan Gohmana65951f2008-01-31 01:05:10 +00004747 return canConstantFoldCallTo(F);
Chris Lattnerdd730472004-04-17 22:58:41 +00004748 return false;
Chris Lattner4021d1a2004-04-17 18:36:24 +00004749}
4750
Andrew Trick3a86ba72011-10-05 03:25:31 +00004751/// Determine whether this instruction can constant evolve within this loop
4752/// assuming its operands can all constant evolve.
4753static bool canConstantEvolve(Instruction *I, const Loop *L) {
4754 // An instruction outside of the loop can't be derived from a loop PHI.
4755 if (!L->contains(I)) return false;
4756
4757 if (isa<PHINode>(I)) {
4758 if (L->getHeader() == I->getParent())
4759 return true;
4760 else
4761 // We don't currently keep track of the control flow needed to evaluate
4762 // PHIs, so we cannot handle PHIs inside of loops.
4763 return false;
4764 }
4765
4766 // If we won't be able to constant fold this expression even if the operands
4767 // are constants, bail early.
4768 return CanConstantFold(I);
4769}
4770
4771/// getConstantEvolvingPHIOperands - Implement getConstantEvolvingPHI by
4772/// recursing through each instruction operand until reaching a loop header phi.
4773static PHINode *
4774getConstantEvolvingPHIOperands(Instruction *UseInst, const Loop *L,
Andrew Tricke9162f12011-10-05 05:58:49 +00004775 DenseMap<Instruction *, PHINode *> &PHIMap) {
Andrew Trick3a86ba72011-10-05 03:25:31 +00004776
4777 // Otherwise, we can evaluate this instruction if all of its operands are
4778 // constant or derived from a PHI node themselves.
4779 PHINode *PHI = 0;
4780 for (Instruction::op_iterator OpI = UseInst->op_begin(),
4781 OpE = UseInst->op_end(); OpI != OpE; ++OpI) {
4782
4783 if (isa<Constant>(*OpI)) continue;
4784
4785 Instruction *OpInst = dyn_cast<Instruction>(*OpI);
4786 if (!OpInst || !canConstantEvolve(OpInst, L)) return 0;
4787
4788 PHINode *P = dyn_cast<PHINode>(OpInst);
Andrew Trick3e8a5762011-10-05 22:06:53 +00004789 if (!P)
4790 // If this operand is already visited, reuse the prior result.
4791 // We may have P != PHI if this is the deepest point at which the
4792 // inconsistent paths meet.
4793 P = PHIMap.lookup(OpInst);
4794 if (!P) {
4795 // Recurse and memoize the results, whether a phi is found or not.
4796 // This recursive call invalidates pointers into PHIMap.
4797 P = getConstantEvolvingPHIOperands(OpInst, L, PHIMap);
4798 PHIMap[OpInst] = P;
Andrew Tricke9162f12011-10-05 05:58:49 +00004799 }
Andrew Tricke9162f12011-10-05 05:58:49 +00004800 if (P == 0) return 0; // Not evolving from PHI
4801 if (PHI && PHI != P) return 0; // Evolving from multiple different PHIs.
4802 PHI = P;
Andrew Trick3a86ba72011-10-05 03:25:31 +00004803 }
4804 // This is a expression evolving from a constant PHI!
4805 return PHI;
4806}
4807
Chris Lattnerdd730472004-04-17 22:58:41 +00004808/// getConstantEvolvingPHI - Given an LLVM value and a loop, return a PHI node
4809/// in the loop that V is derived from. We allow arbitrary operations along the
4810/// way, but the operands of an operation must either be constants or a value
4811/// derived from a constant PHI. If this expression does not fit with these
4812/// constraints, return null.
4813static PHINode *getConstantEvolvingPHI(Value *V, const Loop *L) {
Chris Lattnerdd730472004-04-17 22:58:41 +00004814 Instruction *I = dyn_cast<Instruction>(V);
Andrew Trick3a86ba72011-10-05 03:25:31 +00004815 if (I == 0 || !canConstantEvolve(I, L)) return 0;
Chris Lattnerdd730472004-04-17 22:58:41 +00004816
Anton Korobeynikov579f0712008-02-20 11:08:44 +00004817 if (PHINode *PN = dyn_cast<PHINode>(I)) {
Andrew Trick3a86ba72011-10-05 03:25:31 +00004818 return PN;
Anton Korobeynikov579f0712008-02-20 11:08:44 +00004819 }
Chris Lattnerdd730472004-04-17 22:58:41 +00004820
Andrew Trick3a86ba72011-10-05 03:25:31 +00004821 // Record non-constant instructions contained by the loop.
Andrew Tricke9162f12011-10-05 05:58:49 +00004822 DenseMap<Instruction *, PHINode *> PHIMap;
4823 return getConstantEvolvingPHIOperands(I, L, PHIMap);
Chris Lattnerdd730472004-04-17 22:58:41 +00004824}
4825
4826/// EvaluateExpression - Given an expression that passes the
4827/// getConstantEvolvingPHI predicate, evaluate its value assuming the PHI node
4828/// in the loop has the value PHIVal. If we can't fold this expression for some
4829/// reason, return null.
Andrew Trick3a86ba72011-10-05 03:25:31 +00004830static Constant *EvaluateExpression(Value *V, const Loop *L,
4831 DenseMap<Instruction *, Constant *> &Vals,
Micah Villmowcdfe20b2012-10-08 16:38:25 +00004832 const DataLayout *TD,
Chad Rosiere6de63d2011-12-01 21:29:16 +00004833 const TargetLibraryInfo *TLI) {
Andrew Tricke9162f12011-10-05 05:58:49 +00004834 // Convenient constant check, but redundant for recursive calls.
Reid Spencer30d69a52004-07-18 00:18:30 +00004835 if (Constant *C = dyn_cast<Constant>(V)) return C;
Nick Lewyckya6674c72011-10-22 19:58:20 +00004836 Instruction *I = dyn_cast<Instruction>(V);
4837 if (!I) return 0;
Andrew Trick3a86ba72011-10-05 03:25:31 +00004838
Andrew Trick3a86ba72011-10-05 03:25:31 +00004839 if (Constant *C = Vals.lookup(I)) return C;
4840
Nick Lewyckya6674c72011-10-22 19:58:20 +00004841 // An instruction inside the loop depends on a value outside the loop that we
4842 // weren't given a mapping for, or a value such as a call inside the loop.
4843 if (!canConstantEvolve(I, L)) return 0;
4844
4845 // An unmapped PHI can be due to a branch or another loop inside this loop,
4846 // or due to this not being the initial iteration through a loop where we
4847 // couldn't compute the evolution of this particular PHI last time.
4848 if (isa<PHINode>(I)) return 0;
Chris Lattnerdd730472004-04-17 22:58:41 +00004849
Dan Gohmanf820bd32010-06-22 13:15:46 +00004850 std::vector<Constant*> Operands(I->getNumOperands());
Chris Lattnerdd730472004-04-17 22:58:41 +00004851
4852 for (unsigned i = 0, e = I->getNumOperands(); i != e; ++i) {
Andrew Tricke9162f12011-10-05 05:58:49 +00004853 Instruction *Operand = dyn_cast<Instruction>(I->getOperand(i));
4854 if (!Operand) {
Nick Lewyckya447e0f32011-10-14 09:38:46 +00004855 Operands[i] = dyn_cast<Constant>(I->getOperand(i));
4856 if (!Operands[i]) return 0;
Andrew Tricke9162f12011-10-05 05:58:49 +00004857 continue;
4858 }
Chad Rosiere6de63d2011-12-01 21:29:16 +00004859 Constant *C = EvaluateExpression(Operand, L, Vals, TD, TLI);
Andrew Tricke9162f12011-10-05 05:58:49 +00004860 Vals[Operand] = C;
4861 if (!C) return 0;
4862 Operands[i] = C;
Chris Lattnerdd730472004-04-17 22:58:41 +00004863 }
4864
Nick Lewyckya6674c72011-10-22 19:58:20 +00004865 if (CmpInst *CI = dyn_cast<CmpInst>(I))
Chris Lattnercdfb80d2009-11-09 23:06:58 +00004866 return ConstantFoldCompareInstOperands(CI->getPredicate(), Operands[0],
Chad Rosier43a33062011-12-02 01:26:24 +00004867 Operands[1], TD, TLI);
Nick Lewyckya6674c72011-10-22 19:58:20 +00004868 if (LoadInst *LI = dyn_cast<LoadInst>(I)) {
4869 if (!LI->isVolatile())
4870 return ConstantFoldLoadFromConstPtr(Operands[0], TD);
4871 }
Chad Rosiere6de63d2011-12-01 21:29:16 +00004872 return ConstantFoldInstOperands(I->getOpcode(), I->getType(), Operands, TD,
4873 TLI);
Chris Lattnerdd730472004-04-17 22:58:41 +00004874}
4875
4876/// getConstantEvolutionLoopExitValue - If we know that the specified Phi is
4877/// in the header of its containing loop, we know the loop executes a
4878/// constant number of times, and the PHI node is just a recurrence
4879/// involving constants, fold it.
Dan Gohmance973df2009-06-24 04:48:43 +00004880Constant *
4881ScalarEvolution::getConstantEvolutionLoopExitValue(PHINode *PN,
Dan Gohmancb0efec2009-12-18 01:14:11 +00004882 const APInt &BEs,
Dan Gohmance973df2009-06-24 04:48:43 +00004883 const Loop *L) {
Dan Gohman0daf6872011-05-09 18:44:09 +00004884 DenseMap<PHINode*, Constant*>::const_iterator I =
Chris Lattnerdd730472004-04-17 22:58:41 +00004885 ConstantEvolutionLoopExitValue.find(PN);
4886 if (I != ConstantEvolutionLoopExitValue.end())
4887 return I->second;
4888
Dan Gohman4ce1fb12010-04-08 23:03:40 +00004889 if (BEs.ugt(MaxBruteForceIterations))
Chris Lattnerdd730472004-04-17 22:58:41 +00004890 return ConstantEvolutionLoopExitValue[PN] = 0; // Not going to evaluate it.
4891
4892 Constant *&RetVal = ConstantEvolutionLoopExitValue[PN];
4893
Andrew Trick3a86ba72011-10-05 03:25:31 +00004894 DenseMap<Instruction *, Constant *> CurrentIterVals;
Nick Lewyckya6674c72011-10-22 19:58:20 +00004895 BasicBlock *Header = L->getHeader();
4896 assert(PN->getParent() == Header && "Can't evaluate PHI not in loop header!");
Andrew Trick3a86ba72011-10-05 03:25:31 +00004897
Chris Lattnerdd730472004-04-17 22:58:41 +00004898 // Since the loop is canonicalized, the PHI node must have two entries. One
4899 // entry must be a constant (coming in from outside of the loop), and the
4900 // second must be derived from the same PHI.
4901 bool SecondIsBackedge = L->contains(PN->getIncomingBlock(1));
Nick Lewyckya6674c72011-10-22 19:58:20 +00004902 PHINode *PHI = 0;
4903 for (BasicBlock::iterator I = Header->begin();
4904 (PHI = dyn_cast<PHINode>(I)); ++I) {
4905 Constant *StartCST =
4906 dyn_cast<Constant>(PHI->getIncomingValue(!SecondIsBackedge));
4907 if (StartCST == 0) continue;
4908 CurrentIterVals[PHI] = StartCST;
4909 }
4910 if (!CurrentIterVals.count(PN))
4911 return RetVal = 0;
Chris Lattnerdd730472004-04-17 22:58:41 +00004912
4913 Value *BEValue = PN->getIncomingValue(SecondIsBackedge);
Chris Lattnerdd730472004-04-17 22:58:41 +00004914
4915 // Execute the loop symbolically to determine the exit value.
Dan Gohman0bddac12009-02-24 18:55:53 +00004916 if (BEs.getActiveBits() >= 32)
Reid Spencer983e3b32007-03-01 07:25:48 +00004917 return RetVal = 0; // More than 2^32-1 iterations?? Not doing it!
Chris Lattnerdd730472004-04-17 22:58:41 +00004918
Dan Gohman0bddac12009-02-24 18:55:53 +00004919 unsigned NumIterations = BEs.getZExtValue(); // must be in range
Reid Spencer983e3b32007-03-01 07:25:48 +00004920 unsigned IterationNum = 0;
Andrew Trick3a86ba72011-10-05 03:25:31 +00004921 for (; ; ++IterationNum) {
Chris Lattnerdd730472004-04-17 22:58:41 +00004922 if (IterationNum == NumIterations)
Andrew Trick3a86ba72011-10-05 03:25:31 +00004923 return RetVal = CurrentIterVals[PN]; // Got exit value!
Chris Lattnerdd730472004-04-17 22:58:41 +00004924
Nick Lewyckya6674c72011-10-22 19:58:20 +00004925 // Compute the value of the PHIs for the next iteration.
Andrew Trick3a86ba72011-10-05 03:25:31 +00004926 // EvaluateExpression adds non-phi values to the CurrentIterVals map.
Nick Lewyckya6674c72011-10-22 19:58:20 +00004927 DenseMap<Instruction *, Constant *> NextIterVals;
Chad Rosiere6de63d2011-12-01 21:29:16 +00004928 Constant *NextPHI = EvaluateExpression(BEValue, L, CurrentIterVals, TD,
4929 TLI);
Chris Lattnerdd730472004-04-17 22:58:41 +00004930 if (NextPHI == 0)
4931 return 0; // Couldn't evaluate!
Andrew Trick3a86ba72011-10-05 03:25:31 +00004932 NextIterVals[PN] = NextPHI;
Nick Lewyckya6674c72011-10-22 19:58:20 +00004933
Duncan Sandsa370f3e2011-10-25 12:28:52 +00004934 bool StoppedEvolving = NextPHI == CurrentIterVals[PN];
4935
Nick Lewyckya6674c72011-10-22 19:58:20 +00004936 // Also evaluate the other PHI nodes. However, we don't get to stop if we
4937 // cease to be able to evaluate one of them or if they stop evolving,
4938 // because that doesn't necessarily prevent us from computing PN.
Nick Lewyckyd48ab842011-11-12 03:09:12 +00004939 SmallVector<std::pair<PHINode *, Constant *>, 8> PHIsToCompute;
Nick Lewyckya6674c72011-10-22 19:58:20 +00004940 for (DenseMap<Instruction *, Constant *>::const_iterator
4941 I = CurrentIterVals.begin(), E = CurrentIterVals.end(); I != E; ++I){
4942 PHINode *PHI = dyn_cast<PHINode>(I->first);
Nick Lewycky8e904de2011-10-24 05:51:01 +00004943 if (!PHI || PHI == PN || PHI->getParent() != Header) continue;
Nick Lewyckyd48ab842011-11-12 03:09:12 +00004944 PHIsToCompute.push_back(std::make_pair(PHI, I->second));
4945 }
4946 // We use two distinct loops because EvaluateExpression may invalidate any
4947 // iterators into CurrentIterVals.
4948 for (SmallVectorImpl<std::pair<PHINode *, Constant*> >::const_iterator
4949 I = PHIsToCompute.begin(), E = PHIsToCompute.end(); I != E; ++I) {
4950 PHINode *PHI = I->first;
Nick Lewyckya6674c72011-10-22 19:58:20 +00004951 Constant *&NextPHI = NextIterVals[PHI];
Duncan Sandsa370f3e2011-10-25 12:28:52 +00004952 if (!NextPHI) { // Not already computed.
4953 Value *BEValue = PHI->getIncomingValue(SecondIsBackedge);
Chad Rosiere6de63d2011-12-01 21:29:16 +00004954 NextPHI = EvaluateExpression(BEValue, L, CurrentIterVals, TD, TLI);
Duncan Sandsa370f3e2011-10-25 12:28:52 +00004955 }
4956 if (NextPHI != I->second)
4957 StoppedEvolving = false;
Nick Lewyckya6674c72011-10-22 19:58:20 +00004958 }
Duncan Sandsa370f3e2011-10-25 12:28:52 +00004959
4960 // If all entries in CurrentIterVals == NextIterVals then we can stop
4961 // iterating, the loop can't continue to change.
4962 if (StoppedEvolving)
4963 return RetVal = CurrentIterVals[PN];
4964
Andrew Trick3a86ba72011-10-05 03:25:31 +00004965 CurrentIterVals.swap(NextIterVals);
Chris Lattnerdd730472004-04-17 22:58:41 +00004966 }
4967}
4968
Andrew Trick3ca3f982011-07-26 17:19:55 +00004969/// ComputeExitCountExhaustively - If the loop is known to execute a
Chris Lattner4021d1a2004-04-17 18:36:24 +00004970/// constant number of times (the condition evolves only from constants),
4971/// try to evaluate a few iterations of the loop until we get the exit
4972/// condition gets a value of ExitWhen (true or false). If we cannot
Dan Gohmanc5c85c02009-06-27 21:21:31 +00004973/// evaluate the trip count of the loop, return getCouldNotCompute().
Nick Lewyckya6674c72011-10-22 19:58:20 +00004974const SCEV *ScalarEvolution::ComputeExitCountExhaustively(const Loop *L,
4975 Value *Cond,
4976 bool ExitWhen) {
Chris Lattner4021d1a2004-04-17 18:36:24 +00004977 PHINode *PN = getConstantEvolvingPHI(Cond, L);
Dan Gohmanc5c85c02009-06-27 21:21:31 +00004978 if (PN == 0) return getCouldNotCompute();
Chris Lattner4021d1a2004-04-17 18:36:24 +00004979
Dan Gohman866971e2010-06-19 14:17:24 +00004980 // If the loop is canonicalized, the PHI will have exactly two entries.
4981 // That's the only form we support here.
4982 if (PN->getNumIncomingValues() != 2) return getCouldNotCompute();
4983
Duncan Sandsa370f3e2011-10-25 12:28:52 +00004984 DenseMap<Instruction *, Constant *> CurrentIterVals;
4985 BasicBlock *Header = L->getHeader();
4986 assert(PN->getParent() == Header && "Can't evaluate PHI not in loop header!");
4987
Dan Gohman866971e2010-06-19 14:17:24 +00004988 // One entry must be a constant (coming in from outside of the loop), and the
Chris Lattner4021d1a2004-04-17 18:36:24 +00004989 // second must be derived from the same PHI.
4990 bool SecondIsBackedge = L->contains(PN->getIncomingBlock(1));
Duncan Sandsa370f3e2011-10-25 12:28:52 +00004991 PHINode *PHI = 0;
4992 for (BasicBlock::iterator I = Header->begin();
4993 (PHI = dyn_cast<PHINode>(I)); ++I) {
4994 Constant *StartCST =
4995 dyn_cast<Constant>(PHI->getIncomingValue(!SecondIsBackedge));
4996 if (StartCST == 0) continue;
4997 CurrentIterVals[PHI] = StartCST;
4998 }
4999 if (!CurrentIterVals.count(PN))
5000 return getCouldNotCompute();
Chris Lattner4021d1a2004-04-17 18:36:24 +00005001
5002 // Okay, we find a PHI node that defines the trip count of this loop. Execute
5003 // the loop symbolically to determine when the condition gets a value of
5004 // "ExitWhen".
Duncan Sandsa370f3e2011-10-25 12:28:52 +00005005
Andrew Trick90c7a102011-11-16 00:52:40 +00005006 unsigned MaxIterations = MaxBruteForceIterations; // Limit analysis.
Duncan Sandsa370f3e2011-10-25 12:28:52 +00005007 for (unsigned IterationNum = 0; IterationNum != MaxIterations;++IterationNum){
Zhou Sheng75b871f2007-01-11 12:24:14 +00005008 ConstantInt *CondVal =
Chad Rosiere6de63d2011-12-01 21:29:16 +00005009 dyn_cast_or_null<ConstantInt>(EvaluateExpression(Cond, L, CurrentIterVals,
5010 TD, TLI));
Chris Lattnerdd730472004-04-17 22:58:41 +00005011
Zhou Sheng75b871f2007-01-11 12:24:14 +00005012 // Couldn't symbolically evaluate.
Dan Gohmanc5c85c02009-06-27 21:21:31 +00005013 if (!CondVal) return getCouldNotCompute();
Zhou Sheng75b871f2007-01-11 12:24:14 +00005014
Reid Spencer983e3b32007-03-01 07:25:48 +00005015 if (CondVal->getValue() == uint64_t(ExitWhen)) {
Chris Lattner4021d1a2004-04-17 18:36:24 +00005016 ++NumBruteForceTripCountsComputed;
Owen Anderson55f1c092009-08-13 21:58:54 +00005017 return getConstant(Type::getInt32Ty(getContext()), IterationNum);
Chris Lattner4021d1a2004-04-17 18:36:24 +00005018 }
Misha Brukman01808ca2005-04-21 21:13:18 +00005019
Duncan Sandsa370f3e2011-10-25 12:28:52 +00005020 // Update all the PHI nodes for the next iteration.
5021 DenseMap<Instruction *, Constant *> NextIterVals;
Nick Lewyckyd48ab842011-11-12 03:09:12 +00005022
5023 // Create a list of which PHIs we need to compute. We want to do this before
5024 // calling EvaluateExpression on them because that may invalidate iterators
5025 // into CurrentIterVals.
5026 SmallVector<PHINode *, 8> PHIsToCompute;
Duncan Sandsa370f3e2011-10-25 12:28:52 +00005027 for (DenseMap<Instruction *, Constant *>::const_iterator
5028 I = CurrentIterVals.begin(), E = CurrentIterVals.end(); I != E; ++I){
5029 PHINode *PHI = dyn_cast<PHINode>(I->first);
5030 if (!PHI || PHI->getParent() != Header) continue;
Nick Lewyckyd48ab842011-11-12 03:09:12 +00005031 PHIsToCompute.push_back(PHI);
5032 }
5033 for (SmallVectorImpl<PHINode *>::const_iterator I = PHIsToCompute.begin(),
5034 E = PHIsToCompute.end(); I != E; ++I) {
5035 PHINode *PHI = *I;
Duncan Sandsa370f3e2011-10-25 12:28:52 +00005036 Constant *&NextPHI = NextIterVals[PHI];
5037 if (NextPHI) continue; // Already computed!
5038
5039 Value *BEValue = PHI->getIncomingValue(SecondIsBackedge);
Chad Rosiere6de63d2011-12-01 21:29:16 +00005040 NextPHI = EvaluateExpression(BEValue, L, CurrentIterVals, TD, TLI);
Duncan Sandsa370f3e2011-10-25 12:28:52 +00005041 }
5042 CurrentIterVals.swap(NextIterVals);
Chris Lattner4021d1a2004-04-17 18:36:24 +00005043 }
5044
5045 // Too many iterations were needed to evaluate.
Dan Gohmanc5c85c02009-06-27 21:21:31 +00005046 return getCouldNotCompute();
Chris Lattnerd934c702004-04-02 20:23:17 +00005047}
5048
Dan Gohman237d9e52009-09-03 15:00:26 +00005049/// getSCEVAtScope - Return a SCEV expression for the specified value
Dan Gohmanb81f47d2009-05-08 20:38:54 +00005050/// at the specified scope in the program. The L value specifies a loop
5051/// nest to evaluate the expression at, where null is the top-level or a
5052/// specified loop is immediately inside of the loop.
5053///
5054/// This method can be used to compute the exit value for a variable defined
5055/// in a loop by querying what the value will hold in the parent loop.
5056///
Dan Gohman8ca08852009-05-24 23:25:42 +00005057/// In the case that a relevant loop exit value cannot be computed, the
5058/// original value V is returned.
Dan Gohmanaf752342009-07-07 17:06:11 +00005059const SCEV *ScalarEvolution::getSCEVAtScope(const SCEV *V, const Loop *L) {
Dan Gohmancc2f1eb2009-08-31 21:15:23 +00005060 // Check to see if we've folded this expression at this loop before.
Wan Xiaofeib2c8cdc2013-11-12 09:40:41 +00005061 SmallVector<std::pair<const Loop *, const SCEV *>, 2> &Values = ValuesAtScopes[V];
5062 for (unsigned u = 0; u < Values.size(); u++) {
5063 if (Values[u].first == L)
5064 return Values[u].second ? Values[u].second : V;
5065 }
5066 Values.push_back(std::make_pair(L, static_cast<const SCEV *>(0)));
Dan Gohmancc2f1eb2009-08-31 21:15:23 +00005067 // Otherwise compute it.
5068 const SCEV *C = computeSCEVAtScope(V, L);
Wan Xiaofeib2c8cdc2013-11-12 09:40:41 +00005069 SmallVector<std::pair<const Loop *, const SCEV *>, 2> &Values2 = ValuesAtScopes[V];
5070 for (unsigned u = Values2.size(); u > 0; u--) {
5071 if (Values2[u - 1].first == L) {
5072 Values2[u - 1].second = C;
5073 break;
5074 }
5075 }
Dan Gohmancc2f1eb2009-08-31 21:15:23 +00005076 return C;
5077}
5078
Nick Lewyckya6674c72011-10-22 19:58:20 +00005079/// This builds up a Constant using the ConstantExpr interface. That way, we
5080/// will return Constants for objects which aren't represented by a
5081/// SCEVConstant, because SCEVConstant is restricted to ConstantInt.
5082/// Returns NULL if the SCEV isn't representable as a Constant.
5083static Constant *BuildConstantFromSCEV(const SCEV *V) {
5084 switch (V->getSCEVType()) {
5085 default: // TODO: smax, umax.
5086 case scCouldNotCompute:
5087 case scAddRecExpr:
5088 break;
5089 case scConstant:
5090 return cast<SCEVConstant>(V)->getValue();
5091 case scUnknown:
5092 return dyn_cast<Constant>(cast<SCEVUnknown>(V)->getValue());
5093 case scSignExtend: {
5094 const SCEVSignExtendExpr *SS = cast<SCEVSignExtendExpr>(V);
5095 if (Constant *CastOp = BuildConstantFromSCEV(SS->getOperand()))
5096 return ConstantExpr::getSExt(CastOp, SS->getType());
5097 break;
5098 }
5099 case scZeroExtend: {
5100 const SCEVZeroExtendExpr *SZ = cast<SCEVZeroExtendExpr>(V);
5101 if (Constant *CastOp = BuildConstantFromSCEV(SZ->getOperand()))
5102 return ConstantExpr::getZExt(CastOp, SZ->getType());
5103 break;
5104 }
5105 case scTruncate: {
5106 const SCEVTruncateExpr *ST = cast<SCEVTruncateExpr>(V);
5107 if (Constant *CastOp = BuildConstantFromSCEV(ST->getOperand()))
5108 return ConstantExpr::getTrunc(CastOp, ST->getType());
5109 break;
5110 }
5111 case scAddExpr: {
5112 const SCEVAddExpr *SA = cast<SCEVAddExpr>(V);
5113 if (Constant *C = BuildConstantFromSCEV(SA->getOperand(0))) {
Matt Arsenaultbe18b8a2013-10-21 18:41:10 +00005114 if (PointerType *PTy = dyn_cast<PointerType>(C->getType())) {
5115 unsigned AS = PTy->getAddressSpace();
5116 Type *DestPtrTy = Type::getInt8PtrTy(C->getContext(), AS);
5117 C = ConstantExpr::getBitCast(C, DestPtrTy);
5118 }
Nick Lewyckya6674c72011-10-22 19:58:20 +00005119 for (unsigned i = 1, e = SA->getNumOperands(); i != e; ++i) {
5120 Constant *C2 = BuildConstantFromSCEV(SA->getOperand(i));
5121 if (!C2) return 0;
5122
5123 // First pointer!
5124 if (!C->getType()->isPointerTy() && C2->getType()->isPointerTy()) {
Matt Arsenaultbe18b8a2013-10-21 18:41:10 +00005125 unsigned AS = C2->getType()->getPointerAddressSpace();
Nick Lewyckya6674c72011-10-22 19:58:20 +00005126 std::swap(C, C2);
Matt Arsenaultbe18b8a2013-10-21 18:41:10 +00005127 Type *DestPtrTy = Type::getInt8PtrTy(C->getContext(), AS);
Nick Lewyckya6674c72011-10-22 19:58:20 +00005128 // The offsets have been converted to bytes. We can add bytes to an
5129 // i8* by GEP with the byte count in the first index.
Matt Arsenaultbe18b8a2013-10-21 18:41:10 +00005130 C = ConstantExpr::getBitCast(C, DestPtrTy);
Nick Lewyckya6674c72011-10-22 19:58:20 +00005131 }
5132
5133 // Don't bother trying to sum two pointers. We probably can't
5134 // statically compute a load that results from it anyway.
5135 if (C2->getType()->isPointerTy())
5136 return 0;
5137
Matt Arsenaultbe18b8a2013-10-21 18:41:10 +00005138 if (PointerType *PTy = dyn_cast<PointerType>(C->getType())) {
5139 if (PTy->getElementType()->isStructTy())
Nick Lewyckya6674c72011-10-22 19:58:20 +00005140 C2 = ConstantExpr::getIntegerCast(
5141 C2, Type::getInt32Ty(C->getContext()), true);
5142 C = ConstantExpr::getGetElementPtr(C, C2);
5143 } else
5144 C = ConstantExpr::getAdd(C, C2);
5145 }
5146 return C;
5147 }
5148 break;
5149 }
5150 case scMulExpr: {
5151 const SCEVMulExpr *SM = cast<SCEVMulExpr>(V);
5152 if (Constant *C = BuildConstantFromSCEV(SM->getOperand(0))) {
5153 // Don't bother with pointers at all.
5154 if (C->getType()->isPointerTy()) return 0;
5155 for (unsigned i = 1, e = SM->getNumOperands(); i != e; ++i) {
5156 Constant *C2 = BuildConstantFromSCEV(SM->getOperand(i));
5157 if (!C2 || C2->getType()->isPointerTy()) return 0;
5158 C = ConstantExpr::getMul(C, C2);
5159 }
5160 return C;
5161 }
5162 break;
5163 }
5164 case scUDivExpr: {
5165 const SCEVUDivExpr *SU = cast<SCEVUDivExpr>(V);
5166 if (Constant *LHS = BuildConstantFromSCEV(SU->getLHS()))
5167 if (Constant *RHS = BuildConstantFromSCEV(SU->getRHS()))
5168 if (LHS->getType() == RHS->getType())
5169 return ConstantExpr::getUDiv(LHS, RHS);
5170 break;
5171 }
5172 }
5173 return 0;
5174}
5175
Dan Gohmancc2f1eb2009-08-31 21:15:23 +00005176const SCEV *ScalarEvolution::computeSCEVAtScope(const SCEV *V, const Loop *L) {
Chris Lattnerdd730472004-04-17 22:58:41 +00005177 if (isa<SCEVConstant>(V)) return V;
Misha Brukman01808ca2005-04-21 21:13:18 +00005178
Nick Lewycky1c44ebc2008-02-20 06:48:22 +00005179 // If this instruction is evolved from a constant-evolving PHI, compute the
Chris Lattnerdd730472004-04-17 22:58:41 +00005180 // exit value from the loop without using SCEVs.
Dan Gohmana30370b2009-05-04 22:02:23 +00005181 if (const SCEVUnknown *SU = dyn_cast<SCEVUnknown>(V)) {
Chris Lattnerdd730472004-04-17 22:58:41 +00005182 if (Instruction *I = dyn_cast<Instruction>(SU->getValue())) {
Dan Gohmanc8e23622009-04-21 23:15:49 +00005183 const Loop *LI = (*this->LI)[I->getParent()];
Chris Lattnerdd730472004-04-17 22:58:41 +00005184 if (LI && LI->getParentLoop() == L) // Looking for loop exit value.
5185 if (PHINode *PN = dyn_cast<PHINode>(I))
5186 if (PN->getParent() == LI->getHeader()) {
5187 // Okay, there is no closed form solution for the PHI node. Check
Dan Gohman0bddac12009-02-24 18:55:53 +00005188 // to see if the loop that contains it has a known backedge-taken
5189 // count. If so, we may be able to force computation of the exit
5190 // value.
Dan Gohmanaf752342009-07-07 17:06:11 +00005191 const SCEV *BackedgeTakenCount = getBackedgeTakenCount(LI);
Dan Gohmana30370b2009-05-04 22:02:23 +00005192 if (const SCEVConstant *BTCC =
Dan Gohman0bddac12009-02-24 18:55:53 +00005193 dyn_cast<SCEVConstant>(BackedgeTakenCount)) {
Chris Lattnerdd730472004-04-17 22:58:41 +00005194 // Okay, we know how many times the containing loop executes. If
5195 // this is a constant evolving PHI node, get the final value at
5196 // the specified iteration number.
5197 Constant *RV = getConstantEvolutionLoopExitValue(PN,
Dan Gohman0bddac12009-02-24 18:55:53 +00005198 BTCC->getValue()->getValue(),
Chris Lattnerdd730472004-04-17 22:58:41 +00005199 LI);
Dan Gohman9d203c62009-06-29 21:31:18 +00005200 if (RV) return getSCEV(RV);
Chris Lattnerdd730472004-04-17 22:58:41 +00005201 }
5202 }
5203
Reid Spencere6328ca2006-12-04 21:33:23 +00005204 // Okay, this is an expression that we cannot symbolically evaluate
Chris Lattnerdd730472004-04-17 22:58:41 +00005205 // into a SCEV. Check to see if it's possible to symbolically evaluate
Reid Spencere6328ca2006-12-04 21:33:23 +00005206 // the arguments into constants, and if so, try to constant propagate the
Chris Lattnerdd730472004-04-17 22:58:41 +00005207 // result. This is particularly useful for computing loop exit values.
5208 if (CanConstantFold(I)) {
Dan Gohmanae36b1e2010-06-29 23:43:06 +00005209 SmallVector<Constant *, 4> Operands;
5210 bool MadeImprovement = false;
Chris Lattnerdd730472004-04-17 22:58:41 +00005211 for (unsigned i = 0, e = I->getNumOperands(); i != e; ++i) {
5212 Value *Op = I->getOperand(i);
5213 if (Constant *C = dyn_cast<Constant>(Op)) {
5214 Operands.push_back(C);
Dan Gohmanae36b1e2010-06-29 23:43:06 +00005215 continue;
Chris Lattnerdd730472004-04-17 22:58:41 +00005216 }
Dan Gohmanae36b1e2010-06-29 23:43:06 +00005217
5218 // If any of the operands is non-constant and if they are
5219 // non-integer and non-pointer, don't even try to analyze them
5220 // with scev techniques.
5221 if (!isSCEVable(Op->getType()))
5222 return V;
5223
5224 const SCEV *OrigV = getSCEV(Op);
5225 const SCEV *OpV = getSCEVAtScope(OrigV, L);
5226 MadeImprovement |= OrigV != OpV;
5227
Nick Lewyckya6674c72011-10-22 19:58:20 +00005228 Constant *C = BuildConstantFromSCEV(OpV);
Dan Gohmanae36b1e2010-06-29 23:43:06 +00005229 if (!C) return V;
5230 if (C->getType() != Op->getType())
5231 C = ConstantExpr::getCast(CastInst::getCastOpcode(C, false,
5232 Op->getType(),
5233 false),
5234 C, Op->getType());
5235 Operands.push_back(C);
Chris Lattnerdd730472004-04-17 22:58:41 +00005236 }
Dan Gohmance973df2009-06-24 04:48:43 +00005237
Dan Gohmanae36b1e2010-06-29 23:43:06 +00005238 // Check to see if getSCEVAtScope actually made an improvement.
5239 if (MadeImprovement) {
5240 Constant *C = 0;
5241 if (const CmpInst *CI = dyn_cast<CmpInst>(I))
5242 C = ConstantFoldCompareInstOperands(CI->getPredicate(),
Chad Rosier43a33062011-12-02 01:26:24 +00005243 Operands[0], Operands[1], TD,
5244 TLI);
Nick Lewyckya6674c72011-10-22 19:58:20 +00005245 else if (const LoadInst *LI = dyn_cast<LoadInst>(I)) {
5246 if (!LI->isVolatile())
5247 C = ConstantFoldLoadFromConstPtr(Operands[0], TD);
5248 } else
Dan Gohmanae36b1e2010-06-29 23:43:06 +00005249 C = ConstantFoldInstOperands(I->getOpcode(), I->getType(),
Chad Rosiere6de63d2011-12-01 21:29:16 +00005250 Operands, TD, TLI);
Dan Gohmanae36b1e2010-06-29 23:43:06 +00005251 if (!C) return V;
Dan Gohman4aad7502010-02-24 19:31:47 +00005252 return getSCEV(C);
Dan Gohmanae36b1e2010-06-29 23:43:06 +00005253 }
Chris Lattnerdd730472004-04-17 22:58:41 +00005254 }
5255 }
5256
5257 // This is some other type of SCEVUnknown, just return it.
5258 return V;
5259 }
5260
Dan Gohmana30370b2009-05-04 22:02:23 +00005261 if (const SCEVCommutativeExpr *Comm = dyn_cast<SCEVCommutativeExpr>(V)) {
Chris Lattnerd934c702004-04-02 20:23:17 +00005262 // Avoid performing the look-up in the common case where the specified
5263 // expression has no loop-variant portions.
5264 for (unsigned i = 0, e = Comm->getNumOperands(); i != e; ++i) {
Dan Gohmanaf752342009-07-07 17:06:11 +00005265 const SCEV *OpAtScope = getSCEVAtScope(Comm->getOperand(i), L);
Chris Lattnerd934c702004-04-02 20:23:17 +00005266 if (OpAtScope != Comm->getOperand(i)) {
Chris Lattnerd934c702004-04-02 20:23:17 +00005267 // Okay, at least one of these operands is loop variant but might be
5268 // foldable. Build a new instance of the folded commutative expression.
Dan Gohmance973df2009-06-24 04:48:43 +00005269 SmallVector<const SCEV *, 8> NewOps(Comm->op_begin(),
5270 Comm->op_begin()+i);
Chris Lattnerd934c702004-04-02 20:23:17 +00005271 NewOps.push_back(OpAtScope);
5272
5273 for (++i; i != e; ++i) {
5274 OpAtScope = getSCEVAtScope(Comm->getOperand(i), L);
Chris Lattnerd934c702004-04-02 20:23:17 +00005275 NewOps.push_back(OpAtScope);
5276 }
5277 if (isa<SCEVAddExpr>(Comm))
Dan Gohmanc8e23622009-04-21 23:15:49 +00005278 return getAddExpr(NewOps);
Nick Lewyckycdb7e542007-11-25 22:41:31 +00005279 if (isa<SCEVMulExpr>(Comm))
Dan Gohmanc8e23622009-04-21 23:15:49 +00005280 return getMulExpr(NewOps);
Nick Lewyckycdb7e542007-11-25 22:41:31 +00005281 if (isa<SCEVSMaxExpr>(Comm))
Dan Gohmanc8e23622009-04-21 23:15:49 +00005282 return getSMaxExpr(NewOps);
Nick Lewycky1c44ebc2008-02-20 06:48:22 +00005283 if (isa<SCEVUMaxExpr>(Comm))
Dan Gohmanc8e23622009-04-21 23:15:49 +00005284 return getUMaxExpr(NewOps);
Torok Edwinfbcc6632009-07-14 16:55:14 +00005285 llvm_unreachable("Unknown commutative SCEV type!");
Chris Lattnerd934c702004-04-02 20:23:17 +00005286 }
5287 }
5288 // If we got here, all operands are loop invariant.
5289 return Comm;
5290 }
5291
Dan Gohmana30370b2009-05-04 22:02:23 +00005292 if (const SCEVUDivExpr *Div = dyn_cast<SCEVUDivExpr>(V)) {
Dan Gohmanaf752342009-07-07 17:06:11 +00005293 const SCEV *LHS = getSCEVAtScope(Div->getLHS(), L);
5294 const SCEV *RHS = getSCEVAtScope(Div->getRHS(), L);
Nick Lewycky52348302009-01-13 09:18:58 +00005295 if (LHS == Div->getLHS() && RHS == Div->getRHS())
5296 return Div; // must be loop invariant
Dan Gohmanc8e23622009-04-21 23:15:49 +00005297 return getUDivExpr(LHS, RHS);
Chris Lattnerd934c702004-04-02 20:23:17 +00005298 }
5299
5300 // If this is a loop recurrence for a loop that does not contain L, then we
5301 // are dealing with the final value computed by the loop.
Dan Gohmana30370b2009-05-04 22:02:23 +00005302 if (const SCEVAddRecExpr *AddRec = dyn_cast<SCEVAddRecExpr>(V)) {
Dan Gohmanae36b1e2010-06-29 23:43:06 +00005303 // First, attempt to evaluate each operand.
5304 // Avoid performing the look-up in the common case where the specified
5305 // expression has no loop-variant portions.
5306 for (unsigned i = 0, e = AddRec->getNumOperands(); i != e; ++i) {
5307 const SCEV *OpAtScope = getSCEVAtScope(AddRec->getOperand(i), L);
5308 if (OpAtScope == AddRec->getOperand(i))
5309 continue;
5310
5311 // Okay, at least one of these operands is loop variant but might be
5312 // foldable. Build a new instance of the folded commutative expression.
5313 SmallVector<const SCEV *, 8> NewOps(AddRec->op_begin(),
5314 AddRec->op_begin()+i);
5315 NewOps.push_back(OpAtScope);
5316 for (++i; i != e; ++i)
5317 NewOps.push_back(getSCEVAtScope(AddRec->getOperand(i), L));
5318
Andrew Trick759ba082011-04-27 01:21:25 +00005319 const SCEV *FoldedRec =
Andrew Trick8b55b732011-03-14 16:50:06 +00005320 getAddRecExpr(NewOps, AddRec->getLoop(),
Andrew Trick759ba082011-04-27 01:21:25 +00005321 AddRec->getNoWrapFlags(SCEV::FlagNW));
5322 AddRec = dyn_cast<SCEVAddRecExpr>(FoldedRec);
Andrew Trick01eff822011-04-27 05:42:17 +00005323 // The addrec may be folded to a nonrecurrence, for example, if the
5324 // induction variable is multiplied by zero after constant folding. Go
5325 // ahead and return the folded value.
Andrew Trick759ba082011-04-27 01:21:25 +00005326 if (!AddRec)
5327 return FoldedRec;
Dan Gohmanae36b1e2010-06-29 23:43:06 +00005328 break;
5329 }
5330
5331 // If the scope is outside the addrec's loop, evaluate it by using the
5332 // loop exit value of the addrec.
5333 if (!AddRec->getLoop()->contains(L)) {
Chris Lattnerd934c702004-04-02 20:23:17 +00005334 // To evaluate this recurrence, we need to know how many times the AddRec
5335 // loop iterates. Compute this now.
Dan Gohmanaf752342009-07-07 17:06:11 +00005336 const SCEV *BackedgeTakenCount = getBackedgeTakenCount(AddRec->getLoop());
Dan Gohmanc5c85c02009-06-27 21:21:31 +00005337 if (BackedgeTakenCount == getCouldNotCompute()) return AddRec;
Misha Brukman01808ca2005-04-21 21:13:18 +00005338
Eli Friedman61f67622008-08-04 23:49:06 +00005339 // Then, evaluate the AddRec.
Dan Gohmanc8e23622009-04-21 23:15:49 +00005340 return AddRec->evaluateAtIteration(BackedgeTakenCount, *this);
Chris Lattnerd934c702004-04-02 20:23:17 +00005341 }
Dan Gohmanae36b1e2010-06-29 23:43:06 +00005342
Dan Gohman8ca08852009-05-24 23:25:42 +00005343 return AddRec;
Chris Lattnerd934c702004-04-02 20:23:17 +00005344 }
5345
Dan Gohmana30370b2009-05-04 22:02:23 +00005346 if (const SCEVZeroExtendExpr *Cast = dyn_cast<SCEVZeroExtendExpr>(V)) {
Dan Gohmanaf752342009-07-07 17:06:11 +00005347 const SCEV *Op = getSCEVAtScope(Cast->getOperand(), L);
Dan Gohman0098d012009-04-29 22:29:01 +00005348 if (Op == Cast->getOperand())
5349 return Cast; // must be loop invariant
5350 return getZeroExtendExpr(Op, Cast->getType());
5351 }
5352
Dan Gohmana30370b2009-05-04 22:02:23 +00005353 if (const SCEVSignExtendExpr *Cast = dyn_cast<SCEVSignExtendExpr>(V)) {
Dan Gohmanaf752342009-07-07 17:06:11 +00005354 const SCEV *Op = getSCEVAtScope(Cast->getOperand(), L);
Dan Gohman0098d012009-04-29 22:29:01 +00005355 if (Op == Cast->getOperand())
5356 return Cast; // must be loop invariant
5357 return getSignExtendExpr(Op, Cast->getType());
5358 }
5359
Dan Gohmana30370b2009-05-04 22:02:23 +00005360 if (const SCEVTruncateExpr *Cast = dyn_cast<SCEVTruncateExpr>(V)) {
Dan Gohmanaf752342009-07-07 17:06:11 +00005361 const SCEV *Op = getSCEVAtScope(Cast->getOperand(), L);
Dan Gohman0098d012009-04-29 22:29:01 +00005362 if (Op == Cast->getOperand())
5363 return Cast; // must be loop invariant
5364 return getTruncateExpr(Op, Cast->getType());
5365 }
5366
Torok Edwinfbcc6632009-07-14 16:55:14 +00005367 llvm_unreachable("Unknown SCEV type!");
Chris Lattnerd934c702004-04-02 20:23:17 +00005368}
5369
Dan Gohmanb81f47d2009-05-08 20:38:54 +00005370/// getSCEVAtScope - This is a convenience function which does
5371/// getSCEVAtScope(getSCEV(V), L).
Dan Gohmanaf752342009-07-07 17:06:11 +00005372const SCEV *ScalarEvolution::getSCEVAtScope(Value *V, const Loop *L) {
Dan Gohmanc8e23622009-04-21 23:15:49 +00005373 return getSCEVAtScope(getSCEV(V), L);
5374}
5375
Wojciech Matyjewiczf0d21cd2008-07-20 15:55:14 +00005376/// SolveLinEquationWithOverflow - Finds the minimum unsigned root of the
5377/// following equation:
5378///
5379/// A * X = B (mod N)
5380///
5381/// where N = 2^BW and BW is the common bit width of A and B. The signedness of
5382/// A and B isn't important.
5383///
5384/// If the equation does not have a solution, SCEVCouldNotCompute is returned.
Dan Gohmanaf752342009-07-07 17:06:11 +00005385static const SCEV *SolveLinEquationWithOverflow(const APInt &A, const APInt &B,
Wojciech Matyjewiczf0d21cd2008-07-20 15:55:14 +00005386 ScalarEvolution &SE) {
5387 uint32_t BW = A.getBitWidth();
5388 assert(BW == B.getBitWidth() && "Bit widths must be the same.");
5389 assert(A != 0 && "A must be non-zero.");
5390
5391 // 1. D = gcd(A, N)
5392 //
5393 // The gcd of A and N may have only one prime factor: 2. The number of
5394 // trailing zeros in A is its multiplicity
5395 uint32_t Mult2 = A.countTrailingZeros();
5396 // D = 2^Mult2
5397
5398 // 2. Check if B is divisible by D.
5399 //
5400 // B is divisible by D if and only if the multiplicity of prime factor 2 for B
5401 // is not less than multiplicity of this prime factor for D.
5402 if (B.countTrailingZeros() < Mult2)
Dan Gohman31efa302009-04-18 17:58:19 +00005403 return SE.getCouldNotCompute();
Wojciech Matyjewiczf0d21cd2008-07-20 15:55:14 +00005404
5405 // 3. Compute I: the multiplicative inverse of (A / D) in arithmetic
5406 // modulo (N / D).
5407 //
5408 // (N / D) may need BW+1 bits in its representation. Hence, we'll use this
5409 // bit width during computations.
5410 APInt AD = A.lshr(Mult2).zext(BW + 1); // AD = A / D
5411 APInt Mod(BW + 1, 0);
Jay Foad25a5e4c2010-12-01 08:53:58 +00005412 Mod.setBit(BW - Mult2); // Mod = N / D
Wojciech Matyjewiczf0d21cd2008-07-20 15:55:14 +00005413 APInt I = AD.multiplicativeInverse(Mod);
5414
5415 // 4. Compute the minimum unsigned root of the equation:
5416 // I * (B / D) mod (N / D)
5417 APInt Result = (I * B.lshr(Mult2).zext(BW + 1)).urem(Mod);
5418
5419 // The result is guaranteed to be less than 2^BW so we may truncate it to BW
5420 // bits.
5421 return SE.getConstant(Result.trunc(BW));
5422}
Chris Lattnerd934c702004-04-02 20:23:17 +00005423
5424/// SolveQuadraticEquation - Find the roots of the quadratic equation for the
5425/// given quadratic chrec {L,+,M,+,N}. This returns either the two roots (which
5426/// might be the same) or two SCEVCouldNotCompute objects.
5427///
Dan Gohmanaf752342009-07-07 17:06:11 +00005428static std::pair<const SCEV *,const SCEV *>
Dan Gohmana37eaf22007-10-22 18:31:58 +00005429SolveQuadraticEquation(const SCEVAddRecExpr *AddRec, ScalarEvolution &SE) {
Chris Lattnerd934c702004-04-02 20:23:17 +00005430 assert(AddRec->getNumOperands() == 3 && "This is not a quadratic chrec!");
Dan Gohman48f82222009-05-04 22:30:44 +00005431 const SCEVConstant *LC = dyn_cast<SCEVConstant>(AddRec->getOperand(0));
5432 const SCEVConstant *MC = dyn_cast<SCEVConstant>(AddRec->getOperand(1));
5433 const SCEVConstant *NC = dyn_cast<SCEVConstant>(AddRec->getOperand(2));
Misha Brukman01808ca2005-04-21 21:13:18 +00005434
Chris Lattnerd934c702004-04-02 20:23:17 +00005435 // We currently can only solve this if the coefficients are constants.
Reid Spencer983e3b32007-03-01 07:25:48 +00005436 if (!LC || !MC || !NC) {
Dan Gohman48f82222009-05-04 22:30:44 +00005437 const SCEV *CNC = SE.getCouldNotCompute();
Chris Lattnerd934c702004-04-02 20:23:17 +00005438 return std::make_pair(CNC, CNC);
5439 }
5440
Reid Spencer983e3b32007-03-01 07:25:48 +00005441 uint32_t BitWidth = LC->getValue()->getValue().getBitWidth();
Chris Lattnercad61e82007-04-15 19:52:49 +00005442 const APInt &L = LC->getValue()->getValue();
5443 const APInt &M = MC->getValue()->getValue();
5444 const APInt &N = NC->getValue()->getValue();
Reid Spencer983e3b32007-03-01 07:25:48 +00005445 APInt Two(BitWidth, 2);
5446 APInt Four(BitWidth, 4);
Misha Brukman01808ca2005-04-21 21:13:18 +00005447
Dan Gohmance973df2009-06-24 04:48:43 +00005448 {
Reid Spencer983e3b32007-03-01 07:25:48 +00005449 using namespace APIntOps;
Zhou Sheng2852d992007-04-07 17:48:27 +00005450 const APInt& C = L;
Reid Spencer983e3b32007-03-01 07:25:48 +00005451 // Convert from chrec coefficients to polynomial coefficients AX^2+BX+C
5452 // The B coefficient is M-N/2
5453 APInt B(M);
5454 B -= sdiv(N,Two);
Misha Brukman01808ca2005-04-21 21:13:18 +00005455
Reid Spencer983e3b32007-03-01 07:25:48 +00005456 // The A coefficient is N/2
Zhou Sheng2852d992007-04-07 17:48:27 +00005457 APInt A(N.sdiv(Two));
Chris Lattnerd934c702004-04-02 20:23:17 +00005458
Reid Spencer983e3b32007-03-01 07:25:48 +00005459 // Compute the B^2-4ac term.
5460 APInt SqrtTerm(B);
5461 SqrtTerm *= B;
5462 SqrtTerm -= Four * (A * C);
Chris Lattnerd934c702004-04-02 20:23:17 +00005463
Nick Lewyckyfb780832012-08-01 09:14:36 +00005464 if (SqrtTerm.isNegative()) {
5465 // The loop is provably infinite.
5466 const SCEV *CNC = SE.getCouldNotCompute();
5467 return std::make_pair(CNC, CNC);
5468 }
5469
Reid Spencer983e3b32007-03-01 07:25:48 +00005470 // Compute sqrt(B^2-4ac). This is guaranteed to be the nearest
5471 // integer value or else APInt::sqrt() will assert.
5472 APInt SqrtVal(SqrtTerm.sqrt());
Misha Brukman01808ca2005-04-21 21:13:18 +00005473
Dan Gohmance973df2009-06-24 04:48:43 +00005474 // Compute the two solutions for the quadratic formula.
Reid Spencer983e3b32007-03-01 07:25:48 +00005475 // The divisions must be performed as signed divisions.
5476 APInt NegB(-B);
Nick Lewycky31555522011-10-03 07:10:45 +00005477 APInt TwoA(A << 1);
Nick Lewycky7b14e202008-11-03 02:43:49 +00005478 if (TwoA.isMinValue()) {
Dan Gohman48f82222009-05-04 22:30:44 +00005479 const SCEV *CNC = SE.getCouldNotCompute();
Nick Lewycky7b14e202008-11-03 02:43:49 +00005480 return std::make_pair(CNC, CNC);
5481 }
5482
Owen Anderson47db9412009-07-22 00:24:57 +00005483 LLVMContext &Context = SE.getContext();
Owen Andersonf1f17432009-07-06 22:37:39 +00005484
5485 ConstantInt *Solution1 =
Owen Andersonedb4a702009-07-24 23:12:02 +00005486 ConstantInt::get(Context, (NegB + SqrtVal).sdiv(TwoA));
Owen Andersonf1f17432009-07-06 22:37:39 +00005487 ConstantInt *Solution2 =
Owen Andersonedb4a702009-07-24 23:12:02 +00005488 ConstantInt::get(Context, (NegB - SqrtVal).sdiv(TwoA));
Misha Brukman01808ca2005-04-21 21:13:18 +00005489
Dan Gohmance973df2009-06-24 04:48:43 +00005490 return std::make_pair(SE.getConstant(Solution1),
Dan Gohmana37eaf22007-10-22 18:31:58 +00005491 SE.getConstant(Solution2));
Nick Lewycky31555522011-10-03 07:10:45 +00005492 } // end APIntOps namespace
Chris Lattnerd934c702004-04-02 20:23:17 +00005493}
5494
5495/// HowFarToZero - Return the number of times a backedge comparing the specified
Dan Gohman4c720c02009-06-06 14:37:11 +00005496/// value to zero will execute. If not computable, return CouldNotCompute.
Andrew Trick8b55b732011-03-14 16:50:06 +00005497///
5498/// This is only used for loops with a "x != y" exit test. The exit condition is
5499/// now expressed as a single expression, V = x-y. So the exit test is
5500/// effectively V != 0. We know and take advantage of the fact that this
5501/// expression only being used in a comparison by zero context.
Andrew Trick3ca3f982011-07-26 17:19:55 +00005502ScalarEvolution::ExitLimit
Andrew Trick5b245a12013-05-31 06:43:25 +00005503ScalarEvolution::HowFarToZero(const SCEV *V, const Loop *L, bool IsSubExpr) {
Chris Lattnerd934c702004-04-02 20:23:17 +00005504 // If the value is a constant
Dan Gohmana30370b2009-05-04 22:02:23 +00005505 if (const SCEVConstant *C = dyn_cast<SCEVConstant>(V)) {
Chris Lattnerd934c702004-04-02 20:23:17 +00005506 // If the value is already zero, the branch will execute zero times.
Reid Spencer2e54a152007-03-02 00:28:52 +00005507 if (C->getValue()->isZero()) return C;
Dan Gohmanc5c85c02009-06-27 21:21:31 +00005508 return getCouldNotCompute(); // Otherwise it will loop infinitely.
Chris Lattnerd934c702004-04-02 20:23:17 +00005509 }
5510
Dan Gohman48f82222009-05-04 22:30:44 +00005511 const SCEVAddRecExpr *AddRec = dyn_cast<SCEVAddRecExpr>(V);
Chris Lattnerd934c702004-04-02 20:23:17 +00005512 if (!AddRec || AddRec->getLoop() != L)
Dan Gohmanc5c85c02009-06-27 21:21:31 +00005513 return getCouldNotCompute();
Chris Lattnerd934c702004-04-02 20:23:17 +00005514
Chris Lattnerdff679f2011-01-09 22:39:48 +00005515 // If this is a quadratic (3-term) AddRec {L,+,M,+,N}, find the roots of
5516 // the quadratic equation to solve it.
5517 if (AddRec->isQuadratic() && AddRec->getType()->isIntegerTy()) {
5518 std::pair<const SCEV *,const SCEV *> Roots =
5519 SolveQuadraticEquation(AddRec, *this);
Dan Gohman48f82222009-05-04 22:30:44 +00005520 const SCEVConstant *R1 = dyn_cast<SCEVConstant>(Roots.first);
5521 const SCEVConstant *R2 = dyn_cast<SCEVConstant>(Roots.second);
Chris Lattnerdff679f2011-01-09 22:39:48 +00005522 if (R1 && R2) {
Chris Lattner09169212004-04-02 20:26:46 +00005523#if 0
David Greenedf1c4972009-12-23 22:18:14 +00005524 dbgs() << "HFTZ: " << *V << " - sol#1: " << *R1
Dan Gohmane20f8242009-04-21 00:47:46 +00005525 << " sol#2: " << *R2 << "\n";
Chris Lattner09169212004-04-02 20:26:46 +00005526#endif
Chris Lattnerd934c702004-04-02 20:23:17 +00005527 // Pick the smallest positive root value.
Zhou Sheng75b871f2007-01-11 12:24:14 +00005528 if (ConstantInt *CB =
Chris Lattner28f140a2011-01-09 22:58:47 +00005529 dyn_cast<ConstantInt>(ConstantExpr::getICmp(CmpInst::ICMP_ULT,
5530 R1->getValue(),
5531 R2->getValue()))) {
Reid Spencercddc9df2007-01-12 04:24:46 +00005532 if (CB->getZExtValue() == false)
Chris Lattnerd934c702004-04-02 20:23:17 +00005533 std::swap(R1, R2); // R1 is the minimum root now.
Andrew Trick2a3b7162011-03-09 17:23:39 +00005534
Chris Lattnerd934c702004-04-02 20:23:17 +00005535 // We can only use this value if the chrec ends up with an exact zero
5536 // value at this index. When solving for "X*X != 5", for example, we
5537 // should not accept a root of 2.
Dan Gohmanaf752342009-07-07 17:06:11 +00005538 const SCEV *Val = AddRec->evaluateAtIteration(R1, *this);
Dan Gohmanbe928e32008-06-18 16:23:07 +00005539 if (Val->isZero())
5540 return R1; // We found a quadratic root!
Chris Lattnerd934c702004-04-02 20:23:17 +00005541 }
5542 }
Chris Lattnerdff679f2011-01-09 22:39:48 +00005543 return getCouldNotCompute();
Chris Lattnerd934c702004-04-02 20:23:17 +00005544 }
Misha Brukman01808ca2005-04-21 21:13:18 +00005545
Chris Lattnerdff679f2011-01-09 22:39:48 +00005546 // Otherwise we can only handle this if it is affine.
5547 if (!AddRec->isAffine())
5548 return getCouldNotCompute();
5549
5550 // If this is an affine expression, the execution count of this branch is
5551 // the minimum unsigned root of the following equation:
5552 //
5553 // Start + Step*N = 0 (mod 2^BW)
5554 //
5555 // equivalent to:
5556 //
5557 // Step*N = -Start (mod 2^BW)
5558 //
5559 // where BW is the common bit width of Start and Step.
5560
5561 // Get the initial value for the loop.
5562 const SCEV *Start = getSCEVAtScope(AddRec->getStart(), L->getParentLoop());
5563 const SCEV *Step = getSCEVAtScope(AddRec->getOperand(1), L->getParentLoop());
5564
5565 // For now we handle only constant steps.
Andrew Trick8b55b732011-03-14 16:50:06 +00005566 //
5567 // TODO: Handle a nonconstant Step given AddRec<NUW>. If the
5568 // AddRec is NUW, then (in an unsigned sense) it cannot be counting up to wrap
5569 // to 0, it must be counting down to equal 0. Consequently, N = Start / -Step.
5570 // We have not yet seen any such cases.
Chris Lattnerdff679f2011-01-09 22:39:48 +00005571 const SCEVConstant *StepC = dyn_cast<SCEVConstant>(Step);
Nick Lewycky474112d2012-06-28 23:44:57 +00005572 if (StepC == 0 || StepC->getValue()->equalsInt(0))
Chris Lattnerdff679f2011-01-09 22:39:48 +00005573 return getCouldNotCompute();
5574
Andrew Trick8b55b732011-03-14 16:50:06 +00005575 // For positive steps (counting up until unsigned overflow):
5576 // N = -Start/Step (as unsigned)
5577 // For negative steps (counting down to zero):
5578 // N = Start/-Step
5579 // First compute the unsigned distance from zero in the direction of Step.
Andrew Trickf1781db2011-03-14 17:28:02 +00005580 bool CountDown = StepC->getValue()->getValue().isNegative();
5581 const SCEV *Distance = CountDown ? Start : getNegativeSCEV(Start);
Andrew Trick8b55b732011-03-14 16:50:06 +00005582
5583 // Handle unitary steps, which cannot wraparound.
Andrew Trickf1781db2011-03-14 17:28:02 +00005584 // 1*N = -Start; -1*N = Start (mod 2^BW), so:
5585 // N = Distance (as unsigned)
Nick Lewycky31555522011-10-03 07:10:45 +00005586 if (StepC->getValue()->equalsInt(1) || StepC->getValue()->isAllOnesValue()) {
5587 ConstantRange CR = getUnsignedRange(Start);
5588 const SCEV *MaxBECount;
5589 if (!CountDown && CR.getUnsignedMin().isMinValue())
5590 // When counting up, the worst starting value is 1, not 0.
5591 MaxBECount = CR.getUnsignedMax().isMinValue()
5592 ? getConstant(APInt::getMinValue(CR.getBitWidth()))
5593 : getConstant(APInt::getMaxValue(CR.getBitWidth()));
5594 else
5595 MaxBECount = getConstant(CountDown ? CR.getUnsignedMax()
5596 : -CR.getUnsignedMin());
5597 return ExitLimit(Distance, MaxBECount);
5598 }
Andrew Trick2a3b7162011-03-09 17:23:39 +00005599
Andrew Trickf1781db2011-03-14 17:28:02 +00005600 // If the recurrence is known not to wraparound, unsigned divide computes the
Andrew Trick5b245a12013-05-31 06:43:25 +00005601 // back edge count. (Ideally we would have an "isexact" bit for udiv). We know
5602 // that the value will either become zero (and thus the loop terminates), that
5603 // the loop will terminate through some other exit condition first, or that
5604 // the loop has undefined behavior. This means we can't "miss" the exit
5605 // value, even with nonunit stride.
Andrew Trickf1781db2011-03-14 17:28:02 +00005606 //
Andrew Trick5b245a12013-05-31 06:43:25 +00005607 // This is only valid for expressions that directly compute the loop exit. It
5608 // is invalid for subexpressions in which the loop may exit through this
5609 // branch even if this subexpression is false. In that case, the trip count
5610 // computed by this udiv could be smaller than the number of well-defined
5611 // iterations.
5612 if (!IsSubExpr && AddRec->getNoWrapFlags(SCEV::FlagNW))
Andrew Trickf1781db2011-03-14 17:28:02 +00005613 return getUDivExpr(Distance, CountDown ? getNegativeSCEV(Step) : Step);
Andrew Trick5b245a12013-05-31 06:43:25 +00005614
Chris Lattnerdff679f2011-01-09 22:39:48 +00005615 // Then, try to solve the above equation provided that Start is constant.
5616 if (const SCEVConstant *StartC = dyn_cast<SCEVConstant>(Start))
5617 return SolveLinEquationWithOverflow(StepC->getValue()->getValue(),
5618 -StartC->getValue()->getValue(),
5619 *this);
Dan Gohmanc5c85c02009-06-27 21:21:31 +00005620 return getCouldNotCompute();
Chris Lattnerd934c702004-04-02 20:23:17 +00005621}
5622
5623/// HowFarToNonZero - Return the number of times a backedge checking the
5624/// specified value for nonzero will execute. If not computable, return
Dan Gohman4c720c02009-06-06 14:37:11 +00005625/// CouldNotCompute
Andrew Trick3ca3f982011-07-26 17:19:55 +00005626ScalarEvolution::ExitLimit
Dan Gohmanba820342010-02-24 17:31:30 +00005627ScalarEvolution::HowFarToNonZero(const SCEV *V, const Loop *L) {
Chris Lattnerd934c702004-04-02 20:23:17 +00005628 // Loops that look like: while (X == 0) are very strange indeed. We don't
5629 // handle them yet except for the trivial case. This could be expanded in the
5630 // future as needed.
Misha Brukman01808ca2005-04-21 21:13:18 +00005631
Chris Lattnerd934c702004-04-02 20:23:17 +00005632 // If the value is a constant, check to see if it is known to be non-zero
5633 // already. If so, the backedge will execute zero times.
Dan Gohmana30370b2009-05-04 22:02:23 +00005634 if (const SCEVConstant *C = dyn_cast<SCEVConstant>(V)) {
Nick Lewycky5a3db142008-02-21 09:14:53 +00005635 if (!C->getValue()->isNullValue())
Dan Gohman1d2ded72010-05-03 22:09:21 +00005636 return getConstant(C->getType(), 0);
Dan Gohmanc5c85c02009-06-27 21:21:31 +00005637 return getCouldNotCompute(); // Otherwise it will loop infinitely.
Chris Lattnerd934c702004-04-02 20:23:17 +00005638 }
Misha Brukman01808ca2005-04-21 21:13:18 +00005639
Chris Lattnerd934c702004-04-02 20:23:17 +00005640 // We could implement others, but I really doubt anyone writes loops like
5641 // this, and if they did, they would already be constant folded.
Dan Gohmanc5c85c02009-06-27 21:21:31 +00005642 return getCouldNotCompute();
Chris Lattnerd934c702004-04-02 20:23:17 +00005643}
5644
Dan Gohmanf9081a22008-09-15 22:18:04 +00005645/// getPredecessorWithUniqueSuccessorForBB - Return a predecessor of BB
5646/// (which may not be an immediate predecessor) which has exactly one
5647/// successor from which BB is reachable, or null if no such block is
5648/// found.
5649///
Dan Gohman4e3c1132010-04-15 16:19:08 +00005650std::pair<BasicBlock *, BasicBlock *>
Dan Gohmanc8e23622009-04-21 23:15:49 +00005651ScalarEvolution::getPredecessorWithUniqueSuccessorForBB(BasicBlock *BB) {
Dan Gohmanfa066ef2009-04-30 20:48:53 +00005652 // If the block has a unique predecessor, then there is no path from the
5653 // predecessor to the block that does not go through the direct edge
5654 // from the predecessor to the block.
Dan Gohmanf9081a22008-09-15 22:18:04 +00005655 if (BasicBlock *Pred = BB->getSinglePredecessor())
Dan Gohman4e3c1132010-04-15 16:19:08 +00005656 return std::make_pair(Pred, BB);
Dan Gohmanf9081a22008-09-15 22:18:04 +00005657
5658 // A loop's header is defined to be a block that dominates the loop.
Dan Gohman8c77f1a2009-05-18 15:36:09 +00005659 // If the header has a unique predecessor outside the loop, it must be
5660 // a block that has exactly one successor that can reach the loop.
Dan Gohmanc8e23622009-04-21 23:15:49 +00005661 if (Loop *L = LI->getLoopFor(BB))
Dan Gohman75c6b0b2010-06-22 23:43:28 +00005662 return std::make_pair(L->getLoopPredecessor(), L->getHeader());
Dan Gohmanf9081a22008-09-15 22:18:04 +00005663
Dan Gohman4e3c1132010-04-15 16:19:08 +00005664 return std::pair<BasicBlock *, BasicBlock *>();
Dan Gohmanf9081a22008-09-15 22:18:04 +00005665}
5666
Dan Gohman450f4e02009-06-20 00:35:32 +00005667/// HasSameValue - SCEV structural equivalence is usually sufficient for
5668/// testing whether two expressions are equal, however for the purposes of
5669/// looking for a condition guarding a loop, it can be useful to be a little
5670/// more general, since a front-end may have replicated the controlling
5671/// expression.
5672///
Dan Gohmanaf752342009-07-07 17:06:11 +00005673static bool HasSameValue(const SCEV *A, const SCEV *B) {
Dan Gohman450f4e02009-06-20 00:35:32 +00005674 // Quick check to see if they are the same SCEV.
5675 if (A == B) return true;
5676
5677 // Otherwise, if they're both SCEVUnknown, it's possible that they hold
5678 // two different instructions with the same value. Check for this case.
5679 if (const SCEVUnknown *AU = dyn_cast<SCEVUnknown>(A))
5680 if (const SCEVUnknown *BU = dyn_cast<SCEVUnknown>(B))
5681 if (const Instruction *AI = dyn_cast<Instruction>(AU->getValue()))
5682 if (const Instruction *BI = dyn_cast<Instruction>(BU->getValue()))
Dan Gohman2d085562009-08-25 17:56:57 +00005683 if (AI->isIdenticalTo(BI) && !AI->mayReadFromMemory())
Dan Gohman450f4e02009-06-20 00:35:32 +00005684 return true;
5685
5686 // Otherwise assume they may have a different value.
5687 return false;
5688}
5689
Dan Gohman48ff3cf2010-04-24 01:28:42 +00005690/// SimplifyICmpOperands - Simplify LHS and RHS in a comparison with
Sylvestre Ledru91ce36c2012-09-27 10:14:43 +00005691/// predicate Pred. Return true iff any changes were made.
Dan Gohman48ff3cf2010-04-24 01:28:42 +00005692///
5693bool ScalarEvolution::SimplifyICmpOperands(ICmpInst::Predicate &Pred,
Benjamin Kramer50b26eb2012-05-30 18:32:23 +00005694 const SCEV *&LHS, const SCEV *&RHS,
5695 unsigned Depth) {
Dan Gohman48ff3cf2010-04-24 01:28:42 +00005696 bool Changed = false;
5697
Benjamin Kramer50b26eb2012-05-30 18:32:23 +00005698 // If we hit the max recursion limit bail out.
5699 if (Depth >= 3)
5700 return false;
5701
Dan Gohman48ff3cf2010-04-24 01:28:42 +00005702 // Canonicalize a constant to the right side.
5703 if (const SCEVConstant *LHSC = dyn_cast<SCEVConstant>(LHS)) {
5704 // Check for both operands constant.
5705 if (const SCEVConstant *RHSC = dyn_cast<SCEVConstant>(RHS)) {
5706 if (ConstantExpr::getICmp(Pred,
5707 LHSC->getValue(),
5708 RHSC->getValue())->isNullValue())
5709 goto trivially_false;
5710 else
5711 goto trivially_true;
5712 }
5713 // Otherwise swap the operands to put the constant on the right.
5714 std::swap(LHS, RHS);
5715 Pred = ICmpInst::getSwappedPredicate(Pred);
5716 Changed = true;
5717 }
5718
5719 // If we're comparing an addrec with a value which is loop-invariant in the
Dan Gohmandf564ca2010-05-03 17:00:11 +00005720 // addrec's loop, put the addrec on the left. Also make a dominance check,
5721 // as both operands could be addrecs loop-invariant in each other's loop.
5722 if (const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(RHS)) {
5723 const Loop *L = AR->getLoop();
Dan Gohman20d9ce22010-11-17 21:41:58 +00005724 if (isLoopInvariant(LHS, L) && properlyDominates(LHS, L->getHeader())) {
Dan Gohman48ff3cf2010-04-24 01:28:42 +00005725 std::swap(LHS, RHS);
5726 Pred = ICmpInst::getSwappedPredicate(Pred);
5727 Changed = true;
5728 }
Dan Gohmandf564ca2010-05-03 17:00:11 +00005729 }
Dan Gohman48ff3cf2010-04-24 01:28:42 +00005730
5731 // If there's a constant operand, canonicalize comparisons with boundary
5732 // cases, and canonicalize *-or-equal comparisons to regular comparisons.
5733 if (const SCEVConstant *RC = dyn_cast<SCEVConstant>(RHS)) {
5734 const APInt &RA = RC->getValue()->getValue();
5735 switch (Pred) {
5736 default: llvm_unreachable("Unexpected ICmpInst::Predicate value!");
5737 case ICmpInst::ICMP_EQ:
5738 case ICmpInst::ICMP_NE:
Benjamin Kramer50b26eb2012-05-30 18:32:23 +00005739 // Fold ((-1) * %a) + %b == 0 (equivalent to %b-%a == 0) into %a == %b.
5740 if (!RA)
5741 if (const SCEVAddExpr *AE = dyn_cast<SCEVAddExpr>(LHS))
5742 if (const SCEVMulExpr *ME = dyn_cast<SCEVMulExpr>(AE->getOperand(0)))
Benjamin Kramer406a2db2012-05-30 18:42:43 +00005743 if (AE->getNumOperands() == 2 && ME->getNumOperands() == 2 &&
5744 ME->getOperand(0)->isAllOnesValue()) {
Benjamin Kramer50b26eb2012-05-30 18:32:23 +00005745 RHS = AE->getOperand(1);
5746 LHS = ME->getOperand(1);
5747 Changed = true;
5748 }
Dan Gohman48ff3cf2010-04-24 01:28:42 +00005749 break;
5750 case ICmpInst::ICMP_UGE:
5751 if ((RA - 1).isMinValue()) {
5752 Pred = ICmpInst::ICMP_NE;
5753 RHS = getConstant(RA - 1);
5754 Changed = true;
5755 break;
5756 }
5757 if (RA.isMaxValue()) {
5758 Pred = ICmpInst::ICMP_EQ;
5759 Changed = true;
5760 break;
5761 }
5762 if (RA.isMinValue()) goto trivially_true;
5763
5764 Pred = ICmpInst::ICMP_UGT;
5765 RHS = getConstant(RA - 1);
5766 Changed = true;
5767 break;
5768 case ICmpInst::ICMP_ULE:
5769 if ((RA + 1).isMaxValue()) {
5770 Pred = ICmpInst::ICMP_NE;
5771 RHS = getConstant(RA + 1);
5772 Changed = true;
5773 break;
5774 }
5775 if (RA.isMinValue()) {
5776 Pred = ICmpInst::ICMP_EQ;
5777 Changed = true;
5778 break;
5779 }
5780 if (RA.isMaxValue()) goto trivially_true;
5781
5782 Pred = ICmpInst::ICMP_ULT;
5783 RHS = getConstant(RA + 1);
5784 Changed = true;
5785 break;
5786 case ICmpInst::ICMP_SGE:
5787 if ((RA - 1).isMinSignedValue()) {
5788 Pred = ICmpInst::ICMP_NE;
5789 RHS = getConstant(RA - 1);
5790 Changed = true;
5791 break;
5792 }
5793 if (RA.isMaxSignedValue()) {
5794 Pred = ICmpInst::ICMP_EQ;
5795 Changed = true;
5796 break;
5797 }
5798 if (RA.isMinSignedValue()) goto trivially_true;
5799
5800 Pred = ICmpInst::ICMP_SGT;
5801 RHS = getConstant(RA - 1);
5802 Changed = true;
5803 break;
5804 case ICmpInst::ICMP_SLE:
5805 if ((RA + 1).isMaxSignedValue()) {
5806 Pred = ICmpInst::ICMP_NE;
5807 RHS = getConstant(RA + 1);
5808 Changed = true;
5809 break;
5810 }
5811 if (RA.isMinSignedValue()) {
5812 Pred = ICmpInst::ICMP_EQ;
5813 Changed = true;
5814 break;
5815 }
5816 if (RA.isMaxSignedValue()) goto trivially_true;
5817
5818 Pred = ICmpInst::ICMP_SLT;
5819 RHS = getConstant(RA + 1);
5820 Changed = true;
5821 break;
5822 case ICmpInst::ICMP_UGT:
5823 if (RA.isMinValue()) {
5824 Pred = ICmpInst::ICMP_NE;
5825 Changed = true;
5826 break;
5827 }
5828 if ((RA + 1).isMaxValue()) {
5829 Pred = ICmpInst::ICMP_EQ;
5830 RHS = getConstant(RA + 1);
5831 Changed = true;
5832 break;
5833 }
5834 if (RA.isMaxValue()) goto trivially_false;
5835 break;
5836 case ICmpInst::ICMP_ULT:
5837 if (RA.isMaxValue()) {
5838 Pred = ICmpInst::ICMP_NE;
5839 Changed = true;
5840 break;
5841 }
5842 if ((RA - 1).isMinValue()) {
5843 Pred = ICmpInst::ICMP_EQ;
5844 RHS = getConstant(RA - 1);
5845 Changed = true;
5846 break;
5847 }
5848 if (RA.isMinValue()) goto trivially_false;
5849 break;
5850 case ICmpInst::ICMP_SGT:
5851 if (RA.isMinSignedValue()) {
5852 Pred = ICmpInst::ICMP_NE;
5853 Changed = true;
5854 break;
5855 }
5856 if ((RA + 1).isMaxSignedValue()) {
5857 Pred = ICmpInst::ICMP_EQ;
5858 RHS = getConstant(RA + 1);
5859 Changed = true;
5860 break;
5861 }
5862 if (RA.isMaxSignedValue()) goto trivially_false;
5863 break;
5864 case ICmpInst::ICMP_SLT:
5865 if (RA.isMaxSignedValue()) {
5866 Pred = ICmpInst::ICMP_NE;
5867 Changed = true;
5868 break;
5869 }
5870 if ((RA - 1).isMinSignedValue()) {
5871 Pred = ICmpInst::ICMP_EQ;
5872 RHS = getConstant(RA - 1);
5873 Changed = true;
5874 break;
5875 }
5876 if (RA.isMinSignedValue()) goto trivially_false;
5877 break;
5878 }
5879 }
5880
5881 // Check for obvious equality.
5882 if (HasSameValue(LHS, RHS)) {
5883 if (ICmpInst::isTrueWhenEqual(Pred))
5884 goto trivially_true;
5885 if (ICmpInst::isFalseWhenEqual(Pred))
5886 goto trivially_false;
5887 }
5888
Dan Gohman81585c12010-05-03 16:35:17 +00005889 // If possible, canonicalize GE/LE comparisons to GT/LT comparisons, by
5890 // adding or subtracting 1 from one of the operands.
5891 switch (Pred) {
5892 case ICmpInst::ICMP_SLE:
5893 if (!getSignedRange(RHS).getSignedMax().isMaxSignedValue()) {
5894 RHS = getAddExpr(getConstant(RHS->getType(), 1, true), RHS,
Andrew Trick8b55b732011-03-14 16:50:06 +00005895 SCEV::FlagNSW);
Dan Gohman81585c12010-05-03 16:35:17 +00005896 Pred = ICmpInst::ICMP_SLT;
5897 Changed = true;
5898 } else if (!getSignedRange(LHS).getSignedMin().isMinSignedValue()) {
Dan Gohman267700c2010-05-03 20:23:47 +00005899 LHS = getAddExpr(getConstant(RHS->getType(), (uint64_t)-1, true), LHS,
Andrew Trick8b55b732011-03-14 16:50:06 +00005900 SCEV::FlagNSW);
Dan Gohman81585c12010-05-03 16:35:17 +00005901 Pred = ICmpInst::ICMP_SLT;
5902 Changed = true;
5903 }
5904 break;
5905 case ICmpInst::ICMP_SGE:
5906 if (!getSignedRange(RHS).getSignedMin().isMinSignedValue()) {
Dan Gohman267700c2010-05-03 20:23:47 +00005907 RHS = getAddExpr(getConstant(RHS->getType(), (uint64_t)-1, true), RHS,
Andrew Trick8b55b732011-03-14 16:50:06 +00005908 SCEV::FlagNSW);
Dan Gohman81585c12010-05-03 16:35:17 +00005909 Pred = ICmpInst::ICMP_SGT;
5910 Changed = true;
5911 } else if (!getSignedRange(LHS).getSignedMax().isMaxSignedValue()) {
5912 LHS = getAddExpr(getConstant(RHS->getType(), 1, true), LHS,
Andrew Trick8b55b732011-03-14 16:50:06 +00005913 SCEV::FlagNSW);
Dan Gohman81585c12010-05-03 16:35:17 +00005914 Pred = ICmpInst::ICMP_SGT;
5915 Changed = true;
5916 }
5917 break;
5918 case ICmpInst::ICMP_ULE:
5919 if (!getUnsignedRange(RHS).getUnsignedMax().isMaxValue()) {
Dan Gohman267700c2010-05-03 20:23:47 +00005920 RHS = getAddExpr(getConstant(RHS->getType(), 1, true), RHS,
Andrew Trick8b55b732011-03-14 16:50:06 +00005921 SCEV::FlagNUW);
Dan Gohman81585c12010-05-03 16:35:17 +00005922 Pred = ICmpInst::ICMP_ULT;
5923 Changed = true;
5924 } else if (!getUnsignedRange(LHS).getUnsignedMin().isMinValue()) {
Dan Gohman267700c2010-05-03 20:23:47 +00005925 LHS = getAddExpr(getConstant(RHS->getType(), (uint64_t)-1, true), LHS,
Andrew Trick8b55b732011-03-14 16:50:06 +00005926 SCEV::FlagNUW);
Dan Gohman81585c12010-05-03 16:35:17 +00005927 Pred = ICmpInst::ICMP_ULT;
5928 Changed = true;
5929 }
5930 break;
5931 case ICmpInst::ICMP_UGE:
5932 if (!getUnsignedRange(RHS).getUnsignedMin().isMinValue()) {
Dan Gohman267700c2010-05-03 20:23:47 +00005933 RHS = getAddExpr(getConstant(RHS->getType(), (uint64_t)-1, true), RHS,
Andrew Trick8b55b732011-03-14 16:50:06 +00005934 SCEV::FlagNUW);
Dan Gohman81585c12010-05-03 16:35:17 +00005935 Pred = ICmpInst::ICMP_UGT;
5936 Changed = true;
5937 } else if (!getUnsignedRange(LHS).getUnsignedMax().isMaxValue()) {
Dan Gohman267700c2010-05-03 20:23:47 +00005938 LHS = getAddExpr(getConstant(RHS->getType(), 1, true), LHS,
Andrew Trick8b55b732011-03-14 16:50:06 +00005939 SCEV::FlagNUW);
Dan Gohman81585c12010-05-03 16:35:17 +00005940 Pred = ICmpInst::ICMP_UGT;
5941 Changed = true;
5942 }
5943 break;
5944 default:
5945 break;
5946 }
5947
Dan Gohman48ff3cf2010-04-24 01:28:42 +00005948 // TODO: More simplifications are possible here.
5949
Benjamin Kramer50b26eb2012-05-30 18:32:23 +00005950 // Recursively simplify until we either hit a recursion limit or nothing
5951 // changes.
5952 if (Changed)
5953 return SimplifyICmpOperands(Pred, LHS, RHS, Depth+1);
5954
Dan Gohman48ff3cf2010-04-24 01:28:42 +00005955 return Changed;
5956
5957trivially_true:
5958 // Return 0 == 0.
Benjamin Kramerddd1b7b2010-11-20 18:43:35 +00005959 LHS = RHS = getConstant(ConstantInt::getFalse(getContext()));
Dan Gohman48ff3cf2010-04-24 01:28:42 +00005960 Pred = ICmpInst::ICMP_EQ;
5961 return true;
5962
5963trivially_false:
5964 // Return 0 != 0.
Benjamin Kramerddd1b7b2010-11-20 18:43:35 +00005965 LHS = RHS = getConstant(ConstantInt::getFalse(getContext()));
Dan Gohman48ff3cf2010-04-24 01:28:42 +00005966 Pred = ICmpInst::ICMP_NE;
5967 return true;
5968}
5969
Dan Gohmane65c9172009-07-13 21:35:55 +00005970bool ScalarEvolution::isKnownNegative(const SCEV *S) {
5971 return getSignedRange(S).getSignedMax().isNegative();
5972}
5973
5974bool ScalarEvolution::isKnownPositive(const SCEV *S) {
5975 return getSignedRange(S).getSignedMin().isStrictlyPositive();
5976}
5977
5978bool ScalarEvolution::isKnownNonNegative(const SCEV *S) {
5979 return !getSignedRange(S).getSignedMin().isNegative();
5980}
5981
5982bool ScalarEvolution::isKnownNonPositive(const SCEV *S) {
5983 return !getSignedRange(S).getSignedMax().isStrictlyPositive();
5984}
5985
5986bool ScalarEvolution::isKnownNonZero(const SCEV *S) {
5987 return isKnownNegative(S) || isKnownPositive(S);
5988}
5989
5990bool ScalarEvolution::isKnownPredicate(ICmpInst::Predicate Pred,
5991 const SCEV *LHS, const SCEV *RHS) {
Dan Gohman36cce7e2010-04-24 01:38:36 +00005992 // Canonicalize the inputs first.
5993 (void)SimplifyICmpOperands(Pred, LHS, RHS);
5994
Dan Gohman07591692010-04-11 22:16:48 +00005995 // If LHS or RHS is an addrec, check to see if the condition is true in
5996 // every iteration of the loop.
5997 if (const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(LHS))
5998 if (isLoopEntryGuardedByCond(
5999 AR->getLoop(), Pred, AR->getStart(), RHS) &&
6000 isLoopBackedgeGuardedByCond(
Dan Gohman70a3b122010-05-04 01:12:27 +00006001 AR->getLoop(), Pred, AR->getPostIncExpr(*this), RHS))
Dan Gohman07591692010-04-11 22:16:48 +00006002 return true;
6003 if (const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(RHS))
6004 if (isLoopEntryGuardedByCond(
6005 AR->getLoop(), Pred, LHS, AR->getStart()) &&
6006 isLoopBackedgeGuardedByCond(
Dan Gohman70a3b122010-05-04 01:12:27 +00006007 AR->getLoop(), Pred, LHS, AR->getPostIncExpr(*this)))
Dan Gohman07591692010-04-11 22:16:48 +00006008 return true;
Dan Gohmane65c9172009-07-13 21:35:55 +00006009
Dan Gohman07591692010-04-11 22:16:48 +00006010 // Otherwise see what can be done with known constant ranges.
6011 return isKnownPredicateWithRanges(Pred, LHS, RHS);
6012}
6013
6014bool
6015ScalarEvolution::isKnownPredicateWithRanges(ICmpInst::Predicate Pred,
6016 const SCEV *LHS, const SCEV *RHS) {
Dan Gohmane65c9172009-07-13 21:35:55 +00006017 if (HasSameValue(LHS, RHS))
6018 return ICmpInst::isTrueWhenEqual(Pred);
6019
Dan Gohman07591692010-04-11 22:16:48 +00006020 // This code is split out from isKnownPredicate because it is called from
6021 // within isLoopEntryGuardedByCond.
Dan Gohmane65c9172009-07-13 21:35:55 +00006022 switch (Pred) {
6023 default:
Dan Gohman8c129d72009-07-16 17:34:36 +00006024 llvm_unreachable("Unexpected ICmpInst::Predicate value!");
Dan Gohmane65c9172009-07-13 21:35:55 +00006025 case ICmpInst::ICMP_SGT:
6026 Pred = ICmpInst::ICMP_SLT;
6027 std::swap(LHS, RHS);
6028 case ICmpInst::ICMP_SLT: {
6029 ConstantRange LHSRange = getSignedRange(LHS);
6030 ConstantRange RHSRange = getSignedRange(RHS);
6031 if (LHSRange.getSignedMax().slt(RHSRange.getSignedMin()))
6032 return true;
6033 if (LHSRange.getSignedMin().sge(RHSRange.getSignedMax()))
6034 return false;
Dan Gohmane65c9172009-07-13 21:35:55 +00006035 break;
6036 }
6037 case ICmpInst::ICMP_SGE:
6038 Pred = ICmpInst::ICMP_SLE;
6039 std::swap(LHS, RHS);
6040 case ICmpInst::ICMP_SLE: {
6041 ConstantRange LHSRange = getSignedRange(LHS);
6042 ConstantRange RHSRange = getSignedRange(RHS);
6043 if (LHSRange.getSignedMax().sle(RHSRange.getSignedMin()))
6044 return true;
6045 if (LHSRange.getSignedMin().sgt(RHSRange.getSignedMax()))
6046 return false;
Dan Gohmane65c9172009-07-13 21:35:55 +00006047 break;
6048 }
6049 case ICmpInst::ICMP_UGT:
6050 Pred = ICmpInst::ICMP_ULT;
6051 std::swap(LHS, RHS);
6052 case ICmpInst::ICMP_ULT: {
6053 ConstantRange LHSRange = getUnsignedRange(LHS);
6054 ConstantRange RHSRange = getUnsignedRange(RHS);
6055 if (LHSRange.getUnsignedMax().ult(RHSRange.getUnsignedMin()))
6056 return true;
6057 if (LHSRange.getUnsignedMin().uge(RHSRange.getUnsignedMax()))
6058 return false;
Dan Gohmane65c9172009-07-13 21:35:55 +00006059 break;
6060 }
6061 case ICmpInst::ICMP_UGE:
6062 Pred = ICmpInst::ICMP_ULE;
6063 std::swap(LHS, RHS);
6064 case ICmpInst::ICMP_ULE: {
6065 ConstantRange LHSRange = getUnsignedRange(LHS);
6066 ConstantRange RHSRange = getUnsignedRange(RHS);
6067 if (LHSRange.getUnsignedMax().ule(RHSRange.getUnsignedMin()))
6068 return true;
6069 if (LHSRange.getUnsignedMin().ugt(RHSRange.getUnsignedMax()))
6070 return false;
Dan Gohmane65c9172009-07-13 21:35:55 +00006071 break;
6072 }
6073 case ICmpInst::ICMP_NE: {
6074 if (getUnsignedRange(LHS).intersectWith(getUnsignedRange(RHS)).isEmptySet())
6075 return true;
6076 if (getSignedRange(LHS).intersectWith(getSignedRange(RHS)).isEmptySet())
6077 return true;
6078
6079 const SCEV *Diff = getMinusSCEV(LHS, RHS);
6080 if (isKnownNonZero(Diff))
6081 return true;
6082 break;
6083 }
6084 case ICmpInst::ICMP_EQ:
Dan Gohman34392622009-07-20 23:54:43 +00006085 // The check at the top of the function catches the case where
6086 // the values are known to be equal.
Dan Gohmane65c9172009-07-13 21:35:55 +00006087 break;
6088 }
6089 return false;
6090}
6091
6092/// isLoopBackedgeGuardedByCond - Test whether the backedge of the loop is
6093/// protected by a conditional between LHS and RHS. This is used to
6094/// to eliminate casts.
6095bool
6096ScalarEvolution::isLoopBackedgeGuardedByCond(const Loop *L,
6097 ICmpInst::Predicate Pred,
6098 const SCEV *LHS, const SCEV *RHS) {
6099 // Interpret a null as meaning no loop, where there is obviously no guard
6100 // (interprocedural conditions notwithstanding).
6101 if (!L) return true;
6102
6103 BasicBlock *Latch = L->getLoopLatch();
6104 if (!Latch)
6105 return false;
6106
6107 BranchInst *LoopContinuePredicate =
6108 dyn_cast<BranchInst>(Latch->getTerminator());
6109 if (!LoopContinuePredicate ||
6110 LoopContinuePredicate->isUnconditional())
6111 return false;
6112
Dan Gohmane18c2d62010-08-10 23:46:30 +00006113 return isImpliedCond(Pred, LHS, RHS,
6114 LoopContinuePredicate->getCondition(),
Dan Gohman430f0cc2009-07-21 23:03:19 +00006115 LoopContinuePredicate->getSuccessor(0) != L->getHeader());
Dan Gohmane65c9172009-07-13 21:35:55 +00006116}
6117
Dan Gohmanb50349a2010-04-11 19:27:13 +00006118/// isLoopEntryGuardedByCond - Test whether entry to the loop is protected
Dan Gohmane65c9172009-07-13 21:35:55 +00006119/// by a conditional between LHS and RHS. This is used to help avoid max
6120/// expressions in loop trip counts, and to eliminate casts.
6121bool
Dan Gohmanb50349a2010-04-11 19:27:13 +00006122ScalarEvolution::isLoopEntryGuardedByCond(const Loop *L,
6123 ICmpInst::Predicate Pred,
6124 const SCEV *LHS, const SCEV *RHS) {
Dan Gohman9cf09f82009-05-18 16:03:58 +00006125 // Interpret a null as meaning no loop, where there is obviously no guard
6126 // (interprocedural conditions notwithstanding).
6127 if (!L) return false;
6128
Dan Gohman8c77f1a2009-05-18 15:36:09 +00006129 // Starting at the loop predecessor, climb up the predecessor chain, as long
6130 // as there are predecessors that can be found that have unique successors
Dan Gohmanf9081a22008-09-15 22:18:04 +00006131 // leading to the original header.
Dan Gohman4e3c1132010-04-15 16:19:08 +00006132 for (std::pair<BasicBlock *, BasicBlock *>
Dan Gohman75c6b0b2010-06-22 23:43:28 +00006133 Pair(L->getLoopPredecessor(), L->getHeader());
Dan Gohman4e3c1132010-04-15 16:19:08 +00006134 Pair.first;
6135 Pair = getPredecessorWithUniqueSuccessorForBB(Pair.first)) {
Dan Gohman2a62fd92008-08-12 20:17:31 +00006136
6137 BranchInst *LoopEntryPredicate =
Dan Gohman4e3c1132010-04-15 16:19:08 +00006138 dyn_cast<BranchInst>(Pair.first->getTerminator());
Dan Gohman2a62fd92008-08-12 20:17:31 +00006139 if (!LoopEntryPredicate ||
6140 LoopEntryPredicate->isUnconditional())
6141 continue;
6142
Dan Gohmane18c2d62010-08-10 23:46:30 +00006143 if (isImpliedCond(Pred, LHS, RHS,
6144 LoopEntryPredicate->getCondition(),
Dan Gohman4e3c1132010-04-15 16:19:08 +00006145 LoopEntryPredicate->getSuccessor(0) != Pair.second))
Dan Gohman2a62fd92008-08-12 20:17:31 +00006146 return true;
Nick Lewyckyb5688cc2008-07-12 07:41:32 +00006147 }
6148
Dan Gohman2a62fd92008-08-12 20:17:31 +00006149 return false;
Nick Lewyckyb5688cc2008-07-12 07:41:32 +00006150}
6151
Andrew Trick7fa4e0f2012-05-19 00:48:25 +00006152/// RAII wrapper to prevent recursive application of isImpliedCond.
6153/// ScalarEvolution's PendingLoopPredicates set must be empty unless we are
6154/// currently evaluating isImpliedCond.
6155struct MarkPendingLoopPredicate {
6156 Value *Cond;
6157 DenseSet<Value*> &LoopPreds;
6158 bool Pending;
6159
6160 MarkPendingLoopPredicate(Value *C, DenseSet<Value*> &LP)
6161 : Cond(C), LoopPreds(LP) {
6162 Pending = !LoopPreds.insert(Cond).second;
6163 }
6164 ~MarkPendingLoopPredicate() {
6165 if (!Pending)
6166 LoopPreds.erase(Cond);
6167 }
6168};
6169
Dan Gohman430f0cc2009-07-21 23:03:19 +00006170/// isImpliedCond - Test whether the condition described by Pred, LHS,
6171/// and RHS is true whenever the given Cond value evaluates to true.
Dan Gohmane18c2d62010-08-10 23:46:30 +00006172bool ScalarEvolution::isImpliedCond(ICmpInst::Predicate Pred,
Dan Gohman430f0cc2009-07-21 23:03:19 +00006173 const SCEV *LHS, const SCEV *RHS,
Dan Gohmane18c2d62010-08-10 23:46:30 +00006174 Value *FoundCondValue,
Dan Gohman430f0cc2009-07-21 23:03:19 +00006175 bool Inverse) {
Andrew Trick7fa4e0f2012-05-19 00:48:25 +00006176 MarkPendingLoopPredicate Mark(FoundCondValue, PendingLoopPredicates);
6177 if (Mark.Pending)
6178 return false;
6179
Dan Gohman8b0a4192010-03-01 17:49:51 +00006180 // Recursively handle And and Or conditions.
Dan Gohmane18c2d62010-08-10 23:46:30 +00006181 if (BinaryOperator *BO = dyn_cast<BinaryOperator>(FoundCondValue)) {
Dan Gohmanf19aeec2009-06-24 01:18:18 +00006182 if (BO->getOpcode() == Instruction::And) {
6183 if (!Inverse)
Dan Gohmane18c2d62010-08-10 23:46:30 +00006184 return isImpliedCond(Pred, LHS, RHS, BO->getOperand(0), Inverse) ||
6185 isImpliedCond(Pred, LHS, RHS, BO->getOperand(1), Inverse);
Dan Gohmanf19aeec2009-06-24 01:18:18 +00006186 } else if (BO->getOpcode() == Instruction::Or) {
6187 if (Inverse)
Dan Gohmane18c2d62010-08-10 23:46:30 +00006188 return isImpliedCond(Pred, LHS, RHS, BO->getOperand(0), Inverse) ||
6189 isImpliedCond(Pred, LHS, RHS, BO->getOperand(1), Inverse);
Dan Gohmanf19aeec2009-06-24 01:18:18 +00006190 }
6191 }
6192
Dan Gohmane18c2d62010-08-10 23:46:30 +00006193 ICmpInst *ICI = dyn_cast<ICmpInst>(FoundCondValue);
Dan Gohmanf19aeec2009-06-24 01:18:18 +00006194 if (!ICI) return false;
6195
Dan Gohmane65c9172009-07-13 21:35:55 +00006196 // Bail if the ICmp's operands' types are wider than the needed type
6197 // before attempting to call getSCEV on them. This avoids infinite
6198 // recursion, since the analysis of widening casts can require loop
6199 // exit condition information for overflow checking, which would
6200 // lead back here.
6201 if (getTypeSizeInBits(LHS->getType()) <
Dan Gohman430f0cc2009-07-21 23:03:19 +00006202 getTypeSizeInBits(ICI->getOperand(0)->getType()))
Dan Gohmane65c9172009-07-13 21:35:55 +00006203 return false;
6204
Andrew Trickfa594032012-11-29 18:35:13 +00006205 // Now that we found a conditional branch that dominates the loop or controls
6206 // the loop latch. Check to see if it is the comparison we are looking for.
Dan Gohman430f0cc2009-07-21 23:03:19 +00006207 ICmpInst::Predicate FoundPred;
6208 if (Inverse)
6209 FoundPred = ICI->getInversePredicate();
6210 else
6211 FoundPred = ICI->getPredicate();
6212
6213 const SCEV *FoundLHS = getSCEV(ICI->getOperand(0));
6214 const SCEV *FoundRHS = getSCEV(ICI->getOperand(1));
Dan Gohmane65c9172009-07-13 21:35:55 +00006215
6216 // Balance the types. The case where FoundLHS' type is wider than
6217 // LHS' type is checked for above.
6218 if (getTypeSizeInBits(LHS->getType()) >
6219 getTypeSizeInBits(FoundLHS->getType())) {
Stepan Dyatkovskiy431993b2014-01-09 12:26:12 +00006220 if (CmpInst::isSigned(FoundPred)) {
Dan Gohmane65c9172009-07-13 21:35:55 +00006221 FoundLHS = getSignExtendExpr(FoundLHS, LHS->getType());
6222 FoundRHS = getSignExtendExpr(FoundRHS, LHS->getType());
6223 } else {
6224 FoundLHS = getZeroExtendExpr(FoundLHS, LHS->getType());
6225 FoundRHS = getZeroExtendExpr(FoundRHS, LHS->getType());
6226 }
6227 }
6228
Dan Gohman430f0cc2009-07-21 23:03:19 +00006229 // Canonicalize the query to match the way instcombine will have
6230 // canonicalized the comparison.
Dan Gohman3673aa12010-04-24 01:34:53 +00006231 if (SimplifyICmpOperands(Pred, LHS, RHS))
6232 if (LHS == RHS)
Dan Gohmanb5025c72010-05-03 18:00:24 +00006233 return CmpInst::isTrueWhenEqual(Pred);
Benjamin Kramerba11a982012-11-29 19:07:57 +00006234 if (SimplifyICmpOperands(FoundPred, FoundLHS, FoundRHS))
6235 if (FoundLHS == FoundRHS)
6236 return CmpInst::isFalseWhenEqual(FoundPred);
Dan Gohman430f0cc2009-07-21 23:03:19 +00006237
6238 // Check to see if we can make the LHS or RHS match.
6239 if (LHS == FoundRHS || RHS == FoundLHS) {
6240 if (isa<SCEVConstant>(RHS)) {
6241 std::swap(FoundLHS, FoundRHS);
6242 FoundPred = ICmpInst::getSwappedPredicate(FoundPred);
6243 } else {
6244 std::swap(LHS, RHS);
6245 Pred = ICmpInst::getSwappedPredicate(Pred);
6246 }
6247 }
6248
6249 // Check whether the found predicate is the same as the desired predicate.
6250 if (FoundPred == Pred)
6251 return isImpliedCondOperands(Pred, LHS, RHS, FoundLHS, FoundRHS);
6252
6253 // Check whether swapping the found predicate makes it the same as the
6254 // desired predicate.
6255 if (ICmpInst::getSwappedPredicate(FoundPred) == Pred) {
6256 if (isa<SCEVConstant>(RHS))
6257 return isImpliedCondOperands(Pred, LHS, RHS, FoundRHS, FoundLHS);
6258 else
6259 return isImpliedCondOperands(ICmpInst::getSwappedPredicate(Pred),
6260 RHS, LHS, FoundLHS, FoundRHS);
6261 }
6262
6263 // Check whether the actual condition is beyond sufficient.
6264 if (FoundPred == ICmpInst::ICMP_EQ)
6265 if (ICmpInst::isTrueWhenEqual(Pred))
6266 if (isImpliedCondOperands(Pred, LHS, RHS, FoundLHS, FoundRHS))
6267 return true;
6268 if (Pred == ICmpInst::ICMP_NE)
6269 if (!ICmpInst::isTrueWhenEqual(FoundPred))
6270 if (isImpliedCondOperands(FoundPred, LHS, RHS, FoundLHS, FoundRHS))
6271 return true;
6272
6273 // Otherwise assume the worst.
6274 return false;
Dan Gohmane65c9172009-07-13 21:35:55 +00006275}
6276
Dan Gohman430f0cc2009-07-21 23:03:19 +00006277/// isImpliedCondOperands - Test whether the condition described by Pred,
Dan Gohman8b0a4192010-03-01 17:49:51 +00006278/// LHS, and RHS is true whenever the condition described by Pred, FoundLHS,
Dan Gohman430f0cc2009-07-21 23:03:19 +00006279/// and FoundRHS is true.
6280bool ScalarEvolution::isImpliedCondOperands(ICmpInst::Predicate Pred,
6281 const SCEV *LHS, const SCEV *RHS,
6282 const SCEV *FoundLHS,
6283 const SCEV *FoundRHS) {
6284 return isImpliedCondOperandsHelper(Pred, LHS, RHS,
6285 FoundLHS, FoundRHS) ||
6286 // ~x < ~y --> x > y
6287 isImpliedCondOperandsHelper(Pred, LHS, RHS,
6288 getNotSCEV(FoundRHS),
6289 getNotSCEV(FoundLHS));
6290}
6291
6292/// isImpliedCondOperandsHelper - Test whether the condition described by
Dan Gohman8b0a4192010-03-01 17:49:51 +00006293/// Pred, LHS, and RHS is true whenever the condition described by Pred,
Dan Gohman430f0cc2009-07-21 23:03:19 +00006294/// FoundLHS, and FoundRHS is true.
Dan Gohmane65c9172009-07-13 21:35:55 +00006295bool
Dan Gohman430f0cc2009-07-21 23:03:19 +00006296ScalarEvolution::isImpliedCondOperandsHelper(ICmpInst::Predicate Pred,
6297 const SCEV *LHS, const SCEV *RHS,
6298 const SCEV *FoundLHS,
6299 const SCEV *FoundRHS) {
Dan Gohmane65c9172009-07-13 21:35:55 +00006300 switch (Pred) {
Dan Gohman8c129d72009-07-16 17:34:36 +00006301 default: llvm_unreachable("Unexpected ICmpInst::Predicate value!");
6302 case ICmpInst::ICMP_EQ:
6303 case ICmpInst::ICMP_NE:
6304 if (HasSameValue(LHS, FoundLHS) && HasSameValue(RHS, FoundRHS))
6305 return true;
6306 break;
Dan Gohmane65c9172009-07-13 21:35:55 +00006307 case ICmpInst::ICMP_SLT:
Dan Gohman8c129d72009-07-16 17:34:36 +00006308 case ICmpInst::ICMP_SLE:
Dan Gohman07591692010-04-11 22:16:48 +00006309 if (isKnownPredicateWithRanges(ICmpInst::ICMP_SLE, LHS, FoundLHS) &&
6310 isKnownPredicateWithRanges(ICmpInst::ICMP_SGE, RHS, FoundRHS))
Dan Gohmane65c9172009-07-13 21:35:55 +00006311 return true;
6312 break;
6313 case ICmpInst::ICMP_SGT:
Dan Gohman8c129d72009-07-16 17:34:36 +00006314 case ICmpInst::ICMP_SGE:
Dan Gohman07591692010-04-11 22:16:48 +00006315 if (isKnownPredicateWithRanges(ICmpInst::ICMP_SGE, LHS, FoundLHS) &&
6316 isKnownPredicateWithRanges(ICmpInst::ICMP_SLE, RHS, FoundRHS))
Dan Gohmane65c9172009-07-13 21:35:55 +00006317 return true;
6318 break;
6319 case ICmpInst::ICMP_ULT:
Dan Gohman8c129d72009-07-16 17:34:36 +00006320 case ICmpInst::ICMP_ULE:
Dan Gohman07591692010-04-11 22:16:48 +00006321 if (isKnownPredicateWithRanges(ICmpInst::ICMP_ULE, LHS, FoundLHS) &&
6322 isKnownPredicateWithRanges(ICmpInst::ICMP_UGE, RHS, FoundRHS))
Dan Gohmane65c9172009-07-13 21:35:55 +00006323 return true;
6324 break;
6325 case ICmpInst::ICMP_UGT:
Dan Gohman8c129d72009-07-16 17:34:36 +00006326 case ICmpInst::ICMP_UGE:
Dan Gohman07591692010-04-11 22:16:48 +00006327 if (isKnownPredicateWithRanges(ICmpInst::ICMP_UGE, LHS, FoundLHS) &&
6328 isKnownPredicateWithRanges(ICmpInst::ICMP_ULE, RHS, FoundRHS))
Dan Gohmane65c9172009-07-13 21:35:55 +00006329 return true;
6330 break;
6331 }
6332
6333 return false;
Dan Gohmanf19aeec2009-06-24 01:18:18 +00006334}
6335
Andrew Trick34e2f0c2013-11-06 02:08:26 +00006336// Verify if an linear IV with positive stride can overflow when in a
6337// less-than comparison, knowing the invariant term of the comparison, the
6338// stride and the knowledge of NSW/NUW flags on the recurrence.
6339bool ScalarEvolution::doesIVOverflowOnLT(const SCEV *RHS, const SCEV *Stride,
6340 bool IsSigned, bool NoWrap) {
6341 if (NoWrap) return false;
Dan Gohman51aaf022010-01-26 04:40:18 +00006342
Andrew Trick34e2f0c2013-11-06 02:08:26 +00006343 unsigned BitWidth = getTypeSizeInBits(RHS->getType());
6344 const SCEV *One = getConstant(Stride->getType(), 1);
Andrew Trick2afa3252011-03-09 17:29:58 +00006345
Andrew Trick34e2f0c2013-11-06 02:08:26 +00006346 if (IsSigned) {
6347 APInt MaxRHS = getSignedRange(RHS).getSignedMax();
6348 APInt MaxValue = APInt::getSignedMaxValue(BitWidth);
6349 APInt MaxStrideMinusOne = getSignedRange(getMinusSCEV(Stride, One))
6350 .getSignedMax();
Andrew Trick2afa3252011-03-09 17:29:58 +00006351
Andrew Trick34e2f0c2013-11-06 02:08:26 +00006352 // SMaxRHS + SMaxStrideMinusOne > SMaxValue => overflow!
6353 return (MaxValue - MaxStrideMinusOne).slt(MaxRHS);
Dan Gohman36bad002009-09-17 18:05:20 +00006354 }
Dan Gohman01048422009-06-21 23:46:38 +00006355
Andrew Trick34e2f0c2013-11-06 02:08:26 +00006356 APInt MaxRHS = getUnsignedRange(RHS).getUnsignedMax();
6357 APInt MaxValue = APInt::getMaxValue(BitWidth);
6358 APInt MaxStrideMinusOne = getUnsignedRange(getMinusSCEV(Stride, One))
6359 .getUnsignedMax();
6360
6361 // UMaxRHS + UMaxStrideMinusOne > UMaxValue => overflow!
6362 return (MaxValue - MaxStrideMinusOne).ult(MaxRHS);
6363}
6364
6365// Verify if an linear IV with negative stride can overflow when in a
6366// greater-than comparison, knowing the invariant term of the comparison,
6367// the stride and the knowledge of NSW/NUW flags on the recurrence.
6368bool ScalarEvolution::doesIVOverflowOnGT(const SCEV *RHS, const SCEV *Stride,
6369 bool IsSigned, bool NoWrap) {
6370 if (NoWrap) return false;
6371
6372 unsigned BitWidth = getTypeSizeInBits(RHS->getType());
6373 const SCEV *One = getConstant(Stride->getType(), 1);
6374
6375 if (IsSigned) {
6376 APInt MinRHS = getSignedRange(RHS).getSignedMin();
6377 APInt MinValue = APInt::getSignedMinValue(BitWidth);
6378 APInt MaxStrideMinusOne = getSignedRange(getMinusSCEV(Stride, One))
6379 .getSignedMax();
6380
6381 // SMinRHS - SMaxStrideMinusOne < SMinValue => overflow!
6382 return (MinValue + MaxStrideMinusOne).sgt(MinRHS);
6383 }
6384
6385 APInt MinRHS = getUnsignedRange(RHS).getUnsignedMin();
6386 APInt MinValue = APInt::getMinValue(BitWidth);
6387 APInt MaxStrideMinusOne = getUnsignedRange(getMinusSCEV(Stride, One))
6388 .getUnsignedMax();
6389
6390 // UMinRHS - UMaxStrideMinusOne < UMinValue => overflow!
6391 return (MinValue + MaxStrideMinusOne).ugt(MinRHS);
6392}
6393
6394// Compute the backedge taken count knowing the interval difference, the
6395// stride and presence of the equality in the comparison.
6396const SCEV *ScalarEvolution::computeBECount(const SCEV *Delta, const SCEV *Step,
6397 bool Equality) {
6398 const SCEV *One = getConstant(Step->getType(), 1);
6399 Delta = Equality ? getAddExpr(Delta, Step)
6400 : getAddExpr(Delta, getMinusSCEV(Step, One));
6401 return getUDivExpr(Delta, Step);
Dan Gohman01048422009-06-21 23:46:38 +00006402}
6403
Chris Lattner587a75b2005-08-15 23:33:51 +00006404/// HowManyLessThans - Return the number of times a backedge containing the
6405/// specified less-than comparison will execute. If not computable, return
Dan Gohman4c720c02009-06-06 14:37:11 +00006406/// CouldNotCompute.
Andrew Trick5b245a12013-05-31 06:43:25 +00006407///
6408/// @param IsSubExpr is true when the LHS < RHS condition does not directly
6409/// control the branch. In this case, we can only compute an iteration count for
6410/// a subexpression that cannot overflow before evaluating true.
Andrew Trick3ca3f982011-07-26 17:19:55 +00006411ScalarEvolution::ExitLimit
Dan Gohmance973df2009-06-24 04:48:43 +00006412ScalarEvolution::HowManyLessThans(const SCEV *LHS, const SCEV *RHS,
Andrew Trick34e2f0c2013-11-06 02:08:26 +00006413 const Loop *L, bool IsSigned,
Andrew Trick5b245a12013-05-31 06:43:25 +00006414 bool IsSubExpr) {
Andrew Trick34e2f0c2013-11-06 02:08:26 +00006415 // We handle only IV < Invariant
6416 if (!isLoopInvariant(RHS, L))
Dan Gohmanc5c85c02009-06-27 21:21:31 +00006417 return getCouldNotCompute();
Chris Lattner587a75b2005-08-15 23:33:51 +00006418
Andrew Trick34e2f0c2013-11-06 02:08:26 +00006419 const SCEVAddRecExpr *IV = dyn_cast<SCEVAddRecExpr>(LHS);
Dan Gohman2b8da352009-04-30 20:47:05 +00006420
Andrew Trick34e2f0c2013-11-06 02:08:26 +00006421 // Avoid weird loops
6422 if (!IV || IV->getLoop() != L || !IV->isAffine())
6423 return getCouldNotCompute();
Chris Lattner587a75b2005-08-15 23:33:51 +00006424
Andrew Trick34e2f0c2013-11-06 02:08:26 +00006425 bool NoWrap = !IsSubExpr &&
6426 IV->getNoWrapFlags(IsSigned ? SCEV::FlagNSW : SCEV::FlagNUW);
Wojciech Matyjewicz35545fd2008-02-13 11:51:34 +00006427
Andrew Trick34e2f0c2013-11-06 02:08:26 +00006428 const SCEV *Stride = IV->getStepRecurrence(*this);
Wojciech Matyjewicz35545fd2008-02-13 11:51:34 +00006429
Andrew Trick34e2f0c2013-11-06 02:08:26 +00006430 // Avoid negative or zero stride values
6431 if (!isKnownPositive(Stride))
6432 return getCouldNotCompute();
Dan Gohman2b8da352009-04-30 20:47:05 +00006433
Andrew Trick34e2f0c2013-11-06 02:08:26 +00006434 // Avoid proven overflow cases: this will ensure that the backedge taken count
6435 // will not generate any unsigned overflow. Relaxed no-overflow conditions
6436 // exploit NoWrapFlags, allowing to optimize in presence of undefined
6437 // behaviors like the case of C language.
6438 if (!Stride->isOne() && doesIVOverflowOnLT(RHS, Stride, IsSigned, NoWrap))
6439 return getCouldNotCompute();
Dan Gohman2b8da352009-04-30 20:47:05 +00006440
Andrew Trick34e2f0c2013-11-06 02:08:26 +00006441 ICmpInst::Predicate Cond = IsSigned ? ICmpInst::ICMP_SLT
6442 : ICmpInst::ICMP_ULT;
6443 const SCEV *Start = IV->getStart();
6444 const SCEV *End = RHS;
6445 if (!isLoopEntryGuardedByCond(L, Cond, getMinusSCEV(Start, Stride), RHS))
6446 End = IsSigned ? getSMaxExpr(RHS, Start)
6447 : getUMaxExpr(RHS, Start);
Dan Gohman51aaf022010-01-26 04:40:18 +00006448
Andrew Trick34e2f0c2013-11-06 02:08:26 +00006449 const SCEV *BECount = computeBECount(getMinusSCEV(End, Start), Stride, false);
Dan Gohman2b8da352009-04-30 20:47:05 +00006450
Andrew Trick34e2f0c2013-11-06 02:08:26 +00006451 APInt MinStart = IsSigned ? getSignedRange(Start).getSignedMin()
6452 : getUnsignedRange(Start).getUnsignedMin();
Andrew Trick2afa3252011-03-09 17:29:58 +00006453
Andrew Trick34e2f0c2013-11-06 02:08:26 +00006454 APInt MinStride = IsSigned ? getSignedRange(Stride).getSignedMin()
6455 : getUnsignedRange(Stride).getUnsignedMin();
Dan Gohman2b8da352009-04-30 20:47:05 +00006456
Andrew Trick34e2f0c2013-11-06 02:08:26 +00006457 unsigned BitWidth = getTypeSizeInBits(LHS->getType());
6458 APInt Limit = IsSigned ? APInt::getSignedMaxValue(BitWidth) - (MinStride - 1)
6459 : APInt::getMaxValue(BitWidth) - (MinStride - 1);
Chris Lattner587a75b2005-08-15 23:33:51 +00006460
Andrew Trick34e2f0c2013-11-06 02:08:26 +00006461 // Although End can be a MAX expression we estimate MaxEnd considering only
6462 // the case End = RHS. This is safe because in the other case (End - Start)
6463 // is zero, leading to a zero maximum backedge taken count.
6464 APInt MaxEnd =
6465 IsSigned ? APIntOps::smin(getSignedRange(RHS).getSignedMax(), Limit)
6466 : APIntOps::umin(getUnsignedRange(RHS).getUnsignedMax(), Limit);
6467
6468 const SCEV *MaxBECount = getCouldNotCompute();
6469 if (isa<SCEVConstant>(BECount))
6470 MaxBECount = BECount;
6471 else
6472 MaxBECount = computeBECount(getConstant(MaxEnd - MinStart),
6473 getConstant(MinStride), false);
6474
6475 if (isa<SCEVCouldNotCompute>(MaxBECount))
6476 MaxBECount = BECount;
6477
6478 return ExitLimit(BECount, MaxBECount);
6479}
6480
6481ScalarEvolution::ExitLimit
6482ScalarEvolution::HowManyGreaterThans(const SCEV *LHS, const SCEV *RHS,
6483 const Loop *L, bool IsSigned,
6484 bool IsSubExpr) {
6485 // We handle only IV > Invariant
6486 if (!isLoopInvariant(RHS, L))
6487 return getCouldNotCompute();
6488
6489 const SCEVAddRecExpr *IV = dyn_cast<SCEVAddRecExpr>(LHS);
6490
6491 // Avoid weird loops
6492 if (!IV || IV->getLoop() != L || !IV->isAffine())
6493 return getCouldNotCompute();
6494
6495 bool NoWrap = !IsSubExpr &&
6496 IV->getNoWrapFlags(IsSigned ? SCEV::FlagNSW : SCEV::FlagNUW);
6497
6498 const SCEV *Stride = getNegativeSCEV(IV->getStepRecurrence(*this));
6499
6500 // Avoid negative or zero stride values
6501 if (!isKnownPositive(Stride))
6502 return getCouldNotCompute();
6503
6504 // Avoid proven overflow cases: this will ensure that the backedge taken count
6505 // will not generate any unsigned overflow. Relaxed no-overflow conditions
6506 // exploit NoWrapFlags, allowing to optimize in presence of undefined
6507 // behaviors like the case of C language.
6508 if (!Stride->isOne() && doesIVOverflowOnGT(RHS, Stride, IsSigned, NoWrap))
6509 return getCouldNotCompute();
6510
6511 ICmpInst::Predicate Cond = IsSigned ? ICmpInst::ICMP_SGT
6512 : ICmpInst::ICMP_UGT;
6513
6514 const SCEV *Start = IV->getStart();
6515 const SCEV *End = RHS;
6516 if (!isLoopEntryGuardedByCond(L, Cond, getAddExpr(Start, Stride), RHS))
6517 End = IsSigned ? getSMinExpr(RHS, Start)
6518 : getUMinExpr(RHS, Start);
6519
6520 const SCEV *BECount = computeBECount(getMinusSCEV(Start, End), Stride, false);
6521
6522 APInt MaxStart = IsSigned ? getSignedRange(Start).getSignedMax()
6523 : getUnsignedRange(Start).getUnsignedMax();
6524
6525 APInt MinStride = IsSigned ? getSignedRange(Stride).getSignedMin()
6526 : getUnsignedRange(Stride).getUnsignedMin();
6527
6528 unsigned BitWidth = getTypeSizeInBits(LHS->getType());
6529 APInt Limit = IsSigned ? APInt::getSignedMinValue(BitWidth) + (MinStride - 1)
6530 : APInt::getMinValue(BitWidth) + (MinStride - 1);
6531
6532 // Although End can be a MIN expression we estimate MinEnd considering only
6533 // the case End = RHS. This is safe because in the other case (Start - End)
6534 // is zero, leading to a zero maximum backedge taken count.
6535 APInt MinEnd =
6536 IsSigned ? APIntOps::smax(getSignedRange(RHS).getSignedMin(), Limit)
6537 : APIntOps::umax(getUnsignedRange(RHS).getUnsignedMin(), Limit);
6538
6539
6540 const SCEV *MaxBECount = getCouldNotCompute();
6541 if (isa<SCEVConstant>(BECount))
6542 MaxBECount = BECount;
6543 else
6544 MaxBECount = computeBECount(getConstant(MaxStart - MinEnd),
6545 getConstant(MinStride), false);
6546
6547 if (isa<SCEVCouldNotCompute>(MaxBECount))
6548 MaxBECount = BECount;
6549
6550 return ExitLimit(BECount, MaxBECount);
Chris Lattner587a75b2005-08-15 23:33:51 +00006551}
6552
Chris Lattnerd934c702004-04-02 20:23:17 +00006553/// getNumIterationsInRange - Return the number of iterations of this loop that
6554/// produce values in the specified constant range. Another way of looking at
6555/// this is that it returns the first iteration number where the value is not in
6556/// the condition, thus computing the exit count. If the iteration count can't
6557/// be computed, an instance of SCEVCouldNotCompute is returned.
Dan Gohmanaf752342009-07-07 17:06:11 +00006558const SCEV *SCEVAddRecExpr::getNumIterationsInRange(ConstantRange Range,
Dan Gohmance973df2009-06-24 04:48:43 +00006559 ScalarEvolution &SE) const {
Chris Lattnerd934c702004-04-02 20:23:17 +00006560 if (Range.isFullSet()) // Infinite loop.
Dan Gohman31efa302009-04-18 17:58:19 +00006561 return SE.getCouldNotCompute();
Chris Lattnerd934c702004-04-02 20:23:17 +00006562
6563 // If the start is a non-zero constant, shift the range to simplify things.
Dan Gohmana30370b2009-05-04 22:02:23 +00006564 if (const SCEVConstant *SC = dyn_cast<SCEVConstant>(getStart()))
Reid Spencer2e54a152007-03-02 00:28:52 +00006565 if (!SC->getValue()->isZero()) {
Dan Gohmanaf752342009-07-07 17:06:11 +00006566 SmallVector<const SCEV *, 4> Operands(op_begin(), op_end());
Dan Gohman1d2ded72010-05-03 22:09:21 +00006567 Operands[0] = SE.getConstant(SC->getType(), 0);
Andrew Trick8b55b732011-03-14 16:50:06 +00006568 const SCEV *Shifted = SE.getAddRecExpr(Operands, getLoop(),
Andrew Trickf6b01ff2011-03-15 00:37:00 +00006569 getNoWrapFlags(FlagNW));
Dan Gohmana30370b2009-05-04 22:02:23 +00006570 if (const SCEVAddRecExpr *ShiftedAddRec =
6571 dyn_cast<SCEVAddRecExpr>(Shifted))
Chris Lattnerd934c702004-04-02 20:23:17 +00006572 return ShiftedAddRec->getNumIterationsInRange(
Dan Gohmana37eaf22007-10-22 18:31:58 +00006573 Range.subtract(SC->getValue()->getValue()), SE);
Chris Lattnerd934c702004-04-02 20:23:17 +00006574 // This is strange and shouldn't happen.
Dan Gohman31efa302009-04-18 17:58:19 +00006575 return SE.getCouldNotCompute();
Chris Lattnerd934c702004-04-02 20:23:17 +00006576 }
6577
6578 // The only time we can solve this is when we have all constant indices.
6579 // Otherwise, we cannot determine the overflow conditions.
6580 for (unsigned i = 0, e = getNumOperands(); i != e; ++i)
6581 if (!isa<SCEVConstant>(getOperand(i)))
Dan Gohman31efa302009-04-18 17:58:19 +00006582 return SE.getCouldNotCompute();
Chris Lattnerd934c702004-04-02 20:23:17 +00006583
6584
6585 // Okay at this point we know that all elements of the chrec are constants and
6586 // that the start element is zero.
6587
6588 // First check to see if the range contains zero. If not, the first
6589 // iteration exits.
Dan Gohmanb397e1a2009-04-21 01:07:12 +00006590 unsigned BitWidth = SE.getTypeSizeInBits(getType());
Dan Gohman0a40ad92009-04-16 03:18:22 +00006591 if (!Range.contains(APInt(BitWidth, 0)))
Dan Gohman1d2ded72010-05-03 22:09:21 +00006592 return SE.getConstant(getType(), 0);
Misha Brukman01808ca2005-04-21 21:13:18 +00006593
Chris Lattnerd934c702004-04-02 20:23:17 +00006594 if (isAffine()) {
6595 // If this is an affine expression then we have this situation:
6596 // Solve {0,+,A} in Range === Ax in Range
6597
Nick Lewycky52460262007-07-16 02:08:00 +00006598 // We know that zero is in the range. If A is positive then we know that
6599 // the upper value of the range must be the first possible exit value.
6600 // If A is negative then the lower of the range is the last possible loop
6601 // value. Also note that we already checked for a full range.
Dan Gohman0a40ad92009-04-16 03:18:22 +00006602 APInt One(BitWidth,1);
Nick Lewycky52460262007-07-16 02:08:00 +00006603 APInt A = cast<SCEVConstant>(getOperand(1))->getValue()->getValue();
6604 APInt End = A.sge(One) ? (Range.getUpper() - One) : Range.getLower();
Chris Lattnerd934c702004-04-02 20:23:17 +00006605
Nick Lewycky52460262007-07-16 02:08:00 +00006606 // The exit value should be (End+A)/A.
Nick Lewycky39349612007-09-27 14:12:54 +00006607 APInt ExitVal = (End + A).udiv(A);
Owen Andersonedb4a702009-07-24 23:12:02 +00006608 ConstantInt *ExitValue = ConstantInt::get(SE.getContext(), ExitVal);
Chris Lattnerd934c702004-04-02 20:23:17 +00006609
6610 // Evaluate at the exit value. If we really did fall out of the valid
6611 // range, then we computed our trip count, otherwise wrap around or other
6612 // things must have happened.
Dan Gohmana37eaf22007-10-22 18:31:58 +00006613 ConstantInt *Val = EvaluateConstantChrecAtConstant(this, ExitValue, SE);
Reid Spencer6a440332007-03-01 07:54:15 +00006614 if (Range.contains(Val->getValue()))
Dan Gohman31efa302009-04-18 17:58:19 +00006615 return SE.getCouldNotCompute(); // Something strange happened
Chris Lattnerd934c702004-04-02 20:23:17 +00006616
6617 // Ensure that the previous value is in the range. This is a sanity check.
Reid Spencer3a7e9d82007-02-28 19:57:34 +00006618 assert(Range.contains(
Dan Gohmance973df2009-06-24 04:48:43 +00006619 EvaluateConstantChrecAtConstant(this,
Owen Andersonedb4a702009-07-24 23:12:02 +00006620 ConstantInt::get(SE.getContext(), ExitVal - One), SE)->getValue()) &&
Chris Lattnerd934c702004-04-02 20:23:17 +00006621 "Linear scev computation is off in a bad way!");
Dan Gohmana37eaf22007-10-22 18:31:58 +00006622 return SE.getConstant(ExitValue);
Chris Lattnerd934c702004-04-02 20:23:17 +00006623 } else if (isQuadratic()) {
6624 // If this is a quadratic (3-term) AddRec {L,+,M,+,N}, find the roots of the
6625 // quadratic equation to solve it. To do this, we must frame our problem in
6626 // terms of figuring out when zero is crossed, instead of when
6627 // Range.getUpper() is crossed.
Dan Gohmanaf752342009-07-07 17:06:11 +00006628 SmallVector<const SCEV *, 4> NewOps(op_begin(), op_end());
Dan Gohmana37eaf22007-10-22 18:31:58 +00006629 NewOps[0] = SE.getNegativeSCEV(SE.getConstant(Range.getUpper()));
Andrew Trick8b55b732011-03-14 16:50:06 +00006630 const SCEV *NewAddRec = SE.getAddRecExpr(NewOps, getLoop(),
6631 // getNoWrapFlags(FlagNW)
6632 FlagAnyWrap);
Chris Lattnerd934c702004-04-02 20:23:17 +00006633
6634 // Next, solve the constructed addrec
Dan Gohmanaf752342009-07-07 17:06:11 +00006635 std::pair<const SCEV *,const SCEV *> Roots =
Dan Gohmana37eaf22007-10-22 18:31:58 +00006636 SolveQuadraticEquation(cast<SCEVAddRecExpr>(NewAddRec), SE);
Dan Gohman48f82222009-05-04 22:30:44 +00006637 const SCEVConstant *R1 = dyn_cast<SCEVConstant>(Roots.first);
6638 const SCEVConstant *R2 = dyn_cast<SCEVConstant>(Roots.second);
Chris Lattnerd934c702004-04-02 20:23:17 +00006639 if (R1) {
6640 // Pick the smallest positive root value.
Zhou Sheng75b871f2007-01-11 12:24:14 +00006641 if (ConstantInt *CB =
Owen Anderson487375e2009-07-29 18:55:55 +00006642 dyn_cast<ConstantInt>(ConstantExpr::getICmp(ICmpInst::ICMP_ULT,
Owen Andersonf1f17432009-07-06 22:37:39 +00006643 R1->getValue(), R2->getValue()))) {
Reid Spencercddc9df2007-01-12 04:24:46 +00006644 if (CB->getZExtValue() == false)
Chris Lattnerd934c702004-04-02 20:23:17 +00006645 std::swap(R1, R2); // R1 is the minimum root now.
Misha Brukman01808ca2005-04-21 21:13:18 +00006646
Chris Lattnerd934c702004-04-02 20:23:17 +00006647 // Make sure the root is not off by one. The returned iteration should
6648 // not be in the range, but the previous one should be. When solving
6649 // for "X*X < 5", for example, we should not return a root of 2.
6650 ConstantInt *R1Val = EvaluateConstantChrecAtConstant(this,
Dan Gohmana37eaf22007-10-22 18:31:58 +00006651 R1->getValue(),
6652 SE);
Reid Spencer6a440332007-03-01 07:54:15 +00006653 if (Range.contains(R1Val->getValue())) {
Chris Lattnerd934c702004-04-02 20:23:17 +00006654 // The next iteration must be out of the range...
Owen Andersonf1f17432009-07-06 22:37:39 +00006655 ConstantInt *NextVal =
Owen Andersonedb4a702009-07-24 23:12:02 +00006656 ConstantInt::get(SE.getContext(), R1->getValue()->getValue()+1);
Misha Brukman01808ca2005-04-21 21:13:18 +00006657
Dan Gohmana37eaf22007-10-22 18:31:58 +00006658 R1Val = EvaluateConstantChrecAtConstant(this, NextVal, SE);
Reid Spencer6a440332007-03-01 07:54:15 +00006659 if (!Range.contains(R1Val->getValue()))
Dan Gohmana37eaf22007-10-22 18:31:58 +00006660 return SE.getConstant(NextVal);
Dan Gohman31efa302009-04-18 17:58:19 +00006661 return SE.getCouldNotCompute(); // Something strange happened
Chris Lattnerd934c702004-04-02 20:23:17 +00006662 }
Misha Brukman01808ca2005-04-21 21:13:18 +00006663
Chris Lattnerd934c702004-04-02 20:23:17 +00006664 // If R1 was not in the range, then it is a good return value. Make
6665 // sure that R1-1 WAS in the range though, just in case.
Owen Andersonf1f17432009-07-06 22:37:39 +00006666 ConstantInt *NextVal =
Owen Andersonedb4a702009-07-24 23:12:02 +00006667 ConstantInt::get(SE.getContext(), R1->getValue()->getValue()-1);
Dan Gohmana37eaf22007-10-22 18:31:58 +00006668 R1Val = EvaluateConstantChrecAtConstant(this, NextVal, SE);
Reid Spencer6a440332007-03-01 07:54:15 +00006669 if (Range.contains(R1Val->getValue()))
Chris Lattnerd934c702004-04-02 20:23:17 +00006670 return R1;
Dan Gohman31efa302009-04-18 17:58:19 +00006671 return SE.getCouldNotCompute(); // Something strange happened
Chris Lattnerd934c702004-04-02 20:23:17 +00006672 }
6673 }
6674 }
6675
Dan Gohman31efa302009-04-18 17:58:19 +00006676 return SE.getCouldNotCompute();
Chris Lattnerd934c702004-04-02 20:23:17 +00006677}
6678
Sebastian Popc62c6792013-11-12 22:47:20 +00006679static const APInt gcd(const SCEVConstant *C1, const SCEVConstant *C2) {
6680 APInt A = C1->getValue()->getValue().abs();
6681 APInt B = C2->getValue()->getValue().abs();
6682 uint32_t ABW = A.getBitWidth();
6683 uint32_t BBW = B.getBitWidth();
Chris Lattnerd934c702004-04-02 20:23:17 +00006684
Sebastian Popc62c6792013-11-12 22:47:20 +00006685 if (ABW > BBW)
Benjamin Kramer5f2768c2013-11-16 16:25:41 +00006686 B = B.zext(ABW);
Sebastian Popc62c6792013-11-12 22:47:20 +00006687 else if (ABW < BBW)
Benjamin Kramer5f2768c2013-11-16 16:25:41 +00006688 A = A.zext(BBW);
Sebastian Popc62c6792013-11-12 22:47:20 +00006689
6690 return APIntOps::GreatestCommonDivisor(A, B);
6691}
6692
6693static const APInt srem(const SCEVConstant *C1, const SCEVConstant *C2) {
6694 APInt A = C1->getValue()->getValue();
6695 APInt B = C2->getValue()->getValue();
6696 uint32_t ABW = A.getBitWidth();
6697 uint32_t BBW = B.getBitWidth();
6698
6699 if (ABW > BBW)
Benjamin Kramer5f2768c2013-11-16 16:25:41 +00006700 B = B.sext(ABW);
Sebastian Popc62c6792013-11-12 22:47:20 +00006701 else if (ABW < BBW)
Benjamin Kramer5f2768c2013-11-16 16:25:41 +00006702 A = A.sext(BBW);
Sebastian Popc62c6792013-11-12 22:47:20 +00006703
6704 return APIntOps::srem(A, B);
6705}
6706
6707static const APInt sdiv(const SCEVConstant *C1, const SCEVConstant *C2) {
6708 APInt A = C1->getValue()->getValue();
6709 APInt B = C2->getValue()->getValue();
6710 uint32_t ABW = A.getBitWidth();
6711 uint32_t BBW = B.getBitWidth();
6712
6713 if (ABW > BBW)
Benjamin Kramer5f2768c2013-11-16 16:25:41 +00006714 B = B.sext(ABW);
Sebastian Popc62c6792013-11-12 22:47:20 +00006715 else if (ABW < BBW)
Benjamin Kramer5f2768c2013-11-16 16:25:41 +00006716 A = A.sext(BBW);
Sebastian Popc62c6792013-11-12 22:47:20 +00006717
6718 return APIntOps::sdiv(A, B);
6719}
6720
6721namespace {
6722struct SCEVGCD : public SCEVVisitor<SCEVGCD, const SCEV *> {
6723public:
6724 // Pattern match Step into Start. When Step is a multiply expression, find
6725 // the largest subexpression of Step that appears in Start. When Start is an
6726 // add expression, try to match Step in the subexpressions of Start, non
6727 // matching subexpressions are returned under Remainder.
6728 static const SCEV *findGCD(ScalarEvolution &SE, const SCEV *Start,
6729 const SCEV *Step, const SCEV **Remainder) {
6730 assert(Remainder && "Remainder should not be NULL");
6731 SCEVGCD R(SE, Step, SE.getConstant(Step->getType(), 0));
6732 const SCEV *Res = R.visit(Start);
6733 *Remainder = R.Remainder;
6734 return Res;
6735 }
6736
6737 SCEVGCD(ScalarEvolution &S, const SCEV *G, const SCEV *R)
6738 : SE(S), GCD(G), Remainder(R) {
6739 Zero = SE.getConstant(GCD->getType(), 0);
6740 One = SE.getConstant(GCD->getType(), 1);
6741 }
6742
6743 const SCEV *visitConstant(const SCEVConstant *Constant) {
6744 if (GCD == Constant || Constant == Zero)
6745 return GCD;
6746
6747 if (const SCEVConstant *CGCD = dyn_cast<SCEVConstant>(GCD)) {
6748 const SCEV *Res = SE.getConstant(gcd(Constant, CGCD));
6749 if (Res != One)
6750 return Res;
6751
6752 Remainder = SE.getConstant(srem(Constant, CGCD));
6753 Constant = cast<SCEVConstant>(SE.getMinusSCEV(Constant, Remainder));
6754 Res = SE.getConstant(gcd(Constant, CGCD));
6755 return Res;
6756 }
6757
6758 // When GCD is not a constant, it could be that the GCD is an Add, Mul,
6759 // AddRec, etc., in which case we want to find out how many times the
6760 // Constant divides the GCD: we then return that as the new GCD.
6761 const SCEV *Rem = Zero;
6762 const SCEV *Res = findGCD(SE, GCD, Constant, &Rem);
6763
6764 if (Res == One || Rem != Zero) {
6765 Remainder = Constant;
6766 return One;
6767 }
6768
6769 assert(isa<SCEVConstant>(Res) && "Res should be a constant");
6770 Remainder = SE.getConstant(srem(Constant, cast<SCEVConstant>(Res)));
6771 return Res;
6772 }
6773
6774 const SCEV *visitTruncateExpr(const SCEVTruncateExpr *Expr) {
6775 if (GCD != Expr)
6776 Remainder = Expr;
6777 return GCD;
6778 }
6779
6780 const SCEV *visitZeroExtendExpr(const SCEVZeroExtendExpr *Expr) {
6781 if (GCD != Expr)
6782 Remainder = Expr;
6783 return GCD;
6784 }
6785
6786 const SCEV *visitSignExtendExpr(const SCEVSignExtendExpr *Expr) {
6787 if (GCD != Expr)
6788 Remainder = Expr;
6789 return GCD;
6790 }
6791
6792 const SCEV *visitAddExpr(const SCEVAddExpr *Expr) {
6793 if (GCD == Expr)
6794 return GCD;
6795
6796 for (int i = 0, e = Expr->getNumOperands(); i < e; ++i) {
6797 const SCEV *Rem = Zero;
6798 const SCEV *Res = findGCD(SE, Expr->getOperand(e - 1 - i), GCD, &Rem);
6799
6800 // FIXME: There may be ambiguous situations: for instance,
6801 // GCD(-4 + (3 * %m), 2 * %m) where 2 divides -4 and %m divides (3 * %m).
6802 // The order in which the AddExpr is traversed computes a different GCD
6803 // and Remainder.
6804 if (Res != One)
6805 GCD = Res;
6806 if (Rem != Zero)
6807 Remainder = SE.getAddExpr(Remainder, Rem);
6808 }
6809
6810 return GCD;
6811 }
6812
6813 const SCEV *visitMulExpr(const SCEVMulExpr *Expr) {
6814 if (GCD == Expr)
6815 return GCD;
6816
6817 for (int i = 0, e = Expr->getNumOperands(); i < e; ++i) {
6818 if (Expr->getOperand(i) == GCD)
6819 return GCD;
6820 }
6821
6822 // If we have not returned yet, it means that GCD is not part of Expr.
6823 const SCEV *PartialGCD = One;
6824 for (int i = 0, e = Expr->getNumOperands(); i < e; ++i) {
6825 const SCEV *Rem = Zero;
6826 const SCEV *Res = findGCD(SE, Expr->getOperand(i), GCD, &Rem);
6827 if (Rem != Zero)
6828 // GCD does not divide Expr->getOperand(i).
6829 continue;
6830
6831 if (Res == GCD)
6832 return GCD;
6833 PartialGCD = SE.getMulExpr(PartialGCD, Res);
6834 if (PartialGCD == GCD)
6835 return GCD;
6836 }
6837
6838 if (PartialGCD != One)
6839 return PartialGCD;
6840
6841 Remainder = Expr;
6842 const SCEVMulExpr *Mul = dyn_cast<SCEVMulExpr>(GCD);
6843 if (!Mul)
6844 return PartialGCD;
6845
6846 // When the GCD is a multiply expression, try to decompose it:
6847 // this occurs when Step does not divide the Start expression
6848 // as in: {(-4 + (3 * %m)),+,(2 * %m)}
6849 for (int i = 0, e = Mul->getNumOperands(); i < e; ++i) {
6850 const SCEV *Rem = Zero;
6851 const SCEV *Res = findGCD(SE, Expr, Mul->getOperand(i), &Rem);
6852 if (Rem == Zero) {
6853 Remainder = Rem;
6854 return Res;
6855 }
6856 }
6857
6858 return PartialGCD;
6859 }
6860
6861 const SCEV *visitUDivExpr(const SCEVUDivExpr *Expr) {
6862 if (GCD != Expr)
6863 Remainder = Expr;
6864 return GCD;
6865 }
6866
6867 const SCEV *visitAddRecExpr(const SCEVAddRecExpr *Expr) {
6868 if (GCD == Expr)
6869 return GCD;
6870
6871 if (!Expr->isAffine()) {
6872 Remainder = Expr;
6873 return GCD;
6874 }
6875
6876 const SCEV *Rem = Zero;
6877 const SCEV *Res = findGCD(SE, Expr->getOperand(0), GCD, &Rem);
6878 if (Rem != Zero)
6879 Remainder = SE.getAddExpr(Remainder, Rem);
6880
6881 Rem = Zero;
6882 Res = findGCD(SE, Expr->getOperand(1), Res, &Rem);
6883 if (Rem != Zero) {
6884 Remainder = Expr;
6885 return GCD;
6886 }
6887
6888 return Res;
6889 }
6890
6891 const SCEV *visitSMaxExpr(const SCEVSMaxExpr *Expr) {
6892 if (GCD != Expr)
6893 Remainder = Expr;
6894 return GCD;
6895 }
6896
6897 const SCEV *visitUMaxExpr(const SCEVUMaxExpr *Expr) {
6898 if (GCD != Expr)
6899 Remainder = Expr;
6900 return GCD;
6901 }
6902
6903 const SCEV *visitUnknown(const SCEVUnknown *Expr) {
6904 if (GCD != Expr)
6905 Remainder = Expr;
6906 return GCD;
6907 }
6908
6909 const SCEV *visitCouldNotCompute(const SCEVCouldNotCompute *Expr) {
6910 return One;
6911 }
6912
6913private:
6914 ScalarEvolution &SE;
6915 const SCEV *GCD, *Remainder, *Zero, *One;
6916};
6917
6918struct SCEVDivision : public SCEVVisitor<SCEVDivision, const SCEV *> {
6919public:
6920 // Remove from Start all multiples of Step.
6921 static const SCEV *divide(ScalarEvolution &SE, const SCEV *Start,
6922 const SCEV *Step) {
6923 SCEVDivision D(SE, Step);
6924 const SCEV *Rem = D.Zero;
6925 (void)Rem;
6926 // The division is guaranteed to succeed: Step should divide Start with no
6927 // remainder.
6928 assert(Step == SCEVGCD::findGCD(SE, Start, Step, &Rem) && Rem == D.Zero &&
6929 "Step should divide Start with no remainder.");
6930 return D.visit(Start);
6931 }
6932
6933 SCEVDivision(ScalarEvolution &S, const SCEV *G) : SE(S), GCD(G) {
6934 Zero = SE.getConstant(GCD->getType(), 0);
6935 One = SE.getConstant(GCD->getType(), 1);
6936 }
6937
6938 const SCEV *visitConstant(const SCEVConstant *Constant) {
6939 if (GCD == Constant)
6940 return One;
6941
6942 if (const SCEVConstant *CGCD = dyn_cast<SCEVConstant>(GCD))
6943 return SE.getConstant(sdiv(Constant, CGCD));
6944 return Constant;
6945 }
6946
6947 const SCEV *visitTruncateExpr(const SCEVTruncateExpr *Expr) {
6948 if (GCD == Expr)
6949 return One;
6950 return Expr;
6951 }
6952
6953 const SCEV *visitZeroExtendExpr(const SCEVZeroExtendExpr *Expr) {
6954 if (GCD == Expr)
6955 return One;
6956 return Expr;
6957 }
6958
6959 const SCEV *visitSignExtendExpr(const SCEVSignExtendExpr *Expr) {
6960 if (GCD == Expr)
6961 return One;
6962 return Expr;
6963 }
6964
6965 const SCEV *visitAddExpr(const SCEVAddExpr *Expr) {
6966 if (GCD == Expr)
6967 return One;
6968
6969 SmallVector<const SCEV *, 2> Operands;
6970 for (int i = 0, e = Expr->getNumOperands(); i < e; ++i)
6971 Operands.push_back(divide(SE, Expr->getOperand(i), GCD));
6972
6973 if (Operands.size() == 1)
6974 return Operands[0];
6975 return SE.getAddExpr(Operands);
6976 }
6977
6978 const SCEV *visitMulExpr(const SCEVMulExpr *Expr) {
6979 if (GCD == Expr)
6980 return One;
6981
6982 bool FoundGCDTerm = false;
6983 for (int i = 0, e = Expr->getNumOperands(); i < e; ++i)
6984 if (Expr->getOperand(i) == GCD)
6985 FoundGCDTerm = true;
6986
6987 SmallVector<const SCEV *, 2> Operands;
6988 if (FoundGCDTerm) {
6989 FoundGCDTerm = false;
6990 for (int i = 0, e = Expr->getNumOperands(); i < e; ++i) {
6991 if (FoundGCDTerm)
6992 Operands.push_back(Expr->getOperand(i));
6993 else if (Expr->getOperand(i) == GCD)
6994 FoundGCDTerm = true;
6995 else
6996 Operands.push_back(Expr->getOperand(i));
6997 }
6998 } else {
6999 FoundGCDTerm = false;
7000 const SCEV *PartialGCD = One;
7001 for (int i = 0, e = Expr->getNumOperands(); i < e; ++i) {
7002 if (PartialGCD == GCD) {
7003 Operands.push_back(Expr->getOperand(i));
7004 continue;
7005 }
7006
7007 const SCEV *Rem = Zero;
7008 const SCEV *Res = SCEVGCD::findGCD(SE, Expr->getOperand(i), GCD, &Rem);
7009 if (Rem == Zero) {
7010 PartialGCD = SE.getMulExpr(PartialGCD, Res);
7011 Operands.push_back(divide(SE, Expr->getOperand(i), GCD));
7012 } else {
7013 Operands.push_back(Expr->getOperand(i));
7014 }
7015 }
7016 }
7017
7018 if (Operands.size() == 1)
7019 return Operands[0];
7020 return SE.getMulExpr(Operands);
7021 }
7022
7023 const SCEV *visitUDivExpr(const SCEVUDivExpr *Expr) {
7024 if (GCD == Expr)
7025 return One;
7026 return Expr;
7027 }
7028
7029 const SCEV *visitAddRecExpr(const SCEVAddRecExpr *Expr) {
7030 if (GCD == Expr)
7031 return One;
7032
7033 assert(Expr->isAffine() && "Expr should be affine");
7034
7035 const SCEV *Start = divide(SE, Expr->getStart(), GCD);
7036 const SCEV *Step = divide(SE, Expr->getStepRecurrence(SE), GCD);
7037
7038 return SE.getAddRecExpr(Start, Step, Expr->getLoop(),
7039 Expr->getNoWrapFlags());
7040 }
7041
7042 const SCEV *visitSMaxExpr(const SCEVSMaxExpr *Expr) {
7043 if (GCD == Expr)
7044 return One;
7045 return Expr;
7046 }
7047
7048 const SCEV *visitUMaxExpr(const SCEVUMaxExpr *Expr) {
7049 if (GCD == Expr)
7050 return One;
7051 return Expr;
7052 }
7053
7054 const SCEV *visitUnknown(const SCEVUnknown *Expr) {
7055 if (GCD == Expr)
7056 return One;
7057 return Expr;
7058 }
7059
7060 const SCEV *visitCouldNotCompute(const SCEVCouldNotCompute *Expr) {
7061 return Expr;
7062 }
7063
7064private:
7065 ScalarEvolution &SE;
7066 const SCEV *GCD, *Zero, *One;
7067};
7068}
7069
7070/// Splits the SCEV into two vectors of SCEVs representing the subscripts and
7071/// sizes of an array access. Returns the remainder of the delinearization that
Sebastian Pop7ee14722013-11-13 22:37:58 +00007072/// is the offset start of the array. The SCEV->delinearize algorithm computes
7073/// the multiples of SCEV coefficients: that is a pattern matching of sub
7074/// expressions in the stride and base of a SCEV corresponding to the
7075/// computation of a GCD (greatest common divisor) of base and stride. When
7076/// SCEV->delinearize fails, it returns the SCEV unchanged.
7077///
7078/// For example: when analyzing the memory access A[i][j][k] in this loop nest
7079///
7080/// void foo(long n, long m, long o, double A[n][m][o]) {
7081///
7082/// for (long i = 0; i < n; i++)
7083/// for (long j = 0; j < m; j++)
7084/// for (long k = 0; k < o; k++)
7085/// A[i][j][k] = 1.0;
7086/// }
7087///
7088/// the delinearization input is the following AddRec SCEV:
7089///
7090/// AddRec: {{{%A,+,(8 * %m * %o)}<%for.i>,+,(8 * %o)}<%for.j>,+,8}<%for.k>
7091///
7092/// From this SCEV, we are able to say that the base offset of the access is %A
7093/// because it appears as an offset that does not divide any of the strides in
7094/// the loops:
7095///
7096/// CHECK: Base offset: %A
7097///
7098/// and then SCEV->delinearize determines the size of some of the dimensions of
7099/// the array as these are the multiples by which the strides are happening:
7100///
7101/// CHECK: ArrayDecl[UnknownSize][%m][%o] with elements of sizeof(double) bytes.
7102///
7103/// Note that the outermost dimension remains of UnknownSize because there are
7104/// no strides that would help identifying the size of the last dimension: when
7105/// the array has been statically allocated, one could compute the size of that
7106/// dimension by dividing the overall size of the array by the size of the known
7107/// dimensions: %m * %o * 8.
7108///
7109/// Finally delinearize provides the access functions for the array reference
7110/// that does correspond to A[i][j][k] of the above C testcase:
7111///
7112/// CHECK: ArrayRef[{0,+,1}<%for.i>][{0,+,1}<%for.j>][{0,+,1}<%for.k>]
7113///
7114/// The testcases are checking the output of a function pass:
7115/// DelinearizationPass that walks through all loads and stores of a function
7116/// asking for the SCEV of the memory access with respect to all enclosing
7117/// loops, calling SCEV->delinearize on that and printing the results.
7118
Sebastian Popc62c6792013-11-12 22:47:20 +00007119const SCEV *
7120SCEVAddRecExpr::delinearize(ScalarEvolution &SE,
7121 SmallVectorImpl<const SCEV *> &Subscripts,
7122 SmallVectorImpl<const SCEV *> &Sizes) const {
Sebastian Pop7ee14722013-11-13 22:37:58 +00007123 // Early exit in case this SCEV is not an affine multivariate function.
Sebastian Popc62c6792013-11-12 22:47:20 +00007124 if (!this->isAffine())
7125 return this;
7126
7127 const SCEV *Start = this->getStart();
7128 const SCEV *Step = this->getStepRecurrence(SE);
Sebastian Pop7ee14722013-11-13 22:37:58 +00007129
7130 // Build the SCEV representation of the cannonical induction variable in the
7131 // loop of this SCEV.
Sebastian Popc62c6792013-11-12 22:47:20 +00007132 const SCEV *Zero = SE.getConstant(this->getType(), 0);
7133 const SCEV *One = SE.getConstant(this->getType(), 1);
7134 const SCEV *IV =
7135 SE.getAddRecExpr(Zero, One, this->getLoop(), this->getNoWrapFlags());
7136
7137 DEBUG(dbgs() << "(delinearize: " << *this << "\n");
7138
Sebastian Pop7ee14722013-11-13 22:37:58 +00007139 // Currently we fail to delinearize when the stride of this SCEV is 1. We
7140 // could decide to not fail in this case: we could just return 1 for the size
7141 // of the subscript, and this same SCEV for the access function.
Sebastian Popc62c6792013-11-12 22:47:20 +00007142 if (Step == One) {
7143 DEBUG(dbgs() << "failed to delinearize " << *this << "\n)\n");
7144 return this;
7145 }
7146
Sebastian Pop7ee14722013-11-13 22:37:58 +00007147 // Find the GCD and Remainder of the Start and Step coefficients of this SCEV.
Sebastian Popc62c6792013-11-12 22:47:20 +00007148 const SCEV *Remainder = NULL;
7149 const SCEV *GCD = SCEVGCD::findGCD(SE, Start, Step, &Remainder);
7150
7151 DEBUG(dbgs() << "GCD: " << *GCD << "\n");
7152 DEBUG(dbgs() << "Remainder: " << *Remainder << "\n");
7153
Sebastian Pop7ee14722013-11-13 22:37:58 +00007154 // Same remark as above: we currently fail the delinearization, although we
7155 // can very well handle this special case.
Sebastian Popc62c6792013-11-12 22:47:20 +00007156 if (GCD == One) {
7157 DEBUG(dbgs() << "failed to delinearize " << *this << "\n)\n");
7158 return this;
7159 }
7160
Sebastian Pop7ee14722013-11-13 22:37:58 +00007161 // As findGCD computed Remainder, GCD divides "Start - Remainder." The
7162 // Quotient is then this SCEV without Remainder, scaled down by the GCD. The
7163 // Quotient is what will be used in the next subscript delinearization.
Sebastian Popc62c6792013-11-12 22:47:20 +00007164 const SCEV *Quotient =
7165 SCEVDivision::divide(SE, SE.getMinusSCEV(Start, Remainder), GCD);
7166 DEBUG(dbgs() << "Quotient: " << *Quotient << "\n");
7167
7168 const SCEV *Rem;
7169 if (const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(Quotient))
Sebastian Pop7ee14722013-11-13 22:37:58 +00007170 // Recursively call delinearize on the Quotient until there are no more
7171 // multiples that can be recognized.
Sebastian Popc62c6792013-11-12 22:47:20 +00007172 Rem = AR->delinearize(SE, Subscripts, Sizes);
7173 else
7174 Rem = Quotient;
7175
Sebastian Pop7ee14722013-11-13 22:37:58 +00007176 // Scale up the cannonical induction variable IV by whatever remains from the
7177 // Step after division by the GCD: the GCD is the size of all the sub-array.
Sebastian Popc62c6792013-11-12 22:47:20 +00007178 if (Step != GCD) {
7179 Step = SCEVDivision::divide(SE, Step, GCD);
7180 IV = SE.getMulExpr(IV, Step);
7181 }
Sebastian Pop7ee14722013-11-13 22:37:58 +00007182 // The access function in the current subscript is computed as the cannonical
7183 // induction variable IV (potentially scaled up by the step) and offset by
7184 // Rem, the offset of delinearization in the sub-array.
Sebastian Popc62c6792013-11-12 22:47:20 +00007185 const SCEV *Index = SE.getAddExpr(IV, Rem);
7186
Sebastian Pop7ee14722013-11-13 22:37:58 +00007187 // Record the access function and the size of the current subscript.
Sebastian Popc62c6792013-11-12 22:47:20 +00007188 Subscripts.push_back(Index);
7189 Sizes.push_back(GCD);
7190
7191#ifndef NDEBUG
7192 int Size = Sizes.size();
7193 DEBUG(dbgs() << "succeeded to delinearize " << *this << "\n");
7194 DEBUG(dbgs() << "ArrayDecl[UnknownSize]");
7195 for (int i = 0; i < Size - 1; i++)
7196 DEBUG(dbgs() << "[" << *Sizes[i] << "]");
7197 DEBUG(dbgs() << " with elements of " << *Sizes[Size - 1] << " bytes.\n");
7198
7199 DEBUG(dbgs() << "ArrayRef");
7200 for (int i = 0; i < Size; i++)
7201 DEBUG(dbgs() << "[" << *Subscripts[i] << "]");
7202 DEBUG(dbgs() << "\n)\n");
7203#endif
7204
7205 return Remainder;
7206}
Chris Lattnerd934c702004-04-02 20:23:17 +00007207
7208//===----------------------------------------------------------------------===//
Dan Gohman48f82222009-05-04 22:30:44 +00007209// SCEVCallbackVH Class Implementation
7210//===----------------------------------------------------------------------===//
7211
Dan Gohmand33a0902009-05-19 19:22:47 +00007212void ScalarEvolution::SCEVCallbackVH::deleted() {
Dan Gohmandd707af2009-07-13 22:20:53 +00007213 assert(SE && "SCEVCallbackVH called with a null ScalarEvolution!");
Dan Gohman48f82222009-05-04 22:30:44 +00007214 if (PHINode *PN = dyn_cast<PHINode>(getValPtr()))
7215 SE->ConstantEvolutionLoopExitValue.erase(PN);
Dan Gohman9bad2fb2010-08-27 18:55:03 +00007216 SE->ValueExprMap.erase(getValPtr());
Dan Gohman48f82222009-05-04 22:30:44 +00007217 // this now dangles!
7218}
7219
Dan Gohman7a066722010-07-28 01:09:07 +00007220void ScalarEvolution::SCEVCallbackVH::allUsesReplacedWith(Value *V) {
Dan Gohmandd707af2009-07-13 22:20:53 +00007221 assert(SE && "SCEVCallbackVH called with a null ScalarEvolution!");
Eric Christopheref6d5932010-07-29 01:25:38 +00007222
Dan Gohman48f82222009-05-04 22:30:44 +00007223 // Forget all the expressions associated with users of the old value,
7224 // so that future queries will recompute the expressions using the new
7225 // value.
Dan Gohman7cac9572010-08-02 23:49:30 +00007226 Value *Old = getValPtr();
Dan Gohman48f82222009-05-04 22:30:44 +00007227 SmallVector<User *, 16> Worklist;
Dan Gohmanf34f8632009-07-14 14:34:04 +00007228 SmallPtrSet<User *, 8> Visited;
Dan Gohman48f82222009-05-04 22:30:44 +00007229 for (Value::use_iterator UI = Old->use_begin(), UE = Old->use_end();
7230 UI != UE; ++UI)
7231 Worklist.push_back(*UI);
7232 while (!Worklist.empty()) {
7233 User *U = Worklist.pop_back_val();
7234 // Deleting the Old value will cause this to dangle. Postpone
7235 // that until everything else is done.
Dan Gohman8aeb0fb2010-07-28 00:28:25 +00007236 if (U == Old)
Dan Gohman48f82222009-05-04 22:30:44 +00007237 continue;
Dan Gohmanf34f8632009-07-14 14:34:04 +00007238 if (!Visited.insert(U))
7239 continue;
Dan Gohman48f82222009-05-04 22:30:44 +00007240 if (PHINode *PN = dyn_cast<PHINode>(U))
7241 SE->ConstantEvolutionLoopExitValue.erase(PN);
Dan Gohman9bad2fb2010-08-27 18:55:03 +00007242 SE->ValueExprMap.erase(U);
Dan Gohmanf34f8632009-07-14 14:34:04 +00007243 for (Value::use_iterator UI = U->use_begin(), UE = U->use_end();
7244 UI != UE; ++UI)
7245 Worklist.push_back(*UI);
Dan Gohman48f82222009-05-04 22:30:44 +00007246 }
Dan Gohman8aeb0fb2010-07-28 00:28:25 +00007247 // Delete the Old value.
7248 if (PHINode *PN = dyn_cast<PHINode>(Old))
7249 SE->ConstantEvolutionLoopExitValue.erase(PN);
Dan Gohman9bad2fb2010-08-27 18:55:03 +00007250 SE->ValueExprMap.erase(Old);
Dan Gohman8aeb0fb2010-07-28 00:28:25 +00007251 // this now dangles!
Dan Gohman48f82222009-05-04 22:30:44 +00007252}
7253
Dan Gohmand33a0902009-05-19 19:22:47 +00007254ScalarEvolution::SCEVCallbackVH::SCEVCallbackVH(Value *V, ScalarEvolution *se)
Dan Gohman48f82222009-05-04 22:30:44 +00007255 : CallbackVH(V), SE(se) {}
7256
7257//===----------------------------------------------------------------------===//
Chris Lattnerd934c702004-04-02 20:23:17 +00007258// ScalarEvolution Class Implementation
7259//===----------------------------------------------------------------------===//
7260
Dan Gohmanc8e23622009-04-21 23:15:49 +00007261ScalarEvolution::ScalarEvolution()
Wan Xiaofeib2c8cdc2013-11-12 09:40:41 +00007262 : FunctionPass(ID), ValuesAtScopes(64), LoopDispositions(64), BlockDispositions(64), FirstUnknown(0) {
Owen Anderson6c18d1a2010-10-19 17:21:58 +00007263 initializeScalarEvolutionPass(*PassRegistry::getPassRegistry());
Dan Gohmanc8e23622009-04-21 23:15:49 +00007264}
7265
Chris Lattnerd934c702004-04-02 20:23:17 +00007266bool ScalarEvolution::runOnFunction(Function &F) {
Dan Gohmanc8e23622009-04-21 23:15:49 +00007267 this->F = &F;
7268 LI = &getAnalysis<LoopInfo>();
Micah Villmowcdfe20b2012-10-08 16:38:25 +00007269 TD = getAnalysisIfAvailable<DataLayout>();
Chad Rosierc24b86f2011-12-01 03:08:23 +00007270 TLI = &getAnalysis<TargetLibraryInfo>();
Chandler Carruth73523022014-01-13 13:07:17 +00007271 DT = &getAnalysis<DominatorTreeWrapperPass>().getDomTree();
Chris Lattnerd934c702004-04-02 20:23:17 +00007272 return false;
7273}
7274
7275void ScalarEvolution::releaseMemory() {
Dan Gohman7cac9572010-08-02 23:49:30 +00007276 // Iterate through all the SCEVUnknown instances and call their
7277 // destructors, so that they release their references to their values.
7278 for (SCEVUnknown *U = FirstUnknown; U; U = U->Next)
7279 U->~SCEVUnknown();
7280 FirstUnknown = 0;
7281
Dan Gohman9bad2fb2010-08-27 18:55:03 +00007282 ValueExprMap.clear();
Andrew Trick3ca3f982011-07-26 17:19:55 +00007283
7284 // Free any extra memory created for ExitNotTakenInfo in the unlikely event
7285 // that a loop had multiple computable exits.
7286 for (DenseMap<const Loop*, BackedgeTakenInfo>::iterator I =
7287 BackedgeTakenCounts.begin(), E = BackedgeTakenCounts.end();
7288 I != E; ++I) {
7289 I->second.clear();
7290 }
7291
Andrew Trick7fa4e0f2012-05-19 00:48:25 +00007292 assert(PendingLoopPredicates.empty() && "isImpliedCond garbage");
7293
Dan Gohmanc8e23622009-04-21 23:15:49 +00007294 BackedgeTakenCounts.clear();
7295 ConstantEvolutionLoopExitValue.clear();
Dan Gohman5122d612009-05-08 20:47:27 +00007296 ValuesAtScopes.clear();
Dan Gohman7ee1bbb2010-11-17 23:21:44 +00007297 LoopDispositions.clear();
Dan Gohman8ea83d82010-11-18 00:34:22 +00007298 BlockDispositions.clear();
Dan Gohman761065e2010-11-17 02:44:44 +00007299 UnsignedRanges.clear();
7300 SignedRanges.clear();
Dan Gohmanc5c85c02009-06-27 21:21:31 +00007301 UniqueSCEVs.clear();
7302 SCEVAllocator.Reset();
Chris Lattnerd934c702004-04-02 20:23:17 +00007303}
7304
7305void ScalarEvolution::getAnalysisUsage(AnalysisUsage &AU) const {
7306 AU.setPreservesAll();
Chris Lattnerd934c702004-04-02 20:23:17 +00007307 AU.addRequiredTransitive<LoopInfo>();
Chandler Carruth73523022014-01-13 13:07:17 +00007308 AU.addRequiredTransitive<DominatorTreeWrapperPass>();
Chad Rosierc24b86f2011-12-01 03:08:23 +00007309 AU.addRequired<TargetLibraryInfo>();
Dan Gohman0a40ad92009-04-16 03:18:22 +00007310}
7311
Dan Gohmanc8e23622009-04-21 23:15:49 +00007312bool ScalarEvolution::hasLoopInvariantBackedgeTakenCount(const Loop *L) {
Dan Gohman0bddac12009-02-24 18:55:53 +00007313 return !isa<SCEVCouldNotCompute>(getBackedgeTakenCount(L));
Chris Lattnerd934c702004-04-02 20:23:17 +00007314}
7315
Dan Gohmanc8e23622009-04-21 23:15:49 +00007316static void PrintLoopInfo(raw_ostream &OS, ScalarEvolution *SE,
Chris Lattnerd934c702004-04-02 20:23:17 +00007317 const Loop *L) {
7318 // Print all inner loops first
7319 for (Loop::iterator I = L->begin(), E = L->end(); I != E; ++I)
7320 PrintLoopInfo(OS, SE, *I);
Misha Brukman01808ca2005-04-21 21:13:18 +00007321
Dan Gohmanbc694912010-01-09 18:17:45 +00007322 OS << "Loop ";
Chandler Carruthd48cdbf2014-01-09 02:29:41 +00007323 L->getHeader()->printAsOperand(OS, /*PrintType=*/false);
Dan Gohmanbc694912010-01-09 18:17:45 +00007324 OS << ": ";
Chris Lattnerd72c3eb2004-04-18 22:14:10 +00007325
Dan Gohmancb0efec2009-12-18 01:14:11 +00007326 SmallVector<BasicBlock *, 8> ExitBlocks;
Chris Lattnerd72c3eb2004-04-18 22:14:10 +00007327 L->getExitBlocks(ExitBlocks);
7328 if (ExitBlocks.size() != 1)
Nick Lewyckyd1200b02008-01-02 02:49:20 +00007329 OS << "<multiple exits> ";
Chris Lattnerd934c702004-04-02 20:23:17 +00007330
Dan Gohman0bddac12009-02-24 18:55:53 +00007331 if (SE->hasLoopInvariantBackedgeTakenCount(L)) {
7332 OS << "backedge-taken count is " << *SE->getBackedgeTakenCount(L);
Chris Lattnerd934c702004-04-02 20:23:17 +00007333 } else {
Dan Gohman0bddac12009-02-24 18:55:53 +00007334 OS << "Unpredictable backedge-taken count. ";
Chris Lattnerd934c702004-04-02 20:23:17 +00007335 }
7336
Dan Gohmanbc694912010-01-09 18:17:45 +00007337 OS << "\n"
7338 "Loop ";
Chandler Carruthd48cdbf2014-01-09 02:29:41 +00007339 L->getHeader()->printAsOperand(OS, /*PrintType=*/false);
Dan Gohmanbc694912010-01-09 18:17:45 +00007340 OS << ": ";
Dan Gohman69942932009-06-24 00:33:16 +00007341
7342 if (!isa<SCEVCouldNotCompute>(SE->getMaxBackedgeTakenCount(L))) {
7343 OS << "max backedge-taken count is " << *SE->getMaxBackedgeTakenCount(L);
7344 } else {
7345 OS << "Unpredictable max backedge-taken count. ";
7346 }
7347
7348 OS << "\n";
Chris Lattnerd934c702004-04-02 20:23:17 +00007349}
7350
Dan Gohmancb0efec2009-12-18 01:14:11 +00007351void ScalarEvolution::print(raw_ostream &OS, const Module *) const {
Dan Gohman8b0a4192010-03-01 17:49:51 +00007352 // ScalarEvolution's implementation of the print method is to print
Dan Gohmanc8e23622009-04-21 23:15:49 +00007353 // out SCEV values of all instructions that are interesting. Doing
7354 // this potentially causes it to create new SCEV objects though,
7355 // which technically conflicts with the const qualifier. This isn't
Dan Gohman028e6152009-07-10 20:25:29 +00007356 // observable from outside the class though, so casting away the
7357 // const isn't dangerous.
Dan Gohmancb0efec2009-12-18 01:14:11 +00007358 ScalarEvolution &SE = *const_cast<ScalarEvolution *>(this);
Chris Lattnerd934c702004-04-02 20:23:17 +00007359
Dan Gohmanbc694912010-01-09 18:17:45 +00007360 OS << "Classifying expressions for: ";
Chandler Carruthd48cdbf2014-01-09 02:29:41 +00007361 F->printAsOperand(OS, /*PrintType=*/false);
Dan Gohmanbc694912010-01-09 18:17:45 +00007362 OS << "\n";
Chris Lattnerd934c702004-04-02 20:23:17 +00007363 for (inst_iterator I = inst_begin(F), E = inst_end(F); I != E; ++I)
Dan Gohmand18dc2c2010-05-03 17:03:23 +00007364 if (isSCEVable(I->getType()) && !isa<CmpInst>(*I)) {
Dan Gohmanfda3c4a2009-07-13 23:03:05 +00007365 OS << *I << '\n';
Dan Gohman81313fd2008-09-14 17:21:12 +00007366 OS << " --> ";
Dan Gohmanaf752342009-07-07 17:06:11 +00007367 const SCEV *SV = SE.getSCEV(&*I);
Chris Lattnerd934c702004-04-02 20:23:17 +00007368 SV->print(OS);
Misha Brukman01808ca2005-04-21 21:13:18 +00007369
Dan Gohmanb9063a82009-06-19 17:49:54 +00007370 const Loop *L = LI->getLoopFor((*I).getParent());
7371
Dan Gohmanaf752342009-07-07 17:06:11 +00007372 const SCEV *AtUse = SE.getSCEVAtScope(SV, L);
Dan Gohmanb9063a82009-06-19 17:49:54 +00007373 if (AtUse != SV) {
7374 OS << " --> ";
7375 AtUse->print(OS);
7376 }
7377
7378 if (L) {
Dan Gohman94c468f2009-06-18 00:37:45 +00007379 OS << "\t\t" "Exits: ";
Dan Gohmanaf752342009-07-07 17:06:11 +00007380 const SCEV *ExitValue = SE.getSCEVAtScope(SV, L->getParentLoop());
Dan Gohmanafd6db92010-11-17 21:23:15 +00007381 if (!SE.isLoopInvariant(ExitValue, L)) {
Chris Lattnerd934c702004-04-02 20:23:17 +00007382 OS << "<<Unknown>>";
7383 } else {
7384 OS << *ExitValue;
7385 }
7386 }
7387
Chris Lattnerd934c702004-04-02 20:23:17 +00007388 OS << "\n";
7389 }
7390
Dan Gohmanbc694912010-01-09 18:17:45 +00007391 OS << "Determining loop execution counts for: ";
Chandler Carruthd48cdbf2014-01-09 02:29:41 +00007392 F->printAsOperand(OS, /*PrintType=*/false);
Dan Gohmanbc694912010-01-09 18:17:45 +00007393 OS << "\n";
Dan Gohmanc8e23622009-04-21 23:15:49 +00007394 for (LoopInfo::iterator I = LI->begin(), E = LI->end(); I != E; ++I)
7395 PrintLoopInfo(OS, &SE, *I);
Chris Lattnerd934c702004-04-02 20:23:17 +00007396}
Dan Gohmane20f8242009-04-21 00:47:46 +00007397
Dan Gohman7ee1bbb2010-11-17 23:21:44 +00007398ScalarEvolution::LoopDisposition
7399ScalarEvolution::getLoopDisposition(const SCEV *S, const Loop *L) {
Wan Xiaofeib2c8cdc2013-11-12 09:40:41 +00007400 SmallVector<std::pair<const Loop *, LoopDisposition>, 2> &Values = LoopDispositions[S];
7401 for (unsigned u = 0; u < Values.size(); u++) {
7402 if (Values[u].first == L)
7403 return Values[u].second;
7404 }
7405 Values.push_back(std::make_pair(L, LoopVariant));
Dan Gohman7ee1bbb2010-11-17 23:21:44 +00007406 LoopDisposition D = computeLoopDisposition(S, L);
Wan Xiaofeib2c8cdc2013-11-12 09:40:41 +00007407 SmallVector<std::pair<const Loop *, LoopDisposition>, 2> &Values2 = LoopDispositions[S];
7408 for (unsigned u = Values2.size(); u > 0; u--) {
7409 if (Values2[u - 1].first == L) {
7410 Values2[u - 1].second = D;
7411 break;
7412 }
7413 }
7414 return D;
Dan Gohman7ee1bbb2010-11-17 23:21:44 +00007415}
7416
7417ScalarEvolution::LoopDisposition
7418ScalarEvolution::computeLoopDisposition(const SCEV *S, const Loop *L) {
Dan Gohmanafd6db92010-11-17 21:23:15 +00007419 switch (S->getSCEVType()) {
7420 case scConstant:
Dan Gohman7ee1bbb2010-11-17 23:21:44 +00007421 return LoopInvariant;
Dan Gohmanafd6db92010-11-17 21:23:15 +00007422 case scTruncate:
7423 case scZeroExtend:
7424 case scSignExtend:
Dan Gohman7ee1bbb2010-11-17 23:21:44 +00007425 return getLoopDisposition(cast<SCEVCastExpr>(S)->getOperand(), L);
Dan Gohmanafd6db92010-11-17 21:23:15 +00007426 case scAddRecExpr: {
7427 const SCEVAddRecExpr *AR = cast<SCEVAddRecExpr>(S);
7428
Dan Gohman7ee1bbb2010-11-17 23:21:44 +00007429 // If L is the addrec's loop, it's computable.
7430 if (AR->getLoop() == L)
7431 return LoopComputable;
7432
Dan Gohmanafd6db92010-11-17 21:23:15 +00007433 // Add recurrences are never invariant in the function-body (null loop).
7434 if (!L)
Dan Gohman7ee1bbb2010-11-17 23:21:44 +00007435 return LoopVariant;
Dan Gohmanafd6db92010-11-17 21:23:15 +00007436
7437 // This recurrence is variant w.r.t. L if L contains AR's loop.
7438 if (L->contains(AR->getLoop()))
Dan Gohman7ee1bbb2010-11-17 23:21:44 +00007439 return LoopVariant;
Dan Gohmanafd6db92010-11-17 21:23:15 +00007440
7441 // This recurrence is invariant w.r.t. L if AR's loop contains L.
7442 if (AR->getLoop()->contains(L))
Dan Gohman7ee1bbb2010-11-17 23:21:44 +00007443 return LoopInvariant;
Dan Gohmanafd6db92010-11-17 21:23:15 +00007444
7445 // This recurrence is variant w.r.t. L if any of its operands
7446 // are variant.
7447 for (SCEVAddRecExpr::op_iterator I = AR->op_begin(), E = AR->op_end();
7448 I != E; ++I)
7449 if (!isLoopInvariant(*I, L))
Dan Gohman7ee1bbb2010-11-17 23:21:44 +00007450 return LoopVariant;
Dan Gohmanafd6db92010-11-17 21:23:15 +00007451
7452 // Otherwise it's loop-invariant.
Dan Gohman7ee1bbb2010-11-17 23:21:44 +00007453 return LoopInvariant;
Dan Gohmanafd6db92010-11-17 21:23:15 +00007454 }
7455 case scAddExpr:
7456 case scMulExpr:
7457 case scUMaxExpr:
7458 case scSMaxExpr: {
7459 const SCEVNAryExpr *NAry = cast<SCEVNAryExpr>(S);
Dan Gohmanafd6db92010-11-17 21:23:15 +00007460 bool HasVarying = false;
7461 for (SCEVNAryExpr::op_iterator I = NAry->op_begin(), E = NAry->op_end();
7462 I != E; ++I) {
Dan Gohman7ee1bbb2010-11-17 23:21:44 +00007463 LoopDisposition D = getLoopDisposition(*I, L);
7464 if (D == LoopVariant)
7465 return LoopVariant;
7466 if (D == LoopComputable)
7467 HasVarying = true;
Dan Gohmanafd6db92010-11-17 21:23:15 +00007468 }
Dan Gohman7ee1bbb2010-11-17 23:21:44 +00007469 return HasVarying ? LoopComputable : LoopInvariant;
Dan Gohmanafd6db92010-11-17 21:23:15 +00007470 }
7471 case scUDivExpr: {
7472 const SCEVUDivExpr *UDiv = cast<SCEVUDivExpr>(S);
Dan Gohman7ee1bbb2010-11-17 23:21:44 +00007473 LoopDisposition LD = getLoopDisposition(UDiv->getLHS(), L);
7474 if (LD == LoopVariant)
7475 return LoopVariant;
7476 LoopDisposition RD = getLoopDisposition(UDiv->getRHS(), L);
7477 if (RD == LoopVariant)
7478 return LoopVariant;
7479 return (LD == LoopInvariant && RD == LoopInvariant) ?
7480 LoopInvariant : LoopComputable;
Dan Gohmanafd6db92010-11-17 21:23:15 +00007481 }
7482 case scUnknown:
Dan Gohman7ee1bbb2010-11-17 23:21:44 +00007483 // All non-instruction values are loop invariant. All instructions are loop
7484 // invariant if they are not contained in the specified loop.
7485 // Instructions are never considered invariant in the function body
7486 // (null loop) because they are defined within the "loop".
7487 if (Instruction *I = dyn_cast<Instruction>(cast<SCEVUnknown>(S)->getValue()))
7488 return (L && !L->contains(I)) ? LoopInvariant : LoopVariant;
7489 return LoopInvariant;
Dan Gohmanafd6db92010-11-17 21:23:15 +00007490 case scCouldNotCompute:
7491 llvm_unreachable("Attempt to use a SCEVCouldNotCompute object!");
David Blaikie46a9f012012-01-20 21:51:11 +00007492 default: llvm_unreachable("Unknown SCEV kind!");
Dan Gohmanafd6db92010-11-17 21:23:15 +00007493 }
Dan Gohman7ee1bbb2010-11-17 23:21:44 +00007494}
7495
7496bool ScalarEvolution::isLoopInvariant(const SCEV *S, const Loop *L) {
7497 return getLoopDisposition(S, L) == LoopInvariant;
7498}
7499
7500bool ScalarEvolution::hasComputableLoopEvolution(const SCEV *S, const Loop *L) {
7501 return getLoopDisposition(S, L) == LoopComputable;
Dan Gohmanafd6db92010-11-17 21:23:15 +00007502}
Dan Gohman20d9ce22010-11-17 21:41:58 +00007503
Dan Gohman8ea83d82010-11-18 00:34:22 +00007504ScalarEvolution::BlockDisposition
7505ScalarEvolution::getBlockDisposition(const SCEV *S, const BasicBlock *BB) {
Wan Xiaofeib2c8cdc2013-11-12 09:40:41 +00007506 SmallVector<std::pair<const BasicBlock *, BlockDisposition>, 2> &Values = BlockDispositions[S];
7507 for (unsigned u = 0; u < Values.size(); u++) {
7508 if (Values[u].first == BB)
7509 return Values[u].second;
7510 }
7511 Values.push_back(std::make_pair(BB, DoesNotDominateBlock));
Dan Gohman8ea83d82010-11-18 00:34:22 +00007512 BlockDisposition D = computeBlockDisposition(S, BB);
Wan Xiaofeib2c8cdc2013-11-12 09:40:41 +00007513 SmallVector<std::pair<const BasicBlock *, BlockDisposition>, 2> &Values2 = BlockDispositions[S];
7514 for (unsigned u = Values2.size(); u > 0; u--) {
7515 if (Values2[u - 1].first == BB) {
7516 Values2[u - 1].second = D;
7517 break;
7518 }
7519 }
7520 return D;
Dan Gohman20d9ce22010-11-17 21:41:58 +00007521}
7522
Dan Gohman8ea83d82010-11-18 00:34:22 +00007523ScalarEvolution::BlockDisposition
7524ScalarEvolution::computeBlockDisposition(const SCEV *S, const BasicBlock *BB) {
Dan Gohman20d9ce22010-11-17 21:41:58 +00007525 switch (S->getSCEVType()) {
7526 case scConstant:
Dan Gohman8ea83d82010-11-18 00:34:22 +00007527 return ProperlyDominatesBlock;
Dan Gohman20d9ce22010-11-17 21:41:58 +00007528 case scTruncate:
7529 case scZeroExtend:
7530 case scSignExtend:
Dan Gohman8ea83d82010-11-18 00:34:22 +00007531 return getBlockDisposition(cast<SCEVCastExpr>(S)->getOperand(), BB);
Dan Gohman20d9ce22010-11-17 21:41:58 +00007532 case scAddRecExpr: {
7533 // This uses a "dominates" query instead of "properly dominates" query
Dan Gohman8ea83d82010-11-18 00:34:22 +00007534 // to test for proper dominance too, because the instruction which
7535 // produces the addrec's value is a PHI, and a PHI effectively properly
7536 // dominates its entire containing block.
Dan Gohman20d9ce22010-11-17 21:41:58 +00007537 const SCEVAddRecExpr *AR = cast<SCEVAddRecExpr>(S);
7538 if (!DT->dominates(AR->getLoop()->getHeader(), BB))
Dan Gohman8ea83d82010-11-18 00:34:22 +00007539 return DoesNotDominateBlock;
Dan Gohman20d9ce22010-11-17 21:41:58 +00007540 }
7541 // FALL THROUGH into SCEVNAryExpr handling.
7542 case scAddExpr:
7543 case scMulExpr:
7544 case scUMaxExpr:
7545 case scSMaxExpr: {
7546 const SCEVNAryExpr *NAry = cast<SCEVNAryExpr>(S);
Dan Gohman8ea83d82010-11-18 00:34:22 +00007547 bool Proper = true;
Dan Gohman20d9ce22010-11-17 21:41:58 +00007548 for (SCEVNAryExpr::op_iterator I = NAry->op_begin(), E = NAry->op_end();
Dan Gohman8ea83d82010-11-18 00:34:22 +00007549 I != E; ++I) {
7550 BlockDisposition D = getBlockDisposition(*I, BB);
7551 if (D == DoesNotDominateBlock)
7552 return DoesNotDominateBlock;
7553 if (D == DominatesBlock)
7554 Proper = false;
7555 }
7556 return Proper ? ProperlyDominatesBlock : DominatesBlock;
Dan Gohman20d9ce22010-11-17 21:41:58 +00007557 }
7558 case scUDivExpr: {
7559 const SCEVUDivExpr *UDiv = cast<SCEVUDivExpr>(S);
Dan Gohman8ea83d82010-11-18 00:34:22 +00007560 const SCEV *LHS = UDiv->getLHS(), *RHS = UDiv->getRHS();
7561 BlockDisposition LD = getBlockDisposition(LHS, BB);
7562 if (LD == DoesNotDominateBlock)
7563 return DoesNotDominateBlock;
7564 BlockDisposition RD = getBlockDisposition(RHS, BB);
7565 if (RD == DoesNotDominateBlock)
7566 return DoesNotDominateBlock;
7567 return (LD == ProperlyDominatesBlock && RD == ProperlyDominatesBlock) ?
7568 ProperlyDominatesBlock : DominatesBlock;
Dan Gohman20d9ce22010-11-17 21:41:58 +00007569 }
7570 case scUnknown:
7571 if (Instruction *I =
Dan Gohman8ea83d82010-11-18 00:34:22 +00007572 dyn_cast<Instruction>(cast<SCEVUnknown>(S)->getValue())) {
7573 if (I->getParent() == BB)
7574 return DominatesBlock;
7575 if (DT->properlyDominates(I->getParent(), BB))
7576 return ProperlyDominatesBlock;
7577 return DoesNotDominateBlock;
7578 }
7579 return ProperlyDominatesBlock;
Dan Gohman20d9ce22010-11-17 21:41:58 +00007580 case scCouldNotCompute:
7581 llvm_unreachable("Attempt to use a SCEVCouldNotCompute object!");
Andrew Trick7004e4b2012-03-26 22:33:59 +00007582 default:
David Blaikie46a9f012012-01-20 21:51:11 +00007583 llvm_unreachable("Unknown SCEV kind!");
Dan Gohman20d9ce22010-11-17 21:41:58 +00007584 }
Dan Gohman8ea83d82010-11-18 00:34:22 +00007585}
7586
7587bool ScalarEvolution::dominates(const SCEV *S, const BasicBlock *BB) {
7588 return getBlockDisposition(S, BB) >= DominatesBlock;
7589}
7590
7591bool ScalarEvolution::properlyDominates(const SCEV *S, const BasicBlock *BB) {
7592 return getBlockDisposition(S, BB) == ProperlyDominatesBlock;
Dan Gohman20d9ce22010-11-17 21:41:58 +00007593}
Dan Gohman534749b2010-11-17 22:27:42 +00007594
Andrew Trick365e31c2012-07-13 23:33:03 +00007595namespace {
7596// Search for a SCEV expression node within an expression tree.
7597// Implements SCEVTraversal::Visitor.
7598struct SCEVSearch {
7599 const SCEV *Node;
7600 bool IsFound;
7601
7602 SCEVSearch(const SCEV *N): Node(N), IsFound(false) {}
7603
7604 bool follow(const SCEV *S) {
7605 IsFound |= (S == Node);
7606 return !IsFound;
7607 }
7608 bool isDone() const { return IsFound; }
7609};
7610}
7611
Dan Gohman534749b2010-11-17 22:27:42 +00007612bool ScalarEvolution::hasOperand(const SCEV *S, const SCEV *Op) const {
Andrew Trick365e31c2012-07-13 23:33:03 +00007613 SCEVSearch Search(Op);
7614 visitAll(S, Search);
7615 return Search.IsFound;
Dan Gohman534749b2010-11-17 22:27:42 +00007616}
Dan Gohman7e6b3932010-11-17 23:28:48 +00007617
7618void ScalarEvolution::forgetMemoizedResults(const SCEV *S) {
7619 ValuesAtScopes.erase(S);
7620 LoopDispositions.erase(S);
Dan Gohman8ea83d82010-11-18 00:34:22 +00007621 BlockDispositions.erase(S);
Dan Gohman7e6b3932010-11-17 23:28:48 +00007622 UnsignedRanges.erase(S);
7623 SignedRanges.erase(S);
Andrew Trick9093e152013-03-26 03:14:53 +00007624
7625 for (DenseMap<const Loop*, BackedgeTakenInfo>::iterator I =
7626 BackedgeTakenCounts.begin(), E = BackedgeTakenCounts.end(); I != E; ) {
7627 BackedgeTakenInfo &BEInfo = I->second;
7628 if (BEInfo.hasOperand(S, this)) {
7629 BEInfo.clear();
7630 BackedgeTakenCounts.erase(I++);
7631 }
7632 else
7633 ++I;
7634 }
Dan Gohman7e6b3932010-11-17 23:28:48 +00007635}
Benjamin Kramer214935e2012-10-26 17:31:32 +00007636
7637typedef DenseMap<const Loop *, std::string> VerifyMap;
Benjamin Kramer24d270d2012-10-27 10:45:01 +00007638
7639/// replaceSubString - Replaces all occurences of From in Str with To.
7640static void replaceSubString(std::string &Str, StringRef From, StringRef To) {
7641 size_t Pos = 0;
7642 while ((Pos = Str.find(From, Pos)) != std::string::npos) {
7643 Str.replace(Pos, From.size(), To.data(), To.size());
7644 Pos += To.size();
7645 }
7646}
7647
Benjamin Kramer214935e2012-10-26 17:31:32 +00007648/// getLoopBackedgeTakenCounts - Helper method for verifyAnalysis.
7649static void
7650getLoopBackedgeTakenCounts(Loop *L, VerifyMap &Map, ScalarEvolution &SE) {
7651 for (Loop::reverse_iterator I = L->rbegin(), E = L->rend(); I != E; ++I) {
7652 getLoopBackedgeTakenCounts(*I, Map, SE); // recurse.
7653
7654 std::string &S = Map[L];
7655 if (S.empty()) {
7656 raw_string_ostream OS(S);
7657 SE.getBackedgeTakenCount(L)->print(OS);
Benjamin Kramer24d270d2012-10-27 10:45:01 +00007658
7659 // false and 0 are semantically equivalent. This can happen in dead loops.
7660 replaceSubString(OS.str(), "false", "0");
7661 // Remove wrap flags, their use in SCEV is highly fragile.
7662 // FIXME: Remove this when SCEV gets smarter about them.
7663 replaceSubString(OS.str(), "<nw>", "");
7664 replaceSubString(OS.str(), "<nsw>", "");
7665 replaceSubString(OS.str(), "<nuw>", "");
Benjamin Kramer214935e2012-10-26 17:31:32 +00007666 }
7667 }
7668}
7669
7670void ScalarEvolution::verifyAnalysis() const {
7671 if (!VerifySCEV)
7672 return;
7673
7674 ScalarEvolution &SE = *const_cast<ScalarEvolution *>(this);
7675
7676 // Gather stringified backedge taken counts for all loops using SCEV's caches.
7677 // FIXME: It would be much better to store actual values instead of strings,
7678 // but SCEV pointers will change if we drop the caches.
7679 VerifyMap BackedgeDumpsOld, BackedgeDumpsNew;
7680 for (LoopInfo::reverse_iterator I = LI->rbegin(), E = LI->rend(); I != E; ++I)
7681 getLoopBackedgeTakenCounts(*I, BackedgeDumpsOld, SE);
7682
7683 // Gather stringified backedge taken counts for all loops without using
7684 // SCEV's caches.
7685 SE.releaseMemory();
7686 for (LoopInfo::reverse_iterator I = LI->rbegin(), E = LI->rend(); I != E; ++I)
7687 getLoopBackedgeTakenCounts(*I, BackedgeDumpsNew, SE);
7688
7689 // Now compare whether they're the same with and without caches. This allows
7690 // verifying that no pass changed the cache.
7691 assert(BackedgeDumpsOld.size() == BackedgeDumpsNew.size() &&
7692 "New loops suddenly appeared!");
7693
7694 for (VerifyMap::iterator OldI = BackedgeDumpsOld.begin(),
7695 OldE = BackedgeDumpsOld.end(),
7696 NewI = BackedgeDumpsNew.begin();
7697 OldI != OldE; ++OldI, ++NewI) {
7698 assert(OldI->first == NewI->first && "Loop order changed!");
7699
7700 // Compare the stringified SCEVs. We don't care if undef backedgetaken count
7701 // changes.
Benjamin Kramer5bc077a2012-10-27 11:36:07 +00007702 // FIXME: We currently ignore SCEV changes from/to CouldNotCompute. This
Benjamin Kramer214935e2012-10-26 17:31:32 +00007703 // means that a pass is buggy or SCEV has to learn a new pattern but is
7704 // usually not harmful.
7705 if (OldI->second != NewI->second &&
7706 OldI->second.find("undef") == std::string::npos &&
Benjamin Kramer5bc077a2012-10-27 11:36:07 +00007707 NewI->second.find("undef") == std::string::npos &&
7708 OldI->second != "***COULDNOTCOMPUTE***" &&
Benjamin Kramer214935e2012-10-26 17:31:32 +00007709 NewI->second != "***COULDNOTCOMPUTE***") {
Benjamin Kramer5bc077a2012-10-27 11:36:07 +00007710 dbgs() << "SCEVValidator: SCEV for loop '"
Benjamin Kramer214935e2012-10-26 17:31:32 +00007711 << OldI->first->getHeader()->getName()
Benjamin Kramer5bc077a2012-10-27 11:36:07 +00007712 << "' changed from '" << OldI->second
7713 << "' to '" << NewI->second << "'!\n";
Benjamin Kramer214935e2012-10-26 17:31:32 +00007714 std::abort();
7715 }
7716 }
7717
7718 // TODO: Verify more things.
7719}