1 //===-- StructurizeCFG.cpp ------------------------------------------------===// 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 #include "llvm/Transforms/Scalar.h" 11 #include "llvm/ADT/MapVector.h" 12 #include "llvm/ADT/PostOrderIterator.h" 13 #include "llvm/ADT/SCCIterator.h" 14 #include "llvm/Analysis/DivergenceAnalysis.h" 15 #include "llvm/Analysis/LoopInfo.h" 16 #include "llvm/Analysis/RegionInfo.h" 17 #include "llvm/Analysis/RegionIterator.h" 18 #include "llvm/Analysis/RegionPass.h" 19 #include "llvm/IR/Module.h" 20 #include "llvm/IR/PatternMatch.h" 21 #include "llvm/Support/Debug.h" 22 #include "llvm/Support/raw_ostream.h" 23 #include "llvm/Transforms/Utils/SSAUpdater.h" 24 25 using namespace llvm; 26 using namespace llvm::PatternMatch; 27 28 #define DEBUG_TYPE "structurizecfg" 29 30 namespace { 31 32 // Definition of the complex types used in this pass. 33 34 typedef std::pair<BasicBlock *, Value *> BBValuePair; 35 36 typedef SmallVector<RegionNode*, 8> RNVector; 37 typedef SmallVector<BasicBlock*, 8> BBVector; 38 typedef SmallVector<BranchInst*, 8> BranchVector; 39 typedef SmallVector<BBValuePair, 2> BBValueVector; 40 41 typedef SmallPtrSet<BasicBlock *, 8> BBSet; 42 43 typedef MapVector<PHINode *, BBValueVector> PhiMap; 44 typedef MapVector<BasicBlock *, BBVector> BB2BBVecMap; 45 46 typedef DenseMap<DomTreeNode *, unsigned> DTN2UnsignedMap; 47 typedef DenseMap<BasicBlock *, PhiMap> BBPhiMap; 48 typedef DenseMap<BasicBlock *, Value *> BBPredicates; 49 typedef DenseMap<BasicBlock *, BBPredicates> PredMap; 50 typedef DenseMap<BasicBlock *, BasicBlock*> BB2BBMap; 51 52 // The name for newly created blocks. 53 54 static const char *const FlowBlockName = "Flow"; 55 56 /// @brief Find the nearest common dominator for multiple BasicBlocks 57 /// 58 /// Helper class for StructurizeCFG 59 /// TODO: Maybe move into common code 60 class NearestCommonDominator { 61 DominatorTree *DT; 62 63 DTN2UnsignedMap IndexMap; 64 65 BasicBlock *Result; 66 unsigned ResultIndex; 67 bool ExplicitMentioned; 68 69 public: 70 /// \brief Start a new query 71 NearestCommonDominator(DominatorTree *DomTree) { 72 DT = DomTree; 73 Result = nullptr; 74 } 75 76 /// \brief Add BB to the resulting dominator 77 void addBlock(BasicBlock *BB, bool Remember = true) { 78 DomTreeNode *Node = DT->getNode(BB); 79 80 if (!Result) { 81 unsigned Numbering = 0; 82 for (;Node;Node = Node->getIDom()) 83 IndexMap[Node] = ++Numbering; 84 Result = BB; 85 ResultIndex = 1; 86 ExplicitMentioned = Remember; 87 return; 88 } 89 90 for (;Node;Node = Node->getIDom()) 91 if (IndexMap.count(Node)) 92 break; 93 else 94 IndexMap[Node] = 0; 95 96 assert(Node && "Dominator tree invalid!"); 97 98 unsigned Numbering = IndexMap[Node]; 99 if (Numbering > ResultIndex) { 100 Result = Node->getBlock(); 101 ResultIndex = Numbering; 102 ExplicitMentioned = Remember && (Result == BB); 103 } else if (Numbering == ResultIndex) { 104 ExplicitMentioned |= Remember; 105 } 106 } 107 108 /// \brief Is "Result" one of the BBs added with "Remember" = True? 109 bool wasResultExplicitMentioned() { 110 return ExplicitMentioned; 111 } 112 113 /// \brief Get the query result 114 BasicBlock *getResult() { 115 return Result; 116 } 117 }; 118 119 /// @brief Transforms the control flow graph on one single entry/exit region 120 /// at a time. 121 /// 122 /// After the transform all "If"/"Then"/"Else" style control flow looks like 123 /// this: 124 /// 125 /// \verbatim 126 /// 1 127 /// || 128 /// | | 129 /// 2 | 130 /// | / 131 /// |/ 132 /// 3 133 /// || Where: 134 /// | | 1 = "If" block, calculates the condition 135 /// 4 | 2 = "Then" subregion, runs if the condition is true 136 /// | / 3 = "Flow" blocks, newly inserted flow blocks, rejoins the flow 137 /// |/ 4 = "Else" optional subregion, runs if the condition is false 138 /// 5 5 = "End" block, also rejoins the control flow 139 /// \endverbatim 140 /// 141 /// Control flow is expressed as a branch where the true exit goes into the 142 /// "Then"/"Else" region, while the false exit skips the region 143 /// The condition for the optional "Else" region is expressed as a PHI node. 144 /// The incomming values of the PHI node are true for the "If" edge and false 145 /// for the "Then" edge. 146 /// 147 /// Additionally to that even complicated loops look like this: 148 /// 149 /// \verbatim 150 /// 1 151 /// || 152 /// | | 153 /// 2 ^ Where: 154 /// | / 1 = "Entry" block 155 /// |/ 2 = "Loop" optional subregion, with all exits at "Flow" block 156 /// 3 3 = "Flow" block, with back edge to entry block 157 /// | 158 /// \endverbatim 159 /// 160 /// The back edge of the "Flow" block is always on the false side of the branch 161 /// while the true side continues the general flow. So the loop condition 162 /// consist of a network of PHI nodes where the true incoming values expresses 163 /// breaks and the false values expresses continue states. 164 class StructurizeCFG : public RegionPass { 165 bool SkipUniformRegions; 166 DivergenceAnalysis *DA; 167 168 Type *Boolean; 169 ConstantInt *BoolTrue; 170 ConstantInt *BoolFalse; 171 UndefValue *BoolUndef; 172 173 Function *Func; 174 Region *ParentRegion; 175 176 DominatorTree *DT; 177 LoopInfo *LI; 178 179 RNVector Order; 180 BBSet Visited; 181 182 BBPhiMap DeletedPhis; 183 BB2BBVecMap AddedPhis; 184 185 PredMap Predicates; 186 BranchVector Conditions; 187 188 BB2BBMap Loops; 189 PredMap LoopPreds; 190 BranchVector LoopConds; 191 192 RegionNode *PrevNode; 193 194 void orderNodes(); 195 196 void analyzeLoops(RegionNode *N); 197 198 Value *invert(Value *Condition); 199 200 Value *buildCondition(BranchInst *Term, unsigned Idx, bool Invert); 201 202 void gatherPredicates(RegionNode *N); 203 204 void collectInfos(); 205 206 void insertConditions(bool Loops); 207 208 void delPhiValues(BasicBlock *From, BasicBlock *To); 209 210 void addPhiValues(BasicBlock *From, BasicBlock *To); 211 212 void setPhiValues(); 213 214 void killTerminator(BasicBlock *BB); 215 216 void changeExit(RegionNode *Node, BasicBlock *NewExit, 217 bool IncludeDominator); 218 219 BasicBlock *getNextFlow(BasicBlock *Dominator); 220 221 BasicBlock *needPrefix(bool NeedEmpty); 222 223 BasicBlock *needPostfix(BasicBlock *Flow, bool ExitUseAllowed); 224 225 void setPrevNode(BasicBlock *BB); 226 227 bool dominatesPredicates(BasicBlock *BB, RegionNode *Node); 228 229 bool isPredictableTrue(RegionNode *Node); 230 231 void wireFlow(bool ExitUseAllowed, BasicBlock *LoopEnd); 232 233 void handleLoops(bool ExitUseAllowed, BasicBlock *LoopEnd); 234 235 void createFlow(); 236 237 void rebuildSSA(); 238 239 bool hasOnlyUniformBranches(const Region *R); 240 241 public: 242 static char ID; 243 244 StructurizeCFG() : 245 RegionPass(ID), SkipUniformRegions(false) { 246 initializeStructurizeCFGPass(*PassRegistry::getPassRegistry()); 247 } 248 249 StructurizeCFG(bool SkipUniformRegions) : 250 RegionPass(ID), SkipUniformRegions(SkipUniformRegions) { 251 initializeStructurizeCFGPass(*PassRegistry::getPassRegistry()); 252 } 253 254 using Pass::doInitialization; 255 bool doInitialization(Region *R, RGPassManager &RGM) override; 256 257 bool runOnRegion(Region *R, RGPassManager &RGM) override; 258 259 StringRef getPassName() const override { return "Structurize control flow"; } 260 261 void getAnalysisUsage(AnalysisUsage &AU) const override { 262 if (SkipUniformRegions) 263 AU.addRequired<DivergenceAnalysis>(); 264 AU.addRequiredID(LowerSwitchID); 265 AU.addRequired<DominatorTreeWrapperPass>(); 266 AU.addRequired<LoopInfoWrapperPass>(); 267 AU.addPreserved<DominatorTreeWrapperPass>(); 268 RegionPass::getAnalysisUsage(AU); 269 } 270 }; 271 272 } // end anonymous namespace 273 274 char StructurizeCFG::ID = 0; 275 276 INITIALIZE_PASS_BEGIN(StructurizeCFG, "structurizecfg", "Structurize the CFG", 277 false, false) 278 INITIALIZE_PASS_DEPENDENCY(DivergenceAnalysis) 279 INITIALIZE_PASS_DEPENDENCY(LowerSwitch) 280 INITIALIZE_PASS_DEPENDENCY(DominatorTreeWrapperPass) 281 INITIALIZE_PASS_DEPENDENCY(RegionInfoPass) 282 INITIALIZE_PASS_END(StructurizeCFG, "structurizecfg", "Structurize the CFG", 283 false, false) 284 285 /// \brief Initialize the types and constants used in the pass 286 bool StructurizeCFG::doInitialization(Region *R, RGPassManager &RGM) { 287 LLVMContext &Context = R->getEntry()->getContext(); 288 289 Boolean = Type::getInt1Ty(Context); 290 BoolTrue = ConstantInt::getTrue(Context); 291 BoolFalse = ConstantInt::getFalse(Context); 292 BoolUndef = UndefValue::get(Boolean); 293 294 return false; 295 } 296 297 /// \brief Build up the general order of nodes 298 void StructurizeCFG::orderNodes() { 299 RNVector TempOrder; 300 ReversePostOrderTraversal<Region*> RPOT(ParentRegion); 301 TempOrder.append(RPOT.begin(), RPOT.end()); 302 303 std::map<Loop*, unsigned> LoopBlocks; 304 305 306 // The reverse post-order traversal of the list gives us an ordering close 307 // to what we want. The only problem with it is that sometimes backedges 308 // for outer loops will be visited before backedges for inner loops. 309 for (RegionNode *RN : TempOrder) { 310 BasicBlock *BB = RN->getEntry(); 311 Loop *Loop = LI->getLoopFor(BB); 312 ++LoopBlocks[Loop]; 313 } 314 315 unsigned CurrentLoopDepth = 0; 316 Loop *CurrentLoop = nullptr; 317 BBSet TempVisited; 318 for (RNVector::iterator I = TempOrder.begin(), E = TempOrder.end(); I != E; ++I) { 319 BasicBlock *BB = (*I)->getEntry(); 320 unsigned LoopDepth = LI->getLoopDepth(BB); 321 322 if (is_contained(Order, *I)) 323 continue; 324 325 if (LoopDepth < CurrentLoopDepth) { 326 // Make sure we have visited all blocks in this loop before moving back to 327 // the outer loop. 328 329 RNVector::iterator LoopI = I; 330 while (unsigned &BlockCount = LoopBlocks[CurrentLoop]) { 331 LoopI++; 332 BasicBlock *LoopBB = (*LoopI)->getEntry(); 333 if (LI->getLoopFor(LoopBB) == CurrentLoop) { 334 --BlockCount; 335 Order.push_back(*LoopI); 336 } 337 } 338 } 339 340 CurrentLoop = LI->getLoopFor(BB); 341 if (CurrentLoop) { 342 LoopBlocks[CurrentLoop]--; 343 } 344 345 CurrentLoopDepth = LoopDepth; 346 Order.push_back(*I); 347 } 348 349 // This pass originally used a post-order traversal and then operated on 350 // the list in reverse. Now that we are using a reverse post-order traversal 351 // rather than re-working the whole pass to operate on the list in order, 352 // we just reverse the list and continue to operate on it in reverse. 353 std::reverse(Order.begin(), Order.end()); 354 } 355 356 /// \brief Determine the end of the loops 357 void StructurizeCFG::analyzeLoops(RegionNode *N) { 358 if (N->isSubRegion()) { 359 // Test for exit as back edge 360 BasicBlock *Exit = N->getNodeAs<Region>()->getExit(); 361 if (Visited.count(Exit)) 362 Loops[Exit] = N->getEntry(); 363 364 } else { 365 // Test for sucessors as back edge 366 BasicBlock *BB = N->getNodeAs<BasicBlock>(); 367 BranchInst *Term = cast<BranchInst>(BB->getTerminator()); 368 369 for (BasicBlock *Succ : Term->successors()) 370 if (Visited.count(Succ)) 371 Loops[Succ] = BB; 372 } 373 } 374 375 /// \brief Invert the given condition 376 Value *StructurizeCFG::invert(Value *Condition) { 377 // First: Check if it's a constant 378 if (Constant *C = dyn_cast<Constant>(Condition)) 379 return ConstantExpr::getNot(C); 380 381 // Second: If the condition is already inverted, return the original value 382 if (match(Condition, m_Not(m_Value(Condition)))) 383 return Condition; 384 385 if (Instruction *Inst = dyn_cast<Instruction>(Condition)) { 386 // Third: Check all the users for an invert 387 BasicBlock *Parent = Inst->getParent(); 388 for (User *U : Condition->users()) 389 if (Instruction *I = dyn_cast<Instruction>(U)) 390 if (I->getParent() == Parent && match(I, m_Not(m_Specific(Condition)))) 391 return I; 392 393 // Last option: Create a new instruction 394 return BinaryOperator::CreateNot(Condition, "", Parent->getTerminator()); 395 } 396 397 if (Argument *Arg = dyn_cast<Argument>(Condition)) { 398 BasicBlock &EntryBlock = Arg->getParent()->getEntryBlock(); 399 return BinaryOperator::CreateNot(Condition, 400 Arg->getName() + ".inv", 401 EntryBlock.getTerminator()); 402 } 403 404 llvm_unreachable("Unhandled condition to invert"); 405 } 406 407 /// \brief Build the condition for one edge 408 Value *StructurizeCFG::buildCondition(BranchInst *Term, unsigned Idx, 409 bool Invert) { 410 Value *Cond = Invert ? BoolFalse : BoolTrue; 411 if (Term->isConditional()) { 412 Cond = Term->getCondition(); 413 414 if (Idx != (unsigned)Invert) 415 Cond = invert(Cond); 416 } 417 return Cond; 418 } 419 420 /// \brief Analyze the predecessors of each block and build up predicates 421 void StructurizeCFG::gatherPredicates(RegionNode *N) { 422 RegionInfo *RI = ParentRegion->getRegionInfo(); 423 BasicBlock *BB = N->getEntry(); 424 BBPredicates &Pred = Predicates[BB]; 425 BBPredicates &LPred = LoopPreds[BB]; 426 427 for (pred_iterator PI = pred_begin(BB), PE = pred_end(BB); 428 PI != PE; ++PI) { 429 430 // Ignore it if it's a branch from outside into our region entry 431 if (!ParentRegion->contains(*PI)) 432 continue; 433 434 Region *R = RI->getRegionFor(*PI); 435 if (R == ParentRegion) { 436 437 // It's a top level block in our region 438 BranchInst *Term = cast<BranchInst>((*PI)->getTerminator()); 439 for (unsigned i = 0, e = Term->getNumSuccessors(); i != e; ++i) { 440 BasicBlock *Succ = Term->getSuccessor(i); 441 if (Succ != BB) 442 continue; 443 444 if (Visited.count(*PI)) { 445 // Normal forward edge 446 if (Term->isConditional()) { 447 // Try to treat it like an ELSE block 448 BasicBlock *Other = Term->getSuccessor(!i); 449 if (Visited.count(Other) && !Loops.count(Other) && 450 !Pred.count(Other) && !Pred.count(*PI)) { 451 452 Pred[Other] = BoolFalse; 453 Pred[*PI] = BoolTrue; 454 continue; 455 } 456 } 457 Pred[*PI] = buildCondition(Term, i, false); 458 459 } else { 460 // Back edge 461 LPred[*PI] = buildCondition(Term, i, true); 462 } 463 } 464 465 } else { 466 467 // It's an exit from a sub region 468 while (R->getParent() != ParentRegion) 469 R = R->getParent(); 470 471 // Edge from inside a subregion to its entry, ignore it 472 if (*R == *N) 473 continue; 474 475 BasicBlock *Entry = R->getEntry(); 476 if (Visited.count(Entry)) 477 Pred[Entry] = BoolTrue; 478 else 479 LPred[Entry] = BoolFalse; 480 } 481 } 482 } 483 484 /// \brief Collect various loop and predicate infos 485 void StructurizeCFG::collectInfos() { 486 // Reset predicate 487 Predicates.clear(); 488 489 // and loop infos 490 Loops.clear(); 491 LoopPreds.clear(); 492 493 // Reset the visited nodes 494 Visited.clear(); 495 496 for (RegionNode *RN : reverse(Order)) { 497 498 DEBUG(dbgs() << "Visiting: " 499 << (RN->isSubRegion() ? "SubRegion with entry: " : "") 500 << RN->getEntry()->getName() << " Loop Depth: " 501 << LI->getLoopDepth(RN->getEntry()) << "\n"); 502 503 // Analyze all the conditions leading to a node 504 gatherPredicates(RN); 505 506 // Remember that we've seen this node 507 Visited.insert(RN->getEntry()); 508 509 // Find the last back edges 510 analyzeLoops(RN); 511 } 512 } 513 514 /// \brief Insert the missing branch conditions 515 void StructurizeCFG::insertConditions(bool Loops) { 516 BranchVector &Conds = Loops ? LoopConds : Conditions; 517 Value *Default = Loops ? BoolTrue : BoolFalse; 518 SSAUpdater PhiInserter; 519 520 for (BranchInst *Term : Conds) { 521 assert(Term->isConditional()); 522 523 BasicBlock *Parent = Term->getParent(); 524 BasicBlock *SuccTrue = Term->getSuccessor(0); 525 BasicBlock *SuccFalse = Term->getSuccessor(1); 526 527 PhiInserter.Initialize(Boolean, ""); 528 PhiInserter.AddAvailableValue(&Func->getEntryBlock(), Default); 529 PhiInserter.AddAvailableValue(Loops ? SuccFalse : Parent, Default); 530 531 BBPredicates &Preds = Loops ? LoopPreds[SuccFalse] : Predicates[SuccTrue]; 532 533 NearestCommonDominator Dominator(DT); 534 Dominator.addBlock(Parent, false); 535 536 Value *ParentValue = nullptr; 537 for (BBPredicates::iterator PI = Preds.begin(), PE = Preds.end(); 538 PI != PE; ++PI) { 539 540 if (PI->first == Parent) { 541 ParentValue = PI->second; 542 break; 543 } 544 PhiInserter.AddAvailableValue(PI->first, PI->second); 545 Dominator.addBlock(PI->first); 546 } 547 548 if (ParentValue) { 549 Term->setCondition(ParentValue); 550 } else { 551 if (!Dominator.wasResultExplicitMentioned()) 552 PhiInserter.AddAvailableValue(Dominator.getResult(), Default); 553 554 Term->setCondition(PhiInserter.GetValueInMiddleOfBlock(Parent)); 555 } 556 } 557 } 558 559 /// \brief Remove all PHI values coming from "From" into "To" and remember 560 /// them in DeletedPhis 561 void StructurizeCFG::delPhiValues(BasicBlock *From, BasicBlock *To) { 562 PhiMap &Map = DeletedPhis[To]; 563 for (BasicBlock::iterator I = To->begin(), E = To->end(); 564 I != E && isa<PHINode>(*I);) { 565 566 PHINode &Phi = cast<PHINode>(*I++); 567 while (Phi.getBasicBlockIndex(From) != -1) { 568 Value *Deleted = Phi.removeIncomingValue(From, false); 569 Map[&Phi].push_back(std::make_pair(From, Deleted)); 570 } 571 } 572 } 573 574 /// \brief Add a dummy PHI value as soon as we knew the new predecessor 575 void StructurizeCFG::addPhiValues(BasicBlock *From, BasicBlock *To) { 576 for (BasicBlock::iterator I = To->begin(), E = To->end(); 577 I != E && isa<PHINode>(*I);) { 578 579 PHINode &Phi = cast<PHINode>(*I++); 580 Value *Undef = UndefValue::get(Phi.getType()); 581 Phi.addIncoming(Undef, From); 582 } 583 AddedPhis[To].push_back(From); 584 } 585 586 /// \brief Add the real PHI value as soon as everything is set up 587 void StructurizeCFG::setPhiValues() { 588 SSAUpdater Updater; 589 for (const auto &AddedPhi : AddedPhis) { 590 591 BasicBlock *To = AddedPhi.first; 592 const BBVector &From = AddedPhi.second; 593 594 if (!DeletedPhis.count(To)) 595 continue; 596 597 PhiMap &Map = DeletedPhis[To]; 598 for (const auto &PI : Map) { 599 600 PHINode *Phi = PI.first; 601 Value *Undef = UndefValue::get(Phi->getType()); 602 Updater.Initialize(Phi->getType(), ""); 603 Updater.AddAvailableValue(&Func->getEntryBlock(), Undef); 604 Updater.AddAvailableValue(To, Undef); 605 606 NearestCommonDominator Dominator(DT); 607 Dominator.addBlock(To, false); 608 for (const auto &VI : PI.second) { 609 610 Updater.AddAvailableValue(VI.first, VI.second); 611 Dominator.addBlock(VI.first); 612 } 613 614 if (!Dominator.wasResultExplicitMentioned()) 615 Updater.AddAvailableValue(Dominator.getResult(), Undef); 616 617 for (BasicBlock *FI : From) { 618 619 int Idx = Phi->getBasicBlockIndex(FI); 620 assert(Idx != -1); 621 Phi->setIncomingValue(Idx, Updater.GetValueAtEndOfBlock(FI)); 622 } 623 } 624 625 DeletedPhis.erase(To); 626 } 627 assert(DeletedPhis.empty()); 628 } 629 630 /// \brief Remove phi values from all successors and then remove the terminator. 631 void StructurizeCFG::killTerminator(BasicBlock *BB) { 632 TerminatorInst *Term = BB->getTerminator(); 633 if (!Term) 634 return; 635 636 for (succ_iterator SI = succ_begin(BB), SE = succ_end(BB); 637 SI != SE; ++SI) { 638 639 delPhiValues(BB, *SI); 640 } 641 642 Term->eraseFromParent(); 643 } 644 645 /// \brief Let node exit(s) point to NewExit 646 void StructurizeCFG::changeExit(RegionNode *Node, BasicBlock *NewExit, 647 bool IncludeDominator) { 648 if (Node->isSubRegion()) { 649 Region *SubRegion = Node->getNodeAs<Region>(); 650 BasicBlock *OldExit = SubRegion->getExit(); 651 BasicBlock *Dominator = nullptr; 652 653 // Find all the edges from the sub region to the exit 654 for (pred_iterator I = pred_begin(OldExit), E = pred_end(OldExit); 655 I != E;) { 656 657 BasicBlock *BB = *I++; 658 if (!SubRegion->contains(BB)) 659 continue; 660 661 // Modify the edges to point to the new exit 662 delPhiValues(BB, OldExit); 663 BB->getTerminator()->replaceUsesOfWith(OldExit, NewExit); 664 addPhiValues(BB, NewExit); 665 666 // Find the new dominator (if requested) 667 if (IncludeDominator) { 668 if (!Dominator) 669 Dominator = BB; 670 else 671 Dominator = DT->findNearestCommonDominator(Dominator, BB); 672 } 673 } 674 675 // Change the dominator (if requested) 676 if (Dominator) 677 DT->changeImmediateDominator(NewExit, Dominator); 678 679 // Update the region info 680 SubRegion->replaceExit(NewExit); 681 682 } else { 683 BasicBlock *BB = Node->getNodeAs<BasicBlock>(); 684 killTerminator(BB); 685 BranchInst::Create(NewExit, BB); 686 addPhiValues(BB, NewExit); 687 if (IncludeDominator) 688 DT->changeImmediateDominator(NewExit, BB); 689 } 690 } 691 692 /// \brief Create a new flow node and update dominator tree and region info 693 BasicBlock *StructurizeCFG::getNextFlow(BasicBlock *Dominator) { 694 LLVMContext &Context = Func->getContext(); 695 BasicBlock *Insert = Order.empty() ? ParentRegion->getExit() : 696 Order.back()->getEntry(); 697 BasicBlock *Flow = BasicBlock::Create(Context, FlowBlockName, 698 Func, Insert); 699 DT->addNewBlock(Flow, Dominator); 700 ParentRegion->getRegionInfo()->setRegionFor(Flow, ParentRegion); 701 return Flow; 702 } 703 704 /// \brief Create a new or reuse the previous node as flow node 705 BasicBlock *StructurizeCFG::needPrefix(bool NeedEmpty) { 706 BasicBlock *Entry = PrevNode->getEntry(); 707 708 if (!PrevNode->isSubRegion()) { 709 killTerminator(Entry); 710 if (!NeedEmpty || Entry->getFirstInsertionPt() == Entry->end()) 711 return Entry; 712 713 } 714 715 // create a new flow node 716 BasicBlock *Flow = getNextFlow(Entry); 717 718 // and wire it up 719 changeExit(PrevNode, Flow, true); 720 PrevNode = ParentRegion->getBBNode(Flow); 721 return Flow; 722 } 723 724 /// \brief Returns the region exit if possible, otherwise just a new flow node 725 BasicBlock *StructurizeCFG::needPostfix(BasicBlock *Flow, 726 bool ExitUseAllowed) { 727 if (Order.empty() && ExitUseAllowed) { 728 BasicBlock *Exit = ParentRegion->getExit(); 729 DT->changeImmediateDominator(Exit, Flow); 730 addPhiValues(Flow, Exit); 731 return Exit; 732 } 733 return getNextFlow(Flow); 734 } 735 736 /// \brief Set the previous node 737 void StructurizeCFG::setPrevNode(BasicBlock *BB) { 738 PrevNode = ParentRegion->contains(BB) ? ParentRegion->getBBNode(BB) 739 : nullptr; 740 } 741 742 /// \brief Does BB dominate all the predicates of Node ? 743 bool StructurizeCFG::dominatesPredicates(BasicBlock *BB, RegionNode *Node) { 744 BBPredicates &Preds = Predicates[Node->getEntry()]; 745 for (BBPredicates::iterator PI = Preds.begin(), PE = Preds.end(); 746 PI != PE; ++PI) { 747 748 if (!DT->dominates(BB, PI->first)) 749 return false; 750 } 751 return true; 752 } 753 754 /// \brief Can we predict that this node will always be called? 755 bool StructurizeCFG::isPredictableTrue(RegionNode *Node) { 756 BBPredicates &Preds = Predicates[Node->getEntry()]; 757 bool Dominated = false; 758 759 // Regionentry is always true 760 if (!PrevNode) 761 return true; 762 763 for (BBPredicates::iterator I = Preds.begin(), E = Preds.end(); 764 I != E; ++I) { 765 766 if (I->second != BoolTrue) 767 return false; 768 769 if (!Dominated && DT->dominates(I->first, PrevNode->getEntry())) 770 Dominated = true; 771 } 772 773 // TODO: The dominator check is too strict 774 return Dominated; 775 } 776 777 /// Take one node from the order vector and wire it up 778 void StructurizeCFG::wireFlow(bool ExitUseAllowed, 779 BasicBlock *LoopEnd) { 780 RegionNode *Node = Order.pop_back_val(); 781 Visited.insert(Node->getEntry()); 782 783 if (isPredictableTrue(Node)) { 784 // Just a linear flow 785 if (PrevNode) { 786 changeExit(PrevNode, Node->getEntry(), true); 787 } 788 PrevNode = Node; 789 790 } else { 791 // Insert extra prefix node (or reuse last one) 792 BasicBlock *Flow = needPrefix(false); 793 794 // Insert extra postfix node (or use exit instead) 795 BasicBlock *Entry = Node->getEntry(); 796 BasicBlock *Next = needPostfix(Flow, ExitUseAllowed); 797 798 // let it point to entry and next block 799 Conditions.push_back(BranchInst::Create(Entry, Next, BoolUndef, Flow)); 800 addPhiValues(Flow, Entry); 801 DT->changeImmediateDominator(Entry, Flow); 802 803 PrevNode = Node; 804 while (!Order.empty() && !Visited.count(LoopEnd) && 805 dominatesPredicates(Entry, Order.back())) { 806 handleLoops(false, LoopEnd); 807 } 808 809 changeExit(PrevNode, Next, false); 810 setPrevNode(Next); 811 } 812 } 813 814 void StructurizeCFG::handleLoops(bool ExitUseAllowed, 815 BasicBlock *LoopEnd) { 816 RegionNode *Node = Order.back(); 817 BasicBlock *LoopStart = Node->getEntry(); 818 819 if (!Loops.count(LoopStart)) { 820 wireFlow(ExitUseAllowed, LoopEnd); 821 return; 822 } 823 824 if (!isPredictableTrue(Node)) 825 LoopStart = needPrefix(true); 826 827 LoopEnd = Loops[Node->getEntry()]; 828 wireFlow(false, LoopEnd); 829 while (!Visited.count(LoopEnd)) { 830 handleLoops(false, LoopEnd); 831 } 832 833 // If the start of the loop is the entry block, we can't branch to it so 834 // insert a new dummy entry block. 835 Function *LoopFunc = LoopStart->getParent(); 836 if (LoopStart == &LoopFunc->getEntryBlock()) { 837 LoopStart->setName("entry.orig"); 838 839 BasicBlock *NewEntry = 840 BasicBlock::Create(LoopStart->getContext(), 841 "entry", 842 LoopFunc, 843 LoopStart); 844 BranchInst::Create(LoopStart, NewEntry); 845 } 846 847 // Create an extra loop end node 848 LoopEnd = needPrefix(false); 849 BasicBlock *Next = needPostfix(LoopEnd, ExitUseAllowed); 850 LoopConds.push_back(BranchInst::Create(Next, LoopStart, 851 BoolUndef, LoopEnd)); 852 addPhiValues(LoopEnd, LoopStart); 853 setPrevNode(Next); 854 } 855 856 /// After this function control flow looks like it should be, but 857 /// branches and PHI nodes only have undefined conditions. 858 void StructurizeCFG::createFlow() { 859 BasicBlock *Exit = ParentRegion->getExit(); 860 bool EntryDominatesExit = DT->dominates(ParentRegion->getEntry(), Exit); 861 862 DeletedPhis.clear(); 863 AddedPhis.clear(); 864 Conditions.clear(); 865 LoopConds.clear(); 866 867 PrevNode = nullptr; 868 Visited.clear(); 869 870 while (!Order.empty()) { 871 handleLoops(EntryDominatesExit, nullptr); 872 } 873 874 if (PrevNode) 875 changeExit(PrevNode, Exit, EntryDominatesExit); 876 else 877 assert(EntryDominatesExit); 878 } 879 880 /// Handle a rare case where the disintegrated nodes instructions 881 /// no longer dominate all their uses. Not sure if this is really nessasary 882 void StructurizeCFG::rebuildSSA() { 883 SSAUpdater Updater; 884 for (auto *BB : ParentRegion->blocks()) 885 for (BasicBlock::iterator II = BB->begin(), IE = BB->end(); 886 II != IE; ++II) { 887 888 bool Initialized = false; 889 for (auto I = II->use_begin(), E = II->use_end(); I != E;) { 890 Use &U = *I++; 891 Instruction *User = cast<Instruction>(U.getUser()); 892 if (User->getParent() == BB) { 893 continue; 894 895 } else if (PHINode *UserPN = dyn_cast<PHINode>(User)) { 896 if (UserPN->getIncomingBlock(U) == BB) 897 continue; 898 } 899 900 if (DT->dominates(&*II, User)) 901 continue; 902 903 if (!Initialized) { 904 Value *Undef = UndefValue::get(II->getType()); 905 Updater.Initialize(II->getType(), ""); 906 Updater.AddAvailableValue(&Func->getEntryBlock(), Undef); 907 Updater.AddAvailableValue(BB, &*II); 908 Initialized = true; 909 } 910 Updater.RewriteUseAfterInsertions(U); 911 } 912 } 913 } 914 915 bool StructurizeCFG::hasOnlyUniformBranches(const Region *R) { 916 for (const BasicBlock *BB : R->blocks()) { 917 const BranchInst *Br = dyn_cast<BranchInst>(BB->getTerminator()); 918 if (!Br || !Br->isConditional()) 919 continue; 920 921 if (!DA->isUniform(Br->getCondition())) 922 return false; 923 DEBUG(dbgs() << "BB: " << BB->getName() << " has uniform terminator\n"); 924 } 925 return true; 926 } 927 928 /// \brief Run the transformation for each region found 929 bool StructurizeCFG::runOnRegion(Region *R, RGPassManager &RGM) { 930 if (R->isTopLevelRegion()) 931 return false; 932 933 if (SkipUniformRegions) { 934 DA = &getAnalysis<DivergenceAnalysis>(); 935 // TODO: We could probably be smarter here with how we handle sub-regions. 936 if (hasOnlyUniformBranches(R)) { 937 DEBUG(dbgs() << "Skipping region with uniform control flow: " << *R << '\n'); 938 939 // Mark all direct child block terminators as having been treated as 940 // uniform. To account for a possible future in which non-uniform 941 // sub-regions are treated more cleverly, indirect children are not 942 // marked as uniform. 943 MDNode *MD = MDNode::get(R->getEntry()->getParent()->getContext(), {}); 944 Region::element_iterator E = R->element_end(); 945 for (Region::element_iterator I = R->element_begin(); I != E; ++I) { 946 if (I->isSubRegion()) 947 continue; 948 949 if (Instruction *Term = I->getEntry()->getTerminator()) 950 Term->setMetadata("structurizecfg.uniform", MD); 951 } 952 953 return false; 954 } 955 } 956 957 Func = R->getEntry()->getParent(); 958 ParentRegion = R; 959 960 DT = &getAnalysis<DominatorTreeWrapperPass>().getDomTree(); 961 LI = &getAnalysis<LoopInfoWrapperPass>().getLoopInfo(); 962 963 orderNodes(); 964 collectInfos(); 965 createFlow(); 966 insertConditions(false); 967 insertConditions(true); 968 setPhiValues(); 969 rebuildSSA(); 970 971 // Cleanup 972 Order.clear(); 973 Visited.clear(); 974 DeletedPhis.clear(); 975 AddedPhis.clear(); 976 Predicates.clear(); 977 Conditions.clear(); 978 Loops.clear(); 979 LoopPreds.clear(); 980 LoopConds.clear(); 981 982 return true; 983 } 984 985 Pass *llvm::createStructurizeCFGPass(bool SkipUniformRegions) { 986 return new StructurizeCFG(SkipUniformRegions); 987 } 988