1 //===-- LoopUtils.cpp - Loop Utility functions -------------------------===//
2 //
3 // The LLVM Compiler Infrastructure
4 //
5 // This file is distributed under the University of Illinois Open Source
6 // License. See LICENSE.TXT for details.
7 //
8 //===----------------------------------------------------------------------===//
9 //
10 // This file defines common loop utility functions.
11 //
12 //===----------------------------------------------------------------------===//
13
14 #include "llvm/Analysis/LoopInfo.h"
15 #include "llvm/IR/Instructions.h"
16 #include "llvm/IR/PatternMatch.h"
17 #include "llvm/IR/ValueHandle.h"
18 #include "llvm/Support/Debug.h"
19 #include "llvm/Analysis/ScalarEvolution.h"
20 #include "llvm/Analysis/ScalarEvolutionExpressions.h"
21 #include "llvm/IR/Module.h"
22 #include "llvm/Transforms/Utils/LoopUtils.h"
23
24 using namespace llvm;
25 using namespace llvm::PatternMatch;
26
27 #define DEBUG_TYPE "loop-utils"
28
areAllUsesIn(Instruction * I,SmallPtrSetImpl<Instruction * > & Set)29 bool RecurrenceDescriptor::areAllUsesIn(Instruction *I,
30 SmallPtrSetImpl<Instruction *> &Set) {
31 for (User::op_iterator Use = I->op_begin(), E = I->op_end(); Use != E; ++Use)
32 if (!Set.count(dyn_cast<Instruction>(*Use)))
33 return false;
34 return true;
35 }
36
AddReductionVar(PHINode * Phi,RecurrenceKind Kind,Loop * TheLoop,bool HasFunNoNaNAttr,RecurrenceDescriptor & RedDes)37 bool RecurrenceDescriptor::AddReductionVar(PHINode *Phi, RecurrenceKind Kind,
38 Loop *TheLoop, bool HasFunNoNaNAttr,
39 RecurrenceDescriptor &RedDes) {
40 if (Phi->getNumIncomingValues() != 2)
41 return false;
42
43 // Reduction variables are only found in the loop header block.
44 if (Phi->getParent() != TheLoop->getHeader())
45 return false;
46
47 // Obtain the reduction start value from the value that comes from the loop
48 // preheader.
49 Value *RdxStart = Phi->getIncomingValueForBlock(TheLoop->getLoopPreheader());
50
51 // ExitInstruction is the single value which is used outside the loop.
52 // We only allow for a single reduction value to be used outside the loop.
53 // This includes users of the reduction, variables (which form a cycle
54 // which ends in the phi node).
55 Instruction *ExitInstruction = nullptr;
56 // Indicates that we found a reduction operation in our scan.
57 bool FoundReduxOp = false;
58
59 // We start with the PHI node and scan for all of the users of this
60 // instruction. All users must be instructions that can be used as reduction
61 // variables (such as ADD). We must have a single out-of-block user. The cycle
62 // must include the original PHI.
63 bool FoundStartPHI = false;
64
65 // To recognize min/max patterns formed by a icmp select sequence, we store
66 // the number of instruction we saw from the recognized min/max pattern,
67 // to make sure we only see exactly the two instructions.
68 unsigned NumCmpSelectPatternInst = 0;
69 InstDesc ReduxDesc(false, nullptr);
70
71 SmallPtrSet<Instruction *, 8> VisitedInsts;
72 SmallVector<Instruction *, 8> Worklist;
73 Worklist.push_back(Phi);
74 VisitedInsts.insert(Phi);
75
76 // A value in the reduction can be used:
77 // - By the reduction:
78 // - Reduction operation:
79 // - One use of reduction value (safe).
80 // - Multiple use of reduction value (not safe).
81 // - PHI:
82 // - All uses of the PHI must be the reduction (safe).
83 // - Otherwise, not safe.
84 // - By one instruction outside of the loop (safe).
85 // - By further instructions outside of the loop (not safe).
86 // - By an instruction that is not part of the reduction (not safe).
87 // This is either:
88 // * An instruction type other than PHI or the reduction operation.
89 // * A PHI in the header other than the initial PHI.
90 while (!Worklist.empty()) {
91 Instruction *Cur = Worklist.back();
92 Worklist.pop_back();
93
94 // No Users.
95 // If the instruction has no users then this is a broken chain and can't be
96 // a reduction variable.
97 if (Cur->use_empty())
98 return false;
99
100 bool IsAPhi = isa<PHINode>(Cur);
101
102 // A header PHI use other than the original PHI.
103 if (Cur != Phi && IsAPhi && Cur->getParent() == Phi->getParent())
104 return false;
105
106 // Reductions of instructions such as Div, and Sub is only possible if the
107 // LHS is the reduction variable.
108 if (!Cur->isCommutative() && !IsAPhi && !isa<SelectInst>(Cur) &&
109 !isa<ICmpInst>(Cur) && !isa<FCmpInst>(Cur) &&
110 !VisitedInsts.count(dyn_cast<Instruction>(Cur->getOperand(0))))
111 return false;
112
113 // Any reduction instruction must be of one of the allowed kinds.
114 ReduxDesc = isRecurrenceInstr(Cur, Kind, ReduxDesc, HasFunNoNaNAttr);
115 if (!ReduxDesc.isRecurrence())
116 return false;
117
118 // A reduction operation must only have one use of the reduction value.
119 if (!IsAPhi && Kind != RK_IntegerMinMax && Kind != RK_FloatMinMax &&
120 hasMultipleUsesOf(Cur, VisitedInsts))
121 return false;
122
123 // All inputs to a PHI node must be a reduction value.
124 if (IsAPhi && Cur != Phi && !areAllUsesIn(Cur, VisitedInsts))
125 return false;
126
127 if (Kind == RK_IntegerMinMax &&
128 (isa<ICmpInst>(Cur) || isa<SelectInst>(Cur)))
129 ++NumCmpSelectPatternInst;
130 if (Kind == RK_FloatMinMax && (isa<FCmpInst>(Cur) || isa<SelectInst>(Cur)))
131 ++NumCmpSelectPatternInst;
132
133 // Check whether we found a reduction operator.
134 FoundReduxOp |= !IsAPhi;
135
136 // Process users of current instruction. Push non-PHI nodes after PHI nodes
137 // onto the stack. This way we are going to have seen all inputs to PHI
138 // nodes once we get to them.
139 SmallVector<Instruction *, 8> NonPHIs;
140 SmallVector<Instruction *, 8> PHIs;
141 for (User *U : Cur->users()) {
142 Instruction *UI = cast<Instruction>(U);
143
144 // Check if we found the exit user.
145 BasicBlock *Parent = UI->getParent();
146 if (!TheLoop->contains(Parent)) {
147 // Exit if you find multiple outside users or if the header phi node is
148 // being used. In this case the user uses the value of the previous
149 // iteration, in which case we would loose "VF-1" iterations of the
150 // reduction operation if we vectorize.
151 if (ExitInstruction != nullptr || Cur == Phi)
152 return false;
153
154 // The instruction used by an outside user must be the last instruction
155 // before we feed back to the reduction phi. Otherwise, we loose VF-1
156 // operations on the value.
157 if (std::find(Phi->op_begin(), Phi->op_end(), Cur) == Phi->op_end())
158 return false;
159
160 ExitInstruction = Cur;
161 continue;
162 }
163
164 // Process instructions only once (termination). Each reduction cycle
165 // value must only be used once, except by phi nodes and min/max
166 // reductions which are represented as a cmp followed by a select.
167 InstDesc IgnoredVal(false, nullptr);
168 if (VisitedInsts.insert(UI).second) {
169 if (isa<PHINode>(UI))
170 PHIs.push_back(UI);
171 else
172 NonPHIs.push_back(UI);
173 } else if (!isa<PHINode>(UI) &&
174 ((!isa<FCmpInst>(UI) && !isa<ICmpInst>(UI) &&
175 !isa<SelectInst>(UI)) ||
176 !isMinMaxSelectCmpPattern(UI, IgnoredVal).isRecurrence()))
177 return false;
178
179 // Remember that we completed the cycle.
180 if (UI == Phi)
181 FoundStartPHI = true;
182 }
183 Worklist.append(PHIs.begin(), PHIs.end());
184 Worklist.append(NonPHIs.begin(), NonPHIs.end());
185 }
186
187 // This means we have seen one but not the other instruction of the
188 // pattern or more than just a select and cmp.
189 if ((Kind == RK_IntegerMinMax || Kind == RK_FloatMinMax) &&
190 NumCmpSelectPatternInst != 2)
191 return false;
192
193 if (!FoundStartPHI || !FoundReduxOp || !ExitInstruction)
194 return false;
195
196 // We found a reduction var if we have reached the original phi node and we
197 // only have a single instruction with out-of-loop users.
198
199 // The ExitInstruction(Instruction which is allowed to have out-of-loop users)
200 // is saved as part of the RecurrenceDescriptor.
201
202 // Save the description of this reduction variable.
203 RecurrenceDescriptor RD(RdxStart, ExitInstruction, Kind,
204 ReduxDesc.getMinMaxKind());
205
206 RedDes = RD;
207
208 return true;
209 }
210
211 /// Returns true if the instruction is a Select(ICmp(X, Y), X, Y) instruction
212 /// pattern corresponding to a min(X, Y) or max(X, Y).
213 RecurrenceDescriptor::InstDesc
isMinMaxSelectCmpPattern(Instruction * I,InstDesc & Prev)214 RecurrenceDescriptor::isMinMaxSelectCmpPattern(Instruction *I, InstDesc &Prev) {
215
216 assert((isa<ICmpInst>(I) || isa<FCmpInst>(I) || isa<SelectInst>(I)) &&
217 "Expect a select instruction");
218 Instruction *Cmp = nullptr;
219 SelectInst *Select = nullptr;
220
221 // We must handle the select(cmp()) as a single instruction. Advance to the
222 // select.
223 if ((Cmp = dyn_cast<ICmpInst>(I)) || (Cmp = dyn_cast<FCmpInst>(I))) {
224 if (!Cmp->hasOneUse() || !(Select = dyn_cast<SelectInst>(*I->user_begin())))
225 return InstDesc(false, I);
226 return InstDesc(Select, Prev.getMinMaxKind());
227 }
228
229 // Only handle single use cases for now.
230 if (!(Select = dyn_cast<SelectInst>(I)))
231 return InstDesc(false, I);
232 if (!(Cmp = dyn_cast<ICmpInst>(I->getOperand(0))) &&
233 !(Cmp = dyn_cast<FCmpInst>(I->getOperand(0))))
234 return InstDesc(false, I);
235 if (!Cmp->hasOneUse())
236 return InstDesc(false, I);
237
238 Value *CmpLeft;
239 Value *CmpRight;
240
241 // Look for a min/max pattern.
242 if (m_UMin(m_Value(CmpLeft), m_Value(CmpRight)).match(Select))
243 return InstDesc(Select, MRK_UIntMin);
244 else if (m_UMax(m_Value(CmpLeft), m_Value(CmpRight)).match(Select))
245 return InstDesc(Select, MRK_UIntMax);
246 else if (m_SMax(m_Value(CmpLeft), m_Value(CmpRight)).match(Select))
247 return InstDesc(Select, MRK_SIntMax);
248 else if (m_SMin(m_Value(CmpLeft), m_Value(CmpRight)).match(Select))
249 return InstDesc(Select, MRK_SIntMin);
250 else if (m_OrdFMin(m_Value(CmpLeft), m_Value(CmpRight)).match(Select))
251 return InstDesc(Select, MRK_FloatMin);
252 else if (m_OrdFMax(m_Value(CmpLeft), m_Value(CmpRight)).match(Select))
253 return InstDesc(Select, MRK_FloatMax);
254 else if (m_UnordFMin(m_Value(CmpLeft), m_Value(CmpRight)).match(Select))
255 return InstDesc(Select, MRK_FloatMin);
256 else if (m_UnordFMax(m_Value(CmpLeft), m_Value(CmpRight)).match(Select))
257 return InstDesc(Select, MRK_FloatMax);
258
259 return InstDesc(false, I);
260 }
261
262 RecurrenceDescriptor::InstDesc
isRecurrenceInstr(Instruction * I,RecurrenceKind Kind,InstDesc & Prev,bool HasFunNoNaNAttr)263 RecurrenceDescriptor::isRecurrenceInstr(Instruction *I, RecurrenceKind Kind,
264 InstDesc &Prev, bool HasFunNoNaNAttr) {
265 bool FP = I->getType()->isFloatingPointTy();
266 bool FastMath = FP && I->hasUnsafeAlgebra();
267 switch (I->getOpcode()) {
268 default:
269 return InstDesc(false, I);
270 case Instruction::PHI:
271 if (FP &&
272 (Kind != RK_FloatMult && Kind != RK_FloatAdd && Kind != RK_FloatMinMax))
273 return InstDesc(false, I);
274 return InstDesc(I, Prev.getMinMaxKind());
275 case Instruction::Sub:
276 case Instruction::Add:
277 return InstDesc(Kind == RK_IntegerAdd, I);
278 case Instruction::Mul:
279 return InstDesc(Kind == RK_IntegerMult, I);
280 case Instruction::And:
281 return InstDesc(Kind == RK_IntegerAnd, I);
282 case Instruction::Or:
283 return InstDesc(Kind == RK_IntegerOr, I);
284 case Instruction::Xor:
285 return InstDesc(Kind == RK_IntegerXor, I);
286 case Instruction::FMul:
287 return InstDesc(Kind == RK_FloatMult && FastMath, I);
288 case Instruction::FSub:
289 case Instruction::FAdd:
290 return InstDesc(Kind == RK_FloatAdd && FastMath, I);
291 case Instruction::FCmp:
292 case Instruction::ICmp:
293 case Instruction::Select:
294 if (Kind != RK_IntegerMinMax &&
295 (!HasFunNoNaNAttr || Kind != RK_FloatMinMax))
296 return InstDesc(false, I);
297 return isMinMaxSelectCmpPattern(I, Prev);
298 }
299 }
300
hasMultipleUsesOf(Instruction * I,SmallPtrSetImpl<Instruction * > & Insts)301 bool RecurrenceDescriptor::hasMultipleUsesOf(
302 Instruction *I, SmallPtrSetImpl<Instruction *> &Insts) {
303 unsigned NumUses = 0;
304 for (User::op_iterator Use = I->op_begin(), E = I->op_end(); Use != E;
305 ++Use) {
306 if (Insts.count(dyn_cast<Instruction>(*Use)))
307 ++NumUses;
308 if (NumUses > 1)
309 return true;
310 }
311
312 return false;
313 }
isReductionPHI(PHINode * Phi,Loop * TheLoop,RecurrenceDescriptor & RedDes)314 bool RecurrenceDescriptor::isReductionPHI(PHINode *Phi, Loop *TheLoop,
315 RecurrenceDescriptor &RedDes) {
316
317 bool HasFunNoNaNAttr = false;
318 BasicBlock *Header = TheLoop->getHeader();
319 Function &F = *Header->getParent();
320 if (F.hasFnAttribute("no-nans-fp-math"))
321 HasFunNoNaNAttr =
322 F.getFnAttribute("no-nans-fp-math").getValueAsString() == "true";
323
324 if (AddReductionVar(Phi, RK_IntegerAdd, TheLoop, HasFunNoNaNAttr, RedDes)) {
325 DEBUG(dbgs() << "Found an ADD reduction PHI." << *Phi << "\n");
326 return true;
327 }
328 if (AddReductionVar(Phi, RK_IntegerMult, TheLoop, HasFunNoNaNAttr, RedDes)) {
329 DEBUG(dbgs() << "Found a MUL reduction PHI." << *Phi << "\n");
330 return true;
331 }
332 if (AddReductionVar(Phi, RK_IntegerOr, TheLoop, HasFunNoNaNAttr, RedDes)) {
333 DEBUG(dbgs() << "Found an OR reduction PHI." << *Phi << "\n");
334 return true;
335 }
336 if (AddReductionVar(Phi, RK_IntegerAnd, TheLoop, HasFunNoNaNAttr, RedDes)) {
337 DEBUG(dbgs() << "Found an AND reduction PHI." << *Phi << "\n");
338 return true;
339 }
340 if (AddReductionVar(Phi, RK_IntegerXor, TheLoop, HasFunNoNaNAttr, RedDes)) {
341 DEBUG(dbgs() << "Found a XOR reduction PHI." << *Phi << "\n");
342 return true;
343 }
344 if (AddReductionVar(Phi, RK_IntegerMinMax, TheLoop, HasFunNoNaNAttr,
345 RedDes)) {
346 DEBUG(dbgs() << "Found a MINMAX reduction PHI." << *Phi << "\n");
347 return true;
348 }
349 if (AddReductionVar(Phi, RK_FloatMult, TheLoop, HasFunNoNaNAttr, RedDes)) {
350 DEBUG(dbgs() << "Found an FMult reduction PHI." << *Phi << "\n");
351 return true;
352 }
353 if (AddReductionVar(Phi, RK_FloatAdd, TheLoop, HasFunNoNaNAttr, RedDes)) {
354 DEBUG(dbgs() << "Found an FAdd reduction PHI." << *Phi << "\n");
355 return true;
356 }
357 if (AddReductionVar(Phi, RK_FloatMinMax, TheLoop, HasFunNoNaNAttr, RedDes)) {
358 DEBUG(dbgs() << "Found an float MINMAX reduction PHI." << *Phi << "\n");
359 return true;
360 }
361 // Not a reduction of known type.
362 return false;
363 }
364
365 /// This function returns the identity element (or neutral element) for
366 /// the operation K.
getRecurrenceIdentity(RecurrenceKind K,Type * Tp)367 Constant *RecurrenceDescriptor::getRecurrenceIdentity(RecurrenceKind K,
368 Type *Tp) {
369 switch (K) {
370 case RK_IntegerXor:
371 case RK_IntegerAdd:
372 case RK_IntegerOr:
373 // Adding, Xoring, Oring zero to a number does not change it.
374 return ConstantInt::get(Tp, 0);
375 case RK_IntegerMult:
376 // Multiplying a number by 1 does not change it.
377 return ConstantInt::get(Tp, 1);
378 case RK_IntegerAnd:
379 // AND-ing a number with an all-1 value does not change it.
380 return ConstantInt::get(Tp, -1, true);
381 case RK_FloatMult:
382 // Multiplying a number by 1 does not change it.
383 return ConstantFP::get(Tp, 1.0L);
384 case RK_FloatAdd:
385 // Adding zero to a number does not change it.
386 return ConstantFP::get(Tp, 0.0L);
387 default:
388 llvm_unreachable("Unknown recurrence kind");
389 }
390 }
391
392 /// This function translates the recurrence kind to an LLVM binary operator.
getRecurrenceBinOp(RecurrenceKind Kind)393 unsigned RecurrenceDescriptor::getRecurrenceBinOp(RecurrenceKind Kind) {
394 switch (Kind) {
395 case RK_IntegerAdd:
396 return Instruction::Add;
397 case RK_IntegerMult:
398 return Instruction::Mul;
399 case RK_IntegerOr:
400 return Instruction::Or;
401 case RK_IntegerAnd:
402 return Instruction::And;
403 case RK_IntegerXor:
404 return Instruction::Xor;
405 case RK_FloatMult:
406 return Instruction::FMul;
407 case RK_FloatAdd:
408 return Instruction::FAdd;
409 case RK_IntegerMinMax:
410 return Instruction::ICmp;
411 case RK_FloatMinMax:
412 return Instruction::FCmp;
413 default:
414 llvm_unreachable("Unknown recurrence operation");
415 }
416 }
417
createMinMaxOp(IRBuilder<> & Builder,MinMaxRecurrenceKind RK,Value * Left,Value * Right)418 Value *RecurrenceDescriptor::createMinMaxOp(IRBuilder<> &Builder,
419 MinMaxRecurrenceKind RK,
420 Value *Left, Value *Right) {
421 CmpInst::Predicate P = CmpInst::ICMP_NE;
422 switch (RK) {
423 default:
424 llvm_unreachable("Unknown min/max recurrence kind");
425 case MRK_UIntMin:
426 P = CmpInst::ICMP_ULT;
427 break;
428 case MRK_UIntMax:
429 P = CmpInst::ICMP_UGT;
430 break;
431 case MRK_SIntMin:
432 P = CmpInst::ICMP_SLT;
433 break;
434 case MRK_SIntMax:
435 P = CmpInst::ICMP_SGT;
436 break;
437 case MRK_FloatMin:
438 P = CmpInst::FCMP_OLT;
439 break;
440 case MRK_FloatMax:
441 P = CmpInst::FCMP_OGT;
442 break;
443 }
444
445 Value *Cmp;
446 if (RK == MRK_FloatMin || RK == MRK_FloatMax)
447 Cmp = Builder.CreateFCmp(P, Left, Right, "rdx.minmax.cmp");
448 else
449 Cmp = Builder.CreateICmp(P, Left, Right, "rdx.minmax.cmp");
450
451 Value *Select = Builder.CreateSelect(Cmp, Left, Right, "rdx.minmax.select");
452 return Select;
453 }
454
isInductionPHI(PHINode * Phi,ScalarEvolution * SE,ConstantInt * & StepValue)455 bool llvm::isInductionPHI(PHINode *Phi, ScalarEvolution *SE,
456 ConstantInt *&StepValue) {
457 Type *PhiTy = Phi->getType();
458 // We only handle integer and pointer inductions variables.
459 if (!PhiTy->isIntegerTy() && !PhiTy->isPointerTy())
460 return false;
461
462 // Check that the PHI is consecutive.
463 const SCEV *PhiScev = SE->getSCEV(Phi);
464 const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(PhiScev);
465 if (!AR) {
466 DEBUG(dbgs() << "LV: PHI is not a poly recurrence.\n");
467 return false;
468 }
469
470 const SCEV *Step = AR->getStepRecurrence(*SE);
471 // Calculate the pointer stride and check if it is consecutive.
472 const SCEVConstant *C = dyn_cast<SCEVConstant>(Step);
473 if (!C)
474 return false;
475
476 ConstantInt *CV = C->getValue();
477 if (PhiTy->isIntegerTy()) {
478 StepValue = CV;
479 return true;
480 }
481
482 assert(PhiTy->isPointerTy() && "The PHI must be a pointer");
483 Type *PointerElementType = PhiTy->getPointerElementType();
484 // The pointer stride cannot be determined if the pointer element type is not
485 // sized.
486 if (!PointerElementType->isSized())
487 return false;
488
489 const DataLayout &DL = Phi->getModule()->getDataLayout();
490 int64_t Size = static_cast<int64_t>(DL.getTypeAllocSize(PointerElementType));
491 if (!Size)
492 return false;
493
494 int64_t CVSize = CV->getSExtValue();
495 if (CVSize % Size)
496 return false;
497 StepValue = ConstantInt::getSigned(CV->getType(), CVSize / Size);
498 return true;
499 }
500