1 //===- RegionInfoImpl.h - SESE region detection analysis --------*- C++ -*-===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 // Detects single entry single exit regions in the control flow graph.
9 //===----------------------------------------------------------------------===//
10
11 #ifndef LLVM_ANALYSIS_REGIONINFOIMPL_H
12 #define LLVM_ANALYSIS_REGIONINFOIMPL_H
13
14 #include "llvm/ADT/GraphTraits.h"
15 #include "llvm/ADT/PostOrderIterator.h"
16 #include "llvm/ADT/STLExtras.h"
17 #include "llvm/ADT/SmallVector.h"
18 #include "llvm/Analysis/LoopInfo.h"
19 #include "llvm/Analysis/PostDominators.h"
20 #include "llvm/Analysis/RegionInfo.h"
21 #include "llvm/Analysis/RegionIterator.h"
22 #include "llvm/Config/llvm-config.h"
23 #include "llvm/Support/Debug.h"
24 #include "llvm/Support/ErrorHandling.h"
25 #include <algorithm>
26 #include <cassert>
27 #include <iterator>
28 #include <memory>
29 #include <set>
30 #include <string>
31 #include <type_traits>
32 #include <vector>
33
34 #define DEBUG_TYPE "region"
35
36 namespace llvm {
37 class raw_ostream;
38
39 //===----------------------------------------------------------------------===//
40 /// RegionBase Implementation
41 template <class Tr>
RegionBase(BlockT * Entry,BlockT * Exit,typename Tr::RegionInfoT * RInfo,DomTreeT * dt,RegionT * Parent)42 RegionBase<Tr>::RegionBase(BlockT *Entry, BlockT *Exit,
43 typename Tr::RegionInfoT *RInfo, DomTreeT *dt,
44 RegionT *Parent)
45 : RegionNodeBase<Tr>(Parent, Entry, 1), RI(RInfo), DT(dt), exit(Exit) {}
46
47 template <class Tr>
~RegionBase()48 RegionBase<Tr>::~RegionBase() {
49 // Only clean the cache for this Region. Caches of child Regions will be
50 // cleaned when the child Regions are deleted.
51 BBNodeMap.clear();
52 }
53
54 template <class Tr>
replaceEntry(BlockT * BB)55 void RegionBase<Tr>::replaceEntry(BlockT *BB) {
56 this->entry.setPointer(BB);
57 }
58
59 template <class Tr>
replaceExit(BlockT * BB)60 void RegionBase<Tr>::replaceExit(BlockT *BB) {
61 assert(exit && "No exit to replace!");
62 exit = BB;
63 }
64
65 template <class Tr>
replaceEntryRecursive(BlockT * NewEntry)66 void RegionBase<Tr>::replaceEntryRecursive(BlockT *NewEntry) {
67 std::vector<RegionT *> RegionQueue;
68 BlockT *OldEntry = getEntry();
69
70 RegionQueue.push_back(static_cast<RegionT *>(this));
71 while (!RegionQueue.empty()) {
72 RegionT *R = RegionQueue.back();
73 RegionQueue.pop_back();
74
75 R->replaceEntry(NewEntry);
76 for (std::unique_ptr<RegionT> &Child : *R) {
77 if (Child->getEntry() == OldEntry)
78 RegionQueue.push_back(Child.get());
79 }
80 }
81 }
82
83 template <class Tr>
replaceExitRecursive(BlockT * NewExit)84 void RegionBase<Tr>::replaceExitRecursive(BlockT *NewExit) {
85 std::vector<RegionT *> RegionQueue;
86 BlockT *OldExit = getExit();
87
88 RegionQueue.push_back(static_cast<RegionT *>(this));
89 while (!RegionQueue.empty()) {
90 RegionT *R = RegionQueue.back();
91 RegionQueue.pop_back();
92
93 R->replaceExit(NewExit);
94 for (std::unique_ptr<RegionT> &Child : *R) {
95 if (Child->getExit() == OldExit)
96 RegionQueue.push_back(Child.get());
97 }
98 }
99 }
100
101 template <class Tr>
contains(const BlockT * B)102 bool RegionBase<Tr>::contains(const BlockT *B) const {
103 BlockT *BB = const_cast<BlockT *>(B);
104
105 if (!DT->getNode(BB))
106 return false;
107
108 BlockT *entry = getEntry(), *exit = getExit();
109
110 // Toplevel region.
111 if (!exit)
112 return true;
113
114 return (DT->dominates(entry, BB) &&
115 !(DT->dominates(exit, BB) && DT->dominates(entry, exit)));
116 }
117
118 template <class Tr>
contains(const LoopT * L)119 bool RegionBase<Tr>::contains(const LoopT *L) const {
120 // BBs that are not part of any loop are element of the Loop
121 // described by the NULL pointer. This loop is not part of any region,
122 // except if the region describes the whole function.
123 if (!L)
124 return getExit() == nullptr;
125
126 if (!contains(L->getHeader()))
127 return false;
128
129 SmallVector<BlockT *, 8> ExitingBlocks;
130 L->getExitingBlocks(ExitingBlocks);
131
132 for (BlockT *BB : ExitingBlocks) {
133 if (!contains(BB))
134 return false;
135 }
136
137 return true;
138 }
139
140 template <class Tr>
outermostLoopInRegion(LoopT * L)141 typename Tr::LoopT *RegionBase<Tr>::outermostLoopInRegion(LoopT *L) const {
142 if (!contains(L))
143 return nullptr;
144
145 while (L && contains(L->getParentLoop())) {
146 L = L->getParentLoop();
147 }
148
149 return L;
150 }
151
152 template <class Tr>
outermostLoopInRegion(LoopInfoT * LI,BlockT * BB)153 typename Tr::LoopT *RegionBase<Tr>::outermostLoopInRegion(LoopInfoT *LI,
154 BlockT *BB) const {
155 assert(LI && BB && "LI and BB cannot be null!");
156 LoopT *L = LI->getLoopFor(BB);
157 return outermostLoopInRegion(L);
158 }
159
160 template <class Tr>
getEnteringBlock()161 typename RegionBase<Tr>::BlockT *RegionBase<Tr>::getEnteringBlock() const {
162 auto isEnteringBlock = [&](BlockT *Pred, bool AllowRepeats) -> BlockT * {
163 assert(!AllowRepeats && "Unexpected parameter value.");
164 return DT->getNode(Pred) && !contains(Pred) ? Pred : nullptr;
165 };
166 return find_singleton<BlockT>(llvm::inverse_children<BlockT *>(getEntry()),
167 isEnteringBlock);
168 }
169
170 template <class Tr>
getExitingBlocks(SmallVectorImpl<BlockT * > & Exitings)171 bool RegionBase<Tr>::getExitingBlocks(
172 SmallVectorImpl<BlockT *> &Exitings) const {
173 bool CoverAll = true;
174
175 if (!exit)
176 return CoverAll;
177
178 for (BlockT *Pred : llvm::inverse_children<BlockT *>(exit)) {
179 if (contains(Pred)) {
180 Exitings.push_back(Pred);
181 continue;
182 }
183
184 CoverAll = false;
185 }
186
187 return CoverAll;
188 }
189
190 template <class Tr>
getExitingBlock()191 typename RegionBase<Tr>::BlockT *RegionBase<Tr>::getExitingBlock() const {
192 BlockT *exit = getExit();
193 if (!exit)
194 return nullptr;
195
196 auto isContained = [&](BlockT *Pred, bool AllowRepeats) -> BlockT * {
197 assert(!AllowRepeats && "Unexpected parameter value.");
198 return contains(Pred) ? Pred : nullptr;
199 };
200 return find_singleton<BlockT>(llvm::inverse_children<BlockT *>(exit),
201 isContained);
202 }
203
204 template <class Tr>
isSimple()205 bool RegionBase<Tr>::isSimple() const {
206 return !isTopLevelRegion() && getEnteringBlock() && getExitingBlock();
207 }
208
209 template <class Tr>
getNameStr()210 std::string RegionBase<Tr>::getNameStr() const {
211 std::string exitName;
212 std::string entryName;
213
214 if (getEntry()->getName().empty()) {
215 raw_string_ostream OS(entryName);
216
217 getEntry()->printAsOperand(OS, false);
218 } else
219 entryName = std::string(getEntry()->getName());
220
221 if (getExit()) {
222 if (getExit()->getName().empty()) {
223 raw_string_ostream OS(exitName);
224
225 getExit()->printAsOperand(OS, false);
226 } else
227 exitName = std::string(getExit()->getName());
228 } else
229 exitName = "<Function Return>";
230
231 return entryName + " => " + exitName;
232 }
233
234 template <class Tr>
verifyBBInRegion(BlockT * BB)235 void RegionBase<Tr>::verifyBBInRegion(BlockT *BB) const {
236 if (!contains(BB))
237 report_fatal_error("Broken region found: enumerated BB not in region!");
238
239 BlockT *entry = getEntry(), *exit = getExit();
240
241 for (BlockT *Succ : llvm::children<BlockT *>(BB)) {
242 if (!contains(Succ) && exit != Succ)
243 report_fatal_error("Broken region found: edges leaving the region must go "
244 "to the exit node!");
245 }
246
247 if (entry != BB) {
248 for (BlockT *Pred : llvm::inverse_children<BlockT *>(BB)) {
249 // Allow predecessors that are unreachable, as these are ignored during
250 // region analysis.
251 if (!contains(Pred) && DT->isReachableFromEntry(Pred))
252 report_fatal_error("Broken region found: edges entering the region must "
253 "go to the entry node!");
254 }
255 }
256 }
257
258 template <class Tr>
verifyWalk(BlockT * BB,std::set<BlockT * > * visited)259 void RegionBase<Tr>::verifyWalk(BlockT *BB, std::set<BlockT *> *visited) const {
260 BlockT *exit = getExit();
261
262 visited->insert(BB);
263
264 verifyBBInRegion(BB);
265
266 for (BlockT *Succ : llvm::children<BlockT *>(BB)) {
267 if (Succ != exit && visited->find(Succ) == visited->end())
268 verifyWalk(Succ, visited);
269 }
270 }
271
272 template <class Tr>
verifyRegion()273 void RegionBase<Tr>::verifyRegion() const {
274 // Only do verification when user wants to, otherwise this expensive check
275 // will be invoked by PMDataManager::verifyPreservedAnalysis when
276 // a regionpass (marked PreservedAll) finish.
277 if (!RegionInfoBase<Tr>::VerifyRegionInfo)
278 return;
279
280 std::set<BlockT *> visited;
281 verifyWalk(getEntry(), &visited);
282 }
283
284 template <class Tr>
verifyRegionNest()285 void RegionBase<Tr>::verifyRegionNest() const {
286 for (const std::unique_ptr<RegionT> &R : *this)
287 R->verifyRegionNest();
288
289 verifyRegion();
290 }
291
292 template <class Tr>
element_begin()293 typename RegionBase<Tr>::element_iterator RegionBase<Tr>::element_begin() {
294 return GraphTraits<RegionT *>::nodes_begin(static_cast<RegionT *>(this));
295 }
296
297 template <class Tr>
element_end()298 typename RegionBase<Tr>::element_iterator RegionBase<Tr>::element_end() {
299 return GraphTraits<RegionT *>::nodes_end(static_cast<RegionT *>(this));
300 }
301
302 template <class Tr>
303 typename RegionBase<Tr>::const_element_iterator
element_begin()304 RegionBase<Tr>::element_begin() const {
305 return GraphTraits<const RegionT *>::nodes_begin(
306 static_cast<const RegionT *>(this));
307 }
308
309 template <class Tr>
310 typename RegionBase<Tr>::const_element_iterator
element_end()311 RegionBase<Tr>::element_end() const {
312 return GraphTraits<const RegionT *>::nodes_end(
313 static_cast<const RegionT *>(this));
314 }
315
316 template <class Tr>
getSubRegionNode(BlockT * BB)317 typename Tr::RegionT *RegionBase<Tr>::getSubRegionNode(BlockT *BB) const {
318 using RegionT = typename Tr::RegionT;
319
320 RegionT *R = RI->getRegionFor(BB);
321
322 if (!R || R == this)
323 return nullptr;
324
325 // If we pass the BB out of this region, that means our code is broken.
326 assert(contains(R) && "BB not in current region!");
327
328 while (contains(R->getParent()) && R->getParent() != this)
329 R = R->getParent();
330
331 if (R->getEntry() != BB)
332 return nullptr;
333
334 return R;
335 }
336
337 template <class Tr>
getBBNode(BlockT * BB)338 typename Tr::RegionNodeT *RegionBase<Tr>::getBBNode(BlockT *BB) const {
339 assert(contains(BB) && "Can get BB node out of this region!");
340
341 auto [at, Inserted] = BBNodeMap.try_emplace(BB);
342 if (Inserted) {
343 auto Deconst = const_cast<RegionBase<Tr> *>(this);
344 at->second =
345 std::make_unique<RegionNodeT>(static_cast<RegionT *>(Deconst), BB);
346 }
347 return at->second.get();
348 }
349
350 template <class Tr>
getNode(BlockT * BB)351 typename Tr::RegionNodeT *RegionBase<Tr>::getNode(BlockT *BB) const {
352 assert(contains(BB) && "Can get BB node out of this region!");
353 if (RegionT *Child = getSubRegionNode(BB))
354 return Child->getNode();
355
356 return getBBNode(BB);
357 }
358
359 template <class Tr>
transferChildrenTo(RegionT * To)360 void RegionBase<Tr>::transferChildrenTo(RegionT *To) {
361 for (std::unique_ptr<RegionT> &R : *this) {
362 R->parent = To;
363 To->children.push_back(std::move(R));
364 }
365 children.clear();
366 }
367
368 template <class Tr>
addSubRegion(RegionT * SubRegion,bool moveChildren)369 void RegionBase<Tr>::addSubRegion(RegionT *SubRegion, bool moveChildren) {
370 assert(!SubRegion->parent && "SubRegion already has a parent!");
371 assert(llvm::none_of(*this,
372 [&](const std::unique_ptr<RegionT> &R) {
373 return R.get() == SubRegion;
374 }) &&
375 "Subregion already exists!");
376
377 SubRegion->parent = static_cast<RegionT *>(this);
378 children.push_back(std::unique_ptr<RegionT>(SubRegion));
379
380 if (!moveChildren)
381 return;
382
383 assert(SubRegion->children.empty() &&
384 "SubRegions that contain children are not supported");
385
386 for (RegionNodeT *Element : elements()) {
387 if (!Element->isSubRegion()) {
388 BlockT *BB = Element->template getNodeAs<BlockT>();
389
390 if (SubRegion->contains(BB))
391 RI->setRegionFor(BB, SubRegion);
392 }
393 }
394
395 std::vector<std::unique_ptr<RegionT>> Keep;
396 for (std::unique_ptr<RegionT> &R : *this) {
397 if (SubRegion->contains(R.get()) && R.get() != SubRegion) {
398 R->parent = SubRegion;
399 SubRegion->children.push_back(std::move(R));
400 } else
401 Keep.push_back(std::move(R));
402 }
403
404 children.clear();
405 children.insert(
406 children.begin(),
407 std::move_iterator<typename RegionSet::iterator>(Keep.begin()),
408 std::move_iterator<typename RegionSet::iterator>(Keep.end()));
409 }
410
411 template <class Tr>
removeSubRegion(RegionT * Child)412 typename Tr::RegionT *RegionBase<Tr>::removeSubRegion(RegionT *Child) {
413 assert(Child->parent == this && "Child is not a child of this region!");
414 Child->parent = nullptr;
415 typename RegionSet::iterator I =
416 llvm::find_if(children, [&](const std::unique_ptr<RegionT> &R) {
417 return R.get() == Child;
418 });
419 assert(I != children.end() && "Region does not exit. Unable to remove.");
420 children.erase(children.begin() + (I - begin()));
421 return Child;
422 }
423
424 template <class Tr>
getDepth()425 unsigned RegionBase<Tr>::getDepth() const {
426 unsigned Depth = 0;
427
428 for (RegionT *R = getParent(); R != nullptr; R = R->getParent())
429 ++Depth;
430
431 return Depth;
432 }
433
434 template <class Tr>
getExpandedRegion()435 typename Tr::RegionT *RegionBase<Tr>::getExpandedRegion() const {
436 unsigned NumSuccessors = Tr::getNumSuccessors(exit);
437
438 if (NumSuccessors == 0)
439 return nullptr;
440
441 RegionT *R = RI->getRegionFor(exit);
442
443 if (R->getEntry() != exit) {
444 for (BlockT *Pred : llvm::inverse_children<BlockT *>(getExit()))
445 if (!contains(Pred))
446 return nullptr;
447 if (Tr::getNumSuccessors(exit) == 1)
448 return new RegionT(getEntry(), *BlockTraits::child_begin(exit), RI, DT);
449 return nullptr;
450 }
451
452 while (R->getParent() && R->getParent()->getEntry() == exit)
453 R = R->getParent();
454
455 for (BlockT *Pred : llvm::inverse_children<BlockT *>(getExit())) {
456 if (!(contains(Pred) || R->contains(Pred)))
457 return nullptr;
458 }
459
460 return new RegionT(getEntry(), R->getExit(), RI, DT);
461 }
462
463 template <class Tr>
print(raw_ostream & OS,bool print_tree,unsigned level,PrintStyle Style)464 void RegionBase<Tr>::print(raw_ostream &OS, bool print_tree, unsigned level,
465 PrintStyle Style) const {
466 if (print_tree)
467 OS.indent(level * 2) << '[' << level << "] " << getNameStr();
468 else
469 OS.indent(level * 2) << getNameStr();
470
471 OS << '\n';
472
473 if (Style != PrintNone) {
474 OS.indent(level * 2) << "{\n";
475 OS.indent(level * 2 + 2);
476
477 if (Style == PrintBB) {
478 for (const auto *BB : blocks())
479 OS << BB->getName() << ", "; // TODO: remove the last ","
480 } else if (Style == PrintRN) {
481 for (const RegionNodeT *Element : elements()) {
482 OS << *Element << ", "; // TODO: remove the last ",
483 }
484 }
485
486 OS << '\n';
487 }
488
489 if (print_tree) {
490 for (const std::unique_ptr<RegionT> &R : *this)
491 R->print(OS, print_tree, level + 1, Style);
492 }
493
494 if (Style != PrintNone)
495 OS.indent(level * 2) << "} \n";
496 }
497
498 #if !defined(NDEBUG) || defined(LLVM_ENABLE_DUMP)
499 template <class Tr>
dump()500 void RegionBase<Tr>::dump() const {
501 print(dbgs(), true, getDepth(), RegionInfoBase<Tr>::printStyle);
502 }
503 #endif
504
505 template <class Tr>
clearNodeCache()506 void RegionBase<Tr>::clearNodeCache() {
507 BBNodeMap.clear();
508 for (std::unique_ptr<RegionT> &R : *this)
509 R->clearNodeCache();
510 }
511
512 //===----------------------------------------------------------------------===//
513 // RegionInfoBase implementation
514 //
515
516 template <class Tr>
517 RegionInfoBase<Tr>::RegionInfoBase() = default;
518
519 template <class Tr>
~RegionInfoBase()520 RegionInfoBase<Tr>::~RegionInfoBase() {
521 releaseMemory();
522 }
523
524 template <class Tr>
verifyBBMap(const RegionT * R)525 void RegionInfoBase<Tr>::verifyBBMap(const RegionT *R) const {
526 assert(R && "Re must be non-null");
527 for (const typename Tr::RegionNodeT *Element : R->elements()) {
528 if (Element->isSubRegion()) {
529 const RegionT *SR = Element->template getNodeAs<RegionT>();
530 verifyBBMap(SR);
531 } else {
532 BlockT *BB = Element->template getNodeAs<BlockT>();
533 if (getRegionFor(BB) != R)
534 report_fatal_error("BB map does not match region nesting");
535 }
536 }
537 }
538
539 template <class Tr>
isCommonDomFrontier(BlockT * BB,BlockT * entry,BlockT * exit)540 bool RegionInfoBase<Tr>::isCommonDomFrontier(BlockT *BB, BlockT *entry,
541 BlockT *exit) const {
542 for (BlockT *P : llvm::inverse_children<BlockT *>(BB)) {
543 if (DT->dominates(entry, P) && !DT->dominates(exit, P))
544 return false;
545 }
546
547 return true;
548 }
549
550 template <class Tr>
isRegion(BlockT * entry,BlockT * exit)551 bool RegionInfoBase<Tr>::isRegion(BlockT *entry, BlockT *exit) const {
552 assert(entry && exit && "entry and exit must not be null!");
553
554 using DST = typename DomFrontierT::DomSetType;
555
556 DST *entrySuccs = &DF->find(entry)->second;
557
558 // Exit is the header of a loop that contains the entry. In this case,
559 // the dominance frontier must only contain the exit.
560 if (!DT->dominates(entry, exit)) {
561 for (BlockT *successor : *entrySuccs) {
562 if (successor != exit && successor != entry)
563 return false;
564 }
565
566 return true;
567 }
568
569 DST *exitSuccs = &DF->find(exit)->second;
570
571 // Do not allow edges leaving the region.
572 for (BlockT *Succ : *entrySuccs) {
573 if (Succ == exit || Succ == entry)
574 continue;
575 if (!exitSuccs->contains(Succ))
576 return false;
577 if (!isCommonDomFrontier(Succ, entry, exit))
578 return false;
579 }
580
581 // Do not allow edges pointing into the region.
582 for (BlockT *Succ : *exitSuccs) {
583 if (DT->properlyDominates(entry, Succ) && Succ != exit)
584 return false;
585 }
586
587 return true;
588 }
589
590 template <class Tr>
insertShortCut(BlockT * entry,BlockT * exit,BBtoBBMap * ShortCut)591 void RegionInfoBase<Tr>::insertShortCut(BlockT *entry, BlockT *exit,
592 BBtoBBMap *ShortCut) const {
593 assert(entry && exit && "entry and exit must not be null!");
594
595 typename BBtoBBMap::iterator e = ShortCut->find(exit);
596
597 if (e == ShortCut->end())
598 // No further region at exit available.
599 (*ShortCut)[entry] = exit;
600 else {
601 // We found a region e that starts at exit. Therefore (entry, e->second)
602 // is also a region, that is larger than (entry, exit). Insert the
603 // larger one.
604 BlockT *BB = e->second;
605 (*ShortCut)[entry] = BB;
606 }
607 }
608
609 template <class Tr>
610 typename Tr::DomTreeNodeT *
getNextPostDom(DomTreeNodeT * N,BBtoBBMap * ShortCut)611 RegionInfoBase<Tr>::getNextPostDom(DomTreeNodeT *N, BBtoBBMap *ShortCut) const {
612 typename BBtoBBMap::iterator e = ShortCut->find(N->getBlock());
613
614 if (e == ShortCut->end())
615 return N->getIDom();
616
617 return PDT->getNode(e->second)->getIDom();
618 }
619
620 template <class Tr>
isTrivialRegion(BlockT * entry,BlockT * exit)621 bool RegionInfoBase<Tr>::isTrivialRegion(BlockT *entry, BlockT *exit) const {
622 assert(entry && exit && "entry and exit must not be null!");
623
624 unsigned num_successors =
625 BlockTraits::child_end(entry) - BlockTraits::child_begin(entry);
626
627 if (num_successors <= 1 && exit == *(BlockTraits::child_begin(entry)))
628 return true;
629
630 return false;
631 }
632
633 template <class Tr>
createRegion(BlockT * entry,BlockT * exit)634 typename Tr::RegionT *RegionInfoBase<Tr>::createRegion(BlockT *entry,
635 BlockT *exit) {
636 assert(entry && exit && "entry and exit must not be null!");
637
638 if (isTrivialRegion(entry, exit))
639 return nullptr;
640
641 RegionT *region =
642 new RegionT(entry, exit, static_cast<RegionInfoT *>(this), DT);
643 BBtoRegion.insert({entry, region});
644
645 region->verifyRegion();
646
647 updateStatistics(region);
648 return region;
649 }
650
651 template <class Tr>
findRegionsWithEntry(BlockT * entry,BBtoBBMap * ShortCut)652 void RegionInfoBase<Tr>::findRegionsWithEntry(BlockT *entry,
653 BBtoBBMap *ShortCut) {
654 assert(entry);
655
656 DomTreeNodeT *N = PDT->getNode(entry);
657 if (!N)
658 return;
659
660 RegionT *lastRegion = nullptr;
661 BlockT *lastExit = entry;
662
663 // As only a BasicBlock that postdominates entry can finish a region, walk the
664 // post dominance tree upwards.
665 while ((N = getNextPostDom(N, ShortCut))) {
666 BlockT *exit = N->getBlock();
667
668 if (!exit)
669 break;
670
671 if (isRegion(entry, exit)) {
672 RegionT *newRegion = createRegion(entry, exit);
673
674 if (lastRegion)
675 newRegion->addSubRegion(lastRegion);
676
677 lastRegion = newRegion;
678 lastExit = exit;
679 }
680
681 // This can never be a region, so stop the search.
682 if (!DT->dominates(entry, exit))
683 break;
684 }
685
686 // Tried to create regions from entry to lastExit. Next time take a
687 // shortcut from entry to lastExit.
688 if (lastExit != entry)
689 insertShortCut(entry, lastExit, ShortCut);
690 }
691
692 template <class Tr>
scanForRegions(FuncT & F,BBtoBBMap * ShortCut)693 void RegionInfoBase<Tr>::scanForRegions(FuncT &F, BBtoBBMap *ShortCut) {
694 using FuncPtrT = std::add_pointer_t<FuncT>;
695
696 BlockT *entry = GraphTraits<FuncPtrT>::getEntryNode(&F);
697 DomTreeNodeT *N = DT->getNode(entry);
698
699 // Iterate over the dominance tree in post order to start with the small
700 // regions from the bottom of the dominance tree. If the small regions are
701 // detected first, detection of bigger regions is faster, as we can jump
702 // over the small regions.
703 for (auto DomNode : post_order(N))
704 findRegionsWithEntry(DomNode->getBlock(), ShortCut);
705 }
706
707 template <class Tr>
getTopMostParent(RegionT * region)708 typename Tr::RegionT *RegionInfoBase<Tr>::getTopMostParent(RegionT *region) {
709 while (region->getParent())
710 region = region->getParent();
711
712 return region;
713 }
714
715 template <class Tr>
buildRegionsTree(DomTreeNodeT * N,RegionT * region)716 void RegionInfoBase<Tr>::buildRegionsTree(DomTreeNodeT *N, RegionT *region) {
717 BlockT *BB = N->getBlock();
718
719 // Passed region exit
720 while (BB == region->getExit())
721 region = region->getParent();
722
723 auto [It, Inserted] = BBtoRegion.try_emplace(BB, region);
724
725 // This basic block is a start block of a region. It is already in the
726 // BBtoRegion relation. Only the child basic blocks have to be updated.
727 if (!Inserted) {
728 RegionT *newRegion = It->second;
729 region->addSubRegion(getTopMostParent(newRegion));
730 region = newRegion;
731 }
732
733 for (DomTreeNodeBase<BlockT> *C : *N) {
734 buildRegionsTree(C, region);
735 }
736 }
737
738 #ifdef EXPENSIVE_CHECKS
739 template <class Tr>
740 bool RegionInfoBase<Tr>::VerifyRegionInfo = true;
741 #else
742 template <class Tr>
743 bool RegionInfoBase<Tr>::VerifyRegionInfo = false;
744 #endif
745
746 template <class Tr>
747 typename Tr::RegionT::PrintStyle RegionInfoBase<Tr>::printStyle =
748 RegionBase<Tr>::PrintNone;
749
750 template <class Tr>
print(raw_ostream & OS)751 void RegionInfoBase<Tr>::print(raw_ostream &OS) const {
752 OS << "Region tree:\n";
753 TopLevelRegion->print(OS, true, 0, printStyle);
754 OS << "End region tree\n";
755 }
756
757 #if !defined(NDEBUG) || defined(LLVM_ENABLE_DUMP)
758 template <class Tr>
dump()759 void RegionInfoBase<Tr>::dump() const { print(dbgs()); }
760 #endif
761
releaseMemory()762 template <class Tr> void RegionInfoBase<Tr>::releaseMemory() {
763 BBtoRegion.clear();
764 if (TopLevelRegion) {
765 delete TopLevelRegion;
766 TopLevelRegion = nullptr;
767 }
768 }
769
770 template <class Tr>
verifyAnalysis()771 void RegionInfoBase<Tr>::verifyAnalysis() const {
772 // Do only verify regions if explicitely activated using EXPENSIVE_CHECKS or
773 // -verify-region-info
774 if (!RegionInfoBase<Tr>::VerifyRegionInfo)
775 return;
776
777 TopLevelRegion->verifyRegionNest();
778
779 verifyBBMap(TopLevelRegion);
780 }
781
782 // Region pass manager support.
783 template <class Tr>
getRegionFor(BlockT * BB)784 typename Tr::RegionT *RegionInfoBase<Tr>::getRegionFor(BlockT *BB) const {
785 return BBtoRegion.lookup(BB);
786 }
787
788 template <class Tr>
setRegionFor(BlockT * BB,RegionT * R)789 void RegionInfoBase<Tr>::setRegionFor(BlockT *BB, RegionT *R) {
790 BBtoRegion[BB] = R;
791 }
792
793 template <class Tr>
794 typename Tr::RegionT *RegionInfoBase<Tr>::operator[](BlockT *BB) const {
795 return getRegionFor(BB);
796 }
797
798 template <class Tr>
799 typename RegionInfoBase<Tr>::BlockT *
getMaxRegionExit(BlockT * BB)800 RegionInfoBase<Tr>::getMaxRegionExit(BlockT *BB) const {
801 BlockT *Exit = nullptr;
802
803 while (true) {
804 // Get largest region that starts at BB.
805 RegionT *R = getRegionFor(BB);
806 while (R && R->getParent() && R->getParent()->getEntry() == BB)
807 R = R->getParent();
808
809 // Get the single exit of BB.
810 if (R && R->getEntry() == BB)
811 Exit = R->getExit();
812 else if (std::next(BlockTraits::child_begin(BB)) ==
813 BlockTraits::child_end(BB))
814 Exit = *BlockTraits::child_begin(BB);
815 else // No single exit exists.
816 return Exit;
817
818 // Get largest region that starts at Exit.
819 RegionT *ExitR = getRegionFor(Exit);
820 while (ExitR && ExitR->getParent() &&
821 ExitR->getParent()->getEntry() == Exit)
822 ExitR = ExitR->getParent();
823
824 for (BlockT *Pred : llvm::inverse_children<BlockT *>(Exit)) {
825 if (!R->contains(Pred) && !ExitR->contains(Pred))
826 break;
827 }
828
829 // This stops infinite cycles.
830 if (DT->dominates(Exit, BB))
831 break;
832
833 BB = Exit;
834 }
835
836 return Exit;
837 }
838
839 template <class Tr>
getCommonRegion(RegionT * A,RegionT * B)840 typename Tr::RegionT *RegionInfoBase<Tr>::getCommonRegion(RegionT *A,
841 RegionT *B) const {
842 assert(A && B && "One of the Regions is NULL");
843
844 if (A->contains(B))
845 return A;
846
847 while (!B->contains(A))
848 B = B->getParent();
849
850 return B;
851 }
852
853 template <class Tr>
854 typename Tr::RegionT *
getCommonRegion(SmallVectorImpl<RegionT * > & Regions)855 RegionInfoBase<Tr>::getCommonRegion(SmallVectorImpl<RegionT *> &Regions) const {
856 RegionT *ret = Regions.pop_back_val();
857
858 for (RegionT *R : Regions)
859 ret = getCommonRegion(ret, R);
860
861 return ret;
862 }
863
864 template <class Tr>
865 typename Tr::RegionT *
getCommonRegion(SmallVectorImpl<BlockT * > & BBs)866 RegionInfoBase<Tr>::getCommonRegion(SmallVectorImpl<BlockT *> &BBs) const {
867 RegionT *ret = getRegionFor(BBs.back());
868 BBs.pop_back();
869
870 for (BlockT *BB : BBs)
871 ret = getCommonRegion(ret, getRegionFor(BB));
872
873 return ret;
874 }
875
876 template <class Tr>
calculate(FuncT & F)877 void RegionInfoBase<Tr>::calculate(FuncT &F) {
878 using FuncPtrT = std::add_pointer_t<FuncT>;
879
880 // ShortCut a function where for every BB the exit of the largest region
881 // starting with BB is stored. These regions can be threated as single BBS.
882 // This improves performance on linear CFGs.
883 BBtoBBMap ShortCut;
884
885 scanForRegions(F, &ShortCut);
886 BlockT *BB = GraphTraits<FuncPtrT>::getEntryNode(&F);
887 buildRegionsTree(DT->getNode(BB), TopLevelRegion);
888 }
889
890 } // end namespace llvm
891
892 #undef DEBUG_TYPE
893
894 #endif // LLVM_ANALYSIS_REGIONINFOIMPL_H
895