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Chris Lattner476e6df2001-12-03 17:28:42 +00001//===- IndVarSimplify.cpp - Induction Variable Elimination ----------------===//
Misha Brukmanb1c93172005-04-21 23:48:37 +00002//
John Criswell482202a2003-10-20 19:43:21 +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 Brukmanb1c93172005-04-21 23:48:37 +00007//
John Criswell482202a2003-10-20 19:43:21 +00008//===----------------------------------------------------------------------===//
Chris Lattner476e6df2001-12-03 17:28:42 +00009//
Chris Lattnere61b67d2004-04-02 20:24:31 +000010// This transformation analyzes and transforms the induction variables (and
11// computations derived from them) into simpler forms suitable for subsequent
12// analysis and transformation.
13//
Chris Lattnere61b67d2004-04-02 20:24:31 +000014// If the trip count of a loop is computable, this pass also makes the following
15// changes:
16// 1. The exit condition for the loop is canonicalized to compare the
17// induction value against the exit value. This turns loops like:
18// 'for (i = 7; i*i < 1000; ++i)' into 'for (i = 0; i != 25; ++i)'
19// 2. Any use outside of the loop of an expression derived from the indvar
20// is changed to compute the derived value outside of the loop, eliminating
21// the dependence on the exit value of the induction variable. If the only
22// purpose of the loop is to compute the exit value of some derived
23// expression, this transformation will make the loop dead.
24//
Chris Lattner476e6df2001-12-03 17:28:42 +000025//===----------------------------------------------------------------------===//
26
Chris Lattnerb4cfa7f2002-05-07 20:03:00 +000027#include "llvm/Transforms/Scalar.h"
Chandler Carruthed0881b2012-12-03 16:50:05 +000028#include "llvm/ADT/DenseMap.h"
29#include "llvm/ADT/SmallVector.h"
30#include "llvm/ADT/Statistic.h"
James Molloyefbba722015-09-10 10:22:12 +000031#include "llvm/Analysis/GlobalsModRef.h"
Chandler Carruthed0881b2012-12-03 16:50:05 +000032#include "llvm/Analysis/LoopInfo.h"
33#include "llvm/Analysis/LoopPass.h"
34#include "llvm/Analysis/ScalarEvolutionExpander.h"
Chandler Carruth7b560d42015-09-09 17:55:00 +000035#include "llvm/Analysis/ScalarEvolutionAliasAnalysis.h"
Benjamin Kramer799003b2015-03-23 19:32:43 +000036#include "llvm/Analysis/TargetLibraryInfo.h"
Jingyue Wu8a12cea2014-11-12 18:09:15 +000037#include "llvm/Analysis/TargetTransformInfo.h"
Chandler Carruth9fb823b2013-01-02 11:36:10 +000038#include "llvm/IR/BasicBlock.h"
Chandler Carruth1305dc32014-03-04 11:45:46 +000039#include "llvm/IR/CFG.h"
Chandler Carruth9fb823b2013-01-02 11:36:10 +000040#include "llvm/IR/Constants.h"
41#include "llvm/IR/DataLayout.h"
Chandler Carruth5ad5f152014-01-13 09:26:24 +000042#include "llvm/IR/Dominators.h"
Chandler Carruth9fb823b2013-01-02 11:36:10 +000043#include "llvm/IR/Instructions.h"
44#include "llvm/IR/IntrinsicInst.h"
45#include "llvm/IR/LLVMContext.h"
Sanjoy Das6f062c82015-07-09 18:46:12 +000046#include "llvm/IR/PatternMatch.h"
Chandler Carruth9fb823b2013-01-02 11:36:10 +000047#include "llvm/IR/Type.h"
Andrew Trick56b315a2011-06-28 03:01:46 +000048#include "llvm/Support/CommandLine.h"
Chris Lattner08165592007-01-07 01:14:12 +000049#include "llvm/Support/Debug.h"
Chris Lattnerb25de3f2009-08-23 04:37:46 +000050#include "llvm/Support/raw_ostream.h"
Chandler Carruthed0881b2012-12-03 16:50:05 +000051#include "llvm/Transforms/Utils/BasicBlockUtils.h"
52#include "llvm/Transforms/Utils/Local.h"
53#include "llvm/Transforms/Utils/SimplifyIndVar.h"
John Criswellb22e9b42003-12-18 17:19:19 +000054using namespace llvm;
Brian Gaeke960707c2003-11-11 22:41:34 +000055
Chandler Carruth964daaa2014-04-22 02:55:47 +000056#define DEBUG_TYPE "indvars"
57
Andrew Trick69d44522011-06-21 03:22:38 +000058STATISTIC(NumWidened , "Number of indvars widened");
Andrew Trick69d44522011-06-21 03:22:38 +000059STATISTIC(NumReplaced , "Number of exit values replaced");
60STATISTIC(NumLFTR , "Number of loop exit tests replaced");
Andrew Trick69d44522011-06-21 03:22:38 +000061STATISTIC(NumElimExt , "Number of IV sign/zero extends eliminated");
Andrew Trick32390552011-07-06 20:50:43 +000062STATISTIC(NumElimIV , "Number of congruent IVs eliminated");
Chris Lattnerd3678bc2003-12-22 03:58:44 +000063
Benjamin Kramer7ba71be2011-11-26 23:01:57 +000064// Trip count verification can be enabled by default under NDEBUG if we
65// implement a strong expression equivalence checker in SCEV. Until then, we
66// use the verify-indvars flag, which may assert in some cases.
67static cl::opt<bool> VerifyIndvars(
68 "verify-indvars", cl::Hidden,
69 cl::desc("Verify the ScalarEvolution result after running indvars"));
Andrew Trick1abe2962011-05-04 02:10:13 +000070
Andrew Trick0ba77a02013-12-23 23:31:49 +000071static cl::opt<bool> ReduceLiveIVs("liv-reduce", cl::Hidden,
72 cl::desc("Reduce live induction variables."));
73
Wei Mie2538b52015-05-28 21:49:07 +000074enum ReplaceExitVal { NeverRepl, OnlyCheapRepl, AlwaysRepl };
75
76static cl::opt<ReplaceExitVal> ReplaceExitValue(
77 "replexitval", cl::Hidden, cl::init(OnlyCheapRepl),
78 cl::desc("Choose the strategy to replace exit value in IndVarSimplify"),
79 cl::values(clEnumValN(NeverRepl, "never", "never replace exit value"),
80 clEnumValN(OnlyCheapRepl, "cheap",
81 "only replace exit value when the cost is cheap"),
82 clEnumValN(AlwaysRepl, "always",
83 "always replace exit value whenever possible"),
84 clEnumValEnd));
85
86namespace {
87struct RewritePhi;
Wei Mie2538b52015-05-28 21:49:07 +000088
Sanjoy Dase1e352d2015-09-20 18:42:50 +000089class IndVarSimplify : public LoopPass {
90 LoopInfo *LI;
91 ScalarEvolution *SE;
92 DominatorTree *DT;
93 TargetLibraryInfo *TLI;
94 const TargetTransformInfo *TTI;
Andrew Trick69d44522011-06-21 03:22:38 +000095
Sanjoy Dase1e352d2015-09-20 18:42:50 +000096 SmallVector<WeakVH, 16> DeadInsts;
97 bool Changed;
98public:
Devang Patel09f162c2007-05-01 21:15:47 +000099
Sanjoy Dase1e352d2015-09-20 18:42:50 +0000100 static char ID; // Pass identification, replacement for typeid
101 IndVarSimplify()
102 : LoopPass(ID), LI(nullptr), SE(nullptr), DT(nullptr), Changed(false) {
103 initializeIndVarSimplifyPass(*PassRegistry::getPassRegistry());
104 }
Devang Patel09f162c2007-05-01 21:15:47 +0000105
Sanjoy Dase1e352d2015-09-20 18:42:50 +0000106 bool runOnLoop(Loop *L, LPPassManager &LPM) override;
Dan Gohman43300342009-02-17 20:49:49 +0000107
Sanjoy Dase1e352d2015-09-20 18:42:50 +0000108 void getAnalysisUsage(AnalysisUsage &AU) const override {
109 AU.addRequired<DominatorTreeWrapperPass>();
110 AU.addRequired<LoopInfoWrapperPass>();
111 AU.addRequired<ScalarEvolutionWrapperPass>();
112 AU.addRequiredID(LoopSimplifyID);
113 AU.addRequiredID(LCSSAID);
114 AU.addPreserved<GlobalsAAWrapperPass>();
115 AU.addPreserved<ScalarEvolutionWrapperPass>();
116 AU.addPreservedID(LoopSimplifyID);
117 AU.addPreservedID(LCSSAID);
118 AU.setPreservesCFG();
119 }
Chris Lattner7e755e42003-12-23 07:47:09 +0000120
Sanjoy Dase1e352d2015-09-20 18:42:50 +0000121private:
122 void releaseMemory() override {
123 DeadInsts.clear();
124 }
Andrew Trick32390552011-07-06 20:50:43 +0000125
Sanjoy Dase1e352d2015-09-20 18:42:50 +0000126 bool isValidRewrite(Value *FromVal, Value *ToVal);
Devang Patel2ac57e12007-03-07 06:39:01 +0000127
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000128 void handleFloatingPointIV(Loop *L, PHINode *PH);
129 void rewriteNonIntegerIVs(Loop *L);
Andrew Trickcdc22972011-07-12 00:08:50 +0000130
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000131 void simplifyAndExtend(Loop *L, SCEVExpander &Rewriter, LPPassManager &LPM);
Andrew Trick6d45a012011-08-06 07:00:37 +0000132
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000133 bool canLoopBeDeleted(Loop *L, SmallVector<RewritePhi, 8> &RewritePhiSet);
134 void rewriteLoopExitValues(Loop *L, SCEVExpander &Rewriter);
Andrew Trick3ec331e2011-08-10 03:46:27 +0000135
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000136 Value *linearFunctionTestReplace(Loop *L, const SCEV *BackedgeTakenCount,
Sanjoy Dase1e352d2015-09-20 18:42:50 +0000137 PHINode *IndVar, SCEVExpander &Rewriter);
Dan Gohmand76d71a2009-05-12 02:17:14 +0000138
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000139 void sinkUnusedInvariants(Loop *L);
Sanjoy Das6f062c82015-07-09 18:46:12 +0000140
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000141 Value *expandSCEVIfNeeded(SCEVExpander &Rewriter, const SCEV *S, Loop *L,
Sanjoy Dase1e352d2015-09-20 18:42:50 +0000142 Instruction *InsertPt, Type *Ty);
143};
Alexander Kornienkof00654e2015-06-23 09:49:53 +0000144}
Chris Lattner91daaab2001-12-04 04:32:29 +0000145
Dan Gohmand78c4002008-05-13 00:00:25 +0000146char IndVarSimplify::ID = 0;
Owen Anderson8ac477f2010-10-12 19:48:12 +0000147INITIALIZE_PASS_BEGIN(IndVarSimplify, "indvars",
Andrew Trick1abe2962011-05-04 02:10:13 +0000148 "Induction Variable Simplification", false, false)
Chandler Carruth73523022014-01-13 13:07:17 +0000149INITIALIZE_PASS_DEPENDENCY(DominatorTreeWrapperPass)
Chandler Carruth4f8f3072015-01-17 14:16:18 +0000150INITIALIZE_PASS_DEPENDENCY(LoopInfoWrapperPass)
Chandler Carruth2f1fd162015-08-17 02:08:17 +0000151INITIALIZE_PASS_DEPENDENCY(ScalarEvolutionWrapperPass)
Owen Anderson8ac477f2010-10-12 19:48:12 +0000152INITIALIZE_PASS_DEPENDENCY(LoopSimplify)
153INITIALIZE_PASS_DEPENDENCY(LCSSA)
Owen Anderson8ac477f2010-10-12 19:48:12 +0000154INITIALIZE_PASS_END(IndVarSimplify, "indvars",
Andrew Trick1abe2962011-05-04 02:10:13 +0000155 "Induction Variable Simplification", false, false)
Dan Gohmand78c4002008-05-13 00:00:25 +0000156
Daniel Dunbar7f39e2d2008-10-22 23:32:42 +0000157Pass *llvm::createIndVarSimplifyPass() {
Chris Lattnerd3678bc2003-12-22 03:58:44 +0000158 return new IndVarSimplify();
Chris Lattner91daaab2001-12-04 04:32:29 +0000159}
160
Sanjoy Das9119bf42015-09-20 06:58:03 +0000161/// Return true if the SCEV expansion generated by the rewriter can replace the
162/// original value. SCEV guarantees that it produces the same value, but the way
163/// it is produced may be illegal IR. Ideally, this function will only be
164/// called for verification.
Andrew Trick87716c92011-03-17 23:51:11 +0000165bool IndVarSimplify::isValidRewrite(Value *FromVal, Value *ToVal) {
166 // If an SCEV expression subsumed multiple pointers, its expansion could
167 // reassociate the GEP changing the base pointer. This is illegal because the
168 // final address produced by a GEP chain must be inbounds relative to its
169 // underlying object. Otherwise basic alias analysis, among other things,
170 // could fail in a dangerous way. Ultimately, SCEV will be improved to avoid
171 // producing an expression involving multiple pointers. Until then, we must
172 // bail out here.
173 //
174 // Retrieve the pointer operand of the GEP. Don't use GetUnderlyingObject
175 // because it understands lcssa phis while SCEV does not.
176 Value *FromPtr = FromVal;
177 Value *ToPtr = ToVal;
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000178 if (auto *GEP = dyn_cast<GEPOperator>(FromVal)) {
Andrew Trick87716c92011-03-17 23:51:11 +0000179 FromPtr = GEP->getPointerOperand();
180 }
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000181 if (auto *GEP = dyn_cast<GEPOperator>(ToVal)) {
Andrew Trick87716c92011-03-17 23:51:11 +0000182 ToPtr = GEP->getPointerOperand();
183 }
184 if (FromPtr != FromVal || ToPtr != ToVal) {
185 // Quickly check the common case
186 if (FromPtr == ToPtr)
187 return true;
188
189 // SCEV may have rewritten an expression that produces the GEP's pointer
190 // operand. That's ok as long as the pointer operand has the same base
191 // pointer. Unlike GetUnderlyingObject(), getPointerBase() will find the
192 // base of a recurrence. This handles the case in which SCEV expansion
193 // converts a pointer type recurrence into a nonrecurrent pointer base
194 // indexed by an integer recurrence.
Nadav Rotem3924cb02011-12-05 06:29:09 +0000195
196 // If the GEP base pointer is a vector of pointers, abort.
197 if (!FromPtr->getType()->isPointerTy() || !ToPtr->getType()->isPointerTy())
198 return false;
199
Andrew Trick87716c92011-03-17 23:51:11 +0000200 const SCEV *FromBase = SE->getPointerBase(SE->getSCEV(FromPtr));
201 const SCEV *ToBase = SE->getPointerBase(SE->getSCEV(ToPtr));
202 if (FromBase == ToBase)
203 return true;
204
205 DEBUG(dbgs() << "INDVARS: GEP rewrite bail out "
206 << *FromBase << " != " << *ToBase << "\n");
207
208 return false;
209 }
210 return true;
211}
212
Andrew Trick638b3552011-07-20 05:32:06 +0000213/// Determine the insertion point for this user. By default, insert immediately
214/// before the user. SCEVExpander or LICM will hoist loop invariants out of the
215/// loop. For PHI nodes, there may be multiple uses, so compute the nearest
216/// common dominator for the incoming blocks.
217static Instruction *getInsertPointForUses(Instruction *User, Value *Def,
218 DominatorTree *DT) {
219 PHINode *PHI = dyn_cast<PHINode>(User);
220 if (!PHI)
221 return User;
222
Craig Topperf40110f2014-04-25 05:29:35 +0000223 Instruction *InsertPt = nullptr;
Andrew Trick638b3552011-07-20 05:32:06 +0000224 for (unsigned i = 0, e = PHI->getNumIncomingValues(); i != e; ++i) {
225 if (PHI->getIncomingValue(i) != Def)
226 continue;
227
228 BasicBlock *InsertBB = PHI->getIncomingBlock(i);
229 if (!InsertPt) {
230 InsertPt = InsertBB->getTerminator();
231 continue;
232 }
233 InsertBB = DT->findNearestCommonDominator(InsertPt->getParent(), InsertBB);
234 InsertPt = InsertBB->getTerminator();
235 }
236 assert(InsertPt && "Missing phi operand");
Jay Foad50bfbab2011-07-20 08:15:21 +0000237 assert((!isa<Instruction>(Def) ||
238 DT->dominates(cast<Instruction>(Def), InsertPt)) &&
Andrew Trick638b3552011-07-20 05:32:06 +0000239 "def does not dominate all uses");
240 return InsertPt;
241}
242
Andrew Trickcdc22972011-07-12 00:08:50 +0000243//===----------------------------------------------------------------------===//
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000244// rewriteNonIntegerIVs and helpers. Prefer integer IVs.
Andrew Trickcdc22972011-07-12 00:08:50 +0000245//===----------------------------------------------------------------------===//
Andrew Trick38c4e342011-05-03 22:24:10 +0000246
Sanjoy Das9119bf42015-09-20 06:58:03 +0000247/// Convert APF to an integer, if possible.
Andrew Trickcdc22972011-07-12 00:08:50 +0000248static bool ConvertToSInt(const APFloat &APF, int64_t &IntVal) {
249 bool isExact = false;
Andrew Trickcdc22972011-07-12 00:08:50 +0000250 // See if we can convert this to an int64_t
251 uint64_t UIntVal;
252 if (APF.convertToInteger(&UIntVal, 64, true, APFloat::rmTowardZero,
253 &isExact) != APFloat::opOK || !isExact)
Andrew Trick38c4e342011-05-03 22:24:10 +0000254 return false;
Andrew Trickcdc22972011-07-12 00:08:50 +0000255 IntVal = UIntVal;
Andrew Trick38c4e342011-05-03 22:24:10 +0000256 return true;
257}
258
Sanjoy Das9119bf42015-09-20 06:58:03 +0000259/// If the loop has floating induction variable then insert corresponding
260/// integer induction variable if possible.
Andrew Trickcdc22972011-07-12 00:08:50 +0000261/// For example,
262/// for(double i = 0; i < 10000; ++i)
263/// bar(i)
264/// is converted into
265/// for(int i = 0; i < 10000; ++i)
266/// bar((double)i);
Andrew Trickeb3c36e2011-05-25 04:42:22 +0000267///
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000268void IndVarSimplify::handleFloatingPointIV(Loop *L, PHINode *PN) {
Andrew Trickcdc22972011-07-12 00:08:50 +0000269 unsigned IncomingEdge = L->contains(PN->getIncomingBlock(0));
270 unsigned BackEdge = IncomingEdge^1;
Andrew Trickeb3c36e2011-05-25 04:42:22 +0000271
Andrew Trickcdc22972011-07-12 00:08:50 +0000272 // Check incoming value.
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000273 auto *InitValueVal = dyn_cast<ConstantFP>(PN->getIncomingValue(IncomingEdge));
Andrew Trickeb3c36e2011-05-25 04:42:22 +0000274
Andrew Trickcdc22972011-07-12 00:08:50 +0000275 int64_t InitValue;
276 if (!InitValueVal || !ConvertToSInt(InitValueVal->getValueAPF(), InitValue))
277 return;
Andrew Trickeb3c36e2011-05-25 04:42:22 +0000278
Andrew Trickcdc22972011-07-12 00:08:50 +0000279 // Check IV increment. Reject this PN if increment operation is not
280 // an add or increment value can not be represented by an integer.
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000281 auto *Incr = dyn_cast<BinaryOperator>(PN->getIncomingValue(BackEdge));
Craig Topperf40110f2014-04-25 05:29:35 +0000282 if (Incr == nullptr || Incr->getOpcode() != Instruction::FAdd) return;
Andrew Trickeb3c36e2011-05-25 04:42:22 +0000283
Andrew Trickcdc22972011-07-12 00:08:50 +0000284 // If this is not an add of the PHI with a constantfp, or if the constant fp
285 // is not an integer, bail out.
286 ConstantFP *IncValueVal = dyn_cast<ConstantFP>(Incr->getOperand(1));
287 int64_t IncValue;
Craig Topperf40110f2014-04-25 05:29:35 +0000288 if (IncValueVal == nullptr || Incr->getOperand(0) != PN ||
Andrew Trickcdc22972011-07-12 00:08:50 +0000289 !ConvertToSInt(IncValueVal->getValueAPF(), IncValue))
290 return;
291
292 // Check Incr uses. One user is PN and the other user is an exit condition
293 // used by the conditional terminator.
Chandler Carruthcdf47882014-03-09 03:16:01 +0000294 Value::user_iterator IncrUse = Incr->user_begin();
Andrew Trickcdc22972011-07-12 00:08:50 +0000295 Instruction *U1 = cast<Instruction>(*IncrUse++);
Chandler Carruthcdf47882014-03-09 03:16:01 +0000296 if (IncrUse == Incr->user_end()) return;
Andrew Trickcdc22972011-07-12 00:08:50 +0000297 Instruction *U2 = cast<Instruction>(*IncrUse++);
Chandler Carruthcdf47882014-03-09 03:16:01 +0000298 if (IncrUse != Incr->user_end()) return;
Andrew Trickcdc22972011-07-12 00:08:50 +0000299
300 // Find exit condition, which is an fcmp. If it doesn't exist, or if it isn't
301 // only used by a branch, we can't transform it.
302 FCmpInst *Compare = dyn_cast<FCmpInst>(U1);
303 if (!Compare)
304 Compare = dyn_cast<FCmpInst>(U2);
Craig Topperf40110f2014-04-25 05:29:35 +0000305 if (!Compare || !Compare->hasOneUse() ||
Chandler Carruthcdf47882014-03-09 03:16:01 +0000306 !isa<BranchInst>(Compare->user_back()))
Andrew Trickcdc22972011-07-12 00:08:50 +0000307 return;
308
Chandler Carruthcdf47882014-03-09 03:16:01 +0000309 BranchInst *TheBr = cast<BranchInst>(Compare->user_back());
Andrew Trickcdc22972011-07-12 00:08:50 +0000310
311 // We need to verify that the branch actually controls the iteration count
312 // of the loop. If not, the new IV can overflow and no one will notice.
313 // The branch block must be in the loop and one of the successors must be out
314 // of the loop.
315 assert(TheBr->isConditional() && "Can't use fcmp if not conditional");
316 if (!L->contains(TheBr->getParent()) ||
317 (L->contains(TheBr->getSuccessor(0)) &&
318 L->contains(TheBr->getSuccessor(1))))
319 return;
320
321
322 // If it isn't a comparison with an integer-as-fp (the exit value), we can't
323 // transform it.
324 ConstantFP *ExitValueVal = dyn_cast<ConstantFP>(Compare->getOperand(1));
325 int64_t ExitValue;
Craig Topperf40110f2014-04-25 05:29:35 +0000326 if (ExitValueVal == nullptr ||
Andrew Trickcdc22972011-07-12 00:08:50 +0000327 !ConvertToSInt(ExitValueVal->getValueAPF(), ExitValue))
328 return;
329
330 // Find new predicate for integer comparison.
331 CmpInst::Predicate NewPred = CmpInst::BAD_ICMP_PREDICATE;
332 switch (Compare->getPredicate()) {
333 default: return; // Unknown comparison.
334 case CmpInst::FCMP_OEQ:
335 case CmpInst::FCMP_UEQ: NewPred = CmpInst::ICMP_EQ; break;
336 case CmpInst::FCMP_ONE:
337 case CmpInst::FCMP_UNE: NewPred = CmpInst::ICMP_NE; break;
338 case CmpInst::FCMP_OGT:
339 case CmpInst::FCMP_UGT: NewPred = CmpInst::ICMP_SGT; break;
340 case CmpInst::FCMP_OGE:
341 case CmpInst::FCMP_UGE: NewPred = CmpInst::ICMP_SGE; break;
342 case CmpInst::FCMP_OLT:
343 case CmpInst::FCMP_ULT: NewPred = CmpInst::ICMP_SLT; break;
344 case CmpInst::FCMP_OLE:
345 case CmpInst::FCMP_ULE: NewPred = CmpInst::ICMP_SLE; break;
Andrew Trickeb3c36e2011-05-25 04:42:22 +0000346 }
Andrew Trickeb3c36e2011-05-25 04:42:22 +0000347
Andrew Trickcdc22972011-07-12 00:08:50 +0000348 // We convert the floating point induction variable to a signed i32 value if
349 // we can. This is only safe if the comparison will not overflow in a way
350 // that won't be trapped by the integer equivalent operations. Check for this
351 // now.
352 // TODO: We could use i64 if it is native and the range requires it.
Dan Gohman4a645b82010-04-12 21:13:43 +0000353
Andrew Trickcdc22972011-07-12 00:08:50 +0000354 // The start/stride/exit values must all fit in signed i32.
355 if (!isInt<32>(InitValue) || !isInt<32>(IncValue) || !isInt<32>(ExitValue))
356 return;
357
358 // If not actually striding (add x, 0.0), avoid touching the code.
359 if (IncValue == 0)
360 return;
361
362 // Positive and negative strides have different safety conditions.
363 if (IncValue > 0) {
364 // If we have a positive stride, we require the init to be less than the
Andrew Trick3de5b8e2011-09-13 01:59:32 +0000365 // exit value.
366 if (InitValue >= ExitValue)
Andrew Trickcdc22972011-07-12 00:08:50 +0000367 return;
368
369 uint32_t Range = uint32_t(ExitValue-InitValue);
Andrew Trick3de5b8e2011-09-13 01:59:32 +0000370 // Check for infinite loop, either:
371 // while (i <= Exit) or until (i > Exit)
372 if (NewPred == CmpInst::ICMP_SLE || NewPred == CmpInst::ICMP_SGT) {
Andrew Trickcdc22972011-07-12 00:08:50 +0000373 if (++Range == 0) return; // Range overflows.
Dan Gohmaneb6be652009-02-12 22:19:27 +0000374 }
Chris Lattner0cec5cb2004-04-15 15:21:43 +0000375
Andrew Trickcdc22972011-07-12 00:08:50 +0000376 unsigned Leftover = Range % uint32_t(IncValue);
377
378 // If this is an equality comparison, we require that the strided value
379 // exactly land on the exit value, otherwise the IV condition will wrap
380 // around and do things the fp IV wouldn't.
381 if ((NewPred == CmpInst::ICMP_EQ || NewPred == CmpInst::ICMP_NE) &&
382 Leftover != 0)
383 return;
384
385 // If the stride would wrap around the i32 before exiting, we can't
386 // transform the IV.
387 if (Leftover != 0 && int32_t(ExitValue+IncValue) < ExitValue)
388 return;
389
Chris Lattnerd7a559e2004-04-15 20:26:22 +0000390 } else {
Andrew Trickcdc22972011-07-12 00:08:50 +0000391 // If we have a negative stride, we require the init to be greater than the
Andrew Trick3de5b8e2011-09-13 01:59:32 +0000392 // exit value.
393 if (InitValue <= ExitValue)
Andrew Trickcdc22972011-07-12 00:08:50 +0000394 return;
395
396 uint32_t Range = uint32_t(InitValue-ExitValue);
Andrew Trick3de5b8e2011-09-13 01:59:32 +0000397 // Check for infinite loop, either:
398 // while (i >= Exit) or until (i < Exit)
399 if (NewPred == CmpInst::ICMP_SGE || NewPred == CmpInst::ICMP_SLT) {
Andrew Trickcdc22972011-07-12 00:08:50 +0000400 if (++Range == 0) return; // Range overflows.
401 }
402
403 unsigned Leftover = Range % uint32_t(-IncValue);
404
405 // If this is an equality comparison, we require that the strided value
406 // exactly land on the exit value, otherwise the IV condition will wrap
407 // around and do things the fp IV wouldn't.
408 if ((NewPred == CmpInst::ICMP_EQ || NewPred == CmpInst::ICMP_NE) &&
409 Leftover != 0)
410 return;
411
412 // If the stride would wrap around the i32 before exiting, we can't
413 // transform the IV.
414 if (Leftover != 0 && int32_t(ExitValue+IncValue) > ExitValue)
415 return;
Chris Lattnerd7a559e2004-04-15 20:26:22 +0000416 }
Chris Lattner0cec5cb2004-04-15 15:21:43 +0000417
Chris Lattner229907c2011-07-18 04:54:35 +0000418 IntegerType *Int32Ty = Type::getInt32Ty(PN->getContext());
Chris Lattnere61b67d2004-04-02 20:24:31 +0000419
Andrew Trickcdc22972011-07-12 00:08:50 +0000420 // Insert new integer induction variable.
421 PHINode *NewPHI = PHINode::Create(Int32Ty, 2, PN->getName()+".int", PN);
422 NewPHI->addIncoming(ConstantInt::get(Int32Ty, InitValue),
423 PN->getIncomingBlock(IncomingEdge));
Chris Lattnere61b67d2004-04-02 20:24:31 +0000424
Andrew Trickcdc22972011-07-12 00:08:50 +0000425 Value *NewAdd =
426 BinaryOperator::CreateAdd(NewPHI, ConstantInt::get(Int32Ty, IncValue),
427 Incr->getName()+".int", Incr);
428 NewPHI->addIncoming(NewAdd, PN->getIncomingBlock(BackEdge));
Dan Gohmaneb6be652009-02-12 22:19:27 +0000429
Andrew Trickcdc22972011-07-12 00:08:50 +0000430 ICmpInst *NewCompare = new ICmpInst(TheBr, NewPred, NewAdd,
431 ConstantInt::get(Int32Ty, ExitValue),
432 Compare->getName());
Dan Gohmand76d71a2009-05-12 02:17:14 +0000433
Andrew Trickcdc22972011-07-12 00:08:50 +0000434 // In the following deletions, PN may become dead and may be deleted.
435 // Use a WeakVH to observe whether this happens.
436 WeakVH WeakPH = PN;
437
438 // Delete the old floating point exit comparison. The branch starts using the
439 // new comparison.
440 NewCompare->takeName(Compare);
441 Compare->replaceAllUsesWith(NewCompare);
Benjamin Kramer8bcc9712012-08-29 15:32:21 +0000442 RecursivelyDeleteTriviallyDeadInstructions(Compare, TLI);
Andrew Trickcdc22972011-07-12 00:08:50 +0000443
444 // Delete the old floating point increment.
445 Incr->replaceAllUsesWith(UndefValue::get(Incr->getType()));
Benjamin Kramer8bcc9712012-08-29 15:32:21 +0000446 RecursivelyDeleteTriviallyDeadInstructions(Incr, TLI);
Andrew Trickcdc22972011-07-12 00:08:50 +0000447
448 // If the FP induction variable still has uses, this is because something else
449 // in the loop uses its value. In order to canonicalize the induction
450 // variable, we chose to eliminate the IV and rewrite it in terms of an
451 // int->fp cast.
452 //
453 // We give preference to sitofp over uitofp because it is faster on most
454 // platforms.
455 if (WeakPH) {
456 Value *Conv = new SIToFPInst(NewPHI, PN->getType(), "indvar.conv",
Bill Wendling0902a682011-08-24 20:28:43 +0000457 PN->getParent()->getFirstInsertionPt());
Andrew Trickcdc22972011-07-12 00:08:50 +0000458 PN->replaceAllUsesWith(Conv);
Benjamin Kramer8bcc9712012-08-29 15:32:21 +0000459 RecursivelyDeleteTriviallyDeadInstructions(PN, TLI);
Andrew Trickcdc22972011-07-12 00:08:50 +0000460 }
Andrew Trick3ec331e2011-08-10 03:46:27 +0000461 Changed = true;
Chris Lattnere61b67d2004-04-02 20:24:31 +0000462}
463
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000464void IndVarSimplify::rewriteNonIntegerIVs(Loop *L) {
Andrew Trickcdc22972011-07-12 00:08:50 +0000465 // First step. Check to see if there are any floating-point recurrences.
466 // If there are, change them into integer recurrences, permitting analysis by
467 // the SCEV routines.
468 //
469 BasicBlock *Header = L->getHeader();
470
471 SmallVector<WeakVH, 8> PHIs;
472 for (BasicBlock::iterator I = Header->begin();
473 PHINode *PN = dyn_cast<PHINode>(I); ++I)
474 PHIs.push_back(PN);
475
476 for (unsigned i = 0, e = PHIs.size(); i != e; ++i)
477 if (PHINode *PN = dyn_cast_or_null<PHINode>(&*PHIs[i]))
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000478 handleFloatingPointIV(L, PN);
Andrew Trickcdc22972011-07-12 00:08:50 +0000479
480 // If the loop previously had floating-point IV, ScalarEvolution
481 // may not have been able to compute a trip count. Now that we've done some
482 // re-writing, the trip count may be computable.
483 if (Changed)
484 SE->forgetLoop(L);
485}
486
Wei Mie2538b52015-05-28 21:49:07 +0000487namespace {
488// Collect information about PHI nodes which can be transformed in
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000489// rewriteLoopExitValues.
Wei Mie2538b52015-05-28 21:49:07 +0000490struct RewritePhi {
491 PHINode *PN;
492 unsigned Ith; // Ith incoming value.
493 Value *Val; // Exit value after expansion.
494 bool HighCost; // High Cost when expansion.
495 bool SafePhi; // LCSSASafePhiForRAUW.
496
497 RewritePhi(PHINode *P, unsigned I, Value *V, bool H, bool S)
498 : PN(P), Ith(I), Val(V), HighCost(H), SafePhi(S) {}
499};
Alexander Kornienkof00654e2015-06-23 09:49:53 +0000500}
Wei Mie2538b52015-05-28 21:49:07 +0000501
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000502Value *IndVarSimplify::expandSCEVIfNeeded(SCEVExpander &Rewriter, const SCEV *S,
Sanjoy Das6f062c82015-07-09 18:46:12 +0000503 Loop *L, Instruction *InsertPt,
Igor Laevsky4709c032015-08-10 18:23:58 +0000504 Type *ResultTy) {
Sanjoy Das6f062c82015-07-09 18:46:12 +0000505 // Before expanding S into an expensive LLVM expression, see if we can use an
Igor Laevsky4709c032015-08-10 18:23:58 +0000506 // already existing value as the expansion for S.
Sanjoy Das0ce51a92015-09-15 23:45:35 +0000507 if (Value *ExistingValue = Rewriter.findExistingExpansion(S, InsertPt, L))
Sanjoy Das8a5526e2015-09-15 23:45:39 +0000508 if (ExistingValue->getType() == ResultTy)
509 return ExistingValue;
Sanjoy Das6f062c82015-07-09 18:46:12 +0000510
511 // We didn't find anything, fall back to using SCEVExpander.
Sanjoy Das6f062c82015-07-09 18:46:12 +0000512 return Rewriter.expandCodeFor(S, ResultTy, InsertPt);
513}
514
Andrew Trickcdc22972011-07-12 00:08:50 +0000515//===----------------------------------------------------------------------===//
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000516// rewriteLoopExitValues - Optimize IV users outside the loop.
Andrew Trickcdc22972011-07-12 00:08:50 +0000517// As a side effect, reduces the amount of IV processing within the loop.
518//===----------------------------------------------------------------------===//
519
Sanjoy Das9119bf42015-09-20 06:58:03 +0000520/// Check to see if this loop has a computable loop-invariant execution count.
521/// If so, this means that we can compute the final value of any expressions
522/// that are recurrent in the loop, and substitute the exit values from the loop
523/// into any instructions outside of the loop that use the final values of the
524/// current expressions.
Dan Gohmand76d71a2009-05-12 02:17:14 +0000525///
526/// This is mostly redundant with the regular IndVarSimplify activities that
527/// happen later, except that it's more powerful in some cases, because it's
528/// able to brute-force evaluate arbitrary instructions as long as they have
529/// constant operands at the beginning of the loop.
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000530void IndVarSimplify::rewriteLoopExitValues(Loop *L, SCEVExpander &Rewriter) {
Dan Gohmand76d71a2009-05-12 02:17:14 +0000531 // Verify the input to the pass in already in LCSSA form.
Dan Gohman2734ebd2010-03-10 19:38:49 +0000532 assert(L->isLCSSAForm(*DT));
Dan Gohmand76d71a2009-05-12 02:17:14 +0000533
Devang Patelb5933bb2007-08-21 00:31:24 +0000534 SmallVector<BasicBlock*, 8> ExitBlocks;
Chris Lattnerd7b4c922007-03-04 03:43:23 +0000535 L->getUniqueExitBlocks(ExitBlocks);
Misha Brukmanb1c93172005-04-21 23:48:37 +0000536
Wei Mie2538b52015-05-28 21:49:07 +0000537 SmallVector<RewritePhi, 8> RewritePhiSet;
Chris Lattnerd7b4c922007-03-04 03:43:23 +0000538 // Find all values that are computed inside the loop, but used outside of it.
539 // Because of LCSSA, these values will only occur in LCSSA PHI Nodes. Scan
540 // the exit blocks of the loop to find them.
541 for (unsigned i = 0, e = ExitBlocks.size(); i != e; ++i) {
542 BasicBlock *ExitBB = ExitBlocks[i];
Dan Gohmanf84d42f2009-02-17 19:13:57 +0000543
Chris Lattnerd7b4c922007-03-04 03:43:23 +0000544 // If there are no PHI nodes in this exit block, then no values defined
545 // inside the loop are used on this path, skip it.
546 PHINode *PN = dyn_cast<PHINode>(ExitBB->begin());
547 if (!PN) continue;
Dan Gohmanf84d42f2009-02-17 19:13:57 +0000548
Chris Lattnerd7b4c922007-03-04 03:43:23 +0000549 unsigned NumPreds = PN->getNumIncomingValues();
Dan Gohmanf84d42f2009-02-17 19:13:57 +0000550
Chandler Carruth66f0b162014-01-29 04:40:19 +0000551 // We would like to be able to RAUW single-incoming value PHI nodes. We
552 // have to be certain this is safe even when this is an LCSSA PHI node.
553 // While the computed exit value is no longer varying in *this* loop, the
554 // exit block may be an exit block for an outer containing loop as well,
555 // the exit value may be varying in the outer loop, and thus it may still
556 // require an LCSSA PHI node. The safe case is when this is
557 // single-predecessor PHI node (LCSSA) and the exit block containing it is
558 // part of the enclosing loop, or this is the outer most loop of the nest.
559 // In either case the exit value could (at most) be varying in the same
560 // loop body as the phi node itself. Thus if it is in turn used outside of
561 // an enclosing loop it will only be via a separate LCSSA node.
562 bool LCSSASafePhiForRAUW =
563 NumPreds == 1 &&
564 (!L->getParentLoop() || L->getParentLoop() == LI->getLoopFor(ExitBB));
565
Chris Lattnerd7b4c922007-03-04 03:43:23 +0000566 // Iterate over all of the PHI nodes.
567 BasicBlock::iterator BBI = ExitBB->begin();
568 while ((PN = dyn_cast<PHINode>(BBI++))) {
Torok Edwin5349cf52009-05-24 19:36:09 +0000569 if (PN->use_empty())
570 continue; // dead use, don't replace it
Dan Gohmanc43d2642010-02-18 21:34:02 +0000571
572 // SCEV only supports integer expressions for now.
573 if (!PN->getType()->isIntegerTy() && !PN->getType()->isPointerTy())
574 continue;
575
Dale Johannesen1d6827a2010-02-19 07:14:22 +0000576 // It's necessary to tell ScalarEvolution about this explicitly so that
577 // it can walk the def-use list and forget all SCEVs, as it may not be
578 // watching the PHI itself. Once the new exit value is in place, there
579 // may not be a def-use connection between the loop and every instruction
580 // which got a SCEVAddRecExpr for that loop.
581 SE->forgetValue(PN);
582
Chris Lattnerd7b4c922007-03-04 03:43:23 +0000583 // Iterate over all of the values in all the PHI nodes.
584 for (unsigned i = 0; i != NumPreds; ++i) {
585 // If the value being merged in is not integer or is not defined
586 // in the loop, skip it.
587 Value *InVal = PN->getIncomingValue(i);
Dan Gohmanc43d2642010-02-18 21:34:02 +0000588 if (!isa<Instruction>(InVal))
Chris Lattnerd7b4c922007-03-04 03:43:23 +0000589 continue;
Chris Lattnere61b67d2004-04-02 20:24:31 +0000590
Chris Lattnerd7b4c922007-03-04 03:43:23 +0000591 // If this pred is for a subloop, not L itself, skip it.
Dan Gohmanf84d42f2009-02-17 19:13:57 +0000592 if (LI->getLoopFor(PN->getIncomingBlock(i)) != L)
Chris Lattnerd7b4c922007-03-04 03:43:23 +0000593 continue; // The Block is in a subloop, skip it.
594
595 // Check that InVal is defined in the loop.
596 Instruction *Inst = cast<Instruction>(InVal);
Dan Gohman18fa5682009-12-18 01:24:09 +0000597 if (!L->contains(Inst))
Chris Lattnerd7b4c922007-03-04 03:43:23 +0000598 continue;
Dan Gohmanf84d42f2009-02-17 19:13:57 +0000599
Chris Lattnerd7b4c922007-03-04 03:43:23 +0000600 // Okay, this instruction has a user outside of the current loop
601 // and varies predictably *inside* the loop. Evaluate the value it
602 // contains when the loop exits, if possible.
Dan Gohmanaf752342009-07-07 17:06:11 +0000603 const SCEV *ExitValue = SE->getSCEVAtScope(Inst, L->getParentLoop());
Andrew Trick57243da2013-10-25 21:35:56 +0000604 if (!SE->isLoopInvariant(ExitValue, L) ||
605 !isSafeToExpand(ExitValue, *SE))
Chris Lattnerd7b4c922007-03-04 03:43:23 +0000606 continue;
Chris Lattner1f7648e2007-03-04 01:00:28 +0000607
Arnaud A. de Grandmaison87c473f2013-03-19 20:00:22 +0000608 // Computing the value outside of the loop brings no benefit if :
609 // - it is definitely used inside the loop in a way which can not be
610 // optimized away.
611 // - no use outside of the loop can take advantage of hoisting the
612 // computation out of the loop
613 if (ExitValue->getSCEVType()>=scMulExpr) {
614 unsigned NumHardInternalUses = 0;
615 unsigned NumSoftExternalUses = 0;
616 unsigned NumUses = 0;
Chandler Carruthcdf47882014-03-09 03:16:01 +0000617 for (auto IB = Inst->user_begin(), IE = Inst->user_end();
618 IB != IE && NumUses <= 6; ++IB) {
Arnaud A. de Grandmaison87c473f2013-03-19 20:00:22 +0000619 Instruction *UseInstr = cast<Instruction>(*IB);
620 unsigned Opc = UseInstr->getOpcode();
621 NumUses++;
622 if (L->contains(UseInstr)) {
623 if (Opc == Instruction::Call || Opc == Instruction::Ret)
624 NumHardInternalUses++;
625 } else {
626 if (Opc == Instruction::PHI) {
627 // Do not count the Phi as a use. LCSSA may have inserted
628 // plenty of trivial ones.
629 NumUses--;
Chandler Carruthcdf47882014-03-09 03:16:01 +0000630 for (auto PB = UseInstr->user_begin(),
631 PE = UseInstr->user_end();
632 PB != PE && NumUses <= 6; ++PB, ++NumUses) {
Arnaud A. de Grandmaison87c473f2013-03-19 20:00:22 +0000633 unsigned PhiOpc = cast<Instruction>(*PB)->getOpcode();
634 if (PhiOpc != Instruction::Call && PhiOpc != Instruction::Ret)
635 NumSoftExternalUses++;
636 }
637 continue;
638 }
639 if (Opc != Instruction::Call && Opc != Instruction::Ret)
640 NumSoftExternalUses++;
641 }
642 }
643 if (NumUses <= 6 && NumHardInternalUses && !NumSoftExternalUses)
644 continue;
645 }
646
Igor Laevsky4709c032015-08-10 18:23:58 +0000647 bool HighCost = Rewriter.isHighCostExpansion(ExitValue, L, Inst);
648 Value *ExitVal =
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000649 expandSCEVIfNeeded(Rewriter, ExitValue, L, Inst, PN->getType());
Dan Gohmanf84d42f2009-02-17 19:13:57 +0000650
David Greene0dd384c2010-01-05 01:27:06 +0000651 DEBUG(dbgs() << "INDVARS: RLEV: AfterLoopVal = " << *ExitVal << '\n'
Chris Lattnerb25de3f2009-08-23 04:37:46 +0000652 << " LoopVal = " << *Inst << "\n");
Chris Lattnerd7b4c922007-03-04 03:43:23 +0000653
Andrew Trick87716c92011-03-17 23:51:11 +0000654 if (!isValidRewrite(Inst, ExitVal)) {
655 DeadInsts.push_back(ExitVal);
656 continue;
657 }
Andrew Trick87716c92011-03-17 23:51:11 +0000658
Wei Mie2538b52015-05-28 21:49:07 +0000659 // Collect all the candidate PHINodes to be rewritten.
660 RewritePhiSet.push_back(
661 RewritePhi(PN, i, ExitVal, HighCost, LCSSASafePhiForRAUW));
Chris Lattnered30abf2007-03-03 22:48:48 +0000662 }
Chris Lattnered30abf2007-03-03 22:48:48 +0000663 }
664 }
Dan Gohman1a2abe52010-03-20 03:53:53 +0000665
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000666 bool LoopCanBeDel = canLoopBeDeleted(L, RewritePhiSet);
Wei Mie2538b52015-05-28 21:49:07 +0000667
668 // Transformation.
669 for (const RewritePhi &Phi : RewritePhiSet) {
670 PHINode *PN = Phi.PN;
671 Value *ExitVal = Phi.Val;
672
673 // Only do the rewrite when the ExitValue can be expanded cheaply.
674 // If LoopCanBeDel is true, rewrite exit value aggressively.
675 if (ReplaceExitValue == OnlyCheapRepl && !LoopCanBeDel && Phi.HighCost) {
676 DeadInsts.push_back(ExitVal);
677 continue;
678 }
679
680 Changed = true;
681 ++NumReplaced;
682 Instruction *Inst = cast<Instruction>(PN->getIncomingValue(Phi.Ith));
683 PN->setIncomingValue(Phi.Ith, ExitVal);
684
685 // If this instruction is dead now, delete it. Don't do it now to avoid
686 // invalidating iterators.
687 if (isInstructionTriviallyDead(Inst, TLI))
688 DeadInsts.push_back(Inst);
689
690 // If we determined that this PHI is safe to replace even if an LCSSA
691 // PHI, do so.
692 if (Phi.SafePhi) {
693 PN->replaceAllUsesWith(ExitVal);
694 PN->eraseFromParent();
695 }
696 }
697
Dan Gohman1a2abe52010-03-20 03:53:53 +0000698 // The insertion point instruction may have been deleted; clear it out
699 // so that the rewriter doesn't trip over it later.
700 Rewriter.clearInsertPoint();
Chris Lattnere61b67d2004-04-02 20:24:31 +0000701}
702
Sanjoy Das9119bf42015-09-20 06:58:03 +0000703/// Check whether it is possible to delete the loop after rewriting exit
704/// value. If it is possible, ignore ReplaceExitValue and do rewriting
705/// aggressively.
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000706bool IndVarSimplify::canLoopBeDeleted(
Wei Mie2538b52015-05-28 21:49:07 +0000707 Loop *L, SmallVector<RewritePhi, 8> &RewritePhiSet) {
708
709 BasicBlock *Preheader = L->getLoopPreheader();
710 // If there is no preheader, the loop will not be deleted.
711 if (!Preheader)
712 return false;
713
714 // In LoopDeletion pass Loop can be deleted when ExitingBlocks.size() > 1.
715 // We obviate multiple ExitingBlocks case for simplicity.
716 // TODO: If we see testcase with multiple ExitingBlocks can be deleted
717 // after exit value rewriting, we can enhance the logic here.
718 SmallVector<BasicBlock *, 4> ExitingBlocks;
719 L->getExitingBlocks(ExitingBlocks);
720 SmallVector<BasicBlock *, 8> ExitBlocks;
721 L->getUniqueExitBlocks(ExitBlocks);
722 if (ExitBlocks.size() > 1 || ExitingBlocks.size() > 1)
723 return false;
724
725 BasicBlock *ExitBlock = ExitBlocks[0];
726 BasicBlock::iterator BI = ExitBlock->begin();
727 while (PHINode *P = dyn_cast<PHINode>(BI)) {
728 Value *Incoming = P->getIncomingValueForBlock(ExitingBlocks[0]);
729
730 // If the Incoming value of P is found in RewritePhiSet, we know it
731 // could be rewritten to use a loop invariant value in transformation
732 // phase later. Skip it in the loop invariant check below.
733 bool found = false;
734 for (const RewritePhi &Phi : RewritePhiSet) {
735 unsigned i = Phi.Ith;
736 if (Phi.PN == P && (Phi.PN)->getIncomingValue(i) == Incoming) {
737 found = true;
738 break;
739 }
740 }
741
742 Instruction *I;
743 if (!found && (I = dyn_cast<Instruction>(Incoming)))
744 if (!L->hasLoopInvariantOperands(I))
745 return false;
746
747 ++BI;
748 }
749
750 for (Loop::block_iterator LI = L->block_begin(), LE = L->block_end();
751 LI != LE; ++LI) {
752 for (BasicBlock::iterator BI = (*LI)->begin(), BE = (*LI)->end(); BI != BE;
753 ++BI) {
754 if (BI->mayHaveSideEffects())
755 return false;
756 }
757 }
758
759 return true;
760}
761
Andrew Trickcdc22972011-07-12 00:08:50 +0000762//===----------------------------------------------------------------------===//
Andrew Trickcdc22972011-07-12 00:08:50 +0000763// IV Widening - Extend the width of an IV to cover its widest uses.
764//===----------------------------------------------------------------------===//
765
Andrew Trickf44aadf2011-05-20 18:25:42 +0000766namespace {
Sanjoy Dase1e352d2015-09-20 18:42:50 +0000767// Collect information about induction variables that are used by sign/zero
768// extend operations. This information is recorded by CollectExtend and provides
769// the input to WidenIV.
770struct WideIVInfo {
Sanjoy Das7cc2cfe2015-09-20 18:42:53 +0000771 PHINode *NarrowIV = nullptr;
772 Type *WidestNativeType = nullptr; // Widest integer type created [sz]ext
773 bool IsSigned = false; // Was a sext user seen before a zext?
Sanjoy Dase1e352d2015-09-20 18:42:50 +0000774};
Alexander Kornienkof00654e2015-06-23 09:49:53 +0000775}
Andrew Trickf44aadf2011-05-20 18:25:42 +0000776
Sanjoy Das9119bf42015-09-20 06:58:03 +0000777/// Update information about the induction variable that is extended by this
778/// sign or zero extend operation. This is used to determine the final width of
779/// the IV before actually widening it.
Andrew Trickb6bc7832014-01-02 21:12:11 +0000780static void visitIVCast(CastInst *Cast, WideIVInfo &WI, ScalarEvolution *SE,
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000781 const TargetTransformInfo *TTI) {
Andrew Trick3ec331e2011-08-10 03:46:27 +0000782 bool IsSigned = Cast->getOpcode() == Instruction::SExt;
783 if (!IsSigned && Cast->getOpcode() != Instruction::ZExt)
784 return;
785
Chris Lattner229907c2011-07-18 04:54:35 +0000786 Type *Ty = Cast->getType();
Andrew Trickf44aadf2011-05-20 18:25:42 +0000787 uint64_t Width = SE->getTypeSizeInBits(Ty);
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000788 if (!Cast->getModule()->getDataLayout().isLegalInteger(Width))
Andrew Trickf44aadf2011-05-20 18:25:42 +0000789 return;
790
Jingyue Wu8a12cea2014-11-12 18:09:15 +0000791 // Cast is either an sext or zext up to this point.
792 // We should not widen an indvar if arithmetics on the wider indvar are more
793 // expensive than those on the narrower indvar. We check only the cost of ADD
794 // because at least an ADD is required to increment the induction variable. We
795 // could compute more comprehensively the cost of all instructions on the
796 // induction variable when necessary.
797 if (TTI &&
798 TTI->getArithmeticInstrCost(Instruction::Add, Ty) >
799 TTI->getArithmeticInstrCost(Instruction::Add,
800 Cast->getOperand(0)->getType())) {
801 return;
802 }
803
Andrew Trick69d44522011-06-21 03:22:38 +0000804 if (!WI.WidestNativeType) {
805 WI.WidestNativeType = SE->getEffectiveSCEVType(Ty);
806 WI.IsSigned = IsSigned;
Andrew Trickf44aadf2011-05-20 18:25:42 +0000807 return;
808 }
809
810 // We extend the IV to satisfy the sign of its first user, arbitrarily.
Andrew Trick69d44522011-06-21 03:22:38 +0000811 if (WI.IsSigned != IsSigned)
Andrew Trickf44aadf2011-05-20 18:25:42 +0000812 return;
813
Andrew Trick69d44522011-06-21 03:22:38 +0000814 if (Width > SE->getTypeSizeInBits(WI.WidestNativeType))
815 WI.WidestNativeType = SE->getEffectiveSCEVType(Ty);
Andrew Trickf44aadf2011-05-20 18:25:42 +0000816}
817
818namespace {
Andrew Trick22104482011-07-20 04:39:24 +0000819
Sanjoy Das9119bf42015-09-20 06:58:03 +0000820/// Record a link in the Narrow IV def-use chain along with the WideIV that
821/// computes the same value as the Narrow IV def. This avoids caching Use*
822/// pointers.
Andrew Trick22104482011-07-20 04:39:24 +0000823struct NarrowIVDefUse {
Sanjoy Das7cc2cfe2015-09-20 18:42:53 +0000824 Instruction *NarrowDef = nullptr;
825 Instruction *NarrowUse = nullptr;
826 Instruction *WideDef = nullptr;
Andrew Trick22104482011-07-20 04:39:24 +0000827
Sanjoy Das428db152015-09-20 01:52:18 +0000828 // True if the narrow def is never negative. Tracking this information lets
829 // us use a sign extension instead of a zero extension or vice versa, when
830 // profitable and legal.
Sanjoy Das7cc2cfe2015-09-20 18:42:53 +0000831 bool NeverNegative = false;
Sanjoy Das428db152015-09-20 01:52:18 +0000832
833 NarrowIVDefUse(Instruction *ND, Instruction *NU, Instruction *WD,
834 bool NeverNegative)
835 : NarrowDef(ND), NarrowUse(NU), WideDef(WD),
836 NeverNegative(NeverNegative) {}
Andrew Trick22104482011-07-20 04:39:24 +0000837};
838
Sanjoy Das9119bf42015-09-20 06:58:03 +0000839/// The goal of this transform is to remove sign and zero extends without
840/// creating any new induction variables. To do this, it creates a new phi of
841/// the wider type and redirects all users, either removing extends or inserting
842/// truncs whenever we stop propagating the type.
Andrew Trickf44aadf2011-05-20 18:25:42 +0000843///
844class WidenIV {
Andrew Trick69d44522011-06-21 03:22:38 +0000845 // Parameters
Andrew Trickf44aadf2011-05-20 18:25:42 +0000846 PHINode *OrigPhi;
Chris Lattner229907c2011-07-18 04:54:35 +0000847 Type *WideType;
Andrew Trickf44aadf2011-05-20 18:25:42 +0000848 bool IsSigned;
849
Andrew Trick69d44522011-06-21 03:22:38 +0000850 // Context
851 LoopInfo *LI;
852 Loop *L;
Andrew Trickf44aadf2011-05-20 18:25:42 +0000853 ScalarEvolution *SE;
Andrew Trick69d44522011-06-21 03:22:38 +0000854 DominatorTree *DT;
Andrew Trickf44aadf2011-05-20 18:25:42 +0000855
Andrew Trick69d44522011-06-21 03:22:38 +0000856 // Result
Andrew Trickf44aadf2011-05-20 18:25:42 +0000857 PHINode *WidePhi;
858 Instruction *WideInc;
859 const SCEV *WideIncExpr;
Andrew Trick69d44522011-06-21 03:22:38 +0000860 SmallVectorImpl<WeakVH> &DeadInsts;
Andrew Trickf44aadf2011-05-20 18:25:42 +0000861
Andrew Trick69d44522011-06-21 03:22:38 +0000862 SmallPtrSet<Instruction*,16> Widened;
Andrew Trick22104482011-07-20 04:39:24 +0000863 SmallVector<NarrowIVDefUse, 8> NarrowIVUsers;
Andrew Trickf44aadf2011-05-20 18:25:42 +0000864
865public:
Andrew Trickd50861c2011-10-15 01:38:14 +0000866 WidenIV(const WideIVInfo &WI, LoopInfo *LInfo,
Andrew Trick69d44522011-06-21 03:22:38 +0000867 ScalarEvolution *SEv, DominatorTree *DTree,
Andrew Trick7fac79e2011-05-26 00:46:11 +0000868 SmallVectorImpl<WeakVH> &DI) :
Andrew Trickd50861c2011-10-15 01:38:14 +0000869 OrigPhi(WI.NarrowIV),
Andrew Trick69d44522011-06-21 03:22:38 +0000870 WideType(WI.WidestNativeType),
871 IsSigned(WI.IsSigned),
Andrew Trickf44aadf2011-05-20 18:25:42 +0000872 LI(LInfo),
873 L(LI->getLoopFor(OrigPhi->getParent())),
874 SE(SEv),
Andrew Trick7fac79e2011-05-26 00:46:11 +0000875 DT(DTree),
Craig Topperf40110f2014-04-25 05:29:35 +0000876 WidePhi(nullptr),
877 WideInc(nullptr),
878 WideIncExpr(nullptr),
Andrew Trick69d44522011-06-21 03:22:38 +0000879 DeadInsts(DI) {
Andrew Trickf44aadf2011-05-20 18:25:42 +0000880 assert(L->getHeader() == OrigPhi->getParent() && "Phi must be an IV");
881 }
882
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000883 PHINode *createWideIV(SCEVExpander &Rewriter);
Andrew Trickf44aadf2011-05-20 18:25:42 +0000884
885protected:
Andrew Tricke0e30532011-09-28 01:35:36 +0000886 Value *getExtend(Value *NarrowOper, Type *WideType, bool IsSigned,
887 Instruction *Use);
888
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000889 Instruction *cloneIVUser(NarrowIVDefUse DU);
Andrew Trickf44aadf2011-05-20 18:25:42 +0000890
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000891 const SCEVAddRecExpr *getWideRecurrence(Instruction *NarrowUse);
Andrew Trick92905a12011-07-05 18:19:39 +0000892
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000893 const SCEVAddRecExpr* getExtendedOperandRecurrence(NarrowIVDefUse DU);
Andrew Trickc7868bf02011-09-10 01:24:17 +0000894
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000895 const SCEV *getSCEVByOpCode(const SCEV *LHS, const SCEV *RHS,
Zinovy Nis0a36cba2014-08-21 08:25:45 +0000896 unsigned OpCode) const;
897
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000898 Instruction *widenIVUse(NarrowIVDefUse DU, SCEVExpander &Rewriter);
Andrew Trick6d123092011-07-02 02:34:25 +0000899
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000900 bool widenLoopCompare(NarrowIVDefUse DU);
Chad Rosierbb99f402014-09-17 14:10:33 +0000901
Andrew Trick6d123092011-07-02 02:34:25 +0000902 void pushNarrowIVUsers(Instruction *NarrowDef, Instruction *WideDef);
Andrew Trickf44aadf2011-05-20 18:25:42 +0000903};
904} // anonymous namespace
905
Sanjoy Das9119bf42015-09-20 06:58:03 +0000906/// Perform a quick domtree based check for loop invariance assuming that V is
907/// used within the loop. LoopInfo::isLoopInvariant() seems gratuitous for this
908/// purpose.
Andrew Tricke0e30532011-09-28 01:35:36 +0000909static bool isLoopInvariant(Value *V, const Loop *L, const DominatorTree *DT) {
910 Instruction *Inst = dyn_cast<Instruction>(V);
911 if (!Inst)
912 return true;
913
914 return DT->properlyDominates(Inst->getParent(), L->getHeader());
915}
916
917Value *WidenIV::getExtend(Value *NarrowOper, Type *WideType, bool IsSigned,
918 Instruction *Use) {
919 // Set the debug location and conservative insertion point.
920 IRBuilder<> Builder(Use);
921 // Hoist the insertion point into loop preheaders as far as possible.
922 for (const Loop *L = LI->getLoopFor(Use->getParent());
923 L && L->getLoopPreheader() && isLoopInvariant(NarrowOper, L, DT);
924 L = L->getParentLoop())
925 Builder.SetInsertPoint(L->getLoopPreheader()->getTerminator());
926
Andrew Trickeb3c36e2011-05-25 04:42:22 +0000927 return IsSigned ? Builder.CreateSExt(NarrowOper, WideType) :
928 Builder.CreateZExt(NarrowOper, WideType);
Andrew Trickf44aadf2011-05-20 18:25:42 +0000929}
930
Sanjoy Das9119bf42015-09-20 06:58:03 +0000931/// Instantiate a wide operation to replace a narrow operation. This only needs
932/// to handle operations that can evaluation to SCEVAddRec. It can safely return
933/// 0 for any operation we decide not to clone.
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000934Instruction *WidenIV::cloneIVUser(NarrowIVDefUse DU) {
Andrew Trick22104482011-07-20 04:39:24 +0000935 unsigned Opcode = DU.NarrowUse->getOpcode();
Andrew Trickf44aadf2011-05-20 18:25:42 +0000936 switch (Opcode) {
937 default:
Craig Topperf40110f2014-04-25 05:29:35 +0000938 return nullptr;
Andrew Trickf44aadf2011-05-20 18:25:42 +0000939 case Instruction::Add:
940 case Instruction::Mul:
941 case Instruction::UDiv:
942 case Instruction::Sub:
943 case Instruction::And:
944 case Instruction::Or:
945 case Instruction::Xor:
946 case Instruction::Shl:
947 case Instruction::LShr:
948 case Instruction::AShr:
Andrew Trick22104482011-07-20 04:39:24 +0000949 DEBUG(dbgs() << "Cloning IVUser: " << *DU.NarrowUse << "\n");
Andrew Trickf44aadf2011-05-20 18:25:42 +0000950
Andrew Trickeb3c36e2011-05-25 04:42:22 +0000951 // Replace NarrowDef operands with WideDef. Otherwise, we don't know
952 // anything about the narrow operand yet so must insert a [sz]ext. It is
953 // probably loop invariant and will be folded or hoisted. If it actually
954 // comes from a widened IV, it should be removed during a future call to
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000955 // widenIVUse.
Andrew Trick22104482011-07-20 04:39:24 +0000956 Value *LHS = (DU.NarrowUse->getOperand(0) == DU.NarrowDef) ? DU.WideDef :
Andrew Tricke0e30532011-09-28 01:35:36 +0000957 getExtend(DU.NarrowUse->getOperand(0), WideType, IsSigned, DU.NarrowUse);
Andrew Trick22104482011-07-20 04:39:24 +0000958 Value *RHS = (DU.NarrowUse->getOperand(1) == DU.NarrowDef) ? DU.WideDef :
Andrew Tricke0e30532011-09-28 01:35:36 +0000959 getExtend(DU.NarrowUse->getOperand(1), WideType, IsSigned, DU.NarrowUse);
Andrew Trickeb3c36e2011-05-25 04:42:22 +0000960
Sanjoy Dascc16ccc2015-10-10 06:33:33 +0000961 auto *NarrowBO = cast<BinaryOperator>(DU.NarrowUse);
962 auto *WideBO = BinaryOperator::Create(NarrowBO->getOpcode(), LHS, RHS,
963 NarrowBO->getName());
Andrew Tricke0e30532011-09-28 01:35:36 +0000964 IRBuilder<> Builder(DU.NarrowUse);
Andrew Trickf44aadf2011-05-20 18:25:42 +0000965 Builder.Insert(WideBO);
Sanjoy Dascc16ccc2015-10-10 06:33:33 +0000966 if (const auto *OBO = dyn_cast<OverflowingBinaryOperator>(NarrowBO)) {
Andrew Trickefe89ad2011-06-30 19:02:17 +0000967 if (OBO->hasNoUnsignedWrap()) WideBO->setHasNoUnsignedWrap();
968 if (OBO->hasNoSignedWrap()) WideBO->setHasNoSignedWrap();
969 }
Andrew Trickeb3c36e2011-05-25 04:42:22 +0000970 return WideBO;
Andrew Trickf44aadf2011-05-20 18:25:42 +0000971 }
Andrew Trickf44aadf2011-05-20 18:25:42 +0000972}
973
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000974const SCEV *WidenIV::getSCEVByOpCode(const SCEV *LHS, const SCEV *RHS,
Zinovy Nis0a36cba2014-08-21 08:25:45 +0000975 unsigned OpCode) const {
976 if (OpCode == Instruction::Add)
977 return SE->getAddExpr(LHS, RHS);
978 if (OpCode == Instruction::Sub)
979 return SE->getMinusSCEV(LHS, RHS);
980 if (OpCode == Instruction::Mul)
981 return SE->getMulExpr(LHS, RHS);
982
983 llvm_unreachable("Unsupported opcode.");
Zinovy Nis0a36cba2014-08-21 08:25:45 +0000984}
985
Andrew Trickc7868bf02011-09-10 01:24:17 +0000986/// No-wrap operations can transfer sign extension of their result to their
987/// operands. Generate the SCEV value for the widened operation without
988/// actually modifying the IR yet. If the expression after extending the
989/// operands is an AddRec for this loop, return it.
Sanjoy Dasb873cbe2015-10-13 07:17:38 +0000990const SCEVAddRecExpr* WidenIV::getExtendedOperandRecurrence(NarrowIVDefUse DU) {
Zinovy Nis0a36cba2014-08-21 08:25:45 +0000991
Andrew Trickc7868bf02011-09-10 01:24:17 +0000992 // Handle the common case of add<nsw/nuw>
Zinovy Nis0a36cba2014-08-21 08:25:45 +0000993 const unsigned OpCode = DU.NarrowUse->getOpcode();
994 // Only Add/Sub/Mul instructions supported yet.
995 if (OpCode != Instruction::Add && OpCode != Instruction::Sub &&
996 OpCode != Instruction::Mul)
Craig Topperf40110f2014-04-25 05:29:35 +0000997 return nullptr;
Andrew Trickc7868bf02011-09-10 01:24:17 +0000998
999 // One operand (NarrowDef) has already been extended to WideDef. Now determine
1000 // if extending the other will lead to a recurrence.
Zinovy Nisccc3e372014-10-02 13:01:15 +00001001 const unsigned ExtendOperIdx =
1002 DU.NarrowUse->getOperand(0) == DU.NarrowDef ? 1 : 0;
Andrew Trickc7868bf02011-09-10 01:24:17 +00001003 assert(DU.NarrowUse->getOperand(1-ExtendOperIdx) == DU.NarrowDef && "bad DU");
1004
Craig Topperf40110f2014-04-25 05:29:35 +00001005 const SCEV *ExtendOperExpr = nullptr;
Andrew Trickc7868bf02011-09-10 01:24:17 +00001006 const OverflowingBinaryOperator *OBO =
1007 cast<OverflowingBinaryOperator>(DU.NarrowUse);
1008 if (IsSigned && OBO->hasNoSignedWrap())
1009 ExtendOperExpr = SE->getSignExtendExpr(
1010 SE->getSCEV(DU.NarrowUse->getOperand(ExtendOperIdx)), WideType);
1011 else if(!IsSigned && OBO->hasNoUnsignedWrap())
1012 ExtendOperExpr = SE->getZeroExtendExpr(
1013 SE->getSCEV(DU.NarrowUse->getOperand(ExtendOperIdx)), WideType);
1014 else
Craig Topperf40110f2014-04-25 05:29:35 +00001015 return nullptr;
Andrew Trickc7868bf02011-09-10 01:24:17 +00001016
Zinovy Nis0a36cba2014-08-21 08:25:45 +00001017 // When creating this SCEV expr, don't apply the current operations NSW or NUW
Andrew Trickd25089f2011-11-29 02:16:38 +00001018 // flags. This instruction may be guarded by control flow that the no-wrap
1019 // behavior depends on. Non-control-equivalent instructions can be mapped to
1020 // the same SCEV expression, and it would be incorrect to transfer NSW/NUW
1021 // semantics to those operations.
Zinovy Nisccc3e372014-10-02 13:01:15 +00001022 const SCEV *lhs = SE->getSCEV(DU.WideDef);
1023 const SCEV *rhs = ExtendOperExpr;
1024
1025 // Let's swap operands to the initial order for the case of non-commutative
1026 // operations, like SUB. See PR21014.
1027 if (ExtendOperIdx == 0)
1028 std::swap(lhs, rhs);
1029 const SCEVAddRecExpr *AddRec =
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00001030 dyn_cast<SCEVAddRecExpr>(getSCEVByOpCode(lhs, rhs, OpCode));
Zinovy Nisccc3e372014-10-02 13:01:15 +00001031
Andrew Trickc7868bf02011-09-10 01:24:17 +00001032 if (!AddRec || AddRec->getLoop() != L)
Craig Topperf40110f2014-04-25 05:29:35 +00001033 return nullptr;
Andrew Trickc7868bf02011-09-10 01:24:17 +00001034 return AddRec;
1035}
1036
Sanjoy Das9119bf42015-09-20 06:58:03 +00001037/// Is this instruction potentially interesting for further simplification after
1038/// widening it's type? In other words, can the extend be safely hoisted out of
1039/// the loop with SCEV reducing the value to a recurrence on the same loop. If
1040/// so, return the sign or zero extended recurrence. Otherwise return NULL.
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00001041const SCEVAddRecExpr *WidenIV::getWideRecurrence(Instruction *NarrowUse) {
Andrew Trick92905a12011-07-05 18:19:39 +00001042 if (!SE->isSCEVable(NarrowUse->getType()))
Craig Topperf40110f2014-04-25 05:29:35 +00001043 return nullptr;
Andrew Trick92905a12011-07-05 18:19:39 +00001044
1045 const SCEV *NarrowExpr = SE->getSCEV(NarrowUse);
1046 if (SE->getTypeSizeInBits(NarrowExpr->getType())
1047 >= SE->getTypeSizeInBits(WideType)) {
1048 // NarrowUse implicitly widens its operand. e.g. a gep with a narrow
1049 // index. So don't follow this use.
Craig Topperf40110f2014-04-25 05:29:35 +00001050 return nullptr;
Andrew Trick92905a12011-07-05 18:19:39 +00001051 }
1052
1053 const SCEV *WideExpr = IsSigned ?
1054 SE->getSignExtendExpr(NarrowExpr, WideType) :
1055 SE->getZeroExtendExpr(NarrowExpr, WideType);
1056 const SCEVAddRecExpr *AddRec = dyn_cast<SCEVAddRecExpr>(WideExpr);
1057 if (!AddRec || AddRec->getLoop() != L)
Craig Topperf40110f2014-04-25 05:29:35 +00001058 return nullptr;
Andrew Trick92905a12011-07-05 18:19:39 +00001059 return AddRec;
1060}
1061
Andrew Trick020dd892014-01-02 19:29:38 +00001062/// This IV user cannot be widen. Replace this use of the original narrow IV
1063/// with a truncation of the new wide IV to isolate and eliminate the narrow IV.
1064static void truncateIVUse(NarrowIVDefUse DU, DominatorTree *DT) {
Andrew Tricke4a18602014-01-07 06:59:12 +00001065 DEBUG(dbgs() << "INDVARS: Truncate IV " << *DU.WideDef
1066 << " for user " << *DU.NarrowUse << "\n");
Andrew Trick020dd892014-01-02 19:29:38 +00001067 IRBuilder<> Builder(getInsertPointForUses(DU.NarrowUse, DU.NarrowDef, DT));
1068 Value *Trunc = Builder.CreateTrunc(DU.WideDef, DU.NarrowDef->getType());
1069 DU.NarrowUse->replaceUsesOfWith(DU.NarrowDef, Trunc);
1070}
1071
Chad Rosierbb99f402014-09-17 14:10:33 +00001072/// If the narrow use is a compare instruction, then widen the compare
1073// (and possibly the other operand). The extend operation is hoisted into the
1074// loop preheader as far as possible.
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00001075bool WidenIV::widenLoopCompare(NarrowIVDefUse DU) {
Chad Rosierbb99f402014-09-17 14:10:33 +00001076 ICmpInst *Cmp = dyn_cast<ICmpInst>(DU.NarrowUse);
1077 if (!Cmp)
1078 return false;
1079
Sanjoy Dasf69d0e32015-09-18 21:21:02 +00001080 // We can legally widen the comparison in the following two cases:
1081 //
1082 // - The signedness of the IV extension and comparison match
1083 //
1084 // - The narrow IV is always positive (and thus its sign extension is equal
1085 // to its zero extension). For instance, let's say we're zero extending
1086 // %narrow for the following use
1087 //
1088 // icmp slt i32 %narrow, %val ... (A)
1089 //
1090 // and %narrow is always positive. Then
1091 //
1092 // (A) == icmp slt i32 sext(%narrow), sext(%val)
1093 // == icmp slt i32 zext(%narrow), sext(%val)
1094
Sanjoy Das428db152015-09-20 01:52:18 +00001095 if (!(DU.NeverNegative || IsSigned == Cmp->isSigned()))
Chad Rosier307b50b2014-09-17 16:35:09 +00001096 return false;
1097
Chad Rosierbb99f402014-09-17 14:10:33 +00001098 Value *Op = Cmp->getOperand(Cmp->getOperand(0) == DU.NarrowDef ? 1 : 0);
1099 unsigned CastWidth = SE->getTypeSizeInBits(Op->getType());
1100 unsigned IVWidth = SE->getTypeSizeInBits(WideType);
1101 assert (CastWidth <= IVWidth && "Unexpected width while widening compare.");
1102
1103 // Widen the compare instruction.
1104 IRBuilder<> Builder(getInsertPointForUses(DU.NarrowUse, DU.NarrowDef, DT));
1105 DU.NarrowUse->replaceUsesOfWith(DU.NarrowDef, DU.WideDef);
1106
1107 // Widen the other operand of the compare, if necessary.
1108 if (CastWidth < IVWidth) {
Sanjoy Dasf69d0e32015-09-18 21:21:02 +00001109 Value *ExtOp = getExtend(Op, WideType, Cmp->isSigned(), Cmp);
Chad Rosierbb99f402014-09-17 14:10:33 +00001110 DU.NarrowUse->replaceUsesOfWith(Op, ExtOp);
1111 }
1112 return true;
1113}
1114
Sanjoy Das9119bf42015-09-20 06:58:03 +00001115/// Determine whether an individual user of the narrow IV can be widened. If so,
1116/// return the wide clone of the user.
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00001117Instruction *WidenIV::widenIVUse(NarrowIVDefUse DU, SCEVExpander &Rewriter) {
Andrew Trickecdd6e42011-06-29 23:03:57 +00001118
Andrew Trick6d123092011-07-02 02:34:25 +00001119 // Stop traversing the def-use chain at inner-loop phis or post-loop phis.
Andrew Tricke4a18602014-01-07 06:59:12 +00001120 if (PHINode *UsePhi = dyn_cast<PHINode>(DU.NarrowUse)) {
1121 if (LI->getLoopFor(UsePhi->getParent()) != L) {
1122 // For LCSSA phis, sink the truncate outside the loop.
1123 // After SimplifyCFG most loop exit targets have a single predecessor.
1124 // Otherwise fall back to a truncate within the loop.
1125 if (UsePhi->getNumOperands() != 1)
1126 truncateIVUse(DU, DT);
1127 else {
1128 PHINode *WidePhi =
1129 PHINode::Create(DU.WideDef->getType(), 1, UsePhi->getName() + ".wide",
1130 UsePhi);
1131 WidePhi->addIncoming(DU.WideDef, UsePhi->getIncomingBlock(0));
1132 IRBuilder<> Builder(WidePhi->getParent()->getFirstInsertionPt());
1133 Value *Trunc = Builder.CreateTrunc(WidePhi, DU.NarrowDef->getType());
1134 UsePhi->replaceAllUsesWith(Trunc);
Benjamin Kramerf5e2fc42015-05-29 19:43:39 +00001135 DeadInsts.emplace_back(UsePhi);
Andrew Tricke4a18602014-01-07 06:59:12 +00001136 DEBUG(dbgs() << "INDVARS: Widen lcssa phi " << *UsePhi
1137 << " to " << *WidePhi << "\n");
1138 }
Craig Topperf40110f2014-04-25 05:29:35 +00001139 return nullptr;
Andrew Tricke4a18602014-01-07 06:59:12 +00001140 }
Andrew Trick020dd892014-01-02 19:29:38 +00001141 }
Andrew Trickf44aadf2011-05-20 18:25:42 +00001142 // Our raison d'etre! Eliminate sign and zero extension.
Andrew Trick22104482011-07-20 04:39:24 +00001143 if (IsSigned ? isa<SExtInst>(DU.NarrowUse) : isa<ZExtInst>(DU.NarrowUse)) {
1144 Value *NewDef = DU.WideDef;
1145 if (DU.NarrowUse->getType() != WideType) {
1146 unsigned CastWidth = SE->getTypeSizeInBits(DU.NarrowUse->getType());
Andrew Trickeb3c36e2011-05-25 04:42:22 +00001147 unsigned IVWidth = SE->getTypeSizeInBits(WideType);
1148 if (CastWidth < IVWidth) {
1149 // The cast isn't as wide as the IV, so insert a Trunc.
Andrew Trick22104482011-07-20 04:39:24 +00001150 IRBuilder<> Builder(DU.NarrowUse);
1151 NewDef = Builder.CreateTrunc(DU.WideDef, DU.NarrowUse->getType());
Andrew Trickeb3c36e2011-05-25 04:42:22 +00001152 }
1153 else {
1154 // A wider extend was hidden behind a narrower one. This may induce
1155 // another round of IV widening in which the intermediate IV becomes
1156 // dead. It should be very rare.
1157 DEBUG(dbgs() << "INDVARS: New IV " << *WidePhi
Andrew Trick22104482011-07-20 04:39:24 +00001158 << " not wide enough to subsume " << *DU.NarrowUse << "\n");
1159 DU.NarrowUse->replaceUsesOfWith(DU.NarrowDef, DU.WideDef);
1160 NewDef = DU.NarrowUse;
Andrew Trickeb3c36e2011-05-25 04:42:22 +00001161 }
1162 }
Andrew Trick22104482011-07-20 04:39:24 +00001163 if (NewDef != DU.NarrowUse) {
1164 DEBUG(dbgs() << "INDVARS: eliminating " << *DU.NarrowUse
1165 << " replaced by " << *DU.WideDef << "\n");
Andrew Trickeb3c36e2011-05-25 04:42:22 +00001166 ++NumElimExt;
Andrew Trick22104482011-07-20 04:39:24 +00001167 DU.NarrowUse->replaceAllUsesWith(NewDef);
Benjamin Kramerf5e2fc42015-05-29 19:43:39 +00001168 DeadInsts.emplace_back(DU.NarrowUse);
Andrew Trickeb3c36e2011-05-25 04:42:22 +00001169 }
Andrew Trick69d44522011-06-21 03:22:38 +00001170 // Now that the extend is gone, we want to expose it's uses for potential
1171 // further simplification. We don't need to directly inform SimplifyIVUsers
1172 // of the new users, because their parent IV will be processed later as a
1173 // new loop phi. If we preserved IVUsers analysis, we would also want to
1174 // push the uses of WideDef here.
Andrew Trickf44aadf2011-05-20 18:25:42 +00001175
1176 // No further widening is needed. The deceased [sz]ext had done it for us.
Craig Topperf40110f2014-04-25 05:29:35 +00001177 return nullptr;
Andrew Trickf44aadf2011-05-20 18:25:42 +00001178 }
Andrew Trick6d123092011-07-02 02:34:25 +00001179
1180 // Does this user itself evaluate to a recurrence after widening?
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00001181 const SCEVAddRecExpr *WideAddRec = getWideRecurrence(DU.NarrowUse);
Chad Rosierbb99f402014-09-17 14:10:33 +00001182 if (!WideAddRec)
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00001183 WideAddRec = getExtendedOperandRecurrence(DU);
Chad Rosierbb99f402014-09-17 14:10:33 +00001184
Andrew Trickf44aadf2011-05-20 18:25:42 +00001185 if (!WideAddRec) {
Chad Rosierbb99f402014-09-17 14:10:33 +00001186 // If use is a loop condition, try to promote the condition instead of
1187 // truncating the IV first.
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00001188 if (widenLoopCompare(DU))
Chad Rosierbb99f402014-09-17 14:10:33 +00001189 return nullptr;
1190
Andrew Trickf44aadf2011-05-20 18:25:42 +00001191 // This user does not evaluate to a recurence after widening, so don't
1192 // follow it. Instead insert a Trunc to kill off the original use,
1193 // eventually isolating the original narrow IV so it can be removed.
Andrew Trick020dd892014-01-02 19:29:38 +00001194 truncateIVUse(DU, DT);
Craig Topperf40110f2014-04-25 05:29:35 +00001195 return nullptr;
Andrew Trickf44aadf2011-05-20 18:25:42 +00001196 }
Andrew Trick7da24172011-07-18 20:32:31 +00001197 // Assume block terminators cannot evaluate to a recurrence. We can't to
Andrew Trick6d123092011-07-02 02:34:25 +00001198 // insert a Trunc after a terminator if there happens to be a critical edge.
Andrew Trick22104482011-07-20 04:39:24 +00001199 assert(DU.NarrowUse != DU.NarrowUse->getParent()->getTerminator() &&
Andrew Trick6d123092011-07-02 02:34:25 +00001200 "SCEV is not expected to evaluate a block terminator");
Andrew Trickecdd6e42011-06-29 23:03:57 +00001201
Andrew Trick7fac79e2011-05-26 00:46:11 +00001202 // Reuse the IV increment that SCEVExpander created as long as it dominates
1203 // NarrowUse.
Craig Topperf40110f2014-04-25 05:29:35 +00001204 Instruction *WideUse = nullptr;
Andrew Trickf9201c52011-10-11 02:28:51 +00001205 if (WideAddRec == WideIncExpr
Andrew Trickc908b432012-01-20 07:41:13 +00001206 && Rewriter.hoistIVInc(WideInc, DU.NarrowUse))
Andrew Trickf44aadf2011-05-20 18:25:42 +00001207 WideUse = WideInc;
Andrew Trickf44aadf2011-05-20 18:25:42 +00001208 else {
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00001209 WideUse = cloneIVUser(DU);
Andrew Trickf44aadf2011-05-20 18:25:42 +00001210 if (!WideUse)
Craig Topperf40110f2014-04-25 05:29:35 +00001211 return nullptr;
Andrew Trickf44aadf2011-05-20 18:25:42 +00001212 }
Andrew Trick6d123092011-07-02 02:34:25 +00001213 // Evaluation of WideAddRec ensured that the narrow expression could be
1214 // extended outside the loop without overflow. This suggests that the wide use
Andrew Trickf44aadf2011-05-20 18:25:42 +00001215 // evaluates to the same expression as the extended narrow use, but doesn't
1216 // absolutely guarantee it. Hence the following failsafe check. In rare cases
Andrew Trick69d44522011-06-21 03:22:38 +00001217 // where it fails, we simply throw away the newly created wide use.
Andrew Trickf44aadf2011-05-20 18:25:42 +00001218 if (WideAddRec != SE->getSCEV(WideUse)) {
1219 DEBUG(dbgs() << "Wide use expression mismatch: " << *WideUse
1220 << ": " << *SE->getSCEV(WideUse) << " != " << *WideAddRec << "\n");
Benjamin Kramerf5e2fc42015-05-29 19:43:39 +00001221 DeadInsts.emplace_back(WideUse);
Craig Topperf40110f2014-04-25 05:29:35 +00001222 return nullptr;
Andrew Trickf44aadf2011-05-20 18:25:42 +00001223 }
1224
1225 // Returning WideUse pushes it on the worklist.
1226 return WideUse;
1227}
1228
Sanjoy Das9119bf42015-09-20 06:58:03 +00001229/// Add eligible users of NarrowDef to NarrowIVUsers.
Andrew Trick6d123092011-07-02 02:34:25 +00001230///
1231void WidenIV::pushNarrowIVUsers(Instruction *NarrowDef, Instruction *WideDef) {
Sanjoy Das428db152015-09-20 01:52:18 +00001232 const SCEV *NarrowSCEV = SE->getSCEV(NarrowDef);
1233 bool NeverNegative =
1234 SE->isKnownPredicate(ICmpInst::ICMP_SGE, NarrowSCEV,
1235 SE->getConstant(NarrowSCEV->getType(), 0));
Chandler Carruthcdf47882014-03-09 03:16:01 +00001236 for (User *U : NarrowDef->users()) {
1237 Instruction *NarrowUser = cast<Instruction>(U);
Andrew Trick6d123092011-07-02 02:34:25 +00001238
1239 // Handle data flow merges and bizarre phi cycles.
David Blaikie70573dc2014-11-19 07:49:26 +00001240 if (!Widened.insert(NarrowUser).second)
Andrew Trick6d123092011-07-02 02:34:25 +00001241 continue;
1242
Sanjoy Das428db152015-09-20 01:52:18 +00001243 NarrowIVUsers.push_back(
1244 NarrowIVDefUse(NarrowDef, NarrowUser, WideDef, NeverNegative));
Andrew Trick6d123092011-07-02 02:34:25 +00001245 }
1246}
1247
Sanjoy Das9119bf42015-09-20 06:58:03 +00001248/// Process a single induction variable. First use the SCEVExpander to create a
1249/// wide induction variable that evaluates to the same recurrence as the
1250/// original narrow IV. Then use a worklist to forward traverse the narrow IV's
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00001251/// def-use chain. After widenIVUse has processed all interesting IV users, the
Sanjoy Das9119bf42015-09-20 06:58:03 +00001252/// narrow IV will be isolated for removal by DeleteDeadPHIs.
Andrew Trickf44aadf2011-05-20 18:25:42 +00001253///
1254/// It would be simpler to delete uses as they are processed, but we must avoid
1255/// invalidating SCEV expressions.
1256///
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00001257PHINode *WidenIV::createWideIV(SCEVExpander &Rewriter) {
Andrew Trickf44aadf2011-05-20 18:25:42 +00001258 // Is this phi an induction variable?
1259 const SCEVAddRecExpr *AddRec = dyn_cast<SCEVAddRecExpr>(SE->getSCEV(OrigPhi));
1260 if (!AddRec)
Craig Topperf40110f2014-04-25 05:29:35 +00001261 return nullptr;
Andrew Trickf44aadf2011-05-20 18:25:42 +00001262
1263 // Widen the induction variable expression.
1264 const SCEV *WideIVExpr = IsSigned ?
1265 SE->getSignExtendExpr(AddRec, WideType) :
1266 SE->getZeroExtendExpr(AddRec, WideType);
1267
1268 assert(SE->getEffectiveSCEVType(WideIVExpr->getType()) == WideType &&
1269 "Expect the new IV expression to preserve its type");
1270
1271 // Can the IV be extended outside the loop without overflow?
1272 AddRec = dyn_cast<SCEVAddRecExpr>(WideIVExpr);
1273 if (!AddRec || AddRec->getLoop() != L)
Craig Topperf40110f2014-04-25 05:29:35 +00001274 return nullptr;
Andrew Trickf44aadf2011-05-20 18:25:42 +00001275
Andrew Trick69d44522011-06-21 03:22:38 +00001276 // An AddRec must have loop-invariant operands. Since this AddRec is
Andrew Trickf44aadf2011-05-20 18:25:42 +00001277 // materialized by a loop header phi, the expression cannot have any post-loop
1278 // operands, so they must dominate the loop header.
1279 assert(SE->properlyDominates(AddRec->getStart(), L->getHeader()) &&
1280 SE->properlyDominates(AddRec->getStepRecurrence(*SE), L->getHeader())
1281 && "Loop header phi recurrence inputs do not dominate the loop");
1282
1283 // The rewriter provides a value for the desired IV expression. This may
1284 // either find an existing phi or materialize a new one. Either way, we
1285 // expect a well-formed cyclic phi-with-increments. i.e. any operand not part
1286 // of the phi-SCC dominates the loop entry.
1287 Instruction *InsertPt = L->getHeader()->begin();
1288 WidePhi = cast<PHINode>(Rewriter.expandCodeFor(AddRec, WideType, InsertPt));
1289
1290 // Remembering the WideIV increment generated by SCEVExpander allows
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00001291 // widenIVUse to reuse it when widening the narrow IV's increment. We don't
Andrew Trickf44aadf2011-05-20 18:25:42 +00001292 // employ a general reuse mechanism because the call above is the only call to
1293 // SCEVExpander. Henceforth, we produce 1-to-1 narrow to wide uses.
Andrew Trick7fac79e2011-05-26 00:46:11 +00001294 if (BasicBlock *LatchBlock = L->getLoopLatch()) {
1295 WideInc =
1296 cast<Instruction>(WidePhi->getIncomingValueForBlock(LatchBlock));
1297 WideIncExpr = SE->getSCEV(WideInc);
1298 }
Andrew Trickf44aadf2011-05-20 18:25:42 +00001299
1300 DEBUG(dbgs() << "Wide IV: " << *WidePhi << "\n");
1301 ++NumWidened;
1302
1303 // Traverse the def-use chain using a worklist starting at the original IV.
Andrew Trick6d123092011-07-02 02:34:25 +00001304 assert(Widened.empty() && NarrowIVUsers.empty() && "expect initial state" );
Andrew Trickf44aadf2011-05-20 18:25:42 +00001305
Andrew Trick6d123092011-07-02 02:34:25 +00001306 Widened.insert(OrigPhi);
1307 pushNarrowIVUsers(OrigPhi, WidePhi);
1308
Andrew Trickf44aadf2011-05-20 18:25:42 +00001309 while (!NarrowIVUsers.empty()) {
Andrew Trick22104482011-07-20 04:39:24 +00001310 NarrowIVDefUse DU = NarrowIVUsers.pop_back_val();
Andrew Trickf44aadf2011-05-20 18:25:42 +00001311
Andrew Trick7fac79e2011-05-26 00:46:11 +00001312 // Process a def-use edge. This may replace the use, so don't hold a
1313 // use_iterator across it.
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00001314 Instruction *WideUse = widenIVUse(DU, Rewriter);
Andrew Trickf44aadf2011-05-20 18:25:42 +00001315
Andrew Trick7fac79e2011-05-26 00:46:11 +00001316 // Follow all def-use edges from the previous narrow use.
Andrew Trick6d123092011-07-02 02:34:25 +00001317 if (WideUse)
Andrew Trick22104482011-07-20 04:39:24 +00001318 pushNarrowIVUsers(DU.NarrowUse, WideUse);
Andrew Trick6d123092011-07-02 02:34:25 +00001319
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00001320 // widenIVUse may have removed the def-use edge.
Andrew Trick22104482011-07-20 04:39:24 +00001321 if (DU.NarrowDef->use_empty())
Benjamin Kramerf5e2fc42015-05-29 19:43:39 +00001322 DeadInsts.emplace_back(DU.NarrowDef);
Andrew Trickf44aadf2011-05-20 18:25:42 +00001323 }
Andrew Trick69d44522011-06-21 03:22:38 +00001324 return WidePhi;
Andrew Trickf44aadf2011-05-20 18:25:42 +00001325}
1326
Andrew Trickcdc22972011-07-12 00:08:50 +00001327//===----------------------------------------------------------------------===//
Andrew Trickb6bc7832014-01-02 21:12:11 +00001328// Live IV Reduction - Minimize IVs live across the loop.
1329//===----------------------------------------------------------------------===//
1330
1331
1332//===----------------------------------------------------------------------===//
Andrew Trickcdc22972011-07-12 00:08:50 +00001333// Simplification of IV users based on SCEV evaluation.
1334//===----------------------------------------------------------------------===//
1335
Andrew Trickb6bc7832014-01-02 21:12:11 +00001336namespace {
Sanjoy Dase1e352d2015-09-20 18:42:50 +00001337class IndVarSimplifyVisitor : public IVVisitor {
1338 ScalarEvolution *SE;
1339 const TargetTransformInfo *TTI;
1340 PHINode *IVPhi;
Andrew Trickb6bc7832014-01-02 21:12:11 +00001341
Sanjoy Dase1e352d2015-09-20 18:42:50 +00001342public:
1343 WideIVInfo WI;
Andrew Trickb6bc7832014-01-02 21:12:11 +00001344
Sanjoy Dase1e352d2015-09-20 18:42:50 +00001345 IndVarSimplifyVisitor(PHINode *IV, ScalarEvolution *SCEV,
1346 const TargetTransformInfo *TTI,
1347 const DominatorTree *DTree)
1348 : SE(SCEV), TTI(TTI), IVPhi(IV) {
1349 DT = DTree;
1350 WI.NarrowIV = IVPhi;
1351 if (ReduceLiveIVs)
1352 setSplitOverflowIntrinsics();
1353 }
Andrew Trickb6bc7832014-01-02 21:12:11 +00001354
Sanjoy Dase1e352d2015-09-20 18:42:50 +00001355 // Implement the interface used by simplifyUsersOfIV.
1356 void visitCast(CastInst *Cast) override { visitIVCast(Cast, WI, SE, TTI); }
1357};
Alexander Kornienkof00654e2015-06-23 09:49:53 +00001358}
Andrew Trick81683ed2011-05-12 00:04:28 +00001359
Sanjoy Das9119bf42015-09-20 06:58:03 +00001360/// Iteratively perform simplification on a worklist of IV users. Each
1361/// successive simplification may push more users which may themselves be
1362/// candidates for simplification.
Andrew Trick69d44522011-06-21 03:22:38 +00001363///
Andrew Trick3ec331e2011-08-10 03:46:27 +00001364/// Sign/Zero extend elimination is interleaved with IV simplification.
Andrew Trick69d44522011-06-21 03:22:38 +00001365///
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00001366void IndVarSimplify::simplifyAndExtend(Loop *L,
Andrew Trick3ec331e2011-08-10 03:46:27 +00001367 SCEVExpander &Rewriter,
1368 LPPassManager &LPM) {
Andrew Trickd50861c2011-10-15 01:38:14 +00001369 SmallVector<WideIVInfo, 8> WideIVs;
Andrew Trick8a3c39c2011-06-28 02:49:20 +00001370
Andrew Trick69d44522011-06-21 03:22:38 +00001371 SmallVector<PHINode*, 8> LoopPhis;
1372 for (BasicBlock::iterator I = L->getHeader()->begin(); isa<PHINode>(I); ++I) {
1373 LoopPhis.push_back(cast<PHINode>(I));
1374 }
Andrew Trick8a3c39c2011-06-28 02:49:20 +00001375 // Each round of simplification iterates through the SimplifyIVUsers worklist
1376 // for all current phis, then determines whether any IVs can be
1377 // widened. Widening adds new phis to LoopPhis, inducing another round of
1378 // simplification on the wide IVs.
Andrew Trick69d44522011-06-21 03:22:38 +00001379 while (!LoopPhis.empty()) {
Andrew Trick8a3c39c2011-06-28 02:49:20 +00001380 // Evaluate as many IV expressions as possible before widening any IVs. This
Andrew Trick4426f5b2011-06-28 16:45:04 +00001381 // forces SCEV to set no-wrap flags before evaluating sign/zero
Andrew Trick8a3c39c2011-06-28 02:49:20 +00001382 // extension. The first time SCEV attempts to normalize sign/zero extension,
1383 // the result becomes final. So for the most predictable results, we delay
1384 // evaluation of sign/zero extend evaluation until needed, and avoid running
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00001385 // other SCEV based analysis prior to simplifyAndExtend.
Andrew Trick8a3c39c2011-06-28 02:49:20 +00001386 do {
1387 PHINode *CurrIV = LoopPhis.pop_back_val();
Andrew Trick69d44522011-06-21 03:22:38 +00001388
Andrew Trick8a3c39c2011-06-28 02:49:20 +00001389 // Information about sign/zero extensions of CurrIV.
Mehdi Aminia28d91d2015-03-10 02:37:25 +00001390 IndVarSimplifyVisitor Visitor(CurrIV, SE, TTI, DT);
Andrew Trick69d44522011-06-21 03:22:38 +00001391
Sanjoy Das5c8bead2015-10-06 21:44:49 +00001392 Changed |= simplifyUsersOfIV(CurrIV, SE, DT, &LPM, DeadInsts, &Visitor);
Andrew Trick69d44522011-06-21 03:22:38 +00001393
Andrew Trickb6bc7832014-01-02 21:12:11 +00001394 if (Visitor.WI.WidestNativeType) {
1395 WideIVs.push_back(Visitor.WI);
Andrew Trick69d44522011-06-21 03:22:38 +00001396 }
Andrew Trick8a3c39c2011-06-28 02:49:20 +00001397 } while(!LoopPhis.empty());
1398
Andrew Trickd50861c2011-10-15 01:38:14 +00001399 for (; !WideIVs.empty(); WideIVs.pop_back()) {
1400 WidenIV Widener(WideIVs.back(), LI, SE, DT, DeadInsts);
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00001401 if (PHINode *WidePhi = Widener.createWideIV(Rewriter)) {
Andrew Trick69d44522011-06-21 03:22:38 +00001402 Changed = true;
1403 LoopPhis.push_back(WidePhi);
1404 }
1405 }
1406 }
1407}
1408
Andrew Trickcdc22972011-07-12 00:08:50 +00001409//===----------------------------------------------------------------------===//
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00001410// linearFunctionTestReplace and its kin. Rewrite the loop exit condition.
Andrew Trickcdc22972011-07-12 00:08:50 +00001411//===----------------------------------------------------------------------===//
1412
Sanjoy Das9119bf42015-09-20 06:58:03 +00001413/// Return true if this loop's backedge taken count expression can be safely and
1414/// cheaply expanded into an instruction sequence that can be used by
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00001415/// linearFunctionTestReplace.
Andrew Trickc2c79c92011-11-02 17:19:57 +00001416///
1417/// TODO: This fails for pointer-type loop counters with greater than one byte
1418/// strides, consequently preventing LFTR from running. For the purpose of LFTR
1419/// we could skip this check in the case that the LFTR loop counter (chosen by
1420/// FindLoopCounter) is also pointer type. Instead, we could directly convert
1421/// the loop test to an inequality test by checking the target data's alignment
1422/// of element types (given that the initial pointer value originates from or is
1423/// used by ABI constrained operation, as opposed to inttoptr/ptrtoint).
1424/// However, we don't yet have a strong motivation for converting loop tests
1425/// into inequality tests.
Sanjoy Das2e6bb3b2015-04-14 03:20:28 +00001426static bool canExpandBackedgeTakenCount(Loop *L, ScalarEvolution *SE,
1427 SCEVExpander &Rewriter) {
Andrew Trickcdc22972011-07-12 00:08:50 +00001428 const SCEV *BackedgeTakenCount = SE->getBackedgeTakenCount(L);
1429 if (isa<SCEVCouldNotCompute>(BackedgeTakenCount) ||
1430 BackedgeTakenCount->isZero())
1431 return false;
1432
1433 if (!L->getExitingBlock())
1434 return false;
1435
1436 // Can't rewrite non-branch yet.
Sanjoy Das2e6bb3b2015-04-14 03:20:28 +00001437 if (!isa<BranchInst>(L->getExitingBlock()->getTerminator()))
Andrew Trickcdc22972011-07-12 00:08:50 +00001438 return false;
1439
Sanjoy Das2e6bb3b2015-04-14 03:20:28 +00001440 if (Rewriter.isHighCostExpansion(BackedgeTakenCount, L))
Andrew Tricka27d8b12011-07-18 18:21:35 +00001441 return false;
1442
Andrew Trickcdc22972011-07-12 00:08:50 +00001443 return true;
1444}
1445
Sanjoy Das9119bf42015-09-20 06:58:03 +00001446/// Return the loop header phi IFF IncV adds a loop invariant value to the phi.
Andrew Trick7da24172011-07-18 20:32:31 +00001447static PHINode *getLoopPhiForCounter(Value *IncV, Loop *L, DominatorTree *DT) {
1448 Instruction *IncI = dyn_cast<Instruction>(IncV);
1449 if (!IncI)
Craig Topperf40110f2014-04-25 05:29:35 +00001450 return nullptr;
Andrew Trick7da24172011-07-18 20:32:31 +00001451
1452 switch (IncI->getOpcode()) {
1453 case Instruction::Add:
1454 case Instruction::Sub:
1455 break;
1456 case Instruction::GetElementPtr:
1457 // An IV counter must preserve its type.
1458 if (IncI->getNumOperands() == 2)
1459 break;
1460 default:
Craig Topperf40110f2014-04-25 05:29:35 +00001461 return nullptr;
Andrew Trick7da24172011-07-18 20:32:31 +00001462 }
1463
1464 PHINode *Phi = dyn_cast<PHINode>(IncI->getOperand(0));
1465 if (Phi && Phi->getParent() == L->getHeader()) {
1466 if (isLoopInvariant(IncI->getOperand(1), L, DT))
1467 return Phi;
Craig Topperf40110f2014-04-25 05:29:35 +00001468 return nullptr;
Andrew Trick7da24172011-07-18 20:32:31 +00001469 }
1470 if (IncI->getOpcode() == Instruction::GetElementPtr)
Craig Topperf40110f2014-04-25 05:29:35 +00001471 return nullptr;
Andrew Trick7da24172011-07-18 20:32:31 +00001472
1473 // Allow add/sub to be commuted.
1474 Phi = dyn_cast<PHINode>(IncI->getOperand(1));
1475 if (Phi && Phi->getParent() == L->getHeader()) {
1476 if (isLoopInvariant(IncI->getOperand(0), L, DT))
1477 return Phi;
1478 }
Craig Topperf40110f2014-04-25 05:29:35 +00001479 return nullptr;
Andrew Trick7da24172011-07-18 20:32:31 +00001480}
1481
Andrew Trickc0872662012-07-18 04:35:10 +00001482/// Return the compare guarding the loop latch, or NULL for unrecognized tests.
1483static ICmpInst *getLoopTest(Loop *L) {
Andrew Trick7da24172011-07-18 20:32:31 +00001484 assert(L->getExitingBlock() && "expected loop exit");
1485
1486 BasicBlock *LatchBlock = L->getLoopLatch();
1487 // Don't bother with LFTR if the loop is not properly simplified.
1488 if (!LatchBlock)
Craig Topperf40110f2014-04-25 05:29:35 +00001489 return nullptr;
Andrew Trick7da24172011-07-18 20:32:31 +00001490
1491 BranchInst *BI = dyn_cast<BranchInst>(L->getExitingBlock()->getTerminator());
1492 assert(BI && "expected exit branch");
1493
Andrew Trickc0872662012-07-18 04:35:10 +00001494 return dyn_cast<ICmpInst>(BI->getCondition());
1495}
1496
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00001497/// linearFunctionTestReplace policy. Return true unless we can show that the
Sanjoy Das9119bf42015-09-20 06:58:03 +00001498/// current exit test is already sufficiently canonical.
Andrew Trickc0872662012-07-18 04:35:10 +00001499static bool needsLFTR(Loop *L, DominatorTree *DT) {
Andrew Trick7da24172011-07-18 20:32:31 +00001500 // Do LFTR to simplify the exit condition to an ICMP.
Andrew Trickc0872662012-07-18 04:35:10 +00001501 ICmpInst *Cond = getLoopTest(L);
Andrew Trick7da24172011-07-18 20:32:31 +00001502 if (!Cond)
1503 return true;
1504
1505 // Do LFTR to simplify the exit ICMP to EQ/NE
1506 ICmpInst::Predicate Pred = Cond->getPredicate();
1507 if (Pred != ICmpInst::ICMP_NE && Pred != ICmpInst::ICMP_EQ)
1508 return true;
1509
1510 // Look for a loop invariant RHS
1511 Value *LHS = Cond->getOperand(0);
1512 Value *RHS = Cond->getOperand(1);
1513 if (!isLoopInvariant(RHS, L, DT)) {
1514 if (!isLoopInvariant(LHS, L, DT))
1515 return true;
1516 std::swap(LHS, RHS);
1517 }
1518 // Look for a simple IV counter LHS
1519 PHINode *Phi = dyn_cast<PHINode>(LHS);
1520 if (!Phi)
1521 Phi = getLoopPhiForCounter(LHS, L, DT);
1522
1523 if (!Phi)
1524 return true;
1525
Jakub Staszake076cac2012-10-04 19:08:30 +00001526 // Do LFTR if PHI node is defined in the loop, but is *not* a counter.
Jakub Staszakf8a81292012-10-03 23:59:47 +00001527 int Idx = Phi->getBasicBlockIndex(L->getLoopLatch());
1528 if (Idx < 0)
1529 return true;
Jakub Staszake076cac2012-10-04 19:08:30 +00001530
1531 // Do LFTR if the exit condition's IV is *not* a simple counter.
Jakub Staszakf8a81292012-10-03 23:59:47 +00001532 Value *IncV = Phi->getIncomingValue(Idx);
Andrew Trick7da24172011-07-18 20:32:31 +00001533 return Phi != getLoopPhiForCounter(IncV, L, DT);
1534}
1535
Andrew Trickc0872662012-07-18 04:35:10 +00001536/// Recursive helper for hasConcreteDef(). Unfortunately, this currently boils
1537/// down to checking that all operands are constant and listing instructions
1538/// that may hide undef.
Craig Topper71b7b682014-08-21 05:55:13 +00001539static bool hasConcreteDefImpl(Value *V, SmallPtrSetImpl<Value*> &Visited,
Andrew Trickc0872662012-07-18 04:35:10 +00001540 unsigned Depth) {
1541 if (isa<Constant>(V))
1542 return !isa<UndefValue>(V);
1543
1544 if (Depth >= 6)
1545 return false;
1546
1547 // Conservatively handle non-constant non-instructions. For example, Arguments
1548 // may be undef.
1549 Instruction *I = dyn_cast<Instruction>(V);
1550 if (!I)
1551 return false;
1552
1553 // Load and return values may be undef.
1554 if(I->mayReadFromMemory() || isa<CallInst>(I) || isa<InvokeInst>(I))
1555 return false;
1556
1557 // Optimistically handle other instructions.
1558 for (User::op_iterator OI = I->op_begin(), E = I->op_end(); OI != E; ++OI) {
David Blaikie70573dc2014-11-19 07:49:26 +00001559 if (!Visited.insert(*OI).second)
Andrew Trickc0872662012-07-18 04:35:10 +00001560 continue;
1561 if (!hasConcreteDefImpl(*OI, Visited, Depth+1))
1562 return false;
1563 }
1564 return true;
1565}
1566
1567/// Return true if the given value is concrete. We must prove that undef can
1568/// never reach it.
1569///
1570/// TODO: If we decide that this is a good approach to checking for undef, we
1571/// may factor it into a common location.
1572static bool hasConcreteDef(Value *V) {
1573 SmallPtrSet<Value*, 8> Visited;
1574 Visited.insert(V);
1575 return hasConcreteDefImpl(V, Visited, 0);
1576}
1577
Sanjoy Das9119bf42015-09-20 06:58:03 +00001578/// Return true if this IV has any uses other than the (soon to be rewritten)
1579/// loop exit test.
Andrew Trick7da24172011-07-18 20:32:31 +00001580static bool AlmostDeadIV(PHINode *Phi, BasicBlock *LatchBlock, Value *Cond) {
1581 int LatchIdx = Phi->getBasicBlockIndex(LatchBlock);
1582 Value *IncV = Phi->getIncomingValue(LatchIdx);
1583
Chandler Carruthcdf47882014-03-09 03:16:01 +00001584 for (User *U : Phi->users())
1585 if (U != Cond && U != IncV) return false;
Andrew Trick7da24172011-07-18 20:32:31 +00001586
Chandler Carruthcdf47882014-03-09 03:16:01 +00001587 for (User *U : IncV->users())
1588 if (U != Cond && U != Phi) return false;
Andrew Trick7da24172011-07-18 20:32:31 +00001589 return true;
1590}
1591
Sanjoy Das9119bf42015-09-20 06:58:03 +00001592/// Find an affine IV in canonical form.
Andrew Trick7da24172011-07-18 20:32:31 +00001593///
Andrew Trickc2c79c92011-11-02 17:19:57 +00001594/// BECount may be an i8* pointer type. The pointer difference is already
1595/// valid count without scaling the address stride, so it remains a pointer
1596/// expression as far as SCEV is concerned.
1597///
Andrew Trickc0872662012-07-18 04:35:10 +00001598/// Currently only valid for LFTR. See the comments on hasConcreteDef below.
1599///
Andrew Trick7da24172011-07-18 20:32:31 +00001600/// FIXME: Accept -1 stride and set IVLimit = IVInit - BECount
1601///
1602/// FIXME: Accept non-unit stride as long as SCEV can reduce BECount * Stride.
1603/// This is difficult in general for SCEV because of potential overflow. But we
1604/// could at least handle constant BECounts.
Mehdi Aminia28d91d2015-03-10 02:37:25 +00001605static PHINode *FindLoopCounter(Loop *L, const SCEV *BECount,
1606 ScalarEvolution *SE, DominatorTree *DT) {
Andrew Trick7da24172011-07-18 20:32:31 +00001607 uint64_t BCWidth = SE->getTypeSizeInBits(BECount->getType());
1608
1609 Value *Cond =
1610 cast<BranchInst>(L->getExitingBlock()->getTerminator())->getCondition();
1611
1612 // Loop over all of the PHI nodes, looking for a simple counter.
Craig Topperf40110f2014-04-25 05:29:35 +00001613 PHINode *BestPhi = nullptr;
1614 const SCEV *BestInit = nullptr;
Andrew Trick7da24172011-07-18 20:32:31 +00001615 BasicBlock *LatchBlock = L->getLoopLatch();
1616 assert(LatchBlock && "needsLFTR should guarantee a loop latch");
1617
1618 for (BasicBlock::iterator I = L->getHeader()->begin(); isa<PHINode>(I); ++I) {
1619 PHINode *Phi = cast<PHINode>(I);
1620 if (!SE->isSCEVable(Phi->getType()))
1621 continue;
1622
Andrew Trickc2c79c92011-11-02 17:19:57 +00001623 // Avoid comparing an integer IV against a pointer Limit.
1624 if (BECount->getType()->isPointerTy() && !Phi->getType()->isPointerTy())
1625 continue;
1626
Andrew Trick7da24172011-07-18 20:32:31 +00001627 const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(SE->getSCEV(Phi));
1628 if (!AR || AR->getLoop() != L || !AR->isAffine())
1629 continue;
1630
1631 // AR may be a pointer type, while BECount is an integer type.
1632 // AR may be wider than BECount. With eq/ne tests overflow is immaterial.
1633 // AR may not be a narrower type, or we may never exit.
1634 uint64_t PhiWidth = SE->getTypeSizeInBits(AR->getType());
Mehdi Aminia28d91d2015-03-10 02:37:25 +00001635 if (PhiWidth < BCWidth ||
1636 !L->getHeader()->getModule()->getDataLayout().isLegalInteger(PhiWidth))
Andrew Trick7da24172011-07-18 20:32:31 +00001637 continue;
1638
1639 const SCEV *Step = dyn_cast<SCEVConstant>(AR->getStepRecurrence(*SE));
1640 if (!Step || !Step->isOne())
1641 continue;
1642
1643 int LatchIdx = Phi->getBasicBlockIndex(LatchBlock);
1644 Value *IncV = Phi->getIncomingValue(LatchIdx);
1645 if (getLoopPhiForCounter(IncV, L, DT) != Phi)
1646 continue;
1647
Andrew Trickc0872662012-07-18 04:35:10 +00001648 // Avoid reusing a potentially undef value to compute other values that may
1649 // have originally had a concrete definition.
1650 if (!hasConcreteDef(Phi)) {
1651 // We explicitly allow unknown phis as long as they are already used by
1652 // the loop test. In this case we assume that performing LFTR could not
1653 // increase the number of undef users.
1654 if (ICmpInst *Cond = getLoopTest(L)) {
1655 if (Phi != getLoopPhiForCounter(Cond->getOperand(0), L, DT)
1656 && Phi != getLoopPhiForCounter(Cond->getOperand(1), L, DT)) {
1657 continue;
1658 }
1659 }
1660 }
Andrew Trick7da24172011-07-18 20:32:31 +00001661 const SCEV *Init = AR->getStart();
1662
1663 if (BestPhi && !AlmostDeadIV(BestPhi, LatchBlock, Cond)) {
1664 // Don't force a live loop counter if another IV can be used.
1665 if (AlmostDeadIV(Phi, LatchBlock, Cond))
1666 continue;
1667
1668 // Prefer to count-from-zero. This is a more "canonical" counter form. It
1669 // also prefers integer to pointer IVs.
1670 if (BestInit->isZero() != Init->isZero()) {
1671 if (BestInit->isZero())
1672 continue;
1673 }
1674 // If two IVs both count from zero or both count from nonzero then the
1675 // narrower is likely a dead phi that has been widened. Use the wider phi
1676 // to allow the other to be eliminated.
Andrew Trick0d07dfc2012-07-18 04:35:13 +00001677 else if (PhiWidth <= SE->getTypeSizeInBits(BestPhi->getType()))
Andrew Trick7da24172011-07-18 20:32:31 +00001678 continue;
1679 }
1680 BestPhi = Phi;
1681 BestInit = Init;
1682 }
1683 return BestPhi;
1684}
1685
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00001686/// Help linearFunctionTestReplace by generating a value that holds the RHS of
Sanjoy Das9119bf42015-09-20 06:58:03 +00001687/// the new loop test.
Andrew Trickc2c79c92011-11-02 17:19:57 +00001688static Value *genLoopLimit(PHINode *IndVar, const SCEV *IVCount, Loop *L,
Chandler Carruth7ec50852012-11-01 08:07:29 +00001689 SCEVExpander &Rewriter, ScalarEvolution *SE) {
Andrew Trickc2c79c92011-11-02 17:19:57 +00001690 const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(SE->getSCEV(IndVar));
1691 assert(AR && AR->getLoop() == L && AR->isAffine() && "bad loop counter");
1692 const SCEV *IVInit = AR->getStart();
1693
1694 // IVInit may be a pointer while IVCount is an integer when FindLoopCounter
1695 // finds a valid pointer IV. Sign extend BECount in order to materialize a
1696 // GEP. Avoid running SCEVExpander on a new pointer value, instead reusing
1697 // the existing GEPs whenever possible.
1698 if (IndVar->getType()->isPointerTy()
1699 && !IVCount->getType()->isPointerTy()) {
1700
Juergen Ributzkad04d0962013-10-24 05:29:56 +00001701 // IVOffset will be the new GEP offset that is interpreted by GEP as a
1702 // signed value. IVCount on the other hand represents the loop trip count,
1703 // which is an unsigned value. FindLoopCounter only allows induction
1704 // variables that have a positive unit stride of one. This means we don't
1705 // have to handle the case of negative offsets (yet) and just need to zero
1706 // extend IVCount.
Andrew Trickc2c79c92011-11-02 17:19:57 +00001707 Type *OfsTy = SE->getEffectiveSCEVType(IVInit->getType());
Juergen Ributzkad04d0962013-10-24 05:29:56 +00001708 const SCEV *IVOffset = SE->getTruncateOrZeroExtend(IVCount, OfsTy);
Andrew Trickc2c79c92011-11-02 17:19:57 +00001709
1710 // Expand the code for the iteration count.
1711 assert(SE->isLoopInvariant(IVOffset, L) &&
1712 "Computed iteration count is not loop invariant!");
1713 BranchInst *BI = cast<BranchInst>(L->getExitingBlock()->getTerminator());
1714 Value *GEPOffset = Rewriter.expandCodeFor(IVOffset, OfsTy, BI);
1715
1716 Value *GEPBase = IndVar->getIncomingValueForBlock(L->getLoopPreheader());
1717 assert(AR->getStart() == SE->getSCEV(GEPBase) && "bad loop counter");
1718 // We could handle pointer IVs other than i8*, but we need to compensate for
1719 // gep index scaling. See canExpandBackedgeTakenCount comments.
Matt Arsenaulta90a18e2013-09-10 19:55:24 +00001720 assert(SE->getSizeOfExpr(IntegerType::getInt64Ty(IndVar->getContext()),
Chandler Carruth7ec50852012-11-01 08:07:29 +00001721 cast<PointerType>(GEPBase->getType())->getElementType())->isOne()
Andrew Trickc2c79c92011-11-02 17:19:57 +00001722 && "unit stride pointer IV must be i8*");
1723
1724 IRBuilder<> Builder(L->getLoopPreheader()->getTerminator());
David Blaikie93c54442015-04-03 19:41:44 +00001725 return Builder.CreateGEP(nullptr, GEPBase, GEPOffset, "lftr.limit");
Andrew Trickc2c79c92011-11-02 17:19:57 +00001726 }
1727 else {
1728 // In any other case, convert both IVInit and IVCount to integers before
1729 // comparing. This may result in SCEV expension of pointers, but in practice
1730 // SCEV will fold the pointer arithmetic away as such:
1731 // BECount = (IVEnd - IVInit - 1) => IVLimit = IVInit (postinc).
1732 //
1733 // Valid Cases: (1) both integers is most common; (2) both may be pointers
Andrew Trickada23562013-10-24 00:43:38 +00001734 // for simple memset-style loops.
1735 //
1736 // IVInit integer and IVCount pointer would only occur if a canonical IV
1737 // were generated on top of case #2, which is not expected.
Andrew Trickc2c79c92011-11-02 17:19:57 +00001738
Craig Topperf40110f2014-04-25 05:29:35 +00001739 const SCEV *IVLimit = nullptr;
Andrew Trickc2c79c92011-11-02 17:19:57 +00001740 // For unit stride, IVCount = Start + BECount with 2's complement overflow.
1741 // For non-zero Start, compute IVCount here.
1742 if (AR->getStart()->isZero())
1743 IVLimit = IVCount;
1744 else {
1745 assert(AR->getStepRecurrence(*SE)->isOne() && "only handles unit stride");
1746 const SCEV *IVInit = AR->getStart();
1747
1748 // For integer IVs, truncate the IV before computing IVInit + BECount.
1749 if (SE->getTypeSizeInBits(IVInit->getType())
1750 > SE->getTypeSizeInBits(IVCount->getType()))
1751 IVInit = SE->getTruncateExpr(IVInit, IVCount->getType());
1752
1753 IVLimit = SE->getAddExpr(IVInit, IVCount);
1754 }
1755 // Expand the code for the iteration count.
1756 BranchInst *BI = cast<BranchInst>(L->getExitingBlock()->getTerminator());
1757 IRBuilder<> Builder(BI);
1758 assert(SE->isLoopInvariant(IVLimit, L) &&
1759 "Computed iteration count is not loop invariant!");
1760 // Ensure that we generate the same type as IndVar, or a smaller integer
1761 // type. In the presence of null pointer values, we have an integer type
1762 // SCEV expression (IVInit) for a pointer type IV value (IndVar).
1763 Type *LimitTy = IVCount->getType()->isPointerTy() ?
1764 IndVar->getType() : IVCount->getType();
1765 return Rewriter.expandCodeFor(IVLimit, LimitTy, BI);
1766 }
1767}
1768
Sanjoy Das9119bf42015-09-20 06:58:03 +00001769/// This method rewrites the exit condition of the loop to be a canonical !=
1770/// comparison against the incremented loop induction variable. This pass is
1771/// able to rewrite the exit tests of any loop where the SCEV analysis can
1772/// determine a loop-invariant trip count of the loop, which is actually a much
1773/// broader range than just linear tests.
Andrew Trick7da24172011-07-18 20:32:31 +00001774Value *IndVarSimplify::
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00001775linearFunctionTestReplace(Loop *L,
Andrew Trickcdc22972011-07-12 00:08:50 +00001776 const SCEV *BackedgeTakenCount,
1777 PHINode *IndVar,
1778 SCEVExpander &Rewriter) {
Sanjoy Das2e6bb3b2015-04-14 03:20:28 +00001779 assert(canExpandBackedgeTakenCount(L, SE, Rewriter) && "precondition");
Andrew Trickcdc22972011-07-12 00:08:50 +00001780
Andrew Trick2b718482013-07-12 22:08:44 +00001781 // Initialize CmpIndVar and IVCount to their preincremented values.
1782 Value *CmpIndVar = IndVar;
1783 const SCEV *IVCount = BackedgeTakenCount;
Andrew Trick7da24172011-07-18 20:32:31 +00001784
Andrew Trickc2c79c92011-11-02 17:19:57 +00001785 // If the exiting block is the same as the backedge block, we prefer to
1786 // compare against the post-incremented value, otherwise we must compare
1787 // against the preincremented value.
Andrew Trickcdc22972011-07-12 00:08:50 +00001788 if (L->getExitingBlock() == L->getLoopLatch()) {
Sanjoy Das2d380312015-03-02 21:41:07 +00001789 // Add one to the "backedge-taken" count to get the trip count.
1790 // This addition may overflow, which is valid as long as the comparison is
1791 // truncated to BackedgeTakenCount->getType().
1792 IVCount = SE->getAddExpr(BackedgeTakenCount,
Sanjoy Das2aacc0e2015-09-23 01:59:04 +00001793 SE->getOne(BackedgeTakenCount->getType()));
Andrew Trickcdc22972011-07-12 00:08:50 +00001794 // The BackedgeTaken expression contains the number of times that the
1795 // backedge branches to the loop header. This is one less than the
1796 // number of times the loop executes, so use the incremented indvar.
Sanjoy Das2d380312015-03-02 21:41:07 +00001797 CmpIndVar = IndVar->getIncomingValueForBlock(L->getExitingBlock());
Andrew Trickcdc22972011-07-12 00:08:50 +00001798 }
1799
Chandler Carruth7ec50852012-11-01 08:07:29 +00001800 Value *ExitCnt = genLoopLimit(IndVar, IVCount, L, Rewriter, SE);
Andrew Trickc2c79c92011-11-02 17:19:57 +00001801 assert(ExitCnt->getType()->isPointerTy() == IndVar->getType()->isPointerTy()
1802 && "genLoopLimit missed a cast");
Andrew Trickcdc22972011-07-12 00:08:50 +00001803
1804 // Insert a new icmp_ne or icmp_eq instruction before the branch.
Andrew Trickc2c79c92011-11-02 17:19:57 +00001805 BranchInst *BI = cast<BranchInst>(L->getExitingBlock()->getTerminator());
Andrew Trick7da24172011-07-18 20:32:31 +00001806 ICmpInst::Predicate P;
Andrew Trickcdc22972011-07-12 00:08:50 +00001807 if (L->contains(BI->getSuccessor(0)))
Andrew Trick7da24172011-07-18 20:32:31 +00001808 P = ICmpInst::ICMP_NE;
Andrew Trickcdc22972011-07-12 00:08:50 +00001809 else
Andrew Trick7da24172011-07-18 20:32:31 +00001810 P = ICmpInst::ICMP_EQ;
Andrew Trickcdc22972011-07-12 00:08:50 +00001811
1812 DEBUG(dbgs() << "INDVARS: Rewriting loop exit condition to:\n"
1813 << " LHS:" << *CmpIndVar << '\n'
1814 << " op:\t"
Andrew Trick7da24172011-07-18 20:32:31 +00001815 << (P == ICmpInst::ICMP_NE ? "!=" : "==") << "\n"
1816 << " RHS:\t" << *ExitCnt << "\n"
Andrew Trickc2c79c92011-11-02 17:19:57 +00001817 << " IVCount:\t" << *IVCount << "\n");
Andrew Trickcdc22972011-07-12 00:08:50 +00001818
Andrew Tricka1e41182013-07-12 22:08:48 +00001819 IRBuilder<> Builder(BI);
1820
Andrew Trick2b718482013-07-12 22:08:44 +00001821 // LFTR can ignore IV overflow and truncate to the width of
1822 // BECount. This avoids materializing the add(zext(add)) expression.
Andrew Tricka1e41182013-07-12 22:08:48 +00001823 unsigned CmpIndVarSize = SE->getTypeSizeInBits(CmpIndVar->getType());
1824 unsigned ExitCntSize = SE->getTypeSizeInBits(ExitCnt->getType());
1825 if (CmpIndVarSize > ExitCntSize) {
1826 const SCEVAddRecExpr *AR = cast<SCEVAddRecExpr>(SE->getSCEV(IndVar));
1827 const SCEV *ARStart = AR->getStart();
1828 const SCEV *ARStep = AR->getStepRecurrence(*SE);
1829 // For constant IVCount, avoid truncation.
1830 if (isa<SCEVConstant>(ARStart) && isa<SCEVConstant>(IVCount)) {
1831 const APInt &Start = cast<SCEVConstant>(ARStart)->getValue()->getValue();
1832 APInt Count = cast<SCEVConstant>(IVCount)->getValue()->getValue();
1833 // Note that the post-inc value of BackedgeTakenCount may have overflowed
1834 // above such that IVCount is now zero.
1835 if (IVCount != BackedgeTakenCount && Count == 0) {
1836 Count = APInt::getMaxValue(Count.getBitWidth()).zext(CmpIndVarSize);
1837 ++Count;
1838 }
1839 else
1840 Count = Count.zext(CmpIndVarSize);
1841 APInt NewLimit;
1842 if (cast<SCEVConstant>(ARStep)->getValue()->isNegative())
1843 NewLimit = Start - Count;
1844 else
1845 NewLimit = Start + Count;
1846 ExitCnt = ConstantInt::get(CmpIndVar->getType(), NewLimit);
Andrew Trick7da24172011-07-18 20:32:31 +00001847
Andrew Tricka1e41182013-07-12 22:08:48 +00001848 DEBUG(dbgs() << " Widen RHS:\t" << *ExitCnt << "\n");
1849 } else {
1850 CmpIndVar = Builder.CreateTrunc(CmpIndVar, ExitCnt->getType(),
1851 "lftr.wideiv");
1852 }
1853 }
Andrew Trick7da24172011-07-18 20:32:31 +00001854 Value *Cond = Builder.CreateICmp(P, CmpIndVar, ExitCnt, "exitcond");
Andrew Trickcdc22972011-07-12 00:08:50 +00001855 Value *OrigCond = BI->getCondition();
1856 // It's tempting to use replaceAllUsesWith here to fully replace the old
1857 // comparison, but that's not immediately safe, since users of the old
1858 // comparison may not be dominated by the new comparison. Instead, just
1859 // update the branch to use the new comparison; in the common case this
1860 // will make old comparison dead.
1861 BI->setCondition(Cond);
1862 DeadInsts.push_back(OrigCond);
1863
1864 ++NumLFTR;
1865 Changed = true;
1866 return Cond;
1867}
1868
1869//===----------------------------------------------------------------------===//
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00001870// sinkUnusedInvariants. A late subpass to cleanup loop preheaders.
Andrew Trickcdc22972011-07-12 00:08:50 +00001871//===----------------------------------------------------------------------===//
1872
1873/// If there's a single exit block, sink any loop-invariant values that
1874/// were defined in the preheader but not used inside the loop into the
1875/// exit block to reduce register pressure in the loop.
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00001876void IndVarSimplify::sinkUnusedInvariants(Loop *L) {
Andrew Trickcdc22972011-07-12 00:08:50 +00001877 BasicBlock *ExitBlock = L->getExitBlock();
1878 if (!ExitBlock) return;
1879
1880 BasicBlock *Preheader = L->getLoopPreheader();
1881 if (!Preheader) return;
1882
Bill Wendling0902a682011-08-24 20:28:43 +00001883 Instruction *InsertPt = ExitBlock->getFirstInsertionPt();
Andrew Trickcdc22972011-07-12 00:08:50 +00001884 BasicBlock::iterator I = Preheader->getTerminator();
1885 while (I != Preheader->begin()) {
1886 --I;
1887 // New instructions were inserted at the end of the preheader.
1888 if (isa<PHINode>(I))
1889 break;
1890
1891 // Don't move instructions which might have side effects, since the side
1892 // effects need to complete before instructions inside the loop. Also don't
1893 // move instructions which might read memory, since the loop may modify
1894 // memory. Note that it's okay if the instruction might have undefined
1895 // behavior: LoopSimplify guarantees that the preheader dominates the exit
1896 // block.
1897 if (I->mayHaveSideEffects() || I->mayReadFromMemory())
1898 continue;
1899
1900 // Skip debug info intrinsics.
1901 if (isa<DbgInfoIntrinsic>(I))
1902 continue;
1903
David Majnemerba275f92015-08-19 19:54:02 +00001904 // Skip eh pad instructions.
1905 if (I->isEHPad())
Bill Wendlingeed1e892011-08-26 20:40:15 +00001906 continue;
1907
Eli Friedman73beaf72011-10-27 01:33:51 +00001908 // Don't sink alloca: we never want to sink static alloca's out of the
1909 // entry block, and correctly sinking dynamic alloca's requires
1910 // checks for stacksave/stackrestore intrinsics.
1911 // FIXME: Refactor this check somehow?
1912 if (isa<AllocaInst>(I))
1913 continue;
Andrew Trickcdc22972011-07-12 00:08:50 +00001914
1915 // Determine if there is a use in or before the loop (direct or
1916 // otherwise).
1917 bool UsedInLoop = false;
Chandler Carruthcdf47882014-03-09 03:16:01 +00001918 for (Use &U : I->uses()) {
1919 Instruction *User = cast<Instruction>(U.getUser());
1920 BasicBlock *UseBB = User->getParent();
1921 if (PHINode *P = dyn_cast<PHINode>(User)) {
Andrew Trickcdc22972011-07-12 00:08:50 +00001922 unsigned i =
Chandler Carruthcdf47882014-03-09 03:16:01 +00001923 PHINode::getIncomingValueNumForOperand(U.getOperandNo());
Andrew Trickcdc22972011-07-12 00:08:50 +00001924 UseBB = P->getIncomingBlock(i);
1925 }
1926 if (UseBB == Preheader || L->contains(UseBB)) {
1927 UsedInLoop = true;
1928 break;
1929 }
1930 }
1931
1932 // If there is, the def must remain in the preheader.
1933 if (UsedInLoop)
1934 continue;
1935
1936 // Otherwise, sink it to the exit block.
1937 Instruction *ToMove = I;
1938 bool Done = false;
1939
1940 if (I != Preheader->begin()) {
1941 // Skip debug info intrinsics.
1942 do {
1943 --I;
1944 } while (isa<DbgInfoIntrinsic>(I) && I != Preheader->begin());
1945
1946 if (isa<DbgInfoIntrinsic>(I) && I == Preheader->begin())
1947 Done = true;
1948 } else {
1949 Done = true;
1950 }
1951
1952 ToMove->moveBefore(InsertPt);
1953 if (Done) break;
1954 InsertPt = ToMove;
1955 }
1956}
1957
1958//===----------------------------------------------------------------------===//
1959// IndVarSimplify driver. Manage several subpasses of IV simplification.
1960//===----------------------------------------------------------------------===//
1961
Dan Gohmaneb6be652009-02-12 22:19:27 +00001962bool IndVarSimplify::runOnLoop(Loop *L, LPPassManager &LPM) {
Paul Robinsonaf4e64d2014-02-06 00:07:05 +00001963 if (skipOptnoneFunction(L))
1964 return false;
1965
Dan Gohmanf3aea7a2010-06-18 01:35:11 +00001966 // If LoopSimplify form is not available, stay out of trouble. Some notes:
1967 // - LSR currently only supports LoopSimplify-form loops. Indvars'
1968 // canonicalization can be a pessimization without LSR to "clean up"
1969 // afterwards.
1970 // - We depend on having a preheader; in particular,
1971 // Loop::getCanonicalInductionVariable only supports loops with preheaders,
1972 // and we're in trouble if we can't find the induction variable even when
1973 // we've manually inserted one.
1974 if (!L->isLoopSimplifyForm())
1975 return false;
1976
Chandler Carruth4f8f3072015-01-17 14:16:18 +00001977 LI = &getAnalysis<LoopInfoWrapperPass>().getLoopInfo();
Chandler Carruth2f1fd162015-08-17 02:08:17 +00001978 SE = &getAnalysis<ScalarEvolutionWrapperPass>().getSE();
Chandler Carruth73523022014-01-13 13:07:17 +00001979 DT = &getAnalysis<DominatorTreeWrapperPass>().getDomTree();
Chandler Carruthb98f63d2015-01-15 10:41:28 +00001980 auto *TLIP = getAnalysisIfAvailable<TargetLibraryInfoWrapperPass>();
1981 TLI = TLIP ? &TLIP->getTLI() : nullptr;
Chandler Carruth705b1852015-01-31 03:43:40 +00001982 auto *TTIP = getAnalysisIfAvailable<TargetTransformInfoWrapperPass>();
Chandler Carruthfdb9c572015-02-01 12:01:35 +00001983 TTI = TTIP ? &TTIP->getTTI(*L->getHeader()->getParent()) : nullptr;
Mehdi Aminia28d91d2015-03-10 02:37:25 +00001984 const DataLayout &DL = L->getHeader()->getModule()->getDataLayout();
Andrew Trick1abe2962011-05-04 02:10:13 +00001985
Andrew Trick87716c92011-03-17 23:51:11 +00001986 DeadInsts.clear();
Devang Patel2ac57e12007-03-07 06:39:01 +00001987 Changed = false;
Dan Gohman43300342009-02-17 20:49:49 +00001988
Dan Gohman0a40ad92009-04-16 03:18:22 +00001989 // If there are any floating-point recurrences, attempt to
Dan Gohman43300342009-02-17 20:49:49 +00001990 // transform them to use integer recurrences.
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00001991 rewriteNonIntegerIVs(L);
Dan Gohman43300342009-02-17 20:49:49 +00001992
Dan Gohmanaf752342009-07-07 17:06:11 +00001993 const SCEV *BackedgeTakenCount = SE->getBackedgeTakenCount(L);
Chris Lattner1f7648e2007-03-04 01:00:28 +00001994
Dan Gohmandaafbe62009-06-26 22:53:46 +00001995 // Create a rewriter object which we'll use to transform the code with.
Mehdi Aminia28d91d2015-03-10 02:37:25 +00001996 SCEVExpander Rewriter(*SE, DL, "indvars");
Andrew Trickf9201c52011-10-11 02:28:51 +00001997#ifndef NDEBUG
1998 Rewriter.setDebugType(DEBUG_TYPE);
1999#endif
Andrew Trick163b4a72011-06-27 23:17:44 +00002000
2001 // Eliminate redundant IV users.
Andrew Trick8a3c39c2011-06-28 02:49:20 +00002002 //
2003 // Simplification works best when run before other consumers of SCEV. We
2004 // attempt to avoid evaluating SCEVs for sign/zero extend operations until
2005 // other expressions involving loop IVs have been evaluated. This helps SCEV
Andrew Trick4426f5b2011-06-28 16:45:04 +00002006 // set no-wrap flags before normalizing sign/zero extension.
Andrew Trickf47d0af2012-03-22 17:10:11 +00002007 Rewriter.disableCanonicalMode();
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00002008 simplifyAndExtend(L, Rewriter, LPM);
Andrew Trick1abe2962011-05-04 02:10:13 +00002009
Chris Lattnere61b67d2004-04-02 20:24:31 +00002010 // Check to see if this loop has a computable loop-invariant execution count.
2011 // If so, this means that we can compute the final value of any expressions
2012 // that are recurrent in the loop, and substitute the exit values from the
2013 // loop into any instructions outside of the loop that use the final values of
2014 // the current expressions.
Chris Lattner0b18c1d2002-05-10 15:38:35 +00002015 //
Wei Mie2538b52015-05-28 21:49:07 +00002016 if (ReplaceExitValue != NeverRepl &&
2017 !isa<SCEVCouldNotCompute>(BackedgeTakenCount))
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00002018 rewriteLoopExitValues(L, Rewriter);
Chris Lattner476e6df2001-12-03 17:28:42 +00002019
Andrew Trick9ea55dc2011-07-16 01:06:48 +00002020 // Eliminate redundant IV cycles.
Andrew Trickf47d0af2012-03-22 17:10:11 +00002021 NumElimIV += Rewriter.replaceCongruentIVs(L, DT, DeadInsts);
Andrew Trick32390552011-07-06 20:50:43 +00002022
Dan Gohmaneb6be652009-02-12 22:19:27 +00002023 // If we have a trip count expression, rewrite the loop's exit condition
2024 // using it. We can currently only handle loops with a single exit.
Sanjoy Das2e6bb3b2015-04-14 03:20:28 +00002025 if (canExpandBackedgeTakenCount(L, SE, Rewriter) && needsLFTR(L, DT)) {
Mehdi Aminia28d91d2015-03-10 02:37:25 +00002026 PHINode *IndVar = FindLoopCounter(L, BackedgeTakenCount, SE, DT);
Andrew Trick25553ab2012-03-24 00:51:17 +00002027 if (IndVar) {
2028 // Check preconditions for proper SCEVExpander operation. SCEV does not
2029 // express SCEVExpander's dependencies, such as LoopSimplify. Instead any
2030 // pass that uses the SCEVExpander must do it. This does not work well for
Andrew Trickb70d9782014-01-07 01:02:52 +00002031 // loop passes because SCEVExpander makes assumptions about all loops,
2032 // while LoopPassManager only forces the current loop to be simplified.
Andrew Trick25553ab2012-03-24 00:51:17 +00002033 //
2034 // FIXME: SCEV expansion has no way to bail out, so the caller must
2035 // explicitly check any assumptions made by SCEV. Brittle.
2036 const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(BackedgeTakenCount);
2037 if (!AR || AR->getLoop()->getLoopPreheader())
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00002038 (void)linearFunctionTestReplace(L, BackedgeTakenCount, IndVar,
Andrew Trick25553ab2012-03-24 00:51:17 +00002039 Rewriter);
2040 }
Chris Lattnerc1a682d2004-04-22 14:59:40 +00002041 }
Andrew Trick87716c92011-03-17 23:51:11 +00002042 // Clear the rewriter cache, because values that are in the rewriter's cache
2043 // can be deleted in the loop below, causing the AssertingVH in the cache to
2044 // trigger.
2045 Rewriter.clear();
2046
2047 // Now that we're done iterating through lists, clean up any instructions
2048 // which are now dead.
Duncan P. N. Exon Smith817ac8f2015-06-24 22:23:21 +00002049 while (!DeadInsts.empty())
2050 if (Instruction *Inst =
2051 dyn_cast_or_null<Instruction>(DeadInsts.pop_back_val()))
Benjamin Kramer8bcc9712012-08-29 15:32:21 +00002052 RecursivelyDeleteTriviallyDeadInstructions(Inst, TLI);
Andrew Trick87716c92011-03-17 23:51:11 +00002053
Dan Gohmandaafbe62009-06-26 22:53:46 +00002054 // The Rewriter may not be used from this point on.
Torok Edwin26895b52009-05-24 20:08:21 +00002055
Dan Gohmand76d71a2009-05-12 02:17:14 +00002056 // Loop-invariant instructions in the preheader that aren't used in the
2057 // loop may be sunk below the loop to reduce register pressure.
Sanjoy Dasb873cbe2015-10-13 07:17:38 +00002058 sinkUnusedInvariants(L);
Dan Gohmand76d71a2009-05-12 02:17:14 +00002059
Dan Gohmand76d71a2009-05-12 02:17:14 +00002060 // Clean up dead instructions.
Benjamin Kramer8bcc9712012-08-29 15:32:21 +00002061 Changed |= DeleteDeadPHIs(L->getHeader(), TLI);
Dan Gohmand76d71a2009-05-12 02:17:14 +00002062 // Check a post-condition.
Andrew Trick494c5492011-07-18 18:44:20 +00002063 assert(L->isLCSSAForm(*DT) &&
2064 "Indvars did not leave the loop in lcssa form!");
2065
2066 // Verify that LFTR, and any other change have not interfered with SCEV's
2067 // ability to compute trip count.
2068#ifndef NDEBUG
Andrew Trickf47d0af2012-03-22 17:10:11 +00002069 if (VerifyIndvars && !isa<SCEVCouldNotCompute>(BackedgeTakenCount)) {
Andrew Trick494c5492011-07-18 18:44:20 +00002070 SE->forgetLoop(L);
2071 const SCEV *NewBECount = SE->getBackedgeTakenCount(L);
2072 if (SE->getTypeSizeInBits(BackedgeTakenCount->getType()) <
2073 SE->getTypeSizeInBits(NewBECount->getType()))
2074 NewBECount = SE->getTruncateOrNoop(NewBECount,
2075 BackedgeTakenCount->getType());
2076 else
2077 BackedgeTakenCount = SE->getTruncateOrNoop(BackedgeTakenCount,
2078 NewBECount->getType());
2079 assert(BackedgeTakenCount == NewBECount && "indvars must preserve SCEV");
2080 }
2081#endif
2082
Devang Patel2ac57e12007-03-07 06:39:01 +00002083 return Changed;
Chris Lattner476e6df2001-12-03 17:28:42 +00002084}