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Adam Nemet938d3d62015-05-14 12:05:18 +00001//===- LoopDistribute.cpp - Loop Distribution Pass ------------------------===//
2//
3// The LLVM Compiler Infrastructure
4//
5// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
7//
8//===----------------------------------------------------------------------===//
9//
10// This file implements the Loop Distribution Pass. Its main focus is to
11// distribute loops that cannot be vectorized due to dependence cycles. It
12// tries to isolate the offending dependences into a new loop allowing
13// vectorization of the remaining parts.
14//
15// For dependence analysis, the pass uses the LoopVectorizer's
16// LoopAccessAnalysis. Because this analysis presumes no change in the order of
17// memory operations, special care is taken to preserve the lexical order of
18// these operations.
19//
20// Similarly to the Vectorizer, the pass also supports loop versioning to
21// run-time disambiguate potentially overlapping arrays.
22//
23//===----------------------------------------------------------------------===//
24
25#include "llvm/ADT/DepthFirstIterator.h"
26#include "llvm/ADT/EquivalenceClasses.h"
27#include "llvm/ADT/STLExtras.h"
28#include "llvm/ADT/Statistic.h"
29#include "llvm/Analysis/LoopAccessAnalysis.h"
30#include "llvm/Analysis/LoopInfo.h"
31#include "llvm/IR/Dominators.h"
32#include "llvm/Pass.h"
33#include "llvm/Support/CommandLine.h"
34#include "llvm/Support/Debug.h"
35#include "llvm/Transforms/Utils/BasicBlockUtils.h"
36#include "llvm/Transforms/Utils/Cloning.h"
37#include <list>
38
39#define LDIST_NAME "loop-distribute"
40#define DEBUG_TYPE LDIST_NAME
41
42using namespace llvm;
43
44static cl::opt<bool>
45 LDistVerify("loop-distribute-verify", cl::Hidden,
46 cl::desc("Turn on DominatorTree and LoopInfo verification "
47 "after Loop Distribution"),
48 cl::init(false));
49
50static cl::opt<bool> DistributeNonIfConvertible(
51 "loop-distribute-non-if-convertible", cl::Hidden,
52 cl::desc("Whether to distribute into a loop that may not be "
53 "if-convertible by the loop vectorizer"),
54 cl::init(false));
55
56STATISTIC(NumLoopsDistributed, "Number of loops distributed");
57
Adam Nemet2f85b732015-05-14 12:33:32 +000058namespace {
Adam Nemet938d3d62015-05-14 12:05:18 +000059/// \brief Maintains the set of instructions of the loop for a partition before
60/// cloning. After cloning, it hosts the new loop.
61class InstPartition {
62 typedef SmallPtrSet<Instruction *, 8> InstructionSet;
63
64public:
65 InstPartition(Instruction *I, Loop *L, bool DepCycle = false)
66 : DepCycle(DepCycle), OrigLoop(L), ClonedLoop(nullptr) {
67 Set.insert(I);
68 }
69
70 /// \brief Returns whether this partition contains a dependence cycle.
71 bool hasDepCycle() const { return DepCycle; }
72
73 /// \brief Adds an instruction to this partition.
74 void add(Instruction *I) { Set.insert(I); }
75
76 /// \brief Collection accessors.
77 InstructionSet::iterator begin() { return Set.begin(); }
78 InstructionSet::iterator end() { return Set.end(); }
79 InstructionSet::const_iterator begin() const { return Set.begin(); }
80 InstructionSet::const_iterator end() const { return Set.end(); }
81 bool empty() const { return Set.empty(); }
82
83 /// \brief Moves this partition into \p Other. This partition becomes empty
84 /// after this.
85 void moveTo(InstPartition &Other) {
86 Other.Set.insert(Set.begin(), Set.end());
87 Set.clear();
88 Other.DepCycle |= DepCycle;
89 }
90
91 /// \brief Populates the partition with a transitive closure of all the
92 /// instructions that the seeded instructions dependent on.
93 void populateUsedSet() {
94 // FIXME: We currently don't use control-dependence but simply include all
95 // blocks (possibly empty at the end) and let simplifycfg mostly clean this
96 // up.
97 for (auto *B : OrigLoop->getBlocks())
98 Set.insert(B->getTerminator());
99
100 // Follow the use-def chains to form a transitive closure of all the
101 // instructions that the originally seeded instructions depend on.
102 SmallVector<Instruction *, 8> Worklist(Set.begin(), Set.end());
103 while (!Worklist.empty()) {
104 Instruction *I = Worklist.pop_back_val();
105 // Insert instructions from the loop that we depend on.
106 for (Value *V : I->operand_values()) {
107 auto *I = dyn_cast<Instruction>(V);
108 if (I && OrigLoop->contains(I->getParent()) && Set.insert(I).second)
109 Worklist.push_back(I);
110 }
111 }
112 }
113
114 /// \brief Clones the original loop.
115 ///
116 /// Updates LoopInfo and DominatorTree using the information that block \p
117 /// LoopDomBB dominates the loop.
118 Loop *cloneLoopWithPreheader(BasicBlock *InsertBefore, BasicBlock *LoopDomBB,
119 unsigned Index, LoopInfo *LI,
120 DominatorTree *DT) {
121 ClonedLoop = ::cloneLoopWithPreheader(InsertBefore, LoopDomBB, OrigLoop,
122 VMap, Twine(".ldist") + Twine(Index),
123 LI, DT, ClonedLoopBlocks);
124 return ClonedLoop;
125 }
126
127 /// \brief The cloned loop. If this partition is mapped to the original loop,
128 /// this is null.
129 const Loop *getClonedLoop() const { return ClonedLoop; }
130
131 /// \brief Returns the loop where this partition ends up after distribution.
132 /// If this partition is mapped to the original loop then use the block from
133 /// the loop.
134 const Loop *getDistributedLoop() const {
135 return ClonedLoop ? ClonedLoop : OrigLoop;
136 }
137
138 /// \brief The VMap that is populated by cloning and then used in
139 /// remapinstruction to remap the cloned instructions.
140 ValueToValueMapTy &getVMap() { return VMap; }
141
142 /// \brief Remaps the cloned instructions using VMap.
Adam Nemet1a689182015-07-10 18:55:09 +0000143 void remapInstructions() {
144 remapInstructionsInBlocks(ClonedLoopBlocks, VMap);
145 }
Adam Nemet938d3d62015-05-14 12:05:18 +0000146
147 /// \brief Based on the set of instructions selected for this partition,
148 /// removes the unnecessary ones.
149 void removeUnusedInsts() {
150 SmallVector<Instruction *, 8> Unused;
151
152 for (auto *Block : OrigLoop->getBlocks())
153 for (auto &Inst : *Block)
154 if (!Set.count(&Inst)) {
155 Instruction *NewInst = &Inst;
156 if (!VMap.empty())
157 NewInst = cast<Instruction>(VMap[NewInst]);
158
159 assert(!isa<BranchInst>(NewInst) &&
160 "Branches are marked used early on");
161 Unused.push_back(NewInst);
162 }
163
164 // Delete the instructions backwards, as it has a reduced likelihood of
165 // having to update as many def-use and use-def chains.
166 for (auto I = Unused.rbegin(), E = Unused.rend(); I != E; ++I) {
167 auto *Inst = *I;
168
169 if (!Inst->use_empty())
170 Inst->replaceAllUsesWith(UndefValue::get(Inst->getType()));
171 Inst->eraseFromParent();
172 }
173 }
174
Benjamin Kramere6987bf2015-05-21 18:32:07 +0000175 void print() const {
Adam Nemet938d3d62015-05-14 12:05:18 +0000176 if (DepCycle)
177 dbgs() << " (cycle)\n";
178 for (auto *I : Set)
179 // Prefix with the block name.
180 dbgs() << " " << I->getParent()->getName() << ":" << *I << "\n";
181 }
182
183 void printBlocks() const {
184 for (auto *BB : getDistributedLoop()->getBlocks())
185 dbgs() << *BB;
186 }
187
188private:
189 /// \brief Instructions from OrigLoop selected for this partition.
190 InstructionSet Set;
191
192 /// \brief Whether this partition contains a dependence cycle.
193 bool DepCycle;
194
195 /// \brief The original loop.
196 Loop *OrigLoop;
197
198 /// \brief The cloned loop. If this partition is mapped to the original loop,
199 /// this is null.
200 Loop *ClonedLoop;
201
202 /// \brief The blocks of ClonedLoop including the preheader. If this
203 /// partition is mapped to the original loop, this is empty.
204 SmallVector<BasicBlock *, 8> ClonedLoopBlocks;
205
206 /// \brief These gets populated once the set of instructions have been
207 /// finalized. If this partition is mapped to the original loop, these are not
208 /// set.
209 ValueToValueMapTy VMap;
210};
211
212/// \brief Holds the set of Partitions. It populates them, merges them and then
213/// clones the loops.
214class InstPartitionContainer {
215 typedef DenseMap<Instruction *, int> InstToPartitionIdT;
216
217public:
218 InstPartitionContainer(Loop *L, LoopInfo *LI, DominatorTree *DT)
219 : L(L), LI(LI), DT(DT) {}
220
221 /// \brief Returns the number of partitions.
222 unsigned getSize() const { return PartitionContainer.size(); }
223
224 /// \brief Adds \p Inst into the current partition if that is marked to
225 /// contain cycles. Otherwise start a new partition for it.
226 void addToCyclicPartition(Instruction *Inst) {
227 // If the current partition is non-cyclic. Start a new one.
Benjamin Kramere6987bf2015-05-21 18:32:07 +0000228 if (PartitionContainer.empty() || !PartitionContainer.back().hasDepCycle())
229 PartitionContainer.emplace_back(Inst, L, /*DepCycle=*/true);
Adam Nemet938d3d62015-05-14 12:05:18 +0000230 else
Benjamin Kramere6987bf2015-05-21 18:32:07 +0000231 PartitionContainer.back().add(Inst);
Adam Nemet938d3d62015-05-14 12:05:18 +0000232 }
233
234 /// \brief Adds \p Inst into a partition that is not marked to contain
235 /// dependence cycles.
236 ///
237 // Initially we isolate memory instructions into as many partitions as
238 // possible, then later we may merge them back together.
239 void addToNewNonCyclicPartition(Instruction *Inst) {
Benjamin Kramere6987bf2015-05-21 18:32:07 +0000240 PartitionContainer.emplace_back(Inst, L);
Adam Nemet938d3d62015-05-14 12:05:18 +0000241 }
242
243 /// \brief Merges adjacent non-cyclic partitions.
244 ///
245 /// The idea is that we currently only want to isolate the non-vectorizable
246 /// partition. We could later allow more distribution among these partition
247 /// too.
248 void mergeAdjacentNonCyclic() {
249 mergeAdjacentPartitionsIf(
250 [](const InstPartition *P) { return !P->hasDepCycle(); });
251 }
252
253 /// \brief If a partition contains only conditional stores, we won't vectorize
254 /// it. Try to merge it with a previous cyclic partition.
255 void mergeNonIfConvertible() {
256 mergeAdjacentPartitionsIf([&](const InstPartition *Partition) {
257 if (Partition->hasDepCycle())
258 return true;
259
260 // Now, check if all stores are conditional in this partition.
261 bool seenStore = false;
262
263 for (auto *Inst : *Partition)
264 if (isa<StoreInst>(Inst)) {
265 seenStore = true;
266 if (!LoopAccessInfo::blockNeedsPredication(Inst->getParent(), L, DT))
267 return false;
268 }
269 return seenStore;
270 });
271 }
272
273 /// \brief Merges the partitions according to various heuristics.
274 void mergeBeforePopulating() {
275 mergeAdjacentNonCyclic();
276 if (!DistributeNonIfConvertible)
277 mergeNonIfConvertible();
278 }
279
280 /// \brief Merges partitions in order to ensure that no loads are duplicated.
281 ///
282 /// We can't duplicate loads because that could potentially reorder them.
283 /// LoopAccessAnalysis provides dependency information with the context that
284 /// the order of memory operation is preserved.
285 ///
286 /// Return if any partitions were merged.
287 bool mergeToAvoidDuplicatedLoads() {
288 typedef DenseMap<Instruction *, InstPartition *> LoadToPartitionT;
289 typedef EquivalenceClasses<InstPartition *> ToBeMergedT;
290
291 LoadToPartitionT LoadToPartition;
292 ToBeMergedT ToBeMerged;
293
294 // Step through the partitions and create equivalence between partitions
295 // that contain the same load. Also put partitions in between them in the
296 // same equivalence class to avoid reordering of memory operations.
297 for (PartitionContainerT::iterator I = PartitionContainer.begin(),
298 E = PartitionContainer.end();
299 I != E; ++I) {
Benjamin Kramere6987bf2015-05-21 18:32:07 +0000300 auto *PartI = &*I;
Adam Nemet938d3d62015-05-14 12:05:18 +0000301
302 // If a load occurs in two partitions PartI and PartJ, merge all
303 // partitions (PartI, PartJ] into PartI.
304 for (Instruction *Inst : *PartI)
305 if (isa<LoadInst>(Inst)) {
306 bool NewElt;
307 LoadToPartitionT::iterator LoadToPart;
308
309 std::tie(LoadToPart, NewElt) =
310 LoadToPartition.insert(std::make_pair(Inst, PartI));
311 if (!NewElt) {
312 DEBUG(dbgs() << "Merging partitions due to this load in multiple "
313 << "partitions: " << PartI << ", "
314 << LoadToPart->second << "\n" << *Inst << "\n");
315
316 auto PartJ = I;
317 do {
318 --PartJ;
Benjamin Kramere6987bf2015-05-21 18:32:07 +0000319 ToBeMerged.unionSets(PartI, &*PartJ);
320 } while (&*PartJ != LoadToPart->second);
Adam Nemet938d3d62015-05-14 12:05:18 +0000321 }
322 }
323 }
324 if (ToBeMerged.empty())
325 return false;
326
327 // Merge the member of an equivalence class into its class leader. This
328 // makes the members empty.
329 for (ToBeMergedT::iterator I = ToBeMerged.begin(), E = ToBeMerged.end();
330 I != E; ++I) {
331 if (!I->isLeader())
332 continue;
333
334 auto PartI = I->getData();
335 for (auto PartJ : make_range(std::next(ToBeMerged.member_begin(I)),
336 ToBeMerged.member_end())) {
337 PartJ->moveTo(*PartI);
338 }
339 }
340
341 // Remove the empty partitions.
Benjamin Kramere6987bf2015-05-21 18:32:07 +0000342 PartitionContainer.remove_if(
343 [](const InstPartition &P) { return P.empty(); });
Adam Nemet938d3d62015-05-14 12:05:18 +0000344
345 return true;
346 }
347
348 /// \brief Sets up the mapping between instructions to partitions. If the
349 /// instruction is duplicated across multiple partitions, set the entry to -1.
350 void setupPartitionIdOnInstructions() {
351 int PartitionID = 0;
Benjamin Kramere6987bf2015-05-21 18:32:07 +0000352 for (const auto &Partition : PartitionContainer) {
353 for (Instruction *Inst : Partition) {
Adam Nemet938d3d62015-05-14 12:05:18 +0000354 bool NewElt;
355 InstToPartitionIdT::iterator Iter;
356
357 std::tie(Iter, NewElt) =
358 InstToPartitionId.insert(std::make_pair(Inst, PartitionID));
359 if (!NewElt)
360 Iter->second = -1;
361 }
362 ++PartitionID;
363 }
364 }
365
366 /// \brief Populates the partition with everything that the seeding
367 /// instructions require.
368 void populateUsedSet() {
369 for (auto &P : PartitionContainer)
Benjamin Kramere6987bf2015-05-21 18:32:07 +0000370 P.populateUsedSet();
Adam Nemet938d3d62015-05-14 12:05:18 +0000371 }
372
373 /// \brief This performs the main chunk of the work of cloning the loops for
374 /// the partitions.
375 void cloneLoops(Pass *P) {
376 BasicBlock *OrigPH = L->getLoopPreheader();
377 // At this point the predecessor of the preheader is either the memcheck
378 // block or the top part of the original preheader.
379 BasicBlock *Pred = OrigPH->getSinglePredecessor();
380 assert(Pred && "Preheader does not have a single predecessor");
381 BasicBlock *ExitBlock = L->getExitBlock();
382 assert(ExitBlock && "No single exit block");
383 Loop *NewLoop;
384
385 assert(!PartitionContainer.empty() && "at least two partitions expected");
386 // We're cloning the preheader along with the loop so we already made sure
387 // it was empty.
388 assert(&*OrigPH->begin() == OrigPH->getTerminator() &&
389 "preheader not empty");
390
391 // Create a loop for each partition except the last. Clone the original
392 // loop before PH along with adding a preheader for the cloned loop. Then
393 // update PH to point to the newly added preheader.
394 BasicBlock *TopPH = OrigPH;
395 unsigned Index = getSize() - 1;
Benjamin Kramere6987bf2015-05-21 18:32:07 +0000396 for (auto I = std::next(PartitionContainer.rbegin()),
397 E = PartitionContainer.rend();
Adam Nemet938d3d62015-05-14 12:05:18 +0000398 I != E; ++I, --Index, TopPH = NewLoop->getLoopPreheader()) {
Benjamin Kramere6987bf2015-05-21 18:32:07 +0000399 auto *Part = &*I;
Adam Nemet938d3d62015-05-14 12:05:18 +0000400
401 NewLoop = Part->cloneLoopWithPreheader(TopPH, Pred, Index, LI, DT);
402
403 Part->getVMap()[ExitBlock] = TopPH;
404 Part->remapInstructions();
405 }
406 Pred->getTerminator()->replaceUsesOfWith(OrigPH, TopPH);
407
408 // Now go in forward order and update the immediate dominator for the
409 // preheaders with the exiting block of the previous loop. Dominance
410 // within the loop is updated in cloneLoopWithPreheader.
411 for (auto Curr = PartitionContainer.cbegin(),
412 Next = std::next(PartitionContainer.cbegin()),
413 E = PartitionContainer.cend();
414 Next != E; ++Curr, ++Next)
415 DT->changeImmediateDominator(
Benjamin Kramere6987bf2015-05-21 18:32:07 +0000416 Next->getDistributedLoop()->getLoopPreheader(),
417 Curr->getDistributedLoop()->getExitingBlock());
Adam Nemet938d3d62015-05-14 12:05:18 +0000418 }
419
420 /// \brief Removes the dead instructions from the cloned loops.
421 void removeUnusedInsts() {
Benjamin Kramere6987bf2015-05-21 18:32:07 +0000422 for (auto &Partition : PartitionContainer)
423 Partition.removeUnusedInsts();
Adam Nemet938d3d62015-05-14 12:05:18 +0000424 }
425
426 /// \brief For each memory pointer, it computes the partitionId the pointer is
427 /// used in.
428 ///
429 /// This returns an array of int where the I-th entry corresponds to I-th
430 /// entry in LAI.getRuntimePointerCheck(). If the pointer is used in multiple
431 /// partitions its entry is set to -1.
432 SmallVector<int, 8>
433 computePartitionSetForPointers(const LoopAccessInfo &LAI) {
434 const LoopAccessInfo::RuntimePointerCheck *RtPtrCheck =
435 LAI.getRuntimePointerCheck();
436
437 unsigned N = RtPtrCheck->Pointers.size();
438 SmallVector<int, 8> PtrToPartitions(N);
439 for (unsigned I = 0; I < N; ++I) {
440 Value *Ptr = RtPtrCheck->Pointers[I];
441 auto Instructions =
442 LAI.getInstructionsForAccess(Ptr, RtPtrCheck->IsWritePtr[I]);
443
444 int &Partition = PtrToPartitions[I];
445 // First set it to uninitialized.
446 Partition = -2;
447 for (Instruction *Inst : Instructions) {
448 // Note that this could be -1 if Inst is duplicated across multiple
449 // partitions.
450 int ThisPartition = this->InstToPartitionId[Inst];
451 if (Partition == -2)
452 Partition = ThisPartition;
453 // -1 means belonging to multiple partitions.
454 else if (Partition == -1)
455 break;
456 else if (Partition != (int)ThisPartition)
457 Partition = -1;
458 }
459 assert(Partition != -2 && "Pointer not belonging to any partition");
460 }
461
462 return PtrToPartitions;
463 }
464
465 void print(raw_ostream &OS) const {
466 unsigned Index = 0;
Benjamin Kramere6987bf2015-05-21 18:32:07 +0000467 for (const auto &P : PartitionContainer) {
468 OS << "Partition " << Index++ << " (" << &P << "):\n";
469 P.print();
Adam Nemet938d3d62015-05-14 12:05:18 +0000470 }
471 }
472
473 void dump() const { print(dbgs()); }
474
475#ifndef NDEBUG
476 friend raw_ostream &operator<<(raw_ostream &OS,
477 const InstPartitionContainer &Partitions) {
478 Partitions.print(OS);
479 return OS;
480 }
481#endif
482
483 void printBlocks() const {
484 unsigned Index = 0;
Benjamin Kramere6987bf2015-05-21 18:32:07 +0000485 for (const auto &P : PartitionContainer) {
486 dbgs() << "\nPartition " << Index++ << " (" << &P << "):\n";
487 P.printBlocks();
Adam Nemet938d3d62015-05-14 12:05:18 +0000488 }
489 }
490
491private:
Benjamin Kramere6987bf2015-05-21 18:32:07 +0000492 typedef std::list<InstPartition> PartitionContainerT;
Adam Nemet938d3d62015-05-14 12:05:18 +0000493
494 /// \brief List of partitions.
495 PartitionContainerT PartitionContainer;
496
497 /// \brief Mapping from Instruction to partition Id. If the instruction
498 /// belongs to multiple partitions the entry contains -1.
499 InstToPartitionIdT InstToPartitionId;
500
501 Loop *L;
502 LoopInfo *LI;
503 DominatorTree *DT;
504
505 /// \brief The control structure to merge adjacent partitions if both satisfy
506 /// the \p Predicate.
507 template <class UnaryPredicate>
508 void mergeAdjacentPartitionsIf(UnaryPredicate Predicate) {
509 InstPartition *PrevMatch = nullptr;
510 for (auto I = PartitionContainer.begin(); I != PartitionContainer.end();) {
Benjamin Kramere6987bf2015-05-21 18:32:07 +0000511 auto DoesMatch = Predicate(&*I);
Adam Nemet938d3d62015-05-14 12:05:18 +0000512 if (PrevMatch == nullptr && DoesMatch) {
Benjamin Kramere6987bf2015-05-21 18:32:07 +0000513 PrevMatch = &*I;
Adam Nemet938d3d62015-05-14 12:05:18 +0000514 ++I;
515 } else if (PrevMatch != nullptr && DoesMatch) {
Benjamin Kramere6987bf2015-05-21 18:32:07 +0000516 I->moveTo(*PrevMatch);
Adam Nemet938d3d62015-05-14 12:05:18 +0000517 I = PartitionContainer.erase(I);
518 } else {
519 PrevMatch = nullptr;
520 ++I;
521 }
522 }
523 }
524};
525
526/// \brief For each memory instruction, this class maintains difference of the
527/// number of unsafe dependences that start out from this instruction minus
528/// those that end here.
529///
530/// By traversing the memory instructions in program order and accumulating this
531/// number, we know whether any unsafe dependence crosses over a program point.
532class MemoryInstructionDependences {
533 typedef MemoryDepChecker::Dependence Dependence;
534
535public:
536 struct Entry {
537 Instruction *Inst;
538 unsigned NumUnsafeDependencesStartOrEnd;
539
540 Entry(Instruction *Inst) : Inst(Inst), NumUnsafeDependencesStartOrEnd(0) {}
541 };
542
543 typedef SmallVector<Entry, 8> AccessesType;
544
545 AccessesType::const_iterator begin() const { return Accesses.begin(); }
546 AccessesType::const_iterator end() const { return Accesses.end(); }
547
548 MemoryInstructionDependences(
549 const SmallVectorImpl<Instruction *> &Instructions,
550 const SmallVectorImpl<Dependence> &InterestingDependences) {
Benjamin Kramere6987bf2015-05-21 18:32:07 +0000551 Accesses.append(Instructions.begin(), Instructions.end());
Adam Nemet938d3d62015-05-14 12:05:18 +0000552
553 DEBUG(dbgs() << "Backward dependences:\n");
554 for (auto &Dep : InterestingDependences)
555 if (Dep.isPossiblyBackward()) {
556 // Note that the designations source and destination follow the program
557 // order, i.e. source is always first. (The direction is given by the
558 // DepType.)
559 ++Accesses[Dep.Source].NumUnsafeDependencesStartOrEnd;
560 --Accesses[Dep.Destination].NumUnsafeDependencesStartOrEnd;
561
562 DEBUG(Dep.print(dbgs(), 2, Instructions));
563 }
564 }
565
566private:
567 AccessesType Accesses;
568};
569
570/// \brief Handles the loop versioning based on memchecks.
Adam Nemet76325002015-06-19 19:32:48 +0000571class LoopVersioning {
Adam Nemet938d3d62015-05-14 12:05:18 +0000572public:
Adam Nemet76325002015-06-19 19:32:48 +0000573 LoopVersioning(const LoopAccessInfo &LAI, Loop *L, LoopInfo *LI,
574 DominatorTree *DT,
575 const SmallVector<int, 8> *PtrToPartition = nullptr)
Adam Nemetf530b3292015-06-22 22:59:40 +0000576 : VersionedLoop(L), NonVersionedLoop(nullptr),
Adam Nemet772a1502015-06-19 19:32:41 +0000577 PtrToPartition(PtrToPartition), LAI(LAI), LI(LI), DT(DT) {}
Adam Nemet938d3d62015-05-14 12:05:18 +0000578
Adam Nemetf530b3292015-06-22 22:59:40 +0000579 /// \brief Returns true if we need memchecks to disambiguate may-aliasing
580 /// accesses.
Adam Nemet938d3d62015-05-14 12:05:18 +0000581 bool needsRuntimeChecks() const {
Adam Nemet772a1502015-06-19 19:32:41 +0000582 return LAI.getRuntimePointerCheck()->needsAnyChecking(PtrToPartition);
Adam Nemet938d3d62015-05-14 12:05:18 +0000583 }
584
585 /// \brief Performs the CFG manipulation part of versioning the loop including
586 /// the DominatorTree and LoopInfo updates.
587 void versionLoop(Pass *P) {
588 Instruction *FirstCheckInst;
589 Instruction *MemRuntimeCheck;
590 // Add the memcheck in the original preheader (this is empty initially).
Adam Nemetf530b3292015-06-22 22:59:40 +0000591 BasicBlock *MemCheckBB = VersionedLoop->getLoopPreheader();
Adam Nemet938d3d62015-05-14 12:05:18 +0000592 std::tie(FirstCheckInst, MemRuntimeCheck) =
Adam Nemet772a1502015-06-19 19:32:41 +0000593 LAI.addRuntimeCheck(MemCheckBB->getTerminator(), PtrToPartition);
Adam Nemet938d3d62015-05-14 12:05:18 +0000594 assert(MemRuntimeCheck && "called even though needsAnyChecking = false");
595
596 // Rename the block to make the IR more readable.
Adam Nemetf530b3292015-06-22 22:59:40 +0000597 MemCheckBB->setName(VersionedLoop->getHeader()->getName() +
598 ".lver.memcheck");
Adam Nemet938d3d62015-05-14 12:05:18 +0000599
600 // Create empty preheader for the loop (and after cloning for the
Adam Nemetf530b3292015-06-22 22:59:40 +0000601 // non-versioned loop).
Adam Nemet938d3d62015-05-14 12:05:18 +0000602 BasicBlock *PH =
603 SplitBlock(MemCheckBB, MemCheckBB->getTerminator(), DT, LI);
Adam Nemetf530b3292015-06-22 22:59:40 +0000604 PH->setName(VersionedLoop->getHeader()->getName() + ".ph");
Adam Nemet938d3d62015-05-14 12:05:18 +0000605
606 // Clone the loop including the preheader.
607 //
608 // FIXME: This does not currently preserve SimplifyLoop because the exit
609 // block is a join between the two loops.
Adam Nemetf530b3292015-06-22 22:59:40 +0000610 SmallVector<BasicBlock *, 8> NonVersionedLoopBlocks;
611 NonVersionedLoop =
612 cloneLoopWithPreheader(PH, MemCheckBB, VersionedLoop, VMap,
613 ".lver.orig", LI, DT, NonVersionedLoopBlocks);
Adam Nemet1a689182015-07-10 18:55:09 +0000614 remapInstructionsInBlocks(NonVersionedLoopBlocks, VMap);
Adam Nemet938d3d62015-05-14 12:05:18 +0000615
616 // Insert the conditional branch based on the result of the memchecks.
617 Instruction *OrigTerm = MemCheckBB->getTerminator();
Adam Nemetf530b3292015-06-22 22:59:40 +0000618 BranchInst::Create(NonVersionedLoop->getLoopPreheader(),
619 VersionedLoop->getLoopPreheader(), MemRuntimeCheck,
620 OrigTerm);
Adam Nemet938d3d62015-05-14 12:05:18 +0000621 OrigTerm->eraseFromParent();
622
623 // The loops merge in the original exit block. This is now dominated by the
624 // memchecking block.
Adam Nemetf530b3292015-06-22 22:59:40 +0000625 DT->changeImmediateDominator(VersionedLoop->getExitBlock(), MemCheckBB);
Adam Nemet938d3d62015-05-14 12:05:18 +0000626 }
627
628 /// \brief Adds the necessary PHI nodes for the versioned loops based on the
629 /// loop-defined values used outside of the loop.
630 void addPHINodes(const SmallVectorImpl<Instruction *> &DefsUsedOutside) {
Adam Nemetf530b3292015-06-22 22:59:40 +0000631 BasicBlock *PHIBlock = VersionedLoop->getExitBlock();
Adam Nemet938d3d62015-05-14 12:05:18 +0000632 assert(PHIBlock && "No single successor to loop exit block");
633
634 for (auto *Inst : DefsUsedOutside) {
Adam Nemetf530b3292015-06-22 22:59:40 +0000635 auto *NonVersionedLoopInst = cast<Instruction>(VMap[Inst]);
Adam Nemet938d3d62015-05-14 12:05:18 +0000636 PHINode *PN;
Adam Nemet938d3d62015-05-14 12:05:18 +0000637
638 // First see if we have a single-operand PHI with the value defined by the
639 // original loop.
Benjamin Kramere6987bf2015-05-21 18:32:07 +0000640 for (auto I = PHIBlock->begin(); (PN = dyn_cast<PHINode>(I)); ++I) {
Adam Nemet938d3d62015-05-14 12:05:18 +0000641 assert(PN->getNumOperands() == 1 &&
642 "Exit block should only have on predecessor");
643 if (PN->getIncomingValue(0) == Inst)
644 break;
645 }
646 // If not create it.
647 if (!PN) {
Adam Nemetf530b3292015-06-22 22:59:40 +0000648 PN = PHINode::Create(Inst->getType(), 2, Inst->getName() + ".lver",
Adam Nemet938d3d62015-05-14 12:05:18 +0000649 PHIBlock->begin());
650 for (auto *User : Inst->users())
Adam Nemetf530b3292015-06-22 22:59:40 +0000651 if (!VersionedLoop->contains(cast<Instruction>(User)->getParent()))
Adam Nemet938d3d62015-05-14 12:05:18 +0000652 User->replaceUsesOfWith(Inst, PN);
Adam Nemetf530b3292015-06-22 22:59:40 +0000653 PN->addIncoming(Inst, VersionedLoop->getExitingBlock());
Adam Nemet938d3d62015-05-14 12:05:18 +0000654 }
Adam Nemetf530b3292015-06-22 22:59:40 +0000655 // Add the new incoming value from the non-versioned loop.
656 PN->addIncoming(NonVersionedLoopInst,
657 NonVersionedLoop->getExitingBlock());
Adam Nemet938d3d62015-05-14 12:05:18 +0000658 }
659 }
660
661private:
662 /// \brief The original loop. This becomes the "versioned" one, i.e. control
663 /// goes if the memchecks all pass.
Adam Nemetf530b3292015-06-22 22:59:40 +0000664 Loop *VersionedLoop;
Adam Nemet938d3d62015-05-14 12:05:18 +0000665 /// \brief The fall-back loop, i.e. if any of the memchecks fail.
Adam Nemetf530b3292015-06-22 22:59:40 +0000666 Loop *NonVersionedLoop;
Adam Nemet938d3d62015-05-14 12:05:18 +0000667
668 /// \brief For each memory pointer it contains the partitionId it is used in.
Adam Nemet772a1502015-06-19 19:32:41 +0000669 /// If nullptr, no partitioning is used.
Adam Nemet938d3d62015-05-14 12:05:18 +0000670 ///
671 /// The I-th entry corresponds to I-th entry in LAI.getRuntimePointerCheck().
672 /// If the pointer is used in multiple partitions the entry is set to -1.
Adam Nemet772a1502015-06-19 19:32:41 +0000673 const SmallVector<int, 8> *PtrToPartition;
Adam Nemet938d3d62015-05-14 12:05:18 +0000674
Adam Nemetf530b3292015-06-22 22:59:40 +0000675 /// \brief This maps the instructions from VersionedLoop to their counterpart
676 /// in NonVersionedLoop.
Adam Nemet938d3d62015-05-14 12:05:18 +0000677 ValueToValueMapTy VMap;
678
679 /// \brief Analyses used.
680 const LoopAccessInfo &LAI;
681 LoopInfo *LI;
682 DominatorTree *DT;
683};
684
685/// \brief Returns the instructions that use values defined in the loop.
686static SmallVector<Instruction *, 8> findDefsUsedOutsideOfLoop(Loop *L) {
687 SmallVector<Instruction *, 8> UsedOutside;
688
689 for (auto *Block : L->getBlocks())
690 // FIXME: I believe that this could use copy_if if the Inst reference could
691 // be adapted into a pointer.
692 for (auto &Inst : *Block) {
693 auto Users = Inst.users();
694 if (std::any_of(Users.begin(), Users.end(), [&](User *U) {
695 auto *Use = cast<Instruction>(U);
696 return !L->contains(Use->getParent());
697 }))
698 UsedOutside.push_back(&Inst);
699 }
700
701 return UsedOutside;
702}
703
704/// \brief The pass class.
705class LoopDistribute : public FunctionPass {
706public:
707 LoopDistribute() : FunctionPass(ID) {
708 initializeLoopDistributePass(*PassRegistry::getPassRegistry());
709 }
710
711 bool runOnFunction(Function &F) override {
712 LI = &getAnalysis<LoopInfoWrapperPass>().getLoopInfo();
713 LAA = &getAnalysis<LoopAccessAnalysis>();
714 DT = &getAnalysis<DominatorTreeWrapperPass>().getDomTree();
715
716 // Build up a worklist of inner-loops to vectorize. This is necessary as the
717 // act of distributing a loop creates new loops and can invalidate iterators
718 // across the loops.
719 SmallVector<Loop *, 8> Worklist;
720
721 for (Loop *TopLevelLoop : *LI)
722 for (Loop *L : depth_first(TopLevelLoop))
723 // We only handle inner-most loops.
724 if (L->empty())
725 Worklist.push_back(L);
726
727 // Now walk the identified inner loops.
728 bool Changed = false;
729 for (Loop *L : Worklist)
730 Changed |= processLoop(L);
731
732 // Process each loop nest in the function.
733 return Changed;
734 }
735
736 void getAnalysisUsage(AnalysisUsage &AU) const override {
737 AU.addRequired<LoopInfoWrapperPass>();
738 AU.addPreserved<LoopInfoWrapperPass>();
739 AU.addRequired<LoopAccessAnalysis>();
740 AU.addRequired<DominatorTreeWrapperPass>();
741 AU.addPreserved<DominatorTreeWrapperPass>();
742 }
743
744 static char ID;
745
746private:
747 /// \brief Try to distribute an inner-most loop.
748 bool processLoop(Loop *L) {
749 assert(L->empty() && "Only process inner loops.");
750
751 DEBUG(dbgs() << "\nLDist: In \"" << L->getHeader()->getParent()->getName()
752 << "\" checking " << *L << "\n");
753
754 BasicBlock *PH = L->getLoopPreheader();
755 if (!PH) {
756 DEBUG(dbgs() << "Skipping; no preheader");
757 return false;
758 }
759 if (!L->getExitBlock()) {
760 DEBUG(dbgs() << "Skipping; multiple exit blocks");
761 return false;
762 }
763 // LAA will check that we only have a single exiting block.
764
765 const LoopAccessInfo &LAI = LAA->getInfo(L, ValueToValueMap());
766
767 // Currently, we only distribute to isolate the part of the loop with
768 // dependence cycles to enable partial vectorization.
769 if (LAI.canVectorizeMemory()) {
770 DEBUG(dbgs() << "Skipping; memory operations are safe for vectorization");
771 return false;
772 }
773 auto *InterestingDependences =
774 LAI.getDepChecker().getInterestingDependences();
775 if (!InterestingDependences || InterestingDependences->empty()) {
776 DEBUG(dbgs() << "Skipping; No unsafe dependences to isolate");
777 return false;
778 }
779
780 InstPartitionContainer Partitions(L, LI, DT);
781
782 // First, go through each memory operation and assign them to consecutive
783 // partitions (the order of partitions follows program order). Put those
784 // with unsafe dependences into "cyclic" partition otherwise put each store
785 // in its own "non-cyclic" partition (we'll merge these later).
786 //
787 // Note that a memory operation (e.g. Load2 below) at a program point that
788 // has an unsafe dependence (Store3->Load1) spanning over it must be
789 // included in the same cyclic partition as the dependent operations. This
790 // is to preserve the original program order after distribution. E.g.:
791 //
792 // NumUnsafeDependencesStartOrEnd NumUnsafeDependencesActive
793 // Load1 -. 1 0->1
794 // Load2 | /Unsafe/ 0 1
795 // Store3 -' -1 1->0
796 // Load4 0 0
797 //
798 // NumUnsafeDependencesActive > 0 indicates this situation and in this case
799 // we just keep assigning to the same cyclic partition until
800 // NumUnsafeDependencesActive reaches 0.
801 const MemoryDepChecker &DepChecker = LAI.getDepChecker();
802 MemoryInstructionDependences MID(DepChecker.getMemoryInstructions(),
803 *InterestingDependences);
804
805 int NumUnsafeDependencesActive = 0;
806 for (auto &InstDep : MID) {
807 Instruction *I = InstDep.Inst;
808 // We update NumUnsafeDependencesActive post-instruction, catch the
809 // start of a dependence directly via NumUnsafeDependencesStartOrEnd.
810 if (NumUnsafeDependencesActive ||
811 InstDep.NumUnsafeDependencesStartOrEnd > 0)
812 Partitions.addToCyclicPartition(I);
813 else
814 Partitions.addToNewNonCyclicPartition(I);
815 NumUnsafeDependencesActive += InstDep.NumUnsafeDependencesStartOrEnd;
816 assert(NumUnsafeDependencesActive >= 0 &&
817 "Negative number of dependences active");
818 }
819
820 // Add partitions for values used outside. These partitions can be out of
821 // order from the original program order. This is OK because if the
822 // partition uses a load we will merge this partition with the original
823 // partition of the load that we set up in the previous loop (see
824 // mergeToAvoidDuplicatedLoads).
825 auto DefsUsedOutside = findDefsUsedOutsideOfLoop(L);
826 for (auto *Inst : DefsUsedOutside)
827 Partitions.addToNewNonCyclicPartition(Inst);
828
829 DEBUG(dbgs() << "Seeded partitions:\n" << Partitions);
830 if (Partitions.getSize() < 2)
831 return false;
832
833 // Run the merge heuristics: Merge non-cyclic adjacent partitions since we
834 // should be able to vectorize these together.
835 Partitions.mergeBeforePopulating();
836 DEBUG(dbgs() << "\nMerged partitions:\n" << Partitions);
837 if (Partitions.getSize() < 2)
838 return false;
839
840 // Now, populate the partitions with non-memory operations.
841 Partitions.populateUsedSet();
842 DEBUG(dbgs() << "\nPopulated partitions:\n" << Partitions);
843
844 // In order to preserve original lexical order for loads, keep them in the
845 // partition that we set up in the MemoryInstructionDependences loop.
846 if (Partitions.mergeToAvoidDuplicatedLoads()) {
847 DEBUG(dbgs() << "\nPartitions merged to ensure unique loads:\n"
848 << Partitions);
849 if (Partitions.getSize() < 2)
850 return false;
851 }
852
853 DEBUG(dbgs() << "\nDistributing loop: " << *L << "\n");
854 // We're done forming the partitions set up the reverse mapping from
855 // instructions to partitions.
856 Partitions.setupPartitionIdOnInstructions();
857
858 // To keep things simple have an empty preheader before we version or clone
859 // the loop. (Also split if this has no predecessor, i.e. entry, because we
860 // rely on PH having a predecessor.)
861 if (!PH->getSinglePredecessor() || &*PH->begin() != PH->getTerminator())
862 SplitBlock(PH, PH->getTerminator(), DT, LI);
863
864 // If we need run-time checks to disambiguate pointers are run-time, version
865 // the loop now.
Adam Nemet772a1502015-06-19 19:32:41 +0000866 auto PtrToPartition = Partitions.computePartitionSetForPointers(LAI);
Adam Nemet76325002015-06-19 19:32:48 +0000867 LoopVersioning LVer(LAI, L, LI, DT, &PtrToPartition);
868 if (LVer.needsRuntimeChecks()) {
Adam Nemet772a1502015-06-19 19:32:41 +0000869 DEBUG(dbgs() << "\nPointers:\n");
870 DEBUG(LAI.getRuntimePointerCheck()->print(dbgs(), 0, &PtrToPartition));
Adam Nemet76325002015-06-19 19:32:48 +0000871 LVer.versionLoop(this);
872 LVer.addPHINodes(DefsUsedOutside);
Adam Nemet938d3d62015-05-14 12:05:18 +0000873 }
874
875 // Create identical copies of the original loop for each partition and hook
876 // them up sequentially.
877 Partitions.cloneLoops(this);
878
879 // Now, we remove the instruction from each loop that don't belong to that
880 // partition.
881 Partitions.removeUnusedInsts();
882 DEBUG(dbgs() << "\nAfter removing unused Instrs:\n");
883 DEBUG(Partitions.printBlocks());
884
885 if (LDistVerify) {
886 LI->verify();
887 DT->verifyDomTree();
888 }
889
890 ++NumLoopsDistributed;
891 return true;
892 }
893
894 // Analyses used.
895 LoopInfo *LI;
896 LoopAccessAnalysis *LAA;
897 DominatorTree *DT;
898};
899} // anonymous namespace
900
901char LoopDistribute::ID;
902static const char ldist_name[] = "Loop Distribition";
903
904INITIALIZE_PASS_BEGIN(LoopDistribute, LDIST_NAME, ldist_name, false, false)
905INITIALIZE_PASS_DEPENDENCY(LoopInfoWrapperPass)
906INITIALIZE_PASS_DEPENDENCY(LoopAccessAnalysis)
907INITIALIZE_PASS_DEPENDENCY(DominatorTreeWrapperPass)
908INITIALIZE_PASS_END(LoopDistribute, LDIST_NAME, ldist_name, false, false)
909
910namespace llvm {
911FunctionPass *createLoopDistributePass() { return new LoopDistribute(); }
912}